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Advanced analysis methods and nondestructive inspection technology under development in the NASA airframe structural integrity program

机译:NASA机身结构完整性计划的高级分析方法和非破坏性检查技术

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An advanced analytical methodology has been developed for predicting the residual strength of stiffened thin-sheet riveted shell structures such as those used for the fuselage of a commercial transport aircraft. The crack-tip opening angle elastic-plastic fracture criterion has been coupled to a geometric and material nonlinear finite element shell code for analyzing complex structural behavior. An automated adaptive mesh refinement capability together with global-local analysis methods have been developed to predict the behavior of fuselage structure with long cracks. This methodology is currently being experimentally verified. Advanced nondestructive inspection technology has been developed that will provide airline operators with the capability to conduct reliable and economical broad-area inspections of aircraft structures. Standard methods based on ultrasonics, thermal diffusivity, radiography, coherent optics, and electromagnetics have been modified for airframe geometries and aircraft inspection environments to detect disbonds at tear straps and lap splices, fatigue cracks at rivets, and corrosion throughout the airframe structure. Advanced signal processing methods have been combined with computational models to provide a quantitative engineering record of the damage in the structure. These methods are currently being demonstrated in the field. Laboratory methods are also being developed to characterize defects in materials and strain and displacement fields in structures.
机译:已经开发出一种先进的分析方法,用于预测加强薄板铆接壳结构的残余强度,例如用于商业运输机的机身的壳体结构。裂缝尖端开口角弹性塑料骨折标准已经耦合到几何和材料非线性有限元壳壳代码,用于分析复杂的结构行为。已经开发了一种与全球局部分析方法一起的自动自动网格细化能力,以预测具有长裂缝的机身结构的行为。该方法目前正在通过实验验证。开发了先进的非破坏性检测技术,为航空公司运营商提供了可靠的飞机结构的可靠和经济的广泛检查。对于机身几何和飞机检测环境,已经修改了基于超声波,热扩散,射线照相,相干光学和电磁学的标准方法,以检测撕条和圈裂缝,铆钉的疲劳裂缝,以及整个机身结构的腐蚀。高级信号处理方法已与计算模型组合,以提供结构损坏的定量工程记录。目前正在在该领域演出这些方法。还正在开发实验方法,以表征结构中材料和应变和位移场的缺陷。

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