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Profile error compensation in high precision 3D micro-EDM milling

机译:高精度3D微型EDM铣削中的轮廓误差补偿

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摘要

Together with the product miniaturization trend, manufacturing technologies to fabricate small size shapes are highly demanded for micro-mold and die industry. Among the versatile machining processes, micro-EDM milling is superior owing to its negligible cutting force. By using layer by layer removal strategy in association with CAM software for tool path generation, intricate 3D micro-shapes could be produced. However, there exist some systematic errors which affect the dimensional accuracy and the final form of obtained shapes. This study attempts to identify and analyze the error components of 3D micro-EDM milling process. It is found that aside from the inherent machining gap and the indispensible electrode wear, the corner radius of virtual electrode is also of prime importance in determining the machining accuracy. In this study, geometric models are presented to simulate its effects. It is detected that the profile error could be reduced by implementing the corner radius into virtual electrode model. For verification, typical 3D micro-shapes formed by the inclined planes and a partial sphere are fabricated with and without the new model for virtual electrode geometry.
机译:伴随着产品小型化的趋势,对于微型模具和模具行业,迫切需要制造小尺寸形状的制造技术。在多功能加工工艺中,微电火花铣削由于其可忽略的切削力而具有优越性。通过结合CAM软件使用逐层去除策略来生成刀具路径,可以生产出复杂的3D微型形状。但是,存在一些系统误差,这些误差会影响尺寸精度和所获得形状的最终形式。本研究试图识别和分析3D微型EDM铣削过程的误差成分。已经发现,除了固有的加工间隙和必不可少的电极磨损之外,虚拟电极的拐角半径对于确定加工精度也至关重要。在这项研究中,提出了几何模型来模拟其效果。通过将角半径实现为虚拟电极模型,可以检测出轮廓误差可以减小。为了验证,在有或没有虚拟电极几何新模型的情况下,制造了由倾斜平面和部分球体形成的典型3D微观形状。

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