Electromagnetism
Current Electricity
MCQ (Single Correct Answer)
Moving Charges and Magnetism
MCQ (Single Correct Answer)
Magnetism and Matter
MCQ (Single Correct Answer)
Electromagnetic Waves
MCQ (Single Correct Answer)
Electromagnetic Induction
MCQ (Single Correct Answer)
Alternating Current
MCQ (Single Correct Answer)
Modern Physics
Dual Nature of Radiation
MCQ (Single Correct Answer)
Semiconductor Devices and Logic Gates
MCQ (Single Correct Answer)
Communication Systems
MCQ (Single Correct Answer)
1
MHT CET 2024 15th May Evening Shift
MCQ (Single Correct Answer)
+1
-0

An electron is revolving in a circular orbit of radius $r$ in a hydrogen atom. The angular momentum of the electron is L . The relation between dipole moment (m) associated with it, gyromagnetic ratio ( R ) and L is

A
$\mathrm{m}=-\frac{\mathrm{L}}{\mathrm{R}}$
B
$\mathrm{m}=-\mathrm{RL}$
C
$\mathrm{m}=-\mathrm{RL}^2$
D
$\mathrm{m}=\frac{\mathrm{R}}{\mathrm{L}}$
2
MHT CET 2024 15th May Evening Shift
MCQ (Single Correct Answer)
+1
-0

Three infinite straight wires $\mathrm{A}, \mathrm{B}$ and C carry currents as shown in figure. The resultant force on wire $B$ is directed

MHT CET 2024 15th May Evening Shift Physics - Moving Charges and Magnetism Question 5 English

A
towards A
B
towards C
C
perpendicular to the plane of page
D
upwards
3
MHT CET 2024 15th May Morning Shift
MCQ (Single Correct Answer)
+1
-0

Two parallel wires separated by distance 'b' are carrying equal current ' $I$ ' in the same direction. The force per unit length of the wire is

A
$\frac{\mu_0}{4 \pi}\left(\frac{I}{b^2}\right)$
B
$\frac{\mu_0}{4 \pi}\left(\frac{\mathrm{I}^2}{\mathrm{~b}^2}\right)$
C
$\frac{\mu_0}{4 \pi}\left(\frac{\mathrm{I}^2}{b}\right)$
D
$\frac{\mu_0}{4 \pi}\left(\frac{2 I^2}{b}\right)$
4
MHT CET 2024 15th May Morning Shift
MCQ (Single Correct Answer)
+1
-0

Magnetic induction produced at the centre of a circular loop of radius ' $R$ ' carrying a current is ' B '. The magnetic moment of the loop is ( $\mu_0=$ permeability of free space)

A
$\frac{\mathrm{BR}^3}{2 \pi \mu_0}$
B
$\frac{2 \pi \mathrm{BR}^3}{\mu_0}$
C
$\frac{\mathrm{BR}^2}{2 \pi \mu_0}$
D
$\frac{2 \pi \mathrm{BR}^2}{\mu_0}$
Questions Asked from MCQ (Single Correct Answer)
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