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Science (English Medium) इयत्ता १२ - CBSE Important Questions for Physics

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Obtain the expression for capacitance for a parallel plate capacitor.

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Capacitors and Capacitance

Which of the following is NOT the property of equipotential surface?

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Equipotential Surfaces
  • Assertion (A): An electron has a high potential energy when it is at a location associated with a more negative value of potential, and a low potential energy when at a location associated with a more positive potential.
  • Reason (R): Electrons move from a region of higher potential to region of lower potential.

Select the most appropriate answer from the options given below:

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Potential Energy of a System of Charges

Draw equipotential surfaces for (i) an electric dipole and (ii) two identical positive charges placed near each other.

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Equipotential Surfaces

A point P lies at a distance x from the midpoint of an electric dipole on its axis. The electric potential at point P is proportional to ______.

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Potential Due to an Electric Dipole

A parallel plate capacitor (A) of capacitance C is charged by a battery to voltage V. The battery is disconnected and an uncharged capacitor (B) of capacitance 2C is connected across A. Find the ratio of final charges on A and B.

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Capacitors and Capacitance

A parallel plate capacitor (A) of capacitance C is charged by a battery to voltage V. The battery is disconnected and an uncharged capacitor (B) of capacitance 2C is connected across A. Find the ratio of total electrostatic energy stored in A and B finally and that stored in A initially.

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Energy Stored in a Charged Capacitor

Depict the orientation of an electric dipole in (a) stable and (b) unstable equilibrium in an external uniform electric field. Write the potential energy of the dipole in each case.

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Potential Energy in an External Field >> Potential Energy of a Dipole in an External Field

Charges (+q) and (–q) are placed at points A and B respectively which are a distance 2L apart. C is the midpoint between A and B. What is the work done in moving a charge +Q along the semicircle CRD?

 

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Potential Energy of a System of Charges

A capacitor of capacity C1 is charged to the potential of V0. On disconnecting with the battery, it is connected with an uncharged capacitor of capacity C2 as shown in the adjoining figure. Find the ratio of energies before and after the connection of switch S.

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Combination of Capacitors

Obtain the equivalent capacitance of the network shown in the figure. For a 300 V supply, determine the charge on each capacitor.

 

Appears in 1 question paper
Chapter: [2] Electrostatic Potential and Capacitance
Concept: Capacitors and Capacitance

The plot of the variation of potential difference across a combination of three identical cells in series, versus current is shown below. What is the emf and internal resistance of each cell ?

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Cells, EMF, and Internal Resistance

A battery of emf 12 V and internal resistance 2 Ω is connected to a 4 Ω resistor as shown in the figure.

(a) Show that a voltmeter when placed across the cell and across the resistor, in turn, gives the same reading.

(b) To record the voltage and the current in the circuit, why is voltmeter placed in parallel and ammeter in series in the circuit?

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Cells, EMF, and Internal Resistance

What is its relation with relaxation time?

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Drift of Electrons and the Origin of Resistivity

Two identical cells of emf 1.5 V each joined in parallel, supply energy to an external circuit consisting of two resistances of 7 Ω each joined in parallel. A very high resistance voltmeter reads the terminal voltage of cells to be 1.4 V. Calculate the internal resistance of each cell.

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Cells, EMF, and Internal Resistance

Estimate the average drift speed of conduction electrons in a copper wire of cross-sectional area 2.5 × 10−7 m2 carrying a current of 1.8 A. Assume the density of conduction electrons to be 9 × 1028 m−3.

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Drift of Electrons and the Origin of Resistivity

Estimate the average drift speed of conduction electrons in a copper wire of cross-sectional area 1.0 × 10−7 m2 carrying a current of 1.5 A. Assume the density of conduction electrons to be 9 × 1028 m−3

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Drift of Electrons and the Origin of Resistivity

Estimate the average drift speed of conduction electrons in a copper wire of cross-sectional area 2·5 × 10−7 m2 carrying a current of 2·7 A. Assume the density of conduction electrons to be 9 × 1028 m−3

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Drift of Electrons and the Origin of Resistivity

A heating element using nichrome connected to a 230 V supply draws an initial current of 3.2 A which settles after a few seconds to a steady value of 2.8 A. What is the steady temperature of the heating element if the room temperature is 27.0°C? The temperature coefficient of resistance of nichrome averaged over the temperature range involved is 1.70 × 10−4 °C−1.

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Temperature Dependence of Resistivity

In a potentiometer arrangement, a cell of emf 1.25 V gives a balance point at 35.0 cm length of the wire. If the cell is replaced by another cell and the balance point shifts to 63.0 cm, what is the emf of the second cell?

Appears in 1 question paper
Chapter: [3] Current Electricity
Concept: Cells, EMF, and Internal Resistance
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CBSE Science (English Medium) इयत्ता १२ Important Questions
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