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A comparative study on the hot deformation behavior of 410 stainless and K100 tool steels

机译:410不锈钢和K100工具钢热变形行为的比较研究

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Hot deformation characteristics of 410 stainless and K100 tool steels were compared through hot compression tests in temperature range of 800-1200 degrees C and strain rates of 0.001-1 s-1. Carbon content is the major difference between the studied steels. Its higher content in K100 leads to a considerable amount of carbide particles even after reheating and through hot working; whereas, they are absent in 410 due to its lower C content. The flow curves of K100 showed fast work hardening at low strain levels and distinct peaks implying the occurrence of DRX. However, the flow curves of 410 exhibites more gradual work hardening and the peaks appeared at larger strains. It was concluded that dynamic recrystallization (DRX) in K100 precedes that in 410. However, the Avrami model suggested that DRX in 410 is faster than that in K100. Constitutive analysis showed that K100 has higher apparent activation energy at the peak but lower at strain of 0.5. The primary and dynamically precipitated carbides were found responsible for the higher deformation resistance of K100 at the peak. Observations by EBSD confirmed that discontinuous and continuous DRX are the dominant recrystallization mechanisms in 410 and K100, respectively. The higher internal deformation energy due to the existence of fine carbide particles is the major reason for the start of DRX at lower strains in K100. However, despite the sluggish nature of continuous DRX in K100, discontinuous DRX in 410 proceeds faster.
机译:通过在800-1200摄氏度的温度范围和0.001-1 s-1的应变率下的热压缩测试,比较了410不锈钢和K100工具钢的热变形特性。碳含量是研究钢之间的主要区别。即使在重新加热和通过热加工后,其在K100中的较高含量也会导致大量的碳化物颗粒。然而,由于其较低的C含量,它们在410中不存在。 K100的流动曲线显示出在低应变水平下的快速加工硬化,并且出现了明显的峰值,这表明发生了DRX。但是,410的流动曲线显示出更多的逐步硬化,并且峰值出现在较大的应变处。结论是,K100中的动态重结晶(DRX)早于410中的动态重结晶。但是,Avrami模型表明410中的DRX比K100中的动态重结晶更快。本构分析表明,K100在峰值处具有较高的表观活化能,而在0.5应变下具有较低的表观活化能。发现主要和动态沉淀的碳化物是导致K100在峰值处具有更高的抗变形能力的原因。 EBSD的观察证实,不连续和连续DRX分别是410和K100的主要重结晶机制。由于存在细小的碳化物颗粒而导致的较高的内部变形能是在K100中以较低应变开始DRX的主要原因。但是,尽管K100中连续DRX的性能低下,但410中不连续DRX的处理速度更快。

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