...
首页> 外文期刊>Energy Conversion & Management >Designing optimal bioethanol networks with purification for integrated biorefineries
【24h】

Designing optimal bioethanol networks with purification for integrated biorefineries

机译:设计具有集成化生物精炼厂提纯效果的最佳生物乙醇网络

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Bioethanol networks with purification for processing pathways in integrated biorefineries are targeted and designed in this work by an analytical approach not requiring graphical constructions. The approach is based on six fundamental equations involving eight variables: two balance equations for the stream flowrate and the bioethanol load over the total network system; one equation for the above-pinch bioethanol load being picked up by the minimum fresh resource and the purified stream; and three equations for the purification unit. A solution strategy is devised by specifying the two variables associated with the purifier inlet stream. Importantly, continuous targeting is then possible over the entire purifier inlet flowrate range on deriving elegant formulae for the remaining six variables. The Unified Targeting Algorithm (UTA) is utilized to establish the minimum fresh bioethanol resource flowrate and identify the pinch purity. The fresh bioethanol resource flowrate target is shown to decrease linearly with purifier inlet flowrate provided the pinch is held by the same point. The Nearest Neighbors Algorithm (NNA) is used to methodically synthesize optimal networks matching bioethanol demands and sources. A case study of a biorefinery producing bioethanol from wheat with arabinoxylan (AX) coproduction is presented. It illustrates the versatility of the approach in generating superior practical designs with up to nearly 94% savings for integrated bioethanol networks, both with and without process constraints, for grassroots as well as retrofit cases.
机译:在这项工作中,通过不需要图形结构的分析方法来针对和设计具有纯化功能的生物乙醇网络,该网络用于整合的生物精炼厂的加工路径。该方法基于涉及八个变量的六个基本方程:两个流量方程和整个网络系统中生物乙醇负荷的平衡方程;用最小的新鲜资源和纯净的物流来吸收一磅以上的生物乙醇负荷的方程式;以及三个净化单元方程式。通过指定与净化器入口流相关的两个变量来设计解决方案策略。重要的是,在推导其余六个变量的精确公式后,就可以在整个净化器入口流量范围内进行连续定位。统一目标算法(UTA)用于建立最小的新鲜生物乙醇资源流量并确定夹点纯度。如果夹点保持在同一点,则新鲜生物乙醇资源流量目标显示为随着纯化器入口流量线性降低。最近邻算法(NNA)用于系统地合成与生物乙醇需求和来源相匹配的最佳网络。提出了一个以小麦与阿拉伯木聚糖(AX)联产生产生物乙醇的生物精炼厂的案例研究。它说明了该方法在生成卓越的实用设计中的多功能性,无论是针对草皮还是翻新案例,无论有无工艺限制,集成的生物乙醇网络最多可节省近94%的成本。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号