首页> 外文期刊>The Journal of Experimental Biology >The aerodynamic benefit of wing-wing interaction depends on stroke trajectory in flapping insect wings
【24h】

The aerodynamic benefit of wing-wing interaction depends on stroke trajectory in flapping insect wings

机译:机翼-机翼相互作用的空气动力学优势取决于拍打昆虫机翼的行程轨迹

获取原文
获取原文并翻译 | 示例
       

摘要

Flying insects may enhance their flight force production by contralateral wing interaction during dorsal stroke reversal ('clap-and-fling'). In this study, we explored the forces and moments due to clap-and-fling at various wing tip trajectories, employing a dynamically scaled electromechanical flapping device. The 17 tested bio-inspired kinematic patterns were identical in stroke amplitude, stroke frequency and angle of attack with respect to the horizontal stroke plane but varied in heaving motion. Clap-and-fling induced vertical force augmentation significantly decreased with increasing vertical force production averaged over the entire stroke cycle, whereas total force augmentation was independent from changes in force produced by a single wing. Vertical force augmentation was also largely independent of forces produced due to wing rotation at the stroke reversals, the sum of rotational circulation and wake capture force. We obtained maximum (17.4%) and minimum (1.4%) vertical force augmentation in two types of figure-eight stroke kinematics whereby rate and direction of heaving motion during fling may explain 58% of the variance in vertical force augmentation. This finding suggests that vertical wing motion distinctly alters the flow regime at the beginning of the downstroke. Using an analytical model, we determined pitching moments acting on an imaginary body of the flapping device from the measured time course of forces, the changes in length of the force vector's moment arm, the position of the centre of mass and body angle. The data show that pitching moments are largely independent from mean vertical force; however, clap-and-fling reinforces mean pitching moments by approximately 21%, compared to the moments produced by a single flapping wing. Pitching moments due to clap-and-fling significantly increase with increasing vertical force augmentation and produce nose-down moments in most of the tested patterns. The analytical model, however, shows that algebraic sign and magnitude of these moments may vary distinctly depending on both body angle and the distance between the wing hinge and the animal's centre of mass. Altogether, the data suggest that the benefit of clap-and-fling wing beat for vertical force enhancement and pitch balance may change with changing heaving motion and thus wing tip trajectory during manoeuvring flight. We hypothesize that these dependencies may have shaped the evolution of wing kinematics in insects that are limited by aerodynamic lift rather than by mechanical power of their flight musculature.
机译:飞行中的昆虫可能通过在逆转中风(“拍打和甩开”)过程中与对侧的机翼相互作用来增强其飞行力的产生。在这项研究中,我们使用动态缩放的机电拍打装置,探索了在各种翼尖轨迹处因拍打和甩动而产生的力和力矩。测试的17种受生物启发的运动学模式在冲程幅度,冲程频率和相对于水平冲程平面的攻角方面相同,但在起伏运动方面有所不同。拍手和甩拳引起的垂直力增加随着整个冲程周期内平均垂直力产生的增加而显着降低,而总力增加与单个机翼产生的力的变化无关。垂直力的增加也很大程度上与由于机翼在反转行程时产生的力,旋转环流和尾流捕捉力的总和无关。我们在两种八字形冲程运动学中获得了最大(17.4%)和最小(1.4%)的垂直力增强,从而在猛扑过程中升沉运动的速率和方向可以解释58%的垂直力增强方差。这一发现表明,垂直机翼运动在下冲程开始时明显改变了流动状态。使用分析模型,我们根据测得的力的时间变化,力矢量的力矩臂长度的变化,质心的位置和体角确定作用在拍打装置虚构物体上的俯仰力矩。数据表明,俯仰力矩在很大程度上与平均垂直力无关。但是,拍打和甩动将平均俯仰力矩提高了约21%,与单个襟翼所产生的力矩相比。随着拍打和击打动作的俯仰力矩随着垂直力的增加而显着增加,并且在大多数测试模式中产生俯仰力矩。但是,分析模型表明,这些矩的代数符号和大小可能会根据体角以及翼铰链与动物质心之间的距离而明显不同。总体而言,数据表明拍打和拍打的机翼拍打对于垂直力增强和俯仰平衡的好处可能会随着升沉运动的改变而改变,从而在机动飞行过程中改变机翼尖端的轨迹。我们假设这些依赖性可能已经影响了昆虫机翼运动学的发展,这些运动受气动升力而不是其飞行肌肉的机械动力的限制。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号