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i got a projectile problem again (1 Viewer)

wolf7

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a ball is thrown with a velocity of 15m/s at 30 degrees below the horizontal from the top of a 10m building. find:

the time taken to rach the ground

the point where a person must stand to catch the ball without moving

also

a boy standing on the tray of a truck travelling at 10km/h throws a ball vertically upwards. if he catches it again at the same level but 4m horizontal away, how fast was it thrown upwards initally
 

richz

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hi wolf7,

first one resolve forces, so

uy=15sin30=7.5m/s
ux=15cos30=13m/s

time of flight
now use s=uyt+.5at2
.'. -10=7.5t-4.9t2
rearange and use quadratic formula
so t= 2.39s only, because other answer is negative and obviously u can get a negative time

the point where a person must stand to catch the ball without moving

X=uxt
=2.39*13
=31m away

a boy standing on the tray of a truck travelling at 10km/h throws a ball vertically upwards. if he catches it again at the same level but 4m horizontal away, how fast was it thrown upwards initally


i would try this, not so sure though.

convert 10km/h to m/s = 2.8m/s
so total time = 4m/2.8m/s
= 1.44s

s=uyt+0.5at2
.'. 0=uy1.44-4.9*1.44
so uy=4.9m/s (not so sure)
 
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helper

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Wolf, have you organised a unifrom way of approaching these questions?
1. Split initial into vertical and horizontal.
2. write down information for x, ux, vx, ax, t
3. write down information for y, uy, vy, ay, t
4. Write down equations for x and y.
5. Look for equation with one unknown to solve or 2 equations you can solve simultaneously.

Common things to remember vy=0 at maximum height.
ax=0
x, y, vx, vy will change between parts if you are looking at different points along the trajectory.
 

jono_z1

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xrtzx said:
first one resolve forces, so

uy=15sin30=7.5m/s
ux=15cos30=13m/s

time of flight
now use s=uyt+.5at2
.'. -10=7.5t-4.9t2
rearange and use quadratic formula
so t= 2.39s only, because other answer is negative and obviously u can get a negative time
You assumed that upwards was positive, since you said displacement = -10m and acceleration due to gravity is -9.8ms-2. But then wouldn't the downwards (i.e. vertical) velocity have to be negative as well? (i.e. -7.5ms-1)

then
-10= -7.5t-4.9t2
4.9t2+7.5t-10=0
Using the quadratic forumla,
t=0.86s (the other solution is negative)
 

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