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Superior tensile fracture strength of hot isostatically pressed TiC-steel metallic composite fabricated by a novel infiltration

机译:新型渗透法制备的热等静压TiC-钢金属复合材料的优异拉伸断裂强度

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摘要

A metallic composite having TiC particle content as high as similar to 47 vol% in a cold work tool steel matrix was successfully fabricated by a novel infiltration process. The penetration of the liquid steel reached geometrically complex regions, such that no interfacial flaw was observed. The interface between the ferrite matrix and TiC was semicoherent with a faceted morphology consisting of low-index planes of each phase. Owing to these characteristics of the interface, neither interfacial decohesion nor cracking was observed after the tensile fracture. The initial failure occurred in the TiC particle by a {100} cleavage fracture. The cracks formed from each fractured TiC particle interlinked forming a major crack. The hot-isostatically pressed composite exhibited 16% higher strength (919 MPa) than the as-infiltrated composite (791 MPa). The fracture strength of the composite largely depended on the degrees of suppression of the TiC cracking and its propagation. The residual stresses pertaining to the TiC and steel matrix were measured by X-ray diffraction. They were not significant factors responsible for the increased fracture strength of the hot-isostatically pressed composite. The increased strength of the hot-isostatically pressed composite could be explained in terms of the mutually interactive influences of the load transfer mechanism, matrix toughening, reduced TiC contiguity, and M7C3 carbide bridging TiC particles.
机译:通过一种新颖的渗透工艺成功地制备了在冷作工具钢基体中TiC颗粒含量高达47%(体积)的金属复合材料。液态钢的渗透达到几何上复杂的区域,因此未观察到界面缺陷。铁素体基体与TiC之间的界面是半相干的,具有由每个相的低折射率平面组成的多面形态。由于界面的这些特性,在拉伸断裂后既未观察到界面脱粘也未观察到裂纹。 TiC颗粒由于{100}断裂而发生了初始破坏。由每个断裂的TiC颗粒形成的裂纹相互连接形成一个大裂纹。热等静压复合材料的强度(919 MPa)比渗透态复合材料(791 MPa)高16%。复合材料的断裂强度在很大程度上取决于TiC裂纹的抑制程度及其传播。通过X射线衍射测量与TiC和钢基体有关的残余应力。它们不是造成热等静压复合材料断裂强度增加的重要因素。热等静压复合材料的强度增加可以通过载荷传递机制,基体增韧,降低的TiC连续性和M7C3碳化物桥接TiC颗粒的相互影响来解释。

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