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Answer to Question #344049 in Electricity and Magnetism for Cecille

Question #344049

A proton moves through a magnetic field of magnitude 4.5 T at a speed of 7.08×10^6 m/s


Perpendicular to the field. Find the


a. Centripetal acceleration



b. Radius of the circular path of the proton

1
Expert's answer
2022-05-24T13:56:50-0400

"qvB=ma,\\implies a=\\frac{qvB}m=5.6\\cdot 10^{18}~\\frac{m}{s^2},"

"r=\\frac{mv}{qB}=9\\cdot 10^{-6}~m."


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