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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Force modeling and applications of inclined ball end milling of micro-dimpled surfaces
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Force modeling and applications of inclined ball end milling of micro-dimpled surfaces

机译:微凹面斜球头铣削的力建模和应用

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摘要

Functional micro surfaces have been recognized for their vital roles in a wide range of advanced applications. The fabrication of surface structures at the microlevel can be used to influence tribological, optical, and many other surface characteristics. To take advantage of the benefits of functional surfaces, industry and researchers have begun focusing on finding more sustainable and efficient manufacturing processes. The inclined micro ball end milling technique has become a fast and efficient method for creating micropatterned surfaces. With the right adjustments, the spindle speed and feed rate can be set so that the flutes of the cutter create periodic dimpled patterns onto a workpiece surface. This micromachining technique is an ideal method for fabricating dimpled surfaces, especially for metallic alloys such as dies and molds. Developing surface pattern algorithms for generating different dimple geometries can promote a sustainable future for a variety of novel products and lead to accurate manufacturing of surface characteristics. Accurate modeling of cutting forces is important in order to generate desired surface patterns without causing tool breakage and excessive tool deflection. In this study, a mechanistic force model for inclined ball end milling has been proposed and verified for generating micro-dimpled surface. The micro-dimple machining technique is also applied to microinjection molds to create polymeric components with micropatterns. Frictional aspects of both dimpled and inverted dimple surfaces have been investigated. The results indicate that micro-dimple machining combined with microinjection molding is a viable method of producing polymeric components with functional surfaces for advanced technological applications.
机译:功能性微表面因其在各种高级应用中的至关重要的作用而得到公认。微观水平的表面结构的制造可用于影响摩擦学,光学和许多其他表面特性。为了利用功能性表面的优势,工业界和研究人员已开始着重于寻找更可持续,更高效的制造工艺。倾斜的微球端铣削技术已经成为创建微图案表面的一种快速有效的方法。通过正确的调整,可以设置主轴速度和进给速度,以使刀具的凹槽在工件表面上产生周期性的凹坑图案。这种微加工技术是制造凹坑表面的理想方法,特别是对于金属合金(例如模具)而言。开发用于产生不同凹痕几何形状的表面图案算法可以促进各种新颖产品的可持续发展,并导致表面特征的精确制造。为了产生所需的表面图案而不会引起刀具破损和过度的刀具偏斜,精确的切削力建模很重要。在这项研究中,提出了一种用于斜球立铣的机械力模型,并验证了该模型用于生成微凹坑表面。微凹痕加工技术也被应用于微注射模具,以产生具有微图案的聚合物部件。已经研究了凹窝和倒凹窝表面的摩擦方面。结果表明,微凹坑加工与微注射成型相结合是生产具有功能性表面的聚合物组件以用于先进技术应用的可行方法。

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