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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Techno-economic evaluations for feasibility of sago-based biorefinery, Part 2: Integrated bioethanol production and energy systems
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Techno-economic evaluations for feasibility of sago-based biorefinery, Part 2: Integrated bioethanol production and energy systems

机译:西米生物精炼厂可行性的技术经济评估,第2部分:生物乙醇综合生产和能源系统

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To reduce reliance on fossil fuel and environmental issues, alternative energy sources such as biomass are vital to be recovered and converted into value-added products. In sago industry, a huge amount of sago biomass (i.e., sago barks and fibres) is generated and discharged to the environment during sago starch extraction process (SSEP). In order to reduce environmental pollutants, the biomass can be utilised as feedstocks for energy, and bioethanol production. Therefore, Part 1 of these articles in series presents a techno-economic analysis to examine the feasibility of sago biomass-based combined heat and power (CHP) system (Wan et al., 2015a); and Part 2 is to examine the feasibility of integrated bioethanol production and energy systems. In this part, a conceptual integrated sago-based biorefinery (SBB) is envisioned and analysed based on the bioethanol plant study conducted by the National Renewable Energy Laboratory (NREL). Besides, techno-economic performance as well as environmental performance of this integrated SBB is evaluated via Aspen Plus software and a spreadsheet based yield prediction model. For the performance evaluation, various feedstocks such as sago fibres, barks and combined biomass (fibres and barks) are considered. In addition, techno-economic and environmental performance of the integrated SBB with on-site and off-site enzyme production as well as the impacts of labour cost on the economic performance of the integrated SBB is also evaluated. Based on the evaluation and analysis, the integrated SBB with combined biomass (fibres and barks) has the highest technical, economic and environmental performance amongst the sago biomass. A total of 4.75 t/d of bioethanol and 252 kW/d of electricity are expected to be produced; and reduction of 16.32 tCO(2) equivalent/d of carbon dioxide emission is expected. In addition, the payback period of the integrated SBB with on-site enzyme production and using current available labour from SSEP is estimated as 6.6 years. Based on the analysis, it is noted that enzyme and labour costs are critical cost contributors to the new development of the integrated SBB and hence, a sensitivity analysis on such parameters is performed. (C) 2015 The Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:为了减少对化石燃料和环境问题的依赖,生物质等替代能源对于回收并转化为增值产品至关重要。在西米工业中,在西米淀粉提取过程(SSEP)中会产生大量西米生物量(即西米树皮和纤维)并将其排放到环境中。为了减少环境污染物,生物质可以用作能源和生物乙醇生产的原料。因此,这些系列文章的第1部分提出了一项技术经济分析,以检验基于西米生物质的热电联产(CHP)系统的可行性(Wan等人,2015a);第2部分将研究整合生物乙醇生产和能源系统的可行性。在这一部分中,基于国家可再生能源实验室(NREL)进行的生物乙醇工厂研究,设想并分析了一个概念性的基于西米的综合性生物精炼厂。此外,还通过Aspen Plus软件和基于电子表格的产量预测模型来评估此集成SBB的技术经济性能和环境性能。为了进行性能评估,考虑了各种原料,例如西米纤维,树皮和混合生物质(纤维和树皮)。此外,还评估了带有现场和异地酶生产的集成SBB的技术经济和环境性能,以及劳动力成本对集成SBB的经济性能的影响。根据评估和分析,在西米生物质中,结合了生物质(纤维和树皮)的集成SBB具有最高的技术,经济和环境性能。预计将产生4.75吨/天的生物乙醇和252千瓦/天的电力;预计将减少16.32 tCO(2)当量/天的二氧化碳排放量。此外,结合SBB的现场生产酶和使用SSEP当前可用劳动力的投资回收期估计为6.6年。基于该分析,应注意酶和人工成本是集成SBB新开发的关键成本贡献者,因此,需要对此类参数进行敏感性分析。 (C)2015化学工程师学会。由Elsevier B.V.发布。保留所有权利。

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