Beyond He-3 nuclear sensors — TMFDs for real-time SNM monitoring with directionality

J. Webster, T. Grimes, B. Archambault, K. Fischer, N. Kostry, A. Lentner, J. Lapinskas, R. Taleyarkhan
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引用次数: 3

Abstract

Due to He-3 shortages as well as other fundamental limitations of 60-y nuclear power technology being adapted for present-day sensor needs, transformational nuclear particle sensor system developments have sponsored by DARPA, DoE, DHS and NSF. These systems dispense with need for conventional He-3, liquid scintillation or solid-state devices. The novel systems detect a variety of radiation types via interactions with ordinary fluids such as water and acetone placed under metastable states of tensioned (yes, sub-zero or below-vacuum) liquid pressures at room temperature. Advancements have resulted which: enable directionality information in 30s to within 10 degrees of a weapons of mass destruction (WMD) neutron source at 25m (80ft); offer over 90% intrinsic efficiency; offer the ability to decipher multiplicity of neutron emission characteristic of spontaneous and induced fission from fissile isotopes; and, enable one to detect WMD-shielded neutrons in the 0.01 eV range, to unshielded neutrons in the 1–10 MeV range, coupled with the ability to detect alpha emitting special nuclear material (SNM) signatures to within 1–5 keV in energy resolution, and detection sensitivities to ultra-trace levels (i.e., to femto-grams per cc of SNMs such as Pu, and Am). The novel tension metastable fluid detector (TMFD) systems are robust, and are presently built in the laboratory with material costs in the ∼$50+ range — with inherent gamma blindness capability. A multi-physics design framework (including nuclear particle transport, acoustics, structural dynamics, fluid-heat transfer, and electro-magnetics), has also been developed, and validated. Comparison against He-3 technology is presented along with adaptation to variety of scenarios ranging from border crossings, to spent nuclear reprocessing plants to portals and moving platforms.
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超越He-3核传感器-用于实时定向SNM监测的tmfd
由于氦-3的短缺以及60 y核电技术适应当今传感器需求的其他基本限制,转型核粒子传感器系统的开发得到了DARPA、DoE、DHS和NSF的资助。这些系统不需要传统的He-3、液体闪烁或固态器件。这种新型系统通过与普通流体(如水和丙酮)的相互作用来检测各种类型的辐射,这些流体置于室温下的亚稳态拉伸(是的,低于零或低于真空)液体压力下。所取得的进展包括:在25米(80英尺)高度的大规模杀伤性武器(WMD)中子源上获得30至10度范围内的方向性信息;提供90%以上的内在效率;提供从裂变同位素中破译自发和诱导裂变的多重中子发射特征的能力;并且,使人们能够检测到0.01 eV范围内的大规模杀伤性武器屏蔽中子,到1-10 MeV范围内的非屏蔽中子,再加上能够检测到能量分辨率在1-5 keV以内的α发射特殊核材料(SNM)特征,以及超痕量水平的检测灵敏度(即,到飞克/毫升的SNM,如Pu和Am)。新型的张力亚稳流体探测器(TMFD)系统非常强大,目前在实验室中构建,材料成本在50美元以上,具有固有的伽马盲性能力。多物理场设计框架(包括核粒子输运、声学、结构动力学、流体传热和电磁学)也得到了开发和验证。与He-3技术的比较以及对各种场景的适应,从边境过境,到废核后处理工厂,再到门户和移动平台。
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