Runaway failure analysis and optimal design of 200 kW class turbo-generator system

被引:0
|
作者
Zhu, Jianfeng [1 ]
Huang, Guochen [1 ]
Diao, Bo [1 ]
Xu, Maoguang [1 ]
Wang, Jun [2 ]
Li, Po [1 ]
机构
[1] Xiamen Univ, Sch Aerosp Engn, 4221-134 Xiangan South Rd, Xiamen 361005, Fujian, Peoples R China
[2] Beijing Power Machinery Inst, 17,Yungang West Rd, Beijing 100074, Peoples R China
基金
中国国家自然科学基金;
关键词
Aerospace engineering; Turbo -generator system; Overspeed runaway failure; Small inertia system; Voltage Stabilization; Protective Resistance;
D O I
10.1016/j.engfailanal.2024.108042
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Based on a series hybrid aero propulsion system with power class of 200 kW, voltage of 540 V and speed of 21000r/min, proceeding from the occurrence of the runaway failure during experiment, this study reveals the characteristics and causes of a traditional turbine engine failure in a new application context, focuses on optimizing mechanical issues from the perspective of control strategies and electrical equipment, combined with mechanism analysis and experimental validation. The main conclusions are as follows: the fundamental reason for the high-speed turbogenerator set facing the risk of overspeed runaway is the small rotational inertia of the rotor system, with the direct cause being the power imbalance between the supply side and the demand side of the propulsion system. Experimental verification demonstrated that the active protection scheme based on voltage regulation by battery can keep the speed and voltage of turbine generator set fluctuations below 0.3 % and adjustment time within 0.5 s for load changes within the battery power range, effectively preventing runaway failures caused by minor power fluctuations. Additionally, the passive protection scheme based on power dissipation through resistors reduced the speed of the power turbine from 7000r/min to 2000r/min no more than 2 indicating the effectiveness of this measure in restricting the speed within a safe range.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Design of Large Synchronous Turbo-Generator Monitoring System
    Kovacic, Marinko
    Hanic, Zlatko
    Vrazic, Mario
    2012 XXTH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES (ICEM), 2012, : 1631 - 1636
  • [2] Fuzzy fault diagnosis system for a 200 MW turbo-generator set
    Yang, Ping
    Wu, Jie
    Feng, Yongxin
    Dianli Xitong Zidonghua/Automation of Electric Power Systems, 2001, 25 (01): : 45 - 49
  • [3] Rebuilding of the seal oil system in 200MW turbo-generator
    Gui, Xiliang
    Dadianji Jishu/Large Electric Machine and Hydraulic Turbine, (06): : 51 - 56
  • [4] Fuzzy fault diagnosis system for a 200 MW turbo-generator set
    Ping, Yang
    Jie, Wu
    Yongxin, Feng
    2001, Automation of Electric Power Systems Press (25):
  • [5] Vibration analysis of large turbo-generator stator system
    Qing, GH
    Qiu, JJ
    Hu, YD
    POWERCON 2002: INTERNATIONAL CONFERENCE ON POWER SYSTEM TECHNOLOGY, VOLS 1-4, PROCEEDINGS, 2002, : 2168 - 2172
  • [6] DESIGN OF TURBO-GENERATOR JOURNAL BEARINGS
    TOKAR, IY
    RUSSIAN ENGINEERING JOURNAL-USSR, 1969, 49 (05): : 16 - &
  • [7] SEQUOYAH TURBO-GENERATOR AND ELECTRICAL SYSTEM
    WEAVER, DB
    NUCLEAR ENGINEERING INTERNATIONAL, 1971, 16 (185): : 868 - &
  • [8] Thermographical analysis of turbo-generator rotor
    Singh, A. N.
    Doorsamy, W.
    Cronje, W.
    ELECTRIC POWER SYSTEMS RESEARCH, 2018, 163 : 252 - 260
  • [9] TURBO-GENERATOR FOUNDATION DYNAMIC ANALYSIS
    Bencat, J.
    Lukac, M.
    ENGINEERING MECHANICS 2018 PROCEEDINGS, VOL 24, 2018, : 73 - 76
  • [10] Failure analysis of turbo-generator of a 10 MW captive power plant
    Parida, N
    Tarafder, S
    ENGINEERING FAILURE ANALYSIS, 2001, 8 (03) : 303 - 309