91751123 solucionario-capitulo-13-paul-e-tippens

Chapter 13. Elasticity Physics, 6th
Edition
Chapter 13. Elasticity
Elastic Properties of Matter
13-1. When a mass of 500 g is hung from a spring, the spring stretches 3 cm. What is the spring
constant? [ m = 0.500 kg; x = 0.03 m, F = W = mg ]
F = -kx;
2
(0.50 kg)(9.8 m/s )
0.03 m
F
k
x
= = ; k = 163 N/m
13-2. What will be the increase in stretch for the spring of Problem 13-1 if an additional 500-g
mass is hung blow the first? [ F = W = mg ]
2
(0.500 kg)(9.8 m/s )
163 N/m
F
x
k
∆
∆ = = ; ∆x = 3.00 cm
13-3. The spring constant for a certain spring is found to be 3000 N/m. What force is required to
compress the spring for a distance of 5 cm?
F = kx = (3000 N/m)(0.05 m); F = 150 N
13-4. A 6-in. spring has a 4-lb weight hung from one end, causing the new length to be 6.5 in.
What is the spring constant? What is the strain? [ ∆x = 6.5 in. – 6.0 in. = 0.50 in. ]
(4 lb)
;
0.5 in.
F
k
x
= = k = 8.00 lb/in.
0.50 in.
6.00 in.
L
Strain
L
∆
= = ; Strain = 0.0833
13-5. A coil spring 12 cm long is used to support a 1.8-kg mass producing a strain of 0.10. How far
did the spring stretch? What is the spring constant?
; ( ) (12.0 cm)(0.10)o
L
Strain L L strain
L
∆
= ∆ = = ; ∆L = 1.20 cm
2
(1.8 kg)(9.8 m/s )
;
0.0120 m
F
k
L
∆
= =
∆
k = 1470 N/m
174

Edition
13-6. For the coil of Problem 13-5, what total mass should be hung if an elongation of 4 cm is
desired?
F = mg = kx; 2
(1470 N/m)(0.04 m)
9.80 m/s
kx
m
g
= = ; m = 6.00 kg
Young’s Modulus
13-7. A 60-kg weight is suspended by means of a cable having a diameter of 9 mm. What is the
stress? [ F = mg = (60 kg)(9.8 m/s2
); F = 588 N; D = 0.009 m ]
2 2
-5 2(0.009 m)
6.36 x 10 m
4 4
D
A
π π
= = = ;
2
588 N
0.00707 m
F
Stress
A
= = ; Stress = 9.24 x 106
Pa
13-8. A 50-cm length of wire is stretched to a new length of 50.01 cm. What is the strain?
∆L = 50.01 – 50 cm;
0.01 cm
50 cm
L
Strain
L
∆
= = ; Strain = 2.00 x 10-4
13-9. A 12-m rod receives a compressional strain of -0.0004. What is the new length of the rod?
; ( ) (12.0 m)(-0.0004)o
L
Strain L L strain
L
∆
= ∆ = = ; ∆L = -0.00480 m
L = Lo + ∆L = 12.000 m – 0.00480 m; L = 11.995 m
13-10. Young’s modulus for a certain rod is 4 x 1011
Pa. What strain will be produced by a tensile
stress of 420 Mpa?
6
11
420 x 10 Pa
;
4 x 10 Pa
Stress Stress
Y Strain
Strain Y
= = =
Strain = 1.05 x 10-3
175

Edition
13-11. A 500-kg mass is hung from the end of a 2-m length of metal wire 1 mm in diameter. If
the wire stretches by 1.40 cm, what are the stress and strain? What is Young’s modulus for
this metal? [ F = mg = (500 kg)(9.8 m/s2
); F = 4900 N; D = 0.001 m; ∆L = 0.014 m ]
2 2
-7 2(0.001 m)
7.85 x 10 m
4 4
D
A
π π
= = =
-7 2
4900 N
7.85 x 10 m
F
Stress
A
= = ; Stress = 6.24 x 109
Pa
0
0.014 m
2.00 m
L
Strain
L
∆
= = ; Strain = 7.00 x 10-3
9
-3
6.24 x 10 Pa
7 x 10
Stress
Y
Strain
= = ; Y = 8.91 x 1011
Pa
13-12. A 16 ft steel girder with a cross-sectional area of 10 in.2
supports a compressional load of
20 tons. What is the decrease in length of the girder? [ Y = 30 x 106
Pa; 1 ton = 2000 lb ]
6 2 2
( 40,000 lb)(16 ft)(12 in/ft)
;
(30 x 10 lb/in. )(10 in. )
FL FL
Y L
A L YA
−
= ∆ = =
∆
; ∆L = - 0.0256 in.
13-13. How much will a 60 cm length of brass wire, 1.2 mm in diameter, elongate when a 3-kg
mass is hung from an end? [ Y = 89.6 x 109
Pa; D = 0.0012 m; Lo = 0.60 m; m = 3 kg ]
2 2
-6 2(0.0012 m)
1.13 x 10 m
4 4
D
A
π π
= = = ;
F = (3 kg)(9.8 m/s2
) = 29.4 N; ;
FL
Y
A L
=
∆
9 -6 2
(29.4 N)(0.60 m)
(89.6 x 10 )(1.13 x 10 m )
FL
L
YA
∆ = = ; ∆L =1.74 x 10-4
m
176

Edition
*13-14. A wire of cross-section 4 mm2
is stretched 0.1 mm by a certain weight. How far will a wire
of the same material and length stretch if is cross-sectional area is 8 mm2
and the same
weight is attached?
1 1 2 2
FL FL
Y
A L A L
= =
∆ ∆
; A1 ∆L1 = A2 ∆L2
2
1 1
2 2
2
(4 mm )(0.10 mm)
(8 mm )
A L
L
A
∆
∆ = = ; ∆L2 = 0.0500 mm
13-15. A wire 15 ft long and 0.1 in.2
in cross-section is found to increase its length by 0.01 ft under
a tension of 2000 lb. What is Young’s modulus for this wire? Can you identify the material?
2
(2000 lb)(15 ft)
;
(0.10 in. )(0.01 ft)
FL
Y
A L
= =
∆
Y = 30 x 106
lb/in.2
, steel
Shear Modulus
13-16. A shearing force of 40,000 N is applied to the top of a cube that is 30 cm on a side. What
is the shearing stress? [ A = (0.30 m)(0.30 m) = 0.09 m2
]
2
40,000 N
0.09 m
F
Stress
A
= = ; Stress = 4.44 x 105
Pa
*13-17. If the cube in Problem 13-16 is made of copper, what will be the lateral displacement of the
upper surface of the cube?
5
9
/ / 4.44 x 10 Pa
;
42.3 x 10 Pa
F A F A
S
S
φ
φ
= = = ; φ = 1.05 x 10-5
rad
; (0.30 m)(
d
d l
l
φ φ= = = 1.05 x 10-5
rad); d = 3.15 µm
177

Edition
13-18. A shearing force of 26,000 N is distributed uniformly over the cross-section of a pin 1.3 cm
in diameter. What is the shearing stress. [A = πD2
/4 ]
2 2
-4 2(0.0130 m)
1.33 x 10 m
4 4
D
A
π π
= = = ;
-4 2
26,000 N
1.33 x 10 m
F
Stress
A
= = ; Stress = 1.96x 108
Pa
13-19. An aluminum rod 20 mm in diameter projects 4.0 cm from the wall. The end of the bolt is
subjected to a shearing force of 48,000 N. Compute the downward deflection.
2 2
-4 2(0.020 m)
3.14 x 10 m
4 4
D
A
π π
= = = ; l = 0.04 m; F = 48000 N
/ /
;
/
F A F A Fl Fl
S d
d l Ad SAφ
= = = =
9 -4 2
(48,000 N)(0.04 m)
(23.7 x 10 Pa)(3.14 x 10 m )
d = ; d = 2.58 x 10-4
m
13-20. A steel rod projects 1.0 in. above a floor and is 0.5 in. in diameter. The shearing force F is
6000 lb and the shear modulus is 11.6 x 106
lb/in.2
. What is the shearing stress and what is
horizontal deflection?
2 2
2(0.50 in.)
0.196 in.
4 4
D
A
π π
= = = ; l = 1.0 in.; F = 6000 lb
2
6,000 lb
0.196 in.
F
Stress
A
= = ; Stress = 3.06 x 104
lb/in.2
6 2 2
(6000 lb)(1.0 in.)
(30 x 10 lb/in. )(0.196 in. )
Fl
d
SA
= = ; d = 1.02 x 10-3
in.
178

Edition
13-21. A 1500-kg load is supported at the end of a 5-m aluminum beam as shown in Fig. 13-9.
The beam has a cross-sectional area of 26 cm2
and the shear modulus is 23,700 MPa. What
is the shearing stress and the downward deflection of the beam?
A = 26 cm2
(10-4
m2
/cm2
) = 2.60 x 10-3
m2
; S = 23.7 x 109
Pa; l = 5 m
2
-3 2
(1500 kg)(9.8 m/s )
2.60 x 10 m
F
Stress
A
= = ; Stress = 5.65 x 106
Pa
6
9
/ / 5.65 x 10 Pa
;
23.7 x 10 Pa
F A F A
S
S
φ
φ
= = = ; φ = 2.39 x 10-4
rad
-4
; (5.0 m)(2.39 x 10 rad)
d
d l
l
φ φ= = = ; d = 1.19 mm
13-22. A steel plate 0.5 in. thick has an ultimate shearing strength of 50,000 lb/in.2
. What force
must be applied to punch a ¼-in. hole through the plate?
2 2
2(0.25 in.)
0.0491 in.
4 4
D
A
π π
= = = ;
2
50,000 lb/in.
F
Stress
A
= =
F = (50,000 lb/in.2
)(0.0491 in.2
); F = 2454 lb
Bulk Modulus
13-23. A pressure of 3 x 108
Pa is applied to a block of volume 0.500 m3
. If the volume decreases
by 0.004 m3
, what is the bulk modulus? What is the compressibility?
8
3 3
(3 x 10 Pa)
/ 0.004 m / 0.500 m
P
B
V V
− −
= =
∆ −
; B = 37.5 x 109
Pa
9
1 1
37.5 x 10 Pa
k
B
= = ; k = 2.67 x 10-11
Pa-1
179

Edition
*13-24. The bulk modulus for a certain grade of oil is 2.8 x 1010
Pa. What pressure is required to
decrease its volume by a factor of 1.2 percent? [ ∆V/V = -1.2% = -0.012 ]
( ) ( )10
; - 2.8 x 10 Pa -0.012
/
P VB P B
VV V
− ∆= = =
∆
; P = 3.36 x 108
Pa
*13-25. A solid brass sphere (B = 35,000 Mpa) of volume 0.8 m3
is dropped into the ocean to a depth
where the water pressure is 20 Mpa greater than it is at the surface. What is the change in
volume of the sphere? [ P = 20 x 106
Pa ]
6 3
9
-PV (20 x 10 Pa)(0.8 m )
; V =
/ B 35 x 10 Pa
P
B
V V
− −
= ∆ =
∆
; ∆V = -4.57 x 10-4
m3
.
13-26. A certain fluid compresses 0.40 percent under a pressure of 6 MPa. What is the
compressibility of this fluid? [ ∆V/V = 0.04% = 0.0004 ]
6
/ 0.0004
6 x 10 Pa
V V
k
P
∆ −
= =
− −
; k = 6.67 x 10-11
Pa-1
13-27. What is the fractional decrease in the volume of water when it is subjected to a pressure of 15
MPa?
6
9
V -P (15 x 10 Pa)
; =
/ V B 2.10 x 10 Pa
P
B
V V
− ∆ −
= =
∆
; ∆V/V = -7.14 x 10-3
Challenge Problems
13-28. A 10-m steel wire, 2.5 mm in diameter, stretches a distance of 0.56 mm when a load is
attached to its end. What was the mass of the load?
2 2
-6 2(0.0025 m)
4.91 x 10 m
4 4
D
A
π π
= = = ; F = mg; ;
FL mgL
Y
A L A L
= =
∆ ∆
180

Edition
13-28. (Cont.)
9 -6
2
(207 x 10 Pa)(4.91 x 10 m)(0.00056 m)
(9.8 m/s )(10 m)
YA L
m
gL
∆
= = ; m = 5.81 kg
13-29. A shearing force of 3000 N is applied to the upper surface of a copper cube 40 mm on a
side. If S = 4.2 x 1010
Pa., what is the shearing angle? [A = (0.04 m)2
= 1.6 x 10-3
m2
. ]
-3 2 10
/ 3000 N
;
(1.6 x 10 m )(4.2 x 10 Pa)
F A F
S
AS
φ
φ
= = = ; φ = 4.46 x 10-5
rad
13-30. A solid cylindrical steel column is 6 m long and 8 cm in diameter. What is the decrease in
length if the column supports a 90,000-kg load?
2 2
-3 2(0.08 m)
5.03 x 10 m
4 4
D
A
π π
= = = ; F = W = mg; L = 6.00 m
F = (90,000 kg)(9.8 m/s2
) = 8.82 x 105
N; ;
FL
Y
A L
=
∆
5
9 -3 2
(8.82 x 10 N)(6.0 m)
(207 x 10 )(5.03 x 10 m )
FL
L
YA
∆ = = ; ∆L = -5.08 x 10-3
m
13-31. A piston, 8 cm in diameter, exerts a force of 2000 N on 1 liter of benzene. What is the
decrease in volume of the benzene?
2 2
-3 2(0.08 m)
5.03 x 10 m
4 4
D
A
π π
= = = ;
5
-3 2
2000 N
3.98 x 10 Pa
5.03 x 10 m
F
P
A
= = =
5 3
9
-PV (3.98 x 10 Pa)(0.001 m )
; V =
/ B 1.05 x 10 Pa
P
B
V V
− −
= ∆ =
∆
; ∆V = -3.79 x 10-7
m3
.
13-32. How much will a 600-mm length of brass wire, 1.2 mm in diameter, stretch when a 4-kg
mass is hung from its end?
2 2
-6 2(0.0012 m)
1.13 x 10 m
4 4
D
A
π π
= = = ; F = (4 kg)(9.8 m/s2
) = 39.2 N
181

Edition
13-32. (Cont.) 9 -6 2
(39.2 N)(0.60 m)
(89.6 x 10 )(1.13 x 10 m )
FL
L
YA
∆ = = ; ∆L =2.32 x 10-4
m
13-33. A solid cylindrical steel column is 12 feet tall and 6 in. in diameter. What load does it
support if its decrease in length is -0.0255 in.?
2 2
2(6 in.)
28.3 in.
4 4
D
A
π π
= = = ;
FL
Y
A L
=
∆
; L = 12 ft = 144 in.
6 2 2
(30 x 10 lb/in. )(28.3 in. )(0.0255 in.)
(144 in.)
YA L
F
L
∆
= = ; F = 1.50 x 105
lb
13-34. Compute the volume contraction of mercury if its original volume of 1600 cm3
is subjected
to a pressure of 400,000 Pa. [ 1600 cm3
= 1.6 x 10-3
m3
]
-3 3
9
(400,000 Pa)(1.6 x 10 m )
; V
/ 27.0 x 10 Pa
P PV
B
V V B
− − −
= ∆ = =
∆
; ∆V = -2.37 x 10-8
m3
.
*13-35. What is the minimum diameter of a brass rod if it is to undergo a 400 N tension without
exceeding the elastic limit? [ Elastic limit = 379 x 106
Pa ]
2
6
6
379 x 10 Pa;
4 379 x 10 Pa
F D F
A
A
π
= = = ;
2
6
4
(379 x 10 Pa)
F
D
π
=
2 -6 2
6
4(400 N)
1.34 x 10 m
(379 x 10 Pa)
D
π
= = ; D = 1.16 mm
13-36. A cubical metal block 40 cm on a side is given a shearing force of 400,000 N at the top
edge. What is the shear modulus if the upper edge deflects a distance of 0.0143 mm.
-50.0143 mm
3.575 x 10
400 mm
d
l
φ = = = ; A = (0.40 m)2
= 0.160 m2
-3 2
/ 400,000 N
(3.575 x 10 )(0.160 m )
F A
S
φ
= = ; S = 6.99 x 1010
Pa
182

Edition
13-37. A steel piano wire has an ultimate strength of about 35,000 lb/in.2
. How large a load can a
0.5-in.-diameter steel wire hold without breaking?
2 2
2(0.5 in.)
0.196 in.
4 4
D
A
π π
= = = ;
2
35,000 lb/in.
F
A
=
F = (35,000 lb/in.2
)(0.196 in.2
); F = 6870 lb
Critical Thinking Questions
*13-38. A metal wire increases its length by 2 mm when subjected to tensile force. What
elongation can be expected from this same force if the diameter of the wire was reduced to
one-half of its initial value? Suppose the metal wire maintains its diameter, but doubles its
length. What elongation would be expected for the same load?
2 2 2
1 1 2 22
4 4
; ; ;
FL FL FL FL
Y L L D L D L D
A L AY D Y Yπ π
= ∆ = = ∆ = ∆ = ∆
∆
22
1
2 1 2
2
D 2 mm
(2 mm)
2D 4
D
L L
D
   
∆ = ∆ = =   
  
; ∆L2 = 0.500 mm
Since ∆L ∝ L, doubling L would also double ∆L: ∆L2 = 4.00 mm
13-39. A cylinder 4 cm in diameter is filled with oil. What total force must be exerted on the oil to
produce a 0.8 percent decrease in volume? Compare the forces necessary if the oil is
replaced by water? By mercury? [ ∆V/V = -0.008 ]
2 2
-3 2(0.04 m)
1.26 x 10 m
4 4
D
A
π π
= = = ;
( )/
P F
B
VV V A
V
− −
= =
∆∆
-3
;
(1.26 x 10 )( 0.008)
F
B
−
=
−
F = (1.005 x 10-5
m2
)B
For oil: F = (1.005 x 10-5
m2
)(1.7 x 109
Pa); Foil = 17,090 N
183

Edition
13-39. (Cont.) For water: F = (1.005 x 10-5
m2
)(2.1 x 109
Pa); Fw = 21,100 N
For mercury: F = (1.005 x 10-5
m2
)(27 x 109
Pa); Fm = 271,400N
*13-40. A 15 kg ball is connected to the end of a steel wire 6 m long and 1.0 mm in diameter. The
other end of the wire is connected to a high ceiling, forming a pendulum. If we ignore the
small change in length, what is the maximum speed that the ball may have as it passes
through its lowest point without exceeding the elastic limit? How much will the length of
the wire increase under the limiting stress? What effect will this change have on the
maximum velocity? [ D = 1 mm = 0.001 m ]
2 2
-7 2(0.001 m)
7.85 x 10 m
4 4
D
A
π π
= = =
The maximum speed is that for which the tension causes the
stress to exceed the elastic limit for steel (2.48 x 108
Pa).
8 8 -7 2
2.48 x 10 Pa; (2.48 x 10 Pa)(7.85 x 10 m )
F
T F
A
= = = ; Tmax = 195 N
2
2 2 ( )
; ;
mv R T mg
T mg mv TR mgR v
R m
−
− = = − = ; mg = (15 kg)(9.8 m/s2
) = 147 N
(6 m)(195 N - 147 N)
15 kg
v = ; vmax = 4.37 m/s
-7 2 9
(195 N)(6 m)
;
(7.85 x 10 m )(207 x 10 Pa)
FL FL
Y L
A L AY
= ∆ = =
∆
; ∆L = 7.19 mm
The stretch ∆L of the wire under this load will increase the radius R of the path from
6.000 m to 6.007 m. The larger radius provides a smaller centripetal force so that (T
= Fc + mg) is reduced. That would then permit a slightly greater maximum velocity up
to the point where the tension again reaches the maximum allowed.
184
6 m
v
mg
T

Edition
*13-41. A cylinder 10 in. in diameter is filled to a height of 6 in. with glycerin. A piston of the
same diameter pushes downward on the liquid with a force of 800 lb. The compressibility
of glycerin is 1.50 x 10-6
in.2
/lb. What is the stress on the glycerin? How far down does the
piston move? [ R = 5 in.; A = πR2
= 78.5 in.2
]
2
800 lb
;
78.5 in.
F
stress P
A
= = = 2
10.2 lb/in.P =
Vo = Aho = (78.5 in.2
)(6 in.) = 471.2 in.3
;
0
V
k
PV
∆
= −
∆V = -kPVo = -(1.5 x 10-6
in.2
/lb)(10.2 lb/in.2
)(471.2 in.3
); ∆V = 0.00721 in.3
∆V = A ∆h
3
2
0.00721 in.
78.5 in.
V
h
A
∆
∆ = = ; ∆ h = 9.18 x 10-5
in.
*13-42. The twisting of a cylindrical shaft (Fig. 13-10) through an angle θ is an example of a
shearing strain. An analysis of the situation shows that the angle of twist in radians is
θ
τ
π
=
2
4

SR
where τ is the applied torque, l is the length of cylinder, R is the radius of cylinder, and
S is the shear modulus. If a torque of 100 lb ft is applied to the end of a cylindrical steel
shaft 10 ft long and 2 in. in diameter, what will be the angle of twist in radians?
Be careful of the consistent units: τ = 100 lb ft = 1200 lb in.; l = 10 ft = 120 in.
4 6 2 4
2 2(1200 lb in.)(120 in.)
(12 x 10 lb/in. )(1 in.)
l
SR
τ
θ
π π
= = ; θ = 0.00764 rad
185

Edition
*13-43. An aluminum shaft 1 cm in diameter and 16 cm tall is subjected to a torsional shearing
stress as explained in the previous problem. What applied torque will cause a twist of 10
as
defined in Fig. 13-10. [ θ = 10
= 0.01745 rad; R = (D/2) = 0.005 m ]
4 9 4
4
2 (0.01745 rad)(23.7 x 10 Pa)(0.005 m)
;
2 2(0.16 m)
l SR
SR l
τ πτ π
θ τ
π
= = = τ = 2.54 N m
*13-44. Two sheets of aluminum on an aircraft wing are to be held together by aluminum rivets of
cross-sectional area 0.25 in.2
. The shearing stress on each rivet must not exceed one-tenth
of the elastic limit for aluminum. How many rivets are needed if each rivet supports the
same fraction of the total shearing force of 25,000 lb?
The maximum stress allowed for each rivet is
2 21 (19,000 lb/in. ) 1900 lb/in.
10
F
A
= =
This means a shearing force of: F = (1900 lb/in.2
)(0.25 in.2
) = 475 lb/rivet
Now we can find the number of rivets N as follows:
25,000 lb
52.7 rivets;
475 lb/rivet
N = = N = 53 rivets
186

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