COMPONENT FOR AN INJECTION SYSTEM, AND INJECTION SYSTEM FOR MIXTURE-COMPRESSING, SPARK-IGNITION INTERNAL COMBUSTION ENGINES, AS WELL AS METHOD FOR MANUFACTURING SUCH A COMPONENT
20230287852 · 2023-09-14
Inventors
Cpc classification
F02M55/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/852
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/8023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/856
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/853
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M61/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A component for an injection system. The component includes a base body and at least one connecting piece, which is formed at the base body and used to connect an injector. The injector, during assembly, being insertable along a mounting axis into an accommodating space of the connecting piece. The base body and the connecting piece are formed by a forging operation. A recess is formed at an outer side of the connecting piece, in which, in the mounted state, an orienting element of the injector engages for restricting a rotational degree of freedom of the injector about the mounting axis. The connecting piece is post-processed after the forging so that a lateral surface of the recess is at least approximately configured with a predefined lateral height.
Claims
1-10. (canceled)
11. A component for an injection system for a mixture-compressing, spark ignition internal combustion engine, which is used for metering a highly pressurized fluid, the component comprising: a base body; and at least one connecting piece, which is formed at the base body and is configured to connect an injector, the injector, during assembly being insertable along a mounting axis into an accommodating space of the connecting piece, at least the base body and the connecting piece being formed by a one-stage or multi-stage forging operation, and a recess being formed at an outer side of the connecting piece, in which, in the mounted state, an orienting element of the injector engages for restricting a rotational degree of freedom of the injector about the mounting axis, wherein the connecting piece is post-processed after the forging in such a way that at least one lateral surface of the recess of the connecting piece, at which, in the mounted state, a contact between the orienting element of the injector and the connecting piece is made possible for restricting the rotational degree of freedom in a selected direction of rotation about the mounting axis, is at least approximately configured with a predefined lateral height.
12. The component as recited in claim 11, wherein the component is a fluid distributor.
13. The component as recited in claim 11, wherein a further lateral surface of the recess of the connecting piece, which faces the lateral surface of the recess and at which, in the mounted state, the contact between the orienting element of the injector and the connecting piece is made possible for restricting the rotational degree of freedom counter to the selected direction of rotation, is at least approximately configured with the predefined lateral height.
14. The component as recited in claim 13, wherein the recess transitions at an edge into the outer side of the connecting piece, the edge is configured as a processed edge, and the processing of the edge is carried out in such a way that the lateral surface and/or the further lateral surface, is at least approximately configured with the predefined lateral height.
15. The component as recited in claim 14, wherein the processed edge is an at least partially beveled and/or at least partially rounded edge.
16. The component as recited in claim 14, wherein the processed edge is configured with an at least partially varying edge geometry, including an at least partially varying edge height, along an edge profile.
17. The component as recited in claim 16, wherein the post-processing of the connecting piece after the forging is configured in such a way that the edge geometry including the edge height, is modified during the post-processing in such a way that the lateral surface and/or the further lateral surface is at least approximately configured with the predefined lateral height.
18. The component as recited in claim 14, wherein the connecting piece is post-processed after the forging in such a way that the recess and the edge together are configured with a combined tool geometry.
19. The component as recited in claim 11, further comprising: at least one further connecting piece used for connecting a further injector, the further injector during assembly being insertable along a further mounting axis into an accommodating space of the further connecting piece, at least the base body, the connecting piece, and the further connecting piece being formed by the one-stage or multi-stage forging operation, and a recess being formed at an outer side of the further connecting piece, in which, in the mounted state, an orienting element of the further injector engages for restricting a rotational degree of freedom of the further injector about the further mounting axis, and the further connecting piece is post-processed after the forging in such a way that at least one lateral surface of the recess of the further connecting piece, at which, in the mounted state, a contact between the orienting element of the further injector and the further connecting piece is made possible for restricting the rotational degree of freedom in a selected direction of rotation about the further mounting axis, is at least approximately configured with a predefined lateral height.
20. An injection system for a mixture-compressing, spark ignition internal combustion engine, which is used for injecting a fluid which is fuel, the fuel including gasoline and/or ethanol and/or a mixture including fuel, the injection system comprising: a component used for metering the fluid, the component including: a base body; and at least one connecting piece, which is formed at the base body and is configured to connect an injector, the injector, during assembly being insertable along a mounting axis into an accommodating space of the connecting piece, at least the base body and the connecting piece being formed by a one-stage or multi-stage forging operation, and a recess being formed at an outer side of the connecting piece, in which, in the mounted state, an orienting element of the injector engages for restricting a rotational degree of freedom of the injector about the mounting axis, wherein the connecting piece is post-processed after the forging in such a way that at least one lateral surface of the recess of the connecting piece, at which, in the mounted state, a contact between the orienting element of the injector and the connecting piece is made possible for restricting the rotational degree of freedom in a selected direction of rotation about the mounting axis, is at least approximately configured with a predefined lateral height.
21. A method for manufacturing a component for an injection system for a mixture-compressing, spark ignition internal combustion engine, which is used for metering a highly pressurized fluid, the component including: a base body, and at least one connecting piece, which is formed at the base body and is configured to connect an injector, the injector, during assembly being insertable along a mounting axis into an accommodating space of the connecting piece, at least the base body and the connecting piece being formed by a one-stage or multi-stage forging operation, and a recess being formed at an outer side of the connecting piece, in which, in the mounted state, an orienting element of the injector engages for restricting a rotational degree of freedom of the injector about the mounting axis, the method comprising: postprocessing the connecting piece after the forging in such a way that at least one lateral surface of the recess of the connecting piece, at which, in the mounted state, a contact between the orienting element of the injector and the connecting piece is made possible for restricting the rotational degree of freedom in a selected direction of rotation about the mounting axis, is at least approximately configured with a predefined lateral height.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] Preferred exemplary embodiments of the present invention are described in greater detail in the following description with reference to the figures, in which corresponding elements are provided with concurrent reference numerals.
[0012]
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS
[0017]
[0018] Fuel distributor 2 is used for storing and distributing the fluid among injectors 7 through 10 designed as fuel injectors 7 through 10 and reduces pressure fluctuations and pulsations. Fuel distributor 2 may also be used for damping pressure pulsations, which may occur when switching fuel injectors 7 through 10. In the process, during operation, high pressures p may occur at least temporarily in an interior space 11 of component 3.
[0019] Fuel distributor 2 includes a tubular base body 14, which is formed by a one-stage or multi-stage forging process. Component 3 includes a tubular base body 14, a high pressure input 15, and multiple hydraulic terminals 16 through 19, which are provided at the tubular base body and designed as high pressure outputs 16 through 19. Furthermore, a pressure sensor terminal 20 is provided at tubular base body 14. In this exemplary embodiment, tubular base body 14, high pressure input 15, connecting pieces 16A through 19A for high pressure outputs 16 through 19, and pressure sensor terminal 20 are formed of a forged individual part 14′. High pressure input 15, connecting pieces 16A through 19A for high pressure outputs 16 through 19, and pressure sensor terminal 20 are thus forged to base body 14.
[0020] Fuel injectors 7 through 10 are in each case connected to high pressure outputs 16 through 19 of fuel distributor 2. Furthermore, a pressure sensor 21 is provided, which is connected to pressure sensor terminal 20. At one end 22, tubular base body 14 is closed by a closure 23 designed as a screw plug 23 in this exemplary embodiment. In the process, end 22 of tubular base body 14 may be designed as a threaded connecting piece 22A. In one modified embodiment, an axial high pressure input may be provided at end 22 or at an end 24, instead of radial high pressure input 15.
[0021] After forging, tubular base body 14 or forged individual part 14′ is processed by at least a machining operation. In this exemplary embodiment, a borehole 25 is also formed in tubular base body 14 after forging to form interior space 11. Via interior space 11, the fluid supplied at high pressure input 15 may be distributed during operation among fuel injectors 7 through 10 connected to high pressure outputs 16 through 19.
[0022] Moreover, boreholes 26 through 31 are introduced into forged individual part 14′ by a machining operation. In the process, boreholes 27 through 30 serve as connecting boreholes 27 through for high pressure outputs 16 through 19. Borehole 26 is used for high pressure input 15. Borehole 31 is used for pressure sensor terminal 20. Furthermore, an internal thread 22B is cut into borehole 25 at end 22 of base body 14, so that threaded connecting piece 22A is formed.
[0023] Moreover, boreholes 32 through 37 may be provided at high pressure input 15, connecting pieces 16A through 19A of high pressure outputs 16 through 19, and pressure sensor terminal 20. In this exemplary embodiment, borehole 25 is axially oriented with respect to a longitudinal axis 38. Boreholes 32 through 37 are radially oriented with respect to longitudinal axis 38 in this exemplary embodiment. An outer side 39 of base body 14 may be based on a cylindrical jacket-shaped basic shape.
[0024] In the schematic representation of
[0025]
[0026] The design of component 3 and the operating mode in the exemplary embodiment of the present invention are also further described hereafter with reference to
[0027] A first lateral surface 56 and a second lateral surface 57 are provided at recess 51. In the process, a contact occurs between nose 54 and first lateral surface 46 for restricting the rotational degree of freedom of injector 7 relative to component 3 in direction of rotation 49. Correspondingly, a contact occurs between nose 55 and second lateral surface 57 for restricting the rotational degree of freedom counter to direction of rotation 49. In the process, a predefined lateral height 58, which is schematically drawn in
[0028] The right side of
[0029]
[0030]
[0031] As is illustrated on the left side of
[0032] In this way, the consequence of the measure illustrated on the left side of
[0033] In one possible embodiment of the present invention, for example, the predefined lateral height 58 would be at least approximately equal to the minimum height for lateral surfaces 56, 57. As is illustrated on the left side in
[0034] In this way, the described post-processing may ensure the function of recess 51 at connecting piece 16A since lateral surfaces 56, 57 serving as lateral stop surfaces are always present in sufficient height. The processing of edge 53 or a deburring may then be defined in such a way, taking the fluctuations of the outer geometry of connecting piece 16A as well as the manufacturing tolerances into consideration, that the minimally required lateral height is present at all times. The resultant variable size, in particular, edge height 60, of the processed edge 53 has no influence on the function.
[0035] The post-processing of edge 53 may take place at a suitable tool angle. Edge 53 may also have a different edge geometry. For example, edge 53 may also be implemented as a rounded edge 53.
[0036] In the described embodiment, an inner edge line 70, which runs, amongst others, between first lateral surface 56 or second lateral surface 57 and edge 53, may then be continuously spaced apart from a base 71 of recess 51 corresponding to the certain lateral height 58.
[0037] In this way, connecting piece 16A is post-processed after forging in such a way that at least one lateral surface 56, 57 of recess 51 of connecting piece 16A, at which, in the mounted state, a contact is made possible between orienting element 50 of injector 7 and connecting piece 16A, is configured with a predefined lateral height 58. This applies correspondingly to other connecting pieces 16A through 19A.
[0038] The present invention is not restricted to the described exemplary embodiments.