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Friction stir processing of dual certified 304/304L austenitic stainless steel for improved cavitation erosion resistance

机译:双重认证的304 / 304L奥氏体不锈钢的摩擦搅拌工艺可提高抗气蚀性

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Cavitation erosion is known to be prevalent in equipment in hydraulic environments. Understanding cavitation erosion and improving the erosion resistance of commonly used materials is of interest for both scientific and economic reasons. In this study, friction stir processing was employed to modify commercial dual certified AISI 304/304L austenitic stainless steel plates. The cavitation erosion behavior of the processed plates was evaluated and compared to that of the unprocessed steel. A temperature control algorithm was employed to maintain a target tool temperature during the processing. The cross sections of the processed nuggets were evaluated using optical microscopy, scanning electron microscopy and Vickers hardness testing. Erosion testing by cavitation liquid jet was performed conforming to ASTM G134 on specimens cut out of the nuggets of the commercially unprocessed and the processed 304/304L steel. The tool temperature was found to affect the microstructure and the cavitation erosion behavior. Friction stir processed steel showed greater than 3 x improvement in cavitation erosion resistance (defined as the reciprocal of the mass loss of a given material) than the unprocessed 304/304L. Surface erosion patterns and erosion rates were characterized and the mechanisms of material removal were discussed.
机译:已知气蚀作用在液压环境中的设备中普遍存在。出于科学和经济方面的原因,了解空化腐蚀和提高常用材料的抗腐蚀性能是很重要的。在这项研究中,采用摩擦搅拌工艺来修改商业双重认证的AISI 304 / 304L奥氏体不锈钢板。评价了已加工的板的空化腐蚀行为,并将其与未加工的钢进行了比较。在加工过程中采用温度控制算法来维持目标工具温度。使用光学显微镜,扫描电子显微镜和维氏硬度测试评估加工过的金块的横截面。根据ASTM G134,对从未经商业处理和经处理的304 / 304L钢的熔核切出的样品进行了空化射流侵蚀测试。发现工具温度影响显微组织和空化腐蚀行为。与未加工的304 / 304L相比,经摩擦搅拌处理的钢在抗气蚀性(定义为给定材料的质量损失的倒数)方面提高了3倍以上。表征了表面侵蚀模式和侵蚀速率,并讨论了材料去除的机理。

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