| ⇦ | 
| ⇨ |
Power dissipated in an LCR series circuit connected to an a.c source of emf ? is
Options
(a) ?ᅡᄇ √ [ R² + ( L? – 1 / C?)² ] / R
(b) ?ᅡᄇ [ R² + ( L? – 1 / C?)² ] / R
(c) ?ᅡᄇR / √ [ R² + ( L? – 1 / C?)² ]
(d) ?ᅡᄇR / [ R² + ( L? – 1 / C?)² ]
Correct Answer:
?ᅡᄇR / [ R² + ( L? – 1 / C?)² ]
Explanation:
Power dissipated in series LCR;
P = IR = / (Z) R
= ?ᅡᄇR / [ R² + ( L? – 1 / C?)² ]
where Z = √ R² + ( L? – 1 / C?)²
is called the impedance of the circuit.
Related Questions:
- An unpolarised beam of intensity I₀ falls on a polaroid. The intensity
- If a magnet is suspended at an angle 30⁰ to the magnetic meridian, the dip needle
- If α (current gain) of transistor is 0.98, then what is the value of β
- The heat dissipated in a resistance can be obtained by measuring of resistance,
- The original temperature of a black body is 727⁰C. The temperature at which this black
Topics: Alternating Current
(96)
Subject: Physics
(2479)
Important MCQs Based on Medical Entrance Examinations To Improve Your NEET Score
18000+ students are using NEETLab to improve their score. What about you?
Solve Previous Year MCQs, Mock Tests, Topicwise Practice Tests, Identify Weak Topics, Formula Flash cards and much more is available in NEETLab Android App to improve your NEET score.
Share this page with your friends
Leave a Reply