机身
机身
整体封闭
结构工程
焊接
残余物
残余强度
铆钉
工程类
材料科学
机械工程
复合材料
计算机科学
算法
作者
J. L. Munroe,K. E. Wilkins,Markus Grüber
摘要
The Integral Airframe Structures (IAS) program investigated the feasibility of using integrally stiffened construction for commercial transport fuselage structure. The objective of the program was to demonstrate structural performance and weight equal to current structure with lower manufacturing cost. Testing evaluated mechanical properties, structural details, joint performance, repair, static compression, and two-bay crack residual strength panels. Alloys evaluated included 7050-T7451 plate, 7050-T74511 extrusion, 6013-T6511x extrusion, and 7475-T7351 plate. Structural performance was evaluated with a large 7475-T7351 pressure test that included the arrest of a two-bay longitudinal crack, and a measure of residual strength for a two-bay crack centered on a broken frame. Analysis predictions for the two-bay longitudinal crack panel correlated well with the test results. Analysis activity conducted by the IAS team strongly indicates that current analysis tools predict integral structural behavior as accurately as built-up structure. The cost study results indicated that, compared to built-up fabrication methods, high-speed machining structure from aluminum plate would yield a recurring cost savings of 61 percent. Part count dropped from 78 individual parts on a baseline panel to just 7 parts for machined IAS structure.
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