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储能系统技术 储能系统 ★ 4.0

基于电磁波的微生物燃料电池集成以提升性能

EM waves-based microbial fuel cells integrated to improve performance

作者 Chin-Tsan Wang · Pushparaj Palac1 · Xin-Chang Wang
期刊 Applied Energy
出版日期 2025年1月
卷/期 第 377 卷
技术分类 储能系统技术
技术标签 储能系统
相关度评分 ★★★★ 4.0 / 5.0
关键词 EM wave integration enhances MFC performance.
语言:

中文摘要

摘要 微生物燃料电池(MFC)在利用废水发电方面发挥着重要作用。然而,现有的微生物有时缺乏足够的能量,难以表现出显著的电流和功率密度。为解决这一问题,我们采用SolidWorks对设计的双槽MFC系统施加电磁波效应。其中一个槽容纳废水,另一个槽含有氢化钾溶液。实验中使用了5 cm × 5 cm的碳布片和7.5 cm × 9 cm的质子交换膜(PEM)薄膜。碳布经双氧水处理,并在90°C–100°C下加热3小时;PEM薄膜则在75°C下用双氧水煮沸两小时,随后浸泡于硫酸中。我们使用直流电源通过线圈控制电流输出。本文采用200匝铜线圈调节磁场强度,并测试了从0 mT到3 mT范围内的不同磁场强度。电磁波(EM)可显著影响MFC的性能,进而影响微生物的活性。实验中分别施加了0 mT(对照组)、0.5 mT、1 mT、1.5 mT、2 mT、2.5 mT和3 mT(最高)的不同磁场强度。结果表明,在2 mT时MFC达到最优电流密度,为0.88 mA/m²;在3 mT时获得最大功率密度,为0.125 mW/m²。我们还发现电流密度在2 mT时存在磁强度的限制。研究得出结论:在2 mT时观察到最高的电流密度,在3 mT时实现了最高的功率密度以及98%的污染物降解率。本研究对于改进电磁-MFC系统在可持续能源发电与污染物降解方面的应用具有重要意义,有助于实现环境的可持续发展。

English Abstract

Abstract MFC plays an essential role in electricity generation using wastewater. The available microbes sometimes do not have sufficient energy to show the remarkable performance measured current and power density. We used SolidWorks to apply the electromagnetic wave effect to the designed double-tank MFC system to overcome these issues. One tank held wastewater and the other had a potassium hydride solution. We used 5 cm × 5 cm carbon cloth squares and 7.5 cm × 9 cm Proton Exchange Membrane (PEM) films. The carbon cloth was treated with hydrogen peroxide and heated to 90 °C–100 °C for 3 h. The PEM films were boiled in hydrogen peroxide at 75 °C for two hours and then soaked in sulfuric acid . We used a DC power supply to control the current output through a coil. This paper adjusted the magnetic field strength with a 200-turn copper coil and tested magnetic field strengths from 0mT to 3mT. Electromagnetic (EM) waves can significantly impact the MFC performances , influencing microorganisms' activity. The different magnetic field intensities of 0mT (control), 0.5mT, 1mT, 1.5mT, 2mT, 2.5mT, and 3mT (highest) have been applied to the MFC. The result shows that the optimal performance of MFCs increased with the highest current density of 0.88 mA/m 2 at 2mT and a maximum power density of 0.125 mW/m 2 at 3mT. We also found a limitation for magnetic intensity at 2mT for current density. It has been concluded that the highest current density at 2mT, power density, and pollutant degradation of 98 % at 3mT were observed during the study. This work is beneficial in improving the EM-MFC for sustainable power generation and pollutant degradation to make the environment sustainable.
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SunView 深度解读

该电磁波增强微生物燃料电池技术对阳光电源储能系统具有创新启发价值。研究表明2mT磁场强度可使电流密度提升至0.88mA/m²,污染物降解率达98%。这为ST系列储能变流器在工业废水处理场景的应用拓展提供思路:可将电磁场调控技术集成到PowerTitan储能系统中,实现废水处理与能量回收的耦合优化。该技术的功率密度控制策略与阳光电源三电平拓扑的精细化能量管理理念契合,可探索在分布式储能系统中集成生物质能转换单元,提升系统综合能效和环境效益,推动多能互补智慧能源解决方案发展。