Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
1st Edition
ISBN: 9781133939146
Author: Katz, Debora M.
Publisher: Cengage Learning
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Chapter 26, Problem 64PQ

(a)

To determine

The finite values of y for which the electric field is zero.

(a)

Expert Solution
Check Mark

Answer to Problem 64PQ

The finite values of y for which the electric field is zero is 2.05m.

Explanation of Solution

Write an expression for the total electric field equal to zero.

  Ey=(kqAy2+kqB(yy')2)                                                                                      (I)

Here, Ey is the electric field, k is the culoumb constant, qA is the first charge, qB is the second charge, y is the position where total electric field is zero and y' is the position of the second charge.

Conclusion:

Substitute 8.99×109Nm2/C2 for k, 1.00nC for qA, 3.00nC for qB, 1.50m for y' and 0 for Ey in equation (I).

  0=((8.99×109Nm2/C2)((1.00nC)(1C109nC))y2+(8.99×109Nm2/C2)((3.00nC)(1C109nC))(y1.50m)2)=((8.99×109Nm2/C2)(1.00×109C)y2+(8.99×109Nm2/C2)(1.00×109C)(y1.50m)2)=((1.00)y2(3.00)(y1.50)2)                                          (II)

Rearrange the equation (II).

  0=(1.00)(y1.50)2(3.00)y2y2(y1.50)2=(1.00)(y1.50)2(3.00)y2=2.00y2+3.00y2.25                                                                       (III)

Calculate the value of y from equation (III).

    y=3.00±(3.00)24(2.00)(2.25)2(2.00)=3.00±27.02(2.00)=0.55mor2.05m

Thus, the finite value of y for which the electric field is zero is 2.05m since the positive root is not physically valid.

(b)

To determine

The finite values of y for which the electric potential is zero.

(b)

Expert Solution
Check Mark

Answer to Problem 64PQ

The finite values of y for which the electric potential is zero are 0.375m and 0.750m.

Explanation of Solution

Write an expression for the total electric field equal to zero.

  V=(kqAy+kqB(y'y))                                                                                       (IV)

Here, V is the electric potential.

Conclusion:

Substitute 8.99×109Nm2/C2 for k, 1.00nC for qA, 3.00nC for qB, 1.50m for y' and 0 for V in equation (IV).

  0=((8.99×109Nm2/C2)((1.00nC)(1C109nC))y+(8.99×109Nm2/C2)((3.00nC)(1C109nC))(1.50my))=((8.99×109Nm2/C2)(1.00×109C)y+(8.99×109Nm2/C2)(3.00×109C)(1.50my))=4y+1.50m                                          (V)

Rearraneg the equation (II).

  4y=1.50m                                                                                                         (VI)

Calculate the value of y from equation (VI).

    y=1.50m4=0.375m

For y<0; Substitute 8.99×109Nm2/C2 for k, 1.00nC for qA, 3.00nC for qB, 1.50m for y' and 0 for V in equation (IV).

  0=((8.99×109Nm2/C2)((1.00nC)(1C109nC))y+(8.99×109Nm2/C2)((3.00nC)(1C109nC))(1.50my))=((8.99×109Nm2/C2)(1.00×109C)y+(8.99×109Nm2/C2)(3.00×109C)(1.50my))=2y+1.50m                                        (VII)

Rearraneg the equation (VII).

  2y=1.50m                                                                                                   (VIII)

Calculate the value of y from equation (VIII).

    y=1.50m2=0.750m

Thus, the finite values of y for which the electric potential is zero are 0.375m and 0.750m.

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Chapter 26 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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