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3D Numerical Simulation and Experiment Validation of Dynamic Damage Characteristics of Anisotropic Shale for Percussive-Rotary Drilling with a Full-Scale PDC Bit

机译:3D用全尺寸PDC钻头对各向异性页岩动态损伤特性的数值模拟与实验验证

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摘要

The lower rate of penetration (ROP) is one of the key technical difficulties during drilling of shale reservoirs. Percussive-rotary drilling (PRD) is crucial for increasing ROP. One of the core problems of ROP optimization for PRD are the dynamic damage characteristics of rock fragmentation. By considering the dynamic drilling parameters, a new model for estimating the PRD with a full-scale polycrystalline diamond compact (PDC) bit is established. The mechanical parameters of shale are measured by a wave velocity method. Rock damage characteristics are simulated by using the finite element method. The numerical simulation model is verified by the actual drilling case in LMX shale reservoir in Sichuan (China). The results indicate that rock element damage occurs along the direction of maximum principal stress. The order of decreasing rock damage rate is impact-static load, static load and impact load. When the impact load has the same peak value, and the rock elements in contact with the cutters obtain more energy with load frequency increasing. The rock fragmentation efficiency under a sine wave is higher than rectangular and pulse waves. The rock can obtain more energy to be broken with the increasing impact load duration and peak values. When the impact-static load goes over the rock damage threshold value, the higher the peak value of the impact load is, the more energy the rock will obtain. The higher the lateral vibration amplitude of the drill bit, the lower the efficiency of rock fragmentation. Repetitions of drill bit axial vibration at one indentation point will reduce the ROP, and the axial vibration energy of the drill bit is consumed. Therefore, a small lateral movement and reasonable axial vibration frequency increase the rock breaking efficiency. The ROP was increased through the suppression of drill string and the application of vibration. The study results can be used in the optimization designs of bit trajectory and ROP for PRD tools.
机译:较低的渗透率(ROP)是页岩水库钻井过程中的关键技术困难之一。打击性旋转钻井(PRD)对于增加ROP至关重要。 PRD的ROP优化的核心问题之一是岩石碎片的动态损伤特征。通过考虑动态钻探参数,建立了一种用全尺寸多晶钻石压缩(PDC)比特估算PRD的新模型。通过波速法测量页岩的机械参数。通过使用有限元法模拟岩石损伤特性。四川(中国)LMX页岩水库实际钻井案例验证了数值模拟模型。结果表明,岩石元件损坏沿最大主应力的方向发生。减少岩石损伤率的顺序是冲击静态负载,静电负载和冲击负载。当冲击载荷具有相同的峰值时,与刀具接触的岩石元件以负载频率的增加获得更多能量。正弦波下的岩石碎片效率高于矩形和脉冲波。岩石可以通过增加的冲击负载持续时间和峰值获得更多的能量被破坏。当冲击静载荷越过岩石损伤阈值时,冲击载荷的峰值越高,岩石将获得的能量越多。钻头的横向振动幅度越高,岩石碎片效率越低。在一个压痕点处的钻头轴向振动的重复将减少罗特,并且消耗钻头的轴向振动能量。因此,小横向运动和合理的轴向振动频率增加了岩石破碎效率。通过抑制钻柱和振动的应用来增加ROP。研究结果可用于PRD工具的位轨迹和ROP的优化设计中。

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  • 作者

    Guangjian Dong; Ping Chen;

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  • 年度 2018
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  • 原文格式 PDF
  • 正文语种 eng
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