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Modelling of deformation and microstructural changes in P/M Rene 95 under isothermal forging conditions

机译:等温锻造条件下P / M Rene 95变形和微观组织变化的建模

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摘要

The changes in microstructure induced by forging and their influence on flow strength of hot isostatically pressed P/M Rene 95 as revealed by constant strain rate compression tests under simulated isothermal forging conditions are discussed. Results are presented for initially fine (7 μm) and coarse (50 μm) grained compacts tested at temperatures of 1050, 1075 and 1100℃ and at strain rates in the range from 10~(-4) to 1 s~(-1). Under these test conditions, both the fine and coarse-grained compacts recrystallize and their grain size is refined during plastic deformation. This grain refinement gives rise to softening in both materials. Ultimately, their microstructures transform into the same equiaxed fine-grained microduplex structure at which point their flow strength becomes identical. Continued deformation at that point produces no further change in grain size or flow strength. In this regime of deformation, the microduplex grain size and flow strength are independent of the original microstructure but are conditioned by the strain rate at a given temperature. The steady state grain size increases whereas the steady flow strength decreases with a decrease in strain rate and/or an increase in temperature. It is shown how changes in microstructure and flow strength during isothermal forging can be modelled in P/M Rene 95 compacts by means of established deformation models for predicting peak flow strength, using the steady state deformation data as a boundary condition for the evolution of microstructure and flow strength and a model for deformation-induced recrystallization during forging that has been recently developed for this class of materials.
机译:讨论了在模拟等温锻造条件下通过恒定应变率压缩试验揭示的锻造引起的微观结构变化及其对热等静压P / M Rene 95流动强度的影响。给出了在1050、1075和1100℃的温度下以及在10〜(-4)到1 s〜(-1)的应变速率下测试的初始细颗粒(7μm)和粗颗粒(50μm)压坯的结果。 。在这些测试条件下,细粒和粗粒压坯都会再结晶,并且在塑性变形过程中会细化其晶粒尺寸。这种晶粒细化会引起两种材料的软化。最终,它们的微结构转变为相同的等轴细粒微双工结构,此时它们的流动强度变得相同。此时的持续变形不会进一步改变晶粒尺寸或流动强度。在这种变形状态下,微双相晶粒尺寸和流动强度与原始微结构无关,但受给定温度下的应变速率限制。随着应变率的降低和/或温度的升高,稳态晶粒尺寸增加,而稳态流动强度降低。它显示了如何使用已建立的变形模型来预测等温锻造过程中的等温锻造过程中的微观结构和流动强度的变化,该模型用于预测峰值流动强度,并使用稳态变形数据作为微观结构演化的边界条件。这类材料的流动强度和锻造过程中变形引起的再结晶模型最近已经开发出来。

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