Vector Mechanics For Engineers
Vector Mechanics For Engineers
12th Edition
ISBN: 9781259977237
Author: BEER
Publisher: MCG
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Textbook Question
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Chapter 17.1, Problem 17.12P

Solve Prob. 17.11, assuming that the 6 N m couple is applied to gear B.

Expert Solution
Check Mark
To determine

(a)

Number of revolutions of gear C.

Answer to Problem 17.12P

Number of revolutions of gear C is θC=58.07rev

Explanation of Solution

Given information:

Mass of the gear A (mA) = 10kg.

Radius of gyration of the gear A (kA) = 190mm.

Mass of the gear B (mB) = 10kg.

Radius of gyration of the gear B (kB) = 190mm.

Mass of the gear C (mC) = 2.5kg.

Radius of gyration of the gear C (kC) = 80mm.

Initial angular velocity of gear C (Nc)1 = 450rpm

Final angular velocity of gear C (NC)1 = 1800rpm

A couple at gear C (M) = 6N-m.

Radius of gear A (rA) = 250mm

Radius of gear B (rB) = 250mm

Radius of gear C (rC) = 100mm

Calculation:

Moment of inertia of gear A

IA=mAkA2IA=10×0.1902IA=0.361kgm2

Moment of inertia of gear B

IB=mBkB2IB=10×0.1902IB=0.361kgm2

Moment of inertia of gear C

IC=mCkC2IC=2.5×0.0802IC=0.016kgm2

For Initial condition; angular velocity is 450 rpm

Angular velocity of the gear C,

ωC=2πNC60ωC=2π×45060ωC=47.1radian/s

Gear C mess with Gear A. So angular velocity ration is given as

ωCωA=rArC47.1ωA=250100ωA=100250×47.1ωA=18.84radian/s

Gear C mess with gear B

ωBωC=rCrBωB47.1=100250ωB=100250×47.1ωB=18.84radian/s

Initial kinetic energy

E1=12(IAωA2+IBωB2+ICωC2)E1=12×(0.361×18.842+0.361×18.842+0.016×47.12)E1=12×(128.135+128.135+35.495)E1=145.882J

For final condition; Angular velocity of the gear C is 1800rpm

ωC=2πNC60ωC=2π×180060ωC=188.4radian/s

Gear C mess with Gear A. So angular velocity ration is given as

ωCωA=rArC188.4ωA=250100ωA=100250×188.4ωA=75.36radian/s

Gear C mess with gear B

ωBωC=rCrBωB188.4=100250ωB=100250×188.4ωB=75.36radian/s

Final kinetic energy

E2=12(IAωA2+IBωB2+ICωC2)E2=12×(0.361×75.362+0.361×75.362+0.016×188.42)E2=12×(2050.166+2050.166+567.913)E2=2334.122J

Work done by the gear C

Work=couple×angleW=M×θCW=6×θC

Substitute the value of E1, E2 and W in work energy equation

E1+W=E2145.882+6θC=2334.1226θC=2188.240θC=2188.2406θC=364.70radianθC=364.70×12πθC=58.07rev

Expert Solution
Check Mark
To determine

(b)

Tangential force on gear A.

Answer to Problem 17.12P

Tangential force on gear A is F=0.0447N

Explanation of Solution

Given information:

Mass of the gear A (mA) = 10kg.

Radius of gyration of the gear A (kA) = 190mm.

Mass of the gear B (mB) = 10kg.

Radius of gyration of the gear B (kB) = 190mm.

Mass of the gear C (mC) = 2.5kg.

Radius of gyration of the gear C (kC) = 80mm.

Initial angular velocity of gear C (Nc)1 = 450rpm

Final angular velocity of gear C (NC)1 = 1800rpm

A couple at gear C (M) = 6N-m.

Radius of gear A (rA) = 250mm

Radius of gear B (rB) = 250mm

Radius of gear C (rC) = 100mm

Calculation:

Angle of rotation for gear A

θAθC=ωCωAθA364.70=188.475.36θA=911.75radian

Substitute the value of E1, E2 and W in work energy equation for gear A

(E1)A+(W)A=(E2)A12IA(ω1)A+MθA=12IA(ω2)A12×0.361×18.84+(F×rA)×911.75=12×0.361×75.363.4+F×0.25×911.75=13.6F×227.9=10.2F=10.2227.9F=0.0447N

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Chapter 17 Solutions

Vector Mechanics For Engineers

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Drum A...Ch. 17.2 - Prob. 17.65PCh. 17.2 - Prob. 17.66PCh. 17.2 - Prob. 17.67PCh. 17.2 - Consider a rigid body initially at rest and...Ch. 17.2 - Prob. 17.69PCh. 17.2 - Prob. 17.70PCh. 17.2 - Prob. 17.71PCh. 17.2 - Prob. 17.72PCh. 17.2 - Prob. 17.73PCh. 17.2 - Prob. 17.74PCh. 17.2 - Prob. 17.75PCh. 17.2 - Prob. 17.76PCh. 17.2 - A sphere of radius r and mass m is projected along...Ch. 17.2 - Prob. 17.78PCh. 17.2 - Prob. 17.79PCh. 17.2 - Prob. 17.80PCh. 17.2 - Two 10-lb disks and a small motor are mounted on a...Ch. 17.2 - Prob. 17.82PCh. 17.2 - A 1.6-kg tube AB can slide freely on rod DE, which...Ch. 17.2 - In the helicopter shown, a vertical tail propeller...Ch. 17.2 - Prob. 17.85PCh. 17.2 - The 4-kg uniform disk B is attached to the shaft...Ch. 17.2 - Prob. 17.87PCh. 17.2 - Prob. 17.88PCh. 17.2 - Prob. 17.89PCh. 17.2 - Prob. 17.90PCh. 17.2 - Prob. 17.91PCh. 17.2 - Prob. 17.92PCh. 17.2 - Prob. 17.93PCh. 17.2 - Prob. 17.94PCh. 17.2 - Prob. 17.95PCh. 17.3 - A uniform slender rod AB ofmass m is at rest on a...Ch. 17.3 - Prob. 17.F5PCh. 17.3 - Prob. 17.F6PCh. 17.3 - Prob. 17.96PCh. 17.3 - A bullet weighing 0.08 lb is fired with a...Ch. 17.3 - Prob. 17.98PCh. 17.3 - Prob. 17.99PCh. 17.3 - Prob. 17.100PCh. 17.3 - Prob. 17.101PCh. 17.3 - A 45-g bullet is fired with a velocity of 400 m/s...Ch. 17.3 - Prob. 17.103PCh. 17.3 - Prob. 17.104PCh. 17.3 - A uniform slender rod AB of mass m is at rest on a...Ch. 17.3 - Prob. 17.106PCh. 17.3 - Prob. 17.107PCh. 17.3 - Prob. 17.108PCh. 17.3 - Determine the height h at which the bullet of...Ch. 17.3 - A uniform slender bar of length L=200 mm and mass...Ch. 17.3 - A uniform slender rod of length L is dropped onto...Ch. 17.3 - A uniform slender rod AB has a mass m, a length L,...Ch. 17.3 - Prob. 17.113PCh. 17.3 - The trapeze/lanyard air drop (t/LAD) launch is a...Ch. 17.3 - The uniform rectangular block shown is moving...Ch. 17.3 - The 40-kg gymnast drops from her maximum height of...Ch. 17.3 - Prob. 17.117PCh. 17.3 - A uniformly loaded square crate is released from...Ch. 17.3 - A 1-oz bullet is fired with a horizontal velocity...Ch. 17.3 - For the beam of Prob. 17.119, determine the...Ch. 17.3 - The plank CDEhas a mass of 15 kg and rests on a...Ch. 17.3 - Prob. 17.122PCh. 17.3 - A slender rod AB is released from rest in the...Ch. 17.3 - A slender rod AB is released from rest in the...Ch. 17.3 - Prob. 17.125PCh. 17.3 - A 2-kg solid sphere of radius r=40 mm is dropped...Ch. 17.3 - Member ABC has a mass of 2.4 kg and is attached to...Ch. 17.3 - Member ABC has a mass of 2.4 kg and is attached to...Ch. 17.3 - Sphere A of mass mA=2 kg and radius r=40 mm rolls...Ch. 17.3 - A large 3-lb sphere with a radius r=3 in. is...Ch. 17.3 - Prob. 17.131PCh. 17.3 - Sphere A of mass m and radius r rolls without...Ch. 17.3 - Prob. 17.133PCh. 17.3 - Prob. 17.134PCh. 17 - A uniform disk, initially at rest and of constant...Ch. 17 - Prob. 17.136RPCh. 17 - Prob. 17.137RPCh. 17 - You are asked to analyze a catcher for a small...Ch. 17 - A uniform slender rod is placed at corner B and is...Ch. 17 - Prob. 17.140RPCh. 17 - Prob. 17.141RPCh. 17 - Prob. 17.142RPCh. 17 - Prob. 17.143RPCh. 17 - A square block of mass m is falling with a...Ch. 17 - Prob. 17.145RPCh. 17 - A 1.8-lb javelin DE impacts a 10-lb slender rod...
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