Multi-scale simulation of intense laser plasma interactions
Multi-scale simulation of intense laser plasma interactions
批准号:
EP/G054940/1
负责人:
Tony Arber
金额:
$55.95万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2010
资助国家:
英国
项目状态:
已结题
起止时间:
2010 至 --
中文摘要
通过中央激光设施的工作,英国处于高功率激光等离子体研究的最前沿,该设施在国际审查中一直受到最高赞誉。最近成立的等离子体物理学合作计算项目(CCPP)将其研究工作的很大一部分用于模拟激光-等离子体相互作用,特别是由CLF现有的实验计划以及Vulcan 10 PW项目将其扩展到更高强度的建议所驱动。两项极为重要的新发展是欧洲的激光惯性约束聚变演示器HiPER项目和迅速兴起的激光等离子体在X射线和伽马射线光谱超短脉冲光源应用中的应用。超高功率激光等离子体的实验室应用还包括利用辐射和粒子束进行诊断和治疗的医学应用,其中一些等离子体的极端条件可作为天体物理物体的实验室模拟,计算机代码的可用性对促进等离子体物理学的这些新发展至关重要。这些实验所涉及的物理学通常是非线性的、相对论的,并且跨越许多数量级的尺度长度和时间尺度。为了理解实验并帮助提高性能,计算建模是不可或缺的工具。与这些高度动态的等离子体相关的长度和时间尺度的范围使得很难用单一的数值技术来模拟整个问题。例如,在HiPER聚变靶的情况下,MHD流体模型在压缩阶段是合适的,而随后的加热和燃烧阶段需要详细的动力学建模和粒子在四个数量级的密度范围内的传输。计划用于Vulcan 10 PW激光器的实验将探测电子康普顿长度尺度的量子电动力学(QED)现象,而磁重联的实验室实验可能涉及长达1厘米的长度。仍然没有适用于激光等离子体实验的全部情况的单一方法,但是单元中的粒子方法(PIC)是非常稳健的,立即可用于许多高强度实验,并且具有在短长度尺度上向量子区域扩展以及在长尺度上向流体区域扩展的潜力,使用这些方法,虽然在物理学方面非常不同,在计算要求方面是相似的。这种对等离子体物理新机制的探索需要开发新的软件来包括这种新的物理。这个项目将在几个方向上扩展目前用于等离子体模拟的代码。它们将被优化,以利用最大的计算机,使用国家超级计算设施上的1000个处理器。代码将扩展到包括粒子碰撞在一个新的,快速的方式,使扩展到更长的长度和时间尺度。包括量子电动力学效应将扩大其适用性下降到更短的尺度长度和更强的激光。来自单个电子的辐射,包括相干辐射,将有助于探索有望提供下一代短脉冲光源的新机制。最后,所有这些都将结合到一个单一的计算工具中,使英国等离子体物理学家能够轻松地利用他们所需的工具来了解下一代实验,并为英国计算激光等离子体物理学建立世界领先地位,以补充其在实验激光等离子体科学方面已经建立的声誉。
英文摘要
The UK is at the forefront of high power laser-plasma research through the work of the Central Laser Facility, which has consistently received the highest praise at international review. The recently formed Collaborative Computational Project in plasma physics (CCPP) directs a substantial part of its research effort towards modelling laser-plasma interactions, driven particularly by the existing experimental programme at the CLF and the proposal to extend this to even higher intensities with the Vulcan 10PW project. Two extremely important new developments are the European HiPER project for a laser based inertial confinement fusion demonstrator and the rapidly emerging application of laser-plasmas to light source applications for ultra-short pulses in the X-ray and gamma-ray spectrum. Laboratory applications of ultra-high power laser-plasmas also include medical applications using radiation and particle beams for diagnosis and therapy and the extreme conditions in some of these plasmas serve as laboratory analogues for astrophysical objects.It is vital that computer codes are available to help progress these new developments in plasma physics. The physics accessed by these experiments is often non-linear, relativistic and couples across many orders of magnitude of scale lengths and time scales. To understand the experiments and help improve performance computational modelling is an indispensable tool. The ranges of length and time scales that are relevant to these highly dynamical plasmas make it difficult to model the whole problem with a single numerical technique. For instance, in the case of HiPER fusion targets, MHD fluid models are appropriate during the compression phase, while the ensuing heating and burn phases require detailed kinetic modelling and the transport of particles across a density range of four orders of magnitude. Experiments planned for the Vulcan 10PW laser will probe quantum electrodynamic (QED) phenomena at the scale of the electron Compton length while laboratory experiments on magnetic reconnection may involve lengths up to 1 cm. There is still no single method which is applicable to the entirety of circumstances of laser plasma experiments but the Particle in Cell method (PIC) is remarkably robust, immediately useful for many of the high intensity experiments, and has the potential to be extended at short length scales towards the quantum regime and also at long scales towards the fluid regime using methods which, while very different in terms of physics, are similar in terms of the computational requirements.This exploration of new regimes of plasma physics requires new software to be developed to include this new physics. This project will extend the current codes used for plasma simulations in several directions. They will be optimised to make use of the largest computers, using 1000's of processor on national supercomputing facilities. The codes will be extend to include particle collisions in a novel, and fast, way enabling the extension to longer lengths and time scales. Including QED effects will extend their applicability down to shorter scale lengths and more intense lasers. Radiation from individual electrons, including coherent radiation, will help probe the new regimes expected to deliver the next generation of short pulse light sources. Finally all of this will be combined into a single computational tool allowing UK plasma physicists to easily exploit the tools they need to understand the next generation of experiments and establish a world leading role for UK computational laser plasma physics to compliment it's already established reputation in experimental laser plasma science.
期刊论文(9)
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DOI:
10.1063/5.0097585
发表时间:
2022-09
期刊:
Matter and Radiation at Extremes
影响因子:
5.1
作者:
[E. F. J. Bacon;M. King;R. Wilson;T. P. Frazer;R. Gray;P. McKenna]
通讯作者:
E. F. J. Bacon;M. King;R. Wilson;T. P. Frazer;R. Gray;P. McKenna
DOI:
10.1017/s0022377815000434
发表时间:
2015-08-01
期刊:
JOURNAL OF PLASMA PHYSICS
影响因子:
2.5
作者:
[Arefiev, A. V., Robinson, A. P. L., Khudik, V. N.]
通讯作者:
Khudik, V. N.
Temporal resolution criterion for correctly simulating relativistic electron motion in a high-intensity laser field
正确模拟高强度激光场中相对论性电子运动的时间分辨率标准
DOI:
10.48550/arxiv.1410.8491
发表时间:
2014
期刊:
影响因子:
--
作者:
[Arefiev A]
通讯作者:
Arefiev A
DOI:
10.1063/1.4946024
发表时间:
2016-05-01
期刊:
PHYSICS OF PLASMAS
影响因子:
2.2
作者:
[Arefiev, A. V., Khudik, V. N., Schollmeier, M.]
通讯作者:
Schollmeier, M.
DOI:
10.1088/1361-6587/aaf596
发表时间:
2019-03-01
期刊:
PLASMA PHYSICS AND CONTROLLED FUSION
影响因子:
2.2
作者:
[Armstrong, C. D., Brenner, C. M., Neely, D.]
通讯作者:
Neely, D.
EPOC++ a future-proofed kinetic simulation code for plasma physics at exascale
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-
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-
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-
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Plasma Physics HEC Consortium
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依托单位:
Plasma kinetics, pre-heat, and the emergence of strong shocks in laser fusion
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The Plasma-CCP Network
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项目类别:Research Grant
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财政年份:2015
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CCP Flagship: A radiation-hydrodynamics code for the UK laser-plasma community
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批准号:EP/M011534/1
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资助金额:$37.97万
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财政年份:2015
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负责人:Tony Arber
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依托单位:
Plasma Physics HEC Consortia
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批准号:EP/L000237/1
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项目类别:Research Grant
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资助金额:$35.58万
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财政年份:2013
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A Radiation-Hydrodynamic ALE Code for Laser Fusion Energy
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资助金额:$32.51万
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依托单位:
The CCPP Network in Computational Plasma Physics
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批准号:EP/G066752/1
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项目类别:Research Grant
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资助金额:$10.72万
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财政年份:2010
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依托单位:
Parallel Computing Resources for the UK MHD Community
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批准号:ST/H008810/1
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项目类别:Research Grant
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资助金额:$110.5万
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财政年份:2009
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负责人:Tony Arber
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依托单位:
国内基金
海外基金
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