A charged particle (q) is shot with a velocity v in a straight line parallel to an external magnetic field (B) through a region of space. Therefore, assuming that there is no other field present close-by, we may conclude that the charged particle experiences a high magnetic force (FB) due to the field B. experiences zero magnetic field-force (FB). fınds a zero component of B in the direction of its motion. encounters no magnetic field (B = 0)
A charged particle (q) is shot with a velocity v in a straight line parallel to an external magnetic field (B) through a region of space. Therefore, assuming that there is no other field present close-by, we may conclude that the charged particle experiences a high magnetic force (FB) due to the field B. experiences zero magnetic field-force (FB). fınds a zero component of B in the direction of its motion. encounters no magnetic field (B = 0)
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![A charged particle (q) is shot with a velocity v in a straight line parallel to an external
magnetic field (B) through a region of space. Therefore, assuming that there is no other
field present close-by, we may conclude that the charged particle
experiences a high magnetic force (FB) due to the field B.
experiences zero magnetic field-force (FB).
finds a zero component of B in the direction of its motion.
encounters no magnetic field (B = 0)](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F8c939cff-bc46-4066-b22a-d4e55e2c89ab%2F1a50ee0c-34dd-4556-b874-76653fb7879c%2Fqt3oz65_processed.png&w=3840&q=75)
Transcribed Image Text:A charged particle (q) is shot with a velocity v in a straight line parallel to an external
magnetic field (B) through a region of space. Therefore, assuming that there is no other
field present close-by, we may conclude that the charged particle
experiences a high magnetic force (FB) due to the field B.
experiences zero magnetic field-force (FB).
finds a zero component of B in the direction of its motion.
encounters no magnetic field (B = 0)
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