This application claims priority to Korean Patent Application No. 2012-00000, filed on Apr. 0, 2012, and all the benefits accruing therefrom under 35 U.S.C. §119, the contents of which in its entirety is herein incorporated by reference.
1. Field of the Invention
Exemplary embodiments of the present invention relate to an electrical discharge machining system and a method for electrical discharge machining using the above-mentioned machining system. More particularly, exemplary embodiments of the present invention relate to an electrical discharge machining system having improved machinability and a method for electrical discharge machining using the above-mentioned machining system.
2. Description of the Related Art
Generally, an electrical discharge machining (EDM) is a conventional machining process using an electrical discharge. In the EDM, a machine tool and a die sink in an insulating fluid and a high voltage is applied to a gap between the machine tool and the die to be discharged, and thus the die is machined. The EDM is conventionally applied to a precision machining to manufacture a precision structure having various kinds of shapes.
Example embodiments of the present invention provide an electrical discharge machining (EDM) system capable of improving machinability.
Example embodiments of the present invention also provide a method for EDM using the above-mentioned machining system.
In an example embodiment of an EDM system according to the present invention, the EDM system includes a bed and an EDM module disposed on the bed. The EDM module includes an electrode, a providing part, an electrode guide and a retrieving part. The electrode machines a die. The providing part provides the electrode to be used for machining the die. The electrode guide is disposed adjacent to the die and guides a transfer of the electrode. The retrieving part retrieves the electrode used for machining the die.
In the example embodiment, the electrode may have a tape shape or a foil shape.
In the example embodiment, the electrode may include a copper or a brass.
In the example embodiment, the providing part may provide the electrode with rotating the electrode wound on the providing part, and the retrieving part may retrieve the electrode with rotating the electrode to be wound on the retrieving part.
In the example embodiment, the electrode guide may include a head portion making contact with the electrode, and an extending portion spaced apart from the electrode and extending from the head portion. The electrode may be transferred on the head portion.
In the example embodiment, the electrode may make contact with the head portion machines the die.
In the example embodiment, an end of the head portion may be curved.
In the example embodiment, the EDM module may be integrally transferred along a machining path.
In the example embodiment, the electrode guide may include a main guide and a sub guide. The main guide may move up and down. The sub guide may be combined with the main guide at both sides of the main guide such that the main guide may move up and down with respect to the sub guide.
In the example embodiment, the main guide may include a guide body portion, and a guide portion extending from the guide body portion to be a prism shape. The electrode may be guided along an end of the guide portion and an external surface of the sub guide.
In an example embodiment of a method for EDM according to the present invention, an electrode is provided to be used for machining a die from a providing part of an EDM module disposed on a bed. The die is machined using the electrode provided by the providing part. The electrode is guided by an electrode guide disposed adjacent to the die. The electrode used for machining the die is retrieved to a retrieving part of the EDM module.
In the example embodiment, the providing part may provide the electrode with rotating the electrode wound on the providing part, and the retrieving part may retrieve the electrode with rotating the electrode to be wound on the retrieving part.
In the example embodiment, the electrode may have a tape shape or a foil shape.
In the example embodiment, in machining the die, the electrode may be transferred on a head portion of the electrode guide with making contact with the head portion, and the electrode may make contact with the head portion machines the die.
In the example embodiment, the machining the die may include milling the die or turning the die.
In the example embodiment, the electrode guide may include a main guide and a sub guide. The main guide may move up and down. The sub guide may be combined with the main guide at both sides of the main guide such that the main guide may move up and down with respect to the sub guide. In machining the die, the electrode may be guided along an end of the main guide and an external surface of the sub guide.
In the example embodiment, in machining the die, an inclination angle of a ‘V’ groove of the die machined by the electrode may be changed according to a position of the main guide with respect to the sub guide.
According to the above-mentioned example embodiments, an electrode used for the EDM has a tape shape or a foil shape, and the electrode is continuously provided and retrieved to prevent a machining error from occurring due to the wear of the electrode.
In addition, the electrode has a constant cross-sectional area and is continuously provided, to minimize the machining error due to the wear of the electrode.
In addition, the electrode only makes contact with a head portion of an electrode guide in machining, so that a friction in providing the electrode may be minimized to decrease a damage of the electrode and the electrode may be transferred much faster.
In addition, an end of the head portion of the electrode guide is curved to transfer the electrode much smoother.
In addition, the electrode guide includes a main guide moving up and down, and the electrode guide includes a guide portion having a prism shape, so that a ‘V’ groove having various inclination angles may be formed.
The above and other features and advantages of the present invention will become more apparent by describing in detailed exemplary embodiments thereof with reference to the accompanying drawings, in which:
Hereinafter, exemplary embodiments of the present invention will be described in further detail with reference to the accompanying drawings.
Referring to
The bed 20 is functioned as a fixing frame of the EDM system 1, and the plate 21, the fluid providing part 27 and the EDM module 100 are disposed on the bed 20. The plate 21 is transferred or fixed on the bed 20, and a die fixing part 22 is transferred or fixed on the plate 21. The die fixing part 22 fixes the die 23. In
Although not shown in figure, the EDM system 1 may further include a driver. The driver may control a transfer of the EDM module 100, a transfer of the electrode of the EDM module 100 and so on. The EDM module 100 is integrally transferred to machine the die 23.
The fluid providing part 27 provides a fluid to both of the electrode and the die 23. In an EDM, the electrode and the die both sink in the fluid and are discharged to be machined, and thus the fluid providing part 27 provides the fluid enough to improve machinability of the die 23.
The EDM module 100 is disposed on the bed 20, and includes a providing part 31, an electrode 50, 51 and 52, an electrode guide 40 and a retrieving part 32. The EDM module 100 may further include first and second rollers 33 and 34 disposed between the providing part 31 and the electrode guide 40, and a third roller 35 disposed between the electrode guide 40 and the retrieving part 32.
The providing part 31, the electrode guide 40, the retrieving part 32 and the first, second and third rollers 33, 34 and 35 may be fixed to a base plate 25 which is disposed substantially perpendicular to the bed 20. The elements fixed to the base plate 25 may be integrally transferred on the bed 20. For example, the EDM module 100 may be integrally transferred on the bed 20 in machining the die 23. Here, the die 23 may be transferred with respect to the EDM module 100 due to the transfer of the plate 21, and thus the die 23 may be variously machined.
The providing part 31 is fixed on the base plate 25 with a circular plate shape, and the electrode 50 which will be used for machining is wound on the providing part 31.
In the present example embodiment, the electrode 50, 51 and 52 includes a tape shape or a foil shape, and thus the electrode 50, 51 and 52 may be wound on the providing part 31 with a cylindrical shape. For example, the electrode 50, 51 and 52 may have a relatively thin thickness and a relatively large width, and the width of the electrode 50, 51 and 52 may be variously changed according to a size of the die 23 and a designed shape of the machined die 23.
The electrode 50, 51 and 52 has a width much larger than a thickness thereof, compared to a wire-shape electrode conventionally used in the EDM. Thus, a width of the die 23 may be changed according to the width of the electrode 50, 51 and 52, so that the die 23 may be machined variously according to the width of the electrode 50, 51 and 52. In addition, an amount of machined die according to the present example embodiment may be larger than that in the conventional wire EDM, and thus the machinability may be enhanced.
The first and second rollers 33 and 34 are disposed between the providing part 31 and the electrode guide 40, and are fixed on the base plate 25. The first and second rollers 33 and 34 maintain a tension of the electrode 50 provided from the providing part 31 to the electrode guide 40 and prevent the electrode 50 from sagging in providing the electrode 50, and thus the electrode 50 may be effectively provided.
The electrode guide 40 is disposed adjacent to the die 23 and receives the electrode 50 from the providing part 31 and guides the electrode 50, so that the electrode 51 may easily and effectively machine the die 23.
For example, the electrode guide 40 includes a head portion 42 and an extending portion 41. The electrode 51 provided from the providing part 31 makes contact with the head portion 42, and the extending portion 41 extends from the head portion 42 and is fixed to the base plate 25. The head portion 42 is curved as illustrated in
Accordingly, the electrode 51 is transferred with making contact with the curved surface of the head portion 42, and the electrode 51 making contact with the head portion 42 machines the die 23. Here, the electrode 51 is transferred along an arrow direction in
The retrieving part 32 retrieves the electrode 52 which is worn after the EDM of the die 23. The retrieving part 32 is fixed to the base plate 25 and has a circular plate shape like the providing part 31. The retrieving part 32 retrieves the worn electrode 52 with rotating the electrode to be wound on the retrieving part 32.
The third roller 35 is disposed between the electrode guide 40 and the retrieving part 32, and is fixed on the base plate 25. The third roller 35 maintains a tension when the electrode 52 used for the EDM of the die 23 is retrieved to the retrieving part 32, and thus the electrode 52 may be prevented from sagging and may be smoothly and efficiently retrieved to the retrieving part 32.
Referring to
Here, referring to
Referring to
Alternatively, the die 24 fixed to the die fixing part 22 is transferred along a direction opposite to the tool path Dr and the EDM module stands without moving, and then the milling EDM of the die 24 may be performed.
Here, referring to
The electrode guide 60 according to the present example embodiment is substantially same as the electrode guide 40 according to the previous example embodiment except for a shape thereof, a structure thereof and a supporting structure thereof for the electrode, and the electrode guide 60 according to the present example embodiment may substitute for the electrode guide 40 according to the previous example embodiment in the EDM system 1 as illustrated in
Referring to
The main guide 63 includes a guide body portion 61 and a guide portion 62. The guide body portion 61 has a rectangular column shape having a constant cross-sectional area, and both side surfaces of the guide body portion 61 make contact with the sub guide 64. The guide portion 62 extends from the guide body portion 61 to a lower portion of the guide body portion 61 and has a prism shape. For example, an end of the guide portion 62 has a sharp-pointed shape as illustrated in
The electrode 50 provided by the providing part 31 is guided by the side surface of the sub guide 64, and then the die 65 is machined by the electrode 51 which is guided by the end of the guide portion 62. Then, the electrode 52 used for the EDM of the die 65 is guided by the side surface of the sub guide 64 and is retrieved by the retrieving part 32.
Here, the main guide 63 moves upwardly or downwardly with respect to the sub guide 64, and thus an angle θ of the electrode 51 guided by the end of the guide portion 62 may change.
For example, when the main guide 63 is positioned relatively upwardly with respect to the sub guide 64, a portion of the guide portion 62 which is protruded between the pair of sub guides 64 decreases so that the angle θ of the electrode 51 guided by the end of the guide portion 62 may increase. Thus, an inclined angle of a ‘V’ groove formed at the die 65 which is machined by the electrode 51 may increase and the ‘V’ groove may have a relatively larger inclined angle therein.
However, when the main guide 63 is positioned relatively downwardly with respect to the sub guide 64, the portion of the guide portion 62 which is protruded between the pair of sub guides 64 increases so that the angle θ of the electrode 51 guided by the end of the guide portion 62 may decrease. Thus, the inclined angle of the ‘V’ groove formed at the die 65 which is machined by the electrode 51 may decrease and the ‘V’ groove may have the relatively smaller inclined angle therein.
Accordingly, the position of the main guide 63 with respect to the sub guide 64 changes, and thus the inclined angle of the ‘V’ groove may change variously. Hereinafter, examples of the ‘V’ groove are explained referring to
Referring to
However, referring to
Accordingly, the position of the main guide 63 with respect to the sub guide 64 changes, and thus the inclined angle of the ‘V’ groove formed at the die may change variously. In addition, the electrode 51 is continuously provided with newly one, and thus the wear of the electrode 51 has no effect on the shape of the ‘V’ groove formed at the die.
According to the above-mentioned example embodiments, an electrode used for the EDM has a tape shape or a foil shape, and the electrode is continuously provided and retrieved to prevent a machining error from occurring due to the wear of the electrode.
In addition, the electrode has a constant cross-sectional area and is continuously provided, to minimize the machining error due to the wear of the electrode.
In addition, the electrode only makes contact with a head portion of an electrode guide in machining, so that a friction in providing the electrode may be minimized to decrease a damage of the electrode and the electrode may be transferred much faster.
In addition, an end of the head portion of the electrode guide is curved to transfer the electrode much smoother.
In addition, the electrode guide includes a main guide moving up and down, and the electrode guide includes a guide portion having a prism shape, so that a ‘V’ groove having various inclination angles may be formed.
The foregoing is illustrative of the present invention and is not to be construed as limiting thereof. Although a few example embodiments of the present invention have been described, those skilled in the art will readily appreciate that many modifications are possible in the example embodiments without materially departing from the novel teachings and advantages of the present invention. Accordingly, all such modifications are intended to be included within the scope of the present invention as defined in the claims. In the claims, means-plus-function clauses are intended to cover the structures described herein as performing the recited function and not only structural equivalents but also equivalent structures. Therefore, it is to be understood that the foregoing is illustrative of the present invention and is not to be construed as limited to the specific example embodiments disclosed, and that modifies to the disclosed example embodiments, as well as other example embodiments, are intended to be included within the scope of the appended claims. The present invention is defined by the following claims, with equivalents of the claims to be included therein.
Number | Date | Country | Kind |
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10-2012-0049757 | May 2012 | KR | national |