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Study on Surface Topography and Tribological Characteristics Finished by Abrasive Jet with Grinding Wheel as Restraint

机译:用磨轮磨削磨削磨削的表面形貌和摩擦学特征研究

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The abrasive jet finishing process with wheel as restraint is a kind of compound precision finishing process that combined grinding with abrasive jet machining, in which inject slurry of abrasive and liquid solvent to grinding zone between grinding wheel and work surface under no radial feed condition when workpiece grinding were accomplished. The abrasive particles are driven and energized by the rotating grinding wheel and liquid hydrodynamic pressure and increased slurry speed between grinding wheel and work surface to achieve micro removal machining. The micro removal machining with grinding wheel as restraint, not only to attain higher surface form accuracy but also to can acquire efficiently defect-free finishing surface with R{sub}a0.15~1.6μm and finally achieve high efficiency, high precision and low roughness values, furthermore, integrating grinding process and abrasive jet process into one features. In the paper, surface topography and tribological characteristics finished by abrasive jet with grinding wheel as restraint were analyzed. Experiments were performed with plane grinder M7120 and workpiece material Q235A. The machined surface morphology was studied using SEM and the microscope and microcosmic geometry parameters were measured with TALSURF5 instrument. The experimental results show that microcosmic geometry parameter values were diminished comparing with ground surface. The tribological characteristics of finished surface were also investigated with pin on disk wear tester of MG-2000. The experimental results show that the friction coefficient and wear amounts of finishing machining surface were obviously decreased comparing with ground surface. As a result, life and precision consistency of finished workpiece were improved.
机译:具有克制的磨料喷射整理过程是一种复合精密精加工方法,将研磨与磨料喷射加工合并,其中在工件中没有径向进料条件在磨轮和工作表面之间喷射磨料和液体溶剂的浆料。完成研磨。磨料颗粒被旋转砂轮和液体流体动力学压力驱动和激励,并且在砂轮和工作表面之间增加浆料速度以实现微去除加工。用砂轮的微拆卸加工为克制,不仅可以获得更高的表面形态精度,还可以通过R {u} A0.15〜1.6μm获得有效的无缺陷精加工表面,最后达到高效率,精度高,精度高此外,粗糙度值,将研磨过程和磨料喷射过程集成为一个特征。在纸质中,分析了磨削射流以磨削轮磨削的表面形貌和摩擦学特性作为约束。用平面研磨机M7120和工件材料Q235A进行实验。使用SEM和显微镜和微观几何参数研究了加工表面形态,用Talsurf5仪器测量。实验结果表明,与地面相比,微观几何参数值减少。在MG-2000的磁盘磨损测试仪上还研究了成品表面的摩擦学特性。实验结果表明,与地面相比,精加工加工表面的摩擦系数和磨损量明显降低。结果,改善了成品工件的寿命和精确稠度。

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