(A) The radius of a circular path for a charged particle in a perpendicular magnetic field is given by $r = \frac{mv}{qB}$.For particle $a$,the radius

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(A) The radius of a circular path for a charged particle in a perpendicular magnetic field is given by $r = \frac{mv}{qB}$.For particle $a$,the radius is $r_{a} = \frac{m_{a} v_{a}}{q B}$.For particle $b$,the radius is $r_{b} = \frac{m_{b} v_{b}}{q B}$.Given that $r_{a} > r_{b}$,we substitute the expressions:$\frac{m_{a} v_{a}}{q B} > \frac{m_{b} v_{b}}{q B}$.Since the charge $q$ and magnetic field $B$ are the same for both particles,we can cancel them out.Therefore,$m_{a} v_{a} > m_{b} v_{b}$.

Class 12 Physics Moving Charges and Magnetism Motion of Charged Particle In Magnetic Field

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Two particles of masses $m_{a}$ and $m_{b}$ and same charge are projected in a perpendicular magnetic field. They travel along circular paths of radius $r_{a}$ and $r_{b}$ such that $r_{a} > r_{b}$. Then which is true?

MHT CET 2010 All MHT CET

A
$m_{a} v_{a} > m_{b} v_{b}$
B
$m_{a} > m_{b}$ and $v_{a} > v_{b}$
C
$m_{a} = m_{b}$ and $v_{a} > v_{b}$
D
$m_{b} v_{b} > m_{a} v_{a}$

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Moving Charges and Magnetism

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Motion of Charged Particle In Magnetic Field

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Two particles of masses $m_{a}$ and $m_{b}$ and same charge are projected in a perpendicular magnetic field. They travel along circular paths of radius $r_{a}$ and $r_{b}$ such that $r_{a} > r_{b}$. Then which is true?

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