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可靠性与测试 ★ 4.0

基于内燃机与斯特林发动机混合动力的新型CCHP系统仿真与性能优化

Simulation and performance optimization of a novel hybrid CCHP system based on the prime movers of internal combustion engine and Stirling engine

作者 Mohammad Sheykhi · Mahmood Mehregan · Saeed Ghorbani · Amin Emamian · Mohammad Hassan Kayhani · Amin Amiri Delouei · Shahabodin Kharazmi · Mohammad Kazem Sheykhian · Shunmin Zhu
期刊 Applied Energy
出版日期 2025年1月
卷/期 第 393 卷
技术分类 可靠性与测试
相关度评分 ★★★★ 4.0 / 5.0
关键词 Proposes a novel CCHP system arrangement including an ICE and an SE in parallel.
语言:

中文摘要

摘要:冷热电联产系统(CCHP)能够提高传统能源供应系统的效率,并减少碳排放。本文提出了一种新型的冷热电联产(CCHP)系统结构,其原动机采用内燃机与斯特林发动机相结合的方式,通过龙格-库塔法进行数值模拟,并采用遗传算法技术进行优化。文中讨论了若干关键参数对CCHP系统容量、效率、一次节能率以及投资回收期的影响,这些参数包括斯特林发动机的转速、相位角、回热器长度及孔隙率,以及内燃机的转速和点火正时。结果表明,由于内燃机具有较高的运行效率,采用混合原动机的CCHP系统可使斯特林发动机在高转速下启动,从而提升了整体系统性能。在此条件下,与仅使用斯特林发动机作为原动机的CCHP系统相比,混合系统的总效率提高了12%。此外,当两种发动机均在3500 rpm工况下运行时,采用复合原动机的CCHP系统投资回收期约为4.4年,比单纯基于内燃机的CCHP系统缩短约1.6年。本研究为采用两种不同燃烧类原动机的混合式CCHP系统的设计与优化提供了有价值的理论依据。

English Abstract

Abstract Combined cooling, heating, and power systems (CCHP) could increase the efficiency of conventional energy supply systems and mitigate carbon emissions. In this paper, a novel arrangement of a combined cooling, heating, and power (CCHP) system is presented with prime movers of internal combustion and Stirling engines, which are numerically simulated by Range-Kutta method and optimized with the genetic algorithm technique. The influence of some key parameters such as Stirling engine speed, phase angle, length and porosity of Stirling engine's regenerator, and also speed and spark timing of the internal combustion engine, on the capacity, efficiency, primary energy saving and the investment payback period of the CCHP system has been discussed. The results illustrated that using the CCHP system with hybrid prime movers, due to the appropriate efficiency of the combustion engine, allows the Stirling engine to be started at high speeds. In this condition, the overall efficiency of the hybrid system is increased by 12 % compared to using the CCHP system with only the Stirling engine. Additionally, the payback period of the CCHP system with combined prime movers at 3500 rpm for the two engines is approximately 4.4 years, which is about 1.6 years shorter than the payback period of the CCHP system based solely on the internal combustion engine. This work provides valuable insights into the design and optimization of hybrid CCHP systems with two different combustion-based prime movers.
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SunView 深度解读

该混合CCHP系统的多能源协同优化思路对阳光电源综合能源解决方案具有重要借鉴价值。其遗传算法优化方法可应用于ST系列储能系统与分布式光伏的协同调度,通过iSolarCloud平台实现多能互补优化。混合动力机组效率提升12%的成果启发PowerTitan储能系统在工商业场景中集成冷热电三联供,缩短投资回收期。研究中的相位角、转速等参数优化策略可迁移至SG逆变器的MPPT算法和充电桩功率调控,提升系统综合能效和经济性。