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首页> 外文期刊>Chemical engineering journal >Coupling the Six Flux Absorption-Scattering Model to the Henyey-Greenstein scattering phase function: Evaluation and optimization of radiation absorption in solar heterogeneous photoreactors
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Coupling the Six Flux Absorption-Scattering Model to the Henyey-Greenstein scattering phase function: Evaluation and optimization of radiation absorption in solar heterogeneous photoreactors

机译:六通量吸收-散射模型与Henyey-Greenstein散射相函数的耦合:太阳能异构光反应器中辐射吸收的评估和优化

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摘要

Robust and practical models describing the radiation field in heterogeneous photocatalytic systems, used in emerging environmental, photochemical and renewable energy applications, are fundamental for the further development of these technologies. The six-flux radiation absorption-scattering model (SFM) has shown to be particularly suitable for the modeling of the radiation field in solar pilot-plant photoreactors. In this study, the SFM was coupled to the Henyey-Greenstein (HG) scattering phase function in order to assemble the model with a more accurate description of the scattering phenomenon provided by this phase function. This new version of SFM, named as SFM-HG, was developed through fitting the Local Volumetric Rate of Photon Absorption (LVRPA) determined in a flat photoreactor to the "pseudo-experimental" LVRPA calculated by a Monte Carlo (MC) approach, which included the HG expression. As a result, simple mathematical correlations describing the SFM-HG scattering probabilities as function of the HG scattering parameter were determined. The SFM-HG was validated through a comparison with the MC model predictions of the Total Rate of Photon Absorption (TRPA) in the slab photoreactor. A RMSE% of approximately 5% demonstrated satisfactory agreement between the models. The SFM-HG was further applied to evaluate the impact of selected scattering phase functions on the absorption of radiation in solar photoreactors, operated with commercial TiO2 photocatalyst. The results have established that, the apparent optical thickness, tau(app) (or tau(app,max) for tubes) a parameter derived from the SFM approach, is the most appropriate for the design and optimization of photocatalytic reactors. This parameter is insensitive to scattering albedos and phase functions. CPC, tubular and flat-plate photoreactors should be designed with tau(app,max) = 12, tau(app,max) = 7 and tau(app) = 4.5 respectively. (C) 2016 Elsevier B.V. All rights reserved.
机译:描述新兴的环境,光化学和可再生能源应用中所用的非均相光催化系统中辐射场的健壮实用模型,是这些技术进一步发展的基础。六通辐射吸收-散射模型(SFM)已显示特别适用于太阳能中试厂光反应器中辐射场的建模。在这项研究中,SFM与Henyey-Greenstein(HG)散射相位函数耦合,以便使用该相位函数提供的对散射现象的更准确描述来组装模型。通过将在平板光反应器中确定的局部光子吸收率(LVRPA)与通过蒙特卡洛(MC)方法计算的“伪实验” LVRPA拟合,开发出了新版本的SFM(称为SFM-HG)。包括HG表达式。结果,确定了将SFM-HG散射概率描述为HG散射参数的函数的简单数学关系式。通过与平板反应器中总光子吸收总速率(TRPA)的MC模型预测进行比较,验证了SFM-HG。约5%的RMSE%证明了模型之间的令人满意的一致性。 SFM-HG进一步用于评估选择的散射相功能对使用商业TiO2光催化剂操作的太阳能光反应器中辐射吸收的影响。结果已经确定,表观光学厚度tau(app)(或管的tau(app,max))是从SFM方法获得的参数,最适合于光催化反应器的设计和优化。该参数对散射反照率和相位函数不敏感。 CPC,管状和平板光反应器应分别设计为tau(app,max)= 12,tau(app,max)= 7和tau(app)= 4.5。 (C)2016 Elsevier B.V.保留所有权利。

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