1. Technical Field
The present disclosure relates generally to adjusting devices for adjusting a painting position of a spray gun and, particularly, to a spray gun adjusting device using the adjusting device.
2. Description of Related Art
Using a plurality of spray guns for painting is a widespread practice because of its higher productivity and higher utilization rate of paint. The positions and angles of the spray guns are adjustable for realizing a multi-angle painting to satisfy the coating requirements of various products. Many conventional spray gun adjusting devices are, for example, gun racks which are utilized to adjust and maintain an optimum painting position.
Presently, there are two kinds of gun racks utilized in painting technology, one is a simple hand-operated gun rack, and the other is an automated gun rack. The simple hand-operated gun rack utilizes a plurality of locking screws. However, during painting, because the spray guns are frequently switched on/off, the screws may become loosen due to the impact of pneumatic elements of the spray guns, and the positions of the spray guns may be shifted, resulting in poor painting stability. In addition, the painting operation has to be shut down during the position adjusting of the spray gun rack, and this reduces productivity.
The automated gun rack normally has three degrees of freedom, which limits the adjustment angles of the spray guns. In addition, a plurality of motors may be utilized in the automated gun rack, which are often non-explosion-proof, and the automated gun rack is mounted in a spraying area, where the automated gun rack may easily be contaminated by organic solvents and become a fire risk, or may even explode.
Therefore, there is room for improvement within the art.
The components in the drawings are not necessarily drawn to scale, the emphasis instead placed upon clearly illustrating the principles of the present disclosure. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
Referring to
Referring to
The first sliding block 231 is slidably engaged with the screw rod 24. The first sliding block 231 is substantially L-shaped, and includes a first supporting portion 2311, a second supporting portion 2313 vertically positioned on the first supporting portion 2311, and a T-shaped block 2314. The T-shaped block 2314 is positioned on a side surface of the second supporting portion 2313 opposite to the first supporting portion 2311. The first supporting portion 2311 defines a first through hole 2312 in a surface of the first supporting portion 2311 forming the second supporting portion 2313. The second supporting portion 2313 defines a second through hole 2315 passing through the T-shaped block 2314. The first supporting portion 2311 and the second supporting portion 2313 are received in the first receiving room 251 of the shaft sleeve 25, and the T-shaped block 2314 passes through the first opening 253 of the shaft sleeve 25.
One end of the first driving shaft 233 is fixed to the first knob 232, and the other end of the first driving shaft 233 has a plurality of screw threads 2331 to engage with the gear pair 234. The two first bearings 237 are positioned in the two ends of the second through hole 2315, and the first driving shaft 233 passes through the two first bearings 237, and is rotatably positioned in the second through hole 2315.
The gear pair 234 includes a first bevel gear 2341 and a second bevel gear 2342 meshing at right angles with the first bevel gear 2341. The second bevel gear 2342 defines an axis hole 2343 threaded to accept the screw threads 2331 of the first driving shaft 233. The first bevel gear 2341 is sleeved on the screw rod 24.
The screw nut 235 is sleeved on the screw rod 24, and defines a screw hole 2351 in a center thereof, and is threaded to accept the screw rod 24. The first bevel gear 2341 is fixed on the upper surface of the screw nut 235. The neck of the screw nut 235 passes through the washer 238, the second bearings 239, and the clamping ring 236 in that order, and is then rotatably positioned in the first through hole 2312.
The first driving shaft 233 is driven to rotate upon the rotation of the first knob 232. At the same time, the first driving shaft 233 drives the second bevel gear 2342 to rotate, the second bevel gear 2342 drives the first bevel gear 2341 to rotate, and thereby the screw nut 235 is rotated around the screw rod 24, thereby causing the first adjusting module 23 to move along the screw rod 24.
Referring to
The second sliding block 31 includes a main body 311 and a connecting portion 312 extending outside from the side surface of the main body 311. The connecting portion 312 defines a first connecting hole 313 to match the cross sectional area of the shaft sleeve 25. The side of the connecting portion 312 opposite to the main body 311 defines a first square groove 314 to match the end of the T-shaped block 2314 away from the second supporting portion 2313. A second connecting hole 315 is defined in the main body 311 and passing through two sides of the main body 311 adjacent to the connecting portion 312, to correspond to the cross sectional area of the sliding rod 32. The bottom of the main body 311 defines a second square groove 316 to receive the second adjusting module 33.
The second sliding block 31 is sleeved on the shaft sleeve 25 via the first connecting hole 313, and the end of the T-shaped block 2314 away from the second supporting portion 2313 is positioned in the first square groove 314. Therefore, the second axis mechanism 30 can move in the first direction along with the first adjusting module 23 also moving in the first direction.
The sliding rod 32 passes through the second connecting hole 315, and the sliding rod 32 can move in the second direction relative to the second sliding block 31. The sliding rod 32 defines a receiving groove (not shown) on the bottom thereof for receiving a part of the second adjusting module 33. The sliding rod 32 includes a stepped extending end 321 for fixing the third axis mechanism 40.
The second adjusting module 33 includes a gear rack 331, a gear 332 meshing with the gear rack 331, a first worm gear 333 fixedly connected to the gear 332, a first worm rod 334 meshing with the first worm gear 333, a second driving shaft 335, a second knob 336, a first gear box 337, two third bearings 338, and two fourth bearings 339. The gear rack 331 is received in the receiving groove of the sliding rod 32. The second knob 336 is fixed to one end of the first worm rod 334. The gear 332 and the first worm gear 333 are sleeved on the second driving shaft 335.
The first gear box 337 is a square hollow box defining an opening 3371 in a surface of the first gear box 337 facing the second sliding block 31. The two opposite sides of the first gear box 337 define two mounting holes 3372. The two third bearings 338 are each positioned in one mounting hole 3372, and the first worm rod 334 passes through the two third bearings 338 and is rotatably positioned in the mounting holes 3372. The inner surfaces of the other two opposite sides of the first gear box 337 each defines a mounting groove 3373. The fourth bearings 339 are positioned in the mounting grooves 3373, and the first worm gear 333 passes through the two fourth bearings 339 and is rotatably positioned in the mounting grooves 3373.
The first worm rod 334 is rotated by the second knob 336. At the same time, the first worm rod 334 rotates the first worm gear 333, the first worm gear 333 rotates the gear 332, and the gear rack 331 and the sliding rod 32 thereby move in the second direction.
Referring to
The connecting plate 41 includes a horizontal first fixing portion 411 and a second fixing portion 412 formed vertically from the first fixing portion 411.
The third adjusting module 42 includes a second gear box 421, a third knob 422, a second worm rod 423, a second worm gear 424 meshing with the second worm rod 423, a third driving shaft 425, a mounting plate 426, two fifth bearings 427, a sixth bearing 428, and a seventh bearing 429. The third knob 422 is fixed to one end of the second worm rod 423. The second worm gear 424 is fixedly sleeved on the third driving shaft 425. The mounting plate 426 is fixed to the upper end of the third driving shaft 425, and the first fixing portion 411 of the connecting plate 41 is fixed to the mounting plate 426.
The second gear box 421 is fixed to the extending end 321 of the sliding rod 32. The second gear box 421 is a box with one semicircular side surface and three flat rectangular side surfaces. The upper surface of the second gear box 421 defines a stepped receiving hole 4211, and the bottom surface of the second gear box 421 defines an installation hole (not shown). The sixth bearing 428 is positioned in the installation hole, and the seventh bearing 429 is positioned in the end of the receiving hole 4211 away from the installation hole. The third driving shaft 425 passes through the sixth bearing 428 and the seventh bearing 429, and is rotatably positioned in the receiving hole 4211 and the installation hole. The two rectangular side surfaces adjacent to the semicircular side surface of the second gear box 421 define two assembling holes 4213. The fifth bearings 427 are positioned in the assembling holes 4213, and the second worm rod 423 passes through the two fifth bearings 427 and is rotatably positioned in the assembling holes 4213.
When the third knob 422 is being rotated, the second worm rod 423 follows, and drives the second worm gear 424 and the third driving shaft 425 to rotate, thereby rotating the connecting plate 41 around the first direction.
Referring to
The spray gun fixing module 51 includes a fixing base 511 and a mounting base 512. The mounting base 512 is fixed on the fixing base 511, and the spray guns 60 are mounted on the mounting base 512.
The fourth adjusting module 52 is similar to the third adjusting module 42. The fourth adjusting module 52 includes a third gear box 521, a second mounting plate 522, a fourth knob 523, and a third worm rod (not shown), a third worm gear (not shown), and a fourth driving shaft (not shown), which are all received in the third gear box 521.
The third gear box 521 is fixed to the second fixing portion 412 of the connecting plate 41. The second mounting plate 522 is fixed to the side of the third gear box 521 opposite to the second fixing portion 412, and the fixing base 511 is fixed to the second mounting plate 522.
When the fourth knob 523 is rotated, the spray gun fixing module 51 rotates around the third direction.
In the illustrated embodiment, the outer surfaces of the shaft sleeve 25, the sliding rod 32, the second gear box 421, and the third gear box 521 have markings to increase the precision of the spray gun adjusting device, and for recording the corresponding adjustments.
It should be appreciated that the spray gun adjusting device 100 can include at least one first adjusting modules 23, at least one second axis mechanism 30 positioned on the at least one first adjusting modules 23, at least one third axis mechanism 40, and at least one fourth axis mechanism 50, together allowing achieving a multi-layer and multi-angle painting configuration.
The spray gun adjusting device 100 can drive the spray guns 60 to move in the first and second directions, and to rotate around the first and third directions by means of the first, second, third, and fourth axis mechanisms 20, 30, 40, and 50, thereby achieving any required position and angle of the spray guns 60. The functionalities of the first axis mechanism 20 (driven by the gear pair 234, the screw nut 235, and the screw rod 24), the second axis mechanism 30 (driven by the first worm gear 333, the first worm rod 334, the gear 332, and the gear rack 331), the third axis mechanism 40 (driven by the second worm rod 423 and the second worm gear 424), and the fourth axis mechanism 50 (driven by the third worm rod and the third worm gear), give the spray gun adjusting device 100 a higher adjustment accuracy and a self-locking capability, and ensure stability and smoothness in painting. The spray gun adjusting device 100 may be adjusted by turning the first, second, and third knobs (232, 336, and 422), and the fourth knob 523, and the spray gun adjusting device 100 may be adjusted during painting, thereby allowing continuous painting during adjustments, which increases productivity. Furthermore, the spray gun adjusting device 100 is mechanically driven, and need not be driven by local motors or motors in the joints of the device, thereby the spray gun adjusting device 100 is not a fire risk or liable to explode in the painting area.
It is believed that the present embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the disclosure or sacrificing all of its material advantages.
| Number | Date | Country | Kind |
|---|---|---|---|
| 2011 1 0110005 | Apr 2011 | CN | national |
| Number | Name | Date | Kind |
|---|---|---|---|
| 20070042123 | Endregaard et al. | Feb 2007 | A1 |
| 20090007844 | Krogedal et al. | Jan 2009 | A1 |
| Number | Date | Country | |
|---|---|---|---|
| 20120273632 A1 | Nov 2012 | US |