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projectile question (1 Viewer)

shkspeare

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A coastal defence cannon firse a shell horizontally from the top of a 50.0 m high cliff, directed out to sea with a velocity of 60 ms^-1.

Determine the range of the shell's trajectory
 

Takuya

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oh of course :D

Because it's horizontal, that's your horizontal velocity which doesn't change. So how do you get range? x velocity mutiplied by time.

The time in this case is the time it takes for the projectile to fall 50m to the ocean. i.e. use r=ut+0.5(at^2)

After that it's just substitution. I could do it mathematically for you as well, but this is Physics not Maths :p
 

helper

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Calculate time of flight from vertical.

y=ut + 0.5*9.8*t^2
50 = 0 + 4.9t^2

t= 3.19

Range from horizontal.

x=uxt
= 3.19*60
=191.7m
 

shkspeare

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ok how about if the same cannon (50m high) was fired at an angle of 45 degrees at 60m/s wot is the new range
 

walla

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i use
y = ut + 0.5at^2
y = 50 (take down to be positive)
u = -60sin45
= -60/sqrt2
a = 9.8
use quadratic formula to find t
substitute into x = ut
u = 60cos45
= 60/sqrt2
and you get 411.9
did that pretty quickly so there could be a mistake somewhere but the answer seems about right
 

helper

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Calculate inital x and y velocities.

Solve same way with new values of u

Solve as quadratic for t

411.6 is what I ended up with
 

helper

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Rounding. The answer they would want is 412. If they were being picky, they could take off a mark from both of us.
 

helper

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significant figures same as question.
You quoted height as 50.0, so 3 sig figs
 

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