Antennas Multiple Choice Questions on “Antenna Noise Temperature”.
1. Relation between brightness temperature TB and physical body temperatureTp is ____
a) TB=((1-midGamma_s mid^2) T_p)
b) TB=(T_p/(1-midGamma_s mid^2))
c) TB=((1-midGamma_s mid)T_p)
d) TB=((1-midGamma_s mid)^2 T_p)
Answer: a
Clarification: The relation between brightness temperature and the physical body temperature is given by TB=((1-midGamma_s mid^2) T_p)
Here Γs is the reflection coefficient for a given polarization and emissivity =(1-midGamma_s mid^2.)
2. If the reflection co-efficient is ½ then emissivity is ___
a) 3/4
b) 1/4
c) 1/2
d) 3/2
Answer: a
Clarification: Emissivity in terms of reflection coefficient is given by (epsilon=1-midGamma_smid^2=1-frac{1}{4}=frac{3}{4}.)
3. Overall receiver noise temperature expression if T1, T2… are amplifier 1, 2, and so on noise Temperature and G1, G2, and so on are their gain respectively is_____
a) T = (T_1+frac{T_2}{G_1}+frac{T_3}{G_1 G_2}+⋯ )
b) T = T1+T2 (1-G1)+T3(1-G1G2)+⋯
c) T = (T_1+frac{T_2}{(1-G_1)}+frac{T_3}{(1-G_1 G_2)}+⋯)
d) T = T1+T2 (G1)+T3(G1G2)+⋯
Answer: a
Clarification: Overall receiver noise temperature expression is given by T = (T_1+frac{T_2}{G_1}+frac{T_3}{G_1 G_2}+⋯ )
System Temperature is one of the important factors to determine the antenna sensitivity and SNR.
4. Total noise power of the system is P=_____
a) k(TA+TR)B
b) k(TA+TR)/B
c) k(TR)B
d) kB/Tsys
Answer: a
Clarification: The overall noise temperature of the system is the sum of noise temperature of antenna TA and the receiver surrounding TR.
⇨ Total noise power of the system is P= k(TA+TR)B
⇨ K is Boltzmann’s constant and B is the bandwidth
5. What is the relation between noise temperature introduced by beam TB and the antenna temperature TA when the solid angle obtained by the noise source is greater than antenna solid angle?
a) TA= TB
b) TA > TB
c) TA < TB
d) TA « TB
Answer: a
Clarification: When the solid angle obtained by the noise source ΩB is greater than antenna solid angle ΩA, then relation between noise temperature introduced by beam TB and the antenna temperatureTA is given by
TA= TB (If Lossless antenna).
For radio astronomy, ΩB<ΩA and TA≠ TB; ΔTA=(frac{Omega_B}{Omega_A}T_B)
6. Which expression suits best when the solid angle obtained by the noise source is less than antenna solid angle?
a) PA ΩA=PB ΩB and ΔTA=(frac{Omega_B}{Omega_A} T_B)
b) PA ΩB=PB ΩA and ΔTA=(frac{Omega_B}{Omega_A} T_B)
c) ΔTA=(frac{Omega_A}{Omega_B} T_B) and PA ΩB=PB ΩA
d) ΔTA=(frac{Omega_A}{Omega_B} T_B) and PA ΩA=PB ΩB
Answer: a
Clarification: When the solid angle obtained by the noise sourceΩB is greater than antenna solid angle ΩA, then relation between noise temperature introduced by beam TB and the antenna temperatureTA is given by
TA= TB (If Lossless antenna).
For radio astronomy, ΩB<ΩA and TA≠ TB; ΔTA=(frac{Omega_B}{Omega_A} T_B) and PA ΩA=PB ΩB
7. Expression for noise figure F related to the effective noise temperature Te is ____
a) (F=1+frac{T_e}{T_o})
b) (F=1+frac{T_0}{T_e})
c) (F=1-frac{T_e}{T_o})
d) (F=1-frac{T_0}{T_e})
Answer: a
Clarification: The noise introduced by antenna is known as the effective noise temperature. The relation between noise figure and effective noise temperature is given by
(F=1+frac{T_e}{T_o}, T_o) is the room temperature.
8. Effective noise temperature Te in terms of noise figure is ____
a) Te=To (F-1)
b) Te=To/(F-1)
c) Te=To/(F+1)
d) Te=To (F+1)
Answer: a
Clarification: The relation between noise figure and effective noise temperature is given by F=1+(frac{T_e}{T_o})
⇨ F-1=(frac{T_e}{T_o})
⇨ Te=To (F-1)
9. Which of the following statement is false?
a) Noise power of antenna depends on the antenna temperature as well as the noise due to the receiver surroundings
b) Noise figure value lies between 0 and 1
c) Any object with physical temperature greater than 0K radiates energy
d) Noise power per unit bandwidth is kTA W/Hz
Answer: b
Clarification: The relation between noise figure and effective noise temperature is given by F=1+(frac{T_e}{T_o})
And object with physical temperature greater than 0K radiates energy. So (frac{T_e}{T_o}) > 0 and F > 1
Noise power per unit bandwidth of antenna is kTA W/Hz while noise power of antenna is kTAB W
10. Find the effective noise temperature if noise figure is 3 at room temperature (290K)?
a) 290K
b) 580K
c) 289K
d) 195K
Answer: b
Clarification: Room temperature To=290K
Noise figure F=1+(frac{T_e}{T_o})
Te=To(F-1)=290(3-1)=580K.
11. What should be the noise figure value at which the effective noise temperature equals to room temperature?
a) 2
b) 1
c) 0
d) 1/T_(o )
Answer: a
Clarification: Noise figure F=1+(frac{T_e}{T_o})
Te=To(F-1)
F-1=1
F=2.