The present invention relates to a method for operating a laser as an ignition device of an internal combustion engine, a laser for the ignition of an internal combustion engine, as well as a computer program for carrying out the method.
A laser ignition system for Otto engines is known, for example, from German Patent No. DE-OS 28 49 458. In currently known laser ignition systems for Otto engines for motor vehicles and large stationary engines, the laser-active solids are either not tempered, in which case they assume the temperature of the environment, or they are brought to a desired temperature, using diverse cooling or heating systems, such as electric heating, or the like. In the first case, there is the possibility of influencing the temperature of the laser crystals, and in the second case, relatively costly heating systems, for instance, having electrical heating elements for the laser crystals or the gas or liquid media, are used for heating the laser crystals.
The energy output of a passively Q-switched laser is a function of the temperature of the laser crystal. Without an active cooling system or heating system, the temperature of the laser crystal is a function of the environmental temperature and the heat applied by the optical pumping procedure. The energy output may thus be exposed to very strong fluctuations, especially in the field of application of a passenger car, which has a possible temperature range of −40° C. (as during a cold start in wintertime) to 160° C. (operationally heated internal combustion engine), so that the emitted pulse energy is perhaps not sufficient to ignite the mixture in a combustion chamber, or, if necessary, to burn the combustion chamber window free of deposits.
Without an active cooling system or heating system, the temperature of the laser crystal is a function of the environmental temperature and the heat applied by the optical pumping procedure. Therefore, one object of the present invention is to provide a possibility of tempering laser crystals in laser ignition systems for Otto engines that is cost-effective and simple to implement.
This object is attained by a method for operating a laser as an ignition device of an internal combustion engine, the laser including at least one laser crystal, a passive Q-switch and at least one pump device, particularly a laser diode, which optically pumps the laser crystal using pump radiation; at a temperature of the laser crystal below an operating boundary temperature, the pump radiation being changed, compared to a normal operation, in such a way that, compared to the normal operation, a greater radiation energy is converted to heat in the laser crystal. The operating boundary temperature is a minimum temperature, ascertained experimentally, for example, at which laser pulses are able to be generated which lead to a sufficiently sure ignition of the gas/air mixture in a combustion chamber of an internal combustion engine. As long as the laser system is operated below the laser threshold, the energy applied to the laser crystal by pump radiation is converted to heat.
The temperature of the laser resonant cavity is preferably increased by changing the intensity and/or the pumping duration of the pump radiation. The intensity and/or the pumping duration are changed in such a way, in this instance, that as large as possible a proportion of the applied energy is converted to heat.
The pump radiation preferably includes pump pulses as well as pump prepulses. The pump pulses are used to generate laser pulses for igniting the gas/air mixture in the combustion chamber of the internal combustion engine, and the prepulses essentially for heating the laser crystal.
The maximum intensity of the pump prepulses is preferably less than the intensity of the pump pulses. The intensity of the pump prepulses is designed so that the point in time of the laser pulse emitted by the laser is not changed, or only slightly so. It is preferably provided that the prepulse has a pulse duration of more than 2 ms, or even a pulse duration that corresponds to the distance in time of two successive ignitions, that is, the prepulse is made up of continuous radiation. The prepulse preferably has a pulse duration of 100 μs to 2 ms.
The object named at the outset is also attained by a laser for an ignition of an internal combustion engine, the laser including at least one laser crystal, a passive Q-switch and at least one pump device, especially a laser diode, which optically pumps the laser crystal using pump radiation, wherein, at a temperature of the laser crystal below an operating boundary temperature, the pump radiation is changed, compared to the normal operation, in such a way that a greater quantity of heat, compared to normal operation, is applied to the laser crystal.
The object set forth above is also attained by a computer program having program code for carrying out all of the steps according to a method of the present invention when the program is executed on a computer.
As is shown schematically in
According to the present invention, before the actual pump pulse PUP, a prepulse PUV is applied by pump element 8 to laser crystal 6. Prepulse PUV may be an individual pulse or a sequence of pulses, but it may also be a continuous wave (continuous wave CW). In view of its intensity PI and its length between the beginning at time tva and its end tve, prepulse PUV is designed so that the emission of laser pulse P is not changed or is changed only insubstantially with respect to its time. The end of prepulse PUV tve and the beginning of pump pulse PUP at time ta may coincide, in this context. The sequence of pump pulse PUP and prepulse PUV may be alternating, in this instance, so that the pump source continuously gives off light power, and with that, also heat power to laser crystal 6.
is negative. This means that pulse energy E of a passively Q-switched laser system increases with increasing temperature, as shown in
The illustration in
Therefore, an operating boundary temperature Tmin is established, below which the laser crystal is preheated by pump radiation. If a sure ignition above a pulse energy of 14 mJ is fulfilled using the number values given as an example above, the laser crystal is preheated at a temperature below 100° C. as operating boundary temperature, as described above. As the temperature of the laser crystal, one may utilize approximately, for example, the outside temperature, the oil temperature or the temperature of the cooling liquid of an internal combustion engine. The operating boundary temperature is ascertained experimentally, and is stored as a constant, for instance, in a control unit of the internal combustion engine.
Number | Date | Country | Kind |
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102007046647.3 | Sep 2007 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2008/061658 | 9/4/2008 | WO | 00 | 7/22/2010 |