A particle confined to motion along the x axis moves with constant acceleration from x = 2.0 m to x = 8.0 m during a 2.5-s time interval. The velocity of the particle at x = 8.0 m is 2.8 m/s. What is the acceleration during this time interval?

Question

Anonymous · Accepted Answer

with constant acceleration from x = 2.0 m to x = 8.0 m during a 5.3-s time interval. The velocity of the particle at x = 8.0 m is 18.1 m/s. What is the acceleration during this time interval?

Damon · Answer

v = Vo + a t x = Xo + Vo t + .5 a t^2 at 8 m 2.8 = Vo + 2.5 a 8 = 2 + 2.5 Vo + .5 a (6.25) so Vo = 2.8 -2.5 a 8 = 2 + 2.5(2.8-2.5a) + 3.125 a solve for a

Anonymous · Answer

0.32