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Introduction to Streaming Complex Plasmas B: Theoretical Description of Wake Effects

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Introduction to Streaming Complex Plasmas B: Theoretical Description of Wake Effects. / Ludwig, Patrick; Arran, Christopher; Bonitz, Michael.
Springer Series on Atomic, Optical, and Plasma Physics. Springer, 2014. p. 73-99 (Springer Series on Atomic, Optical, and Plasma Physics; Vol. 82).

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNChapter

Harvard

Ludwig, P, Arran, C & Bonitz, M 2014, Introduction to Streaming Complex Plasmas B: Theoretical Description of Wake Effects. in Springer Series on Atomic, Optical, and Plasma Physics. Springer Series on Atomic, Optical, and Plasma Physics, vol. 82, Springer, pp. 73-99. https://doi.org/10.1007/978-3-319-05437-7_3

APA

Ludwig, P., Arran, C., & Bonitz, M. (2014). Introduction to Streaming Complex Plasmas B: Theoretical Description of Wake Effects. In Springer Series on Atomic, Optical, and Plasma Physics (pp. 73-99). (Springer Series on Atomic, Optical, and Plasma Physics; Vol. 82). Springer. https://doi.org/10.1007/978-3-319-05437-7_3

Vancouver

Ludwig P, Arran C, Bonitz M. Introduction to Streaming Complex Plasmas B: Theoretical Description of Wake Effects. In Springer Series on Atomic, Optical, and Plasma Physics. Springer. 2014. p. 73-99. (Springer Series on Atomic, Optical, and Plasma Physics). doi: 10.1007/978-3-319-05437-7_3

Author

Ludwig, Patrick ; Arran, Christopher ; Bonitz, Michael. / Introduction to Streaming Complex Plasmas B : Theoretical Description of Wake Effects. Springer Series on Atomic, Optical, and Plasma Physics. Springer, 2014. pp. 73-99 (Springer Series on Atomic, Optical, and Plasma Physics).

Bibtex

@inbook{c1c7794907f24fe7b1971b7085a7e363,
title = "Introduction to Streaming Complex Plasmas B: Theoretical Description of Wake Effects",
abstract = "A key problem in the description of non-ideal, multi-component plasmas is the drastic difference in the characteristic length and time scales of the different particle species. This challenging multiscale problem inherent to studying streaming complex plasmas can efficiently be tackled by a statistical ansatz for the light plasma constituents in combination with first-principle Langevin dynamics simulations of the heavy and strongly correlated dust component. Of crucial importance in this scheme is the quality of the dynamically screened Coulomb potential. For this purpose, we introduce Kielstream, a new high-performance computer code for the computation of three-dimensional plasma wakefields and the resulting electric fields. The optimization techniques used and the handling of competing numerical errors are discussed in detail. Results are presented for the wakefield around a single dust grain as well as multiscale simulations of a correlated ensemble of grains revealing fundamental structural changes when wake effects take charge.",
keywords = "Complex Plasma, Dusty Plasma, Mach Number, Wake Effect, Wake Oscillation",
author = "Patrick Ludwig and Christopher Arran and Michael Bonitz",
note = "Publisher Copyright: {\textcopyright} 2014, Springer International Publishing Switzerland.",
year = "2014",
month = apr,
day = "10",
doi = "10.1007/978-3-319-05437-7_3",
language = "English",
isbn = "9783319054360",
series = "Springer Series on Atomic, Optical, and Plasma Physics",
publisher = "Springer",
pages = "73--99",
booktitle = "Springer Series on Atomic, Optical, and Plasma Physics",

}

RIS

TY - CHAP

T1 - Introduction to Streaming Complex Plasmas B

T2 - Theoretical Description of Wake Effects

AU - Ludwig, Patrick

AU - Arran, Christopher

AU - Bonitz, Michael

N1 - Publisher Copyright: © 2014, Springer International Publishing Switzerland.

PY - 2014/4/10

Y1 - 2014/4/10

N2 - A key problem in the description of non-ideal, multi-component plasmas is the drastic difference in the characteristic length and time scales of the different particle species. This challenging multiscale problem inherent to studying streaming complex plasmas can efficiently be tackled by a statistical ansatz for the light plasma constituents in combination with first-principle Langevin dynamics simulations of the heavy and strongly correlated dust component. Of crucial importance in this scheme is the quality of the dynamically screened Coulomb potential. For this purpose, we introduce Kielstream, a new high-performance computer code for the computation of three-dimensional plasma wakefields and the resulting electric fields. The optimization techniques used and the handling of competing numerical errors are discussed in detail. Results are presented for the wakefield around a single dust grain as well as multiscale simulations of a correlated ensemble of grains revealing fundamental structural changes when wake effects take charge.

AB - A key problem in the description of non-ideal, multi-component plasmas is the drastic difference in the characteristic length and time scales of the different particle species. This challenging multiscale problem inherent to studying streaming complex plasmas can efficiently be tackled by a statistical ansatz for the light plasma constituents in combination with first-principle Langevin dynamics simulations of the heavy and strongly correlated dust component. Of crucial importance in this scheme is the quality of the dynamically screened Coulomb potential. For this purpose, we introduce Kielstream, a new high-performance computer code for the computation of three-dimensional plasma wakefields and the resulting electric fields. The optimization techniques used and the handling of competing numerical errors are discussed in detail. Results are presented for the wakefield around a single dust grain as well as multiscale simulations of a correlated ensemble of grains revealing fundamental structural changes when wake effects take charge.

KW - Complex Plasma

KW - Dusty Plasma

KW - Mach Number

KW - Wake Effect

KW - Wake Oscillation

U2 - 10.1007/978-3-319-05437-7_3

DO - 10.1007/978-3-319-05437-7_3

M3 - Chapter

AN - SCOPUS:85153009457

SN - 9783319054360

T3 - Springer Series on Atomic, Optical, and Plasma Physics

SP - 73

EP - 99

BT - Springer Series on Atomic, Optical, and Plasma Physics

PB - Springer

ER -