周期性振荡条件下的反渗透海水淡化:从时空模拟的洞察力

IF 8.3 1区 工程技术 Q1 ENGINEERING, CHEMICAL
Mingheng Li
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引用次数: 0

摘要

本文利用偏微分方程(PDE)模型研究了周期振荡条件下反渗透(RO)海水淡化的时空动态和性能。假设膜输运特性不变,该模型显示流量和压力的正弦变化产生周期平均性能指标与等效平均条件下的稳态运行指标密切相关。增加振荡频率可减弱渗透浓度的时间波动。值得注意的是,整流正弦变化增加了渗透产率,这是由于能量输入显著增加。虽然这些发现与实验趋势一致,但分析揭示了与先前文献的关键分歧:由于其不成比例的能源需求,整流正弦变化是最不节能的策略,而稳态操作仍然是最节能的。此外,在整流正弦条件下,亚渗透和超渗透条件之间的快速频率切换与加速膜降解之间的潜在相关性值得进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reverse osmosis desalination under periodically oscillating conditions: insight from spatiotemporal simulations
This study investigates the spatiotemporal dynamics and performance of reverse osmosis (RO) desalination under periodic oscillatory conditions using a partial differential equation (PDE) model. Assuming constant membrane transport properties, the model shows that sinusoidal variations in flow and pressure yield cycle-averaged performance metrics that closely align with those of steady-state operation under equivalent mean conditions. Increasing the oscillation frequency attenuates temporal fluctuations in permeate concentration. Notably, rectified sinusoidal variations increase the permeate production rate, a result attributed to the significantly higher energy input. While these findings are consistent with experimental trends, the analysis uncovers a key divergence from prior literature: rectified sinusoidal variations are the least energy-efficient strategy due to their disproportionate energy demands, whereas steady-state operation remains the most energy-efficient. Additionally, the potential correlation between rapid frequency switching between sub-osmotic and super-osmotic conditions under rectified sinusoidal conditions and accelerated membrane degradation warrants further exploration in future studies.
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来源期刊
Desalination
Desalination 工程技术-工程:化工
CiteScore
14.60
自引率
20.20%
发文量
619
审稿时长
41 days
期刊介绍: Desalination is a scholarly journal that focuses on the field of desalination materials, processes, and associated technologies. It encompasses a wide range of disciplines and aims to publish exceptional papers in this area. The journal invites submissions that explicitly revolve around water desalting and its applications to various sources such as seawater, groundwater, and wastewater. It particularly encourages research on diverse desalination methods including thermal, membrane, sorption, and hybrid processes. By providing a platform for innovative studies, Desalination aims to advance the understanding and development of desalination technologies, promoting sustainable solutions for water scarcity challenges.
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