Question
Download Solution PDFTwo identical capacitors C1 and C2 of equal capacitance are connected as shown in the circuit. Terminals a and b of the key k are connected to charge capacitor C1 using battery of emf V volt. Now disconnecting a and b the terminals b and c are connected. Due to this, what will be the percentage loss of energy ?
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFCONCEPT:
The energy stored in the capacitor is written as;
Here we have C as the capacitance, and V is the potential.
CALCULATION:
When we connect the a and b poles we have energy,
and when we connected the poles b and c we see that capacitors C1,C2 are in series, therefore the capacitance is written as;
Therefore,
⇒C = 1/2
The energy in the b and c is written as;
Now, percentage loss is written as;
⇒
Hence option 1) is the correct answer.
Last updated on Jun 16, 2025
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