Investigation of Flow Field and Pollutant Particle Distribution in the Aquaculture Tank for Fish Aquaculture Based on Computational Fluid Dynamics

30 Pages Posted: 23 Apr 2022

See all articles by Bo-Ru Xue

Bo-Ru Xue

affiliation not provided to SSRN

Yun-Peng Zhao

Dalian University of Technology

Chun-Wei Bi

affiliation not provided to SSRN

Yuan Cheng

affiliation not provided to SSRN

Xiao-Zhong Ren

Dalian Ocean University

Ying Liu

Zhejiang University

Abstract

Hydrodynamics is important for fish survival in the aquaculture tank systems, as it can directly affect the behaviour of farmed fish and the self-cleaning property of culture tank systems. The present study designs a new tank configuration, rectangular single-side arc angle tanks, to improve the performance of aquaculture vessels. The tank hydrodynamics was investigated by solving the Reynolds-Averaged Navier–Stokes (RANS) equations and combined with the discrete phase model (DPM) model to study particle motion. The velocity at the monitoring point and the discharge rate of particles from the tank were separately measured using Acoustic Doppler Velocimetry and the MATLAB image recognition method to validate the numerical model. We numerically tested the effect of culture tank configurations and the horizontal distance from the inlet pipe to the sidewall on hydrodynamics parameters, including velocity magnitude and uniformity, turbulence region and vortex distribution. Subsequently, to further understand the self-cleaning property of the culture tank systems for settleable particles, 300 cylindrical particles with a uniform size of 2.5 mm are tracked in the Lagrangian frame. Meanwhile, velocity distribution and pressure gradient have been employed to quantitatively evaluate the effects of hydrodynamics on the collection and discharge regularity of particles. Through CFD-assisted design verification, the tank configuration and the position of the inlet pipe layout have a considerable impact on the removal of particles from the tank and the energy to sustain the flow in the tank. Therefore, hydrodynamics would directly affect the self-cleaning property of culture tank systems. The correction of hydrodynamic patterns can avoid quiescent zones and rapidly flush settleable particles from the tank. The new design of tank configuration provides better particle removal to ensure the better self-cleaning ability of the culture tank.

Keywords: Recirculating aquaculture system (RAS), Hydrodynamics, Self-cleaning property, Tank configurations, Computational fluid dynamics(CFD)

Suggested Citation

Xue, Bo-Ru and Zhao, Yun-Peng and Bi, Chun-Wei and Cheng, Yuan and Ren, Xiao-Zhong and Liu, Ying, Investigation of Flow Field and Pollutant Particle Distribution in the Aquaculture Tank for Fish Aquaculture Based on Computational Fluid Dynamics. Available at SSRN: https://ssrn.com/abstract=4091184 or http://dx.doi.org/10.2139/ssrn.4091184

Bo-Ru Xue

affiliation not provided to SSRN ( email )

No Address Available

Yun-Peng Zhao (Contact Author)

Dalian University of Technology ( email )

Chun-Wei Bi

affiliation not provided to SSRN ( email )

No Address Available

Yuan Cheng

affiliation not provided to SSRN ( email )

No Address Available

Xiao-Zhong Ren

Dalian Ocean University ( email )

Dalian
China

Ying Liu

Zhejiang University ( email )

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