Asked by Yonnie
Find the equation of the line tangent to the path of a particle traveling in the xy-plane with position vector r(t)=<t^3 +2t, t^2> at the point (3, 1).
Answers
Answered by
Damon
x = t^3 + 2t
y = t^2
dx/dt = x velocity = 3 t^2 + 2
dy/dt = y velocity = 2 t
tangent slope = dy/dt / dx/dt
= 2t/(3t^2+2)
now what is t when x = 3 and y = 1?
t^2 = 1 = 1
so t = 1 (or -1 but we will see that won't work:)
1^3 + 2*1 = 3, sure enough
so slope = 1/4
y = (1/4) x + b
1 = (1/4)(3) + b
4/4 = 3/4 + b
b = 1/4
so
4y = x + 1
y = t^2
dx/dt = x velocity = 3 t^2 + 2
dy/dt = y velocity = 2 t
tangent slope = dy/dt / dx/dt
= 2t/(3t^2+2)
now what is t when x = 3 and y = 1?
t^2 = 1 = 1
so t = 1 (or -1 but we will see that won't work:)
1^3 + 2*1 = 3, sure enough
so slope = 1/4
y = (1/4) x + b
1 = (1/4)(3) + b
4/4 = 3/4 + b
b = 1/4
so
4y = x + 1
Answered by
Yonnie
But the answer choices are
y=2/5x + 11/5
y=6/11x - 7/11
y=y=2/5x + 13/5
y=2/5x - 1/5
y=6/11x - 18/11
y=2/5x + 11/5
y=6/11x - 7/11
y=y=2/5x + 13/5
y=2/5x - 1/5
y=6/11x - 18/11
Answered by
Ms. Sue
Why didn't you post the answer choices before? Damon went to all of this work without having all of the necessary information.
Answered by
Yonnie
Well shouldn't Damon have known what to do and not need answer choices?
Answered by
Damon
Oh, the slope is 2/4 = 1/2
You can do it from there I think
You can do it from there I think
Answered by
Damon
tangent slope = dy/dt / dx/dt
= 2t/(3t^2+2)
when t = 1
that is 2/(3+2) = 2/5
= 2t/(3t^2+2)
when t = 1
that is 2/(3+2) = 2/5
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