Question

Two blocks of masses 400 g and 200 g are connected through a light string going over a pulley which is free to rotate about its axis. The pulley has a moment of inertia 1.6 * 10^minus 4 kg m^2 and a radius 2.0 cm.
Find
a) the kinetic energy of the system as the 400 g block falls through 50 cm,
b) the speed of blocks at this instant. (JEE Mains 2016)

plzz give the answer immediately.​

Answer 1

Answer:

The kinetic energy of the system is 0.98 J and the speed of the blocks is 1.4 m/s

Explanation:

According to the question

04g−T1=00.4a……..1

T2−0.2g=0.2a……2

(T1−T2)r=lar……..3

From eq. 1, 2, and 3

a. total kinetic energy of the system

= 1/2m1V2+1/2m2V2+12/15

(1/2×0.4×1.42)+(1/2×0.2×1.42)+{1/2×(1.6/4×1.4^2)}

=(0.2+0.1+0.2)(1.4)2

=0.54 x 1.96=0.98J

→a = (0.4−0.2)g/(0.4+0.2+1.60.4)=g/5 ltb.

Therefore b. V=2gh−−−√=2 x g×1/20

→(g/5) = √(9.8/5) = 1.4 m/s