...
首页> 外文期刊>Fuel >Improvement of bioelectricity generation and microalgal productivity with concomitant wastewater treatment in flat-plate microbial carbon capture cell
【24h】

Improvement of bioelectricity generation and microalgal productivity with concomitant wastewater treatment in flat-plate microbial carbon capture cell

机译:平板微生物碳捕集池中伴随废水处理的生物发电和微藻生产率提高

获取原文
获取原文并翻译 | 示例
           

摘要

The unprecedented increase in global population has triggered the energy crisis, climate change and waste disposal issues which are necessitated the advancements in waste to energy technologies. The present study is directed towards evaluating the potential of microbial carbon capture cells (MCC) for simultaneous power generation, wastewater treatment and microalgal biomass production. Chlorella sorokiniana was used to establish the biocathode using anodic effluent as feed. The developed MCC was affected by physico-chemical parameters such as inlet pH, light intensity and photoperiod. The inoculum age of 12 h, inoculum size of 20%v/v, inlet pH 7.5, light intensity of 140 mu mol m(-2) s(-1) and photoperiod of 12:12 (Light:dark) were asserted as most suitable conditions for achieving high performance of biocathode. The electricity generation was dependent upon the O-2 availability at cathode and a drastic drop in voltage was observed under O-2 limited conditions. Supplementation of anodic off-gas alone to cathode was not sufficient to sustain the growth of microalgae. However, combining internal anodic CO2 channelling with external CO2 pumping at cathode enhanced the performance of MCC. The experimental results revealed maximum open circuit voltage of 637 mV with a maximum power density of 2.32 W m(-3). The maximum microalgal dry cell mass of 812 mg L-1 was achieved with an overall COD removal efficiency and energy recovery of 92-95% and 59%, respectively. These sustainability studies show that such a strategy can be applied for real time industrial flue gas treatment along with wastewater treatment in the future.
机译:全球人口的空前增长引发了能源危机,气候变化和废物处置问题,这些问题使废物向能源技术的发展成为必需。本研究旨在评估微生物碳捕获细胞(MCC)同时发电,废水处理和微藻生物质生产的潜力。使用阳极废水作为饲料,用小球藻(Chlorella sorokiniana)建立生物阴极。发达的MCC受诸如入口pH,光强度和光周期等理化参数的影响。接种时间为12小时,接种量为20%v / v,入口pH值为7.5,光强度为140μmol m(-2)s(-1),光周期为12:12(光:暗)。实现生物阴极高性能的最合适条件。发电量取决于阴极上O-2的可用性,并且在O-2受限的条件下观察到电压急剧下降。仅向阴极补充阳极废气不足以维持微藻的生长。但是,将内部阳极CO2通道与外部CO2泵送至阴极相结合可增强MCC的性能。实验结果表明,最大开路电压为637 mV,最大功率密度为2.32 W m(-3)。获得的最大微藻干细胞质量为812 mg L-1,总的COD去除效率和能量回收率分别为92-95%和59%。这些可持续性研究表明,这种策略可以在将来与废水处理一起应用于实时工业烟气处理。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号