陆军装甲兵学院 兵器与控制系, 北京 100072
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收稿:2022-05-31,
纸质出版:2023-02-10
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徐浩轩, 马晓军, 刘春光. 混合动力装甲车直流微电网大信号稳定性分析[J]. 兵工学报, 2023,44(1):108-116.
Haoxuan XU, Xiaojun MA, Chunguang LIU. Large-Signal Stability of On-board DC Microgrids for Hybrid Electric Armored Vehicles[J]. Acta Armamentarii, 2023, 44(1): 108-116.
徐浩轩, 马晓军, 刘春光. 混合动力装甲车直流微电网大信号稳定性分析[J]. 兵工学报, 2023,44(1):108-116. DOI: 10.12382/bgxb.2022.0472.
Haoxuan XU, Xiaojun MA, Chunguang LIU. Large-Signal Stability of On-board DC Microgrids for Hybrid Electric Armored Vehicles[J]. Acta Armamentarii, 2023, 44(1): 108-116. DOI: 10.12382/bgxb.2022.0472.
混合动力装甲车直流微电网的电能质量与稳定性关系到车内所有用电设备是否能够安全可靠运行。针对混合动力装甲车辆车载微电网在大扰动下母线电压震荡乃至失稳的现象
建立计及恒功率负载与发电机组的车载微电网的大扰动模型;基于混合势函数理论得到车载微电网稳定性判据
解决了现有大扰动分析方法不适应混合动力装甲车辆车载微电网的问题
并分析了微电网重要参数与响应速度及稳定性之间的关系。通过硬件在环仿真及台架试验验证了稳定性判据及分析结果的可靠性。结果表明:在大扰动下
满足该判据的系统能够稳定运行。
The power quality and stability of an on-board DC microgrid are related to whether the electrical equipment in the vehicle can work safely and reliably. Aiming at the problem of bus voltage oscillation and instability of on-board DC microgrids under large disturbances
a large-disturbance model of an on-board DC microgrid that considers constant power load and engine-generator is established. Based on the mixed potential theory
the stability criterion of the on-board microgrid is obtained
solving the problem that existing large-disturbance analysis methods are not suitable for on-board microgrids. The influence of important parameters on the response speed and stability of the microgrid are also analyzed. Finally
the stability criterion and the accuracy of the analysis results are verified by hardware-in-the-loop simulation and bench experiments. The results show that the system satisfying the criterion can operate stably under large disturbances.
李嘉麒 , 魏曙光 , 廖自力 , 等 . 陆战平台全电化关键技术发展综述 [J ] . 兵工学报 , 2021 , 42 ( 10 ): 2049 - 2059 . DOI: 10.3969/j.issn.1000-1093.2021.10.001 http://doi.org/10.3969/j.issn.1000-1093.2021.10.001 为进一步推进陆战平台全电化技术的发展,介绍了全电化陆战平台的基本特点和主要技术,面向未来陆战战场和新型战争形态阐述全电化技术在提高陆战平台机动性能、持续作战、战斗能力等方面的功能和作用,分析陆军装备轻型化、智能化、无人化的发展趋势。结合我军陆战装备的发展概况,从全电化陆战平台的驱动电机及其控制技术、车载综合电力系统、电磁武器、电磁装甲防护4个方面详细剖析陆战平台全电化的主要内容和关键技术,探究以上关键技术的研究现状,揭示全电化陆战平台持续发展的技术瓶颈,提出陆战平台在电机、电力系统、电磁等方向的发展思路,探索陆战平台全电化技术的运用前景。
LI J Q , WEI S G , LIAO Z L , et al. Review on the key technologies and development of all-electric land warfare platform [J ] . Acta Armamentarii , 2021 , 42 ( 10 ): 2049 - 2059 . (in Chinese) DOI: 10.3969/j.issn.1000-1093.2021.10.001 http://doi.org/10.3969/j.issn.1000-1093.2021.10.001 The basic characteristics and key technologies of an all-electric land warfare platform are introduced, and the importance of the all-electric technologies for improving the performance of land warfare platform is elaborated in terms of vehicular mobility,sustainability,and combat capability. The development tendency of light-weight, intelligent and unmanned land warfare platform is further analyzed. The key technologies of all-electric land warfare platform are investigated in terms of drive motor and its control,integrated power system,electromagnetic weapon,and electromagnetic armor. The technical background and current bottlenecks are studied,and the developing direction of land warfare platform,which includes motor,power system,electromagnetism,are put forward. Finally,the potential future applications of all-electric technologies are explored.
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