Technology Readiness Assessment of Model Predictive Control in Medium- and High-Voltage Power Electronics

被引:54
|
作者
Papafotiou, Georgios A. [1 ]
Demetriades, Georgios D. [2 ]
Agelidis, Vassilios G. [3 ]
机构
[1] ABB Switzerland, MV Drives, CH-5300 Turgi, Switzerland
[2] ABB Corp Res, S-72226 Vasteras, Sweden
[3] Univ New South Wales, Sch Elect Engn & Telecommun, Sydney, NSW 2052, Australia
关键词
Advanced control; model predictive control; power converters; power electronics; risk assessment; technology readiness assessment; technology readiness levels; BATTERY ENERGY-STORAGE; CONTROL STRATEGY; TORQUE CONTROL; CONTROL SCHEME; MODULATION; CONVERTER; INVERTER;
D O I
10.1109/TIE.2016.2521350
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Model predictive control (MPC) technologies could deliver numerous competitive advantages for power electronics converters and systems with varying impact and benefits. However, assessing the benefits of such advanced and relatively complex control methods at both converter and system level for specific industrial applications is a serious challenge. Moreover, industry must move these technologies from the research and development stage to a maturity level where integrating them into commercial products is relatively low risk and offers economic advantages to customers. First, a generic technology readiness and risk assessment framework is discussed in this paper. Key developments of MPC technologies in power electronics are mapped across their technology readiness levels. Two cases in the area of medium-voltage motor drives are outlined in more detail. Both steady-state and dynamic performance benefits are considered and an attempt to translate them into more tangible economic benefits is reported.
引用
收藏
页码:5807 / 5815
页数:9
相关论文
共 50 条
  • [21] Part II: Integrated high-voltage electronics and power management
    Steyaert, M
    [J]. Analog Circuit Design: Sensor and Actuator Interface Electronics, Integrated High-Voltage Electronics and Power Management, Low-Power and High-Resolution ADC's, 2004, : 135 - 136
  • [22] A New Control Algorithm of Voltage Source Converter Systems for Medium- and High-Power Applications
    Lo, Y. S.
    Lee, C. S.
    Wang, W. S.
    Lian, K. L.
    [J]. 2017 6TH INTERNATIONAL CONFERENCE ON CLEAN ELECTRICAL POWER (ICCEP): RENEWABLE ENERGY IMPACT, 2017, : 614 - 619
  • [23] Dual-Loop Continuous Control Set Model Predictive Control for a High-Voltage and High-Power Energy Storage System
    Meng, Zihe
    Sun, Dongyang
    Wang, Shuai
    Sun, Li
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2024,
  • [24] Development of Medium Voltage SiC Power Technology for Next Generation Power Electronics
    Van Brunt, Edward
    Grider, David
    Pala, Vipindas
    Ryu, Sei-Hyung
    Casady, Jeff
    Palmour, John
    [J]. 2015 IEEE INTERNATIONAL WORKSHOP ON INTEGRATED POWER PACKAGING (IWIPP), 2015, : 72 - 74
  • [25] APPLICATION OF A CHARGE-CONTROL MODEL TO HIGH-VOLTAGE POWER TRANSISTORS
    HOWER, PL
    [J]. IEEE TRANSACTIONS ON ELECTRON DEVICES, 1976, 23 (08) : 863 - 870
  • [26] POWER ELECTRONICS AND PROBLEMS CONCERNING HIGH-VOLTAGE DC POWER TRANSMISSION IN JAPAN
    HEILBRON.F
    [J]. ELEKTROTECHNISCHE ZEITSCHRIFT B-AUSGABE, 1969, 21 (20): : 474 - &
  • [27] High-Speed Finite Control Set Model Predictive Control for Power Electronics
    Stellato, Bartolomeo
    Geyer, Tobias
    Goulart, Paul J.
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2017, 32 (05) : 4007 - 4020
  • [28] Multilevel inverter for interfacing renewable energy sources with low/medium- and high-voltage grids
    Agrawal, Rekha
    Jain, Shailendra
    [J]. IET RENEWABLE POWER GENERATION, 2017, 11 (14) : 1822 - 1831
  • [30] High-Voltage Trenched Rectifiers for Smart Power Technology
    Roig, J.
    Desoete, B.
    Moens, P.
    Bauwens, F.
    [J]. ESSDERC 2008: PROCEEDINGS OF THE 38TH EUROPEAN SOLID-STATE DEVICE RESEARCH CONFERENCE, 2008, : 63 - 66