Rotating device for vehicle part test device
09987750 ยท 2018-06-05
Assignee
Inventors
Cpc classification
B25J11/00
PERFORMING OPERATIONS; TRANSPORTING
Y10S901/47
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
Y10S901/09
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
B25J11/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A vehicle part test device includes a first operating portion rotatably mounted to a robot for testing a vehicle part; a second operating portion rotatably mounted to the first operating portion; and a third operating portion rotatably mounted to the second operating portion and having a test portion which tests the vehicle part.
Claims
1. A vehicle part test device comprising: a first operating portion having a semicircular structure with a space therein and rotatably mounted to a robot for testing a vehicle part; a second operating portion having a circular structure with a space therein and rotatably mounted to the first operating portion; and a third operating portion having a semicircular structure with a space therein and rotatably mounted to the second operating portion and having a test portion which tests the vehicle part.
2. The vehicle part test device according to claim 1, wherein the first operating portion includes: a first motor having a coupling groove formed therein so that a portion of the robot is inserted thereinto and rotating the first operating portion; and a first frame mounted to the first motor to rotate integrally with the first motor.
3. The vehicle part test device according to claim 2, wherein the first operating portion is rotatable in both directions around a virtual vertical axis.
4. The vehicle part test device according to claim 2, wherein the second operating portion includes: second motors mounted to both ends of the first frame to rotate the second operating portion; and a second frame connected to the second motors to thereby be rotatable.
5. The vehicle part test device according to claim 4, wherein the second operating portion further includes connection gears connected to the second motors and connecting the first frame and the second frame to each other to allow the second frame to be rotatable from the first frame.
6. The vehicle part test device according to claim 4, wherein the second operating portion is rotatable in both directions around a virtual horizontal axis.
7. The vehicle part test device according to claim 4, wherein the third operating portion includes: third motors mounted to both ends of the second frame to rotate the third operating portion; and a third frame connected to the third motors to thereby be rotatable and having the test portion positioned at a portion adjacent to the vehicle part.
8. The vehicle part test device according to claim 7, wherein the third operating portion further includes connection gears connected to the third motors and connecting the second frame and the third frame to each other to allow the third frame to be rotatable from the second frame.
9. The vehicle part test device according to claim 7, wherein the third operating portion is rotatable in both directions around a virtual vertical axis.
10. The vehicle part test device according to claim 7, wherein the test portion includes: a fourth motor mounted to the third frame to rotate the test portion; a laser irradiating light to sense a position of the vehicle part; and a camera photographing the light of the laser irradiated to the vehicle part to confirm the position of the part and test the part.
11. The vehicle part test device according to claim 10, wherein the test portion is connected to the first operating portion, the second operating portion, and the third operating portion to rotate each of the first operating portion, the second operating portion, and the third operating portion.
12. The vehicle part test device according to claim 10, wherein the test portion further includes a connection gear connected to the fourth motor and connecting the test portion and the third frame to each other to allow the test portion to be rotatable from the third frame.
13. A vehicle part test device comprising: a first operating portion having a semicircular structure with a space therein and including a first motor rotatably mounted to a robot for testing a vehicle part for a vehicle and a first frame rotating integrally with the first motor; a second operating portion having a circular structure with a space therein, rotatably mounted to the first operating portion, and including second motors mounted to both ends of the first frame and a second frame connected to the second motors to thereby be rotatable; and a third operating portion having a semicircular structure with a space therein, rotatably mounted to the second operating portion, and including: third motors which is mounted to both ends of the second frame; and a third frame which is connected to the third motors to thereby be rotatable and which has a test portion positioned at a portion adjacent to the vehicle part to test the part, wherein the test portion is connected to the first operating portion, the second operating portion, and the third operating portion to rotate each of the first operating portion, the second operating portion, and the third operating portion, and wherein the test portion includes: a fourth motor mounted to the third frame to rotate the test portion; a laser irradiating light to sense a position of the vehicle part; and a camera photographing the light of the laser irradiated to the vehicle part to confirm the position of the vehicle part and test the vehicle part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objects, features and advantages of the present disclosure will be more apparent from the following detailed description taken in conjunction with the accompanying drawings.
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DETAILED DESCRIPTION
(12) Exemplary embodiments of the present inventive concept will be described in detail with reference to the accompanying drawings.
(13) Referring to
(14) As illustrated in
(15) The first operating portion 100 is rotatably connected to the second and third operating portions 200 and 300 to enable rotation in several directions when testing a vehicle part P, thereby controlling movement to a test position of the part P.
(16) In addition, the first operating portion 100 includes: a first motor 101 which enables rotation; and a first frame 102 which is connected to the first motor 101 to thereby rotate.
(17) The first motor 101 has a coupling groove 101H formed therein to allow a portion of the robot 10 to be inserted thereinto and coupled thereto, and generates a torque.
(18) The first frame 102 is mounted to the first motor 101 to rotate integrally with the first motor 101.
(19) In addition, the first frame 102 may have a semicircular structure having a space formed therein to allow a second frame 202 to rotate in the first frame 102.
(20) The first operating portion 100 is rotatable in both directions (clockwise direction and counterclockwise direction) around a virtual vertical axis.
(21) The second operating portion 200 is rotatably mounted to the first operating portion 100.
(22) In addition, the second operating portion 200 includes second motors 201 enabling rotation and the second frame 202 connected to the second motors 201 to thereby rotate.
(23) The second motors 201 are mounted to outer sides of both ends of the first frame 102 to generate a torque, thereby enabling the rotation of the second operating portion 200.
(24) The second frame 202 is connected to the second motors 201 to thereby rotate.
(25) In addition, the second frame 202 may have a circular structure having a space formed therein to allow a third frame 302 to rotate in the second frame 202, and may rotate in the first frame 102.
(26) An outer diameter of the second frame 202 is smaller than an inner diameter of the first frame 102, such that the second frame 202 may rotate in the first frame 102.
(27) The second operating portion 200 is rotatable in both directions (clockwise direction and counterclockwise direction) around a virtual horizontal axis perpendicular to the above-mentioned virtual vertical axis.
(28) The second operating portion 200 may have connection gears G1 connected to the second motors 201 and connecting the first frame 102 and the second frame 202 to each other to allow the second frame 202 to be rotatable from the first frame 102.
(29) The third operating portion 300 is rotatably mounted to the second operating portion 200 and includes the test portion 310 to test the vehicle part P.
(30) In addition, the third operating portion 300 includes: third motors 301 which enables rotation; and a third frame 302 which is connected to the third motors 301 to thereby rotate and has the test portion 310 mounted thereat.
(31) The third motors 301 are mounted to outer sides of both ends of the second frame 202 to generate a torque, thereby enabling the rotation of the third operating portion 300.
(32) The third frame 302 is connected to the third motors 301 to thereby rotate and includes the test portion 310 to test the vehicle part P.
(33) In addition, the third frame 302 may have a semicircular structure having a space formed therein to thereby be provided with the test portion 310 that is to perform the test of the vehicle part P, and may rotate in the second frame 202.
(34) An outer diameter of the third frame 302 is smaller than an inner diameter of the second frame 202, such that the third frame 302 may rotate in the second frame 202.
(35) The third operating portion 300 is rotatable in both directions (clockwise direction and counterclockwise direction) around another virtual horizontal axis perpendicular to the above-mentioned virtual horizontal vertical axis.
(36) The third operating portion 300 may include connection gears G2 connected to the third motors 301 and connecting the second frame 202 and the third frame 302 to each other to allow the third frame 302 to be rotatable from the second frame 202.
(37) That is, the third operating portion 300 may rotate in the counterclockwise direction, as illustrated in
(38) In addition, the third operating portion 300 and the second operating portion 200 may rotate in the counterclockwise direction, as illustrated in
(39) The third operating portion 300 and the first operating portion 100 may rotate in the clockwise direction and the second operating portion 200 may rotate in the counterclockwise direction, as illustrated in
(40) The test portion 310 included a fourth motor 311 for enabling rotation, a laser 312 sensing a position of the vehicle part P, and a camera 313 confirming the position of the vehicle part P and testing the vehicle part P.
(41) The fourth motor 311 is mounted at the third frame 302 to rotate the test portion 310.
(42) The laser 312 is formed at one end of a lower portion of the test portion 310 and irradiates light to allow the position of the vehicle part P to be sensed.
(43) The camera 313 photographs light of the laser 312 irradiated to the vehicle part P to confirm the position of the vehicle part P and test the vehicle part P.
(44) The test portion 310 is connected to the first operating portion 100, the second operating portion 200, and the third operating portion 300 to rotate each of the first operating portion 100, the second operating portion 200, and the third operating portion 300.
(45) The test portion 310 may include a connection gear G3 connected to the fourth motor 311 and connecting the test portion 310 and the third frame 302 to each other to allow the test portion 310 to be rotatable from the third frame 302.
(46) That is, when the vehicle part P is tested, the test portion 310 moves to an optimal position for testing the vehicle part P by driving the first operating portion 100, the second operating portion 200, and the third operating portion 300 while sensing and photographing the position of the vehicle part P through the laser 312 and the camera 313 provided in the test portion 310 after the vehicle part test device approaches the vehicle part P through the robot 10. Then, the test of the vehicle part P is completed.
(47) In the present disclosure, as illustrated in
(48) As described above, the vehicle part test device according to the exemplary embodiment of the present inventive concept includes the first operating portion 100 including the first motor 101 rotatably mounted to the robot 10 at the time of testing the vehicle part P for a vehicle and the first frame 102 rotating integrally with the first motor 101. The second operating portion 200 is rotatably mounted to the first operating portion 200 and includes the second motors 201 mounted to both ends of the first frame 102 and the second frame 202 connected to the second motors 201 to thereby be rotatable. The third operating portion 300 is rotatably mounted to the second operating portion 200 and includes the third motors 301 mounted to both ends of the second frame 202 and the third frame 302 connected to the third motors 301 to thereby be rotatable and having the test portion 310 positioned at a portion adjacent to the vehicle part P to test the vehicle part P. The test portion 310 is connected to the first operating portion 100, the second operating portion 200, and the third operating portion 300 to rotate each of the first operating portion 100, the second operating portion 200, and the third operating portion 300 and includes the fourth motor 311 mounted to the third frame 302 to rotate the test portion 310. The laser 312 irradiates light to sense the position of the vehicle part P. The camera 313 photographs the light of the laser 312 irradiated to the vehicle part P to confirm the position of the vehicle part P and test the vehicle part P. Three operating portions are connected to the robot 10 for testing the vehicle part for a vehicle to rotate the test portion 310 in several directions even at the time of changing a test position of the vehicle part P, thereby enabling the test portion 310 to move to the test position of the vehicle part P. Therefore, mobility and a test region are increased, thereby making it possible to improve work convenience and work reliability.
(49) Hereinabove, although the present disclosure has been described with reference to exemplary embodiments and the accompanying drawings, the present disclosure is not limited thereto, but may be variously modified and altered by those skilled in the art to which the present disclosure pertains without departing from the spirit and scope of the present disclosure claimed in the following claims.