计及负荷特性的超高层建筑配电网两阶段优化

朱乾龙, 李大为, 陶骏

太阳能学报 ›› 2024, Vol. 45 ›› Issue (5) : 422-430.

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太阳能学报 ›› 2024, Vol. 45 ›› Issue (5) : 422-430. DOI: 10.19912/j.0254-0096.tynxb.2023-1204

计及负荷特性的超高层建筑配电网两阶段优化

  • 朱乾龙, 李大为, 陶骏
作者信息 +

TWO-STAGE OPTIMIZATION OF DISTRIBUTION NETWORK FOR SUPER HIGH-RISE BUILDINGS CONSIDERING LOAD CHARACTERISTICS

  • Zhu Qianlong, Li Dawei, Tao Jun
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文章历史 +

摘要

超高层建筑配电网的两阶段优化,阶段Ⅰ依据建筑配电变压器标准规格,以负荷饱和度、反峰谷差率和日负荷率为评估指标,优化超高层建筑的供电区划分;阶段Ⅱ以最小化变压器和线路投资成本、系统年网损为目标,优化建筑内变压器和中低压线路的配置方案;以某实际超高层建筑为例进行对比分析,结果表明所提超高层建筑配电网两阶段优化方法不仅能减少设备的初始投资,还可进一步提升超高层建筑配电网运行的稳定性和经济性。

Abstract

The two-stage optimization of the distribution network of super high-rise buildings. According to the standard specifications of building distribution transformers, stage I optimizes the division of power supply areas of super high-rise buildings with load saturation, inverse peak-valley difference rate and daily load rate as evaluation indicators. Stage II optimizes the configuration scheme of transformers and medium and low voltage lines in buildings with the goal of minimizing the investment cost of transformers and lines and the annual network loss of the system. Taking an actual super high-rise building as an example for comparative analysis, the results show that the proposed two-stage optimization method of super high-rise building distribution network can not only reduce the initial investment of equipment, but also further improve the stability and economy of super high-rise building distribution network operation.

关键词

配电网 / 建筑布线 / 电力分配 / 变电站 / 超高层建筑

Key words

building wiring / electric power distribution / transformer substations / super high-rise building

引用本文

导出引用
朱乾龙, 李大为, 陶骏. 计及负荷特性的超高层建筑配电网两阶段优化[J]. 太阳能学报. 2024, 45(5): 422-430 https://doi.org/10.19912/j.0254-0096.tynxb.2023-1204
Zhu Qianlong, Li Dawei, Tao Jun. TWO-STAGE OPTIMIZATION OF DISTRIBUTION NETWORK FOR SUPER HIGH-RISE BUILDINGS CONSIDERING LOAD CHARACTERISTICS[J]. Acta Energiae Solaris Sinica. 2024, 45(5): 422-430 https://doi.org/10.19912/j.0254-0096.tynxb.2023-1204
中图分类号: TU976+.1   

参考文献

[1] GB 50352—2005, 民用建筑设计通则[S].
GB 50352—2005, Code for design of civil buildings[S].
[2] ZHANG Y M, YAN Z, LI L, et al.A hybrid building power distribution system in consideration of supply and demand-side: a short overview and a case study[J]. Energies, 2018, 11(11): 3082.
[3] 陈宇. 超高层建筑变电所选址方案的探讨[J]. 智能建筑与智慧城市, 2022(10): 126-128.
CHEN Y.Discussion on site selection scheme of substation in super high-rise building[J]. Intelligent building & smart city, 2022(10): 126-128.
[4] 孙峰. 超高层建筑供配电系统设计[J]. 现代建筑电气, 2015, 6(S1): 23-28.
SUN F.Design of power supply and distribution system for super high-rise building[J]. Modern architecture electric, 2015, 6(S1): 23-28.
[5] 何创. 超高层建筑变电所设计需注意的几个问题[J]. 智能建筑电气技术, 2019, 13(3): 25-27.
HE C.Topic for discussion on electric power substation design in super high-rise building[J]. Electrical technology of intelligent buildings, 2019, 13(3): 25-27.
[6] SUN K, HE D, WANG L, et al.A grid-based method for distribution network planning in urban areas[J]. IOP conference series: earth and environmental science, 2018, 199: 052053.
[7] 肖白, 郭蓓, 姜卓, 等. 基于负荷点聚类分区的配电网网架规划方法[J]. 电力建设, 2018, 39(11): 85-95.
XIAO B, GUO B, JIANG Z, et al.Distribution network planning method based on clustering blocks of load nodes[J]. Electric power construction, 2018, 39(11): 85-95.
[8] 葛少云, 蔡期塬, 刘洪, 等. 考虑负荷特性互补及供电单元划分的中压配电网实用化自动布线[J]. 中国电机工程学报, 2020, 40(3): 790-803.
GE S Y, CAI Q Y, LIU H, et al.Practical automatic planning for MV distribution network considering complementation of load characteristic and power supply unit partitioning[J]. Proceedings of the CSEE, 2020, 40(3): 790-803.
[9] 汤波, 杨鹏, 余光正, 等. 基于负荷峰谷耦合特性的中压配电网供区优化方法[J]. 中国电机工程学报, 2022, 42(19): 7051-7063.
TANG B, YANG P, YU G Z, et al.Power supply area optimization method of medium voltage distribution network based on load peak valley coupling characteristics[J]. Proceedings of the CSEE, 2022, 42(19): 7051-7063.
[10] LIAN H B, DI X J, SHEN Z Y, et al.Detailed power distribution network planning based on the description of load characteristics[C]//2014 China International Conference on Electricity Distribution (CICED). Shenzhen, China, 2014: 1759-1762.
[11] CUI Y Y, WEI T, ZHAO L J, et al.Research on main transformer capacity configuration of 110~35 kV substation based on different power regions[C]//2014 China International Conference on Electricity Distribution (CICED). Shenzhen, China, 2014: 680-684.
[12] 陈长青, 李欣然, 张冰玉, 等. 考虑负荷动态特性的多阶段光储协调规划研究[J]. 太阳能学报, 2022, 43(6): 8-16.
CHEN C Q, LI X R, ZHANG B Y, et al.Research on multi-stage optical storage coordination planning considering load dynamic characteristics[J]. Acta energiae solaris sinica, 2022, 43(6): 8-16.
[13] 苏向敬, 刘一航, 张知宇, 等. 计及源荷不确定影响的不平衡配电网两阶段优化[J]. 电力系统保护与控制, 2022, 50(23): 94-103.
SU X J, LIU Y H, ZHANG Z Y, et al.Two-stage optimization of unbalanced distribution networks considering impacts of DG and load uncertainties[J]. Power system protection and control, 2022, 50(23): 94-103.
[14] 刘科研, 盛万兴, 马晓晨, 等. 基于多种群遗传算法的分布式光伏接入配电网规划研究[J]. 太阳能学报, 2021, 42(6): 146-155.
LIU K Y, SHENG W X, MA X C, et al.Research on distribution network planning of distributed photovoltaic access based on multi-population genetic algorithm[J]. Acta energiae solaris sinica, 2021, 42(6): 146-155.
[15] 季一木, 陈忱, 李航, 等. 基于动态规划的光伏组件最优布线算法设计与实现[J]. 太阳能学报, 2020, 41(7): 113-119.
JI Y M, CHEN C, LI H, et al.Design and implementation of optimum wiring algorithm for PV module based on dynamic programming[J]. Acta energiae solaris sinica, 2020, 41(7): 113-119.
[16] 蔡龙俊, 欧阳生春. 区域供冷供热住宅建筑空调负荷同时使用系数的计算[J]. 能源技术, 2006, 27(3): 130-132.
CAI L J, OUYANG S C.Calculate the simultaneity usage coefficient of household air-conditioning load for district cooling and heating[J]. Energy technology, 2006, 27(3): 130-132.
[17] 陈应盛. 配电网10 kV线路接入配电变压器容量限额研究[J]. 湖南电力, 2020, 40(3): 48-51, 55.
CHEN Y S.Research on capacity quota of 10 kV transmission line connected to distribution transformer in distribution network[J]. Hunan electric power, 2020, 40(3): 48-51, 55.
[18] 林福光. 民用建筑电气设计与安装图集[M]. 北京: 中国水利水电出版社, 2004: 27-30.
LIN F G.Atlas of electrical design and installation of civil buildings[M]. Beijing: China Water & Power Press, 2004: 27-30.
[19] GB 51348—2019, 民用建筑电气设计标准[S].
GB 51348—2019, Standard for electrical design of civil buildings[S].
[20] 建筑工程常用数据系列手册编写组. 建筑电气常用数据手册[M]. 北京: 中国建筑工业出版社, 1997: 3-9.
Building Engineering Common Data Series Manual Writing Group. Building electrical common data manual[M]. Beijing: China Architecture & Building Press, 1997: 3-9.
[21] 刘会兵. 某超高层建筑的供电设计[J]. 建筑设计管理, 2017, 34(8): 85-88.
LIU H B.Power supply design of a super high-rise building[J]. Architectural design management, 2017, 34(8): 85-88.

基金

安徽省自然科学基金(2108085QE238); 安徽省重点研究与开发计划(202104a05020056)

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