Answer:
Dimensions; a = 3.33 cm and b = 2cm
Step-by-step explanation:
The waveguide is hollow, thus, v_p = c
Now, for TE_mn modes;
The first mode is TE_10
The second mode is TE_01
So, we'll choose "b" such that;
a > b > a/2
Now, f_mn is given by the formula;
f_mn = v_po√((m/a) ² + (n/b)²)
So, f_10 = c/(2a) = = 0.75f_o
From the question, carrier frequency, f_o is given as 6GHz
Thus,
f_10 = 0.75 x 6 = 4.5 GHz = 4.5 x 10^(9) Hz
Also, a = c/(2f_10)
Where c is speed of light = 3 x 10^(8) m/s
Thus, a = 3 x 10^(8)/(2 x 4.5 x 10^(9))
a = 3.33 cm
Also, f_01 = c/(2b) = = 1.25f_o = 1.25 x 6GHz = 7.5 GHz = 7.5 x 10^(9) Hz
Thus, b = c/(2f_01)
b = 3 x 10^(8)/(2 x 7.5 x 10^(9)) = 2cm