German Patent Application No. DE 101 08 467, for example, describes a fuel injector which is supplied with fuel via a fuel distribution line. The injection end of the fuel injector is inserted into a receptacle opening of a cylinder head. The inlet end of the fuel injector projects into a receptacle opening of the fuel distribution line and is radially surrounded by an annular gasket, which seals off the fuel injector from the fuel distribution line. The gasket is designed as an O-ring and is made of a rubber-type material.
The disadvantage of the fuel injection system known from the above-mentioned publication is in particular that the gasket is inadequate for higher fuel pressures. Furthermore, the radial gasket is incapable of compensating for axial tolerances which appear, for example, in operation due to different degrees of thermal expansion of the fuel distribution line and the cylinder head because of the inclination of the fuel injectors with respect to the receptacle openings. Furthermore, the gaskets can be manufactured only for a very narrow temperature range. The fuel can diffuse through annular gaskets made of a rubber-type material.
The fuel injection system according to the present invention has the advantage over the related art that the assembly of the fuel injection system may take place in a considerably simpler manner because, due to the elastic axial expansibility of the gasket, the supply line segment may be attached to the cylinder head without elastic spring elements for compensating for axial variations. Variations in the inclination of the fuel injectors with respect to the supply line segment, which occur, for example, due to different degrees of thermal expansion of the supply line segment and the cylinder head, may be compensated without leakage by the gasket.
The shaped area advantageously extends over a partial axial length of the gasket as an undulated bellows-shaped area or an undulated area. The elastic spring constant may thus be improved and the hydraulic fuel pressures acting on the gasket may be used for improving the seal.
It is also advantageous to manufacture the gasket by deep drawing or stamping. The gasket, in particular the undulated area, may thus be manufactured in a particularly simple manner.
The seal may be considerably improved with respect to the variations in inclination between the supply line segment and the cylinder head, i.e., the fuel injector, due to a conically widening inner contour of the gasket ends and rounded segments engaging therewith.
The material of the gasket, in particular in its contact area having the inlet segment and/or the outlet segment, is advantageously either considerably harder or considerably softer than the corresponding contact area of the inlet segment or the outlet segment. The seal may thus be further improved and manufacturing tolerances may be increased.
The service life of the gasket may be improved by coating.
The material of the gasket, in particular in the contact area having the inlet segment and/or the outlet segment, is preferably designed to be either considerably harder or considerably softer than the corresponding contact area of the inlet segment or the outlet segment.
The inlet segment and/or the outlet segment is/are preferably made of steel. The gasket, at least in the contact area having the inlet segment or the outlet segment, is preferably made of bronze.
The inlet segment and/or the outlet segment is/are preferably made of aluminum. The gasket, at least in the contact area having the inlet segment or the outlet segment, is preferably made of steel, C45 steel in particular.
The gasket is coated at least in the inlet and/or outlet areas, in particular using an anti-wear carbon coating.
An exemplary embodiment of the fuel injection system according to the present invention, illustrated in
The fuel injection system according to the present invention schematically illustrated as an example essentially has a supply line segment 5, a fuel injector 1, and a gasket 6 elastically and pressure-tightly connecting supply line segment 5 to fuel injector 1. In this exemplary embodiment, almost the entire length of fuel injector 1 is situated in a receptacle bore hole 2 of cylinder head 3. On the inlet side, fuel injector 1 has a connecting piece 4, through which fuel is supplied under pressure to fuel injector 1. Connecting piece 4 projects slightly out from receptacle bore hole 2.
Supply line segment 5 is part of a fuel rail and, for each fuel injector 1, it has a receptacle chamber 10, into which connecting piece 4 projects. Supply line segment 5 has a U-shaped design in the area of receptacle chamber 10, supply line segment 5 being situated in such a way that the open U-shaped area covers receptacle bore hole 2. A supply bore hole 11 runs in the upper area of supply line segment 5 facing away from the open U-shaped area. In this exemplary embodiment, supply bore hole 11 opens into gasket 6, situated in receptacle chamber 10, via a peg-shaped outlet segment 9. Outlet segment 9 has a round cross-section, for example. The outer contour of outlet segment 9 is uniformly rounded over its circumference. In this exemplary embodiment, outlet segment 9 sealingly engages with the inner contour of the inlet-side area of sleeve-shaped gasket 6, which in this exemplary embodiment conically tapers off in the flow direction. Due to the rounding, i.e., the conical tapering of the inner contour, a spherical/conical gasket is formed, which remains tight even in the event of variations in the inclination of gasket 6 with respect to outlet area 9. In particular, slightly different degrees of thermal expansion of supply line segment 5 and cylinder head 3, which occur in operation due to temperature and material differences, may thus be compensated.
In this exemplary embodiment, gasket 6 has an undulated or undulated bellows-shaped area 7. The length of gasket 6 is selected such that it is plastically deformed in shaped area 7 during assembly without losing its elastic properties in this area. The dimensions of shaped area 7 are such that it is capable of elastically exerting the required pressure on fuel injector 1, even in operation. Gasket 6 is made of bronze or steel, for example.
The inner contour of the outlet-side area of gasket 6 widens conically in the flow direction and also forms a spherical/conical gasket together with the equally round cross-section shape of an inlet segment 8 of connecting piece 4, which has a rounded outer contour.
Supply line segment 4 is immovably joined with cylinder head 3 by screw fasteners 12.
Due to its elastic properties, gasket 6 elastically presses fuel injector 1 into receptacle bore hole 2.
The present invention is not limited to the exemplary embodiments illustrated. The described features of the exemplary embodiments may be combined in any desired manner.
Number | Date | Country | Kind |
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10 2004 036 626 | Jul 2004 | DE | national |
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Number | Date | Country |
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101 08 467 | Sep 2002 | DE |
Number | Date | Country | |
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20060021601 A1 | Feb 2006 | US |