Optimizing flow uniformity and velocity fields in aquaculture tanks by modifying water inlets and nozzles arrangement: A computational fluid dynamics study

IF 4.3 2区 农林科学 Q2 AGRICULTURAL ENGINEERING Aquacultural Engineering Pub Date : 2024-06-02 DOI:10.1016/j.aquaeng.2024.102431
Milad Mohammadi Moghadam , Houman Rajabi Islami , Mojtaba Ezam , Seyed Abdolmajid Mousavi
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Abstract

Ensuring optimal conditions for fish, especially in terms of uniform velocity fields, is crucial for aquaculture systems to attain self-cleaning efficiency in rearing tanks and better fish behavior, which ultimately impacts their survival and growth. The current study presented a full-scale computational fluid dynamics (CFD) model of three types of circular, square and square arc angle tanks used in aquaculture farms to choose the most optimal tank based on the flow uniformity and velocity field. At the next step, the optimal arrangement of the inlet number, inlet location, inlet angle, as well as the number of nozzles on each inlet was reconfigured to create the most optimal tank. The simulations were done using the CFD software FLUENT distributed by the ANSYS Corporation. The software calculates velocities in the tanks by solving the Reynolds-averaged Navier-Stokes equations of continuity and momentum that govern the mean turbulent flow of water. The results illustrated circular and square arc angle tanks had significantly more uniform fluid velocity compared to the square tanks, which the square arc angle tank due to better flow velocity near the wall and space utilization was selected for further rearrangements. Additionally, the implementation of two entrance pipes near the corner of the two parallel walls with an entry angle of 0° in a square arc angle tank resulted in a more consistent water velocity. As the number of inlet nozzles increased to six, the water streamlines became more uniform, suggesting a more consistent water velocity throughout the tank. However, when the number of input nozzles increased to nine, the tension on the nozzle apertures were increased probably due to the decrease of distance between them. Findings of the present study concluded that two inlets in the corner with an entry angle of 0° and six nozzles on each inlet pipe could provide the optimum water velocity in the square arc angle tanks.

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通过改变进水口和喷嘴布置优化水产养殖水槽中的水流均匀性和流速场:计算流体动力学研究
确保鱼类的最佳条件,尤其是均匀的流速场,对于水产养殖系统实现饲养箱的自清洁效率和更好的鱼类行为至关重要,这最终会影响鱼类的存活和生长。本研究提出了水产养殖场使用的圆形、方形和方形弧角三种水槽的全尺寸计算流体动力学(CFD)模型,以根据流动均匀性和速度场选择最佳水槽。下一步是重新配置进水口数量、进水口位置、进水口角度以及每个进水口的喷嘴数量,以创建最佳水箱。模拟是使用 ANSYS 公司的 CFD 软件 FLUENT 进行的。该软件通过求解雷诺平均纳维-斯托克斯连续性和动量方程来计算水箱中的速度,该方程控制着平均湍流水流。结果表明,与方形水箱相比,圆形和方形弧角水箱的流体速度明显更均匀。此外,在方形弧角水槽中,靠近两个平行壁角的两个入口管道的入口角为 0°,因此水流速度更稳定。当输入喷嘴的数量增加到六个时,水流线变得更加均匀,表明整个水箱的水流速度更加一致。然而,当输入喷嘴的数量增加到 9 个时,喷嘴孔径上的张力增加了,这可能是由于喷嘴之间的距离减小了。本研究的结论是,在方弧形角水箱中,角上的两个入口(入口角为 0°)和每个入口管道上的六个喷嘴可提供最佳水流速度。
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来源期刊
Aquacultural Engineering
Aquacultural Engineering 农林科学-农业工程
CiteScore
8.60
自引率
10.00%
发文量
63
审稿时长
>24 weeks
期刊介绍: Aquacultural Engineering is concerned with the design and development of effective aquacultural systems for marine and freshwater facilities. The journal aims to apply the knowledge gained from basic research which potentially can be translated into commercial operations. Problems of scale-up and application of research data involve many parameters, both physical and biological, making it difficult to anticipate the interaction between the unit processes and the cultured animals. Aquacultural Engineering aims to develop this bioengineering interface for aquaculture and welcomes contributions in the following areas: – Engineering and design of aquaculture facilities – Engineering-based research studies – Construction experience and techniques – In-service experience, commissioning, operation – Materials selection and their uses – Quantification of biological data and constraints
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