Finding Speed and Angle of Projectile Trajectory

AI Thread Summary
To find the speed and angle of the diver's trajectory, the diver's motion can be analyzed using kinematic equations. The angle of 78.04 degrees was correctly calculated using the equation Vf^2 = Vi^2 + 2ad, leading to an initial velocity of 7.667 m/s. To determine the speed at takeoff, the conservation of energy principle can be applied, equating potential energy at the highest point to kinetic energy at the board's height. The discussion emphasizes the need for clarity in applying projectile motion equations and kinematics to solve for speed. A detailed explanation of the relevant equations is requested for further assistance.
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Homework Statement



A diver leaves a 3m board on a trajectory that takes her 3.0m above the board, and then into the water a horizontal distance of 3.0m from the end of the board. At what speed and angle did she leave the board?

Homework Equations



Vf^2=Vi^2 + 2ad
Y=Y0 +VyT - 0.5gt^2
x=V0Cos(theta)T
Y=V0Sin(theta)T - 4.9t^2

The Attempt at a Solution


Alright, so I was able to get the correct angle, but I got the speed wrong. I got the angle by first applying Vf^2= Vi^2 + 2ad, I found Vi=7.667 m/s, plugged it into Y=Y0 + VyT -4.9t^2, got a quadratic equation, got the positive time of t= 1.889seconds, plugged this time into x=V0Cos(theta)T, and i got the angle of 78.04, this was correct.

But how Do i find the speed from the take off? Can someone help, with an explanation and an equation please?
 
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Easy way: energy.

Take the board's height as 0. At her highest point, she has no kinetic energy and all potential. At her lowest (the board), she has all kinetic and no potential.

Note that we can do this because terms like potential energy as all relative. We simply take the potential energy with respect to our newly defined equilibrium.

If you need me to, I can give you the formulas explicitly.
 
Can you show me in terms of projectile motion equations and the kinematics equations?
 

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