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首页> 外文期刊>Composites Science and Technology >Significantly improved strength and ductility in bimodal-size grained microstructural magnesium matrix composites reinforced by bimodal sized SiCp over traditional magnesium matrix composites
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Significantly improved strength and ductility in bimodal-size grained microstructural magnesium matrix composites reinforced by bimodal sized SiCp over traditional magnesium matrix composites

机译:与传统镁基复合材料相比,双峰尺寸SiCp增强的双峰尺寸晶粒微结构镁基复合材料的强度和延展性显着提高

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摘要

High strong magnesium matrix composites can be obtained by refining grain size, heat treatment and severe plastic deformation methods. However, most of the composite enhancing approaches result in the disappointingly poor tensile ductility. Thus, the designing and fabricating of composites with simultaneously good ductility and high strength have become burning issues for the application of light metals/alloys. Simply adding particles or changing particle parameters can not solve the problem of combination of high strength and good ductility. A new method has been developed, wherein the bimodal size grained microstructure formed by adding the bimodal sized SiC particles (SiCp) was selected as favorable microstructure for achieving good ductility and high strength in present work. The fine grains (grain size: <1 mu m) were obtained through the particle stimulate of nucleation (PSN) and pin grain boundary effect. However, the coarse grains (grain size: similar to 4 mu m) were obtained through forming SiCp free zones in the present magnesium matrix composites. The tensile test indicates a significant improvement in the ductility (similar to 8.3%) and strength (UTS: similar to 402 MPa, YS: similar to 323 MPa) of the composites. Compared with the conventional single-sized particles (micron or nano) reinforced magnesium matrix composites, the tensile ductility and strength of present composite (AZ31B/SiCp/1n + 9m composite) were highlighted in the current literature. (C) 2015 Elsevier Ltd. All rights reserved.
机译:高强度的镁基复合材料可通过细化晶粒尺寸,热处理和剧烈的塑性变形方法获得。然而,大多数复合增强方法导致令人失望的差的拉伸延展性。因此,同时具有良好的延展性和高强度的复合材料的设计和制造已成为轻金属/合金应用的迫切问题。简单地添加粒子或更改粒子参数不能解决高强度和良好延展性相结合的问题。已经开发了一种新方法,其中通过添加双峰尺寸的SiC颗粒(SiCp)形成的双峰尺寸的晶粒微结构被选择为在当前工作中实现良好的延展性和高强度的有利的微结构。通过成核的颗粒激发(PSN)和针晶边界效应获得了细晶粒(晶粒尺寸:<1微米)。然而,通过在本镁基复合材料中形成无SiCp区域获得了粗大晶粒(晶粒尺寸:约4μm)。拉伸试验表明,复合材料的延展性(约8.3%)和强度(UTS:约402 MPa,YS:约323 MPa)显着改善。与常规的单颗粒(微米或纳米)增强镁基复合材料相比,当前文献(AZ31B / SiCp / 1n + 9m复合材料)的拉伸延展性和强度得到了强调。 (C)2015 Elsevier Ltd.保留所有权利。

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