
Objectives for Material to be Learned from Unit 1
... small number of point charges, calculate the total electric force (magnitude and direction) acting on any chosen charge, due to all the others. 1.3 For a point charge or a configuration of several point charges, calculate the electric field (magnitude and direction) at any given location. 1.4 Relate ...
... small number of point charges, calculate the total electric force (magnitude and direction) acting on any chosen charge, due to all the others. 1.3 For a point charge or a configuration of several point charges, calculate the electric field (magnitude and direction) at any given location. 1.4 Relate ...
BOUNCE-RESONANCE TEST
... The guiding center equations developed in Chapter 2 are adapted in this chapter for use in the test-particle simulation. Motion of particles in a model field line resonance (FLR) are expressed using geomagnetic dipole coordinates [Streltsov and Lotko, 1997]. Dipolar coordinates are chosen to make us ...
... The guiding center equations developed in Chapter 2 are adapted in this chapter for use in the test-particle simulation. Motion of particles in a model field line resonance (FLR) are expressed using geomagnetic dipole coordinates [Streltsov and Lotko, 1997]. Dipolar coordinates are chosen to make us ...
lecture 15 (zipped power point) (update: 2 Jan 03)
... Whether light displays wave or particle nature depends on the object it is interacting with, and also on the experimental set-up to observe it If an experiment is set-up to observe the wave nature (such as in interference or diffraction experiment), it displays wave nature If the experimental se ...
... Whether light displays wave or particle nature depends on the object it is interacting with, and also on the experimental set-up to observe it If an experiment is set-up to observe the wave nature (such as in interference or diffraction experiment), it displays wave nature If the experimental se ...
Text sections 25.1, 25.2, 25.4 • Potential Energy and Electric
... The work is proportional to the charge. The electric force is conservative. Define an electrostatic potential energy, U, such that: ...
... The work is proportional to the charge. The electric force is conservative. Define an electrostatic potential energy, U, such that: ...
Electromagnetic Waves
... the time when capacitor is being charged, a current I flows through the connecting wires which varies with respect to time. This current will produce a magnetic field around the wires which can be detected using a compass ...
... the time when capacitor is being charged, a current I flows through the connecting wires which varies with respect to time. This current will produce a magnetic field around the wires which can be detected using a compass ...
PPT
... Radio waves are reflected by the layer of the Earth’s atmosphere called the ionosphere. This allows for transmission between two points which are far from each other on the globe, despite the curvature of the earth. Marconi’s experiment discovered the ionosphere! Experts thought he was crazy and thi ...
... Radio waves are reflected by the layer of the Earth’s atmosphere called the ionosphere. This allows for transmission between two points which are far from each other on the globe, despite the curvature of the earth. Marconi’s experiment discovered the ionosphere! Experts thought he was crazy and thi ...
General Physics II
... If you draw a surface around the point charge and conducting shell, the total enclosed charge is zero - the +q and −q add to zero. If there is no net enclosed charge, Gauss’ law tells us that the electric field is zero. 4. A “free” electron and a “free” proton are placed in an identical electric fie ...
... If you draw a surface around the point charge and conducting shell, the total enclosed charge is zero - the +q and −q add to zero. If there is no net enclosed charge, Gauss’ law tells us that the electric field is zero. 4. A “free” electron and a “free” proton are placed in an identical electric fie ...
02.Electric Fields
... An electric field develops around charges and between charges. The Strength of an electric field depends on the size of the charge and the distance away from the charge. ...
... An electric field develops around charges and between charges. The Strength of an electric field depends on the size of the charge and the distance away from the charge. ...
Phy213_CH24_worksheet
... a. How much work does the proton perform to “pull” the electron to a position of 5.29x10-11 m away from the proton? b. Apply the Conservation of Energy, determine the kinetic energy of the electron when it is located 5.29 x 10-11 m from the proton. c. Estimate how fast the electron is moving when it ...
... a. How much work does the proton perform to “pull” the electron to a position of 5.29x10-11 m away from the proton? b. Apply the Conservation of Energy, determine the kinetic energy of the electron when it is located 5.29 x 10-11 m from the proton. c. Estimate how fast the electron is moving when it ...
Case 2 - Nikhef
... From the detector counts deduce again the probabilities P1 and P2 To avoid confusion use single electrons: one by one! ...
... From the detector counts deduce again the probabilities P1 and P2 To avoid confusion use single electrons: one by one! ...
Spacetime is built by Quantum Entanglement
... This is analogous to diagnosing conditions inside of your body by looking at X-ray images on twodimensional sheets. This allowed them to interpret universal properties of quantum entanglement as conditions on the energy density that should be satisfied by any consistent quantum theory of gravity, w ...
... This is analogous to diagnosing conditions inside of your body by looking at X-ray images on twodimensional sheets. This allowed them to interpret universal properties of quantum entanglement as conditions on the energy density that should be satisfied by any consistent quantum theory of gravity, w ...