मराठी
कर्नाटक बोर्ड पी.यू.सी.पीयूसी विज्ञान इयत्ता ११

A Bar Magnet of Length 1 Cm and Cross-sectional Area 1.0 Cm2 Produces a Magnetic Field of 1.5 × 10−4 T at a Point in End-on Position at a Distance 15 Cm Away from the Centre. - Physics

Advertisements
Advertisements

प्रश्न

A bar magnet of length 1 cm and cross-sectional area 1.0 cm2 produces a magnetic field of 1.5 × 10−4 T at a point in end-on position at a distance 15 cm away from the centre. (a) Find the magnetic moment M of the magnet. (b) Find the magnetisation I of the magnet. (c) Find the magnetic field B at the centre of the magnet.

बेरीज
Advertisements

उत्तर

Given:-

Distance of the observation point from the centre of the bar magnet, d = 15 cm = 0.15 m

Length of the bar magnet, l = 1 cm = 0.01 m

Area of cross-section of the bar magnet, A = 1.0 cm2 = 1 × 10−4 m2

Magnetic field strength of the bar magnet, B = 1.5 × 10−4 T

As the observation point lies at the end-on position, magnetic field (B) is given by,

\[\overrightarrow{B}  = \frac{\mu_0}{4\pi} \times \frac{2Md}{( d^2 - l^2 )^2}\]

On substituting the respective values, we get:-

\[1 . 5 \times  {10}^{- 4}  = \frac{{10}^{- 7} \times 2 \times M \times 0 . 15}{(0 . 0225 - 0 . 0001 )^2}\]

\[ \Rightarrow 1 . 5 \times  {10}^{- 4}  = \frac{3 \times {10}^{- 8} \times M}{5 . 01 \times {10}^{- 4}}\]

\[ \Rightarrow M = \frac{1 . 5 \times {10}^{- 4} \times 5 . 01 \times {10}^{- 4}}{3 \times {10}^{- 8}}\]

\[= 2 . 5  A\]

(b) Intensity of magnetisation (I) is given by,

`I = M/V`

\[= \frac{2 . 5}{{10}^{- 4} \times {10}^{- 2}}\]

\[ = 2 . 5 \times  {10}^6 \text{ A/m}\]

 

(c) \[H = \frac{M}{4\pi ld^2}\]

\[= \frac{2 . 5}{4 \times 3 . 14 \times 0 . 01 \times (0 . 15 )^2}\]

\[ = \frac{2 . 5}{4 \times 3 . 14 \times 1 \times {10}^{- 2} \times 2 . 25 \times {10}^{- 2}}\]

Net H = HN + HS

= 884.6 = 8.846 × 102

= 314 T

\[\overrightarrow{B}=mu_0\left(H+1\right)\]

= π × 10−7 (2.5 × 106 + 2 × 884.6)

= 3.14 T

shaalaa.com
  या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
पाठ 15: Magnetic Properties of Matter - Exercises [पृष्ठ २८६]

APPEARS IN

एचसी वर्मा Concepts of Physics Vol. 2 [English] Class 11 and 12
पाठ 15 Magnetic Properties of Matter
Exercises | Q 4 | पृष्ठ २८६

संबंधित प्रश्‍न

How are the magnetic field lines different from the electrostatic field lines?


Predict the polarity of the capacitor in the situation described below :


Answer the following question.
Write the four important properties of the magnetic field lines due to a bar magnet.


Choose the correct option.

Inside a bar magnet, the magnetic field lines


Solve the following problem.

Two small and similar bar magnets have a magnetic dipole moment of 1.0 Am2 each. They are kept in a plane in such a way that their axes are perpendicular to each other. A line drawn through the axis of one magnet passes through the center of other magnet. If the distance between their centers is 2 m, find the magnitude of the magnetic field at the midpoint of the line joining their centers.


A closely wound solenoid of 2000 turns and area of cross-section 1.6 × 10-4 m2 , carrying a current of 4.0 A, is suspended through its centre allowing it to turn in a horizontal plane.

What is the force and torque on the solenoid if a uniform horizontal magnetic field of 7.5 × 10-2 T is set up at an angle of 30° with the axis of the solenoid?


Magnetic lines of force due to a bar magnet do not intersect because ______.

The resistance of ideal voltmeter is


When current is double deflection is also doubled in


A particle having charge 100 times that of an electron is revolving in a circular path by radius 0.8 with one rotation per second. The magnetic field produced at the centre is


Magnetic dipole moment is a ______


A proton has spin and magnetic moment just like an electron. Why then its effect is neglected in magnetism of materials?


A ball of superconducting material is dipped in liquid nitrogen and placed near a bar magnet. (i) In which direction will it move? (ii) What will be the direction of it’s magnetic moment?


Use (i) the Ampere’s law for H and (ii) continuity of lines of B, to conclude that inside a bar magnet, (a) lines of H run from the N pole to S pole, while (b) lines of B must run from the S pole to N pole.


Verify the Ampere’s law for magnetic field of a point dipole of dipole moment m = m`hatk`. Take C as the closed curve running clockwise along (i) the z-axis from z = a > 0 to z = R; (ii) along the quarter circle of radius R and centre at the origin, in the first quadrant of x-z plane; (iii) along the x-axis from x = R to x = a, and (iv) along the quarter circle of radius a and centre at the origin in the first quadrant of x-z plane.


There are two current carrying planar coils made each from identical wires of length L. C1 is circular (radius R) and C2 is square (side a). They are so constructed that they have same frequency of oscillation when they are placed in the same uniform B and carry the same current. Find a in terms of R.


A long straight wire of circular cross section of radius 'a' carries a steady current I. The current is uniformly distributed across its cross section. The ratio of magnitudes of the magnetic field at a point `a/2` above the surface of wire to that of a point `a/2` below its surface is ______.


Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×