Experimental study on hydrogen pipeline leakage: Negative pressure wave characteristics and inline detection method

IF 3.6 3区 工程技术 Q2 ENGINEERING, CHEMICAL Journal of Loss Prevention in The Process Industries Pub Date : 2024-10-09 DOI:10.1016/j.jlp.2024.105452
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Abstract

This paper presents an experimental study on a potential safety system for hydrogen fuel cells. It focuses on early leakage detection and localization. This would enable effective system response to avoid the effects of catastrophic loss of containment. Experimental results are presented from a pipeline setup wherein the leak is identified utilizing inline pressure sensors and flowmeters. The investigations involve recorded data at two leak locations at different initial pressures, mass flow rates, and leak diameters. The leak detection technique is based on analysis of the negative pressure wave (NPW) intensity and propagation duration, denoted as peak-to-peak amplitude (Δh) and oscillation period (Δτ). They are extracted from filtered pressure records' first derivative (dp/dt). Δh and Δτ increase as the initial mass flow rate and leak diameter decrease. Therefore, this approach is advantageous for detecting leaks from tiny cross-sections. Δh and Δτ measured at two leak positions at different lengths from the system inlet increase at a higher initial flow rate of 1.0 g/s, but they exhibit opposite behavior at a lower rate (0.42 g/s). Increasing the sampling rate in the dp/dt-time graphs enhances the precision of leak localization. Calculation results show an effective leakage localization with an accuracy of 15 mm (2.5%). The leak flow rate during nitrogen leakage tests is about three times that of hydrogen, and it has higher Δh (about two times at 10 bar).
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氢气管道泄漏实验研究:负压波特性和在线检测方法
本文介绍了一项关于氢燃料电池潜在安全系统的实验研究。其重点是早期泄漏检测和定位。这将使系统能够做出有效反应,避免安全壳灾难性泄漏的影响。实验结果来自管道设置,其中利用在线压力传感器和流量计识别泄漏。研究涉及两个泄漏位置在不同初始压力、质量流量和泄漏直径下的记录数据。泄漏检测技术基于对负压波(NPW)强度和传播持续时间的分析,用峰峰值振幅(Δh)和振荡周期(Δτ)表示。它们是从滤波压力记录的一阶导数(dp/dt)中提取的。随着初始质量流量和泄漏直径的减小,Δh 和 Δτ 会增大。因此,这种方法有利于检测微小截面的泄漏。在距离系统入口不同长度的两个泄漏位置测量到的 Δh 和 Δτ 在较高的初始流速(1.0 克/秒)下会增加,但在较低的流速(0.42 克/秒)下则表现相反。提高 dp/dt 时间图的采样率可提高泄漏定位的精度。计算结果显示,有效的泄漏定位精度为 15 毫米(2.5%)。氮气泄漏测试中的泄漏流速约为氢气的三倍,Δh 较高(10 巴时约为氢气的两倍)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.20
自引率
14.30%
发文量
226
审稿时长
52 days
期刊介绍: The broad scope of the journal is process safety. Process safety is defined as the prevention and mitigation of process-related injuries and damage arising from process incidents involving fire, explosion and toxic release. Such undesired events occur in the process industries during the use, storage, manufacture, handling, and transportation of highly hazardous chemicals.
期刊最新文献
Research on the diffusion and control of unsafe behaviors among chemical industry park enterprises based on the SEIR evolutionary game model Experimental study on hydrogen pipeline leakage: Negative pressure wave characteristics and inline detection method A dynamic system reliability analysis model on safety instrumented systems Effect of ambient pressure on the fire characteristics of lithium-ion battery energy storage container Incident investigation of hydrogen explosion and fire in a residue desulfurization process
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