DisplacementCurrent
Electromagnetic Wave

155546 Light wave is travelling along $\mathbf{y}$ - directions. If the corresponding $\vec{E}$ vector at any time is along the $x$ - axis, the direction of $\vec{B}$ vector at that time is along :

1 $y$ - axis
2 $x$ - axis
3 $+\mathrm{z}-$ axis
4 $-\mathrm{z}$ - axis
Electromagnetic Wave

155558 The dielectric constant of air is 1.006. The speed of electromagnetic wave travelling in air is a $\times 10^{8} \mathrm{~ms}^{-1}$, where $a$ is about

1 3
2 3.88
3 2.5
4 3.2
5 2.8
Electromagnetic Wave

155559 The amplitude of the sinusoidially oscillating electric field of a plane wave is $60 \mathrm{~V} / \mathrm{m}$. Then the amplitude of magnetic field is :

1 $2 \times 10^{2} \mathrm{~T}$
2 $6 \times 10^{7} \mathrm{~T}$
3 $6 \times 10^{2} \mathrm{~T}$
4 $2 \times 10^{-7} \mathrm{~T}$
5 $3 \times 10^{8} \mathrm{~T}$
Electromagnetic Wave

155561 A plane electromagnetic wave of frequency 50 $\mathrm{MHz}$ travels in free space along the $\mathrm{X}$ direction. At a particular point in space $E=$ $7.2 \hat{\mathbf{j}} \mathrm{V} / \mathrm{m}$. At this point, $B$ is equal to

1 $8.4 \times 10^{-8} \hat{\mathrm{k} T}$
2 $2.4 \times 10^{-8} \hat{\mathrm{kT}}$
3 $7.4 \times 10^{-6} \hat{\mathrm{i}} \mathrm{T}$
4 $2.4 \times 10^{-8} \hat{\mathrm{j} T}$
Electromagnetic Wave

155546 Light wave is travelling along $\mathbf{y}$ - directions. If the corresponding $\vec{E}$ vector at any time is along the $x$ - axis, the direction of $\vec{B}$ vector at that time is along :

1 $y$ - axis
2 $x$ - axis
3 $+\mathrm{z}-$ axis
4 $-\mathrm{z}$ - axis
Electromagnetic Wave

155558 The dielectric constant of air is 1.006. The speed of electromagnetic wave travelling in air is a $\times 10^{8} \mathrm{~ms}^{-1}$, where $a$ is about

1 3
2 3.88
3 2.5
4 3.2
5 2.8
Electromagnetic Wave

155559 The amplitude of the sinusoidially oscillating electric field of a plane wave is $60 \mathrm{~V} / \mathrm{m}$. Then the amplitude of magnetic field is :

1 $2 \times 10^{2} \mathrm{~T}$
2 $6 \times 10^{7} \mathrm{~T}$
3 $6 \times 10^{2} \mathrm{~T}$
4 $2 \times 10^{-7} \mathrm{~T}$
5 $3 \times 10^{8} \mathrm{~T}$
Electromagnetic Wave

155561 A plane electromagnetic wave of frequency 50 $\mathrm{MHz}$ travels in free space along the $\mathrm{X}$ direction. At a particular point in space $E=$ $7.2 \hat{\mathbf{j}} \mathrm{V} / \mathrm{m}$. At this point, $B$ is equal to

1 $8.4 \times 10^{-8} \hat{\mathrm{k} T}$
2 $2.4 \times 10^{-8} \hat{\mathrm{kT}}$
3 $7.4 \times 10^{-6} \hat{\mathrm{i}} \mathrm{T}$
4 $2.4 \times 10^{-8} \hat{\mathrm{j} T}$
Electromagnetic Wave

155546 Light wave is travelling along $\mathbf{y}$ - directions. If the corresponding $\vec{E}$ vector at any time is along the $x$ - axis, the direction of $\vec{B}$ vector at that time is along :

1 $y$ - axis
2 $x$ - axis
3 $+\mathrm{z}-$ axis
4 $-\mathrm{z}$ - axis
Electromagnetic Wave

155558 The dielectric constant of air is 1.006. The speed of electromagnetic wave travelling in air is a $\times 10^{8} \mathrm{~ms}^{-1}$, where $a$ is about

1 3
2 3.88
3 2.5
4 3.2
5 2.8
Electromagnetic Wave

155559 The amplitude of the sinusoidially oscillating electric field of a plane wave is $60 \mathrm{~V} / \mathrm{m}$. Then the amplitude of magnetic field is :

1 $2 \times 10^{2} \mathrm{~T}$
2 $6 \times 10^{7} \mathrm{~T}$
3 $6 \times 10^{2} \mathrm{~T}$
4 $2 \times 10^{-7} \mathrm{~T}$
5 $3 \times 10^{8} \mathrm{~T}$
Electromagnetic Wave

155561 A plane electromagnetic wave of frequency 50 $\mathrm{MHz}$ travels in free space along the $\mathrm{X}$ direction. At a particular point in space $E=$ $7.2 \hat{\mathbf{j}} \mathrm{V} / \mathrm{m}$. At this point, $B$ is equal to

1 $8.4 \times 10^{-8} \hat{\mathrm{k} T}$
2 $2.4 \times 10^{-8} \hat{\mathrm{kT}}$
3 $7.4 \times 10^{-6} \hat{\mathrm{i}} \mathrm{T}$
4 $2.4 \times 10^{-8} \hat{\mathrm{j} T}$
Electromagnetic Wave

155546 Light wave is travelling along $\mathbf{y}$ - directions. If the corresponding $\vec{E}$ vector at any time is along the $x$ - axis, the direction of $\vec{B}$ vector at that time is along :

1 $y$ - axis
2 $x$ - axis
3 $+\mathrm{z}-$ axis
4 $-\mathrm{z}$ - axis
Electromagnetic Wave

155558 The dielectric constant of air is 1.006. The speed of electromagnetic wave travelling in air is a $\times 10^{8} \mathrm{~ms}^{-1}$, where $a$ is about

1 3
2 3.88
3 2.5
4 3.2
5 2.8
Electromagnetic Wave

155559 The amplitude of the sinusoidially oscillating electric field of a plane wave is $60 \mathrm{~V} / \mathrm{m}$. Then the amplitude of magnetic field is :

1 $2 \times 10^{2} \mathrm{~T}$
2 $6 \times 10^{7} \mathrm{~T}$
3 $6 \times 10^{2} \mathrm{~T}$
4 $2 \times 10^{-7} \mathrm{~T}$
5 $3 \times 10^{8} \mathrm{~T}$
Electromagnetic Wave

155561 A plane electromagnetic wave of frequency 50 $\mathrm{MHz}$ travels in free space along the $\mathrm{X}$ direction. At a particular point in space $E=$ $7.2 \hat{\mathbf{j}} \mathrm{V} / \mathrm{m}$. At this point, $B$ is equal to

1 $8.4 \times 10^{-8} \hat{\mathrm{k} T}$
2 $2.4 \times 10^{-8} \hat{\mathrm{kT}}$
3 $7.4 \times 10^{-6} \hat{\mathrm{i}} \mathrm{T}$
4 $2.4 \times 10^{-8} \hat{\mathrm{j} T}$
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