Multi-period optimization for the design and operation of a flexible power-to-methanol process

被引:4
|
作者
Maggi, Andrea [1 ]
Bremer, Jens [2 ]
Sundmacher, Kai [1 ,3 ,4 ]
机构
[1] Max Planck Inst Dynam Complex Tech Syst, Sandtorstr 1, D-39106 Magdeburg, Germany
[2] Tech Univ Clausthal, Inst Chem & Electrochem Proc Engn, Leibnizstr 17, D-38678 Clausthal Zellerfeld, Germany
[3] Otto von Guericke Univ, Univ Platz 2, D-39106 Magdeburg, Germany
[4] Max Planck Inst Dynam Complex Tech Syst, Sandtorstr 1, D-39106 Magdeburg, Germany
关键词
Methanol; Multi-period optimization; Flexibility; ENERGY-STORAGE; GAS; SYSTEMS; CO2; ELECTROLYSIS; METHANATION; CAPTURE; RANGE;
D O I
10.1016/j.ces.2023.119202
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The increasing share of renewable resources in the context of energy transition scenarios requires new methodologies for the design and operation of chemical production facilities, which must adapt to the unsteady nature of their power supply. In this contribution, a highly flexible, fully electrified Power-to-Methanol process, supplied with unsteady wind power generated within the system boundaries, is designed by means of a large-scale NLP multi-period optimization for profit maximization. The problem is constrained by detailed models of interconnected units, feasibility conditions, and discretized power loads (periods) associated with their probability of occurrence. External power must be integrated into the plant to sustain feasible operations when the renewable input is not sufficiently available. Results show that the price at which the external power is purchased determines whether the resulting flexible-plant configuration is competitive with a comparable plant, optimized for steady-state operations ensured by large hydrogen or electricity buffers. Intermediate configurations represented by small buffers and semi-flexible operations constitute an important compromise for future applications of this novel approach.
引用
收藏
页数:25
相关论文
共 50 条
  • [31] Hedging strategies for multi-period portfolio optimization
    Davari-Ardakani, H.
    Aminnayeri, M.
    Seifi, A.
    SCIENTIA IRANICA, 2015, 22 (06) : 2644 - 2663
  • [32] Optimization of Multi-Period Rail Procurement Plan
    Shih, Hsin-Cheng
    Yeh, Chih-Heng
    Lai, Yung-Cheng
    TRANSPORTATION RESEARCH RECORD, 2022, 2676 (04) : 324 - 333
  • [33] Optimization Approach for Multi-Period Fuel Replenishment
    Charusakwong, Narongkorn
    Lohatepanont, Manoj
    ENGINEERING JOURNAL-THAILAND, 2016, 20 (05): : 239 - 261
  • [34] Hedging strategies for multi-period portfolio optimization
    Department of Industrial Engineering and Management Systems, Amirkabir University of Technology, P.O. Box 15875-4413, Tehran, Iran
    Sci. Iran., 6 (2644-2663):
  • [35] Optimal Design and Operation of Multi-Period Water Supply Network with Multiple Water Sources
    Zhou, Wenjin
    Iqbal, Kashif
    Lv, Xiaoming
    Deng, Chun
    PROCESSES, 2021, 9 (12)
  • [36] THE RATCHET PRINCIPLE - A MULTI-PERIOD FLEXIBLE INCENTIVE SCHEME
    DARVISH, T
    KAHANA, N
    EUROPEAN ECONOMIC REVIEW, 1989, 33 (01) : 51 - 57
  • [37] Comparative Performance of Multi-Period ACOPF and Multi-Period DCOPF under High Integration of Wind Power
    Larrahondo, Diego
    Moreno, Ricardo
    Chamorro, Harold R.
    Gonzalez-Longatt, Francisco
    ENERGIES, 2021, 14 (15)
  • [38] Demand response scheduling to support distribution networks operation using rolling multi-period optimization
    He, Yujun
    Petit, Marc
    JOURNAL OF PROCESS CONTROL, 2019, 74 : 13 - 22
  • [39] Combined Scheduling and Configuration Optimization of Power-to-Methanol System Considering Feedback Control of Thermal Power
    Ye, Junjie
    Liu, Yinghui
    Sun, Li
    Chen, Ke
    ENERGIES, 2025, 18 (05)
  • [40] Multi-period design of heat exchanger networks
    Ahmad, Muhammad Imran
    Zhang, Nan
    Jobson, Megan
    Chen, Lu
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2012, 90 (11): : 1883 - 1895