Inductance of the inductor, L = 5.0 H,

Capacitance of the capacitor, C = 80 μH = 80 x 10^-6 F

Resistance of the resistor, R = 40Ω

Potential of the variable voltage source, V = 230 V

Ans (a).

Resonance angular frequency is given as:

ω_r = 1/√(LC) = 1/ √(5 x 80 x 10^-6) = 10³/20 = 50 rad/s

Hence, the circuit will come in resonance for a source frequency of 50 rad/s.

Ans (b).

Impedance of the circuit is given by the relation:

Z = √ [R² +( X_L –X_C)² ]

At resonance, X_L = X_c => Z = R = 40Ω

Amplitude of the current at the resonating frequency is given as: I_o = V_o/Z

Where, V₀ = Peak voltage = √2V

Therefore, I_o =√2V/Z = √2 x 230/40 = 8.13 A

Hence, at resonance, the impedance of the circuit is 40Ω and the amplitude of the current is 8.13 A.

Ans (c).

rms potential drop across the inductor,

(V_L)_rms = I x ω_rL

Where,

I_rms  = I_o/√2 = √2V/√2Z= 230/40 = 23/4 A

Therefore 

(V_L)_rms = (23/4) x 50 x 5 =1437.5 V

Potential drop across the capacitor:

(V_C)_rms = I x 1/ω_rC = (23/4 ) x 1/(50 x 80 x 10^-6) =1437.5 V

Potential drop across the resistor:

(V_R)_rms =IR = (23/4) x 40 = 230V
Potential drop across the LC combination:

V_LC = I (X_L-X_c)

At resonance, X_L = X_c => V_LC = 0

Hence, it is proved that the potential drop across the LC combination is zero at resonating frequency.