EBK PHYSICS FOR SCIENTISTS AND ENGINEER
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
6th Edition
ISBN: 9781319321710
Author: Mosca
Publisher: VST
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Chapter 26, Problem 19P
To determine

The magnetic force on an electron.

Expert Solution & Answer
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Answer to Problem 19P

  (1.92×1013 N)i^(1.28×1013 N)j^(5.76×1013 N)k^

Explanation of Solution

Given:

Charge on the electron =q=1.6×1019

Velocity of the particle =v=(2×106ms)i^(3×106ms)j^

Magnetic field =B=(0.80 T)i^+(0.60 T)j^(0.40 T)k^

Formula Used:

Magnetic force on a moving charged particle in a magnetic field region is given as

  F=q(v×B)

Calculation:

Magnetic force on the electron is given as

   F =q( v × B )

   F =(1.6× 10 19 )(((2× 10 6 ) i ^ (3× 10 6 ) j ^ )×(0.80  i ^ +0.60 j ^ 0.40  k ^ ))

   F =(1.6× 10 19 )((2× 10 6 )(0.80)( i ^ × i ^ )+(2× 10 6 )(0.60)( i ^ × j ^ )(2× 10 6 )(0.40)( i ^ × k ^ )

   (3× 10 6 )(0.80)( j ^ × i ^ )(3× 10 6 )(0.60)( j ^ × j ^ )+(3× 10 6 )(0.40)( j ^ × k ^ )

   F =(1.6× 10 19 )((2× 10 6 )(0.80)(0)+(2× 10 6 )(0.60)( k ^ )(2× 10 6 )(0.40)( j ^ )

   (3× 10 6 )(0.80)( k ^ )(3× 10 6 )(0.60)(0)+(3× 10 6 )(0.40)( i ^ )

   F =(1.6× 10 19 )((1.2× 10 6 )( k ^ )(0.8× 10 6 )( j ^ )(2.4× 10 6 )( k ^ )+(1.2× 10 6 )( i ^ ))

   F =(1.6× 10 19 )((3.6× 10 6 )( k ^ )+(0.8× 10 6 )( j ^ )+(1.2× 10 6 )( i ^ ))

   F =(1.92× 10 13 ) i ^ (1.28× 10 13 ) j ^ (5.76× 10 13 ) k ^

   F =(1.92× 10 13  N) i ^ (1.28× 10 13  N) j ^ (5.76× 10 13  N) k ^

Conclusion:

The magnetic force on the electronis (1.92×1013 N)i^(1.28×1013 N)j^(5.76×1013 N)k^ .

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Chapter 26 Solutions

EBK PHYSICS FOR SCIENTISTS AND ENGINEER

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