O Part 1: Mass Spectrometer As shown below, a charged particle is moving through a region that has a uniform E-field (the red lines) and a uniform 7.5 T B-field. As a result of these two fields and the resulting forces (ignore gravity), the particle has a constant velocity of 816 m/s. A.) Determine the directions of Fe & Fg on the particle. Direction of Fe = Choose direction Direction of F = Choose direction v B.) Determine the magnitude of the E-field and the direction of the B-field. Assume that the B-field is perpendicular to the velocity. E = Direction of B = Choose direction v

Physics for Scientists and Engineers: Foundations and Connections
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Author:Katz, Debora M.
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Chapter30: Magnetic Fields And Forces
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A Part 1: Mass Spectrometer
As shown below, a charged particle is moving through a region that has a uniform E-field (the red lines) and a uniform 7.5 T B-field. As a result of these two fields and the resulting forces (ignore gravity), the particle has a constant velocity of 816 m/s.
A.) Determine the directions of F- & FR on the particle.
Direction of F- = Choose direction v
Direction of Fa = Choose direction v
B.) Determine the magnitude of the E-field and the direction of the B-field. Assume that the B-field is perpendicular to the velocity.
E =
Direction of B = Choose direction v
Transcribed Image Text:A Part 1: Mass Spectrometer As shown below, a charged particle is moving through a region that has a uniform E-field (the red lines) and a uniform 7.5 T B-field. As a result of these two fields and the resulting forces (ignore gravity), the particle has a constant velocity of 816 m/s. A.) Determine the directions of F- & FR on the particle. Direction of F- = Choose direction v Direction of Fa = Choose direction v B.) Determine the magnitude of the E-field and the direction of the B-field. Assume that the B-field is perpendicular to the velocity. E = Direction of B = Choose direction v
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