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Structural Integrity of Flat Silicon Panels for Nanosatellites: Modeling and Testing

机译:纳米卫星平板硅面板的结构完整性:建模和测试

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摘要

To use the high mass fraction of silicon material in a nanosatellite based on microelectromechanical systems, part of the structural function has been assigned to the flat silicon stacks embracing these systems. Three modules for destructive testing in bending, warping, and shearing cases were built with 68 × 68 × 1 mm silicon stacks bonded in aluminium frames by in situ casting of silicone rubber. A special module of the same size was built with strain gauges of Nichrome. Elastic deformation tests on this and simulations using finite element analysis were performed for bending, warping, and shearing loads of up to 80,40, and 99 N, respectively. The correlation between simulations and experimental measurements was good with deviation of about 30%. The results show that the rubber works well as a mechanical interface between the stiff and brittle silicon stacks and their weaker and ductile aluminium frames. Its thickness influences the stress in the silicon stack significantly. The silicon stack stiffens the module by a factor of 46 and lowers the stress in its frame 24 times in shearing mode, which is the most relevant loading case for the satellite framework. Thus, the concept of using flat silicon panels as structural elements is fully feasible.
机译:为了在基于微机电系统的纳米卫星中使用高质量的硅材料,已将部分结构功能分配给了采用这些系统的扁平硅堆栈。通过在硅框架中现场浇铸硅橡胶,将68×68×1 mm硅叠层粘合在铝框架中,构建了三个用于弯曲,翘曲和剪切情况下破坏性测试的模块。使用镍铬合金应变片构建了一个相同尺寸的特殊模块。对此进行了弹性变形测试,并使用有限元分析进行了模拟,分别针对最大80,40和99 N的弯曲,翘曲和剪切载荷。模拟与实验测量之间的相关性很好,偏差约为30%。结果表明,橡胶在刚性和脆性硅叠层与较弱和易延展的铝制框架之间的机械界面效果良好。其厚度显着影响硅叠层中的应力。硅叠层使模块变硬46倍,并在剪切模式下降低其框架中的应力24倍,这是与卫星框架最相关的加载情况。因此,使用平板状硅板作为结构元件的概念是完全可行的。

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