A parallel plate capacitor of plate area...

A parallel plate capacitor of plate area A and plate separation d is charged to potential difference V and then the battery is disconnected. A slab of dielectric constant K is then inserted between the plates of the capacitor so as to fill the space between the plates. If Q, E and W denote respectively, the magnitude of charge on each plate, the electric field between the plates (after the slab is inserted), and work done on the system, in question, in the process of inserting the slab, then

`Q=(A in_(0)V)/(d)`

`(KA in_(0)V)/(d)`

`E=(V)/(Kd)`

`W=(1)/(2)(Ain_(0)V^(2))/(d)(1-(1)/(K))`

Text Solution

Verified by Experts

The correct Answer is:

`C=(Ain_(0))/(d),Q=CV=(Ain_(0)V)/(d)`
Charge remains same, `(A)` is O.K.
`CV=KCV'impliesV'=(V)/(K)`
`E=(V')/(d)=(v)/(Kd),(c)` is O.K.
`W_(1rarr2)=|U_(2)-U_(1)|=|(Q^(2))/(2KC)-(Q^(2))/(2C)|`
`=(1)/(2)(Ain_(0)V^(2))/(d)(1-(1)/(K)),(D)` is O.K.

Topper's Solved these Questions

CAPACITANCE
CP SINGH|Exercise Exercise|74 Videos
BOHR THEORY
CP SINGH|Exercise Exercises|80 Videos
CURRENT ELECTRICITY
CP SINGH|Exercise Exercise|137 Videos

Similar Questions

Explore conceptually related problems

A parallel - plate capacitor of plate area A and plate separation d is charged to a potential difference V and then the battery is disconnected . A slab of dielectric constant K is then inserted between the plate of the capacitor so as to fill the space between the plate .Find the work done on the system in the process of inserting the slab.

A parallel-plate capacitor of plate area A and plate separation d is charged by a ideal battery of e.m.f. V and then the battery is disconnected. A slab of dielectric constant 2k is then inserted between the plates of the capacitor so as to fill the whole space between the plates. Find the change in potential energy of the system in the process of inserting the slab.

In a parallel-plate capacitor of plate area A , plate separation d and charge Q the force of attraction between the plates is F .

Figure shows a parallel plate capacitor with plate area A and plate separation d . A potential difference is being applied between the plates. The battery is then disconnected and a dielectric slab of dieletric constant K is placed in between the plates of the capacitor as shown. The electric field in the gaps between the plates and the electric slab will be

Figue shows a parallel plate capacitor with plate area A and plate separation d . A potential difference is being applied between the plates. The battery is then disconnected and a dielectric slab of dieletric constant K is placed in between the plates of the capacitor as shown. The electric field in the dielectric slab is

A parallel plate capacitor of capacitance C_(0) is charged with a charge Q_(0) to a potential difference V_(0) and the battery is then disconnected Now a dielectric slab of dielectric constant k is inserted between the plates ofcapacitor. The dimensions of the slab are such that it completely fills the space between the plates, then :

A parallel plate capacitor of plate area A and plates separation distance d is charged by applying a potential V_(0) between the plates. The dielectric constant of the medium between the plates is K. What is the uniform electric field E between the plates of the capacitor ?

A parallel plate capacitor of plate are A and plate separation d is charged by a battery of voltage V. The battery is then disconnected. The work needed to pull the plates to a separation 2d is

A parallel plate capacitor having plate area A and separation between the plates d is charged to potential V .The energy stored in capacitor is ....???

CP SINGH-CAPACITANCE-Exercise

C,V,U and Q are capacitance, potential difference, energy stored and c...
Text Solution
|
A parallel plate capacitor is connected to a cell. A metal plate of ne...
Text Solution
|
The capcitance of a parallel plate capacitor is C(0) when the space be...
Text Solution
|
The separation between the plates of a parallel plate capacitor is mad...
Text Solution
|
A parallel plate capcitor of capacitance C is having charge q(0) on e...
Text Solution
|
Two idential parallel plate capacitors are connected in sereis to a c...
Text Solution
|
Two condensers, one of capacity C and the other of capacity C//2, are...
Text Solution
|
Two capacitors C(1)=3muF and C(2)=6muF in series, are connected in par...
Text Solution
|
Two condensers of capacity C and 2C are connected in parallel and thes...
Text Solution
|
The plates of a parallel plate capacitor are charged up to 100 v. Now,...
Text Solution
|
An isolated charged capacitor with vacuum between its plates is dipped...
Text Solution
|
C,Q,V and U are capacitance, charge, potential difference and energy s...
Text Solution
|
A parallel plate capcitor has plate area A and separation d. It is cha...
Text Solution
|
The space between plates of a parallel plate capacitor is filled by a ...
Text Solution
|
A parallel plate capacitor of plate area A and plate separation d is c...
Text Solution
|
A parallel-plate capacitor has plates of area A and separation d and i...
Text Solution
|
A parallel plate capacitor of capacitance 10muF is charged to potenta...
Text Solution
|
Figure shows two identical parallel plate capacitors connected to a sw...
Text Solution
|
Consider the situation shown in the figure. The capacitor A has a char...
Text Solution
|
Two thin dielectric slabs of dielectric constants K(1) and K(2) (K(1) ...
Text Solution
|