The invention relates to an automatic machine tool, particularly for producing dental prostheses of an exact three-dimensional shape, as per the type of the independent claim 1.
An automatic machine tool for producing dental prostheses, particularly crowns, abutments and/or politics of an exact three-dimensional shape, is already known from EP 1 1.06 146 A1, In this machine tool, a bearing for the workpiece and/or for the machining unit is designed, which serves as a motion unit with three translational axes in x, y and z direction. In this machine, automatic workpiece change is not provided. The machining is carried out in horizontal arrangement of the workpiece, wherein the machining is carried out along the three spatial directions x, y, z together with a rotation around an axis. The machine took does not comprise any automatic workpiece feed and/or tool feed. The problem with this machine tool is that the machining is carried out in horizontal direction so that the removal of the chips or of the milling waste produced during the machining process has to be taken care of, to ensure that the milling process is not disturbed and. that the result does not possibly even become unusable.
Furthermore, a machining in three spatial directions and only one rotational direction only allows for a limited formation of three-dimensional surfaces.
In contrast, the automatic machine tool as per the invention has the advantage that is comprises a machining unit with a machining tool that is displaceable in three spatial directions, and has a cardanic workpiece holder receptacle that can be pivoted around two axes, which allows for the formation of any three-dimensional surfaces, such as required for dental prostheses. Moreover, owing to the workpiece holder receptacle being arranged in vertical direction and the machining of the workpiece in vertical arrangement, smooth machining of the workpiece is ensured, with chips, milling waste and the like falling down, and, in particular, there is no need to worry about chips, milling waste or the like to disturb the high-precision machining result.
Other advantages and characteristics of the invention are the object of the dependent claims referencing claim 1.
The drive into the three spatial directions is thus carried out preferably via appropriate servo/stepper motors or actuators. The cardanic workpiece holder receptacle that can be pivoted around two axes, is formed in one direction by a torque motor that can generate high dynamics and conveys the rotation around the first axis, and by a lever mechanism with a motor-driven spindle, which conveys the rotation around a second axis arranged vertically to the first axis. The drive as per the invention allows a workpiece to pivot by 180°, in particular, so that it can be machined from the front side in a first work step and from the back side in a second work step.
An advantageous further development provides for arranging a suction device underneath the workpiece holder receptacle, which generates a suction air current that is directed away from the workpiece to be machined and serves for removing any chips and dusts or similar occurring during the machining process.
In this way, a particularly effective removal of chips, milling waste or similar and at the same time a cooling of the workpiece is achieved by the suction air current flowing in vertical direction.
According to one advantageous embodiment, the workpiece feed unit comprises a workpiece holder magazine and a workpiece holder gripping device which takes a workpiece holder out of the workpiece holder magazine and feeds it to the workpiece holder receptacle. In this way, a whole number of workpieces can be machined in immediate succession in an automated manlier.
Herein, advantageously, it is provided for the workpiece holder to be of a basically circular ring shape, to be able to receive the circular disc-shaped workpieces, also called “blanks”, made of, for instance, cobalt chrome, PMMA (polymethylmethacrylate), nanocomposite, zirconia, and other materials available in sintered form. Herein, the workpiece holder comprises a first ring element to receive the circular disc-shaped workpieces, and a second ring element that can be attached to the first ring element, which slightly extends outside or overlaps the circular disc-shaped workpiece in the border area, and which features mushroom-shaped gripping elements on its front side, with which the workpiece holder gripping device engages.
Herein, the two ring elements can be fastened to each other via, for instance, screw connections or also via, for instance, bayonet caps. In this way, very quick workpiece change can be performed. The mushroom-shaped gripping elements on the top side allow for very good and process capable handling by the workpiece holder gripping device.
It is of particular advantage that the workpiece holder receptacle is composed of a planar support and a three-point holder with three pins engaging each time with the corresponding openings on the workpiece holder, of which one is axially movable and can be acted upon with a preset force. This three-point holder allows for very good repeatable positioning of the workpiece holder, with at the same time big holding forces applied in the machining area.
The machine tool, advantageously, is also provided with a tool changer and a tool feed unit for insertion of the tool each time required for machining, particularly milling tools.
It is of particular advantage that the tool feed unit comprises a basically fan-shaped tool spring receptacle which can be pivoted, through rotation by preset angles, into the machining area for delivery of a tool to, for instance, the milling or machining spindle of the machining unit. The tool spring receptacle allows for spring-loaded reception of the tools, which is advantageous for the delivery of a tool to the machining unit, in particular, as in this way minor positional inaccuracies, for instance, can be evened out, and the tool can be pushed into the machining unit during tool change in a spring-loaded manner and with the force defined.
The fan-shaped tool spring receptacle, that is, the shape of the tool spring receptacle being of the type of a fan, as a semi-circular segment of a circle, for instance, allows in a highly advantageous fashion the storing of the tool spring receptacle above the machining area and above the machining unit. The delivery of a tool to the machining unit is performed through a simple rotation and thus pivoting of the fan-shaped tool receptacle into the machining area. In this way, tool changes can be performed very quickly, and no additional traversings for the machine tool are required to change tools.
The fan-shaped tool spring receptacle is preferably a circle segment-shaped steel sheet with radial cuts to form the spring receptacles. By means of these cuts, the spring-loaded formation of the segments is carried out in a way easy to perform.
The operating and control unit of the machine tool is formed by a mobile computer that can be attached to the machine tool, which communicates with the control electronics of the machine tool via an interface. This computer can be, for instance, a notebook computer, such as an iPad, but it can also be a mobile telephone with an appropriate touch-screen operating interface, an iPod or similar. A touch screen is highly advantageous for the operating interface, which allows for operating via a touch-sensitive screen. The interface can be a WLAN, network or USB interface.
It is of particular advantage to link the operating device to the machine control as a browser application. Herein, the machine control acts as a web server allowing for the communication between the machine and the iPad as an HTTP client. This is why it is possible to employ basically any data communication devices, such as iPads, iPods, iPhones, notebooks, etc.
Examples of embodiments of the invention are represented in the drawings and explained in more detail in the following description.
Are disclosed in:
An automatic machine tool, represented in
The machining unit 200 comprises a milling spindle that is displaceable in three spatial directions x, y, z, with a machining tool 430. The displacement in the spatial directions x, y, z is carried out by servo/stepper motors or actuators (not represented).
Moreover, the machining unit 200 comprises a workpiece holder receptacle 210 which, gimbal-mounted, can be rotated around two axes: a first axis A1 extending basically in x direction, and a second axis A2 extending basically in y direction. The rotation around axis A1 is performed by means of a torque motor 250. This motor is capable of executing an adjustable and even big torque at high dynamics. The rotation into axis A2, aligned vertically to it, is performed by means of a lever mechanism composed of a spindle 260 which is motor-driven by a motor 261 and which produces a rotation around axis A2 through an appropriate assembly 265 consisting of a lever 263, a first bearing 267 and a second bearing 268 (
The workpiece feed unit 300 comprises a workpiece magazine 360 which can be, for example, a revolver magazine, as shown in
Moreover, the workpiece feed unit 300 comprises a workpiece holder gripping device 370 which grips the workpiece holders 320 and feeds them to the machining unit 200 automatically, to be fastened, for instance, at the workpiece holder receptacle 210.
As demonstrated in
To handle the workpiece holder 320, guide grooves 3110, 3111, 3112, 3113 and snap-in points 3221 and 3222 are arranged in the front side of ring 311. Grooves 3111 and 3113 serve as lead-in grooves of a workpiece holder 320 arranged in a drawer-like receptacle 3000 (
In
In this sense, the lead-in and lift-out grooves exercise some kind of track function in conjunction with the spring-loaded pressure pieces 3610, which are to support the process capability of the change process. The snap-in points 3221 and 3222 between the lead-in and lift-out grooves serve for secure arrest in the magazine 360.
Tool change is also performed automatically. To this end, a tool feed unit 400 is provided, together with a tool spring receptable 420. The tool spring receptacle 420 is composed of a fan-shaped, that is, a .circle segment-shaped steel sheet which comprises radial cuts 421 and in this way forms the spring receptacles 425, at the end of which tool holder receptacles 427 are arranged each time, in which the machining tools 430 are arranged.
By a rotary motion of the tool spring receptacle 420, the machining tools 430 are pivoted into the machining area (which in
Tool change is explained below in more detail with reference to
First, the tool spring receptacle 420 is in idle position (
Workpiece change is explained below in more detail with reference to
In the machining unit 200, the workpiece holder 320 is clamped in three points, as represented schematically in
The holder 520 comprises, for instance, a USB interface 530 and/or a wireless interface 540, for instance, a WLAN antenna or similar. Furthermore, it is provided with an inductive proximity switch 550. As soon as the mobile input and operating device 515, for instance, the iPad in the receptacle 520 which is track-shaped and thus allows for secure fastening of the input device 510, has been fully inserted, an electrical connection is established with the USB or network interface 520, as well as a connection with the WLAN antenna 540. The inductive proximity switch 550 recognises that the iPad 510 is arranged in locked position, and releases in this respect the corresponding signal lines for the control of the machine tool. As long as the operating device in not inserted, it merely serves to display the status for security reasons but not for operations.
Number | Date | Country | Kind |
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10 2010 035 669.7 | Aug 2010 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE11/01653 | 8/29/2011 | WO | 00 | 5/1/2013 |