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首页> 外文期刊>Aerosol Science and Technology: The Journal of the American Association for Aerosol Research >Absorption/transmission measurements of PSAP particle-laden filters from the Biomass Burning Observation Project (BBOP) field campaign
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Absorption/transmission measurements of PSAP particle-laden filters from the Biomass Burning Observation Project (BBOP) field campaign

机译:从生物质燃烧观察项目(BBOP)现场活动中PSAP粒子叠层过滤器的吸收/传输测量

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摘要

Absorptivity measurements with a laser-heating approach, referred to as the laser-driven thermal reactor (LDTR), were carried out in the infrared and applied at ambient (laboratory) nonreacting conditions to particle-laden filters from a three-wavelength (visible) particle/soot absorption photometer (PSAP). The particles were obtained during the Biomass Burning Observation Project (BBOP) field campaign. The focus of this study was to determine the particle absorption coefficient from field-campaign filter samples using the LDTR approach, and compare results with other commercially available instrumentation (in this case with the PSAP, which has been compared with numerous other optical techniques). Advantages of the LDTR approach include (1) direct estimation of material absorption from temperature measurements (as opposed to resolving the difference between the measured reflection/scattering and transmission), (2) information on the filter optical properties, and (3) identification of the filter material effects on particle absorption (e. g., leading to particle absorption enhancement or shadowing). For measurements carried out under ambient conditions, the particle absorptivity is obtained with a thermocouple placed flush with the filter back surface and the laser probe beam impinging normal to the filter particle-laden surface. Thus, in principle one can employ a simple experimental arrangement to measure simultaneously both the transmissivity and absorptivity (at different discrete wavelengths) and ascertain the particle absorption coefficient. For this investigation, LDTR measurements were carried out with PSAP filters (pairs with both blank and exposed filters) from eight different days during the campaign, having relatively light but different particle loadings. The observed particles coating the filters were found to be carbonaceous (having broadband absorption characteristics). The LDTR absorption coefficient compared well with results from the PSAP. The analysis was also expanded to account for the filter fiber scattering on particle absorption in assessing particle absorption enhancement and shadowing effects. The results indicated that absorption enhancement effects were significant, and diminished with increased filter particle loading.
机译:具有激光加热方法的吸收率测量,称为激光驱动的热反应器(LDTR),在红外线中进行,并在环境(实验室)非反应条件下施加到来自三波长(可见)的粒子升降滤光器颗粒/烟灰吸收光度计(PSAP)。在生物质燃烧观察项目(BBOP)场运动期间获得颗粒。本研究的重点是使用LDTR方法确定从场运动滤波器样本的粒子吸收系数,并将结果与​​其他商业上可获得的仪器(在这种情况下与PSAP进行比较,这与许多其他光学技术进行比较)。 LDTR方法的优点包括(1)直接估计从温度测量的材料吸收(而不是解决测量的反射/散射和传输之间的差异),(2)关于滤光光学性质的信息,以及(3)识别过滤材料对颗粒吸收的影响(例如,导致颗粒吸收增强或阴影)。对于在环境条件下进行的测量,用与过滤器背面齐平的热电偶齐平,激光探针光束撞向过滤器粒子表面的激光探针光束,获得颗粒吸收率。因此,原则上,可以采用简单的实验布置来同时测量透射率和吸收率(以不同的离散波长)并确定颗粒吸收系数。对于该研究,通过在活动期间的八个不同的日期,使用PSAP过滤器(具有空白和暴露过滤器对的对)进行LDTR测量,具有相对较轻但不同的颗粒载荷。发现涂覆过滤器的观察颗粒是碳质(具有宽带吸收特性)。 LDTR吸收系数与PSAP的结果相比。还扩展了分析以考虑滤光纤维散射在评估颗粒吸收增强和遮蔽效果时的粒子吸收。结果表明,吸收增强效应是显着的,并且随着过滤颗粒载荷增加而降低。

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