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The Effects of Back Rake and Side Rake Angles on Mechanical Specific Energy of Single PDC Cutters with Selected Rocks at Varying Depth of Cuts and Confining Pressures

机译:后耙和侧耙角对单个PDC切割器机械特性能量的影响,采用选定岩石变化深度切割和狭窄压力

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One of the key objectives within the drilling industry is optimizing rate of penetration (ROP) and a major contributor to obtaining this objective is the PDC bit design. Whilst previous papers have proven that the PDC cutting structure geometry, particularly back rake and side rake angles, affect PDC bit performance when tested at atmospheric conditions, no information in the SPE literature exists for similar tests at confining pressures. The effect of side rake angle on cutter aggresiveness and cutter interaction at depths of cut (DOC) in excess of 0.04" are particularly unknown under confined pressure. The results of more than 150 tests show that back rake and side rake angles have substantial effects on Mechanical Specific Energy (MSE) and the aggressiveness of PDC cutters. Experiments with three different rock types; Carthage marble, Mancos shale, and Torrey Buff sandstone, revealed that at both atmospheric and elevated confining pressures, PDC cutters with 10 deg back rake angles require half the energy to cut the same volume of rock and produce higher cutting efficiency compared with cutters having 40 deg back rake angles. Possible reasons for this behavior are explained through the analysis of the cutting process. Results show that a cutter with low back rake requires less horizontal cutting force in order to cut the same volume of rock. This observation indicates that not only will a PDC bit with lower back rake angles, drill more efficiently, but it will also require less torque in order to drill at the same ROP. Other factors such as reduced durability of cutters at low back rake angles should also be considered while applying these results to PDC bit designs. Test results at both atmospheric and confining pressures revealed that MSE decreases with increasing DOC up to 0.08" on all three rock types. However, the tests also showed that MSE starts to increase slightly at DOCs above 0.08", possibly suggesting an optimal minimum DOC. Experimental results also show that, whilst Mancos shale and Carthage marble have about the same compressive strength, Mancos shale requires three times less energy to cut compared to Carthage marble. This indicates that, compressive strength of some rocks such as shales cannot be used alone as a reference rock property for accurately evaluating and comparing drilling efficiency. A new 3D mechanistic PDC cutter-rock interaction model was also developed which incorporates the effects of both back rake and side rake angles, along with rock specific coefficient of friction. The results from this single-cutter model are encouraging as they are consistent with the experimental data.
机译:钻井行业内的一个关键目标是优化渗透率(ROP)和获得该目标的主要贡献者是PDC位设计。虽然先前的论文证明了PDC切割结构几何形状,特别是背耙和侧耙角度,影响在大气条件下测试时的PDC位性能,但在限制压力下没有SPE文献中的信息存在类似的测试。在受限压力下,侧耙角度对切割(Doc)深度的切割速度和切割器相互作用的影响尤其未知。超过150个测试的结果表明,背耙和侧耙角度对机械特定能量(MSE)和PDC切割器的侵略性。三种不同岩石类型的实验;迦太基大理石,甘蔗页岩和托雷·苏道砂岩,透露,在大气和升高的压力下,PDC切割机具有10°率的耙角需要切割相同体积的岩石的一半能量,与具有40°后耙角的切割器相比产生更高的切削效率。通过对切削过程的分析来解释这种行为的可能原因。结果表明,较低的耙子刀具需要较少的水平切割力以削减相同的岩石。该观察表明,不仅有一个带有较低耙子的PDC位角度,钻头更有效,但它也需要更少的扭矩以便在同一循环中钻。在将这些结果应用于PDC位设计的同时,也应考虑在低背角度下减少刀具的耐久性耐久性等其他因素。在大气和限制压力下的测试结果显示,在所有三种岩石类型上,MSE增加到0.08“的DOC增加。但是,测试也表明MSE在0.08的文档中开始略微增加”,可能表明最佳的最小DOC。实验结果还表明,虽然曼奇斯页岩和迦太基大理石对相同的抗压强度,但与迦太基大理石相比,曼奇斯页岩需要减少三倍的能量。这表明,一些岩石的抗压强度,如Shales不能单独用作参考岩石性能,以便准确地评估和比较钻井效率。还开发了一种新的3D机械PDC切割岩相互作用模型,其包括后耙和侧耙角度的效果以及岩石特定的摩擦系数。由于它们与实验数据一致,因此这款单刀模型的结果是令人鼓舞的。

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