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An application of holographic interferometry for dynamic vibration analysis of a jet engine turbine compressor rotor

机译:全息干涉测定法在喷气发动机汽轮机压缩机转子动态振动分析中的应用

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Holographic Interferometry has been successfully employed to characterize the materials and behavior of diverse types of structures under dynamic stress. Specialized variations of this technology have also been applied to define dynamic and vibration related structural behavior. Such applications of holographic technique offer some of the most effective methods of modal and dynamic analysis available. Real-time dynamic testing of the modal and mechanical behavior of jet engine turbine, rotor, vane, and compressor structures has always required advanced instrumentation for data collection in either simulated flight operation test or computer-based modeling and simulations. Advanced optical holography techniques are alternate methods which result in actual full-field behavioral data in a noninvasive, noncontact environment. These methods offer significant insight in both the development and subsequent operational test and modeling of advanced jet engine turbine and compressor rotor structures and their integration with total vehicle system dynamics. Structures and materials can be analyzed with very low amplitude excitation and the resultant data can be used to adjust the accuracy of mathematically derived structural and behavioral models. Holographic Interferometry offers a powerful tool to aid in the developmental engineering of turbine rotor and compressor structures for high stress applications. Aircraft engine applications in particular must consider operational environments where extremes in vibration and impulsive as well as continuous mechanical stress can affect both operation and structural stability. These considerations present ideal requisites for analysis using advanced holographic methods in the initial design and test of turbine rotor components. Holographic techniques are nondestructive, real-time, and definitive in allowing the identification of vibrational modes, displacements, and motion geometries. Such information can be crucial to the determination of mechanical configurations and designs as well as critical operational parameters of turbine structural components or unit turbine components fabricated from advanced and exotic new materials or using new fabrication methods. Anomalous behavioral characteristics can be directly related to hidden structural or mounting anomalies and defects.
机译:全息干涉已被成功地用于表征材料和不同类型的动态应力下结构中的行为。该技术的专门变体也已应用于定义动态和振动相关的结构行为。全息技术的这种应用提供了一些可用的模态和动态分析的一些最有效的方法。模态和喷气发动机涡轮,转子,叶片以及压缩机结构的机械行为的实时动态检测始终需要进行数据采集先进的仪表中任一模拟飞行操作测试或基于计算机的建模和仿真。先进的光学全息技术是其导致在非侵入性,非接触环境实际全视场行为数据的替代方法。这些方法提供了在两个显影和后续操作测试显著洞察力和高级喷气发动机涡轮机和压缩机转子结构和它们的总车辆系统动力学集成的建模。结构和材料可以具有非常低的振幅激励被分析并将得到的数据可以被用于调整数学推导结构和行为模型的精确度。全息干涉提供了一个强大的工具,在涡轮转子和压缩机结构的高应力应用的发展工程提供帮助。特别是必须的飞机发动机应用中考虑的操作环境,其中在振动和冲击以及持续的机械应力极端可影响操作和结构稳定性。这些考虑在使用涡轮机转子组件的初始设计和测试先进全息方法呈现理想的必要条件进行分析。全息技术是破坏性的,实时的,与确定的在允许振动模式,位移和运动的几何形状的识别。这样的信息可以是机械构造和设计以及涡轮结构部件或单元涡轮机部件的关键操作参数从先进和外来新的材料制造,或者使用新的制造方法的确定至关重要。反常的行为特性,可直接关系到隐藏结构或安装异常和缺陷。

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