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FROM INTEGRATED COMPUTATIONAL MATERIALS ENGINEERING TO INTEGRATED COMPUTATIONAL STRUCTURAL ENGINEERING

机译:从集成的计算材料工程到集成计算结构工程

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Recent advances in the simulation of the quench, cold-work and machining processes for large aluminum forgings are opening the way for a new paradigm in the design, manufacture and sustainment of aircraft structures. The use of large forgings permits the unitization of smaller parts (brackets, fittings, lugs, etc.) with primary structural components like spars and bulkheads. This is being done in order to reduce part count, which in turn leads to significant reductions in manufacturing cost. Unitization can also translate into weight reduction/avoidance when comparing against built-up structure, but it raises a number of issues for structural durability and damage tolerance, notably reduced repair/replace capability and reduced crack arrest capability. The viability of the unitization concept is dependent not only on the availability of material systems that retain their mechanical properties in very thick sections, but also on the designer's ability to retain durability and damage tolerance, and to understand and mitigate the effects of residual stresses.
机译:大型铝锻件的淬火,冷加工和加工工艺仿真的最新进展是在飞机结构的设计,制造和维持方面的新范式开辟道路。大锻件的使用允许将较小的部件(支架,配件,凸耳等)与翼梁和舱壁等主要结构部件的整体化。这是为了减少部分计数,这又导致制造成本的显着减少。在与内置结构比较时,整体化也可以转化为重量减少/避免,但它提高了一些用于结构耐久性和损坏容差的问题,显着降低了维修/替换能力并降低了裂缝阻塞能力。单位化概念的可行性不仅取决于在非常厚的部分中保持其机械性能的材料系统的可用性,而且还依赖于在非常厚的部分中保持其机械性能的可用性,而且还对设计者保持耐久性和损坏耐受性的能力,并理解和减轻残余应力的影响。

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