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Basic Study of Combustion-Material Removal Process by Multi-Function Electrode

机译:多功能电极去除燃烧材料的基础研究

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Using the characteristic that most metal can burn in oxygen, put forward a new high-efficiency process that deals with the difficult-to-cut materials multi-function electrode EDM-induced ablation machining technology. Design the multi-function electrode and inject high-pressure oxygen and dielectric fluid rush to the machining area through it, then the gas and liquid are mixed as processing medium. During the machining process, first, surface material is removed by the electric spark discharge, which induces the combustion reaction between the metal and oxygen, generates very large amounts of combustion heat. Second, the combustion heat melts the difficult-to-cut metal and then turns the combustion reaction into a high-efficiency ablation reaction which is controlled by the density of the oxygen bubble dispersed by high-pressure water. The water-oxygen mixed medium is helpful for the interpolar deionization between the electrodes and the elimination of reaction products. Experiment has been conducted on machining titanium by combining this new technology with traditional electrical discharge turning (EDT). The result shows that the machining efficiency of this method can reach to 313mm3/min which is 4.3 times of the normal EDT machining efficiency. The experiment also shows that the machining efficiency heavily relies on the polarity effect during ablation process, the positive polarity machining efficiency is far higher than the negative polarity processing, and that the gas and liquid pressure difference should be controlled under a certain range. The characteristic of the combustion-material removal process with the multi-function electrode is also analyzed in this article.
机译:利用大多数金属可以在氧气中燃烧的特性,提出了一种新的高效工艺,该工艺涉及难以切割的材料,多功能电极,EDM诱导的烧蚀加工技术。设计多功能电极,并通过它向加工区域注入高压氧气和介电液,然后将气体和液体混合为加工介质。在机加工过程中,首先,表面材料通过电火花放电除去,这会引起金属和氧气之间的燃烧反应,并产生大量燃烧热。其次,燃烧热使难切削的金属熔化,然后将燃烧反应转变为高效烧蚀反应,该反应由高压水分散的氧气气泡的密度控制。水-氧混合介质有助于电极之间的极间去离子和消除反应产物。通过将这项新技术与传统的电火花车削(EDT)相结合,进行了钛加工的实验。结果表明,该方法的加工效率可达313mm3 / min,是普通EDT加工效率的4.3倍。实验还表明,加工效率在很大程度上取决于烧蚀过程中的极性效应,正极性加工效率远高于负极性加工,并且气,液压差应控制在一定范围内。本文还分析了多功能电极去除燃烧材料过程的特点。

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