This application is a 35 U.S.C. ยง 371 National Stage Application of PCT/EP2017/069934, filed on Aug. 7, 2017, which claims the benefit of priority to Serial No. DE 10 2016 216 347.7, filed on Aug. 30, 2016 in Germany, the disclosures of which are incorporated herein by reference in their entireties.
The disclosure proceeds from a valve armature for a solenoid valve according to the following description and from an associated valve cartridge for a solenoid valve according to the following description.
The prior art discloses normally open or normally closed solenoid valves, which are used, for example, as inlet valves or outlet valves in a hydraulic unit of a vehicle brake system. The hydraulic unit serves for performing control and/or feedback control operations in an antilock brake system (ABS) or a traction control system (TCS) or an electronic stability program system (ESP system), for building up or reducing pressure in corresponding wheel brake calipers. Such solenoid valves comprise a solenoid assembly and a valve cartridge, which comprises a guide sleeve, a valve armature having a closing element, guided in its axial movement inside the guide sleeve between a closed position and an open position, against the force of a return spring, and a valve sleeve connected to the guide sleeve and having a valve seat. Energizing of the solenoid assembly generates a magnetic force, which in an unenergized, open solenoid valve moves the valve armature with the closing element from the open position into the closed position, until the closing element strikes the corresponding valve seat and seals off the latter. In the unenergized state the return spring moves the valve armature with the closing element, and the closing element lifts off from the valve seat and opens the latter. In an unenergized, closed solenoid valve, the valve armature with the closing element is moved from the closed position into the open position by the energizing of the solenoid assembly and the closing element lifts out of the valve seat and opens the latter. If the current is then cut off, the return spring moves the solenoid armature with the closing element in the direction of the valve seat, until the closing element strikes the valve seat and seals off the latter. The solenoid valves described generate a so-called closing noise when the closing element, which comprises a hardened closing body, which is designed as a steel ball, for example, strikes the valve seat likewise composed of hardened steel.
The use of tappets with closing elements which have plastic basic bodies is a known way of reducing these switching noises. These are pressed into the hardened basic body of the valve armature, which is preferably made of iron or steel.
The published patent application DE 10 2014 217 447 A1, for example, describes a valve armature for a solenoid valve and a valve cartridge for a solenoid valve having such a valve armature. A depression, which receives a tappet having a closing element, is arranged at one end of the valve armature. The closing element is with a valve seat together, in order to adjust a fluid flow between at least two flow openings. Here a basic body of the tappet may be composed of plastic and may form an interference fit with the basic body of the valve cartridge. The basic body of the tappet thereby acts as an elastic damping element for the metal closing member and damps a pulse produced when the closing member strikes the valve seat.
The valve armature according to the disclosure, intended for a solenoid valve and having the features of the following description, and the corresponding valve cartridge, intended for a solenoid valve and having the features of the following description, by contrast have the advantage that by modifying the valve armature the tappet is always pressed firmly into the basic body of the valve armature. Since the basic body of the valve armature and the tappet basic body have different coefficients of thermal expansion, the components may expand differently in the event of temperature fluctuations. As a result, settling of the plastic basic body can occur, so that the compression between the valve armature and the tappet may be reduced. Depending on the material and the type of interference fit, there is the possibility of the tappet working loose. As a result, on opening of the valve, the closing element of the loose tappet could remain in the valve seat, so that the valve does not open in the desired way. In embodiments of the present disclosure, the additional positive interlock ensures that the tappet basic body is always pressed firmly in the basic body of the valve armature. The interference fit is designed so that over-pressing occurs, which causes incipient flow in the softer plastic material of the tappet basic body, forming plastic deformations. The additional annular groove in the harder basic body of the valve armature affords an additional free space, into which the plastic of the tappet basic body can flow. The desired additional positive interlock is thereby achieved, allowing the tappet to be permanently fixed.
Moreover, by designing the tappet basic body as a plastic part, closing noise occurring as the valve closes can advantageously be reduced and optimally even eliminated almost entirely.
Embodiments of the present disclosure therefore also contribute to an improvement in the noise/vibration/hardness (NVH) behavior of the vehicle, in that the intrusive noises occurring as the solenoid valve closes are reduced and at best altogether avoided. This allows the vehicle brake system to be designed as a one-box system and the hydraulic unit to be bolted directly to the splash wall of the vehicle, since there are no intrusive closing noises passing into the vehicle interior.
Embodiments of the present disclosure provide a valve armature for a solenoid valve, which comprises a basic body of a magnetically conductive metal, on one end of which a depression is arranged, which receives a tappet having a closing element. A tappet basic body is composed of plastic and forms an interference fit with the basic body. Here the basic body has an annular groove which is connected to the depression and which receives plastic deformations of the tappet basic body, which form a positive interlock with the annular groove and additionally fix the tappet basic body in the depression.
A valve cartridge for a solenoid valve is furthermore proposed, having a guide sleeve; a valve armature according to the disclosure which is guided in its axial movement inside the guide sleeve between a closed position and an open position, against the force of a return spring, and which comprises a tappet having a closing element; and a valve sleeve, connected to the guide sleeve and having a valve seat, which is arranged between at least one first flow opening and at least one second flow opening. The closing element in the closed position interacts with the valve seat to seal the latter and interrupts a fluid flow between at least the one first flow opening and at least the one second flow opening. The closing element in the open position is lifted off from the valve seat and allows the fluid flow between at least the one first flow opening and at least the one second flow opening.
The measures and developments cited in the following description afford advantageous improvements of the valve armature for a solenoid valve specified in the following description.
In an advantageous embodiment of the valve armature the depression may take the form of a blind hole. In designing the interference fit it is advantageous if the over-pressing is augmented to such a degree that the flow limit of the plastic material of the tappet basic body is reached. The annular groove is thereby filled with the flowing plastic material that forms the plastic deformations. Since flaking can occur on the tappet basic body, the blind hole bore is advantageously capable of securely enclosing the flaked particles.
In a further advantageous embodiment of the valve armature the annular groove may be arranged at the end of a contact zone between a wall of the depression and the tappet basic body. Moreover, the annular groove may form an edge to the depression in the direction of the opening. This edge between the annular groove and the depression preferably has a right angle. Since in pressing the tappet basic body in the depression of the basic body of the valve armature increased compressive stresses are generated at the end of the contact zones of both bodies, this effect can be utilized in order to increase the prestressing at the edge and to improve the flow process. It is therefore advantageous if the annular groove is applied at the end of the contact zone of the two components.
In a further advantageous embodiment of the valve armature the depression may have an insertion bevel, in order to facilitate the insertion of the tappet basic body. The tappet basic body may furthermore have an annular shoulder, onto the end face of which the closing element is formed. Here an end face of the annular shoulder remote from the closing element may be matched to the insertion bevel. The annular shoulder allows the press-fitting tool to be applied without damaging the closing element.
In a further advantageous embodiment of the valve armature the dimensions of the tappet basic body can be matched to the dimensions of the depression. The tappet basic body may take the form of a stepped cylinder, for example, or a cylinder having an annular shoulder. The closing element may be designed as a spherical cup, for example.
Exemplary embodiments of the disclosure are represented in the drawing and are described in more detail in the following description. In the drawing the same reference numerals denote components or elements which perform the same or similar functions.
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The exemplary embodiment shown relates to a valve cartridge 1 for a normally closed solenoid valve. The valve armature 10 may also be used, however, in a valve cartridge (not shown further) of a normally open solenoid valve.
Embodiments of the present disclosure provide a valve armature and a valve cartridge for a solenoid valve, which through an additional positive interlock between the tappet basic body and the basic body of the valve armature ensure that the tappet basic body is always pressed firmly in the basic body of the valve armature, regardless of any temperature fluctuations and different coefficients of thermal expansion.
Number | Date | Country | Kind |
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10 2016 216 347 | Aug 2016 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/069934 | 8/7/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2018/041548 | 3/8/2018 | WO | A |
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39 05 969 | Aug 1990 | DE |
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Entry |
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International Search Report corresponding to PCT Application No. PCT/EP2017/069934, dated Oct. 10, 2017 (German and English language document) (7 pages). |
Number | Date | Country | |
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20190203847 A1 | Jul 2019 | US |