Electricity and Magnetism

Slides:



Advertisements
Similar presentations
Motion of Charged Particles in a Uniform Electric Field
Advertisements

Chapter 28. Magnetic Field
Magnetism The Magnetic Force x x x v F B q  v F B q   v F = 0 B q.
Wednesday, Oct. 26, 2005PHYS , Fall 2005 Dr. Jaehoon Yu 1 PHYS 1444 – Section 003 Lecture #16 Wednesday, Oct. 26, 2005 Dr. Jaehoon Yu Charged Particle.
Hw: All Chapter 3 problems and exercises Reading: Chapter 3.
Instructor: Dr. Tatiana Erukhimova
Chapter 2 hw quiz What is the electric field at the center of a circle of radius R if the top half of the circle has a uniform charge +Q spread over the.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 10.
Hw: All Chapter 2 problems and exercises Reading: Chapter 3.
Example 6: Electric field on disk’s axis z Example 2 Consider a constant, vertical electric field somehow created in a limited region of space. An electron.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 23.
Electricity and Magnetism
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures 32, 33, 34 Hw: Chapter 14 problems and exercises.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 23.
Hw: All Chapter 2 problems and exercises. Example 1: Electric field of a point charge is directly radially away from or toward the charge. Example 2:
ELECTRIC FIELDS Physics 30S. Outcomes  S3P-4-14: Define the electric field qualitatively as the region of space around a charge where a positive test.
Topic 25: Charged Particles 25.1 Electrons 25.2 Beams of charged particles.
University Physics: Waves and Electricity Ch22. Finding the Electric Field – I Lecture 7 Dr.-Ing. Erwin Sitompul
General Physics II, Lec 3, By/ T.A. Eleyan 1 Lecture 3 The Electric Field.
General Physics II, Additional Questions, By/ T.A. Eleyan 1 Additional Questions Lec. 15,16.
Wed. Feb. 11 – Physics Lecture #29 Magnetic Forces 1. Magnetic Forces on Charged Particles 2. Motion in Magnetic Fields 3. Magnetic Forces on Current-Carrying.
When charged particles move through magnetic fields, they experience a force, which deflects them Examples of such particles are electrons, protons, and.
Halliday/Resnick/Walker Fundamentals of Physics
26.1 Action of Electric and Magnetic Fields on Matter Chapter 26.
Force Fields Objective: TSW understand and apply the concept of a force field by calculating the field, the force and motion of a particle in a field.
Lecture 5 was cancelled due to weather. Example 1: Electric field of a point charge is directly radially away from or toward the charge. Example 2: Electric.
PHYS 1442 – Section 004 Lecture #12 Wednesday February 26, 2014 Dr. Andrew Brandt Chapter 20 -Charged Particle Moving in Magnetic Field -Sources of Magnetic.
University Physics: Waves and Electricity Ch22. Finding the Electric Field – I Lecture 7 Dr.-Ing. Erwin Sitompul
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures 16, 17, 18.
AP Physics Summer Institute Free-Response-Questions MAGNETISM.
Electricity and Magnetism
University Physics: Waves and Electricity
Motion of Charged Particles in a Uniform Electric Field
Electricity and Magnetism
Instructor: Dr. Tatiana Erukhimova
Electricity and magnetism Chapter Two: Electric Fields
Magnetic Fields and Forces
Electricity and Magnetism
Magnetic Force on Moving Charges
Electric and Magnetic Fields
Instructor: Dr. Tatiana Erukhimova
Electricity and Magnetism
Magnetic Fields Contents: Overview What Produces Magnetic Field
A proton is accelerated from rest through a potential difference of V
Electricity and Magnetism
The Millikan Oil Drop Experiment & Elementary Charge
Electricity and Magnetism
Q v B The force on a moving charge in a magnetic field is related related to its charge and velocity.
Jeopardy Opening.
Instructor: Dr. Tatiana Erukhimova
Electricity and Magnetism
Electricity and Magnetism
University Physics: Waves and Electricity
Textbook: 8.2 Homework: pg. 396 # 3 – 5 pg. 402 # 1 – 3 , 10
Instructor: Dr. Tatiana Erukhimova
e/m Ratio for the Electron
Electricity and Magnetism
Electricity and Magnetism
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
University Physics: Waves and Electricity
Chapter 28 Magnetic Fields
PHYS 1444 – Section 003 Lecture #16
Electricity and Magnetism
Electricity and Magnetism
Physics 122B Electricity and Magnetism
Electricity and Magnetism
Electricity and Magnetism
Chapter 23 Electric Potential.
Electricity and Magnetism
Presentation transcript:

Electricity and Magnetism Physics 208 Dr. Tatiana Erukhimova Lecture 6

Example 1: Electric field of a point charge is directly radially away from or toward the charge. Example 2: Electric field of a dipole

Example 3: Electric field at the center of a charged ring Think first! (before you start doing calculations)

Example 4: Find the electric field at the center of a semi-circle of radius R, if a charge Q is uniformly spread over the semi-circle. O

Example 5: Electric field on ring’s axis

Exercise 5 page 33 In a famous experiment Millikan measured the size of the electron’s charge by adjusting an field so that the force of gravity pulling down on a small, charged oil drop was cancelled by the electric force pushing up. If the mass of the drop was kg and it contained 10 electronic charges, what size field was necessary to keep the drop in equilibrium?

Robert Millikan’s oil-drop experiment (1909)

Robert Andrews Millikan 1868-1953 American experimental physicist 1923 Nobel Prize

Millikan received a Bachelor’s degree in the classics from Oberlin College in 1891 and his doctorate in physics from Columbia University in 1895 – he was the first to earn a Ph.D. from that department. "At the close of my sophomore year [...] my Greek professor [...] asked me to teach the course in elementary physics in the preparatory department during the next year. To my reply that I did not know any physics at all, his answer was, 'Anyone who can do well in my Greek can teach physics.' 'All right,' said I, 'you will have to take the consequences, but I will try and see what I can do with it.' I at once purchased an Avery’s Elements of Physics, and spent the greater part of my summer vacation of 1889 at home – trying to master the subject. [...] I doubt if I have ever taught better in my life than in my first course in physics in 1889. I was so intensely interested in keeping my knowledge ahead of that of the class that they may have caught some of my own interest and enthusiasm."

Exercise 5 page 33 In a famous experiment Millikan measured the size of the electron’s charge by adjusting an field so that the force of gravity pulling down on a small, charged oil drop was cancelled by the electric force pushing up. If the mass of the drop was kg and it contained 10 electronic charges, what size field was necessary to keep the drop in equilibrium?

Motion in an electric field A positively charged object, with mass m, is placed at rest in a constant field. How fast will the object be moving after it has traveled a distance L?

Example 2 Consider a constant, vertical electric field somehow created in a limited region of space. An electron enters the region traveling horizontally with speed . If the region has a length L, how much will the electron be deflected at the end of the region?

Example 3 A particle with mass m and charge q is ejected from the lower of two parallel plates with velocity of magnitude as shown. If a constant electric field exists between the plates, magnitude E, where will the particle return to the lower plate? How large must L be so that the particle doesn’t strike the upper plate? (Neglect gravity.) y E L x

P218 Review: Conservative forces One-dimensional problem:

Two-dimensional problem: does NOT depend on path! around the closed path is zero!

Have a great day! Hw: All Chapter 3 problems and exercises Reading: Chapter 3