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Low Radon Cleanroom for Underground Laboratories

机译:地下实验室的低氡洁净室

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Aim of a low radon cleanroom technology is to minimize at the same time radon, radon decay products concentration and aerosol concentration and to minimize deposition of radon decay products on the surfaces. The technology placed in a deep underground laboratory such as LSM Modane with suppressed muon flux and shielded against external gamma radiation and neutrons provides “Zero dose” space for basic research in radiobiology (validity of the LNT hypothesis for very low doses) and for the fabrication of nanoelectronic circuits to avoid undesirable “single event effects.” Two prototypes of a low radon cleanroom were built with the aim to achieve radon concentration lower than 100 mBq·m 3 in an interior space where only radon-free air is delivered into the cleanroom technology from a radon trapping facility. The first prototype, built in the laboratory of SúRO Prague, is equipped with a standard filter-ventilation system on the top of the cleanroom with improved leakproofness. In an experiment, radon concentration of some 50 mBq·m ?3 was achieved with the filter-ventilation system switched out. However, it was not possible to seal the system of pipes and fans against negative-pressure air leakage into the cleanroom during a high volume ventilation with the rate of 3,500 m 3 ·h ?1 . From that reason more sophisticated second prototype of the cleanroom designed in the LSM Modane uses the filter-ventilation system which is completely covered in a further improved leakproof sealed metal box placed on the top of the cleanroom. Preliminary experiments carried out in the SúRO cleanroom with a high radon activity injection and intensive filter-ventilation (corresponding to room filtration rate every 13 s) showed extremely low radon decay products equilibrium factor of 0.002, the majority of activity being in the form of an “unattached fraction” (nanoparticles) of 218 Po and a surface deposition rate of some 0.05 mBq·m ?2 ·s ?1 per Bq·m ?3 . Radon exhalation from persons may affect the radon concentration in a low radon interior space. Balance and time course of the radon exhalation from the human body is therefore discussed for persons that are about to enter the cleanroom.
机译:低氡洁净技术的目的是在同一时间氡,氡衰变产物浓度和气溶胶浓度,以尽量减少并最小化的表面上的氡衰变产物沉积。放置在深地下实验室如LSM Modane抑制了μ介子通量和抵抗外部伽马辐射和中子屏蔽的技术提供“零剂量”用于基础研究在放射生物学空间(LNT假说非常低剂量的有效性)和用于制造纳米电子电路,以避免不期望的“单粒子效应”。低氡洁净室的两个原型,目的建实现氡浓度低于100个MBQ·m 3的在仅 - 自由氡空气被输送到清洁室技术从氡捕获设施的内部空间。第一个原型,建于首露布拉格的实验室,配备了具有改进密封性洁净室的顶部的标准过滤器的通风系统。在实验中,大约50个MBQ·米-3中的氡浓度与过滤器通风系统来实现切换出。然而,这是不可能的,以密封3500米3·H?1的速度高体积通风管道期间和风扇针对负压空气泄漏到清洁室的系统。从这个原因在LSM Modane设计洁净室的更复杂的第二原型使用了过滤器的通风系统,该系统被完全覆盖在放置于洁净室的顶部上的进一步改善的防漏密封的金属盒。初步实验在SURO洁净室具有高氡活性喷射和密集的过滤器的通风下进行(相当于室温过滤速率为每13个或多个)显示极低的氡衰变产物的平衡的0.002因子,在一个形式存在的大多数活性“独立的分数” 218宝(纳米粒子)和一些0.05活度的表面沉积速率·米?2·s的α1每贝·米?3。从人氡析出可能会影响在低氡内部空间的氡浓度。因此,从人体的氡析出的平衡和时间进程被认为是即将进入洁净室的人员进行讨论。

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