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Integrated system approach to dark fermentative biohydrogen production for enhanced yield, energy efficiency and substrate recovery

机译:深发酵化生物氢生产的集成系统方法,提高产量,能效和基材回收

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The challenges of climate change, dwindling fossil reserves, and environmental pollution have fuelled the need to search for clean and sustainable energy resources. The process of biohydrogen has been highlighted as a propitious alternative energy of the future because it has many socio-economic benefits such as non-polluting features, the ability to use diverse feedstocks including waste materials, the process uses various microorganisms, and it is the simplest method of producing hydrogen. However, the establishment of a biohydrogen driven economy has been hindered by low process yields due to the accumulation of inhibitory products. Over the past few years, various optimization methods have been used in literature. Among these, integration of bioprocesses is gaining increasing prominence as an effective approach that could be used to achieve a theoretical yield of 4 mol H-2 mol(-1) glucose. In batch integrated systems, dark fermentation is used as a primary process for conversion of substrates into biohydrogen, carbon dioxide, and volatile fatty acids. This is followed by a secondary anaerobic process for further biohydrogen conversion efficiency. This review discusses the current challenges facing scale-up studies in dark fermentation process. It elucidates the potential of batch integrated systems in biohydrogen process development. Furthermore, it explores the various integrated fermentation techniques that are employed in biohydrogen process development. Finally, the review concludes with recommendations on improvement of these integrated processes for enhanced biohydrogen yields which could pave a way for the establishment of a large-scale biohydrogen production process.
机译:气候变化,Dwindling化石储备和环境污染的挑战推动了寻求清洁和可持续能源资源的必要性。生物氢的过程被强调为未来的卓越替代能源,因为它具有许多社会经济益处,如非污染功能,使用包括废料等多种原料的能力,该过程使用各种微生物,是最简单的制备氢方法。然而,由于抑制产物的积累,通过低工艺产量阻碍了生物氢驱动经济的建立。在过去几年中,各种优化方法已用于文学中。其中,生物过程的整合正在增加作为可用于实现4摩尔H-2mol(-1)葡萄糖的理论产率的有效方法的突出性。在批量集成系统中,暗发酵用作将基质转化为生物氢,二氧化碳和挥发性脂肪酸的主要方法。其次是用于进一步的生物氢转化效率的二级厌氧工艺。本综述讨论了当前在深发酵过程中面临扩大研究的当前挑战。它阐明了生物氢过程开发中的批量集成系统的潜力。此外,它探讨了在生物氢过程发育中使用的各种综合发酵技术。最后,审查结束了关于改善这些综合加入的提高生物氢产量的建议,这可能为建立大规模的生物氢生产过程而铺平道路。

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