Stud welding gun set up teaching tool
10335885 ยท 2019-07-02
Assignee
Inventors
Cpc classification
Y10S901/42
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
B23K9/205
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A method and apparatus for teaching a programmed controlled robot at least one of two set up position coordinates by use of a tool having a first surface aligned with the end of a stud welding gun collet when the tool is mounted in the collet, a second surface on the tool spaced from the first surface by a predetermined set up distance. A probe carried by the stud welding engagable with the second surface on the tool to establish a predetermined set up distance. A third surface on the tool spaced from the first surface and engagable with a work piece to establish a minimum stud-welding gun set up dimension. The coordinates of the stud-welding gun when the third surface is engaged with the work piece are transmitted to a robot control program to establish the predetermined stud weld gun travel distance dimension.
Claims
1. A teaching tool for providing a dimensional set up of a stud-welding gun, the teaching tool comprising: a main body defining a first surface and a second surface; a shaft configured to be received within a collet of the stud-welding gun, the shaft being integrally formed as a one-piece component with the main body and extending a distance from the first surface of the main body; a first bore defined in a center of the main body and extending from a first end of the main body, opposite the shaft, and continuing through to an end of the shaft; a movable stem having a cylindrical shape and received in the first bore defined in the main body, the movable stem defining a second bore opposite from an end of the moveable stem defining a third surface; a biasing spring disposed in the first bore of the main body and in the second bore of the movable stem, the biasing spring being engaged with the movable stem to normally bias the movable stem in a direction opposite from the shaft; and an attachment pin to couple the movable stem to the main body, wherein a first distance between the first surface and the second surface defines a distance representative of a predetermined probe set up dimension, and a second distance between the first surface and the third surface defines a distance representative of a minimum weld set up dimension.
2. The teaching tool of claim 1, wherein the main body comprises a shoulder portion that defines the first surface.
3. The teaching tool according to claim 2, wherein the first surface of the shoulder portion contacts an end of the collet of the stud-welding gun in an assembled state.
4. The teaching tool of claim 2, wherein the shoulder portion transitions into the second surface.
5. The teaching tool of claim 1, wherein the movable stem defines a slot-like bore and the main body defines a cross bore, the slot-like bore and the cross bore cooperating to accept the attachment pin.
6. The teaching tool of claim 1, wherein the main body comprises cylindrical ring shape portion that transitions into an inverted frusto-conical portion, terminating in an end.
7. A teaching tool for providing a dimensional set up of a stud-welding gun, the teaching tool comprising: a main body comprising: a shoulder portion defining a first surface; a cylindrical ring portion defining a second surface and transitioning into an inverted frusto-conical portion terminating at an end of the main body; a shaft configured to be received within a collet of the stud-welding gun, the shaft being integrally formed as a one-piece component with the main body and extending a distance from the first surface of the shoulder portion to a shaft end; and a first bore defined in the end of the main body and extending through to the shaft end; a movable stem received in the first bore defined in the end of the main body, the movable stem defining a second bore configured to retain a biasing means to bias the movable stem in a direction opposite from the shaft, an end of the movable stem defining a third surface; and an attachment pin to couple the movable stem to the main body, wherein a first distance between the first surface and the second surface defines a distance representative of a predetermined probe set up dimension, and a second distance between the first surface and the third surface defines a distance representative of a minimum weld set up dimension.
8. The teaching tool of claim 7, wherein the movable stem defines a slot-like bore and the main body defines a cross bore, the slot-like bore and the cross bore cooperating to accept the attachment pin.
9. The teaching tool of claim 8, wherein the cross bore is defined in the inverted frusto-conical portion.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The various features, advantages and other uses of the present stud welding gun set up teaching tool will become more apparent by referring to the following detailed description and drawing in which:
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DETAILED DESCRIPTION
(9) Referring now to
(10) The robot 20, when executing its end effector position control program, moves the stud-welding gun 24 between one or more successive positions relative to a work piece 26 in
(11) As shown in
(12) In a stud-welding operation, the stud-welding gun 22 advances from the pre-welding position shown in
(13) By way of example, a dimension 43 is selected by adding the stud length 41 of approximately 30 mm, for example, plus an additional 10 mm for a maximum dimension 43 of 40 mm.
(14)
(15) It is necessary to teach or program the robot 20 with the dimensions 43 and 46. The teaching tool 10 shown in
(16) The teaching tool 10 includes a multi-piece assembly of a main body 50, a shaft-like stem 52 and an attachment pin 54. The main body 50, which is formed as a one-piece, integral member of a suitable dimensionally accurate material, such as metal, stainless steel, etc., includes a shaft 56 extending from one end 58 to a shoulder 59 defining a first surface 60. The shoulder 59 has a larger outer diameter than the diameter of the shaft 56. The shoulder 59 transitions into a larger second surface 62. By way of example only, the shaft 56, the shoulder 60, and the second surface 62 have circular cross sections. It will be understood that other cross sectional shapes may also be employed for these elements of the main body 50.
(17) The second surface 62 forms one end of an cylindrical ring 64 which transitions into an inverted frusto-conical portion 66 terminating in an end 68. A bore 70 extends from the end 68 of the main body 50 at a first diameter 72 and transitions into a smaller diameter bore 74 terminating in an end adjacent the first end 58 of the shaft 56. A cross bore 80 is formed in the frusto-conical surface 66 of the main body 50 and sized to removably receive the attachment pin 54.
(18) The stem 52 has a generally cylindrical shape extending from a first end 82 through a cylindrical shaft portion 84 of a first diameter to a shoulder 86. The shoulder 86 transitions into a second diameter portion 88 of the stem 52 which extends to a second end 90. A slot like bore 92 is formed in the second diameter portion 88 of the stem 52.
(19) A biasing means 94, shown by way of example as being in the form of a coil spring, is mounted in a bore 96 extending from the first end 82 of the stem 52 to an opposite closed end 98.
(20) In assembling the teaching tool 10, the biasing means or coil spring 94 is inserted into the bore 96 of the stem 52 before the stem 52 is urged into and through the aligned bores 72 and 74 in the body 50. The shoulder 86 on the stem 52 is engageable with the a light shoulder 100 formed in the bore 70 and the body 50 at the transition of the first diameter portion 72 to the second diameter portion 74 of the bore 70 and acts as a travel limit in one direction for the stem 52.
(21) The attachment pin 54 is then inserted through one end of the bore 80 and through the bore 92 in the stem 52 to attach the stem 52 to the body 50, with the second end 90 of the stem 52 biased outward to a normal position shown in
(22) The teaching tool 10 is inserted in a removable friction fit through the open end 38 of the collet 30 until the first surface 60 on the main body 50 engages the end 38 of the collet 30.
(23) The probe 42 may then be adjusted, as shown in
(24) At the same time, the distance shown by dimensional reference number 112 in
(25) With the teaching tool 10 mounted in the end of the collet 30, as described above, the probe 42 on the stud welding gun 22 can be manually adjusted so that tip 44 of the probe 42 engages the second surface 62 of the teaching tool 10 to establish the predetermined empty collet safety distance 46. The end effector 22 of the robot 22 can then be advanced toward the work piece 26 until the second end 90 of the teaching tool 10 engages the surface of the work piece 26. This establishes the minimum stud dimensional clearance shown by dimension 43. The coordinates of this position of the robot end effector 22 are then stored in the memory of the robot 20 to establish the advance position of the stud welding gun 24 during each stud welding operation.