Help with vector kinematics question

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The discussion focuses on solving a vector kinematics problem involving the trajectory of a ball hit towards a 20m high fence. Participants emphasize the importance of decomposing the initial velocity into horizontal and vertical components using trigonometric functions. They discuss setting up equations based on horizontal distance and vertical height, incorporating gravity to relate time and velocity. Several users share their struggles with calculations, leading to a collaborative effort to clarify the equations needed to find the solution. Ultimately, one user successfully resolves the problem, highlighting the value of organized work to avoid mistakes.
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http://i58.photobucket.com/albums/g280/hisokeee/aa.png

so since the ball is hit 1m above the ground, i will just ignore that and the 21m height fence and just make it a projectile of a ball from ground to the top of a 20m fence

I only know the gravity, the height of fence and distance to fence and the angle the ball was hit. I tried first by figuring out the initial Voy by doing Vfy=0 g=-9.8 and H=20 but that didn't work out. What else can I do with this information?
 
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In this type of problems, you always have two independent directions, namely horizontal and vertical.

First decompose the velocity v into a vertical and horizontal component, using the sine and cosine of the angle.
For the vertical direction, you can then relate v to the final time using the data you gave in your post (cf. \Delta v = - g t).
For the horizontal direction, you have information about the distance, which also gives a relation between v and t (cf. \delta s = v t).

This will give you two equations involving v and the time t it takes the ball to reach the fence. You can use one of them to eliminate t and obtain a single equation for v.
 
I tried this for funsies and can't get the answer. Any chance of further help? Not sure if the OP got it figured out so I don't want an answer, just a little more guidance.
 
Yes I tried it too, i tried so many times, it doesn't get the answer. and with only 2 known things, there really is only one way to go with it because you will have to do the vertical part first using gravity and that answer doesn't work out. z_z lol
 
It seems to work for me. From the d=vt for the horizontal part, I get an equation with two unknowns, v and t, where v is the initial speed.
From the distance formula for the vertical part, I get another equation with the same two unknowns. Two equations, two unknowns, no problem! Have another go and show your work here so we can help you!
 
Success! I get the right answers. That'll teach me to set my working out neatly in future to avoid stupid mistakes! Cheers for the pointers dudes.
 
Last edited:
Dave, did you pay attention that:
* d in t = d / v is the horizontal distance
* v in t = d / v is the horizontal velocity, and u in s = u t + (1/2) a t^2 is the vertical velocity. Both can be expressed in terms of the speed V using the (co)sine of an angle.
 

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