Plasma spraying apparatus
09888557 ยท 2018-02-06
Assignee
- FUJI ENGINEERING CO., LTD. (Osaka, JP)
- FUJIGIKEN CO., LTD. (Osaka, JP)
- WEST NIPPON EXPRESSWAY COMPANY LIMITED (Osaka, JP)
Inventors
Cpc classification
H05H1/42
ELECTRICITY
International classification
B23K10/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A plasma spraying apparatus includes a cathode, a first gas nozzle surrounding a head of the cathode therewith to form a first gas path outside of the cathode, and a second gas nozzle surrounding the first gas nozzle therewith to form a second gas path outside of the first gas nozzle. The second gas nozzle is formed with a wire path through which a wire is inserted such that a distal end of the wire is disposed in front of a nozzle opening of the second gas nozzle. The wire path has a substantially rectangular cross section having a longer side extending in a direction in which a plasma flame extends, the wire path causing the wire to bend within an elastic limit of the wire.
Claims
1. A plasma spraying apparatus comprising: a cathode; a first gas nozzle surrounding a head of said cathode therewith to form a first gas path between said cathode and said first gas nozzle; and a second gas nozzle surrounding said first gas nozzle therewith to form a second gas path between said first gas nozzle and said second gas nozzle, wherein said second gas nozzle is formed with a wire path having a single wire inserted thereinto such that a distal end of said single wire is disposed in front of a nozzle opening of said second gas nozzle, wherein a first gas sprayed through said first gas nozzle is turned into plasma flame by arc generated between said cathode and said distal end of said single wire, said distal end of said single wire is molten into droplets by said plasma flame, and said droplets are sprayed onto a target by both said plasma flame and a second gas being sprayed through said second gas nozzle, and wherein said wire path has a substantially rectangular cross section having a longer side extending in a direction in which said plasma flame extends, said wire path causing said single wire to bend within an elastic limit of said single wire into a circular arc having a center situated at a first side of said single wire, and said cathode being situated at a second side of said single wire that is opposite to said first side of said single wire such that a portion of said single wire including said distal end of said single wire extends in said direction in which said plasma flame extends.
2. The plasma spraying apparatus as set forth in claim 1, wherein said substantially rectangular cross section of said wire path has a shorter side having a length greater than a diameter of said single wire by greater than or equal to 3% and less than 10%.
3. The plasma spraying apparatus as set forth in claim 1, wherein said wire path comprises a first wire path having an exit disposed in a vicinity of said nozzle opening of said second gas nozzle, and a second wire path inclined relative to said first wire path by a predetermined angle.
4. The plasma spraying apparatus as set forth in claim 3, wherein said predetermined angle is in a range of 1 degree to 5 degrees.
5. The plasma spraying apparatus as set forth in claim 3, wherein said first wire path and said second wire path are spaced away from each other.
6. The plasma spraying apparatus as set forth in claim 3, wherein said first wire path and said second wire path are spaced away from each other by greater than or equal to 3 millimeters and less than or equal to 10 millimeters.
7. The plasma spraying apparatus as set forth in claim 1, further comprising a third gas nozzle disposed between said first gas nozzle and said second gas nozzle to form a third gas path between said first gas nozzle and said third gas nozzle.
8. The plasma spraying apparatus as set forth in claim 1, wherein said substantially rectangular cross section of said wire path is chamfered at corners thereof such that said single wire does not make contact with said corners.
9. The plasma spraying apparatus as set forth in claim 1, wherein said substantially rectangular cross section of said wire path is rounded at corners thereof such that said single wire does not make contact with said corners.
10. The plasma spraying apparatus as set forth in claim 3, wherein said first wire path is linear.
11. The plasma spraying apparatus as set forth in claim 3, wherein said first wire path is curved.
12. The plasma spraying apparatus as set forth in claim 3, wherein said second wire path is linear.
13. The plasma spraying apparatus as set forth in claim 3, wherein said second wire path is curved.
14. The plasma spraying apparatus as set forth in claim 3, wherein said first wire path has a substantially rectangular cross section.
15. The plasma spraying apparatus as set forth in claim 3, wherein said second wire path has a substantially rectangular cross section.
16. The plasma spraying apparatus as set forth in claim 1, wherein a perimeter of said first gas path is parallel to a perimeter of said second gas path.
17. The plasma spraying apparatus as set forth in claim 7, wherein a perimeter of said first gas path is parallel to a perimeter of said second gas path and said perimeter of said second gas path is parallel to a perimeter of said third gas path.
18. The plasma spraying apparatus as set forth in claim 1, wherein said portion of said single wire including said distal end of said single wire extends parallel to said direction which said plasma flame extends.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
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DESCRIPTION OF THE PREFERRED EMBODIMENT
(7)
(8) As illustrated in
(9) As illustrated in
(10) The first gas nozzle 10 surrounds a head of the cathode 40 such that the first gas path 11 is defined between the first gas nozzle 10 and the cathode 40. A first gas comprising an inert gas such as a nitrogen gas or an argon gas is supplied into the first gas path 11. As an alternative, compressed air may be used as the first gas. The first gas supplied through the first gas path 11 is sprayed through the nozzle opening 12 of the first gas nozzle 10 towards the nozzle opening 22 of the second gas nozzle 20.
(11) The third gas nozzle 30 surrounds the first gas nozzle 10 such that the third gas path 31 is defined between the first gas nozzle 10 and the third gas nozzle 30. A third gas to be supplied into the third gas path 31 comprises compressed air or a carbon dioxide gas, for instance.
(12) The second gas nozzle 20 surrounds the third gas nozzle 30 such that the second gas path 21 is defined between the third gas nozzle 30 and the second gas nozzle 20. A second gas to be supplied into the second gas path 21 comprises compressed air or a carbon dioxide gas, for instance.
(13) The wire path 50 includes a first wire path 51a having a wire exit 51b formed in the vicinity of the nozzle opening 22 of the second gas nozzle 20, and a second wire path 52a through which the wire W is supplied at a predetermined angle relative to the first wire path 51a.
(14) The wire path 50 causes the wire W to bend within elastic limit thereof by means of the first wire path 51a and the second wire path 52a.
(15) As illustrated in
(16) A length a of a longer side of the first wire path 51a is designed to be longer than a diameter d of the wire W by 10% to 95% both inclusive. A length b of a shorter side of the first wire path 51a is designed to be longer than a diameter d of the wire W by 3% to 10% only 3% inclusive.
(17) In the current embodiment, the wire W has a diameter of 1.6 mm, a longer side of the first wire path 51a has a length a longer than a diameter d of the wire W by about 0.2 to about 1.5 mm, and a shorter side of the first wire path 51a has a length b longer than a diameter d of the wire W by about 0.05 to about 0.15 mm. The longer and shorter sides of the second wire path 52a are designed to have the same lengths as those of the first wire path 51a.
(18) It should be noted that the substantially rectangular cross-sections of both the first wire path 51a and the second wire path 52a may be chamfered or rounded at corners unless the corners make contact with the wire W. Accordingly, only a force oriented perpendicular to the longer or shorter side of both the first wire path 51a and the second wire path 52a acts on the wire W in the current embodiment in the first wire path 51a and the second wire path 52a.
(19) An inclination angle formed between the first wire path 51a and the second wire path 52a is defined as an angle formed between a central axis of the first wire path 51a and a central axis of the second wire path 52a. In the current embodiment, the inclination angle is set in the range of about 1 to about 5 degrees both inclusive.
(20) The second wire guide 52 through which the second wire path 52a passes is disposed away from the first wire path 51a by a space c. In the current embodiment, the space c is set in the range of about 3 to about 10 mm both inclusive.
(21) In the plasma spraying torch 2 in the current embodiment, as mentioned above, since the first wire path 51a and the second wire path 52a are spaced away from each other by a space c, the first wire path 51a and the second wire path 52a, both of which are linear, cooperate with each other to artificially define the curved wire path 50 to thereby cause the wire W to bend within elastic limit.
(22) Though the first wire path 51a and the second wire path 52a are designed linear in the current embodiment, they may be designed curved.
(23) The battery 4 is electrically connected at an anode thereof with the first wire guide 51, and hence, is indirectly electrically connected with the wire W inserted into the first wire path 51a formed through the first wire guide 51. The battery 4 is electrically connected at a cathode thereof with the cathode 40. The battery 4 may be directly electrically connected at an anode thereof with the wire W.
(24) In the plasma spraying apparatus 1 having the above-mentioned structure, when the wire W wound around the wire reel 5 is fed to the plasma spraying torch 2 through the wire feeder 7, the original deformation of the wire W, that is, the intensive characteristic by which the wire W tends to be curled, is removed by means of the wire straightener 6, and thus, the wire W is straightened to a slightly curled condition.
(25) Then, the wire W is fed to the wire path 50 through the wire-feeding tube 8. In the wire path 50, only a force oriented perpendicular to a longer side or a shorter side of both the first wire path 51a and the second wire path 52a acts on the wire W, and thus, as illustrated in
(26) Since both the first wire path 51a and the second wire path 52a are designed to have a rectangular cross-section having a longer side extending in a direction in which the plasma flame F extends, the original deformation of the wire W is released in a direction in which the plasma flame F extends. In particular, in the current embodiment, since the shorter side of the first wire path 51a and the second wire path 52a is designed to have a length b greater than a diameter d of the wire W by X % (3X<10), the original deformation of the wire W is not released in a direction perpendicular to a direction in which the plasma flame F extends. Accordingly, even if a tip end of the wire W were slightly shifted in a direction in which the plasma flame F extends, the tip end is prohibited from shifting in a direction perpendicular to a direction in which the plasma flame F extends, and thus, it is ensured that the tip end of the wire W is disposed on an axis of the plasma flame F.
(27)
(28) In
(29) In these cross-sections A, B and C, when the wire W makes contact with not only a longer side, but also a shorter side, only a force oriented perpendicular to the longer side and shorter side acts on the wire W.
(30) Since it is not possible to completely straighten the wire W even by the wire straightener 7, the wire W unavoidably has the original deformation, specifically, a characteristic of curling. Furthermore, the wire-feeding tube 8 is varied into various shapes in dependence on a position of the plasma spraying torch 2 in assembling the plasma spraying apparatus 1, and hence, cannot keep a uniform shape. Thus, when the wire W having the original deformation is being fed through the wire-feeding tube 8 which is not capable of keeping a uniform shape, a bending force and/or a torsion force act on the wire W in dependence on a shape of the wire-feeding tube 8. The wire W randomly bends like a spring in elastic limit thereof by such forces, and is fed in meandering condition through the wire-feeding tube 8 in a route at which the forces are stabilized.
(31) While the wire W is being fed in the wire path 50, when the wire W makes contact with a shorter side of the above-mentioned cross-section A, B or C, a force oriented perpendicular to a shorter side, that is, a force oriented in parallel with a direction (hereinafter, referred to as direction X) in which the plasma flame F extends acts on the wire W, and hence, the original deformation is released in the direction X. If a force oriented in a direction (hereinafter, referred to as direction Y) perpendicular to the direction X acts on the wire W while the wire W makes contact only with a shorter side, the wire W randomly moves by spaces formed in the length b, and makes contact with a longer side, however, in which case, since a force oriented in a direction perpendicular to a longer side, that is, in the direction Y acts on the wire W, the wire W is able to stably keep its position.
(32) In contrast, when the wire W makes contact with a curved surface of a circular cross-section or an elongated circular cross-section, since a force oriented perpendicular to the curved surface, the wire W can freely move along the curved surface. In particular, when a torsion force acts on the wire W, the wire W freely rotates along a curved surface, and hence, the wire W is not prevented from being distorted. Thus, a direction in which a torsion force acts on the wire W is not fixed, and hence, a position of the wire W is not fixed.
(33) As mentioned above, the plasma spraying apparatus 1 in accordance with the present embodiment makes it possible to stably supply the wire W at its tip end to a center of the plasma flame F. The first gas sprayed through the first gas path 11 is turned into the plasma flame F by both the wire W indirectly electrically connected to an anode of the battery 4 through the first wire guide 51, and the cathode 40 electrically connected to a cathode of the battery 4. The plasma flame F melts the wire W into droplets D, and sprays the droplets D. The droplets D are reduced in size and further accelerated by the second gas sprayed through the second gas path 21 and leaving the second gas nozzle 20, and sprayed onto the target T to thereby form the sprayed coating S.
(34) In the plasma spraying apparatus 1 in accordance with the present embodiment, a third gas flow sprayed through the third gas path 31 defined between the first gas path 11 and the second gas path 21 absorbs heat from the plasma flame F to thereby generate a high-temperature gas jet G. The high-temperature gas jet G drastically restricts the second gas sprayed outside of the gas jet G to thereby weaken turbulence generated externally of the plasma flame F, resulting in that a gas of the plasma flame F is prevented from dispersing, and surfaces of the droplets D are reduced in being oxidized. Thus, it is possible to form the sprayed coating S which is difficult to be oxidized, onto the target T.
(35) In the case that the third gas comprises an inert gas such as a nitrogen gas or an argon gas, as mentioned above, the third gas drastically restricts the second gas to thereby avoid turbulence generated externally of the plasma flame F, and further generates a high-temperature inert gas jet which absorbed heat from the plasma flame F, externally of the plasma flame F. Thus, particles comprising the droplet D are reduced in size with components of the particles being prevented from varying by virtue of the high-temperature inert gas jet, and further, accelerated, resulting in that the particles are protected from being oxidized by the second gas. Thus, it is possible to form the sprayed coating S which is further difficult to be oxidized.
(36) Though both the first wire path 51a and the second wire path 52a in the present embodiment are designed to have a substantially rectangular cross-section extending in a direction in which the plasma flame F extends, one of them may be designed to have such a cross-section, in which case, the original deformation of the wire W can be released in a direction in which the plasma flame F extends, by means of the first wire path 51a or the second wire path 52a having a substantially rectangular cross-section extending in a direction in which the plasma flame F extends, to thereby supply a tip end of the wire W to a center of the plasma flame F.
INDUSTRIAL APPLICABILITY
(37) The plasma spraying apparatus in accordance with the present invention is useful for forming an anti-corrosive sprayed coating on a surface of a steel structure.
(38) While the present invention has been described in connection with certain preferred embodiments, it is to be understood that the subject matter encompassed by way of the present invention is not to be limited to those specific embodiments. On the contrary, it is intended for the subject matter of the invention to include all alternatives, modifications and equivalents as can be included within the spirit and scope of the following claims.