Page 67 - 《中国电力》2026年第3期
P. 67

覃育茗等:考虑富氧燃烧技术与需求响应的工业园区综合能源系统优化调度                                            2026  年第 3 期



                  75–85.                                         [35]   GAO  X  H,  WANG  S,  SUN  Y,  et  al.  Low-carbon  operation  of
               [26]   刘浩田, 陈锦, 朱熹, 等. 一种基于价格弹性矩阵的居民峰谷分时电            integrated electricity–gas system with hydrogen injection considering
                  价激励策略   [J]. 电力系统保护与控制, 2021, 49(5): 116–123.     hydrogen mixed gas turbine and laddered carbon trading[J]. Applied
                  LIU  Haotian,  CHEN  Jin,  ZHU  Xi,  et  al.  An  incentive  strategy  of  Energy, 2024, 374: 123902.
                  residential  peak-valley  price  based  on  price  elasticity  matrix  of  [36]   YE J N, XIE M, ZHANG S P, et al. Stochastic optimal scheduling of
                  demand[J].  Power  System  Protection  and  Control,  2021,  49(5):  electricity–hydrogen  enriched  compressed  natural  gas  urban
                  116–123.                                          integrated  energy  system[J].  Renewable  Energy,  2023,  211:
               [27]   XIONG J, ZHAO H B, ZHENG C G. Techno-economic evaluation of  1024–1044.
                                                                 [37]   GAO X H, WANG S, SUN Y, et al. Low-carbon energy scheduling
                  oxy-combustion coal-fired power plants[J]. Chinese Science Bulletin,
                                                                    for  integrated  energy  systems  considering  offshore  wind  power
                  2011, 56(31): 3333–3345.
               [28]   杨海柱, 白亚楠, 张鹏, 等. 考虑富氧燃烧碳捕集技术和源荷双侧响            hydrogen  production  and  dynamic  hydrogen  doping  strategy[J].
                  应的综合能源系统优化调度       [J]. 中国电力, 2024, 57(8): 227–240.  Applied Energy, 2024, 376: 124194.
                                                                 [38]   邱玥, 周苏洋, 顾伟, 等. “碳达峰、碳中和”目标下混氢天然气技
                  YANG Haizhu, BAI Yanan, ZHANG Peng, et al. Integrated energy
                                                                    术应用前景分析    [J]. 中国电机工程学报, 2022, 42(4): 1301–1321.
                  system  optimal  dispatch  considering  oxy-fuel  combustion  carbon
                                                                    QIU  Yue,  ZHOU  Suyang,  GU  Wei,  et  al.  Application  prospect
                  capture  technology  and  source-load  bilateral  response[J].  Electric
                                                                    analysis  of  hydrogen  enriched  compressed  natural  gas  technologies
                  Power, 2024, 57(8): 227–240.
                                                                    under  the  target  of  carbon  emission  peak  and  carbon  neutrality[J].
               [29]   HUANG Q X, YAO J D, HU Y K, et al. Integrating compressed CO 2
                                                                    Proceedings of the CSEE, 2022, 42(4): 1301–1321.
                  energy  storage  in  an  oxy-coal  combustion  power  plant  with  CO 2
                                                                 [39]   LI  Y,  BU  F  J,  GAO  J  K,  et  al.  Optimal  dispatch  of  low-carbon
                  capture[J]. Energy, 2022, 254: 124493.
                                                                    integrated  energy  system  considering  nuclear  heating  and  carbon
               [30]   赵均祥, 文中, 王秋杰, 等. 基于富氧燃烧技术的综合能源两阶段鲁
                                                                    trading[J]. Journal of Cleaner Production, 2022, 378: 134540.
                  棒低碳经济优化    [J]. 中国电力, 2025, 58(7): 24–37.
                                                                 [40]   CHEN C M, WU X G, MA J E, et al. Optimal low-carbon scheduling
                  ZHAO  Junxiang,  WEN  Zhong,  WANG  Qiujie,  et  al.  Two-stage
                                                                    of  integrated  local  energy  system  considering  oxygen-enriched
                  robust  low-carbon  economic  optimization  for  integrated  energy
                                                                    combustion plant and generalized energy storages[J]. IET Renewable
                  system based on oxy-fuel combustion technology[J]. Electric Power,
                                                                    Power Generation, 2022, 16(4): 671–687.
                  2025, 58(7): 24–37.
                                                                 [41]   ZHANG X P, ZHANG Y Z. Environment-friendly and economical
                           h
               [31]   刘杰. 35MW t 富氧燃烧风烟系统建模与仿真研究   [D]. 武汉: 华中
                                                                    scheduling  optimization  for  integrated  energy  system  considering
                  科技大学, 2016.
                                                                    power-to-gas technology and carbon capture power plant[J]. Journal
                  LIU  Jie.  Modeling  and  simulation  study  of  35MW th   oxy-fuel
                                                                    of Cleaner Production, 2020, 276: 123348.
                  combustion  air/gas  system[D].  Wuhan:  Huazhong  University  of
                                                                 [42]   WANG  R  T,  WEN  X  Y,  WANG  X  Y,  et  al.  Low  carbon  optimal
                  Science and Technology, 2016.
                                                                    operation  of  integrated  energy  system  based  on  carbon  capture
               [32]   ZHANG L, LIU D Y, CAI G W, et al. An optimal dispatch model for
                                                                    technology, LCA carbon emissions and ladder-type carbon trading[J].
                  virtual  power  plant  that  incorporates  carbon  trading  and  green
                                                                    Applied Energy, 2022, 311: 118664.
                  certificate  trading[J].  International  Journal  of  Electrical  Power  &
                                                                                作者简介:

                  Energy Systems, 2023, 144: 108558.
                                                                                  覃育茗(2000),男,硕士研究
               [33]   CHENG M, VERMA P, YANG Z W, et al. Flexible cryogenic air
                                                                                生,从事电力系统优化调度研究,
                  separation  unit:  an  application  for  low-carbon  fossil-fuel  plants[J].
                                                                                E-mail:461657022@qq.com;
                  Separation and Purification Technology, 2022, 302: 122086.
                                                                                  祝云(1974),男,通信作者,
               [34]   郑楚光, 赵永椿, 郭欣. 中国富氧燃烧技术研发进展    [J]. 中国电机
                                                                                博士,从事电力最优化理论及其在智
                  工程学报, 2014, 34(23): 3856–3864.
                                                                                能 电 力 系 统 的 应 用 研 究 , E-mail:
                  ZHENG  Chuguang,  ZHAO  Yongchun,  GUO  Xin.  Research  and
                                                                                691524415@qq.com。
                  development of oxy-fuel combustion in China[J]. Proceedings of the
                  CSEE, 2014, 34(23): 3856–3864.                                            (责任编辑 王文诗)
                                                                                                           63
   62   63   64   65   66   67   68   69   70   71   72