A METAL COATING DEVICE AND METHOD FOR PRODUCTION OF DOUBLE-LAYERED AND COPPER COATED PIPE
20190177870 ยท 2019-06-13
Inventors
Cpc classification
F16L9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C25D17/00
CHEMISTRY; METALLURGY
Abstract
The invention is a metal coating device in which the sheet metal fed to a coating container for being copper-coated by electrolysis in the coating container comprising a first roll device having a roll in contact with the sheet metal forwarded in the vertical position and having a rotational axis perpendicular thereto, a carrier body bearing the roll and a current transmitted via a current plate electrically connected to a power source, a coal device which includes an electric current carrying coals from the carrier body to the roll and a cooling chamber provided around the region where the current plate is connected to the carrier body and through which a cooling liquid flows.
Claims
1. A metal coating device in which a sheet metal fed through a coating container, wherein the sheet metal is coated with copper by an electrolysis method characterized in that a first roll assembly comprising: a roll in continuous contact with the sheet metal, moving in a vertical position and having a perpendicular axis of rotation, a carrier body bearing the roll and electrically connected thereto by a current plate electrically bonded to a power source, a coal system comprising coals conveying electric current to the roll from the carrier body of the fixed structure,. and a cooling chamber which is configured to flow a cooling liquid externally fed through it and provided in vicinity of a region to which at least the current plate is connected to the carrier body.
2. The metal coating device according to claim 1, further comprising the equivalent of a first roll device and according to this a second roll device configured to transfer continuous electrical current to the sheet metal through the roll that is provided in the continuation of the first roll device.
3. The metal coating device according to claim 2, further comprising a third roll device provided in the continuation of the second roll device which is identical to the first roll device and is accordingly configured to deliver continuous electrical current to the sheet metal through the roller therein.
4. The metal coating device according to claim 3, wherein the first and third roll device are configured on one side of the sheet metal and the second roll device is configured on the other side of the sheet metal to transmit the electric current.
5. The metal coating device according to claim 3, wherein the first, second and third roll devices are positioned relative to each other, so that the sheet metal passes on a straight line.
6. The metal coating device according to claim 1, wherein the cooling chamber is fixed to the roll so that it can rotate with the roll in the carrier body.
7. The metal coating device according to claim 6, further comprising a discharge channel, which allows the cooling liquid to be bled which poured into the cooling chamber.
8. The metal coating device according to claim 7, further comprising a hatch with a feed chamber which is fixed to cover top of the cooling chamber to the carrier body and is configured to allow the cooling liquid to be poured towards inner walls of the cooling chamber.
9. The metal coating device according to claim 8, further comprising at a base of the feed chamber there are feed channels formed to open an outlet towards the inner wall of the cooling chamber.
10. The metal coating device according to claim 6, wherein the coal system is configured in such a way that the electric current is transmitted to the cooling chamber by means of coals.
11. The metal coating device according to claim 10, further comprising a setting mechanism that allows the coal system to be forwarded towards the cooling chamber as the coal is depleted.
12. The metal coating device according to claim 11, wherein the coal system comprises a joint sheet connected to the carrier body, a plurality of adjusting bolts extending from said joint sheet toward the carrier body and able to get closer or move away from carrier body by rotating, and the coals provided in such a way that each of which is in contact with a adjusting bolt on the carrier body and on the other side in contact with the cooling chamber.
13. A production device for production of a double-layered copper-coated pipe according to claim 1.
14. A metal coating method in which a sheet metal forwarding to a coating tank with rolls is copper coated by means of electrolysis in said coating tank comprising the following steps: forwarding the sheet metal in a vertical position to the coating tank, ensuring continuous contact of the sheet metal with the rolls which are beared in a carrier body, conveying electric current to the rolls in the rotating structure and thus to the sheet metal through the rolls by means of a coal device connected to the carrier body in the fixed structure, and cooling of the zone in order to keep a temperature of the zone where the electric current is transmitted to the rolls of the carrier body under control.
15. The metal coating method according to claim 14, wherein the sheet metal is guided by a plurality of rollers those successively positioned and each of which is configured to serve as an electrode that conducts a pole of the electric current to the roll.
16. The metal coating method according to claim 15, wherein the electric current is transferred to one side of the sheet metal with at least one roll and to the other side of the sheet metal with at least one other roll.
17. The metal coating method according to claim 15, wherein the sheet metal can be transmitted without flexion on a straight line by means of rollers.
18. The metal coating method according to claim 14, wherein the cooling is carried out by applying cooling fluid to a portion of the carrier body in contact with the coal.
19. The metal coating method according to claim 14, wherein the coals are moved so as to ensure that electrical contact with the roll is not interrupted.
20. The metal coating method according to claim 14, further comprising: producing a double layer copper-coated pipe using the sheet metal.
Description
DESCRIPTION OF THE FIGURES
[0038] In
[0039]
[0040]
DETAILED DESCRIPTION OF THE INVENTION
[0041] In this detailed description, the inventive metal coating device and method designed for use in the production of copper-coated double-layered steel pipes are described with examples that will not have any limiting effect for better understanding of the subject matter.
[0042] Referring to
[0043]
[0044]
[0045] The roll (450) is beared within the lower part (430) by a lower and upper bearing member (431, 433), which is preferably in the roller structure. In more detail, the lower bearing member (431) is located in a bearing support (306) provided at the bottom of the container body (301) and is confined by a lower bearing hatch (4351). A first sealing member (432) within the trapped area is provided to provide fluid sealing. The upper bearing member (433) on the upper side is trapped in an upper bearing hatch (4331) fixed below the tank hatch (302) and there is a second sealing member (434) to provide fluid sealing to the trapped area.
[0046] The rotatable roll (450) in the carrier body (405) consists of a lower roll part (452) and a upper roll part (451) having a diameter narrower than the lower roll part mentioned that there will be an occasional gap. Accordingly, preferably, the upper bearing member (433) is beared on the roll (450) to be seated. The upper roll part (451) exits from the roll gap (3021) of the tank hatch (302) and is connected to the cooling chamber (421) via said chamber joint member (423).
[0047] As generally mentioned above, there is a plurality of coal devices (440) positioned so as to extend perpendicularly at certain intervals along the circumference of the lateral surface of the upper part (420). Each coal device (440) includes a joint sheet (441) that is spaced apart from the upper part (420) and that extends parallel to the upper part (420) in a vertical direction. To this end, the joint sheet (441) is connected to the upper part (420) of the bolt-shaped joint members (442) from both ends thereof, preferably from an upper side and a lower side. A plurality of adjusting bolts (443), each extending substantially parallel to the lateral surface of the upper part (420) from the joint sheet (441), are provided on the joint sheet (441) at regular intervals. On the other hand, there are coals (444) which are in contact with the cooling chamber (421) in the multitude and rotary structures extending vertically on the lateral surface of the upper part (420) as a space therebetween. Accordingly, each adjusting bolt (443) is mated with its corresponding coal (444).
[0048] Accordingly, as the coals (444) melt over time, by the rotating the adjusting bolts (443), the coals (444) is forwarded towards the rotating cooling chamber (421) so that electrical contact is not interrupted. When the coals (444) are completely exhausted, the joint sheet (441) is removed from its position and the coals (444) on the lateral surface of the upper part can be easily replaced.
[0049] While the roll (450) is rotating, which serves as an electrode that receives electric current through the cooling chamber (421) and transmits a polarity of the electric current in this way, is in contact with the sheet metal (100) forwarded by a drive source (not shown) at the same time. Thus, the sheet metal (100) reaches a pole of the electric current through the roll (450). It is also possible for the surface of the sheet metal (100) to be coated with copper by electrolysis, as is known in the art, since the coating container (300) is also immersed in an electrode (not shown) that conducts the other polarity of the electric current.
[0050] As can be understood from the above structural details, it is possible to transmit the current to the three different regions of the sheet metal with the first, second and third roll devices (400, 500, 600) used. Thus, the current strength to be given to each zone can be reduced in a way that does not damage the sheet metal. For example, applying a current of 6000 Amperes to a sheet metal can damage the structure of the sheet metal if current is supplied from a single area. At the same time, a coating with the desired homogeneity may not be possible. However, when a current of 2000 amperes is applied from 3 different regions, both sheet metal is not damaged and it is possible to coat copper with electrolysis method more homogeneously. Reduction of the current to a very high point also avoids high temperatures on the side of the carrier body (405). This provides a significant advantage in terms of easier cooling and no damage to the carrier body (405) material.
[0051] Referring to
[0052] As can also be seen from
REFERENCE NUMBERS
[0053] 100 Sheet metal [0054] 200 Cleaning container [0055] 300 Coating container [0056] 301 Container body [0057] 302 Tank hatch [0058] 3021 Roll gap [0059] 303 Fixing stand [0060] 304 Stand joint member [0061] 305 Anchor [0062] 306 Bearing support [0063] 307 Ground joint part [0064] 400 First roll device [0065] 405 Carrier body [0066] 410 Hatch [0067] 411 Feed chamber [0068] 412 Feed channel [0069] 413 Hatch joint member [0070] 420 Upper part [0071] 421 Cooling chamber [0072] 422 Discharge channel [0073] 423 Chamber joint member [0074] 424 Upper part joint member [0075] 430 Lower part [0076] 431 Lower bearing member [0077] 432 First sealing member [0078] 433 Upper bearing member [0079] 4331 Upper bearing hatch [0080] 434 Second sealing member [0081] 435 Lower part joint member [0082] 4351 Lower bearing hatch [0083] 440 Coal device [0084] 441 Joint sheet [0085] 442 Joint member [0086] 443 Adjusting bolt [0087] 444 Coal [0088] 450 Roll [0089] 451 Upper roll part [0090] 452 Lower roll part [0091] 460 Current plate [0092] 500 Second roll device [0093] 600 Third roll device