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使用响应面法对填充有Ba-Pt@γ-ALO的新型固定床石英反应器进行性能分析、统计建模和多响应优化。

Performance analysis, statistical modeling, and multiple response optimization of a novel fixed-bed quartz reactor packed with Ba-Pt@γ-ALO using response surface methodology.

作者信息

Sajedifar Javad, Mortazavi Seyyed Bagher, Asilian Mahabadi Hasan

机构信息

Department of Occupational Health and Safety Engineering, Faculty of Medical Sciences, Tarbiat Modares University, Tehran, Iran.

出版信息

Heliyon. 2024 Sep 18;10(19):e38087. doi: 10.1016/j.heliyon.2024.e38087. eCollection 2024 Oct 15.

Abstract

In the present study, a novel fixed-bed continuous reactor with a preheating chamber was designed to be utilized for the practical application of removal studies of dangerous pollutants, especially NO removal by NO Storage Reduction (NSR) catalysts on a laboratory scale. The reactor's design and operational parameters, including outer wall temperature (50-600 °C), volumetric flow rate (0.3-3 L/min), wall temperature time (0.16-10 min), and granule surface area inside the preheating chamber (0-270 cm), were statistically modeled and optimized using Response Surface Methodology (RSM). For more logical and effective parameter optimization, the ratio of gas and catalyst temperatures and pressure drop to the reactor outer wall temperature (GT/ROWT, CT/ROWT, and PD/ROWT) were also included in the optimization process. Experimental results showed that gas temperature, catalyst temperature, and pressure drop ranged from 31 to 177 °C, 51-585 °C, and 7-153 Pa, respectively. Optimal conditions were determined to be an outer wall temperature of 230 °C, a volumetric flow rate of 3 L/min, a wall temperature time of 0.16 min, and a granule surface area of 67.3 cm. The results demonstrated that outer wall temperature, flow rate, time, and surface area of granules have significant and interaction effects on the responses and should be considered when researchers assess the removal efficiency of thermal catalysts.

摘要

在本研究中,设计了一种带有预热室的新型固定床连续反应器,用于危险污染物去除研究的实际应用,特别是在实验室规模下通过氮氧化物储存还原(NSR)催化剂去除氮氧化物。使用响应面法(RSM)对反应器的设计和操作参数进行了统计建模和优化,这些参数包括外壁温度(50 - 600°C)、体积流量(0.3 - 3 L/min)、壁温时间(0.16 - 10 min)以及预热室内颗粒表面积(0 - 270 cm)。为了进行更合理有效的参数优化,气体与催化剂温度之比以及压力降与反应器外壁温度之比(GT/ROWT、CT/ROWT和PD/ROWT)也被纳入优化过程。实验结果表明,气体温度、催化剂温度和压力降分别在31至177°C、51 - 585°C和7 - 153 Pa范围内。确定的最佳条件为外壁温度230°C、体积流量3 L/min、壁温时间0.16 min以及颗粒表面积67.3 cm。结果表明,外壁温度、流速、时间和颗粒表面积对响应具有显著的交互作用,研究人员在评估热催化剂的去除效率时应予以考虑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e212/11456864/f36b3e5649ed/ga1.jpg

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