以发酵为基础的新型蛋白质的可持续生产

IF 3.9 2区 工程技术 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Rofice Dickson , Seyed Soheil Mansouri
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引用次数: 0

摘要

可持续地养活不断增长的全球人口,同时尽量减少对环境的影响,是人类社会面临的巨大挑战。通过发酵以甲烷为基础的单细胞蛋白质(bio-SCP)已成为传统蛋白质来源(动物和作物)的一种有希望的替代品,解决了畜牧生产中大量温室气体排放的问题。本研究探索了一种利用从沼气中提取的合成天然气生产生物scp的创新方法。该工艺通过厌氧消化食物垃圾产生沼气,通过一系列处理产生沼气,通过甲烷的好氧发酵产生SCP。详细的过程建模显示,所提出的设计消耗25,000 kg/h (200 Mt/年)的食物垃圾,产生4,269.4 kg/h (3420 Mt/年)的SCP和有价值的副产品,如生物肥料、单质硫、低压蒸汽和氮。值得注意的是,拟议的设计实现了接近100%的能源自给自足。技术经济分析表明,资本投资为7.335亿美元,年运营成本为4,396万美元,生物scp的最低销售价格为1.02美元/公斤,具有良好的经济可行性,特别是氮副产品的销售。从摇篮到闸门的生命周期评估强调了生物SCP的环境效益,显示与化石驱动的SCP生产相比,环境影响显著减少。这项研究强调了生物scp在可持续动物营养和减少温室气体排放方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sustainable production of fermentation-based novel proteins
Feeding the growing global population sustainably while minimizing environmental impact is grand challenge for human society. Methane-based single-cell proteins through fermentation (bio-SCP) have emerged as a promising alternative to traditional protein sources (animal and crops), addressing the significant greenhouse gas emissions from livestock production. This study explores an innovative approach to bio-SCP production using synthetic natural gas derived from biogas. The process integrates biogas production via anaerobic digestion of food waste, biogas upgrading through a series of treatments, and SCP production via aerobic fermentation of methane. Detailed process modeling reveals that the proposed design consumes 25,000 kg/h (200 Mt/y) of food waste, producing 4,269.4 kg/h (34.2 Mt/y) of SCP and valuable by-products such as biofertilizer, elemental sulfur, low-pressure steam, and nitrogen. Notably, the proposed design achieves close to 100 % energy self-sufficiency. Techno-economic analysis indicates a capital investment of $733.5 million, annual operating costs of $43.96 million, and a minimum product selling price of $1.02/kg of bio-SCP, demonstrating promising economic viability, especially with nitrogen by-product sales. A cradle-to-gate life cycle assessment highlights the environmental benefits of bio-SCP, showing significant reductions in environmental impacts compared to fossil-driven SCP production. This study underscores the potential of bio-SCP in sustainable animal nutrition and greenhouse gas emission reduction.
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来源期刊
Computers & Chemical Engineering
Computers & Chemical Engineering 工程技术-工程:化工
CiteScore
8.70
自引率
14.00%
发文量
374
审稿时长
70 days
期刊介绍: Computers & Chemical Engineering is primarily a journal of record for new developments in the application of computing and systems technology to chemical engineering problems.
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