首页> 外文期刊>Journal of Petroleum and Gas Engineering >Transfer matrix technique for determining the resonance conditions in retrieving stuck drill pipes with a top vibratory suspended drive
【24h】

Transfer matrix technique for determining the resonance conditions in retrieving stuck drill pipes with a top vibratory suspended drive

机译:传递矩阵技术,用于确定带顶部振动悬挂驱动器的钻杆钻探中的共振条件

获取原文
           

摘要

A stuck drill pipe has been recognized as one of the most costly and non-productive challenges in drilling operations. Fishing jars are routinely used to un-lock or loosen the stuck (jammed) pipes which in many cases are expensive and the time taken to complete the job can reach several days of continuous jarring. The use of surface mounted vibratory systems has offered an alternative cost effective means to free the stuck pipes. Almost all of these systems are based on eccentric-weight oscillators which impart simple harmonic vertical forces that are transmitted down the pipe via elastic standing waves through the pipe material. A more recent development also uses a suspended oscillator but imparts a sinusoidal oscillatory displacement (rather than force) to the drill pipe at the top surface end, which again is transmitted down the pipe via elastic standing waves. This paper provides a generalized technique for solving the governing equations describing this top oscillatory system and the transmission of the elastic waves along the drill pipe. The transfer matrix technique is used to describe the travelling/standing waves along the pipe, the connecting couplings and the top suspended drive system. Effects of damping are introduced in the complex wave number and at the coupling locations. Examples of drill pipe scenarios are presented to elucidate the usefulness of the technique to determine the resonance condition, that is, the excitation frequencies for maximum retrieving forces at the stuck end, for any given drill pipe geometry. The resulting force amplitudes at the top driver end and the resulting retrieving forces imparted at the stuck end are quantified for any given imposed displacement amplitude at the drive end. A more complex system involving a drill pipe, spear and an elastic liner is also described where the transfer matrix technique is demonstrated to be an effective means to determine the overall system dynamics and resonance conditions.
机译:卡住的钻杆已被公认为是钻井作业中最昂贵且非生产性的挑战之一。通常使用鱼缸来解锁或松开被卡住的(堵塞的)管道,这在许多情况下是昂贵的,完成这项工作所花费的时间可能会持续几天。使用表面安装的振动系统提供了另一种节省成本的方法,以释放卡住的管道。几乎所有这些系统都基于偏心重振子,该振子产生简单的谐波垂直力,并通过弹性驻波通过管道材料沿管道向下传递。最近的发展也使用悬挂式振荡器,但是在钻杆的顶表面端施加正弦振动位移(而不是力),该位移又通过弹性驻波沿钻杆向下传递。本文提供了一种通用技术,用于求解描述该顶部振动系统和沿钻杆的弹性波传输的控制方程。传递矩阵技术用于描述沿管道,连接接头和顶部悬挂驱动系统的行进/驻波。在复波数和耦合位置引入了阻尼效应。给出了钻杆方案的示例,以阐明该技术用于确定共振条件(即,对于任何给定的钻杆几何形状,在卡住端获​​得最大收回力的激励频率)的有用性。对于在驱动端的任何给定施加的位移幅度,量化了在顶部驱动器端产生的力幅度和在卡住端施加的产生的取回力。还介绍了一个更复杂的系统,其中包括钻杆,矛和弹性衬套,其中传递矩阵技术被证明是确定整体系统动力学和共振条件的有效手段。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号