海上发射前阶段运载火箭的滚动机制

IF 2.1 3区 工程技术 Q2 ENGINEERING, AEROSPACE Aerospace Pub Date : 2024-05-16 DOI:10.3390/aerospace11050399
Deng Wang, Wenhao Xiao, Jianshuai Shao, Mingjun Li, Yuanyang Zhao, Yi Jiang
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引用次数: 0

摘要

运载火箭在低海况下进行海上发射时,观察到运载火箭有滚动现象。在波涛汹涌的海况下,发射可能会失败。本研究利用降维驱动的空间系统投影方法和虚拟原型建模技术,揭示了运载火箭的滚动是由质心运动轨迹的差异引起的。此外,在发射前阶段,运输船的滚动和俯仰运动引起的运载火箭质心运动轨迹的变化对运载火箭的滚动运动有很大影响。其他自由度的运动对运载火箭的滚动影响很小。当发射台与运载火箭接触的动摩擦系数为 0.05,适配器和导轨的动摩擦系数为 0.4 时,火箭的滚动最小。这些结论为优化海上发射系统和提高恶劣海况下海上发射的可靠性提供了理论依据。
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Rolling Mechanism of Launch Vehicle during the Prelaunch Phase in Sea Launch
During the sea launch of a launch vehicle in low sea state, a rolling phenomenon of the launch vehicle has been observed. In rough sea conditions, launch may failure. This study utilizes dimensionality reduction-driven spatial system projection methods and virtual prototype modeling technology to reveal that the launch vehicle’s rolling is caused by differences in the motion paths of the center of mass. Additionally, during the prelaunch stage, the variation in the trajectory of the launch vehicle’s center of mass caused by the rolling and pitching motions of the transportation vessel has a significant impact on the roll motion of the launch vehicle. The motion in other degrees of freedom has minimal influence on the launch vehicle’s rolling. The minimum rocket rolling occurs when the dynamic coefficient of friction of the launchpad–launch vehicle contact is 0.05, and the dynamic coefficient of friction of the adapters and guideways is 0.4. The conclusions provide a theoretical foundation for optimizing the sea launch system and enhancing the reliability of sea launch in rough sea conditions.
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来源期刊
Aerospace
Aerospace ENGINEERING, AEROSPACE-
CiteScore
3.40
自引率
23.10%
发文量
661
审稿时长
6 weeks
期刊介绍: Aerospace is a multidisciplinary science inviting submissions on, but not limited to, the following subject areas: aerodynamics computational fluid dynamics fluid-structure interaction flight mechanics plasmas research instrumentation test facilities environment material science structural analysis thermophysics and heat transfer thermal-structure interaction aeroacoustics optics electromagnetism and radar propulsion power generation and conversion fuels and propellants combustion multidisciplinary design optimization software engineering data analysis signal and image processing artificial intelligence aerospace vehicles'' operation, control and maintenance risk and reliability human factors human-automation interaction airline operations and management air traffic management airport design meteorology space exploration multi-physics interaction.
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