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    • 41. 发明专利
    • Thin wear resistant coating
    • 耐磨损涂层
    • JP2006312235A
    • 2006-11-16
    • JP2006129492
    • 2006-05-08
    • Seco Tools Abセコ ツールズ アクティエボラーグ
    • LARSSON TOMMYKARLSSON LENNART
    • B23B27/14B23B51/00B23C5/16C23C14/06
    • C23C30/00C23C14/0641C23C28/042C23C28/044C23C28/048
    • PROBLEM TO BE SOLVED: To provide a cutting tool insert including base material and coating, a solid end mill, or a drill.
      SOLUTION: The coating is composed of one or more layers of refractory compounds of which at least one layer comprises a h-Me1Me2X phase, where Me1 is one or more of the elements V, Cr, Nb, and Ta and Me2 is one or more of the elements Ti, Zr, Hf, Al, and Si and X is one or more of the elements N, C, O or B. The ratio R=(at-% to X)/(at-% of Me + at-% of Me2) of the h-Me1Me2X phase is between 0.5 and 1.0, preferably between 0.75 and 1.0 and X contains less than 30 at-% of O + B. This invention is particularly useful in metal cutting applications where the chip thickness is small and the work material is hard e.g. copy milling using solid end mills, insert milling cutters or drilling of hardened steels.
      COPYRIGHT: (C)2007,JPO&INPIT
    • 要解决的问题:提供一种包括基材和涂层的切削工具刀片,固体立铣刀或钻头。 解决方案:涂层由一层或多层耐火化合物组成,其中至少一层包含h-Me1Me2X相,其中Me1是元素V,Cr,Nb和Ta中的一种或多种,​​Me 2是 元素Ti,Zr,Hf,Al和Si中的一种或多种,​​X和X是元素N,C,O或B中的一种或多种。比率R =(at-%对X)/(at-% h-Me1Me2X相的Me + at-%Me2为0.5〜1.0,优选为0.75〜1.0,X含有小于30at%的O + B。本发明特别适用于金属切割应用,其中 芯片厚度小,加工材料硬等 使用固体立铣刀复制铣削,插入铣刀或硬化钢的钻孔。 版权所有(C)2007,JPO&INPIT
    • 44. 发明专利
    • PRODUCTION OF TOOL, TOOL AND DEVICE
    • JP2001059102A
    • 2001-03-06
    • JP2000201318
    • 2000-07-03
    • SECO TOOLS AB
    • PUIDE MATTIASBRUHN JOHNNYGROENKVIST MIKAEL
    • B23B51/00B21C23/10B21C23/14B22F3/02B22F3/20B22F3/22B22F5/10B22F7/00B22F7/06B23B51/06B23P15/32
    • PROBLEM TO BE SOLVED: To provide a tool composed of a circumferential face with chip grooves having high wear resistance and a core part having high toughness in high efficiency by executing extrusion while a region contg. hard material powder and moreover high in the content of a metallic binder is fed to a core part and a region low in that to a circumferential face and passing it through a chip groove forming part. SOLUTION: From a machine for extrusion to a device 20 for molding connected thereto, a mixture of the powder of WC as a hard material and Co as a binder and a resin is fed, and the molding is baked to obtain a drill having chip grooves on the circumferential face. At this time, the mixture of the material to be fed to the piercing recessed part 24 of the device 20 has a columnar bar-shape composed of a core part relatively small in WC and large in Co and an outer circumferential part large in WC and small in Co. The bar-shaped material is moreover extruded and passed through a diaphragm 27 to form a cleaning channel by a pin 35 fitted to the hole 34 of a core 33, which is passed through a mold 29 and is passed to a chip groove forming part 42 composed of a twisting ridge 43 provided on a T-shaped holding part 40 fitted to a cover 36. In this way, spiral chip grooves are easily formed in a short time at a low cost.
    • 46. 发明专利
    • DRILL
    • JPH1119812A
    • 1999-01-26
    • JP11869798
    • 1998-04-28
    • SECO TOOLS AB
    • HAMBERG JENS
    • B23B51/00B23B51/04B23B51/06
    • PROBLEM TO BE SOLVED: To sufficiently transfer the cutting chips by extending cooling passages straight along the almost length of a shank in parallel with the center axis of the shank. SOLUTION: Cooling passages 30, 32 travel in parallel with each other along the almost length of a shank 12, and similarly travel in a holder 16 at the same distance separated from the center axis 20. Both the cooling passages 30, 32 are deflected before they are opened in an end 14 formed with a first chip. They are deflected so that the cooling passages 30, 32 do not hinder a cutting insertion tool 22 or a fixing means thereof at a stage, in which the cooling passages 30, 32 are ended at the first chip formed end 14. The cooling passage 32 is opened in a surface in the periphery of the shank 12. Both the cooling passages 30, 32 do not hinder the chip grooves 26, 28 over the full length of the shank 12.