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Standard XII

Physics

Maximum Push Using Friction

The coefficie...

Question

The coefficient of static friction, $μ_{s}$ , between block $A$ of mass 2 kg and the table as shown in the figure is $0.2.$ What would be the maximum mass value of block $B$ so that the two blocks do not move? The string and the pulley are assumed to be smooth and massless. $(g = 10 {m/s}^{2})$

2.0 kg

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4.0 kg

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0.2 kg

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0.4 kg

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Solution

The correct option is D 0.4 kg
Free body diagrams of two masses are

We get equations
$T - f = m_{A} a a n d f = μ N = μ m_{A} g$
$\Rightarrow T = m_{A} a + μ m_{A} g a n d T = m_{B} g (f o r a = 0)$
$∴ μ N = m_{B} g \Rightarrow m_{B} = μ m_{A} = 0.2 \times 2 = 0.4 kg .$
Hence, the correct answer is option (d).

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The coefficient of static friction, μs, between block A of mass 2 kg and the table as shown in the figure is 0.2. What would be the maximum mass value of block B so that the two blocks do not move? The string and the pulley are assumed to be smooth and massless. (g=10 m/s2)

The correct option is D 0.4 kgFree body diagrams of two masses are We get equations T−f=mAa and f=μN=μmAg ⇒T=mAa+μmAg and T=mBg (for a=0) ∴μN=mBg⇒mB=μmA=0.2×2=0.4 kg. Hence, the correct answer is option (d).

The coefficient of static friction, $μ_{s}$ , between block $A$ of mass 2 kg and the table as shown in the figure is $0.2.$ What would be the maximum mass value of block $B$ so that the two blocks do not move? The string and the pulley are assumed to be smooth and massless. $(g = 10 {m/s}^{2})$