The present disclosure relates to an axially compact fuel filter, in particular a fuel filter with a recess outlet port.
According to aspects illustrated herein, there is provided a fuel filter, including: a housing, an inlet port, and an outlet port. The housing includes: a first axially disposed side wall forming a radially outermost portion of a circumference for the housing; a second axially disposed side wall located radially inward of the first axially disposed wall; a first radially disposed end wall connected to a first axial edge of the first axially disposed wall; and a second radially disposed end wall connected to a first axial edge of the second axially disposed side wall. The outlet port extends from the second radially disposed end wall and is radially aligned with the second axially disposed side wall. The inlet port extends from the first radially disposed end wall.
According to aspects illustrated herein, there is provided a fuel filter, including: a housing including a first axially disposed side wall forming a radially outermost portion of a circumference for the housing and a second axially disposed side wall located radially inward of the first axially disposed wall; a cavity enclosed by the housing and including a first portion enclosed, in a radial direction, by only the first axially disposed side wall and a second portion radially disposed between the first and second axially disposed side walls; an inlet port open to the cavity; and an outlet port open to the first portion of the cavity and including a distal end radially aligned with the second portion of the cavity.
According to aspects illustrated herein, there is provided a fuel filter, including: a housing including a first and second axially disposed side walls, a first radially disposed end wall directly connected to a first axial end of the first axially disposed side wall, a second radially disposed end wall directly connected to a first axial end of the second axially disposed side wall, and a third radially disposed end wall directly connected to respective second axial ends of the first and second axially disposed side walls; a cavity including a first portion at least partially bounded by the first and third radially disposed end walls and the first axially disposed side wall and a second portion open to the first portion and at least partially bounded by the first and second axially disposed side walls and the third radially disposed end wall; an outlet port open to the first portion of the cavity, and including a first end direction connected to the third radially disposed wall and a distal end radially aligned with the second portion of the cavity and with the first and second axially disposed side walls and separated from the second axially disposed wall, in a radial direction, by a space; an inlet port open to the first portion of the cavity and directly connected to the first radially disposed end wall; and a filter element including an axially extending portion including a first axial end sealed against the second axially disposed wall or the third radially disposed end wall and a radially extending portion directly connected to a second axial end of the axially extending portion and wholly disposed in the first portion of the cavity.
Various embodiments are disclosed, by way of example only, with reference to the accompanying schematic drawings in which corresponding reference symbols indicate corresponding parts, in which:
At the outset, it should be appreciated that like drawing numbers on different drawing views identify identical, or functionally similar, structural elements of the disclosure. It is to be understood that the disclosure as claimed is not limited to the disclosed aspects.
Furthermore, it is understood that this disclosure is not limited to the particular methodology, materials and modifications described and as such may, of course, vary. It is also understood that the terminology used herein is for the purpose of describing particular aspects only, and is not intended to limit the scope of the present disclosure.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood to one of ordinary skill in the art to which this disclosure belongs. It should be understood that any methods, devices or materials similar or equivalent to those described herein can be used in the practice or testing of the disclosure.
The adverbs “axially,” “radially,” and “circumferentially” are with respect to an orientation parallel to axis 81, radius 82, or circumference 83, respectively. The adverbs “axially,” “radially,” and “circumferentially” also are regarding orientation parallel to respective planes.
In an example embodiment, the outlet port includes axial end 114A directly connected the end wall 110 and distal end 114B radially aligned with side walls 104 and 106. In an example embodiment, an entirety of the outlet port is radially aligned with side walls 104 and 106 and is separated, in radial direction RD, from side wall 106 by space SP external to housing 102.
In an example embodiment, axial direction AD1 is from the inlet port toward the outlet port and the outlet port includes axial end 114A directly connected end wall 110, and distal end. Each of side walls 104 and 106 extends past distal end 114B in axial direction AD1.
Fuel filter 100 includes cavity 116 enclosed by the housing. In an example embodiment, axial direction AD1 is from the inlet port toward the outlet port and the outlet port includes axial end 114A directly connected end wall 110, and distal end 114B. Portion 116A of the cavity extends past distal end 114B axial direction AD1.
In an example embodiment, the housing includes radially disposed end wall 118 connecting axial end 104B, opposite axial end 104A, of side wall 104 to axial end 106B, opposite the axial end 106A, of side wall 106. For axial direction AD1 from the inlet port toward the outlet port, end wall 118 is located past distal end 114B in axial direction AD1.
In an example embodiment, portion 116A of the cavity is radially disposed between side walls 104 and 106. Portion 116B of the cavity is radially disposed between side wall 104 and is free of alignment, in radial direction RD, with side wall 106.
In an example embodiment, fuel filter 100 includes filter element 120, located within cavity 116, and including axially disposed wall 122 and radially disposed wall 124 connected to axially disposed wall 122. Wall 124 is located only in portion 116B. At least a portion of wall 122 is radially aligned with the outlet port. In an example embodiment, portion 122A of wall 122 is radially disposed between side walls 104 and 106 and portion 122B of axially disposed wall 122 is radially aligned with side wall 104 and free of alignment, in radial direction RD, with side wall 106.
In an example embodiment, portion 116G of cavity 116 is axially located end wall 108 and wall 124 of the filter element. In an example embodiment, end 122C of filter wall 122 is sealed against wall 106 and/or wall 118 to ensure that fluid entering cavity 116 from the inlet port passes through and not around filter 120. In an example embodiment, wall 106 includes stepped portion 106C and end 122C is sealed against the stepped portion and/or end wall 118. Typical fluid flow paths FP are shown in
In an example embodiment, end wall 108 is formed as a separate end cap including inlet port 112, and walls 104, 106, and 110 are part of an integral unit including outlet port 114.
The capacity or function of fuel filter 100 is at least partly dependent upon how much filter material is available for filter, which is at least partly dependent upon length 126 of element 120, which in turn is dependent upon axial length 128 of the housing. As discussed above, it is desirable to attain a specified filter capacity or function while minimizing overall axial length 120 of filter 100. Advantageously, by recessing outlet port 114 into space SP, filter 100 maximizes lengths 126 and length 128, while minimizing overall length 130 of filter 100. Specifically, outlet port 114 does not contribute to length 130. For example, lengths 126 and 128 can be made equal to lengths 216 and 214 noted above, with length 130 being advantageously less than length 212. Thus, the same or greater fuel filter capacity is enabled for filter 100 while minimizing overall axial length 130 of filter 100.
It will be appreciated that various of the above-disclosed and other features and functions, or alternatives thereof, may be desirably combined into many other different systems or applications. Various presently unforeseen or unanticipated alternatives, modifications, variations, or improvements therein may be subsequently made by those skilled in the art which are also intended to be encompassed by the following claims.