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Salinity-gradient power: Evaluation of pressure-retarded osmosis and reverse electrodialysis

机译:盐度梯度功率:压力延迟渗透和反向电渗析的评估

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摘要

A huge potential to obtain clean energy exists from mixing water streams with different salt concentrations. Two membrane-based energy conversion techniques are evaluated: pressure-retarded osmosis and reverse electrodialysis. From the literature, a comparison is not possible since the reported performances are not comparable. A method was developed which allows for a comparison of both techniques at equal conditions, with respect to power density and energy recovery. Based on the results from the model calculations, each technique has its own field of application. Pressure-retarded osmosis seems to be more attractive for power generation using concentrated saline brines because of the higher power density combined with higher energy recovery. Reverse electrodialysis seems to be more attractive for power generation using seawater and river water. These conclusions are valid for present and latent performances of both techniques. According to the model, the potential performances of both techniques are much better than the current performances. In order to achieve these potential performances, the development of pressure-retarded osmosis must focus on membrane characteristics, i.e. increasing the water permeability of the membrane skin and optimization of the porous support. The development of reverse electrodialysis, however, must focus on system characteristics, i.e. optimization of the internal resistance, which is mainly determined by the width of the spacers.
机译:通过混合不同盐浓度的水流,存在获得清洁能源的巨大潜力。对两种基于膜的能量转换技术进行了评估:压力延迟渗透和反向电渗析。根据文献,由于报告的性能不具有可比性,因此无法进行比较。开发了一种方法,该方法允许在相同条件下比较两种技术的功率密度和能量回收率。根据模型计算的结果,每种技术都有其自己的应用领域。由于采用较高浓度的能量并具有较高的能量回收率,因此在使用浓盐水的发电中,压力滞后渗透法似乎更具吸引力。反向电渗析似乎对于使用海水和河水发电更有吸引力。这些结论对于两种技术的当前和潜在性能都是有效的。根据该模型,这两种技术的潜在性能都比当前性能好得多。为了获得这些潜在的性能,耐压渗透的发展必须集中在膜的特性上,即增加膜皮的水渗透性和优化多孔载体。然而,反向电渗析的发展必须集中在系统特性上,即内部电阻的优化,这主要是由间隔物的宽度决定的。

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