1. Field of the Invention
The present invention relates to a device for injecting fuel, in particular pressurized fuel being injected into a combustion chamber of an internal combustion engine.
2. Description of Related Art
Known devices are used, for example, in the injection of fuel in vehicle engines. Besides injection of diesel fuel, gasoline is recently also injected. Frequently, the fuel is provided under pressure in a storage system (rail) and injected via the device into a combustion chamber or an intake manifold. Electromagnetic actuators on the one hand, or alternatively, piezoelectric actuators on the other hand, are used as actuators. Electromagnetic actuators are relatively inexpensive, but are relatively slow. On the other hand, piezoelectric actuators are fast but relatively expensive. It would therefore be desirable to have a device which has an actuator that is relatively fast and yet inexpensive.
The device according to the present invention for injecting fuel has the advantage over the related art that it has short switching times and yet is manufacturable in a cost-effective manner. In addition, the device according to the present invention is also able to easily carry out two or more injections per cycle. The device according to the present invention may have an outwardly opening nozzle, thus allowing very good jet stability as well as a large diameter at the valve seat. This is achieved according to the present invention in that the device has an electrodynamic drive in which a movable coil is provided. In this way the drive may be provided cost-effectively, and rapid reversals of the motion of the coil may be achieved by reversing the current feed to the coil. In addition, the device according to the present invention includes an outwardly opening needle, and a connecting element which connects the coil to the needle. In addition, the needle may be actively opened and closed, respectively, by reversing the current direction.
The electrodynamic drive preferably includes a first permanent magnet and a second permanent magnet, a spacer disk which is situated between the first and second permanent magnets, the movable coil, and a magnetically conductive casing. A compact and simple design may be achieved in this way.
The connecting element which connects the needle to the electrodynamic drive also preferably includes a plurality of fingers. A secure connection between the needle and the electrodynamic drive may thus be achieved, and fuel is able to flow through between the fingers. The needle also includes a spring washer on which a closing spring is supported. The connecting element is connected to the spring washer via the fingers.
The device also preferably includes a fuel supply line which supplies pressurized fuel to a pressure chamber, the fuel supply line being guided through the electrodynamic drive in a tube. A particularly simple and compact design of the device may be achieved in this way.
The device also preferably includes a fuel return line which connects a low-pressure chamber to a return line. The fuel return line is particularly preferably guided through the electrodynamic drive in a tube in order to achieve a particularly compact design.
According to another preferred embodiment of the present invention, the device includes a corrugated bellows which delimits the low-pressure chamber. Simple and secure sealing of the low-pressure chamber may be achieved in this way.
In addition, the fuel supply line preferably includes a central needle hole which is provided in the needle. The central needle hole is connected to the pressure chamber via a transverse hole. Fuel may thus be supplied to the needle and to the pressure chamber, which allows a particularly simple and compact design.
An end section of the tube is particularly preferably designed as a guide section for the needle. High guiding accuracy of the needle may be ensured in this way.
To provide a particularly compact design, a subarea of the fuel supply line and a subarea of the fuel return line are. guided in parallel within the tube.
According to another preferred embodiment of the present invention, the corrugated bellows is situated between the connecting element and the spring washer. A lift of the connecting element is thus transferred to the needle via the corrugated bellows. Particularly simple and secure sealing may thus be achieved with the aid of the corrugated bellows.
The present invention is preferably used in internal combustion engines in which fuel under high pressure is injected from a storage system (rail).
A device 1 for injecting fuel which is under high pressure is described in greater detail below with reference to
As is apparent in
Device 1 also includes a closing spring 3 which rests against a spring washer 11 which is fixed on needle 2. In addition, a connecting device 9 is provided which has an essentially cup-shaped design and is connected at its free end to movable coil 7. Multiple fingers 10 are provided at the base region of connecting device 9 and are situated in correspondingly configured openings 11a in spring washer 11. Fingers 10 are fixed in spring washer 11 in such a way that the spring washer may be moved upwardly and downwardly in the axial direction by moving connecting device 9. Spring washer 11 is fixedly connected to needle 2, resulting in movement of needle 2. As is further apparent from
As is further apparent from
Device 1 according to the present invention functions as follows. Fuel which is already under pressure is supplied, for example, from a rail to annular pressure chamber 15 via fuel supply line 13. Electrodynamic actuator 30 is activated if fuel is to be injected. For this purpose, coil 7 is supplied with current so that coil 7 moves downwardly, as indicated by arrow A in
According to the present invention, needle 2 may thus be actively opened and closed by reversing the current direction at coil 7. Very brief closing times are achieved which are significantly shorter than closing times for electromagnetic actuators, for example. Device 1 nevertheless has a very compact and in particular also robust design, so that device 1 provides a long service life. In addition, by use of the device according to the present invention in particular a large cross section at valve seat 2a may be achieved, so that large quantities of fuel may be injected with short opening times. Short opening intervals in particular may be achieved in this way.
A device 1 according to a second exemplary embodiment of the present invention is described in greater detail below with reference to
A device 1 according to a fourth exemplary embodiment of the present invention is described in greater detail below with reference to
The fourth exemplary embodiment essentially corresponds to the third exemplary embodiment except that, in contrast to the third exemplary embodiment, device 1 of the fourth exemplary embodiment has an even more compact design. For this purpose, a volume of low-pressure chamber 17 is reduced, and in addition an alternative guide design for needle 2 is implemented. For this purpose, a housing element 25 is centered over casing 8 of dynamic actuator 30. In addition, a lower casing section 8a ensures positioning of tube 12, and the upper end of needle 2 is guided in end section 12a of tube 12. A particularly compact design may be achieved in this way.
The fifth exemplary embodiment essentially corresponds to the fourth exemplary embodiment, with the additional provision of a metallic corrugated bellows 27. Corrugated bellows 27 separates low-pressure chamber 17 from a pressure-free space 28. Corrugated bellows 27 has an enlarged diameter at an end 27a facing the injection opening. This allows spring washer 11 to be mounted from the bottom, i.e., through the interior of the corrugated bellows. Corrugated bellows 27 has a relatively elongated design in the axial direction, and its diameter decreases at end 27c facing electrodynamic actuator 30. In a transition region 27b of corrugated bellows 27, spring washer 11 comes into contact with corrugated bellows 27 from the inner side thereof, and fingers 10 of connecting device 9 are situated on the outside of corrugated bellows 27. This design of corrugated bellows 27 allows fingers 10 together with connecting device 9 to be mounted from the top. In addition, a lift of coil 7 is thus transferred via connecting device 9 and fingers 10, and via corrugated bellows 27 to spring washer 11, and from there to needle 2. In other respects, this exemplary embodiment corresponds to the preceding exemplary embodiments, so that reference may be made to the description provided therein.
Number | Date | Country | Kind |
---|---|---|---|
10 2009 000 186.7 | Jan 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2009/065956 | 11/27/2009 | WO | 00 | 9/22/2011 |