Numerical simulation and optimization of a circular open channel for fish farming using Computational Fluid Dynamics (CFD)

Ali Jebelli , Mohammad Saeid Zare , Nafiseh Lotfi , Mustapha C.E. Yagoub
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Abstract

Open canals are one of the most common and cost-effective methods in water supply networks; they are widely used in different industries such as agriculture, water and sewage treatment, urban drainage, pisciculture and water parks. Due to global warming, the demand in clean energy to replace fossil fuels has caused using water turbines in riverbeds and aqueducts to be important. On this basis, optimizing key parameters such as flow motion and canal turbulence is crucial to reduce breakdowns while designing canals. In fact, the inappropriate adjustment of velocity and pressure within the canals may lead to the system failure: imbalance between inlet and outlet will increase the water level and the pressure on canal walls thus, leading to breakdown. In this paper, a circular open canal was designed for a pisciculture system. The velocity and height of the water canal is controlled by the canal inlet and outlet system and the water flows continuously inside the canal. By keeping the canal water volume constant in any time and the flow motion with constant velocity, the system makes the fishes feel infinite movement. Furthermore, the water particles and impurities (e.g., food and fish feces) are removed by the outlet from the canal bottom, transferred to the filtration system, and returned to the fish farm by the canal inlet after the filtration procedure; the mentioned technique causes the water canal to be kept at its optimal level. Computational Fluid Dynamics (CFD) has been used to simulate the canal flow. Solving the Navier-Stokes equations numerically and assuming incompressible, unsteady, and two-phase flow, the parameters of the canal flow were extracted. Also, by mounting the system outlet along the path of water movement, greatly reduces the adverse effects of the outlet suction force on the canal main flow. Moreover, by dividing the canal inlet with guide vanes, the inlet has been modified for the entrance of the clean water simultaneously with the distribution of the inlet flow to several smaller flows in order to make the canal water continue to move continuously without any turbulence.

基于计算流体动力学(CFD)的圆形明渠养鱼数值模拟与优化
明渠是供水网络中最常见和最具成本效益的方法之一;它们广泛应用于农业、水和污水处理、城市排水、养鱼和水上公园等不同行业。由于全球变暖,对清洁能源的需求取代了化石燃料,因此在河床和渡槽中使用水轮机变得非常重要。在此基础上,优化水流运动和渠道湍流等关键参数对于减少渠道设计中的故障至关重要。事实上,运河内速度和压力的不当调整可能会导致系统故障:进出口之间的不平衡会增加水位和运河壁上的压力,从而导致崩溃。本文设计了一条用于养鱼系统的圆形明渠。渠道的速度和高度由渠道进出口系统控制,水在渠道内连续流动。通过保持运河水量在任何时候都是恒定的,并保持恒定速度的水流运动,该系统使鱼类感觉到无限的运动。此外,水颗粒和杂质(如食物和鱼粪便)通过渠道底部的出口去除,转移到过滤系统,并在过滤程序后通过渠道入口返回养鱼场;上述技术使得水渠保持在其最佳水平。计算流体动力学(CFD)已被用于模拟渠道流动。通过数值求解Navier-Stokes方程,并假设不可压缩、非定常和两相流,提取了渠道流动的参数。此外,通过沿水流路径安装系统出口,大大减少了出口吸力对渠道主流的不利影响。此外,通过用导叶分隔运河入口,在将入口流量分配到几个较小流量的同时,对入口进行了修改,以使运河水继续连续移动而没有任何湍流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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