CHAPTER 6
s
PROBLEM 6.1
s
Three full-size 50 100-mm boards are nailed together to form a beam that is subjected to a vertical shear of 1500 N. Knowing that the allowable shearing force in each nail is 400 N, determine the largest longitudinal spacing s that can be used between each pair of nails.
50 mm 50 mm 50 mm
100 mm
SOLUTION I
1 3 1 (100)(150)3 28.125 106 mm 4 bh 12 12
28.125 106 m 4
A (100)(50) 5000 mm2 y1 50 mm
Q A y1 250 103 mm3 250 106 m3 VQ (1500)(250 106 ) 13.3333 103 N/m 6 I 28.125 10 2 Fnail (2)(400) qs 2Fnail s 60.0 103 m q 13.3333 103 q
s 60.0 mm
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s
PROBLEM 6.2
s
For the built-up beam of Prob. 6.1, determine the allowable shear if the spacing between each pair of nails is s 45 mm.
50 mm 50 mm
PROBLEM 6.1 Three full-size 50 100-mm boards are nailed together to form a beam that is subjected to a vertical shear of 1500 N. Knowing that the allowable shearing force in each nail is 400 N, determine the largest longitudinal spacing s that can be used between each pair of nails.
50 mm
100 mm
SOLUTION I
1 3 1 bh (100)(150)3 28.125 106 mm 4 12 12
28.125 106 m 4
A (100)(50) 5000 mm 2
y1 50 mm Q A y1 250 103 mm3 250 106 m3 q
Eliminating q, Solving for V,
VQ I
qs 2 Fnail
VQ 2 Fnail I s
V
2IFnail (2)(28.125 106 )(400) 2.00 103 N Qs (250 106 )(45 103 ) V 2.00 kN ◄
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PROBLEM 6.3
s s
Three boards, each 2 in. thick, are nailed together to form a beam that is subjected to a vertical shear. Knowing that the allowable shearing force in each nail is 150 lb, determine the allowable shear if the spacing s between the nails is 3 in.
s 2 in. 4 in. 2 in. 2 in.
6 in.
SOLUTION 1 3 bh Ad 2 12 1 (6)(2)3 (6)(2)(3) 2 112 in 4 12 1 3 1 (2)(4)3 10.6667 in 4 I2 bh 12 12 I1
I 3 I1 112 in 4 I I1 I 2 I 3 234.67 in 4 Q A1 y1 (6)(2)(3) 36 in 3 qs Fnail
(1)
VQ I
(2)
q
Dividing Eq. (2) by Eq. (1),
1 VQ s Fnail I V
Fnail I (150)(234.67) (36)(3) Qs
V 326 lb
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PROBLEM 6.4
s s s
A square box beam is made of two 20 80-mm planks and two 20 120-mm planks nailed together as shown. Knowing that the spacing between the nails is s 30 mm and that the vertical shear in the beam is V 1200 N, determine (a) the shearing force in each nail, (b) the maximum shearing stress in the beam.
20 mm 80 mm 20 mm
120 mm
SOLUTION 1 1 b2 h23 b1h13 12 12 1 1 (120)(120)3 (80)(80)3 13.8667 106 mm 4 12 12 6 4 13.8667 10 m
I
(a)
A1 (120)(20) 2400 mm 2 y1 50 mm Q1 A1 y1 120 103 mm3 120 106 m3 VQ (1200)(120 106 ) 10.3846 103 N/m 6 I 13.8667 10 qs 2 Fnail q
Fnail
(b)
qs (10.3846 103 )(30 103 ) 2 2
Fnail 155.8 N
Q Q1 (2)(20)(40)(20) 120 103 32 103 152 103 mm3 152 106 m3
max
VQ (1200)(152 106 ) It (13.8667 106 )(2 20 103 )
max 329 kPa
329 103 Pa
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16 ⫻ 200 mm
PROBLEM 6.5 The American Standard rolled-steel beam shown has been reinforced by attaching to it two 16 200-mm plates, using 18-mm-diameter bolts spaced longitudinally every 120 mm. Knowing that the average allowable shearing stress in the bolts is 90 MPa, determine the largest permissible vertical shearing force.
S310 ⫻ 52
SOLUTION Calculate moment of inertia: A (mm 2 ) 3200 6650 3200
Part Top plate S310 52 Bot. plate *d
d (mm) *
160.5 0
*
160.5
Ad 2 (106 mm 4 ) 82.43 82.43 164.86
I (106 mm 4 ) 0.07 95.3 0.07 95.44
305 16 160.5 mm 2 2
I Ad 2 I 260.3 106 mm 4 260.3 106 m 4 Q Aplate d plate (3200)(160.5) 513.6 103 mm3 513.6 106 m3 Abolt
4
2 d bolt
4
(18 103 )2 254.47 106 m 2
Fbolt all Abolt (90 106 )(254.47 106 ) 22.90 103 N qs 2 Fbolt q
VQ I
q V
2Fbolt (2)(22.90 103 ) 381.7 103 N/m 3 s 120 10
Iq (260.3 106 )(381.7 103 ) 193.5 103 N Q 513.6 106
V 193.5 kN
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y
16 in. ⫻
1 2
in.
C12 ⫻ 20.7 z
C
PROBLEM 6.6 The beam shown is fabricated by connecting two channel shapes and two plates, using bolts of 34 -in. diameter spaced longitudinally every 7.5 in. Determine the average shearing stress in the bolts caused by a shearing force of 25 kips parallel to the y axis.
SOLUTION C12 20.7: d 12.00 in., I x 129 in 4 For top plate,
y
12.00 1 1 6.25 in. 2 2 2 3
1 1 1 I t (16) (16) (6.25) 2 312.667 in 4 12 2 2
For bottom plate,
I b 312.667 in 4
Moment of inertia of fabricated beam: I (2)(129) 312.667 312.667 883.33 in 4 1 Q Aplate yplate (16) (6.25) 50 in 3 2 VQ (25)(50) q 1.41510 kips/in. I 883.33 1 1 Fbolt qs (1.41510)(7.5) 5.3066 kips 2 2
bolt
(d bolt ) 2
3
2
0.44179 in 2 4 4 4 F 5.3066 bolt 12.01 ksi Abolt 0.44179
Abolt
bolt 12.01 ksi
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PROBLEM 6.7
y
A columm is fabricated by connecting the rolled-steel members shown by bolts of 34 -in. diameter spaced longitudinally every 5 in. Determine the average shearing stress in the bolts caused by a shearing force of 30 kips parallel to the y axis.
C8 ⫻ 13.7
z
C
S10 ⫻ 25.4
SOLUTION Geometry: d f (tw )C 2 s 10.0 0.303 5.303 in. 2 x 0.534 in.
y1 f x 5.303 0.534 4.769 in. Determine moment of inertia. d (in.) 4.769 0 4.769
A(in 2 ) Part C8 13.7 4.04 S10 25.4 7.45 C8 13.7 4.04
Ad 2 (in 4 ) 91.88 0 91.88 183.76
I (in 4 ) 1.52 123 1.52 126.04
I Ad 2 I 183.76 126.04 309.8 in 4 Q A y1 (4.04)(4.769) 19.2668 in 3 VQ (30)(19.2668) 1.86573 kip/in. I 309.8 1 1 qs (1.86573)(5) 4.6643 kips 2 2
q Fbolt
Abolt
bolt
4
2 d bolt
3
2
2 0.44179 in 4 4
4.6643 Fbolt 10.56 ksi Abolt 0.44179
bolt 10.56 ksi
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PROBLEM 6.8 The composite beam shown is fabricated by connecting two W6 20 rolled-steel members, using bolts of 85 -in. diameter spaced longitudinally every 6 in. Knowing that the average allowable shearing stress in the bolts is 10.5 ksi, determine the largest allowable vertical shear in the beam.
SOLUTION W6 20: A 5.87 in 2 , d 6.20 in., I x 41.4 in 4 y
Composite:
1 d 3.1 in. 2
I 2[41.4 (5.87)(3.1) 2 ] 195.621 in 4 Q A y (5.87)(3.1) 18.197 in 3
Bolts:
d
Shear:
5
2
2 0.30680 in 4 8 all Abolt (10.5)(0.30680) 3.2214 kips
Abolt Fbolt
5 in., all 10.5 ksi, s 6 in. 8
q
2Fbolt (2)(3.2214) 1.07380 kips/in. 6 s
q
VQ I
V
Iq (195.621)(1.0780) Q 18.197
V 11.54 kips
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15 15
30
PROBLEM 6.9
15 15 20
a
0.5 m
For the beam and loading shown, consider section n-n and determine (a) the largest shearing stress in that section, (b) the shearing stress at point a.
72 kN
20 n 40
120
n
20 20
0.8 m
1.5 m
90 Dimensions in mm
SOLUTION M B 0: 2.3 A (1.5)(72) 0
A 46.957 kN V A 46.957 kN
At section n-n,
Calculate moment of inertia: 1 1 1 I 2 (15)(40)3 2 (15)(80)3 (30)(1203 ) 12 12 12 5.76 106 mm 4 5.76 106 m 4
ta 30 mm 0.030 m
At a,
Qa (30 20)(50) 30 103 mm3 30 106 m3
a
VQa (46.957 103 )(30 106 ) Ita (5.76 106 )(0.030)
8.15 106 Pa = 8.15 MPa tb 60 mm 0.060 m
At b,
Qb Qa (60 20)(30) 30 103 36 103 66 103 mm3 66 106 m 4
b
VQb (46.957 103 )(66 106 ) 8.97 106 Pa 8.97 MPa Itb (5.76 106 )(0.060)
t NA 90 mm 0.090 m
At NA,
QNA Qb (90 20)(10) 66 103 18 103 84 103 mm3 84 106 m3
NA (a)
VQNA (46.957 103 )(84 106 ) 7.61 106 Pa 7.61 MPa It NA (5.76 106 )(0.090)
max occurs at b.
max 8.97 MPa a 8.15 MPa
(b)
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PROBLEM 6.10
0.3 m n 10 kN
40 mm
a 100 mm
12 mm 150 mm 12 mm
n 200 mm
1.5 m
For the beam and loading shown, consider section n-n and determine (a) the largest shearing stress in that section, (b) the shearing stress at point a.
SOLUTION At section n-n, V 10 kN.
I I1 4I 2
1 1 b1h13 4 b2h23 A2d 22 12 12
1 1 (100)(150)3 4 (50)(12)3 (50)(12)(69)2 12 12
28.125 106 4 0.0072 106 2.8566 106 39.58 106 mm 4 39.58 106 m 4
(a)
Q A1 y1 2 A2 y2 (100)(75)(37.5) (2)(50)(12)(69) 364.05 103 mm3 364.05 106 m3
t 100 mm = 0.100 m
max
(b)
VQ (10 103 )(364.05 106 ) 920 103 Pa It (39.58 106 )(0.100)
max 920 kPa
Q A1 y1 2 A2 y2 (100)(40)(55) (2)(50)(12)(69) 302.8 103 mm3 302.8 106 m3 t 100 mm 0.100 m
a
VQ (10 103 )(302.8 106 ) 765 103 Pa It (39.58 106 )(0.100)
a 765 kPa
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PROBLEM 6.11
t 3 in.
18 in.
a
t
t
n 25 kips n
3 in. 3 in.
For the beam and loading shown, consider section n-n and determine (a) the largest shearing stress in that section, (b) the shearing stress at point a.
t = 0.25 in.
25 in. 8 in.
SOLUTION
I
1 1 2 (8 in.)(9 in.)3 (7.25 in.)(8.5 in.)3 (0.25 in.)(3 in.)3 12 12 12
I 113.8 in 4
V = 25 kips M (25 kips)(18 in.) = 450 kip in.
(a)
m:
At neutral axis,
thickness 0.25 in.
Q 2(3 in. 0.25 in.)(3 in.) (7.5 in.)(0.25 in.)(4.375 in.) (4.25 in.)(0.25 in.)(2.125 in.)
Q 4.5 in 3 8.203 in 3 2.258 in 3 14.96 in 3 t 0.25 in. V (25 kips)(14.96 in 3 ) m Q It (113.8 in 4 )(0.25 in.)
m 13.15 ksi ◄
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PROBLEM 6.11 (Continued)
(b)
a: At point a,
t = 0.25 in.
See sketch above.
Qa 4.5 in 3 8.203 in 3 12.70 in 3
a
VQa (25 kips)(12.70 in 3 ) It (113.8 in 4 )(0.25 in.)
a 11.16 ksi ◄
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1 2
10 kips 10 kips 8 in.
PROBLEM 6.12
in.
a n
1 2
4 in.
in.
n 16 in.
12 in.
For the beam and loading shown, consider section n-n and determine (a) the largest shearing stress in that section, (b) the shearing stress at point a.
4 in.
16 in.
SOLUTION By symmetry, RA RB . Fy 0: RA RB 10 10 0 RA RB 10 kips
From the shear diagram,
V 10 kips at n-n. 1 1 b2h23 b1h13 12 12 1 1 (4)(4)3 (3)(3)3 14.5833 in 4 12 12
I
(a)
1 1 Q A1 y1 A2 y2 (3) (1.75) (2) (2)(1) 4.625 in 3 2 2 t
max
(b)
1 1 1 in. 2 2 (10)(4.625) VQ (14.5833)(1) It
max 3.17 ksi
1 Q Ay (4) (1.75) 3.5 in 3 2 1 1 t 1 in. 2 2
(10)(3.5) VQ (14.5833)(1) It
a 2.40 ksi
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10
40
Dimensions in mm
30
10
PROBLEM 6.13 For a beam having the cross section shown, determine the largest allowable vertical shear if the shearing stress is not to exceed 60 MPa.
40
40
SOLUTION Calculate moment of inertia.
1 1 I 2 (10 mm)(120 mm)3 (30 mm)(40 mm)3 12 12 2[1.440 106 mm 4 ] 0.160 106 mm 4 3.04 106 mm 4 I 3.04 106 m 4 Assume that m occurs at point a. t 10 mm 0.01 m Q (10 mm 40 mm)(40 mm) 16 103 mm3 Q 16 106 m3 For
all 60 MPa, 60 106 Pa
m all V (16 106 m3 ) (3.04 106 m 4 )(0.01m)
VQ It
V 114.0 kN
Check at neutral axis: t 50 mm 0.05 m Q 2[(10 60)(30)] (30 20)(10) 42 103 m3 42 106 m3
NA
VQ (114.0 kN)(42 106 m3 ) 31.5 MPa 60 MPa It (3.04 106 m 4 )(0.05 m)
OK
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10
30
PROBLEM 6.14
10
For a beam having the cross section shown, determine the largest allowable vertical shear if the shearing stress is not to exceed 60 MPa.
10 30 40
Dimensions in mm
30 10
SOLUTION
Calculate moment of inertia. I
1 1 (50 mm)(120 mm)3 2 (30 mm)4 (30 mm 30 mm)(35 mm)2 12 12
I 7.2 106 mm 4 2[1.170 106 mm 4 ] 4.86 106 mm 4 4.86 106 m 4
Assume that m occurs at point a.
t 2(10 mm) 0.02 m Q (10 mm 50 mm)(55 mm) 2[(10 mm 30 mm)(35 mm)] 48.5 103 mm3 48.5 106 m3
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PROBLEM 6.14 (Continued)
For all 60 MPa,
m all 60 106 Pa
Check at neutral axis:
VQ It
V (48.5 106 m3 ) (4.86 106 m 4 )(0.02 m)
V 120.3 kN
t 50 mm 0.05 m Q (50 60)(30) (30 30)(35) 58.5 103 mm3
VQ (120.3 kN)(58.5 106 m3 ) 29.0 MPa 60 MPa It (4.86 106 m 4 )(0.05 m)
OK
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PROBLEM 6.15
1.5 in.
For a timber beam having the cross section shown, determine the largest allowable vertical shear if the shearing stress is not to exceed 150 psi.
2 in.
4 in. w = 2.5 in. 2 in.
1.5 in.
SOLUTION I
1 (1.5 83 2(0.5)(4)3 ) 12
I 69.333 in 4
all 150 psi
Q (1.5 in.)(2 in.)(3 in.) 9 in 3;
At point a:
m
VQ ; It
150 psi
t 1.5 in.
V (9 in 3 ) ; (69.333 in 4 )(1.5 in.)
V 1733 lb
At neutral axis:
Q (1.5 in.)(2 in.)(3 in.) (2.5 in.)(2 in.)(1 in.) 14 in 3, t 2.6 in.
m
VQ ; It
150 psi
V (14 in 3 ) ; (69.333 in 4 )(2.5 in.)
V 1857 lb V 1733 lb ◄
We choose smaller shear.
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PROBLEM 6.16
220 mm 12 mm
W250 3 58
Two steel plates of 12 220-mm rectangular cross section are welded to the W250 58 beam as shown. Determine the largest allowable vertical shear if the shearing stress in the beam is not to exceed 90 MPa.
252 mm
12 mm
SOLUTION Calculate moment of inertia. Part Top plate
A(mm 2 ) 2640
W250 × 58
7420
0
Bot. plate
2640
*132
Ad 2 (106 mm 4 ) 45.999
d (mm) *132
0
*d
I (106 mm 4 ) 0.032
87.3
45.999
0.032
91.999
87.364
Ay (103 mm3 )
252 12 2 2
I Ad 2 I 179.363 106 mm 4 179.363 106 m 4
max occurs at neutral axis. t 8.0 mm 8.0 103 m
Part Top plate
A(mm 2 )
y (mm)
2640
132
348.48
Top flange
2740.5
119.25
326.805
56.25
50.625
Half web
900
725.91
Dimensions in mm: 12 220 ; 13.5 203 ;
8.0 112.5
Q A y 725.91 103 mm3 725.91 106 m3
VQ It
V
It (179.363 106 )(8.0 103 )(90 106 ) Q 725.91 106 177.9 103 N
V 177.9 kN
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PROBLEM 6.17
A
B
A
(a)
B
Two W8 31 rolled-steel sections may be welded at A and B in either of the two ways shown in order to form a composite beam. Knowing that for each weld the allowable shearing force is 3000 lb per inch of weld, determine for each arrangement the maximum allowable vertical shear in the composite beam.
(b)
SOLUTION
A 9.12 in 2 I x 110 in 4
W8 31
I y 37.1 in 4 I 2[ I x Ad 2 ]
(a)
2[110 in 4 (9.12 in 2 )(4 in.)2 ]
I 511.84 in 4 Q Ay (9.12 in 2 )(4 in.) 36.4 in 3
For two welds each with allowable shearing force of 3 kips/in., q 2(3 kips/in.) 6 kips/in.
q
VQ ; I
6 kips/in.
V (36.4 in 3 ) (511.84 in 4 )
V 84.2 kips
(b) I 2[ I y Ad 2 ] 2[37.1 in 4 (9.12 in 2 )(4 in.) 2 ]
I 366.04 in 4 Q Ay (9.12 in 2 )(4 in.) 36.4 in 3 q 6 kips/in. (same as in part a)
q
V (36.4 in 3 ) VQ ; 6 kips/in. I (366.04 in 4 )
V 60.2 kips
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2.4 kN
4.8 kN
PROBLEM 6.18
7.2 kN b
B
C
D
A
150 mm
E
1m
1m
1m
For the beam and loading shown, determine the minimum required width b, knowing that for the and grade of timber used, all 12 MPa all 825 kPa.
0.5 m
SOLUTION M D 0: 3 A (2)(2.4) (1)(4.8) (0.5)(7.2) 0 A 2 kN
Draw the shear and bending moment diagrams. |V |max 7.2 kN 7.2 103 N |M |max 3.6 kN m 3.6 103 N m
Bending:
S min
M S |M |max
3.6 103 12 106 300 106 m3 300 103 mm3 1 S bh 2 6 6 S (6)(300 103 ) b 2 80 mm h (150)2
For a rectangular section,
Shear: Maximum shearing stress occurs at the neutral axis of bending for a rectangular section. 1 1 1 bh, y h, Q Ay bh 2 2 4 8 1 3 I bh t b 12 V ( 18 bh 2 ) 3V VQ 3 1 It ( 12 bh )(b) 2 bh
A
b
3V (3)(7.2 103 ) 87.3 103 m 2h (2)(150 103 )(825 103 )
b 87.3 mm
The required value of b is the larger one.
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PROBLEM 6.19 P L/2 A
b
L/2
C
B
h
A timber beam AB of length L and rectangular cross section carries a single concentrated load P at its midpoint C. (a) Show that the ratio m / m of the maximum values of the shearing and normal stresses in the beam is equal to 2h/L, where h and L are, respectively, the depth and the length of the beam. (b) Determine the depth h and the width b of the beam, knowing that L 2 m, P 40 kN, m 960 kPa, and m 12 MPa.
SOLUTION RA RB P/2
Reactions: P 2
(1)
Vmax RA
(2)
A bh for rectangular section.
(3)
m
(4)
M max
(5)
S
(6)
m
3 Vmax 3P for rectangular section. 2 A 4bh PL 4
1 2 bh for rectangular section. 6 M max 3PL S 2bh 2
m h m 2L
(a)
(b)
Solving for h,
h
2 L m
(2)(2)(960 103 ) 320 103 m 6 12 10
h 320 mm
3P (3)(40 103 ) 97.7 103 m 4h m (4)(320 103 )(960 103 )
b 97.7 mm
m
Solving Eq. (3) for b, b
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PROBLEM 6.20 w
b
A
B C L/4
D L/2
L/4
h
A timber beam AB of length L and rectangular cross section carries a uniformly distributed load w and is supported as shown. (a) Show that the ratio m / m of the maximum values of the shearing and normal stresses in the beam is equal to 2h/L, where h and L are, respectively, the depth and the length of the beam. (b) Determine the depth h and the width b of the beam, knowing that L 5 m, w 8 kN/m, m 1.08 MPa, and m 12 MPa.
SOLUTION RA RB From shear diagram, For rectangular section,
|V |m
wL 4
(1)
A bh
m From bending moment diagram,
wL 2
(2)
3 Vm 3wL 2 A 8bh
|M |m
(3)
wL2 32
(4)
1 2 bh 6
(5)
|M |m 3wL2 S 16 bh 2
(6)
For a rectangular cross section, S
m (a)
Dividing Eq. (3) by Eq. (6),
(b)
Solving for h, h
L m (5)(1.08 106 ) 225 103 m 6 2 m (2)(12 10 )
m 2h L m
h 225 mm
Solving Eq. (3) for b, b
3wL (3)(8 103 )(5) 8h m (8)(225 103 )(1.08 106 )
61.7 103 m
b 61.7 mm
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25 kips
PROBLEM 6.21
25 kips
n
3 4
7.25 in.
in. b a
B
A n 20 in.
10 in.
3 4
20 in.
1.5 in. 1.5 in. 3 4
in.
For the beam and loading shown, consider section n-n and determine the shearing stress at (a) point a, (b) point b.
in.
8 in.
SOLUTION RA RB 25 kips V 25 kips
At section n-n,
Locate centroid and calculate moment of inertia. Part
A(in 2 )
y (in.)
A y (in 3 )
d(in.)
Ad 2 (in 4 )
I (in 4 )
4.875
6.875
33.52
2.244
24.55
0.23
10.875
3.625
39.42
1.006
11.01
47.68
15.75
35.56
47.91
72.94
Ay 72.94 4.631 in. A 15.75 I Ad 2 I 35.56 47.91 83.47 in 4
Y
(a)
3 Qa Ay (1.5)(4.631 0.75) 4.366 in 3 4 3 t 0.75 in. 4
a (b)
VQ (25)(4.366) It (83.47)(0.75)
a 1.744 ksi
3 Qb Ay (3)(4.631 1.5) 7.045 in 3 4 t 0.75 in.
b
VQ (25)(7.045) It (83.47)(0.75)
b 2.81 ksi
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PROBLEM 6.22
160 mm
180 kN
a
n A
20 mm
100 mm
B
b
n 500 mm
30 mm
For the beam and loading shown, consider section n-n and determine the shearing stress at (a) point a, (b) point b.
500 mm 30 mm
30 mm 20 mm
SOLUTION |V |max 90 kN
Draw the shear diagram. Part
A(mm 2 )
y (mm)
A y (103 mm3 )
3200
90
288
1600
40
1600
40
6400
Ad 2 (106 mm 4 )
I (106 mm 4 )
25
2.000
0.1067
64
25
1.000
0.8533
64
25
1.000
0.8533
4.000
1.8133
d(mm)
416 Ay 416 103 65 mm A 6400
Y
I Ad 2 I (4.000 1.8133) 106 mm 4 5.8133 106 mm 4 5.8133 106 m 4 (a)
A (80)(20) 1600 mm 2 y 25 mm Qa Ay 40 103 mm3 40 106 m3
a
VQa (90 103 )(40 106 ) 31.0 106 Pa It (5.8133 106 )(20 103 )
a 31.0 MPa (b)
A (30)(20) 600 mm 2
y 65 15 50 mm
Qb Ay 30 103 mm3 30 106 m3
b
VQb (90 103 )(30 106 ) 23.2 106 Pa It (5.8133 106 )(20 103 )
b 23.2 MPa
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25 kips
PROBLEM 6.23
25 kips
n
7.25 in.
3 4
in. b a
B
A n 20 in.
10 in.
3 4
20 in.
1.5 in. 1.5 in. 3 4
in.
For the beam and loading shown, determine the largest shearing stress in section n-n.
in.
8 in.
SOLUTION RA RB 25 kips V 25 kips
At section n-n,
Locate centroid and calculate moment of inertia.
Part
A(in 2 )
y (in.)
Ay (in 3 )
d(in.)
Ad 2 (in 4 )
4.875
6.875
33.52
2.244
24.55
0.23
10.875
3.625
39.42
1.006
11.01
47.68
15.75
35.56
47.91
72.94
I (in 4 )
A y 72.94 4.631 in. A 15.75 I Ad 2 I 35.56 47.91 83.47 in 4
Y
Largest shearing stress occurs on section through centroid of entire cross section.
3 4.631 8.042 in 3 Q Ay (4.631) 4 2 3 t 0.75 in. 4 VQ (25)(8.042) It (83.47)(0.75)
m 3.21 ksi
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PROBLEM 6.24
160 mm
180 kN
a
n A
For the beam and loading shown, determine the largest shearing stress in section n-n.
100 mm
B
b
n 500 mm
20 mm
30 mm
500 mm 30 mm
30 mm 20 mm
SOLUTION |V |max 90 kN
Draw the shear diagram. Part
A (mm 2 )
x
3200
90
288
25
2.000
0.1067
1600
40
64
25
1.000
0.8533
1600
40
64
25
1.000
0.8533
6400
4.000
1.8133
Ay (103 mm3 ) d(mm) Ad 2 (106 mm 4 ) I (106 mm 4 )
416 Y
Ay 416 103 65 mm A 6400
I Ad 2 I (4.000 1.8133) 106 mm 4 5.8133 106 mm 4 5.8133 106 m 4 Part
A(mm 2 )
3200
300
7.5
2.25
300
7.5
2.25
y (mm) 25
Ay (103 mm3 )
80
84.5 Q Ay 84.5 103 mm3 84.5 106 m3 t (2)(20) 40 mm 40 103 m
max
VQ (90 103 )(84.5 106 ) It (5.8133 106 )(40 103 )
32.7 106 Pa
m 32.7 MPa
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PROBLEM 6.25
c
A beam having the cross section shown is subjected to a vertical shear V. Determine (a) the horizontal line along which the shearing stress is maximum, (b) the constant k in the following expression for the maximum shearing stress
max k
V A
where A is the cross-sectional area of the beam.
SOLUTION I
For semicircle,
As
4
2
c4
c2
Q As y (a)
max occurs at center where
(b)
max
and
A c2
y
2
c2
4c 3 4c 2 c3 3 3 t 2c
V 2 c3 VQ 4V 4V 43 2 It 3A c 2c 3 c 4
k
4 1.333 3
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PROBLEM 6.26 tm
rm
A beam having the cross section shown is subjected to a vertical shear V. Determine (a) the horizontal line along which the shearing stress is maximum, (b) the constant k in the following expression for the maximum shearing stress
max k
V A
where A is the cross-sectional area of the beam.
SOLUTION A 2 rmtm
For a thin-walled circular section,
J Arm2 2 rm3tm ,
For a semicircular arc,
y
I
1 J rm3tm 2
2rm
As rmtm Q As y rmtm
(a)
t 2tm
(b)
max
2rm
2rm2tm
at neutral axis where maximum occurs. VQ V (2rm2tm ) V 2V 3 It A ( rmtm )(2tm ) rmtm
k 2.00
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PROBLEM 6.27 h
A beam having the cross section shown is subjected to a vertical shear V. Determine (a) the horizontal line along which the shearing stress is maximum, (b) the constant k in the following expression for the maximum shearing stress
h
max k
b
V A
where A is the cross-sectional area of the beam.
SOLUTION 1 A 2 bh bh 2
1 1 I 2 bh3 bh3 12 6
For a cut at location y, where y h, A( y)
1 by by 2 y 2 h 2h
y ( y) h
2 y 3
Q( y) Ay t ( y)
( y)
(a)
by 2 by 3 2 3h
by h
2 VQ 6 h by 2 by 3 V y y V 3 3 2 It 3h bh h bh by 2 h
To find location of maximum of , set
d 0. dy
d V y 2 [3 4 m ] 0 dy h bh (b)
( ym )
2 V 3 V 3 9 V 1.125 3 2 bh 4 A 4 8 bh
ym 3 1 , i.e., h from neutral axis. h 4 4 k 1.125
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PROBLEM 6.28 A beam having the cross section shown is subjected to a vertical shear V. Determine (a) the horizontal line along which the shearing stress is maximum, (b) the constant k in the following expression for the maximum shearing stress
b
h
max k
V A
where A is the cross-sectional area of the beam.
SOLUTION A
1 bh 2
I
1 3 bh 36
For a cut at location y, A( y)
1 by by 2 y 2 h 2h
y ( y)
2 2 h y 3 3
Q( y) Ay t ( y)
by 2 (h y ) 3
by h
2
by VQ V 3 (h y) 12Vy(h y) 12V (hy y 2 ) ( y) 3 3 1 bh3 ) by It bh bh ( 36 h
(a)
To find location of maximum of , set
d 0. dy
d 12V ( h 2 ym ) 0 dy bh3 (b)
m
2 12V 12V 1 2 1 3V 3V 2 (hym ym ) h h 3 3 2A bh bh 2 2 bh
ym
1 h, i.e., at mid-height 2 k
3 1.500 2
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PROBLEM 6.29
2 in.
The built-up timber beam shown is subjected to a vertical shear of 1200 lb. Knowing that the allowable shearing force in the nails is 75 lb, determine the largest permissible spacing s of the nails.
10 in.
2 in. s
s
s
2 in.
SOLUTION 1 b1h13 A1d12 12 1 (2)(2)3 (2)(2)(4)2 65.333 in 4 12 1 1 (2)(10)3 166.67 in 4 I2 b2h23 12 12 I1
I 4 I1 I 2 428 in 4 Q Q1 A1 y1 (2)(2)(4) 16 in 3
q
(1200)(16) VQ 44.86 lb/in. I 428
Fnail qs s
75 Fnail 1.672 in. q 44.86
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PROBLEM 6.30
50 mm
The built-up beam shown is made by gluing together two 20 250-mm plywood strips and two 50 100-mm planks. Knowing that the allowable average shearing stress in the glued joints is 350 kPa, determine the largest permissible vertical shear in the beam.
150 mm
50 mm 20 mm
20 mm
100 mm
SOLUTION I
1 1 (140)(250)3 (100)(150)3 154.167 106 mm 4 12 12 154.167 106 m 4
Q Ay (100)(50)(100) 500 103 mm3 500 106 m3 t 50 mm 50 mm 100 mm 100 103 m
VQ It
V
It (154.167 106 )(100 103 )(350 103 ) Q 500 106
10.79 103 N
V 10.79 kN
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1.5
0.8
0.8 4
PROBLEM 6.31
1.5 0.8
A
B 3.2
The built-up beam was made by gluing together several wooden planks. Knowing that the beam is subjected to a 1200-lb vertical shear, determine the average shearing stress in the glued joint (a) at A, (b) at B.
0.8 Dimensions in inches
SOLUTION 1 1 I 2 (0.8)(4.8)3 (7)(0.8)3 (7)(0.8)(2.0) 2 12 12 60.143 in 4
(a)
Aa (1.5)(0.8) 1.2 in 2 Qa Aa ya 2.4 in
ya 2.0 in.
3
ta 0.8 in.
a (b)
VQa (1200)(2.4) Ita (60.143)(0.8)
Ab (4)(0.8) 3.2 in 2
a 59.9 psi yb 2.0 in.
Qb Ab yb (3.2)(2.0) 6.4 in 3
tb (2)(0.8) 1.6 in.
b
VQb (1200)(6.4) Itb (60.143)(1.6)
b 79.8 psi
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PROBLEM 6.32
20 mm 60 mm 20 mm A 20 mm 30 mm
B
Several wooden planks are glued together to form the box beam shown. Knowing that the beam is subjected to a vertical shear of 3 kN, determine the average shearing stress in the glued joint (a) at A, (b) at B.
20 mm 30 mm 20 mm
SOLUTION IA
1 3 1 (60)(20)3 (60)(20)(50)2 bh Ad 2 12 12
3.04 106 mm 4 1 3 1 (60)(20)3 0.04 106 mm 4 bh 12 12 1 3 1 (20)(120)3 2.88 106 mm 4 IC bh 12 12 IB
I 2 I A I B 2 I C 11.88 106 mm 4 11.88 106 m 4 QA Ay (60)(20)(50) 60 103 mm3 60 106 m3 t 20 mm 20 mm 40 mm 40 103 m (a)
A
VQA (3 103 )(60 106 ) 379 103 Pa It (11.88 10 6 )(40 103 )
A 379 kPa
QB 0 (b)
B
VQB 0 It
B 0
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PROBLEM 6.33
50
300
50
B A 100
A 50 C
400
x
The built-up wooden beam shown is subjected to a vertical shear of 8 kN. Knowing that the nails are spaced longitudinally every 60 mm at A and every 25 mm at B, determine the shearing force in the nails (a) at A, (b) at B. (Given: I x 1.504 109 mm 4.)
50 A
A
200
B Dimensions in mm
SOLUTION I x 1.504 109 mm 4 1504 106 m 4 s A 60 mm 0.060 m sB 25 mm 0.025 m (a)
QA Q1 A1 y1 (50)(100)(150) 750 103 mm3 750 106 m3 FA q As A
VQ1s A (8 103 )(750 106 )(0.060) I 1504 106
FA 239 N (b)
Q2 A2 y2 (300)(50)(175) 2625 103 mm3 QB 2Q1 Q2 4125 103 mm3 4125 106 m3 FB qB sB
VQB sB (8 103 )(4125 106 )(0.025) I 1504 106
FB 549 N
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105 mm
PROBLEM 6.34
A
Knowing that a W360 122 rolled-steel beam is subjected to a 250-kN vertical shear, determine the shearing stress (a) at point A, (b) at the centroid C of the section.
C
SOLUTION For W360 122, d 363 mm, bF 257 mm, t F 21.70 mm, tw 13.0 mm I 367 106 mm 4 367 106 m 4
(a)
Aa (105)(21.70) 2278.5 mm 2
ya
d tF 363 21.70 170.65 mm 2 2 2 2
Qa Aa ya 388.8 103 mm3 388.8 106 m3 ta t F 21.70 mm 21.7 103 m
a (b)
VQa (250 103 )(388.8 106 ) 12.21 106 Pa Ita (367 106 )(21.7 103 )
a 12.21 MPa
A1 bF t F (257)(21.70) 5577 mm 2
y1
d tF 363 21.70 170.65 mm 2 2 2 2
d A2 tw t F (13.0)(159.8) 2077 mm 2 2 y2
1d t F 79.9 mm 2 2
Qc Ay (5577)(170.65) (2077)(79.9) 1117.7 103 mm3 1117.7 106 m3 tc t w 13.0 mm 13 103 m
c
VQc (250 103 )(1117.7 106 ) 58.6 106 Pa 6 3 Itc (367 10 )(13 10 )
c 58.6 MPa
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PROBLEM 6.35
b 12
12
6 a
80 6
40
An extruded aluminum beam has the cross section shown. Knowing that the vertical shear in the beam is 150 kN, determine the shearing stress at (a) point a, (b) point b.
150 Dimensions in mm
SOLUTION I
1 1 (150)(80)3 (126)(68)3 12 12
3.098 106 mm 4 3.0985 106 m 4
(a)
Qa A1 y1 2 A2 y2 (126)(6)(37) (2)(12)(40)(20) 47.172 103 mm3 47.172 106 m3
ta (2)(12) 24 mm 0.024 m
a
VQa (150 103 )(47.172 106 ) 95.2 106 Pa 6 Ita (3.0985 10 )(0.024)
a 95.2 MPa (b)
Qb A1 y1 (126)(6)(37) 27.972 103 mm3 27.972 106 m3 tb (2)(6) 12 mm 0.012 m
b
VQb (150 103 )(27.972 106 ) 112.8 106 Pa Itb (3.0985 106 )(0.012)
b 112.8 MPa
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6
PROBLEM 6.36
b
12
12
80
a 6
An extruded aluminum beam has the cross section shown. Knowing that the vertical shear in the beam is 150 kN, determine the shearing stress at (a) point a, (b) point b.
40
80 Dimensions in mm
SOLUTION I
1 1 (80)(80)3 (56)(68)3 1.9460 106 mm 4 12 12
1.946 106 m 4
(a)
Qa A1 y1 2 A2 y2 (56)(6)(37) (2)(12)(40)(20) 31.632 103 mm3 31.632 106 m3 ta (2)(12) 24 mm 0.024 m
a
VQa (150 103 )(31.632 106 ) 101.6 106 Pa 6 Ita (1.946 10 )(0.024)
a 101.6 MPa (b)
Qb A1 y1 (56)(6)(37) 12.432 103 mm3 12.432 106 m3 tb (2)(6) 12 mm 0.012 m
b
VQb (150 103 )(12.432 106 ) 79.9 106 Pa Itb (1.946 106 )(0.012)
b 79.9 MPa
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PROBLEM 6.37
120 50
50
Knowing that a given vertical shear V causes a maximum shearing stress of 75 MPa in an extruded beam having the cross section shown, determine the shearing stress at the three points indicated.
10
c b
40 30
a
160 30 40 10
20
20
Dimensions in mm
SOLUTION
VQ It
τ is proportional to Q/t.
Qc (30)(10)(75)
Point c:
22.5 103 mm3 tc 10 mm Qc /tc 2250 mm 2 Qb Qc (20)(50)(55)
Point b:
77.5 103 mm3 tb 20 mm Qb /tb 3875 mm 2
Qa 2Qb (120)(30)(15)
Point a:
209 103 mm3 ta 120 mm Qa /ta 1741.67 mm 2
m b 75 MPa
(Q/t )m occurs at b.
a Qa /ta
a 1741.67 mm
2
b Qb /tb
c Qc /tc
75 MPa a 2 3875 mm 2250 mm 2
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0.5 in.
d
5 in.
PROBLEM 6.38
d
The vertical shear is 1200 lb in a beam having the cross section shown. Knowing that d 4 in., determine the shearing stress at (a) point a, (b) point b.
b 8 in.
a 4 in.
0.5 in.
SOLUTION
1 (4)(0.5)3 (4)(0.5)(3.75) 2 28.167 in 4 12 1 I 2 (5)(4)3 106.67 in 4 3 I1
I 4 I1 2I 2 326 in 4
(a)
Qa 2 A1 y1 A2 y2 (2)(4)(0.5)(3.75) (5)(4)(2) 55 in 3
ta 5 in.
a (b)
VQa (1200)(55) 40.5 psi Ita (326)(5)
Qb A1 y1 (4)(0.5)(3.75) 7.5 in 4
tb 0.5 in.
b
VQb (1200)(7.5) 55.2 psi Itb (326)(0.5)
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d
0.5 in.
5 in.
PROBLEM 6.39
d
The vertical shear is 1200 lb in a beam having the cross section shown. Determine (a) the distance d for which a b, (b) the corresponding shearing stress at points a and b.
b a
8 in.
4 in.
0.5 in.
SOLUTION A1 0.5d in 2 ,
y1 3.75 in., tb 0.5 in.
A2 (5)(4) 20 in 2 ,
y2 2 in., ta 5 in.
Qb A1 y1 1.875d in 3
b
VQb V 1.875d Vd 3.75 Itb I 0.5 I
Qa A2 y2 2Qb (20)(2) (2)(1.875d ) 40 3.75d ta 5 in.
(a)
a
VQa V (40 3.75d ) V Vd Vd 8 0.75 b 3.75 Ita I (5) I I I
8 0.75d 3.75d
d
8 2.6667 in. 3 d 2.67 in .
(b)
1 (2.6667)(0.5)3 (2.6667)(0.5)(3.75) 2 18.780 in 4 12 1 I 2 (0.5)(4)3 106.667 in 4 3 I1
I 4 I1 2 I 2 288.46 in 4
a b 3.75
Vd (3.75)(1200)(2.6667) 288.46 I
a 41.6 psi
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c
PROBLEM 6.40
b
d
1.25 in.
a
e 1.25 in.
1.25 in.
The extruded aluminum beam has a uniform wall thickness of 18 in. Knowing that the vertical shear in the beam is 2 kips, determine the corresponding shearing stress at each of the five points indicated.
1.25 in.
SOLUTION I
1 1 (2.50)(2.50)3 (2.125)(2.25)3 1.23812 in 4 12 12
t 0.125 in.at all sections. V 2 kips
Qa 0
a
VQa It
a 0
1.25 3 Qb (0.125)(1.25) 0.097656 in 2
b
VQb (2)(0.097656) It (1.23812)(0.125)
b 1.262 ksi
Qc Qb (1.0625)(0.125)(1.1875) 0.25537 in.2
c
VQc (2)(0.25537) It (1.23812)(0.125)
c 3.30 ksi
Qd 2Qc (0.125)2 (1.1875) 0.52929
d
VQd (2)(0.52929) It (1.23812)(0.125)
d 6.84 ksi
1.125 Qe Qd (0.125)(1.125) 0.60839 2
e
VQ (2)(0.60839) It (1.23812)(0.125)
e 7.86 ksi
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c
PROBLEM 6.41
b
d
1.25 in.
e 1.25 in.
1.25 in.
a
The extruded aluminum beam has a uniform wall thickness of 18 in. Knowing that the vertical shear in the beam is 2 kips, determine the corresponding shearing stress at each of the five points indicated.
1.25 in.
SOLUTION I
1 1 (2.50)(2.50)3 (2.125)(2.25)3 1.23812 in 4 12 12
Add symmetric points c’, b’, and a’. Qe 0 1.125 3 Qd (0.125)(1.125) 0.079102 in 2
td 0.125 in.
Qc Qd (0.125)2 (1.1875) 0.097657 in 4
tc 0.25 in.
Qb Qc (2)(1.0625)(0.125)(1.1875) 0.41309 in 3
tb 0.25 in.
1.25 3 Qa Qb (2)(0.125)(1.25) 0.60840 in 2
ta 0.25 in.
a
VQa (2)(0.60840) Ita (1.23812)(0.25)
a 3.93 ksi
b
VQb (2)(0.41309) Itb (1.23812)(0.25)
b 2.67 ksi
c
VQc (2)(0.097657) Itc (1.23812)(0.25)
c 0.631 ksi
d
VQd (2)(0.079102) Itd (1.23812)(0.125)
d 1.02 ksi
e
VQe Ite
e 0
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PROBLEM 6.42
40 mm 12 mm 40 mm
30 mm
a
10 mm
b
Knowing that a given vertical shear V causes a maximum shearing stress of 50 MPa in a thin-walled member having the cross section shown, determine the corresponding shearing stress (a) at point a, (b) at point b, (c) at point c.
c 50 mm
10 mm 30 mm
SOLUTION Qa (12)(30)(25 10 15) 18 103 mm3 Qb (40)(10)(25 5) 12 103 mm3 Qc Qa 2Qb (12)(10)(25 5) 45.6 103 mm3 25 Qm Qc (12)(25) 49.35 103 mm3 2 ta tc tm 12 mm tb 10 mm
m 50 MPa (a)
a Qa tm 18 12 0.36474 49.35 12 m Qm ta
a 18.23 MPa
(b)
b Qb tm 12 12 0.29179 49.35 10 m Qm tb
b 14.59 MPa
(c)
c Q t 45.6 12 c m 0.92401 49.35 12 m Qm tc
c 46.2 MPa
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2 in.
PROBLEM 6.43
2 in. 10 in. 4 in. 10 in.
Three planks are connected as shown by bolts of 83 -in. diameter spaced every 6 in. along the longitudinal axis of the beam. For a vertical shear of 2.5 kips, determine the average shearing stress in the bolts.
SOLUTION Locate neutral axis. A (2)(2)(10) (10)(4) 80 in 2 Ay (2)(2)(10)(5) (10)(4)(8) 520 in 3
Y
Ay 520 6.5 in. A 80
1 I 2 (2)(10)3 (2)(10)(1.5) 2 12 1 (10)(4)3 (10)(4)(1.5) 2 566.67 in 4 12 Q (2)(10)(1.5) 30 in 3
F qs Abolt
4
VQs (2.5)(30)(6) 0.79411 kips 566.67 I
2 d bolt
3
2
2 0.110447 in 4 8
bolt
F 0.79411 7.19 ksi Abolt 0.110447
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PROBLEM 6.44 100 mm
A beam consists of three planks connected as shown by steel bolts with a longitudinal spacing of 225 mm. Knowing that the shear in the beam is vertical and equal to 6 kN and that the allowable average shearing stress in each bolt is 60 MPa, determine the smallest permissible bolt diameter that can be used.
25 mm 25 mm 100 mm
50 mm 100 mm 50 mm
SOLUTION Part
A(mm 2 )
y (mm)
Ay 2 (106 mm 4 )
I (106 mm 4 )
7500
50
18.75
14.06
7500
50
18.75
14.06
15,000
50
37.50
28.12
75.00
56.24
Σ
I Ay 2 I 131.25 106 mm 4 131.25 106 m 4 Q A1 y1 (7500)(50) 375 103 mm3 375 106 m3 Fbolt bolt Abolt qs Abolt
VQs I
VQs (6 103 )(375 106 )(0.225) 64.286 106 m 2 bolt I (6 106 )(131.25 106 ) 64.286 mm 2
d bolt
4 Abolt
(4)(64.286)
d bolt 9.05 mm
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PROBLEM 6.45 6 in.
1 in. 1 in.
A beam consists of five planks of 1.5 6-in. cross section connected by steel bolts with a longitudinal spacing of 9 in. Knowing that the shear in the beam is vertical and equal to 2000 lb and that the allowable average shearing stress in each bolt is 7500 psi, determine the smallest permissible bolt diameter that can be used.
SOLUTION Part
A(in 2 )
y0 (in.)
Ay0 (in 3 )
y (in.)
Ay 2 (in 4 )
I (in 4 )
9
5
45
0.8
5.76
27
9
4
36
0.2
0.36
27
9
3
27
1.2
12.96
27
9
4
36
0.2
0.36
27
9
5
45
0.8
5.76
27
45
25.20
135
189 Y0
Ay 189 4.2 in. A 45
I Ad 2 I 160.2 in 4
Between and :
Q12 Q1 Ay1 (9)(0.8) 7.2 in 3
Between and :
Q23 Q1 Ay2 7.2 (9)(0.2) 5.4 in 3 q
VQ I
Maximum q is based on Q12 7.2 in 3. (2000)(7.2) 89.888 lb/in. 160.2 qs (89.888)(9) 809 lb
q Fbolt
bolt Abolt
Fbolt Abolt
4
2 d bolt
Abolt
Fbolt
bolt
d bolt
4 Abolt
809 0.1079 in 2 7500
(4)(0.1079)
d bolt 0.371 in.
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PROBLEM 6.46 400 mm
Four L102 102 9.5 steel angle shapes and a 12 400-mm plate are bolted together to form a beam with the cross section shown. The bolts are of 22-mm diameter and are spaced longitudinally every 120 mm. Knowing that the beam is subjected to a vertical shear of 240 kN, determine the average shearing stress in each bolt.
12 mm
SOLUTION For one L102 102 9.5, A 1845 mm 2 I 1.815 106 mm 2 Q (1845 mm 2 )(171 mm) 315.5 103 mm3 315.5 106 m 4
For 12-mm 400-mm plate and four angle, I
1 (12 mm)(400 mm)3 4[1.815 106 mm 4 (1845 mm 2 )(171 mm) 2 ] 12
287.06 106 mm 4 287.06 106 m 4
One angle:
q
VQ (240 kN)(315.5 106 m3 ) 263.78 kN/m I 287.06 106 m 4
F qs (263.78 kN/m)(0.120 m) 31.65 kN
Diam. bolt 22 mm
F 31.65 kN ; A (0.022 m) 2 4
83.3 MPa ◄
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PROBLEM 6.47
D 1.6 in. A
B 2 in.
E
1.2 in. 1.2 in.
F 2 in.
A plate of 14 -in. thickness is corrugated as shown and then used as a beam. For a vertical shear of 1.2 kips, determine (a) the maximum shearing stress in the section, (b) the shearing stress at point B. Also, sketch the shear flow in the cross section.
SOLUTION LBD
(1.2) 2 (1.6) 2 2.0 in.
ABD (0.25)(2.0) 0.5 in 2
Locate neutral axis and compute moment of inertia. Part
A(in 2 )
d (in.)
Ad 2 (in 4 )
I (in 4 )
AB
0.5
0
0
0.4
0.080
neglect
BD
0.5
0.8
0.4
0.4
0.080
*0.1067
DE
0.5
0.8
0.4
0.4
0.080
*0.1067
EF
0.5
0
0
0.4
0.080
neglect
Σ
2.0
0.320
0.2134
*
y (in.)
Ay (in 3 )
0.8
1 1 ABD h 2 (0.5)(1.6)2 0.1067 in 4 12 12
Y
Ay 0.8 0.4 in. 2.0 A
I Ad 2 I 0.5334 in 4
(a)
Qm QAB QBC QAB (2)(0.25)(0.4) 0.2 in 3 QBC (0.5)(0.25)(0.2) 0.025 in 3 Qm 0.225 in 3
m (b)
VQm (1.2)(0.225) It (0.5334)(0.25)
m 2.02 ksi
QB QAB 0.2 in 3
B
VQB (1.2)(0.2) It (0.5334)(0.25)
B 1.800 ksi
D 0
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22 mm
PROBLEM 6.48
e
A plate of 2-mm thickness is bent as shown and then used as a beam. For a vertical shear of 5 kN, determine the shearing stress at the five points indicated and sketch the shear flow in the cross section. a
d 50 mm
b c
10 mm 10 mm
SOLUTION 1 1 1 I 2 (2)(48)3 (2)(52)3 (20)(2)3 (20)(2)(25) 2 12 12 12 133.75 103 mm 4 133.75 109 mm 4 Qa (2)(24)(12) 576 mm3 576 109 mm3 Qa 0 Qc Qb (12)(2)(25) 600 mm3 600 109 m3 Qd Qc (2)(24)(12) 1.176 103 mm3 1.176 106 m3 Qe Qd (2)(26)(13) 600 mm3 500 109 m3
a
VQa (5 103 )(576 109 ) 10.77 106 Pa It (133.75 109 )(2 103 )
b
VQb It
c
VQc (5 103 )(600 109 ) 11.21 106 Pa It (133.75 109 )(2 103 )
c 11.21 MPa
d
VQd (5 103 )(1.176 106 ) 22.0 106 Pa 9 3 It (133.75 10 )(2 10 )
d 22.0 MPa
e
VQe (5 103 )(500 109 ) 9.35 106 Pa It (133.75 109 )(2 103 )
e 9.35 MPa
a 10.76 MPa b 0
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60 mm
PROBLEM 6.49
A
An extruded beam has the cross section shown and a uniform wall thickness of 3 mm. For a vertical shear of 10 kN, determine (a) the shearing stress at point A, (b) the maximum shearing stress in the beam. Also, sketch the shear flow in the cross section.
30 mm
16 mm
28 mm
16 mm
SOLUTION tan
16 30
28.07
A (3 sec )(30) 102 mm 2 1 I (3 sec )(30)3 7.6498 103 mm 4 12
Side:
A y (103 mm3 )
Ad 2 (103 mm 4 )
I (103 mm 4 )
Part
A (mm 2 )
y0 (mm)
Top
180
30
5.4
11.932
25.627
neglect
Side
102
15
1.53
3.077
0.966
7.6498
Side
102
15
1.53
3.077
0.966
7.6498
Bot.
84
0
18.077
27.449
neglect
55.008
15.2996
Σ
468
0
d (mm)
8.46
A y 8.46 103 18.077 mm 468 A I Ad 2 I 70.31 103 mm 4 70.31 109 m 4
Y0
(a)
QA (180)(11.932) 2.14776 103 mm3 2.14776 10 6 m3 t (2)(3 103 ) 6 103 m
A (b)
VQ (10 103 )(2.14776 106 ) 50.9 106 Pa 9 6 It (70.31 10 )(6 10 )
A 50.9 MPa
1 Qm QA (2)(3 sec )(11.932) 11.932 2 2.14776 103 484.06 2.6318 103 mm3 2.6318 106 m3 t 6 103 m
m
VQm (10 103 )(2.6318 106 ) 62.4 106 Pa It (70.31 109 )(6 103 )
m 62.4 MPa
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PROBLEM 6.49 (Continued)
QB (28)(3)(18.077) 1.51847 103 mm3 QB 1.51847 103 A (50.9) QA 2.14776 103 36.0 MPa
B
Multiply shearing stresses by t (3 mm 0.003 m) to get shear flow.
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PROBLEM 6.50
6 in. E
D
4.8 in. A
G
B F 3 in.
2 in.
A plate of thickness t is bent as shown and then used as a beam. For a vertical shear of 600 lb, determine (a) the thickness t for which the maximum shearing stress is 300 psi, (b) the corresponding shearing stress at point E. Also, sketch the shear flow in the cross section.
3 in.
SOLUTION LBD LEF
4.82 22 5.2 in.
Neutral axis lies at 2.4 in. above AB. Calculate I. I AB (3t )(2.4) 2 17.28t I BD
1 (5.2t )(4.8)2 9.984t 12
I DE (6t )(2.4)2 34.56t I EF I DB 9.984t I FG I AB 17.28t I I 89.09t
(a)
At point C,
QC QAB QBC (3t )(2.4) (2.6t )(1.2) 10.32t
(b)
VQC It
t
VQ (600)(10.32t ) 0.23168 in. (300)(89.09t ) I
t 0.232 in.
I (89.09)(0.23168) 20.64 in 4 QE QEF QFG 0 (3)(0.23168)(2.4) 1.668 in 3
E
VQE (600)(1.668) It (20.64)(0.23168)
E 209 psi
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3 8
3 8
in.
PROBLEM 6.51
in.
2 in.
2 in. 1 2
in.
a
The design of a beam calls for connecting two vertical rectangular 83 4 -in. plates by welding them to horizontal 12 2 -in. plates as shown. For a vertical shear V, determine the dimension a for which the shear flow through the welded surface is maximum.
a
2 in.
1 2
in.
SOLUTION 3
1 3 1 1 1 I (2) (4)3 (2) (2) (2)(2) a 2 12 8 12 2 2 4.041667 2a 2 in 4 1 Q (2) a a in 3 2 VQ Va q I 4.041667 2a 2
Set
dq 0. da
dq (4.041667 2a 2 ) (a)(4a) V 0 da (4.041667 2a 2 )2
2a 2 4.041667 a 1.422 in.
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PROBLEM 6.52 The cross section of an extruded beam is a hollow square of side a 3 in. and thickness t 0.25 in. For a vertical shear of 15 kips, determine the maximum shearing stress in the beam and sketch the shear flow in the cross section. a
a
SOLUTION Iu I v
1 (3.254 2.754 ) 12
4.53125 in 4
Since products of inertia 0, I x I y Iu I v I x 4.53125 in 4
V 15 kips
QNA 2[(3 in. 0.25 in.)(1.0607 in.)] 1.59105 in 3
m NA
VQNA (15 kips)(1.59105 in 3 ) I (2t ) (4.53125 in 4 )(2)(0.25 in.)
m 10.53 ksi ◄
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PROBLEM 6.53
a a
(a)
An extruded beam has a uniform wall thickness t. Denoting by V the vertical shear and by A the cross-sectional area of the beam, express the maximum shearing stress as max k (V/A) and determine the constant k for each of the two orientations shown.
(b)
SOLUTION
(a)
3 a 2 A1 A2 at h
(b)
3 3 at 4 1 1 3 1 I 2 A2 h 2 at a 2 a 3t 3 3 4 4 5 3 I 2 I1 4 I 2 a t 2
A2
I1 A1h 2 ath 2
2
1 a h ath 2 at 12 2 2 1 3 9 7 a t a 3t a 3t 48 16 12
3 2 a t 2 3 2 h Q2 A2 a t 2 4 Qm Q1 2Q2 3a 2 t
k
3
1 a 1 3 I2 t at 3 2 24 5 I 4 I1 4 I 2 a3t 2 a h 3 2 Q1 at a t 2 2 4
VQ V 3a 2 t 3V 3 5 I (2t ) 5 at a t 2t 2
1 a 1 Q2 at a 2t 2 4 8 7 Q 2Q1 2Q2 a 3t 4 V 74 a3t VQ m 5 3 I (2t ) a t (2t ) 2
V 6 3 V 6 3V k A 5 6at 5 A 6 3 5
1 at 2
I1 I1 A1d 2
Q1 A1h
m
a 2 A1 at h
k 2.08
7 V 42 V 21 V 20 at 20 6at 10 A
k
V A
k
21 2.10 10
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PROBLEM 6.54
u P C rm
t
(a) Determine the shearing stress at point P of a thin-walled pipe of the cross section shown caused by a vertical shear V. (b) Show that the maximum shearing stress occurs for 90 and is equal to 2V/A, where A is the cross-sectional area of the pipe.
SOLUTION A 2 rm t r
sin
J Arm2 2 rm3t
I
1 J rm3t 2
for a circular arc.
AP 2r t QP AP r 2rt sin (a)
P
(b)
m
VQP (V )(2rt sin ) I (2t ) rm3t (2t )
P
2V sin 2
V sin rm t
m
2 rm t
2V A
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PROBLEM 6.55 For a beam made of two or more materials with different moduli of elasticity, show that Eq. (6.6)
ave
VQ It
remains valid provided that both Q and I are computed by using the transformed section of the beam (see Sec. 4.4), and provided further that t is the actual width of the beam where ave is computed.
SOLUTION Let Eref be a reference modulus of elasticity. n1
E1 E , n2 2 , etc. Eref Eref
Widths b of actual section are multiplied by n’s to obtain the transformed section. The bending stress distribution in the cross section is given by
x
nMy I
where I is the moment of inertia of the transformed cross section and y is measured from the centroid of the transformed section. The horizontal shearing force over length x is
H ( x ) dA
n(M ) y (M ) Q(M ) dA ny dA I I I
Q ny dA first moment of transformed section.
Shear flow:
q
H M Q VQ x x I I
q is distributed over actual width t, thus
q t VQ It
.
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PROBLEM 6.56
90 mm
A composite beam is made by attaching the timber and steel portions shown with bolts of 12-mm diameter spaced longitudinally every 200 mm. The modulus of elasticity is 10 GPa for the wood and 200 GPa for the steel. For a vertical shear of 4 kN, determine (a) the average shearing stress in the bolts, (b) the shearing stress at the center of the cross section. (Hint: Use the method indicated in Prob. 6.55.)
84 mm 90 mm 6 mm
140 mm
6 mm
SOLUTION Let steel be the reference material. ns 1.0
Ew 10 GPa 0.05 Es 200 GPa
nw
Depth of section:
d 90 84 90 264 mm
For steel portion,
Is 2
For the wooden portion,
Iw
For the transformed section,
1 3 1 bd (2) (6)(264)3 18.400 106 mm 4 12 12
1 1 (140)(2643 843 ) 207.75 106 mm 4 b d13 d 23 12 12
I ns I s nw I w
I (1.0)(18.400 106 ) (0.05)(207.75 106 ) 28.787 106 mm 4 28.787 106 m 4 (a)
Shearing stress in the bolts.
For the upper wooden portion,
Qw (90)(140)(42 45) 1.0962 106 mm3
For the transformed wooden portion, Q nwQw (0.05)(1.0962 106 ) 54.81 103 mm3 54.81 106 m3 Shear flow on upper wooden portion: q
VQ (4000)(54.81 106 ) 7616 N/m I 28.787 106
Fbolt qs (7616)(0.200) 1523.2 N Abolt Double shear:
4
2 d bolt
bolt
4
(12) 2 113.1 mm 2 113.1 106 m 2
Fbolt 1523.2 2 Abolt (2)(113.1 106 )
bolt 6.73 MPa
6.73 106 Pa
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PROBLEM 6.56 (Continued)
(b)
Shearing stress at the center of the cross section.
For two steel plates,
Qs (2)(6)(90 42)(90 42) 76.032 103 mm3 76.032 106 m3
For the neutral axis,
Q 54.81 106 76.032 106 130.842 106 m3
Shear flow across the neutral axis: q
VQ (4000)(130.842 106 ) 18.181 103 N/m 6 I 28.787 10
Double thickness:
2t 12 mm 0.012 m
Shearing stress:
q 18.181 103 1.515 106 Pa 2t 0.012
1.515 MPa
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PROBLEM 6.57
150 mm 12 mm
A composite beam is made by attaching the timber and steel portions shown with bolts of 12-mm diameter spaced longitudinally every 200 mm. The modulus of elasticity is 10 GPa for the wood and 200 GPa for the steel. For a vertical shear of 4 kN, determine (a) the average shearing stress in the bolts, (b) the shearing stress at the center of the cross section. (Hint: Use the method indicated in Prob. 6.55.)
250 mm
12 mm
SOLUTION Eref Es 200 GPa
Let
ns 1
nw
Ew 10 GPa 1 Es 200 GPa 20
Widths of transformed section: bs 150 mm
1 bw (150) 7.5 mm 20
1 1 I 2 (150)(12)3 (150)(12)(125 6)2 (7.5)(250)3 12 12 2[0.0216 106 30.890 106 ] 9.766 106 71.589 106 mm 4 71.589 106 m 4 (a)
Q1 (150)(12)(125 6) 235.8 103 mm3 235.8 106 m3 VQ1 (4 103 )(235.8 106 ) 13.175 103 N/m I 71.589 106 qs (23.187 103 )(200 103 ) 2.635 103 N
q Fbolt
Abolt
bolt (b)
2 (12)2 113.1 mm 2 113.1 106 m 2 d bolt 4 4
Fbolt 2.635 103 23.3 106 Pa Abolt 113.1 106
bolt 23.3 MPa
Q2 Q1 (7.5)(125)(62.5) 235.8 103 58.594 103 294.4 103 mm3 294.4 106 m3 t 150 mm 150 103 m
c
VQ2 (4 103 )(294.4 106 ) 109.7 103 Pa It (71.589 106 )(150 103 )
c 109.7 kPa
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PROBLEM 6.58 2 in.
Aluminum
1 in.
Steel 1.5 in.
A steel bar and an aluminum bar are bonded together as shown to form a composite beam. Knowing that the vertical shear in the beam is 4 kips and that the modulus of elasticity is 29 106 psi for the steel and 10.6 106 psi for the aluminum, determine (a) the average stress at the bonded surface, (b) the maximum shearing stress in the beam. (Hint: Use the method indicated in Prob. 6.55.)
SOLUTION n 1 in aluminum. n
29 106 psi 2.7358 in steel. 10.6 106 psi
Part
nA (in 2 )
Alum.
3.0
2.0
Steel
4.1038
0.5
Σ
7.1038
y (in.)
nA y (in 3 )
d (in.)
nAd 2 (in 2 )
6.0
0.8665
2.2525
1.0
2.0519
0.6335
1.6469
0.3420
3.8994
1.3420
8.0519
Y
nI (in 4 )
nA y 8.0519 1.1335 in. nA 7.1038
I nAd 2 nI 5.2414 in 4
(a)
At the bonded surface,
Q (1.5)(2)(0.8665) 2.5995 in 3
(b)
At the neutral axis,
VQ (4)(2.5995) It (5.2414)(1.5)
1.323 ksi
1.8665 3 Q (1.5)(1.8665) 2.6129 in 2
max
VQ (4)(2.6129) It (5.2814)(1.5)
max 1.329 ksi
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PROBLEM 6.59 2 in.
Steel
1 in.
Aluminum 1.5 in.
A steel bar and an aluminum bar are bonded together as shown to form a composite beam. Knowing that the vertical shear in the beam is 4 kips and that the modulus of elasticity is 29 106 psi for the steel and 10.6 106 psi for the aluminum, determine (a) the average stress at the bonded surface, (b) the maximum shearing stress in the beam. (Hint: Use the method indicated in Prob. 6.55.)
SOLUTION n 1 in aluminum. n
29 106 psi 2.7358 in steel. 10.6 106 psi
Part
nA (in 2 )
y (in.)
nA y (in 3 )
d (in.)
nAd 2 (in 2 )
nI (in 4 )
Steel
8.2074
2.0
16.4148
0.2318
0.4410
2.7358
Alum.
1.5
0.5
0.75
1.2682
2.4125
0.1250
Σ
9.7074
2.8535
2.8608
17.1648 nA y 17.1648 1.7682 in. 9.7074 A I nAd 2 nI 5.7143 in 4
Y
(a)
At the bonded surface,
Q (1.5)(1.2682) 1.9023 in 3
(b)
At the neutral axis,
VQ (4)(1.9023) It (5.7143)(1.5)
0.888 ksi
1.2318 Q (2.7358)(1.5)(1.2318) 3.1133 in 3 2
max
VQ (4)(3.1133) It (5.7143)(1.5)
max 1.453 ksi
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PROBLEM 6.60
P
Consider the cantilever beam AB discussed in Sec. 6.5 and the portion ACKJ of the beam that is located to the left of the transverse section CC and above the horizontal plane JK, where K is a point at a distance y yY above the neutral axis. (See figure.) (a) Recalling that x Y between C and E and x ( Y /yY ) y between E and K, show that the magnitude of the horizontal shearing force H exerted on the lower face of the portion of beam ACKJ is
Plastic C
A J
E yY
K B C'
E'
H
y
1 y2 b Y 2c yY 2 yY
x Neutral axis
(b) Observing that the shearing stress at K is H 1 H 1 H lim A 0 A x 0 b x b x
xy lim
and recalling that yY is a function of x defined by Eq. (6.14), derive Eq. (6.15).
SOLUTION Point K is located a distance y above the neutral axis. The stress distribution is given by y Y for 0 y yY and Y yY
for
yY y c.
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PROBLEM 6.60 (Continued)
For equilibrium of horizontal forces acting on ACKJ,
H dA
yY
Y yb
c
Y b dy yY yY b y2 y2 Y Y y b(c yY ) yY 2 1 y2 H b Y 2c yY yY 2 y
dy
(a)
Note that yY is a function of x.
y 2 dyY 1 H 1 yY Y b x 2 x yY 2 dx 1 y 2 dyY Y 1 2 yY 2 dx
xy
But
Differentiating,
M Px
1 yY2 3 M y 1 3 c 2 2
dM 3 2 yY dyY P MY 2 dx 2 3 c dx dyY Pc 2 Pc 2 3 P 2 2 dx yY M Y 2 Y byY yY 3 Y bc
Then
1 2
xy Y 1
y2 yY 2
3 P 3P 2 Y b Y 4byY
y2 1 yY 2
(b)
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a
A
PROBLEM 6.61
B a
D
E
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
a
O e F
G a
H
J
SOLUTION 2
1 9 3a I AB I HJ at at 3 ta 3 2 12 4 2
1 1 a I DE I FG at at 3 ta 2 4 2 12 1 9 I AH t (3a )3 ta 3 12 4 29 3 I I ta 4 Part AB:
3a 3 Q atx 2 2 3 VQ V 2 atx 6Vx 3 29 It ta t 29a 2 t 4 A tx
y
F1 dA Part DE:
a 0
6Vx 6V t dx 2 29a t 29a 2
x dx
3 V 29
x dx
1 V 29
a 0
a 1 Q atx 2 2 1 2Vx VQ V 2 atx 3 29 It 29 a 2t ta t 4 A tx
y
F2 dA
M K
a 0
2Vx 2V t dx 2 29a t 29a 2
a 0
M K : Ve F1 (3a ) F2 (a ) e
9 1 10 Va Va Va 29 29 29 10 a 29
e 0.345a
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PROBLEM 6.62
A D
a
B
a
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
O e
a F
E a G 2a
SOLUTION 2
1 3 7 3a ta (ta) ta 3 12 2 3 1 I EF (2at ) a 2 (2a ) t 3 2a3t 12 1 2 28 3 I I ta t (2a )3 ta 3 12 3 3
I AB I FG I DB I DE Part AB:
A t (2a y ); Q Ay
y
2a y 3
1 t (2a y )(2a y ) 2
1 t (4a 2 y 2 ) 2 VQ V (4a 2 y 2 ) 2I It 2a V F1 dA (4a 2 y 2 ) t dy a 2I Vt 2 y 3 2 a Vta 3 (2)3 1 (4)(1) 4a y (4)(2) 2I 3 a 2I 3 3
5 Vta 3 5 V 6 I 56
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PROBLEM 6.62 (Continued)
3a txa 2 3a ta x 2
Q (ta )
Part DB:
VQ Va 3a x It I 2
F2 dA
Vta 3a x t dx I 2 I
2 a Va 0
Vta 3ax x 2 I 2 2
5 MH
2a 0
2a 0
3a 2 x dx
Vta 3 (3)(2) (2)2 I 2 2
3
Vta 15 V I 28 M H:
Ve F2 (2a ) 2 F1 (2a )
30 20 5 Va Va Va 28 56 7 e
5 a 0.714a 7
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D
PROBLEM 6.63
B a A G
O e
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
a E
2a
F
SOLUTION I AB I FG
1 3 ta 3
1 2att 3 2ta3 12
I DB I CP 2ata3
1 2 16 3 t (2a)3 ta 3 I I ta 12 3 3 y 1 A ty y Q ty 2 2 2
I DE Part AB:
2 VQ V 12 ty 3Vy 2 16 3 It ta t 32a3t 3 a
F1 dA 0 t dy Part BD:
Q QB txa
VQ It
3V a 2 1 y dt V 3 0 32 32a
1 2 ta tax 2
Vt 1 2 a ax a3t 2
16 3
3 V ( a 2 x) 32 a 2 2 a 3V F2 dA 0 (a 2 x)dx 32a 2 2a 3V (ax x 2 ) 2 0 32a 3V 9 (2a 2 4a 2 ) V 16 32a 2
M H
M H :
Ve (2a)(2 F1) (2a)( F2 )
1 9 5 Va Va Va 8 8 4
e
5 a 1.250a 4
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a
PROBLEM 6.64
b D
A
B
h
O
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
e E
G
F
SOLUTION 2
Part AD:
1 1 h I AB I EF (a b)t (a b)t 3 t (a b)h 2 4 2 12 1 1 I DG th3 I I t (6a 6b h)h 2 12 12 h 1 Q tx thx 2 2 VQ Vhx It 2I a Vhx Vht a F1 dA t dx x dx 0 2I 2I 0
Part BD:
Vht x 2 2I 2
a
0
Vhta 2 4I
h 1 thx 2 2 VQ Vhx 2I It b Vhx Vht F2 dA t dx 0 2I 2I Q tx
Vht x 2 2I 2 M H
b
0
b
0
x dx
Vhtb 2 4I
M H :
Vh 2 t (b 2 a 2 ) 4I 2 2 2 3V (b 2 a 2 ) Vh t (b a ) 2 6a 6b h 4 121 t (6a 6b h)h
Ve F2 h F1h
e
3(b 2 a 2 ) 6(a b) h
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PROBLEM 6.65
6 mm B A
An extruded beam has the cross section shown. Determine (a) the location of the shear center O, (b) the distribution of the shearing stresses caused by the vertical shearing force V shown applied at O.
12 mm O
C
192 mm
e V ⫽ 110 kN
6 mm E
D 72 mm
SOLUTION 2 1 192 1 3 I 2 (72)(6)3 (72)(6) 12 (12)(192) 12 2
15.0431 106 mm 4 15.0431 106 m 4
Part AB:
192 Q Ay (6 x) 576 x 2 VQ 576Vx q I I
A 6x
x 0 at point A. x l AB 72 mm at point B. F1 MC (a) (b)
xB xA
q dx
72 0
576Vx 576V (72)2 dx 2 I I
2
(288)(72) V 0.099247 V 15.0431 106 M C : Ve (0.099247 ) V (192)
e 19.0555 mm Point A: x 0,
e 19.06 mm Q 0,
Point B in part AB:
A 0
q0
x 72 mm Q (576)(72) 41.472 103 mm3 41.472 106 m3 t 6 mm 0.006 m
B
VQ (110 103 )(41.472 106 ) It (15.0431 106 )(0.006)
B 50.5 MPa
50.5 106 Pa
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PROBLEM 6.65 (Continued)
Part BD: Point B:
y 96 mm
Q 41.472 103 mm3 41.472 106 m3
t 12 mm 0.012 m
B
VQ (110 103 )(41.472 106 ) It (15.0431 106 )(0.012)
B 25.3 MPa
25.271 106 Pa Point C:
y 0, t 0.012 m 96 Q 41.472 103 (12)(96) 96.768 103 mm3 96.768 106 m3 2
VQ (110 103 )(96.768 106 ) 58.967 106 Pa It (15.0431 106 )(0.012)
C 59.0 MPa
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PROBLEM 6.66
4.0 in. D
B
O
A G
e
6.0 in.
An extruded beam has the cross section shown. Determine (a) the location of the shear center O, (b) the distribution of the shearing stresses caused by the vertical shearing force V shown applied at O.
V ⫽ 2.75 kips E
F t⫽
1 8
in.
SOLUTION 1 I AB (0.125)(3)3 1.125 in 4 3 1 I BD (4)(0.125)3 (4)(0.125)(3)2 4.50065 in 4 12 1 I DE (0.125)(6)3 2.25 in 4 12 I EF I BD 4.50065 in 4 I FG I AB 1.125 in 4 I I 13.50 in 4 (a)
Part AB:
y 0.5ty 2 2 VQ ( y ) 0.5Vt 2 q( y ) y I I 3 0.5Vt FAB q ( y ) dy 0 I
Q ( y ) ty
Its moment about H is
4 FAB 18
3 0
y 2 dy 4.5
Vt I
Vt I
QB (0.5)(t )(3) 2 4.5 t
Part BD:
Q( x) QB xt (3) (4.5 3x) t Vq ( x) Vt (4.5 3 x) I I 4 t 4 Vt q ( x) dx (4.5 3x) dx 42 0 I 0 I
q( x) FBD Its moment about H : 3FBD 126
Vt I
QD [4.5 (3)(4)] t 16.5 t
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PROBLEM 6.66 (Continued)
By symmetry with part BD, FEF 42
Part EF:
Its moment about H is 3FEF 126
Vt I
Vt I
By symmetry with part AB, FFG 4.5
Part FG:
Its moment about H is 4 FFG 18
VT I
Vt I
Moment about H of force in part DE is zero. Vt 144Vt (18 126 0 126 18) I I 144 t (2.88)(0.125) e 13.50 I
Ve M H
(b)
e 2.67 in.
A G 0
QA QG 0 QB QF 4.5t
B F
VQB (2.75)(4.5 t ) 13.50 t It
QD QE 16.5t
D E
B F 0.917 ksi
VQ0 (2.75)(16.5t ) 13.50 t It
At H (neutral axis),
D E 3.36 ksi
QH QD t (3)(1.5) 21t
H
VQH (2.75)(21t ) 13.50t It
H 4.28 ksi
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PROBLEM 6.67
A 2 in. B
D
O
6 in.
An extruded beam has the cross section shown. Determine (a) the location of the shear center O, (b) the distribution of the shearing stresses caused by the vertical shearing force V shown applied at O.
e V 5 2.75 kips
F
E
2 in. G 4 in. t5
1 8
in.
SOLUTION Part
A (in2)
d (in.)
Ad 2 (in 4 )
I (in 4 )
BD
0.50
3
4.50
0
ABEG
1.25
0
0
EF
0.50
3
4.50
0
2.25
9.00
10.417
10.417
I Ad 2 I 19.417 in 4 (a)
Q( x) 3 tx VQ ( x) V q( x) (3tx) I I
Part BD:
3Vt 24Vt (8) 0 I I 72Vt ( M BD ) H 3FBD I
FBD Its moment about H: Part EF:
By same method,
3Vt I
4
x dx
FEF
24Vt I
( M EF ) H
72Vt I
Moments of FAB , FBE , and FEG about H are zero. Ve M H e
72Vt 72Vt 144Vt I I I
144 t (144)(0.125) 19.417 I
e 0.927 in.
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PROBLEM 6.67 (Continued)
(b)
A D F G 0
At A, D, F , and G,
Q0
Just above B :
Q1 QAB (2t )(4) 8 t
1 Just to the right of B:
VQ2 (2.75)(12t ) (19.417) t It
2 1.700 ksi
Q3 Q1 Q2 20t
3 At H (neutral axis),
1 1.133 ksi
Q2 QBD (3) t (4) 12t
2 Just below B:
VQ1 (2.75)(8t ) (19.417) t It
VQ3 (2.75)(20t ) (19.417) t It
3 2.83 ksi
QH Q3 QBH 20t t (3)(1.5) 24.5 t
H
VQH (2.75)(24.5t ) (19.417) t It
H 3.47 ksi 4 3 2.83 ksi
By symmetry,
5 2 1.700 ksi
6 1 1.133 ksi
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PROBLEM 6.68
6 mm A B 6 mm
z
30 mm
4 mm D
O
E
An extruded beam has the cross section shown. Determine (a) the location of the shear center O, (b) the distribution of the shearing stresses caused by the vertical shearing force V shown applied at O.
30 mm 4 mm
e F N = 35 kN
G 30 mm
6 mm H
J
30 mm Iz = 1.149 × 106 mm4
SOLUTION 1 (30)(6)3 (30)(6)(45)2 0.365 106 mm 4 12 1 (30)(4)3 (30)(4)(15) 2 0.02716 106 mm 4 12
I AB I HJ I DE I FG
1 (6)(90)3 0.3645 106 mm 4 12 I I 1.14882 106 mm 4
I AH
(a)
For a typical flange,
A( s ) ts Q( s ) yts VQ( s ) Vyts I I b Vytb 2 F q( s )ds 0 2I
q(s)
Flange AB:
FAB
V (45)(6)(302 ) 0.10576V (2)(1.14882 106 )
Flange DE:
FDE
V (15)(4)(30)2 0.023502V (2)(1.14882 106 )
Flange FG:
FFG 0.023502V
Flange HJ:
FHJ 0.10576V M K
M K : Ve 45 FAB 15FDE 15 FFG 45 FHJ 10.223V e 10.22 mm
Dividing by V,
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PROBLEM 6.68 (Continued)
(b)
Calculation of shearing stresses. I 1.14882 106 m 4
V 35 103 N
0
At B, E, G, and J, At A and H, Q (30)(6)(45) 8.1 103 mm3 8.1 106 m3 t 6 103 m
VQ (35 103 )(8.1 106 ) 41.1 106 Pa It (1.14882 106 )(6 103 )
41.1 MPa
Just above D and just below F: Q 8.1 103 (6)(30)(30) 13.5 103 mm3 13.5 106 m3 t 6 103 m
VQ (35 103 )(13.5 106 ) 68.5 106 Pa It (1.14882 106 )(6 103 )
68.5 MPa
Just to right of D and just to the right of F: Q (30)(4)(15) 1.8 103 mm3 1.8 106 m3
t 4 103 m
VQ (35 103 )(1.8 106 ) 13.71 106 Pa It (1.14882 106 )(4 103 )
13.71 MPa
Just below D and just above F: Q 13.5 103 1.8 103 15.3 103 mm3 15.3 106 m3 t 6 103 m
At K,
VQ (35 103 )(15.3 106 ) 77.7 106 Pa It (1.14882 106 )(6 103 )
77.7 MPa
Q 15.3 103 (6)(15)(7.5) 15.975 103 mm3 15.975 106 m3
VQ (35 103 )(15.975 106 ) 81.1 106 Pa It (1.14882 106 )(6 103 )
81.1 MPa
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PROBLEM 6.69
A 1 4
2 in.
in. B O
D
3 in.
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
3 in. r
E 2 in. F
4 in.
SOLUTION LDB
42 32 5 in.
1 ADB LDBt (5) 1.25 in 2 4
I DB
1 1 AAB h 2 (1.25)(3)2 3.75 in 4 3 3
I AB
1 1 3 1 2 4 (2) (2)(4) 8.1667 in 12 4 4
I (2)(3.75) (2)(8.1667) 23.833 in 4
Part AB:
1 (5 y) in 2 4 1 y (5 y) in. 2 1 1 Q Ay (5 y)(5 y) (25 y 2 ) 8 8 A
VQ V (25 y 2 ) V (25 y 2 ) It (8)(23.833)(0.25) 47.667 y2) 1 dy (47.667) 4
5 V (25
F1 dA 3
5
1 V 25 y y 3 190.667 3 3 MD
V 1 1 (25)(5) (5)3 (25)(3) (3)3 0.09091V 190.667 3 3 M D : Ve 2F1(4) 0.7273V
e 0.727 in.
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PROBLEM 6.70
B 6 mm 35 mm
60⬚
O 35 mm
D e
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
A F
60⬚
E
SOLUTION 1 I DB (6)(35)3 85.75 103 mm 4 3 LAB 70 mm AAB (70)(6) 420 mm 2 I AB
1 1 AAB h 2 (420)(35)2 171.5 103 mm 4 3 3
I (2)(85.75 103 ) (2)(171.5 103 ) 514.5 103 mm 4 A ts 6 s 1 1 y s sin 30 s 2 4 3 2 Q Ay s 2 VQ 3Vs 2 It It
Part AB:
F1 dA
M D
70 3Vs 2 0
2 It
t ds
3V I
70 0
s 2 ds
(3)(70)3 1 V V (2)(3) I 3
M D:
Ve 2[( F1 cos 60°)(70 sin 60°)] 20.2V e 20.2 mm
Dividing by V,
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PROBLEM 6.71
4 in. A
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
3 in. B O
5 in.
D 3 in. e E
SOLUTION
LAB 42 32 5 in.
AAB 5t
1 1 AAB h 2 AAB d 2 (5t )(3)2 (5t )(4)2 83.75t in 4 12 12 1 I BD (t )(5)3 10.417t in 4 12 I 2 I AB I BD 177.917t in 4 I AB
Q QAB QBY
In part BD,
1 Q (5t )(4) (2.5 y )t (2.5 y ) 2 1 1 20t 3.125t ty 2 23.125 y 2 t 2 2
VQ It
FBD dA
2.5
V (23.125 12 y 2 )t
2.5
It
t dy 2.5
1 Vt 1 23.125 y 2 dy 23.125 y y 3 2.5 2 I 6 2.5
Vt I
Vt (2.5)3 Vt (110.417) 2 (23.125)(2.5) 0.62061V I 6 177.917t
2.5
M K e
10 10 M K : V e (0.62061V ) 3 3 10 [1 0.62061] 3
e 1.265 in.
Note that the lines of action of FAB and FDE pass through point K. Thus, these forces have zero moment about point K.
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PROBLEM 6.72
A
B
60 mm O
D
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
60 mm
e
E
F
80 mm 40 mm
SOLUTION I AB (40t )(60)2 144 103t LDB 802 602 100 mm
ADB 100t
1 1 ADB h 2 (100t )(60)2 120 103t 3 3 I 2 I AB 2 I DB 528 103t
I DB
A tx y 60 mm
Part AB:
Q A y 60tx mm3 VQ V (60tx) 60Vx It It I 40 60Vx 60Vt F1 dA t dx 0 I I
M D
60Vt x 2 I 2 M D:
30 0
40
0
x dx
(60)(30)2 Vt 0.051136V (2)(528 103 ) t
Ve (0.051136V )(120)
e 6.14 mm
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PROBLEM 6.73 a
O
t
A B
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
e
SOLUTION For whole cross section,
A 2 at J Aa 2 2 a 3t
I
1 J a 3t 2
Use polar coordinate for partial cross section. A st a t s arc length sin 1 r a where 2 2 sin y r sin a
sin 2
Q Ay a t a a 2t 2sin 2
But
M C Ve,
2
a 2 t 2 sin 2
a 2 t (1 cos )
VQ Va 2 (1 cos ) It I
M C a dA
2 0
Va3 Va 4t (1 cos ) tad ( sin ) I I
2 0
2 Va t 2aV a 3t 4
e 2a
hence
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A a
O
PROBLEM 6.74 Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
t B e
SOLUTION For a thin-walled hollow circular cross section, A 2 at J a 2 A 2 a 3t I
For the half-pipe section,
2
I
1 J a 3t 2
a 3t
Use polar coordinate for partial cross section. A st a t r a
sin
s arc length where
y r cos a Q Ay a t a
2
sin cos
sin cos
a 2t (2 sin cos )
a 2t sin 2 a 2t sin
VQ Va 2 sin It I
M H a dA 2
0
Va 2 Va 4 t sin ta d cos a I I
0
4
Va t 4 Va I
But M H Ve, hence
e
4
a 1.273a
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3 4
PROBLEM 6.75
in. 3 4
in.
A thin-walled beam has the cross section shown. Determine the location of the shear center O of the cross section.
1 2 in.
O
8 in.
6 in.
e 8 in.
SOLUTION I
1 3 1 t1h1 t2 h23 12 12
1 A h2 y t2 2 11 y h2 y t2 22 Q Ay
Right flange:
11 1 h2 y h2 y t2 22 2 11 h22 y 2 t2 24 VQ V 1 2 h2 y 2 t2 It2 2 It2 4
Vt2 Vt2 1 2 2 F2 dA h2 y t2 dy 2 I h2 / 2 2 I t 4 2
Vt2 2I
h2 / 2
1 2 y3 h2 y 3 4
h2 / 2 h2 / 2
1 2 h 1 h 3 1 2 h 1 h 3 Vt h3 Vt2 h23 2 2 2 2 2 2 h h 2 2 2 3 2 4 2 3 2 12 I t1h13 t2 h23 4
MH
M H:
Ve F2 b V
e
t2 h23b
t1h13 t2 h23
t2 h23b t1h13 t2 h23
(0.75)(6)3(8) (0.75)(8)3 (0.75)(6)3
e 2.37 in.
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50 mm
PROBLEM 6.76
50 mm
A 6 mm
D
O
80 mm
A thin-walled beam has the cross section shown. Determine the location of the shear center O of the cross section.
F 60 mm 40 mm G E
B
e
SOLUTION Let
h1 AB h, h2 DE ,
I Part AB:
1 t h13 h23 h33 12
h3 FG
1 A h1 y t 2 y
11 h1 y 22
Q Ay
1 1 1 t h1 y h1 y 2 2 2 1 1 2 t h1 y 2 2 4
VQ V 1 2 2 h1 y It 2I 4 1h
F1 dA 2 1 h1 1 2
V 2I
1 2 2 h1 y t dy 4 1
h1
Vt 1 2 y3 2 h1 y 2I 4 3 1 h1 2
Vt 1 2 1 1 h1 h1 h1 3 2 I 4 2
h13V h13 h23 h33
3
Vth13 12 I
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PROBLEM 6.76 (Continued)
Likewise, for Part DE,
F2
h23V h13 h23 h33
and for Part FG,
F3
h33V h13 h23 h33
M H e
M H : Ve bF2 2bF3
bh23 2bh33 V h13 h23 h33
h23 2h33 (60)3 (2)(40)3 b (50) 3 3 h2 h3 (80)3 (60)3 (40)3
h13
21.7 mm
e 21.7 mm ◄
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PROBLEM 6.77
A 60 mm
B
60 mm
60 mm
D O
F
A thin-walled beam of uniform thickness has the cross section shown. Determine the dimension b for which the shear center O of the cross section is located at the point indicated.
E
G b
SOLUTION Part AB:
1 s 2 1 Q( s ) A( s ) y ( s) ty A s ts 2 2 VQ( s ) Vt 1 q(s) yAs s2 I I 2 A( s ) ts
FAB
y ( s) y A
l AB
0
q( s ) ds
2 l3 Vt y Al AB AB 6 I 2 1 2 QB ty Al AB tl AB 2 FFG FAB
At B, By symmetry, Part BD:
A( x) tx Q( x) QB yB A( x) QB tyB x VQ( x) V (QB tyB x) I I b V 1 q ( x) dx QB b tyB b 2 0 I 2
q( x) FBD By symmetry,
FEF FBD
FDE is not required, since its moment about O is zero.
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PROBLEM 6.77 (Continued)
M O 0 : b( FAB FFG ) yB FBD yF FEF 0 2b FAB 2 yB FBD 0 2b
2 l3 Vt y Al AB V AB 2 yB I 2 I 6
1 2 QB b 2 tyB b 0
2Vt 1 1 3 2Vt 1 2 1 2 2 2 y A l AB l AB b y Al AB l AB yB b yB b 0 I 2 I 6 2 2
Dividing by
2Vt and substituting numerical data, I 1 1 1 1 2 3 2 2 2 (90)(60) (60) b (90)(60) (60) (30)b (30) b 0 6 2 2 2 126 103b 108 103b 450b 2 0 18 103b 450b 2 0
b 0 and b 40.0 mm
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A
PROBLEM 6.78
B
1 in. D
A thin-walled beam of uniform thickness has the cross section shown. Determine the dimension b for which the shear center O of the cross section is located at the point indicated.
E
8 in.
10 in.
O
F
G
1 in. H b
J 3 in.
SOLUTION Part AB:
A tx
y 5 in.
VQ V .5 tx 5Vx It It I 3 5Vx
F1 dA 0
Part DE:
Q Ay 5tx
I
tdx
5Vt 3 x dx I 0
2
(5)(3) Vt Vt 22.5 2 I I
A tx
y 4 in.
Q Ay 4tx
VQ V 4tx 4Vx It It I a 4Vx F2 dA 0 t dx I 4Vt a x dx I 0
M O a2
M O :
2Vta 2 I
Vt 2Vta 2 O (10) 22.5 (8) I I
(10)(22.5) 14.0625 in 2 (8)(2)
a 3.75 in.
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PROBLEM 6.79
For the angle shape and loading of Sample Prob. 6.6, check that q dz 0 along the horizontal leg of the angle and q dy P along its vertical leg.
SOLUTION Refer to Sample Prob. 6.6. 3P(a z )(a 3 z ) 3P 2 (a 4az 3z 2 ) 4ta 3 4ta3 a 3P a q dz f t dz 3 (a 2 4az 3z 2 )dz 0 4a 0 a 3P z2 z2 3 a 2 z 4a 3 2 3 0 4a
f
Along horizontal leg:
3P 3 ( a 2a 3 a 3 ) 0 4a 3 3P(a y )(a 5 y ) 3P 2 (a 4ay 5 y 2 ) e 3 3 4ta 4ta a a 3P q dy e t dy 3 (a 2 4ay 5y 2 )dy 0 4a 0
Along vertical leg:
3P 2 y2 y3 a y a 4 5 2 3 4a3
a
0
3P 3 5 3 3P 4 3 3 a 2a 3 a 3 3 a P 4a 3 4a
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PROBLEM 6.80 For the angle shape and loading of Sample Prob. 6.6, (a) determine the points where the shearing stress is maximum and the corresponding values of the stress, (b) verify that the points obtained are located on the neutral axis corresponding to the given loading.
SOLUTION Refer to Sample Prob. 6.6. (a)
e
Along vertical leg:
3P(a y )(a 5 y ) 3P 2 (a 4ay 5 y 2 ) 3 4ta 4ta 3
d e 3P (4a 10 y ) 0 dy 4ta 3 2 2 2 3P 9 2 a a 2 (4a ) a (5) a 3 5 5 4ta 5 3P(a z )(a 3 z ) 3P 2 (a 4az 3z 2 ) f 3 4ta 4ta3
m
Along horizontal leg:
d f dz
m
At the corner:
(b)
1 I y ta 3 3
3P 4ta3
3P (4a 6 z ) 0 4ta 3 3P 4ta 3
2 2 2 2 3P 5 2 a a a a a (4 ) (3) 3 3 3 4ta 3
y 0, z 0,
I z tan
y
m
2 a 5
27 P 20 ta
z
2 a 3
m
1 P 4 ta
3P 4 ta
1 3 ta 45 12 I z 1 tan 14.036 4 I y
45 14.036 30.964 Ay at (a/2) 1 a A 2at 4 Az at (a/2) 1 a z A 2at 4
y
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PROBLEM 6.80 (Continued)
Neutral axis intersects vertical leg at
y y z tan 30.964 1 1 tan 30.964 a 0.400a 4 4
y
2 a 5
z
2 a 3
Neutral axis intersects horizontal leg at
z z y tan (45 + ) 1 1 tan 59.036 a 0.667a 4 4
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PROBLEM 6.81
P D'
Determine the distribution of the shearing stresses along line DB in the horizontal leg of the angle shape for the loading shown. The x and y axes are the principal centroidal axes of the cross section.
D a
A'
B'
B
A 2a
0.596a
y'
D'
B'
0.342a
C' 2 3
y
a 6
a
A' 15.8⬚
x'
Ix' ⫽ 1.428ta3 Iy' ⫽ 0.1557ta3
x
SOLUTION
15.8
Vx P cos
A( y ) (2a y )t Coordinate transformation.
In particular,
y
Vy P sin
1 (2a y ), 2
x 0
2 1 y y a cos x a sin 3 6 1 2 x x a cos y a sin 6 3
2 1 y y a cos x a sin 3 6 1 1 1 y a cos a sin 3 2 6 0.48111y 0.36612a 1 2 x x a cos y a sin 6 3 1 1 1 a cos y a sin 3 6 2 0.13614 y 0.06961a
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PROBLEM 6.81 (Continued)
Vx Ax Vy A y I yt I x t
( P cos )(2a y )(t )(0.13614 y 0.06961a) (0.1557ta 3 )(t ) ( P sin )(2a y )(0.48111 y 0.36612a) (1.428 a 3t )(t ) P(2a y )(0.750 y 0.500a) ta3
y (a )
P at
0
1 3
2 3
1
4 3
5 3
2
1.000
0.417
0
0.250
0.333
0.250
0
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PROBLEM 6.82
P D'
For the angle shape and loading of Prob. 6.81, determine the distribution of the shearing stresses along line DA in the vertical leg.
D a
A'
B'
B
A 2a
0.596a
PROBLEM 6.81* Determine the distribution of the shearing stresses along line DB in the horizontal leg of the angle shape for the loading shown. The x and y axes are the principal centroidal axes of the cross section.
y'
D'
B'
0.342a
C' 2 3
y
a 6
a
A' 15.8⬚
x'
Ix' ⫽ 1.428ta3 Iy' ⫽ 0.1557ta3
x
SOLUTION
15.8
Vx P cos
Vx P sin x
1 (a x), 2
A( x) (a x)t y 0
Coordinate transformation. 2 1 y y a cos x a sin 3 6 1 2 x x a cos y a sin 6 3
In particular, 2 1 y y a cos x a sin 3 6 1 2 1 a cos x a sin 3 3 2 0.13614 x 0.73224a 1 2 x x a cos y a sin 6 3 1 1 2 x a cos a sin 3 2 3 0.48111x 0.13922a
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PROBLEM 6.82* (Continued)
Vx A( x) x Vy A( x) y I y t I x t
( P cos )(a x)(t )(0.48111x 0.13922a) (0.1557ta3 )(t ) ( P sin )(a x)(t )(0.13614 x 0.73224a) (1.428ta 3 )(t ) P(a x)(3.00 x 1.000a ) ta 3
x( a )
P
at
0
1 6
1 3
1 2
2 3
5 6
1
1.000
1.250
1.333
1.250
1.000
0.583
0
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PROBLEM 6.83* A steel plate, 160 mm wide and 8 mm thick, is bent to form the channel shown. Knowing that the vertical load P acts at a point in the midplane of the web of the channel, determine (a) the torque T that would cause the channel to twist in the same way that it does under the load P, (b) the maximum shearing stress in the channel caused by the load P.
B 100 mm
A
D E P ⫽ 15 kN 30 mm
SOLUTION Use results of Example 6.06 with
e
b 30 mm,
h 100 mm, and t 8 mm.
b 30 9.6429 mm 9.6429 103 m 100 h 2 3b 2 (3)(30)
1 2 1 th (6b h) (8)(100)2 [(16)(30) 100] 1.86667 106 mm 4 1.86667 106 m 4 12 12 3 V 15 10 N
I
(a)
T Ve (15 103 )(9.6429 103 )
T 144.6 N m
Stress at neutral axis due to V:
Q bt
h h h 1 t th(h 4b) 2 2 4 8
1 (8)(100) 100 (4)(30) 22 103 mm3 22 106 m3 8 t 8 103 m
V
VQ (15 103 )(22 106 ) 22.10 106 Pa 22.10 MPa 6 3 It (1.86667 10 )(8 10 )
Stress due to T :
a 2b h 160 mm 0.160 m 1 t 1 8 0.3228 c1 1 0.630 1 (0.630) 3 a 3 160 T 144.64 V 43.76 106 Pa 43.76 MPa 3 2 2 c1at (0.3228)(0.160)(8 10 )
(b)
By superposition,
max V T
max 65.9 MPa
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PROBLEM 6.84* Solve Prob. 6.83, assuming that a 6-mm-thick plate is bent to form the channel shown.
B 100 mm
A
D E
PROBLEM 6.83* A steel plate, 160 mm wide and 8 mm thick, is bent to form the channel shown. Knowing that the vertical load P acts at a point in the midplane of the web of the channel, determine (a) the torque T that would cause the channel to twist in the same way that it does under the load P, (b) the maximum shearing stress in the channel caused by the load P.
P ⫽ 15 kN 30 mm
SOLUTION Use results of Example 6.06 with b 30 mm, h 100 mm, and t 6 mm.
e
b 30 9.6429 mm 9.6429 103 m 100 h 2 3b 2 (3)(30)
1 2 1 th (6b h) (6)(100) 2 [(6)(30) 100] 1.400 106 mm 4 1.400 106 m 4 12 12 3 V 15 10 N
I
(a)
T Ve (15 103 )(9.6429 103 )
T 144.6 N m
Stress at neutral axis due to V:
Q bt
h h h 1 t th(h 4b) 2 2 4 8
1 (6)(100) 100 (4)(30) 16.5 103 mm3 16.5 106 m3 8 t 6 103 m
V
VQ (15 103 )(16.5 106 ) 29.46 106 Pa 29.46 MPa It (1.400 106 )(6 106 )
Stress due to T :
a 2b h 160 mm 0.160 m 1 t 1 6 c1 1 0.630 1 (0.630) 0.32546 3 a 3 160 T 144.64 77.16 106 Pa 77.16 MPa V 2 c1a t (0.32546)(0.160)(6 103 ) 2
(b)
By superposition,
max V T
max 106.6 MPa
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PROBLEM 6.85
B
The cantilever beam AB, consisting of half of a thinwalled pipe of 1.25-in. mean radius and 83 -in. wall thickness, is subjected to a 500-lb vertical load. Knowing that the line of action of the load passes through the centroid C of the cross section of the beam, determine (a) the equivalent force-couple system at the shear center of the cross section, (b) the maximum shearing stress in the beam. (Hint: The shear center O of this cross section was shown in Prob. 6.74 to be located twice as far from its vertical diameter as its centroid C.)
1.25 in.
A
A C
a
O t
B 500 lb
e
SOLUTION
From the solution to Prob. 6.74,
I
e
2 4
Q a 2t sin
a 3t
Qmax a 2 t
a
For a half-pipe section, the distance from the center of the semi-circle to the centroid is
x
2
a
At each section of the beam, the shearing force V is equal to P. Its line of action passes through the centroid C. The moment arm of its moment about the shear center O is
d ex (a)
4
a
2
a
2
a
Equivalent force-couple system at O.
V P
M O Vd
Data: P 500 lb
a = 1.25 in.
2
Pa
V 500 lb 2 M O (500)(1.25)
M O 398 lb in.
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PROBLEM 6.85* (Continued)
(b)
Shearing stresses. (1)
Due to V : V
V
(2)
VQmax It ( P)(a 2 t ) 2P (2)(500) 679 psi at (1.25)(0.375) 3 a t t ( ) 2
Due to the torque M O : For a long rectangular section of length l and width t, the shearing stress due to torque M O is
M Data:
c1lt 2
1 t where c1 1 0.630 l 3
l a (1.25) 3.927 in. t 0.375 in. c1 0.31328
M By superposition,
MO
397.9 2300 psi (0.31328)(3.927)(0.375) 2
V M 679 psi 2300 psi
2980 psi
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PROBLEM 6.86
B
Solve Prob. 6.85, assuming that the thickness of the beam is reduced to 14 in.
1.25 in.
A
A C
a
O t
B
500 lb
e
PROBLEM 6.85 The cantilever beam AB, consisting of half of a thin-walled pipe of 1.25-in. mean radius and 83 -in. wall thickness, is subjected to a 500-lb vertical load. Knowing that the line of action of the load passes through the centroid C of the cross section of the beam, determine (a) the equivalent force-couple system at the shear center of the cross section, (b) the maximum shearing stress in the beam. (Hint: The shear center O of this cross section was shown in Prob. 6.74 to be located twice as far from its vertical diameter as its centroid C.)
SOLUTION
From the solution to Prob. 6.74,
I a 3t 4 e a
Q a 2 t sin Qmax a 2t
For a half-pipe section, the distance from the center of the semi-circle to the centroid is
x
2
a
At each section of the beam, the shearing force V is equal to P. Its line of action passes through the centroid C. The moment arm of its moment about the shear center O is
d ex (a)
a
2
a
2
a
Equivalent force-couple system at O.
V P
4
M O Vd
P 500 lb
Data:
2
Pa
a 1.25 in. V 500 lb M O 398 lb in.
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PROBLEM 6.86* (Continued)
(b)
Shearing stresses. (1)
Due to V , V
V
(2)
VQmax It ( P)(a 2t ) 3 2 a t (t )
2P (2)(500) 1019 psi at (1.25)(0.250)
Due to the torque M O : For a long rectangular section of length l and width t, the shearing stress due to torque M O is
M Data:
MO c1lt 2
1 t where c1 = 1 0.630 3 l
l a (1.25) 3.927 in. t 0.250 in. c1 0.31996
M
397.9 5067 psi (0.31996)(3.927)(0.250) 2
By superposition, V M 1019 psi 5067 psi
6090 psi
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3 kips
PROBLEM 6.87
y
y' A'
B' x'
A' B'
A
C'
22.5⬚
D'
E'
B
12 in.
D' D
E'
E
6 in. 6 in. (a)
x
The cantilever beam shown consists of a Z shape of 14 -in. thickness. For the given loading, determine the distribution of the shearing stresses along line AB in the upper horizontal leg of the Z shape. The x and y axes are the principal centroidal axes of the cross section and the corresponding moments of inertia are I x 166.3 in 4 and I y 13.61 in 4 .
(b)
SOLUTION V 3 kips 22.5 Vx V sin Vy V cos In upper horizontal leg, use coordinate x : (6 in ⭐ x ⭐ 0)
1 (6 x) in. 4 1 x (6 x) in. 2 y 6 in. x x cos + y sin y y cos x sin A
1
Due to Vx :
Vx Ax I yt
1 1 (V sin ) (6 x) (6 x) cos 6sin 4 2 1 1 (13.61) 4 0.084353(6 x)(0.47554 0.46194 x)
1 1 (V cos ) (6 x) 6 cos (6 x)sin 2 4 2 1 I xt (166.3) 4 0.0166665(6 x)[6.69132 0.19134 x] Vy A y
Due to Vy :
1 2 (6 x)[0.07141 0.035396 x]
Total: x (in.)
6
5
4
3
2
1
0
(ksi)
0
0.105
0.140
0.104
0.003
0.180
0.428
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PROBLEM 6.88 y'
3 kips
y
A'
B' x'
A' B'
A
C'
22.5⬚
D'
E'
x
B
12 in.
D' D
E'
E
6 in. 6 in. (a)
(b)
For the cantilever beam and loading of Prob. 6.87, determine the distribution of the shearing stress along line BD in the vertical web of the Z shape. PROBLEM 6.87 The cantilever beam shown consists of a Z shape of 14 -in. thickness. For the given loading, determine the distribution of the shearing stresses along line AB in the upper horizontal leg of the Z shape. The x and y axes are the principal centroidal axes of the cross section and the corresponding moments of inertia are I x 166.3 in 4 and I y 13.61 in 4 .
SOLUTION V 3 kips 22.5 Vx V sin Vy V cos For part AB’,
For part B′Y,
Due to Vx :
1 A (6) 1.5 in 2 4 x 3 in., y 6 in.
1 (6 y ) 4 1 x 0 y (6 y ) 2 x x cos y sin y y cos x sin
A
1 1
) Vx ( AAB x AB ABY xBY I yt (V sin )[(1.5)(3cos 6sin ) 14 (6 y ) 12 (6 y ) sin ] (13.61) 14
(V sin )[0.7133 1.7221 0.047835 y 2 ] 0.3404 0.01614 y 2 3.4025
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PROBLEM 6.88* (Continued)
2
Due to Vy :
2
Vy ( AAB y AB ABY y ) I x t (V cos )[(1.5)(6 cos 3 sin ) 14 (6 y ) 12 (6 y ) cos ] (166.3) 14
(V cos )[10.037 4.1575 0.11548y 2 ] 0.9463 0.00770 y 2 (166.3) 14
1 2 1.2867 0.02384 y 2
Total: y (in.)
0
2
4
6
(ksi)
1.287
1.191
0.905
0.428
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s s s
PROBLEM 6.89 Three boards are nailed together to form a beam shown, which is subjected to a vertical shear. Knowing that the spacing between the nails is s 75mm and that the allowable shearing force in each nail is 400 N, determine the allowable shear when w 120 mm.
60 mm 60 mm 60 mm
w 200 mm
SOLUTION Part
A (mm 2 )
d (mm)
7200
Middle Plank Bottom Plank
Top Plank
Ad 2 (106 mm 4 )
I (106 mm 4 )
60
25.92
2.16
12,000
0
0
3.60
7200
60
25.92
2.16
51.84
7.92
I Ad 2 I 59.76 106 mm 4 59.76 106 m 4 Q (7200)(60) 432 103 mm3 432 106 m3 VQ I F q nail s
q
V
Fnail qs V
Iq IFnail Q Qs
(59.76 106 )(400) (432 106 )(75 103 )
V 738 N
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PROBLEM 6.90
180 160 kN 16
12 a
0.6 m
80 100
16
For the beam and loading shown, consider section n-n and determine (a) the largest shearing stress in that section, (b) the shearing stress at point a.
n
n
80
0.9 m
0.9 m
Dimensions in mm
SOLUTION
V 80 kN
At section n-n,
Consider cross section as composed of rectangles of types , , and . 1 (12)(80)3 (12)(80)(90)2 8.288 106 mm 4 12 1 (180)(16)3 (180)(16)(42)2 5.14176 106 mm 4 I2 12 1 (16)(68)3 419.24 103 mm 4 I3 12
I1
I 4I1 2 I 2 2 I 3 44.274 106 mm 4 44.274 106 m 4 (a)
Calculate Q at neutral axis. Q1 (12)(80)(90) 86.4 103 mm 4 Q2 (180)(16)(42) 120.96 103 mm 4 Q3 (16)(34)(17) 9.248 103 mm 4
Q 2Q1 Q2 2Q3 312.256 103 mm3 312.256 106 m3
(b)
At point a,
VQ (80 103 )(312.256 106 ) 17.63 106 Pa It (44.274 106 )(2 16 103 )
17.63 MPa
Q Q1 86.4 103 mm 4 86.4 106 m 4
VQ (80 103 )(86.4 106 ) 13.01 106 Pa It (44.274 106 )(12 103 )
13.01 MPa
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PROBLEM 6.91
P W24 × 104 A
C B 6 ft
9 ft
For the wide-flange beam with the loading shown, determine the largest load P that can be applied, knowing that the maximum normal stress is 24 ksi and the largest shearing stress using the approximation m V/Aweb is 14.5 ksi.
SOLUTION
M C 0: 15RA qP 0 RA 0.6 P
Draw shear and bending moment diagrams. V
0.6P
max
M
max
0.6PLAB
LAB 6 ft 72 in.
S 258 in 3
For W24 104,
Bending.
S P
M
max
all
0.6 PLAB
all
(24)(258) all S 143.3 kips 0.6LAB (0.6)(72)
Aweb dtw
Shear.
(24.1)(0.500) 12.05 in 2
P
V
max
Aweb
Aweb 0.6
0.6P Aweb
(14.5)(12.05) 291 kips 0.6
The smaller value of P is the allowable value.
P 143.3 kips
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12 kips n A
PROBLEM 6.92
1 in.
12 kips
4 in.
B
1 in. 1 in.
a b
n 16 in.
10 in.
For the beam and loading shown, consider section n-n and determine the shearing stress at (a) point a, (b) point b.
2 in.
16 in.
4 in.
SOLUTION RA RB 12 kips Draw shear diagram.
V 12 kips Determine section properties. Part
A(in 2 )
y (in.)
Ay (in 3 )
d(in.)
Ad 2 (in 4 )
I (in 4 )
4
4
16
2
16
5.333
8
1
8
1
8
2.667
12
24
8.000
24 Y
24 Ay 2 in. 12 A
I Ad 2 I 32 in 4
(a)
A 1 in 2
y 3.5 in. Qa Ay 3.5 in 3
t 1 in.
a (b)
VQa (12)(3.5) (32)(1) It
A 2 in 2
a 1.313 ksi
y 3 in. Qb A y 6 in 3
t 1 in.
b
VQb (12)(6) (32)(1) It
b 2.25 ksi
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PROBLEM 6.93
2 in. 4 in. 6 in.
The built-up timber beam is subjected to a 1500-lb vertical shear. Knowing that the longitudinal spacing of the nails is s 2.5 in. and that each nail is 3.5 in. long, determine the shearing force in each nail.
4 in.
4 in. 2 in.
2 in.
2 in. 2 in.
SOLUTION I1
1 (2)(4)3 (2)(4)(3) 2 12
82.6667 in 4 1 (2)(6)3 36 in 4 12 I 2 I1 2I 2
I2
237.333 in 4 Q A1 y1 (2)(4)(3) 24 in 3 q
VQ (1500)(24) 151.685 lb/in. I 237.333
2Fnail qs
Fnail
1 1 qs (151.685)(2.5) 2 2
Fnail 189.6 lb
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PROBLEM 6.94
40 mm b
6 mm 60 mm
4 mm 6 mm
Knowing that a given vertical shear V causes a maximum shearing stress of 75 MPa in the hat-shaped extrusion shown, determine the corresponding shearing stress at (a) point a, (b) point b.
14 mm a
4 mm
20 mm 28 mm 20 mm
SOLUTION Neutral axis lies 30 mm above bottom.
c
VQc It
a Qatc c Qcta
a
VQa Ita
b
VQb Itb
b Qbtc c Qctb
Qc (6)(30)(15) (14)(4)(28) 4260 mm3 tc 6 mm Qa (14)(4)(28) 1568 mm3 ta 4 mm Qb (14)(4)(28) 1568 mm3 tb 4 mm
c 75 MPa (a)
a
Qa tc 1568 6 c 75 Qc ta 4260 4
(b)
b
Qb tc 1568 6 c 75 Qc tb 4260 4
a 41.4 MPa b 41.4 MPa
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125 mm
100 mm 125 mm
PROBLEM 6.95 Three planks are connected as shown by bolts of 14-mm diameter spaced every 150 mm along the longitudinal axis of the beam. For a vertical shear of 10 kN, determine the average shearing stress in the bolts.
100 mm 250 mm
SOLUTION Locate neutral axis and compute moment of inertia. Part
A(mm 2 )
y (mm)
12,500
200
25,000
12,500
Σ
50,000
Ay (mm3 )
d (mm)
Ad 2 (mm 4 )
I (mm 4 )
2.5 106
37.5
17.5781 106
10.4167 106
125
3.125 106
37.5
35.156 106
200
2.5 106
37.5
17.5781 106
8.125 106
Y
70.312 106
130.208 106 10.4167 106 151.041 106
Ay 8.125 106 162.5 mm A 50 103
I Ad 2 I 221.35 106 mm 4 221.35 106 m 4 Q A1 y1 (12,500)(37.5) 468.75 103 mm3 468.75 106 m3 q
VQ (10 103 )(468.75 106 ) I 221.35 106
21.177 103 N/m Fbolt qs (21.177 103 )(150 103 ) 3.1765 103 N Abolt
bolt
4
(14) 2 153.938 mm 2 153.938 106 m 2
Fbolt 3.1765 103 20.6 106 Pa Abolt 153.938 106
bolt 20.6 MPa
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PROBLEM 6.96 1 in. 1 in. C
x
18 in. 1 in.
Three 1 18-in. steel plates are bolted to four L6 6 1 angles to form a beam with the cross section shown. The bolts have a 78 -in. diameter and are spaced longitudinally every 5 in. Knowing that the allowable average shearing stress in the bolts is 12 ksi, determine the largest permissible vertical shear in the beam. (Given:I x 6123 in 4.)
18 in.
SOLUTION Flange:
If
1 (18)(1)3 (18)(1)(9.5) 2 1626 in 4 12
Web:
Iw
1 (1)(18)3 486 in 4 12
I 35.5 in 4 ,
Angle:
y 1.86 in.
A 11.0 in 2 d 9 1.86 7.14 in.
I a I Ad 2 596.18 in 4 I 2I f I w 4I a 6123 in 4 , which agrees with the given value.
Flange:
Q f (18)(1)(9.5) 171 in 3
Angle:
Qa Ad (11.0)(7.14) 78.54 in 3 Q Q f 2Qa 328.08 in 3
Fbolt
qall
q
7
2
2 0.60132 in 48 2 bolt Abolt (2)(12)(0.60132) 14.4317 kips
Abolt
Fbolt 14.4317 2.8863 kip/s s 5
VQ I
Vall
qall I (2.8863)(6123) Q 328.08
Vall 53.9 kips
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PROBLEM 6.97
a 112 mm
The composite beam shown is made by welding C 200 17.1 rolled-steel channels to the flanges of a W250 80 wide-flange rolled-steel shape. Knowing that the beam is subjected to a vertical shear of 200 kN, determine (a) the horizontal shearing force per meter at each weld, (b) the shearing stress at point a of the flange of the wide-flange shape.
SOLUTION For W250 80, d 257 mm, t f 15.6 mm, I x 126 106 mm 4 For C200 17.1,
A 2170 mm 2 , b f 57.4 mm, t f 9.91 mm
I y 0.545 106 mm 4 , x 14.5 mm For the channel in the composite beam,
yc
257 57.4 14.5 171.4 mm 2
For the composite beam, I 126 106 +2 0.545 106 (2170)(171.4) 2 254.59 106 mm 4 254.59 106 m 4
(a) For the two welds,
Qw Ayc (2170) (171.4) 371.94 103 mm3 371.94 106 m3 q
VQ (200 103 ) (371.94 106 ) 292.2 103 N/m I 254.59 106
For one weld,
q 146.1 103 N m 2
Shearing force per meter of weld: (b)
146.1 kN m
For cuts at a and a ' together, Aa 2(112)(15.6) 3494.4 mm 2
ya
257 15.6 120.7 mm 2 2
Qa 371.94 103 (3494.4)(120.7) 793.71 103 mm3 793.71 106 m3
Since there are cuts at a and a ', t 2t f (2)(15.6) 31.2 mm 0.0312 m.
a
VQa (200 103 )(793.71 106 ) 19.99 106 Pa 6 It (254.59 10 )(0.0312)
a 19.99 MPa
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PROBLEM 6.98
0.5 in. 2.5 in.
The design of a beam requires welding four horizontal plates to a vertical 0.5 5-in. plate as shown. For a vertical shear V, determine the dimension h for which the shear flow through the welded surface is maximum.
h 0.5 in.
2.5 in.
h
4.5 in.
4.5 in. 0.5 in.
SOLUTION Horizontal plate: 1 (4.5)(0.5)3 (4.5)(0.5)h 2 12 0.046875 2.25h 2
Ih
Vertical plate:
Iv
1 (0.5)(5)3 5.2083 in 4 12
Whole section:
I 4 I h I v 9h 2 5.39583 in 4
For one horizontal plate,
Q (4.5)(0.5)h 2.25 h in 3 q
To maximize q, set
VQ 2.25Vh 2 I 9h 5.39583
dq 0. dh 2.25V
(9h 2 5.39583) 18h 2 0 (9h 2 5.39583) 2
h 0.774 in.
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A
PROBLEM 6.99
B D E
60 mm
45 mm F
O
A thin-walled beam of uniform thickness has the cross section shown. Determine the dimension b for which the shear center O of the cross section is located at the point indicated.
45 mm
60 mm
H J
G K
30 mm
b
SOLUTION Part AB:
A tx
y 60 mm
Q Ay 60tx mm3
VQ 60Vx It I
F1 dA 60Vt x 2 I 2 Part DE:
A tx
60 Vx 60Vt t dx I I
30 0
30
0
30
0
x dx
(60)(30) 2 Vt Vt 27 103 I I 2
y 45 mm
Q Ay 45tx
VQ 45Vx It I b
F2 dA O
MO
45Vx 45Vt b 45b 2Vt t dx x dx 2I I I O
M O : 0 (2)(45) F2 (2)(60) F1
(45) 2 b 2 (2)(60)(27 103 ) Vt 0 I b2
(2)(60)(27 103 ) 1600 mm 2 452
b 40 mm
Note that the pair of F1 forces form a couple. Likewise, the pair of F2 forces form a couple. The lines of action of the forces in BDOGK pass through point O.
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PROBLEM 6.100
B 1 4
in. 60⬚
O
D e
1.5 in. A F
60⬚
Determine the location of the shear center O of a thin-walled beam of uniform thickness having the cross section shown.
1.5 in. E
SOLUTION 11 I AB (1.5)3 0.28125 in 4 3 4 1 LBD 3 in. ABD (3) 0.75 in 2 4 1 1 I BD ABD h 2 (0.75)(1.5) 2 0.5625 in 4 3 3 I (2)(0.28125) (2)(0.5625) 1.6875 in 4 Part AB:
1 1 1 y y y Q Ay y 2 4 2 8 2 VQ Vy Vy 2 (8)(1.6875)(0.25) 3.375 It
A
F1 dA
1.5
0
(0.25)V y 3 3.375 3
Vy 2 (0.25dy ) 3.375 1.5 0
(0.25)(1.5)3 (3.375)(3)
0.083333V MD
M D : Ve 2 F1 (3 sin 60) Ve (2)(0.083333) V (3 sin 60) e (2)(0.083333)(3 sin 60)
e 0.433 in.
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PROBLEM 6.C1
x4 x3 x1
x2 w
P1
P2 t h
A
B L
a
b
A timber beam is to be designed to support a distributed load and up to two concentrated loads as shown. One of the dimensions of its uniform rectangular cross section has been specified and the other is to be determined so that the maximum normal stress and the maximum shearing stress in the beam will not exceed given allowable values all and all . Measuring x from end A and using either SI or U.S. customary units, write a computer program to calculate for successive cross sections, from x 0 to x L and using given increments x, the shear, the bending moment, and the smallest value of the unknown dimension that satisfies in that section (1) the allowable normal stress requirement and (2) the allowable shearing stress requirement. Use this program to solve Prob. 5.65, assuming all 12 MPa and all 825 kPa and using x 0.1 m.
SOLUTION See solution of Prob. 5.C2 for the determination of RA , RB , V ( x), and M ( x) We recall that
V ( x) RA STPA RB STPB P1 STP1 P2 STP2 w( x x3 ) STP3 w( x x4 ) STP4 M ( x) RA ( x a ) STPA RB ( x a L) STPB P1 ( x x1 ) STP1 1 1 w( x x3 ) 2 STP3 w( x x4 )2 STP4 2 2 where STPA, STPB, STP1, STP2, STP3, and STP4 are step functions defined in Problem 5.C2.
P2 ( x x2 ) STP2
(1)
To satisfy the allowable normal stress requirement: If unknown dimension is h:
S min |M |/ all . From
1 S th 2 , we have h h 6 S /t 6
If unknown dimension is t:
S min |M |/ all . From (2)
1 S th 2 , we have t t 6S /h 2 6
To satisfy the allowable shearing stress requirement: We use Equation (6.10), Page 378: If unknown dimension is h: If unknown dimension is t:
3 |V | 3 |V | 2 A 2 th 3|V | h h 2t all 3M t t 2h all
max
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PROBLEM 6.C1 (Continued) Program Outputs
Problem 5.65
RA 2.40 kN RB 3.00 kN X m
V kN
M kN m
HSIG mm
HTAU mm
0.00 0.10 0.20 0.30 0.40 0.50 0.60 0.70 0.80 0.90 1.00 1.10 1.20 1.30 1.40 1.50 1.60 1.70 1.80 1.90 2.00 2.10 2.20 2.30 2.40
2.40 2.40 2.40 2.40 2.40 2.40 2.40 2.40 0.60 0.60 0.60 0.60 0.60 0.60 0.60 0.60 –3.00 –3.00 –3.00 –3.00 –3.00 –3.00 –3.00 –3.00 0.00
0.000 0.240 0.480 0.720 0.960 1.200 1.440 1.680 1.920 1.980 2.040 2.100 2.160 2.220 2.280 2.340 2.400 2.100 1.800 1.500 1.200 0.900 0.600 0.300 0.000
0.00 54.77 77.46 94.87 109.54 122.47 134.16 144.91 154.92 157.32 159.69 162.02 164.32 166.58 168.82 171.03 173.21 162.02 150.00 136.93 122.47 106.07 86.60 61.24 0.05
109.09 109.09 109.09 109.09 109.09 109.09 109.09 109.09 27.27 27.27 27.27 27.27 27.27 27.27 27.27 27.27 136.36 136.36 136.36 136.36 136.36 136.36 136.36 136.36 0.00
The smallest allowable value of h is the largest of the values shown in the last two columns.
h h 173.2 mm
For Problem 5.65,
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PROBLEM 6.C2 P
b
w B
A
8b
L
A cantilever timber beam AB of length L and of uniform rectangular section shown supports a concentrated load P at its free end and a uniformly distributed load w along its entire length. Write a computer program to determine the length L and the width b of the beam for which both the maximum normal stress and the maximum shearing stress in the beam reach their largest allowable values. Assuming all 1.8 ksi and all 120 psi, use this program to determine the dimensions L and b when (a) P 1000 lb and w 0, (b) P 0 and w 12.5 lb/in., (c) P 500 lb and w 12.5 lb/in.
SOLUTION Both the maximum shear and the maximum bending moment occur at A. We have VA P wL M A PL
1 2 wL 2
To satisfy the allowable normal stress requirement:
all
MA MA 3M A 2 1 S (8 ) 32b3 b b 6
3 MA b b 32 all
1/3
To satisfy the allowable shearing stress requirement: We use Equation (6.10), Page 378.
all
3V 3V 3 VA A2 2 A 2 b(8b) 16b
3 VA b b 16 all
1/ 2
Program For L 0, VA P and b > 0, while M A 0 and b 0. Starting with L 0 and using increments L 0.001 in., we increase L until b and b become equal. We then Print L and b.
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PROBLEM 6.C2 (Continued)
Program Outputs
For P 1000 lb, w 0.0 lb/in.
For P 0 lb, w 12.5 lb/in.
Increment 0.0010 in.
Increment 0.0010 in.
L 37.5 in., b 1.250 in.
L 70.3 in., b 1.172 in.
For P 500 lb, w 12.5 lb/in. Increment 0.0010 in.
L 59.8 in., b 1.396 in.
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bn
PROBLEM 6.C3
b2
A beam having the cross section shown is subjected to a vertical shear V. Write a computer program that, for loads and dimensions expressed in either SI or U.S. customary units, can be used to calculate the shearing stress along the line between any two adjacent rectangular areas forming the cross section. Use this program to solve (a) Prob. 6.10, (b) Prob. 6.12, (c) Prob. 6.22.
hn h2
V
h1
b1
SOLUTION 1.
Enter V and the number n of rectangles.
2.
For i 1 to n, enter the dimensions bi and hi .
3.
Determine the area Ai bi hi of each rectangle.
4.
Determine the elevation of the centroid of each rectangle:
yi
i
h
k
0.5hi
k 1
and the elevation y of the centroid of the entire section:
y 5.
i i
i
i
i
Determine the centroidal moment of inertia of the entire section: I
1
12 b h
3 i i
i
6.
A y A A i ( yi y ) 2
For each surface separating two rectangles i and i 1, determine Qi of the area below that surface:
Qi
i
A (y k
k
y)
k 1
7.
Select for ti the smaller of bi and bi 1. The shearing stress on the surface between the rectangles i and i 1 is
i
VQi Iti
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PROBLEM 6.C3 (Continued)
Program Outputs
Problem 6.10 Shearing force 10 kN y 75.000 mm above base
I 39.580 106 mm 4 Between Elements 1 and 2:
418.39 kPA Between Elements 2 and 3:
919.78 kPA
(a)
765.03 kPA
(b)
Between Elements 3 and 4:
Between Elements 4 and 5:
418.39 kPA Problem 6.12 Shearing force 10 kips y 2.000 in. I 14.58 in 4
Between Elements 1 and 2:
2.400 ksi Between Elements 2 and 3:
3.171 ksi
(a)
2.400 ksi
(b)
Between Elements 3 and 4:
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PROBLEM 6.C3 (Continued)
Program Outputs (Continued)
Problem 6.22 Shearing force 90 kN y 65.000 mm
I 58.133 106 mm 4 Between Elements 1 and 2:
23.222 MPA
(b)
30.963 MPA
(a)
Between Elements 2 and 3:
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PROBLEM 6.C4
y xn x y2 y1 x2 x1
A plate of uniform thickness t is bent as shown into a shape with a vertical plane of symmetry and is then used as a beam. Write a computer program that, for loads and dimensions expressed in either SI or U.S. customary units, can be used to determine the distribution of shearing stresses caused by a vertical shear V. Use this program (a) to solve Prob. 6.47, (b) to find the shearing stress at a Point E for the shape and load of Prob. 6.50, assuming a thickness t 14 in.
SOLUTION For each element on the right-hand side, we compute (for i 1 to n): Length of element Li ( xi xi 1 ) 2 ( yi yi 1 )2 Area of element Ai tLi where
t
1 in. 4
1 ( yi yi 1 ) 2
Distance from x axis to centroid of element yi Distance from x axis to centroid of section:
y Ai yi Ai Note that yn 0 and that xn 1 yn 1 0. Moment of inertia of section about centroidal axis:
1 I 2 Ai ( yi yi 1 ) 2 ( yi y )2 12 Computation of Q at Point P where stress is desired:
Q Ai ( yi y ) where sum extends to the areas located between one end of section and Point P. Shearing stress at P:
VQ It
Note: max occurs on neutral axis, i.e., for yP y .
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PROBLEM 6.C4 (Continued) Program Outputs
Part (a): I 0.5333 in 4
max 2.02 ksi
B 1.800 ksi
Part (b): I 22.27 in 4
E 194.0 psi
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PROBLEM 6.C5
y x1 x2
yn
y1
tn
O
y2 x
e
t2 t 1
The cross section of an extruded beam is symmetric with respect to the x axis and consists of several straight segments as shown. Write a computer program that, for loads and dimensions expressed in either SI or U.S. customary units, can be used to determine (a) the location of the shear center O, (b) the distribution of shearing stresses caused by a vertical force applied at O. Use this program to solve Prob. 6.70.
V
SOLUTION Since section is symmetric with x axis, computations will be done for top half. For i 1 to n 1: (Note: n 1 is the origin)
Enter ti , xi ,
yi
Compute length of each segment. For i 1 to n: xi xi 1 xi yi yi 1 yi L ( xi2 yi2 )1/ 2
Calculate moment of inertia I x . Consider each segment as made of 100 equal parts. For i 1 to n: Area Li ti /100 For j 1 to 100: y yi yi ( j 0.5)/100 I ( Area) y 2 Ix Ix I
PROPRIETARY MATERIAL. Copyright © 2015 McGraw-Hill Education. This is proprietary material solely for authorized instructor use. Not authorized for sale or distribution in any manner. This document may not be copied, scanned, duplicated, forwarded, distributed, or posted on a website, in whole or part. 1020
PROBLEM 6.C5 (Continued)
Since only top half was used,
I x 2I x Calculate shearing stress at ends of segments and shear forces in segments. For i 1 to n:
Area Li ti /100,
new next
For j 1 to 100: y yi yi ( j 0.5)/100 Q ( Area) y old new , Q Q Q
new VQ /I x ti ave 0.5( old new ) ave Force i (∆Area)
i VQ/I x ti ( adjacent )i VQ/I x ti 1
Qi Q
next ( adjacent )i Location of shear center. Calculate moment of shear forces about origin. For L 1 to n, ( Fx )i Forcei ( xi )/Li ( Fy )i Forcei (yi )/Li Moment i ( Fx )i yL ( Fy )i xi Moment Moment Moment i For whole section, moment 2(moment), Shear center is at
e Moment/V
PROPRIETARY MATERIAL. Copyright © 2015 McGraw-Hill Education. This is proprietary material solely for authorized instructor use.
Not authorized for sale or distribution in any manner. This document may not be copied, scanned, duplicated, forwarded, distributed, or posted on a website, in whole or part. 1021
PROBLEM 6.C5 (Continued)
Program Output
Problem 6.70 T(K) mm
X(K) mm
Y(K) mm
L(K) mm
1
6.00
60.62
0.00
70.00
2
6.00
0.00
35.00
35.00
3
6.00
0.00
0.00
Moment of inertia: I x 514487 mm 4 Junction of Segments
Q mm3
Shear 1000.000 N Tau Before MPa
Tau After MPa
Force in Segment kN
1 and 2
7350.00
2.38
2.38
335.01
2 and 3
11,025.00
3.57
3.57
666.27
Moment of shear forces about origin: M 20.309 N m counterclockwise Distance from origin to shear center: e 20.309 mm
PROPRIETARY MATERIAL. Copyright © 2015 McGraw-Hill Education. This is proprietary material solely for authorized instructor use.
Not authorized for sale or distribution in any manner. This document may not be copied, scanned, duplicated, forwarded, distributed, or posted on a website, in whole or part. 1022
tn
t2
t1
ti a1
t0
an
a2
ai
O a1
PROBLEM 6.C6 A thin-walled beam has the cross section shown. Write a computer program that, for loads and dimensions expressed in either SI or U.S. customary units, can be used to determine the location of the shear center O of the cross section. Use the program to solve Prob. 6.75.
ai a2
an
b2 e bi bn
SOLUTION Distribution of shearing stresses in element i. Let
V Shear in cross section I Centroidal moment of inertia of section
We have for shaded area
Q Ay ti (ai y )
ai y 2
1 ti (ai2 y 2 ) 2 QV V 2 (ai y 2 ) Iti 2I
Force exerted on element i.
Fi
ai ai
Vti 2I Vti I Vti I
(ti dy )
a a ai
ai ai
0
2 i
y 2 dy
2 i
y 2 dy
3 1 3 2V 3 ai 3 ai 3 I ti ai
PROPRIETARY MATERIAL. Copyright © 2015 McGraw-Hill Education. This is proprietary material solely for authorized instructor use.
Not authorized for sale or distribution in any manner. This document may not be copied, scanned, duplicated, forwarded, distributed, or posted on a website, in whole or part. 1023
PROBLEM 6.C6 (Continued)
The system of the forces Fi must be equivalent to V at shear center. F F :
M A M A :
Divide (2) by (1):
e
2V ti ai3 V 3 I 2V ti ai3bi eV 3 I
(1) (2)
ti ai3bi
ti ai3
Program Output
Problem 6.75 For Element 1:
t 0.75 in., a 4 in., b 0 For Element 2:
t 0.75 in., a 3 in., b 8 in. Answer:
e 2.37 in.
PROPRIETARY MATERIAL. Copyright © 2015 McGraw-Hill Education. This is proprietary material solely for authorized instructor use.
Not authorized for sale or distribution in any manner. This document may not be copied, scanned, duplicated, forwarded, distributed, or posted on a website, in whole or part. 1024