Determine the voltage across (2+j5) Ω impedance considering 20∠30⁰ voltage source.(a) 45.69∠-110.72⁰(b) 45.69∠110.72⁰(c) 46.69∠-110.72⁰(d) 46.69∠110.72⁰I got this question in an international level competition.The query is from Superposition Theorem topic in section Steady State AC Analysis of Network Theory

Determine the voltage across (2+j5) Ω impedance considering 20∠30�

1.	Determine the voltage across (2+j5) Ω impedance considering 20∠30⁰ voltage source.(a) 45.69∠-110.72⁰(b) 45.69∠110.72⁰(c) 46.69∠-110.72⁰(d) 46.69∠110.72⁰I got this question in an international level competition.The query is from Superposition Theorem topic in section Steady State AC Analysis of Network Theory
Answer» Correct ANSWER is (d) 46.69∠110.72⁰ The best I can explain: The voltage ACROSS (2+j5) Ω impedance CONSIDERING 20∠30⁰ voltage source is V2 = 8.68∠42.53^o (2+j5) = 46.69∠110.72⁰V.

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