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A Study on the Effect of Crack Stopper for Enhanced Damage Tolerance Behavior of a Fuselage Stiffened Panel

机译:裂缝止动器效果对机身加强面板增强损伤公差行为的影响

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During the design and development phase of a large transport aircraft, a considerable amount of parametric analysis and testing is carried out to bring out an optimum structure. Two-bay longitudinal crack arrest feature is the main aspect of design for damage tolerance of the pressurized fuselage cabin. Under fuselage pressurization load cycles, fatigue cracks develop at location of maximum tensile stress. There are locations on the airframe which are favorable for the initiation of longitudinal cracks. This investigation identifies one such location in a fuselage panel from where a longitudinal crack can initiate and studies the fast fracture and crack arrest features under the action of uniaxial hoop stress. The main crack arresting features are the bulkheads and crack stopper straps. A finite element modeling and analysis approach will be used for simulating stiffened panel with and without the presence of tear strap and their role in the two-bay crack arrest capability of the aircraft fuselage is assessed. Stress intensity factor for progressive crack lengths and the fatigue crack growth rate of the cracked stiffened panel was estimated. A tear strap crack stopper was introduced for evaluating the damage tolerance capability of the stiffened panel again fatigue crack growth rate was estimated for a realistic representation of two-bay cracking scenario, it will be examined under what condition a two-bay crack can be arrested. By this new design, the stiffened panel was found to be more damage tolerant compared to the earlier one.
机译:在大型运输飞机的设计和开发阶段,进行了大量的参数分析和测试,以带出最佳结构。双架纵向裂缝搅拌功能是对加压机身舱的损坏容忍设计的主要方面。在机身加压负荷循环下,疲劳裂缝在最大拉伸应力的位置发育。机身上有位置有利于启动纵向裂缝。该研究将机身面板中的一个这样的位置识别,其中纵向裂缝可以在单轴箍应力的作用下启动和研究快速骨折和裂纹滞留特征。主要裂纹抑制特征是舱壁和裂缝塞子带。有限元建模和分析方法将用于模拟加强面板,在没有撕表壳的情况下,评估了飞机机身的双架裂纹阻塞能力中的作用。估计渐进式裂缝长度的应力强度因子和裂缝加强板的疲劳裂纹生长速率。引入撕裂带裂缝塞,用于评估加强面板的损伤容差能力再次疲劳裂纹增长率估计为双托架裂缝情景的现实表现,将在任何条件下检查双湾裂缝可以被捕。通过这种新设计,与早期的设计相比,发现加强面板更损坏耐受性。

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