By A. M. Ignatov, A. A. Rukhadze (auth.), Mario Capitelli, Claudine Gorse (eds.)
Plasmas in Nature, Laboratory, and know-how (A. Ignatov, A.A. Rukhadze). Laser Diagnostics of Plasmas (L. Pyatnitsky). Probe Diagnostics of Plasmas (G. Dilecce). thought, houses, and purposes of Nonequilibrium Plasmas Created via exterior strength assets (E.E. Son). Nonequilibrium Plasma Modeling (M. Capitelli et al.). fuel Discharge Lamps (M. Koedam). Plasma Etching techniques and Diagnostics (R. d'Agostino, F. Fracassi). Plasma Deposition (A. Koch). Correlations among energetic Plasma Species and metal floor Nitriding in Microwave Postdischarge Reactors (A. Ricard et al.). Simultaneous elimination of NOx SOx and Soot in Diesel Engine Exhaust by way of Plasma/Oil Dynamics capacity (K. Fujii). DeNOx DeSOx technique by means of gasoline Energization (L. Civitano, E. Sani). Microwave Excitation expertise (P. Leprince, J. Marec). unfavorable Ion resource know-how (H.J. Hopman, R.M.A. Heeren). Quasistationary Optical Discharges on reliable ambitions (V.B. Fedorov). Index.
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Additional resources for Plasma Technology: Fundamentals and Applications
There exist some fitting formulas  which are valid only in certain ranges of the parameters, But the major difficulty in handling these data is, anyway, the strong dependence of ~ on the ratio a/~d which, in turn, depends through ~d on n itself: an iterative procedure is then needed for the calculation of n. In real cases, furthermore, end effects cannot be neglected, as the geometries are not ideal ( the cyl inder and the plane are not infinite ), and the dependence of ~ on the shape of the probe introduces a new problem.
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