Far-infrared radiation multi-stage type heating furnace for steel sheets for hot stamping
11708620 · 2023-07-25
Assignee
Inventors
Cpc classification
F27D11/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D5/0006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27B5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D11/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Steel sheets for hot stamping accommodated in a far-infrared radiation multi-stage type heating furnace are stably supported over a long period of time using steel sheet support members having a small projected area and inhibited from thermally deforming. The far-infrared radiation multi-stage type heating furnace includes: heating units and a ceiling unit arranged in a vertical direction with multiple stages to accommodate aluminum-coated steel sheets or zinc- coated steel sheets for hot stamping; and far-infrared radiation heaters disposed within the heating units and the ceiling unit to heat the steel sheets for hot stamping to a temperature ranging from the Ac.sub.3 transformation temperature to 950° C. Steel sheet support members are mounted to the heating units to support the steel sheets for hot stamping by point contact or line contact with the steel sheets for hot stamping.
Claims
1. A far-infrared radiation multi-stage type heating furnace comprising heating units and steel sheet support members, at least one of the heating units comprising: blocks comprising a thermal insulation material, each of the blocks being disposed around a respective horizontal plane of a respective space having rectangular outer shape for accommodating one of the steel sheets for hot stamping; and far-infrared radiation heaters positioned above and below one of the steel sheets for hot stamping to heat one of the steel sheets for hot stamping, the steel sheet support members being disposed within the heating units to support one of the steel sheets for hot stamping, the far-infrared radiation heating furnace further comprising support pieces that support the steel sheet support members in such a manner that the steel sheet support members are expandable and contractible in a longitudinal direction by thermal expansion or thermal contracts on, the blocks comprising a pair of fixed blocks extending parallel straight and facing each other in a horizontal direction and sandwiching the space in the horizontal plane, a fixed base block sandwiched between lower side of the pair of fixed blocks, a cover block arranged to be opened and closed to open and close an inlet or an outlet of the space that the steel sheet is passed through for hot stamping, and arranged to contact and be sandwiched between upper side of the pair of fixed blocks in a closed position, and the cover block disposed on the fixed base block and directly exposed to an area over the heating unit in the closed position, and the cover block with horizontal length between the pair of fixed blocks at least three times its vertical length.
2. The far-infrared radiation multi-stage type heating furnace according to claim 1, wherein each of the far-infrared radiation heaters comprises a planar structure comprising a plurality of insulator elements arranged in rows, the insulator elements comprising sintered form of far-infrared radiation emitting ceramics, and wherein the plurality of insulator elements are coupled together by a heating wire so as to be capable of being displaced from each other so that the far-infrared radiation heater has flexibility, the heating wire being inserted in heating wire through holes formed in the respective insulator elements.
3. The far-infrared radiation multi-stage type heating furnace according to claim 1, wherein the steel sheet support members comprise a heat resistant alloy.
4. The far-infrared radiation multi-stage type heating furnace according to claim 2, wherein the steel sheet support members comprise a heat resistant alloy.
5. The far-infrared radiation multi-stage type heating furnace according to claim 1, wherein the steel sheets for hot stamping comprise aluminum-coated steel sheets or zinc-coated steel sheets, and wherein the steel sheet support members support the steel sheets for hot stamping by point contact or line contact with the steel sheets for hot stamping.
6. The far-infrared radiation multi-stage type heating furnace according to claim 2, wherein the steel sheets for hot stamping comprise aluminum-coated steel sheets or zinc-coated steel sheets, and wherein the steel sheet support members support the steel sheets for hot stamping by point contact or line contact with the steel sheets for hot stamping.
7. The far-infrared radiation multi-stage type heating furnace according to claim 3, wherein the steel sheets for hot stamping comprise aluminum-coated steel sheets or zinc-coated steel sheets, and wherein the steel sheet support members support the steel sheets for hot stamping by point contact or line contact with the steel sheets for hot stamping.
8. The far-infrared radiation multi-stage type heating furnace according to claim 4, wherein the steel sheets for hot stamping comprise aluminum-coated steel sheets or zinc-coated steel sheets, and wherein the steel sheet support members support the steel sheets for hot stamping by point contact or line contact with the steel sheets for hot stamping.
9. The far-infrared radiation multi-stage type heating furnace according to claim 5, wherein the steel sheet support members that provide a point contact with the steel sheets for hot stamping comprise rectangular tubes, strips or round tubes, disposed laterally and standing vertically and each having upright pins on a surface thereof, or round tubes having a wire wound around a outer circumferential surface thereof.
10. The far-infrared radiation multi-stage type heating furnace according to claim 6, wherein the steel sheet support members that provide a point contact with the steel sheets for hot stamping comprise rectangular tubes, strips or round tubes, disposed laterally and standing vertically and each having upright pins on a surface thereof, or round tubes having a wire wound around a outer circumferential surface thereof.
11. The far-infrared radiation multi-stage type heating furnace according to claim 7, wherein the steel sheet support members that provide a point contact with the steel sheets for hot stamping comprise rectangular tubes, strips or round tubes, disposed laterally and standing vertically and each having upright pins on a surface thereof, or round tubes having a wire wound around a outer circumferential surface thereof.
12. The far-infrared radiation multi-stage type heating furnace according to claim 8, wherein the steel sheet support members that provide a point contact with the steel sheets for hot stamping comprise rectangular tubes, strips or round tubes, disposed laterally and standing vertically and each having upright pins on a surface thereof, or round tubes having a wire wound around a outer circumferential surface thereof.
13. The far-infrared radiation multi-stage type heating furnace according to claim 5, wherein the steel sheet support members that provide a line contact with the steel sheets for hot stamping comprise rectangular bars or strips, disposed laterally and standing vertically and each having an acute angle portion on a surface thereof.
14. The far-infrared radiation multi-stage type heating furnace according to claim 6, wherein the steel sheet support members that provide a line contact with the steel sheets for hot stamping comprise rectangular bars or strips, disposed laterally and standing vertically and each having an acute angle portion on a surface thereof.
15. The far-infrared radiation multi-stage type heating furnace according to claim 7, wherein the steel sheet support members that provide a line contact with the steel sheets for hot stamping comprise rectangular bars or strips, disposed laterally and standing vertically and each having an acute angle portion on a surface thereof.
16. The far-infrared radiation multi-stage type heating furnace according to claim 8, wherein the steel sheet support members that provide a line contact with the steel sheets for hot stamping comprise rectangular bars or strips, disposed laterally and standing vertically and each having an acute angle portion on a surface thereof.
17. The far-infrared radiation multi-stage type heating furnace according to claim 9, wherein the upright pins formed on the upper surface and lower surface of the steel sheet support members.
18. The far-infrared radiation multi-stage type heating furnace according to claim 10, wherein the upright pins formed on the upper surface and lower surface of the steel sheet support members.
19. The far-infrared radiation multi-stage type heating furnace according to claim 11, wherein the upright pins formed on the upper surface and lower surface of the steel sheet support members.
20. The far-infrared radiation multi-stage type heating furnace according to claim 12, wherein the upright pins formed on the upper surface and lower surface of the steel sheet support members.
21. The far-infrared radiation multi-stage type heating furnace according to claim 1, wherein the support pieces support the steel sheet support members where the steel sheet support members are slidable with respect, to the support pieces or/and the support pieces are slidable with respect to the fixed blocks to expand and contract the steel sheet support members in the longitudinal direction of the steel sheet support members by thermal expansion or thermal contraction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(8) The present invention will be described with reference to the accompanying drawings.
(9) 1. Configuration of Furnace Body Frame 12
(10)
(11)
(12)
(13) As illustrated in
(14) The heating units 13-1 to 13-6 each have a space for accommodating steel sheets for hot stamping 15-1 to 15-6, respectively. The space is formed by blocks 16a, 16b, 16c, 16d, 16e, 16f made of a thermal insulation material that are disposed around the space. The heating units 13-1 to 13-6 respectively accommodate steel sheets for hot stamping 15-1 to 15-6 supported approximately horizontally within the spaces.
(15) The heating units 13-1 to 13-6 are a plurality of (six in the case of the far-infrared radiation multi-stage type heating furnace 10 illustrated in
(16) The heating units 13-1 to 13-6 include far-infrared radiation heaters 14-1 to 14-6, respectively, and the ceiling unit 19 includes a far-infrared radiation heater 14-7. The far-infrared radiation heaters 14-1 to 14-7 are positioned above and below the steel sheets for hot stamping 15-1 to 15-6 accommodated in the spaces. Specifically, the far-infrared radiation heaters 14-1, 14-2 are respectively positioned above and below the steel sheet for hot stamping 15-1, the far-infrared radiation heaters 14-2, 14-3 are respectively positioned above and below the steel sheet for hot stamping 15-2, the far-infrared radiation heaters 14-3, 14-4 are respectively positioned above and below the steel sheet for hot stamping 15-3, the far-infrared radiation heaters 14-4, 14-5 are respectively positioned above and below the steel sheet for hot stamping 15-4, the far-infrared radiation heaters 14-5, 14-6 are respectively positioned above and below the steel sheet for hot stamping 15-5, and the far-infrared radiation heaters 14-6, 14-7 are respectively positioned above and below the steel sheet for hot stamping 15-6.
(17) Thus, the far-infrared radiation heaters 14-1 to 14-7 heat corresponding ones of the steel sheets for hot stamping 15-1 to 15-6 from above and below to a temperature ranging from the Ac.sub.3 transformation temperature to 950° C. for example.
(18) The far-infrared radiation heaters 14-1 to 14-7 are flexible planar far-infrared radiation heaters (hereinafter also referred to as “flexible far-infrared radiation heater”) as disclosed in Japanese Registered Utility Model Publication No. 3056522.
(19) The far-infrared radiation heaters 14-1 to 14-7 includes insulator elements 1 as illustrated in
(20) The far-infrared radiation heaters 14-1 to 14-7 generate heat from the inside of the insulator elements 1 upon application of current through the heating wire provided within the insulator elements 1. As a result, a high rate of temperature increase is achieved in the far-infrared radiation heaters 14-1 to 14-7. The far-infrared radiation heaters 14-1 to 14-7 are capable of performing heating at both sides thereof and therefore achieve reduced heat loss. The far-infrared radiation heaters 14-1 to 14-7 emit high-density far-infrared radiation energy and therefore provide for enhanced heating efficiency. The far-infrared radiation heaters 14-1 to 14-7 are flexible, and therefore are less likely to have cracks or deformation at high temperatures and the size thereof can be easily set ranging from a small size to a large size. In addition, the far-infrared radiation heaters 14-1 to 14-7 are thin, and further, capable of heating both sides of the steel sheets for hot stamping 15-1 to 15-6.
(21) Hence, the far-infrared radiation heaters 14-1 to 14-7 are preferable as heaters that are respectively provided in the heating units 13-1 to 13-6 and ceiling unit 19 of the multi-stage heating furnace and required to exhibit high heating efficiency and excellent furnace temperature controllability.
(22) The furnace body frame 12 is a frame made of metal (carbon steel for example) disposed so as to surround the heating units 13-1 to 13-6 and the ceiling unit 19.
(23) As illustrated in
(24) The heating units 13-1 to 13-6 are each constituted by fixed blocks 16a, 16b, fixed blocks 16e, 16f, and cover blocks 16c, 16d. The fixed blocks 16a, 16b are fixedly placed at two opposing sides of the rectangular shape. The fixed blocks 16a, 16b have an approximately rectangular solid outer shape. The fixed blocks 16e, 16f are fixedly placed at the remaining two opposing sides. The fixed blocks 16e, 16f have an approximately rectangular solid outer shape. The cover blocks 16c, 16d are disposed to engage with the fixed blocks 16e, 16f so as to be openable and closable.
(25) Opening and closing of the cover blocks 16c, 16d is actuated by a suitable opening and closing mechanism (not illustrated). In a closed state the cover blocks 16c, 16d are in contact with the front faces, upper faces, and lower faces of the fixed blocks 16e, 16f and end faces in the longitudinal direction of the fixed blocks 16a, 16b. In this manner, the cover blocks 16c, 16d, together with the fixed blocks 16a, 16b and the fixed blocks 16e, 16f thermally insulate the internal spaces of the heating units 13-1 to 13-6 from the outside.
(26) The heating units 13-1 to 13-6 each include metal (steel for example) furnace shells (iron shells) 18, which surround peripheries of the fixed blocks 16a, 16b and fixed blocks 16e, 16f and retain the fixed blocks 16a, 16b and fixed blocks 16e, 16f.
(27) Spacers 17-1 to 17-7 made from steel for example are mounted at heights that conform to the placement heights of the heating units 13-1 to 13-6 and ceiling unit 19 in the furnace body frame 12 by suitable means such as for example welding or fastening. It suffices if the spacers 17-1 to 17-7 exhibit heat resistance to a degree sufficient to avoid deformation that may be caused by heat transmitted from the fixed blocks 16a, 16b, and thus the spacers may be formed from a metal material other than steel.
(28) The fixed blocks 16a, 16b of the heating units 13-1 to 13-6 and ceiling unit 19 are supported (received) by the spacers 17-1 to 17-7 interposed between them and the furnace body frame 12. The fixed blocks 16a, 16b are in contact with the spacers 17-1 to 17-7 but not in contact with the furnace body frame 12.
(29) As described above, the heating units 13-1 to 13-6 and ceiling unit 19, which have the spaces in which the ambient temperature reaches 850 to 950° C. during operation, contact the spacers 17-1 to 17-7 but do not contact the furnace body frame 12. As a result, the heat of the heating units 13-1 to 13-6 and ceiling unit 19 does not transfer to the furnace body frame 12. Consequently, thermal expansion of the furnace body frame 12 is prevented.
(30) For example, the amount of displacement of the furnace body frame 12 at the height at the center in the height direction of the uppermost heating unit 13-6 during operation of the far-infrared radiation multi-stage type heating furnace 10 is approximately 0.4 to 0.5 mm. Thus, deformation of the furnace body frame 12 due to thermal expansion is substantially eliminated.
(31) As a result, the furnace body frame 12 is free of thermal stress, and deformation of the furnace body frame 12 due to thermal expansion or thermal contraction, repetitive thermal stress loading, unstable operation, shortened life of the refractories that are the thermal insulation materials 16 and also damages such as cracking of the furnace body frame 12 are prevented. This results in a significant reduction in the maintenance cost and an improvement in capacity utilization of the far-infrared radiation multi-stage type heating furnace 10.
(32) 2. Support Members 24-1, 24-2 for Far-Infrared Radiation Heater 14-1
(33)
(34) As illustrated in
(35) As illustrated in
(36) The four first metal strips 26 are all provided such that their strong axis direction (direction in which the flexural rigidity (area moment of inertia and section modulus) is greater) approximately corresponds to the direction of gravity. This minimizes deflection of the first metal strips 26.
(37) The first metal strips 26 are fitted into respective slits or holes 27a (slits are illustrated in the figure) formed in the support pieces 27 so as to provide clearance in the slits or holes, and are supported. This configuration allows the first metal strips 26 to be supported by the support pieces 27 so as to be expandable and contractible in a longitudinal direction by thermal expansion or thermal contraction. As a result, the first metal strips 26 are free of thermal stress caused by temperature changes.
(38) Preferably, the first metal strips 26 receive the far-infrared radiation heater 14-1 via an insulating member (made of Al.sub.2O.sub.3 for example) having thermally insulating properties and insulating properties. An example of such insulating member is one having a cross sectional shape with a groove and which is attached to the first metal strip 26 by being fitted into the upper end of the first metal strip 26.
(39)
(40) Similarly to the first metal strips 26, the second metal strips 28 are provided such that their strong axis direction approximately corresponds to the direction of gravity. The second metal strips 28 are fitted into respective slits 28a formed in the first metal strips 26 so as to provide clearance in the slits, and are supported. This configuration allows the second metal strips 28 to be supported by the first metal strips 26 so as to be expandable and contractible in a longitudinal direction by thermal expansion or thermal contraction. As a result, the second metal strips 28 are free of thermal stress caused by temperature changes.
(41) As illustrated in
(42) As described above, outside the thermal insulation materials 16a, 16b, 16e, 16f, the support pieces 27 support the plurality of first metal strips 26 or the plurality of first metal strips 26 and plurality of second metal strips 28.
(43) The first metal strips 26 (1000 mm in overall length) formed from Inconel (registered trademark) were placed at predetermined locations in the heating unit 13-1 of the far-infrared radiation multi-stage type heating furnace 10 in the manner described above, and the far-infrared radiation multi-stage type heating furnace 10 was used 24 hours a day for one month. The result was that the amount of vertically downward deflection at the longitudinal center of the first metal strips 26 was less than 0.1 mm. This demonstrates that the first metal strips 26 are able to support the far-infrared radiation heater 14-1 sufficiently flatly without causing deflection.
(44) As described above, the support members 24-1, 24-2 are capable of supporting the far-infrared radiation heater 14-1 without causing deflection despite their small projected areas, by means of the first metal strips 26 or by means of the first metal strips 26 and the second metal strips 28, even during heating at 850° C. or above.
(45) Thus, the present invention reduces the frequency or number of times of maintenance of the far-infrared radiation heater 14-1 having flexibility, and thereby achieves all of the following: a significant reduction in the maintenance cost of the far-infrared radiation multi-stage type heating furnace 10; an improvement in capacity utilization of the far-infrared radiation multi-stage type heating furnace 10; retention and improvement of heating uniformity of steel sheets for hot stamping 15-1; and size reduction of the far-infrared radiation multi-stage type heating furnace 10 due to its multi-stage configuration.
(46) In the exemplary embodiment illustrated in
(47) 3. Steel Sheet Support Members 30 to 34 for Steel Sheet for Hot Stamping 15-1
(48)
(49) For example, any of the steel sheet support members 30 to 34 each made of a heat resistant alloy can be mounted to the heating unit 13-1 of the far-infrared radiation multi-stage type heating furnace 10. The steel sheet support members 30 to 34 support the steel sheet for hot stamping 15-1 by point contact or by line contact with the steel sheet for hot stamping 15-1.
(50) In the present invention, “point contact” refers to contact by a contact surface, for example of a pin, formed on its front edge and having an outside diameter of approximately 6 mm or less, or contact by the outer circumferential surface for example of a ring having a cross-sectional diameter of approximately 7 mm or less, and “line contact” refers to contact by a contact surface, for example of a sheet, formed on its edge by beveling or other means and having a width of approximately 3 mm or less, contact by the outer circumferential surface of a steel bar having an outside diameter of approximately 6 mm or less, or contact by the outer circumferential surface for example of a thin-wall round tube having an outside diameter of approximately of 20 mm or less. By virtue of the point contact or line contact, dispersion of a coating at the contact region is prevented in the case where the steel sheet for hot stamping is a zinc-coated steel sheet.
(51) Examples of steel sheet support members that provide a point contact with the steel sheet for hot stamping 15-1 include: a rectangular tube 30 in a laterally vertical position having upright pins 30a provided on its surface (see
(52) Examples of steel sheet support members that provide a line contact with the steel sheet for hot stamping 15-1 include: a triangular tube 31 having an equilateral triangular cross section (see
(53) Similarly to the first metal strips 26 and the second metal strips 28, it is preferred that the steel sheet support members 30 to 34 are supported by the support pieces so as to be expandable and contractible in a longitudinal direction by thermal expansion or thermal contraction in order to prevent thermal stress caused by temperature change. For example, the steel sheet support members 30 to 34 are supported by support pieces mounted to the upper surfaces of the thermal insulation materials 16e, 16f so as to be expandable and contractible in a longitudinal direction by thermal expansion or thermal contraction.
(54) If the steel sheet support members 30 to 34 have been deflected in use, they may be turned upside down and relocated so as to project upwardly.
(55) The rectangular tubes 30 formed from Inconel having a cross-sectional shape as illustrated in
(56) In addition, the difference between the maximum temperature and the minimum temperature between regions of the steel sheet for hot stamping 15-1, which was heated to 900° C., was approximately 7° C. Thus, sufficiently uniform heating of the steel sheet for hot stamping 15-1 is achieved.
(57) Other steel sheet support members than the steel sheet support members 30 to 34 illustrated in
(58) The present invention significantly minimizes thermal deformation and other damage to the steel sheet support members 30 to 34. As a result, the present invention achieves a significant reduction in the maintenance cost of the far-infrared radiation multi-stage type heating furnace 10, an improvement in capacity utilization of the far-infrared radiation multi-stage type heating furnace 10 and heating uniformity therein; and size reduction of the far-infrared radiation multi-stage type heating furnace 10 by virtue of the multi-stage configuration.
REFERENCE SIGNS LIST
(59) 10 far-infrared radiation multi-stage type heating furnace 13-1 to 13-6 heating unit 14-1 to 14-7 far-infrared radiation heater 15-1 to 15-6 steel sheet for hot stamping 16a to 16f block made of a thermal insulation material 19 ceiling unit 26 first metal strip 27 support piece 30 to 34 steel sheet support member