Slide 1
... Eddy Currents You have seen how a changing magnetic field can induce a “swirling” current in a conductor (the beginning of this lecture). If a conductor and a magnetic field are in relative motion, the magnetic force on charged particles in the conductor causes circulating currents. These currents ...
... Eddy Currents You have seen how a changing magnetic field can induce a “swirling” current in a conductor (the beginning of this lecture). If a conductor and a magnetic field are in relative motion, the magnetic force on charged particles in the conductor causes circulating currents. These currents ...
Document
... Moving electric charges make magnetic fields… and magnetic fields make forces on moving electric charges. ...
... Moving electric charges make magnetic fields… and magnetic fields make forces on moving electric charges. ...
Design, Modeling and Simulation of Optoelectronic Devices
... leading to a time-varying current; from Ampere’s law, time-varying magnetic field exists; from Faraday’s law, electric vortex exists • Therefore, not only electric field can be generated in its divergence form by the static charge distribution, it can also be generated in its curl form by the “tempo ...
... leading to a time-varying current; from Ampere’s law, time-varying magnetic field exists; from Faraday’s law, electric vortex exists • Therefore, not only electric field can be generated in its divergence form by the static charge distribution, it can also be generated in its curl form by the “tempo ...
Magnetic Induction
... An Intriguing Possibility... • If changing magnetic flux can create a current, can one also conclude that a changing magnetic field can produce an electric field? • Don’t we already have evidence that the converse - a changing electric field produces a magnetic field - occurs? ...
... An Intriguing Possibility... • If changing magnetic flux can create a current, can one also conclude that a changing magnetic field can produce an electric field? • Don’t we already have evidence that the converse - a changing electric field produces a magnetic field - occurs? ...
hw08_solutions
... 1. The electric field in an EM wave traveling north oscillates in an east–west plane. Describe the direction of the magnetic field vector in this wave. Solution If the direction of travel for the EM wave is north and the electric field oscillates east-west, then the magnetic field must oscillate up ...
... 1. The electric field in an EM wave traveling north oscillates in an east–west plane. Describe the direction of the magnetic field vector in this wave. Solution If the direction of travel for the EM wave is north and the electric field oscillates east-west, then the magnetic field must oscillate up ...
There are only two charges, positive and negative.
... E is also equal to k•q•q0/ r2 divided by q0. q0 cancels out, and we are left with ...
... E is also equal to k•q•q0/ r2 divided by q0. q0 cancels out, and we are left with ...
Chapter 34
... This showed that magnetic fields are produced both by conduction currents and by time-varying electric fields ...
... This showed that magnetic fields are produced both by conduction currents and by time-varying electric fields ...
The magnetic force law (Lorentz law)
... The electric potential is A] higher at A B] higher at B C] the same in both places If the current direction were the same, but electrons carried the current, where would the electric potential be higher? ...
... The electric potential is A] higher at A B] higher at B C] the same in both places If the current direction were the same, but electrons carried the current, where would the electric potential be higher? ...