The strength of an electric field required to balance the weight of a proton is approximately 9.8 x 1020 N/C.
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The positive elementary electric charge is called a proton.
An electric field will exert a force on a proton due to its positive charge. The proton will experience a force in the direction of the electric field if the field is uniform, causing it to accelerate in that direction.
The velocity of a proton in a magnetic field depends on the strength of the magnetic field and the charge of the proton. The velocity can be calculated using the formula v (qB) / m, where v is the velocity, q is the charge of the proton, B is the strength of the magnetic field, and m is the mass of the proton.
As the moving proton gets closer to the stationary proton, the electric force between them increases. This causes the moving proton to slow down and eventually come to a stop as the electrostatic force of repulsion between them balances the initial kinetic energy of the moving proton.
The electric charges of the proton and electron are equal in magnitude (size, strength), and opposite in sign.
The electric field of a proton is a force field that exerts a force on other charged particles in its vicinity. It is generated by the electric charge of the proton, which is positive. The strength of the electric field decreases with distance from the proton according to an inverse square law.
None of the answers are correct nor make any conceptual sense. Not to mention the mechinism for recieving your "ANSWER" makes me want to punch a baby. If this website were a person I would tell it to find the highest building and jump off of it.
The positive elementary electric charge is called a proton.
The force experienced by a proton in an electric field will be the same as for any other charged particle with the same charge, because the force depends on the charge of the particle and the electric field strength. The charge of a proton is the same as the charge of an electron, just opposite in sign. The mass of the proton being 1836 times greater than the mass of an electron will not affect the force experienced by the proton in the electric field.
An electric field will exert a force on a proton due to its positive charge. The proton will experience a force in the direction of the electric field if the field is uniform, causing it to accelerate in that direction.
No. Electric charges are generally electrons.
Positive
They are equal in magnitude but opposite in charge.
The velocity of a proton in a magnetic field depends on the strength of the magnetic field and the charge of the proton. The velocity can be calculated using the formula v (qB) / m, where v is the velocity, q is the charge of the proton, B is the strength of the magnetic field, and m is the mass of the proton.
A proton attracts an neutron. B. A proton repels an electron. C. A proton attracts an electron.
A proton has a positive electrical charge and an electron has a negative electrical charge.