太阳CNO反应替代物中多离子物理和动力学效应的观测

IF 1.6 3区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS
J. Jeet , A.B. Zylstra , M. Gatu Johnson , N.V. Kabadi , P. Adrian , C. Forrest , V. Glebov
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引用次数: 0

摘要

“CNO过程”发生在金属丰度有限的较重恒星中,其中氢的燃烧在12C的存在下被催化。这些反应比pp循环反应更强烈地依赖于温度,因此CNO循环仅在大质量恒星中占主导地位。要在欧米茄等ICF设施中研究这些类型的反应,需要在燃料中使用较重的原子核并能够产生至少20 keV的离子温度的内爆平台。达到这些条件的一个潜在途径是利用低收敛冲击驱动的“爆炸推手”内爆的动力学效应。在这个实验中,在OMEGA激光设备上使用替代反应13C + d进行射击,其横截面大大高于实际的天体物理CNO反应。这些内爆反应的产率远低于预期。讨论了物理解释,认为重要的物种分层是可能的解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Observations of multi-ion physics and kinetic effects in a surrogate to the solar CNO reactions

The ‘CNO process’ occurs in heavier stars with finite metallicity in which hydrogen burning is catalyzed in the presence of 12C. These reactions are more strongly dependent on temperature than the pp cycle reactions, and thus the CNO cycle dominates only in massive stars. For these types of reactions to be studied at ICF facilities such as OMEGA, an implosion platform using heavier nuclei in the fuel and capable of creating ion temperatures on the order of at least 20 keV is required. A potential route to reach these conditions is to take advantage of kinetic effects in low-convergence shock-driven ‘exploding pusher’ implosions. In this experiment, shots were conducted at the OMEGA laser facility using the surrogate reaction 13C + D. Its cross section is substantially higher than the actual astrophysical CNO reactions. The yield of this reaction in these implosions was much lower than expected. Physical explanations are discussed, with significant species stratification the likely explanation.

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来源期刊
High Energy Density Physics
High Energy Density Physics PHYSICS, FLUIDS & PLASMAS-
CiteScore
4.20
自引率
6.20%
发文量
13
审稿时长
6-12 weeks
期刊介绍: High Energy Density Physics is an international journal covering original experimental and related theoretical work studying the physics of matter and radiation under extreme conditions. ''High energy density'' is understood to be an energy density exceeding about 1011 J/m3. The editors and the publisher are committed to provide this fast-growing community with a dedicated high quality channel to distribute their original findings. Papers suitable for publication in this journal cover topics in both the warm and hot dense matter regimes, such as laboratory studies relevant to non-LTE kinetics at extreme conditions, planetary interiors, astrophysical phenomena, inertial fusion and includes studies of, for example, material properties and both stable and unstable hydrodynamics. Developments in associated theoretical areas, for example the modelling of strongly coupled, partially degenerate and relativistic plasmas, are also covered.
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