ToCalculate : The potential difference between the cylinders.

Question

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Answer 1

Question

Chapter 24, Problem 90P

(a)

To determine

ToCalculate: The potential difference between the cylinders.

(a)

Expert Solution

Answer to Problem 90P

V=2kQln(b/a)κL

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Electric potential:

V=QC

Where, Q is the charge stored and C is the capacitance.

C=2π∈0κLln(b/a)

Where, κ is the dielectric constant, ∈0 is the absolute permittivity and L is the length of the capacitor, a and b are radii of the

Calculation:

The potential difference between the cylinders to their charge and capacitance is,

V=QC

The capacitance of a cylindrical capacitor as a function of its radii a and b and length L:

C=2π∈0κLln(b/a)

V=Qln( b/a )2π∈0κLV=2kQln( b/a )κL

Conclusion:

The potential difference between the cylinders is V=2kQln(b/a)κL .

(b)

To determine

ToCalculate: The density of the free charge of on the inner cylinder and the outer cylinder.

(b)

Expert Solution

Answer to Problem 90P

σf(a)=Q2πaL

σf(b)=−Q2πbL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Charge density:

σ=Q2πrL

Where, Q is the charge, r is the radius and L is the length of the cylinder.

Calculation:

Surface charge density is:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Conclusion:

The density of the free charge of on the inner cylinder and the outer cylinder are:

σf(a)=Q2πaL

σf(b)=−Q2πbL

(c)

To determine

ToCalculate: The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

(c)

Expert Solution

Answer to Problem 90P

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Bound charge can be expressed as:

Qb=Q(κ−1)κ

Where, κ is the dielectric constant.

Bound charge density:

σb=QbA

Where, A is the area.

Calculation:

Qb(a)=−Q(κ−1)κ

Qb(b)=Q(κ−1)κ

σb(a)=Qb(a)Aσb(a)= −Q( κ−1 )κ2πaLσb(a)=−Q( κ−1)2πaLκ

σb(b)=Qb(b)Aσb(b)= −Q( κ−1 )κ2πbLσb(b)=−Q( κ−1)2πbLκ

Conclusion:

The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

(d)

To determine

ToCalculate: The total stored energy.

(d)

Expert Solution

Answer to Problem 90P

U=kQ2ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

The energy stored in the capacitor:

U=12QV

Where, Q is the charge and V is the electric potential.

Calculation:

The potential difference between the cylinders is V=2kQln(b/a)κL .

The total stored energy in terms of the charge stored and the potential difference between the cylinders:

U=12QVU=12Q[2kQln( b/a )κL]U=kQ2ln( b/a )κL

Conclusion:

The total stored energy is,

U=kQ2ln(b/a)κL

(e)

To determine

ToCalculate: Mechanical work that is required to remove the dielectric cylindrical shell.

(e)

Expert Solution

Answer to Problem 90P

W=kQ2(κ−1)ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Work done in terms of potential energy of the system:

W=ΔU

Calculation:

The work required to remove the dielectric cylindrical shell in terms of the change in the potential energy of the system:

W=ΔUW=U′−U

The potential energy of the system with the dielectric shell in place is,

U′=κU

W=κU−UW=U(κ−1)W=kQ2( κ−1)ln( b/a )κL

Conclusion:

Mechanical work that is required to remove the dielectric cylindrical shell is W=kQ2(κ−1)ln(b/a)κL .

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Answer 2

Question

Chapter 24, Problem 90P

(a)

To determine

ToCalculate: The potential difference between the cylinders.

(a)

Expert Solution

Answer to Problem 90P

V=2kQln(b/a)κL

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Electric potential:

V=QC

Where, Q is the charge stored and C is the capacitance.

C=2π∈0κLln(b/a)

Where, κ is the dielectric constant, ∈0 is the absolute permittivity and L is the length of the capacitor, a and b are radii of the

Calculation:

The potential difference between the cylinders to their charge and capacitance is,

V=QC

The capacitance of a cylindrical capacitor as a function of its radii a and b and length L:

C=2π∈0κLln(b/a)

V=Qln( b/a )2π∈0κLV=2kQln( b/a )κL

Conclusion:

The potential difference between the cylinders is V=2kQln(b/a)κL .

(b)

To determine

ToCalculate: The density of the free charge of on the inner cylinder and the outer cylinder.

(b)

Expert Solution

Answer to Problem 90P

σf(a)=Q2πaL

σf(b)=−Q2πbL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Charge density:

σ=Q2πrL

Where, Q is the charge, r is the radius and L is the length of the cylinder.

Calculation:

Surface charge density is:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Conclusion:

The density of the free charge of on the inner cylinder and the outer cylinder are:

σf(a)=Q2πaL

σf(b)=−Q2πbL

(c)

To determine

ToCalculate: The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

(c)

Expert Solution

Answer to Problem 90P

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Bound charge can be expressed as:

Qb=Q(κ−1)κ

Where, κ is the dielectric constant.

Bound charge density:

σb=QbA

Where, A is the area.

Calculation:

Qb(a)=−Q(κ−1)κ

Qb(b)=Q(κ−1)κ

σb(a)=Qb(a)Aσb(a)= −Q( κ−1 )κ2πaLσb(a)=−Q( κ−1)2πaLκ

σb(b)=Qb(b)Aσb(b)= −Q( κ−1 )κ2πbLσb(b)=−Q( κ−1)2πbLκ

Conclusion:

The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

(d)

To determine

ToCalculate: The total stored energy.

(d)

Expert Solution

Answer to Problem 90P

U=kQ2ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

The energy stored in the capacitor:

U=12QV

Where, Q is the charge and V is the electric potential.

Calculation:

The potential difference between the cylinders is V=2kQln(b/a)κL .

The total stored energy in terms of the charge stored and the potential difference between the cylinders:

U=12QVU=12Q[2kQln( b/a )κL]U=kQ2ln( b/a )κL

Conclusion:

The total stored energy is,

U=kQ2ln(b/a)κL

(e)

To determine

ToCalculate: Mechanical work that is required to remove the dielectric cylindrical shell.

(e)

Expert Solution

Answer to Problem 90P

W=kQ2(κ−1)ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Work done in terms of potential energy of the system:

W=ΔU

Calculation:

The work required to remove the dielectric cylindrical shell in terms of the change in the potential energy of the system:

W=ΔUW=U′−U

The potential energy of the system with the dielectric shell in place is,

U′=κU

W=κU−UW=U(κ−1)W=kQ2( κ−1)ln( b/a )κL

Conclusion:

Mechanical work that is required to remove the dielectric cylindrical shell is W=kQ2(κ−1)ln(b/a)κL .

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Answer 3

Question

Chapter 24, Problem 90P

(a)

To determine

ToCalculate: The potential difference between the cylinders.

(a)

Expert Solution

Answer to Problem 90P

V=2kQln(b/a)κL

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Electric potential:

V=QC

Where, Q is the charge stored and C is the capacitance.

C=2π∈0κLln(b/a)

Where, κ is the dielectric constant, ∈0 is the absolute permittivity and L is the length of the capacitor, a and b are radii of the

Calculation:

The potential difference between the cylinders to their charge and capacitance is,

V=QC

The capacitance of a cylindrical capacitor as a function of its radii a and b and length L:

C=2π∈0κLln(b/a)

V=Qln( b/a )2π∈0κLV=2kQln( b/a )κL

Conclusion:

The potential difference between the cylinders is V=2kQln(b/a)κL .

(b)

To determine

ToCalculate: The density of the free charge of on the inner cylinder and the outer cylinder.

(b)

Expert Solution

Answer to Problem 90P

σf(a)=Q2πaL

σf(b)=−Q2πbL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Charge density:

σ=Q2πrL

Where, Q is the charge, r is the radius and L is the length of the cylinder.

Calculation:

Surface charge density is:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Conclusion:

The density of the free charge of on the inner cylinder and the outer cylinder are:

σf(a)=Q2πaL

σf(b)=−Q2πbL

(c)

To determine

ToCalculate: The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

(c)

Expert Solution

Answer to Problem 90P

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Bound charge can be expressed as:

Qb=Q(κ−1)κ

Where, κ is the dielectric constant.

Bound charge density:

σb=QbA

Where, A is the area.

Calculation:

Qb(a)=−Q(κ−1)κ

Qb(b)=Q(κ−1)κ

σb(a)=Qb(a)Aσb(a)= −Q( κ−1 )κ2πaLσb(a)=−Q( κ−1)2πaLκ

σb(b)=Qb(b)Aσb(b)= −Q( κ−1 )κ2πbLσb(b)=−Q( κ−1)2πbLκ

Conclusion:

The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

(d)

To determine

ToCalculate: The total stored energy.

(d)

Expert Solution

Answer to Problem 90P

U=kQ2ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

The energy stored in the capacitor:

U=12QV

Where, Q is the charge and V is the electric potential.

Calculation:

The potential difference between the cylinders is V=2kQln(b/a)κL .

The total stored energy in terms of the charge stored and the potential difference between the cylinders:

U=12QVU=12Q[2kQln( b/a )κL]U=kQ2ln( b/a )κL

Conclusion:

The total stored energy is,

U=kQ2ln(b/a)κL

(e)

To determine

ToCalculate: Mechanical work that is required to remove the dielectric cylindrical shell.

(e)

Expert Solution

Answer to Problem 90P

W=kQ2(κ−1)ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Work done in terms of potential energy of the system:

W=ΔU

Calculation:

The work required to remove the dielectric cylindrical shell in terms of the change in the potential energy of the system:

W=ΔUW=U′−U

The potential energy of the system with the dielectric shell in place is,

U′=κU

W=κU−UW=U(κ−1)W=kQ2( κ−1)ln( b/a )κL

Conclusion:

Mechanical work that is required to remove the dielectric cylindrical shell is W=kQ2(κ−1)ln(b/a)κL .

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Answer 4

Question

Chapter 24, Problem 90P

(a)

To determine

ToCalculate: The potential difference between the cylinders.

(a)

Expert Solution

Answer to Problem 90P

V=2kQln(b/a)κL

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Electric potential:

V=QC

Where, Q is the charge stored and C is the capacitance.

C=2π∈0κLln(b/a)

Where, κ is the dielectric constant, ∈0 is the absolute permittivity and L is the length of the capacitor, a and b are radii of the

Calculation:

The potential difference between the cylinders to their charge and capacitance is,

V=QC

The capacitance of a cylindrical capacitor as a function of its radii a and b and length L:

C=2π∈0κLln(b/a)

V=Qln( b/a )2π∈0κLV=2kQln( b/a )κL

Conclusion:

The potential difference between the cylinders is V=2kQln(b/a)κL .

(b)

To determine

ToCalculate: The density of the free charge of on the inner cylinder and the outer cylinder.

(b)

Expert Solution

Answer to Problem 90P

σf(a)=Q2πaL

σf(b)=−Q2πbL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Charge density:

σ=Q2πrL

Where, Q is the charge, r is the radius and L is the length of the cylinder.

Calculation:

Surface charge density is:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Conclusion:

The density of the free charge of on the inner cylinder and the outer cylinder are:

σf(a)=Q2πaL

σf(b)=−Q2πbL

(c)

To determine

ToCalculate: The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

(c)

Expert Solution

Answer to Problem 90P

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Bound charge can be expressed as:

Qb=Q(κ−1)κ

Where, κ is the dielectric constant.

Bound charge density:

σb=QbA

Where, A is the area.

Calculation:

Qb(a)=−Q(κ−1)κ

Qb(b)=Q(κ−1)κ

σb(a)=Qb(a)Aσb(a)= −Q( κ−1 )κ2πaLσb(a)=−Q( κ−1)2πaLκ

σb(b)=Qb(b)Aσb(b)= −Q( κ−1 )κ2πbLσb(b)=−Q( κ−1)2πbLκ

Conclusion:

The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

(d)

To determine

ToCalculate: The total stored energy.

(d)

Expert Solution

Answer to Problem 90P

U=kQ2ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

The energy stored in the capacitor:

U=12QV

Where, Q is the charge and V is the electric potential.

Calculation:

The potential difference between the cylinders is V=2kQln(b/a)κL .

The total stored energy in terms of the charge stored and the potential difference between the cylinders:

U=12QVU=12Q[2kQln( b/a )κL]U=kQ2ln( b/a )κL

Conclusion:

The total stored energy is,

U=kQ2ln(b/a)κL

(e)

To determine

ToCalculate: Mechanical work that is required to remove the dielectric cylindrical shell.

(e)

Expert Solution

Answer to Problem 90P

W=kQ2(κ−1)ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Work done in terms of potential energy of the system:

W=ΔU

Calculation:

The work required to remove the dielectric cylindrical shell in terms of the change in the potential energy of the system:

W=ΔUW=U′−U

The potential energy of the system with the dielectric shell in place is,

U′=κU

W=κU−UW=U(κ−1)W=kQ2( κ−1)ln( b/a )κL

Conclusion:

Mechanical work that is required to remove the dielectric cylindrical shell is W=kQ2(κ−1)ln(b/a)κL .

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Answer 5

Chapter 24, Problem 90P

(a)

To determine

ToCalculate: The potential difference between the cylinders.

(a)

Expert Solution

Answer to Problem 90P

V=2kQln(b/a)κL

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Electric potential:

V=QC

Where, Q is the charge stored and C is the capacitance.

C=2π∈0κLln(b/a)

Where, κ is the dielectric constant, ∈0 is the absolute permittivity and L is the length of the capacitor, a and b are radii of the

Calculation:

The potential difference between the cylinders to their charge and capacitance is,

V=QC

The capacitance of a cylindrical capacitor as a function of its radii a and b and length L:

C=2π∈0κLln(b/a)

V=Qln( b/a )2π∈0κLV=2kQln( b/a )κL

Conclusion:

The potential difference between the cylinders is V=2kQln(b/a)κL .

(b)

To determine

ToCalculate: The density of the free charge of on the inner cylinder and the outer cylinder.

(b)

Expert Solution

Answer to Problem 90P

σf(a)=Q2πaL

σf(b)=−Q2πbL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Charge density:

σ=Q2πrL

Where, Q is the charge, r is the radius and L is the length of the cylinder.

Calculation:

Surface charge density is:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Conclusion:

The density of the free charge of on the inner cylinder and the outer cylinder are:

σf(a)=Q2πaL

σf(b)=−Q2πbL

(c)

To determine

ToCalculate: The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

(c)

Expert Solution

Answer to Problem 90P

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Bound charge can be expressed as:

Qb=Q(κ−1)κ

Where, κ is the dielectric constant.

Bound charge density:

σb=QbA

Where, A is the area.

Calculation:

Qb(a)=−Q(κ−1)κ

Qb(b)=Q(κ−1)κ

σb(a)=Qb(a)Aσb(a)= −Q( κ−1 )κ2πaLσb(a)=−Q( κ−1)2πaLκ

σb(b)=Qb(b)Aσb(b)= −Q( κ−1 )κ2πbLσb(b)=−Q( κ−1)2πbLκ

Conclusion:

The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

(d)

To determine

ToCalculate: The total stored energy.

(d)

Expert Solution

Answer to Problem 90P

U=kQ2ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

The energy stored in the capacitor:

U=12QV

Where, Q is the charge and V is the electric potential.

Calculation:

The potential difference between the cylinders is V=2kQln(b/a)κL .

The total stored energy in terms of the charge stored and the potential difference between the cylinders:

U=12QVU=12Q[2kQln( b/a )κL]U=kQ2ln( b/a )κL

Conclusion:

The total stored energy is,

U=kQ2ln(b/a)κL

(e)

To determine

ToCalculate: Mechanical work that is required to remove the dielectric cylindrical shell.

(e)

Expert Solution

Answer to Problem 90P

W=kQ2(κ−1)ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Work done in terms of potential energy of the system:

W=ΔU

Calculation:

The work required to remove the dielectric cylindrical shell in terms of the change in the potential energy of the system:

W=ΔUW=U′−U

The potential energy of the system with the dielectric shell in place is,

U′=κU

W=κU−UW=U(κ−1)W=kQ2( κ−1)ln( b/a )κL

Conclusion:

Mechanical work that is required to remove the dielectric cylindrical shell is W=kQ2(κ−1)ln(b/a)κL .

Answer 6

Chapter 24, Problem 90P

(a)

To determine

ToCalculate: The potential difference between the cylinders.

(a)

Expert Solution

Answer to Problem 90P

V=2kQln(b/a)κL

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Electric potential:

V=QC

Where, Q is the charge stored and C is the capacitance.

C=2π∈0κLln(b/a)

Where, κ is the dielectric constant, ∈0 is the absolute permittivity and L is the length of the capacitor, a and b are radii of the

Calculation:

The potential difference between the cylinders to their charge and capacitance is,

V=QC

The capacitance of a cylindrical capacitor as a function of its radii a and b and length L:

C=2π∈0κLln(b/a)

V=Qln( b/a )2π∈0κLV=2kQln( b/a )κL

Conclusion:

The potential difference between the cylinders is V=2kQln(b/a)κL .

Answer 7

Chapter 24, Problem 90P

(a)

To determine

ToCalculate: The potential difference between the cylinders.

Answer 8

(a)

Expert Solution

Answer to Problem 90P

V=2kQln(b/a)κL

Answer 9

(a)

Expert Solution

Answer 10

(a)

Expert Solution

Answer 11

Expert Solution

Answer 12

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Electric potential:

V=QC

Where, Q is the charge stored and C is the capacitance.

C=2π∈0κLln(b/a)

Where, κ is the dielectric constant, ∈0 is the absolute permittivity and L is the length of the capacitor, a and b are radii of the

Calculation:

The potential difference between the cylinders to their charge and capacitance is,

V=QC

The capacitance of a cylindrical capacitor as a function of its radii a and b and length L:

C=2π∈0κLln(b/a)

V=Qln( b/a )2π∈0κLV=2kQln( b/a )κL

Conclusion:

The potential difference between the cylinders is V=2kQln(b/a)κL .

Answer 13

(b)

To determine

ToCalculate: The density of the free charge of on the inner cylinder and the outer cylinder.

(b)

Expert Solution

Answer to Problem 90P

σf(a)=Q2πaL

σf(b)=−Q2πbL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Charge density:

σ=Q2πrL

Where, Q is the charge, r is the radius and L is the length of the cylinder.

Calculation:

Surface charge density is:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Conclusion:

The density of the free charge of on the inner cylinder and the outer cylinder are:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Answer 14

(b)

To determine

ToCalculate: The density of the free charge of on the inner cylinder and the outer cylinder.

Answer 15

(b)

Expert Solution

Answer to Problem 90P

σf(a)=Q2πaL

σf(b)=−Q2πbL

Answer 16

(b)

Expert Solution

Answer 17

(b)

Expert Solution

Answer 18

Expert Solution

Answer 19

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Charge density:

σ=Q2πrL

Where, Q is the charge, r is the radius and L is the length of the cylinder.

Calculation:

Surface charge density is:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Conclusion:

The density of the free charge of on the inner cylinder and the outer cylinder are:

σf(a)=Q2πaL

σf(b)=−Q2πbL

Answer 20

(c)

To determine

ToCalculate: The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

(c)

Expert Solution

Answer to Problem 90P

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Bound charge can be expressed as:

Qb=Q(κ−1)κ

Where, κ is the dielectric constant.

Bound charge density:

σb=QbA

Where, A is the area.

Calculation:

Qb(a)=−Q(κ−1)κ

Qb(b)=Q(κ−1)κ

σb(a)=Qb(a)Aσb(a)= −Q( κ−1 )κ2πaLσb(a)=−Q( κ−1)2πaLκ

σb(b)=Qb(b)Aσb(b)= −Q( κ−1 )κ2πbLσb(b)=−Q( κ−1)2πbLκ

Conclusion:

The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Answer 21

(c)

To determine

ToCalculate: The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

Answer 22

(c)

Expert Solution

Answer to Problem 90P

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Answer 23

(c)

Expert Solution

Answer 24

(c)

Expert Solution

Answer 25

Expert Solution

Answer 26

Explanation of Solution

Given information :

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used :

Bound charge can be expressed as:

Qb=Q(κ−1)κ

Where, κ is the dielectric constant.

Bound charge density:

σb=QbA

Where, A is the area.

Calculation:

Qb(a)=−Q(κ−1)κ

Qb(b)=Q(κ−1)κ

σb(a)=Qb(a)Aσb(a)= −Q( κ−1 )κ2πaLσb(a)=−Q( κ−1)2πaLκ

σb(b)=Qb(b)Aσb(b)= −Q( κ−1 )κ2πbLσb(b)=−Q( κ−1)2πbLκ

Conclusion:

The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

σb(a)=−Q(κ−1)2πaLκ

σb(b)=−Q(κ−1)2πbLκ

Answer 27

(d)

To determine

ToCalculate: The total stored energy.

(d)

Expert Solution

Answer to Problem 90P

U=kQ2ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

The energy stored in the capacitor:

U=12QV

Where, Q is the charge and V is the electric potential.

Calculation:

The potential difference between the cylinders is V=2kQln(b/a)κL .

The total stored energy in terms of the charge stored and the potential difference between the cylinders:

U=12QVU=12Q[2kQln( b/a )κL]U=kQ2ln( b/a )κL

Conclusion:

The total stored energy is,

U=kQ2ln(b/a)κL

Answer 28

(d)

To determine

ToCalculate: The total stored energy.

Answer 29

(d)

Expert Solution

Answer to Problem 90P

U=kQ2ln(b/a)κL

Answer 30

(d)

Expert Solution

Answer 31

(d)

Expert Solution

Answer 32

Expert Solution

Answer 33

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

The energy stored in the capacitor:

U=12QV

Where, Q is the charge and V is the electric potential.

Calculation:

The potential difference between the cylinders is V=2kQln(b/a)κL .

The total stored energy in terms of the charge stored and the potential difference between the cylinders:

U=12QVU=12Q[2kQln( b/a )κL]U=kQ2ln( b/a )κL

Conclusion:

The total stored energy is,

U=kQ2ln(b/a)κL

Answer 34

(e)

To determine

ToCalculate: Mechanical work that is required to remove the dielectric cylindrical shell.

(e)

Expert Solution

Answer to Problem 90P

W=kQ2(κ−1)ln(b/a)κL

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Work done in terms of potential energy of the system:

W=ΔU

Calculation:

The work required to remove the dielectric cylindrical shell in terms of the change in the potential energy of the system:

W=ΔUW=U′−U

The potential energy of the system with the dielectric shell in place is,

U′=κU

W=κU−UW=U(κ−1)W=kQ2( κ−1)ln( b/a )κL

Conclusion:

Mechanical work that is required to remove the dielectric cylindrical shell is W=kQ2(κ−1)ln(b/a)κL .

Answer 35

(e)

To determine

ToCalculate: Mechanical work that is required to remove the dielectric cylindrical shell.

Answer 36

(e)

Expert Solution

Answer to Problem 90P

W=kQ2(κ−1)ln(b/a)κL

Answer 37

(e)

Expert Solution

Answer 38

(e)

Expert Solution

Answer 39

Expert Solution

Answer 40

Explanation of Solution

Given information:

Radii of coaxial conducting thin cylindrical shells = a & b

Charge of the inner cylinder = +Q

Charge of the outer cylinder = −Q

Formula used:

Work done in terms of potential energy of the system:

W=ΔU

Calculation:

The work required to remove the dielectric cylindrical shell in terms of the change in the potential energy of the system:

W=ΔUW=U′−U

The potential energy of the system with the dielectric shell in place is,

U′=κU

W=κU−UW=U(κ−1)W=kQ2( κ−1)ln( b/a )κL

Conclusion:

Mechanical work that is required to remove the dielectric cylindrical shell is W=kQ2(κ−1)ln(b/a)κL .

Answer 41

Ch. 24 - Prob. 1P Ch. 24 - Prob. 2P Ch. 24 - Prob. 3P Ch. 24 - Prob. 4P Ch. 24 - Prob. 5P Ch. 24 - Prob. 6P Ch. 24 - Prob. 7P Ch. 24 - Prob. 8P Ch. 24 - Prob. 9P Ch. 24 - Prob. 10P

ToCalculate : The potential difference between the cylinders.

Concept explainers

Videos

ToCalculate: The potential difference between the cylinders.

Answer to Problem 90P

Explanation of Solution

ToCalculate: The density of the free charge of on the inner cylinder and the outer cylinder.

Answer to Problem 90P

Explanation of Solution

ToCalculate: The bound charge density σb on the inner cylindrical surface of the dielectric and on the outer cylindrical surface of the dielectric.

Answer to Problem 90P

Explanation of Solution

ToCalculate: The total stored energy.

Answer to Problem 90P

Explanation of Solution

ToCalculate: Mechanical work that is required to remove the dielectric cylindrical shell.

Answer to Problem 90P

Explanation of Solution

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