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首页> 外文期刊>Journal of Petroleum Science & Engineering >Casing collapse risk assessment and depth prediction with a neural network system approach
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Casing collapse risk assessment and depth prediction with a neural network system approach

机译:利用神经网络系统方法进行套管坍塌风险评估和深度预测

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摘要

A large carbonate oil field in Iran is suffering from severe casing collapses. 48 casing collapses have been occurred due to reservoir compaction, poro-elastic effects and corrosion. The application of neural networks for predicting casing collapses using complex multi-dimensional field data has been undertaken. This paper shows how a neural network (ANN) system can be trained based on the parameters affecting casing collapse to estimate the potential of collapse of wells to be drilled as well as the current wells producing in the field. The potential use of this type of analysis is large in that it can be linked as a critical risking parameter in future field development analysis. Being able to quantify the potential for collapse of a well in the future can give management the foundation for a better financial decision making on what wells and where to drill them with the potential for the larger net return on the investment. The estimated collapse and corresponding depth could also benefit in the type of casing design and completion method to be selected as well as workover designs. Interpretation of the neural network results, together with engineering judgment, allowed us to conclude that using this method is technically feasible for predicting casing collapses in this field.
机译:伊朗的一个大型碳酸盐油田正遭受严重的套管塌陷之苦。由于储层的压实,孔隙弹性效应和腐蚀,已经发生了48次套管塌陷。神经网络已用于使用复杂的多维现场数据预测套管破裂的应用。本文展示了如何基于影响套管塌陷的参数来训练神经网络(ANN)系统,以估计将要钻探的井坍塌的可能性以及现场生产的当前井。这种分析的潜在用途是巨大的,因为它可以作为将来的油田开发分析中的关键风险参数而被链接。能够量化将来一口井倒塌的潜力,可以为管理层提供更好的财务决策基础,以决定哪些井以及在何处钻探这些井,从而有可能获得更大的投资净收益。估计的塌陷和相应的深度还可以受益于将要选择的套管设计和完井方法以及修井设计的类型。对神经网络结果的解释以及工程判断,使我们得出结论,使用该方法在该领域预测套管破裂在技术上是可行的。

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