The velocity function of the particle is v_{x}=2t^{2} m/s.
Since, velocity is change in position with time thus,
v_{x}=\frac{dx}{dt}
rearranging,
dx=v_{x}dt
Initial position is 1.6 m, let the final position be x,
Integrating both side,
\int_{1.6}^{x}dx=\int_{0}^{3}2t^{2}dt
x-1.6=\frac{2(3)^{3}}{3}-\frac{2(0)^{3}}{3}=18
Thus,
x=18+1.6=19.6 m
Thus, position of particle will be 19.6 m.