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Question

Two masses m1=5 kg and m2=10 kg, connected through an inextensible string over a frictionless pulley, are moving as shown in the figure. The coefficient of friction of horizontal surface is 0.15 (μk=μs=μ) . The minimum weight m that should be put on top of m2 to stop the motion is:


A
18.3 kg
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B
23.3 kg
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C
43.3 kg
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D
10.3 kg
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Solution

The correct option is B 23.3 kg
Given : m1=5 kg;m2=10 kg; μ=0.15


Applying the condition of equilibrium for both i.e (m2+m) as a system & then block m1 alone.

For mass m1: m1gT=m1a=0
(since block is not moving)
50T=0
T= 50 N(1)

For mass m2+m:
Tfmax=(10+m)a= 0

In limiting case,
fmax=μN=μ(m2+m)g
fmax=0.15×(10+m)g(2)

From Eq. (1), (2) and (4):
50(15+1.5 m)= 0
m=703= 23.3 kg

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