1. Field of the Invention
The present invention relates to a device for injecting fuel, in particular a pressurized fuel being injected into a combustion chamber of an internal combustion engine.
2. Description of Related Art
Known devices for injecting fuel are used, for example, for injecting fuel in vehicle engines. Besides injection of diesel fuel, gasoline is recently also injected. Frequently, for the fuel injection fuel is provided from a storage (rail) and injected into a combustion chamber or an intake manifold via the injection device. 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 an injection 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 compact design in a cost-effective manner. 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 uses an inwardly opening nozzle, so that a conical spray having a very good pattern is generated during the injection.
In addition, a plurality of spray holes may be easily provided in order to provide individually adjusted sprays, for example for different engine manufacturers, or for a swirl spray. This is achieved according to the present invention in that the device has an electrodynamic actuator or drive having a movable coil. The drive may thus be provided very cost-effectively, and the motion of the coil may be reversed quickly by reversing the direction of the current feed to the coil. The movable coil of the electrodynamic drive is connected to a needle of the injection device, which is implemented with the aid of a connecting element. The connection between the connecting elements of the needle is such that the needle may be actively opened and closed, respectively, by reversing the current direction.
In addition to the movable coil, 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, and a casing which is made of a magnetically conductive material. A very compact and simple design is achieved in this way.
The connecting element which connects the needle to the electrodynamic drive also preferably includes a plurality of fingers. This allows a secure connection between the needle and the electrodynamic drive, and also represents a reliable coupling in both directions of motion. The fingers are preferably connected in a form-locked manner to a pinhole disk which is fixed to the needle.
In addition, the needle preferably includes a closing spring, in particular a spring washer, which is fixed to the needle and which is used for supporting the closing spring. The closing spring assists in a closing operation of the needle.
The injection device also preferably includes a tube which is guided centrally through the electrodynamic drive in the axial direction. The tube is designed to supply fuel through the electrodynamic drive.
A particularly compact design may be achieved in this way.
According to another preferred embodiment of the present invention, the electrodynamic drive is situated in a chamber filled with fuel, the fuel in this chamber being under pressure.
In addition, the device preferably includes a corrugated bellows which separates the electrodynamic drive from the pressurized fuel. As a result, the electrodynamic drive does not have to be situated in a chamber filled with fuel.
To provide a particularly compact design, the needle is provided with a central through hole which is connected via a transverse hole to a pressure chamber at a free end of the needle. Fuel may thus be supplied through the interior of the needle to the pressure chamber.
To achieve the most secure guiding of the needle possible, an end section of the tube is designed as a guide section in order to guide the needle. Separate guide devices for the needle may thus be dispensed with.
According to another preferred embodiment of the present invention, the closing spring is preferably situated in the tube. This allows a particularly compact design of the device in which the closing spring in the tube does not hinder supplying fuel through the tube.
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 exerts a closing force on needle 2. For this purpose, a spring washer 13 on which closing spring 3 is supported at one end is fastened to needle 2. The other end of closing spring 3 is supported on a housing component 14a. In addition, a pinhole disk 11 is fastened to needle 2, at an end of needle 2 remote from spray holes 18. Spray holes 18 are provided in housing 14 and oriented at a predetermined angle with respect to axial direction X-X. Movable coil 7 is connected to needle 2 via a connecting device 9. Connecting device 9 includes multiple fingers 10 which engage in openings 11a in pinhole disk 11.
In addition, a tube 12 is provided which is guided through electrodynamic actuator 30. Tube 12 is used for conducting fuel from fuel supply line 19. The fuel is led into a fuel chamber 16, flowing between fingers 10 of connecting device 9. This is indicated by arrows B in
Device 1 according to the present invention functions as follows. Fuel which is already under pressure is supplied, as indicated by arrow A, for fuel supply line 19, and tube 12 is supplied to fuel chamber 16. A connection to annular pressure chamber 15 is provided in fuel chamber 16 via supply line channel 17. Electrodynamic actuator 30 is activated if fuel is to be injected. For this purpose, coil 7 is supplied with current in such a way that the coil moves, as indicated by arrow E. Thus, needle 2 also moves in the direction of arrow D, via connecting device 9 and fingers 10. This causes needle 2 to be lifted off from valve seat 2a, thus opening spray holes 18 and allowing fuel to be injected from the spray holes into a combustion chamber or an intake manifold. Closing spring 3 is compressed by the motion of needle 2. To conclude the injection, the current direction at movable coil 7 is reversed, causing the coil to move in the opposite direction. Active closing of needle 2 is thus achieved, with the assistance of tensioned closing spring 3 in the closing operation. Needle 2 is thus actively closed as a result of the fixed connection between movable coil 7 and needle 2. The injection of fuel is thus concluded.
According to the present invention, for an inwardly opening valve, needle 2 may thus be actively opened and closed, using an electrodynamic actuator 30, by reversing the current direction at a movable coil 7. Very brief closing times may be achieved which are significantly shorter than closing times for electromagnetic actuators, for example. This is achieved with a compact design of device 1 as well as very cost-effective manufacturability of device 1. By providing a plurality of spray holes 18, large quantities of fuel may be injected, even with short opening times. In particular, a spray with very good distribution may thus be achieved.
Further preferred exemplary embodiments of the present invention are described in greater detail below with reference to
As the result of using electrodynamic actuator 30, device 1 described in the exemplary embodiments thus has characteristics which very closely approximate the characteristics of piezoelectric actuators. Named in particular are a very short switching time and multiple injections during a cycle. Devices 1 according to the present invention are nevertheless very compact and cost-effective.
Number | Date | Country | Kind |
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10 2009 000 185.9 | Jan 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2009/065966 | 11/27/2009 | WO | 00 | 9/14/2011 |