18 solution q. E. D



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Chapter 18

F
Ans:
v
=
6.11 rad
>
s


925
© 2016 Pearson Education, Inc., Upper Saddle River, NJ. All rights reserved. This material is protected under all copyright laws as they currently 
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher. 
Solution
Kinetic Energy. Since the rod starts from rest, T
1
=
0. The mass moment of inertia 
of the rod about O is I
0
=
1
12
(10)
(
3
2
)
+
10
(
1.5
2
)
=
30.0 kg
#
m
2
. Thus, 
T
2
=
1
2
I

v
2
=
1
2
(30.0) 
v
2
=
15.0 
v
2
Work. Referring to the FBD of the rod, Fig. a, when the rod undergoes an angular 
displacement 
u
, force F does positive work whereas W does negative work. When 
u
=
180
°
S
W
=
3 m and S
F
=
u
r
=
p
(3)
=
3
p
m. Thus 
U
F
=
150(3
p
)
=
450
p
J
U
W
=
-
10(9.81)(3)
=
-
294.3 J
Principle of Work and Energy. Applying Eq. 18, 
T
1
+
Σ
U
1
-
2
=
T
2
0
+
450
p
+
(
-
294.3)
=
15.0 
v
2
v
=
8.6387 rad
>
s
=
8.64 rad
>

Ans.
18–14.
The 10-kg uniform slender rod is suspended at rest when 
the force of F
=
150 N is applied to its end. Determine the 
angular velocity of the rod when it has rotated 180° 
clockwise from the position shown. The force is always 
perpendicular to the rod.
O
3 m
F
Ans:
v
=
8.64 rad
>
s


926
© 2016 Pearson Education, Inc., Upper Saddle River, NJ. All rights reserved. This material is protected under all copyright laws as they currently 
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher. 
Solution
Kinetic Energy. Since the assembly is released from rest, initially, 
T
1
=
0. The mass moment of inertia of the assembly about A is 
I
A
=
c
1
12
(3)
(
2
2
)
+
3
(
1
2
)
d
+
c
1
2
(10)
(
0.4
2
)
+
10
(
2.4
2
)
d
=
62.4 kg
#
m
2
. Thus, 
T
2
=
1
2
I
A
v
2
=
1
2
(62.4) 
v
2
=
31.2 
v
2
Work. Referring to the FBD of the assembly, Fig. a. Both W
r
and W
d
do positive 
work, since they displace vertically downward S
r
=
1 m and S
d
=
2.4 m, respectively. 
Also, couple moment M does positive work
U
W
r
=
W
r
S
r
=
3(9.81)(1)
=
29.43 J
U
W
d
=
W
d
S
d
=
10(9.81)(2.4)
=
235.44 J
U
M
=
M
u
=
30 
a
p
2
b
=
15
p
J
Principle of Work and Energy. 
T
1
+
Σ
U
1
-
2
=
T
2
0
+
29.43
+
235.44
+
15
p
=
31.2 
v
2
v
=
3.1622 rad
>
s
=
3.16 rad
>

Ans.
18–15.
The pendulum consists of a 10-kg uniform disk and a 3-kg 
uniform slender rod. If it is released from rest in the position 
shown, determine its angular velocity when it rotates 
clockwise 90°.
2 m
M
30 N 
m
A
B
D
0.8 m
Ans:
v
=
3.16 rad
>
s


927
© 2016 Pearson Education, Inc., Upper Saddle River, NJ. All rights reserved. This material is protected under all copyright laws as they currently 
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher. 
*18–16.
A motor supplies a constant torque 
to the
winding drum that operates the elevator. If the elevator has a
mass of 900 kg, the counterweight has a mass of 200 kg, and
the winding drum has a mass of 600 kg and radius of gyration
about its axis of 
determine the speed of the
elevator after it rises 5 m starting from rest. Neglect the mass
of the pulleys.
k
=
0.6 m,
M
=
6 kN
#
m
SOLUTION
Ans.
v
=
2.10 m s
+
1
2
[600(0.6)
2
](
v
0.8
)
2
0
+
6000(
5
0.8
)
-
900(9.81)(5)
+
200(9.81)(5)
=
1
2
(900)(v)
2
+
1
2
(200)(v)
2
T
1
+ ©
U
1
-
2
=
T
2
u
=
s
r
=
5
0.8
v
E
=
v
C
M
D
C
0.8 m
Ans:
v
=
2.10 m
>
s


928
© 2016 Pearson Education, Inc., Upper Saddle River, NJ. All rights reserved. This material is protected under all copyright laws as they currently 
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher. 
18–17.
s
O
r
u
v
0
The center of the thin ring of mass is given an angular
velocity of . If the ring rolls without slipping, determine
its angular velocity after it has traveled a distance of down
the plane. Neglect its thickness.
v
0
SOLUTION
Ans.
v
=
A
v
0
2
+
g
r
2
s
sin
u
1
2
(
mr
2
+
mr
2
)
v
0
2
+
mg
(
s
sin
u
)
=
1
2
(
mr
2
+
mr
2
)
v
2
T
1
+ ©
U
1
-
2
=
T
2
Ans:
v
=
A
v
0
2
+
g
r
2
s sin 
u


929
© 2016 Pearson Education, Inc., Upper Saddle River, NJ. All rights reserved. This material is protected under all copyright laws as they currently 
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher. 
18–18.
The wheel has a mass of 100 kg and a radius of gyration
of 
k
O
=
0.2 m. A motor supplies a torque 
M
=
(40
u
+
900) N
#
m, where 
u
is in radians, about the 
drive shaft at O. Determine the speed of the loading car, 
which has a mass of 300 kg, after it travels s
=
4 m. Initially 
the car is at rest when s
=
0 and 
u
=
0
°
. Neglect the mass of 
the attached cable and the mass of the car’s wheels.
Solution
s
=
0.3
u
=
4
u
=
13.33 rad
T
1
+
Σ
U
1
-
2
=
T
2
[0
+
0]
+
L
13.33
0
(40
u
+
900)d
u
-
300(9.81) sin 30
°
(4)
=
1
2
(300)
v
C
2
+
1
2
c
100(0.20)
2
d a
v
C
0.3
b
2
v
C
=
7.49 m
>

Ans.
Ans:
v
C
=
7.49 m
>
s
30
M
s
0.3 m
O


930
© 2016 Pearson Education, Inc., Upper Saddle River, NJ. All rights reserved. This material is protected under all copyright laws as they currently 
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher. 
18–19.
The rotary screen S is used to wash limestone. When empty 
it has a mass of 800 kg and a radius of gyration of 
k
G
=
1.75 m. Rotation is achieved by applying a torque of 
M
=
280 N
#
m about the drive wheel at A. If no slipping 
occurs at A and the supporting wheel at B is free to roll, 
determine the angular velocity of the screen after it has 
rotated 5 revolutions. Neglect the mass of A and B.
0.3 m
A
S
M
280 N 
m
B
2 m
Solution
T
S
+
Σ
U
1
-
2
=
T
2
0
+
280(
u
A
)
=
1
2
[800(1.75)
2

v
2
u
S
(2)
=
u
A
(0.3)
5(2
p
)(2)
=
u
A
(0.3)
u
A
=
209.4 rad
Thus
v
=
6.92 rad
>

Ans.
Ans:
v
=
6.92 rad
>
s


931
© 2016 Pearson Education, Inc., Upper Saddle River, NJ. All rights reserved. This material is protected under all copyright laws as they currently 
exist. No portion of this material may be reproduced, in any form or by any means, without permission in writing from the publisher. 
*18–20.
A
B
45°
600 mm
P
200 N
u
If 
and the 15-kg uniform slender rod starts from
rest at 
, determine the rod’s angular velocity at the
instant just before 
.
u
=
45°
u
=

P
=
200 N
SOLUTION
Kinetic Energy and Work: Referring to Fig. a,
Then
Thus,
The mass moment of inertia of the rod about its mass center is 
. Thus, the final kinetic energy is
Since the rod is initially at rest,
. Referring to Fig. b,
and 
do no work,
while does positive work and 
does negative work. When 
,
displaces
through a horizontal distance 
and 
displaces vertically upwards
through a distance of 
, Fig. c. Thus, the work done by and 
is
Principle of Work and Energy:
Ans.
v
2
=
4.97 rad
>
s
0
+
[120
-
31.22]
=
3.6
v
2
2
T
1
+ ©
U
1
-
2
=
T
2
U
W
= -
Wh
= -
15(9.81)(0.3 sin 45°)
= -
31.22 J
U
P
=
Ps
P
=
200(0.6)
=
120 J

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