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首页> 外文期刊>Journal of natural gas science and engineering >Effect of drilling fluid hydraulics on drill stem vibrations
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Effect of drilling fluid hydraulics on drill stem vibrations

机译:钻井液液压对钻杆振动的影响

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Drill stem vibration may cause drilling inefficiencies and often leads to non-productive time. Drill stem vibration analysis is performed to prevent and identify RPM values that may cause damaging standing waves in the drill stem. However, different models and assumptions give different vibration results. One simplification commonly done is excluding drilling fluids. This paper investigates the effect of including drilling hydraulics and the dynamic pressure on drill stem vibrations. The model assumes the drill stem is acting as a Euler Bernoulli beam and was discretized using a finite element formulation. Two fluid rheological models, Herschel Bulkley and Power Law, were used to determine the uncoupled dynamic pressure drop across the drill stem. The results show that including the dynamic pressure in the drill stem vibration model causes the critical rotational speeds to change as much as 32% (i.e. 59 RPM). As expected, axial and torsional vibrations are not affected, while lateral vibration changes significantly when the ratio of the wellbore diameter to the drill stem outside diameter is below 1.25, with a narrow total drill bit flow area, or when operating at high flow rates. Therefore, when creating RPM road maps to avoid vibrations while drilling, the contribution of the dynamic pressure should be included. (C) 2016 Elsevier B.V. All rights reserved.
机译:钻杆振动可能会导致钻进效率低下,并经常导致生产时间缩短。进行钻杆振动分析是为了防止和识别可能导致钻杆损坏的驻波的RPM值。但是,不同的模型和假设会产生不同的振动结果。通常所做的一种简化是排除钻井液。本文研究了包括钻井液压和动压力对钻杆振动的影响。该模型假定钻杆起欧拉伯努利梁的作用,并使用有限元公式离散化。两种流体流变模型,即Herschel Bulkley模型和Power Law模型,用于确定钻杆两端的非耦合动压降。结果表明,将动态压力包含在钻杆振动模型中会导致临界转速变化高达32%(即59 RPM)。如预期的那样,当井眼直径与钻杆外径的比值低于1.25,钻头总流量狭窄时或在高流量下运行时,轴向和扭转振动均不会受到影响,而横向振动会发生显着变化。因此,在创建RPM路线图以避免钻井时振动时,应包括动压力的贡献。 (C)2016 Elsevier B.V.保留所有权利。

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