A 10, mu F capacitor is fully charged to a potential difference of 50, V. After removing the source voltage it is connected to an

Q: A $10\, \mu F$ capacitor is fully charged to a potential difference of $50\, V$. After removing the source voltage it is connected to an uncharged capacitor in parallel. Now the potential difference across them becomes $20\, V$. The capacitance of the second capacitor is......$\mu F$

b Initially Charge on capacitor 10 $\mu F$ $Q=C V=(10 \mu F)(50 V)$ $Q =500 \mu C$ Final Charge on $10 \mu F$ capacitor $Q = CV =(10 \mu F )(20 V )$ $Q =200 \mu C$ From charge conservation, Charge on unknown capacitor $C =500 \mu C -200 \mu C =300 \mu C$ $\Rightarrow$ Capacitance $( C )=\frac{ Q }{ V }=\frac{300 \mu C }{20 V }=15 \mu F$

SECTION - A [PHYSICS - MCQ]

GSEB - English Medium

A $10\, \mu F$ capacitor is fully charged to a potential difference of $50\, V$. After removing the source voltage it is connected to an uncharged capacitor in parallel. Now the potential difference across them becomes $20\, V$. The capacitance of the second capacitor is......$\mu F$

A$10$
B$15$
C$20$
D$30$

JEE MAIN 2020, Diffcult

STD 11 Science
NEET
STD 12 - 2. Electric potential and capacitance
Physics

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