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Chapter 19, Problem 45P

(a)

To determine

The electric field at 0cm from the centre of the sphere.

(a)

Expert Solution
Check Mark

Answer to Problem 45P

The electric field at 0cm from the centre of the sphere is 0N/C .

Explanation of Solution

Given info: The radius of solid sphere is 40.0cm and the total positive charge on the sphere is 26.0μC .

The diagram for the given condition is shown below.

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term, Chapter 19, Problem 45P

Figure (1)

The charge enclosed by the Gaussian surface is,

qen=qV(43πr3)=q43πR3(43πr3)=qr3R3

Here,

V is the volume of the outer sphere.

r is the radius of the inner sphere.

R is the radius of the outer sphere.

The area of the sphere is,

A=4πr2

The Gauss law is,

EdA=qenε0EA=qenε0

Here,

ε0 is the permittivity of the electrical field.

E is the electric field.

Substitute 4πr2 for A and qr3R3 for qen in above equation.

E(4πr2)=qr3R3ε0E=14πε0(qrR3)=K(qrR3) (1)

Here,

K is the coulomb constant.

Substitute 40.0cm for R , 26.0μC for q and 0 for r in equation (1) to find E .

E=K((26.0μC)(0)(40.0cm)3)=0N/C

Conclusion:

Therefore, the electric field at 0cm from the centre of the sphere is 0N/C .

(b)

To determine

The electric field at 10.0cm from the centre of the sphere.

(b)

Expert Solution
Check Mark

Answer to Problem 45P

The electric field at 10.0cm from the centre of the sphere is 3.65×105N/C .

Explanation of Solution

Given info: The radius of solid sphere is 40.0cm and the total positive charge on the sphere is 26.0μC .

Recall the equation (1).

E=K(qrR3)

Substitute 40.0cm for R , 26.0μC for q , 8.99×109Nm2/C2 for K and 10.0cm for r in above equation to find E .

E=(8.99×109Nm2/C2)((26.0μC(106C1μC))(10.0cm(102m1cm))(40.0cm(102m1cm))3)=3.65×105N/C

Conclusion:

Therefore, the electric field at 10.0cm from the centre of the sphere is 3.65×105N/C .

(c)

To determine

The electric field at 40.0cm from the centre of the sphere.

(c)

Expert Solution
Check Mark

Answer to Problem 45P

The electric field at 40.0cm from the centre of the sphere is 1.46×106N/C .

Explanation of Solution

Given info: The radius of solid sphere is 40.0cm and the total positive charge on the sphere is 26.0μC .

Recall the equation (1).

E=K(qrR3)

Substitute 40.0cm for R , 26.0μC for q , 8.99×109Nm2/C2 for K and 40.0cm for r in above equation to find E .

E=(8.99×109Nm2/C2)((26.0μC(106C1μC))(40.0cm(102m1cm))(40.0cm(102m1cm))3)=1.46×106N/C

Conclusion:

Therefore, the electric field at 40.0cm from the centre of the sphere is 1.46×106N/C .

(d)

To determine

The electric field at 60.0cm from the centre of the sphere.

(d)

Expert Solution
Check Mark

Answer to Problem 45P

The electric field at 60.0cm from the centre of the sphere is 6.49×105N/C .

Explanation of Solution

Given info: The radius of solid sphere is 40.0cm and the total positive charge on the sphere is 26.0μC .

The distance 60.0cm is outside the solid sphere because the radius of the sphere is 40.0cm . It means r>R .

Then,

EdA=qenε0E(4πr2)=qε0E=14πε0(qr2)=K(qr2)

Substitute 26.0μC for q , 8.99×109Nm2/C2 for K and 60.0cm for r in above equation to find E .

E=(8.99×109Nm2/C2)((26.0μC(106C1μC))(60.0cm(102m1cm))2)=6.49×105N/C

Conclusion:

Therefore, the electric field at 60.0cm from the centre of the sphere is 6.49×105N/C .

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Chapter 19 Solutions

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term

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