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Discrepancy between boundary conditions and load introduction of full-scale built-in and sub-scale experimental shell structures of space launcher vehicles

机译:边界条件与空间发射运载工具全尺寸内建和亚尺寸实验壳结构引入载荷之间的差异

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摘要

Shell buckling experiments are mostly conducted in a displacement controlled manner, that is the displacement at the loaded shell edge is increased and the load applied is measured as reaction force. The corresponding boundary conditions are realized by potting the shell edges. Real shell structures, such as primary structures of space launcher vehicles, are loaded in a load controlled manner and boundary conditions are defined by the adjacent structures and stiffening rings. Within this contribution, the discrepancy between boundary conditions and load introduction of full-scale built-in and sub-scale experimental shell structures of space launcher vehicles is studied numerically. For this purpose, dynamic explicit load controlled buckling analyses were performed using theoretical boundary conditions to idealize built-in conditions in an extreme manner and taking localized perturbations, such as those due to a single perturbation load, geometrical dimple imperfections and circular unreinforced cut outs, into account. The results are compared to displacement controlled shell buckling predictions in which boundary conditions commonly used within shell buckling experiments of sub-scale structures are taken into account. (C) 2015 Elsevier Ltd. All rights reserved.
机译:壳体屈曲实验主要以位移控制的方式进行,即增加加载的壳体边缘的位移,并将施加的载荷作为反作用力进行测量。相应的边界条件是通过填充壳边缘来实现的。实际的壳体结构(例如太空运载火箭的主要结构)以载荷控制的方式加载,并且边界条件由相邻的结构和加劲环定义。在此贡献范围内,数值研究了空间条件下运载火箭的全尺寸内置和小尺寸实验壳结构的边界条件与载荷引入之间的差异。为此,使用理论边界条件进行了动态显式载荷控制屈曲分析,以极端方式理想化了内置条件,并采用了局部扰动,例如由于单个扰动载荷,几何凹痕缺陷和圆形未加强切口所引起的扰动,考虑在内。将结果与位移控制的壳屈曲预测进行比较,其中考虑了在小尺度结构的壳屈曲实验中通常使用的边界条件。 (C)2015 Elsevier Ltd.保留所有权利。

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