Given info:
The initial velocity of a particle is
(+2)ms−1.
Here, the initial velocity of a particle in x direction is
ux=1ms−1 and the initial velocity of a particle in y directionis
uy=2ms−1. So, the acceleration of a particle in x direction is
ax=0 and the acceleration of a particle in y direction is
ay=−10ms−2.
The horizontal distance covered by projectile in time t is,
x=uxt=(1ms−1)t=tThe vertical distance covered by projectile in time t is,
y=uyt+ayt2=(2ms−1)t+(−10ms−2)t2=2t−5t2y=2x−5x2