This application claims the priority of Republic of China Patent Application No. 110130752 filed on Aug. 19, 2021, in the State Intellectual Property Office of the R.O.C., the disclosure of which is incorporated herein by reference.
The present invention relates to channel machining equipment and a channel machining method for conducting electrical discharge machining (EDM) on a wall of an internal curved channel in a workpiece.
A workpiece, such as a mold or special part, is usually formed with straight internal channels simply due to limitations of the existing machining technology that is not capable of performing a desirable machining process (such as grinding, EDM, and so on) on a wall of a curved channel rather than a straight channel. This means the current technology, unfortunately, can only make curved channels with unsatisfactory wall roughness and shape/size preciseness in the workpiece.
Therefore, in order to solve the above problem, it is an important task in the art to propose channel machining equipment and a channel machining method for effectively machining a wall of a curved channel in a workpiece.
In view of the above drawbacks in the prior art, the present invention provides a channel machining equipment for performing electrical discharge machining (EDM) on a curved channel in a workpiece, the channel machining equipment including: an electrode for performing an EDM process and having a first end and a second end; a first guide close to the first end of the electrode; a second guide close to the second end of the electrode; a traction mechanism for serially connecting the first guide, the second guide and the electrode; an actuating mechanism serially connected to the traction mechanism; and a power supply serially connected to the traction mechanism; wherein, when the electrode performs the EDM process, the actuating mechanism provides kinetic energy for the traction mechanism to allow the traction mechanism to perform a towing process that tows the first guide, the second guide and the electrode to move in the curved channel, wherein when the traction mechanism performs the towing process, the first guide or the second guide is supported by a wall of the curved channel to drive the electrode to substantially move along a central portion of the curved channel, and simultaneously the power supply provides electricity for the electrode via the traction mechanism to make the electrode substantially stay in the central portion of the curved channel to perform the EDM process on the wall of the curved channel.
Preferably, in the channel machining equipment said above, the traction mechanism includes a first traction line and a second traction line, wherein the first traction line is connected to the first end of the electrode, and the second traction line is connected to the second end of the electrode; wherein when the electrode performs the EDM process, the first traction line provides a traction force at the first end of the electrode or the second traction line provides a traction force at the second end of the electrode to tow the electrode to move back and forth in the curved channel.
Preferably, in the channel machining equipment said above, the first traction line or the second traction line is an electric wire, and the power supply provides electricity for the electrode via the first traction line or the second traction line.
Preferably, in the channel machining equipment said above, the traction mechanism further includes a retaining structure for keeping the first traction line's traction force and the second traction line's traction constant.
Preferably, in the channel machining equipment said above, the traction force retaining structure includes a pulley set and an anti-reverse mechanism, wherein the pulley set includes a movable pulley and at least one fixed pulley, and the anti-reverse mechanism includes a ratchet, wherein the anti-reverse mechanism and the movable pulley are connected to the actuating mechanism to have linked movement; wherein when the actuating mechanism has its kinetic energy make the first traction line moved by a predetermined distance, the movable pulley moves along with the actuating mechanism, and the fixed pulley changes an extension direction of the second traction line to make the second traction line moved by the predetermined distance, and the anti-reverse mechanism stops reverse retraction of the second traction line, so as to allow an overall length of the first and second traction lines to substantially remain constant and keep the traction forces of the first and second traction lines substantially constant.
Preferably, in the channel machining equipment said above, the first guide, the second guide or the electrode is a spherical block or a conical block.
Preferably, in the channel machining equipment said above, further including an EDM fluid providing module for providing an EDM fluid, wherein the first guide includes a first runner for the EDM fluid to flow through, and the second guide includes a second runner for the EDM fluid to flow through.
Preferably, in the channel machining equipment said above, the electrode further includes at least one groove structure on its surface, wherein the groove structure has a push surface for allowing the EDM fluid to push the electrode to rotate in the curved channel when the EDM fluid flows in the groove structure, to allow the electrode to achieve a uniform EDM effect on the wall of the curved channel in the workpiece.
Preferably, in the channel machining equipment said above, the electrode further includes an eccentric connection portion at an eccentric location, wherein the traction mechanism is connected to the eccentric connection portion that allows the traction mechanism to eccentrically tow the electrode to move in an increased range within the curved channel, to enlarge an EDM range where the electrode performs the EDM process on the wall of the curved channel in the workpiece.
Furthermore, the present invention also provides a channel machining method for performing electrical discharge machining (EDM) on a curved channel in a workpiece; the channel machining method includes the steps of: providing an electrode for performing an EDM process; and providing a guide mechanism close to the electrode; wherein, when the electrode performs the EDM process, the guide mechanism is supported by a wall of the curved channel to drive the electrode to substantially move along a central portion of the curved channel, to make the electrode substantially stay in the central portion of the curved channel to perform the EDM process on the wall of the curved channel.
In summary, the present invention provides a channel machining equipment and a channel machining method, which allow a wall of an internal curved channel in a workpiece to support a guide mechanism and thus allow an electrode linked with the guide mechanism to substantially move in a central portion of the curved channel to optimize an EDM effect on the wall of the curved channel. Therefore, a precision machining process (such as grinding, EDM, and so on) can be conducted on the internal curved channel of the workpiece to make it have satisfactory wall roughness and shape preciseness according to predetermined standards, thereby solving the problem of failure in effectively machining the wall of the curved channel in the workpiece in the prior art.
Technical features of channel machining equipment and a channel machining method according to the present invention are described with reference to the following drawings.
Embodiments of the present invention will now be described in detail with reference to the accompanying drawings. The invention may, however, be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. In the drawings, the shapes and dimensions of elements may be exaggerated for clarity, and the same reference numerals will be used throughout to designate the same or like components.
The present invention provides a channel machining equipment and a channel machining method, which can perform electrical discharge machining (EDM) on a wall of an internal curved channel in a workpiece to allow the wall to undergo a machining process such as grinding, EDM, and so on, so as to make the curved channel have satisfactory wall roughness and shape/size preciseness according to predetermined standards.
Technical features of the present invention are described with reference to
In an embodiment shown in
In the embodiment of
The traction mechanism 13 serially connects the first guide 121, the second guide 122 and the electrode 11 together, making them able to move simultaneously. The actuating mechanism 16 is serially connected to the traction mechanism 13 and can provide kinetic energy for the traction mechanism 13. Particularly, when the electrode 11 is performing the EDM process, the actuating mechanism 16 provides kinetic energy for the traction mechanism 13, making the traction mechanism 13 able to tow the first guide 121, the second guide 122 and the electrode 11 to move in the channel 21. The traction mechanism 13 includes a first traction line 131 and a second traction line 132, wherein the first traction line 131 and the second traction line 132 are respectively connected to the first end 111 and the second end 112 of the electrode 11. When the electrode 11 is performing the EDM process, the first traction line 131 can provide a traction force to pull the first end 111 of the electrode 11 or the second traction line 132 can provide a traction force to pull the second end 112 of the electrode 11 so as to allow the electrode 11 to move back and forth in the curved channel 21. At the same time, the power supply 14 provides electricity for the electrode 11 via the traction mechanism 13, such that the electrode 11 can perform the EDM process on the wall 211 of the internal curved channel 21 of the workpiece 2 to allow it to undergo a desirable machining process (such as grinding, EDM, and so on).
It should be noted that, in the embodiment of
In the embodiment of
In the embodiment of
The anti-reverse mechanism 1332 operates as follows. In the embodiment of
When the traction mechanism 13 is performing the towing process, the first guide 121 or the second guide 122 is supported by the wall of the curved channel 21 and thus drives the electrode 11 to substantially move along the central portion of the curved channel 21. In such a case, even if the curved channel 21 has curvature and is not straight, the first guide 121 or the second guide 122 in the embodiment of
In the embodiment of
In the embodiment of
Moreover, the present invention further proposes a channel machining method. In the method according to the embodiment of
Therefore, according to the channel machining equipment and the channel machining method of the present invention, with the guide mechanism being supported by the wall of the curved channel in the workpiece, the electrode linked to the guide mechanism can substantially move in the central portion of the curved channel so as to optimize the EDM effect on the wall of the curved channel, such that a precision machining process (such as grinding, EDM and so on) can be conducted on the curved channel in the workpiece to make it have satisfactory wall roughness and shape/size preciseness according to predetermined standards, thereby solving the problem of failure in effectively machining the wall of the curved channel in the workpiece in the prior art.
The examples above are only illustrative to explain principles and effects of the invention, but not to limit the invention. It will be apparent to those skilled in the art that modifications and variations can be made without departing from the scope of the invention. Therefore, the protection range of the rights of the invention should be as defined by the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
110130752 | Aug 2021 | TW | national |