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基于力流等效的环形网顶破力学行为解析方法 被引量:10
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作者 郭立平 余志祥 +2 位作者 骆丽茹 齐欣 赵世春 《工程力学》 EI CSCD 北大核心 2020年第5期129-139,共11页
该文提出了一种基于力流等效的环形网片解析计算方法,用于防护系统环形网拦截单元的顶破力学行为解析。考虑钢丝圈数影响,采用液压作动器控制的球冠形顶头对柔性钢丝网片进行位移加载,开展了8种规格共24张环形网片试件的拟静态顶破试验... 该文提出了一种基于力流等效的环形网片解析计算方法,用于防护系统环形网拦截单元的顶破力学行为解析。考虑钢丝圈数影响,采用液压作动器控制的球冠形顶头对柔性钢丝网片进行位移加载,开展了8种规格共24张环形网片试件的拟静态顶破试验,明确了环形网片在顶破作用下的力-位移关系。根据试验结果,开展了力流分析,发现环形网片顶破极限状态的承载力主要受若干径向分布的环链影响,据此将力流路径上的环链等效为直线纤维,构建了基于力流等效的网片分析模型。采用Python程序求解获得模型的力与位移解,经与试验结果对比分析,验证了该方法的可靠性,同时,该模型可以揭示网片承载的薄弱区分布特征,并能反映网片顶破极限状态下的径向环链受拉特征。 展开更多
关键词 防护工程 环形网 解析方法 顶破 非线性 力流等效
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HYBRID APPROACH FOR ESTIMATING COUPLING EFFECT BETWEEN PROPELLANT SLOSHING DYNAMIC AND SPACECRAFT GNC
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作者 齐乃明 董锴 +1 位作者 李运迁 赵宝山 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI 2009年第2期137-146,共10页
An approach based on equivalent mechanics theory and computational fluid dynamics (CFD) technology is proposed to estimate dynamical influence of propellant sloshing on the spacecraft. A mechanical model is estab- l... An approach based on equivalent mechanics theory and computational fluid dynamics (CFD) technology is proposed to estimate dynamical influence of propellant sloshing on the spacecraft. A mechanical model is estab- lished by using CFD technique and packed as a "sloshing" block used in spacecraft guidance navigation and control (GNC) simulation loop. The block takes motion characteristics of the spacecraft as inputs and outputs of pertur- bative force and torques induced by propellant sloshing, thus it is more convenient for analyzing coupling effect between propellant sloshing dynamic and spacecraft GNC than using CFD packages. An example demonstrates the accuracy and the superiority of the approach. Then, the deducing process is applied to practical cases, and simulation results validate that the proposed approach is efficient for identifying the problems induced by sloshing and evaluating effectiveness of several typical designs of sloshing suppression. 展开更多
关键词 equivalent mechanical model computational fluid dynamics(CFD)technique propellant sloshing
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