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An algebraic targeting approach for effective utilization of biomass in combined heat and power systems through process integration

机译:通过过程集成有效利用热电联产系统中生物质的代数定位方法

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摘要

Green house gases (GHGs) pose some of the most profound impact on the environment. One viable alternative for reducing GHGs is the utilization of biomass to generate heat and power for processing facilities. The purpose of this paper is to address the utilization of biowaste or biomass source in a processing facility for combined heat and power (CHP). In particular, the paper addresses the following questions: How to incorporate biomass utilization in cofiring and energy production within an existing process? How to reconcile thermal demands with opportunities for power cogene-ration through a process-integration framework? What are the economic factors that will insure the feasibility of biomass utilization and power cogeneration? What is the impact on GHG emissions and what are the necessary GHG emission pricing options? A systematic algebraic procedure for targeting cogeneration potential ahead of detailed power generation network design is presented. The approach presented here effectively utilizes biomass and biowaste sources as external fuel, and matches them with the use and dispatch of fuel sources within the process, heating and non-heating steam demands, and power generation. The concept of extractable power introduced by Harell and El-Halwagi AIChE Spring Meeting, New Orleans, March (2003) has been used as a basis of constructing this algebraic cogeneration targeting approach. Steam surpluses and deficits are identified by header balance. Flow balance is performed by cascade diagram techniques and extractable power is computed from net flows to target the cogeneration potential. Next, the paper discusses important economic factors (e.g., GHG pricing options) required for the cost-effective utilization of sole biomass feed or a co-fed mixture of biomass and fossil fuels for CHP. Two case studies are discussed to illustrate the presented approach. The first case study illustrates the developed targeting approach when no external fuel is required and all the higher pressure surplus streams are able to satisfy the lower pressure deficit headers. The second case shows the application of algebraic targeting to obtain the external fuel requirement when surplus headers are not able to meet the deficit demands. Further, this case shows the use of biomass for meeting the demands and the subsequent effects on economics and GHG emissions for the process.
机译:温室气体(GHG)对环境造成了一些最深远的影响。减少温室气体的一种可行替代方法是利用生物质为加工设施产生热量和电能。本文的目的是解决热电联产(CHP)处理设备中生物废物或生物质源的利用。特别是,本文解决了以下问题:如何在现有流程中将生物质利用纳入共烧和能源生产中?如何通过过程集成框架使热需求与发电余热的机会相协调?有哪些经济因素可以确保生物质利用和热电联产的可行性?对温室气体排放有何影响?有哪些必要的温室气体排放定价方案?在详细的发电网络设计之前,提出了一种针对代热潜力的系统代数程序。这里介绍的方法有效地利用了生物质和生物废物源作为外部燃料,并将它们与过程中燃料源的使用和分配,加热和非加热蒸汽需求以及发电相匹配。 Harell和El-Halwagi AIChE春季会议(新奥尔良,2003年3月)提出的可提取功率的概念已被用作构建这种代数热电联产目标方法的基础。蒸汽盈余和赤字由集管箱余额确定。通过级联图技术执行流量平衡,并从净流量中计算出可提取的功率以达到热电联产的潜力。接下来,本文讨论了经济有效地利用唯一的生物质饲料或CHP的生物质和化石燃料混合饲料的重要经济因素(例如,温室气体定价选项)。讨论了两个案例研究以说明所提出的方法。第一个案例研究说明了在不需要外部燃料且所有高压剩余流都能够满足低压差总管的情况下开发的目标定位方法。第二种情况显示了当多余的割台不能满足赤字需求时,采用代数目标确定方法来获得外部燃料需求。此外,此案例显示了使用生物质来满足需求以及该过程对经济性和温室气体排放的后续影响。

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