Under NASA's Environmentally Responsible Aviation Project (ERA) the most promising vehicle concepts and technologies that can simultaneously reduce aircraft fuel use, community noise, and emissions are being evaluated. Two key factors to accomplishing these goals are reducing structural weight and moving away from the traditional tube and wing aircraft configuration to a shape that has improved lift and less drag. The hybrid wing body (HWB) configuration produces more lift and less drag by smoothly joining the wings to the center fuselage section so it provides aerodynamic advantages. This shape, however, presents structural challenges with its pressurized, non-circular cabin subjected to aerodynamic flight loads. In the HWB, the structure of the center section where the passenger cabin would be located must support large in-plane loads as well as internal pressure on nearly-flat panels and right-angle joints. This structural arrangement does not lend itself to simple, efficient designs. Traditional aluminum and even state-of-the-art composites do not provide a solution to this challenge.
Damage Arresting Composites
2015
2 pages
Report
No indication
English
Aircraft , Test Facilities & Equipment , Aerodynamics , Damage , Crack arrest , Reinforcement (structures) , Graphite-epoxy composites , Body-wing configurations , Panels , Aerodynamic loads , Loads (forces) , Stiffening , Aerodynamic configurations , Thermosetting resins , Internal pressure , Noise reduction , Weight reduction , Fasteners , Hybrid structures
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