High-frequency-vibration-assisted electrolytic grinding method and device therefor
09751142 ยท 2017-09-05
Assignee
Inventors
- Toru Tachibana (Yamagata, JP)
- Satoshi Kobayashi (Yamagata, JP)
- Masayuki Takahashi (Yamagata, JP)
- Chikashi Murakoshi (Yamagata, JP)
- Kazunori Koike (Yamagata, JP)
Cpc classification
B24B5/06
PERFORMING OPERATIONS; TRANSPORTING
B24B1/04
PERFORMING OPERATIONS; TRANSPORTING
C25F7/00
CHEMISTRY; METALLURGY
International classification
Abstract
To provide a high-frequency-vibration-assisted electrolytic grinding method and a device therefor in which micro abrasive grains can be used so as to improve the grinding accuracy and efficiency. A high-frequency-vibration-assisted electrolytic grinding method in which a work is grinded by a grinding stone while electrolytic reaction is performed by applying a voltage between the grinding stone and the work through an electrolytic solution and high-frequency vibration is transmitted to the grinding stone or the work wherein; the grinding stone has non-conductive micro abrasive grains with grain sizes of less than #400 in accordance with the JIS R6001 standard of grinding stones for precision polishing projecting from its surface formed of conductive binding material, and the distance between the grinding stone and the work, which is regulated by the projecting lengths of the micro abrasive grains from the base of the grinding stone, is set to less than 0.02 mm.
Claims
1. A high-frequency-vibration-assisted electrolytic grinding method, the method comprising: grinding a work with a grinding stone while an electrolytic reaction is performed by applying a voltage between the grinding stone and the work through an electrolytic solution while a high-frequency vibration is transmitted to at least one of the grinding stone and the work in a direction that is axial to the grinding stone, wherein; the grinding stone has non-conductive micro abrasive grains with grain sizes of less than #400 in accordance with the JIS 6001 standard of grinding stones for precision polishing projecting from its surface, which comprises a conductive binding material, and a distance between the grinding stone and the work, which is regulated by a projecting length of the micro abrasive grains extending from a base of the grinding stone, is set to less than 0.02 mm.
2. The method of claim 1, further comprising: applying a pulse current having a duty ratio of 5 to 50% between the grinding stone and the work such that an average voltage between the grinding stone and the work is set between 1 and 10V.
3. A high-frequency-vibration-assisted electrolytic grinding device comprising: a grinding stone having non-conductive micro abrasive grains with grain sizes of less than #400 in accordance with the JIS R6001 standard of grinding stones for precision polishing projecting from its surface, which comprises a conductive binding material; a vibrator to transmit high-frequency vibration to at least one of the grinding stone and a work, wherein the high-frequency vibration is transmitted in an axial direction of the grinding stone; a holding mechanism that is configured to hold the work in a position such that a portion of the grinding stone extends into an opening in the work when the high-frequency vibration is transmitted in the axial direction of the grinding stone; and an electrolysis regulator to perform electrolytic grinding by applying a voltage between the grinding stone and the work through an electrolytic solution, wherein the device is configured to perform electrolytic grinding while transmitting the high-frequency vibration to at least one of the grinding stone and the work so as to induce or promote an electrolytic reaction between the grinding stone and the work when a distance between the grinding stone and the work, which is regulated by projecting lengths of the micro abrasive grains from a base of the grinding stone, is set to less than 0.02 mm.
4. The method of claim 2, wherein the average voltage between the grinding stone and the work is set less than 4V.
5. The method of claim 2, wherein the average voltage between the grinding stone and the work is set between 5V and 10V.
6. The method of claim 1, wherein the high-frequency vibration has a frequency of 20 kHz or more.
7. The device of claim 3, wherein the holding mechanism comprises a main shaft that is configured to chuck the work and to move the work in a cutting direction of the grinding stone.
8. A high-frequency-vibration-assisted electrolytic grinding method, the method comprising: grinding a work with a grinding stone while an electrolytic reaction is performed by applying a voltage between the grinding stone and the work through an electrolytic solution while a high-frequency vibration is transmitted to at least one of the grinding stone and the work in a direction that is axial to the grinding stone and while a portion of the grinding stone is inserted into an opening in the work, wherein; the grinding stone has non-conductive micro abrasive grains with grain sizes of less than #400 in accordance with the JIS R6001 standard of grinding stones for precision polishing projecting from its surface, which comprises a conductive binding material, and a distance between the grinding stone and the work, which is regulated by a projecting length of the micro abrasive grains extending from a base of the grinding stone, is set to less than 0.02 mm.
9. The method of claim 8, further comprising: applying a pulse current having a duty ratio of 5 to 50% between the grinding stone and the work such that an average voltage between the grinding stone and the work is set between and 10V.
10. The method of claim 9, wherein the average voltage between the grinding stone and the work is set less than 4V.
11. The method of claim 9, wherein the average voltage between the grinding stone and the work is greater than 5V.
12. The method of claim 9, wherein the average voltage between the grinding stone and the work is set between 5V and 10V.
13. The method of claim 1, wherein the high-frequency vibration has a frequency of 20 kHz or more.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(10) Described hereinafter with reference to the attached figures are detailed embodiments for carrying out the high-frequency-vibration-assisted electrolytic grinding device according to the present invention. In the
(11) Shown in
(12) There is also provided a grinding stone axial slide, not shown in the figures, which has the spindle 3 mounted thereon and moves forward and backward in the direction of the axis of the grinding stone. There is also provided a main shaft chucking the work W, not shown in the figures, which moves in the cutting direction.
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(14) The electrolysis-power supply means 5 applies a predetermined voltage between the grinding stone 2 and the work W. As shown in the figure, electrolytic solution is provided between the grinding stone 2 and the work W and electrolytic products 10 are formed by electrolytic reaction.
(15) Below described is a method of high-frequency-vibration-assisted electrolytic grinding of the present invention as described in the above.
(16) In the electrolytic grinding process, it is possible to confirm in the following way that electrolytic reaction is induced by the assistance of high frequency vibration.
(17) Monitoring of Electrolytic Reaction
(18) [Processing Condition]
(19) Work and Hardness: Made of chromium molybdenum steel (SCM), cylindrical shape with inner surface of 4 mm , 9 mm length, 58 or more HCR hardness
(20) Grinding Stone: Diamond electrodeposition grinding stone with grain size of #2000 or more
(21) Projecting Length of Abrasive Grains: 0.005 mm
(22) Rotation Speed of Grinding Stone: 4000 rpm
(23) Rotation Speed of Work: 1000 rpm
(24) High Frequency Vibration: 51 kHz, 8 m.sub.p-p
(25) DUTY Ratio of Pulse Power: 50%
(26) Processing Time: 60 sec
(27) While performing high-frequency-vibration-assisted electrolytic grinding under the above-described condition, change of the voltage between the grinding stone 2 and the work W is measured. In
(28) Studying these results of the measurements, it is confirmed that, as shown in
(29) This is considered to mean that the points in time where the voltage between the grinding stone 2 and the work W steeply rises correspond to the points of time where electrolytic grinding is initiated. The fact that such steep rise of voltage does not occur without transmitting high frequency vibration to the electrodes suggests that electrolytic reaction is induced by high frequency vibration.
(30) Condition for Inducing Electrolytic Reaction with High Frequency Vibration
(31) In order to confirm the threshold value of current for inducing electrolytic reaction, measurements are made under conditions where three different electric power are applied between the grinding stone 2 and the work W through the electrolytic solution, as shown in
(32) It is observed that in case the currents are 6.5 A and 3.4 A, transmitting high frequency vibration causes steep rise in voltage so as to induce electrolytic reaction and in case the current is 1.8 A, transmitting high frequency vibration does not induce electrolytic reaction. In the latter case, it is confirmed that the amount of removals from the work is significantly low.
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(34) It is thus required to perform electrolytic grinding with as low current density as possible in order to mirror finish the surface of the work in the high-frequency-vibration-assisted electrolytic grinding.
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(36) It is confirmed that electrolytic reaction is induced when the pulse power is set high and the duty ratio is set low. It is thus possible to induce electrolytic reaction with low current.
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(42) The present invention enables it to perform electrolytic grinding even in case the distance between the electrodes is small with the assistance of high frequency vibration. It is an advantageous effect of the present invention that removal of the materials and the chips is efficiently performed and clogging of the grinding stone is prevented. It is also an advantageous effect of present invention that the reactive oxygen generated by collapse of the bubbles (cavitations) can be utilized.
(43) The cavitations generated by ultrasonic waves have concentrated energy in the course of adiabatic compression process such that the collapse of the cavitations generate localized fields having temperature of five thousand to tens of thousands degrees Celsius and pressure of one thousand and several hundreds atm. In the field of high temperature reaction generated by the collapse of the cavitations which occurs when ultrasonic waves are irradiated on water or aqueous solution, water molecules are decomposed to generate OH radicals. It is considered that the highly oxidative OH radicals act effectively on the induction of electrolytic reaction although the oxidative OH radicals dissipate in a short time after being generated.
INDUSTRIAL APPLICABILITY
(44) The high-frequency-vibration-assisted electrolytic grinding method according to the present invention can be utilized in the industries of precision grinding of various metal materials.
EXPLANATION OF REFERENCE NUMERALS
(45) 1 high-frequency-vibration-assisted electrolytic grinding device 2 grinding stone 3 grinding stone spindle 4 high-frequency-vibrating means 5 electrolysis-power supply means 6 regulating means 7 abrasive grain 8 conductive binding material 9 electrolytic solution 10 electrolytic products W work