Koehler Kirsten A, Anthony T Renee, van Dyke Michael, Volckens John
Department of Environmental and Radiological Health Sciences, Colorado State University, Fort Collins, 80523-1681, USA.
Ann Occup Hyg. 2011 Jan;55(1):86-96. doi: 10.1093/annhyg/meq078. Epub 2010 Nov 22.
A rotating bluff-body disc (RBD) was developed to reduce spatiotemporal variability associated with sampling supermicron aerosol in low-velocity wind tunnels. The RBD is designed to rotate eight personal aerosol samplers around a circular path in a forward-facing plane aligned with the wind tunnel cross section. Rotation of the RBD allows each sampler to traverse an identical path about the wind tunnel cross section, which reduces the effects of spatial heterogeneity associated with dispersing supermicron aerosol in low-velocity wind tunnels. Samplers are positioned on the face of the RBD via sampling ports, which connect to an air manifold on the back of the disc. Flow through each sampler was controlled with a critical orifice or needle valve, allowing air to be drawn through the manifold with a single pump. A metal tube, attached to this manifold, serves as both the axis of rotation and the flow conduction path (between the samplers and the vacuum source). Validation of the RBD was performed with isokinetic samplers and 37-mm cassettes. For facing-the-wind tests, the rotation of the RBD significantly decreased intra-sampler variability when challenged with particle diameters from 1 to 100 μm. The RBD was then employed to determine the aspiration efficiency of Institute of Occupational Medicine (IOM) personal samplers under a facing-the-wind condition. Operation of IOM samplers on the RBD reduced the between-sampler variability for all particle sizes tested.
为减少与在低速风洞中采集超微米气溶胶样本相关的时空变异性,研发了一种旋转钝体盘(RBD)。RBD的设计是让八个个人气溶胶采样器围绕与风洞横截面平行的前向平面内的圆形路径旋转。RBD的旋转使每个采样器能够在风洞横截面上遍历相同的路径,这减少了与低速风洞中超微米气溶胶扩散相关的空间异质性的影响。采样器通过采样端口定位在RBD的表面,采样端口连接到盘背面的空气歧管。通过临界孔板或针阀控制每个采样器的气流,从而能用单个泵通过歧管抽取空气。连接到该歧管的金属管既作为旋转轴,又作为(采样器与真空源之间的)气流传导路径。使用等速采样器和37毫米盒式采样器对RBD进行了验证。对于迎风测试,当受到直径为1至100微米的颗粒挑战时,RBD的旋转显著降低了采样器内部的变异性。然后使用RBD来确定职业医学研究所(IOM)个人采样器在迎风条件下的抽吸效率。在RBD上操作IOM采样器降低了所有测试粒径下采样器之间的变异性。