02. Motion of Charge Particle in Magnetic Field
Moving Charges & Magnetism

153608 A proton and an $\alpha$-particle are projected with the same kinetic energy at right angles to a uniform magnetic field. The ratio of the radii of their paths of proton to that of the $\alpha$-particle is

1 $2: 1$
2 $1: 2$
3 $1: 1$
4 $2: 3$
Moving Charges & Magnetism

153609 What uniform magnetic field applied perpendicular to a beam of electrons moving at $1.3 \times 10^{6} \mathrm{~m} \mathrm{~s}^{-1}$, is required to make the electrons travel in a circular arc of radius $0.35 \mathrm{~m}$ ?

1 $2.1 \times 10^{-5} \mathrm{G}$
2 $6 \times 10^{-6} \mathrm{~T}$
3 $2.1 \times 10^{-5} \mathrm{~T}$
4 $6 \times 10^{-6} \mathrm{G}$
Moving Charges & Magnetism

153610 A particle of mass $m$, charge $Q$ and kinetic energy $T$ enters a transverse uniform magnetic field of induction $\vec{B}$. After 3 seconds the kinetic energy of the particle will be

1 $\mathrm{T}$
2 $4 \mathrm{~T}$
3 $3 \mathrm{~T}$
4 $2 \mathrm{~T}$
Moving Charges & Magnetism

153611 A magnetic field (B) perpendicular to plane of paper is present at a certain place. Calcium ion $\left(\mathrm{Ca}^{++}\right)$is moving in the plane with a velocity $v$. The magnetic force acting on it is

1 evB
2 $2 \mathrm{evB}$
3 $\frac{\text { evB }}{2}$
4 zero
Moving Charges & Magnetism

153612 A charged particle moves through a magnetic field in a direction perpendicular to it. Then it

1 velocity remains unchanged
2 speed of the particle remains unchanged
3 direction of the particle remains unchanged
4 acceleration remains unchanged
Moving Charges & Magnetism

153608 A proton and an $\alpha$-particle are projected with the same kinetic energy at right angles to a uniform magnetic field. The ratio of the radii of their paths of proton to that of the $\alpha$-particle is

1 $2: 1$
2 $1: 2$
3 $1: 1$
4 $2: 3$
Moving Charges & Magnetism

153609 What uniform magnetic field applied perpendicular to a beam of electrons moving at $1.3 \times 10^{6} \mathrm{~m} \mathrm{~s}^{-1}$, is required to make the electrons travel in a circular arc of radius $0.35 \mathrm{~m}$ ?

1 $2.1 \times 10^{-5} \mathrm{G}$
2 $6 \times 10^{-6} \mathrm{~T}$
3 $2.1 \times 10^{-5} \mathrm{~T}$
4 $6 \times 10^{-6} \mathrm{G}$
Moving Charges & Magnetism

153610 A particle of mass $m$, charge $Q$ and kinetic energy $T$ enters a transverse uniform magnetic field of induction $\vec{B}$. After 3 seconds the kinetic energy of the particle will be

1 $\mathrm{T}$
2 $4 \mathrm{~T}$
3 $3 \mathrm{~T}$
4 $2 \mathrm{~T}$
Moving Charges & Magnetism

153611 A magnetic field (B) perpendicular to plane of paper is present at a certain place. Calcium ion $\left(\mathrm{Ca}^{++}\right)$is moving in the plane with a velocity $v$. The magnetic force acting on it is

1 evB
2 $2 \mathrm{evB}$
3 $\frac{\text { evB }}{2}$
4 zero
Moving Charges & Magnetism

153612 A charged particle moves through a magnetic field in a direction perpendicular to it. Then it

1 velocity remains unchanged
2 speed of the particle remains unchanged
3 direction of the particle remains unchanged
4 acceleration remains unchanged
Moving Charges & Magnetism

153608 A proton and an $\alpha$-particle are projected with the same kinetic energy at right angles to a uniform magnetic field. The ratio of the radii of their paths of proton to that of the $\alpha$-particle is

1 $2: 1$
2 $1: 2$
3 $1: 1$
4 $2: 3$
Moving Charges & Magnetism

153609 What uniform magnetic field applied perpendicular to a beam of electrons moving at $1.3 \times 10^{6} \mathrm{~m} \mathrm{~s}^{-1}$, is required to make the electrons travel in a circular arc of radius $0.35 \mathrm{~m}$ ?

1 $2.1 \times 10^{-5} \mathrm{G}$
2 $6 \times 10^{-6} \mathrm{~T}$
3 $2.1 \times 10^{-5} \mathrm{~T}$
4 $6 \times 10^{-6} \mathrm{G}$
Moving Charges & Magnetism

153610 A particle of mass $m$, charge $Q$ and kinetic energy $T$ enters a transverse uniform magnetic field of induction $\vec{B}$. After 3 seconds the kinetic energy of the particle will be

1 $\mathrm{T}$
2 $4 \mathrm{~T}$
3 $3 \mathrm{~T}$
4 $2 \mathrm{~T}$
Moving Charges & Magnetism

153611 A magnetic field (B) perpendicular to plane of paper is present at a certain place. Calcium ion $\left(\mathrm{Ca}^{++}\right)$is moving in the plane with a velocity $v$. The magnetic force acting on it is

1 evB
2 $2 \mathrm{evB}$
3 $\frac{\text { evB }}{2}$
4 zero
Moving Charges & Magnetism

153612 A charged particle moves through a magnetic field in a direction perpendicular to it. Then it

1 velocity remains unchanged
2 speed of the particle remains unchanged
3 direction of the particle remains unchanged
4 acceleration remains unchanged
Moving Charges & Magnetism

153608 A proton and an $\alpha$-particle are projected with the same kinetic energy at right angles to a uniform magnetic field. The ratio of the radii of their paths of proton to that of the $\alpha$-particle is

1 $2: 1$
2 $1: 2$
3 $1: 1$
4 $2: 3$
Moving Charges & Magnetism

153609 What uniform magnetic field applied perpendicular to a beam of electrons moving at $1.3 \times 10^{6} \mathrm{~m} \mathrm{~s}^{-1}$, is required to make the electrons travel in a circular arc of radius $0.35 \mathrm{~m}$ ?

1 $2.1 \times 10^{-5} \mathrm{G}$
2 $6 \times 10^{-6} \mathrm{~T}$
3 $2.1 \times 10^{-5} \mathrm{~T}$
4 $6 \times 10^{-6} \mathrm{G}$
Moving Charges & Magnetism

153610 A particle of mass $m$, charge $Q$ and kinetic energy $T$ enters a transverse uniform magnetic field of induction $\vec{B}$. After 3 seconds the kinetic energy of the particle will be

1 $\mathrm{T}$
2 $4 \mathrm{~T}$
3 $3 \mathrm{~T}$
4 $2 \mathrm{~T}$
Moving Charges & Magnetism

153611 A magnetic field (B) perpendicular to plane of paper is present at a certain place. Calcium ion $\left(\mathrm{Ca}^{++}\right)$is moving in the plane with a velocity $v$. The magnetic force acting on it is

1 evB
2 $2 \mathrm{evB}$
3 $\frac{\text { evB }}{2}$
4 zero
Moving Charges & Magnetism

153612 A charged particle moves through a magnetic field in a direction perpendicular to it. Then it

1 velocity remains unchanged
2 speed of the particle remains unchanged
3 direction of the particle remains unchanged
4 acceleration remains unchanged
Moving Charges & Magnetism

153608 A proton and an $\alpha$-particle are projected with the same kinetic energy at right angles to a uniform magnetic field. The ratio of the radii of their paths of proton to that of the $\alpha$-particle is

1 $2: 1$
2 $1: 2$
3 $1: 1$
4 $2: 3$
Moving Charges & Magnetism

153609 What uniform magnetic field applied perpendicular to a beam of electrons moving at $1.3 \times 10^{6} \mathrm{~m} \mathrm{~s}^{-1}$, is required to make the electrons travel in a circular arc of radius $0.35 \mathrm{~m}$ ?

1 $2.1 \times 10^{-5} \mathrm{G}$
2 $6 \times 10^{-6} \mathrm{~T}$
3 $2.1 \times 10^{-5} \mathrm{~T}$
4 $6 \times 10^{-6} \mathrm{G}$
Moving Charges & Magnetism

153610 A particle of mass $m$, charge $Q$ and kinetic energy $T$ enters a transverse uniform magnetic field of induction $\vec{B}$. After 3 seconds the kinetic energy of the particle will be

1 $\mathrm{T}$
2 $4 \mathrm{~T}$
3 $3 \mathrm{~T}$
4 $2 \mathrm{~T}$
Moving Charges & Magnetism

153611 A magnetic field (B) perpendicular to plane of paper is present at a certain place. Calcium ion $\left(\mathrm{Ca}^{++}\right)$is moving in the plane with a velocity $v$. The magnetic force acting on it is

1 evB
2 $2 \mathrm{evB}$
3 $\frac{\text { evB }}{2}$
4 zero
Moving Charges & Magnetism

153612 A charged particle moves through a magnetic field in a direction perpendicular to it. Then it

1 velocity remains unchanged
2 speed of the particle remains unchanged
3 direction of the particle remains unchanged
4 acceleration remains unchanged