cp時(shí),微米級和納米級的Fe-C相可均勻彌散分布于合金基體內(nèi),不過微米級Fe-C粒子對應(yīng)的此速率范圍遠(yuǎn)小于納米級Fe-C粒子的;由于溶質(zhì)元素Fe在Cu基體內(nèi)的固溶和不同尺寸Fe-C相的存在,使得熔鑄態(tài)復(fù)相合金具有較高的加工硬化率(n=0.5149);80%冷軋變形可誘發(fā)合金基體內(nèi)的Fe-C相發(fā)生γ-Fe→α-Fe相變,充分利用這一相變可用于調(diào)控Cu-Fe-C復(fù)相合金的強(qiáng)度和加工變形性能;雖然熔鑄態(tài)和冷軋態(tài)合金均具有較好的協(xié)調(diào)變形性能,但是相比而言,Fe-C相處于FCC結(jié)構(gòu)時(shí)的熔鑄態(tài)合金可表現(xiàn)出更好的協(xié)調(diào)變形行為;此外,本文根據(jù)復(fù)相銅合金的組織演化以及拉伸斷口形貌提出了該類合金協(xié)調(diào)變形和斷裂模型示意圖。"/>

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新型Cu-Fe-C復(fù)相合金的制備及其變形行為的研究
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北京科技大學(xué)新金屬材料國家重點(diǎn)實(shí)驗(yàn)室,北京科技大學(xué)新金屬材料國家重點(diǎn)實(shí)驗(yàn)室,北京科技大學(xué)新金屬材料國家重點(diǎn)實(shí)驗(yàn)室

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TG146

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國家自然科學(xué)(51301016和51571023)、中央高?;究蒲袠I(yè)務(wù)費(fèi)(FRF-TP-14-097A2)和北京市青年“英才”計(jì)劃項(xiàng)目YETP0409


THE DEVELOPMENT AND DEFORMATION BEHAVIORS OF AN ADVANCED Cu-Fe-C ALLOY WITH A DUAL-PHASE MICROSTRUCTURE
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University of Science & Technology Beijing,University of Science & Technology Beijing,

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    摘要:

    本文采用真空熔煉和快速凝固方法制備了組織優(yōu)異的新型Cu-Fe-C復(fù)相合金,并通過金相、SEM、TEM、XRD以及力學(xué)性能測量分別對復(fù)相合金鑄態(tài)和冷軋態(tài)顯微組織變化和變形行為進(jìn)行了研究。結(jié)果表明,當(dāng)凝固界面推移速率滿足Vcp時(shí),微米級和納米級的Fe-C相可均勻彌散分布于合金基體內(nèi),不過微米級Fe-C粒子對應(yīng)的此速率范圍遠(yuǎn)小于納米級Fe-C粒子的;由于溶質(zhì)元素Fe在Cu基體內(nèi)的固溶和不同尺寸Fe-C相的存在,使得熔鑄態(tài)復(fù)相合金具有較高的加工硬化率(n=0.5149);80%冷軋變形可誘發(fā)合金基體內(nèi)的Fe-C相發(fā)生γ-Fe→α-Fe相變,充分利用這一相變可用于調(diào)控Cu-Fe-C復(fù)相合金的強(qiáng)度和加工變形性能;雖然熔鑄態(tài)和冷軋態(tài)合金均具有較好的協(xié)調(diào)變形性能,但是相比而言,Fe-C相處于FCC結(jié)構(gòu)時(shí)的熔鑄態(tài)合金可表現(xiàn)出更好的協(xié)調(diào)變形行為;此外,本文根據(jù)復(fù)相銅合金的組織演化以及拉伸斷口形貌提出了該類合金協(xié)調(diào)變形和斷裂模型示意圖。

    Abstract:

    An advanced Cu-Fe-C alloy with dual-phase structure was prepared by combining a vacuum melting and rapid solidification. The microstructure evolution and deformation behaviors of the alloy in the as-cast and rolling states were studied by OM, SEM, TEM and XRD characterization, and mechanical property measurements. The results show that, when the moving speed of freezing interface satisfies the relationship of Vcp, both micro-scale and nano-scale Fe-C particles can uniformly distribute in the alloy matrix, but the range between Vc and Vp for micro-scale particles is much narrower than that of nano-scale particles. Due to the solution of Fe in the Cu matrix and the existence of Fe-C particles with different sizes, the Cu-Fe-C alloy in the as-cast state possesses a much higher work hardening exponent (n=0.5149). The phase transformationSof Fe-C particles from γ-Fe to α-Fe can be induced by cold rolling 80%, which can be greatly used to control and optimize the strength and deformation performance of Cu-Fe-C alloy. Although the deformability of Cu-Fe-C alloy in both the as-cast and rolling states is good, yet, compared with the cold rolling state, the alloy in the as-cast state possesses a much better coordinative deformation performance due to the FCC structure of Fe-C phases in this state. Additionally, according to the microstructure evolution and tensile fracture morphologies of Cu-Fe-C alloy with a dual-phase structure, the coordinative deformation and fracture models were put forward in this paper.

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王斐,郭明星,易龍.新型Cu-Fe-C復(fù)相合金的制備及其變形行為的研究[J].稀有金屬材料與工程,2017,46(9):2688~2694.[wangfei, Guo Mingxing, yilong. THE DEVELOPMENT AND DEFORMATION BEHAVIORS OF AN ADVANCED Cu-Fe-C ALLOY WITH A DUAL-PHASE MICROSTRUCTURE[J]. Rare Metal Materials and Engineering,2017,46(9):2688~2694.]
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  • 收稿日期:2015-07-25
  • 最后修改日期:2017-09-08
  • 錄用日期:2016-01-14
  • 在線發(fā)布日期: 2017-11-29
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