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    • 8. 发明授权
    • Cutting structure for roller cone drill bits
    • 圆锥钻头切割结构
    • US06374930B1
    • 2002-04-23
    • US09590580
    • 2000-06-08
    • Amardeep SinghSujian Huang
    • Amardeep SinghSujian Huang
    • E21B1016
    • E21B10/16
    • The invention is directed to a roller cone drill for drilling earth formations. The drill bit includes a bit body and a plurality of roller cones attached to the bit body and able to rotate with respect to the bit body. The drill bit further includes a plurality of teeth disposed on each of the roller cones such that the number of teeth on each cone differs by two or fewer from the number of teeth on each of the other cones. In one preferred embodiment, the drill bit includes three roller cones. In another preferred embodiment, the teeth of the bit are arranged on each cone so that teeth on adjacent cones intermesh between the cones. In another preferred embodiment, the drill bit includes a first cone, a second cone, and a third cone, and the number of teeth on each of the cones is 17, 16, and 18, respectively.
    • 本发明涉及一种用于钻探地层的滚子锥钻。 钻头包括钻头体和附接到钻头体并能够相对于钻头体旋转的多个滚子锥体。 钻头还包括设置在每个圆锥体上的多个齿,使得每个锥体上的齿数与每个其它锥体上的齿数相差两个或更少。 在一个优选实施例中,钻头包括三个滚筒锥体。 在另一优选实施例中,钻头的齿布置在每个锥体上,使得相邻锥体上的齿相互啮合在锥体之间。 在另一优选实施例中,钻头包括第一锥体,第二锥体和第三锥体,并且每个锥体上的齿数分别为17,16和18。
    • 9. 发明授权
    • Hydro-lifter rock bit with PDC inserts
    • 带PDC插入件的升降器钻头
    • US07341119B2
    • 2008-03-11
    • US11442520
    • 2006-05-26
    • Amardeep SinghQuan V. NguyenSujian Huang
    • Amardeep SinghQuan V. NguyenSujian Huang
    • E21B10/16
    • E21B10/52E21B10/16E21B10/18E21B17/1092
    • A rolling cone rock bit includes a plurality of PDC or other cutters mounted to the leg of the drill bit and positioned to cut the corner of the bottomhole. The plurality of cutters may be the primary cutting component at gage diameter, or may be redundant to gage teeth on a rolling cutter that cut to gage diameter. Consequently, the occurrence of undergage drilling from the wear and failure of the gage row on a rolling cutter is lessened. Also included is a mud ramp that creates a large junk slot from the borehole bottom up the drill bit. The resulting pumping action of the drill bit ramp speeds up the removal of chips or drilling cuttings from the bottom of the borehole, reduces the level of hydrostatic pressure at the bottom of the borehole and minimizes the wearing effect of cone inserts regrinding damaging drill cuttings.
    • 滚动圆锥岩石钻头包括安装到钻头的腿部并被定位成切割井底角落的多个PDC或其它切割器。 多个切割器可以是以量具直径的主要切割部件,或者可以是切割到规定直径的滚动切割器上的齿轮的多余的。 因此,减少了在轧机上的量规列的磨损和破坏的下行钻孔的发生。 还包括一个泥浆坡道,从钻孔底部向上钻出钻头创建一个大型垃圾槽。 所产生的钻头斜坡的泵送作用加快了从钻孔底部移除切屑或钻屑,降低了钻孔底部的静水压力水平,并最大限度地减少了锥形刀片磨损破坏钻屑的磨损效应。
    • 10. 发明申请
    • Wear compensated roller cone drill bits
    • 磨损补偿辊锥钻头
    • US20050133260A1
    • 2005-06-23
    • US11058641
    • 2005-02-15
    • Amardeep SinghSujian Huang
    • Amardeep SinghSujian Huang
    • E21B10/08E21B12/02E21B10/36G06G7/48
    • E21B10/08
    • The invention is a drill bit that has a bit body, at least one roller cone attached to the bit body and able to rotate with respect to the bit body, and a plurality of cutting elements disposed on the at least one roller cone. At least one bit design parameter is selected so that the cutting elements wear in a selected manner when drilling an earth formation. The invention is also a method for designing a drill bit that has at least one roller cone and a plurality of cutting elements. The method includes several steps, beginning with selecting initial bit design parameters. The drill bit is then simulated drilling at least one selected earth formation. The wear induced change in the cutting element geometry is determined and the simulated bit is adjusted to reflect the wear. The selecting, simulating, determining, and adjusting are repeated and at least one bit design parameter of the drill bit is adjusted until at least one performance parameter of the drill bit is optimized.
    • 本发明是一种钻头,其具有钻头体,至少一个辊锥体附接到钻头体并且能够相对于钻头体旋转,以及多个切割元件设置在至少一个辊锥体上。 选择至少一个位设计参数,使得当钻地层时,切割元件以选择的方式磨损。 本发明也是一种用于设计具有至少一个辊锥和多个切割元件的钻头的方法。 该方法包括几个步骤,从选择初始位设计参数开始。 然后模拟钻头至少一个选定的地层。 确定切削元件几何形状中磨损引起的变化,并调整模拟钻头以反映磨损。 重复选择,模拟,确定和调整,并且调整钻头的至少一个钻头设计参数,直到钻头的至少一个性能参数被优化为止。