The invention is based on a method having the features disclosed herein and on a system disclosed herein. Such a method and such a system are known from WO 2004/063560 A1.
WO 2004/063560 A1 discloses, how a fuel-air-mixture can be ignited in a combustion chamber of a combustion engine by a corona discharge generated in the combustion chamber. For this purpose, an ignition electrode is passed through one of the walls of the combustion chambers in an electrically insulating manner, the walls being applied to ground potential, and projects into the combustion chamber, preferably opposite to a piston provided in the combustion chamber. The ignition electrode forms a capacitance together with the walls of the combustion chamber at earth potential as a counter electrode. The combustion space with its content acts as a dielectric. According to the cycle of the piston, said combustion space contains air or a fuel-air-mixture or an exhaust gas.
The capacitance is part of an electrical resonant circuit, which is energised with a high frequency voltage, which is generated by means of a transformer with centre tap. The transformer co-operates with a switching device, which applies a specifiable D.C. voltage alternately to both primary windings of the transformer, which are separated by the centre tap. The secondary winding of the transformer feeds a series resonant circuit, in which the capacitance formed by the ignition electrode and the walls of the combustion chamber is present. The frequency of the alternate voltage energising the resonant circuit and delivered by the transformer is controlled in such a way, that it is as close as possible to the resonance frequency of the resonant circuit. The result is a voltage overshoot between the ignition electrode and the walls of the combustion chamber, in which the ignition electrode is arranged. The resonance frequency ranges typically between 30 kHz and 3 MHz and the alternate voltage reaches values of for instance 50 kV to 500 kV on the ignition electrode.
In this way a corona discharge can be generated in the combustion chamber. The corona discharge should not turn into an arc discharge or a spark discharge. It is therefore ensured that the voltage between the ignition electrode and the mass remains below the full breakthrough voltage. For this purpose, the mean voltage and the mean amperage are measured at the output of the transformer and the impedance of the resonant circuit is calculated as a quotient from the mean voltage and the mean amperage. The calculated impedance is compared with a setpoint value for the impedance, which is selected in such a way that the corona discharge can be preserved, without causing a complete voltage breakthrough. The current supply of the transformer is operated by a regulator in such a way, for instance by pulse width modulation, that the impedance of the resonant circuit is as close as possible to its setpoint value.
WO 2004/063560 discloses also, how to monitor the high-frequency ignition device for its functionability and to signal any too low voltage or any too high voltage for supplying the resonant circuit and any missing ignition to an engine control device.
An object of the present invention is to provide an advantageous further development of the method for igniting a fuel-air-mixture in a combustion engine by means of a corona discharge igniting the mixture.
This object is met by a method having the features disclosed herein. A system for igniting a fuel-air-mixture in a combustion engine, which applies the method according to the invention, is disclosed herein. Advantageous refinements of the invention are also described herein.
The method according to the invention is used for igniting a fuel-air-mixture, in particular in a combustion engine, in particular in a piston engine, with one or several combustion chambers, which are delineated by walls, which are at ground potential. The method is particularly suitable for combustion engines in motor vehicles. In such a case, the walls of the combustion chamber are connected to the earth terminal of an accumulator provided in the vehicle.
In the method according to the invention, an electrical resonant circuit is energised, in which a capacitance is present, which is formed by the combination of an electrically insulated ignition electrode extending through one of the walls delineating the combustion chamber and protruding into the combustion chamber and of the walls of the combustion chamber at earth potential. In an engine with reciprocating pistons, the ignition electrode is preferably opposite to the respective piston. The energization of the resonant circuit is controlled in such a way that a corona discharge igniting the fuel-air-mixture is generated in the combustion chamber between the ignition electrode and the walls of the combustion chamber and that at the same time, a spark discharge taking place as a consequence of a complete voltage breakthrough between the ignition electrode and the walls of the combustion chamber is prevented.
According to the invention, the strength of the alternate current flowing in the resonant circuit, the alternate voltage energising the resonant circuit and/or the impedance of the resonant circuit are observed. Characteristic values specifying the state of the combustion chamber and/or the state of the mixture present in the combustion chamber are acquired from the observations or from one or several measured values derived therefrom and/or from their chronological sequence. These characteristic values are preferably entered into a diagnostic instrument and/or a control device, in particular an engine control device as input variables.
The invention has significant advantages:
For the purposes of the present invention, a frequency range of 500 kHz to 3 MHz is preferred, in particular of 500 kHz to 1.5 MHz. An output voltage of 0.1 kV to 5 kV is more suitably chosen, preferably a voltage of no more than 1 kV, for energising the resonant circuit.
It goes without saying that in addition to the capacitance formed in the combustion chamber, the resonant circuit also contains at least one inductance and may also contain another capacitance outside the combustion chamber if required. The resonant circuit can be connected to the output of a transformer via its inductance (winding). The transformer delivers the high frequency alternate voltage for energising the resonant circuit. The resonant circuit is preferably energised with its resonance frequency or with a frequency which is approximated to its resonance frequency. If the resonant circuit oscillates with its resonance frequency then the voltage increase occurring in the resonant circuit is the greatest.
Preferably, the phase shift between the alternate current flowing in the resonant circuit and the energising alternate voltage is observed for determining the resonance frequency of the resonant circuit. If the resonant circuit is a series resonant circuit, which is preferred according to the invention, then the frequency of the voltage energising it is regulated in such a way that the phase difference between the alternate current flowing in the resonant circuit and the energising voltage is minimised. Phase locked loops (PPL) which can do so, are known in the art. Such a phase locked loop enables to regulate the resonant circuit in such a way that the phase difference between the alternate current flowing in the resonant circuit and the energising alternate voltage is minimised.
The impedance of the resonant circuit can, as already disclosed in document WO 2004/063560 A1, be calculated from the mean of the amperage of the alternate current flowing in the resonant circuit and from the mean of the alternate voltage energising it. Therein both means are established for the same preset time span.
Another possibility is to determine the chronological progression of the impedance from the phase shift between the alternate current flowing in the resonant circuit and the alternate current flowing in the resonant circuit. It should be noted that the impedance correlates with the phase shift between current and voltage in the resonant circuit and reaches a minimum when current and voltage are in phase in the resonant circuit. This operating mode is preferred.
More appropriately, the impedance of the resonant circuit is adjusted to a set value by closed loop control. The set value is selected in such a way that a corona discharge takes place and can be preserved in the combustion chamber, without turning into a spark discharge or into an arc discharge. Instead of the impedance, the phase shift between current and voltage can also be adjusted to a set value by closed-loop control.
High frequency ignition devices, which turn into a spark discharge, are known per se. The transition of the corona discharge into a spark discharge generates a plasma, in which the electrical current flows comparatively unhindered with a strong voltage drop by forming an arc of light. In such a case, it is hardly possible to gain insight on the state of the mixture and of the combustion process in the combustion chamber, except determining the ignition timing and the breakthrough voltage. The purpose of the invention is hence to avoid a complete voltage breakthrough, but rather to preserve a corona discharge during which a charge cloud can develop in the region around the tip of the ignition electrode. The charge cloud predominantly consists of electrons, which are released in a volume with sufficiently high electrical field strength by field emission from the ignition electrode.
In the case of a combustion engine with reciprocating piston or rotary piston, the resonant circuit is preferably energised intermittently in a specified cycle, which depends on the piston movement and can be preset by the engine control device. The ignition timing can be derived from the clocking of the resonant circuit. In other cases, for instance with a drive turbine or with a gas burner, the resonant circuit can also be excited continuously and the corona discharge be preserved correspondingly continuously.
It has already been mentioned above that several influence factors come into play in the combustion space, which influence the behaviour of the resonant circuit by modifying the capacitance between the ignition electrode and the walls of the combustion chamber. These influence factors may, inasmuch as they have an effect on the behaviour of the resonant circuit in a characteristic fashion, be detected when the alternate current flowing in the resonant circuit, the alternate voltage energising it and/or the impedance of the resonant circuit and/or their chronological sequence are checked for characteristic features or patterns. This can happen for instance using an artificial neural network, because the recognition of such characteristic features or patterns can be learned. Another possibility consists in subjecting the chronological progression of the impedance of the resonant circuit to a wavelet transformation and to check for characteristic features or patterns in the transformed space. Once found, they may be interpreted numerically according to the frequency or intensity of their occurrence. Numerical values so acquired are entered into a diagnostic instrument and/or a control device as input variables. The diagnostic instrument can compare the numerical values entered therein with limit values and detect when said values exceed or fall below the limit values and/or display them. A control device can employ the input variables entered therein to exert influence on the control of the resonant circuit or on other actuators which are provided for the motor operation. The diagnostic instrument and the control device may be incorporated into a common apparatus along with various pieces of equipment for the ignition system, but they can also be realised separately or be incorporated into an engine control device which is present anyway.
The invention enables to acquire one or several characteristic values from the following group of characteristic values, which characterise the condition of the combustion chamber and/or the state of the mixture present in the combustion chamber, because they influence the electrical capacitance, which is formed by the combination of the ignition electrode and the walls of the combustion chamber, and hence the behaviour of the resonant circuit and its natural frequency:
The characteristic values, which are acquired from the observation of the alternate current flowing in the resonant circuit, of the alternate voltage energising the resonant circuit and by observation of the impedance of the resonant circuit, are combined in an advantageous refinement of the invention with additional data, which are useful for controlling the combustion in the respective combustion chamber. The characteristic values can be used together with these additional data for controlling the combustion. This enables optimisation of the combustion, in particular with combustion engines in vehicles, which are usually fitted with an engine control device, in which an engine control computer ensures electronic engine management. To fulfil its open and closed loop control tasks, the engine control device usually receives data from sensors, which are arranged at different points in the vehicle, such as for instance
In order to optimise the engine control for instance in terms of low fuel consumption and low pollutant emission, the characteristic values acquired from the observation of the resonant circuit can be associated, interpreted in common and processed with the additional data entered into the engine control device.
A system for igniting the fuel-air-mixture in a combustion chamber is disclosed herein. It mainly consists of a voltage source, for instance a battery or an accumulator, from which a high frequency alternate voltage is generated by means of a high-frequency generator, which energises an electrical resonant circuit, in which a capacitance is present, which is formed by the combination of an ignition electrode with the walls of the combustion chamber at earth potential. A control device controls the energization of the resonant circuit in such a way that a corona discharge is generated in the combustion chamber in the environment of the ignition electrode while a spark discharge is avoided. According to the invention, the system includes means for observing the alternate current flowing in the resonant circuit, means for observing the alternate voltage energizing the resonant circuit and/or means for observing the impedance of the resonant circuit. The system also comprises an analyzing circuit, which acquires characteristic values specifying the state of the combustion chamber and/or the state of the mixture present in the combustion chamber from the observations and/or from one or several measured values derived therefrom and/or from their chronological sequence. These characteristic values are made available on an interface for further processing. They can be transmitted via the interface to a control device of the ignition system, where they can be used to control the actual ignition process. But they can also be transmitted to a diagnostic instrument via the interface, in which device they can be used to carry out a diagnostic of the ignition system. To do so, certain characteristic values are monitored for the observance of limit values and values exceeding or falling below limit values are stored in memory and/or displayed. Limit values stored in memory can be read in a workshop with a diagnostic computer present therein. A control device can also be connected to the interface, in particular an engine control device, into which the characteristic values are entered as input variables for assisting in the engine control. For example, the composition of the ignitable fuel-air mixture for a determined fuel type, the ignition timing and the duration of the corona discharge per engine cycle can thus be acquired using input variables, which were derived from the observation of the behaviour of the resonant circuit.
The accompanying schematic drawings below provide better explanation of the invention.
A high-frequency generator 10 is provided for energising the resonant circuit 7. This generator has a D.C. voltage source 11 and a transformer 12 with a centre tap 13 on its primary side, wherein two primary windings 14 and 15 meet on the centre tap 13. The ends of the primary windings 14 and 15, which are remote from the centre tap 13, are connected to earth alternately by means of a high frequency change-over switch 16. The switching frequency of the high frequency change-over switch 16 determines the frequency, with which the series resonant circuit 7 is energised, and can be modified. The secondary winding 17 of the transformer 12 feeds the series resonant circuit 7 on point A. The high frequency change-over switch 16 is operated by means of a non-illustrated closed loop control circuit in such a way that the resonant circuit is energised with its resonance frequency. The voltage between the tip of the ignition electrode 5 and the walls 2 to 4 at earth potential is then the greatest.
The impedance of the series resonant circuit 7 determines the nature of the electrical discharge occurring on the ignition electrode. The impedance is controlled on a set value by means of a closed loop controller which is not shown. The set value is to be reached, so that a corona discharge occurs and can be preserved for a preset time span to trigger an ignition of the fuel-air mixture in the combustion chamber 1, but the set value should not be exceeded, so that no voltage breakthrough and as a further consequence no spark discharge or arc discharge takes place in the combustion chamber 1. To be able to regulate the impedance of the resonant circuit 7 to its setpoint value, its actual value has to be determined. The actual value of the impedance is preferably determined from the simultaneous measurement of current and voltage on the transformer 12, namely on the secondary of the transformer 12.
In the cylinder head 2 is a passage 20, through which the ignition electrode 5 is passed electrically insulated and in a sealed fashion. The ignition electrode 5 is surrounded by an insulator 6 on a portion of its length. The insulator may consist of a sintered ceramic, for instance of an aluminium oxide ceramic. The ignition electrode 5 reaches into the combustion chamber 1 with its tip and protrudes a little over the insulator 6, but could also be flush with the same.
A few sharp-edged protrusions 21 can be provided on the upper side of the piston 18 in the vicinity of the tip of the ignition electrode 5, which are used for locally increasing the electrical field strength between the ignition electrode 5 and the piston 18 opposite thereto. A corona discharge forms when energising the resonant circuit 7 mostly in the region between the ignition electrode 5 and the selectively present protrusions 21 of the piston 18 which can be accompanied by a more or less intensive charge carrier cloud 22.
A housing 23 is attached on the external face of the cylinder head 2. The primary windings 14 and 15 of the transformer 12 and the high frequency switch 16 co-operating therewith are situated in a first compartment 24 of the housing 23. The secondary winding 17 of the transformer 12 and the remaining components of the series resonant circuit 7 as well as means for observing the behaviour of the resonant circuit 7 are situated in a second compartment 25 of the housing 23. These means transmit the results of their observations to an analysing circuit in the second section 25. Said circuit determines characteristic values therefrom, which characterise the state of the combustion chamber 1 and/or of the gaseous mixture present in the combustion chamber and makes them available at an interface 26, via which they can for instance reach a diagnostic instrument 29 and/or an engine control device 30, which uses them as input variables for control and regulation tasks for the purposes of controlling the engine. The engine control device transfers timing signals to an input 27 and other control signals, for example reference set for the impedance of the resonant circuit 7, to an input 28 of the ignition device.
WO 2004/063560 A1
Number | Date | Country | Kind |
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10 2009 013 877 | Mar 2009 | DE | national |
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PCT/EP2010/001605 | 3/13/2010 | WO | 00 | 9/1/2011 |
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WO2010/105784 | 9/23/2010 | WO | A |
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