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过载对金属隔膜翻转行为的影响

冯明宇 赵和明 范凯 鲁思源 许海洋

冯明宇, 赵和明, 范凯, 等. 过载对金属隔膜翻转行为的影响[J]. 航空动力学报, 2026, 41(10):20250052 doi: 10.13224/j.cnki.jasp.20250052
引用本文: 冯明宇, 赵和明, 范凯, 等. 过载对金属隔膜翻转行为的影响[J]. 航空动力学报, 2026, 41(10):20250052 doi: 10.13224/j.cnki.jasp.20250052
Feng Mingyu, Zhao Heming, Fan Kai, et al. Effects of overload on the overturning behavior of metal diaphragm[J]. Journal of Aerospace Power, 2026, 41(10):20250052 doi: 10.13224/j.cnki.jasp.20250052
Citation: Feng Mingyu, Zhao Heming, Fan Kai, et al. Effects of overload on the overturning behavior of metal diaphragm[J]. Journal of Aerospace Power, 2026, 41(10):20250052 doi: 10.13224/j.cnki.jasp.20250052

过载对金属隔膜翻转行为的影响

doi: 10.13224/j.cnki.jasp.20250052
详细信息
    作者简介:

    冯明宇(1996-),男,工程师,硕士,研究领域为空间压力容器技术。E-mail:fengmy1996@163.com

  • 中图分类号: V47;V43;TH49

Effects of overload on the overturning behavior of metal diaphragm

  • 摘要:

    为研究过载对金属隔膜翻转行为的影响,本研究采用仿真及试验验证的方法,深入探讨了过载作用下金属隔膜翻转过程中质心偏移的规律,并设计了一种能够控制质心偏移的筋结构隔膜。根据本文研究,可得出如下结论:当隔膜的轴线与过载方向一致时,隔膜的翻转弯边受到均匀背压,导致隔膜翻转至锥段处无显著偏心,但翻转至球段处则会出现质心偏移;而当隔膜的轴线与过载方向存在角度时,隔膜的翻转弯边受到的背压不均匀,导致隔膜翻转至锥段处便产生质心偏移,并且在翻转至球段处时质心偏移加剧,此外加速度值或角度的增加会导致隔膜质心偏移程度增大。与传统隔膜相比,筋结构隔膜通过筋结构提供的额外启动压力,能够有效地纠正过载排放过程中产生的质心偏移,从而展现了出色的质心控制性能。

     

  • 图 1  隔膜受力示意图

    Figure 1.  Schematic diagram of diaphragm force

    图 2  纯铝真实应力-应变曲线

    Figure 2.  True stress-strain curves of purity aluminum

    图 3  改进金属隔膜结构图

    Figure 3.  Structure diagram of the improved metal diaphragm

    图 4  隔膜质心偏移要求及改进隔膜质心偏移设计(计算)

    Figure 4.  Requirement of centroid offset of diaphragm and the design value of centroid offset of improved diaphragm (calculation)

    图 5  金属隔膜有限元模型

    Figure 5.  Finite element model of metal diaphragm

    图 6  过载排放试验示意图

    Figure 6.  Schematic diagram of overload-overturning experiment

    图 7  过载排放试验平台

    Figure 7.  Platform of overload-overturning experiment

    图 8  金属隔膜结构对比

    Figure 8.  Comparison of metal diaphragm structures

    图 9  质心测试试验示意图(贮箱)

    Figure 9.  Schematic diagram of centroid test experiment (tank)

    图 10  质心测试试验示意图(隔膜排放工装)

    Figure 10.  Schematic diagram of centroid test experiment (diaphragm discharge tool)

    图 11  质心测试试验平台(贮箱)

    Figure 11.  Platform of centroid test experiment (tank)

    图 12  质心测试试验平台(隔膜排放工装)

    Figure 12.  Platform of centroid test experiment (diaphragm discharge tool)

    图 13  不同加速度值下隔膜翻转过程中的顶点径向位移变化曲线(仿真)

    Figure 13.  Change of vertex radial displacement during the overturning process of the diaphragm with different acceleration values (simulation)

    图 14  不同顶点轴向位移时隔膜翻转变形云图对比(加速度值为10g

    Figure 14.  Comparison of overturning deformation contours at different vertex axial displacement (acceleration value is 10g

    图 15  不同角度下隔膜翻转过程中的顶点径向位移变化曲线(仿真)

    Figure 15.  Change of vertex radial displacement during the overturning process of the diaphragm with different angles (simulation)

    图 16  金属隔膜受力分析图(隔膜轴线与过载方向一致时)

    Figure 16.  Stress analysis diagram of metal diaphragm (when the axis of the diaphragm is consistent with the direction of overload)

    图 17  金属隔膜受力分析图(隔膜轴线与过载方向成夹角时)

    Figure 17.  Stress analysis diagram of metal diaphragm (when there is an angle between the axis of the diaphragm and the overload direction)

    图 18  贮箱质心偏移-排放量曲线(试验)

    Figure 18.  Centroid offset - discharge value curve of tank (experiment)

    图 19  隔膜质心偏移情况对比

    Figure 19.  Comparison of diaphragm centroid offset

    图 20  隔膜质心偏移-排放量曲线(试验)

    Figure 20.  Centroid offset-discharge value curve of diaphragm (experiment)

    图 21  翻转至第一根筋条位置隔膜质心偏移情况(受过载后隔膜)

    Figure 21.  Centroid offset of the diaphragm when it is turned over to the first rib position (diaphragm after overload)

    图 22  翻转至第一根筋条位置隔膜状态(受过载后隔膜)

    Figure 22.  State of the diaphragm when it is turned over to the first rib position (diaphragm after overload)

    图 23  翻转完成后的隔膜(受过载后隔膜)

    Figure 23.  Diaphragm after the overturning is completed (diaphragm after overload)

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  • 收稿日期:  2025-01-27
  • 网络出版日期:  2026-07-30

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