1. Field of the Invention
The invention relates to a wire electric discharge machine, and particularly to a wire electric discharge machine that has a core fixing function of preventing the drop of the core when cutting out the core, by attaching and depositing machining debris to a workpiece and the core, in a part of a machining groove formed by electric discharge machining.
2. Description of the Related Art
In the wire electric discharge machine, a function (hereinafter, referred to as a core fixing function) of attaching and depositing (welding) the machining debris to the machining groove of the workpiece to fix the machined core to the workpiece, by utilizing a attachment phenomenon of the wire component to the workpiece has been known. As the core fixing function, a method of machining a large number of respective generated cores while fixing, and applying an external force to each of the fixed cores after completion of the whole machining to remove the cores from the workpiece has been taken. Since this method is efficient, its effect is exhibited in the machining in which the large number of the cores are generated.
For example, JP 2012-166332 A discloses an invention in which, when a machining shape is machined, in at least one position of the machining shape, instead of a welding cycle from a machining cycle of the electrical machining condition, a part of the wire electrode is melted, the workpiece and the cutout material are welded by a wire electrode melt to prevent detachment of the cutout material, and after completion of the electric discharge machining, the welded portion is destroyed by an external force to separate the cutout material from the workpiece. Further, JP 2014-24132 A discloses a method for editing a machining program for a wire electric discharge machine which analyzes the machining program, calculates a machining circumference length of a cutout machining member and an upper surface area of a shape of the machining member from the workpiece, calculates the mass of the machining member from the obtained machining circumference length, the upper surface area, the thickness of the workpiece and specific gravity, and obtains a length of the welding portion of the machining member to the obtained mass, by a map which stores a relation between the mass of the machining member and the length of the welding portion capable of holding the machining member.
Further, JP 2014-14907 A discloses a wire electric discharge machine and an automatic programming device for the wire electric discharge machine capable of arbitrarily setting a fixing position, when fixing the core to the work base material by attaching and depositing the machining debris to the machining groove.
Further, JP 2013-144335 A also discloses a machining program generating device of a wire electric discharge machine which sets an attachment region for attaching the components of the wire electrode from the shape and the weight of the core and generates a machining program on the basis thereof in order to prevent the drop of the core.
When adopting the method for fixing the core by the aforementioned core fixing function, the core is not always fixed. There was a problem of failure in fixing of the core to the workpiece for some reasons such as errors of various settings, changes in liquid quality of machining liquid, and aging variations of the wire electric discharge machine itself. For example, when a core 6 is not fixed and the core 6 is caught on a nozzle 5a as illustrated in
Accordingly, an object of the invention is to enable machining to be stopped when the core is no fixed, by checking whether the core is fixed in the machining using a core fixing function.
According to the invention, there is provided a wire electric discharge machine that has a core fixing function of fixing a core produced by electric discharge machining and a workpiece, by relatively moving a wire electrode and the workpiece in accordance with a machining program, by performing the electrode discharge machining of the workpiece by electric discharge generated between the wire electrode and the workpiece, and by attaching and depositing machining debris produced by the electric discharge machining to a machining groove. The wire electric discharge machine includes a core image acquiring means for acquiring an image of the core; a core fixing state determining means for determining whether the core is fixed from the image acquired by the core image acquiring means; and an electric discharge machining stop means for stopping the electric discharge machining, when the core fixing state determining means determines that the core is not fixed. The wire electric discharge machine performs machining, while checking a fixed state of the core.
In the wire electric discharge machine, the core fixing state determining means determines whether the core is fixed from the image, depending on whether a width of a machining groove surrounding the core formed by the electric discharge machining is constant or is within a predetermined tolerance range. Further, in the wire electric discharge machine, the core fixing state determining means determines whether the core is fixed from the image, depending on whether the adhesion and deposit of the machining debris produced by the electric discharge machining are present in the machining groove. Further, in the wire electric discharge machine, the core fixing state determining means determines whether the core is fixed from the image, by a difference in states of the surface light between the core and the workpiece.
In the wire electric discharge machine, the core fixing state determining means determines whether the core is fixed, from the image obtained by the core image acquiring means, at a stage in which machining is completed to the end point of a machining path for cutting the core or at a stage in which fixing machining of the core fixing function is completed.
In the wire electric discharge machine, the core image acquiring means is movable by mounting the core image acquiring means on a robot.
The invention allows safe continuous machining since machining proceeds by checking the fixing of the core. Further, by the invention, when the core is dropped without being fixed, since machining is stopped, it is possible to prevent breakage of a nozzle and a wire guide unit.
Aforementioned and other objects and features of the invention will become apparent from the following description of embodiments thereof with reference to the accompanying drawings. In the drawings:
Hereinafter, an embodiment of the invention will be described in conjunction with the accompanying drawings.
The invention is provided with a checking means for checking that the core is fixed to the workpiece, and as the checking means, a core image acquiring means such as a visual sensor or an image pickup device is included.
The invention determines the fixed state of the core based on the image acquired in the core image acquiring means 1. As a determining method, there are methods of determining whether a machining groove width is constant, whether there are adhesion and deposition (fixing portion) of the machining debris in the machining groove, or whether there is a difference in the reflection statuses of light of the surface between the core and the workpiece.
1) A core fixing state determining method depending on whether the machining groove width is constant.
The machining groove width produced by the wire electric discharge machining is substantially constant in accordance with the wire diameter, and falls within a predetermined permissible range. Therefore, as long as the core 6 is fixed by the core fixing function even after the cutting of the core is completed, the image acquired by the core image acquiring means 1 becomes an image in which the width of the machining groove 7 is kept constant as illustrated in
2) A core fixing state determining method depending on whether there is a fixing portion in the machining groove.
The core fixing function is intended to fix the core, by attaching and depositing the machining debris in the machining groove. Therefore, in the image acquired in the core image acquiring means 1, when the core 6 is connected and fixed to the workpiece 3, as illustrated in
3) A core fixing state determining method according to a difference in the reflection status of light of surfaces between the core and the workpiece.
If the core 6 is fixed to the workpiece 3, as illustrated in
Next, as illustrated in
The machining program for the machining is as follows.
O2000;
S1D1; . . . 1st machining condition, offset setting
M98P200; . . . call sub-program 1
GOOX-45.0;
M00; . . . program stop
S2D2; . . . 2nd machining condition, offset setting M98P230; . . . call sub-program 3
GOOX-45.0;
S3D3; . . . 3rd machining condition, offset setting
M98P230; . . . call sub-program 3
M30;
O200;
M60; . . . wire connection
M98P220; . . . call sub-program 2 (machining of the core of (1))
M50; wire cutting
M123; . . . core fixing state determination
GOOX15.0;
M60; . . . wire connection
M98P220; . . . call sub-program 2 (machining of the core of (2))
M50; . . . wire cutting
M123; . . . core fixing state determination
GOOX15.0;
M60; . . . wire connection
M98P220; . . . call sub-program 2 (machining of the core of (3))
M50; . . . wire cutting
M123; . . . core fixing state determination
GOOX15.0;
M60; . . . wire connection
M98P220; . . . call sub-program 2 (machining of the core of (4))
M50; . . . wire cutting
M123; . . . core fixing state determination
M99;
O220;
G92X0.0Y0.0; . . . coordinate system setting
G91G01G42Y-4.0; . . . cutting feed (electric discharge machining section)
X-5.0; . . . cutting feed (electric discharge machining section)
Y8.0; . . . cutting feed (electric discharge machining section)
X10.0; . . . cutting feed (electric discharge machining section)
Y-8.0; . . . cutting feed (electric discharge machining section)
X-5.0; . . . cutting feed (electric discharge machining section)
G40Y4.0; . . . cutting feed (electric discharge machining section)
M99;
O230;
M60; . . . wire connection
M98P220; . . . call sub-program 2 (machining of the core of (1))
M50; . . . wire cutting
GOOX15.0;
M60; . . . wire connection
M98P220; . . . call sub-program 2 (machining of the core of (2))
M50; . . . wire cutting
GOOX15.0;
M60; . . . wire connection
M98P220; . . . call sub-program 2 (machining of the core of (3))
M50; . . . wire cutting
GOOX15.0;
M60; . . . wire connection
M98P220; . . . call sub-program 2 (machining of the core of (4))
M50; . . . wire cutting
M99;
In the main program (O2000), after the machining conditions of the 1st cut are set in the “S1D1”, sub-program 1 (O200) is read in “M98P200”. In the sub-program 1 (O200), the wire connection is commanded in “M60”, and the sub-program 2 (0220) is called in “M98P220”. In the sub-program 2 (0220), the coordinate system with the position of the machining start hole h of the core 6 of the current position (1) defined as origin is set in “G92X0.0Y0.0”. In the command of “G91G01G42Y-4.0”, by command of cutting feed (G01) of the incremental (G91) and the wire offset right (G42), the core moves by 4 in the Y-axis negative direction, next, moves by 5 in the X-axis negative direction, moves by 8 in the Y-axis positive direction, moves by 10 in the X-axis positive direction, moves by 8 in the Y-axis negative direction, and moves by 5 in the X-axis negative direction, and the wire offset is cancelled (G40), the core moves by 4 in the Y-axis positive direction, the core moves by Y−4, X−5, Y+8, X+10, Y−8, X−5 and Y+4 from the machining start hole h of the core 6 of (1), the electric discharge machining is performed while fixing the core, and the core returns to the position of the machining start hole h.
Further, by the command of “M99”, the program returns to the sub-program 1 (O200) from the sub-program 2 (0220), the wire is cut in the “M50” of the sub-program 1 (O200), by the command of “M123”, the determination process of the core fixing state (this process will be described later) is performed, and when the core is determined to be fixed, by the command “GOOX15.0”, the core is positioned by being moved by 15 in the X-axis direction.
That is, the core is positioned at the position of the machining start hole h of the core 6 of (2), the same machining as in the machining of the core 6 of (1) is performed, and the machining of the core 6 of (2), (3) and (4) are sequentially performed. Further, the program returns to the main program (O2000) in “M99”, and in the main program (O2000), by the positioning command of “G00X-45.0”, the core is moved by 45 in the X-axis negative direction from the machining start hole h of the core 6 of (4) and is located at the position of the machining start hole h of the core 6 of (1), and the four cores 6 are machined as illustrated in
If the core fixing state determination command of “M123” is issued in the aforementioned machining program, the processor of the control device (not illustrated) of the wire electric discharge machine starts the process illustrated in
The process illustrated in
The control device of the wire electric discharge machine acquires the sent image data of the core (step S3), and by one of the aforementioned three methods (determination whether the machining groove width is constant, determination whether adhesion and deposition of the machining debris are present in the machining groove, and the determination depending on the reflection status of light on the surfaces of the core and the workpiece), it is determined whether the core is fixed (step S4).
When the core is determined to be fixed, the retreat command of the core image acquiring means 1 to the control device of the robot 10 is output (step S9), the core image acquiring means 1 is retreated to the retreated position by the robot 10, thereafter, the guide returns to the position before the retreat (step S10), the process of the M123 command is completed, the program returns to the original sub-program 1, and the program operation after the M123 command is resumed.
On the other hand, when the core is determined not to be fixed in step S4, a retreat command of the core image acquiring means 1 to the control device of the robot 10 is output (step S5), the core image acquiring means 1 is retreated to the retreat position, and thereafter, the upper guide returns to the position before retreat (step S6), and the program operation is stopped (step S7), the alarm display is performed (step S8), and the electric discharge machining is stopped and completed.
Further, although an example of commanding the core fixing state determination using the core fixing state determining code such as “M123” has been illustrated in the aforementioned embodiment, even without providing a dedicated M code, when using the core fixing function, the process similar to the aforementioned process of
Further, although the process illustrated in
As described above, in the embodiment, in the wire electric discharge machining performed while fixing the core using the core fixing function, since it is possible to check whether the core is fixed, the machining can be safely performed.
While exemplary embodiments of the invention have been described above, the invention is not limited to the example of the aforementioned embodiments, and the invention can be implemented in other embodiments by adding appropriate changes.
Number | Date | Country | Kind |
---|---|---|---|
2015-249428 | Dec 2015 | JP | national |