Numerical control device of machine tool
10444727 ยท 2019-10-15
Assignee
Inventors
Cpc classification
G05B19/182
PHYSICS
International classification
Abstract
An object is to provide the numerical control device of a machine tool which can achieve both a reduction in heat generation and stability in heavy cutting. A numerical control device includes a command transmission portion which transmits a speed command value and a magnetic flux command value to the spindle control portion of a machine tool and a storage portion which stores magnetic flux amounts corresponding to tools that may be used in the machine tool. The numerical control device also includes a tool detection portion which detects a tool selected in the machine tool and a magnetic flux amount setting portion which commands the command transmission portion to read, from the storage portion, a magnetic flux amount corresponding to the tool detected by the tool detection portion and to output the magnetic flux amount to the spindle control portion of the machine tool.
Claims
1. A numerical control device of a machine tool which controls the machine tool including a spindle control portion for driving a spindle motor, the numerical control device comprising: a command transmitter to transmit a speed command value and a magnetic flux command value to the spindle control portion; a memory to store magnetic flux amounts corresponding to each of a plurality of drilling tools that may be used in the machine tool; a tool detector to detect a drilling tool selected in the machine tool; and a magnetic flux amount setter that commands the command transmitter to read, from the memory, a magnetic flux amount corresponding to the drilling tool detected by the tool detector and to output the magnetic flux amount to the spindle control portion, wherein the larger the diameter of the drilling tool detected by the tool detector is, the larger the magnetic flux amount corresponding to the drilling tool is.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
DETAILED DESCRIPTION OF THE INVENTION
(3) A first embodiment of the present invention will be described below with reference to drawings.
First Embodiment
(4)
(5) As shown in
(6) As the spindle motor 12, an induction motor is used. In a case where as described above, the induction motor is used as the spindle motor 12, as described previously, it is likely that when in order for heat generation to be reduced, the magnetic flux of the induction motor is reduced at the time of light load, stability in heavy cutting is not provided.
(7) Hence, in order to prevent the occurrence of such inconvenience, as shown in
(8) The command transmission portion 21 transmits a speed command value and a magnetic flux amount command value to the spindle control portion 11 of the machine tool 10.
(9) The storage portion 22 is incorporated in the numerical control device 20, and stores magnetic flux amounts corresponding to tools T which may be used in the machine tool 10.
(10) The tool detection portion 23 detects, among the tools T which may be used in the machine tool 10, the tool T which is selected in the machine tool 10. A specific method thereof will be described later.
(11) The magnetic flux amount setting portion 24 reads, from the storage portion 22, the magnetic flux amount corresponding to the tool T detected by the tool detection portion 23, and commands the command transmission portion 21 to output the magnetic flux amount to the spindle control portion 11 of the machine tool 10.
(12) Then, the operation of the numerical control system 1 will be described with reference to
(13) In step S1, the tool detection portion 23 detects, among the tools T which may be used in the machine tool 10, the tool T which is selected in the machine tool 10. Specifically, the tool detection portion 23 reads a tool number from the machining program with reference to the machining program executed in the machine tool 10, and detects, as the selected tool, the tool T corresponding to the tool number.
(14) In step S2, the magnetic flux amount setting portion 24 reads, from the storage portion 22, the magnetic flux amount corresponding to the tool T detected by the tool detection portion 23.
(15) In step S3, the magnetic flux amount setting portion 24 commands the command transmission portion 21 to output the magnetic flux amount to the spindle control portion 11 of the machine tool 10. The command transmission portion 21 receives the command so as to output the magnetic flux amount to the spindle control portion 11 of the machine tool 10.
(16) As described above, although the maximum cutting load differs depending on the type, the size and the like of the tool T, in the numerical control system 1, a magnetic flux (excitation current) command is changed according to the tool T being selected (when the tool T which may perform heavy cutting is selected, the magnetic flux is previously increased), and thus in the numerical control device 20 of the machine tool, it is possible to achieve both a reduction in heat generation and stability in heavy cutting.
(17) In particular, as compared with a case where the surface of the work W is cut away with a milling tool T which is used in milling or the like, in a drilling tool T which is used in a drilling application, a contact area at the start of contact with the work W is large. Hence, a load is rapidly increased, and thus the speed of the spindle 14 is often lowered or stopped, with the result that the necessity to increase the magnetic flux amount is high. Therefore, in the drilling tool T described above, the present invention is useful.
(18) Basically, when the same machining is performed with the same type of tool T, as the diameter of the tool T is increased, the load is increased, so that the magnetic flux amount is preferably increased. Therefore, even in this case, the present invention is useful.
OTHER EMBODIMENTS
(19) Although the embodiment of the present invention is described above, the present invention is not limited to the embodiment described above. With regard to the effects described in the present embodiment, the most preferred effects produced from the present invention are merely listed, and the effects of the present invention are not limited to the effects described in the present embodiment.
(20) For example, in the description of the first embodiment discussed above, when the tool detection portion 23 of the numerical control device 20 detects the tool T which is selected in the machine tool 10, the tool detection portion 23 detects the tool T based on the tool number in the machining program. However, the method of detecting the tool T is not particularly limited. For example, a configuration may be adopted in which barcodes are attached to all of the tools T, in which the barcodes are read with a barcode scanner (barcode reader) and in which thus the tools T are detected. Alternatively, the tool T may be detected by reading the tool T itself with an image sensor.
(21) Although in the first embodiment discussed above, the case where the storage portion 22 is incorporated in the numerical control device 20 is described, the storage portion 22 does not necessarily need to be incorporated in the numerical control device 20. For example, a necessary magnetic flux amount may be acquired through a network from the storage portion 22 which is provided on a cloud.
EXPLANATION OF REFERENCE NUMERALS
(22) 1 numerical control system 10 machine tool 11 spindle control portion 12 spindle motor 13 torque transmission device 14 spindle 20 numerical control device 21 command transmission portion (command transmission means) 22 storage portion (storage means) 23 tool detection portion (tool detection means) 24 magnetic flux amount setting portion (magnetic flux amount setting means) T tool W work