This is the graph relevant to the question.
It's a position-time graph for a particle moving along the x-axis (one-dimensional motion).
The instruction is to determine the instantaneous velocity at t = 2.00 s by measuring the slope of the tangent line shown in the graph. The answer in the back of the book is -3.8 m/s.
However, slight problem. How the hell do you measure the slope when no actual points are given?
You could find the derivative of the quadratic y = (x-4)^2 + 2 is y = 2x + 8 and then plug in 2.00 to find -4 m/s. But according to the back of the book, that's not the answer. This could mean the formula I found for the quadratic isn't even accurate.
I also tried to estimate the point on the line at t = 2.00 s, and I get around 5.8 m. So I used the formula for velocity and got 5.8 m/2.00 s. This yields 2.9 m/s, which is still not the answer.
I am really at a loss right now. How do you do this problem? Thanks so much to anyone that helps!
It's a position-time graph for a particle moving along the x-axis (one-dimensional motion).
The instruction is to determine the instantaneous velocity at t = 2.00 s by measuring the slope of the tangent line shown in the graph. The answer in the back of the book is -3.8 m/s.
However, slight problem. How the hell do you measure the slope when no actual points are given?
You could find the derivative of the quadratic y = (x-4)^2 + 2 is y = 2x + 8 and then plug in 2.00 to find -4 m/s. But according to the back of the book, that's not the answer. This could mean the formula I found for the quadratic isn't even accurate.
I also tried to estimate the point on the line at t = 2.00 s, and I get around 5.8 m. So I used the formula for velocity and got 5.8 m/2.00 s. This yields 2.9 m/s, which is still not the answer.
I am really at a loss right now. How do you do this problem? Thanks so much to anyone that helps!
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