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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 1: Alternative energy systems
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Techno-economic evaluations for feasibility of sago-based biorefinery, Part 1: Alternative energy systems

机译:西米生物精炼厂可行性的技术经济评估,第1部分:替代能源系统

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Due to the huge amount of sago biomass generated and discharged to the environment from sago industry without proper treatment, serious environmental impacts are caused. In order to reduce such environmental pollutants, sustainable conversion of biomass into value-added products is of paramount importance. However, up-to-date, sago-based biorefinery, which is a facility that converts sago biomass into value-added products via different conversion technologies, is yet to be implemented in sago industry. Therefore, this pair of articles presents techno-economic evaluation to examine the feasibility of sago-based biorefinery in Malaysia context. This is an essential and necessary initial step to encourage investors to evaluate and invest in sago-based biorefinery. In part 1 of this pair of articles, technoeconomic analysis is conducted to examine the feasibility of sago biomass-based combined heat and power (CHP) system. In addition, a systematic generic fuzzy optimisation-based techno-economic evaluation framework is presented in Part 1 to determine the optimum CHP system with consideration of technical, environmental and economic aspects. Following the proposed approach, the optimum CHP system which using normal pressure boiler, generates 472 kW of net electricity from sago barks (10.2 odt/d) with a payback period of 3.51 years, and carbon saving of 5475 kgCO(2)/d. Note that in order to achieve the optimum result, making use of current labour from sago starch extraction process (SSEP), and off-site pretreatment are needed. Besides, sensitivity analysis based on the existence of pre-treatment, variations in feedstock cost, boiler efficiency, and biomass feedstock is also conducted. Part 2 of this pair of articles is to further extend the techno-economic evaluation to examine the feasibility of integrated sago-based bioethanol production and energy systems (Wan et al., 2015a). In this pair of articles, a sago starch processing facility from Sarawak, Malaysia with a starch production capacity of 12 t/d is used for techno-economic evaluations. (C) 2015 The Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:由于大量的西米生物质在未经适当处理的情况下从西米工业中产生并排放到环境中,因此会造成严重的环境影响。为了减少此类环境污染物,将生物质可持续转化为增值产品至关重要。然而,最新的基于西米的生物精炼厂是通过不同的转化技术将西米生物质转化为增值产品的设施,尚未在西米工业中实施。因此,这两对文章提出了技术经济评估,以检验在马来西亚范围内基于西米的生物精炼厂的可行性。这是鼓励投资者评估和投资基于西米的生物炼油厂的必要且必要的初始步骤。在这对文章的第1部分中,进行了技术经济分析,以检验基于西米生物质的热电联产(CHP)系统的可行性。此外,第1部分介绍了一个基于系统通用模糊优化的技术经济评估框架,以确定考虑技术,环境和经济方面的最佳CHP系统。按照建议的方法,使用常压锅炉的最佳热电联产系统可从西米树皮(10.2 odt / d)产生472 kW的净电力,投资回收期为3.51年,碳减排量为5475 kgCO(2)/ d。请注意,为了获得最佳结果,需要利用西米淀粉提取工艺(SSEP)中的现有劳动力,并需要进行异地预处理。此外,还基于预处理的存在,原料成本,锅炉效率和生物质原料的变化进行了敏感性分析。这对文章的第2部分将进一步扩展技术经济评估,以研究基于西米的生物乙醇生产和能源系统一体化的可行性(Wan等人,2015a)。在这对文章中,使用了马来西亚砂拉越的西米淀粉加工设施,其淀粉生产能力为12吨/天,用于技术经济评估。 (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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