SIMULATION OF WATER FLOW IN A CAVITATION REACTOR

A. Belyaev, A. Aleshkin, Elena Kuts, V. Shabalin
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Abstract

Introduction: Searching for methods to improve the efficiency of water treatment with reagents is quite important in both water conditioning and industrial wastewater purification. Among the technologies providing high efficiency and reducing resource consumption in combination with reagent methods, hydrodynamic cavitation water treatment is of particular interest. The analysis of scientific and technical data made it possible to determine the main indicators of hydrodynamic cavitation water treatment that can affect the efficiency of reagent purification. Extreme parameters occurring during intense cavitation are associated with the formation of high temperatures up to 2000°C and high pulse pressures of 100–1500 MPa in local areas of hydrodynamic systems. In such conditions, the initiation and intensification of the physical and chemical processes of water treatment are observed. Рurpose of the study: Improving the efficiency of existing traditional water purification technologies, allowing to improve its quality at the lowest cost. Methods: To study the parameters affecting water treatment efficiency and occurring with the cavitation flow of water, simulation in Ansys CFX was performed with the use of the finite volume method. The calculation was carried out with account for the turbulent nature of the flow based on the k-ε turbulence model. The cavitation process was calculated with the use of the Rayleigh-Plesset cavitation model. Results: Steam formation in the cavitation reactor promotes sufficiently complete absorption of the gaseous disinfectant by water. An increase in temperature is also considered as one of the factors increasing the efficiency of water treatment with reagents. During cavitation, water temperature increases in local micro-volumes. Thus, to intensify the process, there is no need to heat the entire volume of liquid, and, as a result, the total energy consumption for water treatment is reduced.
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空化反应器中水的流动模拟
引言:寻找提高试剂水处理效率的方法在水处理和工业废水净化中都非常重要。在与试剂法相结合提供高效和减少资源消耗的技术中,水力空化水处理尤其令人感兴趣。通过对科学技术数据的分析,可以确定影响试剂净化效率的水力空化水处理的主要指标。强烈空化过程中出现的极端参数与流体动力学系统局部区域高达2000°C的高温和100–1500 MPa的高脉冲压力的形成有关。在这种条件下,可以观察到水处理的物理和化学过程的启动和强化。Р研究目的:提高现有传统净水技术的效率,以最低成本提高其质量。方法:采用有限体积法在Ansys CFX中进行模拟,研究影响水处理效率的参数以及随水空化流动而发生的参数。基于k-ε湍流模型,考虑到流动的湍流性质,进行了计算。采用瑞利-普莱塞特空化模型对空化过程进行了计算。结果:空化反应器中蒸汽的形成促进了水对气态消毒剂的充分完全吸收。温度的升高也被认为是提高试剂水处理效率的因素之一。在空化过程中,局部微体积中的水温升高。因此,为了强化该过程,不需要加热整个体积的液体,因此,减少了水处理的总能耗。
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来源期刊
Architecture and Engineering
Architecture and Engineering Engineering-Architecture
CiteScore
1.80
自引率
0.00%
发文量
26
审稿时长
7 weeks
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