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MRI: Development of the PHAse Space MeAsurements (PHASMA) Experiment

MRI: Development of the PHAse Space MeAsurements (PHASMA) Experiment
MRI:PHAse 空间测量 (PHASMA) 实验的发展
批准号:
1827325
负责人:
EARL SCIME
金额:
$34.3万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-08-15 至 2020-07-31

项目摘要

项目成果

EARL SCIME的其他基金

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中文摘要
翻译
在了解外层空间自然现象方面的挑战之一是,在整个感兴趣区域进行科学测量是多么困难。另一个挑战是,大自然很少仁慈到一次又一次地产生完全相同的事件,因此科学家可以区分测量中的随机波动和感兴趣的现象导致的波动。特别令人感兴趣的空间现象是那些在地球周围空间环境中发挥重要作用并可能影响空间人类基础设施的现象,例如,人造卫星、载人航天器等等,和地球上的技术系统,例如,电网、全球定位系统(GPS)和长距离无线电通信。该项目涉及建造一个实验室设施,能够产生类似于空间中发生的等离子现象。等离子体是一种高温气体,电子会从原子中剥离出来。由此产生的带电粒子集合对电场和磁场都有反应,就像太空中的等离子体一样。这个特殊的设施将研究等离子体中的离子和电子如何在磁场湮灭时被加热和加速,当等离子体是湍流时,或者当等离子体移动速度超过音速时。该设施将吸引西弗吉尼亚州的等离子物理研究人员组成的联盟。这项工作的更广泛影响还将包括在一种研究环境中对研究生和本科生进行培训,这种研究环境将实验和理论等离子体物理学协同结合起来,并通过参与尖端研究活动吸引高素质的本科生进入物理学。目前,世界上还没有直接测量等离子体体积中三维离子和电子分布函数的空间相关实验。根据该奖项开发的仪器称为PHAse空间测量(PHASMA)实验,具有用于离子测量的激光诱导荧光诊断,用于电子速度分布函数测量的汤姆逊散射诊断以及用于湍流测量的微波散射系统。航天器测量已经发展到速度分布函数测量导致对广泛的空间等离子体现象的范式变化的见解。在实验室中直接测量速度分布函数的能力将补充和增强在空间中进行的直接测量的价值。PHASMA实验将使磁重联、无碰撞冲击和等离子体湍流中的粒子加速和等离子体加热的研究成为可能。该实验设施研究团队包括在粒子诊断测量和动力学建模方面具有独特优势的成员-使该团队非常适合研究这些主题。该奖项反映了NSF的法定使命,并被认为值得通过使用基金会的智力价值和更广泛的影响审查标准进行评估来支持。
英文摘要
One of the challenges in understanding naturally occurring phenomena in outer space is how difficult it is to perform scientific measurements throughout the region of interest. Another challenge is that nature is rarely kind enough to produce the exact same event over and over again so that scientists can distinguish random fluctuations in their measurements from those that result from the phenomena of interest. The phenomena in space of particular interest are those that play important roles in the space environment around the Earth and which can impact human infrastructure in space, e.g., satellites, manned space vehicles, etc., and technological systems on Earth, e.g., power grids, global positioning systems (GPS), and long distance radio communication. This project involves the construction of a laboratory facility capable of producing plasma phenomena like those that occur in space. Plasmas are gasses so hot that the electrons are stripped away from their atoms. The resulting collection of charged particles responds to both electric and magnetic fields, just like plasmas in space. This particular facility will investigate how the ions and electrons in plasmas are heated and accelerated when magnetic fields annihilate, when the plasma is turbulent, or when the plasma moves faster than the speed of sound. The facility will engage a consortium of plasma physics researchers throughout West Virginia. The broader impacts of this work will also include the training of graduate and undergraduate students in a research environment that synergistically combines experimental and theoretical plasma physics and attracts high quality undergraduates into physics through involvement in cutting-edge research activities.While there is a strong synergy between laboratory experiments and other approaches to studying space physics, there are currently no space-relevant experiments in the world making direct measurements of three-dimensional ion and electron distribution functions in a plasma volume. The instrument to be developed under this award, called the PHAse Space MeAsurements (PHASMA) experiment, features laser induced fluorescence diagnostics for ion measurements, Thomson scattering diagnostics for electron velocity distribution function measurements, and a microwave scattering system for turbulence measurements. Spacecraft measurements have advanced to the point where velocity distribution function measurements are leading to paradigm-changing insights about a broad spectrum of space plasma phenomena. The ability to directly measure velocity distribution functions in the lab will complement and enhance the value of the direct measurements made in space. The PHASMA experiment will enable studies of particle acceleration and plasma heating in magnetic reconnection, collisionless shocks, and plasma turbulence. The experimental facility research team includes members with unique strengths in particle diagnostic measurements and expertise in kinetic modeling -- making the team ideally suited to investigate these topics.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1016/j.jqsrt.2021.107960
发表时间: 2022
期刊: Journal of Quantitative Spectroscopy and Radiative Transfer
影响因子: 2.3
作者: [Lazo, M.J., Steinberger, T.E., Good, T.N., Scime, E.E.]
通讯作者: Scime, E.E.
Alfvénic modes excited by the kink instability in PHASMA
由 PHASMA 中的扭结不稳定性激发的 Alfvénic 模式
DOI: 10.1063/5.0041617
发表时间: 2021
期刊: Physics of Plasmas
影响因子: 2.2
作者: [Shi, Peiyun, Srivastav, Prabhakar, Beatty, Cuyler, John, Regis, Lazo, Matthew, McKee, John, McLaughlin, Jacob, Moran, Michael, Paul, Mitchell, Scime, Earl E.]
通讯作者: Scime, Earl E.
Phase Space Studies of Ion Energization in Laboratory Plasmas
Student Support for the 2017 Gaseous Electronics Conference
GOALI: Optimization of Ion Beam Extraction - Enabling Technology for Advanced Semiconductor Fabrication
Experimental Investigation of Spontaneous Double Layers in Expanding Plasmas
国内基金
海外基金
水稻边界发育缺陷突变体abnormal boundary development(abd)的基因克隆与功能分析
Development of a Linear Stochastic Model for Wind Field Reconstruction from Limited Measurement Data
  • 批准号:
    --
  • 项目类别:
    --
  • 资助金额:
    40万元
  • 批准年份:
    2020
  • 负责人:
    Vikrant Gupta
  • 依托单位: