How do you graph the polar equation r=1.5thetar=1.5θ?

1 Answer
Truong-Son N.
Jul 20, 2017

Polar equations vary rr as thetaθ cycles counterclockwise through from 00 to 2pi2π, 2pi - 4pi2π4π, etc.

r = 1.5thetar=1.5θ

This equation has rr increase by 1.51.5 for every 11 radian that we pass through ((180/pi)^@(180π)). If r = thetar=θ, we would have gotten a spiral.

Here, with r = 1.5thetar=1.5θ in [0,8pi][0,8π], we just have a bigger spiral:

![http://www.wolframalpha.com/](useruploads.socratic.org)

For example, if you look at theta = pi/2θ=π2, you should see

r = 1.5 xx pi/2 ~~ ul2.35 on the vertical axis.

If we pass through pi/2 radians, we move to

r = 1.5 xx (pi/2 + pi/2) => ul(-4.71) on the horizontal axis

If we pass through (3pi)/2 radians, we move to

r = 1.5 xx (pi/2 + pi) => ul(-7.07) on the vertical axis.

If we pass through 2pi radians, we move up to

r = 1.5 xx (pi/2 + (3pi)/2) ~~ ul9.42 on the horizontal axis.

Then, if we pass through (5pi)/2 radians, we move up to

r = 1.5 xx (pi/2 + 2pi) ~~ ul11.78 on the vertical axis.

Once you have those major points, connect them in a spiral.

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