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TRIP钢复合泡沫材料对准静态和动态压缩载荷的微观结构及变形响应

Microstructure and Deformation Response of TRIP-Steel Syntactic Foams to Quasi-Static and Dynamic Compressive Loads.

作者信息

Ehinger David, Weise Jörg, Baumeister Joachim, Funk Alexander, Waske Anja, Krüger Lutz, Martin Ulrich

机构信息

Leibniz Institute for Solid State and Materials Research IFW Dresden, Institute for Complex Materials, Helmholtzstr, 20, D-01069 Dresden, Germany.

Research Institute of Leather and Plastic Sheeting (FILK) gGmbH, Meißner Ring 1-5, D-09599 Freiberg, Germany.

出版信息

Materials (Basel). 2018 Apr 24;11(5):656. doi: 10.3390/ma11050656.

Abstract

The implementation of hollow S60HS glass microspheres and Fillite 106 cenospheres in a martensitically transformable AISI 304L stainless steel matrix was realized by means of metal injection molding of feedstock with varying fractions of the filler material. The so-called TRIP-steel syntactic foams were studied with respect to their behavior under quasi-static compression and dynamic impact loading. The interplay between matrix material behavior and foam structure was discussed in relation to the findings of micro-structural investigations, electron back scatter diffraction EBSD phase analyses and magnetic measurements. During processing, the cenospheres remained relatively stable retaining their shape while the glass microspheres underwent disintegration associated with the formation of pre-cracked irregular inclusions. Consequently, the AISI 304L/Fillite 106 syntactic foams exhibited a higher compression stress level and energy absorption capability as compared to the S60HS-containing variants. The α ′ -martensite kinetic of the steel matrix was significantly influenced by material composition, strain rate and arising deformation temperature. The highest ferromagnetic α ′ -martensite phase fraction was detected for the AISI 304L/S60HS batches and the lowest for the TRIP-steel bulk material. Quasi-adiabatic sample heating, a gradual decrease in strain rate and an enhanced degree of damage controlled the mechanical deformation response of the studied syntactic foams under dynamic impact loading.

摘要

通过对含有不同比例填充材料的原料进行金属注射成型,在可马氏体转变的AISI 304L不锈钢基体中实现了空心S60HS玻璃微球和Fillite 106空心微珠的应用。对所谓的TRIP钢复合泡沫材料在准静态压缩和动态冲击载荷下的行为进行了研究。结合微观结构研究、电子背散射衍射(EBSD)相分析和磁性测量结果,讨论了基体材料行为与泡沫结构之间的相互作用。在加工过程中,空心微珠保持相对稳定并保留其形状,而玻璃微球则发生分解,形成预裂纹不规则夹杂物。因此,与含S60HS的变体相比,AISI 304L/Fillite 106复合泡沫材料表现出更高的压缩应力水平和能量吸收能力。钢基体的α′-马氏体动力学受到材料成分、应变速率和产生的变形温度的显著影响。在AISI 304L/S60HS批次中检测到最高的铁磁α′-马氏体相分数,而在TRIP钢块状材料中检测到最低的分数。准绝热样品加热、应变速率的逐渐降低和损伤程度的增强控制了所研究的复合泡沫材料在动态冲击载荷下的机械变形响应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b44c/5978033/649eb9eeb151/materials-11-00656-g001.jpg

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