3. Examine the charge distribution in the following diagram. N - 4.0 x 10-5 C 24cm 91 92 24cm 2 +2.0 x 10-5 C - 4.0 x 10-5 C a. Determine the net force charge acting at q1 (+2.0 × 10-5 C), caused by -5 92 (-4.0 × 10 5 C) and q3 (-4.0 × 10-5 C). Be sure to include a free body diagram representing the force acting at q1 in your solution. b. Determine the net electric field acting at q1. 4. An electron is in motion at 4.0 × 106 m/s horizontally when it enters a region of space between two parallel plates, as shown, starting at the negative plate. The electron deflects downwards and strikes the bottom plate. The magnitude of the electric field between the plates is 4.0 × 102 N/C and separation between the charged plates is 2.0 cm.
3. Examine the charge distribution in the following diagram. N - 4.0 x 10-5 C 24cm 91 92 24cm 2 +2.0 x 10-5 C - 4.0 x 10-5 C a. Determine the net force charge acting at q1 (+2.0 × 10-5 C), caused by -5 92 (-4.0 × 10 5 C) and q3 (-4.0 × 10-5 C). Be sure to include a free body diagram representing the force acting at q1 in your solution. b. Determine the net electric field acting at q1. 4. An electron is in motion at 4.0 × 106 m/s horizontally when it enters a region of space between two parallel plates, as shown, starting at the negative plate. The electron deflects downwards and strikes the bottom plate. The magnitude of the electric field between the plates is 4.0 × 102 N/C and separation between the charged plates is 2.0 cm.
Chapter7: Electric Potential
Section: Chapter Questions
Problem 68P: (a) What is the electric field 5.00 m from die center of the terminal of a Van de Graaff with a...
Related questions
Question
![3. Examine the charge distribution in the following diagram.
N
- 4.0 x 10-5 C
24cm
91
92
24cm
2
+2.0 x 10-5 C
- 4.0 x 10-5 C
a. Determine the net force charge acting at q1 (+2.0 × 10-5 C), caused by
-5
92 (-4.0 × 10 5 C) and q3 (-4.0 × 10-5 C). Be sure to include
a free body diagram representing the force acting at q1 in your solution.
b. Determine the net electric field acting at q1.
4. An electron is in motion at 4.0 × 106 m/s horizontally when it enters a
region of space between two parallel plates, as shown, starting at the negative
plate. The electron deflects downwards and strikes the bottom plate. The
magnitude of the electric field between the plates is 4.0 × 102 N/C and
separation between the charged plates is 2.0 cm.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F28a811e1-1cfc-48b9-92aa-d48cd9247ed7%2F90391132-286e-4e93-b391-65c4aad8d37c%2Fmcvy4jn_processed.jpeg&w=3840&q=75)
Transcribed Image Text:3. Examine the charge distribution in the following diagram.
N
- 4.0 x 10-5 C
24cm
91
92
24cm
2
+2.0 x 10-5 C
- 4.0 x 10-5 C
a. Determine the net force charge acting at q1 (+2.0 × 10-5 C), caused by
-5
92 (-4.0 × 10 5 C) and q3 (-4.0 × 10-5 C). Be sure to include
a free body diagram representing the force acting at q1 in your solution.
b. Determine the net electric field acting at q1.
4. An electron is in motion at 4.0 × 106 m/s horizontally when it enters a
region of space between two parallel plates, as shown, starting at the negative
plate. The electron deflects downwards and strikes the bottom plate. The
magnitude of the electric field between the plates is 4.0 × 102 N/C and
separation between the charged plates is 2.0 cm.
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