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AXIAL EXCITATION TOOL STRING MODELLING

机译:轴向激励工具串建模

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摘要

Current types of axial excitation tool have been shown to produce beneficial results - in terms of load transfer to the bit, general reductions in string friction and reductions in drill dysfunctions - such as stick slip. The positioning of such tools to achieve optimum benefit is therefore extremely important in order to maximize the axial excitation to the areas of the string that require a reduction in friction, and also to minimize the axial excitation to the surface and to sensitive string tools (such as MWD)- where damage may occur. This paper describes a string model that allows the position of axial excitation tools to be assessed - in terms of the string response - both locally and remotely from the tool. The model breaks the string down in to springs and masses-with 10 nodes in the upper string; and 5 nodes in the BHA. Additional components can also be added to the string - such as shock tools, jars and accelerators - in terms of mass and stiffness. The equations of motion are used to connect the nodes in terms of differential equations. The model is Mathcad based, and as a result, executes very quickly- so allowing comparative studies to be carried out with relative ease. Data input into the model is also achieved quickly. The speed with which the model can be used lends itself to fine tuning input data. The model has been compared with and ANSYS spring mass model, and good agreement has been reached. Additionally, the model allows more than one axial excitation tool to be added to the string - in order to gauge the benefits of such a configuration. Damping can also be varied at different locations in the string model. The results from this model have been used to compare with field test data - derived from a string with instrumentation tool located at various points in the string. The results show that good agreement can be reached between the model and the field test results, however, careful consideration needs to be taken of the damping assumed in the model. The model can, never the less, be used for comparative studies - i.e. tool location, number of tools and optimum frequencies. Further work is recommended in comparing model results with field test results - in order to get a better understanding of the effect of damping. The damping model could be improved in the model presented here, or alternatively, the lessons learned here could be merged into an existing string model.
机译:已显示出当前类型的轴向励磁工具可产生有益的结果-就将载荷传递到钻头而言,总体上降低了弦摩擦,并减少了钻机功能失调(例如粘滑)。因此,为了最大程度地对需要减少摩擦的弦线区域进行轴向激励,并使对表面和敏感弦线工具的轴向激励减至最小,此类工具的定位对于获得最佳收益极为重要。如MWD)-可能会损坏的地方。本文介绍了一种弦模型,该模型可以根据弦响应在工具本地和远程评估轴向激励工具的位置。该模型将弦分解为弹簧和块-上部弦中有10个节点。和BHA中的5个节点。就质量和刚度而言,还可以将其他组件(例如冲击工具,震击器和加速器)添加到弦上。运动方程用于根据微分方程连接节点。该模型基于Mathcad,因此执行速度非常快-因此可以相对轻松地进行比较研究。数据输入模型的速度也很快。模型的使用速度使其可以微调输入数据。将该模型与ANSYS弹簧质量模型进行了比较,取得了良好的一致性。另外,该模型允许将不止一个轴向激励工具添加到管柱中-以评估这种配置的好处。阻尼也可以在弦模型中的不同位置变化。该模型的结果已用于与现场测试数据进行比较-使用位于字符串中各个点的仪器工具从字符串中得出。结果表明,该模型与现场测试结果之间可以达到良好的一致性,但是,需要仔细考虑模型中假设的阻尼。该模型至少可以用于比较研究-即工具位置,工具数量和最佳频率。建议将模型结果与现场测试结果进行比较,以便进一步了解阻尼效果。可以在此处介绍的模型中改进阻尼模型,或者可以在此处学习的经验教训合并到现有的弦模型中。

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