Physical and numerical modeling of seaweed in oceanic waters

IF 3.6 2区 农林科学 Q2 AGRICULTURAL ENGINEERING
Henrik Neufeldt , Christian Windt , Bela H. Buck , Kevin Heasman , Arndt Hildebrandt , Nils Goseberg
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引用次数: 0

Abstract

Understanding the dynamics of the stress imposed by water motion on seaweeds in oceanic waters is crucial for effective coastal management and the sustainable development of seaweed-based industries. However, the dynamics of highly flexible seaweeds (e.g., Saccharina latissima or Laminiara digitata), driven by its mechanical and morphological properties, poses challenges for conventional fluid-structure-interaction models. This paper provides a comprehensive review of physical and numerical modeling approaches for seaweed hydrodynamics, aiming to identify knowledge gaps and offer guidelines for future research. Methods for determining the physical properties of seaweeds are being reviewed. However, for living organisms, these properties change as a result of age, mechanical impact or environmental conditions. Therefore, we also review the impact of various influencing factors on the physical properties. Hydrodynamic properties of seaweeds (e.g., drag, reconfiguration, shading effects) and the connection with their physical properties will be discussed. Moreover, a comparison between physical and numerical models for the determination of hydrodynamic loads on seaweeds is presented, discussing their possibilities and limitations. Finally, the paper investigates differences in force determination between isolated seaweed, seaweed farms and forests, as well as variations between flow-dominated and wave-dominated environments. The review reveals the challenges in comparing physical and hydrodynamic properties of seaweeds across different studies. It also identifies knowledge gaps in the parametrization of these properties. The recommended guidelines proposed in this paper provide a first framework to address these challenges and minimize variability between studies, thereby offering valuable guidance for future research.
海水中海藻的物理和数值模拟
了解海水运动对海水中海藻施加压力的动态变化对有效的海岸管理和海藻产业的可持续发展至关重要。然而,高柔性海藻(如Saccharina latissima或Laminiara digitata)的力学和形态特性所驱动的动力学对传统的流固相互作用模型提出了挑战。本文全面综述了海藻流体动力学的物理和数值模拟方法,旨在找出知识空白并为未来的研究提供指导。对测定海藻物理性质的方法进行了综述。然而,对于生物体来说,这些特性会随着年龄、机械影响或环境条件而改变。因此,我们也回顾了各种影响因素对物理性质的影响。将讨论海藻的水动力特性(例如,拖曳、重构、遮阳效应)及其与物理特性的联系。此外,还比较了确定海藻水动力载荷的物理模型和数值模型,讨论了它们的可能性和局限性。最后,本文研究了孤立海藻、海藻养殖场和森林之间的力决定差异,以及流主导和波主导环境之间的差异。综述揭示了在不同研究中比较海藻的物理和水动力特性所面临的挑战。它还确定了这些属性参数化方面的知识差距。本文提出的推荐指南为解决这些挑战和减少研究之间的差异提供了第一个框架,从而为未来的研究提供了有价值的指导。
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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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