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Displacement Efficiency for Primary Cementing of Washout Sections in Highly Deviated Wells

机译:高度偏差井中冲洗部分的初级固井的位移效率

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Anywhere between 0%-80% of cemented wells have integrity failures,suggesting both geological and operational factors. One way geology affects cementing is via irregular wellbores,e.g. washouts. Here we study the effects of washouts on mud removal in strongly inclined wellbores,experimentally and via 2-D computational simulations,with aim of identifying key control parameters. Experiments were performed with 2 fluids with properties representative of drilling mud and cement(or spacer),displaced at constant flow rate through a 10 m long annular flow loop. A downstream”washout”section of the annulus had an enlarged outer diameter. Twenty-four conductivity probes tracked the arrival times of the displacing fluid by measuring the conductivity of fluids as they pass. The experimental matrix includes 8 experiments with 2 eccentricities(standoff = 1,0.58),4 angles of inclination and slightly variable rheology. The simulation study covered wider ranges of variables. The results of simulations and experiments agree qualitatively on the main effects,as shown in [7]. Here we extend the study using the 2D simulation to study the effects of washout length and diameter,for both concentric and eccentric wells,all oriented horizontally. The simulations provide detailed information on the evolution of the fluid-fluid interfaces as they pass through the washout,as well as information on the velocity fields and stresses. In any near-horizontal section there is a delicate balance of buoyancy and eccentricity influences,in both regular and irregular geometries. Under some circumstances an irregular section seems to have a positive stabilizing effect on the interface. However,this positive message is balanced practically by uncertainty of washout size and in-situ mud properties and the positive effects are not universal. We find that increasing the washout diameter always appears to decrease the displacemnt efficiency,for both concentric and eccentric annuli. Increasing the washout length is less clear in its effects. In all cases,the main risk from residual drilling mud in isolated washouts is that it can contaminate the cement slurry as it passes.
机译:在0%-80%之间的任何地方都有巩固井有完整性失败,表明地质和运营因素。一种方式地质影响巩固是通过不规则的井喷,例如不规则的。冲洗。在这里,我们研究了受试者在实验和通过二维计算模拟中对强倾斜的井筒泥浆去除的影响,目的是识别关键控制参数。用2个流体进行实验,该流体具有代表钻井泥浆和水泥(或间隔物)的性质,以恒定的流速以10μm长的环形流回路移位。下游的“冲洗”部分的外径增大。二十四个电导率探针通过在通过时通过测量流体的电导率跟踪位移流体的到达时间。实验基质包括8个实验,其中2个偏心率(梯级= 1,0.58),4个角度和略微可变的流变。仿真研究覆盖了更广泛的变量范围。模拟和实验结果定性地同意主要效果,如[7]所示。在这里,我们使用2D仿真扩展了研究,以研究冲洗长度和直径的影响,同心和偏心井,全部定向。模拟提供有关流体流体界面的演变的详细信息,因为它们通过冲洗,以及关于速度场和应力的信息。在任何近水平部分中,在常规和不规则的几何形状中,浮力和偏心度的微妙平衡。在某些情况下,不规则的部分似乎对界面具有正稳定效果。然而,这种正消息实际上是通过冲洗尺寸的不确定性和原位泥浆性能的平衡,并且积极影响不是普遍的。我们发现,对于同心和偏心的云,似乎始终始终似乎始终似乎始终降低脱离效率。增加洗涤长度的效果较小。在所有情况下,隔离冲洗中残余钻井泥浆的主要风险是它可以在它通过时污染水泥浆料。

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