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利用亚硫酸盐制浆废液生产生物乙醇以减少亚硫酸盐制浆厂温室气体排放的技术经济学

Techno-economics of integrating bioethanol production from spent sulfite liquor for reduction of greenhouse gas emissions from sulfite pulping mills.

作者信息

Petersen Abdul M, Haigh Kate, Görgens Johann F

机构信息

Department of Process Engineering, University of Stellenbosch, Cnr Banghoek and Joubert Street, 7600 Stellenbosch, South Africa.

出版信息

Biotechnol Biofuels. 2014 Dec 5;7(1):169. doi: 10.1186/s13068-014-0169-8. eCollection 2014.

Abstract

BACKGROUND

Flow sheet options for integrating ethanol production from spent sulfite liquor (SSL) into the acid-based sulfite pulping process at the Sappi Saiccor mill (Umkomaas, South Africa) were investigated, including options for generation of thermal and electrical energy from onsite bio-wastes, such as bark. Processes were simulated with Aspen Plus® for mass- and energy-balances, followed by an estimation of the economic viability and environmental impacts. Various concentration levels of the total dissolved solids in magnesium oxide-based SSL, which currently fuels a recovery boiler, prior to fermentation was considered, together with return of the fermentation residues (distillation bottoms) to the recovery boiler after ethanol separation. The generation of renewable thermal and electrical energy from onsite bio-wastes were also included in the energy balance of the combined pulping-ethanol process, in order to partially replace coal consumption. The bio-energy supplementations included the combustion of bark for heat and electricity generation and the bio-digestion of the calcium oxide SSL to produce methane as additional energy source.

RESULTS

Ethanol production from SSL at the highest substrate concentration was the most economically feasible when coal was used for process energy. However this solution did not provide any savings in greenhouse gas (GHG) emissions for the concentration-fermentation-distillation process. Maximizing the use of renewable energy sources to partially replace coal consumption yielded a satisfactory economic performance, with a minimum ethanol selling price of 0.83 US$/l , and a drastic reduction in the overall greenhouse gas emissions for the entire facility.

CONCLUSION

High substrate concentrations and conventional distillation should be used when considering integrating ethanol production at sulfite pulping mills. Bio-wastes generated onsite should be utilized at their maximum potential for energy generation in order to maximize the GHG emissions reduction.

摘要

背景

研究了将亚硫酸盐废液(SSL)生产乙醇整合到南非 Sappi Saiccor 纸厂(乌姆科马斯)基于酸的亚硫酸盐制浆工艺中的流程选项,包括利用树皮等现场生物废弃物产生热能和电能的选项。使用 Aspen Plus® 对工艺进行质量和能量平衡模拟,随后评估经济可行性和环境影响。考虑了在发酵前,目前为回收锅炉提供燃料的氧化镁基 SSL 中各种总溶解固体浓度水平,以及乙醇分离后将发酵残渣(蒸馏残渣)返回回收锅炉的情况。在制浆 - 乙醇联合工艺的能量平衡中还包括利用现场生物废弃物产生可再生热能和电能,以部分替代煤炭消耗。生物能源补充包括燃烧树皮供热和发电,以及对氧化钙 SSL 进行生物消化以产生甲烷作为额外能源。

结果

当使用煤炭作为工艺能源时,在最高底物浓度下从 SSL 生产乙醇在经济上最可行。然而,对于浓缩 - 发酵 - 蒸馏工艺,该解决方案并未在温室气体(GHG)排放方面实现任何节省。最大限度地利用可再生能源来部分替代煤炭消耗产生了令人满意的经济性能。乙醇最低销售价格为 0.83 美元/升,整个工厂的总体温室气体排放量大幅减少。

结论

在考虑亚硫酸盐制浆厂整合乙醇生产时,应采用高底物浓度和常规蒸馏。应充分利用现场产生的生物废弃物来最大限度地发电,以最大限度地减少温室气体排放。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/afff/4267141/f48a82f42828/13068_2014_169_Fig1_HTML.jpg

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