Mechanical Engineering Chapter 8 Homework Neglect Rolling Resistance The Wheels The Surface

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page-pf1
864
8–118.
The pivot bearing is subjected to a parabolic pressure
distribution at its surface of contact. If the coefficient of
static friction is ,determine the torque Mrequired to
overcome friction and turn the shaft if it supports an axial
force P.
ms
SOLUTION
The differential are
P=LpdA=Lp0
¢
1-r2
R2
(rdu)(dr)=p0L2p
0
duLR
0
r
¢
1-r2
R2
dr
dA =(rdu)(dr)
Ans:
page-pf2
865
8–119.
SOLUTION
Frictional Force on Journal Bearing: Here,
Then the radius of friction circle is
fs=tan-1ms=tan-10.15 =8.531°.
A disk having an outer diameter of 120 mm fits loosely over
a fixed shaft having a diameter of 30 mm. If the coefficient
of static friction between the disk and the shaft is
and the disk has a mass of 50 kg, determine the smallest
vertical force Facting on the rim which must be applied to
the disk to cause it to slip over the shaft.
ms=0.15
F
page-pf3
*8–120.
The 4-lb pulley has a diameter of 1 ft and the axle has a
diameter of 1 in. If the coefficient of kinetic friction between
the axle and the pulley is m
k=0.20,
determine the vertical
force P on the rope required to lift the 20-lb block at
constant velocity. 6 in.
P
Ans:
SOLUTION
Frictional Force on Journal Bearing. Here f
k=
tan
-1
m
k=
tan
-1
0.2
=
11.3099
°
.
Then the radius of the friction circle is
page-pf4
867
8–121.
Solve Prob. 8–120 if the force P is applied horizontally to
the left.
6 in.
P
SOLUTION
Frictional Force on Journal Bearing. Here f
k=
tan
-1
m
k=
tan
-1
0.2
=
11.3099
°
.
Then the radius of the friction circle is
Equations of Equilibrium. Referring to the FBD of the pulley shown in Fig. a.
a
+ΣMO=0;
P(6) -20(6) -R(0.09806) =0
page-pf5
868
8–122.
SOLUTION
Frictional Force on Journal Bearing:Here,
Then the radius of friction circle is
fs=tan-1ms=tan-10.21 =11.86°.
Determine the tension Tin the belt needed to overcome
the tension of 200 lb created on the other side. Also, what
are the normal and frictional components of force
developed on the collar bushing? The coefficient of static
friction is ms=0.21.
1.125 in.
2 in.
page-pf6
869
8–123.
If a tension force is required to pull the 200-lb
force around the collar bushing, determine the coefficient
of static friction at the contacting surface.The belt does not
slip on the collar.
T=215 lb
SOLUTION
Equation of Equilibrium:
Frictional Force on Journal Bearing:The radius of friction circle is
and the coefficient of static friction is
1.125 in.
2 in.
Ans:
page-pf7
870
*8–124.
The uniform disk fits loosely over a fixed shaft having a
diameter of 40 mm. If the coefficient of static friction
between the disk and the shaft is m
s=0.15,
determine the
smallest vertical force P, acting on the rim, which must be
applied to the disk to cause it to slip on the shaft. The disk
has a mass of 20 kg.
150 mm
40 mm
P
Ans:
SOLUTION
Frictional Force on Journal Bearing. Here, f
k=
tan
-1
m
s=
tan
-1
0.15
=
8.5308
°
.
Then the radius of the friction circle is
page-pf8
8–125.
The 5-kg skateboard rolls down the 5° slope at constant
speed. If the coefficient of kinetic friction between the
12.5-mm diameter axles and the wheels is
determine the radius of the wheels. Neglect rolling resistance
of the wheels on the surface. The center of mass for the
skateboard is at G.
SOLUTION
Referring to the free-body diagram of the skateboard shown in Fig. a, we have
The effect of the forces acting on the wheels can be represented as if these forces are
acting on a single wheel as indicated on the free-body diagram shown in Fig. b.We have
mk=0.3,
250 mm
75 mm
300 mm
G
5
Ans:
page-pf9
872
8–126.
The bell crank fits loosely into a 0.5-in-diameter pin.
Determine the required force Pwhich is just sufficient to
rotate the bell crank clockwise.The coefficient of static
friction between the pin and the bell crank is .ms=0.3
SOLUTION
Thus, the magnitude of Ris
P
10 in.
12 in.
50 lb
45
Ans:
page-pfa
8–127.
SOLUTION
Thus, the magnitude of Ris
The bell crank fits loosely into a 0.5-in-diameter pin. If
P= 41 lb, the bell crank is then on the verge of rotating
counterclockwise. Determine the coefficient of static
friction between the pin and the bell crank.
P
10 in.
12 in.
50 lb
45
Ans:
page-pfb
*8–128.
SOLUTION
The vehicle has a weight of 2600 lb and center of gravity at
G. Determine the horizontal force Pthat must be applied to
overcome the rolling resistance of the wheels.The
coefficient of rolling resistance is 0.5 in. The tires have a
diameter of 2.75 ft.
G
5ft
P
2ft
2.5 ft
page-pfc
8–129.
The tractor has a weight of 16 000 lb and the coefficient of
rolling resistance is a= 2 in. Determine the force Pneeded
to overcome rolling resistance at all four wheels and push it
forward.
SOLUTION
2 ft
2 ft
G
P
page-pfd
8–130.
The handcart has wheels with a diameter of 6 in. If a crate
having a weight of 1500 lb is placed on the cart, determine
the force Pthat must be applied to the handle to overcome
the rolling resistance.The coefficient of rolling resistance is
0.04 in. Neglect the weight of the cart.
P
5
4
3
SOLUTION
+c©Fy=0; N-1500 -Pa3
5b=0
Ans:
page-pfe
877
8–131.
The cylinder is subjected to a load that has a weight W.
If the coefficients of rolling resistance for the cylinders
top and bottom surfaces are and ,respectively,
show that a horizontal force having a magnitude of
is required to move the load and
thereby roll the cylinder forward. Neglect the weight of the
cylinder.
P=[W(aA+aB)]>2r
aB
aA
SOLUTION
:
+©F
x=0; (RA)x-P=0(RA)x=P
W
P
r
A
B
page-pff
878
*8–132.
The 1.4-Mg machine is to be moved over a level surface
using a series of rollers for which the coefficient of rolling
resistance is 0.5 mm at the ground and 0.2 mm at the bottom
surface of the machine. Determine the appropriate
diameter of the rollers so that the machine can be pushed
forward with a horizontal force of P = 250 N. Hint: Use
the result of Prob. 8–131.
SOLUTION
P
Ans:

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