首页> 外文会议>National Aeronautics and Space Administration Space Simulation Conference >NOVEL GUIDED HEAD EXPANDER DESIGN USES CLOSE COUPLED INERTIAL MASSES AND HYDROSTATIC BEARINGS TO MINIMIZE CROSS AXIS MOTION
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NOVEL GUIDED HEAD EXPANDER DESIGN USES CLOSE COUPLED INERTIAL MASSES AND HYDROSTATIC BEARINGS TO MINIMIZE CROSS AXIS MOTION

机译:新颖的引导头扩展器设计使用紧密耦合的惯性质量和静液压轴承,以最小化横轴运动

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When vertical vibration testing of large test articles is required, it is common to install a head expander on the armature of a shaker. Larger test articles often have a center of gravity that is relatively far above the mounting surface, and these test articles in combination with the armature and head expander, may have multiple structural resonances within the desired test band that do not exist in the intended application. These test configuration driven characteristics are likely to create unwanted cross axis excitation during a vibration test. The difficulty in controlling unwanted cross axis motion usually increases when testing large items. Excessive cross axis motion can “over-test” the test item, creating the risk of damaging the test item or limit the input in the test axis jeopardizing a successful test. At Orbital Sciences request, Team Corporation designed a guided head expander system that greatly reduces the cross axis motion at the test article mounting surface of the head expander. The new design couples large inertial masses to the head expander through high stiffness hydrostatic self-aligning bearings. The entire guided head expander and inertial mass structures have a first resonance higher than the test band of interest, and provides high dynamic stiffness. The head expander and inertial masses are supported by a suspension system with a low first resonance, below the test band. It is interesting to note that this design approach exhibits high “dynamic” stiffness and low static stiffness. Conventional designs for this type of equipment may have relatively high cross axis load ratings which might suggest that they would provide good cross axis motion control, but these designs often suffer from structural resonances within the test band of interest that produce unwanted cross axis motion.
机译:当需要大型测试制品的垂直振动测试时,通常安装在振动筛的电枢上的头部扩展器。较大的测试制品通常具有高于安装表面上方相对远的重心,并且这些测试制品与电枢和头部膨胀机组合,可以在预期应用中不存在的所需测试频带内具有多个结构谐振。这些测试配置驱动特性可能在振动测试期间产生不需要的横轴激励。在测试大物品时,控制不需要的横轴运动的难度通常会增加。过度横轴运动可以“过度测试”测试项目,从而造成损坏测试项目的风险或限制测试轴中的输入危及成功的测试。在轨道科学请求中,团队公司设计了一个引导头扩展系统,极大地减少了头部膨胀机的测试物品表面上的横轴运动。新的设计将大的惯性质量耦合到头部膨胀机,通过高刚度静水自对准轴承。整个引导头扩展器和惯性质量结构具有高于感兴趣的测试频带的第一共振,并提供高动态刚度。头部扩展器和惯性质量由具有低谐振的悬架系统支持,在测试频段下方具有低谐振。值得注意的是,这种设计方法表现出高“动态”刚度和低静态刚度。这种类型的设备的常规设计可以具有相对高的横轴负载额定值,这可能表明它们会提供良好的横轴运动控制,但是这些设计通常遭受产生不需要的横轴运动的测试频带内的结构谐振。

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