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MODELING AND EXPERIMENTAL VALIDATION OF A PICO-SCALE FRANCIS TURBINE FOR A SELF-POWERED WATER DISINFECTION SYSTEM

机译:自注水消毒系统的微尺度弗朗西斯涡轮机的建模和实验验证

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Access to both electricity and clean drinking water is challenging in many remote communities. A self-powered water disinfection system, currently under development, can potentially address this challenge. In the proposed design, energy from water flowing through the system is harnessed using a pico turbine (nominal output power of 60 W) and used to power an electrochemical disinfection process. The characteristics of turbines at the pico-scale (less than 5 kW) required for this system are not well researched, and off-the-shelf designs are either too bulky or too inefficient for this application. This paper presents a model developed to evaluate a new class of efficient pico-scale Francis turbines for this water disinfection system. A computational fluid dynamics (CFD) model of the turbine was developed in ANSYS® CFX® 17.1. The CFD model exploits the rotational symmetry of the turbine and draft tube fluid regions to reduce the computational cost in terms of time and memory. The turbine model is coupled with models of the electric generator and electrochemical cell to determine the balanced operating points. When validated against experimental data, the combined model showed good predictive ability despite its low computational cost: the modeled turbine efficiency is within 5% of the measured values across the operating range of the device. The current turbine design has a hydraulic efficiency above 60 % in its operating range, which is high for a compact turbine at this scale. The combined model was used with a parameterized ver- sion of the turbine geometry to identify key performance sensitivities, particularly with the blade trailing edge angle. Turbine efficiency was improved by more than 2 % across the allowable flow rates. The low computational cost of the combined model made it well suited for iterative design optimization, supplanting the need for lengthy experimental trials. Overall, the modeling approach presented here shows good promise for use in pico-turbine design.
机译:在许多偏远社区,获得电力和清洁饮用水都面临挑战。当前正在开发的自供电水消毒系统可以潜在地解决这一挑战。在建议的设计中,流经系统的水的能量使用微型涡轮机(额定输出功率为60 W)加以利用,并用于为电化学消毒过程提供动力。对于该系统所需的微微级(小于5 kW)的涡轮机特性尚未得到充分研究,现成的设计对于该应用而言过于庞大或效率低下。本文提出了一种模型,用于评估用于该水消毒系统的新型高效皮克级弗朗西斯水轮机。在ANSYS®CFX®17.1中开发了涡轮机的计算流体动力学(CFD)模型。 CFD模型利用了涡轮和引流管流体区域的旋转对称性,以减少时间和内存方面的计算成本。涡轮机模型与发电机和电化学电池的模型耦合,以确定平衡的工作点。当根据实验数据进行验证时,组合模型尽管计算成本较低,但仍显示出良好的预测能力:在设备的整个工作范围内,建模的涡轮效率在测量值的5%以内。当前的涡轮机设计在其工作范围内的液压效率超过60%,对于这种规模的紧凑型涡轮机而言,这是很高的。该组合模型与涡轮机几何形状的参数化版本一起使用,以识别关键的性能敏感性,尤其是叶片后缘角度。在允许的流速范围内,涡轮效率提高了2%以上。组合模型的低计算成本使其非常适合迭代设计优化,从而取代了冗长的实验。总体而言,此处介绍的建模方法显示了在微型涡轮机设计中使用的良好前景。

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