نتایج جستجو برای: electrostatic field gradient

تعداد نتایج: 918134  

2015
Timothy J. Giese Maria T. Panteva Haoyuan Chen Darrin M. York

The Ewald, Particle Mesh Ewald (PME), and Fast Fourier–Poisson (FFP) methods are developed for systems composed of spherical multipole moment expansions. A unified set of equations is derived that takes advantage of a spherical tensor gradient operator formalism in both real space and reciprocal space to allow extension to arbitrary multipole order. The implementation of these methods into a no...

2016
L. Schmitz D. P. Fulton E. Ruskov C. Lau B. H. Deng T. Tajima M. W. Binderbauer I. Holod Z. Lin H. Gota M. Tuszewski S. A. Dettrick L. C. Steinhauer

An economic magnetic fusion reactor favours a high ratio of plasma kinetic pressure to magnetic pressure in a well-confined, hot plasma with low thermal losses across the confining magnetic field. Field-reversed configuration (FRC) plasmas are potentially attractive as a reactor concept, achieving high plasma pressure in a simple axisymmetric geometry. Here, we show that FRC plasmas have unique...

2015
I H Hutchinson

An object’s wake in a plasma with small Debye length that drifts across the magnetic field is subject to electrostatic electron instabilities. Such situations include, for example, the moon in the solar wind wake and probes in magnetized laboratory plasmas. The instability drive mechanism can equivalently be considered drift down the potential-energy gradient or drift up the density-gradient. T...

Journal: :Nanotechnology 2015
L Collins M B Okatan Q Li I I Kravenchenko N V Lavrik S V Kalinin B J Rodriguez S Jesse

Kelvin probe force microscopy (KPFM) is a powerful characterization technique for imaging local electrochemical and electrostatic potential distributions and has been applied across a broad range of materials and devices. Proper interpretation of the local KPFM data can be complicated, however, by convolution of the true surface potential under the tip with additional contributions due to long ...

Journal: :DEStech Transactions on Engineering and Technology Research 2019

Journal: :Serbian Journal of Electrical Engineering 2004

2014
Richard Feynman

Let's first consider the field of a point charge. dl The work done to move q from a to b:         b a b a l E l F d q d W Since E = E(r) (recall Coulomb's law), W is independent of the path.

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