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    • 3. 发明申请
    • FUSION CARBIDE OF REFRACTORY METAL CEMENTING
    • 熔融金属熔敷金属碳化物
    • US20160145723A1
    • 2016-05-26
    • US14699812
    • 2015-04-29
    • National Tsing Hua University
    • Swe-Kai CHEN
    • C22C32/00C22C29/10C22C47/00C22C29/06C22C29/08C22C1/02
    • C22C29/067C22C1/02C22C29/02C22C29/08
    • Fusion carbide of a refractory metal cementing is disclosed, which includes at least four strengthening compound phases and at least one refractory metal cementing phase. The strengthening compound phases and the refractory metal cementing phase are combined by a fusion method, for manufacturing the refractory metal cementing fusion carbide. By using the fusion method, the problems of low density and high cost in the conventional sintering method for combining the strengthening phase and the cementing phase can be solved, and composite material with high hardness, high melting point, and high toughness can be manufactured. Moreover, comparing with the conventional sintered cermet composite material, the refractory metal cementing fusion carbide has the advantages including rapid and convenient manufacturing, with desired density, and hardness and toughness.
    • 公开了一种耐火金属粘合剂的熔融碳化物,其包括至少四个强化化合物相和至少一个难熔金属固井相。 强化复合相和难熔金属固井相通过熔融法合并,用于制造难熔金属固井融合碳化物。 通过使用熔融法,可以解决用于组合强化相和固井相的常规烧结方法中的低密度和高成本的问题,并且可以制造具有高硬度,高熔点和高韧性的复合材料。 此外,与传统的金属陶瓷烧结复合材料相比,难熔金属固井融合碳化物具有制造快速且方便,所需密度,硬度和韧性的优点。
    • 6. 发明申请
    • Method of manufacturing a fibre reinforced metal matrix composite article and a cassette for use therein
    • 制造纤维增强金属基复合制品的方法和用于其中的盒子
    • US20050103827A1
    • 2005-05-19
    • US10988641
    • 2004-11-16
    • Edwin Twigg
    • Edwin Twigg
    • B22F3/00C22C47/00C22C47/02C22C47/04C22C47/06C22C47/14C22C47/20C22C101/04C22C101/14C22C101/18C22C101/20B23K20/00
    • C22C47/025B22F3/005B22F2998/00B22F2999/00C22C47/00C22C47/06C22C47/064C22C47/14C22C47/20F01D5/282Y10T29/49337Y10T29/49895Y10T29/5337Y10T29/53435B22F5/04B22F7/08
    • A method of manufacturing a fibre reinforced metal matrix composite article (10) comprises forming an annular groove (32) in the first metal component (30), forming a second metal component (36) and forming a number of fibre preforms (20). The fibre preforms (20) are placed in an annular channel (80) in a cassette (70). The cassette (70) and the first metal component (30) are arranged such that the annular channel (80) in the cassette (70) is coaxial with and faces the annular groove (32) in the first metal component (30). The fibre preforms (20) are moved from the annular channel (80) in the cassette (70) to the annular groove (32) in the first metal component (30). The second metal component (36) is placed on the first metal component (30) such that the fibre preforms (20) are arranged between the first metal component (30) and the second metal component (36). The second metal component (36) is sealed to the first metal component (30). Heat and pressure is applied such as to consolidate the fibre preforms (20) and to diffusion bond the filler metal, the first metal component (30) and the second metal component (36) to form a unitary composite component.
    • 制造纤维增强金属基复合制品(10)的方法包括在第一金属部件(30)中形成环形槽(32),形成第二金属部件(36)并形成多个纤维预制件(20)。 纤维预制件(20)被放置在盒(70)中的环形通道(80)中。 盒(70)和第一金属部件(30)被布置成使得盒(70)中的环形通道(80)与第一金属部件(30)中的环形槽(32)同轴并面向第一金属部件(30)中的环形槽(32)。 纤维预制件(20)从盒(70)中的环形通道(80)移动到第一金属部件(30)中的环形槽(32)。 第二金属部件(36)被放置在第一金属部件(30)上,使得纤维预制件(20)布置在第一金属部件(30)和第二金属部件(36)之间。 第二金属部件(36)被密封到第一金属部件(30)。 施加热和压力以固结纤维预成型件(20)并扩散接合填料金属,第一金属组分(30)和第二金属组分(36)以形成整体复合组分。