PHYSICS
PHYSICS
5th Edition
ISBN: 2818440038631
Author: GIAMBATTISTA
Publisher: MCG
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Chapter 6, Problem 95P

(a)

To determine

The power must the engine deliver to drive the car on a level road at 20.0m/s.

(a)

Expert Solution
Check Mark

Answer to Problem 95P

The power must the engine deliver to drive the car on a level road at 20.0m/s is 10kW.

Explanation of Solution

Take +x be up the incline.

Write the expression for the net force along x direction.

ΣFx=Fairmgsinϕ=0

Here ΣFx is the net force along x direction, Fair is the air resistance, m is the mass of car, g is the acceleration due to gravity and ϕ is the inclination of hill road.

Rearrange the above equation to get Fair.

Fair=mgsinϕ

Write the expression for rate at which air resistance dissipates energy.

Pair=Fairvcos180°=Fv

Here, Pair is the rate at which air resistance dissipates energy and v is the velocity of car .

The cos180° is introduced since force of air resistance is opposite the car’s velocity.

Conclusion:

Substitute mgsinϕ for Fair in above equation to get Pair.

Pair=mgsinϕv

The car has to give power equivalent to Pair in opposite direction to drive the car in constant velocity.

Therefore, write the expression for the power the engine must deliver to drive the car on level ground.

Pengine=Pair=mgvsinϕ

Substitute 1500kg for m , 9.80m/s2 for g , 20.0m/s for v and 2.0° for θ in above equation to get Pengine.

Pengine=(1500kg)(9.80m/s2)(20.0m/s)sin2.0°=10260W×1kW1000W=10kW

Therefore, the power must the engine deliver to drive the car on a level road at 20.0m/s is 10kW.

(b)

To determine

The steepest hill the car can climb at 20.0m/s, if maximum power that can delivered by the engine is 40.0kW.

(b)

Expert Solution
Check Mark

Answer to Problem 95P

The car can climb at 20.0m/s if steep of the hill is 5.8°.

Explanation of Solution

Write the expression power available to climb the hill.

P=PmaxPair (I)

Here, P is the power available to climb the hill, Pmax is the maximum power that engine can deliver and Pair is the rate t which air resistance dissipates the energy.

Write the expression for the power delivered by the engine.

P=mgvsinϕ (II)

Conclusion:

Substitute 40.0kW for Pmax and 10.26kW for Pair in equation(I) to get P.

P=40.0kW10.26kW=29.74kW

Substitute 1500kg for m , 9.80m/s2 for g , 20.0m/s for v and 29.74kW for P in above equation to get P.

29.74kW=(1500kg)(9.80m/s2)(20.0m/s)sinϕsinϕ=29.74kW(1500kg)(9.80m/s2)(20.0m/s)=5.8°

Therefore, the car can climb at 20.0m/s if steep of the hill is 5.8°.

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Chapter 6 Solutions

PHYSICS

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