Electromagnetic Waves
PHXI15:WAVES

358822 In a plane \(E M\) wave, the electric field oscillates sinusoidally at a frequency of \(5 \times {10^{10}}\;Hz\) and have an amplitude of \(50\,V{m^{ - 1}}.\) The total average energy density of the electromagnetic field of the wave is [Use \({\varepsilon _0} = 8.85 \times {10^{ - 12}}{C^2}/N{m^2}\;J\,]\)

1 \(2.212 \times {10^{ - 10}}J\,{m^{ - 3}}\)
2 \(4.425 \times {10^{ - 8}}J\,{m^{ - 3}}\)
3 \(1.106 \times {10^{ - 8}}J\,{m^{ - 3}}\)
4 \(2.212 \times {10^{ - 8}}J\,{m^{ - 3}}\)
PHXI15:WAVES

358823 A lamp emits monochromatic green light uniformly in all directions. The lamp is 3% efficient in converting electrical power to electromagnetic waves and consumes \(100\;\,W\) of power. The amplitude of the electric field associated with the electromagnetic radiation at a distance of \(5\;m\) from the lamp will be nearly :-

1 \(4.02\;\,V/m\)
2 \(2.68\,\;V/m\)
3 \(5.36\,V/m\)
4 \(1.34\;\,V/m\)
PHXI15:WAVES

358824 An \(EM\) wave radiates outwards from a dipole antenna, with \(E_{0}\) as the amplitude of its electric field vector. The electric field \(E_{0}\) which transports significant energy from the source falls off as

1 \(\dfrac{1}{r^{2}}\)
2 \(\dfrac{1}{r^{3}}\)
3 Remains constant
4 \(\dfrac{1}{r}\)
PHXI15:WAVES

358825 A point source of electromagnetic radiation has an average power output of \(800\;W\). The maximum value of electric field at a distance \(3.5\;m\) from the source will be \(62.6\;V/m,\) the energy density at a distance \(3.5\;m\) from the source will be -(in joule \(/{m^3}\) )

1 \(1.73 \times 10^{-6}\)
2 \(1.73 \times 10^{-7}\)
3 \(1.73 \times 10^{-5}\)
4 \(1.73 \times 10^{-8}\)
PHXI15:WAVES

358822 In a plane \(E M\) wave, the electric field oscillates sinusoidally at a frequency of \(5 \times {10^{10}}\;Hz\) and have an amplitude of \(50\,V{m^{ - 1}}.\) The total average energy density of the electromagnetic field of the wave is [Use \({\varepsilon _0} = 8.85 \times {10^{ - 12}}{C^2}/N{m^2}\;J\,]\)

1 \(2.212 \times {10^{ - 10}}J\,{m^{ - 3}}\)
2 \(4.425 \times {10^{ - 8}}J\,{m^{ - 3}}\)
3 \(1.106 \times {10^{ - 8}}J\,{m^{ - 3}}\)
4 \(2.212 \times {10^{ - 8}}J\,{m^{ - 3}}\)
PHXI15:WAVES

358823 A lamp emits monochromatic green light uniformly in all directions. The lamp is 3% efficient in converting electrical power to electromagnetic waves and consumes \(100\;\,W\) of power. The amplitude of the electric field associated with the electromagnetic radiation at a distance of \(5\;m\) from the lamp will be nearly :-

1 \(4.02\;\,V/m\)
2 \(2.68\,\;V/m\)
3 \(5.36\,V/m\)
4 \(1.34\;\,V/m\)
PHXI15:WAVES

358824 An \(EM\) wave radiates outwards from a dipole antenna, with \(E_{0}\) as the amplitude of its electric field vector. The electric field \(E_{0}\) which transports significant energy from the source falls off as

1 \(\dfrac{1}{r^{2}}\)
2 \(\dfrac{1}{r^{3}}\)
3 Remains constant
4 \(\dfrac{1}{r}\)
PHXI15:WAVES

358825 A point source of electromagnetic radiation has an average power output of \(800\;W\). The maximum value of electric field at a distance \(3.5\;m\) from the source will be \(62.6\;V/m,\) the energy density at a distance \(3.5\;m\) from the source will be -(in joule \(/{m^3}\) )

1 \(1.73 \times 10^{-6}\)
2 \(1.73 \times 10^{-7}\)
3 \(1.73 \times 10^{-5}\)
4 \(1.73 \times 10^{-8}\)
PHXI15:WAVES

358822 In a plane \(E M\) wave, the electric field oscillates sinusoidally at a frequency of \(5 \times {10^{10}}\;Hz\) and have an amplitude of \(50\,V{m^{ - 1}}.\) The total average energy density of the electromagnetic field of the wave is [Use \({\varepsilon _0} = 8.85 \times {10^{ - 12}}{C^2}/N{m^2}\;J\,]\)

1 \(2.212 \times {10^{ - 10}}J\,{m^{ - 3}}\)
2 \(4.425 \times {10^{ - 8}}J\,{m^{ - 3}}\)
3 \(1.106 \times {10^{ - 8}}J\,{m^{ - 3}}\)
4 \(2.212 \times {10^{ - 8}}J\,{m^{ - 3}}\)
PHXI15:WAVES

358823 A lamp emits monochromatic green light uniformly in all directions. The lamp is 3% efficient in converting electrical power to electromagnetic waves and consumes \(100\;\,W\) of power. The amplitude of the electric field associated with the electromagnetic radiation at a distance of \(5\;m\) from the lamp will be nearly :-

1 \(4.02\;\,V/m\)
2 \(2.68\,\;V/m\)
3 \(5.36\,V/m\)
4 \(1.34\;\,V/m\)
PHXI15:WAVES

358824 An \(EM\) wave radiates outwards from a dipole antenna, with \(E_{0}\) as the amplitude of its electric field vector. The electric field \(E_{0}\) which transports significant energy from the source falls off as

1 \(\dfrac{1}{r^{2}}\)
2 \(\dfrac{1}{r^{3}}\)
3 Remains constant
4 \(\dfrac{1}{r}\)
PHXI15:WAVES

358825 A point source of electromagnetic radiation has an average power output of \(800\;W\). The maximum value of electric field at a distance \(3.5\;m\) from the source will be \(62.6\;V/m,\) the energy density at a distance \(3.5\;m\) from the source will be -(in joule \(/{m^3}\) )

1 \(1.73 \times 10^{-6}\)
2 \(1.73 \times 10^{-7}\)
3 \(1.73 \times 10^{-5}\)
4 \(1.73 \times 10^{-8}\)
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PHXI15:WAVES

358822 In a plane \(E M\) wave, the electric field oscillates sinusoidally at a frequency of \(5 \times {10^{10}}\;Hz\) and have an amplitude of \(50\,V{m^{ - 1}}.\) The total average energy density of the electromagnetic field of the wave is [Use \({\varepsilon _0} = 8.85 \times {10^{ - 12}}{C^2}/N{m^2}\;J\,]\)

1 \(2.212 \times {10^{ - 10}}J\,{m^{ - 3}}\)
2 \(4.425 \times {10^{ - 8}}J\,{m^{ - 3}}\)
3 \(1.106 \times {10^{ - 8}}J\,{m^{ - 3}}\)
4 \(2.212 \times {10^{ - 8}}J\,{m^{ - 3}}\)
PHXI15:WAVES

358823 A lamp emits monochromatic green light uniformly in all directions. The lamp is 3% efficient in converting electrical power to electromagnetic waves and consumes \(100\;\,W\) of power. The amplitude of the electric field associated with the electromagnetic radiation at a distance of \(5\;m\) from the lamp will be nearly :-

1 \(4.02\;\,V/m\)
2 \(2.68\,\;V/m\)
3 \(5.36\,V/m\)
4 \(1.34\;\,V/m\)
PHXI15:WAVES

358824 An \(EM\) wave radiates outwards from a dipole antenna, with \(E_{0}\) as the amplitude of its electric field vector. The electric field \(E_{0}\) which transports significant energy from the source falls off as

1 \(\dfrac{1}{r^{2}}\)
2 \(\dfrac{1}{r^{3}}\)
3 Remains constant
4 \(\dfrac{1}{r}\)
PHXI15:WAVES

358825 A point source of electromagnetic radiation has an average power output of \(800\;W\). The maximum value of electric field at a distance \(3.5\;m\) from the source will be \(62.6\;V/m,\) the energy density at a distance \(3.5\;m\) from the source will be -(in joule \(/{m^3}\) )

1 \(1.73 \times 10^{-6}\)
2 \(1.73 \times 10^{-7}\)
3 \(1.73 \times 10^{-5}\)
4 \(1.73 \times 10^{-8}\)