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Development of integrated assessment platform for biofuels production via fast pyrolysis and upgrading pathway

机译:通过快速热解和升级途径开发生物燃料生产综合评估平台

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摘要

Growing concern over Greenhouse Gas (GHG) emissions from petroleum-based fuel consumption have prompted interest in the production of alternative transportation fuels from biorenewable sources. As required by the Energy Independence and Security Act of 2005, the U.S. Environmental Protection Agency (EPA) finalized the Renewable Fuel Standard (RFS) and mandated petroleum refineries and oil importers to increase the volume of renewable fuel that is blended into petroleum-based transportation fuels. Although biomass is a promising renewable energy for fuels and chemicals production, the technology, economics and environmental issues for bioenergy systems should be extensively evaluated.Other researchers have analyzed bioenergy systems from a number of different perspectives but these perspectives have not been combined into an integrated analysis methodology because of the large number of disparate disciplinary fields that would have to be considered including bioenergy sciences and engineering, environmental sciences, economics, optimization, and numerical modeling. Nor is it a simple matter to integrate the different analytical methods used in economic assessment, environmental impact evaluation, supply chain management, and logistic planning.This dissertation explores the development of integrated assessment platform for biofuels production, using separate modules to evaluate process engineering, economic feasibility, logistics of supply, and environmental impact within a general framework. Four modules are included: process simulation (module A), economics analysis (module B), life cycle assessment (module C), and supply chain \u26 logistics optimization (module D). In this dissertation, the specific instance of production of drop-in biofuels using fast pyrolysis and upgrading is employed as the case study to examine this methodology. Two different bio-oil upgrading pathways are examined using this integrated assessment platform: 1. commodity chemicals production via forest residue fast pyrolysis and hydrotreating/fluidized catalytic cracking (FCC) pathway 2. Co-production of hydrogen and transportation fuels via corn stover fast pyrolysis and hydrotreating/hydrocracking pathway. The preliminary results prove that this developed integrated assessment methodology is a powerful tool to evaluate the biofuels production via fast pyrolysis pathway. This integrated assessment platform could also extended for other energy resource examination.
机译:人们越来越关注基于石油的燃料消耗所产生的温室气体(GHG)排放,这引起了人们对利用生物可再生资源生产替代运输燃料的兴趣。根据2005年《能源独立与安全法》的要求,美国环境保护局(EPA)最终确定了可再生燃料标准(RFS),并授权炼油厂和石油进口商增加混入石油基运输中的可再生燃料的量燃料。尽管生物质是用于燃料和化学品生产的有前途的可再生能源,但应广泛评估生物能源系统的技术,经济和环境问题。其他研究人员从许多不同的角度分析了生物能源系统,但这些观点尚未结合在一起分析方法学,因为必须考虑大量不同的学科领域,包括生物能源科学与工程,环境科学,经济学,优化和数值模型。整合经济评估,环境影响评估,供应链管理和物流规划中使用的不同分析方法也不是一件容易的事。本文探索了生物燃料生产综合评估平台的开发,使用单独的模块来评估过程工程,一般框架内的经济可行性,供应物流和环境影响。其中包括四个模块:过程仿真(模块A),经济分析(模块B),生命周期评估(模块C)和供应链物流优化(模块D)。本文以通过快速热解和提质生产直接生产的生物燃料为例,研究了该方法。使用此综合评估平台研究了两种不同的生物油提纯途径:1.通过森林残渣快速热解和加氢处理/流化催化裂化(FCC)途径生产商品化学品2.通过玉米秸秆快速热解联合生产氢气和运输燃料加氢处理/加氢裂化途径。初步结果证明,这种发达的综合评估方法学是通过快速热解途径评估生物燃料生产的有力工具。该综合评估平台还可以扩展到其他能源资源审查。

著录项

  • 作者

    Zhang, Yanan;

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  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 en
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