1. The U.S. Navy has long proposed the construction of extremely low-frequency (
ID: 1304739 • Letter: 1
Question
1. The U.S. Navy has long proposed the construction of extremely low-frequency (ELF waves) communications systems; such waves could penetrate the oceans to reach distant submarines.
Calculate the length of a quarter-wavelength antenna for a transmitter generating ELF waves of frequency 91 Hz.
km =
2. What are the wavelength ranges for the following?
(a) the AM radio band (540-1600 kHz)
m (maximum wavelength)
m (minimum wavelength)
(b) the the FM radio band (88-108 MHz)
m (maximum wavelength)
m (minimum wavelength)
3. The angle of incidence of a light beam in air onto a reflecting surface is continuously variable. The reflected ray is found to be completely polarized when the angle of incidence is 57.0
Explanation / Answer
1)
?f = c = 2.998*10^8m/s (speed of light)
? = Wavelength in meters
f = frequency in Hz
? = c/f = 2.998*10^8/91 = 3.96e+6 meters
1/4 of that is 824175.82 meters or 824.176 km
2)
a)(540 kHZ) = 540 x 10 ^ 3 Hz, we can call that f1
the formula is, Speed = frequency * wavelength, v = f?
v = speed of light, radio wave. = 3x10^8 m/s
x= multiply
so 540 x 10 ^ 3 = 3x10^ 8 / ?
rearanging gives
lambda = 3x10^8 / 540x10^3 = 555.556 m
now for
f2 = 1600x10^3
same concept
lambda = 3x10^8 / 1600x10^3 = 187.5 m
min = 187.5m max is 555.556m
b). just do the same thing . the frequency is 88 Mhz, which is 88x10^6 Hz, so
v/f = ?
3x10^8 / 88x10^ 6 = 3.409 m
and the other f = 108x10^6 Hz
3x10^8 / 108x10^6 Hz = 2.778m
therefore
minimum is 2.778m and max is 3.409m
3)a)
From Brewster's law,
complete polarisation occurs when tan? = n2/n1
n1 = ref index of incident medium (air, n1 = 1.0),
? = angle in incident medium
Ref index or reflecting medium .. n2 = tan57 x 1.0
n2 = 1.5398 (1.54)
b)
By Snell's law,
n2 = sin i(air) / sin r = 1.5398
sin r = sin i / n2
sinr = sin57 / 1.5398 = 0.5446.
r = 33.0
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