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Global optimization of microalgae-to-biodiesel chains with integrated cogasification combined cycle systems based on greenhouse gas emissions reductions

机译:基于减少温室气体排放的集成共气化联合循环系统,对微藻类生物柴油链进行全球优化

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摘要

A microalgae-based energy system, which is a combination of different microalgae-to-biodiesel chains and an integrated cogasification combined cycle (ICGCC) system, is presented. To address the low environmental impacts, the electricity is generated from ICGCC to meet the load demand from the microalgae-to-biodiesel chains and the flue gas exits from ICGCC to meet the demand of growing algal culture. To achieve the microalgae-based energy system with minimum life cycle greenhouse gas (GHG) emissions, the first step is to develop the superstructure model based on GAMS, the second step is to use the optimal heat exchanger network to maximize the heat recovery of ICGCC, and the third step is to find the optimal combination of the microalgae-to-biodiesel chain and optimal operating conditions of ICGCC by solving the global optimization of nonconvex mixed-integer nonlinear programming (MINLP) problem. For the scope of well-to-tank (WIT), the optimal microalgae-based energy system reduces 16.80% greenhouse gas (GHG) emissions compared to the other reported microalgae-to-biodiesel chains. For the scope of well-to-wheel (WTW), the optimal microalgae-based energy system reduces 45.77% GHG emissions compared to the conventional diesel process. (C) 2017 Elsevier Ltd. All rights reserved.
机译:提出了一种基于微藻的能源系统,该系统是不同的微藻到生物柴油链和集成的共气化联合循环(ICGCC)系统的组合。为了解决对环境的低影响,ICGCC产生的电力可以满足微藻到生物柴油链的负荷需求,而ICGCC的烟气则可以满足藻类生长的需求。要实现具有最小生命周期温室气体(GHG)排放的基于微藻的能源系统,第一步是开发基于GAMS的上部结构模型,第二步是使用最佳的热交换器网络来最大化ICGCC的热回收,第三步是通过解决非凸混合整数非线性规划(MINLP)问题的全局优化,找到微藻生物柴油链和ICGCC最佳运行条件的最佳组合。就井到槽(WIT)的范围而言,与其他已报道的微藻到生物柴油链相比,基于微藻的最佳能源系统可减少16.80%的温室气体(GHG)排放。就轮到井(WTW)的范围而言,与传统的柴油工艺相比,基于微藻的最佳能源系统可减少45.77%的温室气体排放。 (C)2017 Elsevier Ltd.保留所有权利。

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