Finding the distance from a velocity-time graph

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The discussion focuses on calculating the position of a particle at t=28.8 s using a velocity-time graph. It is established that the average velocity calculated over the entire elapsed time does not apply to the specific interval from 0 to 28.8 s. Participants emphasize the importance of recognizing constant acceleration and applying the correct SUVAT equations to find displacement. The initial position must be included in the final distance calculation. Understanding these concepts is crucial for solving similar problems accurately.
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Homework Statement


The velocity graph of a particle moving along the x-axis is shown. The particle has zero velocity at t=0.00 s and reaches a maximum velocity, vmax, after a total elapsed time, ttotal. If the initial position of the particle is d0=8.29 m, the maximum velocity of the particle is vmax=47.9 m/s, and the total elapsed time is total=43.2 s, what is the particle's position at t=28.8 s? The graph that is provided with the question shows a constant slope on the

Given:
t1=0s
t2=43.2s
v1=0m/s
v2=47.9m/s
d1=8.29m
find the final distance when t=28.2s


Homework Equations


a(avg)=delta v/t
v(avg)=delta d/t


The Attempt at a Solution


So since the slope of the vt graph is constant, I found v(avg) by dividing the final+initial by 2.

V(avg) = d2 - d1 / t
23.95m/s = d2 - 8.29m / 28.8s
d2 = 698m

I still got the answer wrong... I don't really care for the correct answer, I'm just worried that I'm really misunderstanding some basic concepts.
 
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Well, without really thinking it over, based on what you've given us we have uniform acceleration, a known final velocity, a known initial velocity, known initial postion, time elapsed etc.

I think an ideal canidate for this sort of problem looks like the equation: s = at2/2 + v0t + s0.

The reason your attempt did not work is that your average velocity value applies over the entire elapsed time and does not represent the average velocity in the time interval [0,28.8].
 
jgens said:
The reason your attempt did not work is that your average velocity value applies over the entire elapsed time and does not represent the average velocity in the time interval [0,28.8].

This is a very important point that regularly catches people out.

If the slope is constant, then you know that the acceleration is constant, so you can use the SUVAT equations.

jgens pointed out the relevant one to use - and don't forget to add the extra displacement due to the initial position (which is included in jgens' equation).

The acceleration can be found from the equations that you have shown.
Remember that if it is constant, then the constant value is equal to the average value.
 

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