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首页> 外文期刊>Journal of Pipeline Systems Engineering and Practice >Framework for Analyzing Cast Iron Water Main Fractures due to Moisture-Induced Soil Expansion
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Framework for Analyzing Cast Iron Water Main Fractures due to Moisture-Induced Soil Expansion

机译:铸铁水主要骨折因水分诱导的土壤膨胀而分析框架

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Cast iron pipe break rates in North American water distribution systems have increased significantly in the last six years (a 43% increase with respect to 2012). Of the numerous mechanisms that are responsible for these breaks, pipe fracture data from the City of Sacramento indicates that corrosion induced damage followed by pipe flexure due to moisture-induced soil expansion is one of the dominant mechanisms. This mechanism results in full-circle breaks in which fracture occurs transverse to the pipe axis. This paper presents an analytical model to predict such fractures, given a range of parameters that describe pipe configuration, soil conditions, and triggering factors, such as soil saturation, that leads to expansion. The model is based on (1) classical solutions for beams on elastic foundations that are enriched to reflect material nonlinearities in the soil medium, and (2) a corrosion equation to estimate pitting damage in the pipe wall. The model development and validation are supported by a suite of continuum finite-element simulations that simulate detailed interactions between the pipe and soil. The prospective use of the model is outlined in the context of decision-support frameworks to identify pipe segments at a high-risk of fracture. The limitations of the approach are discussed. (c) 2020 American Society of Civil Engineers.
机译:北美水分配系统的铸铁管休息率在过去六年中显着增加(关于2012年的43%)。对于这些破裂的许多机制,来自萨克拉门托市的管道骨折数据表明腐蚀引起的损伤随后由于水分诱导的土壤膨胀而导致的管弯是主导机制之一。该机制导致全圆断裂,其中断裂发生在管轴上。本文介绍了一种预测这种裂缝的分析模型,因为一系列描述了管道配置,土壤条件和触发因素,例如土壤饱和,导致扩张。该模型基于(1)富集以反映土壤介质中的材料非线性的弹性基础上的经典解,以及(2)腐蚀方程以估计管壁中的蚀损坏。模型开发和验证是通过模拟管道和土壤之间的详细相互作用的连续性有限元模拟的模型开发和验证。在决策支持框架的背景下概述了模型的预期用途,以识别骨折的高风险的管道段。讨论了这种方法的局限性。 (c)2020年美国土木工程师协会。

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