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Effective Density and Morphology of Particles Emitted from Small-Scale Combustion of Various Wood Fuels

机译:各种木质燃料小规模燃烧排放的颗粒的有效密度和形态

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摘要

The effective density of fine particles emitted from small-scale wood combustion of various fuels were determined with a system consisting of an aerosol particle mass analyzer and a scanning mobility particle sizer (APM-SMPS). A novel sampling chamber was combined to the system to enable measurements of highly fluctuating combustion processes. In addition, mass-mobility exponents (relates mass and mobility size) were determined from the density data to describe the shape of the particles. Particle size, type of fuel, combustion phase, and combustion conditions were found to have an effect on the effective density and the particle shape. For example, steady combustion phase produced agglomerates with effective density of roughly 1 g cm~(-3) for small particles, decreasing to 0.25 g cm~(-3) for 400 nm particles. The effective density was higher for particles emitted from glowing embers phase (ca. 1-2 g cm~(-3)), and a clear size dependency was not observed as the particles were nearly spherical in shape. This study shows that a single value cannot be used for the effective density of particles emitted from wood combustion.
机译:使用由气溶胶颗粒质量分析仪和扫描迁移率粒度仪(APM-SMPS)组成的系统,确定了各种燃料的小规模木材燃烧所排放的细颗粒的有效密度。新型采样室与系统结合使用,可以测量高度波动的燃烧过程。另外,从密度数据确定质量迁移率指数(相对质量和迁移率大小)以描述颗粒的形状。发现颗粒大小,燃料类型,燃烧阶段和燃烧条件对有效密度和颗粒形状有影响。例如,稳定燃烧相产生的团聚体,对于小颗粒,其有效密度约为1 g cm·(-3),对于400 nm颗粒,其有效密度降低至0.25 g cm·(-3)。对于从炽热余烬相发射的颗粒(约1-2 g cm〜(-3)),有效密度更高,并且由于颗粒接近球形,因此未观察到明显的尺寸依赖性。这项研究表明,不能将单个值用于木材燃烧释放的颗粒的有效密度。

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  • 来源
    《Environmental Science & Technology》 |2014年第22期|13298-13306|共9页
  • 作者单位

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland;

    Joint Mass Spectrometry Centre, University of Rostock, 18051 Rostock, Germany,Cooperation Group Comprehensive Molecular Analytics, Helmholtz Zentrum Muenchen, 85764 Neuherberg, Germany,HICE, Helmholtz Virtual Institute of Complex Molecular Systems in Environmental Health-Aerosols and Health, Berlin 10178, Germany;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland;

    University of Eastern Finland, Department of Applied Physics, P.O. Box 1627, FI-70211 Kuopio, Finland;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland,HICE, Helmholtz Virtual Institute of Complex Molecular Systems in Environmental Health-Aerosols and Health, Berlin 10178, Germany;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland;

    University of Eastern Finland, Department of Applied Physics, P.O. Box 1627, FI-70211 Kuopio, Finland;

    Joint Mass Spectrometry Centre, University of Rostock, 18051 Rostock, Germany,Cooperation Group Comprehensive Molecular Analytics, Helmholtz Zentrum Muenchen, 85764 Neuherberg, Germany,HICE, Helmholtz Virtual Institute of Complex Molecular Systems in Environmental Health-Aerosols and Health, Berlin 10178, Germany;

    University of Eastern Finland, Department of Environmental Science, P.O. Box 1627, FI-70211 Kuopio, Finland,VTT Technical Research Centre of Finland, P.O. Box 1000, 02044 VTT, Espoo, Finland,HICE, Helmholtz Virtual Institute of Complex Molecular Systems in Environmental Health-Aerosols and Health, Berlin 10178, Germany;

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