Spray coating device for coating material
09700906 ยท 2017-07-11
Assignee
Inventors
Cpc classification
B05B7/16
PERFORMING OPERATIONS; TRANSPORTING
B05B7/066
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2464
PERFORMING OPERATIONS; TRANSPORTING
B05B5/03
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B7/12
PERFORMING OPERATIONS; TRANSPORTING
B05B7/06
PERFORMING OPERATIONS; TRANSPORTING
B05B7/08
PERFORMING OPERATIONS; TRANSPORTING
B05B5/03
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In a spray coating apparatus having a spray coating gun with a gun body and a coating material tube, a nozzle provided at the front end of the coating material tube, the coating material tube extends from the nozzle at the front end of the coating material tube to a connection piece at the rear end of the coating material tube. A metering system which can be connected to the coating material tube by the connection piece is provided for setting the amount of coating material that is fed to the nozzle per unit of time.
Claims
1. A spray coating apparatus for coating material, comprising a gun body, a cylindrical coating material tube, which includes a front end and a rear end and extends through the gun body, a nozzle provided at the front end of the cylindrical coating material tube, and arranged to spray coating material fed to the nozzle by the coating material tube, a connection piece at the rear end of the coating material tube, and a metering system connected to the coating material tube by means of the connection piece for setting an amount of coating material that is fed to the nozzle per unit of time, wherein the diameter of the front end of the cylindrical coating material tube is same as the diameter of the rear end of the cylindrical coating material tube, and wherein the front end of the cylindrical coating material tube defines the part of the coating apparatus from which the coating material enters the nozzle.
2. The spray coating apparatus according to claim 1, wherein the metering system is arranged outside the gun body.
3. The spray coating apparatus according to claim 1, wherein the coating material tube, which extends between the nozzle at the front end and the connection piece at the rear end of the coating material tube, is formed in one piece.
4. The spray coating apparatus according to claim 1, wherein the gun body includes a gun head at a front end of the gun body and a head holder at a rear end of the gun body, and the gun head and the nozzle together define a nozzle assembly.
5. The spray coating apparatus according to claim 4, further comprising a compressed air cooler for cooling pattern-forming and atomizing air fed to the nozzle assembly, wherein the nozzle assembly further comprises an air cap being arranged at the front end of the gun body.
6. The spray coating apparatus according to claim 4, wherein the nozzle assembly is configured for electrostatic application of the coating material.
7. A spray coating apparatus for coating material, comprising a spray coating gun, including a gun body, a cylindrical coating material tube, which includes a front end and a rear end and extends through the gun body, and a nozzle provided at the front end of the cylindrical coating material tube, and arranged to spray coating material fed to the nozzle by the cylindrical coating material tube, a machine adapter connected to the spray coating gun, and including a compressed air cooler for cooling pattern-forming and atomizing air fed to the nozzle, and a connection piece at the rear end of the cylindrical coating material tube, wherein the diameter of the front end of the cylindrical coating material tube is same as the diameter of the rear end of the cylindrical coating material tube, and wherein the front end of the cylindrical coating material tube defines the part of the coating apparatus from which the coating material enters the nozzle.
8. A spray coating apparatus for coating material, comprising, a spray coating gun, including a gun body having a gun head at a front end of the gun body and a head holder at a rear end of the gun body, a cylindrical coating material tube, which includes a front end and a rear end and extends through the gun body, and a nozzle provided at the front end of the cylindrical coating material tube, and arranged to spray coating material fed to the nozzle by the cylindrical coating material tube, the gun head and the nozzle together define a nozzle assembly. a machine adapter connected to the spray coating gun, and including a compressed air cooler for cooling pattern-forming and atomizing air fed to the nozzle, and a connection piece at the rear end of the cylindrical coating material tube, wherein the nozzle assembly is configured for electrostatic application of the coating material, wherein the diameter of the front end of the cylindrical coating material tube is same as the diameter of the rear end of the cylindrical coating material tube, and wherein the front end of the cylindrical coating material tube defines the part of the coating apparatus from which the coating material enters the nozzle.
9. The spray coating apparatus for coating material of claim 8, wherein the compressed air cooler is a vortex cooler tube.
Description
(1) The invention is described below with reference to the drawings, on the basis of an embodiment given as an example. In the drawings:
(2)
(3)
(4)
(5)
(6) In
(7) The spray coating gun 1 comprises a gun body 3, which includes a gun head 3A and a head holder 3B, and a coating material tube 2, which extends through the gun body 3 and is connected at the front end to a nozzle assembly and at the rear end to a connection piece 7. The connection piece 7 may be an adapter which is connected by means of a system of lines to a metering system 15. As already stated generally, a metering pump is appropriate for the metering system, the pump output of the metering pump being connected, or able to be connected, to the rear end of the coating material tube 2 by means of the connection piece 7. The amount of coating material that is fed to the nozzle assembly per unit of time by means of the coating material tube 2 is in this case set by means of the metering system. For this purpose, it is appropriate, for example, to regulate correspondingly the delivery rate of a metering pump that is used as the metering system.
(8) The nozzle assembly at the front end of the gun body 3 includes a gun head 3A, a nozzle 4 and an air cap 5, and it may use an atomizing and pattern-forming air stream in order to atomize the coating material to be sprayed, and in order to achieve pattern forming. The nozzle assembly is known in principle from the prior art and is not described in any more detail here.
(9) As indicated in
(10) The spray coating gun 1 may be formed here in such a way that it makes compressed-air atomization possible. Although not indicated in the figure, high-voltage electrodes which electrostatically charge the coating material may be arranged, whereby said material is applied accurately and with virtually no loss onto a grounded processing surface. When the spray coating gun is realized as an electrostatic gun, shock protection for protection from high voltage and a high-voltage generator should be provided.
(11) Adjoining the gun head 3A upstream is the head holder 3B, the outer dimension of which corresponds to the outer dimension of the gun head 3A. For the transfer of the compressed air, O-rings 12 are arranged between the gun head 3A and the head holder 3B. The head holder 3B may be connected to the gun head 3A by means of mechanical fastening devices, for example plug-in connections or bolts 8. Arranged in the head holder 3B is a seat 11 for the coating material tube 2. For the transfer of the compressed air, O-rings 13 are arranged between the head holder 3B and the machine adapter 20. In the case of conventional spray coating apparatuses from the prior art, a needle assembly or a liquid valve seat was mounted in the head holder. For reasons of cost-effectiveness, this conventional head holder can continue to be used here, the needle assembly or the liquid valve seat then being replaced by the seat 11 for the coating material tube 2. The coating material tube 2 extends through the entire spray coating gun 1 and is supplied with coating material by the metering system, the amount of this material being set by the metering system. As a result, there is no need to provide a conventional liquid discharge valve within the spray coating gun and, furthermore, there is no need to provide the control air for opening the liquid discharge valve, which leads to a simplification and cost reduction of the spray coating gun.
(12) Arranged following the head holder 3B upstream is an end plate 6, the outer dimension of which corresponds to the outer dimension of the head holder 3B. The end plate 6 may be fastened to the head holder 3B and the gun head 3A by means of long bolts or hexagon bolts 8, which extend through the end plate 6 and the head holder 3B and are in engagement with a corresponding thread in the gun head 3A. The coating material tube 2 is held on the end plate 6 and closed off by means of a connection piece 7. The connection piece 7 comprises a shot connection 7A, which may include a thread. This shot connection 7A is inserted from outside through a passage through the end plate 6, until an end face with a diameter that is greater than the diameter of the passage through the end plate 6 comes up against the outer side of the end plate 6. The threaded portion of the shot connection 7A is engaged from the opposite side by a threaded nut 7B. In this embodiment, the coating material tube 2 ends at the connection piece 7 and adjoins a further connecting line (not shown), which is connected to the metering system. The coating material tube 2 may be connected to a threaded pin 10 with a through-channel or slot and optionally be held in this way.
(13)
(14) As a difference from the previously known, conventional spray coating guns, in the case of the spray coating gun 1 represented in
(15) Although not explicitly represented, horns with forming gas outlets for compressed forming gas may be provided, protruding forward beyond the atomizer nozzle, forming the atomized coating liquid jet of the nozzle channel and being fed, for example, by means of a compressed gas channel. In addition to the forming gas outlets or instead of them, one or more atomizer gas outlets may be provided at the front end of the spray coating gun 1, for example in the atomizer nozzle and/or in the horns, by means of which outlets compressed atomizer gas can flow out and assist the atomization of the coating liquid. The compressed atomizer gas may be supplied by means of the same compressed gas channel as the compressed forming gas or through a compressed gas channel that is separate from it.
(16) In or next to the flow path of the coating liquid, preferably downstream from the nozzle channel, the one or more high-voltage electrodes for the electrical charging of the coating liquid may be arranged.
(17)
(18)
(19) Consequently, the spray coating gun 1 does not contain any mechanically actuated components to which quick-drying coating materials in particular can become attached and clog them. A further advantage is that the number of components within the spray coating gun 1 is reduced, and in particular a reduced number of spare parts is necessary, with the overall effect of lowering the operating costs. The spray coating gun 1 is suitable in particular for processing solvent-or water-based coating materials. The spray coating gun 1 is likewise suitable for being used for materials that are highly corrosive or very abrasive.
(20) In this embodiment, the spray coating gun 1 is connected directly to the machine adapter 20. The fastening of the spray coating gun 1 may, however, also take place by means of an intermediate plate on the machine adapter 20. By virtue of a patented locking device on the intermediate plate, a troublefree, quick change is possible without a tool, for example for performing maintenance or servicing work. The fastening with the quick-acting arresting mechanism is positionally very accurate here. For fastening to the machine adapter 20, the spray coating gun 1 can be positioned at an angle of about 45 to the machine adapter 20. A locking device is thereby introduced into a corresponding seat, after which the spray coating gun 1 is turned clockwise, for example likewise by 45, until it engages in the locking device.
(21) The spray coating apparatus may be used in a fixed spraying installation. Alternatively, the spray coating apparatus may be fastened to an end boom of movable lifting equipment. Appropriate for this are robots with hollow-wrist technology (hollow-wrist robots). The advantage is that all the flexible supply tubes are integrated in the arm and hand joints of the robot. This prevents damage to these flexible supply tubes and reduces effects of wear. The high precision of the hollow-wrist technology makes precise positioning of the spray coating apparatus possible. The available operating range is above-average, since the main part can rotate by a very great pivoting range in every direction. In this way it is possible to spray even workpieces of a very complex shape and regions that are difficult to reach, for example on the rear side. Alternatively, it is also possible to use robots with flexible arm technology and stands.
(22) The invention is not restricted to the present embodiments and can be extended to further embodiments.
LIST OF DESIGNATIONS
(23) 1 spray coating gun 2 coating material tube 3 gun body 3A gun head 3B head holder 4 nozzle 5 air cap 6 end plate 7 connection piece 7A shot connection 7B threaded nut 8 long bolt 9 resilient pressure piece 10 threaded pin 11 seat for coating material tube 12, 13 O-rings 14 locking device 20 machine adapter 21 main body 22 stop plate 23 pressure plate 24 pressure piece 25 holding plate 26 bolts 27 guiding piece 28 contact piston 29 compression spring 30 receptacle for a locking device 31 vortex tube cooler 32 screw-on connection 33 connection for vortex tube cooler 34 strain relief 35 resistance element 36 compression spring 37 compressed-air feed line