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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Influence of stainless steel specimen topography on micro-abrasion and micro-abrasion-corrosion
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Influence of stainless steel specimen topography on micro-abrasion and micro-abrasion-corrosion

机译:不锈钢标本形貌对微磨损和微磨损的影响

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This work carried out a systematic analysis to help understanding how surface roughness and relative orientation between surface topography and direction of abrasive entrainment can affect particle dynamics during both pure microabrasion and microabrasion-corrosion. For that, tests were carried out in AISI 304 austenitic stainless steel test specimens using a recently developed microabrasion-corrosion tester. A 3D load cell ensures controlled application and measurement of forces during the tests. For the microabrasion tests, a slurry composed of small (phi =2.5 mu m) silica particles dispersed in distilled water at a concentration of 20wt% was employed, whereas for the microabrasion corrosion tests the distilled water in the slurry was substituted by a corrosive solutions in distilled water (1 N H2SO4). Potentiodynamic curves varying from cathodic potentials into the transpassive region were obtained within the course of duration of each microabrasion-corrosion test. The specimens were ground using two different SiC papers (#80 and #4000) to vary their surface topography and were tested with the grooves oriented perpendicular and parallel to the direction of rotation of the ball. Although the effect of surface topography was slight under pure microabrasion conditions, it was more significant under microabrasion-corrosion conditions. It was proposed that under microabrasion conditions, the formation of a low friction passive layer on the specimens made particle entrainment more difficult and therefore the relative orientation between surface topography and ball rotation had a stronger effect on the amount of abrasives that entered the contact, affecting wear rates. Grooves parallel to the rotation of the sphere increased wear rates under microabrasion-corrosion conditions when compared with grooves oriented perpendicular to the contact. Parallel grooves also resulted in higher passivation currents than perpendicular grooves, probably due to more severe damage to the passive layer caused by more abrasives into the contact
机译:这项工作进行了系统分析,以帮助了解表面粗糙度和磨料夹带方向之间的表面粗糙度和相对取向如何影响纯微交换和微交换腐蚀过程中的粒子动态。为此,使用最近显影的微交换腐蚀测试仪在AISI 304奥氏体不锈钢试样中进行测试。 3D负载单元可确保在测试期间控制应用和测量力。对于微交换试验,使用由分散在20wt%的蒸馏水中的小(Phi =2.5μm)二氧化硅颗粒组成的浆料,而微交换腐蚀测试浆料中的蒸馏水被腐蚀性溶液取代在蒸馏水(1n H 2 SO 4)。在每种微交换腐蚀试验的持续时间内获得从阴极电位到过滤区域的电位动力学曲线。使用两个不同的SiC纸(#80和#40和#40)进行地研磨,以改变它们的表面形貌,并且用垂直于球的旋转方向定向的凹槽测试。虽然表面形貌的效果在纯微交换条件下轻微,但在微交换腐蚀条件下更为显着。提出,在微交换条件下,在样品上形成低摩擦无源层使颗粒夹带更加困难,因此表面形貌和球旋转之间的相对取向对进入接触的磨料量的效果更强,影响磨损率。与垂直于接触定向的凹槽相比,与球体的旋转平行于球体的旋转增加的凹槽增加。平行的凹槽也导致钝化电流比垂直凹槽更高,可能是由于对由更多的磨料引起的被动层造成更严重的损坏,这

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