College Physics (Instructor's)
College Physics (Instructor's)
11th Edition
ISBN: 9781305965317
Author: SERWAY
Publisher: CENGAGE L
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Chapter 15, Problem 18P

(a) Determine the electric field strength at a point 1.00 cm to the left of the middle charge shown in Figure P15.10.

(b) If a charge of −2.00 μC is placed at this point, what are the magnitude and direction of the force on it?

(a)

Expert Solution
Check Mark
To determine
The electric field at a point 1.00 cm from q2 .

Answer to Problem 18P

Solution: The electric field at a point 1.00 cm from q2 is 2.00×107N/C .

Explanation of Solution

The force diagram is given by,

College Physics (Instructor's), Chapter 15, Problem 18P

In the above diagram,

  • Fq1 is the force due to q1 .
  • Fq2 is the force due to q2 .
  • Fq3 is the force due to q3 .
  • E1 , E2 and E3 are the electric field corresponding to the three charges.

Formula to calculate the electric is given by,

E=keQr2

  • ke is the Coulomb constant.
  • Q is the charge.
  • r is the distance of separation.

Formula to calculate the electric field at a point 1.00 cm from q2 is,

E=E1+E3E2=(keq1r12)+(keq3r32)(keq2r22)

  • r1 is the distance between q1 and the point.
  • r2 is the distance between q2 and the point.
  • r3 is the distance between q3 and the point.

Substitute 8.99×109N.m2/C2 for ke , 6μC for q1 , 1.5μC for q2 , 2μC for q3 , 2.00 cm for r1 , 3.00 cm for r3 and 1.00 cm for r2 .

E=(8.99×109N.m2/C2)[(6μC(2.00cm)2)+(2μC(3.00cm)2)(1.5μC(1.00cm)2)]=(8.99×109N.m2/C2)[(6×106C(1.00×102m)2)+(2×106C(3.00×102m)2)(1.5×106C(1.00×102m)2)]=2.00×107N/C

Conclusion:

The electric field at a point 1.00 cm from q2 is 2.00×107N/C .

(b)

Expert Solution
Check Mark
To determine
The force on the charge placed at a point 1.00 cm from q2 .

Answer to Problem 18P

Solution: The force on the charge placed at a point 1.00 cm from q2 is towards the left and has magnitude of 40.0 N.

Explanation of Solution

Given info: 2.00μC charge is placed at a point 1.00 cm from q2 .

Formula to calculate the force on the charge placed at a point 1.00 cm from q2 . is,

F=|q|E

  • q is the charge placed at the point.

Substitute 2.00×107N/C for E and 2μC for q.

F=|(2μC)|(2.00×107N/C)=(2×106C)(2.00×107N/C)=40.0N

Conclusion:

The force on the charge placed at a point 1.00 cm from q2 is towards the left and has magnitude of 40.0 N

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Students have asked these similar questions
(a) Determine the electric field strength at a point 1.00 cm to the left of the middle charge shown in Figure P15.10. (b) If a charge of -2.00 μC is placed at this point, what are the magnitude and direction of the force on it?
(a) Determine the electric field strength at a point 1.00 cm to the left of the middle charge shown in the figure below. (Enter the magnitude of the electric field only.)    N/C(b) If a charge of −3.60 µC is placed at this point, what are the magnitude and direction of the force on it? magnitude        direction

Chapter 15 Solutions

College Physics (Instructor's)

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(a)...Ch. 15 - Three equal positive charges are at the corners of...Ch. 15 - Refer 10 Figure 15.20. 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