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Stationary electrochemical machining of long, narrow, high-precision grooves.

机译:长而窄的高精度凹槽的固定式电化学加工。

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摘要

This work develops and demonstrates a model (i.e. mathematical description and computer simulation) for cutting precision long, narrow grooves with an Electrochemical Machining (ECM) process. The model predicts the resulting cut. Prediction of the outcome substantially reduces trial and error development, thus allowing a more cost effective and perhaps a more robust implementation of the ECM process. With long, narrow grooves a complicating factor is the relatively small cross section of the electrolyte channel, given the depth of the electrode groove. The small cross section limits the volume of electrolyte flow available to dilute sludge accumulation and provide cooling capability.This paper describes the historical background, function, and justification of ECM processes. Difficulties of traditional machining processes which ECM handles to advantage are workpiece complexity, inaccessibility, and material hardness. ECM combines the roughing and finishing of traditional machining into one step with excellent repeatability and with little or no tooling wear.A model is demonstrated which can predict the cut resulting from a given electrode. A variation of finite element approach is used to model the various parameters of the electrode groove cross section as a function of position along the electrode. Real time results are shown via an animated computer graphics simulator.An experimental setup has been developed which allows various electrode configurations to be tested. Ninety-six experiments were performed to verify the model's accuracy. Experimentation shows 0.01 mm (0.0004 inch) profile accuracy.
机译:这项工作开发并演示了一个模型(即数学描述和计算机仿真),该模型可通过电化学加工(ECM)工艺切割精密的细长沟槽。该模型可以预测切割的结果。对结果的预测将大大减少反复试验的发生,从而使ECM流程更具成本效益,并且可能实施得更稳健。对于长而窄的凹槽,给定电极凹槽的深度,复杂的因素是电解质通道的横截面相对较小。小截面限制了可用于稀释污泥积聚并提供冷却能力的电解液流量。本文介绍了ECM工艺的历史背景,功能和合理性。 ECM所要利用的传统加工工艺的难点在于工件的复杂性,难以接近性和材料硬度。 ECM将传统加工的粗加工和精加工整合为一个步骤,具有出色的可重复性和极少的模具磨损,甚至没有模具磨损,并展示了一种模型,该模型可以预测给定电极产生的切割。有限元方法的一种变型用于对电极凹槽横截面的各种参数进行建模,以作为沿电极位置的函数。实时结果通过动画计算机图形仿真器显示。已开发了实验设置,可以测试各种电极配置。进行了96次实验以验证模型的准确性。实验显示出0.01毫米(0.0004英寸)的轮廓精度。

著录项

  • 作者

    Burdorf, Gary Harlan.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Engineering Aerospace.Engineering Industrial.Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1993
  • 页码 258 p.
  • 总页数 258
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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