Answer:
Work done, W = 15 joules
Explanation:
It is given that,
The force acting on a particle depends on position such that,
[tex]F(x)=3x^2+3.5x[/tex]
Let W is the work done by this force on a particle that moves from x = 0.00 m to x = 2.00 m. The expression for work done is given by :
[tex]W=\int\limits^{x_2}_{x_1} {F.dx}[/tex]
[tex]W=\int\limits^{2}_{0} {(3x^2+3.5x).dx}[/tex]
[tex]W=(x^3+1.75x^2)|^2_0[/tex]
W = 15 Joules
So, the work done by this force on a particle is 15 joules. Hence, this is the required solution.
