Fuel distributor
09810189 · 2017-11-07
Assignee
Inventors
- Martin Maier (Moeglingen, DE)
- Martin Goehner (Vaihingen, DE)
- Markus Feigl (Markgroeningen, DE)
- Helmut Schneider (Aichtal, DE)
- Nikolaus Hautmann (Ditzingen, DE)
- Dietmar Uhlenbrock (Stuttgart, DE)
- Holger Uhrig (Memmelsdorf, DE)
Cpc classification
F02M55/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M69/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/315
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M2200/857
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M69/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fuel distributor, which is used, in particular, for fuel injection systems of mixture-compressing, internal combustion engines having externally supplied ignition, includes a distributor pipe, a first holder and at least one second holder. The distributor pipe has a longitudinal axis. In this connection, the first holder and the second holder are situated at the distributor pipe so as to be axially set apart from one another with respect to the longitudinal axis. The distributor pipe is designed to allow axial length compensation. It is also possible for at least one holder to be designed to allow axial length compensation.
Claims
1. A fuel distributor, comprising: a distributor pipe having a longitudinal axis; a first holder; and at least one second holder; wherein the first holder and the second holder are situated at the distributor pipe axially set apart from one another with respect to the longitudinal axis; wherein at least one of the first and second holders is configured to allow axial length compensation, and wherein at least one of the first and second holders is flexurally soft and configured to be displaced in at least an axial direction corresponding to the longitudinal axis.
2. The fuel distributor according to claim 1, wherein the distributor pipe is configured to allow axial length compensation, and wherein the distributor pipe has at least one compensating location, which is situated between the first holder and the second holder with respect to the longitudinal axis, and at which a pipe wall of the distributor pipe is bellows-shaped.
3. The fuel distributor according to claim 1, wherein each of the first and second holders is configured to be rigid in a radial direction, which is perpendicular to the axial direction.
4. The fuel distributor according to claim 1, wherein each of the first and second holders has a screw element and a sleeve, an axial dimension of the sleeve in the axial direction being less than a radial dimension of the sleeve in the radial direction, and the radial direction being both perpendicular to the axial direction and perpendicular to a screw axis of the screw element.
5. The fuel distributor according to claim 1, wherein at least three holders are provided, holders which are flexurally soft in the axial direction being positioned at the distributor pipe as outer holders, and an inner holder, situated between the outer holders, being configured to be rigid in the axial direction.
6. The fuel distributor according to claim 1, wherein at least one supporting ring is provided that is mountable on an injector, with the aid of which the injector is positionable at the fuel distributor, the supporting ring having an inner ring and an outer ring, and a play in the axial direction being present between the inner ring and the outer ring.
7. The fuel distributor according to claim 6, wherein the inner ring has a bearing surface that is at least partially sloped with respect to an axis of the supporting ring; and an O-ring is provided, which is supported at the bearing surface and, in an assembled state, acts upon the inner ring radially inwardly with respect to the axis of the supporting ring.
8. The fuel distributor according to claim 1, wherein the distributor pipe is configured to allow axial length compensation, and wherein the distributor pipe has a plurality of deep-drawn sleeves, which are assembled at their respective ends, in an axial direction, so as to overlap at respective overlapping regions.
9. The fuel distributor according to claim 8, wherein a hydraulic connection is provided in at least one of the overlapping regions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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(3)
(4)
(5)
(6)
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(9)
DETAILED DESCRIPTION
(10)
(11) Fuel distributor 1 has holders 2, 3, 4, 5. In addition, fuel distributor 1 has a distributor pipe 6, which includes, in this exemplary embodiment, a plurality of deep-drawn sleeves 7, 8, 9. Sleeves 7, 8, 9 are individually fitted into each other. Each sleeve 7, 8, 9 has at least one compensating location 10, 11, 12, which is formed in the shape of a meander-type, fold-type or undulation-type bellows. In this connection, circumferential folds, meander-like shapes or undulations 10, 11, 12 may be provided, for example. Compensating locations 10, 11, 12 are used for compensating for a linear deformation, in particular, a linear deformation along a longitudinal axis 13 of distributor pipe 6.
(12) At compensating locations 10, 11, 12, a respective pipe wall 14, 15, 16 (
(13) Consequently, holders 2 to 5 are axially spaced apart from one another at distributor pipe 6 with respect to longitudinal axis 13. In addition, distributor pipe 6 is designed to allow axial length compensation. It is also possible for one or more holders 2 to 5 to be designed to allow axial length compensation.
(14)
(15) In this connection, it should be noted that overlapping region 22 is formed between sleeve 9 and an end piece 25.
(16) In this exemplary embodiment, holders 2 to 5 accommodate hydraulic connections 26, 27, 28, 29. In this case, hydraulic connections 27, 28, 29 lead into distributor pipe 6 in overlapping regions 20, 21, 22. Therefore, hydraulic connections 27, 28, 29 are provided with double wall thickness in overlapping regions 20, 21, 22.
(17)
(18) Holder 4 is manufactured as a rigid holder 4. Holders 2, 3, 5 are designed to be flexible in an axial direction, that is, along longitudinal axis 13, and are consequently used, as it were, as floating bearings 2, 3, 5. However, all of holders 2 to 5 are manufactured to be as rigid as possible in a direction radial with respect to longitudinal axis 13. In the case of holders 2, 3, 5, this may be rendered possible, for example, by a suitable upright profile 30, 31, 32 at the respective holder 2, 3, 5. In this connection, the flexibility in the axial direction may be influenced, inter alia, by a bending beam length 33 of upright profile 30, 31, 32.
(19)
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(21) Upright profile 30′ is designed so that sleeve 35 has comparatively little material in axial direction 38, but a comparatively large amount of material in radial direction 39. In this exemplary embodiment, a dimension 40 of sleeve 35 in the axial direction is markedly less than a dimension 41 of sleeve 35 in radial direction 39.
(22) By this means, sleeve 35 provides cross-sectional area sufficient for screw 36 to receive enough support in radial direction 39. On the other hand, sleeve 35 only provides a little material in axial direction 38, in order that sleeve 35 is relatively flexible in axial direction 38 and may tilt in response to axial forces. Thus, a relatively large amount of material must be present in radial direction 39. Through this, for example, the upright profile 30′ illustrated in
(23)
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(25)
(26) The advantage of this embodiment is that, for example, in the case of a four-cylinder engine, three identical, inexpensive sleeves 7, 8, 9 may then be assembled. As a further advantage, a base wall thickness may be reduced, since a possible site of fracture, which is given by bore cuts to the hydraulic outlets, may be situated in the overlapping regions 20, 21, 22 having a double wall thickness. This may allow the material costs to be reduced. In addition, it is possible to reduce the weight or the mass of fuel distributor 1.
(27) Furthermore, holes that are provided may be produced by punching, which is more cost-effective than drilling. Moreover, hole positions may be varied, so that individual tool parts may be used for different engine projects. In this connection, it is also possible for such holes to be constructed to be oval to reduce damaging stress peaks. In addition, a pipe cross-section of distributor pipe 6 may also be designed to be slightly oval, which means that in response to a given internal pressure, distributor pipe 6 is circularly deformed, and supporting compressive stresses are generated at the inner wall of the bore cuts. Furthermore, the increase in volume, which occurs in response to the deformation from an oval pipe cross-section to a circular cross-section, may allow distributor pipe 6 to assume a pressure-damping or storing function. By this means, damaging compression amplitudes in distributor pipe 6 may be reduced.
(28) The three deep-drawn sleeves 7, 8, 9 have, on one end, respective segments 60, 61, 62 having increased inner diameters, which means that sleeves 7, 8, 9 may be fit into each other. This is also illustrated in
(29)
(30) In overlapping regions 20′, 20, 21, 22, holes 63, 64, 65 were punched in at the two ends of sleeves 7, 8, 9 and end piece 25 during the deep-drawing process. When sleeves 7, 8, 9 are fitted into each other, holes 63, 64, 65 are positioned appropriately with respect to one another. At these locations, e.g., cups 66, 67, 68, 69 are attached directly or via an intermediate pipe. This allows hydraulic connections 26 to 29 to be produced.
(31) The ends of distributor pipe 6 are closed by deep-drawn end cap 25′ and high-pressure connection 25. By this means, a lateral high-pressure connection may also be produced. It is also possible for a pressure sensor or the like to be provided.
(32) In addition, holders 2, 3, 4, 5 are provided that are connected to distributor pipe 6. In this exemplary embodiment, the holders are produced separately from hydraulic connections 26 to 29 for the injectors.
(33) During the manufacture of fuel distributor 1, the individual parts may be fixed in position by clipping and subsequently hard-soldered. In this connection, a soldering paste or soldering rings may be used, for example.
(34) The present invention is not limited to the exemplary embodiments described.