The invention relates to a method for assembling a control valve permitting the passage of gas in a gas circuit of an automotive vehicle to be regulated.
An automotive vehicle provided with a heat engine generally comprises an air cooling circuit in addition to at least one EGR (Exhaust Gas Recirculation) loop making it possible to extract exhaust gases and redirect them upstream of the engine so that they are mixed with the incident air. Said different gas circuits are regulated by means of valves which are able to adopt different configurations, passing from a completely closed position to a maximum open position, passing through intermediate open positions. The invention relates to an optimized method for assembling a valve for regulating gas in addition to a valve based on such a method.
It is noteworthy that the term “valve” is general and denotes any type of device for regulating gas within a gas circuit of an automotive vehicle. Such a valve may, for example, be an air intake metering device or a regulating valve of an EGR loop.
With reference to
A method for assembling according to the invention makes it possible to produce gas control valves having a reduced space requirement by promoting the positioning of planar magnets which requires much less space than a square-shaped protruding configuration. This novel arrangement of the magnets is made possible due to an original connecting technique permitting two elements to be fixed together, the specific geometries thereof making this fixing difficult by means of the usual methods.
The subject of the invention is a method for assembling a regulating valve designed to control the flow of gas in a circuit of an automotive vehicle provided with a heat engine, said valve comprising a magnetic structure, a pivot pin and a toothed sector.
The method according to the invention comprises the following steps:
Thus the position of the toothed sector is firstly fixed to the pivot pin, then the magnetic structure is brought into contact with said sector in order to be fixed thereto by means of a weld. Said two steps are simple to carry out and thus rapid to implement, the welding technique being more secure and reliable to connect two elements rigidly together. Moreover, this technique of connecting by welding does not require the presence of interface components or mechanical fixing means such as screws and permits two elements to be connected together whilst saving space.
Advantageously, the toothed sector comprises an annular groove and the magnetic structure comprises a circular protruding edge, the fixing step being implemented by rotational welding carried out between said edge and the bottom of said groove. In other words, the insertion of the edge in the groove permits a prepositioning of the magnetic structure on the toothed sector before said structure is fixed definitively in said sector by welding. Such an assembly, involving an implicit guide step, contributes to a satisfactory arrangement of the components relative to one another, without the risk of poor positioning before welding. Moreover, the penetration of the edge in the groove lowers the position of the magnetic structure on the toothed sector by a height substantially equivalent to the depth of said groove, thus limiting the space taken up by said structure on said toothed sector. Rotational welding is particularly suited to the annular contact interface between the magnetic structure and the toothed sector.
Preferably, the method comprises a step of installing a fixed Hall effect sensor in the valve, so that the magnetic structure is located between the toothed sector and said sensor. Said sensor is fixed in a given position within the valve and permits the magnetic field delivered by the pivoted magnetic structure to be measured and thus the intensity of said field to be varied in a given direction.
Advantageously, the method uses a prior step of overmolding the magnetic structure. Before being welded to the toothed sector, the magnetic structure will have been produced in a single piece by overmolding. Such a manufacturing step of a component made of plastics is simple and rapid to execute, contributing to simplifying even further the method for assembling according to the invention.
The subject of the invention is also a regulating valve designed to control the flow of gas in a circuit of an automotive vehicle provided with a heat engine. The principal feature of said valve is that it is manufactured from a method for assembling according to the invention. Such a valve may be encountered on any type of gas circuit circulating around the engine, said circuit able to be a cooling circuit of said engine or an EGR loop, for example. A valve manufactured by means of a method for assembling according to the invention has a reduced space requirement due to a compact arrangement of the components involved, which is made possible by the technique of rotational welding.
Advantageously, the magnetic structure comprises a hollow cylindrical base designed to be housed in an annular groove of the toothed sector, said circular base being surmounted by a square-shaped frame in which at least one magnet is placed. The frame defines a housing in which each magnet is placed, said frame also serving to protect each of said magnets from any external impact. It is assumed that the external diameter of the base is slightly less than that of the external circular wall of the groove. Each magnet is placed in the frame without introducing clearance so that it does not vibrate when the vehicle is in the traveling phase.
Preferably, the base and the frame are produced in a single piece by overmolding. According to a preferred embodiment of a valve according to the invention, the base and the frame are produced from plastics material.
Advantageously, each magnet has a frustoconical shape. This shape of magnet is easy to machine and well suited to the environment of the valve.
According to a first preferred embodiment of a valve according to the invention, said valve constitutes an air intake metering device. Generally, an air metering device is placed in an air cooling circuit of an engine, upstream of said engine and permits the incident flow of air arriving in the intake manifold to be regulated.
According to a second preferred embodiment of a valve according to the invention, said valve constitutes a valve controlling the flow of gas of an EGR loop. An air supply circuit permitting an engine to be cooled, generally comprises at least one EGR loop which makes it possible to extract exhaust gases to mix the exhaust gases with the incident air circulating upstream of said engine.
The methods for assembling according to the invention enable valves to be produced for regulating the flow of gas, said valves having a reduced space requirement and thus being particularly suitable for an air supply circuit designed to cool an engine of an automotive vehicle. They also have the advantage of implementing steps which are simple and rapid to execute, such as for example the manufacture of components by overmolding and the operation of rotational molding.
A detailed description of a preferred embodiment of a valve for regulating the flow of gas according to the invention is provided hereinafter with reference to
a is a perspective view of an assembly of a toothed sector and a magnetic structure of a valve of the prior art.
b is an axial sectional longitudinal view of the assembly of
a is a sectional view of a pivot pin, a toothed sector and a magnetic structure of a valve according to the invention, before mounting.
b is a sectional view of a pivot pin, a toothed sector and a magnetic structure of a valve according to the invention, after assembly.
a and 1b have already been described.
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The operation of the metering device 10 is as follows. A signal is transmitted to an energy source controlling the rotation of the complementary toothed sector, which then initiates a controlled pivoting movement, driving the pivoting of the toothed sector 26 of the metering device 10 by the meshing thereof. The rotation of said toothed sector 26 simultaneously causes the rotation of the magnetic structure 15 which is fixed thereto, in addition to that of the flap. The Hall effect sensor 23 which remains fixed in the metering device 10, thus measures the magnetic field produced by the magnetic structure 15 after the pivoting thereof. Due to this sensor 23, the position of the flap in the cooling circuit is thus known.
Number | Date | Country | Kind |
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1160861 | Nov 2011 | FR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FR2012/052646 | 11/16/2012 | WO | 00 | 5/27/2014 |