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首页> 外文期刊>Energies >Experimental and Simulation Studies of Strength and Fracture Behaviors of Wind Turbine Bearing Steel Processed by High Pressure Torsion
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Experimental and Simulation Studies of Strength and Fracture Behaviors of Wind Turbine Bearing Steel Processed by High Pressure Torsion

机译:风力轴承钢高压扭转强度和断裂行为的实验与模拟研究。

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White structure flaking (WSF) has been found to be one of the failure modes in bearing steels under rolling contacts through the formation of cracks associated with a microstructural change called white etching area (WEA). In the present research, the effects of the high-pressure torsion (HPT) process on the microstructure and mechanical properties of an AISI 52100 alloy are studied. An annealed AISI 52100 was subjected to high-pressure torsion at room temperature under a pressure of up to ~6 GPa for up to three turns. Finite-element modeling (FEM) was used to simulate the process under high-pressure torsion and quasi-constrained conditions to reveal the material property changes occurring in HPT. Scanning electron microscopy and microhardness testing after processing were used to investigate the microstructural and mechanical property evolution of the steel. Strain induced microstructural transformations occur and affect the mechanical properties in a similar way to the well-known white etching area (WEA) found beneath the surface of wind turbine bearings. Here, HPT is used to study the feasibility of creating microstructural changes that are similar to WEA. This paper presents the preliminary results of using HPT to produce WEAs.
机译:已经发现,白色结构剥落(WSF)是轴承钢在滚动接触下通过形成与称为白色蚀刻区域(WEA)的微观结构变化相关的裂纹的破坏方式之一。在本研究中,研究了高压扭转(HPT)工艺对AISI 52100合金的组织和力学性能的影响。退火后的AISI 52100在室温下于最高〜6 GPa的压力下承受高压扭转最多三圈。有限元建模(FEM)用于模拟高压扭力和准约束条件下的过程,以揭示HPT中发生的材料特性变化。加工后的扫描电子显微镜和显微硬度测试用于研究钢的显微组织和力学性能演变。发生应变诱导的微结构转变,并以类似于风力涡轮机轴承表面下方的众所周知的白色蚀刻区域(WEA)的方式影响机械性能。在这里,HPT用于研究创建类似于WEA的微观结构更改的可行性。本文介绍了使用HPT产生WEA的初步结果。

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