A charged particle with a velocity 2xx10^(3)ms^(-1) passes undeflected through electric field and magnetic fields in mutually perpendicular directions. The magnetic field is 1.5T. The magnitude of electric field will be:

A charged particle with a velocity 2xx10^(3)ms^(-1) passes undeflected

1.	A charged particle with a velocity 2xx10^(3)ms^(-1) passes undeflected through electric field and magnetic fields in mutually perpendicular directions. The magnetic field is 1.5T. The magnitude of electric field will be:
Answer» `1.5xx10^(3)NC^(-1)` `2xx10^(3)NC^(-1)` `3xx10^(3)NC^(-1)` `1.33xx10^(3)NC^(-1)` Solution :The chargedparticle goes undeflected through both the fields, therefore, force experienced by charged particle due MAGNETIC field must be EQUAL to the fore experienced by the charge particle due to electric field, i.e, `F_(m)=F_(e)` or `EV B sin theta =eE` Given `v=2xx10^(3) ms^(-1)` `B=1.5T` and `theta=90^(@)` HENCE `E=v B sin theta` `=2xx10^(3)xx1.5 sin 90^(@)` `=3xx10^(3)V//m`

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A charged particle with a velocity 2xx10^(3)ms^(-1) passes undeflected through electric field and magnetic fields in mutually perpendicular directions. The magnetic field is 1.5T. The magnitude of electric field will be:

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