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Performance of horizontal infrastructure in Christchurch city through the 2010-2011 Canterbury earthquake sequence

机译:克赖斯特彻奇市水平基础设施在2010-2011年坎特伯雷地震序列中的表现

摘要

This is an interim report from the research study performed within the NHRP Research Project “Impacts of soil liquefaction on land, buildings and buried pipe networks: geotechnical evaluation and design, Project 3: Seismic assessment and design of pipe networks in liquefiable soils”. The work presented herein is a continuation of the comprehensive study on the impacts of Christchurch earthquakes on the buried pipe networks presented in Cubrinovski et al. (2011).This report summarises the performance of Christchurch City’s potable water, waste water and road networks through the 2010-2011 Canterbury Earthquake Sequence (CES), and particularly focuses on the potable water network. It combines evidence based on comprehensive and well-documented data on the damage to the water network, detailed observations and interpretation of liquefaction-induced land damage, records and interpretations of ground motion characteristics induced by the Canterbury earthquakes, for a network analysis and pipeline performance evaluation using a GIS platform.The study addresses a range of issues relevant in the assessment of buried networks in areas affected by strong earthquakes and soil liquefaction. It discusses performance of different pipe materials (modern flexible pipelines and older brittle pipelines) including effects of pipe diameters, fittings and pipeline components/details, trench backfill characteristics, and severity of liquefaction. Detailed breakdown of key factors contributing to the damage to buried pipes is given with reference to the above and other relevant parameters.Particular attention is given to the interpretation, analysis and modelling of liquefaction effects on the damage and performance of the buried pipe networks. Clear link between liquefaction severity and damage rate for the pipeline has been observed with an increasing damage rate seen with increasing liquefaction severity. The approach taken here was to correlate the pipeline damage to LRI (Liquefaction Resistance Index, newly developed parameter in Cubrinovski et al., 2011) which represents a direct measure for the soil resistance to liquefaction while accounting for the seismic demand through PGA. Key quality of the adopted approach is that it provides a general methodology that in conjunction with conventional methods for liquefaction evaluation can be applied elsewhere in New Zealand and internationally.Preliminary correlations between pipeline damage (breaks km-1), liquefaction resistance (LRI) and seismic demand (PGA) have been developed for AC pipes, as an example. Such correlations can be directly used in the design and assessment of pipes in seismic areas both in liquefiable and non-liquefiable areas.Preliminary findings on the key factors for the damage to the potable water pipe network and established empirical correlations are presented including an overview of the damage to the waste water and road networks but with substantially less detail. A comprehensive summary of the damage data on the buried pipelines is given in a series of appendices.
机译:这是在NHRP研究项目“土壤液化对土地,建筑物和地下管道网络的影响:岩土工程评估和设计,项目3:可液化土壤中管道网络的地震评估和设计”中进行的研究报告的中期报告。本文介绍的工作是对克赖斯特彻奇地震对Cubrinovski等人提出的地下管道网络影响的综合研究的延续。 (2011年)。该报告总结了基督城在2010-2011年坎特伯雷地震序列(CES)中的饮用水,废水和道路网络的表现,尤其关注饮用水网络。它结合了基于全面和有据可查的关于水网破坏的数据,对液化引起的土地破坏的详细观测和解释,对坎特伯雷地震引起的地震动特征的记录和解释的证据,以进行网络分析和管道性能该研究解决了与评估受强烈地震和土壤液化影响的地区的地下网络有关的一系列问题。它讨论了不同管道材料(现代挠性管道和较旧的脆性管道)的性能,包括管道直径,配件和管道组件/细节,沟槽回填特性和液化严重程度的影响。参照以上及其他相关参数,详细分析了造成埋管破坏的关键因素,并特别关注了液化对埋管破坏和性能的影响的解释,分析和建模。随着液化严重性的提高,已经观察到液化严重性与管道的损坏率之间存在清晰的联系,且损坏率也随之增加。此处采用的方法是将管道损伤与LRI(抗液化指数,Cubrinovski等人,2011年新开发的参数)相关联,该参数表示土壤抗液化性的直接量度,同时考虑了通过PGA进行的地震需求。所采用方法的关键之处在于它提供了一种通用方法,该方法可以与常规液化评估方法结合使用,可以在新西兰其他地方和国际上应用。管道损坏(破损km-1),抗液化性(LRI)和例如,已经为交流管道开发了地震需求(PGA)。这种相关性可以直接用于可液化和非液化区域地震区管道的设计和评估中。初步发现了影响饮用水管网的关键因素和已建立的经验相关性,其中包括对废水和道路网络的损害,但细节要少得多。一系列附录全面介绍了地下管道的破坏数据。

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