/*! This file is auto-generated */ .wp-block-button__link{color:#fff;background-color:#32373c;border-radius:9999px;box-shadow:none;text-decoration:none;padding:calc(.667em + 2px) calc(1.333em + 2px);font-size:1.125em}.wp-block-file__button{background:#32373c;color:#fff;text-decoration:none} Q9Q  Consider Figure 13.59. Assume ... [FREE SOLUTION] | 91Ó°ÊÓ

91Ó°ÊÓ

Consider Figure 13.59. Assume that the dipole is fixed in position. (a) What is the direction of the electric field at location A due to the dipole? (b) At location B? (c) If an electron were placed at location A, in which direction would it begin to move? (d) If a proton were placed at location B, in which direction would it begin to move? (e) Now suppose that an electron is placed at location A and held there, while the dipole is free to move. When the dipole is released, in what direction will it begin to move?

Short Answer

Expert verified

(a) The direction of the electric field at location A due to the dipole is at the opposite direction of the dipole.

(b) Thedirection of the electric field at location A due to the dipole is at the same direction of the dipole.

(c) Theelectron will move towards the direction of the dipole.

(d) Theproton will move towards the direction of the dipole.

(e) Thedipole will move towards the direction of the electron which is at the location A.

Step by step solution

01

Significance of the direction of an electric field due to a dipole

The electric field is mainly described as a region that is helpful for an electrically charged particle to exert force on another particle. The direction of the electric field at a point due to a particular dipole will be in the direction of the dipole if the point is situated radially to the dipole and the direction of the electric field will be opposite if the point is situated perpendicular to the dipole.

02

(a) Determination of the direction of the electric field at location A

From the above figure, it has been observed that location A is situated perpendicular to the dipole. Hence, the direction of the electric field will be opposite of the point.

Thus, the direction of the electric field at location A due to the dipole is at the opposite direction of the dipole.

03

(b) Determination of the direction of the electric field at location B

From the above figure, it has been observed that location B is situated radially to the dipole. Hence, the direction of the electric field will be same of the dipole of the point.

Thus, the direction of the electric field at location B due to the dipole is at the same direction of the dipole.

04

 Step 4: (c) Determination of the movement of the electron

If an electron is being placed at location A, then the electron will move towards the positive charge of the dipole. The reason the electron will move towards the positive charge is that due to the law of attraction, the negatively charged electron will get attracted towards the positive charge.

Thus, the electron will move towards the direction of the dipole

05

(d) Determination of the movement of the proton

If a proton is being placed at location B, then the proton will move towards the negative charge of the dipole. The reason the proton will move towards the positive charge is that due to the law of attraction, the positively charged proton will get attracted towards the negative charge.

Thus, the proton will move towards the direction of the dipole.

06

(e) Determination of the movement of the dipole

If an electron is being placed at location A and held there, then the positive charge of the dipole will move towards the electron that is negatively charged. The reason the dipole will move towards the electron is that due to the law of attraction, the negatively charged electron will get attracted towards the positive charge, the point of the dipole.

Thus, the dipole will move towards the direction of the electron which is at location A.

Unlock Step-by-Step Solutions & Ace Your Exams!

  • Full Textbook Solutions

    Get detailed explanations and key concepts

  • Unlimited Al creation

    Al flashcards, explanations, exams and more...

  • Ads-free access

    To over 500 millions flashcards

  • Money-back guarantee

    We refund you if you fail your exam.

Over 30 million students worldwide already upgrade their learning with 91Ó°ÊÓ!

One App. One Place for Learning.

All the tools & learning materials you need for study success - in one app.

Get started for free

Most popular questions from this chapter

In Figure 13.66 a proton at location A makes an electric field E→1at location B. A different proton, placed at location B, experiences a force F→1. Now the proton at B is removed and replaced by a lithium nucleus, containing three protons and four neutrons. (a) Now what is the value of the electric field at location B due to the proton? (b) What is the force on the lithium nucleus? (c) The lithium nucleus is removed, and an electron is placed at location B. Now what is the value of the electric field at location B due to the proton? (d) What is the magnitude of the force on the electron? (e) Which arrow in Figure 13.65 best indicates the direction of the force on the electron due to the electric field?

Three nested hollow spheres have the same centre. The innermost sphere has the radius of 2 cmand carries a uniformly distributed charge of 6 nC(1 nC=1×10-9 C). The middle sphere has a radius of5 cm and carries a uniformly distributed charge of -4 nC. The outermost sphere has a radius of 10 cm and carries a uniformly distributed charge of 8 nC.(a) What is the magnitude of the electric field at a distance of 1 cmfrom the centre? (b)What is the magnitude of the electric field at a distance of 4 cmfrom the centre?(c) What is the magnitude of the electric field at a distance of 9 cmfrom the centre?

Two identical permanent dipoles, each consisting of charges +qand -qseparated by a distance s, are aligned along the xaxis, a distance rfrom each other, wherer≫s(Figure 13.75). Show all of the steps in your work, and briefly explain each step. (a) Draw a diagram showing all individual forces acting on each particle, and draw heavier vectors showing the net force on each dipole. (b) Show that the magnitude of the net force exerted on one dipole by the other dipole is this:

F≈14πε06q2s2r4

An electron in a region in which there is an electric field experiences a force of magnitude 3.7×10-16N . What is the magnitude of the electric field at the location of the electron?

You make repeated measurements of the electric fieldE→due to a distant charge, and you find it is constant in magnitude and direction. At timerole="math" localid="1656916621351" t=0your partner moves the charge. The electric field doesn’t change for a while, but at timet=45nsyou observe a sudden change. How far away was the charge originally?

See all solutions

Recommended explanations on Physics Textbooks

View all explanations

What do you think about this solution?

We value your feedback to improve our textbook solutions.

Study anywhere. Anytime. Across all devices.