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首页> 外文期刊>Materials & design >Effect of temperature on sliding wear of AISI 316 L(N) stainless steel - Analysis of measured wear and surface roughness of wear tracks
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Effect of temperature on sliding wear of AISI 316 L(N) stainless steel - Analysis of measured wear and surface roughness of wear tracks

机译:温度对AISI 316 L(N)不锈钢滑动磨损的影响-磨损轨的实测磨损和表面粗糙度分析

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摘要

AISI type 316 L(N) austenitic stainless steel is major construction material in the prototype fast breeder reactor (PFBR) because of its good high temperature strength, toughness, creep and low cycle fatigue properties and compatibility with liquid sodium. Sliding wear experiments were carried out at various temperatures up to 550 °C at constant load (20 N) and sliding speed (0.8 m/s) using a pin-on-disc test rig as per the ASTM standard G99-05. Analysis of the test results presented that, the wear increased considerably with the temperature. For the characterization of worn surface topography, comprehensive pro-filometry study was performed using Talysurf CLI 1000 surface profilometer and R_a (arithmetic mean deviation) and S_a (arithmetic mean deviation of surface) parameters values were evaluated. The roughness parameters were correlated with the amount wear data obtained from the experiments at various testing temperatures. As the temperature increases during the sliding wear, the material loss is presented with more undulations resulting in higher surface roughness values.
机译:AISI 316 L(N)型奥氏体不锈钢是原型快速增殖反应堆(PFBR)中的主要建筑材料,因为它具有良好的高温强度,韧性,蠕变和低循环疲劳特性以及与液态钠的相容性。滑动磨损实验是在高达550°C的各种温度下以恒定载荷(20 N)和滑动速度(0.8 m / s)使用符合ASTM标准G99-05的销钉盘试验设备进行的。对测试结果的分析表明,磨损随着温度的升高而显着增加。为了表征磨损的表面形貌,使用Talysurf CLI 1000表面轮廓仪进行了全面的前过滤测量研究,并评估了R_a(算术平均偏差)和S_a(表面算术平均偏差)参数值。粗糙度参数与在各种测试温度下从实验获得的磨损量相关。随着温度在滑动磨损过程中升高,材料损耗会出现更多起伏,从而导致更高的表面粗糙度值。

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  • 来源
    《Materials & design》 |2013年第10期|676-682|共7页
  • 作者单位

    Materials Technology Division, Indira Gandhi Center for Atomic Research, Kalpakkam 603 102, India;

    Materials Technology Division, Indira Gandhi Center for Atomic Research, Kalpakkam 603 102, India;

    Materials Technology Division, Indira Gandhi Center for Atomic Research, Kalpakkam 603 102, India;

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