Question
Figure shows two identical parallel plate capacitors connected to a battery through a switch S. Initially, the switch is closed so that the capacitors are completely charged. The switch is now opened and the free space between the plates of the capacitors is filled with a dielectric of dielectric constant 3. Find the ratio of the initial total energy stored in the capacitors to the final total energy stored.

Answer


Initially when switch ‘s’ is closed

Total Initial Energy $=\Big(\frac{1}{2}\Big)\text{CV}^2+\Big(\frac{1}{2}\Big)\text{CV}^2=\text{CV}^2\ \dots(1)$

When switch is open the capacitance in each of capacitors varies, hence the energy also varies.

i.e. in case of ‘B’, the charge remains.

Same i.e. cv

$\text{C}_{\text{eff}}=3\text{C}$

$\text{E}=\frac{1}{2}\times\frac{\text{q}^2}{\text{c}}$

$=\frac{1}{2}\times\frac{\text{c}^2\text{v}^2}{3\text{c}}=\frac{\text{cv}^2}{6}$

In case of 'A'

$\text{C}_{\text{eff}}=3\text{c}$

$\text{E}=\frac{1}{2}\times\text{C}_{\text{eff}}\text{v}^2$

$=\frac{1}{2}\times\text{3c}\times\text{v}^2=\frac{3}{2}\text{cv}^2$

Total final energy $=\frac{\text{cv}^2}{6}+\frac{3\text{cv}^2}{2}=\frac{10\text{cv}^2}{6}$

Now, $\frac{\text{Initial Energy}}{\text{Final Energy}}=\frac{\text{cv}^2}{\frac{10\text{cv}^2}{6}}=3$

Need a full question paper?

Generate a complete, print-ready paper with questions like this in minutes — across 16+ boards, with answer keys.

Start Generating Free

Similar questions

Figure shows a square loop of side 5cm being moved towards right at a constant speed of 1cm/s. The front edge enters the 20cm wide magnetic field at t = 0. Find the emf induced in the loop at:
  1. t = 2s
  2. t = 10s
  3. t = 22s
  4. t = 30s.

A conducting wire of length l, lying normal to a magnetic field B, moves with a velocity v, as shown in the figure.
  1. Find the average magnetic force on a free electron of the wire.
  2. Due to this magnetic force, electrons concentrate at one end, resulting in an electric field inside the wire. The redistribution stops when the electric force on the free electrons balances the magnetic force. Find the electric field developed inside the wire when the redistribution stops.
  3. What potential difference is developed between the ends of the wire?

The relaxation time τ is nearly independent of applied E field whereas it changes significantly with temperature T. First fact is (in part) responsible for Ohm’s law whereas the second fact leads to variation of ρ with temperature. Elaborate why?
Both the capacitors shown in figure are made of square plates of edge a. The separations between the plates of the capacitors are d1 and d2 as shown in the figure. A potential difference V is applied between the points a and b, An electron is projected between the plates of the upper capacitor along the central line. With what minimum speed should the electron be projected so that it does not collide with any plate? Consider only the electric forces.

Write the expression for the force, $\vec{\text{F}}$ acting on a charged particle of charge ‘q’, moving with a velocity $\vec{\text{v}}$ in the presence of both electric field $\vec{\text{E}}$ and magnetic field $\vec{\text{B}}$. Obtain the condition under which the particle moves undeflected through the fields.
A compound microscope has a magnifying power of 100 when the image is formed at infinity. The objective has a focal length of 0.5cm and the tube length is 6.5cm. Find the focal length of the eyepiece.
Two parallel metal plates P and Q are inserted at equal distances into a plane capacitor as shown in fig. Plates A and B of the capacitor are connected to a battery of e.m.f. V.
a. What are the potentials of the four plates?
Image
a. What are the potentials of the four plates?
b. How will the potentials of plates P and Q and the intensities of the fields in each of the three spaces change after plates P and Q have been connected by a wire?
c..What will happen to the charges on plates A and B, when plates P and Q are connected with a wire?
d. Will there be charges on the plates P and Q after connecting them with a wire?
(a) Find the current in the $20\Omega$ resistor shown in the figure. (b) If a capacitor of capacitance $4\mu\text{F}$ is joined between the points A and B, what would be the electrostatic energy stored in it in steady state?

A long, straight wire carrying a current of 30A is placed in an external, uniform magnetic field of 4.0 × 10-4T parallel to the current. Find the magnitude of the resultant magnetic field at a point 2.0cm away from the wire.
The terminology of different parts of the electromagnetic spectrum is given in the text. Use the formula E = hv (for energy of a quantum of radiation : photon) and obtain the photon energy in units of eV for different parts of the electromagnetic spectrum. In what way are the different scales of photon energies that you obtain related to the sources of electromagnetic radiation?