A parallel plate capacitor , each with plate area A and separation d , is charged to a potential difference V . The battery used to charge it remains connected . A dielectric slab of thickness of and dielectric constant K is now placed between the plates . What change , if any , will take placein : electric filed intensity between the plates ? Justify your answer .

A parallel plate capacitor , each with plate area A and separation d ,

1.	A parallel plate capacitor , each with plate area A and separation d , is charged to a potential difference V . The battery used to charge it remains connected . A dielectric slab of thickness of and dielectric constant K is now placed between the plates . What change , if any , will take placein : electric filed intensity between the plates ? Justify your answer .
Answer» Solution :Given that plate AREA of either plate of parallel plate CAPACITOR = A distance between the plates = d and potential difference between the plates = V Hence initially capacitance ` C = (in_(0) A)/(d)` and CHARGE on plates Q = CV As the battery remains connected THROUGHOUT the potential difference between the plates remains unchanged (V. = V)On placing a dielectric slab of the thickness .d. and dielectric constant .K. between the plates New charge on plates `Q. = C. V.. = KCV = KQ`

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