...
首页> 外文期刊>Renewable & Sustainable Energy Reviews >Environmental life cycle assessment of different biorefinery platforms valorizing municipal solid waste to bioenergy, microbial protein, lactic and succinic acid
【24h】

Environmental life cycle assessment of different biorefinery platforms valorizing municipal solid waste to bioenergy, microbial protein, lactic and succinic acid

机译:不同生物提炼平台的环境生命周期评估,以城市固体废物为生物能,微生物蛋白,乳酸和琥珀酸

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

The progressive exhaustion of fossil energy resources and the environmental problems provoked by the excessive use of these resources have driven us to transit from a fossil fuel dependent economy to a more bio-based economy. In this regard, exploiting the organic fraction of municipal solid waste (OFMSW) for producing high value bioproducts and bioenergy under a biorefinery approach has attracted great interest. This paper presents the state of the art of urban biowaste biorefinery concepts. Accordingly, different novel valorization pathways, namely single cell protein, biosuccinic acid, and lactic acid, as well as bioenergy production were consolidated into some scenarios. Moreover, successfully tested hydrogen-assisted biological biogas upgrading was also incorporated into some scenarios as energy source for methanotrophs to upcycle nitrogen rich digestate into single cell protein. Upon the successful lab-scale experiments, different biorefinery platforms were developed and their sustainability was environmentally scrutinized using consequential life cycle assessment. The results obtained herein demonstrated that despite having different net environmental benefits, all the developed scenarios were eco-friendly solutions for valorizing biowaste into bioproducts and bioenergy. Scenarios including microbial protein production led to a saving of -58 to -147 kg CO2,eq/t biopulp in Climate change category, depending on the biorefining pathway. The net saving in Climate change category achieved for Succinic acid- and Lactic acid-based biorefinery was estimated at -73 and -173 kg CO2,eq/t biopulp, respectively. Biological biogas upgrading, if implemented, could increase energy payback by 9724 MJ/t biopulp and contribute more to the sustainability of other developed scenarios. Although scenarios with the main focus on bioenergy production outperformed others in terms of environmental sustainability, some complementary factors such as policy decisions, energy directives, economic issues, and carbon trade schemes must be taken into account in order to introduce the best valorization pathway.
机译:化石能源资源的逐渐枯竭和过度使用这些资源引起的环境问题,促使我们从依赖化石燃料的经济过渡到更加以生物为基础的经济。在这方面,利用生物精炼方法开发城市固体废物的有机部分以生产高价值的生物产品和生物能源引起了极大的兴趣。本文介绍了城市生物废物生物精炼概念的最新发展。因此,将不同的新型增价途径,即单细胞蛋白,生物琥珀酸和乳酸,以及生物能的产生整合到一些场景中。此外,成功测试过的氢辅助生物沼气提纯技术也被纳入了一些方案中,作为甲烷营养生物将富含氮的消化物转化为单细胞蛋白质的能源。在成功进行实验室规模的实验后,开发了不同的生物炼油平台,并通过相应的生命周期评估对环境的可持续性进行了审查。本文获得的结果表明,尽管具有不同的净环境效益,但所有已开发的方案都是将生物废物增值为生物产品和生物能源的生态友好型解决方案。根据生物精炼途径的不同,包括微生物蛋白生产在内的各种情景导致气候变化类别的生物浆减少了-58至-147 kg CO2,eq / t。基于琥珀酸和乳酸的生物精炼厂在气候变化类别中实现的净节省分别估计为-73和-173 kg CO2,eq / t生物浆。生物沼气升级(如果实施)可以使能源回报提高9724 MJ / t生物浆,并为其他已开发方案的可持续性做出更多贡献。尽管就环境可持续性而言,主要侧重于生物能源生产的方案胜过其他方案,但必须考虑一些互补因素,例如政策决定,能源指令,经济问题和碳贸易计划,以引入最佳的价格平衡途径。

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