12.13. A car moves along the path seen below. At t = 2.0s the car is at A and has velocity ³₁ = −4.0™ î+ 4.0™ĵ. At t = 5.0s, it's at B with velocity ₂2 m = 4.0 +2.0 S す。 A B v₂ a. Find the x and y components of the average acceleration vector from 2.0s to 5.0s b. Write the average acceleration vector in terms of î, ĵ. Put the two velocity vectors in the picture tail to tail at the location A and then draw a avg

Principles of Physics: A Calculus-Based Text
5th Edition
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Raymond A. Serway, John W. Jewett
Chapter3: Motion In Two Dimensions
Section: Chapter Questions
Problem 6P: At t = 0, a particle moving in the xy plane with constant acceleration has a velocity of...
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12.13. A car moves along the path seen below. At t = 2.0s the car is at A and has velocity
v₁ = −4.0mî +4.0ĵ. At t = 5.0s, it's at B with velocity v₂ = 4.0 î+ 2.0™
S
S
S
V₁
A
B
v₂
a. Find the x and y components of the
average acceleration vector from 2.0s to
5.0s
b. Write the average acceleration vector in
terms of î,ĵ. Put the two velocity vectors in
the picture tail to tail at the location A and
then draw a avg
Transcribed Image Text:12.13. A car moves along the path seen below. At t = 2.0s the car is at A and has velocity v₁ = −4.0mî +4.0ĵ. At t = 5.0s, it's at B with velocity v₂ = 4.0 î+ 2.0™ S S S V₁ A B v₂ a. Find the x and y components of the average acceleration vector from 2.0s to 5.0s b. Write the average acceleration vector in terms of î,ĵ. Put the two velocity vectors in the picture tail to tail at the location A and then draw a avg
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