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Tensioned metastable fluids and nanoscale interactions with external stimuli - Theoretical-cum-experimental assessments and nuclear engineering applications

机译:张应力的亚稳态流体和与外部刺激的纳米级相互作用-理论和实验评估以及核工程应用

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摘要

The field of tensioned (sub-zero pressure) metastability of organic and inorganic fluids and their responses to external stimuli is under study at Purdue University. Unique properties related to energy storage and sub-nano scale response to external stimuli have been found that give rise to the capability for causing localized supercritical states leading to fluid boiling by visible light photons and other fundamental particles over eight orders of magnitude in the energy range (i.e., from the sub -eV to MeV range). A theoretical model is developed for predicting limits of tension metastability and validated against experimental data. Resonant acoustics and centrifugal force-based systems are described for attaining as-desired tension metastable states along with triggering mechanisms for nano-to-macroscale energy storage-cum-release. Finite-element modeling and simulation framework for design of such systems with experimental benchmarking are described. Technological impacts on diverse fields such as nuclear material detection, physics-based spectroscopy, monitoring of power levels in nuclear systems, general cavitation physics of fluids, acoustically driven thermonuclear fusion, and super compression states attainment are discussed.
机译:普渡大学正在研究有机和无机流体的张紧(零压力以下)亚稳态及其对外部刺激的响应。已发现与能量存储和亚纳米尺度对外部刺激的响应有关的独特属性,具有引起局部超临界状态的能力,从而导致可见光光子和其他基本粒子在能量范围内超过八个数量级的沸腾(即,从sub -eV到MeV范围)。建立了用于预测张力亚稳极限的理论模型,并针对实验数据进行了验证。描述了基于共振和离心力的系统,用于获得所需的张力亚稳态,以及用于纳米级到超大规模能量存储和释放的触发机制。描述了用于设计具有实验基准的系统的有限元建模和仿真框架。讨论了对各种领域的技术影响,例如核材料检测,基于物理的光谱学,监视核系统中的功率水平,流体的一般空化物理学,声驱动热核聚变以及超压缩状态的获得。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2008年第7期|p.1820-1827|共8页
  • 作者单位

    Purdue University, W. Lafayette, IN 47907-1290, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 原子能技术;
  • 关键词

  • 入库时间 2022-08-18 00:45:40

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