Register
Two points, A and B, are separated by 0.0158 m. The potential at A is +81.8 V, and that at B is +40.1 V. Find the magnitude of the constant electric field between the points.
112k views
0 votes
Two points, A and B, are separated by 0.0158 m. The potential at A is +81.8 V, and that at B is +40.1 V. Find the magnitude of the constant electric field between the points.

User Ryno
by
4.9k points

1 Answer

7 votes

Answer:

2639.24 V/m

Step-by-step explanation:

Electric field = potential difference between point A and B ÷ distance apart

Potential at A = 81.8 V

Potential at B = 40.1 V

Potential difference between A and B = 81.8 - 40.1 = 40.7 V

Distance apart = 0.0158 m

Electric field = 40.7 V ÷ 0.0158 m = 2639.24 V/m

User Tooraj Jam
by
4.6k points
Ask a Question
Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

5.3m questions

6.9m answers

Other Questions

A space shuttle is approaching the surface of the moon to land. It approaches the moons surface with an initial velocity of 28m/s and is slowing at a rate of -2m/s^2. Show all work and units for problems.
An object is thrown downward with an initial velocity of 3 feet per second. The relationship between the distance s it travels and time t is given by s = 3t + 16t2. How long does it take the object to
________ is a measure of the internal energy that has been absorbed or transferred from one body to another, often due to a difference in temperature.
5. What happens to the arrangement of water molecules as ice melts? A Molecules gain enough energy to escape as vapor. B Molecules release enough energy to escape as vapor. C Molecules gain enough energy
The water at Niagara Falls drops through a height of 55.0 m. If the water’s loss of gravitational potential energy shows up as an increase in temperature of the water, what is the temperature difference
Link Copied!