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Energy efficient design of high depth raceway pond using computational fluid dynamics

机译:基于计算流体力学的高深水道池塘节能设计

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Open Raceway Ponds (RWP) are at present the most used large-scale reactors for microalgae culture. RWPs are extensively applied technology for algae mass cultivation although the scientific design of these ponds remains a major hurdle in this field. An erroneous design result in the presence of dead zones where the fluid flow is sluggish and non-uniform velocity throughout the pond actualized negative impact on algae growth, further these designs are energy inefficient. A dominant component of energy loss is the energy required to circulate the fluid around the raceway, particularly at the 180 degrees bends. This paper investigates effects of various ratio of channel length to width (LAW) and position of side entry axial flow impeller (distance from the bottom of the tank) on the hydrodynamics in RWP. To curtail the dead zone, power consumption, shear stress and enhance surface renewal, the different designs of RWPs with flow deflectors and different types of central baffles were investigated by using Computational Fluid Dynamics (CFD). The CFD model was validated through Particle Image Velocimetry (PIV) tests. A feasible move headed for energy optimization and thus reduction in operational cost can be established through a better understanding of the mixing phenomena by CFD simulations. (C) 2018 Elsevier Ltd. All rights reserved.
机译:目前,开放水道池塘(RWP)是用于微藻培养的最常用的大型反应器。尽管这些池塘的科学设计仍然是该领域的主要障碍,但RWPs是藻类大规模养殖中广泛应用的技术。错误的设计会导致死区的存在,在这些死区中,流体流动缓慢,整个池塘的流速不均匀,对藻类的生长产生了负面影响,而且这些设计的能源效率很低。能量损失的主要组成部分是使流体在滚道周围循环所需的能量,尤其是在180度弯曲处。本文研究了各种通道长宽比(LAW)和侧向入口轴向流叶轮的位置(距罐底部的距离)对RWP中流体动力学的影响。为了减少死区,功耗,剪切应力并增强表面更新性,使用计算流体动力学(CFD)研究了带有导流板和不同类型的中央挡板的RWP的不同设计。 CFD模型通过粒子图像测速(PIV)测试进行了验证。通过CFD仿真可以更好地理解混合现象,从而可以确定可行的能源优化措施,从而降低运营成本。 (C)2018 Elsevier Ltd.保留所有权利。

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