计及富氧燃烧-P2A-P2G耦合的综合能源系统低碳经济调度方法

田莉, 李海龙, 高锋阳, 陶彩霞, 郑强, 韦清瑞

太阳能学报 ›› 2026, Vol. 47 ›› Issue (4) : 126-135.

PDF(2060 KB)
欢迎访问《太阳能学报》官方网站,今天是
PDF(2060 KB)
太阳能学报 ›› 2026, Vol. 47 ›› Issue (4) : 126-135. DOI: 10.19912/j.0254-0096.tynxb.2024-2214

计及富氧燃烧-P2A-P2G耦合的综合能源系统低碳经济调度方法

  • 田莉, 李海龙, 高锋阳, 陶彩霞, 郑强, 韦清瑞
作者信息 +

LOW-CARBON ECONOMIC DISPATCH METHOD FOR INTEGRATED ENERGY SYSTEMS TAKING INTO ACCOUNT OXYGEN-ENRICHED COMBUSTION-P2A-P2G COUPLING

  • Tian Li, Li Hailong, Gao Fengyang, Tao Caixia, Zheng Qiang, Wei Qingrui
Author information +
文章历史 +

摘要

为推动能源系统低碳清洁转型,促进风光等清洁能源的就地消纳,提出一种计及富氧燃烧-P2A-P2G耦合的综合能源系统低碳经济调度方法。首先在火电机组侧建立富氧燃烧碳捕集模型,将P2G产生的氧气用于富氧燃烧,并将捕集到的部分CO2用于P2G产生甲烷;其次考虑P2G产生氢气的多元利用,除制取甲烷外还用于P2A产生氨气,并用于火电机组的掺氨燃烧,实现富氧燃烧-P2A-P2G耦合,同时在需求响应和阶梯式碳交易机制下,以综合能源系统运行总成本最低建立低碳经济调度模型;最后算例结果表明,所提模型可有效降低综合能源系统的运行成本和碳排放量。

Abstract

In order to promote the low-carbon and clean transition of the energy system and the local consumption of clean energy such as wind and light, a low-carbon and economic scheduling method of the integrated energy system taking into account the coupling of oxygen-enriched combustion-P2A-P2G is proposed. Firstly, an oxygen-enriched combustion carbon capture model is established on the side of the thermal power unit, and the oxygen produced by P2G is used for oxygen-enriched combustion, and part of the captured CO2 is used for P2G to produce methane. Secondly, the multi-purpose utilization of hydrogen produced by P2G is considered, and it is used for ammonia production by P2A in addition to methane production and used for ammonia mixed combustion in the thermal power unit to realize the oxygen-enriched combustion-P2A-P2G coupling, at the same time, under the demand response and stepped carbon trading mechanism, a low-carbon economic dispatch model is established with the lowest total operating cost of the integrated energy system. The final example results show that the proposed model can effectively reduce the operating cost and carbon emissions of the integrated energy system.

关键词

综合能源系统 / 富氧燃烧 / 掺氨燃烧 / 需求响应 / 阶梯式碳交易 / 低碳经济调度

Key words

integrated energy system / oxygen-enriched combustion / ammonia mixed combustion / demand response / stepped carbon trading / low-carbon economic dispatch

引用本文

导出引用
田莉, 李海龙, 高锋阳, 陶彩霞, 郑强, 韦清瑞. 计及富氧燃烧-P2A-P2G耦合的综合能源系统低碳经济调度方法[J]. 太阳能学报. 2026, 47(4): 126-135 https://doi.org/10.19912/j.0254-0096.tynxb.2024-2214
Tian Li, Li Hailong, Gao Fengyang, Tao Caixia, Zheng Qiang, Wei Qingrui. LOW-CARBON ECONOMIC DISPATCH METHOD FOR INTEGRATED ENERGY SYSTEMS TAKING INTO ACCOUNT OXYGEN-ENRICHED COMBUSTION-P2A-P2G COUPLING[J]. Acta Energiae Solaris Sinica. 2026, 47(4): 126-135 https://doi.org/10.19912/j.0254-0096.tynxb.2024-2214
中图分类号: TM734   

参考文献

[1] 李奇, 霍莎莎, 蒲雨辰, 等. 面向含氢综合能源系统的电-碳-氢耦合交易市场研究综述[J]. 电力自动化设备, 2023, 43(12): 175-187.
LI Q, HUO S S, PU Y C, et al.Review on electricity-carbon-hydrogen coupling trading market for integrated energy system with hydrogen[J]. Electric power automation equipment, 2023, 43(12): 175-187.
[2] 张贵鹏, 程静. 计及碳捕集的虚拟电厂-电制氢多主体协调优化[J]. 太阳能学报, 2023, 44(8): 92-101.
ZHANG G P, CHENG J.Multi-agent coordination and optimization of VPPS-P2H based on carbon capture[J]. Acta energiae solaris sinica, 2023, 44(8): 92-101.
[3] 杨晓辉, 邓叶恒, 王晓鹏, 等. 基于碳交易-绿色证书联合交易机制的含CHP-CCS-P2G耦合的区域综合能源系统低碳经济调度[J]. 太阳能学报, 2024, 45(6): 244-254.
YANG X H, DENG Y H, WANG X P, et al.Low-carbon economic dispatching of regional integrated energy system with CHP-CCS-P2G coupling based on carbon trade-green certificate joint trading mechanism[J]. Acta energiae solaris sinica, 2024, 45(6): 244-254.
[4] 李红伟, 吴佳航, 王佳怡, 等. 计及P2G及碳捕集的风光氢储综合能源系统低碳经济调度[J]. 电力系统保护与控制, 2024, 52(16): 26-36.
LI H W, WU J H, WANG J Y, et al.Low-carbon economic dispatch of a wind, solar, and hydrogen storage integrated energy system considering P2G and carbon capture[J]. Power system protection and control, 2024, 52(16): 26-36.
[5] JIN J L, WEN Q L, CHENG S Q, et al.Optimization of carbon emission reduction paths in the low-carbon power dispatching process[J]. Renewable energy, 2022, 188: 425-436.
[6] 邹宇航, 曾艾东, 郝思鹏, 等. 阶梯式碳交易机制下综合能源系统多时间尺度优化调度[J]. 电网技术, 2023, 47(6): 2185-2198.
ZOU Y H, ZENG A D, HAO S P, et al.Multi-time-scale optimal dispatch of integrated energy systems under stepped carbon trading mechanism[J]. Power system technology, 2023, 47(6): 2185-2198.
[7] 梁俊鹏, 张高航, 李凤婷, 等. 计及氢储能-制氨-碳捕集的综合能源系统低碳优化调度[J]. 电力自动化设备, 2024, 44(10): 16-23.
LIANG J P, ZHANG G H, LI F T, et al.Low-carbon optimal scheduling of integrated energy system considering hydrogen energy storage, ammonia production and carbon capture[J]. Electric power automation equipment, 2024, 44(10): 16-23.
[8] 骆钊, 王菁慧, 王华, 等. 考虑碳捕集和电转气的综合能源系统优化调度[J]. 电力自动化设备, 2023, 43(12): 127-134.
LUO Z, WANG J H, WANG H, et al.Optimal scheduling of integrated energy system considering carbon capture and power-to-gas[J]. Electric power automation equipment, 2023, 43(12): 127-134.
[9] 刘妍, 胡志坚, 陈锦鹏, 等. 含碳捕集电厂与氢能多元利用的综合能源系统低碳经济调度[J]. 电力系统自动化, 2024, 48(1): 31-40.
LIU Y, HU Z J, CHEN J P, et al.Low-carbon economic dispatch of integrated energy system considering carbon capture power plant and multi-utilization of hydrogen energy[J]. Automation of electric power systems, 2024, 48(1): 31-40.
[10] 魏震波, 马新如, 郭毅, 等. 碳交易机制下考虑需求响应的综合能源系统优化运行[J]. 电力建设, 2022, 43(1): 1-9.
WEI Z B, MA X R, GUO Y, et al.Optimized operation of integrated energy system considering demand response under carbon trading mechanism[J]. Electric power construction, 2022, 43(1): 1-9.
[11] 张文伟, 王维庆, 王海云, 等. 考虑碳捕集技术的风光-富氧燃煤发电系统容量优化配置[J]. 电力系统自动化, 2023, 47(13): 176-189.
ZHANG W W, WANG W Q, WANG H Y, et al.Optimal capacity configuration for wind power-photovoltaic and oxygen-enriched coal-fired power generation system considering carbon capture technology[J]. Automation of electric power systems, 2023, 47(13): 176-189.
[12] 崔杨, 曾鹏, 仲悟之, 等. 考虑富氧燃烧技术的电-气-热综合能源系统低碳经济调度[J]. 中国电机工程学报, 2021, 41(2): 592-608.
CUI Y, ZENG P, ZHONG W Z, et al.Low-carbon economic dispatch of electro-gas-thermal integrated energy system based on oxy-combustion technology[J]. Proceedings of the CSEE, 2021, 41(2): 592-608.
[13] 刘朝蓬, 王海云, 王维庆, 等. 基于多运行场景与富氧燃烧捕集技术的低碳能源系统容量优化配置[J]. 电力系统保护与控制, 2023, 51(23): 115-129.
LIU Z P, WANG H Y, WANG W Q, et al.Capacity optimization of low carbon energy systems based on multiple operating scenarios and oxygen-enriched combustion capture technology[J]. Power system protection and control, 2023, 51(23): 115-129.
[14] 张文伟, 王维庆, 樊小朝, 等. 利用风电制氧的富氧燃煤电厂低碳能源系统容量优化配置[J]. 电力系统保护与控制, 2023, 51(5): 70-83.
ZHANG W W, WANG W Q, FAN X C, et al.Optimal capacity configuration of a low carbon energy system of oxygen-enriched coal-fired power plant using wind power to produce oxygen[J]. Power system protection and control, 2023, 51(5): 70-83.
[15] ARSAD A Z, HANNAN M A, AL-SHETWI A Q, et al. Hydrogen energy storage integrated hybrid renewable energy systems: a review analysis for future research directions[J]. International journal of hydrogen energy, 2022, 47(39): 17285-17312.
[16] JIANG H Y, QI B Y, DU E S, et al.Modeling hydrogen supply chain in renewable electric energy system planning[J]. IEEE transactions on industry applications, 2022, 58(2): 2780-2791.
[17] AKARSU B, SERDAR GENÇ M.Optimization of electricity and hydrogen production with hybrid renewable energy systems[J]. Fuel, 2022, 324: 124465.
[18] 李颢然, 孙宏斌, 薛屹洵, 等. 计及电解水制氢的合成氨园区能源局域网低碳经济调度[J]. 上海交通大学学报, 2025, 59(11): 1618-1624.
LI H R, SUN H B, XUE Y X, et al.Low-carbon economic dispatch of energy distribution network in synthetic ammonia park considering hydrogen production by water electrolysis[J]. Journal of Shanghai Jiao Tong University, 2025, 59(11): 1618-1624.
[19] 袁文腾, 陈亮, 王春波, 等. 基于氨储能技术的电转氨耦合风-光-火综合能源系统双层优化调度[J]. 中国电机工程学报, 2023, 43(18): 6992-7003.
YUAN W T, CHEN L, WANG C B, et al.Bi-level optimal scheduling of power-to-ammonia coupling wind-photovoltaic-thermal integrated energy system based on ammonia energy storage technology[J]. Proceedings of the CSEE, 2023, 43(18): 6992-7003.
[20] 胡福年, 周小博, 张彭成, 等. 计及碳捕集的综合能源系统低碳经济优化调度[J]. 太阳能学报, 2024, 45(3): 419-427.
HU F N, ZHOU X B, ZHANG P C, et al.Low carbon economy optimal dispatching of integrated energy system taking into account carbon capture[J]. Acta energiae solaris sinica, 2024, 45(3): 419-427.

基金

甘肃省重点研发计划(23YFFA0059); 甘肃省科技计划资助(23JRRA880)

PDF(2060 KB)

Accesses

Citation

Detail

段落导航
相关文章

/