The present invention generally relates to a compact eccentric opposed pump, and more particularly, to an opposed pump having offset pumping elements to lighten torque load on a camshaft.
High-pressure fuel pumps are common components of fuel systems for internal combustion engines, especially in diesel engines. High-pressure pumps often receive fuel from a low-pressure system before entering a common rail and ultimately the engine via fuel injectors. The fuel is then compressed and exits the pump. Each of these actions are initiated through movement of a plunger controlled by rotation of a camshaft. For example, in high-pressure pumps, fuel is drawn through a fuel inlet as the plunger is lowered relative to a respective barrel containing the plunger. When the plunger then moves upwards, the fuel is compressed, increasing the pressure of the fuel. The fuel then exits the pump to enter the common rail or another fuel system component.
Typically, fuel pumps are created by drilling bores into a monolithic block to create pumping units in a linear arrangement, which has cost and manufacturing challenges. Significant cost savings and replacement ease can be achieved using modular barrel units which can be used across a number of fuel pump types, as well as by using lightweight; non-load-bearing housing. Furthermore, a space-saving fuel pump may be more easily used across engine sizes and types.
The present disclosure provides a high-pressure fuel pump having barrel sets comprising offset, opposing barrel units within the same plane and having plungers disposed therein. The high-pressure fuel pump further includes a camshaft having at least one offset lobe and a cam ring encircling the lobe and in contact with the plungers, which translate the rotational movement of the camshaft to longitudinal movement of the plungers, controlling inflow, compression, and outflow of fuel within the pump.
In an exemplary embodiment of the present disclosure, a high-pressure pump is disclosed. The high-pressure pump comprises: a housing; a camshaft assembly disposed through the housing and having an offset lobe and a cam ring encircling the offset lobe; a first barrel unit disposed on a first side of the housing, the first barrel unit having a first axis; and a second barrel unit disposed on a second side of the housing opposite from the first side, wherein the first barrel unit and the second barrel unit are positioned within a first common plane. The second barrel unit has a second axis offset from the first axis.
The high-pressure pump may further comprise a first plunger disposed within the first barrel unit corresponding with the first axis and a second plunger disposed within the second barrel unit corresponding with the second axis, the first plunger and the second plunger in contact with the cam ring of the camshaft assembly. The high-pressure pump may further comprise a first spring positioned around the first plunger configured to bias the first plunger toward the camshaft assembly and a second spring positioned around the second plunger configured to bias the second plunger toward the camshaft assembly.
The high-pressure pump may further comprise a third barrel unit disposed on a third side of the housing, the third barrel unit having a third axis, and a fourth barrel unit disposed on a fourth side of the housing opposite from the third side, the fourth barrel unit having a fourth axis, wherein the third barrel unit and the fourth barrel unit are positioned within a second common plane and the third axis is offset form the fourth axis. The first barrel unit, the second barrel unit, the third barrel unit, and the fourth barrel unit may be equally disposed around a perimeter of the housing.
In another exemplary embodiment of the present disclosure, a high-pressure pump is disclosed. The high-pressure pump comprises: a housing; a camshaft assembly disposed through the housing, the camshaft having a centerline point, an offset lobe, and a cam ring encircling the offset lobe; a first barrel unit disposed on a first side of the housing, the first barrel unit having a first axis; and a second barrel unit disposed on a second side of the housing opposite from the first side, the second barrel unit having a second axis, the first axis and the second axis offset form the centerline point of the camshaft assembly.
The first axis and the second axis may be offset from each other. The first barrel unit and the second barrel unit may be modular barrel units, and the pump may further comprise any one of a passive inlet metering valve, an active inlet metering valve, and a hybrid active inlet metering valve.
The high-pressure pump may further comprise a third barrel unit disposed on a third side of the housing, the third barrel unit having a third axis; and a fourth barrel unit disposed on a fourth side of the housing opposite from the third side, the fourth barrel unit having a fourth axis. The third axis and the fourth axis may be offset from the centerline point of the camshaft assembly. The first barrel unit and the second barrel unit may be in a first common plane and the third barrel unit and the second barrel unit may be in a second common plane.
In yet another exemplary embodiment of the present disclosure, a high-pressure pump is disclosed. The high-pressure pump comprises: a housing, a camshaft assembly disposed through the housing, the camshaft assembly having an offset lobe and a cam ring encircling the offset lobe; a first modular barrel unit coupled to a first side of the housing; and any one of a passive inlet metering valve, an active inlet metering valve, and a hybrid active inlet metering valve.
The high-pressure pump may further comprise a second modular barrel unit coupled to the housing on a second side of the housing opposite from the first side, wherein the first modular barrel unit and the second modular barrel unit are positioned within a first common plane. The high-pressure pump may further comprise a third modular barrel unit coupled to the housing on a third side of the housing and a fourth modular barrel unit coupled to the housing on a fourth side of the housing opposite from the third side, the third modular barrel unit and the second modular barrel unit positioned within a second common plane.
The high-pressure pump may further comprise a plunger disposed within the modular barrel unit and in contact with the camshaft, wherein the plunger contacts the cam ring of the camshaft assembly at a point offset from a centerline point of the camshaft.
In yet another exemplary embodiment of the present disclosure, a modular barrel unit is disclosed. The modular barrel unit comprises a module body defining: a first opening configured to receive an inlet valve of at least one of a passive inlet metering valve, an active inlet metering valve, and a hybrid active inlet metering valve; a second opening configured to receive a plunger; a channel configured to house an outlet check valve; and a modular pathway configured to align with at least one fuel pathway of a high-pressure fuel pump. The modular barrel unit further comprises a plunger disposed within the second opening and an outlet check valve disposed within the channel.
Additional features and advantages of the present disclosure will become apparent to those skilled in the art upon consideration of the following detailed description of the illustrative embodiments exemplifying the disclosure as presently perceived.
The detailed description of the drawings particularly refers to the accompanying figures in which:
Corresponding reference characters indicate corresponding parts throughout the several views. Although the drawings represent embodiments of various features and components according to the present disclosure, the drawings are not necessarily to scale and certain features may be exaggerated in order to better illustrate and explain the present disclosure. The exemplification set out herein illustrates an embodiment of the invention, and such an exemplification is not to be construed as limiting the scope of the invention in any manner.
Referring initially to
For example, referring to
A camshaft assembly 110 is disposed through the housing 104 and is configured to rotate about an axis A; the camshaft includes at least one offset lobe 114 discussed further herein and a cam ring 112 encircling the at least one offset lobe 114. The cam ring 112 contacts a foot 107 of each of the plungers 108 either directly or indirectly via a shim or puck. A spring 116a or 116b may be included within the respective barrel 106 and disposed around the respective plunger 108 to bias the plungers 108 toward the camshaft assembly 110. As the camshaft assembly 110 rotates, the feet 107 of the respective plungers 108 follow the movement of the cam ring 112 and the lobe 114 to transfer the rotational movement of the camshaft to longitudinally movement of the plungers 108 within their respective barrels 106 along axis B, which may be positioned generally perpendicular to axis A. In other words, the axis B corresponds with both the barrel 106 and its respective plunger 108. Typically, center axes of the barrels discussed herein correspond with the center axes of the corresponding plungers.
The fuel is metered via active or passive inlet metering valves to control the inlet flow of fuel from a source such as a low pressure pump (not shown). The movement of each of the plunger 108 within each respective barrel 106 is translated to compression of the fuel within the pump 100 and outflow of the compressed fuel to the remainder of the fuel system of the engine (not shown). In an ideal embodiment discussed further herein, each barrel 106 has a unique axis offset from a unique axis of another barrel 106, each of the axes positioned generally perpendicular to axis A. In other words, as the plungers 108 follow the movement of the camshaft assembly 110, the bias from the springs 116 may be overcome to allow the plungers 108 to move within their respective barrels 106. As the plunger 108 moves in a direction generally away from the camshaft assembly 110, it interacts with the respective active or passive inlet metering valve system 102 to control the pumping of fuel for engine operation.
Now referring to
Notably, the high-pressure pump 100 of
Now referring to
The ability of the modular barrel unit and camshaft arrangement 101 to be utilized among various types of pumps 100 is mentioned above in relation to
For example, the active inlet metering valve 102c includes an armature 300c that is disposed directly on a barrel post 302 of the modular barrel unit 106. However, for the hybrid active inlet metering valve 102d, the armature 300d, spring 304, spring retainer 306 and other components of the valve 102d are reused, which results in a taller overall structure for the high-pressure pump 100d relative to the high-pressure pump 100c having the active inlet metering valve 102c, as can be seen by comparing
As illustrated in
While the invention has been described by reference to various specific embodiments it should be understood that numerous changes may be made within the spirit and scope of the inventive concepts described, accordingly, it is intended that the invention not be limited to the described embodiments but will have full scope defined by the language of the following claims.
Filing Document | Filing Date | Country | Kind |
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PCT/US20/21950 | 3/11/2020 | WO |