Internal combustion engine and methods for operating an internal combustion engine

The method for operating a pre-chamber spark-ignition engine with an external fuel injector addresses the trade-off between efficiency and complexity by enabling variable fuel injection and ignition, achieving efficient operation with reduced complexity.

DE102024116569B4Active Publication Date: 2026-03-05SCHAEFFLER TECHNOLOGIES AG & CO KG
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Patent Information

Application Number
DE102024116569
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-06-13
Publication Date
2026-03-05
Estimated Expiration
2044-06-13

AI Technical Summary

Technical Problem

Existing pre-chamber spark-ignition engines face a trade-off between varying injection and ignition processes and equipment complexity, with passive pre-chambers offering simplicity but limited efficiency, and active pre-chambers providing efficiency but increased complexity.

Method used

A method for operating a pre-chamber spark-ignition engine with an external fuel injector that allows for variable fuel injection into both the pre-chamber and main combustion chamber, utilizing the Coanda effect for efficient fuel distribution and separate adjustment of fuel-air ratios, eliminating the need for an additional internal fuel injector.

Benefits of technology

Enables efficient engine operation across varying conditions with finely tuned mixtures by switching between different fuel injection modes, reducing throttle valve use and maintaining a simple design.

✦ Generated by Eureka AI based on patent content.

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Abstract

Method for operating an internal combustion engine (1), namely a gasoline engine, wherein fuel is introduced in variable proportions into the pre-chamber (24) and into combustion chamber areas outside the pre-chamber (24) by means of an adjustable fuel injector (20) which is located outside a pre-chamber (24) equipped with an ignition device (23), characterized in that in a first operating mode fuel is injected in such a way that it flows close to the wall in the combustion chamber (21) using the Coanda effect and thus reaches the pre-chamber (24).
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Description

[0001] The invention relates to an internal combustion engine designed as a spark-ignition engine, in particular in the form of a reciprocating piston engine. The invention further relates to a method for operating an internal combustion engine.

[0002] EP 3 001 008 B1 discloses a combustion system with a turbulent jet ignition prechamber for spark-ignition engines, i.e., gasoline engines. In the cylinder head of an internal combustion engine incorporating this combustion system, a prechamber is formed within a housing. An ignition device, which is mounted in the housing, faces the prechamber, i.e., is located behind the prechamber when viewed from the combustion chamber of the internal combustion engine. Additionally, an injection valve is located behind the prechamber. A further fuel injector injects fuel into an intake manifold of the internal combustion engine.

[0003] Further designs of spark-ignition combustion engines featuring a pre-chamber are described, for example, in documents DE 10 2018 114 035 A1 and DE 10 2019 111 091 B3. In both cases, fuel is injected into the pre-chamber, which contains a spark plug.

[0004] An internal combustion engine with a prechamber, which provides for fuel injection exclusively outside the prechamber, is described, for example, in US 2022 / 0275748A1. The injection of fuel is intended to create a rich fuel-air mixture centrally in the combustion chamber. During the compression stroke, this mixture partially enters the prechamber, where it is ignited.

[0005] From EP 3 453 856 B1, a gasoline internal combustion engine with a combustion pre-chamber and two spark plugs is known. One of the spark plugs is located inside the pre-chamber and the other outside. Furthermore, according to EP 3 453 856 B1, the internal combustion engine has two gasoline injection devices, one of which injects gasoline into an intake port and the other directly into the combustion chamber.

[0006] DE 10 2021 212 503 A1 discloses an injection device for gaseous fuel directly into the combustion chamber of an internal combustion engine. The injection device comprises an inlet valve, near the valve seat of which a fuel line section for the gaseous fuel opens. According to DE 10 2021 212 503 A1, the injection of the gas, which is supplied at a pressure of approximately 700 bar, is pressure-controlled.

[0007] DE 26 36 659 A1 discloses an internal combustion engine with an injection valve designed as a multi-jet injection valve, the secondary jet of which can be controlled independently of the quantity of the main jet. WO 2005 / 073 546 A1 discloses a further injection nozzle.

[0008] DE 10 2022 128 904 A1 discloses a reciprocating piston engine with a nozzle for injecting hydrogen, which utilizes the Coanda effect in one operating condition. Further internal combustion engines and their operating methods are known from DE 36 36 885 A1 and DE 10 2023 200 469 A1.

[0009] The invention is based on the objective of further developing pre-chamber spark-ignition engines designed for liquid or gaseous fuels compared to the aforementioned prior art, whereby a favorable ratio between the possibility of varying injection and ignition processes on the one hand and the equipment effort on the other hand is sought.

[0010] This problem is solved according to the invention by a method for operating an internal combustion engine, namely a gasoline engine, as designed according to claim 1. The embodiments and advantages of the invention explained below in connection with the operating method also apply mutatis mutandis to the device, i.e., the internal combustion engine, and vice versa.

[0011] The invention is based on the premise that, in pre-chamber gasoline engines, a fundamental distinction must be made between active and passive pre-chamber combustion processes. A passive pre-chamber is a defined volume around the spark plug, which is connected to the rest of the combustion chamber, i.e., the main combustion chamber, via several openings. During compression, fuel-air mixture also enters the pre-chamber. When the fuel-air mixture is ignited, the pressure in the pre-chamber initially rises. This pressure increase causes gas to flow at high velocity into the main combustion chamber, thereby igniting the fuel-air mixture there as well. Compared to a gasoline engine without a pre-chamber, the gas flowing from the pre-chamber in the form of individual jets achieves a very high penetration depth very quickly.

[0012] An active pre-chamber provides an additional fuel supply to the pre-chamber, allowing for separate adjustment of the fuel-air ratio. This enables the fuel-air mixture in the main combustion chamber to be leaned out during partial load operation, while a rich, ignitable mixture is present in the pre-chamber. Overall, this allows for more efficient operation with less throttle valve use, although it results in a more complex design compared to an engine with a passive pre-chamber.

[0013] The solution as described in the application combines the advantages of an active prechamber with the simple design of a passive prechamber due to the switching capabilities of the fuel injector located outside the prechamber. A second fuel injector located inside the prechamber is not required.

[0014] The fuel injector, as well as the pre-chamber and the spark plug protruding into the pre-chamber, can be located in the area of ​​the combustion chamber roof of a single- or multi-cylinder internal combustion engine. Other methods of external ignition, such as laser ignition, are also conceivable.

[0015] The fuel injector can be adjusted, in particular, by means of an adjustable nozzle needle. Additionally or alternatively, the pressure on the inlet side of the fuel injector can be adjusted. In any case, these adjustment options ensure that defined, clearly distinguishable flow conditions can be set. A continuum of transitioning flow states is therefore not possible.

[0016] Adjusting the nozzle needle longitudinally is one of several ways to influence the flow of the injected fuel. Furthermore, the flow state of the hydrogen at the nozzle outlet depends on the fuel pressure at the nozzle inlet and the back pressure in the combustion chamber, assuming that the fuel is only introduced into the combustion chamber after the intake valve closes. Within the short time available for the gaseous fuel supply, the cross-sectional area of ​​the inlet can be altered by longitudinally shifting the nozzle needle, causing the flow to reverse direction within the nozzle after exiting the inlet. A control cross-section is thus present at the inlet, i.e., at the narrowest point of the nozzle. Overall, the nozzle is designed as a supersonic nozzle.

[0017] In general, the method for operating an internal combustion engine, namely a gasoline engine, is characterized by the fact that fuel is introduced in variable proportions into the pre-chamber and into combustion chamber areas outside the pre-chamber, i.e., into the main combustion chamber, with the help of an adjustable injector, which is located outside a pre-chamber equipped with an ignition device.

[0018] In this process, the injector can be set to a first configuration, meaning the fuel injector is configured to produce a richer mixture in the pre-chamber than in the main combustion chamber. In a second configuration, the fuel injector can produce a homogeneous mixture in both the pre-chamber and the main combustion chamber, or even a leaner mixture in the pre-chamber compared to the main combustion chamber. The fuel used can be gaseous or liquid gasoline. Methane, hydrogen, and ammonia are among the possible fuel types.

[0019] According to the invention, in a first operating mode, fuel is injected in such a way that it flows close to the wall in the combustion chamber using the Coanda effect and thus reaches the pre-chamber.

[0020] Regarding the Coanda effect, reference is made to US Patent 4,574,754 A, which deals with flows within the combustion chamber of an internal combustion engine. In this patent, fuel is said to be guided along a combustion chamber wall to a spark plug or an array of spark plugs.

[0021] The patented method for operating an internal combustion engine can include a second operating mode in which fuel is injected in such a way that it is introduced, in the form of a flow detached from the combustion chamber wall, specifically into combustion chamber areas outside the pre-chamber, i.e., into the main combustion chamber. A switch between the first and second operating modes can occur in one and the same engine cycle. The changeover between the different flow states can take place while maintaining a constant nozzle geometry at the channel outlet, which, by definition, is located at the end of the nozzle needle.

[0022] An embodiment of the invention is explained in more detail below with reference to a drawing. The drawing shows: Fig. 1 In schematic representation, a section of an internal combustion engine designed as a gasoline engine, including a fuel injector, a spark plug and a pre-chamber, Fig. 2 a detail of the fuel injector of the internal combustion engine according to Fig. 1.

[0023] A fuel injector 20, in this case in the form of a hydrogen injector, is intended for use in an internal combustion engine designated by reference numeral 1, i.e., a hydrogen-powered spark-ignition engine. In this case, the internal combustion engine 1 is a reciprocating piston engine of a motor vehicle. Alternatively, the internal combustion engine 1 could, for example, be a stationary gas engine in a combined heat and power plant. An actuator for the fuel injector 20 is not shown. Fig. Figure 2 shows a section of nozzle 2 of the fuel injector 20. Means upstream of nozzle 2 for reducing the pressure of the hydrogen to be burned in the spark-ignition engine 1 are not shown. Alternatively, the spark-ignition engine 1 can be designed to burn another liquid or gaseous substance.

[0024] Fuel injector 20 has a Fig. 2. Only partially visible housing 3. In the housing 3, i.e., the injector housing, a nozzle needle 5 is slidably guided. A shaft of the nozzle needle 5 is designated 6, and a valve plate of the nozzle needle 5 is designated 7. Between the valve plate 7 and the inner wall of the housing 3, designated 10, there is an annular element, oriented in the direction of hydrogen flow – in the arrangement shown below. Fig. 2 from right to left - a widening flow channel 4 is formed. The narrowest point of the nozzle cross-section, at the transition between the stem 6 and the valve disc 7 of the nozzle needle 5, is defined as the channel inlet 8. The channel outlet, designated 9, is by definition located at the combustion chamber-side end of the valve disc 7, which is in the form of an end face 13 of the valve disc 7, also referred to as the end surface. In this case, the end surface 13 has a planar shape, with the central axis of the stem 6 forming a surface normal to the end surface 13. The diameter of the stem 6 is designated d6. The in Fig. The diameter of the housing 3, designated as d3, does not necessarily represent a maximum dimension of the housing 3; rather, the diameter d3 refers exclusively to the depicted section of the housing 3 which has a cylindrical shape.

[0025] The valve disc 7 of the nozzle needle 5 has a curved surface section 11 and an adjoining cylindrical surface section 12, the latter extending, apart from any edge rounding, to the end surface 13. The diameter of the valve disc 7, designated d12, corresponds to the diameter of the cylindrical surface section 12 and, in this case, is more than 1.5 times, but not more than four times, the diameter d6 of the shaft 6.

[0026] A plane formed at the outlet side of the fuel injector 20, adjacent to the housing 3, constitutes a front face 14. A distance a2_7 exists between this front face 14 and the parallel front face 13 of the valve disc 7. In every position of the hydrogen injector 1, the front face 13 is located within the interior formed by the housing 3.

[0027] In its section extending beyond the end face 13 to the end plane 14, the housing 3 has a curved end section 15, which, as part of the inner wall 10, adjoins an outer cylindrical region 16 of the inner wall 10. At least one region of the cylindrical surface section 12 of the valve disc 7, bordering the end face 13, is arranged concentrically within the outer cylindrical region 16 of the inner wall 10 in every setting of the nozzle needle 5, so that the geometry of the channel outlet 9 located on the valve disc 7 of the nozzle needle 5 is unchanging.

[0028] Towards the shaft 6, the outer cylindrical section 16 of the inner wall 10 transitions into a concave wall section 18, to which a convex wall section 17 adjoins. An inner cylindrical section of the inner wall 10, designated 19, adjoins the convex wall section 17, which is located in the region of the channel inlet 8. In the exemplary embodiment, the diameter d19 of the inner cylindrical section 19 is at least one-third, but not more than 80%, of the diameter d16 of the outer cylindrical section 16 of the inner wall 10.

[0029] In the Fig. In the setting shown in Figure 2, the nozzle 2 is open as wide as possible, meaning the channel inlet 8 is set to its maximum cross-sectional area. The distance a2_7 is minimal in this setting. Compared to all other possible settings of the nozzle 2, the hydrogen flows at the channel outlet 9 at the highest velocity, presenting as an underexpanded jet. The hydrogen jet expands towards the central axis of the nozzle 2, i.e., inwards, which is accompanied by the jet detaching from the inner wall 10 at the transition between the outer cylindrical section 16 and the end section 15. Fuel, in this case hydrogen, is thus introduced into the combustion chamber 21 of the internal combustion engine 1 in the form of a narrow, only slightly expanding hollow jet HS, which in Fig. 1 is shown in simplified form and exits from the annular gap formed between the cylindrical surface section 12 of the valve plate 7 and the also cylindrical area 16 of the inner wall 10 of the housing 3.

[0030] If the flow cross-section at the channel inlet 8 is narrowed by retracting the nozzle needle 5, the difference compared to the setting after Fig. 2. A more extreme expansion ratio exists within the flow channel 4. This results in a lower static outlet pressure of the hydrogen at the channel outlet 9, which means that the flowing hydrogen has a reduced tendency to expand towards the central axis of the nozzle 2. Rather, the hydrogen flow remains in contact with the inner wall 10 of the housing 3 even in the end region 15. The hydrogen flow then spreads further as a Coanda flow CS, indicated by dashed arrows, initially along the combustion chamber roof, designated 26.

[0031] The Coanda effect causes the hydrogen jet to form a hollow cone jet with a large opening angle within the nozzle 2. The angle, denoted by α, which is enclosed between a tangent applied to the curved end section 15 and the front plane 14, is 45° ± 15° in the exemplary embodiment. Even a slight, defined axial movement of the nozzle needle 5 is sufficient to direct the hydrogen flow from the to Fig. 2 discontinued, replaced, in Fig. 1. Flow illustrated with continuous arrows, which is in the form of the hollow jet HS, onto which in Fig. 1. To convert the Coanda current CS indicated by a dashed line.

[0032] In Fig. Figure 1, which illustrates various possible flow states, namely the hollow jet HS and the Coanda flow CS, shows the piston designated 22 located between bottom dead center and top dead center. The internal combustion engine 1 is a multi-cylinder engine whose gas exchange valves are located in Fig. 1 are not shown. In addition to the fuel injector 20, a spark plug 23 is located in the area of ​​the combustion chamber roof 26.

[0033] The spark plug 23, which is generally referred to as the ignition device, is arranged within a pre-chamber 24, which has several openings 25, which in at least some cases are open to the side - and thus, among other things, to the fuel injector 20 - as shown in the figure. Fig. 1 emerges.

[0034] If the fuel injector 20 is adjusted such that the Coanda flow CS is formed, ignitable mixture passes through at least one of the openings 25 into the pre-chamber 24. At this moment, the mixture in the pre-chamber 24 is richer than in the main combustion chamber designated 27, which constitutes by far the largest part of the combustion chamber 21.

[0035] When the mixture in the pre-chamber 24 is ignited by the spark plug 23, the resulting hot gases spread at high speed in a jet form into the main combustion chamber 27. Synchronized with this, the fuel injector 20 is switched so that, instead of the now unnecessary Coanda flow CS, the detached flow HS, which is directed directly into the main combustion chamber 27, is formed.The ability to switch between the Coanda flow CS and the comparatively narrow hollow jet HS, which is present as a separated flow, during one and the same cycle of the internal combustion engine 1, together with the targeted supply of fuel to the pre-chamber 24, creates the prerequisite for operating the internal combustion engine 1 in a wide range of different operating conditions with a mixture finely tuned to the respective condition, without requiring an additional fuel supply to the pre-chamber 24 by means of a separate injector. Reference symbol list 1 Internal combustion engine 2 nozzles 3 cases 4 Flow channel 5 jet needle 6 shaft 7 valve plates 8 Channel entry 9 Channel outlet 10 Inner wall of the housing 11 Curved surface section of the valve disc 12 cylindrical surface section of the valve disc 13 End surface, face of the valve disc 14 Front plane at the opening of the housing 15 curved end section of the housing 16 outer cylindrical area of ​​the inner wall 17 convex wall section 18 concave wall section 19 Wall section, inner cylindrical area of ​​the inner wall 20 fuel injectors 21 Combustion chamber 22 pistons 23 Spark plug 24 Antechamber 25 Opening 26 Combustion chamber roof 27 Main combustion chamber α angle a2_7 Distance between the end face of the valve disc and the housing end plane CS Coanda Current d3 Diameter of the housing d6 diameter of the shaft d12 Diameter of the valve plate d16 Diameter of the cylindrical area 16 d19 Diameter of the cylindrical area 19 HS detached flow, narrow hollow jet

Claims

[1] Method for operating an internal combustion engine (1), namely a gasoline engine, wherein fuel is introduced in variable proportions into the pre-chamber (24) and into combustion chamber areas outside the pre-chamber (24) by means of an adjustable fuel injector (20) located outside a pre-chamber (24) equipped with an ignition device (23), characterized by , that in a first operating mode fuel is injected in such a way that it flows close to the wall in the combustion chamber (21) using the Coanda effect and thus reaches the pre-chamber (24). [2] Method according to claim 1, characterized by , that in a second operating mode fuel is injected in such a way that it is introduced in the form of a flow detached from the combustion chamber wall into combustion chamber areas outside the pre-chamber (24). [3] Method according to claims 1 and 2, characterized by, that in one and the same cycle of the internal combustion engine (1) a switch is made between the first and the second operating mode. [4] Internal combustion engine (1) for carrying out a method according to one of the preceding claims comprising a spark plug (23) projecting into a pre-chamber (24) of a combustion chamber (21) and a fuel injector (20) which is switchable such that a variable proportion of the injected fuel reaches the pre-chamber (24). [5] Internal combustion engine (1) according to claim 4, characterized by , that the fuel injector (20) is located outside the pre-chamber (24). [6] Internal combustion engine (1) according to claim 5, characterized by , that the fuel injector (20) as well as the pre-chamber (24) is located in the area of ​​the combustion chamber roof (26). [7] Internal combustion engine (1) according to any one of claims 1 to 3, characterized by , that the fuel injector (20) includes an adjustable nozzle needle (5).

Citation Information

Patent Citations

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    DE102018114035A1

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