NUMERICAL CONTROLLER
20170153623 ยท 2017-06-01
Assignee
Inventors
Cpc classification
B23B13/00
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49996
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
Y10T29/4981
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
Y10T29/5107
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
Y10T408/172
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
Y10T82/21
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
G05B19/402
PHYSICS
Y10T82/25
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
International classification
Abstract
A numerical controller according to the present invention includes: a turning condition designation unit that designates a machining condition of turning; a nicking condition designation unit that designates a machining condition of nicking; a fixed cycle instruction analysis unit that generates an instruction sequence of a turning cycle operation based on the turning machining condition; and a nicking operation instruction generation unit that generates an instruction sequence of a nicking cycle operation based on the turning machining condition and the nicking machining condition. The numerical controller executes the instruction sequence of the nicking cycle operation before executing the instruction sequence of the turning cycle operation.
Claims
1. A numerical controller that controls a machine which performs turning on a workpiece based on a program, the numerical controller comprising: a turning condition designation unit that designates a machining condition of turning; a nicking condition designation unit that designates a machining condition of nicking; a fixed cycle instruction analysis unit that generates an instruction sequence of a turning cycle operation based on the turning machining condition; and a nicking operation instruction generation unit that generates an instruction sequence of a nicking cycle operation based on the turning machining condition and the nicking machining condition, wherein the instruction sequence of the nicking cycle operation is executed prior to execution of the instruction sequence of the turning cycle operation.
2. The numerical controller according to claim 1, wherein the turning condition designation unit designates the turning machining condition according to an instruction included in the program.
3. The numerical controller according to claim 1, wherein the turning condition designation unit designates the turning machining condition according to a parameter.
4. The numerical controller according to claim 1, wherein the turning condition designation unit designates the nicking machining condition according to an instruction included in the program.
5. The numerical controller according to claim 1, wherein the turning condition designation unit designates the nicking machining condition according to a parameter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The above-described and other objects and characteristics of the present invention are made apparent in the following description of an embodiment with reference to the appended drawings. Of these drawings:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0027] Hereinafter, an embodiment of the present invention will be described with reference to the drawings.
[0028] In a numerical controller according to the embodiment of the present invention, a nicking operation is realized by introducing a fixed cycle instruction of nicking as one of a fixed cycle instruction. The nicking fixed cycle instruction according to the present embodiment is used as an instruction to assist a fixed cycle instruction of turning.
[0029]
[0030] On the other hand,
[0031] Hereinafter, a description will be given regarding a specific configuration of the numerical controller that executes the above-described nicking fixed cycle instruction.
[0032]
[0033] The instruction analysis unit 10 reads out the program instruction 20 from the program or the like stored in the memory (not illustrated). Further, when the read-out instruction is a feed instruction or the like that is normally used, the instruction analysis unit 10 analyzes the read-out instruction, creates movement instruction data to instruct movement of each axis based on a result of the analysis, and outputs this data to the interpolation unit 11, and further, creates rotation instruction data of the spindle and outputs this data to the spindle control unit 13. In addition, when the read-out instruction is the fixed cycle instruction such as a turning instruction, the instruction analysis unit 10 instructs the fixed cycle instruction analysis unit 14 to analyze the fixed cycle instruction, and thereafter, sequentially analyzes an instruction sequence output from the fixed cycle instruction analysis unit 14, creates movement instruction data to instruct movement of each axis based on a result of the analysis, and outputs this data to the interpolation unit 11, and further, creates rotation instruction data of the spindle and outputs this data to the spindle control unit 13.
[0034] The interpolation unit 11 generates interpolation data obtained by performing interpolation calculation of a point on an instruction path, which is instructed based on the movement instruction data acquired from the instruction analysis unit, with an interpolation cycle. In addition, acceleration/deceleration of the interpolation data is performed after the interpolation to calculate speed of each drive axis for each interpolation cycle, and result data thereof is output to the servo control unit 12.
[0035] The servo control unit 12 controls a servo motor 2 that controls each axis serving as a control target based on the output of the interpolation unit 11. In addition, the spindle control unit 13 controls a spindle motor 3 based on the rotation instruction data from the instruction analysis unit 10.
[0036] The fixed cycle instruction analysis unit 14 analyzes a fixed cycle instruction based on an analysis instruction of the fixed cycle instruction from the instruction analysis unit 10, creates the instruction sequence of the cycle operation instructed according to the fixed cycle instruction based on a result of the analysis, and outputs the created instruction sequence of the cycle operation to the instruction analysis unit 10. The instruction sequence of the cycle operation created by the fixed cycle instruction analysis unit 14 includes a series of a fast feed instruction and a cutting feed instruction to instruct fast feed and cutting feed operations of the tool illustrated in
[0037] The fixed cycle instruction analysis unit 14 turns on the nicking mode and stores a machining condition, instructed by a nicking fixed cycle instruction, in the memory (not illustrated) when a fixed cycle instruction, instructed to perform analysis by the instruction analysis unit 10, is the nicking fixed cycle instruction to turn on the nicking mode. On the other hand, the fixed cycle instruction analysis unit 14 switches off the nicking mode when a fixed cycle instruction, instructed to perform analysis by the instruction analysis unit 10, is a nicking fixed cycle instruction to turn off the nicking mode.
[0038] When a fixed cycle instruction, instructed to perform analysis by the instruction analysis unit 10, is a turning fixed cycle instruction, the fixed cycle instruction analysis unit 14 determines whether the nicking mode is the on-state, analyzes the turning fixed cycle instruction if the nicking mode is in the off-state, creates an instruction sequence of a cycle operation instructed according to the turning fixed cycle instruction based on a result of the analysis, and outputs the created instruction sequence of the cycle operation to the instruction analysis unit 10. In addition, the fixed cycle instruction analysis unit 14 instructs the nicking operation instruction generation unit 15 to generate an instruction sequence of a nicking operation based on a machining condition stored in the memory (not illustrated) and a machining condition instructed according to the turning fixed cycle instruction if the nicking mode is in the on-state. Further, the fixed cycle instruction analysis unit 14 outputs the nicking operation instruction sequence output from the nicking operation instruction generation unit 15 to the instruction analysis unit 10, thereafter, analyzes the turning fixed cycle instruction, creates an instruction sequence of a cycle operation instructed according to the turning fixed cycle instruction based on a result of the analysis, and outputs the created instruction sequence of the cycle operation to the instruction analysis unit 10.
[0039] The nicking operation instruction generation unit 15 generates the nicking operation instruction sequence based on the instruction from the fixed cycle instruction analysis unit 14.
[0040] First, it is determined whether a tool that is currently used is different from a tool (nicking tool) that is designated according to the nicking fixed cycle instruction during the nicking operation, and the tool is exchanged with the tool instructed according to the nicking fixed cycle instruction when determined to be different. Incidentally, the exchange of the tool is not performed when the exchange of the tool is not instructed according to the nicking fixed cycle instruction.
[0041] Next, it is allowed to machine a nick by performing cutting in a plurality of times until obtaining a depth of cut instructed by the program because a cutting load is great and the breakage of the tool is caused if the nick is machined at the same depth of cut as a depth of cut by turning although it is necessary to perform the feed at a higher speed than a feed speed of the regular turning in order to machine the nick illustrated in
[0042] In addition, a cut position in each cycle operation according to single-edged cutting and zigzag cutting illustrated in
[0043] Further, when the nicking cycle operation is completed, the tool is exchanged with the tool instructed according to the turning fixed cycle instruction.
[0044] The nicking operation instruction generation unit 15 generates the instruction sequence of the above-described operation, and outputs the instruction sequence to the fixed cycle instruction analysis unit 14.
[0045] A description will be given regarding an over view of the operation at the time of reading out the turning fixed cycle instruction in the numerical controller 1 of the present embodiment with reference to a flowchart of
[0046] [Step SA01] The instruction analysis unit 10 reads out the turning fixed cycle instruction from the program. The machining condition of the turning cycle operation is instructed in the turning fixed cycle instruction. The instruction analysis unit 10 instructs the fixed cycle instruction analysis unit 14 to analyze the turning fixed cycle instruction.
[0047] [Step SA02] The fixed cycle instruction analysis unit 14 determines whether the nicking mode is in the on-state. The process proceeds to Step SA03 in the on-state of the nicking mode, and proceeds to Step SA04 in the off-state of the nicking mode.
[0048] [Step SA03] The nicking operation instruction generation unit 15 generates the instruction sequence of the nicking cycle operation based on the turning machining condition instructed using the turning fixed cycle instruction and the nicking machining condition set in the nicking mode according to the instruction from the fixed cycle instruction analysis unit 14, and outputs the generated instruction sequence to the fixed cycle instruction analysis unit 14.
[0049] [Step SA04] The fixed cycle instruction analysis unit 14 generates the instruction sequence of the turning cycle operation based on the turning machining condition instructed using the turning fixed cycle instruction, and outputs the generated instruction sequence of the turning cycle operation to the instruction analysis unit 10 together with the instruction sequence of the nicking cycle operation generated by the nicking operation instruction generation unit 15 in Step SA03.
[0050] [Step SA05] The instruction analysis unit 10 analyzes the instruction sequence received from the fixed cycle instruction analysis unit 14, generates the movement instruction data and outputs the data to the interpolation unit 11, and further, generates the rotation instruction data of the spindle and outputs the data to the spindle control unit 13, thereby performing machining.
[0051] In the above-described numerical controller, it is also possible to apply the turning fixed cycle to a taper machining as illustrated in
[0052] In addition, the numerical controller 1 also provides a complex fixed cycle in which a finishing shape is instructed by a machining program to automatically set a tool path of rough cutting in the middle of machining and to perform the machining as illustrated in
[0053] The embodiment of the present invention has been described as above, but the present invention is not limited only to the above-described embodiment and can be implemented in various modes by applying suitable modifications.
[0054] Although the description has been given in the above-described embodiment with the example in which the instruction of the program is used as the turning condition designation unit to designate the turning machining condition and the nicking condition designation unit to designate the nicking machining condition, it may be configured such that these machining conditions are stored as parameters, and these parameters function as the turning condition designation unit to designate the turning machining condition and the nicking condition designation unit to designate the nicking machining condition when the instruction of the machining condition is omitted in the program, and the machining condition stored in the parameter is read out and used, for example.
[0055] In addition, it may be configured such that the nicking mode can be instructed using a signal instead of the nicking fixed cycle instruction. In this case, the nicking cycle operation is inserted prior to the turning cycle operation when the turning fixed cycle instruction is executed during an ON-state of the signal to instruct the nicking mode. Incidentally, the machining condition stored in the parameter is used as the nicking machining condition at this time.
[0056] Further, it is possible to shorten the cycle time by configuring the numerical controller to perform the nicking when the tool is fed in the negative Z direction and to perform the turning when the tool turns in the positive Z direction as illustrated in
[0057] The embodiment of the present invention has been described as above, but the present invention is not limited to the above-described embodiment and can be implemented in various modes by applying suitable modifications.