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Study on trajectory divergence technology for double-seat escape system and experimental validation

机译:双座逃生系统轨迹分流技术研究及实验验证

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Trajectory interference is a critical problem for the two-seat escape system in low speed which will seriously threaten the pilot's life. In this research, a divergence technology was designed and adopted. The computational simulation method was firstly utilized to analyze and evaluate the trajectory divergence characteristics involving divergence performance and the influence of divergence on ejection height. The mathematical formulations of the entire ejection sequence were established. According to the thoughts of modularization, a solver platform containing many modules depend on the basic physical parts was programmed. By the data flow between modules the realistic physical process could be simulated. The simulation results indicated that the divergence technology effectively prevent the two seats from interference at whole velocity range. Although the ejection height was maximum reduced 12 meters, the integrate performance of the system sufficed the life-saving demands. Subsequently, two-seat rocket sled test was implemented. The results showed that the interference was prevented and the parachute developed successfully before landing which ultimately verified the divergence technology in improving the performance of the two-seat escape system. Consequently, the technology could be applied in engineering.
机译:轨迹干扰是两个座位逃生系统的危重问题,这将严重威胁飞行员的生命。在这项研究中,设计和采用了分歧技术。首先利用计算仿真方法来分析和评估涉及分歧性能的轨迹分歧特性和分歧对喷射高度的影响。建立了整个喷射序列的数学制剂。根据模块化的思考,包含许多模块的求解器平台取决于基本物理部件。通过模块之间的数据流可以模拟逼真的物理过程。仿真结果表明,发散技术有效地防止两个座位在整个速度范围内干扰。虽然喷射高度最大减少12米,但系统的整合性能达到了节约寿命的需求。随后,实施了双座火箭​​橇检查。结果表明,防止干扰,降落伞在着陆前成功开发,最终验证了改善双座逃生系统的性能方面的发散技术。因此,该技术可用于工程。

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