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首页> 外文期刊>Journal of Materials Engineering and Performance >Cavitation Erosion Damage Mechanism of a Duplex Stainless Steel Having a Ferrite-Austenite-Sigma-Phase Triplex Microstructure
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Cavitation Erosion Damage Mechanism of a Duplex Stainless Steel Having a Ferrite-Austenite-Sigma-Phase Triplex Microstructure

机译:双相不锈钢具有铁素体 - 奥氏体 - Σ-Σ-相三重组织微结构的空化腐蚀机理

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This paper is on the cavitation erosion (CE) behavior of a thermally annealed duplex stainless steel having a triplex microstructure consisting of ferrite, austenite and sigma phase. As sigma forms, it siphons off alloying elements from ferrite, making it softer. Ferrite is the weakest against CE among the three phases, and its interfaces with sigma phase are often the initiation sites of damage which tends to grow into the ferrite side. The weakness of ferrite stems from its high strain-rate sensitivity. Austenite is beneficial because it helps to prevent sigma phase from being dislodged, and its interfaces with sigma phase are also more resistant to CE damage. Mechanical properties such as hardness and strength do not correlate with CE resistance (as measured by cumulative weight loss and the incubation time of CE damage). Preliminary results show that cumulative weight loss is not monotonically proportional to the quantity of sigma.
机译:本文采用热退火双相不锈钢的空化糜烂(Ce)行为,其具有由铁氧体,奥氏体和Sigma相组成的三重组织微结构。 作为Sigma的形式,它虹吸从铁氧体中脱离合金元素,使其更柔软。 铁素体是三个阶段中最弱的反对Ce,其具有Sigma相的界面通常是损伤的引发位点,倾向于生长到铁氧体侧。 铁氧体的弱点源于其高应变率敏感性。 奥氏体是有益的,因为它有助于防止Sigma阶段被脱落,并且其具有Sigma相的界面也更耐受Ce损伤。 诸如硬度和强度的机械性能与Ce电阻不相关(通过累积重量损失测量和Ce损伤的孵育时间)。 初步结果表明,累积重量损失并不与Sigma的数量单调成比例。

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