00. Magnet and Magnetic Dipole
Magnetism and Matter

154038 A bar magnet of magnetic moment $220 \mathrm{Am}^{2}$ is suspended in a magnetic field of intensity 0.25 N/Am. The couple required to deflect it through $3^{\circ}$ is :

1 $27.5 \mathrm{Nm}$
2 $20.25 \mathrm{Nm}$
3 $47.63 \mathrm{Nm}$
4 $12 \mathrm{Nm}$
Magnetism and Matter

154045 The time period of a freely suspended magnet does not depend upon-

1 length of the magnet
2 the pole strength of the magnet
3 The horizontal component of magnetic field of earth
4 the length of the suspension
Magnetism and Matter

154050 A metallic rod of length $l$ is placed normal to the magnetic field $B$ and revolved in a circular path about one of the ends with angular frequency $\omega$. The potential difference across the ends will be :

1 $\frac{1}{2} \mathrm{~B}^{2} l \omega$
2 $\frac{1}{2} \mathrm{~B} \omega l^{2}$
3 $\frac{1}{8} \mathrm{~B} \omega l^{2}$
4 $\mathrm{B} \omega l^{2}$
Magnetism and Matter

154054 Consider a short magnetic dipole of magnetic length $10 \mathrm{~cm}$. Its geometric length is

1 $12 \mathrm{~cm}$
2 $8 \mathrm{~cm}$
3 $10 \mathrm{~cm}$
4 $14 \mathrm{~cm}$
Magnetism and Matter

154056 The magnetic dipole moment of a current loop is independent of :

1 magnetic field in which it is lying
2 number of turns
3 area of the loop
4 current in the loop
Magnetism and Matter

154038 A bar magnet of magnetic moment $220 \mathrm{Am}^{2}$ is suspended in a magnetic field of intensity 0.25 N/Am. The couple required to deflect it through $3^{\circ}$ is :

1 $27.5 \mathrm{Nm}$
2 $20.25 \mathrm{Nm}$
3 $47.63 \mathrm{Nm}$
4 $12 \mathrm{Nm}$
Magnetism and Matter

154045 The time period of a freely suspended magnet does not depend upon-

1 length of the magnet
2 the pole strength of the magnet
3 The horizontal component of magnetic field of earth
4 the length of the suspension
Magnetism and Matter

154050 A metallic rod of length $l$ is placed normal to the magnetic field $B$ and revolved in a circular path about one of the ends with angular frequency $\omega$. The potential difference across the ends will be :

1 $\frac{1}{2} \mathrm{~B}^{2} l \omega$
2 $\frac{1}{2} \mathrm{~B} \omega l^{2}$
3 $\frac{1}{8} \mathrm{~B} \omega l^{2}$
4 $\mathrm{B} \omega l^{2}$
Magnetism and Matter

154054 Consider a short magnetic dipole of magnetic length $10 \mathrm{~cm}$. Its geometric length is

1 $12 \mathrm{~cm}$
2 $8 \mathrm{~cm}$
3 $10 \mathrm{~cm}$
4 $14 \mathrm{~cm}$
Magnetism and Matter

154056 The magnetic dipole moment of a current loop is independent of :

1 magnetic field in which it is lying
2 number of turns
3 area of the loop
4 current in the loop
Magnetism and Matter

154038 A bar magnet of magnetic moment $220 \mathrm{Am}^{2}$ is suspended in a magnetic field of intensity 0.25 N/Am. The couple required to deflect it through $3^{\circ}$ is :

1 $27.5 \mathrm{Nm}$
2 $20.25 \mathrm{Nm}$
3 $47.63 \mathrm{Nm}$
4 $12 \mathrm{Nm}$
Magnetism and Matter

154045 The time period of a freely suspended magnet does not depend upon-

1 length of the magnet
2 the pole strength of the magnet
3 The horizontal component of magnetic field of earth
4 the length of the suspension
Magnetism and Matter

154050 A metallic rod of length $l$ is placed normal to the magnetic field $B$ and revolved in a circular path about one of the ends with angular frequency $\omega$. The potential difference across the ends will be :

1 $\frac{1}{2} \mathrm{~B}^{2} l \omega$
2 $\frac{1}{2} \mathrm{~B} \omega l^{2}$
3 $\frac{1}{8} \mathrm{~B} \omega l^{2}$
4 $\mathrm{B} \omega l^{2}$
Magnetism and Matter

154054 Consider a short magnetic dipole of magnetic length $10 \mathrm{~cm}$. Its geometric length is

1 $12 \mathrm{~cm}$
2 $8 \mathrm{~cm}$
3 $10 \mathrm{~cm}$
4 $14 \mathrm{~cm}$
Magnetism and Matter

154056 The magnetic dipole moment of a current loop is independent of :

1 magnetic field in which it is lying
2 number of turns
3 area of the loop
4 current in the loop
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Magnetism and Matter

154038 A bar magnet of magnetic moment $220 \mathrm{Am}^{2}$ is suspended in a magnetic field of intensity 0.25 N/Am. The couple required to deflect it through $3^{\circ}$ is :

1 $27.5 \mathrm{Nm}$
2 $20.25 \mathrm{Nm}$
3 $47.63 \mathrm{Nm}$
4 $12 \mathrm{Nm}$
Magnetism and Matter

154045 The time period of a freely suspended magnet does not depend upon-

1 length of the magnet
2 the pole strength of the magnet
3 The horizontal component of magnetic field of earth
4 the length of the suspension
Magnetism and Matter

154050 A metallic rod of length $l$ is placed normal to the magnetic field $B$ and revolved in a circular path about one of the ends with angular frequency $\omega$. The potential difference across the ends will be :

1 $\frac{1}{2} \mathrm{~B}^{2} l \omega$
2 $\frac{1}{2} \mathrm{~B} \omega l^{2}$
3 $\frac{1}{8} \mathrm{~B} \omega l^{2}$
4 $\mathrm{B} \omega l^{2}$
Magnetism and Matter

154054 Consider a short magnetic dipole of magnetic length $10 \mathrm{~cm}$. Its geometric length is

1 $12 \mathrm{~cm}$
2 $8 \mathrm{~cm}$
3 $10 \mathrm{~cm}$
4 $14 \mathrm{~cm}$
Magnetism and Matter

154056 The magnetic dipole moment of a current loop is independent of :

1 magnetic field in which it is lying
2 number of turns
3 area of the loop
4 current in the loop
Magnetism and Matter

154038 A bar magnet of magnetic moment $220 \mathrm{Am}^{2}$ is suspended in a magnetic field of intensity 0.25 N/Am. The couple required to deflect it through $3^{\circ}$ is :

1 $27.5 \mathrm{Nm}$
2 $20.25 \mathrm{Nm}$
3 $47.63 \mathrm{Nm}$
4 $12 \mathrm{Nm}$
Magnetism and Matter

154045 The time period of a freely suspended magnet does not depend upon-

1 length of the magnet
2 the pole strength of the magnet
3 The horizontal component of magnetic field of earth
4 the length of the suspension
Magnetism and Matter

154050 A metallic rod of length $l$ is placed normal to the magnetic field $B$ and revolved in a circular path about one of the ends with angular frequency $\omega$. The potential difference across the ends will be :

1 $\frac{1}{2} \mathrm{~B}^{2} l \omega$
2 $\frac{1}{2} \mathrm{~B} \omega l^{2}$
3 $\frac{1}{8} \mathrm{~B} \omega l^{2}$
4 $\mathrm{B} \omega l^{2}$
Magnetism and Matter

154054 Consider a short magnetic dipole of magnetic length $10 \mathrm{~cm}$. Its geometric length is

1 $12 \mathrm{~cm}$
2 $8 \mathrm{~cm}$
3 $10 \mathrm{~cm}$
4 $14 \mathrm{~cm}$
Magnetism and Matter

154056 The magnetic dipole moment of a current loop is independent of :

1 magnetic field in which it is lying
2 number of turns
3 area of the loop
4 current in the loop