Explanation:
Given that,
Mass of the truck, m = 2268 kg
Speed of the truck, v = 30 m/s
The friction force has an average magnitude of 700 N, f = -700 N
(a) The initial kinetic energy of the truck is given by :
[tex]K=\dfrac{1}{2}mv^2\\\\K=\dfrac{1}{2}\times 2268\times (30)^2\\\\K=1.02\times 10^6\ J[/tex]
(b) Finally, the stops due to an effective friction force that the road, final speed is 0. Let d is the stopping distance of the truck. using third equation of motion to find it as :
[tex]v^2-u^2=2ad\\\\d=\dfrac{-u^2}{2a}[/tex]
Since, f = ma
[tex]d=\dfrac{-u^2m}{2f}\\\\d=\dfrac{-(30)^2\times 2268}{-2\times 700}\\\\d=1458\ m[/tex]
So, the stopping distance of the truck is 1458 meters.
