气动驱动自动门的性能评估,以通过快速过渡测试改进管道故障检测程序
Francesco Castellani1, Caterina Capponi2, Bruno Brunone2
1Department of Engineering, The University of Perugia, 06125 Perugia, Italy.
Sensors (Basel, Switzerland)
|March 28, 2024
概括
产生受控的瞬态对于传输网络中故障检测至关重要. 这项研究比较了蝶和球,发现气动球在尖,可重复的压力波中提供了更高的性能.
科学领域:
- 流体动力学 流体动力学
- 液压工程 液压工程 液压工程
- 信号处理 信号处理
背景情况:
- 快速过渡对于在长途传输网络中检测故障至关重要.
- 优化短暂生成需要特定的门性能特征,以从压力信号中最大限度地提取信息.
- 以前的方法往往缺乏必要的速度,可重复性和压力波生成的度.
研究的目的:
- 实验性地研究和比较蝶和气动球的瞬态动态.
- 为了评估门在产生尖,可重复的压力波的性能,用于故障检测应用.
- 分析压力管道系统中门关闭动态和压力波特征.
主要方法:
- 在水工程实验室 (WEL) 进行的实验性过渡测试.
- 使用蝶和气动球在铜管中产生压力波.
- 用摄像头监测门位移,用传感器测量压力;分析实验数据.
主要成果:
- 描述了两种门类型在产生短暂压力波方面的性能.
- 将门关闭动力学,压力波度和时间历史稳定性进行比较.
- 证明了拟议方法的有效性,用于描述过渡动态.
结论:
- 与蝶相比,气动球显示出产生更利,更稳定的压力波的潜力.
- 实验方法提供了一种有效的手段来描述故障检测的短暂动态.
- 优化过渡生成对于提高传输网络故障检测能力至关重要.
相关概念视频
Pipe Flowrate Measurement: Problem Solving
542
A spray tank system is engineered to uniformly distribute a pest-control liquid across plants by using a pressurized mechanism. The tank, pressurized to 150 kPa, holds the pesticide at a height of 0.80 meters. Liquid flows from the tank through a 1.9 meter pipe with a diameter of 0.015 meters, angled at 0.698 radians, ultimately reaching a 0.007 meter nozzle that sprays the pesticide. Accurate calculation of the system's flow rate is crucial to ensure uniform application, and this is...
542
Pipe Flowrate Measurement
695
In pipe flow measurement, orifice, nozzle, and Venturi meters are commonly used to determine fluid flowrates by constricting the flow area, which increases fluid velocity and reduces pressure. This pressure difference, governed by Bernoulli's principle and adjusted for real-world conditions, is essential for calculating flowrate. Each meter type is suited to specific applications based on accuracy, efficiency, and compatibility with various flow conditions.
The orifice meter is a simple,...
The orifice meter is a simple,...
695
Multiple Pipe Systems
752
Multipipe systems consist of complex configurations of interconnected pipes designed to transport fluids efficiently across intricate networks. They are essential in engineering applications requiring precise control over flow distribution, pressure, and head loss. They are categorized into series, parallel, loop, and network configurations, each distinguished by unique flow characteristics and applications.
Series Configuration
In a series configuration, fluid flows sequentially from one pipe...
Series Configuration
In a series configuration, fluid flows sequentially from one pipe...
752
Fluid Pressure
604
In mechanical engineering, fluid pressure plays a critical role in designing systems that utilize liquid flow, such as hydraulic systems, pumps, and valves. When designing these systems, engineers must ensure they can withstand the forces created by fluid pressure to avoid damage or failure.
According to Pascal's law, a fluid at rest will generate equal pressure in all directions. This pressure is measured as a force per unit area, and its magnitude depends on the fluid's specific...
According to Pascal's law, a fluid at rest will generate equal pressure in all directions. This pressure is measured as a force per unit area, and its magnitude depends on the fluid's specific...
604
Application of Pascal's Law
8.4K
Pascal's experimentally proven observations—that a change in pressure applied to an enclosed fluid is transmitted undiminished throughout the fluid and to the walls of its container—provide the foundations for hydraulics, one of the most important developments in modern mechanical technology.
Hydraulic systems are used to operate automotive brakes, hydraulic jacks, and numerous other mechanical systems. We can derive a relationship between the forces in a simple hydraulic system...
Hydraulic systems are used to operate automotive brakes, hydraulic jacks, and numerous other mechanical systems. We can derive a relationship between the forces in a simple hydraulic system...
8.4K
Single Pipe Systems
140
In pipe flow analysis, problems are typically categorized into three types — Type I, Type II, and Type III — based on the known parameters and the desired outcome. Each type of problem addresses specific engineering requirements using fluid properties, pipe characteristics, and operational conditions.
In a Type I problem, fluid properties (density and viscosity), pipe characteristics (including diameter, length, and surface roughness), and the flow rate or average velocity are...
In a Type I problem, fluid properties (density and viscosity), pipe characteristics (including diameter, length, and surface roughness), and the flow rate or average velocity are...
140


