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Answer to Question #323552 in Electricity and Magnetism for Dominique

Question #323552

protons in uniform magnetic field of .3T follow a circular trajectory with 20cm radius. Determine the speed of the protons. (q=1.6×10 -¹⁹ C and m=1.673×10 -²⁷ kg)

1
Expert's answer
2022-04-05T09:44:28-0400

The radius of the circular path is

"r=\\frac{mv}{Bq}"

The speed of the proton is

"v=\\frac{Bqr}{m}"

"=\\frac{(0.3)(1.60\\times10^{-19})(0.20)}{1.673\\times10^{-27}}"

"=5.738\\times 10^6 m\/s"


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