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Aeroelastic characteristics of a rapid prototype multi-material wind tunnel model of a mechanically deployable aerodynamic decelerator.

机译:机械可部署的气动减速器的快速原型多材料风洞模型的气动弹性特征。

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摘要

Scaled wind tunnel models are necessary for the development of aircraft and spacecraft to simulate aerodynamic behavior. This allows for testing multiple iterations of a design before more expensive full-scale aircraft and spacecraft are built. However, the cost of building wind tunnel models can still be high because they normally require costly subtractive manufacturing processes, such as machining, which can be time consuming and laborious due to the complex surfaces of aerodynamic models. Rapid prototyping, commonly known as 3D printing, can be utilized to save on wind tunnel model manufacturing costs. A rapid prototype multi-material wind tunnel model was manufactured for this thesis to investigate the possibility of using PolyJet 3D printing to create a model that exhibits aeroelastic behavior. The model is of NASA's Adaptable Deployable entry and Placement (ADEPT) aerodynamic decelerator, used to decelerate a spacecraft during reentry into a planet's atmosphere. It is a 60° cone with a spherically blunted nose that consists of a 12 flexible panels supported by a rigid structure of nose, ribs, and rim. The novel rapid prototype multi-material model was instrumented and tested in two flow conditions. Quantitative comparisons were made of the average forces and dynamic forces on the model, demonstrating that the model matched expected behavior for average drag, but not Strouhal number, indicating that there was no aeroelastic behavior in this particular case. It was also noted that the dynamic properties (e.g., resonant frequency) associated with the mounting scheme are very important and may dominate the measured dynamic response.
机译:缩放的风洞模型对于飞机和航天器的发展以模拟空气动力学行为必不可少。这允许在制造更昂贵的大型飞机和航天器之前测试设计的多次迭代。但是,建立风洞模型的成本仍然很高,因为它们通常需要昂贵的减法制造工艺,例如机械加工,由于空气动力学模型的复杂表面,这可能既费时又费力。快速原型制作(通常称为3D打印)可用于节省风洞模型的制造成本。针对此论文,制造了一种快速的多材料风洞模型原型,以研究使用PolyJet 3D打印创建具有气动弹性行为的模型的可能性。该模型是NASA的适应性可部署进出(ADEPT)空气动力学减速器,用于使航天器在重新进入行星大气时减速。它是一个60°圆锥体,具有球形钝头,由12个柔性面板组成,并由鼻子,肋骨和边缘的刚性结构支撑。在两种流动条件下对新型快速原型多材料模型进行了测试。对模型上的平均力和动态力进行了定量比较,表明该模型与平均阻力的预期行为相匹配,但与Strouhal数不匹配,这表明在此特定情况下没有气动弹性行为。还应注意,与安装方案相关的动态特性(例如,谐振频率)非常重要,并且可以支配所测得的动态响应。

著录项

  • 作者

    Raskin, Boris.;

  • 作者单位

    Tufts University.;

  • 授予单位 Tufts University.;
  • 学科 Mechanical engineering.;Aerospace engineering.
  • 学位 M.S.
  • 年度 2016
  • 页码 116 p.
  • 总页数 116
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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