Net electric field of a charged arc

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Homework Help Overview

The problem involves finding the net electric field at the origin due to charged arcs, specifically a quarter circle in the second quadrant. The discussion references relevant equations related to electric fields and charge distributions.

Discussion Character

  • Exploratory, Conceptual clarification, Mathematical reasoning, Problem interpretation

Approaches and Questions Raised

  • Participants discuss the formula provided by the professor and question the origin of the term 2sin(45°). There is an attempt to understand the vector components contributing to the electric field and the need for a derivation involving integrals.

Discussion Status

Some participants are exploring the derivation of the electric field and expressing difficulties in setting up the integral. There is an ongoing dialogue about the interpretation of the angles involved in the electric field calculation.

Contextual Notes

Participants are working within the constraints of a homework assignment, which may limit the information they can share or the methods they can use. The problem setup and parameters are also under discussion, indicating potential variations in approach.

Jrlinton
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Homework Statement


So this was a problem worked in class by the professor in class.
Find the net electric field at the origin due to the arcs
upload_2017-2-17_14-44-14.png


Homework Equations


L=2πr/4
λ=q/L
E=kQ/r2

The Attempt at a Solution


So the professor gave the answer using the fromula
Enet1(2sin45°)/(4πε0r1)+λ2(2sin45°)/(4πε0r2)+λ3(2sin45°)/(4πε0r3)

I can understand the formula except for where the 2sin45° comes from. I mean the arc is a quarter circle of 90° in the second quadrant but I am unsure where this term comes from and how it would change if the parameters of the problem were to change.
 
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See if this diagram helps
upload_2017-2-17_15-10-28.png
 
So if U am understanding this correctly then it is the added sine values of the two angles created when drawing the vector for the field?
 
Jrlinton said:
So if U am understanding this correctly then it is the added sine values of the two angles created when drawing the vector for the field?
I'm not following what you are saying here. In order to see why there is a factor of 2sin(45o) in the answer, you need to go through the derivation. This means setting up and evaluating the integral for the net electric field. Are you having trouble setting up the integral?
 
Yes, I am having trouble coming up with the integral.
 
Jrlinton said:
Yes, I am having trouble coming up with the integral.
OK. Show us your attempt at setting up the integral and we can go from there. It helps to first consider the direction of the net electric field.
 

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