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Lessons learned from wind tunnel testing of a droop-nosed morphing wing-tip

机译:从风洞测试中获得的经验教训

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摘要

This work presents the lessons learned from wind tunnel tests of a droop-nose morphing wingtip as part of the EU project NOVEMOR. The design followed a sequential chain and was largely driven through optimization tools, including a glass-fiber composite skin optimization tool and a topology optimization tool for the design of internal super-elastic and aluminium compliant mechanisms. The device was tested in the low speed tunnel at the University of Bristol to determine the structural response under aerodynamic loading. Measurements of strain from strain gauges show that the structure is capable of handing the aerodynamic loads though also show an imbalance of strain between the components. Measurements of surface pressures show a small variation of cp with the 2° droop morphing variation as per the target. The wind tunnel testing showed that further developments to the design chain are necessary, in particular the need for a concurrent as opposed to sequential chain for the design of the various components. Considerations of other problem formulations, the inclusion of nonlinear finite element analysis, and ways to interpret the structural boundary of the topology optimization results with more confidence are required. The utilization of super-elastic materials in morphing structures may also prove to be highly beneficial for their performance
机译:这项工作介绍了从降鼻子变型翼尖的风洞测试中学到的经验,这是欧盟NOVEMOR项目的一部分。该设计遵循顺序链条,并在很大程度上受到优化工具的推动,其中包括玻璃纤维复合材料蒙皮优化工具和用于内部超弹性和铝顺应性机构设计的拓扑优化工具。该设备在布里斯托大学的低速隧道中进行了测试,以确定在空气动力载荷下的结构响应。通过应变仪进行的应变测量表明,该结构能够承受空气动力载荷,尽管还显示出组件之间的应变不平衡。表面压力的测量结果表明,根据目标,cp随2°下垂变形的变化而有所变化。风洞测试表明,有必要对设计链进行进一步的开发,尤其是对于各种组件的设计,需要顺序链而不是顺序链。需要考虑其他问题的表述,包括非线性有限元分析,以及以更高的置信度来解释拓扑优化结果的结构边界的方法。在变形结构中利用超弹性材料也可能对其性能产生极大的好处

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