COLLEGE PHYSICS
COLLEGE PHYSICS
2nd Edition
ISBN: 9781711470832
Author: OpenStax
Publisher: XANEDU
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Chapter 18, Problem 22PE
To determine

(a)

The electric field at the location of qa.

Expert Solution
Check Mark

Answer to Problem 22PE

The electric field at the location of qa is 1.25106NC.

Explanation of Solution

Given:

  qb=+10.00μC

  qc=5.00μC

Side of an equilateral triangle 25.0 cm

Formula used:

  E=Ebcosφ

Calculation:

COLLEGE PHYSICS, Chapter 18, Problem 22PE

Let Eb and Ec be electric field contributions of charges qb and qc at A.

Total electric field E can be calculated as follows:

  E=Eb+Ec

Since angle at A is 60, angle between Eb and Ec is 120. Distances from qb and qc to A are equal, so Ec is half of Eb because qc is half of qb.

Consider triangle AP1P2 in the picture.

Angle at P1 is 180120=60 for P1 and A are adjacent vertices of a parallelogram.

Also, |P1P2|=12|AP1| so by the side-angle-side (SAS) postulate we find that it is similar to a right triangle with angles 60 and 30.

Therefore, P2AP1φ=30,P1P2A=90.

  E=Ebcosφ=kqba232=9 109 Nm 2 C 2 10 10 6C ( 0.25m )232=1.247106NC

Conclusion:

Thus, the electric field at the location of qa is 1.25106NC.

To determine

(b)

The force on qa.

Expert Solution
Check Mark

Answer to Problem 22PE

The force on qa is 1.87103 N

Explanation of Solution

Given:

  qa=+1.50 nC

  qb=+10.00μC

  qc=5.00μC

Side of an equilateral triangle 25.0 cm

Formula used:

  Fa=Eqb

Calculation:

  Fa=Eqb

Substitute the values

  Fa=(1.247× 106NC)(1.5× 10 9C)=1.87×103 N

Conclusion:

Thus, the force on qa is 1.87×103 N

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Chapter 18 Solutions

COLLEGE PHYSICS

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