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Modeling and Thrust Optimization of a Bio-Inspired Pulsatile Jet Thruster.

机译:生物启发式脉冲喷气推进器的建模和推力优化。

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摘要

A new type of thruster technology offers promising low speed maneuvering capabilities for underwater vehicles. Similar to the natural locomotion of squid and jellyfish the thruster successively forces fluid jets in and out of a small internal cavity. We investigate several properties of squid and jellyfish locomotion to drive the thruster design including actuation of nozzle geometry and vortex ring thrust augmentation. The thrusters are compact with no extruding components to negatively impact the vehicle's drag. These devices have thrust rise-times orders of magnitude faster than those reported for typical propeller thrusters, making them an attractive option for high accuracy underwater vehicle maneuvering.;The dynamics of starting jet circulation, impulse, and kinetic energy are derived in terms of kinematics at the entrance boundary of a semi-infinite domain, specifically identifying the effect of a non-parallel incoming flow. A model for pressure at the nozzle is derived without the typical reliance on a predetermined potential function, making it a powerful tool for modeling any jet flow. Jets are created from multiple nozzle configurations to validate these models, and velocity and vorticity fields are determined using DPIV techniques. A converging starting jet resulted in circulation 90--100%, impulse 70--75%, and energy 105--135% larger than a parallel starting jet with identical volume flux and piston velocity, depending on the stroke ratio. The new model is a much better predictor of the jet properties than the standard 1D slug model.;A simplified thrust model, was derived to describe the high frequency thruster characteristics. This model accurately predicts the average thrust, measured directly, for stroke ratios up to a critical value where the leading vortex ring separates from the remainder of the shear flow. A new model predicting the vortex ring pinch-off process is developed based on characteristic centerline velocities. The vortex ring pinch-off is coincides with this velocity criterion, for all cases tested.;Piston velocity program and nozzle radius are optimized with respect to average thrust, and a quantity similar to propulsive efficiency. The average thrust is maximized by a critical nozzle radius. An approximate linear time-invariant (LTI) model of the thruster vehicle system was derived which categorizes maneuvers into different characteristic regimes. Initial thruster testing showed that open and closed loop frequency response were sufficiently approximated by the LTI model, and that the thruster is ideally suited for small scale high accuracy maneuvers.
机译:一种新型的推进器技术为水下航行器提供了有希望的低速操纵能力。类似于鱿鱼和水母的自然运动,推进器相继迫使流体射流进出小内腔。我们研究了鱿鱼和水母运动的几种属性,以驱动推进器设计,包括驱动喷嘴几何形状和涡环推力增强。推进器结构紧凑,没有挤压组件,不会对车辆的阻力产生负面影响。这些装置的推力上升时间比典型的螺旋桨式推进器快了几个数量级,使它们成为高精度水下航行器操纵的有吸引力的选择。启动射流循环,冲量和动能的动力学是根据运动学得出的在半无限域的入口边界处,专门标识非平行传入流的影响。无需典型地依赖于预定的势函数就可以得出喷嘴处的压力模型,从而使其成为建模任何射流的有力工具。由多个喷嘴配置创建喷嘴以验证这些模型,并使用DPIV技术确定速度和涡度场。会聚的起始射流比具有相同体积通量和活塞速度的平行起始射流要大90--100%的循环量,70--75%的脉冲量和105--135%的能量,具体取决于冲程比。新的模型比标准的1D弹头模型更好地预测了射流的特性。推导了简化的推力模型来描述高频推进器特性。该模型可以准确预测直接测量的冲程比的平均推力,直至达到临界值,在该临界值处,前涡旋环与剪切流的其余部分分开。基于特征中心线速度,开发了一种预测涡环夹断过程的新模型。在所有测试情况下,涡流环的夹断均符合该速度标准。活塞速度程序和喷嘴半径针对平均推力进行了优化,其数量与推进效率相似。平均推力通过临界喷嘴半径最大化。推导器车辆系统的近似线性时不变(LTI)模型被推导,将操纵分为不同的特征方案。最初的推进器测试表明,LTI模型可以充分估计开环和闭环频率响应,并且该推进器非常适合于小规模的高精度机动。

著录项

  • 作者

    Krieg, Michael W.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Engineering Aerospace.;Engineering Marine and Ocean.;Engineering Robotics.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 188 p.
  • 总页数 188
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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