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Modeling the particle scavenging and thermal efficiencies of a heat absorbing scrubber

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Abstract Haze pollution has been a serious environmental problem in China. This study proposed a heat absorbing scrubber (HAS) which can not only improve the air quality of outdoor building… Click to show full abstract

Abstract Haze pollution has been a serious environmental problem in China. This study proposed a heat absorbing scrubber (HAS) which can not only improve the air quality of outdoor building environment but also absorb energy from the air for space heating through combining with a heat pump system. A particle collection model was developed to calculate the single drop and the overall collection efficiencies with particle diameters ranging from 0.01 to 10 μm. The model was validated by field measurements. The results showed that the overall particle collection efficiency of the HAS reached up to 100% and 83% for PM 10 and PM 2.5 , respectively. Meanwhile, its thermal efficiency reached up to 58%, which indicated that HAS could effectively mitigate haze pollution and achieve a relatively high thermal performance. The impacts of air velocities (0.5, 1.0, 1.5, 2.0 m/s), drop velocities (4, 6, 8, 10 m/s), drop sizes (600, 800, 1000, 1200 μm) on the thermal and particle scavenging performances were discussed in detail. The thermal efficiency and the overall collection efficiency were inversely proportional to the drop diameter. When particle diameter was smaller than 0.7 μm, the thermal efficiency and the overall collection efficiency were also inversely proportional to the initial drop velocity. The results and outcomes of this study are expected to provide a theoretical basis for optimizing the performance of the HAS.

Keywords: absorbing scrubber; drop; heat absorbing; particle; efficiency; collection

Journal Title: Building and Environment
Year Published: 2017

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