首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems >UNDERSTANDING THE RELATIONSHIP BETWEEN PITCH AGILITY AND PROPULSIVE AERODYNAMIC FORCES IN BIO-INSPIRED FLAPPING WING VEHICLES
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UNDERSTANDING THE RELATIONSHIP BETWEEN PITCH AGILITY AND PROPULSIVE AERODYNAMIC FORCES IN BIO-INSPIRED FLAPPING WING VEHICLES

机译:了解生物启发的扑翼飞行器的俯仰敏捷性与空气动力学动力之间的关系

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Ornithopters, or flapping wing mechanical birds, represent a unique category of aerial vehicles that fill a need for small-scale, agile, long range, and payload-capable flight vehicles. This study focuses on understanding the relationship between the propulsive aerodynamic forces and pitch agility in these flapping wing vehicles. Using analytical methods, the aerodynamic moment acting upon a wing undergoing elastic flapping was calculated. A method to determine the pitch stiffness of the vehicle was then derived using a preexisting stability analysis. This method was used to demonstrate that pitch agility in flapping wing birds is intricately tied to the flapping cycle with different parts of the cycle creating stabilizing and destabilizing effects. The results indicated that pitch agility, and propulsive force generation, have a dependency on the shape of the wing, and that deformations such as bend and sweep are capable of making the vehicle more agile. Contact-aided compliant mechanisms with nonlinear stiffness were designed and inserted into the wing of an omithopter to induce controlled morphing. These elements have varying stiffness during the upstroke and downstroke parts of the cycle which introduces an asymmetry between the two halves of the flapping cycle. The resulting flapping motion exhibited a two fold increase in horizontal propulsive force over the baseline case. A motion tracking system was used to capture the free flight response of the omithopter in steady level flight. This information was then used to calculate the pitch stiffness of the omithopter with a rigid spar, and, one with a nonlinear compliant element inserted into the spar to induce a desired shape change. The results revealed that an upstroke in which the aerodynamic forces are similar in magnitude to that of the downstroke, may be necessary to make the vehicle more agile, and, that there is a compromise between vehicle agility and flight propulsive forces.
机译:鸟类直升机或翼动机械鸟代表了一种独特的飞行器类别,可满足对小型,敏捷,远程和具有有效载荷能力的飞行器的需求。这项研究的重点是了解这些拍翼飞行器中推进空气动力与俯仰敏捷度之间的关系。使用分析方法,计算了作用在经过弹性扑翼的机翼上的空气动力力矩。然后使用预先存在的稳定性分析得出确定车辆俯仰刚度的方法。该方法用于证明拍打翅膀的鸟类的俯仰敏捷度与拍打周期紧密相关,而拍打周期的不同部分会产生稳定和不稳定的效果。结果表明,俯仰敏捷性和推进力的产生取决于机翼的形状,并且诸如弯曲和后掠之类的变形能够使车辆更加敏捷。设计了具有非线性刚度的接触辅助柔顺机构,并将其插入到旋翼机的机翼中,以诱导受控的变形。这些元件在周期的上冲程和下冲程部分具有变化的刚度,这在拍打周期的两个半部之间引入了不对称性。所产生的拍打动作显示出水平推进力比基线情况高出两倍。运动跟踪系统用于捕获稳定水平飞行中副旋翼飞机的自由飞行响应。然后,此信息用于计算具有刚性翼梁的屈光度数的俯仰刚度,以及将非线性顺应性元素插入翼梁以引起所需形状变化的屈光度。结果表明,可能需要使空气动力学力的大小与向下冲程的气动力相似的向上冲程,以使飞行器更加敏捷,并且在飞行器敏捷性和飞行推进力之间存在折衷。

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