Gauss’s Law “The net electric flux through any closed surface is directly proportional to the net charge contained within that surface.” Qenclosed =

Slides:



Advertisements
Similar presentations
Announcements Monday guest lecturer: Dr. Fred Salsbury. Solutions now available online. Will strive to post lecture notes before class. May be different.
Advertisements

Gauss’s Law AP Physics C Mrs. Coyle.
The electric flux may not be uniform throughout a particular region of space. We can determine the total electric flux by examining a portion of the electric.
Electric Flux Density, Gauss’s Law, and Divergence
Applications of Gauss’s Law
Lecture 6 Problems.
Gauss’s law and its applications
Chapter 28. Gauss’s Law The nearly spherical shape of the girl’s head determines the electric field that causes her hair to stream outward. Using Guass’s.
© 2012 Pearson Education, Inc. A spherical Gaussian surface (#1) encloses and is centered on a point charge +q. A second spherical Gaussian surface (#2)
C. less, but not zero. D. zero.
Charge and Electric Flux. Electric Flux A closed surface around an enclosed charge has an electric flux that is outward on inward through the surface.
Gauss’s Law PH 203 Professor Lee Carkner Lecture 5.
Oregon State University PH 213, Class #8
Gauss’s Law PH 203 Professor Lee Carkner Lecture 5.
Electricity Electric Flux and Gauss’s Law 1 Electric Flux Gauss’s Law Electric Field of Spheres Other Gaussian Surfaces Point Charges and Spheres.
4. Gauss’s law Units: 4.1 Electric flux Uniform electric field
E The net electric flux through a closed cylindrical surface is zero.
© 2013 Pearson Education, Inc. A proton is moving to the right in a vertical electric field. A short time later, the proton’s velocity is.
Nadiah Alanazi Gauss’s Law 24.3 Application of Gauss’s Law to Various Charge Distributions.
Apply Gauss’s law 2. Choose Gaussian surface so that E can be taken out of integration: explore the symmetry of E Symmetry of EGaussian Surface Spherical.
Summer July Lecture 3 Gauss’s Law Chp. 24 Cartoon - Electric field is analogous to gravitational field Opening Demo - Warm-up problem Physlet /webphysics.davidson.edu/physletprob/webphysics.davidson.edu/physletprob.
Definitions Flux—The rate of flow through an area or volume. It can also be viewed as the product of an area and the vector field across the area Electric.
Last Lecture Gauss’s law Using Gauss’s law for: spherical symmetry This lecture Using Gauss’s law for: line symmetry plane symmetry Conductors in electric.
Chapter 23 Gauss’s Law Summer Chapter 23 Gauss’ law In this chapter we will introduce the following new concepts: The flux (symbol Φ ) of the electric.
Dr. Jie ZouPHY Chapter 24 Gauss’s Law (cont.)
Chapter 27. A uniformly charged rod has a finite length L. The rod is symmetric under rotations about the axis and under reflection in any plane containing.
22 Electric Field II Covering sections 1-5 (omit section 6)
CHAPTER 24 : GAUSS’S LAW 24.1) ELECTRIC FLUX
Copyright © 2008 Pearson Education, Inc., publishing as Pearson Addison-Wesley. Chapter 28. Gauss’s Law The nearly spherical shape of the girl’s head determines.
Chapter-23: Gauss' Law . One of the primary goals of physics is to find simple ways of solving seemingly complex problems. One of the main tools of physics.
Copyright © 2009 Pearson Education, Inc. Chapter 22 Gauss’s Law.
Divergence and Curl of Electrostatic Fields Field of a point charge arrowsfield lines:
Q22.1 A spherical Gaussian surface (#1) encloses and is centered on a point charge +q. A second spherical Gaussian surface (#2) of the same size also encloses.
Tue. Feb. 3 – Physics Lecture #26 Gauss’s Law II: Gauss’s Law, Symmetry, and Conductors 1. Electric Field Vectors and Electric Field Lines 2. Electric.
Tue. Feb. 3 – Physics Lecture #25 Gauss’s Law I: Field Lines and Flux 1. Electric Field Vectors and Electric Field Lines 2. Electric Field and Electric.
Gauss’s Law Electric Flux Gauss’s Law Examples. Gauss’s Law What’s in the box ??
Ch – 27 Gauss’s Law. Symmetry A charge distribution is said to be Symmetric if the following geometric transformations cause no physical change: Translation.
Gauss’s law This lecture was given mostly on the board so these slides are only a guide to what was done.
Physics 2113 Lecture: 09 MON 14 SEP
Unit 1 Day 11: Applications of Gauss’s Law Spherical Conducting Shell A Long Uniform Line of Charge An Infinitely Large, Thin Plane of Charge Experimental.
Chapter 28 Gauss’s Law 28.1 to 28.4.
3/21/20161 ELECTRICITY AND MAGNETISM Phy 220 Chapter2: Gauss’s Law.
Slide 1Fig 24-CO, p.737 Chapter 24: Gauss’s Law. Slide 2 INTRODUCTION: In the preceding chapter we showed how to use Coulomb’s law to calculate the electric.
24.2 Gauss’s Law.
Oregon State University PH 213, Class #8
ELEC 3105 Lecture 2 ELECTRIC FIELD LINES …...
4. Gauss’s law Units: 4.1 Electric flux Uniform electric field
Gauss’s Law.
Chapter 23 Gauss’s Law Spring 2008.
E The net electric flux through a closed cylindrical surface is zero.
Gauss’s Law Gauss’s law uses symmetry to simplify electric field calculations. Gauss’s law also gives us insight into how electric charge distributes itself.
Chapter 22 Gauss’s Law.
Quizzes 3 A cube with 1.40 m edges is oriented as shown in the figure
Gauss’s Law Electric Flux Gauss’s Law Examples.
Gauss’s Law.
Chapter 21 Gauss’s Law.
Flux Capacitor (Schematic)
E. not enough information given to decide Gaussian surface #1
C. less, but not zero. D. zero.
Symmetry Some charge distributions have translational, rotational, or reflective symmetry. If this is the case, we can determine something about the field.
Physics 16/21 Electricity & magnetism
Last Lecture This lecture Gauss’s law Using Gauss’s law for:
Chapter 23 Gauss’ Law Key contents Electric flux
Phys102 Lecture 3 Gauss’s Law
Gauss’s law This lecture was given mostly on the board so these slides are only a guide to what was done.
Using Gauss’ Law From flux to charge.
Gauss’s Law.
Example 24-2: flux through a cube of a uniform electric field
Understand the concept of Electric Field Flux
99學年上學期高二物理 黃信健.
Presentation transcript:

Gauss’s Law “The net electric flux through any closed surface is directly proportional to the net charge contained within that surface.” Qenclosed = e0(FE) 4/19/17 OSU PH 213, Before Class #8

This box contains a net positive charge. a net negative charge. a negative charge. a positive charge. no net charge. STT27.2 Answer: B 4/19/17 OSU PH 213, Before Class #8

This box contains a net positive charge. a net negative charge. a negative charge. a positive charge. no net charge. STT27.2 Answer: B 4/19/17 OSU PH 213, Before Class #8

Φa > Φc > Φb > Φd > Φe Φb = Φe > Φa = Φc = Φd These are two-dimensional cross sections through three-dimensional closed spheres and a cube. Rank order, from largest to smallest, the electric fluxes a to e through surfaces a to e. Φa > Φc > Φb > Φd > Φe Φb = Φe > Φa = Φc = Φd Φe > Φd > Φb > Φc > Φa Φb > Φa > Φc > Φe > Φd Φd = Φe > Φc > Φa = Φb STT27.4 Answer: B 4/19/17 OSU PH 213, Before Class #8

Φa > Φc > Φb > Φd > Φe Φb = Φe > Φa = Φc = Φd These are two-dimensional cross sections through three-dimensional closed spheres and a cube. Rank order, from largest to smallest, the electric fluxes a to e through surfaces a to e. Φa > Φc > Φb > Φd > Φe Φb = Φe > Φa = Φc = Φd Φe > Φd > Φb > Φc > Φa Φb > Φa > Φc > Φe > Φd Φd = Φe > Φc > Φa = Φb STT27.4 Answer: B 4/19/17 OSU PH 213, Before Class #8

An electrically neutral cylindrical piece of material is placed in an external electric field, as shown. The net electric flux through the surface of the cylinder is… positive. 2. negative. 3. zero. 4/19/17 OSU PH 213, Before Class #8

An electrically neutral cylindrical piece of material is placed in an external electric field, as shown. The net electric flux through the surface of the cylinder is… positive. 2. negative. 3. zero. 4/19/17 OSU PH 213, Before Class #8

So, when is Gauss’s Law useful So, when is Gauss’s Law useful? When we already know the shape/form of the E-field (but not necessarily its magnitude)—and that form is symmetric and/or uniform, so that we can avoid nasty surface integrals by selecting certain simple Gaussian surfaces: A spherical surface (for spherically symmetric charge distributions), as shown on the next slide. A cylindrical surface (for very long lines/cylinders of cylindrically symmetric charge distributions). A rectangular “box” surface (for very large planes of rectangular symmetric charge distributions). In Class 8, we will look at simple examples of each kind of charge distribution; and After Class 8 will follow with other examples. STT27.5 Answer: C 4/19/17 OSU PH 213, Before Class #8

4/19/17 OSU PH 213, Before Class #8