Answer to Question #317300 in Physics for Catastrophe

Question #317300

A point charge of -6.00×10^9C is 3.00m from point A and 5.00m from point B. (a) Find the potential at point A and point B.

(b) How much work is done by the electric field in moving a 2.00 nC particle from point A to point B?

Expert's answer

(a) Find the potential at point A and point B

"V_A=k\\frac{q}{r_{A}}\\\\\n=9\\times 10^9\\times \\frac{-6.00\\times10^{-9} }{3.00}=-18.0\\:\\rm V""V_B=k\\frac{q}{r_{B}}\\\\\n=9\\times 10^9\\times \\frac{-6.00\\times10^{-9} }{5.00}=-10.8\\:\\rm V"

(b) How much work is done by the electric field in moving a 2.00 nC particle from point A to point B?

"W=Q(V_B-V_A)\\\\\n=2.00\\times 10^{-9}(-10.8-(-18.0))\\\\\n=1.44\\times 10^{-8}\\:\\rm J"

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Answer to Question #317300 in Physics for Catastrophe

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