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高鈮TiAl合金的高溫斷裂韌性

High-temperature fracture toughness of high Nb-containing TiAl alloys

  • 摘要: 利用緊湊拉伸試樣通過預制疲勞裂紋研究近片層組織Ti-45Al-8Nb-0.2W-0.2B-0.1Y合金和全片層組織Ti-45Al-7Nb-0.2W-0.2Hf-0.3B-0.15C合金在750℃下的斷裂韌性,并分析兩種組織合金的斷口形貌.結果表明,近片層組織和全片層組織高鈮TiAl合金750℃時的斷裂韌性分別為19.54和31.58 MPa·m1/2,且近片層組織疲勞裂紋開始萌生時的最大疲勞載荷明顯低于全片層組織.斷口分析表明近片層組織中裂紋主要在等軸γ晶中萌生,裂紋擴展方式包括沿γ晶、穿γ晶及沿片層、穿片層;全片層組織中裂紋主要在垂直于加載方向的片層間萌生,裂紋以沿片層與穿片層的混合方式進行擴展且伴有二次裂紋的萌生.

     

    Abstract: The fracture toughness of a nearly lamellar Ti-45Al-8Nb-0.2W-0.2B-0.1Y alloy and a fully lamellar Ti-45Al-7Nb-0.2W-0.2Hf-0.3B-0.15 C alloy at 750℃ was investigated by prefabricating a fatigue crack in the compact tension(CT) specimen,and the corresponding fracture morphologies were observed by optical microscopy and scanning electron microscopy. It is found that the fracture toughness of the nearly lamellar high Nb-containing Ti Al alloy is 19.54 MPa·m1/2 at 750℃,obviously lower than the value of 31.58 MPa·m1/2 for the fully lamellar alloy. The maximum cyclic load at which the fatigue crack initiates in the nearly lamellar alloy is noticeably less than that in the fully lamellar alloy. Fracture images show that for the nearly lamellar alloy,cracks initiate mainly in equiaxed γ grains and propagate in different ways,intergranularly or transgranularly in γ grains or lamellar colonies. But for the fully lamellar alloy,cracks initiate mainly at lamellar interfaces perpendicular to the load direction and propagate in both interlamellar and translamellar ways,in accompanying with secondary crack initiation.

     

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