The present invention relates to a fuel injection pump for an internal combustion engine, as recited in the preamble to claim 1.
Fuel injection pumps of the type that is of interest here are particularly used in internal combustion engines that use such fuel injection pumps to exert high pressure on the fuel to be injected, which is supplied to the internal combustion engine by means of fuel injectors.
The published, non-examined patent disclosure DE 41 05 353 A1 discloses a fuel injection pump of the type that defines the species, which has a clutch unit and is for an internal combustion engine, in which the recesses of the transmission component are embodied so that each respective recess simultaneously accommodates one claw each of the pump element and the claw hub situated next to each other and these claws engage in the recesses of the transmission component. This does in fact achieve the advantage that while occupying the same amount of space for the claws and for the transmission component, significantly higher drive torques can be transmitted from the claw hub to the pump element, but so-called edge loads can occur, which produce stress concentrations at the lateral edges of the claw surfaces, which can lead to a premature material fatigue and a failure of the clutch unit.
The published, non-examined patent disclosure DE 39 43 299 A1 discloses another fuel injection pump of the type that defines the species, which has a clutch unit and is for an internal combustion engine, in which lubrication openings are provided inside the claw surfaces to allow the outlet of lubricating oil and during operation, lubricating oil lubricates the claw surfaces. This does in fact make it possible to achieve an extension of the service life, but this extension of the service life is based solely on a reduced abrasive wear. Even with an optimized lubrication, it is not possible to significantly reduce a fatigue wear in the material of the claw hub and of the pump element or even in the transmission component as a result of powerful compressions that can arise due to the presence of edge loads.
The published, non-examined patent disclosure DE 195 41 606 A1 discloses a fuel injection pump, which has a clutch unit and is for an internal combustion engine, in which the transmission component is embodied in the form a cross disk and includes roller elements provided to produce a rolling support between the claw surfaces of the claw hub and the pump element. This arrangement does in fact increase the wear resistance of the contact surfaces between the claw hub and the pump element, but this construction also turns out to be very expensive because the roller elements must be supported in each of the respective struts of the cross disk.
The object of the present invention, therefore, is to produce a fuel injection pump for an internal combustion engine, which has a clutch unit that permits a long service life while simultaneously permitting the transmission of powerful torques and at the same time having a simple structural embodiment.
This object is attained on the basis of a fuel injection pump for an internal combustion engine as recited in the preamble to claim 1, in combination with the defining characteristics of said claim. Advantageous modifications of the invention are disclosed in the dependent claims.
The invention includes the technical teaching that the claw surfaces are embodied with an outwardly curved, spherical surface in order to produce at least one definite zone of force introduction from the transmission component into the claw surface so that it is possible to reduce the stresses occurring in the claw due to the transmission of force. This results in the essential-to-the-invention advantage that through the introduction of spherical claw surfaces, the claws themselves and the cross disk are mainly stressed in a flexural fashion and the torsional stress is minimized. The geometry of the claws with correspondingly spherical claw surfaces achieves a stress reduction of up to 30%. In addition, the compression and therefore the wear between the claws and the transmission component are correspondingly reduced and improved since no edge loads occur. Edge loads are stress concentrations in boundary surfaces that can occur due to shape and position tolerances. These stress concentrations arise particularly at the throat between the claw and the body of the claw hub or pump element itself and can even lead to breakage of the claws. A spherical surface inside the claw surface achieves a definite force introduction so that the stress that occurs is introduced into the body of the claw in an optimal fashion, without the occurrence of stress concentrations, which can even cause the yield strength of the material to be reached.
Depending on the embodiment of the clutch unit, the transmission component can be embodied in the form of a cross disk so that the clutch unit is a cross-disk clutch. It is alternatively possible to embody the transmission component in the form of a spring plate so that the clutch unit is an Oldham clutch. In both clutch types, a transmission component is provided, which has either claws or spring elements that engage in grooves, which in turn are let into the claw hub and pump element. Even with a spring/groove connection, spherical regions can permit a stress introduction into the respective component surfaces, thus making it possible for the operating principle of avoiding edge loads to also be used with a spring/groove design.
According to another advantageous embodiment of the present invention, the outwardly curved, spherical surface of the claw surfaces corresponds to a section of a circumference surface of a cylinder so that a linear contact is produced between the claw surfaces and the transmission component. Alternatively, the outwardly curved, spherical surface of the claw surfaces can correspond to a section of a sphere so that a point contact is produced between the claw surfaces and the transmission component. With a linear contact between the claw surfaces and the transmission component, there is a higher load-carrying capacity than with a point contact, but a point contact has the advantage over a linear contact that shape and position tolerances can be compensated for in both the radial direction and the tangential direction. A grinding method is used to manufacture of the curved, spherical surface; it is also possible for the surfaces of the force introduction in the transmission component to likewise be spherically ground, provided that this is possible from a production engineering standpoint. The imaginary cylinder, whose circumference surface constitutes the outwardly curved, spherical surface of the claw surfaces, is oriented with its central axis orthogonal to the rotation axis of the claw hub and the pump element. This determines the direction in which the linear contact between the transmission component and the claw surfaces extends.
The spherical surface in the claw surfaces advantageously has a curvature radius R of 50 mm to 150 mm, preferably from 75 mm to 125 mm, and particularly preferably of 100 mm. The claw hub and the pump element of the pump unit each include two claws that extend in opposite directions oriented 180° apart from each other and constitute a respective claw pair. The claw pair of the claw hub and the claw pair of the pump element are offset from each other by 90° so that the transmission component fills the interstices that extend in the tangential direction between the claw pairs. The transmission component can be symmetrical so that the interstices between the claw pairs are likewise of equal dimensions.
According to another advantageous embodiment of the present invention, the claw hub and the pump element of the pump unit feature a steel material that includes the material 16MnCr5. The transmission component of the clutch unit is also advantageously composed of a steel material that includes the material 100Cr6. This steel material, which is generally known as a roller bearing material, has a high degree of purity and offers significant advantages in a material-removing machining.
The transmission component advantageously includes struts arranged in a star formation that are situated adjacent to the claw surfaces with a dimensional tolerance and the dimensional tolerance has a clearance of from 5 micrometers to 100 micrometers, preferably 25 micrometers to 75 micrometers, and particularly preferably 50 micrometers. This yields a slight clearance between the projections of the pump the transmission component, which are arranged in a star formation, and the respective claws so that no jamming or excessive compressions occur in the event of an offset between the central axes of the claw hub and the pump element and in the event of an angular offset.
According to another exemplary embodiment of the present invention, the claws have a throat at their transition into the base body of the claw hub and the pump element, with the outwardly curved, spherical surface of the claw surface extending the height of the claw, starting from the throat. The curvature of the claw surface extends with the curvature radius R to the outside of the claw, starting from the throat so that the linear contact is maintained even with an angular offset of the pump element in relation to the claw hub, only resulting in a shifting of the contact line between the claw and the support region of the transmission component.
Other measures that improve the invention, together with the description of the preferred exemplary embodiment of the invention, will be explained in greater detail below in conjunction with the drawings.
a is a perspective view of a pump element with a claw pair;
b is a perspective view of a claw hub with an associated claw pair;
a is an isometric view of a claw hub with a claw pair formed onto it, in which the outwardly curved, spherical claw surfaces are visible;
b is another view of the claw hub from
e is another view of the claw hub from
The clutch unit 1 shown in
a and 2b, respectively, show a perspective detail view of the pump element 11 and a perspective detail view of the claw hub 10. The two claws 13 that are offset from each other by 180° are shown on the pump element 11. Each claw 13 has a first and second claw surface 15, which are constituted by the surface of the element and are adjacent to the transmission component, see
In order to more precisely depict the claws 12 with the respective embodiments of the claw surfaces 15,
The embodiment of the invention is not limited to the preferred exemplary embodiment indicated above. Instead, there are a number of conceivable variants that make use of the embodiment depicted, even with fundamentally different embodiments.
Number | Date | Country | Kind |
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10 2006 037 176.3 | Aug 2006 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP07/56827 | 7/5/2007 | WO | 00 | 12/19/2008 |