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1.
研究了铸态AZ91D镁合金在等径角挤压(Equal Channel Angular Extrusion,ECAE)后的室温力学性能和微观组织特征。在力学性能方面,铸态AZ91D镁合金经过1道次ECAE变形后,室温力学性能(屈服强度、抗拉强度、延伸率、弹性模量)由86.3 MPa,146.3 MPa,1.84%,42.5 GPa分别提高到144.1MPa,222.8 MPa,3.49%,47.7 GPa;2道次后变为109.1 MPa,268.3 MPa,4.48%,48.9 GPa。在微观组织方面,挤压1道次后,由于枝状晶粒在等径道弯角处滑动和转动时发生破碎,AZ91D镁合金的晶粒和黑色共晶相Mg17Al12沿挤压方向拉长为条带状;挤压2道次后,黑色共晶相开始部分回溶,共晶相有所减少且呈非连续分布。  相似文献   

2.
AZ91D magnesium alloy was processed by equal channel angular extrusion(ECAE). The influence of extrusion temperature, extrusion pass and extrusion route on the ultimate strength of the extruded billet was analyzed. The process of multi-pass extrusion was simulated with the method of finite element analysis, and the continuity and uniformity of effective strain in multi-pass extrusion were investigated. The results show that extrusion pass plays the most important role in improving the ultimate strength of AZ91D magnesium alloy, the extrusion route is the second, and the extrusion temperature is the last, From the numerical simulation, there exists the continuity of the accumulated deformation in multi-pass extrusion and the effective strain increases linearly. The tendency of the strain uniformity is different in multi-pass extrusion with extrusion routes. The results of experiment agree with those of numerical simulation.  相似文献   

3.
Preparation of semi-solid billet of magnesium alloy and thixoforming was investigated by applying equal channel angularextrusion to magnesium alloy.The results show that mechanical properties of AZ91D alloy at room temperature,such as yieldstrength(YS),ultimate tensile strength(UTS)and elongation,are enhanced greatly by four-pass equal channel angularextrusion(ECAE)at 573 K and microstructure of AZ91D alloy is refined to the average grain size of 20μm.Through using ECAE asstrain induced step in SIMA and completing melt activated step by semi-solid isothermal treatment,semi-solid billet with finespheroidal grains of 25μm can be prepared successfully.Compared with common SIMA,thixoformed satellite angle framecomponents using semi-solid billet prepared by new SIMA have higher mechanical properties at room temperature and hightemperature of 373 K.  相似文献   

4.
基于半固态坯采用等径道角挤压(ECAE)制备的应用背景,采用PRO/E建立了等径道角挤压的几何模型,通过压缩实验获取了AZ91D镁合金的高温应力应变曲线,采用有限元软件DEFORM-3D对ECAE挤压变形过程进行了模拟,分析了内外转角部位的应力(平均应力、最大主应力和等效应力)变化、应变分布情况等,以揭示等径道角挤压变形跟模具内转角半径的关系。结果表明,模具内转角半径不为零时,坯料挤压过程中,将有正虚力存在,并且内外转角应力变化不尽相同;应变分布不均匀,具有一定梯度;内转角部位,除了承受剪切,还受到压缩作用,外转角反之。  相似文献   

5.
By means of equal channel angular extrusion (ECAE) test, upsetting test and metalloseope, reheating mierostruetures of raw casting ingots, materials prepared by SIMA and materials extruded by ECAE in semi-solid state were investigated. The results show that compared with those of raw casting ingots and materials prepared by SIMA, reheating microstrueture of materials extruded by ECAE is the best and the final grain size is the finest. With increasing holding time, a growing phenomenon occurs in reheating microstrueture of materials extruded by ECAE, which can be described by Ostwald ripening law. The average grain size increases firstly, subsequently decreases and the shape factor of grains approaches to 1 as the reheating temperature increases. With increasing equivalent strain, the average grain size decreases. This demonstrates that reheating material extruded by ECAE technology is a good method to prepare AZ91D magnesium alloy semi-solid billets.  相似文献   

6.
1 Introduction AZ91D magnesium alloy has received more attention due to its high specific strength, specific rigidity and good dimensional stability and so on[1]. Thixoforming is one of the best methods with regard to forming AZ91D magnesium alloy compone…  相似文献   

7.
利用金相显微镜和图像分析设备对等径道角挤压预变形AZ61镁合金在半固态等温处理中的微观组织演变进行研究。先利用等径道角挤压对AZ61镁合金铸坯在310℃进行应变诱导,然后将其在半固态进行不同时间的等温处理。研究结果表明:挤压道次、等温处理温度和变形路径影响预变形AZ61镁合金在半固态等温处理中的微观组织演变过程。在将等温处理温度从530℃升高至560℃的过程中,合金的平均晶粒尺寸从22μm增大到35μm。当等温处理温度为575℃时,平均晶粒尺寸减小。当等径道角挤压的变形路径为BC时,预变形AZ61镁合金在半固态等温处理中获得的微观组织晶粒尺寸最小。  相似文献   

8.
采用拉伸试验机、金相显微镜和等径道角挤压等试验方法对Mg-Al系镁合金半固态坯料制备及触变挤压过程进行了研究.结果表明,等径道角挤压工艺对Mg-Al系镁合金有很好的应变诱导效果.经过等径道角挤压的Mg-Al系镁合金力学性能高,晶粒细小.等径道角挤压+等温处理方法制备的Mg-Al系镁合金半固态坯的微观组织晶粒细小,球化程度高,微观组织非常均匀.生产的AZ61、AZ80、AZ91D和AM60镁合金角框零件的微观组织细小,抗拉强度分别达到306.8、308.3、299.8、321.6MPa.伸长率分别达到21.6%、28.4%、14.6%和29.6%.  相似文献   

9.
通过Gleeble-1500D热模拟机获得AZ91D镁合金的应力应变曲线。采用刚塑性有限元法对AZ91D镁合金棒材挤压过程进行热力耦合数值模拟,分析了变形温度与挤出速度对挤压力和等效应变变化情况的影响。模拟的结果表明:在25∶1的挤压比下AZ91D镁合金的挤压温度为400℃,挤出速度为12.5 mm/s。  相似文献   

10.
为了推动半固态加工在镁基复合材料成形中的应用,采用液态浸渗法制备出体积分数为10%的Al2O3sf/AZ91D-Y镁基复合材料,并采用等径道角挤压对镁基复合材料进行了形变诱导。再对镁基复合材料进行了二次重熔,并采用等温压缩实验对镁基复合材料在半固态下的力学性能进行了研究。研究表明:在550℃和560℃时延长保温时间有利于组织的球化,在560℃比550℃时,更加能促进晶粒的结晶球化;在相同的应变速率下,压缩变形时的峰值应力随着加热温度升高而降低;在相同的加热温度下,应变速率越大,峰值应力越大。  相似文献   

11.
以开发镁合金精密零件超塑性成形技术为目标,以铸态AZ91镁合金为实验材料,采用等径角挤压工艺对合金进行了组织细化,并用所制备的细晶材料为坯料对两种齿轮类精细零件进行了超塑性成形实验。研究结果表明,AZ91镁合金经过4道次等径角挤压,可以获得晶粒尺寸为2μm~5μm的细晶组织材料。将这种细晶组织材料进行超塑性成形,可以获得轮廓清晰、尺寸精度良好的精密齿轮和铰接杆零件。  相似文献   

12.
通过在Gleeble1500D热模拟试验机上对AZ10、AZ31、AZ61和AZ91镁合金进行模拟挤压,并对热模拟挤压成形过程中的挤压力进行测定,研究AZ系列镁合金热模拟挤压成形过程挤压力及其组织变化。研究结果表明,在AZ系列镁合金中,随着合金元素含量的增多,挤压力逐渐增大,并且同种镁合金在挤压前经均匀化退火处理后所需的挤压力比未经均匀化处理的合金所需挤压力大,动态再结晶是影响其挤压力大小的决定性因素。  相似文献   

13.
采用半固态等温热处理法、近液相线模锻法和等通道角挤压法制备AZ91D—Y镁合金半固态坯料。分别将3种状态的坯料加热到半固态温度区间进行二次重熔后,进行了触变模锻成形。结果表明,在半固态温度为560℃,模锻压力为200MPa的条件下,半固态等温热处理法、近液相线模锻法和等通道角挤压法制备坯料分别保温30,20,15min后触变模锻获得最佳力学性能;随着坯料加热温度的升高,触变模锻成形件力学性能呈现先上升后下降的趋势;增加成形压力有利于触变模锻成形件力学性能的提高;在相同成形条件下,等通道角挤压法制备坯料触变模锻后的力学性能最好,近液相线模锻法次之,半固态等温热处理法较差。  相似文献   

14.
Short carbon fiber reinforced AZ91D alloy (Csf/AZ91D) was fabricated by the infiltration-extrusion method. The short carbon fiber preform was infiltrated with melted AZ91D alloy under the assistant of gas pressure. The extrusion processing was applied following the infiltration processing directly. The tensile property and microstructure of the Csf/AZ91D and that of the die-casting and extruded AZ91D alloy was compared. The results show that the short carbon fiber reinforced AZ91D alloy present excellent te...  相似文献   

15.
通过等温挤压和金相观察,研究了AZ31和AZ91镁合金不同变形条件下的挤压性能和变形后的微观组织变化。结果表明,AZ31镁合金的挤压变形性能较好,而AZ91镁合金在挤压比为4∶1、挤压温度为400℃,以及在挤压比为9∶1、挤压温度为350℃和400℃时,挤压后的试件表面均出现了裂纹;AZ31镁合金的最佳成形温度为300℃~400℃,AZ91镁合金的最佳成形温度为300℃~350℃;镁合金在热挤压过程中发生了动态再结晶,挤压之后合金的晶粒显著细化。  相似文献   

16.
为了推动半固态加工在镁基复合材料成形中的应用,采用液态浸渗法制备了增强体体积分数为5%的Al2O3sf/AZ91D复合材料,并采用等径角挤压对其实施变形。利用光学显微镜、扫描电镜和拉伸实验机分别对试样进行了组织观察和力学性能测试,并以此为基础探讨了复合材料在等径角挤压过程中的变形机制。研究表明:Al2O3sf/AZ91D 1道次挤压后,其基体是剪切变形后动态再结晶组织;当试样存在缺陷时,试样的变形机制除剪切变形外,同时还存在压缩变形;在等径角挤压过程中,由于试样在模具转角处的不均匀变形使得铸造缺陷消除的同时也产生了新的缺陷(裂纹)。因此,在等径角挤前应对复合材料进行密实变形,或采用低压浸渗和高压凝固复合技术,以消除制备过程中产生的铸造缺陷。  相似文献   

17.
The effect of extrusion ratio on microstruetures and mechanical properties of magnesium alloy AZ91D extruded tube at 430℃ has been studied. After the evolution of microstracture and mechanical properties of AZ91D during extrusion were studied, the following parameters were obtained: tensile strength reached the climax value of 306.9MPa and elongation peak value of 10.1% at an extrusion ratio of 7.125, and with the increase of the extrusion ratio to 7.45, yield strength reached a top value of 285.795MPa with decreased tensile strength and elongation. It was concluded that mechanical properties of magnesium alloys AZ91D could be enhanced by adjusting the extrusion ratio near recrystallization.  相似文献   

18.
采用DEFORM-2D对AZ31镁合金的挤压变形过程进行了数值模拟。通过设计实验验证了所选材料应力-应变、摩擦系数和换热系数等参数的可靠性。在此基础之上,对一系列不同挤压过程进行了模拟计算分析,得到了坯料温度场分布、应力场分布及挤压载荷等一系列数据,并采用Matlab软件对不同工艺参数与形变载荷之间的关系进行了四维描述。  相似文献   

19.
利用三维有限元方法模拟了圆形工件的等通道转角挤压过程,分析了工件上应变分布情况,其与理论值和二维模拟的结果符合较好.通过对稳定变形阶段塑性变形区的分析,探讨了应变分布不均匀的原因,所得结果有利于理解工件变形过程和优化工艺设计.  相似文献   

20.
挤压高强度AZ91D镁合金管材的研究   总被引:1,自引:0,他引:1  
针对挤压变形得到的高强度AZ91D合金管材进行了组织分析,探讨了其强化机制。实验得出,在温度为430℃、应变速率为0.033s-1、挤压比为12时AZ91D镁合金挤压管材(T6)的抗拉强度可达417.2MPa,远远高于压铸镁合金及AZ31等常用变形镁合金;除细晶强化外,第二相强化、亚晶界析出强化和堆垛结构强化为其主要强化机制。  相似文献   

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