减轻十字形试样干涉模态的新设计以提高超声疲劳测试

Diogo Montalvão , Sina Safari , Weston Chidzikwe , Phil Sewell , Pedro Costa , Luís Reis , Manuel Freitas
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引用次数: 0

摘要

十字形试样在超声疲劳试验(UFT)中广泛用于模拟双轴载荷条件,特别是在甚高周疲劳(VHCF)状态下。然而,这些试样经常受到意想不到的弯曲模式的干扰,例如“扑动模式”,发生在所需轴向模式附近的频率,损害了测试的准确性和可靠性。为了解决这一问题,开发了一种新的试件设计,有效地分离了轴向和弯曲模式,从而改变了疲劳试验的精度。采用有限元分析(FEA)和使用数字图像相关(DIC)的实验验证来优化试样的几何形状,从而使干涉弯曲模态和轴向模态之间的频率分离。通过这种重新设计,几乎消除了模态耦合,确保了试样在测试过程中按预期变形。这一突破使平面内双轴测试能够在整个双轴比范围内进行,克服了以前模式耦合带来的挑战。这种十字形试样的等双轴同相双轴UFT,以前在实际应用中被认为是理论上的,现在已经通过这项工作中的创新成功实现了。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A New Design for Mitigating Interfering Modes in Cruciform Specimens to Enhance Ultrasonic Fatigue Testing
Cruciform specimens have been extensively used to simulate biaxial loading conditions in Ultrasonic Fatigue Testing (UFT), particularly within the Very High Cycle Fatigue (VHCF) regime. However, these specimens are often affected by interference from unintended flexural modes, such as the ‘flapping mode,’ which occur at frequencies near the desired axial mode, compromising the accuracy and reliability of the tests. To address this issue, a new specimen design has been developed to effectively separate the axial and flexural modes, thereby transforming the precision of fatigue testing. Finite Element Analysis (FEA) and experimental validation using Digital Image Correlation (DIC) were employed to optimise the geometry of the specimens, resulting in a substantial frequency separation between the interfering flexural modes and the axial mode. Through this redesign, mode coupling has been virtually eliminated, ensuring that the specimens deform as intended during testing. This breakthrough enables in-plane biaxial testing across the full range of biaxiality ratios, overcoming the previous challenges posed by mode coupling. Equibiaxial in-phase biaxial UFT with this type of cruciform specimen, previously considered largely theoretical in its practical application, has now been successfully realised through the innovations presented in this work.
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CiteScore
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