The present invention concerns a prechamber system for an internal combustion engine and an internal combustion engine, in particular a gas Otto-cycle engine, having such a prechamber system.
Internal combustion engines from a given structural size involve the use of gas-scavenged prechamber systems, the purpose of which is to cause ignition in a combustion chamber of the internal combustion engine in such a way that ideal combustion is achieved. In that case a given amount of gas is fed to the prechamber during the induction stroke of the internal combustion engine by way of a gas introduction device.
At the same time an overstoichiometric gas-air mixture is fed to the combustion chamber. During the compression stroke the overstoichiometric mixture flows into the prechamber by way of a communicating transfer opening (riser passage) and there mixes with the pure gas to give an approximately stoichiometric mixture (λ=1).
After mixing of the gas-air mixture with pure gas, however, local regions still remain in which the pure gas has mixed only very slightly with the overstoichiometric gas-air mixture. The partially homogenized mixture is ignited by way of a spark plug. By virtue of an increase in pressure the burnt hot gas flows by way of the communicating transfer opening (riser passage) into the combustion chamber of the internal combustion engine and causes ignition therein.
A disadvantage with such systems is, on the one hand, a tendency for soot to be produced in the so-called dead volumes, that is to say those volumes in which mixing occurs only inadequately, and on the other hand, a severe thermal loading on the electrodes of the spark plug by virtue of hot combustion gases.
Prechamber systems with guide devices are known from the state of the art and serve differing purposes (see for example U.S. Pat. No. 4,467,759 or U.S. Pat. No. 4,095,565).
The object of the invention is to prolong the service life of the spark plug in prechamber systems and internal combustion engines of the general kind set forth.
That object is attained by a prechamber system for an internal combustion engine having a prechamber having a wall, a spark plug having at least one electrode, a gas introduction device including a gas valve, a gas passage connecting the gas introduction device to the prechamber by way of an inlet opening, a riser passage for connecting the prechamber to a combustion chamber of the internal combustion engine, and a guide device for influencing the flow of the gas and the prechamber, so that the guide device is arranged adjacent to the inlet opening in such a way that in operation, the volume of flow of hot gas reaching the electrode of the spark plug, which hot gas flows into the prechamber by way of the riser passage, is reduced in comparison to the volume of flow of hot gas and reach the electrode of the spark plug without the guide device, and an internal combustion engine having such a prechamber system.
Arranging the guide device in adjacent relationship to the inlet opening for the gaseous fuel in such a way that in operation a reduction in the volume flow of hot gases passing into the prechamber by way of the riser passage is effected by the guide device in the region of the electrode of the spark plug gives a prolongation in the service life of the spark plug, as in that way the input of heat to the electrode of the spark plug decreases and a cooler electrode results in a prolonged average spark plug service life.
If it is provided that, arranged between the spark plug and the guide device is a bore in the wall of the prechamber, by way of which that partial volume of the prechamber, that is, between the spark plug and the guide device, is in communication with the gas passage then cool fresh gas which is introduced into the gas passage by the gas introduction device and which passes by way of the bore into the partial volume can flow directly past the electrode of the spark plug, and that actively cools it. In addition increased soot formation is prevented.
If it is provided that the guide device is disposed between the inlet opening of the gas passage and the riser passage, it is then possible, even without a bore in the wall of the prechamber, to ensure that cool fresh gas flows out of the gas passage over the electrode of the spark plug. In that case, however, the guide device should have a through opening connecting the inlet opening of the gas passage and the riser passage. That ensures that fresh gas issuing from the gas passage can flow unimpededly into the prechamber. By virtue of orienting the through opening towards the gas passage it is possible to promote an inlet flow of the lean gas-air mixture into the dead volume in front of and in the gas passage during the compression phase prior to combustion, and that leads to better homogenization with fresh gas and thus reduces soot formation in the dead volume.
In principle it can be provided that the guide device is integral with the wall of the prechamber.
It can however also be provided that the guide device is fixed to the wall of the prechamber. For that purpose the guide device can have an annular portion, by way of which it is fixed to the wall of the prechamber, for example being pressed or laid therein.
The internal combustion engine according to the invention is in particular a stationary internal combustion engine, preferably an—in particular stationary—gas Otto-cycle engine.
Further advantages and details of the invention will be apparent from the Figures and the related specific description. In the drawings:
a through 2c show three embodiments of the invention, wherein the variant in
a and 3b show views of the flow conditions in a prechamber system according to the invention by reference to the embodiment of
A spark plug 4 (not shown in
The bore 10 ensures that fresh gas can pass from the gas passage 7 into the region above the guide device 9 and passes through the guide device 9 to the electrode 13 (not shown in
a shows once again the prechamber system 1 of
In the variant in
A further difference between the variants in
It is to be noted that the scavenging phase is shown in
Number | Date | Country | Kind |
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1898/2011 | Dec 2011 | AT | national |
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Number | Date | Country |
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Entry |
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International Search Report issued Oct. 12, 2012 in International (PCT) Application No. PCT/AT2012/000177. |
Austrian Search Report issued May 23, 2012 in corresponding Austrian Patent Application No. A 1898/2011 with English translation. |
European Search Report dated Jun. 11, 2015, in European Application No. 15 00 0442. |
Number | Date | Country | |
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20140251259 A1 | Sep 2014 | US |
Number | Date | Country | |
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Parent | PCT/AT2012/000177 | Jun 2012 | US |
Child | 14284714 | US |