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1

Engineers, Society of Automotive, and International Fall Fuels & Lubricants Meeting & Exposition (2000 : Baltimore, Md.), eds. Non-thermal plasma. Society of Automotive Engineers, 2000.

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2

Penetrante, Bernie M., and Shirley E. Schultheis, eds. Non-Thermal Plasma Techniques for Pollution Control. Springer Berlin Heidelberg, 1993. http://dx.doi.org/10.1007/978-3-642-78476-7.

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3

1960-, Penetrante Bernie M., Schultheis Shirley E. 1957-, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Research Workshop on Non-Thermal Plasma Techniques for Pollution Control (1992 : Cambridge, England), eds. Non-thermal plasma techniques for pollution control. Springer-Verlag, 1993.

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4

Engineers, Society of Automotive, and International Fall Fuels & Lubricants Meeting & Exposition (1999 : Toronto, Ont.), eds. Non-thermal plasma for exhaust emission control--NOx, HC, and particulates. Society of Automotive Engineers, 1999.

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5

Sun, Yongxia. Degradation of air pollutants in non-thermal plasma generated by electron beam: Experimental and theoretical study. Institute of Nuclear Chemistry and Technology, 2013.

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6

Non-Thermal Plasma Emission Control Systems. Society of Automotive Engineers (SAE), 2001.

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7

Non-Thermal Plasma Technology for Polymeric Materials. Elsevier, 2019. http://dx.doi.org/10.1016/c2016-0-03254-0.

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8

Non-thermal Plasma Surface Preparation of Metals. AMPP, 2022. https://doi.org/10.5006/ampp_sp21523-2022.

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Scope This standard contains the general requirements for the safe and effective use of APC equipment, operated either manually hand-held or through use of automation, to prepare various metallic surfaces for maintenance, repair, recoating, or lining. This standard does not address surface preparation of concrete. APC is applied to the entire surface specified to be prepared for a new coating or lining. Poorly adhered surface material and coating that cannot withstand the APC process are removed, while, depending on the chosen cleanliness level, any remaining coating is suitably prepared prior
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9

Mildažienė, Vida, and Božena Šerá, eds. Effects of Non-thermal Plasma Treatment on Plant Physiological and Biochemical Processes. MDPI, 2022. http://dx.doi.org/10.3390/books978-3-0365-4206-5.

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10

Zürich, Eidgenössische Technische Hochschule, ed. Toluene removal from waste air by combined biological and non-thermal plasma techniques. 1999.

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11

Penetrante, Bernie M. Non-Thermal Plasma Techniques for Pollution Control : Part B: Electron Beam and Electrical Discharge Processing. Springer, 2011.

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12

Penetrante, Bernie M., and Shirley E. Schultheis. Non-Thermal Plasma Techniques for Pollution Control : Part B: Electron Beam and Electrical Discharge Processing. Springer London, Limited, 2013.

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13

Thomas, Sabu, Miran Mozetic, Uros Cvelbar, Petr Spatenka, and Praveen K. M. Non-Thermal Plasma Technology for Polymeric Materials: Applications in Composites, Nanostructured Materials and Biomedical Fields. Elsevier, 2018.

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14

Thomas, Sabu, Miran Mozetic, Uros Cvelbar, Petr Spatenka, and K. M. Praveen. Non-Thermal Plasma Technology for Polymeric Materials: Applications in Composites, Nanostructured Materials, and Biomedical Fields. Elsevier Science & Technology Books, 2018.

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15

Güdel, Manuel. Plasma instabilities of energetic electrons in solar and stellar coronae: Observations and interpretation of short non-thermal radio and hard X-ray phenomena. 1991.

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16

Non-Thermal Plasma for Exhaust Emission Control: Nox, Hc, and Particulates (S P (Society of Automotive Engineers)). Society of Automotive Engineers Inc, 1999.

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17

Thermal Radiation Phenomena : Volume 1 : Radiative Properties of Air / Volume 2: Excitation and Non-Equilibrium Phenomena in Air. Springer, 2013.

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18

Morent, Rino. Chapter 8 Non-thermal Plasma Technology for the Improvement of Scaffolds for Tissue Engineering and Regenerative Medicine - A Review. InTechOpen, 2016.

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19

Horing, Norman J. Morgenstern. Random Phase Approximation Plasma Phenomenology, Semiclassical and Hydrodynamic Models; Electrodynamics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198791942.003.0010.

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Chapter 10 reviews both homogeneous and inhomogeneous quantum plasma dielectric response phenomenology starting with the RPA polarizability ring diagram in terms of thermal Green’s functions, also energy eigenfunctions. The homogeneous dynamic, non-local inverse dielectric screening functions (K) are exhibited for 3D, 2D, and 1D, encompassing the non-local plasmon spectra and static shielding (e.g. Friedel oscillations and Debye-Thomas-Fermi shielding). The role of a quantizing magnetic field in K is reviewed. Analytically simpler models are described: the semiclassical and classical limits an
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