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相关概念视频

Conservation of Angular Momentum: Application01:18

Conservation of Angular Momentum: Application

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A system's total angular momentum remains constant if the net external torque acting on the system is zero. Examples of such systems include a freely spinning bicycle tire that slows over time due to torque arising from friction, or the slowing of Earth's rotation over millions of years due to frictional forces exerted on tidal deformations. However in the absence of a net external torque, the angular momentum remains conserved. The conservation of angular momentum principle requires a...
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Conservation of Angular Momentum01:09

Conservation of Angular Momentum

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A system's total angular momentum remains constant if the net external torque acting on the system is zero. Considering a system that consists of n tiny particles, the angular momentum of any tiny particle may change, but the system's total angular momentum would remain constant. The principle of conservation of angular momentum only considers the net external torque acting on the system. While there are internal forces exerted by different particles within the system that also produce...
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Angular Momentum about an Arbitrary Axis01:11

Angular Momentum about an Arbitrary Axis

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Imagine a rigid body with a mass denoted as 'm', which has its center of mass at point G and is rotating around an inertial reference frame. The angular momentum at an arbitrary point P can be calculated by taking the cross product of the position vector and linear momentum vector for each individual mass element.
The velocity of a mass element comprises its translational velocity and the relative velocity instigated by the body's rotation. Substituting the velocity equation into...
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Angular Momentum: Single Particle01:10

Angular Momentum: Single Particle

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Angular momentum is directed perpendicular to the plane of the rotation, and its magnitude depends on the choice of the origin. The perpendicular vector joining the linear momentum vector of an object to the origin is called the “lever arm.” If the lever arm and linear momentum are collinear, then the magnitude of the angular momentum is zero. Therefore, in this case, the object rotates about the origin such that it lies on the rim of the circumference defined by the lever arm...
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Buoyancy and Stability for Submerged and Floating Bodies01:11

Buoyancy and Stability for Submerged and Floating Bodies

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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...
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Magnetic Damping01:17

Magnetic Damping

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Eddy currents can produce significant drag on motion, called magnetic damping. For instance, when a metallic pendulum bob swings between the poles of a strong magnet, significant drag acts on the bob as it enters and leaves the field, quickly damping the motion.
If, however, the bob is a slotted metal plate, the magnet produces a much smaller effect. When a slotted metal plate enters the field, an emf is induced by the change in flux; however, it is less effective because the slots limit the...
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Microparticle Manipulation by Standing Surface Acoustic Waves with Dual-frequency Excitations
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基于轨道-角度-动量强大的水下声学通信与动态模态分解方法.

Liulin Li1, Bingyi Liu1, Zhongyi Guo1

  • 1School of Computer Science and Information Engineering, Hefei University of Technology, Hefei 230009, China.

The Journal of the Acoustical Society of America
|May 13, 2024
PubMed
概括

本研究介绍了一种修改的动态模态分解方法,用于检测声轨道角运动量束中的拓电荷. 这种新方法提高了效率,并降低了水下通信中的比特错误率.

科学领域:

  • 声学通信是一种声学通信.
  • 水下声学 水下声学
  • 信号处理 信号处理

背景情况:

  • 使用轨道角动量 (OAM) 的声学通信在水环境中提供了高效的数据传输.
  • 目前用于检测OAM拓电荷 (TC) 的方法需要完全的亚齐穆特声压测量,降低效率并增加比特误差率 (BER).

研究的目的:

  • 提出和验证一种修改的动态模态分解 (DMD) 方法,用于OAM声波束中精确的TC检测.
  • 通过从部分采样的声场中实现TC检测来解决传统方法的局限性.

主要方法:

  • 为TC检测开发了一种修改的动态模态分解 (DMD) 方法.
  • 该方法利用声场的部分采样,减少测量要求.
  • 使用数值模拟来验证拟议方法的准确性和性能.

主要成果:

  • 修改后的DMD方法准确地从部分采样的声场中提取单个或多个TC大小.
  • 拟议方案在相同的噪声干扰下,与传统的直角解码相比,显示了较低的BER.
  • 修改后的DMD方法显示了对阵列错位的强度增加.

结论:

  • 这项研究为声学OAM通信提供了一种高效的解调解决方案.

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  • 修改后的DMD方法简化了接收器阵列设计,并增强了远距离水下数据传输能力.