Asked by confused
A bullet of mass 5.15 g is fired horizontally into a 2.74 kg wooden block at rest on a horizontal surface. The coefficient of kinetic friction between block and surface is 0.185. The bullet comes to rest in the block, which moves 1.84 m.
(a) What is the speed of the block immediately after the bullet comes to rest within it?
(b) At what speed is the bullet fired?
(a) What is the speed of the block immediately after the bullet comes to rest within it?
(b) At what speed is the bullet fired?
Answers
Answered by
Damon
total mass = 5.15 + 2.74 = 2.74515 kg
momentum before
.00515 V
momentum after = .00515 V = 2.74515 Vi
work done on system by friction = mu M d
= .185 * 2.74515 * 1.84
= .934 Joules
that was the Ke of the system at Vi
(1/2)(2.74515)Vi^2 = .934 Joules
Vi = .825 m/s part a
V = .825 ( 2.74515/.00515) = 440 m/s
momentum before
.00515 V
momentum after = .00515 V = 2.74515 Vi
work done on system by friction = mu M d
= .185 * 2.74515 * 1.84
= .934 Joules
that was the Ke of the system at Vi
(1/2)(2.74515)Vi^2 = .934 Joules
Vi = .825 m/s part a
V = .825 ( 2.74515/.00515) = 440 m/s
Answered by
Damon
work done on system by friction = mu M g d
= .185 * 2.74515 * 1.84 * 9.8
= 9.15 Joules
that was the Ke of the system at Vi
(1/2)(2.74515)Vi^2 = 9.15 Joules
Vi =2.58 m/s part a
V = 2.58 ( 2.74515/.00515) = 1376 m/s
= .185 * 2.74515 * 1.84 * 9.8
= 9.15 Joules
that was the Ke of the system at Vi
(1/2)(2.74515)Vi^2 = 9.15 Joules
Vi =2.58 m/s part a
V = 2.58 ( 2.74515/.00515) = 1376 m/s
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