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微型盐度梯度能量采集装置。

Miniaturized Salinity Gradient Energy Harvesting Devices.

机构信息

Institute of Biomedical Engineering, College of Electrical and Computer Engineering, National Yang Ming Chiao Tung University, Hsinchu 30010, Taiwan.

Chemical Biology and Molecular Biophysics Program, Taiwan International Graduate Program, Institute of Biological Chemistry, Academia Sinica, Nankang, Taipei 115, Taiwan.

出版信息

Molecules. 2021 Sep 8;26(18):5469. doi: 10.3390/molecules26185469.

Abstract

Harvesting salinity gradient energy, also known as "osmotic energy" or "blue energy", generated from the free energy mixing of seawater and fresh river water provides a renewable and sustainable alternative for circumventing the recent upsurge in global energy consumption. The osmotic pressure resulting from mixing water streams with different salinities can be converted into electrical energy driven by a potential difference or ionic gradients. Reversed-electrodialysis (RED) has become more prominent among the conventional membrane-based separation methodologies due to its higher energy efficiency and lesser susceptibility to membrane fouling than pressure-retarded osmosis (PRO). However, the ion-exchange membranes used for RED systems often encounter limitations while adapting to a real-world system due to their limited pore sizes and internal resistance. The worldwide demand for clean energy production has reinvigorated the interest in salinity gradient energy conversion. In addition to the large energy conversion devices, the miniaturized devices used for powering a portable or wearable micro-device have attracted much attention. This review provides insights into developing miniaturized salinity gradient energy harvesting devices and recent advances in the membranes designed for optimized osmotic power extraction. Furthermore, we present various applications utilizing the salinity gradient energy conversion.

摘要

从海水和淡水的自由能混合中获取盐度梯度能,也称为“渗透能”或“蓝色能源”,为解决全球能源消耗最近的飙升提供了一种可再生和可持续的替代方案。不同盐度的水流混合产生的渗透压可以通过电势差或离子梯度转化为电能。与压力延迟渗透(PRO)相比,反向电渗析(RED)由于其更高的能源效率和较少的膜污染易感性,在传统的基于膜的分离方法中变得更加突出。然而,用于 RED 系统的离子交换膜在适应实际系统时经常遇到限制,因为它们的孔径有限且内阻大。全球对清洁能源生产的需求重新激发了人们对盐度梯度能量转换的兴趣。除了大型能量转换装置外,用于为便携式或可穿戴微设备供电的小型化装置也引起了广泛关注。本综述深入探讨了用于开发小型化盐度梯度能量收集装置的方法,以及用于优化渗透功率提取的膜设计方面的最新进展。此外,我们还介绍了利用盐度梯度能量转换的各种应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b48/8466105/e9cbf5fa7aba/molecules-26-05469-g001.jpg

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