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Rapid Prototyping as a Tool to Support Wind Tunnel Testing of Unconventional Unmanned Airships

机译:快速原型设计作为支持非传统无人驾驶的风洞测试的工具

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Scaled models are often used to check the aerodynamic performance of full scale aircraft and airship concepts, which have gone through a conceptual and preliminary design process. Results from these tests can be quite useful to improve the design of unconventional airships whose aerodynamics might be quite different from classical configurations. Once the airship geometry has been defined, testing is required to acquire aerodynamic data necessary to implement the mathematical model of the airship needed by the flight control system to develop full autonomous capabilities. Rapid prototyping has the great potential of playing a beneficial role in unconventional autonomous airship design similarly to the success obtained in the design process of conventional aircrafts. By reducing model cost, build time, difficulty of construction, and maintaining acceptable surface quality and finish, designers have greater ability to analyze several configurations of airships and to change the geometry in order to increase stability, reduce drag, or fulfill mission requirements. This work presents aspects of unmanned airship design which are supported by the use of RP techniques: a test model of a multi-body, cruiser-feeder unconventional airship system has been developed using hot wire cutting and SST printing technology which helped to construct necessary parts for complex body shapes. Taking into account actual model shape and material properties, model verification checks were performed on the final products through FEM and CFD analysis to ensure structural strength and integrity during test procedures and to virtually simulate wind tunnel tests; experimental data from the wind tunnel campaigns are then used in the development of an unmanned airship flight simulator, which is of critical importance in multi-body concepts when cruiser/feeder configurations need to perform docking and rendezvous maneuvers. Results which assess the quality of the test models by comparison of wind tunnel results to CFD simulations are also presented; a final discussion of advantages obtained applying RP technique to the airship design cycle concludes the paper.
机译:缩放模型通常用于检查全尺度飞机和飞艇概念的空气动力学性能,经历了概念和初步设计过程。这些测试的结果对于改善空气动力学可能与古典配置完全不同的非传统飞艇的设计非常有用。一旦航空飞船几何形状已经定义,需要测试以获取实施飞行控制系统所需的飞艇的数学模型所需的空气动力学数据来开发完全自主能力。快速原型设计具有与传统飞机设计过程中获得的成功同样在非传统的自治飞艇设计中发挥有益作用的巨大潜力。通过降低模型成本,建设时间,施工难度,维护可接受的表面质量和完成,设计人员具有更大的能力来分析几何配置并改变几何形状,以提高稳定性,减少阻力或满足任务要求。这项工作提出了无人驾驶设计的各个方面,通过使用RP技术支持:使用热线切割和SST印刷技术开发了多体的测试模型,巡洋性送料器非传统飞艇系统,有助于构建必要的部件对于复杂的身体形状。考虑到实际模型形状和材料特性,通过FEM和CFD分析对最终产品进行模型验证检查,以确保测试程序中的结构强度和完整性,并且实际上模拟风洞测试;然后,在巡洋舰/进纸器配置需要执行对接和集合演习时,风隧道活动的实验数据在开发无人驾驶飞行模拟器的开发中,这对多机身概念至关重要。还介绍了通过对CFD模拟的对CFD模拟的比较来评估测试模型质量的结果;最终讨论将RP技术应用于飞艇设计周期的优势结束。

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