Theoretical models of the electrical discharge machining process. I. A simple cathode erosion model
Теоретические модели процесса электроэрозионной обработки. I. Простейшая модель эрозии катода
1989-11-01
SCID: 54.1/njfzmwqg
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cathode erosion modelelectrical discharge machiningoptimum pulse timephotoelectric energy transferpoint heat-source model
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Abstract (AI)
A simple cathode erosion model for the electrical discharge machining (EDM) process is presented. This point heat-source model differs from previous conduction models in that it accepts power rather than temperature as the boundary condition at the plasma/cathode interface. Optimum pulse times are predicted to within an average of 16% over a two-decade range after the model is tuned to a single experimental point. A constant fraction of the total power supplied to the gap is transferred to the cathode over a wide range of currents. A universal, dimensionless model is then presented which identifies the key parameters of optimum pulse time factor (g) and erodibility (j) in terms of the thermophysical properties of the cathode material. Compton’s original energy balance for gas discharges is amended for EDM conditions. Here it is believed that the high density of the liquid dielectric causes plasmas of higher energy intensity and pressure than those for gas discharges. These differences of macroscopic dielectric properties affect the microscopic mechanisms for energy transfer at the cathode. In the very short time frames of EDM, our amended model uses the photoelectric effect rather than positive-ion bombardment as the dominant source of energy supplied to the cathode surface.
Key Findings
1
A constant fraction of the total power supplied to the gap is transferred to the cathode across a wide range of currents.
2
A point heat-source cathode erosion model for EDM is proposed that uses power (not temperature) as the boundary condition at the plasma/cathode interface.
3
A universal dimensionless formulation identifies key parameters: optimum pulse time factor (g) and erodibility (j) expressed via cathode thermophysical properties.
4
After tuning to a single experimental point, the model predicts optimum pulse times with an average error of 16% over a two-decade range.
5
Compton's energy balance for gas discharges is amended for EDM: liquid dielectric properties yield higher plasma energy intensity and pressure, altering microscopic energy-transfer mechanisms.
6
For the very short EDM time frames, the amended model proposes the photoelectric effect, rather than positive-ion bombardment, as the dominant energy source to the cathode surface.
Research Object
Cathode in the electrical discharge machining (EDM) process (subject to point heat-source erosion model)
Research Subject
Erosion behavior and optimal pulse-time characteristics (energy transfer, erodibility j, optimum pulse time factor g, and mechanisms of energy transfer at the plasma/cathode interface) predicted by a point heat-source cathode erosion model
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1989-11-01
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