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真空热压烧结制备10vol%TiC/Cu-Al_2O_3复合材料及热变形行为研究 被引量:5
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作者 杨志强 刘勇 +1 位作者 田保红 张毅 《功能材料》 EI CAS CSCD 北大核心 2014年第2期147-152,共6页
在VDBF-250真空热压烧结炉中,采用真空热压烧结工艺制备了10%(体积分数)TiC/Cu-Al2 O3复合材料。利用 Gleeble-1500热力模拟实验机,在温度为450~850℃、应变速率为0.001~1 s-1、真应变量0.7的条件下,对10%(体积分数)TiC/Cu-Al2 O... 在VDBF-250真空热压烧结炉中,采用真空热压烧结工艺制备了10%(体积分数)TiC/Cu-Al2 O3复合材料。利用 Gleeble-1500热力模拟实验机,在温度为450~850℃、应变速率为0.001~1 s-1、真应变量0.7的条件下,对10%(体积分数)TiC/Cu-Al2 O3复合材料高温塑性变形过程中的动态再结晶行为及其热加工图进行研究和分析。结果表明,该材料烧结态致密度为98.53%,显微硬度为158 HV,导电率为48.7% IACS;材料的高温流变应力-应变曲线主要以动态再结晶软化机制为特征,峰值应力随变形温度的降低或应变速率的升高而增加,属于温度和应变速率敏感材料;同时,利用10%(体积分数)TiC/Cu-Al2 O3复合材料 DMM 加工图分析了其变形机制和失稳机制,并最终确定了热加工工艺参数选取范围为变形温度750~850℃,应变速率0.01~0.1 s-1。 展开更多
关键词 真空热压烧结 10%(体积分数)TiCCu-Al2O3复合材料 热变形 流变应力 加工图
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基于铸辗复合成形的42CrMo钢稳态变形参数的确定 被引量:6
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作者 秦芳诚 齐会萍 +1 位作者 李永堂 杜诗文 《金属热处理》 CAS CSCD 北大核心 2014年第2期101-106,共6页
通过热压缩试验获得42CrMo钢铸坯的流变应力,以动态材料模型和Prasad’s失稳准则为基础,建立不同变形量下42CrMo钢铸坯的功率耗散图、失稳图及加工图,分析其热变形过程并确定稳态变形参数。研究得出了变形失稳区在高应变速率(大于0... 通过热压缩试验获得42CrMo钢铸坯的流变应力,以动态材料模型和Prasad’s失稳准则为基础,建立不同变形量下42CrMo钢铸坯的功率耗散图、失稳图及加工图,分析其热变形过程并确定稳态变形参数。研究得出了变形失稳区在高应变速率(大于0.35s^-1)时出现,且随应变速率的增加和变形量的增大,失稳区域变宽。变形温度850~1150℃、应变速率0.05~0.35s^-1为稳态变形区域。功率耗散效率的峰值35%出现在1100℃/0.05^s-1处,被认为是最佳变形工艺参数。 展开更多
关键词 铸辗复合成形 42CRMO钢 稳态变形参数 动态材料模型 加工图
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Hot workability characteristics of Rene88DT superalloy with directionally solidified microstructure 被引量:10
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作者 Fu-Lin Li Rui Fu +1 位作者 Di Feng Zhi-Ling Tian 《Rare Metals》 SCIE EI CAS CSCD 2015年第1期51-63,共13页
The hot deformation characteristics of Rene88DT superalloy with directionally solidified micro- structure produced by electroslag remelting continuous directionally solidification (ESR-CDS) were studied in the tempe... The hot deformation characteristics of Rene88DT superalloy with directionally solidified micro- structure produced by electroslag remelting continuous directionally solidification (ESR-CDS) were studied in the temperature range of 1,040-1,140 ℃ and strain rate range of 0.001-1.000 s-1 by hot compression tests. Flow curves for Rene88DT alloy with initial directionally solidified (DS) microstructure exhibit pronounced peak stresses at the early stage of deformation followed by the occurrence of dynamic softening phenomenon. Rene88DT alloy with DS micro- structure shows higher flow peak stresses compared with HIPed P/M superalloy FGH4096, but the disparities in peak stresses between ESR-CDSed Rene88DT and HIPed P/M superalloy FGH4096 reduce as temperature increases. The improvement of hot workability of DS alloy with columnar grains avoiding the maximum shear stress comes true. A hot deformation constitutive equation as a function of strain that describes the dependence of flow stress on strain rate and temperature is established. Hot deformation apparent acti- vation energy (Q) varies not only with the strain rate and temperature but also with strain. The strain rate sensitivity exponent (m) map is established at the strain of 0.8, which reveals that global dynamic recrystallization (DRX) shows a relatively high m value in a large strain compression. Optimum parameters are predicted in two regions: T = 1,100-1,130 ℃, ε = 0.100-1.000 s-1 and T = 1,080- 1,100 ℃, ε = 0.010-100 s-1, which is based on pro- cessing maps and deformation microstructure observations. 展开更多
关键词 Rene88DT alloy Directional solidification Isothermal compression Constitutive equation processingmap
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Hot deformation characterization and processing map of Cu-10 %Fe-1.5 %Ag in situ composite 被引量:3
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作者 Jun-Qing Guo He Yang +1 位作者 Ping Liu Zhi-Wei Cai 《Rare Metals》 SCIE EI CAS CSCD 2017年第11期912-918,共7页
The Cu-10 %Fe-1.5 %Ag in situ composite with high strength, high conductivity and low cost was prepared, and its hot deformation behavior was investi- gated by isothermal compression test with true strain of 0.69, tem... The Cu-10 %Fe-1.5 %Ag in situ composite with high strength, high conductivity and low cost was prepared, and its hot deformation behavior was investi- gated by isothermal compression test with true strain of 0.69, temperature range of 750-950℃ and strain rate of 0.002-1.000 s-1. The flow stress-strain response shows the characterization of dynamic recrystallization (DRX), and the peak stress increases gradually with deformation tem- perature decreasing and strain rate increasing. The defor- mation activation energy of the composite for DRX is calculated as 241.864 kJ.mo1-1. The constitutive relation of the composite was got by Arrhenius equation. Further- more, according to the dynamic material modeling and Kumar-Prasad's instability criteria, the processing map was constructed and the unsafe regions for hot deformation were analyzed. Based on the processing map and microstructural evolution, the optimal parameter range for hot deformation processing is 750-863℃ at the strain rate of 0.002-0.013 s-1. 展开更多
关键词 Cu-10 %Fe-1.5 %Ag in situ composite Hotcompression test Deformation characterization processingmap Dynamic recrystallization
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Hot deformation behavior and processing parameter optimization of BT25y alloy with an initial equiaxed microstructure using processing map 被引量:2
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作者 Xue-Mei Yang Hong-Zhen Guo +2 位作者 Ze-Kun Yao Shi-Chong Yuan She-Wei Xin 《Rare Metals》 SCIE EI CAS CSCD 2018年第9期778-788,共11页
The high-temperature plastic deformation behavior of BT25y alloy with an initial equiaxed microstructure was investigated by hot compression tests. Processing maps were established to evaluate the power dissipation ef... The high-temperature plastic deformation behavior of BT25y alloy with an initial equiaxed microstructure was investigated by hot compression tests. Processing maps were established to evaluate the power dissipation efficiency (η) and identify the flow instability regions. When the strain reaches steady state, the optimum processing window is distributed in the area covering most of the studied deformation temperatures and strain rates of 1 × 10-2 to 1× 10-1 s-1. True strain has great effects on the power dissipation efficiency under the condition of 880 ℃/1× 10-3 s-1, but the efficiency values remain approximately constant (η= 0.40) at conditions of 900-940 ℃/1× 10-2 to 1 × 10-1 S-1 and 980-1000 ℃/ 1× 10-1 s- 1. Besides, the instability regions are distributed in high strain rate areas no matter how many of the strains. Based on the processing map and microstructural observa- tion, it can be concluded that the deformation mechanisms related to Region I with small strain rate and lower temper- ature in α+β phase field, Region II with medium strain rate and higher temperature inα+β phase field, Region III with medium strain rate and high temperature in βphase field are superplasticity and strain-induced transformation, dynamicrecrystallization (DRX) and phase transformation, β phase dynamic recovery and local DRX, respectively. 展开更多
关键词 BT25y alloy Hot deformation processingmap Microstructural evolution
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