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相关概念视频

Beams with Unsymmetric Loadings01:17

Beams with Unsymmetric Loadings

142
Analyzing a supported beam under unsymmetrical loadings is essential in structural engineering to understand how beams respond to varied force distributions. This analysis involves calculating the deflection and identifying points where the slope of the beam is zero, which are crucial for ensuring structural stability and functionality.
The first moment-area theorem determines the slope at any point on the beam. This theorem indicates that the change in slope between two points on a beam...
142
Horizontal Curve: Problem Solving01:03

Horizontal Curve: Problem Solving

76
A horizontal curve is characterized by its radius, intersection angle, and stationing of key points. In this case, the radius is 400 meters, and the angle of intersection is 30 degrees, with the station of the point of curvature (P.C.) at 0 + 150 meters. The goal is to determine the station values at the point of intersection (P.I.), point of tangency (P.T.), and midpoint of the curve, as well as the length of the long chord.The process begins with calculating the tangent distance (T) and the...
76
Introduction to Horizontal Curves01:19

Introduction to Horizontal Curves

113
Horizontal curves are essential in highway and railroad design, ensuring smooth and safe transitions between straight path segments, or tangents. These curves allow vehicles to maintain speed without abrupt changes, minimizing accidents and improving travel efficiency.A horizontal curve is typically defined by its geometric relationship to two tangents that meet at an intersection point (P.I.), where a simple curve is introduced to connect them. The back tangent refers to the initial tangent...
113
Field Procedure for Staking Out Curves01:26

Field Procedure for Staking Out Curves

70
Staking out curves is an essential process in construction to ensure the accurate alignment of structures along a curved path. This task involves positioning stakes at calculated locations corresponding to the curve's design, effectively translating plans into physical markers in the field. The process begins by determining the geometric parameters of the curve, including the radius, central angle, and tangent distances. These parameters are critical for identifying key points such as the...
70
Curve Equations01:17

Curve Equations

55
Curves are essential geometric elements characterized by tangent distance, chord length, middle ordinate, and total arc length. These measurements are crucial in understanding a curve's geometric and spatial properties and are defined by the relationship between its radius and its central angle.The tangent distance (T) refers to the straight-line measurement from the intersection point of two tangents to either the start or end of the curve. This distance is influenced by the curve's radius (R)...
55
Echo01:06

Echo

534
The human ear cannot distinguish between two sources of sound if they happen to reach within a specific time interval, typically 0.1 seconds apart. More than this, and they are perceived as separate sources.
Imagine the sound is reflected back to the ears. Assuming that the source is very close to the human, the difference between hearing the two sounds—the emitted sound and the reflected sound—may be more than the minimum time for perceiving distinct sounds. If this is the case,...
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使用触线方法将声音传递到听点.

Tsutomu Kaizuka1, Wataru Onodera1

  • 1Department of Mechanical Science and Engineering, Kogakuin University 2665-1 Nakano-machi, Hachioji-shi, Tokyo 192-0015, Japantkaizuka@cc.kogakuin.ac.jp, deertaru3776@gmail.com.

JASA express letters
|September 1, 2023
PubMed
概括

本研究使用扬声器阵列和接触线方法 (TLM) 控制个人音频系统中的声音导向性和距离减弱. TLM沿凸轨迹生成光束,增强导向性并控制声音落差,以获得更好的听觉体验.

科学领域:

  • 声学 声学 在声学方面
  • 信号处理 信号处理
  • 音频工程 音频工程

背景情况:

  • 个人音频系统需要声音集中在听者身上,并减少其余的声音.
  • 控制声音的导向性和距离减弱对于最佳的音频体验至关重要.
  • 扬声器阵列为空间声音控制提供了一种方法.

研究的目的:

  • 使用扬声器阵列控制个人音频系统中的定向性和距离减弱.
  • 为任意圆形轨迹制定触线方法 (TLM).
  • 通过识别最大化的轨迹来优化声学对比.

主要方法:

  • 使用触线方法 (TLM) 产生声波束.
  • 创建曲线声波束作为直线声波束 (触线) 的包裹.
  • 应用优化算法来确定最大化声学对比度的轨迹.

主要成果:

  • 触线方法 (TLM) 可以根据任意的凸轨迹产生声波束.
  • 指定曲线光束的外长度可以控制距离减弱.
  • 通过TLM光束成形方法实现了提高导向性.
  • 为圆形轨迹制定的TLM允许精确的声音聚焦.

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结论:

  • 触线方法 (TLM) 有效地控制个人音频系统中的声音定向性和距离减弱.
  • 使用TLM的曲线光束成型为个性化音频提供了一种新的方法.
  • 轨迹的优化可以显著提高声学对比度,以改善听力.
  • 这种方法为先进的扬声器阵列信号处理提供了途径.