In November 2024
Answer to Question #342267 in Physics for may
A 10.0cm long thin glass rod is uniformly charged to +50.0nC. A small bead, charged -5.0nC is 4.0cm from the center of the rod. What is the force (both magnitude and direction) on the bead?
The electric field due to the charged glass rod of length "l" with charge "q" at the distance "d" from the center of rod is given by
"E=k\\frac{q}{d\\sqrt{d^2+(l\/2)^2}}"Thus, the force of interaction between rod and point charge "Q":
"F=QE=k\\frac{qQ}{d\\sqrt{d^2+(l\/2)^2}}""F=9*10^9\\frac{50.0*10^{-9}*5.0*10^{-9}}{0.04\\sqrt{0.04^2+(0.1\/2)^2}}=8.8*10^{-4}\\:\\rm N"
The force is attractive.
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#340153 on Dec 2023
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