Deformation verification system and method of vehicle body
10234398 ยท 2019-03-19
Assignee
Inventors
Cpc classification
C25D21/04
CHEMISTRY; METALLURGY
F26B15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C25D13/22
CHEMISTRY; METALLURGY
B05C9/14
PERFORMING OPERATIONS; TRANSPORTING
B05C3/10
PERFORMING OPERATIONS; TRANSPORTING
G01N9/08
PHYSICS
B62D65/18
PERFORMING OPERATIONS; TRANSPORTING
G01B11/16
PHYSICS
G01M11/081
PHYSICS
International classification
G01N21/00
PHYSICS
F26B15/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05C9/14
PERFORMING OPERATIONS; TRANSPORTING
B62D65/18
PERFORMING OPERATIONS; TRANSPORTING
G01B11/16
PHYSICS
Abstract
A deformation verification system of a vehicle body includes a dip tank in which fluid is contained. The dip tank has a transparent window from the outside to see the inside. A moving device is configured to lower the vehicle body into the fluid, to move the vehicle body in the fluid and to raise the vehicle body. A camera is installed to detect the form of the vehicle body through the transparent window.
Claims
1. A system comprising: a dip tank in which fluid is contained, the dip tank having a transparent window from the outside to see the inside; a moving device configured to lower a vehicle body into the fluid, to move the vehicle body in the fluid and to raise the vehicle body; and a camera installed to detect a form of the vehicle body through the transparent window, wherein the camera is configured to sense a first form of the vehicle body before the vehicle body is immersed in the fluid in the dip tank, to detect an intermediate form of the vehicle body in a state when the vehicle body is moving in the fluid of the dip tank, and to detect a second form of the vehicle body after the vehicle body is removed from the fluid in the dip tank.
2. The system of claim 1, further comprising a processor configured to calculate a variation in the form of the vehicle body according to the first form, the intermediate form and the second form.
3. The system of claim 2, wherein the processor is configured to generate a retest signal depending on the variation in the form of the vehicle body.
4. The system of claim 3, wherein the processor is configured to generate the retest signal when the variation in the form of the vehicle body is determined to be greater than a predetermined value.
5. The system of claim 2, wherein the processor is configured to receive predetermined process conditions and to move the vehicle body to a predetermined speed along a predetermined route according to the process conditions.
6. The system of claim 1, wherein the moving device comprises: a mounting portion on which the vehicle body is mounted; a horizontal transfer portion for moving the mounting portion in a horizontal direction; an up and down transfer portion for moving the mounting portion in the up and down direction; and a rotation portion for rotating the mounting portion about a rotation center.
7. The system of claim 6, wherein: the horizontal transfer portion comprises a horizontally moving member that moves along a rail; the up and down transfer portion comprises a up and down moving member that moves up and down in the horizontal moving member; and the rotation portion is disposed on an end portion of the up and down transfer portion in order to rotate the mounting portion.
8. The system of claim 1, wherein the fluid is water, electrodeposition paint, or preprocessing liquid.
9. The system of claim 1, further comprising a circulation device installed to control the flow of the fluid in a fluid space of the dip tank.
10. The system of claim 1, wherein the moving device comprises a conveyor and a lighting device installed inside or outside of the dip tank to illuminate an area where the camera is to photograph.
11. A method of processing a vehicle body, the method comprising: putting a vehicle body into a fluid contained in a dip tank that includes a transparent window visible from the outside to the inside; moving the vehicle body within the fluid in the dip tank; and detecting a form of the vehicle body moving in the dip tank through the transparent window, wherein the detecting comprises: sensing a first form of the vehicle body before the vehicle body is immersed in the fluid in the dip tank; detecting an intermediate form of the vehicle body in a state when the vehicle body is moving in the fluid of the dip tank; and detecting a second form of the vehicle body after the vehicle body is removed from the fluid in the dip tank.
12. The method of claim 11, further comprising exhausting the vehicle body in the fluid to outside the dip tank.
13. The method of claim 12, further comprising calculating a variation of the vehicle body according to the first form, the intermediate form and the second form.
14. The method of claim 13, further comprising generating a reset signal depending on the variation of the form of the vehicle body.
15. The method of claim 14, wherein the reset signal is generated when it is determined that the variation is above a predetermined value.
16. The method of claim 12, further comprising receiving predetermined process conditions, the vehicle body being moved at a set speed according to a set route depending on the process conditions.
17. The method of claim 16, wherein, in the moving step, the vehicle body is moved horizontally, moved up and down, and rotated.
18. The method of claim 12, wherein, the fluid is circulated in the dip tank in a predetermined direction and a predetermined speed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
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DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
(6) Hereinafter, an exemplary embodiment of the present invention will be described in detail with reference to accompanying drawings.
(7) However, since the size and thickness of each element shown in the drawing are arbitrarily shown for convenience of explanation, the present invention is not necessarily limited to that shown in the drawing, and the thickness is enlarged to clearly represent the various parts and regions.
(8) In order to clearly illustrate an exemplary embodiment of the present invention, the parts not related to the description are omitted, and the same reference element is assigned to the same or similar constituent elements throughout the specification.
(9) In the following description, to distinguish the names of the elements into first, second, and the like is to distinguish these because the names of the elements are the same, and it is not necessarily limited to the order.
(10) In an exemplary embodiment of the present invention, a pretreatment and an electroplating dipping process consisting of 9 to 10 cycles are carried out to remove contaminants from the vehicle body and to improve rust resistance in a painting process.
(11) During the vehicle body performs above process, the vehicle body may be floated or deformed due to the float force and fluid pressure, which may affect the gap and step of the vehicle body.
(12) However, the pre-treatment and electrodeposition dipping processes are not identifiable internally, and the effects of fluid on the vehicle body and methods for predicting the form variation of the vehicle body are researched.
(13)
(14) Referring to
(15) The dip tank 150 is open at the top and contains fluid to test the electrodeposition painting process therein, and the transparent window 155 is formed on one side of the dip tank 150.
(16) In an exemplary embodiment of the present invention, the operator, or experimenter, may look into the dip tank 150 through the transparent window 155.
(17) The 3D high-speed camera 130 may capture the form of the vehicle body 140, which is immobilized to the fluid of the dip tank iso, and the 3D camera 125 may capture the form of the vehicle body 140 before being immersed in the fluid in the dip tank iso.
(18) The control/calculation unit 160 may determine if the conditions, including the speed at which the vehicle body 140 moves into the fluid, are satisfied or not by using the form of the vehicle body 140 taken at the 3D high-speed camera 130 and the 3D camera 125.
(19) On the upper side of the bottom tank 150, a conveyor 100 or a rail may formed in a horizontal direction, and the conveyor may include a rail or be replaced by a rail.
(20) The horizontal transfer portion 105 can move the horizontal moving member no in a predetermined direction using the conveyor or rail, the up and down moving member 120 may be disposed on the horizontal moving member 110, the up and down transfer portion 115 can move the up and down moving member 120 up and down on the horizontal moving member 110.
(21) The mounting portion 127 may be disposed on the lower end of the up and down moving member 120 and the vehicle body 140 may be disposed on the mounting portion 127.
(22) The rotation portion 135 may rotate the mounting portion 127.
(23) The control/calculation unit 160 controls the horizontal transfer portion 105, the up and down transfer portion 115, and the rotation portion 135, respectively, so that the vehicle body 140 mounted on the mounting portion 127 moves horizontally from one side of the upper portion of the dip tank 150 and descends into the fluid contained in the dip tank 150.
(24) With the vehicle body immerged in the fluid in the dip tank 150, the vehicle body 140 rotates, moves from one side to the other side, and rises from the other side of the dip tank 150 to the upper side of the fluid.
(25) During the vehicle body 140 moves in the fluid, the vehicle body 140 is subjected to lifting force and fluid pressure so that the vehicle body 140 may be deformed.
(26) In an exemplary embodiment of the present invention, the route, speed and rotation speed of the vehicle body 140 may be changed according to the process condition. As the vehicle body 140 moves through the fluid, the route, speed, and rotation speed may vary depending on the deformation amount of the vehicle body 140.
(27) In addition, the fluid contained in the dip tank 150 may be an electrodeposition painting, may be transparent, and may be pretreatment liquid.
(28) Also, inside the dip tank 150, a circulation device 200 may be constructed. The circulation device 200 may circulate the fluid in a predetermined direction, which may be referred to the prior art.
(29) In an exemplary embodiment of the present invention, the control/calculation unit 160 may be implemented as a least one microprocessor operating according to a predetermined program, and the predetermined program may include a series of instructions for performing the method according to an exemplary embodiment of the present invention described below.
(30) Also, in an exemplary embodiment of the present invention, a lighting device (not shown) may be provided to effectively capture the interior of the dip tank, and the lighting device may be installed either inside or outside the dip tank, can be selectively installed at predetermined locations.
(31) The device that moves the vehicle body in the horizontal direction may have a conveyor structure, and the vehicle body may move in the horizontal direction according to the operation of the conveyor.
(32)
(33) Referring to
(34) At the step S205, the control/calculation unit 160 sets the moving speed, traveling route and rotation speed of the vehicle body 140 according to the process conditions.
(35) At the step S210, a worker or a robot mounts and fixes the predetermined vehicle body 140 in the mounting portion 127 in advance.
(36) At the step S215, the 3D camera 125 takes the form before the vehicle body 140 is immersed in the fluid, and the conditioning condition of the fluid is reproduced in the step S220.
(37) Then, at the step S225, the vehicle body 140 is immersed in the fluid of the dip tank 150, which may be referred to as an input step.
(38) At the step S220, the circulating condition of the fluid (or paint) in the dip tank is reproduced.
(39) This may be accomplished by a spray nozzle (not shown) that is immersed in the fluid and ejects the fluid in a predetermined direction.
(40) At the step S230, the 3D high-speed camera 130 continuously captures the form of the vehicle body 140 contained in the fluid of the dip tank 150 through the transparent window 155, which may be referred to as the imaging step.
(41) Further, the step S232 is a moving step in which the vehicle body is moved in a state of being contained in the fluid of the dip tank, and the form of the vehicle body is captured by the camera with the fluid circulation condition being implemented.
(42) At the step S235, the transfer device 210 exhausts the vehicle body 140 out of the dip tank 150. At the step S240, the vehicle is put into the oven (not shown) to cure the sealer applied between the inner and outer plates in the hood of the vehicle body. The step S440 may be deleted.
(43) At the step S245, the 3D camera 125 is either ejected from the dip tank 150 or taken in the form of the vehicle body 140 exhausted from the oven.
(44) At the step S247, the control/calculation unit 160 calculates the amount of deformation of the vehicle body 140 using the front and rear forms of the vehicle body 140 photographed with the 3D camera 125 or the 3D high-speed camera 130. At the step S250, if it is determined that the deformation amount of the vehicle body 140 is less than (or below) the predetermined value, the verification is completed in the step S260.
(45) At the step S250, if it is determined that the deformation amount of the vehicle body 140 is equal to or greater than the predetermined value, the operator may modify the design or reinforce the stiffness for the retest at the step S255.
(46) In addition, it may automatically generate a signal for retesting and inform the operator of the retest via a display device or sound.
(47)
(48) Referring to
(49) The circulation device 200 may include a nozzle disposed inside the bottom tank 150 and control the flow direction and flow speed of the fluid filled inside the dip tank 150.
(50) The cameras 130 and 125 may include all devices capable of capturing the 3D form of the vehicle body 140. In an exemplary embodiment of the present invention, the cameras 130 and 125 may include a 3D camera 125 and a 3D high-speed camera 130, or one camera.
(51) The vehicle body 140 according to an exemplary embodiment of the present invention may be fixed on the mounting portion 127. The mounting portion 127 may accommodate a variety of vehicle bodies.
(52)
(53) Referring to
(54) The conveyor 100 may be composed of a rail.
(55) The horizontal transfer portion 105 may move the horizontal moving member 110 along a rail or conveyor 100 and the up and down transfer portion 115 may move the up and down moving member 120 up and down on the horizontal moving member 110.
(56) The rotation portion 135 may be installed at the lower end of the up and down moving member 120 to rotate the mounting portion 127.
(57) While this invention has been described in connection with what is presently considered to be practical exemplary embodiments, it is to be understood that the invention is not limited to the disclosed embodiments. On the contrary, it is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.