The invention relates to an electromagnetically actuatable inlet valve for a high-pressure pump, in particularly of a fuel injection system. The invention further relates to a high-pressure pump having such an inlet valve.
An electromagnetically actuatable inlet valve for a high-pressure pump of a fuel injection system is disclosed by DE 10 2013 220 593 A1. The high-pressure pump comprises at least one pump element having a pump piston, which is driven in a reciprocating motion and which defines a pump working chamber. The pump working chamber can be connected to a fuel inlet via the inlet valve. The inlet valve comprises a valve member, which for control interacts with a valve seat and which is movable between an open position and a closed position. In its closed position the valve member comes to bear on the valve seat. The inlet valve further comprises an electromagnetic actuator, which serves to move the valve member. The electromagnetic actuator comprises an armature acting at least indirectly on the valve member, a solenoid coil surrounding the armature, and a magnetic core. The armature is displaceably guided in a carrier element, wherein the carrier element and the magnetic core are connected to one another. When the solenoid coil is energized, the armature is moveable in opposition to the force of a return spring and comes to bear at least indirectly on the magnetic core. When the armature strikes the magnetic core, this can impose large stresses on both of these components and on the connection between the carrier element and the magnetic core, which over a prolonged service life may lead to damaging of the connection between the magnetic core and the carrier element, which can adversely affect the ability of the inlet valve to function. The magnetic core may be connected to the carrier element by means of a sleeve, for example, which is welded to the two components. The magnetic core and the carrier element are enclosed by a housing, which may be of multipart design, and the connection between these components is arranged in an interior space of the housing. In operation, moisture can get into the interior space, which can result in corrosion to the connection of the magnetic core and the carrier element, thereby in particular reducing the load-bearing capacity of the welded connections. As a result, the connection between the magnetic core and the carrier element may become detached, so that the ability of inlet valve to function is no longer assured.
The inlet valve according to the invention and the high-pressure pump according to the invention by contrast have the advantage that the seal between a magnet sleeve of the inlet valve and a cylinder head of the high-pressure pump prevents moisture getting into the interior space and therefore permanently ensures the ability of the inlet valve to function.
The fact that at least one elastically and/or plastically deformable contour, which bears on the opposing part of the cylinder head of the high-pressure pump, forming a seal, is arranged on the magnet sleeve advantageously allows additional sealing components to be dispensed with.
In all embodiments the contour is integrally formed on the magnet sleeve, advantageously obviating the need for any additional sealing elements.
Furthermore, the seal is formed by the contour of the magnet sleeve together with a sealing face of the cylinder head, so that existing components advantageously form the seal.
In one embodiment the contour of the magnet sleeve takes the form of a sharp edge, acting together with the sealing face of the cylinder head to produce an advantageous seal.
In a further embodiment the contour of the magnet sleeve takes the form of a projecting, elastically resilient collar, acting together with the sealing face of the cylinder head to produce an advantageous seal.
In a further embodiment the contour of the magnet sleeve is of spherical formation, acting together with the sealing face of the cylinder head to produce an advantageous seal.
The contour is furthermore designed as a self-contained ring enclosing the interior space, advantageously ensuring a seal over the entire circumference of the magnet sleeve.
The magnet sleeve is advantageously composed of a metallic material, affording an external seal against liquid media by means of a metallic sealing principle without any additional components.
In a development of the invention the magnet sleeve can be affixed to the cylinder head of the high-pressure pump by means of a fastening element, and in affixing the magnet sleeve by means of the fastening element a pretension is applied to the seal, thereby advantageously achieving a secure seal between the magnet sleeve and the sealing face of the cylinder head of the high-pressure pump.
Further advantages emerge from the drawing and the description.
Several exemplary embodiments of the invention are described in more detail below, referring to the drawing attached, in which:
In the cylinder head 16 of the high-pressure pump, as shown in
In a portion adjoining the valve seat 40 the passage 32 has a larger diameter than in its portion guiding the stem 36 of the valve member 34, so that an annular space 44 is formed surrounding the stem 36 of the valve member 34. Opening into the annular space 44 are one or more inlet bores 46, which on the other side leads to the outside of the cylinder head 16.
On the side of the cylinder head 16 remote from the pump working chamber 18, the stem 36 of the valve member 34 protrudes out of the passage 32 and affixed to this is a support element 48. Supported on the support element 48 is a valve spring 50, which is supported on the other side on an area of the cylinder head 16 surrounding the stem 36 of the valve member 34. In an actuating direction A, the valve spring 50 acts on the valve member 34 in its closing direction, the valve member 34 in its closed position bearing with its sealing face 42 against the valve seat 40. The valve spring takes the form, for example, of a helical compression spring.
The inlet valve 24 can be actuated by an electromagnetic actuator 60, which is represented, in particular, in
The armature 68 is at least substantially of cylindrical formation and is displaceably guided by its outer casing in a bore 76 in a carrier element 78 arranged in the housing 70. The bore 76 in the carrier element 78 runs at least approximately coaxially with the passage 32 in the cylinder head 16 and hence coaxially with the valve member 34. The carrier element 78 has a cylindrical external shape in its end area 77 remote from the cylinder head 16. The magnetic core 66 is arranged in the housing 70 on the side of the carrier element 78 remote from the cylinder head 16 and has a cylindrical external shape.
The armature 68 has a central bore 80, which is arranged at least approximately coaxially with the longitudinal axis of the armature 68 and into which a return spring 82 projects, which is arranged on the side of the armature 68 remote from the valve member 34 and is supported on the armature 68. At its other end the return spring 82 is at least indirectly supported on the magnetic core 66, which has a central bore 84, into which the return spring 82 projects. A support element for the return spring 82 can be inserted, for example pressed, into the bore 84 of the armature 66. An intermediate element 86, which may take the form of an anchor bolt, is inserted into the central bore 80 of the armature 68. The anchor bolt 86 is preferably pressed into the bore 80 of the armature 68. In the bore 80 the return spring 80 may also be supported on the anchor bolt 86. The armature 68 may have one or more passages 67.
An annular shoulder 88, which serves to limit the movement of the armature 68 towards the inlet valve 24, is formed in the bore 76 by a reduction in diameter between the armature 68 and the inlet valve 24. If the housing 70 is not yet fixed to the cylinder head 16 of the high-pressure pump, the annular shoulder 88 secures the armature 68 and prevents it from falling out of the bore 76. A washer 89 may be arranged between the annular shoulder 88 and the armature 68.
The carrier element 78 and the magnetic core 66 are connected to one another by means of a sleeve-shaped connecting element 90. The connecting element 90 here is arranged with its one axial end area on the cylindrical portion 77 of the carrier element 78 and connected to the latter, and with its other axial end area is arranged on the cylindrical magnetic core 66 and connected to this. The connecting element 90 is connected to the carrier element 78 and the magnetic core 66 by a cohesive material joint, for example, in particular welded thereto. The connecting element 90 is arranged in an interior space 91 of the housing 70 situated inside the coil carrier 71. When the solenoid coil 64 is energized, the armature 68 is drawn towards the magnetic core 66 in opposition to the force of the return spring 82 and comes to bear at least indirectly on the magnetic core 66.
Together with the carrier element 78 the magnetic core 66 forms a pre-assembled unit, which after manufacture of the housing 70 is inserted into the interior space 91. In its end area remote from the cylinder head 16 of the high-pressure pump the carrier element 78 has a flange-shaped portion 79 of larger diameter than the cylindrical portion 77. The flange-shaped portion 79 rests on the outside of the cylinder head 16 of the high-pressure pump, and on the side of the flange-shaped portion 79 remote from the cylinder head 16 the housing 70 and/or the coil carrier 71 bears on this. It is proposed according to the invention that a seal 92, 94, 96 be provided between the magnet sleeve 69 and the cylinder head 16 which serves to seal the interior space 91 of the housing 69, 70, 71 off from the outside of the housing 69, 70, 71, so that moisture cannot get into the latter.
In a first exemplary embodiment represented in
An elastically and/or plastically deformable contour 92, which bears on the opposing part of the cylinder head 16 of the high-pressure pump to form a seal, is arranged on the magnet sleeve 69, the contour 92 being integrally formed on the magnetic sleeve 69. The magnet sleeve 68 and therefore also the contour 92 are composed of a metallic material.
The contour 92 of the magnet sleeve 69 together with a sealing face 100 on the collar 74 of the cylinder head 16 forms the seal 92, the contour 92 taking the form of a self-contained ring enclosing the interior space 91.
In affixing the magnet sleeve 69 to the cylinder head 16 of the high-pressure pump by means of the threaded ring 72, a pretension is applied to the seal 92, the contour 92 being elastically and/or plastically compressed and a secure sealing of the interior space 91 therefore being achieved.
In the assembly process a contact face is likewise produced between the magnet sleeve 69 and the carrier element 78, which provides for an assured magnetic flux of the inlet valve 24.
Number | Date | Country | Kind |
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10 2016 220 364.9 | Oct 2016 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/076471 | 10/17/2017 | WO | 00 |