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The optical environment from the tip vortices of a helicopter in different flight regimes.

机译:直升机在不同飞行状态下的涡旋产生的光学环境。

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摘要

Aero-optical aberrations associated with turbulent compressible flow fields can seriously degrade the performance of an optical system; the effect of these aberrations increases as the wavelength of the transiting light becomes shorter, and so is particularly strong at visible and near-infrared wavelengths. These aero-optic aberrations originate from both spatial- and temporal-variations of the index-of-refraction, and are associated with the low-pressure cores and concomitant reduced density within the vortical structures in certain turbulent flow field such as free-shear layers and tip vortices. To date, aero-optics research has focused primarily on fixed-wing aircraft travelling at compressible-flow speeds, where compressible shear layers and turbulent boundary layers are the dominant source of aero-optic aberrations. Helicopter platforms, on the other hand, operate at much lower Mach numbers (M<0.3) and are actually best suited for hover. In this case, the optical aberrations produced from shear-layer or turbulent boundary-layer flows are greatly reduced or eliminated in the case of hover; instead, aero-optic aberrations result primarily from the wake of the rotor that can have tip speeds up to a Mach number of one. The tip vortices shed from the rotor blades, have an aberrating effect similar to the vortices in a compressible shear-layer that forms behind a turret on a fixed-wing aircraft.;In this dissertation, experimental and numerical results are presented that both calibrate and validate a scaling relationship derived from Euler’s equations and the Lamb-Oseen vortex model. Extended numerical simulations of basic helicopter flow-field features were performed for a medium-sized helicopter both in hover and in forward flight to determine estimates of the spatial- and temporal-degradation of a collimated beam traveling through the rotor-blade wake. The results indicate that the severity of the aberration is highly dependent on the vortex circulation strength and core radius. Even with the most conservative estimates, the farfield effects of light propagating through these tip vortices greatly reduces the irradiance delivered on target through both tip/tilt and higher order effects. Finally, the use of adaptive optics to correct for these aberrations is examined for the case of hover.
机译:与湍流可压缩流场相关的航空像差会严重降低光学系统的性能。这些像差的影响随着透射光的波长变短而增加,因此在可见光和近红外波长处尤为强烈。这些航空像差源自折射率的时空变化,并且与低压岩心相关联,并伴随着某些湍流场(例如自由剪切层)中涡旋结构内密度的降低。和尖端涡旋。迄今为止,航空光学研究主要集中在以可压缩流速飞行的固定翼飞机上,其中可压缩剪切层和湍流边界层是航空像差的主要来源。另一方面,直升机平台的马赫数要低得多(M <0.3),实际上最适合悬停。在这种情况下,在悬停的情况下,剪切层或湍流边界层流产生的光学像差会大大降低或消除;取而代之的是,航空像差主要是由转子的尾流引起的,后者的叶尖速度最高可达马赫数。从旋翼叶片上喷出的尖端涡流具有类似于固定翼飞机炮塔后面形成的可压缩剪切层中的涡流的畸变效应。验证从欧拉方程和Lamb-Oseen涡模型得出的比例关系。对中型直升机在悬停和向前飞行中进行了基本直升机流场特征的扩展数值模拟,以确定通过旋翼桨叶尾迹的准直光束的时空退化估计。结果表明,像差的严重程度高度取决于涡旋循环强度和核心半径。即使采用最保守的估计,通过这些尖端涡流传播的光的远场效应也会大大降低通过尖端/倾斜和高阶效应传递到目标的辐照度。最后,对于悬停的情况,研究了使用自适应光学器件校正这些像差。

著录项

  • 作者

    Porter, Christopher O.;

  • 作者单位

    University of Notre Dame.;

  • 授予单位 University of Notre Dame.;
  • 学科 Engineering Aerospace.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 261 p.
  • 总页数 261
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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