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首页> 外文期刊>Atmospheric Measurement Techniques Discussions >Sizing response of the Ultra-High Sensitivity Aerosol Spectrometer (UHSAS) and Laser Aerosol Spectrometer (LAS) to changes in submicron aerosol composition and refractive index
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Sizing response of the Ultra-High Sensitivity Aerosol Spectrometer (UHSAS) and Laser Aerosol Spectrometer (LAS) to changes in submicron aerosol composition and refractive index

机译:超高敏感气溶胶谱仪(UHSAS)和激光气溶胶光谱仪(LAS)的尺寸抑制亚微米气溶胶组合物和折射率的变化

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We evaluate the sensitivity of the size calibrations of two commercially available, high-resolution optical particle sizers to changes in aerosol composition and complex refractive index (RI). The Droplet Measurement Technologies Ultra-High Sensitivity Aerosol Spectrometer (UHSAS) and the TSI, Inc. Laser Aerosol Spectrometer (LAS) are two commonly used instruments for measuring the portion of the aerosol size distribution with diameters larger than nominally 60–90?nm. Both instruments illuminate particles with a laser and relate the single-particle light scattering intensity and count rate measured over a wide range of angles to the size-dependent particle concentration. While the optical block geometry and flow system are similar for each instrument, a significant difference between the two models is the laser wavelength (1054?nm for the UHSAS and 633?nm for the LAS) and intensity (about 100 times higher for the UHSAS), which may affect the way each instrument sizes non-spherical or absorbing aerosols. Here, we challenge the UHSAS and LAS with laboratory-generated, mobility-size-classified aerosols of known chemical composition to quantify changes in the optical size response relative to that of ammonium sulfate (RI of 1.52+0 i at 532?nm) and NIST-traceable polystyrene latex spheres (PSLs with RI of 1.59+0 i at 589?nm). Aerosol inorganic salt species are chosen to cover the real refractive index range of 1.32 to 1.78, while chosen light-absorbing carbonaceous aerosols include fullerene soot, nigrosine dye, humic acid, and fulvic acid standards. The instrument response is generally in good agreement with the electrical mobility diameter. However, large undersizing deviations are observed for the low-refractive-index fluoride salts and the strongly absorbing nigrosine dye and fullerene soot particles. Polydisperse size distributions for both fresh and aged wildfire smoke aerosols from the recent Fire Influence on Regional to Global Environments Experiment and Air Quality (FIREX-AQ) and the Cloud, Aerosol, and Monsoon Processes Philippines Experiment (CAMP 2 Ex) airborne campaigns show good agreement between both optical sizers and contemporaneous electrical mobility sizing and particle time-of-flight mass spectrometric measurements. We assess the instrument uncertainties by interpolating the laboratory response curves using previously reported RIs and size distributions for multiple aerosol type classifications. These results suggest that, while the optical sizers may underperform for strongly absorbing laboratory compounds and fresh tailpipe emissions measurements, sampling aerosols within the atmospherically relevant range of refractive indices are likely to be sized to better than ± 10?%–20?% uncertainty over the submicron aerosol size range when using instruments calibrated with ammonium sulfate.
机译:我们评估两个可商购的高分辨率的高分辨率光学粒子大计的大小校准的敏感性,以改变气溶胶组合物和复折射率(RI)。液滴测量技术超高灵敏度气溶胶光谱仪(UHSAS)和TSI,Inc。激光气溶胶光谱仪(LAS)是用于测量气溶胶尺寸分布的部分的两个常用仪器,直径大于标称60-90Ω·NM。这两个仪器都照亮了激光的颗粒,并将单粒子光散射强度和计数率相关,并在宽范围内测量到尺寸依赖性颗粒浓度。虽然光块几何和流动系统对于每个仪器相似,但两种型号之间的显着差异是激光波长(用于uhsas的1054〜NM,LAS的633·NM)和强度(对于UHSA而言约为100倍。 ),这可能影响每个仪器尺寸的方式非球形或吸收气溶胶的方式。在这里,我们用实验室产生的uhsas和las挑战已知的化学组合物的实验室产生的,移动式尺寸分类的气溶胶,以量化相对于硫酸铵(Ri为1.52 + 0 i的Ri)的光学尺寸响应的变化和532℃,可追溯的聚苯乙烯乳胶球(PSL,RI为1.59 + 0 i,589℃)。选择气溶胶无机盐物种以覆盖1.32至1.78的真正折射率范围,而选择的光吸收碳质气溶胶包括富勒烯烟灰,硝化荧光染料,腐殖酸和富酸标准。仪器响应通常与电动迁移率直径良好。然而,对于低折射率氟化物盐和强烈吸收的硝化染料染料和富勒烯烟灰颗粒,观察到大的大透明偏差。来自最近火灾的新鲜和老年野火烟雾的多元分布从最近的火灾影响到区域到全球环境实验和空气质量(Firex-AQ)和云,气溶胶和季风流程菲律宾实验(营地2 ex)空中竞选展示良好光学大计和同时电动迁移率施胶和颗粒飞行时间质谱测量的协议。我们通过使用先前报告的RIS和尺寸分布来通过内插实验室响应曲线来评估仪器不确定性,用于多种气溶胶类型分类。这些结果表明,虽然光学升降器可能低于强烈吸收实验室化合物和新鲜的尾管排放量度,但大气相关的折射率范围内的采样气溶胶可能大小优于±10?% - 20?%的不确定性亚微米气溶胶尺寸范围使用用硫酸铵校准仪器。

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