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相关概念视频

Turbulent Flow01:24

Turbulent Flow

146
Turbulent flow is characterized by unpredictable fluctuations in velocity and pressure, which result in a chaotic fluid movement distinct from the orderly patterns of laminar flow. While laminar flow is governed by smooth, parallel layers with minimal mixing, turbulent flow exhibits highly irregular, three-dimensional patterns. This behavior arises due to instabilities in the fluid's velocity profile, and amplifies as the flow velocity increases. Minor disturbances, known as turbulent...
146
Steady, Laminar Flow Between Parallel Plates01:17

Steady, Laminar Flow Between Parallel Plates

144
Understanding steady, laminar flow between parallel plates is essential for analyzing and designing flow in narrow rectangular channels, commonly found in various water conveyance and drainage systems. The Navier-Stokes equations govern fluid motion and are generally challenging to solve due to their nonlinearity. However, simplifications are possible in certain cases, like the steady laminar flow between parallel plates. For this scenario, we assume steady, incompressible, laminar flow.
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Laminar Flow01:27

Laminar Flow

678
Laminar flow represents a smooth, orderly fluid motion where particles move along parallel paths, resulting in minimal mixing between layers. Streamlined particle paths characterize this flow regime and occur under conditions where viscous forces dominate over inertial forces. The distinction between laminar, transitional, and turbulent flow is primarily determined by the Reynolds number, a dimensionless quantity calculated as:
678
Lift01:23

Lift

71
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...
71
Steady Flow of a Fluid Stream01:27

Steady Flow of a Fluid Stream

264
Consider a control volume, such as a pipe with solid boundaries, through which fluid flows and changes direction due to the impulse exerted by the resulting force from the pipe walls. In steady flow, the mass of fluid entering the control volume at a given time, t, with velocity v1, is equal to the mass leaving after infinitesimal time dt, with velocity v2.
During this process, the momentum of the fluid within the control volume remains constant over the time interval dt. By applying the...
264
General External Flow Characteristics01:26

General External Flow Characteristics

100
The study of external flow is essential for creating structures and objects that interact efficiently and safely with moving fluids, such as air or water. When a body is immersed in a flowing fluid, it experiences two primary forces: drag, which opposes motion along the flow direction, and lift, which acts perpendicular to the flow. The shape, size, and orientation of the object influence these forces.Streamlined and Blunt Bodies in External FlowObjects in fluid flow are classified as...
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相关实验视频

Updated: Jun 9, 2025

Experimental Investigation of the Flow Structure over a Delta Wing Via Flow Visualization Methods
09:17

Experimental Investigation of the Flow Structure over a Delta Wing Via Flow Visualization Methods

Published on: April 23, 2018

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分布式羽毛式的流量控制减轻了停滞,并扩大了飞行范围.

Girguis Sedky1, Nathaniel Simon1, Ahmed K Othman1

  • 1Department of Mechanical and Aerospace Engineering, Princeton University, Princeton, NJ 08544.

Proceedings of the National Academy of Sciences of the United States of America
|October 28, 2024
PubMed
概括

研究人员研究了鸟类翅膀覆盖的羽毛,以了解它们的空气动力学作用. 他们发现,多个隐蔽式的板可以通过减轻机和改善空气动力学效益来提高飞机的可控性.

关键词:
航空动力学 航空动力学生物灵感设计的设计鸟的飞行 鸟的飞行 鸟的飞行隐藏的羽毛 隐藏的羽毛控制流量的流量控制器.

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相关实验视频

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科学领域:

  • 空气动力学 航空动力学
  • 生物启发的工程是生物启发的.
  • 流体力学 流体力学 流体力学

背景情况:

  • 鸟翅上的隐形羽毛在高角度的攻击机动中被动地部署.
  • 据推测,这些羽毛起着空气动力学作用,但它们的流体物理和多个行的功能尚不清楚.

研究的目的:

  • 为了识别单个覆盖式扇面的流量控制机制.
  • 为了评估这些多行机制的附加性.
  • 研究隐形羽毛在飞行中的空气动力学作用及其在飞机中的应用.

主要方法:

  • 风洞实验是为了分析流体物理进行的.
  • 部署了多排隐蔽灵感的板.
  • 测试是在鸟类规模的遥控飞机上进行的.

主要成果:

  • 确定了两个流量控制机制:压力和剪切层相互作用.
  • 剪切层相互作用的好处是附加的多行;压力大的好处不是.
  • 这两种机制都可以同时利用,以获得最大的空气动力学益处和减轻故障.

结论:

  • 灵感来自隐蔽的板可以提高飞机的可控性.
  • 飞行测试中的被动部署趋势模仿鸟类的飞行.
  • 该研究提供了关于隐形羽毛在飞行中的空气动力学功能的见解.