The invention relates to a control capsule for a regulating device of an exhaust-gas turbocharger, as per the preamble of claim 1.
A control capsule of this type is known from EP 1 491 754 A1. The control capsule is suitable for being used for opening and closing a bypass valve of a turbocharger. In the case of said control capsule, the closing movement takes place with a greater exertion of force, specifically in the direction of action of a compression spring, than the opening movement, which takes place counter to the spring force. The control capsule has two air chambers which are separated by a diaphragm, and both the air chambers can be set either to atmospheric pressure or to negative pressure.
The static stiffness of a control capsule of said type is defined by the installed spring, which preloads the diaphragm, and also by the diaphragm that is used. The dynamic stiffness of a control capsule is dependent on the speed of a change of stroke. At low speed, the air in an air chamber that is not charged with pressure or negative pressure can escape through openings that are provided. During very fast changes of stroke, however, the air chambers behave as if they were sealed, and every diaphragm movement leads to a pressure change in the air chambers. The result is a very much higher dynamic stiffness of the control capsule.
Such fast changes of stroke that are introduced into the control capsule via the regulating rod by the exhaust-gas pulsations increase the dynamic stiffness in the stated manner, whereby increased wear may occur in particular in the range of a natural frequency of the control capsule.
It is therefore the object of the present invention to provide a control capsule of the type specified in the preamble of claim 1, by means of which control capsule it is possible for the effects of vibrations introduced into the control capsule by exhaust-gas pulsations, in particular the resulting wear, to be at least reduced.
This object is achieved by the features of claim 1. The invention accordingly provides a control capsule for a regulating device of an exhaust-gas turbocharger, having a housing in which there are formed a first air chamber and a second air chamber which are separated from one another in gas-tight fashion by a spring-loaded diaphragm; having a regulating rod which is connected in force-transmitting fashion to the diaphragm, comprising a hole which connects the second air chamber in gas-conducting fashion to the surroundings of the housing, wherein the hole has a hole area of greater than 20 mm2.
The dependent claims relate in each case to further advantageous refinements which may be combined with one another in a technologically expedient manner, wherein, in some cases, effects may also be obtained which go beyond the sum of the individual effects. The description, in particular in conjunction with the drawing, characterizes the invention further.
Owing to the relatively large hole area that connects the second air chamber in gas-conducting fashion to the surroundings, it is possible for the control capsule to be rapidly ventilated, such that neither a positive pressure nor a negative pressure can form in the second air chamber. The air volume situated in the second air chamber thus does not form an additional spring in the event of fast changes of stroke.
In one refinement, the control capsule has a restrictor plate that interacts with said hole.
The restrictor plate influences the throughflow capacity of the hole. By influencing the throughflow capacity of the hole, it is possible for the dynamic stiffness to be influenced in a targeted manner, which means that the natural frequency of the control capsule is shifted into a frequency range which does not arise, or arises only seldomly, during operation.
In a further refinement, the control capsule has a valve that interacts with the hole.
The valve may be closed in order to vary the natural frequency of the control capsule during operation.
In a further refinement, the control capsule has a sheet-metal element which, in the second air chamber, forms a third air chamber which is connected to the second air chamber via a further hole.
The second air chamber is in turn divided into two chambers in this way. The chamber that is situated closest to the diaphragm is thus protected against contamination. The further hole serves for connecting the two air chambers to one another, wherein references made herein to the configuration and size of the hole likewise apply to the further hole.
In one refinement, the further hole serves as a leadthrough opening for a regulating rod.
This may likewise apply to a control capsule without a sheet-metal element and divided second air chamber. Accordingly, elements that are already provided can be used to form a hole by being redesigned, specifically by virtue of the passage opening of a conventional control capsule being correspondingly widened.
In the case of relatively small control capsules with control capsule diameters of greater than 20 mm and less than 65 mm, the hole may have a hole area of greater than 23 mm2, particularly preferably greater than 26 mm2.
In the case of relatively large control capsules, for example for high powered turbochargers or for flap-type control arrangements in supercharging systems with multiple switchable superchargers and control capsule diameters of greater than 65 mm and less than 180 mm, the hole may have a hole area of greater than 28 mm2, in particular greater than 38 mm2, particularly preferably greater than 50 mm2.
Further details, advantages and features of the present invention emerge from the following description of exemplary embodiments with reference to the drawing, in which:
The first embodiment of the control capsule 1 illustrated in
The control capsule 1 may have relatively small control capsule diameters D of greater than 20 mm and less than 65 mm. The hole area A that is formed by the hole and remains free in the case of these relatively small control capsules is in this case greater than 20 mm2, in particular greater than 23 mm2, particularly preferably greater than 26 mm2.
In the case of relatively large diameters D of greater than 65 mm and less than 180 mm, the hole area A that is formed by the hole 12 and remains free may be greater than 28 mm2, in particular greater than 38 mm2, particular preferably greater than 50 mm2.
The hole 12 may be circular, though may also have other cross sections. The “hole” does not need to be a single opening, and may also, in a manner not illustrated, be formed from multiple openings which collectively have the stated hole area A, corresponding to
The embodiment in
The embodiment of the control capsule 1 in
The embodiment in
The embodiment in
The embodiment of the control capsule 1 in
It would in principle also be possible for a multiplicity of air chambers to be provided in the housing base part 3, for which purpose it would then be necessary to provide a corresponding number of further sheet-metal elements which are connected to one another in terms of flow in each case via different restrictors in order to permit a targeted setting, which can be adapted to the respective application, of the dynamic control capsule stiffness.
In addition to the above written disclosure of the invention, reference is hereby explicitly made, for supplementation thereof, to the illustrative presentation of the invention in
Number | Date | Country | Kind |
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102013010409.2 | Jun 2013 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/US2014/043212 | 6/19/2014 | WO | 00 |