This application is a 35 USC 371 application of PCT/EP 2006/068475 filed on Nov. 15, 2006.
1. Field of the Invention
2. Description of the Prior Art
The present invention relates to a two-stage fluid control valve that has an actuating element, a preliminary stage, and a main stage.
Various designs of fluid control valves are known from the prior art. Valves of this kind are used for example in supplying hydraulic pressure to wheel brakes in vehicle brake systems. An embodiment in the form of a two-stage valve with a preliminary stage and a main stage is designed to permit the opening of the valve even in the presence of powerful differential pressures. The differential pressure at the valve exerts a closing action on the valve. The opening of the preliminary stage slightly reduces the differential pressure so that the main stage can then be opened with a reduced expenditure of energy. In valves of this kind, usually spring elements are used, which have to be overcome in order to open the preliminary and/or main stage and which then automatically close the valve again after the decrease of the switching pressure. Valves of this kind, however, have a relatively large number of parts so that on the one hand, the manufacture and on the other hand, the assembly is relatively cost-intensive.
The two-stage fluid control valve according to the invention has the advantage over the prior art of being simply designed and very compact. In addition, it is possible to significantly reduce the number of parts of the valve according to the invention. This results in cost savings in the manufacture on the one hand and in the assembly on the other hand since there is a smaller number of parts to be assembled. Since two-stage valves of this kind are mass-produced products that are used, for example, in vehicle brake systems, this results in significant cost savings. These are achieved according to the invention by virtue of the fact that the two-stage valve includes a preliminary stage with a first valve seat and a first closure member, which is connected to an actuating element of the valve, and a main stage with a second valve seat and a second closure member. The second closure member has a fastening region and a main region with a through opening. The first valve seat in this case is situated at the through opening. Consequently, the second closure member also performs the function of the first valve seat. Furthermore, the second closure member is connected by means of its fastening region to the actuating element of the valve. In this case, the fastening region is embodied in an elastic fashion in order to open the preliminary stage through an elastic deformation of the fastening region when the actuating element is actuated. When the preliminary stage has achieved a sufficient decrease in a pressure difference between a region upstream and a region downstream of the valve, the main stage opens automatically since the elastically deformed fastening region returns to its original shape and thus executes an opening motion of the second closure member for the main stage. In the process of this, the preliminary stage is closed again and the main stage is opened. In addition, the elastic fastening region has once again assumed its original shape.
In order to permit a simple attachment of the fastening region of the second closure member to the actuating element, a detent connection is preferably provided between the fastening region and the actuating element. It is thus possible to simplify an assembly.
Preferably, the fastening region of the second closure member has a multitude of elongated attaching elements that permit a flexible deformation. In this instance, the elongated attaching elements deform for the opening of the preliminary stage and, due to their inherent elasticity, always strive to return to their original position. As soon as a corresponding pressure decrease has occurred via the opened preliminary stage, the restoring force of the attaching elements becomes greater than the differential pressure force resulting from the pressure difference so that the attaching elements return to their original shape, thereby opening the main stage and closing the preliminary stage. The fastening region preferably includes three or four elongated attaching elements, which are preferably spaced uniformly apart from one another along a circumference of the second closure member.
It is also preferable to provide an inwardly oriented projection at an outer end of the elongated attaching element. This inwardly oriented projection is part of the detent connection between the second closure member and the actuating element.
In order to enable an easy deformation of the elongated attaching elements, the inwardly oriented projection of the attaching element is provided with a surface that is inclined in relation to the movement direction of the actuating element. This inclined surface facilitates the elastic deformation, in particular the spreading open, of the attaching elements. The inclined surface here is preferably oriented at an angle of approximately 45° to the actuating direction of the actuating element.
It is also preferable for the actuating element to be provided with an annular groove that is likewise part of the detent connection. When the valve is in the closed state, the inwardly oriented projections of the elongated attaching elements are thus accommodated in the annular groove.
In order to further facilitate the spreading open and elastic deformation of the fastening region of the second closure member, the groove has a wall that is inclined in relation to the actuating direction of the actuating element. The inclination of the wall preferably corresponds to the inclination of the inclined surface on the inwardly oriented projection of the attaching element, i.e. in particular approximately 45°.
The second closure member is particularly preferably manufactured of a plastic, in particular polyamide or another thermoplastic. This permits the second closure member to be produced in a particularly inexpensive fashion. In this case, the second closure member is preferably manufactured by means of injection molding.
According to another preferred embodiment of the invention, the first closure member is integrated into the actuating element. The first closure member can, for example, be a ball that is affixed in the actuating element by being press-fitted into it. It should be noted, however, that the first closure member can also be comprised, for example, of a region of the actuating element so that the actuating element and the first closure member are provided in the form of a single part.
The two-stage valve is preferably a solenoid valve for a hydraulic brake circuit of a vehicle. The actuating element in this case is an armature of the solenoid valve. The solenoid valve is particularly preferably used as a valve in a brake control/regulation circuit, e.g. an ESP system and/or ABS system.
A preferred exemplary embodiment of the invention will be described below with reference to the accompanying drawings.
An exemplary embodiment of a two-stage valve 1 according to the invention will be described below with reference to
As shown in
As is clear from
As is also clear from
The function of the two-stage valve 1 according to the invention will be described below. When the two-stage valve 1 is to be opened in order for a pressure supplied via the supply lines 12a, 12b to be conveyed into the outlet line 13, a differential pressure prevails between the supply lines 12a, 12b and the outlet line 13. This differential pressure is relatively high so that normally, a high switching energy would be required to open the valve 1. In order to avoid this, the valve 1 is embodied as two-staged.
To open the valve 1, in a first step, the actuating element 2 is actuated in the direction of the arrow D (see
In the spread-open state, the fastening region 19 of the second closure member 7 always has a tendency to return to its original position shown in
If the two-stage valve is to open when there is no pressure difference between the supply lines 12a, 12b and the outlet line 13, then the fastening region 19 holds the second closure member 7 against the actuating element 2 so that the preliminary stage 3 is not opened, but instead the main stage 6 is opened immediately.
The foregoing relates to the preferred exemplary embodiment of the invention, it being understood that other variants and embodiments thereof are possible within the spirit and scope of the invention, the latter being defined by the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
10 2005 058 526 | Dec 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2006/068475 | 11/15/2006 | WO | 00 | 9/17/2008 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2007/065776 | 6/14/2007 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5048790 | Wells | Sep 1991 | A |
5299775 | Kolze | Apr 1994 | A |
5551664 | Boke | Sep 1996 | A |
5941502 | Cooper | Aug 1999 | A |
6032692 | Volz | Mar 2000 | A |
6443420 | Hettinger | Sep 2002 | B1 |
6682316 | Boeke | Jan 2004 | B1 |
20030213928 | Masuda et al. | Nov 2003 | A1 |
20050178989 | Stern | Aug 2005 | A1 |
Number | Date | Country |
---|---|---|
4331568 | Mar 1995 | DE |
19529724 | Feb 1997 | DE |
29912814 | Feb 1999 | DE |
0403144 | Dec 1990 | EP |
0840048 | May 1998 | EP |
0997363 | May 2000 | EP |
1128055 | Aug 2001 | EP |
1363057 | Nov 2003 | EP |
1564467 | Aug 2005 | EP |
Number | Date | Country | |
---|---|---|---|
20090139588 A1 | Jun 2009 | US |