In the arrangement shown in figure the ends P and Q of an unstretchable string move downwards with uniform speed U. Pulleys A and B are fixed. Mass M moves upwards with a speed

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Solution

The correct option is D

As P and Q fall down, the length l decreases at the rate of U m/s. From the figure, $l^{2} = b^{2} + y^{2}$
Differentiating with respect to time
$2 l \times \frac{d l}{d t} = 2 b \times \frac{d b}{d t} + 2 y \times \frac{d y}{d t} (A s \frac{d b}{d t} = 0, \frac{d l}{d t} = U)$
$\Rightarrow \frac{d y}{d t} = (\frac{l}{y}) \times \frac{d l}{d t} \Rightarrow \frac{d y}{d t} = (\frac{1}{c o s θ}) \times U = \frac{U}{c o s θ}$

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In the arrangement shown in figure the ends P and Q of an unstretchable string move downwards with uniform speed U. Pulleys A and B are fixed. Mass M moves upwards with a speed

The correct option is D As P and Q fall down, the length l decreases at the rate of U m/s. From the figure, l2=b2+y2 Differentiating with respect to time 2l×dldt=2b×dbdt+2y×dydt(As dbdt=0,dldt=U) ⇒dydt=(ly)×dldt⇒dydt=(1cos θ)×U=Ucos θ