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1.
等径道角挤压AZ91D镁合金的半固态组织演变   总被引:9,自引:1,他引:9  
通过半固态重熔实验,并利用金相显微镜,对等径道角挤压AZ91D镁合金的半固态组织演变进行了研究.结果表明:等径道角挤压后二次加热等温处理是一种适于AZ91D镁合金的制坯方法,加热温度对坯料的组织有很大影响.当保温时间一定时,随着加热温度的升高,先是球化效果越来越好,后来发生晶粒合并长大现象,晶粒尺寸也会逐渐长大,当保温时间为15 min,加热温度为560℃时,二次加热组织最好;当加热温度一定时,随着保温时间的延长,晶粒尺寸有长大的趋势,当加热温度为560℃,保温时间为15 min时组织球化效果最好,晶粒最细小;当加热温度和保温时间一定时,随着挤压次数的增加,二次加热组织的晶粒尺寸减小.  相似文献   

2.
A2017半固态合金二次加热工艺及组织演化机制   总被引:8,自引:2,他引:8  
相同加热温度条件下,随着保温时间的延长,晶粒逐渐长大和球化,液相分数增加;提高二次加热温度,晶粒长大和球化速度加快.在620~625℃加热,保温40~60min,可获得由均匀球形晶粒悬浮于液相组成的半固态组织,晶粒大小为70~90μm,液相率为40%~45%.而常规铸造枝晶A2017合金坯料二次加热后仍然保留粗大的枝晶网络结构.半固态合金锭坯二次加热初期晶粒的熔合合并是晶粒长大的主要方式,相界面能的升高和相界面表面张力是组织演化的主要驱动力.  相似文献   

3.
6061铝合金半固态坯料二次加热工艺及组织演变   总被引:3,自引:3,他引:0  
针对近液相线半连续铸造技术制备的6061铝合金半固态坯料,在不同加热温度及保温时间下进行二次加热,采用光学显微镜及图像分析仪考察试样的微观形貌及尺寸特征,结合差热分析的方法研究加热过程中的液相形成、组织演变及晶粒长大过程。结果表明,二次加热温度及保温时间共同影响着微观组织演变过程,随着加热温度升高及保温时间延长,晶粒逐渐球化并长大。加热温度越高,组织演变速度越快;保温时间越长,晶粒球化并长大越明显。有效地控制二次加热温度及保温时间,能够获得均匀、圆整且相对细小的半固态组织。  相似文献   

4.
通过自行研制开发的新型半固态连续机械搅拌设备,制备了半固态铝合金,并对半固态坯料在半固态温度区间重熔加热,研究不同重熔温度、时间下半固态组织的变化规律.研究表明:保温温度越高,晶粒长大和球化速度加快,保温时间越短;随着保温时间延长,晶粒逐渐长大和球化,液相份数增加.半固态铝合金Y112重熔加热适宜温度区间为565~575℃.  相似文献   

5.
利用波浪形倾斜板振动技术制备AZ31镁合金半固态坯料,获得较为理想的球形或近球形晶粒组织。结果表明:随二次加热温度的升高和保温时间的延长,半固态组织中的液相体积分数增大,固相逐渐长大并球化;AZ31镁合金580℃和610℃时二次加热组织均不适合半固态触变成形;适合触变成形的二次加热最优工艺为590℃保温40~60 min、或者600℃保温30 min;此条件下获得的平均晶粒直径为58~61μm,固相率为87%(体积分数)左右。晶格扩散机制对二次加热原子扩散起主导作用,是造成合金固相颗粒尺寸变化的根本原因;固液界面张力是造成颗粒形状球形或近球形变化的重要原因。  相似文献   

6.
原位内生TiB_2/Al-4Cu复合材料半固态二次加热组织演化   总被引:1,自引:1,他引:0  
对原位内生TiB2/Al-4Cu复合材料半固态坯料进行二次加热,利用光学显微镜,图像分析仪等手段,对坯料二次加热微观组织的演化进行了研究。结果表明,随着加热温度的升高和保温时间的延长,液相分数增加,α(Al)晶粒发生了长大和圆整化。TiB2/Al-4Cu复合材料合适的半固态重熔参数为:加热温度570~600℃,保温时间小于10min。组织演化机制分析表明,二次加热初期,液相少,晶粒主要通过快速合并长大。随着加热温度的升高和保温时间的延长,液相增加,晶粒主要通过原子扩散缓慢长大并发生球化。  相似文献   

7.
文章研究了Al-4Cu-Mg合金半固态重熔过程中加热温度和保温时间对微观组织形貌和α晶粒尺寸的影响,并对组织演化机制进行了探讨。实验结果表明,当加热温度较低或保温时间较短时,晶粒尺寸小且均匀性差。由于液相分数少,α晶粒之间粘连严重。随着加热温度的升高或保温时间的延长,α晶粒发生了长大和圆整化。对于Al-4Cu-Mg合金来说,合适的半固态重熔参数为:加热温度为540℃~580℃;保温时间小于10min。在半固态重熔过程中,α晶粒的合并长大和Ostwald长大是其微观组织演化的主要机制,两种晶粒长大机制在重熔过程中所起的作用受液相体积分数的影响。  相似文献   

8.
采用光学显微镜及图像分析仪,研究了AlSi7Mg合金低过热度半连续铸造坯料在不同加热温度及保温时间下重熔的微观形貌及尺寸特征,结合差热分析的方法研究了加热过程中组织演变及晶粒长大过程。结果表明,重熔加热温度及保温时间共同影响着合金重熔组织的演变进程,随着加热温度升高及保温时间延长,晶粒逐渐球化并长大。加热温度越高,组织演变速度越快;保温时间越长,晶粒球化并长大越明显。有效控制AlSi7Mg合金重熔加热温度及保温时间,能够获得均匀、圆整且相对细小的半固态浆料组织。  相似文献   

9.
研究了近液相线铸造A380铝合金在563、573及583℃保温5~60min的二次加热工艺条件下的组织演变。结果表明,随着保温温度的升高和保温时间的延长,晶粒平均等积圆直径增加,晶粒圆整度降低,温度越高,变化的趋势越快。半固态坯料加热温度为583℃,保温时间为20min时,能够获得较好的二次加热组织。此时,晶粒平均等积圆直径为49.74μm,晶粒平均圆整度为1.75。  相似文献   

10.
采用光学显微镜及图像分析软件,研究了A1Mg0.9Si0.6合金低过热度半连续铸造坯料在不同加热温度及保温时间下重熔的微观形貌及尺寸特征,结合差热分析的方法研究加热过程中组织演变及晶粒长大过程.结果表明:重熔加热温度及保温时间共同影响着合金重熔组织的演变进程,随着加热温度升高及保温时间延长,晶粒逐渐球化并长大;加热温度越高,组织演变速度越快;保温时间越长,晶粒球化并长大越明显;有效控制AlMg0.9Si0.6合金重熔加热温度及保温时间,能够获得均匀、圆整且相对细小的半固态浆料组织.  相似文献   

11.
7A04合金半固态触变模锻的组织演化   总被引:1,自引:1,他引:0  
研究了SIMA法制备的7A04合金在半固态触变模锻工艺中的组织演化规律.结果表明:在半固态重熔加热过程中,随着加热温度的升高和保温时间的延长,晶粒逐渐球化和长大,且加热温度对重熔加热组织的影响比保温时间大;当将具有此特征的坯料进行半固态触变模锻后,其获得的触变模锻件的显微组织与半固态重熔组织密切相关.当模锻温度达到600℃以上时,模锻件的显微组织变化不大,仍是均匀的近球形的显微组织,而且模锻件各区域的合金成分基本一致.揭示了采用半固态触变模锻工艺可获得形状复杂的高质量制件.  相似文献   

12.
段兴旺  李鹏  李凯 《金属热处理》2021,46(10):39-44
采用应变诱发熔化激活法(SIMA)工艺制备了AZ80A镁合金半固态坯料,研究了保温温度和保温时间对半固态组织的影响。结果表明:随着保温温度的升高和保温时间的增加,AZ80A镁合金的平均晶粒尺寸与液相率都呈上升趋势,形状因子呈先增大后减小的趋势。半固态组织由α-Mg晶粒、Al、Zn元素富集形成的晶界处液相和晶内“小液池”组成,其组织演变分为初始晶粒合并长大,晶粒球化、彼此分离,最终合并粗化3个阶段。采用该种方法制备AZ80A镁合金半固态坯料时合适的保温温度为550 ℃、保温时间为45 min,此时半固态组织的平均晶粒尺寸、形状因子和液相率分别为89 μm、0.795和26.7%。  相似文献   

13.
The microstructural evolution of the A2017 semi-solid alloy billets provided with rheocasting and extruding/extending forming by shearing-cooling-rolling(SCR) technology during reheating in semi-solid state was investigated. The microstructural differences and their generation causes for both billets were also analyzed. The results show that during reheating, the grains of rheocasting billets grow up and spheroidize gradually with the prolongation of isothermal holding time, the eutectic liquid phase at low melting point forms mainly among the grains. However, the grains of the extruding/extending forming billets grow up abnormally through grain coalescence in the initial stage of the reheating, the entrapment of large amount of liquid within grains occurs, and the grain sizes in the reheating billets are coarse and inhomogeneous. Compared with extruding/extending forming billets, rheocasting billets have smaller and uniform grains in reheating microstructure and can rapidly form liquid phase among grains. Therefore, rheocasting billets are more suitable for the semi-solid forming than the extruding/extending forming billets.  相似文献   

14.
The feasibility of fabricating ZA84 magnesium alloy with non-dendritic microstructure by a semi-solid isothermal heat treatment process and the effects of holding temperature and time on the semi-solid isothermal heat-treated microstructure of the alloy were investigated. The results indicate that it is possible to produce ZA84 alloy with non-dendritic microstructure by suitable semi-solid isothermal heat treatment. After being treated at 560-575℃ for 120min, ZA84 magnesium alloy can obtain a non-dendritic microstructure with 14.2%-25.6% liquid fraction and an average size of 56-65μm of the unmelted primary solid particles. With the increasing holding time from 30 to 120min or holding temperature from 560 to 575℃, the average size of unmelted primary solid particles decreases and globular tendency becomes more obvious. Under the experimental condition, the microstructural evolution of ZA84 alloy during semi-solid isothermal treatment is mainly composed of three stages of initial coarsening. structulseparation and spheroidization. The subsequent coarsening of spheroidal grains is not observed.  相似文献   

15.
ZL101合金半固态二次加热   总被引:4,自引:1,他引:4  
采用半固态合金二次加热,对半固态坯料施加合理的二次加热路径,重新获得适于后续加工的具有近球状固相颗粒均匀分布的半固态组织。采用功率为20kW,频率为30kHz的高频感应加热装置,研究了采用再熔融加热法制备的ZL101半固态合金坯料的二次加热过程。结果表明:为了获得适于最终成形的半固态组织,有必要把半固态坯料二次加热过程分为几个加热速率不同的加热阶段,然后在半固态温度区间某一需要加工温度下进行适度保温。通过实验给出了ZL101合金半固态坯料二次加热条件,并讨论了二次加热条件对半固态组织演化的影响。  相似文献   

16.
热压制工艺回收AZ91D镁合金屑的半固态组织演变(英文)   总被引:1,自引:0,他引:1  
以从机械加工现场直接收集的AZ91D镁合金屑料为原料,采用热压制工艺再生制备半固态加工所需的坯料,研究二次加热过程中的半固态组织演变。结果表明,半固态组织演变可分为三个阶段:Mg17Al12相的溶解和Al原子的扩散,高溶质含量区域的熔化和固相颗粒的生成,固相颗粒的球化和长大。同时,在固相颗粒内部形成大量的嵌入式液滴。这种嵌入式液滴的数量和尺寸随着保温时间的变化而变化。随着保温时间的延长,固、液两相最终达到动态平衡,固相率不再发生变化。由于界面能降低和界面张力的作用使固相颗粒尺寸逐渐增大,并且越来越圆整。  相似文献   

17.
To shorten the preparation process of semi-solid billets, semi-solid billets of 2A14 aluminum alloy were prepared by wrought aluminum directly semi-solid isothermal treatment (WADSSIT) process. Three-dimension (3D) combined microstructure evolution, namely transverse direction (TD) surface, rolling direction (RD) surface, and normal direction (ND) surface, was studied. Effects of temperature and holding time on average grain size and average shape factor were investigated. The results showed that the optimum conditions for preparation of 2A14 semi-solid billets by this process were 615 °C and 20 min (average grain size of 124 μm and shape factor of 0.81). Electron backscatter diffraction (EBSD) observations indicated that the microstructure was completely recrystallized when it was heated to 600 °C. Grain size was increased with the increase of temperature and grew up slowly with the holding time prolonging. Roundness was increased with increase of holding time but was not sensitive to temperature.  相似文献   

18.
A two-step reheating process was proposed and applied to perform reheating experiments on the semi-solid 2024 alloy billet. In this process, the semi-solid billet was firstly heated over liquidus temperature and then isothermally held at solid-liquid zone temperature. Microstructure evolution of the semi-solid billet during two-step reheating was studied by optical microscope and compared with that during isothermal reheating. The results show that the remelting rate of the semi-solid billet during two-step reheating is faster than that during isothermal reheating. Under the same reheating time, the grains of the semi-solid billet reheated by two-step reheating process are finer and rounder than those by isothermal reheating process. The present experimental results indicate that accelerating the formation of liquid phase during the two-step reheating process can restrain the coalescence of grains to a certain extent, and thus refine the grain size and promote the grain spheroidization.  相似文献   

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