METHOD FOR HEATING A BLANK AND HEATING SYSTEM
20230358473 · 2023-11-09
Inventors
- Manuel López Lage (Sant Esteve Sesrovires, ES)
- Jordi Castilla Moreno (Sant Esteve Sesrovires, ES)
- Daniel Merino Fernández (Sant Esteve Sesrovires, ES)
Cpc classification
F27B9/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/202
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D3/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21D9/0068
CHEMISTRY; METALLURGY
F27B9/2407
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A method for manufacturing a steel component from a blank is provided. Firstly, a blank is placed in a conveyor system. Then, at least a preselected zone of the blank is preheated while the blank is retained at a predetermined preheating location. Finally, the blank is conveyed through a furnace. A preheating system for heating blanks in a production line is also provided.
Claims
1.-15. (canceled)
16. A method for manufacturing a steel component from a blank, the method comprising: placing a blank on a conveyor system, the blank comprising a first zone made from a first material and a second zone made from a second material, different than the first material; followed by preheating the blank by performing a preheating process comprising (1) directing heat at the first zone and not the second zone; or (2) applying heat to both the first and second zones such that the second zone is heated to a temperature different than a temperature of the first zone; and after completion of the preheating, conveying the preheated blank through a furnace having a furnace temperature at or above an Ac3 temperature of the first zone or the second zone of the blank for heating the blank to a temperature equal to or above the Ac3 temperature of the first zone or the second zone, and wherein the preheating comprises retaining the blank at a predetermined preheating location upstream of the furnace.
17. A method for manufacturing a steel component from a blank, the method comprising: placing a blank on a conveyor system, the blank comprising multiple zones, at least two of which have a different thickness or are made from a different material; preheating the blank by a preheating system by performing a preheating process comprising (1) directing heat to at least one of the zones and not to at least one other zone; or (2) heating at least two zones to different temperatures, the temperatures being below an Ac3 temperature of the at least two zones of the blank; and conveying the preheated blank through a furnace, positioned downstream from the preheating system and having a furnace temperature at or above the Ac3 temperature of the at least two zones of the blank for heating the blank to a temperature equal to or above the Ac3 temperature of the at least two zones.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0040] Non-limiting examples of the present disclosure will be described in the following, with reference to the appended drawings, in which:
[0041]
[0042]
[0043]
[0044]
[0045]
DETAILED DESCRIPTION
[0046]
[0047] According to an example, the conveyor system 120 may comprise a feeding system and a furnace conveyor system to transport the bank through the furnace.
[0048] The blank 1 may be placed in the conveyor system 120 by e.g. an industrial transfer robot (not shown) e.g. after being cut from a steel coil, and may be conveyed to a preheating system 110.
[0049] The preheating system 110 may comprise a plurality of heating elements 111 arranged in a base 112 to preheat the blank 1 before entering the furnace. The base 112 of the preheating system 110 may be of any suitable size and shape, which may be determined e.g. by the dimensions of the blank. Accordingly, the number, size and shape of heating elements 111 may vary depending on e.g. the blank size or the desired blank configuration. A further support structure 113 may be used to fix the base 112 of the preheating system 110 to the floor. In other examples the support structure may be e.g. be coupled to the conveyor system, suspended from the ceiling or anchored to a wall.
[0050] The blank 1 may then be conveyed into the furnace 130 where it may be heated to a predetermined temperature, e.g. above an austenization temperature, so as to prepare the blank 1 for subsequent processes. In particular, the blank may be heated to Ac3 or above.
[0051] Depending on the blank material and the coating, the furnace temperature and the time that the blank remains in the furnace can vary. When the blank has been subjected to a preheating process as described before, the time in the furnace may be reduced compared to the time in the furnace of those blanks without a preheating process.
[0052] The heated blank 1 may exit the furnace 130 through a door (not shown) configured to open when the blank 1 arrives, and to close again when the blank 1 has left the furnace 130. The blank 1 may be transported by a conveyor system 120, e.g. a conveyor belt or a roller conveyor, to a centering system 140, e.g. a centering table, to be correctly positioned for subsequent processing.
[0053] A centering table 140 may comprise a plurality of centering pins 141 which can be passive or can be actively moved to correctly position and center the blank 1.
[0054] After being centered and correctly positioned, the blank 1 may be transferred to a press tool 150 for deforming and quenching. The blank 1 may be transferred to the press tool 150 by a transferring system (not shown), e.g. an industrial transfer robot, which may pick up the blank 1 from the conveyor system 120 and may place it on the pressing tool 150. The transfer robot may comprise a plurality of gripping units to grab and pick up the blank 1 from the conveyor means 120.
[0055] The pressing tool 150 may be provided with cooling means (not shown) e.g. water supplies or any other suitable means, to quench the blank 1 simultaneously to the hot deforming process. The cooling or quenching may be done homogeneously for the whole blank 1. Typically, channels may be provided in the dies of the press tool through which cold water or other liquid may be conducted. This cools the contact surfaces of the press tool so that the blank is quenched.
[0056]
[0057] In the example shown in
[0058] A conveyor system comprising conveyor rollers o walking beams may alternatively be used. In these examples, the conveyor system is stopped by avoiding the upward and forward movement of the walking beams or the rotation of the conveyor rollers.
[0059] The conveyor system 120 may be programmed to stop its movement when the blank is detected in the appropriate position e.g. by using sensors. In other examples the conveyor system may be programmed to stop periodically e.g. every 15-30 seconds.
[0060]
[0061] The retractable pins 122 may be configured to be up-and-down displaceable for retaining the blank 1 in a predetermined preheating location i.e. avoiding its forward movement in the conveying direction (indicated by the x axis). A difference between this example and the example of
[0062] The retractable pins 122 may be retracted e.g. under the conveyor system 120, until the blank 1 is detected e.g. by sensors. The retractable pins 122 may be configured to move up to retain the blank 1 when the blank 1 is detected in an adequate location, i.e. a predetermined preheating location.
[0063] The retractable pins 122 may be in the “up” position, i.e. totally protruding, before and during the preheating process. In the same way, the retractable pins 122 may be configured to retract after the preheating process has finished, and so, the blank 1 may be conveyed to the furnace.
[0064]
[0065] The elevating bars 123 may be configured to be perpendicularly displaceable (indicated by the y axis) to the conveying direction when the bank 1 is detected, e.g. by sensors, in a predetermined preheating location. According to this example, the elevating bars 123 may be “hidden”, i.e. retracted, until the blank 1 is in a predetermined preheating location. At that time, the elevating bars 123 would project outwardly and the blank 1 would therefore be perpendicularly displaced from the conveyor system 120 i.e. it would be elevated above the conveyor system (while the conveyor continues operating). The blank 1 may then be subjected to a preheating process. After the preheating process, the elevating bars 123 may be retracted and thus, the blank 1 may be placed onto the conveyor system 120 to be conveyed to the furnace.
[0066]
[0067]
[0068] the thickest zone of the blank. By preheating the thick zone of a blank, a homogeneous heating e.g. above Ac3, of the whole blank may be assured in a subsequent heating process.
[0069] Additionally, in a blank with zones of different thickness and/or different materials, e.g. a TWB, each zone may be preheated at a different temperature.
[0070] In other examples, the whole blank may be preheated at T.sub.1 while a predetermined zone, e.g. the thickest zone of the blank, may be preheated at T.sub.2, wherein T.sub.2 is higher than T.sub.1.
[0071] In some examples, the blank may be made of different materials (e.g. different types of steels) which may e.g. have different thermal conductivities. Each material may therefore need to be heated for a specific heating time to reach a predetermined temperature. In such cases the different material areas may be heated at different temperatures.
[0072]
[0073] In other examples, the blank may be selectively preheated.
[0074] The pattern may be formed by arranging the heating elements 111a, 111b in a predetermined manner (not shown) or it may be created by selectively switching off certain heating elements 111b while leaving other heating elements 111a switched on as shown in
[0075] In further examples, the amount of heat delivered by the heating elements 111a that are switched on may be regulated, e.g. controlling the power of the heating elements, so that different temperatures may be achieved.
[0076] By switching the heating elements on or off and/or by controlling the output power of the heating elements a tailored heating pattern taking into account e.g. the dimensions of the blank and/or the position of the preselected zone of the blank to be preheated, can be provided.
[0077] In some examples, the heating elements 111a, 111b may be infrared heaters, particularly infrared heating lamps. In other examples, induction heaters, flame or hot air directed to the blank may be used. In other examples, the blank may be heated by contacting a heating plate which is heated by electric heaters embedded in the heating plate or by a hot fluid, e.g. water, oil, etc., flowing through channels.
[0078]
[0079] When the preheating process is ended, the blank may be conveyed through the furnace 550 to be heated e.g. at a temperature above Ac3. The blank may be in the furnace for about 3 minutes. After the heating process, the heated blank may exit the furnace and may be centered and correctly positioned in a centering system e.g. centering table, arranged downstream. The blank may then be transferred to a press tool e.g. by an industrial transfer robot, where it may be hot deformed to obtain (almost) the final shape. The blank may also be entirely or partially quenched in the press tool e.g. by supplying cold water. Optionally the blank may further be subjected to post processing steps such as e.g. cutting, trimming, and/or joining to further components using e.g. welding.
[0080] Although only a number of examples have been disclosed herein, other alternatives, modifications, uses and/or equivalents thereof are possible. Furthermore, all possible combinations of the described examples are also covered. Thus, the scope of the present disclosure should not be limited by particular examples, but should be determined only by a fair reading of the claims that follow.