Two capacitors, each having capacitance 40,mu F are connected in series. The space between one of the capacitors is filled with dielectric material of dielectric

Q: Two capacitors, each having capacitance $40\,\mu F$ are connected in series. The space between one of the capacitors is filled with dielectric material of dielectric constant $K$ such that the equivalence capacitance of the system became $24\,\mu F$. The value of $K$ will be.

a $C _{ eq }=\frac{ C ( KC )}{ C + KC }=\frac{ KC }{ K +1}$ $24=\frac{K 40}{K+1}$ ${[K=1 \cdot 5] }$

SECTION - A [PHYSICS - MCQ]

GSEB - English Medium

Two capacitors, each having capacitance $40\,\mu F$ are connected in series. The space between one of the capacitors is filled with dielectric material of dielectric constant $K$ such that the equivalence capacitance of the system became $24\,\mu F$. The value of $K$ will be.

A$1.5$
B$2.5$
C$1.2$
D$3$

JEE MAIN 2022, Medium

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

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