A force of 10 ; N acts on a charged particle placed between two plates of a charged capacitor. If one plate of capacitor is

Q: A force of $10 \; N$ acts on a charged particle placed between two plates of a charged capacitor. If one plate of capacitor is removed, then the force acting on that particle will be ...... $N$

a $F=q E=q\left(\frac{Q}{A \in_{0}}\right)=\frac{q Q}{A \in_{0}}=10 \; N$ Now, when one plate is removed. $E^{\prime}=\frac{Q}{2 A \in_{0}}$ $F=q E^{\prime}=\frac{Q q}{2 A \in_{0}}=5 \; N$

SECTION - A [PHYSICS - MCQ]

GSEB - English Medium

A force of $10 \; N$ acts on a charged particle placed between two plates of a charged capacitor. If one plate of capacitor is removed, then the force acting on that particle will be ...... $N$

A$5$
B$10$
C$20$
D$0$

JEE MAIN 2022, Medium

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

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