Coupling study of onboard power generation system of Magnetohydrodynamics enhanced Brayton Cycle

被引:1
|
作者
Wang, Yilin [1 ]
Cheng, Kunlin [1 ,2 ]
Xu, Jing [1 ]
Jing, Wuxing [1 ]
Huang, Hongyan [1 ]
Qin, Jiang [1 ,2 ]
机构
[1] Harbin Inst Technol, Harbin 150001, Peoples R China
[2] Harbin Inst Technol, Chongqing Res Inst, Chongqing 400000, Peoples R China
基金
中国国家自然科学基金;
关键词
closed-Brayton-cycle; Liquid metal magnetohydrodynamics; Power generation onboard; Hydrocarbon-fueled scramjet; Hypersonic vehicle; BINARY-MIXTURES; FUEL;
D O I
10.1016/j.applthermaleng.2024.124250
中图分类号
O414.1 [热力学];
学科分类号
摘要
Closed cycle power generation systems offer a possible solution to meet the high electricity needs of hypersonic vehicles, but the power generation is limited by the finite cold source and cycle temperature. Introducing twophase flow liquid metal (LM) MHD power generation based on Closed-Brayton-Cycle (CBC) is a potential solution that can enhance the thermal-electricity conversion process at the system level. However, it is difficult to reflect the complex coupling relationship between the power generation system and the vehicles propulsion system and the limitations of finite cold sources by relying only on ideal system analysis, especially the contradiction between the void fraction and the mass flow of working fluid after the introduction of LMMHD power generation. The study utilizes a multi-dimensional model to evaluate the performance of the CBC enhanced by multi-stage LMMHD generators coupled with hydrocarbon fuel scramjet. The multi-stage mixing-separation LMMHD generator is proposed to decouple the void fraction of the MHD channel and the wall cooling process, and control the void fraction by change number of stages. The calculation result indicate that the void fraction significantly affects the overall power generation performance, including output power, performance boundary, etc. Increasing the void fraction is beneficial, and the optimal void fraction is 0.65. At the same Mach number, the fuel cooling capacity available to the system increases with the fuel equivalence ratio, resulting in higher total power output. The maximum Mach number for thermal protection of the combustor walls alone may surpass 9.5. For gas void fractions of 0.35/0.5/0.65, the maximum power generation reaches 182.8/167.1/156.9 kW, respectively. The novel system is compared with other advanced thermal-electricity conversion cycles under nearly the same conditions and demonstrated clear performance advantages.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Simulation Research on Coal-fired Power Generation System Using a Supercritical Carbon Dioxide Brayton Cycle
    Wu C.
    Wang S.
    Wang B.
    Li J.
    Zhongguo Dianji Gongcheng Xuebao/Proceedings of the Chinese Society of Electrical Engineering, 2018, 38 (21): : 6360 - 6366
  • [22] THERMAL DESIGN OF A RADIANT GAS HEATER FOR BRAYTON CYCLE POWER SYSTEM
    EVANS, DM
    PUCCI, PF
    MECHANICAL ENGINEERING, 1970, 92 (08) : 52 - &
  • [23] Performance analysis of fuel vapor turbine and closed-Brayton-cycle combined power generation system for hypersonic vehicles
    Dang, Chaolei
    Cheng, Kunlin
    Fan, Junhao
    Wang, Yilin
    Qin, Jiang
    Liu, Guodong
    ENERGY, 2023, 266
  • [24] System mass variation and entropy generation in 100-kWe closed-Brayton-cycle space power systems
    Barrett, MJ
    Reid, BM
    SPACE TECHNOLOGY AND APPLICATIONS INTERNATIONAL FORUM-STAIF 2004, 2004, 699 : 445 - 452
  • [25] CONCEPTUAL DESIGN OF CLOSED BRAYTON CYCLE FOR COAL-FIRED POWER GENERATION.
    Shah, R.P.
    Corman, J.C.
    Proceedings of the Intersociety Energy Conversion Engineering Conference, 1977, : 158 - 165
  • [26] Investigation and optimization on performance of an innovative Brayton cycle in space nuclear power system
    Lu, Tong
    You, Ersheng
    Zhang, Haochun
    Ma, Fangwei
    PROGRESS IN NUCLEAR ENERGY, 2025, 185
  • [27] A novel liquid metal MHD enhanced Closed-Brayton-Cycle power generation system for hypersonic vehicles: Thermodynamic analysis and performance evaluation with finite cold source
    Cheng, Kunlin
    Wang, Yilin
    Xu, Jing
    Qin, Jiang
    Jing, Wuxing
    ENERGY CONVERSION AND MANAGEMENT, 2022, 268
  • [28] Thermodynamic optimization of closed-cycle brayton plants for aerospace power system
    Chen, Lingen
    Sun, Fengrui
    Chen, Wenzhen
    Tuijin Jishu/Journal of Propulsion Technology, 1995, 16 (02):
  • [29] Performance assessment of a closed-recuperative-Brayton-cycle based integrated system for power generation and engine cooling of hypersonic vehicle
    Cheng, Kunlin
    Qin, Jiang
    Sun, Hongchuang
    Dang, Chaolei
    Zhang, Silong
    Liu, Xiaoyong
    Bao, Wen
    AEROSPACE SCIENCE AND TECHNOLOGY, 2019, 87 : 278 - 288
  • [30] Performance analysis and design optimization of a supercritical CO2 Brayton cycle cooling and power generation system coupled with a scramjet
    Ma, Xiaofeng
    Guo, Hao
    Jiang, Peixue
    Zhu, Yinhai
    APPLIED ENERGY, 2025, 383