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Biohydrogen, biomethane and bioelectricity as crucial components of biorefinery of organic wastes: A review

机译:生物氢,生物甲烷和生物电作为有机废物生物精炼的关键组成部分:综述

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Biohydrogen is a sustainable form of energy as it can be produced from organic waste through fermentation processes involving dark fermentation and photofermentation. Very often biohydrogen is included as a part of biorefinery approaches, which reclaim organic wastes that are abundant sources of renewable and low cost substrate that can be efficiently fermented by microorganisms. The aim of this work was to critically assess selected bioenergy alternatives from organic solid waste, such as biohydrogen and bioelectricity, to evaluate their relative advantages and disadvantages in the context of biorefineries, and finally to indicate the trends for future research and development. Biorefining is the sustainable processing of biomass into a spectrum of marketable products, which means: energy, materials, chemicals, food and feed. Dark fermentation of organic wastes could be the beach-head of complete biorefineries that generate biohydrogen as a first step and could significantly influence the future of solid waste management. Series systems show a better efficiency than one-stage process regarding substrate conversion to hydrogen and bioenergy. The dark fermentation also produces fermented by-products (fatty acids and solvents), so there is an opportunity for further combining with other processes that yield more bioenergy. Photoheterotrophic fermentation is one of them: photosynthetic heterotrophs, such as non-sulfur purple bacteria, can thrive on the simple organic substances produced in dark fermentation and light, to give more H2. Effluents from photoheterotrophic fermentation and digestates can be processed in microbial fuel cells for bioelectricity production and methanogenic digestion for methane generation, thus integrating a diverse block of bioenergies. Several digestates from bioenergies could be used for bioproducts generation, such as cellulolytic enzymes and saccharification processes, leading to ethanol fermentation (another bioenergy), thus completing the inverse cascade. Finally, biohydrogen, biomethane and bioelectricity could contribute to significant improvements for solid organic waste management in agricultural regions, as well as in urban areas.
机译:生物氢是一种可持续的能源形式,因为它可以通过涉及黑暗发酵和光发酵的发酵过程从有机废物中产生。生物精炼方法经常包含生物氢,该方法可回收有机废物,这些废物是可再生的低成本底物的丰富来源,可以通过微生物有效地发酵。这项工作的目的是严格地评估有机固体废物中选定的生物能源替代品,例如生物氢和生物电,以评估其在生物精炼厂中的相对优缺点,并最终指出未来研究和开发的趋势。生物精炼是将生物质可持续加工为一系列可销售产品的手段,这包括:能源,材料,化学药品,食品和饲料。有机废物的黑暗发酵可能成为完整的生物精炼厂的第一步,而这些生物精炼厂首先会产生生物氢,并可能对固体废物管理的未来产生重大影响。就将底物转化为氢和生物能源而言,串联系统显示出比一步法更好的效率。黑暗发酵还会产生发酵副产物(脂肪酸和溶剂),因此有机会与其他产生更多生物能的过程进一步结合。光异养发酵就是其中之一:光合异养菌,例如非硫紫色细菌,可以在黑暗发酵和光照下生长的简单有机物质上繁衍,从而产生更多的H2。光异养发酵和消化液产生的废水可以在微生物燃料电池中进行处理,以产生生物电,甲烷化消化产生甲烷,从而整合了多种生物能源。来自生物能的几种消化物可用于生物产物的产生,例如纤维素分解酶和糖化过程,从而导致乙醇发酵(另一种生物能),从而完成逆级联反应。最后,生物氢,生物甲烷和生物电可以大大改善农业地区以及城市地区的固体有机废物管理。

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