冲击幅度对三维双重飞翼悬空性能的空气动力学影响
Shubham Tiwari1, D G Thakur1, Sunil Chandel1
1Department of Mechanical Engineering, Defence Institute of Advanced Technology (DU), Girinagar, Pune 411025, Maharashtra, India.
Bioinspiration & biomimetics
|March 26, 2025
概括
优化龙的飞行,这项研究发现更高的翅膀冲击幅度减少垂直升起. 不相同的振幅损害了悬空效率,这对于生物启发的微型空中飞行器至关重要.
科学领域:
- * 流体动力学和昆虫飞行的生物力学.
- * 航空动力学和生物启发工程.
背景情况:
- * 龙的飞行依赖于复杂的翅膀动力学来悬浮.
- * 了解翅膀冲击幅度和相位差异的影响是复制这种能力的关键.
研究的目的:
- * 调查前翼和后翼冲击幅度对龙悬浮飞行空气动力学的影响.
- * 分析机翼相差对空气动力学性能的影响.
- *为灵感来自龙的微型飞行器中优化机翼动力学提供见解.
主要方法:
- * 三维数值模拟双飞翼的双飞翼.
- *对相同和不相同的冲击幅度进行分析.
- *对三个相位差异 (0°,90°,180°) 的检查.
主要成果:
- *较高的冲击幅度通常会降低垂直力系数.
- * 领先的互动增强了前翼升空在0°相差和更高幅度的前翼升空.
- *翼翼相互作用在90°和180°相差处是有害的;前翼的存在减少了后翼的升力.
- * 不相同的冲击幅度会对悬浮效率产生负面影响.
结论:
- * 冲击幅度和相位差异显著影响龙悬浮的空气动力学.
- *相同的冲击幅度与0°相差和50°幅度产生最大的悬空效率.
- * 不相同的振幅不利于悬空效率,这表明协调翼运动的重要性.
- *这些发现可以指导设计高效的灵感来自龙的微型飞行器.
相关概念视频
Lift
34
Lift is a fundamental aerodynamic force that acts perpendicular to the direction of airflow. It plays a central role in achieving and sustaining flight and in stabilizing various vehicles. Lift primarily originates from pressure differences created across surfaces, such as an airfoil. A lower pressure region forms above the wing, while a higher pressure region forms below it, generating an upward force. This differential results from the shape and orientation of the airfoil, enabling the wing...
34
Absolute Motion Analysis- General Plane Motion
199
Visualize a drone, with its propellers spinning rapidly, hovering mid-air. The fascinating movements and operations of this drone can be comprehended by applying the principle of general plane motion.
As the drone's propellers rotate, an upward force is generated that counteracts the force of gravity, enabling the drone to lift off from the ground. This initial movement of the drone is along a straight path, representing a form of translational motion. In this phase, every point on the...
As the drone's propellers rotate, an upward force is generated that counteracts the force of gravity, enabling the drone to lift off from the ground. This initial movement of the drone is along a straight path, representing a form of translational motion. In this phase, every point on the...
199
Buoyancy and Stability for Submerged and Floating Bodies
1.1K
In fluid mechanics, buoyancy and stability are key concepts for understanding the behavior of submerged and floating bodies. When a stationary body is fully or partially submerged in a fluid, the fluid exerts a force on the body known as the buoyant force. This force acts vertically upward through a point called the center of buoyancy, which is the center of the displaced fluid volume. According to Archimedes' principle, the magnitude of the buoyant force is equal to the weight of the fluid...
1.1K
Damped Oscillations
5.6K
In the real world, oscillations seldom follow true simple harmonic motion. A system that continues its motion indefinitely without losing its amplitude is termed undamped. However, friction of some sort usually dampens the motion, so it fades away or needs more force to continue. For example, a guitar string stops oscillating a few seconds after being plucked. Similarly, one must continually push a swing to keep a child swinging on a playground.
Although friction and other non-conservative...
Although friction and other non-conservative...
5.6K
Types of Damping
6.3K
If the amount of damping in a system is gradually increased, the period and frequency start to become affected because damping opposes, and hence slows, the back and forth motion (the net force is smaller in both directions). If there is a very large amount of damping, the system does not even oscillate; instead, it slowly moves toward equilibrium. In brief, an overdamped system moves slowly towards equilibrium, whereas an underdamped system moves quickly to equilibrium but will oscillate about...
6.3K
Hydrostatic Pressure Force on a Plane Surface
220
When a plane surface is submerged in a fluid, hydrostatic forces develop on the surface due to the fluid's pressure. For horizontal surfaces, the pressure exerted by the fluid is uniform because the depth remains constant. The resultant force is determined by the pressure at the given depth multiplied by the area of the surface, and it acts through the centroid of the surface. For vertical surfaces, the pressure varies with depth, increasing as the distance from the fluid's free surface...
220


