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Capacitive mixing power production from salinity gradient energy enhanced through exoelectrogen-generated ionic currents

机译:盐度梯度能量产生的电容混合功率,通过外生电子产生的离子电流增强

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摘要

Several approaches to generate electrical power directly from salinity gradient energy using capacitive electrodes have recently been developed, but power densities have remained low. By immersing the capacitive electrodes in ionic fields generated by exoelectrogenic microorganisms in bioelectrochemical reactors, we found that energy capture using synthetic river and seawater could be increased ~65 times, and power generation ~46 times. Favorable electrochemical reactions due to microbial oxidation of organic matter, coupled to oxygen reduction at the cathode, created an ionic flow field that enabled more effective passive charging of the capacitive electrodes and higher energy capture. This ionic-based approach is not limited to the use of river water-seawater solutions. It can also be applied in industrial settings, as demonstrated using thermolytic solutions that can be used to capture waste heat energy as salinity gradient energy. Forced charging of the capacitive electrodes, using energy generated by the bioelectrochemical system and a thermolytic solution, further increased the maximum power density to 7 W m~(-2) (capacitive electrode).
机译:最近已经开发了几种使用电容电极直接从盐度梯度能量产生电能的方法,但是功率密度仍然很低。通过将电容电极浸入生化反应器中,由放生电的微生物产生的离子场中,我们发现使用合成河流和海水捕获的能量可以增加约65倍,发电量可以达到46倍。由于有机物的微生物氧化而产生的有利的电化学反应,再加上阴极处的氧气还原,产生了一个离子流场,从而使电容电极更有效地进行了无源充电,并实现了更高的能量捕获。这种基于离子的方法不限于使用河水,海水溶液。它也可以应用在工业环境中,如使用热解溶液所证明的那样,该溶液可用于将废热能作为盐度梯度能捕获。利用生物电化学系统产生的能量和热解溶液对电容电极进行强制充电,将最大功率密度进一步提高到7 W m〜(-2)(电容电极)。

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  • 来源
    《Energy & environmental science》 |2014年第3期|1159-1165|共7页
  • 作者单位

    Department of Mechanical and Nuclear Engineering, The Pennsylvania State University, University Park, PA 16802, USA;

    Department of Civil and Environmental Engineering, 131 Sackett Building, The Pennsylvania State University, University Park, PA 16802, USA,Department Of Civil and Environmental Engineering, The University of Illinois at Urbana-Champaign, Urbana, IL 61801, USA;

    Department of Civil and Environmental Engineering, 131 Sackett Building, The Pennsylvania State University, University Park, PA 16802, USA;

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