The invention relates to a fluid switching device for a three-way valve, especially for an engine control valve.
The invention applies especially when the thermal engine is used to propel a vehicle, e.g. a motor vehicle. It may be an engine whose fuel is gasoline or diesel. The valve may be integrated in the air circuit of the thermal engine.
Within the meaning of the invention, the term “thermal engine air circuit” designates the circuit between the intake inlet and the exhaust outlet of the thermal engine. The valve can be placed in the intake circuit, the exhaust circuit, or a recirculating loop through which the exhaust gases re-injected pass on intake (EGR).
We know of a switching device for a three-way valve from US2010/0199957. The switching flap is mounted rotatably between a blocking position of the bypass port and a blocking position of a passageway to a cooler. The movement of this flap and its maintenance in blocking position are performed by two separate mechanisms.
The drawback of this switching device is that it has a complex structure due to the large number of the parts it requires whose assembly is complicated and interactions risky. There is a need for a switching device which is relatively simple, robust and inexpensive.
The invention aims to meet this need.
It does, according to one of its aspects, with a switching device of a fluid, especially for a valve having at least three ports, the device comprising:
The actuating member may comprise a mobile part and may define a guide path guiding the interface part when the flap moves due to the movement of the mobile part.
The mobile part may be mobile in rotation. The axis of rotation of the mobile part may be parallel to that of the flap.
A movement of the actuating member can thus be transmitted to the flap through the interface part. This movement of the actuating member may be caused by an external actuator, for example a pneumatic, hydraulic or electric actuator. This external actuator may already be designed to move a flap of another valve or another flap of the same valve. Alternatively, the external actuator is dedicated to driving the actuating member.
The flap is, within the meaning of the present application, a switching flap, which means that the flap will close off one port in favor of another port to allow the flow of a fluid, and that it is not a priori intended to regulate a fluid flow in a path.
Thus, the actuating member above can alone play two actuating functions for fully controlling the movement of the flap. As already mentioned, the actuating member can allow the movement of the flap. In addition, the actuating member may, by cooperating with the interface part, hold the flap in position when the latter has reached a desired position, in particular a blocking position.
Thus, a movement of the actuating member may be selectively transmitted to the flap for moving the latter, and selectively not be transmitted to the flap so that the latter is held in position. It is thus not necessary to stop in a more or less abrupt way the movement of the actuating member once the flap is in the desired position. The latter can thus continue moving without this movement having any effect on the position of the flap.
The guide path can be formed by a guide housing arranged inside the mobile part, said guide housing having two opposite lateral edges against which the interface part comes selectively into contact when the flap moves from one to the other of the blocking positions. The guide path may be a groove in the mobile part. This path has the effect of guiding the movement of the interface part and therefore that of the flap. The interface part may include a guiding part, in particular a pin, a ball bearing mounted on a pin, or a lug which is adapted to be received in the guide path.
The guide housing may comprise two segments having a common end.
The flap may be in an intermediate position wherein the first and the second ports are open when the interface part rests at the end common to the two segments of the guide housing, the flap passing through one or other of the blocking positions when the interface part moves in one of said segments to its end, opposite to the common end. In other words, the common end of the two segments forms a zone in which the interface part is received when the flap is in an intermediate position.
The guide path may exert a thrust on the interface part for moving the flap when said guiding part moves along the groove from the position corresponding to the intermediate position of the flap, due to the movement of the mobile part.
The lateral edge of the segment nearest to the other segment may extend radially beyond the other lateral edge of said segment, at each end opposite to the common end of a segment. This allows one of the edges of the guide path to be capable of coming into contact with the interface part when the flap is in the blocking position, in order to cause said interface part to go in the guide path for moving the flap from a blocking position to another. Alternatively, this may allow bringing the interface piece out of the guide path so as to prevent further movement of the flap.
The actuating member may further define a holding path for the interface part to hold the flap in one or the other of the blocking positions.
In other words, holding the flap in one or the other of the blocking positions is done by a path along which the actuating member cooperates with the interface part.
The holding path may comprise a lateral edge defined by a portion of the outer periphery of said mobile part. In other words, the holding path may only include one lateral edge in contact with which the guide element comes when the flap is in one of the blocking positions.
Alternatively, the holding path may be a housing formed inside said mobile part on a portion of the periphery of said mobile part. In other words, the holding path may form a groove inside which the guiding part can be housed when the flap is in one of the blocking positions.
The holding path and the guide path may communicate with at least one common lateral edge. In other words, at least one lateral edge of the holding path extends to a lateral edge of the guide path, and vice versa.
The actuating member may comprise a spring which is constrained to the maximum when the flap is in the intermediate position. The spring can exert a force by means of one of its ends to the guiding part, in particular on the pin or lug. The device applies to the spring the greatest stress when the flap is in the intermediate position.
The spring may be configured to selectively hold the blocking flap in position.
The spring may be a compression spring. Thus, the spring is compressed when said flap is in the intermediate position, said spring expanding as soon as the flap begins rotating to achieve a blocking position of one of said paths. The spring acts as an activation device for facilitating the rotation of the flap. Indeed, as soon as the flap deviates from its intermediate position for opening the two paths, following the rotation of the actuating member, the spring relaxes by favoring said rotation. At the end of travel, the spring keeps the flap in one of the blocking positions to seal said blocking. Thus, the flap moves from an unstable equilibrium position corresponding to the intermediate opening position of the two paths to a stable equilibrium position corresponding to a blocking position.
Alternatively, the spring is a tension spring which is stretched when the switching flap is in the intermediate position, said spring being compressed as soon as the flap begins rotating to achieve a blocking position of one of said paths.
The device may be configured so that interaction between the interface part and the actuating member allows holding the flap in a blocking position only by the spring force, the mobile part thus defining only a guide path without participating in the retention in position of the interface part.
The mobile part may be configured so that the guide path is in contact with the interface part only on a limited angular sector during rotation of the mobile part. Accordingly, the mobile part may continue its rotation even after the flap has reached a blocking position, the guide path thus having no longer any effect on the interface part and therefore on the movement of the flap.
The flap and the interface part may be separate parts rigidly coupled to each other. The flap and the interface part are, for example, separated by a seal preventing the fluid, including gases, which is in contact with the flap, from reaching the interface part and the actuating member. Within the meaning of the present application, two parts are rigidly coupled to each other when there is no degree of freedom between them.
In an exemplary implementation of the invention, the rotating mobile part comprises a cam. This cam is, for example, integrated in a gear coupled to the actuator. According to this example, when the cam forming all or part of the mobile part is moved in rotation by the actuator, a portion of its rotation is transmitted to the flap to move the latter when the guiding part, in particular the pin or lug, moves in the guide path formed in the mobile part, while another portion of the rotation of the cam forming the mobile part is not transmitted to the flap which is then held in position when the interface part is out of the guide path, and when it is either free or received in the holding path.
The guide path may be provided between two separate parts, in which case the holding path is delimited by the outer surface of one of these parts. One of the parts is, for example, the above cam while the other part closes the guide path. The axis of rotation of the mobile part may be parallel to that of the flap.
The invention relates also, according to another of its aspects, to an engine control valve having a switching device as defined above.
The valve may include one input port and two output ports, the flap being pivotable to move from a blocking position of an output port to a blocking position of the other output port.
Alternatively, the valve may comprise two input ports and one output port, the flap being pivotable to move from a blocking position of an input port to a blocking position of the other input port.
The blocking of the port by the flap may be either total, and therefore be fully sealed, or partial by allowing a passage of residual fluid leakage, in particular gas.
The valve may, for example, be used in an EGR loop.
A valve as described above has the advantage, among others, to implement a switching device of the flap that is simple, especially because of the small number of parts involved, and therefore compact. Furthermore, it may offer the advantage of having an actuating member, such as a wheel forming a mobile part, which can continue moving after the flap reaches a blocking position, allowing said actuating member to fill an additional holding function during this additional displacement, the additional displacement possibly being due to the resumption of kinematics on another actuating wheel of the valve.
A detailed description of a preferred embodiment of an engine control valve according to the invention is given below, with reference to
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The engine control valve 30 is placed, for example, in an EGR 31 loop of a thermal engine. The EGR loop 31 includes the valve 30, an EGR gas cooler 8 and a bypass port 9 of said gases originating upstream of said cooler 8 and opening downstream of said cooler 8. The valve 30 comprises a switching flap 10, plane and rotatable, between a first blocking position of the bypass port 9 and a second blocking position of a port 11 for access to the cooler 8.
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The end 18 may comprise a pin, a lug or a ball bearing mounted on a pin which is inserted into the housing 17, at the end common to both segments. A rotation of the cam 12 in the direction of the arrow 19 causes the rotation of the flap 10. As shown in
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Number | Date | Country | Kind |
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1352229 | Mar 2013 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/FR2014/050428 | 2/27/2014 | WO | 00 |