Register
How far apart are two conducting plates that have an electric field strength of 8.53 x 103 V/m between them, if their potential difference is 23.0 kV
103k views
1 vote
How far apart are two conducting plates that have an electric field strength of 8.53 x 103 V/m between them, if their potential difference is 23.0 kV

User Dyoo
by
6.6k points

1 Answer

3 votes

Answer:


d=2.7m

Step-by-step explanation:

From the question we are told that:

Electric Field strength
E=8.53 * 10^3 V/m

Potential difference is
V= 23.0 kV

Generally the equation for distance is mathematically given by


d=(V)/(E)


d=(23.0*10^3)/(8.53 * 10^3 V/m)


d=2.7m

User Psychobunny
by
6.7k points
Ask a Question
Welcome to QAmmunity.org, where you can ask questions and receive answers from other members of our community.

7.2m questions

9.5m answers

Other Questions

What is the meant by the frequency of a wave? What is the unit?
Is this true or false ethics deals with morals and values and can be measured and tested using the scientific method. Thank you for answering and your help
What forms of energy are produced by a violin
How does the doppler effect change wave speed?
The moon revolves around earth at a fairly constant speed.Is the moon accelerating
Link Copied!