The invention relates to a device for regulating a multiple spark operation of a combustion engine with the characteristics that are mentioned in the generic term of claim 1 on the one hand and a related procedure for regulating a multiple spark operation of a combustion engine with the characteristics that are mentioned in the generic term of claim 14 on the other hand.
A device and a procedure for regulating a multiple spark operation of a combustion engine of the type that is mentioned above are generally known. In order to ensure a secure ignition of a mixture of fuel and air in all operating points of the combustion engine further ignition sparks are created in the same ignition cycle in the sense of a multiple ignition with the aid of an ignition plug in some operating statuses, such as during a starting phase, by turning back on an ignition transformer immediately after one ignition spark dies. With the aid of a device a controlling of the multiple spark ignition takes place.
Further solutions are known, which improve the multiple spark operation—also called multiple spark mode. Thereby a primary inductance that is located in the primary current circuit of the transformer is reloaded already before igniting the ignition spark. Due to a still existing residual energy in the ignition transformer a recharging time of the primary inductance is significantly reduced. In this context it can be profited from an effect, at which a significant part of the ignition spark energy that is created by the transformer is transformed at the beginning of each ignition spark, thus if the ignition spark current is the highest, whereby it subsequently sinks almost linearly. By doing so several ignition sparks of short duration but comparably high energy can be created during an ignition cycle. The device provides thereby merely the total duration of the multiple spark operation, while a regulator electronic takes over a regulation of the multiple spark operation, thus a series of consecutive ignition sparks. The regulator electronic is usually located together with the ignition transformer in a common housing.
Typically firm threshold values are stored in the regulator electronic for a primary current and for a secondary current, at which the ignition transformer is turned off and back on. But there are several influencing factors, such as the composition of a fuel air mixture, ignition plug ageing and such alike, which complicate an optimal operation of the combustion engine at specified threshold values.
According to the invention for regulating a multiple spark operation of a combustion engine with the characteristics that are stated in claim 1 offers in contrast the advantage, that an individual adjustment of the threshold values, in particular the current thresholds, can be carried out for the primary current and/or for the secondary current depending on the operating status of the combustion engine. Thereby a programming of at least one current threshold takes place. The individual adjustment of the current thresholds enables therefore a demand-oriented adjustment of the follow-up current thresholds of the multiple spark operation in each single cylinder or work cycle of the combustion engine.
With the aid of the individual adjustment of the current threshold and the corresponding demand-oriented adjustment of the follow-up current thresholds of the multiple spark operation influencing factors, as for example the mixture composition, ignition plug ageing and such alike, which complicate the optimal operation of the combustion engine, can therefore be considered and compensated at ignition processes. With other words the feed of ignition energy to an ignition plug can be adjusted to the demand of the corresponding operating and load status of the combustion engine.
Lastly the present invention does not only ensure an improved fuel ignition but also a reliable operation of the combustion engine. Additionally the improved fuel ignition has a positive effect on a fuel consumption of the combustion engine on the one hand and on a power request of the combustion engine on the other hand. The same applies analogously for the procedure for regulating the multiple spark operation of a combustion engine with the characteristics of claim 14.
Advantageous improvements, in particular with regard to the programming of the thresholds, result from the characteristics of the dependent claims.
According to a preferred embodiment of the invention it is provided that an adjustment of the at least one current threshold takes place depending on a transformer current, in particular a primary current and/or secondary current, that can be detected with a detection device or measured. An individual adjustment of the thresholds can thereby take place with the aid of a control unit in such a way that they are brought into accordance with the optimal thresholds, which are known for each operating status and stored in the control unit. Ultimately the multiple spark operation is enabled by this means, in particular including the adjusted thresholds.
It is provided in an advantageous embodiment of the invention that a transmission of the default value for a follow-up current threshold takes place from a control unit to a regulator electronic of the ignition transformer with the aid of an encoded interval between a first control signal that is emitted by a control unit and a second control signal that is emitted by the control unit. By means of the coding of the interval or the pause time between the two control signals of the control unit an information that qualifies for the ignition transformer can be transmitted over a provided current threshold
It is provided in a further advantageous embodiment of the invention that the transmission of the default value for the follow-up current threshold, in particular the secondary current switch-off threshold, takes place by means of the duration of the interval. The duration of the interval or the pause time between the two control signals of the control unit represents a signal gap, which is present anyway and which can be used by a targeted and scheduled change to a value association. Thus an interval of for example 30 μs can be associated with a secondary current switch-off threshold of 70 mA or an interval of 160 μs with secondary current switch-off threshold of 40 mA.
According to a preferred embodiment of the invention it is provided that the transmission of the default value takes place by means of the duration of the interval in combination with a further default value for a corresponding follow-up current threshold, in particular a primary current switch-off threshold, which is based on an additional current threshold. That results in a synergy effect, at which a value combination can be transmitted for the secondary current switch-off threshold as well as for the primary current switch-off threshold by means of only one parameter namely the interval.
According to a preferred embodiment of the invention it is provided that the transmission of the default value takes place in connection with a current threshold difference value over the duration of the interval. With other words a value delta is thereby transmitted over the pulse pause, which lowers the corresponding current threshold at a longer pulse pause for example by 10 mA. At a short pulse pause the corresponding current threshold can be raised with the aid of the value delta for example by 10 mA. A constellation can also be provided, at which an average pulse pause causes no change of the relevant current threshold.
It is provided in a preferred embodiment of the invention that a bidirectional interface is provided between the control unit and the ignition transformer, in particular for transmitting a spark burning time. A feedback of information of the ignition transformer can thereby take place by a switchover of a control current. The control current during the spark burning time can for example correspond with a value of 20 mA and during the loading phase with a value of 10 mA. The control unit is then able to determine the spark burning time over the current and increases or reduces the secondary current threshold depending on the required spark burning time. Ultimately an erroneous interpretation of present pulse pauses, in particular during the transmission of current threshold difference values, can be thereby avoided. Furthermore it is ensured that the information in the control unit and in the ignition transformer always correspond, whereby an error is not carried along in each further ignition cycle.
It is provided in a further advantageous embodiment of the invention that the transmission of the default value and/or the further default value takes place with the aid of a protocol that contains current threshold values over the duration of the interval. The protocol comprises thereby rules, which determine the format, the contents, the meaning and the order of sent information between different instances, in particular between the regulator electronic that is located in the ignition transformer and the ignition transformer itself or between the control unit and the regulator electronic.
According to a preferred embodiment of the invention it is provided that a detection of an amplitude value of a first primary current pulse takes place for adjusting the at least one current threshold, in particular the primary current switch-off threshold. The amplitude of the first primary current pulse is therefore used to adjust or program the primary current threshold. The amplitude value of the first pulse corresponds thereby with the current threshold for all subsequent pulses. Alternatively the current threshold can be increased or reduced by a firm factor.
According to a preferred embodiment of the invention it is provided that the transmission of the default value of the secondary current switch-off threshold takes place over the duration of the interval during the detection of the amplitude value of the first primary current pulse for adjusting the primary current switch-off threshold. The amplitude value is thereby used as default for all further primary current switch-off thresholds and simultaneously transmitted over the pause of the secondary current threshold. Advantageous is also an embodiment of the invention, which provides that the transmission of a combination of the secondary current switch-off threshold and primary current switch-off threshold takes place with the amplitude respecting the amplitude value of the first primary current. Thereby a firm value combination results from the threshold value, whereby the pause remains disregarded. An amplitude of 15 A can for example be associated with a value combination of 15 A for the primary current switch-off threshold and of 40 mA for the secondary current switch-off threshold. Furthermore the switch-off threshold for the primary current can lie at 16 A and the switch-off threshold for the secondary current at 50 mA at an amplitude of 16 A. at a switch-off threshold of 17 A for the primary current and a switch-off threshold of 60 mA for the secondary current the amplitude can have a value of 17 A.
It is provided in an advantageous embodiment of the invention that the control unit adjusts the duration of the interval depending on the operating status of the combustion engine, whereby a measurement and storage of the upcoming secondary current value takes place at the end of the interval, which serves as default value of the corresponding follow-up current threshold, in particular the secondary current threshold, whereby a further alternative to the previously mentioned value defaults is given.
It is provided in a further advantageous embodiment of the invention that the transmission of the default value and/or the further default value takes place over the duration of the second control signal with the aid of a protocol that contains current threshold values or with the aid of a value signal that contains the current threshold values, in particular a pulse width modulated value signal. For transmitting the corresponding information during the multiple spark phase a protocol has to be provided that is suitable for single-wire interfaces or also a suitable pulse width modulated signal. In order to avoid an undesired switching on or switching off of the ignition transformer due to the information transmission very short pauses can be used, which can be preferably filtered for a standard function. The sent information are processed for this case not until the next ignition cycle.
The invention as well as advantageous embodiments according to the characteristics of the further claims are subsequently further explained with the aid of the embodiments that are illustrated in the drawings, without a limitation of the invention; it comprises furthermore all variations, changes and equivalents, which are possible within the scope of the claims. It is shown in:
According to
Number | Date | Country | Kind |
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102007051249.1 | Oct 2007 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2008/062094 | 9/11/2008 | WO | 00 | 7/21/2011 |