Thermal treatment furnace
10900098 ยท 2021-01-26
Assignee
Inventors
Cpc classification
C21D9/63
CHEMISTRY; METALLURGY
C21D9/0056
CHEMISTRY; METALLURGY
International classification
Abstract
A thermal treatment furnace includes a thermal treatment chamber in which a thin metal sheet is continuously conveyed horizontally while being floated by air, in which the thermal treatment chamber includes a plurality of air injection nozzles and a plurality of mist spray nozzles that are arranged along a pass line of the thin metal sheet in the thermal treatment chamber, on a lower side and an upper side of the pass line and so as to be orthogonal to the pass line in a side view.
Claims
1. A thermal treatment furnace for performing a thermal treatment on a thin metal sheet while continuously conveying the thin metal sheet through a heating chamber, a thermal treatment chamber, and a cooling chamber while floating the thin metal sheet, wherein at least the thermal treatment chamber comprises a plurality of air injection nozzles and a plurality of mist spray nozzles, or the plurality of air injection nozzles and a plurality of water droplet injection nozzles, wherein the plurality of air injection nozzles and the plurality of mist spray nozzles, or the plurality of air injection nozzles and the plurality of water droplet injection nozzles are arranged along a pass line of the thin metal sheet in the thermal treatment chamber, on a lower side and an upper side of the pass line and so as to be orthogonal or oblique to the pass line in a side view, wherein the mist spray nozzles or the water droplet injection nozzles are arranged to be adjacent to each of the air injection nozzles and in parallel with each other, and wherein the mist spray nozzles or the water droplet injection nozzles are configured such that at least a tip portion of the mist spray nozzles or a tip portion of the water droplet injection nozzles is inclined toward the adjacent air injection nozzle.
2. The thermal treatment furnace according to claim 1, wherein groups of the plurality of air injection nozzles and the plurality of mist spray nozzles or groups of the plurality of air injection nozzles and the plurality of water droplet injection nozzles are alternately arranged on the lower side and the upper side of the pass line along the pass line.
3. The thermal treatment furnace according to claim 1, further comprising a roller supporting the thin metal sheet from the lower side on the lower side of the pass line on at least one of a vicinity of a boundary between the heating chamber and the thermal treatment chamber and a vicinity of a boundary between the thermal treatment chamber and the cooling chamber.
4. The thermal treatment furnace according to claim 1, wherein a distance between the air injection nozzles and the mist spray nozzles or a distance between the air injection nozzles and the water droplet injection nozzles is the same as or smaller than an outer diameter of one of the air injection nozzles, the mist spray nozzles, and the water droplet injection nozzles.
5. The thermal treatment furnace according to claim 1, wherein the thermal treatment chamber further comprises an upper duct, a lower duct, a plurality of projection portions arranged alternately along a longitudinal direction the upper and lower ducts, and air pads provided on the projection portions of the upper and lower ducts.
6. The thermal treatment furnace according to claim 3, wherein the roller is provided on: the vicinity of the boundary between the heating chamber and the thermal treatment chamber, and the vicinity of the boundary between the thermal treatment chamber and the cooling chamber.
7. The thermal treatment furnace according to claim 1, wherein the thermal treatment chamber comprises the plurality of mist spray nozzles.
8. The thermal treatment furnace according to claim 7, wherein the plurality of air injection nozzles and the plurality of mist spray nozzles are arranged along the pass line of the thin metal sheet in the thermal treatment chamber.
9. The thermal treatment furnace according to claim 8, wherein the mist spray nozzles are arranged to be adjacent to the each of the air injection nozzles and in parallel with each other.
10. The thermal treatment furnace according to claim 9, wherein the mist spray nozzles are configured such that the at least the tip portion of the mist spray nozzles is inclined toward the adjacent air injection nozzle.
11. The thermal treatment furnace according to claim 7, wherein groups of the plurality of air injection nozzles and the plurality of mist spray nozzles are alternately arranged on the lower side and the upper side of the pass line along the pass line.
12. The thermal treatment furnace according to claim 7, wherein a distance between the air injection nozzles and the mist spray nozzles is the same as or smaller than an outer diameter of one of the air injection nozzles and the mist spray nozzles.
13. The thermal treatment furnace according to claim 1, wherein the thermal treatment chamber comprises the plurality of water droplet injection nozzles.
14. The thermal treatment furnace according to claim 13, wherein the plurality of air injection nozzles and the plurality of water droplet injection nozzles are arranged along the pass line of the thin metal sheet in the thermal treatment chamber.
15. The thermal treatment furnace according to claim 14, wherein the water droplet injection nozzles are arranged to be adjacent to each of the air injection nozzles and in parallel with each other.
16. The thermal treatment furnace according to claim 15, wherein the water droplet injection nozzles are configured such that the at least the tip portion of the water droplet injection nozzles is inclined toward the adjacent air injection nozzle.
17. The thermal treatment furnace according to claim 13, wherein groups of the plurality of air injection nozzles and the plurality of water droplet injection nozzles are alternately arranged on the lower side and the upper side of the pass line along the pass line.
18. The thermal treatment furnace according to claim 13, wherein a distance between the air injection nozzles and the water droplet injection nozzles is the same as or smaller than an outer diameter of one of the air injection nozzles and the water droplet injection nozzles.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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MODE FOR CARRYING OUT THE INVENTION
(22) Hereinafter, embodiments for performing the present invention will be described.
(23) A thermal treatment furnace 1 of the present invention contains a heating chamber 1a, a thermal treatment chamber 1b, and a cooling chamber 1c, which are linearly arranged along a horizontal direction as illustrated in
(24) In the heating chamber 1a, the thin metal sheet 20 is heated from a room temperature to a required temperature range. In the thermal treatment chamber 1b, the heated thin metal sheet 20 is hardened by quenching, for example. In the cooling chamber 1c, the thin metal sheet 20 after the thermal treatment is cooled to near the room temperature.
(25) More specifically, as illustrated in the vertical cross-sectional view in a vicinity of the thermal treatment chamber 1b in
(26) The thin metal sheet 20 can be exemplified by a sheet formed of, for example, an aluminum alloy, and rolled to have a thickness of 3 mm or less.
(27) In a vicinity of a boundary between the thermal treatment chamber 1b and the heating chamber 1a and in a vicinity of a boundary between the thermal treatment chamber 1b and the cooling chamber 1c as indicated by a one-dot chain line in
(28) As illustrated in
(29) At the boundary between the heating chamber 1a and the thermal treatment chamber 1b and at the boundary between the thermal treatment chamber 1b and the cooling chamber 1c indicated by the one-dot chain line in
(30)
(31) As illustrated in
(32) The upper duct 2a and the lower duct 2b have an oblong (rectangular) external shape in vertical cross section, and as illustrated in
(33) The upper duct 2a and the lower duct 2b alternately have a plurality of horizontal surfaces 4 opposed to each other and the projection portion 3 having an inverse trapezoidal or a trapezoidal cross shape interposed between the horizontal surfaces 4 along the pass lines PL. And as illustrated in
(34) As illustrated in
(35) The plurality of air nozzles 6 may be vertically provided in a lattice pattern in plan view.
(36) In addition, on the top surface or the bottom surface of the projection portion 3, an air pad 10 is formed as illustrated in
(37) A pair of mist nozzles 8 is vertically provided on the horizontal surface 4 of the lower duct 2b so as to be adjacent to and to interpose the air nozzle 6 therebetween in the direction orthogonal to the pass line PL in
(38) As illustrated in
(39) As illustrated in
(40) In addition, as illustrated in
(41) In the form in which the tip portions 9a of the pair of mist nozzles 8a are symmetrically inclined toward the air nozzle 6 side, the mist 22 injected in a spray form from the pair of mist nozzles 8a is further reliably made to ride on the flow of the high pressure air 21 injected from the adjacent air nozzle 6, to be injected onto the lower side surface of the thin metal sheet 20.
(42) As illustrated in
(43) Under the above condition, the thin metal sheet 20 having a temperature of several hundred degrees of Celsius exhibits a gentle corrugated shape along the pass line PL during being conveyed. And as indicated by arrows in the vertical direction in
(44) As a result, the thin metal sheet 20 is efficiently cooled to near the room temperature at a high cooling rate by the synergistic action of the high pressure air 21 and the mist 22 injected on both surfaces thereof, and the cooling time required for such a cooling process is also shortened. Furthermore, the mist 22 injected from each mist nozzle 8 can be injected onto both surfaces of the thin metal sheet 20 while making the mist 22 ride on the flow of the high speed air 21 injected from the adjacent air nozzle 6.
(45) In addition, since the thin metal sheet 20 can be conveyed while being floated in a continuous loose corrugated shape along the pass line PL in a side view, both surfaces thereof can be cooled relatively uniformly and evenly in a relatively short time without damaging the thin metal sheet 20.
(46) The cooling chamber 1c also has ducts 2a and 2b with air nozzles 6 and mist nozzles 8 arranged in a pattern similar to that in the thermal treatment chamber 1b.
(47) In addition, in ducts 2a and 2b of the heating chamber 1a, air nozzles 6 for injecting high temperature air 21 are arranged in an appropriate pattern.
(48) Therefore, according to the thermal treatment furnace 1 including the thermal treatment chamber 1b, the effects (1) and (4) can be reliably achieved.
(49) As illustrated in
(50) In addition, as illustrated in
(51) Furthermore, as illustrated in
(52) Alternatively, depending on the thermal treatment conditions such as the cooling rate of the thin metal sheet 20, the one air nozzle 6a and the one to four mist nozzle(s) 8b may be appropriately inclined within the range of approximately 10 to 20 degrees toward the upstream side of the pass line PL.
(53) The inclination angle of each of the mist nozzles 8b may be set larger than the inclination angle of the air nozzle 6a.
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(55) As illustrated in
(56) The water droplet nozzle 7 continuously injects multiple water droplets having the diameter of a water droplet particle of 100 m or more. The upper limit value of the diameter of the water droplet particle may be approximately 1 mm.
(57) As illustrated in
(58) Also in this form, the air nozzle 6a may be used instead of the air nozzle 6, or any of the mist nozzles 8a and 8b may be used instead of the mist nozzle 8.
(59) Furthermore, as illustrated in (2) of
(60) Depending on conditions such as cooling rate of the thin metal sheet 20, the recessed groove 4a and the water droplet nozzle 7a can be inclined within the range of approximately 5 to 25 degrees toward the upstream side of the pass line PL with respect to the imaginary vertical line.
(61) In addition, the water droplet nozzle which is inclined only at the tip end side may be disposed in the recessed groove 4a having a rectangular vertical cross section.
(62) On the other hand, as illustrated in
(63) The plurality of air nozzles 6 may be arranged in a lattice pattern in plan view.
(64) In addition, the water droplet nozzle 7 may have a tip portion inclined toward the air nozzle 6 side as in the mist nozzle 8a, or the water droplet nozzle 7 may be inclined with respect to the pass line PL as in the water droplet nozzle 7a.
(65) Furthermore, one water droplet nozzle 7 may be arranged so as to be adjacent to one air nozzle 6 like that illustrated in
(66) In the thermal treatment chamber 1b as described above, the high pressure air 21 and the mist 22 are injected onto both surfaces of the thin metal sheet 20 by using the air nozzles 6 (6a) and the mist nozzles 8 (8a, 8b) in combination, and thus the effects (1) and (2) can be achieved.
(67) Alternatively, the high pressure air 21 and multiple water droplets 23 are injected onto both surfaces of the thin metal sheet 20 by using the air nozzles 6 (6a) and the water droplet nozzles 7 (7a) in combination, and thus the effects (1) and (2) can be achieved, too.
(68) In addition, since the cooling efficiency and the cooling rate can be further enhanced by using the high pressure air 21 from the air nozzles 6 (6a) and multiple water droplets 23 injected from the water droplet nozzles 7 (7a) in combination, and thus the effect (1) can be further enhanced.
(69) Furthermore, the cooling efficiency and the cooling rate of the thin metal sheet 20 can be remarkably enhanced by using the three types of nozzles in combination, including the air nozzles 6 (6a), the mist nozzles 8 (8a, 8b), and the water droplet nozzles 7 (7a).
(70) In addition, depending on the thickness of the thin metal sheet 20, the heating temperature and the like, three types of cooling patterns can be easily selected and utilized, including using the air nozzles 6 (6a) and the mist nozzles 8 (8a, 8b) in combination, using the air nozzles 6 (6a) and the water droplet nozzles 7 (7a) in combination, or using three of the air nozzles 6 (6a), the mist nozzles 8 (8a, 8b), and the water droplet nozzles 7 (7a) in combination.
(71) The present invention is not limited to the embodiments described above.
(72) For example, the thin metal sheet 20 may be, for example, a rolled steel, a steel sheet formed of special steel or a titanium alloy sheet, having a sheet thickness of 3 mm or less.
(73) In addition, for each horizontal surface 4 of the ducts 2a and 2b, sets of the air nozzle 6 (6a) and the mist nozzle(s) 8 (8a, 8b), or sets of the air nozzle 6 (6a) and the water droplet nozzle(s) 7 (7a) may be arranged in a houndstooth pattern or a lattice pattern at substantially equal intervals in plan view.
(74) In addition, an independent air nozzle may be provided. That is, there may be an air nozzle arranged to be adjacent to neither of mist spray nozzle nor water droplet injection nozzle.
(75) Furthermore, the mist supply pipe 13 for feeding the mist 22 to the mist nozzles 8 (8a, 8b) or the water supply pipe 16 for supplying high pressure water to the water droplet injection nozzles 7 (7a) may be piped in a direction parallel to or obliquely intersecting the pass line PL in plan view for each hollow portion of the ducts 2a and 2b.
(76) In addition, three types of the air nozzles 6 (6a), mist nozzles 8 (8a, 8b), and water droplet nozzles 7 (7a) may also be arranged in the cooling chamber 1c in the same manner as in the thermal treatment chamber 1b.
(77) Furthermore, the projection portion 3 may have an outer shape of a semicircular, semi-elliptical or semi-oval shape in the vertical cross section, and the air pad 10 may be arranged near the top surface or near the bottom surface thereof.
(78) In addition, the thermal treatment performed in the thermal treatment chamber 1b is not limited to the quenching, but includes annealing, solution treatment and the like.
(79) In addition, the roller 17 may also be installed on the entrance side of the heating chamber 1a or the exit side of the cooling chamber 1c.
(80) The present application is based on Japanese Patent Application No. 2017-131112 filed on Jul. 4, 2017 and on Japanese Patent Application No. 2018-078044 filed on Apr. 14, 2018, which contents are incorporated herein by reference.
INDUSTRIAL APPLICABILITY
(81) The present invention can reliably provide a thermal treatment furnace capable of enhancing cooling efficiency for a thin metal sheet during a thermal treatment or after the thermal treatment, which is conveyed along the horizontal direction while being floated by air, and capable of easily selecting various cooling rates.
DESCRIPTION OF REFERENCE NUMERALS AND SIGNS
(82) 1 Thermal treatment furnace
(83) 1a Heating chamber
(84) 1b Thermal treatment chamber
(85) 1c Cooling chamber
(86) 6, 6a Air injection nozzle
(87) 7, 7a Water droplet injection nozzle
(88) 8, 8a, 8b Mist spray nozzle
(89) 17 Roller
(90) 20 Thin metal sheet
(91) PL Pass line