- #1
rslewis96
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Hello!
First of all, thank you for your time in reading my post. Secondly, I am not looking for people to freely give me the answers. With all that said...
I have a test point randomly selected on a graph, but what I am trying to figure out is where on this graph would this test point or potential difference would be equal to 0 between two charges. I picked three points, q is at (x,y), (-q) is at (x1,y1) and my test point is at (x2,y2). So with this I should be able to set the equation up and go from there.
Where: v is volts, k is 8.99*10^9 (Nm^2)/c^2, q is charges in coulombs and r is the distance between the two points or the distance formula √(x2-x1)^2+(y2-y1))
V=[k(q)/r] + [k(-q)/r]
distance formula √(x2-x1)^2+(y2-y1))
set v equal to zero you get:
0=(8.99*10^9)(q)/(√((x2-x1)^2+(y2-y1)^2) + (8.99*10^9)(-q)/√((x2-x)^2 +(y2-y)^2)
move (8.99*10^9)(-q)/√((x2-x)^2 +(y2-y)^2) to the right side.
-(8.99*10^9)(-q)/√((x2-x)^2 +(y2-y)^2) = (8.99*10^9)(q)/(√((x2-x1)^2+(y2-y1)^2)
from here 8.99*10^9 cancel out.
-(-q)/√((x2-x)^2 +(y2-y)^2) = (q)/(√((x2-x1)^2+(y2-y1)^2)
multiply the negative sign on the left.
(+q)/√((x2-x)^2 +(y2-y)^2) = (q)/(√((x2-x1)^2+(y2-y1)^2)
Now the q cancel out.
1/√((x2-x)^2 +(y2-y)^2) = 1/(√((x2-x1)^2+(y2-y1)^2)
I then square both sides to get:
1/((x2-x)^2 +(y2-y)^2) = 1/((x2-x1)^2+(y2-y1)^2)
and from here I am lost.
Any advice on where I should go from here would be great.
First of all, thank you for your time in reading my post. Secondly, I am not looking for people to freely give me the answers. With all that said...
Homework Statement
I have a test point randomly selected on a graph, but what I am trying to figure out is where on this graph would this test point or potential difference would be equal to 0 between two charges. I picked three points, q is at (x,y), (-q) is at (x1,y1) and my test point is at (x2,y2). So with this I should be able to set the equation up and go from there.
Where: v is volts, k is 8.99*10^9 (Nm^2)/c^2, q is charges in coulombs and r is the distance between the two points or the distance formula √(x2-x1)^2+(y2-y1))
Homework Equations
V=[k(q)/r] + [k(-q)/r]
distance formula √(x2-x1)^2+(y2-y1))
The Attempt at a Solution
set v equal to zero you get:
0=(8.99*10^9)(q)/(√((x2-x1)^2+(y2-y1)^2) + (8.99*10^9)(-q)/√((x2-x)^2 +(y2-y)^2)
move (8.99*10^9)(-q)/√((x2-x)^2 +(y2-y)^2) to the right side.
-(8.99*10^9)(-q)/√((x2-x)^2 +(y2-y)^2) = (8.99*10^9)(q)/(√((x2-x1)^2+(y2-y1)^2)
from here 8.99*10^9 cancel out.
-(-q)/√((x2-x)^2 +(y2-y)^2) = (q)/(√((x2-x1)^2+(y2-y1)^2)
multiply the negative sign on the left.
(+q)/√((x2-x)^2 +(y2-y)^2) = (q)/(√((x2-x1)^2+(y2-y1)^2)
Now the q cancel out.
1/√((x2-x)^2 +(y2-y)^2) = 1/(√((x2-x1)^2+(y2-y1)^2)
I then square both sides to get:
1/((x2-x)^2 +(y2-y)^2) = 1/((x2-x1)^2+(y2-y1)^2)
and from here I am lost.
Any advice on where I should go from here would be great.