The present invention relates to a fuel pump for an internal combustion engine, and in particular to a plunger assembly for a pump head for a high pressure fuel injection system such as a diesel fuel injection system.
Known fuel pumps for high pressure fuel injection systems, such as a common rail diesel application, typically comprise a pump head and a plunger which is reciprocally moveable within a bore thereby to establish a pressure difference. To ensure the necessary pressure difference is achieved, a sealing length is provided, comprising a minimal clearance between the plunger and bore. The sealing length and the clearance between the plunger and bore are two factors which define the volumetric efficiency (VE) of the pump.
To ensure that OEMs can meet CO2 efficiency targets, fuel injection systems are running at higher pressures. A known problem of pump heads running at enhanced pressures is a reduction in the VE of the pump head.
An example of a known hydraulic pump head is illustrated in
The pump head 2 illustrated in
Due to the configuration of the outlet port 80 in the prior art pump 2, a chamber or annulus 42 is provided which opens above the plunger guiding length. The annulus 42 ensures that the fuel pumped by the plunger is not restricted.
Current hydraulic pump head design has been constrained by several factors, such as:
The prior art pump head design as discussed above exhibits a reduction in VE at higher pressures. An increase in clearance between the plunger and the bore while operating at elevated pressures results in an increased leakage.
A further known pump head design, suitable for use in heavy duty applications, is partially illustrated in
The plunger 206, which is reciprocally movable within a barrel 266, is provided with an internal central drilling 248. A recess 264 is provided in the plunger 206, leaving a full diameter section 268 at the top end of the plunger 206, which has a tight clearance with the bore 208. Sealing is provided by this tight clearance; sealing may be over a relatively short length, such as 2mm. A relatively short sealing length reduces the necessary depth of the drilling 248, thereby reducing dead volume.
The known pump head of
It is an object of the present invention to provide an improved plunger assembly for a high pressure pump head.
Accordingly the present invention provides, in a first aspect, a plunger assembly according to claim 1.
The present invention enables an efficient plunger design to be integrated into different hydraulic pump head designs, for example with different configurations of outlet valve, without incurring a significant dead volume penalty.
The first section of the plunger assembly may comprise an expanding zone wherein, during use of the pump head, the expanding zone is caused to expand by fuel pressure within the clearance and thereby form a zone of minimum clearance between the first section and the bore.
The internal portion of the plunger assembly which is subjected to a pumping fuel pressure may comprise an internal drilling, and a clearance between the first section and the second section, wherein the internal drilling opens at a first end remote from the second section of the plunger assembly onto the chamber, and opens at a second end onto the clearance.
The pressure reducing feature may comprise a radial recess which extends over portions of outer diameters of the first section and the second section of the plunger assembly and which, during use of the pump head is exposed to a fuel feed, cambox or return line fuel pressure.
The pressure reducing feature may alternatively comprise axial grooves.
In one embodiment, an extension section of the second section of the plunger assembly is retained within a recess provided in the first section by an interference fit along an interference zone between the extension section and an annular wall section which circumferentially defines the recess.
The present invention further comprises a pump head for a high pressure fuel pump for a vehicle, comprising a plunger assembly as described above.
The present invention is now described by way of example with reference to the accompanying drawings in which:
An embodiment of the present invention is described below in relation to the orientation of the figures. Terms such as upper, lower, above, below, top and bottom are not intended to be limiting.
Referring to
A plunger assembly 106 is located within the bore 108. A chamber, or annulus 142 (indicated on
The plunger assembly 106 is reciprocally movable within the bore 108 along the longitudinal axis A, by force transferred from a cam arrangement (not shown) to a second, lower end 162 of the plunger assembly 106.
The plunger assembly 106 is guided within the bore by guidance zones 136, 138 (both indicated on
The plunger assembly 106 comprises two parts; a first, upper section, 110 and a second, lower section 120. An extension section 122 of the second, lower section 120 extends into a recess 112 (indicated in
The first, upper section 110 and the second, lower section 120 are retained together by a retaining means, which in the embodiment illustrated in
Between an end 124 (indicated in
A central drilling 116 is provided in the first, upper section 110 of the plunger assembly 106, axially along a longitudinal axis A of the plunger assembly 106. The axial drilling 116 opens at a first, upper end 152 (remote from the second section 120 of plunger assembly 106), to an annulus 142 provided in the bore 108 of the housing 104; the annulus 142 ensures that the pumped fuel is not restricted.
The central drilling 116 opens at a second, lower end 154 (remote from the first end 152), onto the clearance 140 between the base 150 of the recess 112 of the first section 110 and the end 124 of the extension section 122 of the second section 120.
A pressure reducing feature comprising, which in the present embodiment comprises a radial recess 126 (indicated on
During use of the pump head 102, the annulus 142 is exposed to pumping pressure, and therefore, an internal space of the plunger assembly 106, comprising the internal drilling 116 in the first section 110, and the clearance 140 between the first section 110 and the second section 120, are also open to pumping pressure.
A pressure gradient, indicated by arrows P on
The pressure gradient P causes a radial inward force to be applied to the first section 110 of the plunger assembly 106, above the first, upper edge 196 of the radial recess 126; the inward force decreases with the pressure gradient moving towards the upper edge 196 of the radial recess 126.
High fuel pressure within the clearance 140 causes a radial outward force to be applied to part of the annular wall section 114 above the interference zone 130.
As a result of the radial inward and outward forces being applied to the first section 110, deformation of the first section 110 varies along the outer wall 190. Accordingly, clearance between the outer wall 190 of first section 110 and the bore 108 varies, generally decreasing moving downwardly in the orientation of the figures. In particular, the expanding zone 134 of the wall section 114 forms a minimum clearance zone 192 (indicated generally on
Sealing across the plunger assembly 106 is provided by the reduced clearance between the first section 110 of the plunger assembly 106 and the bore 108; the sealing maintains the required pressure difference between the first, upper end 160 of the plunger assembly and the first, upper edge 196 of the radial plunger recess 126.
The stiffness of the expanding zone 134 of the first section of the plunger can be optimised to seal at different pump head pressures as required.
Furthermore, the position of the expanding zone 134 can be selected to ensure that the guidance zones 136, 138, are of sufficient length to support radial side loads encountered during use of the pump head 104.
If the internal drilling of the prior art plunger of
The depth of the recess 112 in the first section 110, and accordingly the length of the extension section 122 of the second section 120, could be increased to suit manufacturing requirements, for example a deeper recess 112 would ease manufacture of the internal drilling 116.
Furthermore, the form of the extension section 122 of the second section 120, and that of the recess 112 of the first section 110, may be different to those illustrated in the Figures.
Although in the embodiment described above, the pressure reducing feature comprises a radial recess 126, in alternative embodiments, an alternative pressure reducing feature could be provided, such as axial grooves, or any other feature which reduces the pressure towards the lower end of the plunger assembly 106, remote from the annulus 142.
Prior art
pump head 2
pump housing 4
plunger 6
bore 8
turret portion 10
annulus 42
inlet valve arrangement 70
outlet valve arrangement 80
plunger 206
bore 208
central drilling 248
recess 264
barrel 266
full diameter section 268
Invention
pump head 102
pump housing 104
plunger assembly 106
bore 108
plunger first, upper section 110
plunger first section recess 112
first section annular wall section 114
first section central drilling 116
plunger second, lower section 120
plunger second section extension section 122
extension section end 124
plunger radial recess 126
interference zone 130
flexible portion (of first section) 134
guidance zones 136, 138
clearance 140
bore annulus/pumping chamber 142
first section recess base 150
axial drilling first, upper end 152
axial drilling second, lower end 154
plunger first, upper end 160
plunger second, lower end 162
inlet valve arrangement 170
outlet valve arrangement 180
first section outer wall 190
minimum clearance zone 192
first, upper edge of radial recess 196
longitudinal axis A
pressure gradient P
Number | Date | Country | Kind |
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1501282.6 | Jan 2015 | GB | national |
This application is a national stage application under 35 USC 371 of PCT Application No. PCT/EP2015/078413 having an international filing date of Dec. 2, 2015, which is designated in the United States and which claimed the benefit of GB Patent Application No. 1501282.6 filed on Jan. 27, 2015, the entire disclosures of each are hereby incorporated by reference in their entirety.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2015/078413 | 12/2/2015 | WO | 00 |