Helium as a Surrogate for Deuterium in LPI Studies

IF 1.1 4区 物理与天体物理 Q4 PHYSICS, APPLIED
M. Geissel, A. Harvey-Thompson, M. Weis, Jefrey R. Fein, D. Ampleford, D. Bliss, Aaron M. Hansen, C. Jennings, M. Kimmel, P. Rambo, J. Shores, I. Smith, S. Speas, J. Porter
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Abstract

Helium or neopentane can be used as surrogate gas fill for deuterium (D2) or deuterium-tritium (DT) in laser-plasma interaction studies. Surrogates are convenient to avoid flammability hazards or the integration of cryogenics in an experiment. To test the degree of equivalency between deuterium and helium, experiments were conducted in the Pecos target chamber at Sandia National Laboratories. Observables such as laser propagation and signatures of laser-plasma instabilities (LPI) were recorded for multiple laser and target configurations. It was found that some observables can differ significantly despite the apparent similarity of the gases with respect to molecular charge and weight. While a qualitative behaviour of the interaction may very well be studied by finding a suitable compromise of laser absorption, electron density, and LPI cross sections, a quantitative investigation of expected values for deuterium fills at high laser intensities is not likely to succeed with surrogate gases.
氦代替氘在LPI研究中的应用
在激光等离子体相互作用研究中,氦或新戊烷可以用作氘(D2)或氘-氚(DT)的替代气体填充。替代物可以方便地避免可燃性危害或在实验中集成低温。为了测试氘和氦之间的等效程度,实验在桑迪亚国家实验室的佩科斯靶室进行。记录了多种激光和目标配置下的激光传输和激光等离子体不稳定性(LPI)特征。结果发现,尽管两种气体在分子电荷和分子量方面有明显的相似性,但某些观测值却有很大的不同。虽然通过寻找激光吸收、电子密度和LPI横截面的适当折衷,可以很好地研究相互作用的定性行为,但用替代气体对高激光强度下氘填充的期望值进行定量研究不太可能成功。
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来源期刊
Laser and Particle Beams
Laser and Particle Beams PHYSICS, APPLIED-
CiteScore
1.90
自引率
11.10%
发文量
25
审稿时长
1 months
期刊介绍: Laser and Particle Beams is an international journal which deals with basic physics issues of intense laser and particle beams, and the interaction of these beams with matter. Research on pulse power technology associated with beam generation is also of strong interest. Subjects covered include the physics of high energy densities; non-LTE phenomena; hot dense matter and related atomic, plasma and hydrodynamic physics and astrophysics; intense sources of coherent radiation; high current particle accelerators; beam-wave interaction; and pulsed power technology.
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