Gas kick dynamic circulation in MPD operations with water based drilling fluid: Maximum casing pressure modeling and validation

0 ENERGY & FUELS
Márcia Peixoto Vega , Lindoval Domiciano Fernandes , Gabrielle Fontella de Moraes Oliveira , Filipe Arantes Furtado , Claudia Míriam Scheid , Eduardo da Cunha Hora Paraíso , Umberto Sansoni Jr. , Alex Waldmann , André Leibsohn Martins , Antonio Carlos Vieira Martins Lage
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Abstract

The use of water-based drilling fluids enables the rapid detection of a gas influx by pit gain monitoring due to the low solubility of gases in the aqueous medium. Moreover, as the influx remains as a free gas, it undergoes a process of expansion the further it rises through the well, changing the pressure profiles and producing a pressure peak when it reaches the surface. Therefore, the gas influx must be controlled appropriately. Otherwise, the maximum pressure experienced during the kick circulation may exceed the safety limits of surface equipment, placing the operation and the rig crew in a hazardous situation. The Managed Pressure Drilling (MPD) technique allows for a more precise detection and control of the influx while retaining the ability to circulate dynamically small volumes of gas kick through the riser, minimizing the risks involved and the non-productive time (NPT). However, the decision of when to apply dynamic or conventional circulation techniques must be considered carefully, taking into account factors such as predictions of pressure peaks, as well as intensity and volume of the kick. In this way, it is paramount that the maximum pressure during the circulation be estimated before the operation begins to ensure that the decision is made correctly. This paper presents the results of a gas kick circulation simulator specifically developed to predict pressure peaks. This simulator uses a mathematical model based on algebraic equations whose solution requires low computational effort and, therefore, regarding gas kick incidents, is an interesting tool that can aid in guiding decision-making. The results of pressure peaks were successfully validated by employing literature data, experimental drilling setup runs and simulations performed in a commercial software largely consolidated in the petroleum industry: Drillbench.
使用水基钻井液进行 MPD 作业时的气窜动态循环:最大套管压力建模与验证
由于气体在水介质中的溶解度较低,使用水基钻井液可以通过井坑增大监测快速检测气体流入。此外,由于流入的气体仍然是游离气体,因此在井内越往上,其膨胀过程就越大,从而改变了压力曲线,并在到达地面时产生压力峰值。因此,必须适当控制气体流入。否则,气驱循环过程中的最大压力可能会超过地面设备的安全极限,从而使钻井作业和钻井人员处于危险境地。管理压力钻井(MPD)技术可以更精确地检测和控制气体涌入,同时保留通过隔水管动态循环小流量气驱的能力,最大限度地降低风险和减少非生产时间(NPT)。然而,在决定何时采用动态循环技术或传统循环技术时,必须慎重考虑压力峰值预测、气窜强度和气窜量等因素。因此,最重要的是在作业开始前估算出循环过程中的最大压力,以确保做出正确的决定。本文介绍了专为预测压力峰值而开发的气脚循环模拟器的结果。该模拟器使用了一个基于代数方程的数学模型,其求解方法只需较少的计算量,因此,对于气脚事故,它是一个可以帮助指导决策的有趣工具。通过使用文献数据、实验钻井设置运行以及在石油行业广泛使用的商业软件中进行的模拟,压力峰值的结果得到了成功验证:Drillbench.
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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