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Drilling Through Gas-Hydrate Sediments: Managing Wellbore-Stability Risks

机译:钻探水合物沉积物:管理井眼稳定性风险

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摘要

As hydrocarbon exploration and development moves into deeper water and onshore Arctic environments, it becomes increasingly important to quantify the drilling hazards posed by gas hydrates. To address these concerns, a 1D semianalytical model for heat and fluid transport in the reservoir was coupled with a numerical model for temperature distribution along the wellbore. This combination allowed the estimation of the dimensions of the hydrate-bearing layer where the initial pressure and temperature can dynamically change while drilling. These dimensions were then used to build a numerical reservoir model for the simulation of the dissociation of gas hydrate in the layer. The bottomhole pressure (BHP) and formation properties used in this workflow were based on a real-field case. The results provide an understanding of the effects of drilling through hydrate-bearing sediments (HBS) and of the impact of drilling-fluid temperature and BHP on changes in temperature and pore pressure within the surrounding sediments. It was found that the amount of gas hydrate that can dissociate will depend significantly on both initial formation characteristics and bottomhole conditions) namely, mud temperature and pressure). The procedure outlined in the paper can provide quantitative results of the impact of hydrate dissociation on wellbore stability, which can help in better design of drilling muds for ultradeepwater operations.
机译:随着碳氢化合物勘探和开发进入更深的水域和陆上北极环境,量化天然气水合物所造成的钻井危害变得越来越重要。为了解决这些问题,将储层中热量和流体传输的一维半解析模型与沿井眼温度分布的数值模型相结合。这种组合可以估算出水合物层的尺寸,其中钻井时初始压力和温度会动态变化。然后将这些尺寸用于建立数值储层模型,以模拟该层中天然气水合物的离解。此工作流程中使用的井底压力(BHP)和地层属性基于实际情况。结果提供了对钻探含水沉积物(HBS)的影响以及钻探流体温度和BHP对周围沉积物中温度和孔隙压力变化的影响的理解。已经发现,可以分解的天然气水合物的量将极大地取决于初始地层特征和井底条件(即泥浆温度和压力)。本文概述的程序可以提供水合物解离对井眼稳定性影响的定量结果,有助于更好地设计用于超深水作业的钻井泥浆。

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