A block is placed on an inclined plane of inclination $θ$ . The angle of inclination is such that the block slides down the plane at a constant speed. The coefficient of kinetic friction between the block and the inclined plane is equal to

$s i n θ$

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$c o s θ$

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$t a n θ$

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$c o t θ$

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Solution

The correct option is C
$t a n θ$

As the block moves down the inclined plane at a constant velocity, its acceleration will be zero. Hence, the net force acting on it will be zero.
$m g s i n θ = μ N \Rightarrow m g s i n θ = μ m g c o s θ \Rightarrow μ = t a n θ$
Hence, the correct choice is (c).

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