A bullet of mass 0.01 kg is fired horizontal into a 4 kg wooden block block at rest , on a horizontal surface. The coefficient of kinetic friction between the block and bullet is 0.25 the combination moves 20 m before coming to rest . With what speed did the bullet strike the block ?

A bullet of mass 0.01 kg is fired horizontal into a 4 kg wooden block

1.	A bullet of mass 0.01 kg is fired horizontal into a 4 kg wooden block block at rest , on a horizontal surface. The coefficient of kinetic friction between the block and bullet is 0.25 the combination moves 20 m before coming to rest . With what speed did the bullet strike the block ?
Answer» Here , mass of bullet , ` m_(1) = 0.01 kg` mass of wooden block , ` m_(2) = 4 kg ` Coeff . Of kinetic friction , ` mu = 0.25 , ` distance moved by the combination ` s = 20 m ` Let velocity of bullet be `u_(1)`, initial velocity of block `u_(2) = 0` If upsilon is the velocity with which the combination moves , then according to the principle of conservation of linear momentum , `(m_(1) + m_(2) ) upsilon = m_(1) u_(1) + m_(2) u_(2) ` `(0 . 01 + 4 ) upsilon = 0.1 u_(1) + 4 xx 0 ` `upsilon = (0.01u_(1))/(4.01)= (u_(1))/(401)` Force of dynamic friction on the combination ` F = mu R = mu (m_(1) + m_(2)) g` ` = 0 .25 (0.1 + 4 ) xx 9.8 N ` `:.` Retardation produced `a = (f ) /(m_(1)+ m_(2))= (0.25 xx 4.01 xx 9.8 )/(4.01) = 2 .45 ms^(-2)` Using for the combination , the relation `u^(2) - u^(2) = 2 as , 0 - upsilon^(2) = 2 (-2 .45 ) xx 20` `upsilon^(2) = 4.9 xx20 = 98 or upsilon = sqrt(98)` From (i) `u_(1) = 401 upsilon` or `u_(1) = 401 sqrt(98)= 3969 .7 ms^(-1)` .

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A bullet of mass 0.01 kg is fired horizontal into a 4 kg wooden block block at rest , on a horizontal surface. The coefficient of kinetic friction between the block and bullet is 0.25 the combination moves 20 m before coming to rest . With what speed did the bullet strike the block ?

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