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Exploring the Effectiveness of a Complex Coating Technique for Use the Smallest Parts of Advanced Powertrain Fuel System

机译:探讨复杂涂层技术的有效性,用于使用先进的动力总成燃料系统最小的部分

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The objective is to develop the complex coating technique with high quality and homogeneity of coating for spherical parts with diameter of 2 similar to 4 mm and stable mass production shall be secured with consideration of coating material, process and jig design. Silicon oxide-diamond like carbon (SiO-DLC) complex coating chemistry is expected to enhance the high temperature stability as opposed to DLC. Currently, the spherical part is first welded and then assembled with other parts, finally they are coated with DLC. However in this manner, the maximum charging in one coating batch is limited due to the very big size of the whole component which increases cost. Therefore the spherical part is to be coated before welding. Overall, reactive sputtering with high precision fixturing and masking technique resulted in the best overall properties for modern powertrain fuel system. The jig design was optimized with consideration of coating properties (height, width, thickness, inserting distance) and spherical parts were fixed at the jig with magnet plate. Coating material and process were determined with several trials. In conclusion the PVD+PACVD coated parts is developed and coatings with high quality, homogeneity and 30,000 inserting amount are secured. Coated parts are minimum 100 % more durable than non-coated parts.
机译:目的是开发复杂的涂布技术,具有高质量,涂层均匀性,用于2毫米的直径2毫米,应考虑到涂层材料,工艺和夹具设计来固定稳定的批量生产。碳(SiO-DLC)氧化硅 - 金刚石(SiO-DLC)复合涂层化学预期增强高温稳定性,而不是DLC。目前,首先将球形部分焊接,然后用其他部件组装,最后它们涂有DLC。然而,以这种方式,由于整个组件的大小增加了成本,因此在一个涂层批料中的最大充电受到限制。因此,球形部件将在焊接前涂覆。总的来说,具有高精度固定和掩蔽技术的无功溅射导致现代动力总成燃料系统的总体整体性能。通过考虑涂布性(高度,宽度,厚度,插入距离)和球形部件在用磁板上固定,球形部件优化了夹具设计。用几种试验测定涂料和方法。总之,PVD + PIPVD涂层部件开发和具有高质量,均匀性和30,000个插入量的涂层。涂层零件比非涂层零件更少100%。

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