首页> 外文会议>2007 International Oil Conference and Exhibition in Mexico >Latest Generation Horizontal Well Placement Technology Helps Maximize Production in Deep Water Turbidite Reservoirs
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Latest Generation Horizontal Well Placement Technology Helps Maximize Production in Deep Water Turbidite Reservoirs

机译:最新一代的水平井布置技术有助于最大程度地提高深水浊积岩油藏的产量

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This account describes how advanced well placement technology helped to optimize horizontal well position and maximize hydrocarbon production in deep water turbidite reservoirs. The deep reading directional electromagnetic tool, a latest-generation LWD (Logging While Drilling) measurement, was the technology differentiator for optimizing well placement in a number of deep water horizontal wells. The new directional measurement is highly sensitive to reservoir boundaries and therefore gives early warning of conditions requiring steering adjustments while drilling horizontal wells, maximizing well position in the reservoir. This paper shows how thin oil rims, faulted reservoirs and those with highly variable structure were able to be developed more efficiently. By reducing uncertainties about the reservoir, the new technology helped optimize production, eliminate sidetracks and minimize well construction cost and risk. One of the main challenges of maintaining a horizontal wellbore inside a thin hydrocarbon bed is the uncertainty of formation dip. Inside a hydrocarbon bed, real time resistivity images often yield dips that are more representative of stratigraphic features rather than structure defining reservoir boundaries (from surrounding, conductive shale beds). The deep-reading azimuthal electromagnetic measurement helped in early detection of neighboring conductive beds, and the distance to these beds. This ensured that the wellbore was drilled parallel to the structure and inside the ‘sweet spot’ away from non-productive layers. As reservoirs become more challenging to develop, the use of advanced technology often helps minimize risk. When fields are developed with horizontal wells, it is desirable to maximize well position inside the reservoir layer since the rate of increase in hydrocarbon production increases as horizontal length in the reservoir increases. We show an example of how advanced well placement technology was successful in doubling hydrocarbon production rate compared with wells in the same field drilled with conventional technology.
机译:该说明描述了先进的井位布置技术如何帮助优化深水浊积岩储层中的水平井位置并最大限度地提高油气产量。深度读取定向电磁工具是最新一代的随钻测井(LWD)测量技术,它是在许多深水水平井中优化井位的技术差异。新的定向测量对油藏边界高度敏感,因此可以在钻水平井时对需要进行转向调整的情况提供预警,从而最大限度地提高油藏在油藏中的位置。本文展示了如何更有效地开发薄油边,断层油藏以及结构高度可变的油藏。通过减少储层的不确定性,新技术有助于优化产量,消除侧向痕迹并最大程度地降低了油井建设成本和风险。在稀烃层内保持水平井筒的主要挑战之一是地层倾角的不确定性。在烃层内部,实时电阻率图像通常会产生倾角,这些倾角更能代表地层特征,而不是限定储层边界的结构(来自周围的导电页岩层)。深度读取方位电磁测量有助于及早发现相邻的导电床以及到这些导电床的距离。这样可确保在与非结构层平行的位置,在“最佳位置”内钻出与结构平行的井眼。随着储层开发越来越具有挑战性,先进技术的使用通常有助于最大程度地降低风险。当用水平井开发田地时,期望最大化储层内的井位置,因为随着储层中水平长度的增加,烃产量的增加速率增加。我们将展示一个示例,说明与采用传统技术钻探的同一井中的井相比,先进的井布置技术如何成功地使碳氢化合物的生产率提高了一倍。

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