The present invention is based on a fuel injector-spark plug combination.
From the European Published Patent Application No. 0 661 446, a fuel injector having an integrated spark plug is known. The fuel injector with integrated spark plug is used for the direct injection of fuel into the combustion chamber of an internal combustion engine and for igniting the fuel injected into the combustion chamber. Due to the compact integration of a fuel injector with a spark plug it is possible to save installation space at the cylinder head of the internal combustion engine. The known fuel injector with integrated spark plug has a valve body which, together with a valve-closure member actuable by means of a valve needle, forms a sealing seat, adjacent to which is a spray-discharge orifice, which discharges at an end face of the valve member facing the combustion chamber. A ceramic insulation element insulates the valve body from a housing body in a high-voltage proof manner, the housing body being able to be screwed into the cylinder head of the internal combustion engine. Located on the housing body is a ground electrode in order to form an opposite potential to the valve member acted upon by high voltage. In response to a sufficient high potential being applied to the valve member, a spark arc-over takes place between the valve body and the ground electrode connected to the housing body.
However, a disadvantage of the known fuel injector with integrated spark plug is that the position of the spark arc-over is not defined with respect to the fuel jet spray-discharged from the discharge orifice, since the spark arc-over may occur just about anywhere in the lateral region of a projection of the valve body. A reliable ignition of the so-called jet root of the fuel jet spray-discharged from the spray-discharge orifice is not possible with the required reliability in this known design. However, a reliable and temporally precisely defined ignition of the fuel jet is absolutely required in order to achieve reduced emissions. Furthermore, the discharge orifice of the fuel jet may be subject to steadily worsening carbon fouling or coking, which influences the form of the spray-discharged jet.
In contrast, the fuel injector-spark plug combination of the present invention, having the characterizing features of the main claim, has the advantage over the related art that by a biaxial arrangement of the fuel injector and the spark-plug insulator of the spark plug in a shared connecting member, which is insertable in the cylinder head of the internal combustion engine, the components are optimally arranged with respect to each other, resulting in a system which is easy to install and requires little space.
The features set forth in the dependent claims make possible advantageous developments of and improvements to the fuel injector-spark plug combination described in the main claim.
In an advantageous manner, the spark-plug insulator is secured in its receiving bore by a threaded sleeve or a clamping ring. The spark-plug insulator is screwed into, or inserted in, the respective mounting support.
Particularly advantageous is the tilting of the longitudinal axis of the spark-plug insulator relative to the longitudinal axis of the fuel injector, since it avoids that the spark plug is directly exposed to the fuel jet of the fuel injector.
Furthermore, it is advantageous that, by a suitable form of the connecting member, the fuel injector is able to be held in place inside it, for instance by means of a mounting clamp, which rests on a shoulder of the fuel injector.
In an advantageous manner, the mounting clamp may be integrally formed with the connecting member.
It is also advantageous that both the fuel injector and the individual parts of the spark plug, i.e., the spark-plug insulator and the ground electrode, are able to be exchanged independently of one another, without having to remove the connecting member from the cylinder head or having to remove one of the other components.
Fuel injector 2 has a housing body 4 and a nozzle body 5. Fuel is conveyed to fuel injector 2 via an inflow nipple 6, which is connected to a fuel-distributor line (not shown further in FIG. 1). Fuel injector 2 has an electric plug-in contact 7 which allows the contacting of the actuation device of fuel injector 2 which is not shown in FIG. 1.
Spark plug 3 has a conventional design and is made up of a spark-plug insulator 8, which is preferably made of a ceramic material, and a first electrode 9 positioned therein. First electrode 9 is electrically contactable by an ignition device (not shown further). At least one second electrode 10 is formed on a connecting member 11, which accommodates fuel injector 2 and spark plug 3 according to the present invention.
Connecting member 11 is designed such that it forms a one-piece connecting member both for fuel injector 2 and for spark-plug insulator 8 of spark plug 3. It has a first receiving bore 12 for fuel injector 2 and a second receiving bore 13 for spark-plug insulator 8 of spark plug 3. Spark-plug insulator 8 of spark plug 3 and fuel injector 2 are able to be connected in connecting member 11 in a releasable manner. In the first exemplary embodiment shown in
By a suitable selection of angle α and the geometry of a sealing seat, and of at least one spray-discharge orifice of fuel injector 2 and the injection jet, respectively, an optimal ignition of the mixture cloud injected into the combustion chamber is able to be ensured, with spark plug 3 being subjected to minimal thermal shock, so that the fuel consumption and the emissions of the internal combustion engine are influenced in an advantageous manner.
The advantages of connecting member 11 configured according to the present invention compared to separate components, are the simple installation possibility in a recess 18 of a cylinder head 19 of the internal combustion engine, the possibility of a separate exchange of fuel injector 2, spark-plug insulator 8 and second electrode 10 of spark plug 3 and also the reduced installation space of spark plug 3 and fuel injector 2 in cylinder head 19.
The advantages compared to a coaxial positioning of fuel injector 2 and spark plug 3 are, in particular, the increased durability of the components and an improvement in the cold start-characteristics of the internal combustion engine, since expensive ceramic coatings will not be necessary. This also keeps the manufacturing and servicing costs low.
Recess 18 of cylinder head 19 may be embodied in the form of a bore or an elongated hole, which is filled by the correspondingly formed connecting member 11. The sealing from the combustion chamber is accomplished by a seal 20 which is situated between connecting member 11 and a wall 21 of cylinder head 19. Seal 20 may have a toroidal or annular shape, for instance, of any desired cross section and be made of a Teflon material.
Connecting member 11 is integrally formed from a suitable material and, apart from receiving bores 12 and 13 for fuel injector 2 and spark plug 3, has a mounting clamp 22 for fuel injector 2. Mounting clamp 22 extends along a side of fuel injector 2 that faces away from spark plug 3 and holds it in position inside connecting member 11 by means of a protruding edge 23 which is supported on a shoulder 24 of fuel injector 2 surrounding inflow nipple 6. A seal 25 between nozzle body 5 and connecting member 11 ensures the tightness of the system with respect to the combustion chamber.
Furthermore, threaded sleeve 14, which was already mentioned earlier, into which spark-plug insulator 8 of spark plug 3 is able to be screwed, is integrated in form-locking manner by pressing it into connecting member 11, for instance.
In the same view as
In order to further reduce the installation space even in the case of larger angles α between spark plug 3 and fuel injector 2, fuel injector 2 may be rotated in such a way that electrical plug-in contact 7 lies on the side of fuel injector 2 facing spark plug 3.
Connecting member 11 in the present second exemplary embodiment is no longer provided with a mounting clamp 22 for fuel injector 2. Instead, fuel injector 2 may be held in position, for instance, by the pressure exerted by a fuel-distributor line 26, which is inserted in inflow nipple 6 and sealed by a seal 27. Therefore, this exemplary embodiment of a connecting member 11 for a fuel distributor-spark plug combination 1 is especially easy to manufacture.
In the present exemplary embodiment, spark-plug insulator 8 of spark plug 3 is mounted via a clamping ring 28, which—like threaded sleeve 14 described in FIG. 1—is integrated in connecting member 11 with positive engagement.
In a part-sectional view,
As can be seen in
The exemplary embodiment shown in
The present invention is not restricted to the exemplary embodiments shown and applicable to various designs of fuel injectors and arbitrary tilting angles of spark plug 3 and fuel injector 2 with respect to one another.
Number | Date | Country | Kind |
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101 59 910 | Dec 2001 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE02/03552 | 9/20/2002 | WO | 00 | 12/16/2003 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO03/05041 | 6/19/2003 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3507262 | Stage | Apr 1970 | A |
4006725 | Baczek et al. | Feb 1977 | A |
4864989 | Markley | Sep 1989 | A |
5609130 | Neumann | Mar 1997 | A |
5611307 | Watson | Mar 1997 | A |
5927244 | Yamauchi et al. | Jul 1999 | A |
6138637 | Bubeck | Oct 2000 | A |
Number | Date | Country |
---|---|---|
1 576 030 | Nov 1971 | DE |
196 38 024 | Mar 1998 | DE |
695 21 204 | Jun 2002 | DE |
0 654 602 | May 1995 | EP |
0 661 446 | Jul 1995 | EP |
637 584 | May 1950 | GB |
05 288136 | Nov 1993 | JP |
6-123270 | May 1994 | JP |
Number | Date | Country | |
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20040084011 A1 | May 2004 | US |