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Research on Acid Aging and Damage Pattern Recognition of Glass Fiber-Reinforced Plastic Oil and Gas Gathering Pipelines Based on Acoustic Emission

机译:基于声发射的玻璃钢油气集输管道酸老化及损伤模式识别研究

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摘要

Pipelines extend thousands of kilometers to transport and distribute oil and gas. Given the challenges often faced with corrosion, fatigue, and other issues in steel pipes, the demand for glass fiber-reinforced plastic (GFRP) pipes is increasing in oil and gas gathering and transmission systems. However, the medium that is transported through these pipelines contains multiple acid gases such as CO2 and H2S, as well as ions including Cl−, Ca2+, Mg2+, SO42−, CO32−, and HCO3−. These substances can cause a series of problems, such as aging, debonding, delamination, and fracture. In this study, a series of aging damage experiments were conducted on V-shaped defect GFRP pipes with depths of 2 mm and 5 mm. The aging and failure of GFRP were studied under the combined effects of external force and acidic solution using acoustic emission (AE) techniques. It was found that the acidic aging solution promoted matrix damage, fiber/matrix desorption, and delamination damage in GFRP pipes over a short period. However, the overall aging effect was relatively weak. Based on the experimental data, the SSA-LSSVM algorithm was proposed and applied to the damage pattern recognition of GFRP. An average recognition rate of up to 90% was achieved, indicating that this method is highly suitable for analyzing AE signals related to GFRP damage.
机译:管道绵延数千公里,用于运输和分配石油和天然气。鉴于钢管经常面临腐蚀、疲劳和其他问题的挑战,石油和天然气收集和传输系统对玻璃纤维增强塑料 (GFRP) 管的需求正在增加。然而,通过这些管道运输的介质含有多种酸性气体,例如 CO2 和 H2S,以及包括 Cl−、Ca2+、Mg2+、SO42−、CO32− 和 HCO3− 在内的离子。这些物质会导致一系列问题,例如老化、脱键、分层和断裂。本研究对深度为 2 mm 和 5 mm 的 V 形缺陷 GFRP 管材进行了一系列时效损伤实验。采用声发射 (AE) 技术研究了外力和酸性溶液联合作用下 GFRP 的老化和失效。研究发现,酸性时效溶液在短时间内促进了 GFRP 管道中的基体损伤、纤维/基体脱附和分层损伤。然而,整体衰老效果相对较弱。基于实验数据,提出了 SSA-LSSVM 算法,并将其应用于 GFRP 的损伤模式识别。平均识别率高达 90%,表明该方法非常适合分析与 GFRP 损伤相关的 AE 信号。

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