This application claims the priority of German Patent Application, Serial No. 10 2006 027 625.6, filed Jun. 13, 2006, pursuant to 35 U.S.C. 119(a)-(d), the content of which is incorporated herein by reference in its entirety as if fully set forth herein.
The present invention relates to a furnace for heat treatment of steel sheets or steel sheet structures, and to a hot forming line for making a hardened profiled steel sheet structure.
Nothing in the following discussion of the state of the art is to be construed as an admission of prior art.
German Pat. No. DE 1 010 547 describes a continuous furnace for heat treatment of elongate objects such as rods or metal sheets. The furnace includes a heat channel which is made of two portions arranged exchangeably behind one another. The use of a continuous furnace in a hot forming line for making hardened profiled steel sheet structures is described in German Pat. Nos. DE 101 28 200 B4 and DE 102 54 695 B3. Continuous furnaces can be designed up to a temperature of 1,300° C., optionally also under a protective atmosphere.
Heretofore, a hot forming line is constructed to meet a certain output or production rate. This is also the base for designing the capacity of the continuous furnace within the hot forming line. As the costs for these constructions are substantial, overdimensioning of the furnace is undesired. On the other hand, the production rate of the hot forming line and furnace cannot be reliably predicted for the future, when the hot forming line is initially put into operation. It is thus conceivable that the furnace and the hot forming line reach their operational limits as a result of a change in a customer's wish or increased output demand. To address this problem, either another hot forming line needs to be built or the existing hot forming line needs to be modified. Both approaches are accompanied by significant increase in labor and costs.
It would therefore be desirable and advantageous to provide an improved furnace and hot forming line to obviate prior art shortcomings
According to one aspect of the present invention, a furnace for heat treatment of a steel sheet or a steel sheet structure includes a heating zone formed by at least two furnace modules which are detachably connected to one another to thereby define a starting furnace module and an end furnace module, and at least one add-on furnace module which is constructed for placement between the starting and end furnace modules.
According to another aspect of the present invention, a hot forming line for making a hardened profiled steel sheet structure from a steel sheet includes a first manipulator for advancing a steel sheet, a continuous furnace receiving the steel sheet from the first manipulator for heating a steel sheet to a temperature above a microstructural transformation temperature in the austenitic state, a second manipulator receiving the heated steel sheet from the continuous furnace, a press tool receiving the heated steel sheet from the second manipulator for shaping the sheet steel into a profiled steel sheet structure, and a third manipulator removing the profiled steel sheet structure from the press tool, wherein the continuous furnace includes least two furnace modules which are detachably connected to one another to thereby define a starting furnace module and an end furnace module, and at least one add-on furnace module which is constructed for placement between the starting and end furnace modules.
The present invention resolves prior art problems by composing the heating zone of single furnace modules that are detachably connectable to one another. In effect, the furnace is designed as a modular system by which the capacity of the furnace can be easily adapted to the situation at hand and to the customer's need. A later demand for increased output can now be satisfied by simply adding one or more add-on furnace modules. As a result, the productivity or efficiency of a hot forming line, which has integrated therein such a furnace, can be enhanced, and the hot forming line can thus also be adjusted to the situation at hand. Downtimes are minimal as any modification can easily be implemented because the furnace modules can be standardized and can be constructed with their own heating units, conveyors, insulations, air supply and air discharge ducts as well detachment and coupling means.
According to another feature of the present invention, the add-on furnace module may have a length which corresponds to a total length of the starting and end furnace modules.
According to another feature of the present invention, the starting and end furnace modules and the add-on furnace module may be coupled to one another via end flanges, with a seal being disposed between end the flanges.
According to another feature of the present invention, at least one of the starting and end furnace modules and the add-on furnace module may have an inert gas supply.
As a result of the modular construction of the furnace in the form of single standardized furnace modules, which can be selectively and detachably connected with one another, the capacity and thus the productivity of a hot forming line can be adjusted to the need at hand. The throughput can be increased, using standardized components. This provides benefits as far as logistics and assembly is concerned. The furnace can be modified to increase throughput in a less time-consuming and labor intensive manner and with little costs.
Other features and advantages of the present invention will be more readily apparent upon reading the following description of currently preferred exemplified embodiments of the invention with reference to the accompanying drawing, in which:
Throughout all the Figures, same or corresponding elements may generally be indicated by same reference numerals. These depicted embodiments are to be understood as illustrative of the invention and not as limiting in any way. It should also be understood that the figures are not necessarily to scale and that the embodiments are sometimes illustrated by graphic symbols, phantom lines, diagrammatic representations and fragmentary views. In certain instances, details which are not necessary for an understanding of the present invention or which render other details difficult to perceive may have been omitted.
Turning now to the drawing, and in particular to
In order to increase throughput and capacity of the furnace 5, one or more add-on modules, generally designated by reference numeral 18, can be incorporated in the heating zone H. An exemplary add-on furnace module 18 is shown in
The furnace modules 16, 17, 18 are connected to one another via end flanges 19, 20 and screw bolts 21 via incorporation of a heat-resistant seal 22, as shown in particular in
Each of the furnace modules 16, 17, 18 is equipped with a heating unit 23 which may operate electrically or by gas. In addition, each of the furnace modules 16, 17, 18 includes a conveyor 24 for transporting steel sheets 1 through the furnace modules 16, 17, 18. Each conveyor 24 includes a chain of rollers 25. The conveyors 24 of neighboring furnace modules 16, 17, 18 extend in close proximity of one another to establish a continuous transport path.
To generate a protective atmosphere within the furnace 5, at least one of the furnace modules 16, 17, 18 is equipped with an inert gas supply 26.
The individual furnace modules 16, 17, 18 have standard dimensions, with the add-on furnace module 18 having a length L18 which is suitably twice a length L16 of the starting furnace module 16 or twice a length L17 of the end furnace module 17. For example, the furnace module 16 and the end furnace module 17 may jointly have an overall length of 6 m so that the furnace 5 may be assembled of 6 m units. As a result, the length L18 of the add-on furnace module 18 is about equal to the joint total length of the starting and end furnace modules 16, 17.
Referring now to
In the hot forming line, the steel sheet 1 is initially reeled off a coil 2 and straightened and then cut to size in a punching or cutting device 3. Optionally, the steel sheet 1 may be pre-formed, before being transferred by a first manipulator 4 to the furnace 5, constructed in the form of a continuous furnace. Pre-forming of the sheet steel 1 is realized by a press 6 which is positioned upstream of the furnace 5 and in which the steel sheet 1 is shaped and, optionally trimmed, as shown in
The furnace 5 heats the steel sheet 1 to a temperature above the microstructural transformation temperature in the austenitic state. Depending on the steel grade, this temperature ranges between 700° C. and 1,100° C. Suitably, the atmosphere of the furnace 5 is rendered inert by a targeted and sufficient supply of protective gas so as to prevent scaling of the steel sheet surface. A second manipulator 7 accepts the heated steel sheet 1 and transfers it into a press tool 8, where the steel sheet 1 is shaped into the final profiled steel sheet structure 9 and rapidly cooled down with the aid of a cooling unit 10, thereby establishing a fine-grained martensitic or bainitic material microstructure. The profiled steel sheet structure 9 is hereby hardened with a precisely tailored material strength. A third manipulator 11 is arranged downstream of the press tool 8 to remove the shaped and hardened profiled steel sheet structure 9 from the press tool 8 and to transfer it to an unillustrated container.
While the invention has been illustrated and described in connection with currently preferred embodiments shown and described in detail, it is not intended to be limited to the details shown since various modifications and structural changes may be made without departing in any way from the spirit of the present invention. The embodiments were chosen and described in order to best explain the principles of the invention and practical application to thereby enable a person skilled in the art to best utilize the invention and various embodiments with various modifications as are suited to the particular use contemplated.
Number | Date | Country | Kind |
---|---|---|---|
10 2006 027 625.6 | Jun 2006 | DE | national |