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綠色低碳園區(qū)電源電網(wǎng)規(guī)劃協(xié)調(diào)優(yōu)化方法

來源:電工電氣發(fā)布時(shí)間:2026-02-26 08:26瀏覽次數(shù):1

綠色低碳園區(qū)電源電網(wǎng)規(guī)劃協(xié)調(diào)優(yōu)化方法

王一鈞,黃廷城,孫軼卿,李震
(中國能源建設(shè)集團(tuán)廣東省電力設(shè)計(jì)研究院有限公司,廣東 廣州 510663)
 
    摘 要:綠色低碳園區(qū)由大量的分布式電源組成,這些分布式電源具有小型化、離散化的特點(diǎn),而與連續(xù)型變量相比,離散型變量的取值是有限且間斷的,這導(dǎo)致優(yōu)化問題的搜索空間變得更大且更加復(fù)雜,算法在搜索最優(yōu)解時(shí)需要遍歷更多的可能性。利用粒子群算法對(duì)綠色低碳園區(qū)電源電網(wǎng)規(guī)劃實(shí)施協(xié)調(diào)優(yōu)化,構(gòu)建以電網(wǎng)建設(shè)投資成本最小、系統(tǒng)網(wǎng)損最小、環(huán)境外部成本最小為目標(biāo)的多目標(biāo)優(yōu)化函數(shù),并考慮了電源容量、儲(chǔ)能配置等約束條件。采用粒子群算法求解多目標(biāo)函數(shù)以及約束條件,通過歸一化處理連續(xù)與離散變量,將其取值范圍映射到一個(gè)統(tǒng)一的區(qū)間,自動(dòng)避開違反約束條件的離散型變量取值組合,從而減少了需要遍歷的可能性,并結(jié)合罰函數(shù)機(jī)制確保約束滿足,實(shí)現(xiàn)綠色低碳園區(qū)電源電網(wǎng)規(guī)劃協(xié)調(diào)優(yōu)化。仿真結(jié)果表明:該方法使清潔能源消納率達(dá)98.2%,碳排放量降至12.3 t/月(較對(duì)比方法減排75%),網(wǎng)損率低于2%,為高比例可再生能源園區(qū)的規(guī)劃提供了可推廣的技術(shù)路徑。
    關(guān)鍵詞: 綠色低碳園區(qū);電網(wǎng)規(guī)劃;協(xié)調(diào)優(yōu)化;網(wǎng)損;粒子群算法
    中圖分類號(hào):TM715     文獻(xiàn)標(biāo)識(shí)碼:A     文章編號(hào):2097-6623(2026)02-0072-05
 
Coordinated Optimization Method for Power Grid Planning in
Green and Low-Carbon Parks
 
WANG Yi-jun, HUANG Ting-cheng, SUN Yi-qing, LI Zhen
(Guangdong Electric Power Design Institute Co., Ltd. of China Energy Engineering Group, Guangzhou 510663, China)
 
    Abstract: The green and low-carbon park consists of a large number of distributed power sources, which are characterized by miniaturization and discretization. Compared to continuous variables, discrete variables have finite and intermittent values, leading to a larger and more complex search space for optimization problems. Algorithms need to traverse more possibilities when searching for the optimal solution. In this paper, the particle swarm optimization algorithm is utilized to implement coordinated optimization for the power grid planning of the green and low-carbon park. A multi-objective optimization function is constructed with the objectives of minimizing the investment cost of grid construction, minimizing system network loss, and minimizing environmental external costs, while considering constraints such as power capacity and energy storage configuration.The particle swarm optimization algorithm is employed to solve the multi-objective function and constraints. Continuous and discrete variables are normalized and mapped to a unified interval, automatically avoiding combinations of discrete variable values that violate the constraints. This reduces the number of possibilities that need to be traversed, and combines a penalty function mechanism to ensure constraint satisfaction, achieving coordinated optimization of power grid planning for the green and low-carbon park. Simulation results show that this method achieves a clean energy consumption rate of 98.2%, reduces carbon emissions to 12.3 t/month (75% reduction compared to the comparative method), and maintains a network loss rate below 2%. It provides a scalable technical path for the planning of high-proportion renewable energy parks.
    Key words: green and low-carbon park; power grid planning; coordination optimization; grid loss; particle swarm optimization algorithm
 
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