生物质驱动的多层次低碳综合建筑生产电石-乙炔的新战略1

IF 10.1 1区 工程技术 Q1 ENERGY & FUELS Applied Energy Pub Date : 2024-06-22 DOI:10.1016/j.apenergy.2024.123767
Hongxia Wang , Xiaoli Li , Zhen Wu , Wei Shen , Kai Chen , Bingqing Hong , Zaoxiao Zhang
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引用次数: 0

摘要

针对传统的高能耗、高污染、依赖化石燃料的电石行业,我们开发了一种基于生物质能源的高效清洁电石-乙炔生产系统,包括低碳能源供应、固体废物循环利用和余热的梯级利用。该系统为电石-乙炔生产厂提供来自生物质气化的能源,并将工厂的固体废物电石渣转化为工厂所需的钙原料。工厂高温废气中的余热通过多级热交换回收利用,从而实现能量的级联转换和利用。在 Aspen Plus 中创建了工厂的仿真模型,并通过 Fortran 语言编写和嵌入了生物质气化过程和钙源循环补偿的数学模型。在计算系统的碳消耗量和 CO2e 排放量时发现,传统工艺的碳消耗量和 CO2e 排放量分别为 5.43 t Coal-t-1C2H2 和 2.25 t CO2e-t-1C2H2。相比之下,新工艺的碳消耗减少了 65.19%,碳排放量减少了 27.24%。能量分析表明,传统工艺的系统能效为 36.21%,新工艺的系统能效为 44.82%。有效能量的放能分析表明,新工艺的放能效率为 73.20%,比传统工艺高 52.98%。引入乙炔产品平准化收入(LIOA)指标来表征系统的产品收入。当乙炔价格介于 2.23 美元/千克和 4.19 美元/千克之间时,传统工艺和新工艺的乙炔产品平准化收入分别为 1.41 美元/千克至 3.38 美元/千克和-1.28 美元/千克至 0.68 美元/千克。值得注意的是,新工艺产生净收入的产品临界价格(PCC2H2)为 3.17 美元/千克。这项研究对于开发低碳生物质耦合电石-乙炔工艺具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A new strategy to produce calcium carbide-acetylene from integrated multi-level low carbon construction driven by biomass1

A highly efficient and clean biomass energy-based calcium carbide-acetylene production system, including low-carbon energy supply, solid waste recycling and cascade utilization of waste heat, has been developed for the conventional energy-intensive and highly polluting fossil fuel-dependent calcium carbide industry. This system supplies the carbide-acetylene production plant with energy from the gasification of biomass and converts the plant's solid waste carbide slag into the calcium feedstock required by the plant. The waste heat from the plant's high-temperature exhaust gases is recycled and used via the multi-stage heat exchange, so that the energy cascade conversion and utilization is achieved. A simulation model of the plant is created in Aspen Plus, and a mathematical model for the biomass gasification process and cycle compensation of the calcium source through the Fortran language is written and embedded. When calculating the carbon consumption and CO2e emissions of the system, it was found that the carbon consumption and CO2e emissions of the conventional process were 5.43 t Coal·t−1C2H2 and 2.25 t CO2e·t−1C2H2, respectively. However, the carbon consumption of the new process was reduced by 65.19%, and carbon emissions by 27.24% in comparison. The energy analysis shows that the energy efficiency of the system is 36.21% for the conventional process and 44.82% for the new processes. The exergy analysis of the effective energy shows that the exergy efficiency of the new process is 73.20%, which is 52.98% better than that of the conventional process. Introduction of an index, the levelized income of acetylene product (LIOA), to characterize the product income of the system. When the price of acetylene is between 2.23 $/kg and 4.19 $/kg, the LIOA for the conventional and the new processes are 1.41 $/kg to 3.38 $/kg and − 1.28 $/kg to 0.68 $/kg, respectively. It is worth noting that the critical price (PCC2H2) for products generating net revenue from the new process is 3.17 $/kg. This study is of great importance for the development of a low-carbon biomass-coupled calcium carbide-acetylene process.

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来源期刊
Applied Energy
Applied Energy 工程技术-工程:化工
CiteScore
21.20
自引率
10.70%
发文量
1830
审稿时长
41 days
期刊介绍: Applied Energy serves as a platform for sharing innovations, research, development, and demonstrations in energy conversion, conservation, and sustainable energy systems. The journal covers topics such as optimal energy resource use, environmental pollutant mitigation, and energy process analysis. It welcomes original papers, review articles, technical notes, and letters to the editor. Authors are encouraged to submit manuscripts that bridge the gap between research, development, and implementation. The journal addresses a wide spectrum of topics, including fossil and renewable energy technologies, energy economics, and environmental impacts. Applied Energy also explores modeling and forecasting, conservation strategies, and the social and economic implications of energy policies, including climate change mitigation. It is complemented by the open-access journal Advances in Applied Energy.
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