The present disclosure relates to a device for coating a cylinder.
Patent Document 1 described below discloses a device for coating a cylinder that forms a coating film on an inner surface of an elongated cylinder as in a jet engine shaft. The device for coating a cylinder has a support base which horizontally supports the cylinder and is rotationally driven about an axis of the cylinder, and a coating machine which is configured to spray a coating material to a surface of the cylinder while moving a spray gun, which is provided at an interval from the surface of the cylinder supported by the support base, to be parallel to the axis of the cylinder, and the device forms a coating film on the inner surface from one end to the other end of the cylinder.
[Patent Document 1] Japanese Unexamined Patent Application, First Publication No. 2010-5505
Depending on cylinders, in some cases, a plurality of types of coating films are formed in an overlapped manner by forming another coating film having a different function or a top coating film on a formed coating film. In such a case, in related art, the spray gun of the coating machine is cleaned and disassembled, a coating material supply tube is replaced to replace coating material, and then the spray gun is reassembled. Thus, the preparation thereof takes much longer than the coating time. On the other hand, when a dedicated coating machine is prepared for each coating material, it is necessary to prepare a plurality of coating machines depending on the type of coating material and the type of cylinder, and there is a large amount of capital investment.
The present disclosure has been made in view of the aforementioned problems, and an object thereof is to provide a device for coating a cylinder which has high productivity and is capable of reducing the time required for replacing a coating material and capable of forming a plurality of types of coating films.
A device for coating a cylinder of an aspect of the present disclosure has a coating head capable of being inserted into the cylinder; a plurality of coating guns which are provided on the coating head and are configured to discharge a coating material in a direction intersecting a longitudinal direction of the coating head; and a rotating cover which, when the coating material is discharged from one of a first coating gun and a second coating gun among the plurality of coating guns, is configured to cover the other of the first coating gun and the second coating gun, in which the plurality of coating guns are connected to coating material supply devices of different systems, respectively.
Further, in the device for coating a cylinder according to the above aspect, the first coating gun and the second coating gun may be provided at different positions from each other in the longitudinal direction of the coating head.
Further, in the device for coating a cylinder according to the above aspect, the coating material supply device may have a coating material supply tube and an air supply tube connected to the coating gun, and the coating material supply tube may be disposed to pass nearer to a central axis of the coating head than the air supply tube.
Further, in the device for coating a cylinder according to the above aspect, the coating material supply tube and the air supply tube may be disposed to avoid a discharge area of the coating gun.
Further, in the device for coating a cylinder according to the above aspect, the coating head may have a support plate portion which supports the coating gun, and the support plate portion may have a chamfered portion which is configured to retract from the discharge area of the coating gun.
Further, the device for coating a cylinder according to the above aspect may further have a plunger which is configured to suppress rotation of the rotating cover.
According to the present disclosure, it is possible to obtain a device for coating a cylinder which has high productivity and is capable of reducing the time required for replacing a coating material and capable of forming a plurality of types of coating films.
Hereinafter, a device for coating a cylinder according to an embodiment of the present disclosure will be described with reference to the drawings.
The device 1 for coating a cylinder forms a coating film on an inner surface 100a of a cylinder 100, as shown in
The device 1 for coating a cylinder has a support base 2 which horizontally supports the cylinder 100, a coating head 10 which performs coating of the inner surface 100a of the cylinder 100, coating material supply devices 20A and 20B which supply coating material to the coating head 10, and a moving device 30 which moves the coating head 10 to be insertable into and removable from the inside of the cylinder 100.
The support base 2 has a plurality of rollers 3 which support the cylinder 100. The plurality of rollers 3 are provided at intervals in a front-rear direction of the cylinder 100. Further, the rollers 3 are provided in a pair in a left-right direction (a paper-depth direction in
The coating head 10 has a cylindrical shape having an outer diameter with which it can be inserted into the cylinder 100 along the axis 100L. The coating head 10 is provided with a coating gun 40 that discharges the coating material in a direction intersecting a longitudinal direction in which a central axis 101, of the coating head 10 extends. The coating gun 40 of the present embodiment discharges the coating material downward in a vertical direction orthogonal to the longitudinal direction of the coating head 10. Note that the discharge direction of the coating material of the coating gun 40 is not limited to the vertical direction, and as long as the discharge direction is a direction intersecting the longitudinal direction of the coating head 10, it may be an oblique direction such as 45° or 60° when a horizontal plane is set as 0°.
The coating head 10 is supported by the moving device 30 via an arm 11. The arm 11 has a cylindrical shape that allows coating material supply tubes 21A1 and 21B1 and air supply tubes 22A1 and 22B1 of the coating material supply devices 20A and 20B to pass through the inside thereof. The arm 11 has a length substantially the same as an entire length of the cylinder 100. The coating head 10 is supported at a distal end portion of the arm 11, and a proximal end portion of the arm 11 is fixed to a moving carriage 31 of the moving device 30.
The moving carriage 31 moves along a guide rail 32 provided in parallel to the axis 100L of the cylinder 100. The guide rails 32 have substantially the same length as the entire length of the cylinder 100. The guide rail 32 is provided with a drive device that moves the moving carriage 31 via an endless chain (not shown). When the moving carriage 31 moves along the guide rails 32, the coating head 10 and the arm 11 are inserted into and removed from the inside of the cylinder 100.
As shown in
The coating head 10 has a support plate portion 50 (a first support plate portion 50A and a second support plate portion 50B) which supports the coating gun 40. The support plate portion 50 has a chamfered portion 51 which retracts from a discharge area W of the coating gun 40. The chamfered portion 51 is notched at substantially the same angle as an injection angle of the coating material discharged from the coating gun 40. The support plate portion 50 supports the coating gun 40, as shown in
A mounting surface 53, on which the air supply tube 22A1 of the coating material supply device 20A is mounted, is formed on a back side of the first support plate portion 50A. The mounting surface 53 is a surface that obliquely intersects the central axis 10L, and a tube mounting hole 54 extending from the mounting surface 53 in an oblique direction with respect to the central axis 10L is formed. At the center of the first support plate portion 50A, a coating gun mounting hole 55 is formed to penetrate in a thickness direction of the first support plate portion 50A, and the tube mounting hole 54 communicates with an inner surface of the coating gun mounting hole 55.
The first coating gun 40A has a nozzle portion 41 which discharges the coating material, a flow path formation portion 42 which supplies the coating material and air to the nozzle portion 41, and a fixing portion 43 which fixes the coating material supply tube 21A1 of the coating material supply device 20A to the flow path formation portion 42. The nozzle portion 41 is provided with a discharge hole 41a that opens downward in the vertical direction. The flow path formation portion 42 is fitted to the inner surface of the coating gun mounting hole 55. A first flow path 42a through which the coating material flows and a second flow path 42b through which the air flows are formed inside the flow path formation portion 42.
The first flow path 42a extends along the central axis 10L of the coating head 10. The second flow path 42b is disposed around the first flow path 42a and extends in parallel with the first flow path 42a. The coating material supply tube 21A1 is inserted into the first flow path 42a, and a rear end of the first flow path 42a expands in diameter to such a size that the fixing portion 43 can be inserted. The fixing portion 43 fixes the coating material supply tube 21A1 to the flow path formation portion 42 by being fitted to the rear end of the first flow path 42a. Further, a connection flow path 42c that extends radially outward and is connected to the tube mounting hole 54 is formed in the second flow path 42b.
When the coating material is supplied to the first flow path 42a via the coating material supply tube 21A1 and the air is supplied to the second flow path 42b via the air supply tube 22A1, the coating material and the air are mixed, and then the coating material is discharged conically at a predetermined pressure from the discharge hole 41a of the nozzle portion 41.
As shown in
The first support plate portion 50A for supporting the first coating gun 40A and the second support plate portion 50B for supporting the second coating gun 40B are connected to each other by a connecting rod 60. Further, the second support plate portion 50B is connected to an arm distal end portion 61 via the connecting rod 60. Further, the first support plate portion 50A is connected to a head distal end portion 62 via the connecting rod 60. That is, the head distal end portion 62, the first support plate portion 50A, the second support plate portion 50B, and the arm distal end portion 61 are connected to one another at intervals in the longitudinal direction of the coating head 10.
The arm distal end portion 61 is a cylindrical body fitted to the end portion of the cylindrical arm 11. A penetration hole 61a penetrating along the central axis 10L is formed in the arm distal end portion 61. The penetration hole 61a is slightly eccentric to the discharge side of the coating gun 40 with respect to the central axis 10L to connect the connecting rod 60, which is disposed on a side opposite to the discharge side of the coating gun 40, to the arm distal end portion 61. The coating material supply tubes 21A1 and 21B1 and the air supply tubes 22A1 and 22B1 pass through the penetration hole 61a.
The coating material supply tube 21B1 and the air supply tube 22B1 are connected to the second coating gun 40B. In addition, the coating material supply tube 21A1 and the air supply tube 22A1 are connected to the first coating gun 40A through a penetration hole 52 formed in the second support plate portion 50B.
In this way, the first coating gun 40A and the second coating gun 40B are connected to different systems of the coating material supply devices 20A and 20B, respectively.
As shown in
The coating material supply device 20B includes a coating material supply source 21B including a tank, a pump and the like connected to the coating material supply tube 21B1, and an air supply source 22B including a tank, a pump and the like connected to the air supply tube 22B1. The coating material supply source 21B supplies, for example, a top coating material for forming a top coating film for preventing peeling on an aluminum-containing film formed by the first coating gun 40A, to the second coating gun 40B via the coating material supply tube 21B1. The air supply source 22B supplies air of a predetermined pressure to the second coating gun 40B via the air supply tube 22B1.
As shown in
The coating material supply tube 21A1 passes, through the penetration hole 61a of the arm distal end portion 61, nearer to the central axis 10L of the coating head 10 than the air supply tube 22A1, as in the coating material supply tube 21B1 (see
As shown in
As shown in
As shown in
As shown in
As shown in
As shown in
An engagement groove 62b, with which the distal end portion 84a of the plunger 84 is engaged, is formed on the outer peripheral surface of the head distal end portion 62. The engagement groove 62b has an arc-shaped cross-sectional profile as shown in
The device 1 for coating a cylinder of the aforementioned configuration has the coating head 10 which can be inserted into the inside of the cylinder 100, and the plurality of coating guns 40 provided on the coating head 10 and configured to discharge the coating material in a direction intersecting the longitudinal direction of the coating head 10, and the plurality of coating guns 40 are connected to the coating material supply devices 20A and 20B of different systems, respectively. Therefore, it is possible to discharge two types of coating material, without performing a coating material replacement work. Therefore, the coating time of the cylinder 100 is shortened than before, and a highly productive production line can be constructed.
Further, the first coating gun 40A and the second coating gun 40B are provided at positions different from each other in the longitudinal direction of the coating head 10, as shown in
As shown in
Further, as shown in
Furthermore, since the support plate portion 50 that supports the coating gun 40 has the chamfered portion 51 that retracts from the discharge area W of the coating gun 40, it is possible to suppress adhesion of the coating material to the support plate portion 50.
Further, in the present embodiment, there is provided with the rotating cover 80 which, when the coating material is discharged from one (the second coating gun 40B in the example of
Furthermore, in the present embodiment, as shown in
As described above, according to the above-described present embodiment, it is possible to obtain the device 1 for coating a cylinder which has high productivity and is capable of reducing the time required for replacing the coating material and capable of forming a plurality of types of coating films in a short time.
Although the preferred embodiments of the present disclosure have been described above with reference to the drawings, the present disclosure is not limited to the above-described embodiments. The shapes, combinations, and the like of the constituent members shown in the above-described embodiment are merely examples, and various changes based on design requirements and the like can be made without departing from the spirit of the present disclosure.
For example, in the above-described embodiment, although the embodiment in which the plurality of coating guns are provided at different positions in the longitudinal direction of the coating head has been described as an example, if the inner diameter of the cylinder is large, the plurality of coating guns may be provided at positions which overlap each other in the longitudinal direction of the coating head. Further, a plurality of coating guns may be provided at the same position in the longitudinal direction of the coating head to discharge the coating material in opposite directions.
According to the present disclosure, it is possible to obtain a device for coating a cylinder which has highly productivity and is capable of reducing the time required for replacing a coating material and capable of forming a plurality of types of coating films.
Number | Date | Country | Kind |
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2017-171966 | Sep 2017 | JP | national |
This application is a Continuation Application based on International Application No. PCT/JP2018/030274, filed Aug. 14, 2018, which claims priority on Japanese Patent Application No. 2017-171966, filed Sep. 7, 2017, the contents of which are incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
2619430 | Fink | Nov 1952 | A |
3155539 | Juvinall | Nov 1964 | A |
3362325 | Foster | Jan 1968 | A |
3797456 | Hogstrom | Mar 1974 | A |
3815145 | Tisch | Jun 1974 | A |
4041898 | Tajima | Aug 1977 | A |
4169906 | Hallstrom | Oct 1979 | A |
4340010 | Hart | Jul 1982 | A |
4378386 | Rehman | Mar 1983 | A |
4877645 | Bleich | Oct 1989 | A |
4974532 | March | Dec 1990 | A |
5175018 | Lee | Dec 1992 | A |
5686989 | Hoffman | Nov 1997 | A |
6368666 | Bernert | Apr 2002 | B1 |
6451117 | Farquhar | Sep 2002 | B1 |
10421092 | Rouaud | Sep 2019 | B2 |
20010036512 | Ito | Nov 2001 | A1 |
20030152699 | Someno | Aug 2003 | A1 |
20080094428 | Otis | Apr 2008 | A1 |
20080233293 | Borgne | Sep 2008 | A1 |
20100065662 | Kodama | Mar 2010 | A1 |
20100189895 | Arndt | Jul 2010 | A1 |
20120177809 | Solie | Jul 2012 | A1 |
20130216716 | Ströhlein et al. | Aug 2013 | A1 |
20140251206 | Kim | Sep 2014 | A1 |
20150182987 | Schillinger | Jul 2015 | A1 |
20150182993 | Binner | Jul 2015 | A1 |
20160096188 | Tanner | Apr 2016 | A1 |
20160122856 | Wipf | May 2016 | A1 |
20170203339 | Haremaki | Jul 2017 | A1 |
20170209878 | Otani | Jul 2017 | A1 |
20170239770 | Tachiki | Aug 2017 | A1 |
20180010905 | Wimmer | Jan 2018 | A1 |
20210402428 | Cole | Dec 2021 | A1 |
Number | Date | Country |
---|---|---|
1060045 | Apr 1992 | CN |
201880667 | Jun 2011 | CN |
202343374 | Jul 2012 | CN |
202778857 | Mar 2013 | CN |
103316817 | Sep 2013 | CN |
204801822 | Nov 2015 | CN |
60-183069 | Dec 1985 | JP |
61-278380 | Dec 1986 | JP |
63-94561 | Jun 1988 | JP |
5-155200 | Jun 1993 | JP |
6-114322 | Apr 1994 | JP |
6-206025 | Jul 1994 | JP |
10-393 | Jan 1998 | JP |
10-216576 | Aug 1998 | JP |
2003-251234 | Sep 2003 | JP |
2009-226346 | Oct 2009 | JP |
2009-255079 | Nov 2009 | JP |
2009-262094 | Nov 2009 | JP |
2009-291738 | Dec 2009 | JP |
2009-297630 | Dec 2009 | JP |
2010-5505 | Jan 2010 | JP |
2010-5575 | Jan 2010 | JP |
2010-17624 | Jan 2010 | JP |
2011-25151 | Feb 2011 | JP |
2012-223724 | Nov 2012 | JP |
Number | Date | Country | |
---|---|---|---|
20200164396 A1 | May 2020 | US |
Number | Date | Country | |
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Parent | PCT/JP2018/030274 | Aug 2018 | US |
Child | 16777952 | US |