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金属网帽沉积传感器:一种新颖的被动工具,用于估算室内环境中氡钍系产物的粗颗粒通量。

Wire-mesh capped deposition sensors: novel passive tool for coarse fraction flux estimation of radon thoron progeny in indoor environments.

机构信息

Radiological Physics and Advisory Division, Bhabha Atomic Research Centre, Mumbai 85, India.

出版信息

Sci Total Environ. 2010 Dec 15;409(2):378-83. doi: 10.1016/j.scitotenv.2010.10.007. Epub 2010 Oct 30.

Abstract

Deposition-based (222)Rn and (220)Rn progeny sensors act as unique, passive tools for determining the long time-averaged progeny deposition fluxes in the environment. The use of these deposition sensors as progeny concentration monitors was demonstrated in typical indoor environments as conceptually superior alternatives to gas-based indirect monitoring methods. In the present work, the dependency of these deposition monitors on various environmental parameters is minimized by capping the deposition sensor with a suitable wire mesh. These wire-mesh capped deposition sensors measure the coarse fraction deposition flux, which is less dependent on the change in environmental parameters like ventilation rate and turbulence. The calibration of these wire-mesh capped coarse fraction progeny sensors was carried out by laboratory controlled experiments. These sensors were deployed both in indoor and in occupational environments having widely different ventilation rates. The obtained coarse fraction deposition velocities were fairly constant in these environments, which further confirmed that the signal on the wire-mesh capped sensors show the least dependency on the change in environmental parameters. This technique has the potential to serve as a passive particle sizer in the general context of nanoparticles using progeny species as surrogates. On the whole, there exists a strong case for developing a passive system that responds only to coarse fraction for providing alternative tools for dosimetry and environmental fine particle research.

摘要

基于沉积的(222)Rn 和(220)Rn 子体传感器是用于确定环境中长期平均子体沉积通量的独特、被动工具。这些沉积传感器作为子体浓度监测器在典型的室内环境中得到了应用,被证明是优于基于气体的间接监测方法的概念性替代方案。在本工作中,通过用合适的金属丝网覆盖沉积传感器,最小化了这些沉积监测器对各种环境参数的依赖性。这些带有金属丝网的沉积传感器测量粗颗粒沉积通量,其对通风率和湍流等环境参数变化的依赖性较小。通过实验室控制实验对这些带有金属丝网的粗颗粒子体传感器进行了校准。这些传感器在通风率差异很大的室内和职业环境中进行了部署。在这些环境中,获得的粗颗粒沉积速度相当稳定,这进一步证实了金属丝网覆盖传感器上的信号对环境参数变化的依赖性最小。这项技术有可能成为一般纳米颗粒情况下使用子体作为替代物的被动粒子计数器。总的来说,开发一种仅对粗颗粒做出响应的被动系统是很有必要的,这为剂量学和环境细颗粒研究提供了替代工具。

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