Answer:
0.65 seconds
2.07m
Step-by-step explanation:
Here we need to look at the vertical and the horizontal components of the initial velocity.
In terms of his hitting the water.
Define the upwards direction as positive
We know his initial upwards velocity (u) is 4.5sin(45)
His displacement (s) when he hits the water is zero
Acceleration due to gravity is -9.8
We want to find t
So using s=ut+1/2a
0=4.5sin(45)t+1/2(-9.8)
Take out a common t
0=t(4.5sin45-4.9t)
t=0 or t= 0.65
The first answer is not valid so the answer is 0.65.
Now we can look at the horizontal component
It takes him 0.65 seconds to hit the water, he travels at a constant horizontal velocity of 4.5cos45
Therefore using s=vt
s=4.5cos45 x 0.65= 2.07m away