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COMPUTATIONAL SETUP OF STRUCTURAL HEALTH MONITORING FOR REAL-TIME THERMAL VERIFICATION

机译:用于实时热验证的结构健康监测的计算设置

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Research at the AFRL Space Vehicles Directorate is being conducted to reduce schedule times for assembly, integration, and test, to make satellite-based capabilities more responsive to user needs. Structural Health Monitoring has been pursued as a means for validating workmanship and has been proven on PnPSat-1. Embedded ultrasonic piezoelectric wafer active sensors (PWAS) have been utilized with local and global inspection techniques, developed both in house and by collaborating universities, to detect structural changes that may occur during assembly, integration, and test. Specific attention has focused on interface qualification. It is now reasonable to believe that evaluation of interfaces through the use of such sensors can also be used to indirectly qualify the structure thermally and that tedious thermal-vacuum testing may be truncated or eliminated altogether. This paper focuses on the computational development of extracting thermal properties from ultrasonic transmission records. Methods are validated on simple bolted lap-joint cantilever beams.
机译:AFRL空间飞行器管理局正在进行研究,以减少组装,集成和测试的计划时间,以使基于卫星的功能对用户需求的响应速度更快。结构健康监测已被用作验证工艺的一种手段,并已在PnPSat-1上得到证明。嵌入式超声压电晶片有源传感器(PWAS)已与内部和内部大学共同开发的本地和全球检查技术一起使用,以检测在组装,集成和测试过程中可能发生的结构变化。特别关注的是接口限定。现在有理由相信,通过使用这种传感器对界面进行评估也可以用来间接地对结构进行热定性,而乏味的热-真空测试也可以被截断或完全消除。本文着重于从超声传输记录中提取热性能的计算发展。方法在简单的螺栓连接搭接悬臂梁上得到了验证。

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