MACHINE TOOL
20170144262 ยท 2017-05-25
Inventors
Cpc classification
B08B3/024
PERFORMING OPERATIONS; TRANSPORTING
Y02P70/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B05B13/0431
PERFORMING OPERATIONS; TRANSPORTING
B23Q17/2452
PERFORMING OPERATIONS; TRANSPORTING
B23Q11/0891
PERFORMING OPERATIONS; TRANSPORTING
B08B17/025
PERFORMING OPERATIONS; TRANSPORTING
B23Q11/1076
PERFORMING OPERATIONS; TRANSPORTING
B08B9/00
PERFORMING OPERATIONS; TRANSPORTING
B05B13/0405
PERFORMING OPERATIONS; TRANSPORTING
B05B12/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23Q11/00
PERFORMING OPERATIONS; TRANSPORTING
B23Q17/24
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A machine tool has a cover that prevents chips generated by machining and cutting fluid from scattering around and a plurality of movable nozzles with liquid discharge directions thereof being movable so as to wash out chips that have adhered to or accumulated on an inner surface of the cover. The machine tool is capable of changing a discharge direction of each of the movable nozzles individually. The machine tool compares the state of the inside of the cover before start of machining with the state of the inside of the cover after chips are generated to determine an adhesion or accumulation state of chips. The machine tool thus calculates the liquid discharge direction to wash out chips from the movable nozzles based on a result of the determination.
Claims
1. A machine tool comprising: covers that cover a table on which a workpiece is placed and a machining area and prevents chips generated by machining and cutting fluid from scattering around; and a plurality of movable nozzles of which discharge directions of liquid for washing out chips that have adhered to or accumulated on an inner surface of each of the covers are adjustable, wherein a discharge direction of each of the plurality of movable nozzles is capable of being changed individually, the machine tool further comprising: a detection device that detects a state of the inside of the cover; a pre-machining storage unit in which a state of the inside of the cover before start of machining, which is detected by the detection device, is stored; a post-machining storage unit in which a state of the inside of the cover after chips are generated by the machining is stored; a chip state determination unit that compares the state of the inside of the cover before start of machining, which is stored in the pre-machining storage unit, with the state of the inside of the cover after chips are generated by the machining, which is stored in the post-machining storage unit, to determine an adhesion or accumulation state of chips; and a discharge direction calculation unit that calculates, based on a result of the determination made by the chip state determination unit, the discharge direction of the liquid from the movable nozzles that washes out chips.
2. The machine tool according to claim 1, wherein the detection device is an imaging device.
3. The machine tool according to claim 1, wherein the detection device is a heat detection device.
4. The machine tool according to claim 2, further comprising: a moving unit to which the detection device is provided, wherein the moving unit is configured to moves the detection device into the inside of the cover from the outside of the cover during detection performed by the detection device.
5. The machine tool according to claim 4, wherein the moving unit is a robot.
6. The machine tool according to claim 1, wherein at least one of the movable nozzles is provided with a switching valve.
7. The machine tool according to claim 1, wherein driving of the movable nozzle is performed with a motor.
8. The machine tool according to claim 1, wherein driving of the movable nozzle is performed with a robot.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] These and other objects and features of the present invention will become apparent from the following description of embodiments with reference to the accompanying drawings in which:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0025] The overview configuration of a machine tool according to an embodiment of the present invention will be described with reference to
[0026] A machine tool 1 includes a table 5 movably installed with a saddle 6 and a spindle 4 attached to a spindle head 3 supported by a column 2, and the table 5 and the spindle 4 are installed on a bed 7. This table 5 is movably installed on the saddle 5, and a workpiece as a machining target is fixed to the table 5. A tool for machining the workpiece can be attached to the spindle 4.
[0027] The entire machining area, where workpiece machining is performed, of the machine tool 1 is covered by a cover 8 (side cover 8a, bottom cover 8b, and back cover 8c) that prevents chips generated by machining and cutting fluid from scattering around. Furthermore, on the machine tool 1, a pipe 11 is arranged from the outside of the cover 8 through the inside of the cover 8. On the pipe 11 inside the cover 8, a plurality of nozzles the discharge directions of which can be changed (hereinafter, such a nozzle is referred to as a movable nozzle) 12 are further attached. Liquid supplied from a tank 13 provided at the back surface of the machine tool 1 through the pipe 11 is discharged in the adjusted discharge direction from each of the movable nozzles 12. The liquid discharged from each of the movable nozzles 12 washes out chips 50 adhered to the inner surface of the cover 8 and chips 51 accumulated on the inner surface of the cover 8, the cover 8 being in the discharge direction of the corresponding movable nozzle 12. The chips 50 and 51 washed out by the liquid discharged from the movable nozzles 12 flow with the liquid in a chip recovery groove 10 formed by the bottom surface of the machine tool 1 and the bottom cover 8b to be discharged to the outside of the cover 8 through a chip discharge port 9 provided on the back cover 8c and collected by the tank 13 provided on the back surface of the machine tool 1. In the inside of the tank 13, from the liquid mixed with the chips, chips are separated using a filter, for example, to be reused.
[0028] In the machine tool 1, in addition to the above-described structure, a detection device 14 such as a camera for detecting the state of each position inside the cover 8 is installed.
[0029] In the machine tool 1, adjustment (change) of the discharge direction of each of the movable nozzles 12, liquid supply from the tank 13, a detection operation performed by the detection device 14, and other operations are controlled by a controller 20. This controller 20 includes, in addition to a functional means used for the general control of machining, a detection control unit 21, a pre-machining storage unit 22, a post-machining storage unit 23, a chip state determination unit 24, a discharge direction calculation unit 25, a movable nozzle control unit 26, and a tank control unit 27.
[0030] In the controller 20 illustrated in
[0031] Detection of the state of the inside of the cover 8 may be constantly performed while machining is performed and chips are generated, and may be performed intermittently. When the detection device is a visual sensor such as a camera, for example, data indicating the state of the inside of the cover 8 includes image data acquired by that visual sensor, and in the form of such image data, the shape of the inside of the cover 8 before start of machining can be stored in the data.
[0032] The detection device 14 does not have to be installed in the inside of the cover 8 all the time, and as illustrated in
[0033] The chip state determination unit 24 compares data indicating the shape of the inside of the cover 8 before machining starts, which has been stored in the pre-machining storage unit 22, with data indicating the shape of the inside of the cover 8 after machining is completed (after chips are generated), which has been stored in the post-machining storage unit 23, to determine a shape which has increased by an amount exceeding a predetermined shape error, as adhesion or accumulation of chips. When such adhesion or accumulation of chips have been determined, the chip state determination unit 24 calculates the position, the range, and the thickness of the adhesion or accumulation of chips in the inside of the cover 8 and records a result of the calculation in a memory (not illustrated).
[0034] The discharge direction calculation unit 25 selects at least one of the plurality of movable nozzles 12 (a movable nozzle 12 corresponding to the position of adhesion or accumulation of chips that has been determined) based on the position of the adhesion or accumulation of chips which has been determined by the chip state determination unit 24, and calculates the discharge direction thereof so that the discharge direction of the selected movable nozzle 12 is in the direction which allows the adhered or accumulated chips to be washed out to the outside of the cover 8 with liquid discharged from the movable nozzle 12.
[0035] Meanwhile, a memory (not illustrated) in the controller 20 stores therein in advance the installation position and liquid discharge range of each of the movable nozzles 12 installed in the cover 8. The discharge direction calculation unit 25 performs selection of a movable nozzle 12 and calculation of the discharge direction of the selected movable nozzle 12 (and the discharge direction of a movable nozzle 12 in the vicinity of a chip discharge path described later) based on the installation position and liquid discharge range of each of the movable nozzles 12 that are stored in the memory and the position of the adhered or accumulated chips that has been calculated by the chip state determination unit 24. It should be noted that the discharge direction calculation unit 25 may estimate by simulation, based on the position of the accumulated chips 51, the path through which the chips 51 are discharged to the outside of the cover 8 through the chip recovery groove 10 and select, as an adjustment target of liquid discharge direction, a plurality of movable nozzles 12 located in the vicinity of the estimated chip discharge path. In this manner, the chips 51 can be discharged to the outside of the cover 8 more effectively.
[0036] The movable nozzle control unit 26 performs switching control of the switching valve of the movable nozzle 12 selected by the discharge direction calculation unit 25 and control of adjusting the discharge direction of that movable nozzle 12 to the discharge direction calculated by the discharge direction calculation unit 25.
[0037] The tank control unit 27 controls liquid supply from the tank 13 to start liquid supply to the pipe 11, whereby liquid is discharged from the movable nozzle 12.
[0038]
[0039] The movable nozzle 12, as illustrated in
[0040] Furthermore, even when a driving means such as a motor is not provided on a movable part of the movable nozzle 12, as illustrated in
[0041]
[0042] As illustrated in
[0043]
[0044] As illustrated in
[0045] Although an embodiment of the present invention has been described above, the present invention is not limited to the example in the above-described embodiment and may be implemented in various aspects by adding appropriate modifications.
[0046] For example, in the above-described embodiment, the detection device 14 detects the shape of the inside of the cover 8 before start of machining and the shape of the inside of the cover 8 during machining or after completion of machining and compares the detected shapes with each other to determine adhesion or accumulation of chips. Alternatively, the fact that the brightness or the color gamut of an image of a part where adhesion or accumulation of chips occurs differs from the brightness or the color gamut of an image of any normal part of the inside of the cover 8 may be used. In this case, a template image that indicates the brightness and the color gamut of the inside of the cover 8 is stored in advance, and the template image is compared with data indicating the shape of the inside of the cover 8 during machining or after completion of machining to find a part where the brightness difference is equal to or higher than a preset threshold. The part thus found may be determined as a part that requires washing.
[0047] Alternatively, a specific mark or pattern may be provided to the inside of the cover 8 so that a part where the mark or the pattern has become unrecognizable after machining may be determined as a part that requires washing.
[0048] As the detection device 14 in the above-described embodiment, a distance sensor may be used instead of a visual sensor such as a camera. The distance from each of the distance sensors in various parts in the inside of the cover 8 in a state in which no accumulation of chips occurs may be compared with the distance from each of the distance sensors in the corresponding parts in the inside of the cover 8 after completion of machining, and a part where a difference therebetween (a value corresponding to the thickness of adhesion or accumulation of chips) becomes equal to or higher than a preset threshold may be determined as a part where chips have accumulated so that these chips have to be washed out.
[0049] As the detection device 14 in the above-described embodiment, heat detection means such as thermography may be used instead of a visual sensor such as a camera. Heat distribution in the inside of the cover 8 in a state in which there are no chips may be stored in advance before start of machining, and after chips are generated due to machining, heat distribution in the inside of the cover 8 may be detected. Then, the heat distribution thus detected may be compared with the heat distribution thus stored in advance, thereby determining a position where chips with heat generated by machining have adhered to or accumulated on.
[0050] Furthermore, when it is detected that chips have adhered to or accumulated on over a wide range, the movable nozzles 12 may be oscillated under the control of the movable nozzle control unit 26. When it is detected that chips have adhered to or accumulated on a plurality of locations, the discharge direction calculation unit 25 may select a plurality of movable nozzles 12, each of which is in the vicinity of chips that have adhered or accumulated, as a target for liquid discharge. The discharge direction of each of the selected movable nozzles 12 may be calculated such that each movable nozzle 12 is moved to be oriented in the calculated discharge direction thereof, under the control of the movable nozzle control unit 26.
[0051] When it is determined that no adhesion or accumulation of chips occurs, the movable nozzle control unit 26 may shut off the switching valve of the movable nozzles 12 or the tank control unit 27 may stop supplying liquid from the tank 13, so that liquid discharge from the movable nozzle 12 is stopped. Furthermore, as in the above-described embodiment, when a switching valve is provided on each of the movable nozzles 12, the switching valve of the movable nozzles 12 other than a selected movable nozzle 12 may be shut off, so that the liquid amount discharged from the selected movable nozzle 12 is increased, whereby the efficiency of washing out the chips can be improved. It should be noted that a switching valve may be provided not only on each of the movable nozzles 12, but may be provided on the pipe 11.
[0052] Furthermore, as illustrated in