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Photocatalytic Degradation Of Acid Red 4 Using A Titanium Dioxide Membrane Supported On A Porous Ceramic Tube

机译:多孔陶瓷管上负载的二氧化钛膜对酸性红4的光催化降解

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A photocatalytic membrane supported on a porous ceramic tube was described, in which permeation of solutes through the membrane and tube and photocatalytic reaction occur simultaneously.In this photocatalytic membrane reactor, TiO_2 catalyst was coated on the surface of a porous ceramic tube and all experiments were conducted in one pass dead-end system.The objectives of this study are to demonstrate the predominance of dead-end operation and to determine the reaction kinetics model of the photocatalytic reaction.Acid Red 4 (AR 4) dye was used as a model pollutant.A detailed study of physical parameters including flow configurations (dead-end and cross-flow), flow rate, initial dye concentration, light intensity and catalyst loading has been performed to obtain the reaction kinetics.The simultaneous effect of light intensity and catalyst loading was also determined experimentally.Experiments were also conducted to compare the photocatalytic degradation of AR 4 in the dead-end and cross-flow system. The major findings of this study are:(1) the decomposition ratios for dead-end system were three and five times higher than cross-flow system at flow rates of 6.67×10~(-8) and 4.00 × 10~(-7) m~3/s, respectively.(2) The decomposition ratio increased with increasing catalyst loading and light intensity, but remained constant at higher catalyst loading.(3) The decomposition ratio was found to be decreased with increasing flow rate.
机译:描述了一种负载在多孔陶瓷管上的光催化膜,其中溶质透过膜和管同时发生渗透和光催化反应。在该光催化膜反应器中,将TiO_2催化剂涂覆在多孔陶瓷管的表面,并进行了所有实验。本研究的目的是证明死胡同操作的优势并确定光催化反应的反应动力学模型。酸性红4(AR 4)染料用作模型污染物进行了详细的物理参数研究,包括流动形态(死端和错流),流速,初始染料浓度,光强度和催化剂负载量,以获得反应动力学。光强度和催化剂负载量的同时影响还进行了实验确定。还进行了实验以比较AR 4在死角和交叉末端的光催化降解流系统。这项研究的主要发现是:(1)在流量为6.67×10〜(-8)和4.00×10〜(-7)的情况下,死端系统的分解率比错流系统高三到五倍。 )分别为m〜3 / s。(2)分解率随催化剂负载量和光强度的增加而增加,但在较高的催化剂负载量下保持恒定。(3)分解率随流速的增加而降低。

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