Answer to Question #324217 in Mechanics | Relativity for aries183

Question #324217

A runaway 185 kg wheeled skip is rolling east along a road with a velocity of +2.2 m s−1. A 2560 kg car moving to the west with a velocity of −9.7 m s−1 hits the skip.

After the collision the skip is moving west with a velocity of −14.4 m s−1.

What is the velocity of the car after the collision? (in m s−1 to 2 s.f)

Expert's answer

The law of conservation of momentum says

"m_1\\vec v_1+m_2\\vec v_2=m_1\\vec v_1'+m_2\\vec v_2'"

Hence

"m_1v_1-m_2 v_2=-m_1 v_1'+m_2 v_2'"

"v_2'=\\frac{m_1}{m_2}(v_1+v_1')-v_2"

"v_2'=\\frac{185}{2560}(2.2+14.4)-9.7=-8.5\\;\\rm m\/s"

The velocity of the car after the collision is directed westward.

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Answer to Question #324217 in Mechanics | Relativity for aries183

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