IF 1.4 4区 工程技术 Q3 ENGINEERING, CHEMICAL
Faqi Zhou, Zhiwei Luo, Xianbo Wu, Yiming Xing, Shuangcheng Fu, Huixin Yuan
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引用次数: 0

摘要

本文介绍了一种增程式旋转流体动力空化反应器(ARHCR),该反应器可实现圆周剪切空化、轴向空化和文丘里效应,从而提高空化效率。羟基(-OH)释放和化学需氧量(COD)去除实验证明了空化性能表征和 COD 去除率的可行性。研究结果表明,随着流速或转速的增加,COD 去除率可分别达到 28% 或 30% 的最大值。具体来说,在转速为 2,500 rpm 或流量为 1.0 m3-h-1 时可达到最大值。根据附录空化机理,研究了优化空化性能的楔角和关键结构参数。结果表明,空化数和空化泡受楔角以及空化能效率的影响很大。楔角增强了流体的机械剪切力,导致流体在动能增加的情况下不断压缩和释放。这对凸起块产生了更强的影响,并形成了不断反弹的漩涡,导致压力区域降低,空化区域扩大。在测试的楔角中,楔角为 15°的空化气泡最高,最大值为 46%。这比报告的沟槽型空化器高出 31%。此外,楔角为 15°时,空化性能得到极大改善,这与空化能量的最大效率相对应。这些探索为去除工业和农业废水中的化学需氧量以及开发用于废水处理的新型反应器提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on the characteristics of cavitation and COD removal of an addendum rotational hydrodynamic cavitation reactors

This paper presented an addendum rotational hydrodynamic cavitation reactors (ARHCR) that enabled circumferential shear cavitation, axial cavitation, and the Venturi effect, thus increasing cavitation efficiency. The experiments on hydroxyl (·OH) release and chemical oxygen demand (COD) removal demonstrate the feasibility of cavitation performance characterization and COD removal rate. The findings indicate that the COD removal rate can reach a maximum value of 28% or 30% with an increase in flow rate or rotating speed, respectively. Specifically, the maximum values were achieved at a rotation speed of 2,500 rpm or a flow rate of 1.0 m3·h−1. Based on the mechanism of the addendum cavitation, the wedge angles, and the crucial structural parameters, were examined for optimizing cavitation performance. The results revealed that the cavitation number and cavitation bubble were significantly influenced by wedge angles, as well as the efficiency of cavitation energy. The mechanical shear of fluid was enhanced by wedge angles, resulting in constant compression and release of fluid with increased kinetic energy. This led to stronger effects on bulge blocks, and the formation of vortexes that rebounded constantly, resulting in lower pressure areas and expanded regions of cavitation. Among the wedge angles tested, the wedge angle of 15° exhibited the highest cavitation bubbles with a maximum value of 46%. This was 31% higher than the grooves-type cavitator reported. Furthermore, the cavitation performance was extremely improved with a wedge angle of 15°, as corresponding with the maximum efficiency of cavitation energy. These explorations provide references for the removal of COD in industrial and agricultural wastewater, as well as the development of novel reactors for wastewater treatment.

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来源期刊
自引率
11.10%
发文量
111
期刊介绍: Asia-Pacific Journal of Chemical Engineering is aimed at capturing current developments and initiatives in chemical engineering related and specialised areas. Publishing six issues each year, the journal showcases innovative technological developments, providing an opportunity for technology transfer and collaboration. Asia-Pacific Journal of Chemical Engineering will focus particular attention on the key areas of: Process Application (separation, polymer, catalysis, nanotechnology, electrochemistry, nuclear technology); Energy and Environmental Technology (materials for energy storage and conversion, coal gasification, gas liquefaction, air pollution control, water treatment, waste utilization and management, nuclear waste remediation); and Biochemical Engineering (including targeted drug delivery applications).
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