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Journal ArticleDOI

A General Theory of the Plasma of an Arc

Lewi Tonks, +1 more
- 15 Sep 1929 - 
- Vol. 34, Iss: 6, pp 876-922
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TLDR
In this paper, the potential distribution of the potential difference between the center and the edge of the sheath of a single probe wire is calculated for the case where the probe wires are attached to the wall of a cylindrical spherical plasmas.
Abstract
The conception of random positive ion velocities corresponding to ion temperatures in a plasma has serious theoretical difficulties and is lacking in direct experimental verification It is more reasonable to assume that each ion starts from rest and subsequently possesses only the velocity which it acquires by falling through a static electric field which is itself maintained by the balance of electron and ion charges This new viewpoint thus ascribes motions to the positive ions which, for long free paths, are ordered rather than chaotic, each negative body in contact with the discharge collecting ions from a definite region of the plasma and from it only The resulting integral ? the plasma-sheath potential distribution have been set up for plane, cylindrical, and spherical plasmas, for long, short and intermediate length ion free paths, and for both constant rate of ionization throughout the plasma and rate proportional to electron density, and these equations have been solved for the potential distribution in the plasma in all important cases The case of short ion free paths in a cylinder with ion generation proportional to electron density gives the same potential distribution as found for the positive column by Schottky using his ambipolar diffusion theory, with the advantages that ambipolarity and quasineutrality need not appear as postulates The calculated potential distribution agrees with that found experimentally The potential difference between center and edge of plasma approximates $\frac{{T}_{e}}{11,600}$ volts in all long ion free path cases The theory yields two equations One, the ion current equation, simply equates the total number of ions reaching the discharge tube wall to the total number of ions generated in the plasma, but it affords a new method of calculating the density of ionization The second, the plasma balance equation, relates rate of ion generation, discharge tube diameter (in the cylindrical case), and electron temperature It can be used to calculate the rate of ion generation, the resulting values checking (to order of magnitude) those calculated from one-stage ionization probabilities The potential difference between the center of the plasma and a non-conducting bounding wall as calculated from the ion current equation agrees with that found experimentallyThe solution of the general plasma-sheath equation has been extended into the sheath surrounding the plasma to determine the first order correction which is to be subtracted from the discharge tube radius to obtain the plasma radius The wall sheath in the positive column is several times the thickness given by the simple space charge equationActually the ions do not start from rest when formed but have small random velocities corresponding to the gas temperature, ${T}_{g}$ In the long ion free path cases this leads to an error of the order of only $\frac{{T}_{g}}{{T}_{e}}$ in the calculated potential distributionsIn the plasma surrounding a fine negatively charged probe wire the potential difference between plasma potential maximum and sheath edge may be so small that the ions generated within the plasma potential maximum are not trapped but can traverse the maximum by virtue of their finite initial velocities This justifies the use of a sufficiently fine negatively charged wire in the usual way to measure positive ion concentrations, although certain difficulties appear which are thought to be connected with the collector theory rather than the present plasma theory

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Citations
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Journal ArticleDOI

The Bohm criterion and sheath formation

TL;DR: In this paper, the basic features of the plasma-sheath transition and their relation to the Bohm criterion are discussed and illustrated from a simple cold-ion fluid model, and a rigorous kinetic analysis of the vicinity of the sheath edge allows one to generalize Bohm's criterion accounting not only for arbitrary ion and electron distributions, but also for general boundary conditions at the wall.
Journal ArticleDOI

Measurement of electron energy distribution in low-pressure RF discharges

TL;DR: In this paper, the authors used a probe system specifically designed to remove or reduce the severity of many problems inherent to such measurements in RF discharges, such as stochastic electron heating and the effect of discharge transition into gamma mode.
Journal ArticleDOI

Probe theory - the orbital motion approach

TL;DR: In this article, a review of the orbital motion limited (O.M.L.) theory of cylindrical and spherical Langmuir probes is given, and it is suggested that the mean free path must be greater than the probe radius by a large factor if the calculations of the Laframboise are to apply.
Journal ArticleDOI

The Collection of Positive Ions by a Probe Immersed in a Plasma

TL;DR: The theory of the collection of positive ions by a probe immersed in a low pressure plasma is reviewed and extended in this article, where the ion current is determined mainly by the electric field which penetrates beyond the sheath edge into the plasma.
Journal ArticleDOI

Experimental divertor physics

TL;DR: In this paper, the authors reviewed the physics of diveror in tokamaks from an experimental point of view, although where possible simple analytic modelling is included, and provided a framework for comparison of the experimental results with simply derived expectations.
References
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Journal ArticleDOI

The Theory of Collectors in Gaseous Discharges

TL;DR: In this article, a cylindrical or spherical electrode (collector) immersed in an ionized gas is brought to a suitable potential, it becomes surrounded by a symmetrical space charge region or "sheath" of positive or of negative ions (or electrons).
Journal ArticleDOI

The Interaction of Electron and Positive Ion Space Charges in Cathode Sheaths

TL;DR: In this paper, the potential distribution in the plasma and near the sheath edge of a double-sheath was studied and the effect of the initial velocities of the ions and electrons that entered a double sheath from the gas is to decrease the electron current by an amount that varies with the voltage drop in the sheaths.
Journal ArticleDOI

Die Absorptionsspektren von Vanadium, Titan und Scandium

TL;DR: In this paper, quantentheoretische deutung gelingt unter Benutzung der bisher bekannten Gesetzmasigkeiten in den Bogenspektren dieser Elemente, die einer kritischen Durchsicht unterzogen und insbesondere bei Titan durch Angabe neuer Multipletts vervollstandigt werden.
Journal ArticleDOI

Flow of Ions Through a Small Orifice in a Charged Plate

TL;DR: In this article, the electrostatic potential distribution in the neighborhood of a pierced electrode, pierced with either slit or hole, has been worked out, which gives anode drop, ion current density, transverse ion temperature and "longitudinal" ion temperature.
Journal ArticleDOI

On the Motions of Electrons in Gases

TL;DR: In this paper, the average fraction of the energy lost in an elastic collision with a molecule of mass M by an electron of mass N was found to be O(n 2 ) where n is the number of collisions per cm and n the ratio of the speed at any point to the terminal speed.