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Numerical Modeling and Dynamic Analysis of a Wave-Powered Reverse-Osmosis System

机译:波浪动力反渗透系统的数值建模与动力学分析

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A wave energy converter (WEC) system has the potential to convert the wave energy resource directly into the high-pressure flow that is needed by the desalination system to pump saltwater to the reverse-osmosis membrane and provide the required pressure level to generate freshwater. In this study, a wave-to-water numerical model was developed to investigate the potential use of a wave-powered desalination system (WPDS) for water production. The model was developed by coupling a time-domain radiation-and-diffraction method-based numerical tool (WEC-Sim) for predicting the hydrodynamic performance of WECs with a solution-diffusion model that was used to simulate the reverse-osmosis (RO) process. The objective of this research is to evaluate the WPDS dynamics and the overall efficiency of the system. To evaluate the feasibility of the WPDS, the wave-to-water numerical model was applied to simulate a desalination system that used an oscillating surge WEC device to pump seawater through the system. The hydrodynamics WEC-Sim simulation results for the oscillating surge WEC device were validated against existing experimental data. The RO simulation was verified by comparing the results to those from the Dow Chemical Company’s reverse osmosis system analysis (ROSA) model, which has been widely used to design and simulate RO systems. The wave-to-water model was then used to analyze the WPDS under a range of wave conditions and for a two-WECs-coupled RO system to evaluate the influence of pressure and flow rate fluctuation on the WPDS performance. The results show that the instantaneous energy fluctuation from waves has a significant influence on the responding hydraulic pressure and flow rate, as well as the recovery ratio and, ultimately, the water-production quality. Nevertheless, it is possible to reduce the hydraulic fluctuation for different sea states while maintaining a certain level of freshwater production, and a WEC array that produces water can be a viable, near-term solution to the nation’s water supply. A discussion on the dynamic impact of hydraulic fluctuation on the WPDS performance and potential options to reduce the fluctuation and their trade-offs is also presented.
机译:波浪能转换器(WEC)系统具有将波浪能资源直接转换为淡化系统所需的高压流的潜力,以将盐水泵送到反渗透膜并提供所需的压力水平以产生淡水。在这项研究中,开发了一个水波数值模型,以研究波浪动力淡化系统(WPDS)在水生产中的潜在用途。该模型是通过将基于时域辐射和衍射法的数值工具(WEC-Sim)与用于模拟反渗透(RO)的溶液扩散模型耦合来预测WEC的流体力学性能而开发的处理。这项研究的目的是评估WPDS动力学和系统的整体效率。为了评估WPDS的可行性,将水波数值模型用于模拟海水淡化系统,该系统使用振荡浪涌WEC设备将海水泵送通过该系统。针对现有的实验数据验证了振荡电涌WEC装置的流体动力学WEC-Sim仿真结果。通过将结果与陶氏化学公司的反渗透系统分析(ROSA)模型的结果进行比较,对RO模拟进行了验证,该模型已广泛用于设计和模拟RO系统。然后,将水浪模型用于分析一系列波浪条件下的WPDS,并使用两个WEC耦合的RO系统评估压力和流速波动对WPDS性能的影响。结果表明,波浪的瞬时能量波动对响应的液压压力和流量,采收率以及最终的产水质量都有重要影响。不过,可以在保持一定水平的淡水产量的同时,减少不同海况的水力波动,而生产水的WEC阵列可以是该国供水的近期可行解决方案。还讨论了液压波动对WPDS性能的动态影响以及减少波动及其折衷方案的潜在选择。

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