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预制件中粒度分布对铜渗AISI H11工具钢热导率、维氏硬度和拉伸强度的影响

Impact of Particle Size Distribution in the Preform on Thermal Conductivity, Vickers Hardness and Tensile Strength of Copper-Infiltrated AISI H11 Tool Steel.

作者信息

Vetter Johannes, Beneder Samuel, Kandler Moritz, Feyer Felix, Körner Carolin, Schmidt Michael

机构信息

Friedrich-Alexander-Universität Erlangen-Nürnberg, Institute of Photonic Technologies, Konrad-Zuse-Straße 3/5, 91052 Erlangen, Germany.

Erlangen Graduate School in Advanced Optical Technologies (SAOT), Paul-Gordan-Straße 6, 91052 Erlangen, Germany.

出版信息

Materials (Basel). 2023 Mar 27;16(7):2659. doi: 10.3390/ma16072659.

Abstract

Spontaneous infiltration of a porous preform by a metallic melt provides the potential of generating metal matrix composites (MMCs) with tailored combinations of material properties at low cost. The bulk of tool inserts for injection molding must sustain high mechanical and thermal loads and simultaneously exhibit high thermal conductivity for efficient temperature control of the mold insert. To fulfill these contradictory requirements, AISI H11 tool steel preforms were infiltrated by liquid copper. The impact of the fine powder fraction (0 wt.% to 15 wt.%) blended to a coarse H11 powder in the preform on thermal conductivity, Vickers hardness and tensile strength was elucidated. The thermal conductivity of the composites could be enhanced by a factor of 1.84 (15 wt.% fine powder) and 2.67 (0 wt.% fine powder) with respect to the sintered H11 tool steel. By adding 15 wt.% fine powder to the coarse host powder, the tensile strength and Vickers hardness of the copper-infiltrated steel were 1066.3 ± 108.7 MPa and 366 ± 24 HV1, respectively, whereas the H11 tool steel yielded 1368.5 ± 89.3 MPa and 403 ± 17 HV1, respectively. Based on the results obtained, an appropriate particle size distribution (PSD) may be selected for preform preparation according with the requirements of a future mold insert.

摘要

金属熔体对多孔预制件的自发渗透为低成本制备具有定制材料性能组合的金属基复合材料(MMC)提供了可能性。注塑成型用的大部分刀具刀片必须承受高机械和热负荷,同时还要具有高导热性,以便对模具镶件进行有效的温度控制。为了满足这些相互矛盾的要求,用液态铜对AISI H11工具钢预制件进行了渗透。阐明了预制件中与粗H11粉末混合的细粉分数(0 wt.%至15 wt.%)对导热性、维氏硬度和拉伸强度的影响。相对于烧结的H11工具钢,复合材料的导热性可提高1.84倍(15 wt.%细粉)和2.67倍(0 wt.%细粉)。通过向粗基体粉末中添加15 wt.%的细粉,渗铜钢的拉伸强度和维氏硬度分别为1066.3±108.7 MPa和366±24 HV1,而H11工具钢分别为1368.5±89.3 MPa和403±17 HV1。根据所得结果,可以根据未来模具镶件的要求选择合适的粒度分布(PSD)来制备预制件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1135/10095737/34c4a5a6be78/materials-16-02659-g001.jpg

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