Calculating Acceleration at t = 2.20 s for a Particle in 2D Motion

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Homework Help Overview

The discussion revolves around calculating the acceleration of a particle in two-dimensional motion given its initial and final velocities at specific times. The context involves understanding vector operations and the relationship between velocity and acceleration.

Discussion Character

  • Mathematical reasoning, Conceptual clarification

Approaches and Questions Raised

  • Participants discuss the calculation of acceleration as the change in velocity over time, with some questioning the correct vector representation of the time variable in the formula.

Discussion Status

Participants are actively engaging with each other's reasoning, providing clarifications on how to properly express the acceleration vector. There is a shared understanding of the mathematical approach, though some details remain under discussion.

Contextual Notes

There are indications of confusion regarding the treatment of time as a vector in the acceleration calculation, and participants are exploring how to correctly apply vector division in this context.

lostinphys
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At t = 0, a particle moving in the xy plane with constant acceleration has a velocity of vi = (3.00 i - 2.00 j) m/s and is at the origin. At t = 2.20 s, the particle's velocity is v = (9.20 i + 6.10 j) m/s.

i am asked to find the acceleration at time t.
i know that the acceleration is the derivative of the velocity, meaning the change in velocity divided by the time. so i took the difference between the vectors (v - vi) and got (6.2i + 8.1j)/(2.20 - 0). But i don't think it is expressed correctly in vectors. any help would be appreciate. thanks.
 
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lostinphys said:
At t = 0, a particle moving in the xy plane with constant acceleration has a velocity of vi = (3.00 i - 2.00 j) m/s and is at the origin. At t = 2.20 s, the particle's velocity is v = (9.20 i + 6.10 j) m/s.

i am asked to find the acceleration at time t.
i know that the acceleration is the derivative of the velocity, meaning the change in velocity divided by the time. so i took the difference between the vectors (v - vi) and got (6.2i + 8.1j)/(2.20 - 0). But i don't think it is expressed correctly in vectors. any help would be appreciate. thanks.


I think you're on the right track, but it looks like you're trying to use time as a vector here. remember, it divides both components of your \Delta v vector.
 
Well the first part, 6.2i + 8.1j is correct. You divide by 2.20 seconds but it looks more like (6.2/2.20)i + (6.10/2.20)j with m/s^2 being the units for the vector. You can treat them separately and think of it like 6.2/2.20 as the dv/dt in the i direction for example.
 
The vector representing acceleration would then be (6.2/t)i + (8.1/t)j ?
 
That sounds right.
 
thanks !
 

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