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Question

A copper cube of mass 200g slides down on a rough inclined plane of inclination 37 at a constant speed. Assume that any loss in mechanical energy goes into the copper block as thermal energy. Find the increases in the temperature of the block as it slides down through 60 cm. Specific heat capacity of copper = 420 J kg1K1.


A

4.6 × 10C

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B

4.8 × 10C

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C

8.6 × 10C

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D

7.8 × 10C

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Solution

The correct option is C

8.6 × 10C


As block slides along x only mgsinθ and friction F do work, let them be mglsin θ and wF.

Now, speed is constant

All the loss in potential energy is dissipated as heat, no. kinetic energy being gained.

(s is the specific heat) mglsinθ = wF = Heat lost = ms Δ T

Δ T = gl sin θ5 = 10 × 60100 × 35420

= 8.6 × 103 C


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