This application claims priority to German Patent Application 10 2009 053 433.4 filed on Nov. 17, 2009 and PCT/EP2010/067484 filed on Nov. 15, 2010, which are hereby incorporated by reference in their entireties.
The present invention relates to an intake manifold section for installing in an intake system of an internal combustion engine, in particular of a motor vehicle. In addition, the invention relates to an intake system of an internal combustion engine, in particular of a motor vehicle, which is equipped with such an intake manifold section.
An intake system for the supply of fresh air of an internal combustion engine is usually equipped with an air mass sensor, by means of which a motor control cooperates, in order to be able to operate the internal combustion engine according to requirements. For example, parameters for the fuel injection, for a throttle valve, for valve control times, for an exhaust gas return and suchlike depend on the air mass which is supplied at a particular moment. Such an air mass sensor, which in particular can be configured as a hot film sensor, is comparatively sensitive with respect to impurities. Accordingly, the air mass sensor in the intake system is usually arranged downstream of an air filter. Furthermore, it is usual to introduce blow-by gases downstream of the air mass sensor, which are returned from a crankcase of the internal combustion engine into the intake system.
For the return of the blow-by gases, it is basically possible to connect to the intake system a hose originating from the crankcase or from a cylinder-head cover. This can entail a comparatively high expenditure.
The present invention is concerned with the problem of indicating for an intake system of the type named in the introduction or respectively for an associated intake manifold section, an improved or at least a different embodiment, which is distinguished in particular in that a simplified mounting and/or production and/or functional reliability is produced.
This problem is solved according to the invention by the subjects of the independent claims. Advantageous embodiments are the subject of the dependent claims.
The invention is based on the general idea of equipping a tube body, which is able to be installed in the intake system, on the one hand with the air mass sensor and on the other hand with a bypass channel, wherein the bypass channel on the one hand is able to be connected to a blow-by gas path, and on the other hand bypasses a fresh air path section running in the tube body. The blow-by gas path directs blow-by gas from the crankcase or respectively from a cylinder-head cover to the intake system, wherein the introduction into the intake system now takes place in accordance with the proposal according to the invention via the bypass channel of the tube body. The fresh air path is guided through the tube body. The air mass sensor protrudes into this fresh air path within the tube body.
Through the invention therefore an intake manifold section is provided which is able to be produced separately from the remaining intake system and which comprises the tube body with the air mass sensor and the bypass channel. Through this integral construction method, the introduction of the blow-by gas downstream of the air mass sensor can be ensured in a particularly simple manner. However, the factor is particularly advantageous that the connections by which the intake manifold section is integrated into the intake system can be configured particularly simply so that on the one hand the linking to the fresh air path of the intake system and on the other hand the linking to the blow-by gas path, are able to be realized more simply, wherein in particular a simultaneous connectability of the different paths is able to be realized. Furthermore, an integration of the two connection sites on the inlet side into a shared interface is also conceivable.
An embodiment is particularly advantageous here in which the bypass channel is formed integrally on the tube body. In particular, a manufacture of the tube body is conceivable with the bypass channel of plastic, in particular as a single-piece injection-moulded part.
For a simplified mounting of the intake manifold section on the intake system, the tube body can be connectable by its inlet opening to an outlet of a component of the intake system on the inflow side and can be connectable by its outlet opening to an inlet of a component of the intake system on the outflow side. In particular, defined interfaces can be thereby created, which simplify the integration or respectively the installation of the intake manifold section into the intake system.
According to a particularly advantageous further development, provision can now be made that the bypass channel opens on the outlet side into the component of the intake system on the outflow side. In other words, after the installation of the intake manifold section into the intake system, both the fresh air path section of the tube body and also the bypass channel open into the component of the intake system on the outflow side. In particular a shared connection site or respectively interface is produced thereby, which connects the intake manifold section with the component of the intake system on the outflow side, wherein at the same time the fresh air path and the bypass channel open into this component on the outflow side, whereby in this component on the outflow side the admixing or respectively introducing of the returned blow-by gases to the fresh air flow takes place.
According to another advantageous embodiment, the bypass channel can project on the outlet side in the fresh air flow direction over the outlet opening of the tube body. Hereby, the risk of a return flow of blow-by gas to the air mass sensor can be reduced.
The intake manifold section proposed according to the invention makes it possible in particular to equip the bypass channel on the inlet side with a connection piece which is able to be connected to an outlet of the blow-by gas path, wherein basically any desired configurations are conceivable for this outlet. For example, the said outlet can be arranged on a component of the intake system on the inflow side and in particular can even be formed integrally thereon. The connection piece of the bypass channel can also be used for example for connecting a hose, via which the blow-by gas is returned. For this, corresponding coupling means can be used, which enable a mounting and dismantling of the hose. Alternatively, it is likewise conceivable to securely arrange or respectively to pre-mount a hose on the connection piece of the bypass channel, which hose then on installation of the intake manifold section can be connected at its inlet end with the crankcase or respectively with the cylinder-head cover. For example, such a hose can be welded or coiled onto the connection piece of the bypass channel.
Further important features and advantages of the invention will emerge from the subclaims, from the drawings and from the associated figure description with the aid of the drawings.
It shall be understood that the features mentioned above and to be explained in further detail below are able to be used not only in the respectively indicated combination, but also in other combinations or in isolation, without departing from the scope of the present invention.
Preferred example embodiments of the invention are illustrated in the drawings and are explained in further detail in the following description, wherein identical reference numbers refer to identical or similar or functionally identical components.
There are shown, respectively diagrammatically
In accordance with
In the example which is shown, in addition a blow-by gas path 7, which is likewise indicated by arrows, runs in the region of the component 3 on the inflow side.
In accordance with
The air mass sensor 9, which can preferably be a hot film sensor, is fastened to the tube body 8 and protrudes into the fresh air path section 13.
The bypass channel 10 is arranged on the tube body 8 and bypasses the fresh air path section 13. In addition, the bypass channel 10 is able to be connected on the inlet side to the blow-by gas path 7. In the mounted state, the bypass channel 10 guides an end section 14 of the blow-by gas path 7. In this respect, the blow-by gas path 7 and said blow-by gas path end section 14 coincide in the bypass channel 10.
The bypass channel 10 is arranged externally on the tube body 8, whilst the fresh air path section 13 runs or respectively is guided internally in the tube body 8. The embodiment shown here is particularly advantageous, in which the bypass channel 10 is formed integrally on the tube body 8. Preferably, the tube body 8 and the bypass channel 10 are made from plastic and are designed as an injection moulded part. In the example of the
In accordance with
The tube body 8 is expediently equipped with an outlet connection 23 on the outlet side, via which it can be connected with the component 4 on the outflow side. This outlet connection 23 surrounds or respectively encompasses here the outlet opening 12 of the tube body 8 and the outlet section 16 of the bypass channel 10. As can be seen in particular from
The bypass channel 10 can be equipped on the inlet side, i.e. at its inlet section 15 with a connection piece 29. The bypass channel 10 is able to be connected by this connection piece 29 to an outlet 30 of a blow-by gas line 31. This blow-by gas line 31 guides the blow-by gas path 7 up to the bypass channel 10. This outlet 30 or respectively a section of the blow-by gas line 31 having the outlet 30, can be arranged in accordance with the embodiment shown in
In the example of
Deviating from the particular embodiment shown here, other embodiments are also conceivable for the connection of the bypass channel 10 to the blow-by gas path 7. For example, a hose can be coiled onto the connection piece 29, which hose then forms a part of the blow-by gas line 31. Likewise, it is possible to integrate an oil separator (not illustrated) into the blow-by gas path 7, the blow-by gas outlet of which then forms the outlet 30 to which the bypass channel 10 is able to be connected. Such an oil separator can be integrated for example into the component 3 on the inflow side and in particular into the air filter housing 33.
In the example shown here, the inlet opening 11 of the tube body 8 and an entry opening 41 of the bypass channel 10 have the same orientation, i.e. the planes in which the inlet opening 11 lies on the one hand and the entry opening 41 lies on the other hand, extend parallel to each other. The flow directions of fresh air on the one hand and blow-by gas on the other hand also extend in these openings 11, 41 substantially parallel to each other. Nevertheless, the inlet opening 11 and the entry opening 41 are separated from each other structurally or respectively are constructed spaced apart from each other on the tube body 8.
Hereby, a separate connecting of the tube body 8 or respectively of the intake manifold section 2 on the one hand to the fresh air path 5 and on the other hand to the blow-by gas path 7 is simplified.
In accordance with a preferred embodiment, the air mass sensor 9 has a housing 42 which can be glued or welded to the tube body 9. Hereby, a sufficient seal can be ensured between the housing 42 and the tube body 8. An embodiment is particularly advantageous in which the housing 42 and the tube body 8 are respectively produced from plastic, whereby it is possible in a particularly simple manner to weld the housing 42 to the tube body 8.
The air mass sensor 9 has, in addition, a connection 43 via which the air mass sensor 9 can be connected with a control or suchlike.
An embodiment is expedient in which the intake manifold section 2 forms a pre-mounted unit which is able to be produced separately from the remaining intake system 1 and can be installed particularly simply into the latter. The possibility is particularly expedient here of calibrating the air mass sensor 9 when it is already installed into the tube section 8, whilst the intake manifold section 2 itself is not yet installed into the intake system 1. In this way, the intake manifold section 2 can be installed with a calibrated air mass sensor 9 into the intake system 1. This leads to a considerable simplification on mounting of the intake system 1.
Number | Date | Country | Kind |
---|---|---|---|
10 2009 053 433 | Nov 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2010/067484 | 11/15/2010 | WO | 00 | 8/6/2012 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2011/061148 | 5/26/2011 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4862860 | Shinohara | Sep 1989 | A |
5081962 | Kurokawa et al. | Jan 1992 | A |
5383356 | Zurek et al. | Jan 1995 | A |
5477819 | Kopec | Dec 1995 | A |
5797380 | Tada et al. | Aug 1998 | A |
6012432 | Igarashi et al. | Jan 2000 | A |
6167855 | Mammarella et al. | Jan 2001 | B1 |
6173701 | Azuma | Jan 2001 | B1 |
6729316 | Knowles | May 2004 | B1 |
7182074 | Redon et al. | Feb 2007 | B1 |
7296563 | Yakabe et al. | Nov 2007 | B2 |
7302843 | Bender | Dec 2007 | B2 |
7360519 | Asfaw et al. | Apr 2008 | B2 |
7438047 | Kawasaki et al. | Oct 2008 | B2 |
7596991 | Redon | Oct 2009 | B2 |
7934419 | Saito et al. | May 2011 | B2 |
20030136368 | Ausiello et al. | Jul 2003 | A1 |
20050235940 | Shimatsu | Oct 2005 | A1 |
20090126670 | Kado et al. | May 2009 | A1 |
20100154736 | Ohzono | Jun 2010 | A1 |
20120103296 | Konakawa et al. | May 2012 | A1 |
20120198925 | Saito et al. | Aug 2012 | A1 |
Number | Date | Country |
---|---|---|
4229408 | Aug 1993 | DE |
19827330 | Sep 1999 | DE |
19827330 | Sep 1999 | DE |
102005057574 | Jun 2007 | DE |
0664390 | Jul 1995 | EP |
10-274026 | Oct 1998 | JP |
2003-049719 | Feb 2003 | JP |
WO-0163220 | Aug 2001 | WO |
Entry |
---|
Machine translation of DE 19827330, see attached document “DE19827330—Translation.pdf”. |
Machine translation of DE19827330, see “DE19827330—MachineTranslation.pdf”. |
English abstract for DE-4229408. |
English abstract for DE-19827330. |
English abstract for DE-102005057574. |
English abstract for JP-10-274026. |
English abstract for JP-2003-049719. |
English translation of JP OA for 2012-539288, dated Apr. 22, 2014. |
Number | Date | Country | |
---|---|---|---|
20120312270 A1 | Dec 2012 | US |