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用于水净化的3D打印塑料光催化流动反应器。

3D printed, plastic photocatalytic flow reactors for water purification.

作者信息

Zhou Ruicheng, Han Ri, Bingham Michael, O'Rourke Christopher, Mills Andrew

机构信息

School of Chemistry and Chemical Engineering, Queens University Belfast, Stranmillis Road, Belfast, BT9 5AG, UK.

出版信息

Photochem Photobiol Sci. 2022 Sep;21(9):1585-1600. doi: 10.1007/s43630-022-00242-y. Epub 2022 May 24.

Abstract

3D printing is known as a fast, inexpensive, reproducible method for producing prototypes but is also fast becoming recognised as a scalable, advanced manufacture process. Two types of lab-scale, 3D printed plastic, fixed-film, flow-through photocatalytic reactors are described, both of which are sinusoidal in shape, and only differ in that one has no baffles, reactor A, whereas the other has, reactor B. Both reactors are lined with a P25 TiO/polylactic acid (PLA) coating, which, after UVA pre-conditioning, is used to photocatalyse the bleaching of circulating aqueous solutions of either methylene blue, MB, or phenol, PhOH, repeatably, without any obvious loss of activity. The rate of the photocatalysed bleaching of MB exhibited by reactor B shows a much lower dependence upon flow rate than reactor A, due to the greater lateral mixing of the laminar flow streams produced by the baffles. The photonic efficiencies of reactor A for the photocatalysed bleaching of MB and PhOH were determined to be 0.025% and 0.052%, respectively, and the photocatalytic space-time yields (PSTY) to be 0.98 × 10 and 1.49 × 10 m of reaction solution.m reactor volume.day.kW, respectively. This is the first example of an all plastic, 3D printed photocatalytic reactor and demonstrates the advantages of 3D printing for prototyping. Given the 3D printing is a scalable process, possible potential areas of application are discussed briefly.

摘要

3D打印作为一种快速、廉价、可重复生产原型的方法而闻名,但它也正迅速被视为一种可扩展的先进制造工艺。本文描述了两种实验室规模的、3D打印的塑料固定膜流通式光催化反应器,它们的形状均为正弦形,仅在有无折流板方面存在差异,无折流板的为反应器A,有折流板的为反应器B。两个反应器均内衬P25 TiO₂/聚乳酸(PLA)涂层,经紫外线预处理后,该涂层用于对亚甲基蓝(MB)或苯酚(PhOH)的循环水溶液进行光催化漂白,可重复进行,且活性无明显损失。由于折流板产生的层流横向混合程度更高,反应器B对MB光催化漂白的速率受流速的影响远低于反应器A。反应器A对MB和PhOH光催化漂白的光子效率分别测定为0.025%和0.052%,光催化时空产率(PSTY)分别为0.98×10⁻³和1.49×10⁻³ m³反应溶液·m⁻³反应器体积·天⁻¹·kW⁻¹。这是全塑料3D打印光催化反应器的首个实例,并展示了3D打印在原型制作方面的优势。鉴于3D打印是一个可扩展的工艺,本文简要讨论了可能的潜在应用领域。

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