This application claims priority to German Patent Application No. 10 2019 133 354.7 filed on Dec. 6, 2019, which is incorporated herein by reference in its entirety for all purposes.
The disclosure relates to a venting device for venting a casting mold according to the preamble of claim 1.
When filling a casting mold, whether it be in high-pressure or low-pressure die casting, in permanent mold casting or in any other casting process, the air present in the mold has to be removed from said mold in order to achieve a neat casting result without blowholes and porosity. This can either be carried out actively by evacuating the mold before the actual filling process starts or passively by displacing the air when introducing the casting material or by combining the two methods.
For this purpose, the casting mold usually has a valve means which can be closed after the mold has been vented completely. In order to guarantee a permanent functioning of such valve means, it has to be ensured that no casting material flows from the mold into the area of the valve means since this normally results in the destruction of the valve means such that said valve means has to be exchanged afterward. This involves high personnel input and the corresponding costs.
From document DE 202 08 464 U1 a valve means in the form of a so-called chill vent is known. In this valve means the mold is vented by means of a labyrinthine or washboard-like gap in a block-like valve body made of a highly thermally conductive material, casting material entering the gap and freezing there after the air has been removed from the casting mold. This ensures that a majority of the air is removed from the mold and a satisfactory result is achieved.
Due to the labyrinthine or washboard-like gap, the demolding of the known chill vents has so far been possible only orthogonally to the parting line of the venting device. In order to be able to remove the solidified casting material from the opened chill vent, one of the two mold halves of the chill vent has to have an ejector which presses the solidified casting material orthogonally out of the corresponding mold half, in particular when said mold half is covered by a slide. The ejecting of the solidified casting material from the corresponding half of the chill vent is in particular necessary in the case where the chill vent is installed in a slide of the casting mold. This is due to the fact that the slide has to be moved out of the casting mold linearly when the cast body is demolded from the casting mold, which so far has not been possible in the known chill vents because of the labyrinthine or washboard-like gap.
The object of the disclosure at hand is therefore to propose a new venting device in the form of a chill vent which avoids the disadvantages described above. In particular, the installation of ejectors in the chill vent is to be avoided and the installation of the chill vent with one mold half in slides of casting molds is to be made possible. This object is attained by a venting device according to the teachings of claim 1.
Advantageous embodiments of the disclosure are the subject matter of the dependent claims.
The venting device according to the disclosure is characterized by the gap formed between the two mold halves of the chill vent. According to the disclosure, said gap is realized in a saw-toothed manner and has several sawtooth portions disposed in a row in the flow direction. Each sawtooth portion on its part has a leading edge inclined in the flow direction and a trailing edge inclined against the flow direction. Due to the fact that the sawtooth portions are formed with leading edges and trailing edges, the solidified casting material can be demolded from the opened chill vent after the mold has been filled without using further auxiliary means. The saw-toothed course of the gap, in particular, facilitates an opening of the mold and a simultaneous outward movement of a slide, at least one mold half of the chill vent being installed in the slide. The leading edges and the trailing edges of the saw-toothed course make it possible that the solidified casting material is pressed out transversely to the mold parting line of the two mold halves by moving the slide, without having to install an ejector in the chill vent for this purpose.
It is particularly advantageous if the leading edges of the sawtooth portions are inclined with an inclination angle, which is smaller than the self-locking angle of the material pair composed of the solidified material in the gap and the material of the mold halves, with respect to the mold parting line of the two mold halves in order to not impede the pressing of the solidified casting material out of the opened chill vent by self-locking. This makes it possible that, when moving the slide along the mold parting line, the relative movement between the solidified material in the gap and the material of the mold halves resulting therefrom is not impeded or precluded by static friction.
For common material pairs composed of the solidified material in the gap and the material of the mold halves, an inclination angle of the leading edges, which is smaller than or equal to 45 degrees, is suitable.
An inclination angle of the leading edges of the sawtooth portions, which is smaller than or equal to 35 degrees, is particularly advantageous.
It is particularly advantageous if the inclination angle of the leading edges of all sawtooth portions is chosen to be of the same size in order to preclude any, even if only local, obstruction of the actuating movement of a slide due to excessive friction.
With regard to the easy demolding of the solidified material from the opened chill vent, it is, furthermore, particularly advantageous if the trailing edges of the sawtooth portions are inclined with an inclination angle, which is greater than 70 degrees, with respect to the mold parting line of the two mold halves. In particular, the inclination angle of the trailing edges is to be chosen between 80 degrees and 90 degrees. With regard to the trailing edges it is just as advantageous as with regard to the leading edges if the inclination angle of the trailing edges of all sawtooth portions is of the same size.
With regard to the extension of the gap in the venting device and in order to additionally achieve an easier demolding of the solidified casting material, it is provided according to a preferred embodiment that the sawtooth portions are disposed in a row along an arc which extends transversely to the flow direction through the venting device. The venting device according to the disclosure is of particularly great importance when one mold half of the venting device is installed in a slide of the casting mold and is, thus, drivable parallel to the mold parting line of the two mold halves.
An embodiment of the disclosure is schematically illustrated in the drawings and is exemplified below.
In the venting device 01 the inclination angle (α) is 34 degrees. This inclination angle of 34 degrees, thus, is smaller than the self-locking angle of the material pair composed of the material to be processed in the venting device 01 and the material which is used for producing the two mold halves 02 and 03. Furthermore, it can be seen in
Number | Date | Country | Kind |
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10 2019 133 354.7 | Dec 2019 | DE | national |
Number | Name | Date | Kind |
---|---|---|---|
4154285 | Yamasaki | May 1979 | A |
20080041550 | Wang | Feb 2008 | A1 |
20100276107 | Gauermann | Nov 2010 | A1 |
20140196864 | Werner | Jul 2014 | A1 |
20210129213 | Jung | May 2021 | A1 |
Number | Date | Country |
---|---|---|
20208464 | Nov 2002 | DE |
20313259 | Jan 2004 | DE |
69814023 | Apr 2004 | DE |
102007007520 | Aug 2008 | DE |
0930114 | Jul 1999 | EP |
2013127386 | Sep 2013 | WO |
Number | Date | Country | |
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20210170477 A1 | Jun 2021 | US |