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Hot workability and microstructure control in Monel®400 (Ni-30Cu) alloy: An approach using processing map, constitutive equation and deformation modeling

机译:Monel®400(Ni-30Cu)合金中的热可加工性和微观结构控制:一种处理地图,本构方程和变形建模的方法

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摘要

Monel®400 alloy is widely used in marine and chemical industries due to its moderate strength and high resistance to corrosive environments. In the present work, hot workability of Monel®400 alloy in as-cast condition was studied using the processing maps approach. Hot-compression tests were performed in a Gleeble thermo-mechanical simulator in the temperature, T, range of 900-1200 °C and strain rate, ε, of 10~(-2) - 10~(+1) s~(-1). The data obtained from the tests was used to construct processing map at a true strain, ε, of 0.5 utilizing the modified dynamic material model (DMM) proposed by Murty and Rao. Processing map identified three stable domains for possible hot working occurring in the following T and ε range - Domain-1: T = 900-1200 °C and ε = 10~(-1)-10~(-1.75)s~(-1);Domain-2: T = 1150-1200 °C and ε = 10~(-1.75)-10~(-1) s~(-1); and Domain-3: T= 1100-1200 °C and ε = 10~(+0) - 10~(+1) s~(-1). A broad flow instability regime in the form of flow localization was also identified at all temperatures and intermediate strain rates (ε = 10~(-1.5) - 10~(+0) s~(-1)). Complete recrystallized microstructure with discontinuous dynamic recrystallization (DDRX) as the dominating deformation mechanism was observed in Domain-3 (occurring at higher ε). In contrast, microstructural analysis of the deformed specimens in Domain-1 and Domain-2 occurring at lower ε showed limited DRX at the serrated grain boundaries with dynamic recovery (DRV) and continuous DRX (CDRX) as the operating deformation mechanisms. With the aid of the processing map along with evolved microstructures of the deformed specimens, Domain-3 was identified as the optimum "safe" regime for thermo-mechanical processing. Results obtained from the processing map are then successfully validated through industrial trial forgings performed in the T range 950-1200 °C. The forging process was also simulated in identical process parameters using finite element method (FEM) software DEFORM®-3D to study the flow behavior and effective stress and strain distribution in the forged billets.
机译:由于其适中的强度和高耐腐蚀性环境,Monel®400合金广泛用于海洋和化学工业。在本工作中,使用处理地图方法研究了Monel®400合金的热可加工性。热压缩试验在高温,T,范围为900-1200°C和应变率,ε,ε为10〜(-2) - 10〜(+1)s〜( - 1)。从测试中获得的数据用于构造在真正应变ε的处理地图,ε,利用MURTY和RAO提出的改进的动态材料模型(DMM)。处理地图确定了在下面的T和ε范围内发生的可能热工作的三个稳定结构域 - 域-1:t = 900-1200°C和ε= 10〜(-1)-10〜(-1.75)s〜( - 1);结构域-2:T = 1150-1200°C和ε= 10〜(-1.75)-10〜(-1)s〜(-1);和域-3:T = 1100-1200°C和ε= 10〜(+0) - 10〜(+1)S〜(-1)。还在所有温度和中间菌株率(ε= 10〜(-1.5) - 10〜(+0)S〜(-1))中鉴定出流量定位形式的宽流量不稳定性。通过在结构域-3中观察到具有不连续的动态再结晶(DDRX)的结晶微观结构(DDRX),在结构域-3中观察到(在较高ε处发生)。相反,在较低ε处发生的结构域-1和结构域-2中变形样品的微观结构分析在具有动态恢复(DRV)和连续DRX(CDRX)的锯齿状晶界处显示有限DRX,作为操作变形机制。借助于处理映射以及变形样品的进化微观结构,域-3被鉴定为热机械加工的最佳“安全”制度。然后通过在950-1200°C中进行的工业试验锻件成功验证了从处理地图获得的结果。使用有限元方法(FEM)软件Deform®-3D还模拟锻造过程,以研究锻造坯料中的流动行为和有效应力和应变分布。

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