Optimal model of the combined cooling, heating, and power system by improved arithmetic optimization algorithm

被引:8
|
作者
Guo, Haibing [1 ]
Sun, Zhi [2 ]
Sun, Haixia [2 ]
Ebrahimian, Homayoun [3 ]
机构
[1] Jiangsu Ocean Univ, Sch Sci, Lianyungang, Jiangsu, Peoples R China
[2] Lianyungang Power Supply Co, Jiangsu Elect Power Co, State Grid, Lianyungang 222000, Jiangsu, Peoples R China
[3] Islamic Azad Univ, Ardabil Branch, Dept Engn, Ardebil, Iran
关键词
Combined cooling; heating; power systems; model optimization; carbon dioxide emission reduction; coefficient of performance; life cycle cost reduction; power generation unit; improved arithmetic optimization algorithm; NEURAL-NETWORK; IDENTIFICATION; PREDICTION; VARIABLES; SELECTION;
D O I
10.1080/15567036.2021.1966138
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Due to the scarcity of energy sources, there is a requirement for a system that, besides saving energy, produces energy on its own. One way to meet this need is to utilize combined cooling, heating, and power (CCHP) systems. The CCHP system is the concurrent and thermodynamic production of two or more energy forms from a clear initial origin. However, the method of determining the chiller properly and the power generation unit capacity is always one of the problems for optimal designing of the CCHP systems. In this study, a new optimized model of the yearly hourly dynamic simulation is proposed for a CCHP system. To get better results, a newly developed design of the newly presented Arithmetic Optimizer Algorithm is designed and conducted. Afterward, the suggested improved Arithmetic Optimizer was selected to optimize the CCHP system for its installed volume. The proposed method is confirmed by a case study from a main business region of Nanjing, China. The final analysis is done by comparison of the method with the real CCHP system, which indicates a proper satisfaction between them. The project has been established by considering a 4260 kW absorption chiller and a 4000-kW engine installed capacity. The power generation unit installed capacity is obtained 1321 kW during the variations of the CDER, PES, and LCCR indexes in various absorption cooling to the highest ratio of cooling load. By improving the absorption chiller installed capacity from 0.1 to 0.6, the CEI is increased. By exceeding the power above 5000 kW, the life cycle cost reduction has been anticipated to be less than 0. Also, simulation results indicate that different results can be obtained by different indexes.
引用
收藏
页数:23
相关论文
共 50 条
  • [1] An optimal planning method for combined cooling heating and power system
    Chen, Peng
    Guan, Lin
    Tang, Zongshun
    Chen, Xiaocan
    Jiang, Zetao
    [J]. PROCEEDINGS OF RENEWABLE ENERGY INTEGRATION WITH MINI/MICROGRID (REM2016), 2016, 103 : 123 - 128
  • [2] Modeling and Optimization of a Combined Cooling, Heating and Power Plant System
    Chandan, Vikas
    Anh-Tuan Do
    Jin, Baoduo
    Jabbari, Faryar
    Brouwer, Jack
    Akrotirianakis, Ioannis
    Chakraborty, Amit
    Alleyne, Andrew
    [J]. 2012 AMERICAN CONTROL CONFERENCE (ACC), 2012, : 3069 - 3074
  • [3] Optimization of combined cooling, heating and power generation by a solar system
    Sanaye, Sepehr
    Sarrafi, Ahmadreza
    [J]. RENEWABLE ENERGY, 2015, 80 : 699 - 712
  • [4] Performance evaluation of solar hybrid combined cooling, heating and power systems: A multi-objective arithmetic optimization algorithm
    Li, Ling-Ling
    Ren, Xin-Yu
    Tseng, Ming-Lang
    Wu, Ding-Shan
    Lim, Ming K.
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2022, 258
  • [5] Developing an improved chameleon swarm algorithm for combined cooling, heating and power micro-grid system
    Liu, Guanchen
    Yuan, Jianping
    Lin, Kuo-Ping
    Miao, Yan
    Li, Rui
    [J]. EXPERT SYSTEMS WITH APPLICATIONS, 2024, 237
  • [6] Optimization and Analysis of Operation Strategies for Combined Cooling, Heating and Power System
    Li, Zhengyi
    Huo, Zhaoyi
    Yin, Hongchao
    [J]. 2011 ASIA-PACIFIC POWER AND ENERGY ENGINEERING CONFERENCE (APPEEC), 2011,
  • [7] An illustration of the optimization of combined cooling heating and power systems using genetic algorithm
    Wang, Jiangjiang
    Yang, Kun
    Zhang, Xutao
    Shi, Guohua
    Fu, Chao
    [J]. BUILDING SERVICES ENGINEERING RESEARCH & TECHNOLOGY, 2014, 35 (03): : 296 - 320
  • [8] A BCS-GDE Algorithm for Multi-objective Optimization of Combined Cooling, Heating and Power Model
    Sun, Jiaze
    Deng, Jiahui
    Li, Yang
    Ma, Shuaiyin
    Han, Nan
    [J]. 2021 IEEE IAS INDUSTRIAL AND COMMERCIAL POWER SYSTEM ASIA (IEEE I&CPS ASIA 2021), 2021, : 293 - 298
  • [9] Optimal Scheduling of Combined cooling heating system
    Deng, Shulei
    [J]. PROCEEDINGS OF THE 2014 INTERNATIONAL CONFERENCE ON COMPUTER SCIENCE AND ELECTRONIC TECHNOLOGY, 2015, 6 : 429 - 432
  • [10] A Novel Optimal Planning Method for Combined Cooling, Heating, and Power (CCHP) System
    Zhan, Liping
    Zhu, Zhenhui
    Peng, Xudong
    Zhou, Gan
    Gu, Wei
    [J]. INDUSTRIAL INSTRUMENTATION AND CONTROL SYSTEMS II, PTS 1-3, 2013, 336-338 : 1134 - +