Solving a Horizontally Oscillating Ball Problem

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A 130 g ball attached to a spring with a spring constant of 3.0 N/m oscillates on a frictionless table, with a velocity of 17 cm/s at a position of 4.2 cm. The amplitude of oscillation can be determined using energy equations, specifically 1/2kA^2 = 1/2kx^2 + 1/2mv^2. The maximum acceleration occurs when the spring is at its maximum stretch, which is equal to the amplitude. There is confusion regarding the calculation of maximum acceleration, particularly when equating forces using F = ma and the spring force equation kx = ma. The discussion highlights the importance of correctly applying energy conservation principles and force equations to solve the problem effectively.
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Homework Statement


A 130 g ball attached to a spring with spring constant 3.0 N/m oscillates horizontally on a frictionless table. Its velocity is 17 cm/s when x = 4.2 cm

Find the:
-Amplitude of Oscillation
-Max acceleration
-Speed of the ball when x = 2.8cm

Homework Equations


T = 2*pi*(m/k)1/2
Sinusoidal equations for position and velocity of a particle in SHM


The Attempt at a Solution



I'm not entirely sure where to start. I solved the velocity and position equations for t and set them equal to solve for A, but finding an intersection for that is beyond me. Not sure how else to work the equation.

I figured if I could find A then I could take the derivative of the velocity equation and try to solve for the maximum acceleration, but that still leaves the phase shift and doesn't give an acceleration value to set it equal to.

Not sure where to begin on this one at all.
 
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I think using energy equations is the easiest way to solve this. The total energy is given by 1/2kA^2 = 1/2kx^2 + 1/2mv^2

Solve for amplitude A.

As for the max acceleration, this will occur intuitively when all energy is potential and being converted into kinetic. Use F=ma whereF=-kx.

Hope that helps.
 
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I hadn't thought about the energy perspective. Thanks for that one.

But about finding the max acceleration...

Since the potential of a spring is given by (1/2)(k)(x^2), I figure it was intuitive that the max acceleration would be when the spring is stretch to its max distance, its amplitude.

But (1/2)(3)(5.5^2) = (.13)(a) gives me a huge value for acceleration, which is being spit back. So I'm wondering what I'm missing. (yes, 5.5cm is the right amplitude).
 
I don't think I made myself clear before. I meant to solve the equation kx = ma (where x is the amplitude A) by equating forces. Your intuition is right, though.
 
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Kindly see the attached pdf. My attempt to solve it, is in it. I'm wondering if my solution is right. My idea is this: At any point of time, the ball may be assumed to be at an incline which is at an angle of θ(kindly see both the pics in the pdf file). The value of θ will continuously change and so will the value of friction. I'm not able to figure out, why my solution is wrong, if it is wrong .
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