TEMPERATURE TREATMENT SYSTEM
20260071818 · 2026-03-12
Inventors
- Oliver Iglauer-Angrik (Stuttgart, DE)
- Kevin Woll (Heilbronn, DE)
- Heiko Dieter (Besigheim, DE)
- Frank Schöttle (Gerlingen, DE)
- Roman Hahn (Freudental, DE)
Cpc classification
F26B2210/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B21/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B15/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F26B21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F26B15/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to an annealing system which can be used to anneal workpieces, for example vehicle bodies. According to the invention, an annealing chamber, a feed air system, an exhaust air system and one or more air circulation systems are provided.
Claims
1. Temperature treatment system for carrying out a temperature treatment of workpieces, the temperature treatment system comprising: a temperature treatment chamber through which the workpieces can be conveyed along a conveying direction; and/or a housing which surrounds the temperature treatment chamber; and/or one or more air circulation systems for circulating air in the temperature treatment chamber, wherein a pressure chamber is formed in each case on both sides of the temperature treatment chamber, via which air can be introduced into the temperature treatment chamber, wherein the two pressure chambers are fluidically connected to one another by a connection channel and/or a connection space, and wherein the connection channel and/or connection space is arranged within or outside the housing and extends above the temperature treatment chamber.
2. Temperature treatment system according to claim 1, wherein the connection channel and/or connection space is integrated into an interior of the housing to realize a compact configuration of the temperature treatment system.
3. Temperature treatment system according to claim 1, wherein the housing includes an outer wall which, at least in portions, forms or includes a thermal insulation region, wherein the connection channel and/or the connection space is arranged completely within an interior of the housing surrounded by the outer wall.
4. Temperature treatment system according to claim 1, wherein the connection channel and/or the connection space is delimited by an outer wall of the housing.
5. Temperature treatment system according to claim 1, wherein the one or more air circulation systems are or comprise heating systems for heating the air.
6. Temperature treatment system according to claim 1, wherein the one or more air circulation systems each comprise one or more fans, an axis of rotation of which are oriented substantially perpendicular to the conveying direction.
7. Temperature treatment system according to claim 1, wherein the connection channel and/or the connection space has a length along the conveying direction which corresponds at least approximately to twice a height of the connection channel and/or the connection space.
8. Temperature treatment system according to claim 1, wherein a partition wall separates the temperature treatment chamber from at least one of the pressure chambers.
9. Temperature treatment system according to claim 8, wherein each partition wall comprises one or more side partition walls, each separating a pressure chamber from the temperature treatment chamber and/or each having one or more inlet openings for supplying air from the respective pressure chamber to the temperature treatment chamber.
10. Temperature treatment system according to claim 9, wherein one or more inlet openings are provided with one or more nozzles or nozzle receptacles.
11. Temperature treatment system according to claim 8, wherein each partition wall comprises one or more filter partition walls which each form a filter stage within the temperature treatment chamber and/or between a pressure chamber and the temperature treatment chamber.
12. Temperature treatment system according to claim 11, wherein the one or more filter partition walls form fine filter stages.
13. Temperature treatment system according to claim 11, wherein the one or more filter partition walls each comprise one or more receptacles for one or more filter elements, for example filter mats.
14. Temperature treatment system according to claim 8, wherein each partition wall comprises one or more distributor spaces which are each arranged and/or formed between a filter partition wall of the partition wall and a side partition wall of the partition wall.
15. Temperature treatment system according to claim 1, wherein the one or more of the one or more air circulation systems each comprise a heating device by which at least some of the air guided in the temperature treatment chamber can be heated.
16. Temperature treatment system according to claim 15, wherein the heating device comprises a central heat exchanger.
17. Temperature treatment system according to claim 16, wherein the one or more of the air circulation systems each are provided with a heating gas flap, by which heating gas from the central heat exchanger can be admixed to the air circulated by the respective air circulation system, in a controlled and/or regulated manner.
18. Temperature treatment system according to claim 1, wherein the temperature treatment system comprises one or more conveying devices for conveying the workpieces through the temperature treatment chamber.
19. Temperature treatment system according to claim 1, wherein the one or more conveying devices each comprise a carrying chain conveyor and/or a roller track.
20. Temperature treatment system according to claim 1, wherein the temperature treatment system further compromises: a feed air system for supplying feed air to the temperature treatment chamber; and/or an exhaust air system for discharging exhaust air from the temperature treatment chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0149] The same or functionally equivalent elements are provided with the same reference signs in all figures.
DETAILED DESCRIPTION OF THE DRAWINGS
[0150] A first embodiment, shown in
[0151] A temperature treatment system 100 comprises in particular a temperature treatment chamber 106 through which the workpieces 102 can be conveyed, by means of a conveying device 108, along a conveying direction 110.
[0152] The temperature treatment chamber 106 is in particular surrounded by a housing 112 which is, for example, substantially cuboid.
[0153] The air located in the temperature treatment chamber 106 is preferably itself temperature-controlled, in particular conditioned, for the temperature treatment of the workpieces 102. For example, cooling and/or heating of the air is provided.
[0154] For this purpose, the temperature treatment system 100 comprises a feed air system 114, by means of which feed air, in particular temperature-controlled fresh air, can be fed to the temperature treatment chamber 106. The feed air system 114 comprises in particular a feed air channel 116, which is designed, for example, as a ventilation tower 118 and serves to suck in air over a hall roof.
[0155] The feed air system 114 further comprises a fan 120 for driving the air and a distributor channel 122, by means of which the air can be distributed to one or two pressure chambers 124 within the housing 122 in order ultimately to be supplied via the pressure chambers 124 to the temperature treatment chamber 106 (see
[0156] As can be seen in particular from
[0157] Humidifying and/or dehumidifying of the air can also optionally be provided by means of corresponding conditioning devices.
[0158] The temperature treatment system 100 further comprises an air circulation system 130, which in particular comprises at least one fan 120 and serves to discharge air from the temperature treatment chamber 106 and to feed it again to the temperature treatment chamber 106.
[0159] Furthermore, the temperature treatment system 100 comprises an exhaust air system 132, which in particular comprises an exhaust air channel 134.
[0160] The exhaust air channel 134 is designed, for example, as a ventilation tower 136 and serves to discharge exhaust air from the temperature treatment chamber 106 and to output the exhaust air to the surroundings, for example over a hall roof.
[0161] The exhaust air system 132 further comprises a fan 120, by means of which air can be extracted from the temperature treatment chamber 106 and output to the surroundings.
[0162] Optionally, a return channel 138 can also be provided, by means of which a connection between the exhaust air channel 134 of the exhaust air system 132 and the feed air channel 116 of the feed air system 114 can be established.
[0163] In particular, exhaust air can be added to the feed air via the return channel 138. For this purpose, in particular a flap and/or a valve device can be provided, together with suitable control and/or regulation, in order to control and/or regulate the admixture of a predetermined exhaust air flow to the feed air.
[0164] As can be seen in particular in
[0165] The temperature treatment system portions 140 are in particular arranged in succession along the conveying direction 110.
[0166] The feed air system 114 is preferably assigned to one temperature treatment system portion 140.
[0167] The exhaust air system 132 is preferably assigned to a further temperature treatment system portion 140.
[0168] In this case, the feed air system 114 and the exhaust air system 132 are preferably arranged on temperature treatment system portions 140 which are arranged at mutually opposing ends of the temperature treatment system 100.
[0169] The air circulation system 130 is in particular assigned to or arranged on one or more temperature treatment system portions 140 which are arranged between the feed air system 114 and the exhaust air system 132.
[0170] In the first embodiment of the temperature treatment system 100 shown in
[0171] The fans 120 of the feed air system 114, the air circulation system 130 and/or the exhaust air system 132 are preferably oriented in such a way that their axes of rotation 142 run substantially parallel to the conveying direction 110.
[0172] An installation space and/or maintenance space for the fans 120 thus extends substantially parallel to the conveying direction 110, away from the respective fan 120, whereby a space required laterally for the maintenance of the temperature treatment system 100 can be minimized.
[0173] As can also be seen in particular in
[0174] Such an embodiment of the feed air system 114 allows the temperature treatment system 100 to be preferably particularly short, since no further components are required along the conveying direction 110 beyond the temperature treatment chamber 106. Rather, the air is sucked in, in an intermediate region spaced apart from the end of the temperature treatment chamber 106, it nonetheless being possible for the air to be supplied to the temperature treatment chamber 106 at the immediate end of the temperature treatment chamber 106.
[0175] A second embodiment of a temperature treatment system 100 illustrated in
[0176] The resulting reduced installation space along the conveying direction 110 is compensated in this embodiment in particular by the rotation axes 142 of the fans 120 (see in particular
[0177] The individual components of the feed air system 114, the air circulation system 130 and the exhaust air system 132 can thereby be arranged particularly closely next to one another and/or in succession.
[0178] Such a shortened configuration of the temperature treatment system 100 can be provided in particular in the case of transverse conveying of the workpieces 102.
[0179] In the case of such transverse conveying, a longitudinal axis of the workpieces 102 is oriented substantially horizontally and perpendicularly to the conveying direction 110, while the workpieces 102 are conveyed along the conveying direction 110, through the temperature treatment chamber 106. As can be seen in particular from
[0180] As can also be seen from
[0181] The air is sucked out of the temperature treatment chamber 106 by means of the exhaust air system 132 at the first two holding positions (temperature treatment system portions 140), i.e. at the holding positions I and II (cycle 1 and cycle 2). In this case, an underfloor channel 147 is provided in the temperature treatment system portion 140 forming the holding position II. The underfloor channel 147 runs below the temperature treatment chamber 106 and connects the suction opening 145 of the holding position II to the fan 120 of the exhaust air system 132.
[0182] A suction opening 145 of the holding position I is connected by means of a connecting region 149 to the end of the underfloor channel 147 of the holding position II facing the suction opening 145 of the holding position II, so that both the air from the holding position I and the air from the holding position II can be drawn in via the underfloor channel 147 of the holding position II.
[0183] At the three further temperature treatment system portions 140, i.e. at the holding positions III, IV and V (cycle 3, cycle 4, cycle 5), suction is carried out by means of the air circulation system 130. In this case, each of the holding positions III, IV, V preferably has a separate underfloor channel 147 for connecting the suction opening 145 of each holding position III, IV, V to the fan 120 of the air circulation system 130.
[0184] The air supplied via the feed air system 114 in the last cycle (holding position V, cycle 5) thus flows through the temperature treatment chamber 106 counter to the conveying direction 110, since the latter initially circulates in the temperature treatment system portions 140 forming the holding positions III, IV, V, by means of the air circulation system 130, and is finally discharged by means of the exhaust air system 132 in the temperature treatment system portions 140 forming the holding positions I and II.
[0185] As can finally be seen in
[0186] Since the access opening 148 could result in a structural weakening of the ventilation tower 118, 136, said tower is preferably provided with a reinforcing structure 150.
[0187] The reinforcing structure 150 is in particular a rectangular reinforcing ring or stiffening ring which can be pushed through the access opening 148 into the portion 152 of the ventilation tower 118, 136 having the access opening 148.
[0188] By means of the reinforcing structure 150, in particular an additional external stiffening or reinforcement or other support of the ventilation tower 118, 136 can thus be avoided, as a result of which the entire structure of the temperature treatment system 100 can be simplified.
[0189] Such a reinforcement of the ventilation tower 118, 136 can also be provided in other embodiments of the temperature treatment system 100, for example according to the first embodiment shown in
[0190] Otherwise, the second embodiment of the temperature treatment system 100 shown in
[0191] A third embodiment of a temperature treatment system 100 shown in
[0192] Rather, the distributor channels 122 in the third embodiment shown in
[0193] The housing 112 comprises one or more outer walls 154, which are in particular provided with an insulation region 156 or form such an insulation region. As a result, a large temperature difference between the interior of the housing 112 and the surroundings thereof can be maintained with the lowest possible energy loss.
[0194] Preferably, both the outer wall 154 and the insulation regions 156 surround the temperature treatment chamber 106 completely or at least in portions, in particular on at least two sides or at least three sides, in cross section.
[0195] In the third embodiment of the temperature treatment system 100 shown in
[0196] The connection space 158 in particular interconnects the two pressure chambers 124 on either side of the temperature treatment chamber 106.
[0197] In this case, the connection space 158 preferably extends over an entire width of the temperature treatment chamber 106, above the temperature treatment chamber 106, in particular in a vertical projection of the temperature treatment chamber 106 up to the outer wall 154 and/or the insulation region 156.
[0198] A partition wall 160 separates the connection space 158 from the temperature treatment chamber 106.
[0199] This partition wall 160 is in particular designed as a non-insulated metal sheet or comprises such a metal sheet.
[0200] The partition wall 160 comprises in particular a ceiling partition wall 162 which delimits the temperature treatment chamber 106 at the top and separates it from the connection space 158.
[0201] In the ceiling partition wall 162, one or more inlet openings 164 may optionally be provided for supplying air to the temperature treatment chamber 106.
[0202] The connection space 158 preferably extends over a greater length along the conveying direction 110 than a feed opening 166 for supplying the air from the air circulation system 130 into the interior of the housing 112.
[0203] It can be advantageous if, as shown in
[0204] With regard to an optimal distribution of the supplied air to both pressure chambers 124, one or more guide elements 168 are preferably provided. For example, one or more guide elements 168 can be arranged in the connection space 158 in order to distribute the air flow flowing into the connection space 158 along the conveying direction 110 and uniformly to both pressure chambers 124. As a result, an inflow onto the workpieces 102 in the temperature treatment chamber 106 that is uniform on both sides can preferably be achieved.
[0205] As can also be seen from
[0206] In particular, the filter stage 126 assigned to the air circulation system 130 is a coarse filter stage 170.
[0207] The further filter stage 126 is in particular a fine filter stage 172. Preferably, the further filter stage 126 is arranged in the interior of the housing 112, for example integrated into the partition wall 160.
[0208] For this purpose, the partition wall 160 comprises in particular a side partition wall 174 which faces the temperature treatment chamber 106, and a filter partition wall 176 assigned to the respective pressure chamber 124.
[0209] One or more receptacles for one or more filter elements, in particular filter mats 178, which form the filter stage 126, are arranged and/or formed in the filter partition wall 176.
[0210] A distributor space 180 is preferably formed between the filter partition wall 176 and the side partition wall 174 in order to be able to distribute the air flowing through the filter stage 126 uniformly to one or more inlet openings 164 in the side partition wall 174 and thus to enable a uniform supply of the air to the temperature treatment chamber 106.
[0211] Since the connection space 158 connects the two pressure chambers 124 to one another over a long length along the conveying direction 110, and thus allows a large channel cross section even at a low height, the entire temperature treatment system 100 can be of compact design. In addition, thermal insulation can preferably be optimized by the use of the connection space 158.
[0212] Finally, it can also be seen from
[0213] In particular when using the temperature treatment system 100 for heating workpieces 102, it can be provided that the air is strongly heated by means of one or more heat exchangers 128. A uniform inflow into the respective heat exchanger 128 is preferably ensured by means of one or more guide elements 168, in particular baffles 182.
[0214] In particular, different stages of guide elements 168 can be provided in this case, in order to distribute the air flowing in, for example from the base region 146, to the heat exchanger 128 uniformly in the vertical direction first, and then subsequently or simultaneously in the horizontal direction (see in particular
[0215] As a result, uniform heating of the air circulated by means of an air circulation system 130, for example, can be achieved.
[0216] Otherwise, the third embodiment of the temperature treatment system 100 shown in
[0217] In a further embodiment of a temperature treatment system 100 that is not shown, it can be provided that the connection space 158 is formed in multiple parts and in particular enables an air flow in both directions, perpendicularly to the conveying direction 110 and horizontally.
[0218] This can be advantageous in particular if a one-sided circulating air return suction is undesirable and a recirculation of air through the connection space 158 is thus also desired.
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[0220] It is also not apparent in
[0221] By using connection spaces 158 according to the third embodiment shown in
[0222] Otherwise, the fourth embodiment shown in