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1.
对铸态AZ31B镁合金在温度280℃~440℃、应变速率0.001s-1~0.1s-1条件下进行热压缩实验,分析变形程度、应变速率和加热温度对其微观组织变化的影响,探讨合金的热压变形机制。实验结果表明,该合金热变形时发生了动态再结晶。变形温度越高、变形速率越小和变形量越大时,动态再结晶进行的越充分;变形温度越低、变形速率越大和变形量越大时,动态再结晶晶粒越细小。该合金的热变形机制是滑移孪晶联合机制。  相似文献   

2.
在轧制温度603~703 K、轧制压下量20%~40%、应变速率4~16 s-1下对AZ31镁合金进行轧制变形,研究轧制压下量、应变速率和变形温度对AZ31镁合金变形组织的影响,分析了镁合金的动态再结晶机制。结果表明:应变速率和变形温度不仅影响动态再结晶进行的程度,而且能够改变再结晶的方式或形核机制。当轧制应变速率= 13.9 s-1,变形温度T=603 K时,再结晶方式为孪生动态再结晶;变形温度升高到703 K时,沿晶界有链状新晶粒出现。当变形温度T= 673 K,应变速率= 11.35 s-1时,再结晶方式以孪生动态再结晶为主;应变速率降低到= 4 s-1时,再结晶方式以旋转动态再结晶为主。  相似文献   

3.
在250-400℃的温度范围和0.1-50 s^-1的应变速率范围内对ZK60合金进行压缩变形,对其流变行为和显微组织进行研究。结果表明,在低应变速率(0.1-1 s^-1)下压缩变形时,再结晶主要发生在初始晶界上;在高应变速率(10-50 s^-1)下压缩变形时,再结晶同时在初始晶界和孪晶上发生。合金在应变速率10-50 s^-1和温度250-350℃的变形条件下获得均匀、细小的再结晶组织。因此,合金的最佳热加工工艺范围为应变速率10-50 s^-1、变形温度250-350℃。高应变速率压缩变形条件下的孪生诱发动态再结晶过程分三步,首先,高位错密度孪晶分割初始晶粒;然后,孪晶内的位错发生重排形成亚晶;最后,随着应变的增加而形成再结晶晶粒。  相似文献   

4.
通过热压缩实验,研究挤压态AZ80镁合金在变形温度为250-450℃,应变速率为0.001-10 s-1条件下的热变形行为。采用经过温升修正的流变应力计算该合金的Zener-Hollomon参数(Z参数)。结果表明,挤压态AZ80镁合金适宜的变形条件为应变速率0.1 s-1、变形温度350-400℃。另外,讨论了显微组织演化与Z参数之间的关系。在高温及低应变速率(低Z参数)时,合金发生了完全再结晶并产生了大的再结晶晶粒。综合考虑加工图和显微组织,变形温度400℃、应变速率0.1 s-1是合金适宜的热变形条件。  相似文献   

5.
为了模拟难变形镍基高温合金GH4720Li开坯锻造过程,采用Gleeble-3800热模拟试验机研究经均匀化处理的GH4720Li铸锭高温压缩变形时的力学流动行为,分析高温变形过程中微观组织演化规律。结果表明,GH4720Li合金在1100℃,0.1 s-1条件下应力水平达到250 MPa,且应力对热变形温度和应变速率敏感,动态再结晶是主要的软化机制。粗晶组织提高了合金动态再结晶临界变形温度和应变速率,如在变形量为60%,变形条件为1140℃,0.001 s-1和1180℃,0.001s-1才能发生完全动态再结晶。计算的粗晶GH4720Li合金热变形激活能Q=1171kJ/mol,较高的热变形激活能表明粗晶组织不利于热塑性变形和动态再结晶的发生。基于本研究,铸态GH4720Li合金开坯温度应高于1140℃,同时保证较低的应变速率,以确保动态再结晶的充分发生,实现枝晶组织破碎。  相似文献   

6.
AZ31B镁合金塑性变形动态再结晶的实验研究   总被引:14,自引:1,他引:14  
通过不同应变速率和不同温度下的轴对称压缩试验,研究了AZ31B镁合金塑性变形与动态再结晶的相互依赖关系。研究证实,温度T在200℃~400℃区间、变形程度ε约0.2左右时,开始出现动态再结晶(DRX)现象。随变形程度的增加,DRX晶粒不断增多,材料呈现明显的软化趋势,流动应力下降。当DRX过程完成以后,继续变形,材料又出现硬化行为。为镁合金塑性变形组织演变的定量研究打下了基础。  相似文献   

7.
The hot deformation characteristics of as-forged Ti?3.5Al?5Mo?6V?3Cr?2Sn?0.5Fe?0.1B?0.1C alloy within a temperature range from 750 to 910 °C and a strain rate range from 0.001 to 1 s?1 were investigated by hot compression tests. The stress?strain curves show that the flow stress decreases with the increase of temperature and the decrease of strain rate. The microstructure is sensitive to deformation parameters. The dynamic recrystallization (DRX) grains appear while the temperature reaches 790 °C at a constant strain rate of 0.001 s?1 and strain rate is not higher than 0.1 s?1 at a constant temperature of 910 °C. The work-hardening rate θ is calculated and it is found that DRX prefers to happen at high temperature and low strain rate. The constitutive equation and processing map were obtained. The average activation energy of the alloy is 242.78 kJ/mol and there are few unstable regions on the processing map, which indicates excellent hot workability. At the strain rate of 0.1 s?1, the stress?strain curves show an abnormal shape where there are two stress peaks simultaneously. This can be attributed to the alternation of hardening effect, which results from the continuous dynamic recrystallization (CDRX) and the rotation of DRX grains, and dynamic softening mechanism.  相似文献   

8.
通过热压缩实验研究AZ31镁合金挤压杆料在变形温度300、400和500℃,应变速率0.1、0.01和0.001 s^?1条件下的流变行为,基于Arrhenius方程建立流变应力的本构模型,其中激活能Q为132.45 kJ/mol,应变硬化系数n为4.67。依据AZ31镁合金高温变形中的动态再结晶(Dynamic recrystallization,DRX)机理和位错密度演化规律,建立宏观变形?微观组织多尺度耦合的位错密度模型,该模型能够反映热加工过程中的加工硬化、动态回复(Dynamic recovery,DRV)、低角晶界(Low angle grain boundaries,LAGB)和高角晶界(High angle grain boundaries,HAGB)等机制的交互作用。利用ABAQUS的VUSDFLD子程序进行热压缩过程的有限元模拟,获得DRX分数、LAGB和HAGB位错密度的数值模拟结果以及压缩载荷。结果表明:实验载荷与模拟结果基本吻合,本文提出的AZ31镁合金位错密度模型是合理的。  相似文献   

9.
1 INTRODUCTIONThewroughtmagnesiumalloyshaveexcellentspecificstrengthandstiffness ,machinability ,dampcapacity ,dimensionalstability ,lowmeltingcostsandare ,hence ,veryattractiveinsuchapplicationsasau tomobile ,aviation ,electronicandcommunicationin dustry[16 ] .Investigationsontheflowstressandsofteningbehaviorofmagnesiumalloysathigherformingtem peratureandstrainratehavebeenanimportantsub jectinwroughtmagnesiumalloysforming[710 ] .InthispapertheflowstressandsofteningbehaviorofAZ31Bdeform…  相似文献   

10.
AZ80合金高温变形行为及加工图   总被引:6,自引:0,他引:6  
为实现AZ80合金塑性成形的数值模拟和制定其合理的热加工工艺,利用热模拟机对AZ80合金进行不同变形温度和应变速率的高温压缩变形行为研究.结果表明:AZ80合金的高温流动应力-应变曲线主要以动态回复和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;在真应力-应变曲线基础上,建立的AZ80合金高温变形的本构模型较好地表征其高温流变特性,模型计算精度高;同时,利用建立的AZ80合金的DMM加工图分析其变形机制和失稳机制,从提高零件力学性能角度考虑,可以优先选择变形温度为300~350 ℃、应变速率为0.001~0.01 s-1的工艺参数.  相似文献   

11.
The tensile tests of AZ31 magnesium alloy were carried out under room temperature, 100, 150 and 200 °C with and without pulse current. The effect of temperature on dynamic recrystallization(DRX) of AZ31 alloy was studied at different conditions. One-parameter approach was used to analyze the critical conditions of DRX, the critical stress was obtained under different temperatures, and the related results were validated by metallography observation. The results showed that DRX of AZ31 alloy occurred at 200 °C without pulse current. When pulse current with 150 Hz/50 V parameter was applied at room temperature, DRX occurred, while DRX was not completed until temperature over 150 °C. With the analysis result of critical conditions of DRX based on one-parameter approach, the relationship between critical stress and peak stress obtained in this present study is σ_c=(0.746–0.773)σ_p.  相似文献   

12.
通过热压缩实验研究Ti-6Al-2Zr-1Mo-1V钛合金在变形温度为1000~1100°C,应变速率为10-3~1.0s-1的条件下的动态再结晶行为。结果表明:在变形温度高于1050°C、应变速率低于0.01s-1时,合金的动态再结晶机制以不连续动态再结晶为主;在变形温度低于1050°C、应变速率高于0.01s-1时,合金的动态再结晶机制以连续动态再结晶为主,同时存在少量的不连续动态再结晶。此外,降低应变速率和升高变形温度均能促进动态再结晶进程并使β变形晶粒细化。  相似文献   

13.
利用固相再生技术回收利用AZ91D镁合金屑,具体工艺为先冷压再热挤。结果表明:制备的AZ91D镁合金具有较好的力学性能且晶粒明显细化。在热挤出过程中发生了动态再结晶,且动态再结晶组织受到热挤温度和应变速率的影响,在300-350 °C下基面滑移和孪晶协调变形导致动态再结晶晶粒产生,形成"项链"组织;在 350-400 °C下位错的交滑移控制动态再结晶形核;高于400 °C时位错攀移控制了整个动态再结晶过程,形成均匀的再结晶组织。随着应变速率增加AZ91D镁合金力学性能增大,改善了材料的力学性能,但应变速率过大,制备试样表面出现裂纹,影响材料的力学性能。  相似文献   

14.
利用热压缩实验研究一种新型的具有优异室温塑性的Mg-4Al-2Sn-Y-Nd镁合金的高温流变行为,变形温度为200~400℃,应变速率为1.5×10-3~7.5 s^-1。结果表明:合金的应变速率敏感因子(m)在不同变形温度下均明显小于AZ31镁合金的m值,因此该合金适合在高应变速率下进行热加工。在真应力-应变曲线基础上,建立Mg-4Al-2Sn-Y-Nd 镁合金高温变形的本构方程,并计算得到合金的应力指数为10.33,表明合金在高温下主要的变形机制为位错攀移机制。同时,利用加工图技术确定合金的最佳高温变形加工窗口,即变形温度在350~400℃之间,应变速率在0.01~0.03 s^-1。  相似文献   

15.
在Gleeble-3500热模拟试验机上对AZ31B镁合金薄板(0.6 mm)拉伸试样在100~350℃的温度范围和1×10-1~1×10-3s-1的应变速率范围内进行了的单向拉伸实验,根据实验结果对AZ31B镁合金薄板的力学性能进行了分析.结果表明:AZ31B镁合金薄板在较低变形温度100~150℃时,应变速率对流动应力的影响不大;相比之下应变速率对AZ31B镁合金的断裂伸长率却有一定的影响,提高应变速率会降低材料的伸长率;在较高变形温度(200℃以上)时,应变速率对流动应力的影响比较明显,表现出显著的应变速率敏感性.  相似文献   

16.
Hot compression tests were carried out with specimens of 20 Cr–24 Ni–6 Mo super-austenitic stainless steel at strain rate from 0.01 to 10 s~(-1) in the temperature range from 950 to 1150 °C, and flow behavior was analyzed. Microstructure analysis indicated that dynamic recrystallization(DRX) behavior was more sensitive to the temperature than strain rate, and full DRX was obtained when the specimen deformed at 1150 °C. When the temperature reduced to 1050 °C, full DRX was completed at the highest strain rate 10 s~(-1) rather than at the lowest strain rate 0.01 s~(-1) because the adiabatic heating was pronounced at higher strain rate. In addition, flow behavior reflected in flow curves was inconsistent with the actual microstructural evolution during hot deformation, especially at higher strain rates and lower temperatures. Therefore, flow curves were revised in consideration of the effects of adiabatic heating and friction during hot deformation. The results showed that adiabatic heating became greater with the increase of strain level, strain rate and the decrease of temperature, while the frictional effect cannot be neglected at high strain level. Moreover, based on the revised flow curves, strain-dependent constitutive modeling was developed and verified by comparing the predicted data with the experimental data and the modified data. The result suggested that the developed constitutive modeling can more adequately predict the flow behavior reflected by corrected flow curves than that reflected by experimental flow curves, even though some difference existed at 950 °C and0.01 s~(-1). The main reason was that plenty of precipitates generated at this deformation condition and affected the DRX behavior and deformation behavior, eventually resulted in dramatic increase of deformation resistance.  相似文献   

17.
Compressive properties of AZ31 alloy were investigated at temperatures from room temperature to 543 K and at strain rates from 10-3to 2×10 4s-1.The results show that the compressive behavior and deformation mechanism of AZ31 depend largely on the temperature and strain rate.The flow stress increases with the increase of strain rate at fixed temperature,while decreases with the increase of deformation temperature at fixed strain rate.At low temperature and quasi-static condition,the true stress-true strain curve of AZ31 alloy can be divided into three stages(strain hardening,softening and stabilization) after yielding.However,at high temperature and high strain rate,the AZ31 alloy shows ideal elastic-plastic properties.It is therefore suggested that the change in loading conditions(temperature and strain rate) plays an important role in deformation mechanisms of AZ31 alloy.  相似文献   

18.
The hot deformation behavior of a medium-Mn steel was studied in terms of hot compression flow curves in the temperature range of 850–1050 ℃ and strain rates of 0.05–10 s~(-1).The thermo-mechanical analysis was carried out and suggested that the microstructure during deformation was completely austenite which had high tendency for dynamic recrystallization(DRX).The flow behavior was characterized by significant flow softening at deformation temperatures of 950–1050 ℃ and lower strain rates of 0.05–5 s~(-1), which was attributed to heating during deformation, DRX and flow instability.A step-by-step calculating procedure for constitutive equations is proposed.The verification of the modified equations indicated that the developed constitutive models could accurately describe the flow softening behavior of studied steel.Additionally, according to the processing maps and microstructure analysis, it suggested that hot working of medium Mn steel should be carried out at 1050 ℃, and the strain rate of 0.05–10 s~(-1) resulted in significantly recrystallized microstructures in the in steel.The flow localization is mainly flow instability mechanism for experimental steel.  相似文献   

19.
The hot deformation behavior of homogenized Mg–6.5Gd–1.3Nd–0.7Y–0.3Zn alloy was investigated during compression at temperatures of 250–400 ℃ and at strain rates ranging from 0.001 to 0.100 s~(-1). Microstructure analyses show that the flow behaviors are associated with the deformation mechanisms. At the lower temperatures(250–300 ℃), deformation twinning is triggered due to the difficult activation of dislocation cross-slip. Dynamic recrystallization(DRX) accompanied by dynamic precipitation occurs at the temperature of 350 ℃ and influences the softening behavior of the flow.DRX that develops extensively at original grain boundaries is the main softening mechanism at the high temperature of 400 ℃ and eventually brings a more homogeneous microstructure than that in other deformation conditions. The volume fraction of the DRXed grains increases with temperature increasing and decreases with strain rate increasing.  相似文献   

20.
通过热压缩实验研究了ZL270LF铝合金在变形量为70%,温度为300~550 ℃,应变速率为 0.01~10 s-1范围的热变形行为,建立了流变应力本构方程模型,绘制出了二维热加工图,确定了最佳热加工区域,采用电子背散射衍射(EBSD)和透射电子显微镜(TEM)技术研究了该合金的组织演变规律。结果表明:ZL270LF铝合金的流变应力随变形温度的升高和应变速率的降低而降低,热变形激活能为309.05 kJ/mol,最优热加工区为温度470~530 ℃、应变速率为0.01~1 s-1。该合金在热变形过程中存在3种不同的DRX机制,即连续动态再结晶(CDRX)、不连续动态再结晶(DDRX)和几何动态再结晶(GDRX),其中CDRX是ZL270LF铝合金动态再结晶的主要机制。  相似文献   

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