EP3303817B1 - Common-rail-injector - Google Patents
Common-rail-injector Download PDFInfo
- Publication number
- EP3303817B1 EP3303817B1 EP15723543.3A EP15723543A EP3303817B1 EP 3303817 B1 EP3303817 B1 EP 3303817B1 EP 15723543 A EP15723543 A EP 15723543A EP 3303817 B1 EP3303817 B1 EP 3303817B1
- Authority
- EP
- European Patent Office
- Prior art keywords
- nozzle needle
- nozzle
- common
- axial
- stroke
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Links
- 238000002347 injection Methods 0.000 claims description 22
- 239000007924 injection Substances 0.000 claims description 22
- 239000000446 fuel Substances 0.000 claims description 19
- 238000009434 installation Methods 0.000 claims description 5
- 230000000903 blocking effect Effects 0.000 claims 1
- 125000000524 functional group Chemical group 0.000 claims 1
- 238000002485 combustion reaction Methods 0.000 description 15
- 238000007789 sealing Methods 0.000 description 5
- 238000000926 separation method Methods 0.000 description 2
- FGRBYDKOBBBPOI-UHFFFAOYSA-N 10,10-dioxo-2-[4-(N-phenylanilino)phenyl]thioxanthen-9-one Chemical compound O=C1c2ccccc2S(=O)(=O)c2ccc(cc12)-c1ccc(cc1)N(c1ccccc1)c1ccccc1 FGRBYDKOBBBPOI-UHFFFAOYSA-N 0.000 description 1
- TVEXGJYMHHTVKP-UHFFFAOYSA-N 6-oxabicyclo[3.2.1]oct-3-en-7-one Chemical compound C1C2C(=O)OC1C=CC2 TVEXGJYMHHTVKP-UHFFFAOYSA-N 0.000 description 1
- 240000001439 Opuntia Species 0.000 description 1
- 235000004727 Opuntia ficus indica Nutrition 0.000 description 1
- 230000000712 assembly Effects 0.000 description 1
- 238000000429 assembly Methods 0.000 description 1
- 230000006835 compression Effects 0.000 description 1
- 238000007906 compression Methods 0.000 description 1
- 238000011161 development Methods 0.000 description 1
- 230000018109 developmental process Effects 0.000 description 1
- 238000007598 dipping method Methods 0.000 description 1
- 230000000284 resting effect Effects 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02M—SUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
- F02M61/00—Fuel-injectors not provided for in groups F02M39/00 - F02M57/00 or F02M67/00
- F02M61/16—Details not provided for in, or of interest apart from, the apparatus of groups F02M61/02 - F02M61/14
- F02M61/161—Means for adjusting injection-valve lift
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02M—SUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
- F02M47/00—Fuel-injection apparatus operated cyclically with fuel-injection valves actuated by fluid pressure
- F02M47/02—Fuel-injection apparatus operated cyclically with fuel-injection valves actuated by fluid pressure of accumulator-injector type, i.e. having fuel pressure of accumulator tending to open, and fuel pressure in other chamber tending to close, injection valves and having means for periodically releasing that closing pressure
- F02M47/027—Electrically actuated valves draining the chamber to release the closing pressure
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02M—SUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
- F02M61/00—Fuel-injectors not provided for in groups F02M39/00 - F02M57/00 or F02M67/00
- F02M61/16—Details not provided for in, or of interest apart from, the apparatus of groups F02M61/02 - F02M61/14
- F02M61/168—Assembling; Disassembling; Manufacturing; Adjusting
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02M—SUPPLYING COMBUSTION ENGINES IN GENERAL WITH COMBUSTIBLE MIXTURES OR CONSTITUENTS THEREOF
- F02M61/00—Fuel-injectors not provided for in groups F02M39/00 - F02M57/00 or F02M67/00
- F02M61/16—Details not provided for in, or of interest apart from, the apparatus of groups F02M61/02 - F02M61/14
- F02M61/20—Closing valves mechanically, e.g. arrangements of springs or weights or permanent magnets; Damping of valve lift
- F02M61/205—Means specially adapted for varying the spring tension or assisting the spring force to close the injection-valve, e.g. with damping of valve lift
Definitions
- the invention relates to a common rail injector according to the preamble of claim 1.
- Such a common rail injector is from the DE 199 36 668 A1 ( Fig. 7 ) known to the applicant.
- the high-pressure chamber is essentially formed within a nozzle body of the injector housing.
- a control chamber sleeve is also arranged, in which the end area of a nozzle needle opposite an injection opening is inserted.
- the nozzle needle is acted upon by force in its closing direction by means of a closing or return spring.
- the closing spring is supported on the one hand against a support ring resting on a radially circumferential collar of the control chamber sleeve and on the other hand against a sleeve-shaped element which radially surrounds the nozzle needle.
- the sleeve-shaped element rests against a diameter step of the nozzle needle with an axial interposition of a support ring.
- an axial gap is formed between the facing end faces of the control chamber sleeve and the element, the size of which the maximum stroke depends on.
- common rail injectors with nozzle needles are known from the prior art, which in contrast to that in FIG DE 199 36 668 A1 disclosed nozzle needle extend axially over several subregions of the injector housing.
- An axial stroke stop by means of separate or specially designed components as in the prior art mentioned at the beginning is not provided in common rail injectors of this type. Rather, the maximum stroke in such a common rail injector is limited in that the end face of the nozzle needle facing away from the injection opening rests axially against a surface of the control chamber that delimits the control chamber on the side facing away from the nozzle needle.
- Further common rail injectors are known from JP 2006 274942 A , DE 10 2006 050065 A1 , DE 10 2011 078429 A1 and US 2010/019066 A1 .
- the invention is based on the object of developing a common rail injector according to the preamble of claim 1 in such a way that the maximum achievable opening stroke of the nozzle needle can be set even with relatively long nozzle needles, with one at the same time advantageous assembly of the nozzle needle and the components of the stroke limiting device that interact directly with the nozzle needle are to be made possible. Furthermore, a local separation of a control chamber and the setting of the maximum achievable opening stroke of the nozzle needle should be achieved in order to be able to optimally design the corresponding components.
- nozzle needle is a second element of the device for setting the maximum stroke of the nozzle needle, which surrounds the nozzle needle radially and axially on the side facing away from the first element is arranged stationary in the injector housing, axially completely penetrated and the end region of the nozzle needle dipping into the control chamber is arranged axially spaced from the second element.
- the high-pressure chamber in the nozzle body and in the further housing element is formed by a bore section on each side facing one another, the bore section formed in the further housing element for forming the stop surface for the second element having a smaller diameter than the bore section formed in the nozzle body, and the second Element has at least one passage for fuel between the two bore sections.
- This passage is of particular importance because it ensures that even when the nozzle needle is fully open, in which the second element is on the face of the further housing elements is applied, an inflow of fuel into the area of the at least one injection opening is made possible.
- this means that the device for limiting the maximum opening stroke of the nozzle needle is arranged or formed separately from the control chamber or the second element forming the control chamber. This makes it possible, especially when using relatively long nozzle needles, to arrange the control chamber on the side of the nozzle needle facing away from the at least one injection opening in the injector housing, and the device for limiting the maximum opening stroke of the nozzle needle relatively close to the at least one injection opening in the injector housing.
- Such a functional separation of the assemblies also enables, in particular, an advantageous assembly of the components of the common rail injector.
- the device for setting the maximum stroke of the nozzle needle is arranged in the area of a nozzle body to which at least one further housing element is connected in the axial direction on the side facing away from the at least one injection opening, and that the control chamber is arranged in the area of the further housing element.
- the further housing element with an end face facing the nozzle body forms an axial stop surface for the second element of the device.
- the at least one passage in the second element as over a partial area the axial extent of the second element extending longitudinal slot is formed, which extends from the end face of the second element facing away from the nozzle body.
- the facing ends of the two elements are in contact with the maximum stroke of the nozzle needle, and that the maximum opening stroke of the nozzle needle through the Size of an axial gap formed between the end faces of the two elements is defined.
- a return or closing spring is used to apply force to the nozzle needle in its closed position, on the one hand, to move the nozzle needle into its closed position during operation of the common rail injector when the control is interrupted, and on the other hand, to avoid undesired injection of fuel into the combustion chamber of an internal combustion engine.
- the spring stiffness or the characteristics of the closing spring must be precisely matched.
- the maximum opening stroke of the nozzle needle is limited by the end region of the nozzle needle that plunges into the control chamber, and that at the maximum opening stroke of the nozzle needle the two elements are arranged at a distance from one another, forming an axial gap formed between the two elements are. The two elements thus serve to adjust or precisely position the closing spring in relation to the nozzle needle, and not to limit the maximum opening stroke of the nozzle needle.
- the nozzle needle has a radially circumferential seat for the first element on which the first element rests axially so that the second element with axial interposition of the return spring connects to the first element that the movement of the second element is limited by a nozzle module, the nozzle needle being part of the nozzle module, and that the nozzle module forms a preassembled assembly that can be inserted into the injector housing.
- the high-pressure chamber is hydraulically connected to an inlet channel for fuel under high pressure, and that the inlet channel opens radially into the high-pressure chamber in an axial area between the at least one injection opening and the control chamber.
- the opening area of the inlet channel opens into the high-pressure chamber approximately in the middle between the at least one injection opening and the control chamber.
- the Indian Fig. 1 The common rail injector 10 shown is used to inject fuel into the combustion chamber, not shown, of an internal combustion engine, in particular a compression-ignition internal combustion engine.
- the injector 10 has an injector housing 11 consisting of several parts.
- the injector housing 11 essentially comprises two parts, a nozzle body 12 and a housing element 13 connected to the nozzle body 12 in the axial direction, which in practice usually consists of several parts, also connected to one another and connected in the axial direction.
- the pressure-tight connection between the nozzle body 12 and the housing 13 takes place in a manner known per se by means of a nozzle clamping nut 14.
- the nozzle body 12 On the side facing the combustion chamber of the internal combustion engine, the nozzle body 12 has at least one injection opening 15 for injecting fuel.
- a high-pressure chamber 18 is formed within the injector housing 11, which is essentially formed by a plurality of bore sections with different diameters, formed in the nozzle body 12, and a plurality of bore sections, also with different diameters, formed in the housing element 13.
- the high-pressure chamber 18 can be supplied with fuel which is under system pressure via an inlet channel 19.
- the inlet channel 19 opens approximately in a central region of the high-pressure chamber 18 (based on the axial extent of the injector 10), whereby it is radial, i.e. perpendicular to a longitudinal axis 21 of the injector 10, in which the high pressure chamber 18 opens.
- an outlet channel 22 is formed, which serves to discharge fuel located in a low-pressure region 42 of the injector 10.
- a nozzle needle 25 is arranged in the longitudinal axis 21 so that it can move in the direction of the double arrow 26.
- the at least one injection opening 15 formed in the injector housing 11 or the nozzle body 12 is at least indirectly closed in order to prevent fuel from being injected into the combustion chamber of the internal combustion engine.
- a sealing seat is formed between the end region 27 of the nozzle needle 25 facing the at least one injection opening 15 and the inside of the nozzle body 12.
- fuel can flow out of the high-pressure chamber 18 through the at least one injection opening 15 into the combustion chamber of the internal combustion engine in a manner known per se.
- the nozzle needle 25 is part of one in the Fig. 5
- the nozzle module 30, viewed in the axial direction, comprises, in addition to the nozzle needle 25, a pin-shaped center piece 31 and a likewise pin-shaped valve piston 32.
- the nozzle needle 25, the center piece 31 and valve piston 32 are welded together in the transverse direction, in particular by laser welds.
- the nozzle module 30 also has a stop sleeve 33 that forms a first element of a device 50 for limiting the maximum opening stroke of the nozzle needle 25, a return spring 34 designed as a compression spring, and an adjusting ring 35.
- the adjusting ring 35 forms a second element of the device 50 for limiting the maximum opening stroke of the nozzle needle 25 and is completely penetrated or penetrated by the nozzle needle 25 in the axial direction.
- the stop sleeve 33, the return spring 34 and the adjusting ring 35 are attached the nozzle needle 25 is mounted before the nozzle needle 25 is welded to the center piece 31. Due to the different diameters of the nozzle needle 25 and the center piece 31, the stop sleeve 33, the return spring 34 and the setting ring 35 are axially captive to the named components or the nozzle module 30 after the nozzle needle 25 is welded to the center piece 31, whereby the nozzle module 30 represents a pre-assemblable unit for the injector 10.
- a control chamber sleeve 36 is arranged inside the injector housing 11 on the side of the nozzle module 30 facing away from the at least one injection opening 15.
- the control chamber sleeve 36 has, on the side facing the valve piston 32, a blind hole 37 into which the valve piston 32 of the nozzle module 30 dips with its end region 44. In particular, the end region 44 is axially spaced from the device 50 or the setting ring 35.
- the valve piston 32 delimits a control chamber 38 within the blind hole 37, which is hydraulically connected to the high pressure chamber 18 via an inlet bore 39.
- the control chamber 38 can be hydraulically relieved of pressure into the low-pressure region 42 of the injector 10, which in turn is connected to the discharge channel 22, via a through-hole 41 formed in the control chamber sleeve 36.
- the through-hole 41 can be closed on the side facing away from the valve piston 32 by means of a valve member 43, which is spherical in the exemplary embodiment.
- the actuation of the valve member 43 is carried out by way of example, and not by way of limitation, via a magnetic actuator 45 in a manner known per se, in such a way that when the magnetic actuator 45 is energized, the valve member 43 lifts off the through-bore 41 to prevent fuel from flowing out of the control chamber 38 to allow in the low pressure region 42 of the injector 10.
- the fuel flowing out of the control chamber 38 also causes the nozzle module 30 or the nozzle needle 25 to be actuated in a known manner such that the nozzle needle 25 lifts from its sealing seat to release the at least one injection opening 15.
- the stop sleeve 33, the return spring 34 and the setting ring 35 are arranged within a bore section 46 of the nozzle body 12.
- the housing element 13 At the nozzle body 12 closes in axial direction the housing element 13, whereby a bore section 48 opening into the end face 47 of the housing element 13 has a smaller diameter than the bore section 46 in the area of the setting ring 35 or the bore section 46. This forms the end face 47 for the end face of the setting ring facing it 35 from an axial stop.
- the setting ring 35 has, for example, three longitudinal slots 49 which are arranged in equal angular sections relative to one another and each form a passage for fuel from the bore section 48 into the bore section 46.
- the longitudinal slots 49 each rectangular in a side view in the exemplary embodiment, extend over a partial area of the length L of the adjusting ring 35 and start from the end face of the adjusting ring 35 facing the housing element 13.
- the stop sleeve 33 which radially surrounds the nozzle needle 25 has a radially circumferential collar 51 on the side facing away from the setting ring 35, which collar rests axially on a seat or a shoulder 52 of the nozzle needle 25.
- the return spring 34 is supported between the collar 51 and the end face of the setting ring 35 facing the return spring 34.
- the return spring 34 acts on the nozzle needle 25 or the nozzle module 33 with a spring force such that the nozzle needle 25 is pressed in the direction of the at least one injection opening 15 or in the direction of the sealing seat.
- the restoring spring 34 ensures that when the magnetic actuator 45 is de-energized, the nozzle needle 25 always forms the sealing seat in order to prevent fuel from injecting into the combustion chamber of the internal combustion engine.
- An axial gap 55 is formed between the end face 53 of the stop sleeve 33 facing away from the collar 51 and the end face 54 of the adjusting ring 35 facing the end face 53.
- the size of the axial gap 55 is set by varying the length I of the stop sleeve 33. In particular, the maximum stroke of the nozzle needle 25 or of the nozzle module 30 in the opening direction is limited by the size of the axial gap 55.
- the end face 54 of the setting ring 35 thus forms a stop for the stop sleeve 33 in the opening direction of the nozzle needle 25.
- the nozzle needle 25 moves against the spring force of the return spring 34 in the opening direction until the stop sleeve 33 rests axially on the setting ring 35, i.e. the axial gap 55 is zero. In this position, the end face of the valve piston 32 facing the base of the blind hole 37 of the control chamber 38 is still spaced from the base of the blind hole 37.
- the length I of the stop sleeve 33 is selected to be so small that the maximum opening stroke of the nozzle needle 25 or the nozzle module 30 occurs when the valve piston 32 rests against the base of the blind hole 37 of the control chamber 38.
- the stop sleeve 33 still axially spaced from the setting ring 35, that is, that an axial gap 55 is always formed greater than zero.
- the dimensions of the setting ring 35 and the stop sleeve 33 define or limit the installation space of the return spring 34 in order to set or define the required return characteristic or return force of the return spring 34.
- the injector 10a has a sleeve-shaped adjusting ring 35a with a constant diameter with a plurality of through bores 57 for the fuel formed on its wall in the radial direction.
- the setting ring 35a cooperates with a stop ring 58 which has a centering section 59 projecting into the setting ring 35a.
- the adjusting ring 35a has flat, closed end faces. The setting of the maximum axial gap 55 can take place by varying the height of the setting ring 35a, the setting ring 35a being able to be connected to the nozzle module 30 later.
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- Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Manufacturing & Machinery (AREA)
- Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Fuel-Injection Apparatus (AREA)
Description
Die Erfindung betrifft einen Common-Rail-Injektor nach dem Oberbegriff des Anspruchs 1.The invention relates to a common rail injector according to the preamble of claim 1.
Ein derartiger Common-Rail-Injektor ist aus der
Darüber hinaus sind aus dem Stand der Technik Common-Rail-Injektoren mit Düsennadeln bekannt, die im Gegensatz zu der in der
Ausgehend von dem dargestellten Stand der Technik liegt der Erfindung die Aufgabe zugrunde, einen Common-Rail-Injektor nach dem Oberbegriff des Anspruchs 1 derart weiterzubilden, dass die Einstellung des maximal erzielbaren Öffnungshubs der Düsennadel auch bei in relativ langen Düsennadeln ermöglicht wird, wobei gleichzeitig eine vorteilhafte Montage der Düsennadel und der mit der Düsennadel unmittelbar zusammenwirkenden Bauteile der Hubbegrenzungseinrichtung ermöglicht werden soll. Weiterhin soll eine örtliche Trennung eines Steuerraums und der Einstellung des maximal erzielbaren Öffnungshubs der Düsennadel erzielt werden, um die entsprechenden Bauteile jeweils optimal ausbilden zu können.Based on the prior art presented, the invention is based on the object of developing a common rail injector according to the preamble of claim 1 in such a way that the maximum achievable opening stroke of the nozzle needle can be set even with relatively long nozzle needles, with one at the same time advantageous assembly of the nozzle needle and the components of the stroke limiting device that interact directly with the nozzle needle are to be made possible. Furthermore, a local separation of a control chamber and the setting of the maximum achievable opening stroke of the nozzle needle should be achieved in order to be able to optimally design the corresponding components.
Diese Aufgabe wird erfindungsgemäß bei einem Common-Rail-Injektor mit den Merkmalen des Anspruchs 1 dadurch gelöst, dass die Düsennadel ein zweites Element der Einrichtung zur Einstellung des maximalen Hubs der Düsennadel, das die Düsennadel radial umfasst und auf der dem ersten Element abgewandten Seite axial ortsfest im Injektorgehäuse angeordnet ist, axial vollständig durchsetzt und der in den Steuerraum eintauchende Endbereich der Düsennadel axial von dem zweiten Element beabstandet angeordnet ist. Dabei ist der Hochdruckraum im Düsenkörper und im weiteren Gehäuseelement auf einander zugewandten Seiten von jeweils einem Bohrungsabschnitt gebildet, wobei der im weiteren Gehäuseelement ausgebildete Bohrungsabschnitt zur Ausbildung der Anschlagfläche für das zweite Element einen geringeren Durchmesser aufweist als der im Düsenkörper ausgebildete Bohrungsabschnitt, und dass das zweite Element wenigstens einen Durchlass für Kraftstoff zwischen den beiden Bohrungsabschnitten aufweist. Dieser Durchlass ist deshalb von besonderer Bedeutung, da durch ihn sichergestellt ist, dass auch bei maximal geöffneter Düsennadel, bei der das zweite Element an der Stirnseite des weiteren Gehäuseelements anliegt, ein Zufluss von Kraftstoff in den Bereich der wenigstens einen Einspritzöffnung ermöglicht wird.This object is achieved according to the invention in a common rail injector with the features of claim 1 in that the nozzle needle is a second element of the device for setting the maximum stroke of the nozzle needle, which surrounds the nozzle needle radially and axially on the side facing away from the first element is arranged stationary in the injector housing, axially completely penetrated and the end region of the nozzle needle dipping into the control chamber is arranged axially spaced from the second element. The high-pressure chamber in the nozzle body and in the further housing element is formed by a bore section on each side facing one another, the bore section formed in the further housing element for forming the stop surface for the second element having a smaller diameter than the bore section formed in the nozzle body, and the second Element has at least one passage for fuel between the two bore sections. This passage is of particular importance because it ensures that even when the nozzle needle is fully open, in which the second element is on the face of the further housing elements is applied, an inflow of fuel into the area of the at least one injection opening is made possible.
Mit anderen Worten gesagt bedeutet dies, dass die Einrichtung zur Begrenzung des maximalen Öffnungshubs der Düsennadel von dem Steuerraum bzw. dem den Steuerraum ausbildenden zweiten Element getrennt angeordnet bzw. ausgebildet ist. Dadurch ist es insbesondere bei Verwendung relativ langer Düsennadeln möglich, den Steuerraum auf der der wenigstens einen Einspritzöffnung im Injektorgehäuse abgewandten Seite der Düsennadel, und die Einrichtung zur Begrenzung des maximalen Öffnungshubs der Düsennadel relativ nahe an der wenigstens einen Einspritzöffnung im Injektorgehäuse anzuordnen. Eine derartige funktionelle Trennung der Baugruppen ermöglicht insbesondere auch eine vorteilhafte Montage der Bauteile des Common-Rail-Injektors.In other words, this means that the device for limiting the maximum opening stroke of the nozzle needle is arranged or formed separately from the control chamber or the second element forming the control chamber. This makes it possible, especially when using relatively long nozzle needles, to arrange the control chamber on the side of the nozzle needle facing away from the at least one injection opening in the injector housing, and the device for limiting the maximum opening stroke of the nozzle needle relatively close to the at least one injection opening in the injector housing. Such a functional separation of the assemblies also enables, in particular, an advantageous assembly of the components of the common rail injector.
Vorteilhafte Weiterbildungen des erfindungsgemäßen Common-Rail-Injektors sind in den Unteransprüchen aufgeführt.Advantageous further developments of the common rail injector according to the invention are listed in the subclaims.
In vorteilhafter konstruktiver Umsetzung des allgemeinen Erfindungsgedankens ist es vorgesehen, dass die Einrichtung zur Einstellung des maximalen Hubs der Düsennadel im Bereich eines Düsenkörpers angeordnet ist, an den sich auf der der wenigstens einen Einspritzöffnung abgewandten Seite in axialer Richtung wenigstens ein weiteres Gehäuseelement anschließt, und dass der Steuerraum im Bereich des weiteren Gehäuseelements angeordnet ist.In an advantageous constructive implementation of the general inventive concept, it is provided that the device for setting the maximum stroke of the nozzle needle is arranged in the area of a nozzle body to which at least one further housing element is connected in the axial direction on the side facing away from the at least one injection opening, and that the control chamber is arranged in the area of the further housing element.
Zur Ausbildung eines Axialanschlags für das zweite Element der Einrichtung zur Begrenzung des maximalen Öffnungshubs der Düsennadel ist es bevorzugt vorgesehen, dass das weitere Gehäuseelement mit einer den Düsenkörper zugewandten Stirnfläche eine axiale Anschlagfläche für das zweite Element der Einrichtung ausbildet. Eine derartige Ausbildung hat den Vorteil, dass ein Anschlag für das zweite Element ohne zusätzliche Bauteile ausgebildet werden kann, da dieses von der dem zweiten Element zugewandten Stirnfläche bzw. Stirnseite des weiteren Gehäuseelements ausgebildet wird.To form an axial stop for the second element of the device to limit the maximum opening stroke of the nozzle needle, it is preferably provided that the further housing element with an end face facing the nozzle body forms an axial stop surface for the second element of the device. Such a design has the advantage that a stop for the second element can be formed without additional components, since this is formed by the end face or end face of the further housing element facing the second element.
Um einerseits einen möglichst hohen Durchflussquerschnitt in Richtung der wenigstens einen Einspritzöffnung durch das zweite Element zu erzielen, und das zweite Element gleichzeitig konstruktiv besonders einfach und steif ausbilden zu können, ist es vorgesehen, dass der wenigstens eine Durchlass in dem zweiten Element als über einen Teilbereich der axialen Erstreckung des zweiten Elements verlaufender Längsschlitz ausgebildet ist, der von der dem Düsenkörper abgewandten Stirnseite des zweiten Elements ausgeht.In order, on the one hand, to achieve the highest possible flow cross-section in the direction of the at least one injection opening through the second element, and at the same time to be able to design the second element in a particularly simple and rigid manner, it is provided that the at least one passage in the second element as over a partial area the axial extent of the second element extending longitudinal slot is formed, which extends from the end face of the second element facing away from the nozzle body.
Zur Begrenzung des Verschleißes zwischen den beiden Elementen der Einrichtung zur Begrenzung des maximalen Öffnungshubs und zur Einstellung des maximalen Öffnungshubs ist es vorgesehen, dass die einander zugewandten Stirnseiten der beiden Elemente bei Maximalhub der Düsennadel in Anlagekontakt sind, und dass der maximale Öffnungshub der Düsennadel durch die Größe eines zwischen den Stirnseiten der beiden Elemente ausgebildeten Axialspalts definiert ist.To limit the wear between the two elements of the device for limiting the maximum opening stroke and for setting the maximum opening stroke, it is provided that the facing ends of the two elements are in contact with the maximum stroke of the nozzle needle, and that the maximum opening stroke of the nozzle needle through the Size of an axial gap formed between the end faces of the two elements is defined.
Wie im Abschnitt Stand der Technik erläutert, dient eine Rückstell- bzw. Schließfeder zur Kraftbeaufschlagung der Düsennadel in ihre Schließstellung, um zum einen während des Betriebs des Common-Rail-Injektors bei einer Unterbrechung der Ansteuerung die Düsennadel diese in ihre Schließstellung zu bewegen, und andererseits ein unerwünschtes Einspritzen von Kraftstoff in den Brennraum einer Brennkraftmaschine zu vermeiden. Hierzu ist eine genaue Abstimmung der Federhärte bzw. der Charakteristik der Schließfeder erforderlich. In einer weiteren Ausgestaltung der Erfindung kann es vorgesehen sein, dass der maximale Öffnungshub der Düsennadel durch den in den Steuerraum eintauchenden Endbereich der Düsennadel begrenzt ist, und dass bei maximalem Öffnungshub der Düsennadel die beiden Elemente unter Ausbildung eines zwischen beiden Elementen ausgebildeten Axialspalts zueinander beabstandet angeordnet sind. Die beiden Elemente dienen somit der Einstellung bzw. exakten Positionierung der Schließfeder in Bezug zur Düsennadel, und nicht der Begrenzung des maximalen Öffnungshubs der Düsennadel.As explained in the prior art section, a return or closing spring is used to apply force to the nozzle needle in its closed position, on the one hand, to move the nozzle needle into its closed position during operation of the common rail injector when the control is interrupted, and on the other hand, to avoid undesired injection of fuel into the combustion chamber of an internal combustion engine. For this purpose, the spring stiffness or the characteristics of the closing spring must be precisely matched. In a further embodiment of the invention, it can be provided that the maximum opening stroke of the nozzle needle is limited by the end region of the nozzle needle that plunges into the control chamber, and that at the maximum opening stroke of the nozzle needle the two elements are arranged at a distance from one another, forming an axial gap formed between the two elements are. The two elements thus serve to adjust or precisely position the closing spring in relation to the nozzle needle, and not to limit the maximum opening stroke of the nozzle needle.
In weiterer konstruktiver Ausgestaltung des Kraftstoffinjektors kann es vorgesehen sein, dass die Düsennadel einen radial umlaufenden Sitz für das erste Element aufweist, an dem das erste Element axial anliegt, dass sich das zweite Element unter axialer Zwischenlage der Rückstellfeder an das erste Element anschließt, dass die Bewegung des zweiten Elements durch ein Düsenmodul begrenzt ist, wobei die Düsennadel Bestandteil des Düsenmoduls ist, und dass das Düsenmodul eine in das Injektorgehäuse einsetzbare, vormontierbare Baugruppe ausbildet.In a further structural embodiment of the fuel injector, it can be provided that the nozzle needle has a radially circumferential seat for the first element on which the first element rests axially so that the second element with axial interposition of the return spring connects to the first element that the movement of the second element is limited by a nozzle module, the nozzle needle being part of the nozzle module, and that the nozzle module forms a preassembled assembly that can be inserted into the injector housing.
Zuletzt sieht eine weitere konstruktiv bevorzugte Ausgestaltung vor, dass der Hochdruckraum mit einem Zulaufkanal für unter Hochdruck stehenden Kraftstoff hydraulisch verbunden ist, und dass der Zulaufkanal in einem zwischen der wenigstens einen Einspritzöffnung und dem Steuerraum liegenden axialen Bereich radial in den Hochdruckraum mündet. Insbesondere kann es dabei vorgesehen sein, dass der Mündungsbereich des Zulaufkanals in dem Hochdruckraum in etwa in der Mitte zwischen der wenigstens einen Einspritzöffnung und dem Steuerraum mündet. Eine derartige Anordnung des Zulaufkanals zum Hochdruckraum ermöglicht eine optimierte Versorgung sowohl des Steuerraums als auch des Bereichs, von dem Kraftstoff durch die wenigstens eine Einspritzöffnung in den Brennraum der Brennkraftmaschine abströmt.Finally, a further structurally preferred embodiment provides that the high-pressure chamber is hydraulically connected to an inlet channel for fuel under high pressure, and that the inlet channel opens radially into the high-pressure chamber in an axial area between the at least one injection opening and the control chamber. In particular, it can be provided that the opening area of the inlet channel opens into the high-pressure chamber approximately in the middle between the at least one injection opening and the control chamber. Such an arrangement of the inlet channel to the high-pressure chamber enables an optimized supply of both the control chamber and the area from which fuel flows through the at least one injection opening into the combustion chamber of the internal combustion engine.
Weitere Vorteile, Merkmale und Einzelheiten der Erfindung ergeben sich aus der nachfolgenden Beschreibung bevorzugter Ausführungsbeispiele sowie anhand der Zeichnung.Further advantages, features and details of the invention emerge from the following description of preferred exemplary embodiments and with reference to the drawing.
Diese zeigt in:
- Fig. 1
- einen Längsschnitt durch einen erfindungsgemäßen Common-Rail-Injektor,
- Fig. 2
- einen Teilbereich des Common-Rail-Injektors gemäß der
Fig. 1 im Bereich einer Einrichtung zur Begrenzung des maximalen Öffnungshubs seiner Düsennadel, - Fig. 3
- einen Einstellring in perspektivischer Ansicht,
- Fig. 4
- eine perspektivische Ansicht einer Anschlaghülse,
- Fig. 5
- eine mit dem Einstellring und der Anschlaghülse versehene Düsennadel in Seitenansicht,
- Fig. 6
- einen gegenüber der
Fig. 2 modifizierten Common-Rail-Injektor, ebenfalls im Längsschnitt, - Fig. 7
- einen gegenüber den
Fig. 1 bis 4 modifizierten Common-Rail-Injektor, im Längsschnitt, - Fig. 8
- einen bei dem Common-Rail-Injektor gemäß der
Fig. 7 verwendeten Einstellring in perspektivischer Ansicht und - Fig. 9
- einen bei dem Common-Rail-Injektor gemäß der
Fig. 7 verwendeten Anschlagring, ebenfalls in perspektivischer Ansicht.
- Fig. 1
- a longitudinal section through a common rail injector according to the invention,
- Fig. 2
- a portion of the common rail injector according to FIG
Fig. 1 in the area of a device for limiting the maximum opening stroke of its nozzle needle, - Fig. 3
- an adjustment ring in perspective view,
- Fig. 4
- a perspective view of a stop sleeve,
- Fig. 5
- a nozzle needle provided with the setting ring and the stop sleeve in side view,
- Fig. 6
- one opposite the
Fig. 2 modified common rail injector, also in longitudinal section, - Fig. 7
- one opposite the
Figs. 1 to 4 modified common rail injector, in longitudinal section, - Fig. 8
- one in the common rail injector according to FIG
Fig. 7 used setting ring in perspective view and - Fig. 9
- one in the common rail injector according to FIG
Fig. 7 used stop ring, also in perspective view.
Gleiche Elemente bzw. Elemente mit gleicher Funktion sind in den Figuren mit den gleichen Bezugsziffern versehen.The same elements or elements with the same function are provided with the same reference numbers in the figures.
Der in der
Der Hochdruckraum 18 ist über einen Zulaufkanal 19 mit unter Systemdruck stehenden Kraftstoff versorgbar. Der Zulaufkanal 19 mündet im dargestellten Ausführungsbeispiel in etwa in einem mittleren Bereich des Hochdruckraums 18 (bezogen auf die axiale Erstreckung des Injektors 10), wobei er radial, d.h. senkrecht zu einer Längsachse 21 des Injektors 10, in dem Hochdruckraum 18 mündet. Auf der dem Zulaufkanal 19 gegenüberliegenden Seite des Injektorgehäuses 11 ist ein Ablaufkanal 22 ausgebildet, der zum Abführen von in einem Niederdruckbereich 42 des Injektors 10 befindlichen Kraftstoff dient.The high-
Innerhalb des Injektorgehäuses 11 ist in der Längsachse 21 eine Düsennadel 25 in Richtung des Doppelpfeils 26 hubbeweglich angeordnet. In der in der
Die Düsennadel 25 ist Bestandteil eines in der
Innerhalb des Injektorgehäuses 11 ist auf der der wenigstens einen Einspritzöffnung 15 abgewandten Seite des Düsenmoduls 30 eine Steuerraumhülse 36 angeordnet. Die Steuerraumhülse 36 weist auf der dem Ventilkolben 32 zugewandten Seite eine Sacklochbohrung 37 auf, in die der Ventilkolben 32 des Düsenmoduls 30 mit seinem Endbereich 44 eintaucht. Insbesondere ist der Endbereich 44 axial von der Einrichtung 50 bzw. dem Einstellring 35 beabstandet. Der Ventilkolben 32 begrenzt innerhalb der Sacklochbohrung 37 einen Steuerraum 38, der über eine Zulaufbohrung 39 mit dem Hochdruckraum 18 hydraulisch Verbindung hat. Der Steuerraum 38 ist über eine in der Steuerraumhülse 36 ausgebildete Durchgangsbohrung 41 in den Niederdruckbereich 42 des Injektors 10 hydraulisch entlastbar, der wiederum mit dem Ablaufkanal 22 verbunden ist.A
Die Durchgangsbohrung 41 ist auf der dem Ventilkolben 32 abgewandten Seite mittels eines im Ausführungsbeispiel kugelförmigen Ventilglieds 43 verschließbar. Die Betätigung des Ventilglieds 43 erfolgt beispielhaft, und nicht einschränkend, über einen Magnetaktuator 45 in an sich bekannter Art und Weise, derart, dass bei einer Bestromung des Magnetaktuators 45 das Ventilglied 43 von der Durchgangsbohrung 41 abhebt, um einen Abfluss von Kraftstoff aus dem Steuerraum 38 in den Niederdruckbereich 42 des Injektors 10 zu ermöglichen. Der aus dem Steuerraum 38 abströmende Kraftstoff bewirkt ebenfalls in bekannter Art und Weise eine Betätigung des Düsenmoduls 30 bzw. der Düsennadel 25 derart, dass die Düsennadel 25 zum Freigeben der wenigstens einen Einspritzöffnung 15 von ihrem Dichtsitz abhebt.The through-
In der
Wie insbesondere anhand der
Die die Düsennadel 25 radial umgebende Anschlaghülse 33 weist auf der dem Einstellring 35 abgewandten Seite einen radial umlaufenden Bund 51 auf, der axial an einem Sitz bzw. einem Absatz 52 der Düsennadel 25 anliegt. Die Rückstellfeder 34 stützt sich zwischen dem Bund 51 und der der Rückstellfeder 34 zugewandten Stirnseite des Einstellrings 35 ab. Die Rückstellfeder 34 beaufschlagt die Düsennadel 25 bzw. das Düsenmodul 33 mit einer Federkraft derart, dass die Düsennadel 25 in Richtung der wenigstens einen Einspritzöffnung 15 bzw. in Richtung des Dichtsitzes gedrückt wird. Insbesondere sorgt die Rückstellfeder 34 dafür, dass bei unbestromtem Magnetaktuator 45 die Düsennadel 25 stets den Dichtsitz ausbildet, um das Einspitzen von Kraftstoff in den Brennraum der Brennkraftmaschine zu verhindern.The
Zwischen der dem Bund 51 abgewandten Stirnseite 53 der Anschlaghülse 33 und der der Stirnseite 53 zugewandten Stirnseite 54 des Einstellrings 35 ist ein Axialspalt 55 ausgebildet. Die Größe des Axialspalts 55 wird durch eine Variation der Länge I der Anschlaghülse 33 eingestellt. Insbesondere wird über die Größe des Axialspalts 55 der maximale Hub der Düsennadel 25 bzw. des Düsenmoduls 30 in Öffnungsrichtung begrenzt. Die Stirnseite 54 des Einstellrings 35 bildet somit einen Anschlag für die Anschlaghülse 33 in Öffnungsrichtung der Düsennadel 25 aus.An
Bei einer Bestromung des Magnetaktuators 45 und der damit verbundenen Druckentlastung des Steuerraums 38 bewegt sich die Düsennadel 25 entgegen der Federkraft der Rückstellfeder 34 solange in Öffnungsrichtung, bis die Anschlaghülse 33 an dem Einstellring 35 axial anliegt, d.h. der Axialspalt 55 Null ist. In dieser Stellung ist die dem Grund der Sacklochbohrung 37 des Steuerraums 38 zugewandte Stirnfläche des Ventilkolbens 32 noch vom Grund der Sacklochbohrung 37 beabstandet.When the
Alternativ und nicht erfindungsgemäß kann es entsprechend der Darstellung der
In den
Claims (9)
- Common-rail injector (10; 10a) having an injector housing (11) in which a nozzle needle (25), which is disposed so as to be able to perform reciprocating stroke movements in a high-pressure chamber (18) for releasing or blocking, respectively, at least one injection opening (15) that is configured in the injector housing (11), is disposed, wherein an end region of the nozzle needle (25) that faces away from the at least one injection opening (15) plunges into an element (36) in order for a control chamber (38) to be configured, and wherein the nozzle needle (25) interacts with an installation (50) for restricting the maximum opening stroke of the nozzle needle (25), wherein the installation (50) has a first, preferably sleeve-shaped, element (33) which, in axial terms, is preferably disposed so as to be locationally fixed on the nozzle needle (25) and which, by means of a restoring spring (34), is impinged with a force in the closing direction of the nozzle needle (25), and a second, preferably likewise sleeve-shaped, element (35; 35a) which radially encompasses the nozzle needle (25) and, in axial terms, is disposed so as to be locationally fixed on that side in the injector housing (11) that faces away from the first element (33),
wherein the nozzle needle (25), in axial terms, completely penetrates the second element (35; 35a), and the end region (44) of the nozzle needle (25) that plunges into the control chamber (38) is disposed so as to be axially spaced apart from the second element (35; 35a), and
characterized in that a further housing element (13), by way of an end face (47) that faces the nozzle body (12), configures an axial detent face for the second element (35; 35a) of the installation (50), and the high-pressure chamber (18) in the nozzle body (12) and in the further housing element (13) is formed on mutually facing sides of, in each case, one bore portion (46, 48), wherein the bore portion (48) configured in the further housing element (13) for configuring the detent face for the second element (35; 35a) has a smaller diameter than the bore portion (46) configured in the nozzle body (12), and in that the second element (35; 35a), between the two bore portions (46, 48), has at least one passage for fuel. - Common-rail injector according to Claim 1,
characterized in that
the installation (50) is disposed in the region of a nozzle body (12), said region on the side that faces away from the at least one injection opening (15) in the axial direction being adjoined by the further housing element (13), and in that the control chamber (38) is disposed in the region of the further housing element (13). - Common-rail injector according to Claim 1,
characterized in that
the at least one passage is configured as a longitudinal slot (49) which runs across a sub-region of the axial extent (L) of the second element (35), said sub-region emanating from the end side of the second element (35) that faces away from the nozzle body (12). - Common-rail injector according to Claim 1,
characterized in that
the at least one passage is configured as a through bore (57). - Common-rail injector according to one of Claims 1 to 4,
characterized in that
the mutually facing end sides (53, 54) of the two elements (33, 35) at the maximum stroke of the nozzle needle (25) bear on one another so as to restrict the opening stroke of the nozzle needle (25), and in that the maximum opening stroke of the nozzle needle (25) is defined by the size of an axial gap (55) that is configured between the end sides (53, 54) of the two elements (33, 35). - Common-rail injector according to one of Claims 1 to 4,
characterized in that
the mutually facing end sides (53, 54) of the two elements (33, 35a) at the maximum stroke of the nozzle needle (25) bear on one another, by way of the intervention of a detent ring (58), so as to restrict the opening stroke of the nozzle needle (25), and in that the maximum opening stroke of the nozzle needle (25) is defined by the size of an axial gap (55) that is configured between the one element (33) and the detent ring (58). - Common-rail injector according to one of Claims 1 to 6,
characterized in that
the setting of the maximum opening stroke of the nozzle needle (25) takes place by varying the length (1) of the first element (33) or of the second element (35a). - Common-rail injector according to one of Claims 1 to 5,
characterized in that
the nozzle needle (25) has a radially encircling seat (52) for the first element (33), the first element (33) bearing axially on said seat (52), in that the second element (35) adjoins the first element (33) by way of an axial intervention of the restoring spring (34), in that the movement of the second element (35) is restricted by a nozzle module (30), wherein the nozzle needle (25) is a component part of the nozzle module (30), and in that the nozzle module (30) configures a functional group which is able to be pre-assembled and inserted into the injector housing (11). - Common-rail injector according to one of Claims 1 to 8,
characterized in that
the high-pressure chamber (18) is hydraulically connected to an infeed duct (19) for pressurized fuel, and in that the infeed duct (19), in an axial region that lies between the at least one injection opening (15) and the control chamber (38), opens radially into the high-pressure chamber (18).
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
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PCT/EP2015/061803 WO2016188577A1 (en) | 2015-05-28 | 2015-05-28 | Common rail injector |
Publications (2)
Publication Number | Publication Date |
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EP3303817A1 EP3303817A1 (en) | 2018-04-11 |
EP3303817B1 true EP3303817B1 (en) | 2020-12-16 |
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EP15723543.3A Active EP3303817B1 (en) | 2015-05-28 | 2015-05-28 | Common-rail-injector |
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WO (1) | WO2016188577A1 (en) |
Family Cites Families (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0932683A (en) * | 1995-07-14 | 1997-02-04 | Isuzu Motors Ltd | Fuel injection device of internal combustion engine |
DE19839632A1 (en) * | 1998-08-31 | 2000-03-02 | Siemens Ag | Stroke fuel injector |
DE19936668A1 (en) | 1999-08-04 | 2001-02-22 | Bosch Gmbh Robert | Common rail injector |
DE10152268A1 (en) * | 2001-10-20 | 2003-04-30 | Bosch Gmbh Robert | Injector |
JP2006274942A (en) * | 2005-03-29 | 2006-10-12 | Bosch Corp | Fuel injection valve |
DE102006050065A1 (en) * | 2006-10-24 | 2008-04-30 | Siemens Ag | Fluid dosing device for measuring fuel in combustion chamber of cylinder of internal-combustion engine i.e. diesel internal-combustion engine, has nozzle needle coupled with control piston and stopping fluid flow via injection nozzle |
DE102008035087B4 (en) * | 2008-07-28 | 2015-02-12 | Continental Automotive Gmbh | Injector |
DE102011078429A1 (en) * | 2011-06-30 | 2013-01-03 | Robert Bosch Gmbh | Fuel injector |
-
2015
- 2015-05-28 WO PCT/EP2015/061803 patent/WO2016188577A1/en active Application Filing
- 2015-05-28 EP EP15723543.3A patent/EP3303817B1/en active Active
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