A 18.0-kg cart is moving with a velocity of 7.30 m/s down a level hallway. A constant force of -13.0 N acts on the cart and its velocity becomes 3.30 m/s.

Question

A 18.0-kg cart is moving with a velocity of 7.30 m/s down a level hallway. A constant force of -13.0 N acts on the cart and its velocity becomes 3.30 m/s.
(a) What is the change in kinetic energy of the cart?
1  . J
(b) How much work was done on the cart?
2  J
(c) How far did the cart move while the force acted?
3  m
1) I did (1/2)18(7.30^2)=479.61
 then (1/2)18(3.30^2)=98.01
479.61-98.01=381.6 (wrong?)

Elena · Answer

(a)ΔKE =KE2 – KE1 = m•v2²/2 - m•v1²/2 =
= m•(v2²- v1²)/2 =
= 18(3.3² - 7.3²)/2 = - 381.2 J.
(b) W = ΔKE = - 381.2 J.
(c) F = m•a,
a = F/m = - 13/18 = - 0.72 m/s².
s =(v² - vₒ²)/2•a =
={(3.3) -( 7.3)²)/2•(-0.72) = 29.44 m/s².