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1.
为了探究03Cr18NiMoN节镍双相不锈钢高温轧制变形机制和组织演变规律,利用Gleeble-3800热模拟试验机在变形温度为850~1 150℃,应变速率为0.01~10 s~(-1),变形量为50%条件下对其进行高温压缩研究。流变应力曲线在950~1 150℃的较高变形温度和0.01~0.1 s~(-1)低应变速率条件下呈现出明显动态再结晶特征。变形初期,试验钢的加工硬化率随变形温度的降低和应变速率的升高而增加,不利于动态再结晶软化。组织分析表明,随变形温度升高至1 050℃和应变速率降低,奥氏体动态再结晶更加充分,晶粒细化程度明显提高,而1 150℃高变形温度使奥氏体再结晶晶粒粗化。在950℃、0.01~1 s~(-1)的变形条件下,铁素体动态回复逐渐加强。热变形激活能Q=549.7 kJ/mol,高于2 205双相不锈钢(451 kJ/mol),表观应力指数n=6.079,表明其变形机制主要以体扩散引起的位错低温攀移为主。热加工图分析表明,失稳区域随应变量增加逐渐增大,结合流变应力曲线和显微组织分析,确定最佳加工区域为950~1 050℃的变形温度和0.01~0.018 s~(-1)的应变速率,且功率耗散因子处于较高(0.36~0.50)水平。此外,基于Z参数建立了试验钢的峰值流变应力本构方程。  相似文献   

2.
通过Gleeble-3800热压缩实验研究了铸态超级双相不锈钢S32750(/%:0. 017C,0.53Si,0.93Mn,0.023P,0.001S,25.58Cr,7.00Ni,4.03Mo,0.28N)在变形温度为950~1200℃、应变速率为0.1~25/s、真应变为1条件下的热变形行为与组织演变规律。结果表明,超级双相不锈钢S32750热变形行为受变形温度和应变速率的影响明显。在950~1050℃、0.1/s变形时,流变曲线表现出"类屈服平台"特征;当变形温度为1100~1200或应变速率为10/s、25/s时,流变曲线为典型的动态再结晶特征。对其微观组织进行观察发现,铁素体在各变形条件下均发生动态再结晶;奥氏体在950℃和1200℃时基本不受应变速率影响,前者发生动态回复,后者发生动态再结晶。而在1050℃时,受应变速率影响较大:小应变速率下(0.1/s)下发生动态回复,大应变速率下(10/s)发生动态再结晶。  相似文献   

3.
 利用Thermecmastor-Z热模拟实验机,得到了Fe16Mn0.6C TWIP钢在变形温度850~1150℃,应变速率0.03~30s-1条件下热压缩变形的真应力应变曲线。进而研究了变形温度、应变速率对Fe16Mn0.6C流变应力和临界动态再结晶行为的影响规律。结果表明,850~1150℃范围内Fe16Mn0.6C热变形的峰值应力随温度的升高而降低,随着应变速率的增大而升高;且在应变速率为0.03 s-1和30 s-1出现明显的应力峰值,材料发生了动态再结晶。最后采用线性回归方法计算出Fe16Mn0.6C的高温变形流变应力本构方程,得出热变形激活能为469kJ/mol;并通过应变硬化速率与流变应力曲线求出了该钢种动态再结晶临界条件与Z参数之间的关系。  相似文献   

4.
采用了MMS-200热力模拟机以40CrMnMo钢为实验对象进行了热压缩试验,研究了变形温度850℃~1150℃,变形量0.8,应变速率在0.01~10s~(-1)条件下实验钢的热变形行为。通过分析高温下变形参数对流变应力和奥氏体晶粒尺寸的影响,建立40CrMnMo钢的稳态动态再结晶晶粒尺寸模型。结果表明:变形温度为850℃~1150℃,实验钢在应变速率0.01~0.1s~(-1)下发生连续动态再结晶,应变速率1~10s~(-1)下发生动态回复。通过引入Zener-Hollomon(Z)参数表征变形参数对稳态动态再结晶晶粒尺寸的影响,建立了稳态再结晶晶粒尺寸的数学模型,得出提高应变速率或变形温度较低能使Z参数增大,峰值应力升高且动态再结晶晶粒减小。  相似文献   

5.
304不锈钢热变形过程奥氏体动态再结晶及流变应力研究   总被引:1,自引:1,他引:0  
在800~1 200℃温度范围和0.5~10s-1应变速率条件下对304不锈钢进行单道次热压缩实验,结合显微组织分析,研究了304不锈钢的热变形过程中奥氏体动态再结晶规律及流变应力.确定了该材料的动态再结晶参数、热变形方程.根据变形条件和流变应力曲线形式将热变形过程流变应力曲线分成3种类型,分别回归得到了它们的表达式.  相似文献   

6.
 在变形温度为1000和1100℃,应变速率为01s-1的条件下,利用MMS-200热模拟试验机,对S32750超级双相不锈钢进行了高温压缩试验。利用电子背散射衍射(EBSD)分析了其晶体取向和微观组织。研究结果表明,铁素体在两种试验条件下均可形成<001>和<111>∥压缩轴织构,在变形温度为1100℃时,<001>织构要强一些;奥氏体在两种变形温度下均形成了<001>织构,强度很弱。在变形温度为1100℃条件下,奥氏体中存在的以Σ3为主的CSL特殊晶界数量更多。两种试验条件下,S32750超级双相不锈钢中铁素体和奥氏体均发生了动态再结晶,降低变形温度有利于细化晶粒。在铁素体向奥氏体转变过程中,奥氏体可以在铁素体晶界处生成,也可以在铁素体晶粒内部形成。  相似文献   

7.
采用Gleeble-3500热模拟实验机对Cu-Cr-Zr合金进行了压缩变形实验,分析了在变形温度为25~700℃、应变速率为0.0001~0.1000s-1的条件下流变应力的变化规律,利用扫描电镜及透射电镜分析合金在热压缩过程中的组织演变及动态再结晶机制。结果表明:Cu-Cr-Zr合金在热变形过程中发生了动态再结晶,且变形温度和应变速率均对流变应力有显著的影响,流变应力随着变形温度的升高而降低,随着应变速率的增加而升高,说明该合金属于正应变速率敏感材料;当变形温度为400~500℃时,低应变速率(0.0001~0.0010 s-1)的真应力-真应变曲线呈现动态再结晶曲线特征,高应变速率(0.01~0.10 s-1)的真应力-真应变曲线呈现动态回复特征;在真应力-真应变曲线的基础上,采用双曲正弦模型能较好地描述Cu-Cr-Zr合金高温变形时的流变行为,建立了完整描述合金热变形过程中流变应力与应变速率和变形温度关系的本构方程,确定了合金的变形激活能为311.43 kJ·mol-1。  相似文献   

8.
为了研究热作模具钢5CrNiMoVNb的热变形行为,利用Gleeble3800热模拟试验机进行单道次热压缩实验,获得了应变速率为0.001~0.1 s-1和变形温度1 030~1 230℃条件下的高温流变应力曲线。应用双曲正弦函数构建了与应变有关的材料本构模型并验证,并基于动态材料模型构建了三维功率耗散图和三维失稳图,将二者叠加得到典型应变下的热加工图。结果表明,所有变形条件下的高温流变应力曲线均呈现典型动态再结晶特征,并且由于奥氏体基体析出强化相含量、动态再结晶体积分数的影响,流变应力随变形温度的降低或应变速率的增大而增大。基于5CrNiMoVNb钢的本构模型计算的流变应力值与实验值的相关性系数为0.992 7,较高的相关性系数表明建立的高温流变应力模型能够比较准确地预测合金的流变应力。此外,根据不同条件下的三维功率耗散图和三维失稳图可知,随着应变的增大,功率耗散峰值区向中温、高应变速率区域扩散,热变形失稳仅容易出现在低应变、低变形温度和高应变速率区域。真应变为0.8时,最佳的加工工艺参数范围为:变形温度为1 080~1 200℃,应变速率为0.01~0.1 s...  相似文献   

9.
00Cr25Ni7Mo4N超级双相不锈钢的高温变形行为   总被引:8,自引:0,他引:8  
采用热/力模拟实验方法研究了00Cr25Ni7Mo4N超级双相不锈钢(SDSS)在900~1 200℃、应变速率为0.1~10 s-1条件下的热变形及组织变化,讨论了热变形参数对流变应力和显微组织的影响.结果表明,在上述变形条件下,00Cr25Ni7Mo4N超级双相不锈钢中铁素体的软化机制与Z参数有关,且随着Z参数减小,铁素体软化机制由动态回复向动态再结晶转变;该钢的表观应力指数为3.51,热变形表观激活能为492 kJ/mol.  相似文献   

10.
刘海英  骆春民  张龙 《天津冶金》2012,(5):14-18,47
利用Gleeble-3800热模拟试验机对低合金高强度结构钢Q345E在1150~800℃之间的奥氏体动态再结晶及动态相变行为进行研究。确定了试验钢Q345E奥氏体动态再结晶的临界应变条件;研究了变形温度、应变速率等变形条件对试验钢奥氏体动态再结晶的影响,通过高温热力学模拟试验得到了Q345E钢在不同变形条件下的流动应力曲线,得出了动态再结晶激活能为467.767kJ/mol,通过对实验数据的拟合回归分析,建立了动态再结晶热变形模型和峰值应力、峰值应变与Z因子的关系,为控制该钢的组织和性能提供了基本依据。  相似文献   

11.
关键词:双相不锈钢; 流变曲线; 本构方程; 热加工图  相似文献   

12.
 High temperature deformation characteristics of a semiaustenitic grade of precipitation hardening stainless steels were investigated by conducting hot compression tests at temperatures of 900-1 100 ℃ and strain rates of 0001-1 s-1. Flow behavior of this alloy was investigated and it was realized that dynamic recrystallization (DRX) was responsible for flow softening. The correlation between critical strain for initiation of DRX and deformation parameters including temperature and strain rate, and therefore, Zener Hollomon parameter (Z) was studied. Metallographic observation was performed to determine the as deformed microstructure. Microstructural observation shows that recrystallized grain size increases with increasing the temperature and decreasing the strain rate. The activation energy required for DRX of the investigated steel was determined using correlations of flow stress versus temperature and strain rate. The calculated value of activation energy, 460 kJ/mol, is in accordance with other studies on stainless steels. The relationship between peak strain and Z parameter is proposed.  相似文献   

13.
Hot compression tests were carried out in the temperature range of 1 223-1 473 Kand strain rate range of0.01-30s-1 to investigate the flow behavior and microstructural evolution of super duplex stainless steel 2507(SDSS2507).It is found that most of the flow curves exhibit a characteristic of dynamic recrystallization(DRX)and the flow stress increases with the decrease of temperature and the increase of strain rate.The apparent activation energy Qof SDSS2507 with varying true strain and strain rate is determined.As the strain increases,the value of Qdeclines in different ways with varying strain rate.The microstructural evolution characteristics and the strain partition between the two constituent phases are significantly affected by the Zener-Hollomon parameter(Z).At a lower lnZ,dynamic recovery(DRV)and continuous dynamic recrystallization(CDRX)of the ferrite dominate the softening mechanism during the compression.At this time,steady state deformation takes place at the last stage of deformation.In contrast,a higher lnZ will facilitate the plastic deformation of the austenite and then activate the discontinuous dynamic recrystallization(DDRX)of the austenite,which leads to a continuous decline of the flow stress even at the last deformation stage together with CDRX of the ferrite.  相似文献   

14.
双相不锈钢2205的热加工性能研究   总被引:3,自引:1,他引:2  
研究了双相不锈钢2205在1 000~1 200℃温度、应变速率0.01~30 s-1下压缩变形的热加工行为。讨论了该条件下的应力应变曲线的特征并根据sinh-Arrhenius方程计算了其形变激活能为519 KJ/mol。通过对试样的金相及TEM观察,讨论了双相不锈钢中的奥氏体相和铁素体相在热变形中的回复、再结晶机制。  相似文献   

15.
The austenite dynamic recrystallization (DRX) behavior and microstructure evolution of a bridge weathering steel was systematically investigated at a deformation temperature range of 800–1100°C and strain rate of 0.1–10 s?1 by using hot compression test and optical microscopy. The stress exponent and hot deformation energy were obtained by regression method to determine thermal deformation constitutive equation. The curve of stress versus strain is used, combined with high order polynomial fitting, to accurately determine the critical value of DRX. The relationships between critical strain, critical stress, and Z parameter of the bridge weathering steel were obtained by regression method. Moreover, the influence factors of DRX kinetics of the bridge weathering steel were studied in the light of the experimental results. It is shown that the strain rate has a more significant effect on the rate of DRX than that of the deformation temperature, and there is almost 0.85 orders of magnitude increment in the rate of DRX as the strain rate increases an order of magnitude. The dynamically recrystallized grain size can be decreased with decreasing the deformation temperature and increasing the strain rate during the austenite deformation.  相似文献   

16.
The 4340 steel is extensively utilized in several industries including automotive and aerospace for manufacturing a large number of structural components. Due to the importance of thermo-mechanical processing in the production of steels, the dynamic recrystallization (DRX) characteristics of 4340 steel were investigated. Namely, hot compression tests on 4340 steel have been performed in a temperature range of 900–1200 °C and a strain rate range of 0. 01–1 s?1 and the strain of up to 0. 9. The resulting flow stress curves show the occurrence of dynamic recrystallization. The flow stress values decrease with the increase of deformation temperature and the decrease of strain rate. The microstructure of 4340 steel after deformation has been studied and it is suggested that the evolution of DRX grain structures can be accompanied by considerable migration of grain boundaries. The constitutive equations were developed to model the hot deformation behavior. Finally based on the classical stress-dislocation relations and the kinematics of the dynamic recrystallization; the flow stress constitutive equations for the dynamic recovery period and dynamic recrystallization period were derived for 4340 steel, respectively. The validity of the model was demonstrated by demonstrating the experimental data with the numerical results with reasonable agreement.  相似文献   

17.
 The hot deformation behavior of S31042 austenitic heat-resistant steel was investigated over the temperature range of 900-1200 ℃ and strain rate range of 001-10 s-1 using hot compression tests and the corresponding flow curves were obtained. The hot deformation activation energy of the test steel is 625 kJ/mol. The hot deformation equation and the relationship between the peak stresses, deformation temperature and strain rate were set up. The Zener-Hollomon parameter under various conditions was determined. The relation between the Zener-Hollomon parameter and the microstructure evolution of test steel was discussed. With the decrease of Zener-Hollomon parameter, the microstructure of test steel transforms from deformation instability to dynamic recovery, partial dynamic recrystallization, full dynamic recrystallization with equiaxial structure, and finally to full dynamic recrystallization with mixed crystal structure. The deformation condition can be adjusted easily by utilizing the Zener-Hollomon parameter to obtain equiaxial microstructure.  相似文献   

18.
A modified microgrid technique has been applied to a laboratory‐made duplex stainless steel, to experimentally simulate the local state of deformation of the austenite‐ferrite microstructure of low‐alloy steels subject to intercritical deformation. A sample containing such a microgrid was deformed by plane strain compression at high temperature under conditions representative of hot rolling processes. The distortion of the microgrid after hot deformation revealed, in a quantifiable manner, the plastic flow of both phases and different deformation features. The micro‐strain distributions measured can be used to validate the models predicting the hot deformation of low alloyed C‐Mn steels during intercritical rolling.  相似文献   

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