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Multidisciplinary design optimization of distributed energy generation systems: The trade-offs between life cycle environmental and economic impacts

机译:分布式能源系统的多学科设计优化:生命周期环境与经济影响之间的权衡

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摘要

Distributed energy systems (DES) are the focus of increasing attention because they have the potential to enhance the sustainability performance of energy generation. Previous DES researches evaluated various distributed energy technologies and systems from different aspects. However, there is still a research gap to evaluate and compare the multiple technology combinations and sizes for finding optimal energy solutions under various scenarios. This study aims to determine the best combination of technologies and their corresponding sizes for DES for various building types and climate zones in terms of life cycle environmental and economic impact. We developed parametric models (which considers dynamic hour by hour energy demand) for six commercially available distributed energy technologies and simulated the performance of them under various conditions. Then, we used a novel approach - multidisciplinary design optimization (MDO) to examine the billions of options (e.g., technologies, sizes, climate zone, Etc.) and identified the Pareto front with the optimal environmental and economic impact. According to MDO simulations, the microturbine-solar PVs-lithium ion battery and solid oxide fuel cells-solar PVs-lithium ion battery are two optimal combinations of technologies for three commercial building types for five climate zones. The DES can primarily reduce the environmental impact compared to conventional centralized energy production (CCEP) by 16-61% in all scenarios. However, the life cycle cost of DES is higher than CCEP, especially for SOFC-based DES. The microturbine-based DES is more cost-competitive and economical (about 65%, 32%, and 64% lower than SOFC-based DES for the small, medium, and large office, respectively).
机译:分布式能量系统(DES)是越来越多的关注的重点,因为它们有可能提高能量产生的可持续性性能。以前的DES研究评估了不同方面的各种分布式能源技术和系统。但是,仍有一个研究差距来评估和比较多种技术组合和大小,以便在各种场景下寻找最佳能源解决方案。本研究旨在根据生命周期的环境和经济影响,确定各种建筑物类型和气候区的技术和相应尺寸的最佳技术和相应尺寸。我们开发了六种商用分布式能量技术的参数模型(其通过时刻的能量需求),并在各种条件下模拟了它们的性能。然后,我们使用了一种新的方法 - 多学科设计优化(MDO)来检查数十亿的选择(例如,技术,尺寸,气候区等),并以最佳的环境和经济影响确定了帕累托前面。根据MDO仿真,微电表 - 太阳能PVS - 锂离子电池和固体氧化物燃料电池 - 太阳能PVS - 锂离子电池是五种气候区三种商业建筑类型技术的两种最佳组合。与传统的集中能源生产(CCEP)相比,德斯可以主要降低环境影响,在所有情况下达到16-61%。然而,DES的生命周期成本高于CCEP,特别是对于基于SOFC的DES。基于MICRICKINE的DES分别更具成本竞争和经济(约65%,32%,分别低于基于SOFC的DES的小型,中等和大型办公室)。

著录项

  • 来源
    《Applied Energy》 |2021年第15期|116197.1-116197.9|共9页
  • 作者单位

    Georgia Inst Technol Brook Byers Inst Sustainable Syst Sch Civil & Environm Engn 828 West Peachtree St Suite 320 Atlanta GA 30332 USA;

    Georgia Inst Technol Brook Byers Inst Sustainable Syst Sch Civil & Environm Engn 828 West Peachtree St Suite 320 Atlanta GA 30332 USA;

    Georgia Inst Technol Brook Byers Inst Sustainable Syst Sch Civil & Environm Engn 828 West Peachtree St Suite 320 Atlanta GA 30332 USA;

    Georgia Inst Technol Brook Byers Inst Sustainable Syst Sch Civil & Environm Engn 828 West Peachtree St Suite 320 Atlanta GA 30332 USA;

    Rice Univ Nanosyst Engn Ctr Nanotechnol Enabled Water Treat 6100 Main St Houston TX 77005 USA;

    Georgia Inst Technol Brook Byers Inst Sustainable Syst Sch Civil & Environm Engn 828 West Peachtree St Suite 320 Atlanta GA 30332 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Distributed energy systems; Multidisciplinary design optimization; Renewable energy; Parametric modelling; Life cycle assessment; Life cycle cost;

    机译:分布式能量系统;多学科设计优化;可再生能源;参数建模;生命周期评估;生命周期成本;
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