标题: 个人奈米采样器的设计及验证
Design and validation of a personal nanoparticle sampler
作者: 洪绍铭
Hung, Shao-Ming
蔡春进
Tsai, Chuen-Jinn
环境工程系所
关键字: 奈米微粒;个人奈米采样器;可呼吸性旋风器;多微孔冲击器;nanoparticles;personal nanoparticle sampler;micro-orifice impactor;respirable cyclone
公开日期: 2010
摘要: 奈米物质具有独特的物化特性而被广泛的应用在不同领域,其产量持续地成长当中,人们也因此开始关注暴露在奈米微粒中对健康所造成的潜在影响。由于奈米物质具有粒径小和表面积大的特性,许多研究均显示奈米物质相较于相同化学成分的块材物质对生物有较大的影响。2005年NIOSH建议劳工在每日工作8小时、一周工作40小时的情况下,TiO2细微粒及超细微粒的暴露时量平均浓度应分别小于1.5 mg/m3和0.1 mg/m3。然而目前市面上尚未有合适的采样器可供个人奈米微粒的暴露评估。因此本研究主要目的为研发了一组可用于作业场所采集奈米微粒的个人采样器。
本采样器(IOSH-NCTU PNS)重250 g、高105 cm、直径6.3 cm,包含一个旋风器和一个微孔冲击器,分别用来分离可呼吸性微粒(respirable particulate matter , RPM)及奈米微粒(NPs),且在2.0 L/min的操作流量下,产生的压损为125 cm H2O。此微孔冲击器(含137个直径55 μm喷嘴)具有一个可旋转且涂敷矽油的铝箔冲击基质的冲击板,使微粒可均匀分布在冲击基质上并降低微粒弹跳的发生。最后在冲击器下方设置有一片用来采集奈米微粒的终端滤纸。
本研究先于实验室利用液体和固体微粒进行本采样器的微粒收集效率曲线校正,再进行微粒负载测试,之后与微孔均匀沉积冲击器(MOUDI) 进行实验室内比对以验证本采样器校正曲线的准确性。
校正结果显示当S/W为13.8,旋风器和微孔冲击器的截取气动直径分别为3.98±0.1 μm和101.4±0.1 nm。而S/W由3.13增加至16.2,微孔冲击器的截取直径会由72.5 nm上升至111 nm。由微粒负荷测试结果可知,本采样器在高微粒浓度负荷下压损几乎不会改变且微粒最大负荷量为0.65 mg。此外实验室比对测试的结果显示本采样器采集的的RPM及NPs浓度和MOUDI均十分接近。因此,本研究设计的采样器已可用于评估作业人员RPM及NPs的暴露量。
Production of nano-materials has increased continuously because of their unique physicochemical characteristics and extensive applications. There is a great concern for the potential health effects due to exposure to nanoparticles. Because of small size and large surface area, many studies have shown that the biological effects of nano-materials are greater than bulk materials of the same chemical composition. In 2005, the NIOSH recommended the exposure limits of 1.5 mg/m3 for fine TiO2 and 0.1 mg/m3 for ultrafine TiO2, in terms of time-weighted average concentrations (TWA) for up to 8 hr/day during a 40-hour work. However, there are no active personal sampling devices to assess the exposure levels of workers to engineered nanoparticles (NPs).
To meet the demand, a novel IOSH-NCTU personal nanoparticle sampler (IOSH-NCTU PNS) was designed and tested. The PNS operates at 2 L/min with a pressure drop of 125 cm H2O by a SKC XR 5000 pump. The PNS consists of a respirable cyclone and a micro-orifice impactor (with 137, 55 μm in diameter nozzles) in series for classifying respirable particulate matter (RPM) and NPs, respectively. The impactor plate is rotated by a stepper motor to deposit particles uniformly on the substrate. A final filter is used to collect NPs. The sampler is light weighted (250 g) and compact (H-10.5 cm, D- 6.3 cm).
Both liquid and solid particles were used to calibrate the sampler for the collection efficiency. The effect of heavy particle mass loading on performance of the PNS was evaluated. For assessing its accuracy, the measured RPM and NPs concentrations by the PNS were compared with those of a collocated MOUDI.
Calibration results show that the cutoff aerodynamic diameter (dpa50) of the respirable cyclone and the micro-orifice impactor is 3.98±0.1 μm and 101.4±0.1 nm, respectively, with the S/W of 13.8. A decreasing S/W from 16.2 to 3.13 in the micro-orifice impactor results in a decreased dpa50 from 111 to 72.5 nm. The particle loading tests reveals that the PNS has a maximum loading of 0.65 mg with a less than 5 % shift of dpa50 and a negligible solid particle bounce. The change in the pressure drop was less than 5 cm H2O after heavy particle loading, and the RPM and NPs concentrations agreed well with those of the MOUDI. Therefore, the present IOSH-NCTU PNS sampler is capable of assessing personal exposure levels of RPM and NPs in workplaces.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT079719513
http://hdl.handle.net/11536/44962
显示于类别:Thesis


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