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Optimized Drilling by Improved Well Control Using MPD in Narrow Pressure Window

机译:通过在窄压窗口中使用MPD改进的井控制优化钻孔

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Towards the later part of the 20thcentury, the oil industry has been looking for more safer and beneficial drilling methods, especially in deep waters. The high well/field costs pushed the need for attractive technologies which would optimize drilling. Also ever since the catastrophic events of April 2010 in the Gulf of Mexico, the oil industry has been constantly scrutinized for the health and safety standards or rather the lack of it. The consequences of the blowout highlighted the need for improved kick detection and well control. In deepwater wells, there exists a narrow window between the fracture pressure and the pore pressure. This narrow margin poses a safety hazard both for the well and the crew operating on it. Drilling in these sort of fields require distinctive methodologies to achieve both objectives of safe and optimized drilling. Thus one such method which would optimize drilling and improve well control is Managed Pressure Drilling (MPD). This has been defined as "an adaptive drilling process to accurately control the annular pressure profile throughout the well". This technique would create a pressure profile in the well to be within tolerance and close to the boundaries or limits controlled by the pore and fracture pressure. For the understanding of kick detection, well control and circulation when MPD is being employed, a hypothetical well data with a narrow pressure window is selected and a kick is simulated to be controlled using MPD. The pump rate & mud density is studied and kick detection, well control and circulation is analyzed and interpreted. Obviously with the usage of the MPD tools and equipments during drilling, there would be a difference from conventional kick detection, which could probably be enhanced well control. MPD would thus, be able to properly manage any influxes from the formations thereby protecting the system and structure above and have a telling effect on the Non Productive Time (NPT). This paper aim to differentiate the conventional and MPD method of kick circulation based on simulations of lost time and lost circulation. By obtaining the desired result, we can justify the usage of MPD in a narrow pressure window field/reservoir for improved kick detection, control and circulation and thus drilling optimization.
机译:走向20世纪后部,石油工业一直在寻找更安全和有益的钻井方法,特别是深水。高井/现场成本推动了有吸引力的技术,这将优化钻井。自从2010年4月在墨西哥湾的灾难性事件以来,石油行业因健康和安全标准而不断审查,而是缺乏它。井喷的后果强调了对改善的踢球检测和良好控制的需求。在深水井中,裂缝压力和孔隙压力之间存在狭窄的窗口。这种狭窄的余量对井和船员构成了安全危险。在这些字段中钻井需要独特的方法,以实现安全和优化的钻井的两个目标。因此,施加压力钻孔(MPD),可以优化钻井和改善井控制的一种这种方法。这被定义为“自适应钻井过程,以准确控制整个孔的环形压力曲线”。该技术将在井中产生压力曲线,以在容差范围内,并且接近孔和断裂压力控制的边界或限制。为了理解踢球检测,当采用MPD时的良好控制和循环,选择具有窄压窗的假设孔数据,模拟使用MPD控制踢球。研究泵率和泥浆密度,分析并解释了扫描检测,井控制和循环。显然,随着MPD工具和设备在钻井期间的使用情况下,与传统的踢球检测存在差异,这可能是增强的控制。因此,MPD将能够适当地从地层施加任何涌入,从而保护上述系统和结构并对非生产时间(NPT)具有讲解影响。本文旨在根据失去的时间和循环丢失的模拟来区分常规和MPD循环方法。通过获得所需的结果,我们可以证明MPD在窄压窗场/储存器中的使用证明,用于改善踢球检测,控制和循环,从而钻探优化。

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