The Math Thread!

[Arkhi]

Alternatively, this thread can be called "Ark hates graphs" thread.
Anyway, the creation of this was probably only a matter of time. I am wondering if someone well-suited in the caliber of Calculus would be able to assist me.
I need to convert the following polar equation into its rectangular equation:

r=6/(2-3sinθ)

Or, if you work visually, here's a picture (Number 25):

[Yash]

4x^2 + 3y^2 + 36y - 36 = 0

if you need the working..

just cross multiply 2-3sint with r.. replace rsint as y and r as sqrt(x^2 + y^2) and rearrange to get only the squareroot term on one side.. then square both sides.. and rearrange the terms..

Edited May 3, 2014 by Aquibex

[Arkhi]

I derped my multiplication. Thank you. Additionally, I try to avoid roots where possible

[Yash]

unfortunately in this case you dont have an option of avoiding the root.. incase you have any more problems im happy to help..

[Felicity]

OW

[Arkhi]

4x^2 + 3y^2 + 36y - 36 = 0

if you need the working..

just cross multiply 2-3sint with r.. replace rsint as y and r as sqrt(x^2 + y^2) and rearrange to get only the squareroot term on one side.. then square both sides.. and rearrange the terms..

I notice one problem. If either side is being squared, that means that there cannot be a single y^1 unit.

2r - 3y = 6

2(sqrt(x^2 + y^2)) = 6 + 3y

4x^2 + 4y^2 = 36 + 9y^2

4x^2 - 5y^2 - 36 = 0 is what I ended with.

Though, curiously enough, I received another solution through a different step (the step)

2r - 3y = 6 (Squaring everything immediately after this step)

4x^2 + 4y^2 + 9y^2 = 36 (I suppose this could be squared, but then everything is + or - and there are too many combinations of answers)

4x^2 + 13y^2 - 36 = 0 is another answer I received. Because of the property of square roots, there can be multiple different answers, right? One in which -3y is added and one in which -3y is squared. Either way, I never received a y^1 anywhere, so that has me confused.

[Yash]

hey sorry about the really late reply.. my net was down for the past couple of days.. it seems i made a mistake as well.. here is the correct solution.. and you will get y^1.. the square of 6-3y becomes 38 - 36y + 9y^2.. putting an image for ur ref..