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首页> 外文期刊>The European physical journal, D. Atomic, molecular, and optical physics >Particle accelerator physics and technology for high energy density physics research
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Particle accelerator physics and technology for high energy density physics research

机译:粒子加速器物理及技术,用于高能量密度物理研究

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摘要

Interaction phenomena of intense ion- and laser radiation with matter have a large range of application in different fields of science, extending from basic research of plasma properties to applications in energy science, especially in inertial fusion. The heavy ion synchrotron at GSI now routinely delivers intense uranium beams that deposit about 1 kJ/g of specific energy in solid matter, e.g. solid lead. Our simulations show that the new accelerator complex FAIR (Facility for Antiproton and Ion Research) at GSI as well as beams from the CERN large hadron collider (LHC) will vastly extend the accessible parameter range for high energy density states. A natural example of hot dense plasma is provided by our neighbouring star the sun, and allows a deep insight into the physics of fusion, the properties of matter at high energy density, and is moreover an excellent laboratory for astroparticle physics. As such the sun’s interior plasma can even be used to probe the existence of novel particles and dark matter candidates. We present an overview on recent results and developments of dense plasma physics addressed with heavy ion and laser beams combined with accelerator- and nuclear physics technology.
机译:强烈的离子和激光辐射与物质的相互作用现象在不同的​​科学领域中都有广泛的应用,从等离子特性的基础研究扩展到能源科学中的应用,尤其是在惯性融合中。现在,GSI的重离子同步加速器通常会发出强烈的铀束,这些束会在固体物质(例如固体)中沉积约1 kJ / g的比能。固体铅。我们的模拟表明,GSI处的新型加速器复合体FAIR(用于反质子和离子研究的设施)以及CERN大型强子对撞机(LHC)的光束将极大地扩展高能量密度状态的可访问参数范围。我们的邻近恒星太阳提供了一个热致密等离子体的自然例子,它使人们能够深入了解聚变物理学,高能量密度下的物质特性,而且它还是天体物理学的极好实验室。因此,太阳的内部等离子体甚至可以用来探测新型粒子和暗物质候选物的存在。我们概述了重离子和激光束结合加速器和核物理技术解决的稠密等离子体物理的最新结果和发展。

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