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What does the ratio of magnetization to magnetic intensity indicate?
Concept: Magnetisation and Magnetic Intensity
The electron in the hydrogen atom is moving with a speed of 2.5 × 106 m/s in an orbit of a radius of 0.5 Å. What is the Magnetic moment of the revolving electron?
Concept: Origin of Magnetism in Materials
The moment of a magnet (15 cm × 2 cm × 1 cm) is 1.2 A-m2. What is its intensity of magnetization?
Concept: Magnetisation and Magnetic Intensity
A solenoid has a core of material with relative permeability 500 and its windings carry a current of 1 A. The number of turns of the solenoid is 500 per meter. Calculate the magnetization of the material.
Concept: Magnetisation and Magnetic Intensity
Define magnetic intensity.
Concept: Magnetisation and Magnetic Intensity
Derive the relation between magnetic field intensity(H) and magnetization(M) for a magnetic material placed in a magnetic field.
Concept: Magnetisation and Magnetic Intensity
Write the mathematical formula for Bohr magneton for an electron revolving in nth orbit.
Concept: Origin of Magnetism in Materials
State unit and dimensions of Magnetic susceptibility.
Concept: Magnetisation and Magnetic Intensity
The co-efficient of mutual induction between primary and secondary coil is 2H. Calculate induced e.m.f. if current of 4A is cut off in 2.5 x 10-4 seconds
Concept: Inductance >> Mutual Inductance
A conductor of any shape, having area 40 cm2 placed in air is uniformly charged with a charge 0* 2µC. Determine the electric intensity at a point just outside its surface. Also, find the mechanical force per unit area of the charged conductor.
[∈0=8.85x10-12 S.I. units]
Concept: Mechanical Force on Unit Area of a Charged Conductor
Electric field intensity in free space at a distance ‘r’ outside the charged conducting sphere of radius ‘R’ in terms of surface charge density ‘ a ’ is............................
(a)`sigma / in_0[R/r]^2`
(b)`in_0/sigma[R/r]^2`
(c)`R/r[sigma/in_0]^2`
(d)`R/sigma[r/in_0]^2`
Concept: Electromagnetic Induction
The magnetic flux through a loop varies according to the relation Φ = 8t2 + 6t + C, where ‘C’ is constant, 'Φ' is in milliweber and 't' is in second. What is the magnitude of induced e.m.f. in the loop at t = 2 seconds.
Concept: Electromagnetic Induction
If the radius of a sphere is doubled without changing the charge on it, then electric flux originating from the sphere is ______.
Concept: Inductance >> Mutual Inductance
A solenoid of length 1.5 m and 4 cm in diameter possesses 10 turns per metre. A current of 5 A is flowing through it. The magnetic induction at a point inside the solenoid along the axis is ............................. .
(μ0 = 4π × 10-7 Wb/Am)
- π × 10-5 T
- 2π × 10-5 T
- 3π × 10-5 T
- 4π × 10-5 T
Concept: Electromagnetic Induction
Explain the phenomenon of self induction
Concept: Inductance >> Self Inductance
Draw a neat labelled diagram of a parallel plate capacitor completely filled with dielectric.
Concept: The Parallel Plate Capacitor
Electrostatic energy of 3·5 x 10-4 J is stored in a capacitor at 700 V. What is the charge on the capacitor?
Concept: Energy of Charged Condenser
A metal rod `1/sqrtpi `m long rotates about one of its ends perpendicular to a plane whose magnetic induction is 4 x 10-3 T. Calculate the number of revolutions made by the rod per second if the e.m.f. induced between the ends of the rod is 16 mV.
Concept: Electromagnetic Induction
A network of four capacitors of 6 μF each is connected to a 240 V supply. Determine the charge on each capacitor.

Concept: Condensers in Series and Parallel,
Intensity of electric field at a point close to and outside a charged conducting cylinder is proportional to ______. (r is the distance of a point from the axis of cylinder)
(A) `1/r`
(B) `1/r^2`
(C) `1/r^3`
(D) r3
Concept: Energy of Charged Condenser
