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A parallel-plate capacitor with circular plates of the radius Ris being charged. Show that, the magnitude of the current density of the displacement current is

role="math" localid="1663149858775" Jd=ε0(dEdt)forr⩽R.

Short Answer

Expert verified

The magnitude of the current density of the displacement current isJd=ε0dEdt

Step by step solution

01

Given data

A parallel plate capacitor with circular a radius R.

02

Determining the concept

By using the relation between the current density and the displacement current, and the expression of flux in terms of area and electric field, find the current density as a function of the electric field. In electromagnetism, displacement current density are the quantity appearing in Maxwell's equations that is defined in terms of the rate of change of D, the electric displacement field.

Formulae are as follows:

Jd=idA

where,Jd is the displacement current density, iis the current and, Ais the area.

03

Determining the magnitude of the current density of the displacement current  

The displacement current density is uniform and normal to the area. Its magnitude is given by,

Jd=idA………………………………………………………………………………………….1

Where displacement current can be written as,

id=ε0dϕEdt

Whereis the electric flux, and it isϕE=AE.

So,

id=Aε0dEdt

By substituting the above equation in equation (1),

Jd=1AAε0dEdt      =ε0dEdt

Therefore, the magnitude of the current density of the displacement current is Jd=ε0dEdt.

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Most popular questions from this chapter

A Rowland ring is formed of ferromagnetic material. It is circular in cross section, with an inner radius of 5.0cm and an outer radius of 6.0cm, and is wound with400 turns of wire. (a) What current must be set up in the windings to attain a toroidal field of magnitudeB0=0.20mT ? (b) A secondary coil wound around the toroid has 50Turnsand resistance8.0Ω . If, for this value ofB0 , we haveBM=800B0 , how much charge moves through the secondary coil when the current in the toroid windings is turned on?

At what rate must the potential difference between the plates of a parallel-plate capacitor with a2.0μF capacitance be changed to produce a displacement current of1.5A?

The figure 32-20 shows a circular region of radius R=3.00cmin which adisplacement currentis directedout of the page. The magnitude of the density of this displacement current is Jd=(4.00A/m2)(1-r/R), where r is the radial distance r≤R. (a) What is the magnitude of the magnetic field due to displacement current at 2.00cm? (b)What is the magnitude of the magnetic field due to displacement current at 5.00cm?

Fig 32-20

Figure 32-30 shows a circular region of radius R=3.00cmin which a displacement current idis directedout of the page. The magnitude of the displacement current isgiven by id=(3.00A)(r/R), where r is the radial distance (r≤R).(a) What is the magnitude of the magnetic field due to id atradial distance 2.00cm? (b)What is the magnitude of the magnetic field due to idat radial distance 5.00cm?

The magnitude of the dipole moment associated with an atom of iron in an iron bar is 2.1×10-23J/T. Assume that all the atoms in the bar, which is5.0cmlong and has a cross-sectional area of1.0cm2, have their dipole moments aligned. (a) What is the dipole moment of the bar? (b) What torque must be exerted to hold this magnet perpendicular to an external field of magnitude1.5T? (The density of iron is7.9g/m3.)

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