The present invention relates to an apparatus for producing a mixture of at least one gas and at least one liquid plastic component.
Such an apparatus comes from FIG. 10 of EP 0 776 745 B1. There, the introducing device for the at least one gas is designed in the form of a compressed gas cylinder. The conveying device for the at least one liquid plastic component is present in the form of a pump. In other figures of this specification, piston pumps are also disclosed. The at least one gas and the at least one liquid plastic component are mixed in the piston pumps themselves. The supply of the gas is carried out and regulated via a valve. As described in this specification, it is difficult to introduce the correct quantity of gas in the correct ratio into the liquid plastic component.
The object of the invention is to provide an apparatus in which the above-described problems are avoided.
This object is achieved by the apparatus. Advantageous embodiments of the invention are defined in the dependent claims.
The use of piston pumps both for the at least one gas and for the liquid plastic component allows the accurate metering out of gas relative to liquid plastic component. If it is assumed that there is a specific maximum filling volume of the piston pump of the conveying device for the liquid plastic component and that there is a specific maximum filling volume of the piston pump of the introducing device for the at least one gas (this can be the same or different from the filling volume of the conveying device), the quantity of gas supplied to the liquid plastic component can be controlled via the pressure with which the gas is filled into the introducing device. The solution according to the invention is more cost-effective, with a simpler design and smaller size.
In principle, the piston pumps of the introducing device and of the conveying device can be operated independently of each other in the sense that they are controlled separately. In order to achieve a particularly simple and cost-effective design, it is preferably provided that the piston of the introducing device and the piston of the conveying device are mechanically or electrically coupled.
There are two design variants for this coupling. In the case of a mechanically diametrically opposed coupling, it is provided that the piston of the introducing device and the piston of the conveying device are coupled in such a way that, as gas is discharged from the introducing device, liquid plastic component is introduced into the conveying device, and, as liquid plastic component is discharged from the conveying device, gas is introduced into the introducing device. In contrast, in the case of a parallel or mechanically synchronous coupling, it is provided that the piston of the introducing device and the piston of the conveying device are coupled in such a way that, as gas is discharged from the introducing device, liquid plastic component is discharged from the conveying device, and, as gas is introduced into the introducing device, liquid plastic component is introduced into the conveying device.
Protection is also sought for an apparatus for producing foamed plastic parts, in particular sealing beads, with an apparatus according to the invention for producing a mixture of at least one gas and at least one liquid plastic component.
Embodiments of the invention are discussed with reference to the figures.
Such a subunit is formed by an apparatus 16 for producing a mixture of at least one gas and at least one liquid plastic component. This apparatus 16 in turn comprises at least a mixing device 17, an introducing device 19 for the at least one gas connected to the mixing device 17 via a first pipe 18 and a conveying device 21 for the at least one liquid plastic component connected to the mixing device 17 via a second pipe 20. In addition, this apparatus 16 comprises a container 53 for the plastic component and a gas source 54, in particular an air compressor. A feed pump could also be provided instead of the container 53.
In such an apparatus 16, in contrast to the state of the art, it is provided that the introducing device 19 and the conveying device 21 are designed as piston pumps 25 and 24 having pistons 22 and 23.
The piston 22 of the introducing device 19 (piston pump 25) and the piston 23 of the conveying device 21 (piston pump 24) are in this example mechanically coupled in a diametrically opposed manner via a pressure transformer 26. This allows the use of an actuator which operates at relatively low pressure (e.g. pneumatic), as the necessary increase in force is achieved via the force transformation. In addition, inlet valves 27, 28 and outlet valves 29, 30 can be seen.
As shown in more detail in
In contrast,
Returning to
The apparatus 36 additionally comprises a metering device 38, preferably a metering pump, for which the plastic component is provided by the transfer device. Moreover, the apparatus 36 comprises a buffer device 39 with a variable buffer volume 40 arranged between the source 37 of the at least one liquid plastic component and the metering device 38, by means of which buffer device 39 the liquid plastic component intermittently conveyed to it is constantly made available to the metering device 38 in sufficient quantity with sufficient charging pressure. After the metering device 38, the plastic component arrives at a metering valve 60, after which the plastic component is discharged directly (see nozzle 61 represented by a dashed line)—or, as represented in
In order to enable as even as possible a transfer it is preferably provided that the pressure prevailing in the liquid plastic component between buffer device 39 and metering device 38 can be controlled by the buffer device 39. The liquid plastic component passes via an inlet opening 41 from the source 37 into the buffer volume 40 of the buffer device 39. The buffer volume 40 is in turn connected to the metering device 38 via an outlet opening 42. In
Furthermore, it is provided that a pressure sensor 46 is arranged on an exit side of the metering device 38. This pressure sensor 46 is connected to a control device 47 via a control line 48. The control device 47 controls the buffer device 39 such that the pressure applied on the entry side of the metering device 38 tracks the pressure prevailing on the exit side of the metering device 38. Furthermore, the control device 47 can be designed so as to close both the inlet valve 51 and the outlet valve 52 and to compress the liquid plastic component located in the buffer volume 40. A sensor that is not represented can also be provided, by means of which an irregular compression of the buffer volume 40 can be detected.
Furthermore, the buffer device 39 is connected to a device 49 for pressurizing the buffer device 39. This can be controlled either by the control device 47 (dashed line drawn in) or by an independent control device 50.
In principle, the two apparatuses 16 and 36 would already be sufficient for the production of foamed plastic parts in the form of sealing beads. However, it can additionally preferably be provided that a second plastic component is foamed in parallel with the first plastic component or mixed with the first plastic component to form the plastic part, preferably physically. For this reason, a further subunit of the apparatus 100 is formed by an apparatus 62 for multi-component foaming (once again see
Stop valves can also be provided in the metering valves 57 and/or 60, as are used in
Number | Date | Country | Kind |
---|---|---|---|
434/2015 | Jul 2015 | AT | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/AT2016/050225 | 6/24/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2017/004634 | 1/12/2017 | WO | A |
Number | Name | Date | Kind |
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4118799 | Krueger | Oct 1978 | A |
4171191 | Krueger | Oct 1979 | A |
5545029 | Hauser | Aug 1996 | A |
5874031 | Okuda et al. | Feb 1999 | A |
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8304456 | Kamiyama et al. | Nov 2012 | B2 |
20020132859 | Okuda et al. | Sep 2002 | A1 |
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20160102658 | Wichmann | Apr 2016 | A1 |
Number | Date | Country |
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27 43 452 | Mar 1978 | DE |
29 17 865 | Nov 1979 | DE |
0 776 745 | Jun 1997 | EP |
0 810 917 | Dec 1997 | EP |
2 067 992 | Jun 2009 | EP |
2 595 121 | Sep 1987 | FR |
1 503 648 | Mar 1978 | GB |
60201918 | Oct 1985 | JP |
06-198152 | Jul 1994 | JP |
07-016852 | Jan 1995 | JP |
09-206638 | Aug 1997 | JP |
11-500373 | Jan 1999 | JP |
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9626057 | Aug 1996 | WO |
2014195312 | Dec 2014 | WO |
Entry |
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International Search Report dated Sep. 20, 2016 in International (PCT) Application No. PCT/AT2016/050225. |
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Number | Date | Country | |
---|---|---|---|
20180370075 A1 | Dec 2018 | US |