The invention of the present application relates generally toward a filtration assembly for a diesel fuel system. More specifically, the invention of the present application relates toward an optimized configuration of a filter assembly for a diesel fuel system.
Diesel fuel engines have become increasingly complex to meet both mileage requirements and environmental standards. As such, diesel fuel being delivered to these highly technical engines is required to be both particulate-free, and substantially absent of water and air, all of which can reduce diesel fuel engine performance and durability.
Presently, diesel fuel is filtered using a cylindrical filter making use of a concentric filtration arrangement. A particulate filter that separates particulates from the diesel fuel is disposed within a tubular housing. A water separator, when included, is typically aligned in the central portion of the tubular housing in a concentric orientation relative to the filtration media. The water separator reduces the amount of water disposed in the diesel fuel prior to delivering diesel fuel to the diesel engine. During operation, diesel fuel passes through the particulate filter media and subsequently through the water filtration system formed from one or more concentric layers before exiting the cylindrical filter. Although this design has proved functional for many years, the can-like shape of the filter housing has become increasingly problematic. For example, decreasing packaging space for filtration systems within an engine compartment is driving alternative designs for filtration assemblies. Limited space between the filter media and the water separator does not provide sufficient diffusion of the water prior to separation, an arrangement that has not proved adequate with can-like shape filtration assemblies. Therefore, it would be desirable to provide an optimized design of a filtration assembly capable of meeting the demands of new, highly technical diesel engines.
The filtration assembly for filtering diesel fuel used by a diesel engine is disposed within the housing defining an unfiltered fuel inlet and a filtered fuel outlet. A filter element is disposed within the housing and receives fuel from the housing fuel inlet. The filter element defines a peripheral wall including a filter media sealably engaged within an inner surface of the peripheral wall. The filter media separates an unfiltered side from a filtered side of the filter element. The unfiltered side is enclosed with an impermeable barrier that is sealably affixed to the peripheral wall. The filtered side is covered with a permeable water diffuser allowing filtered fuel to pass through to an enclosure defined by the housing. A water separator assembly is disposed externally to the filter element and receives filtered fuel via the water diffuser. The water separator assembly includes water separator media for preventing water from passing into the separator. The separator assembly is interconnected to the filtered fuel outlet for providing filtered, dewatered diesel fuel to the diesel engine.
The assembly of the present invention solves a number of problems known to the prior art can-shaped diesel fuel filters. The filter element, and therefore the housing shape have a cuboid configuration providing a relatively flat filtration assembly. The flat filtration assembly is more easily packaged within architectural constraints of a modern diesel engine vehicle. Architectural constraints are defined by the engine, the engine compartment, the vehicle frame and the diesel fuel tank compartment. In addition, distancing the water separator from the filtration media and water diffuser provides a more functional and therefore enhanced water separation. Thus, diesel fuel having a low moisture content required of modern highly technical diesel engines can now be provided. Still further, with a reduced volume, additional filtration surface area is also achieved. The filtration media disposed within the filter element of the present invention extends in a linear manner providing the ability to include more filter media within the filter element than is possible of a can-shaped filter assembly where the filtration media must be compressed to a cylindrical configuration.
Other advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings:
Referring to
In the embodiment set forth above, the housing 12 includes an upper housing portion 14 and a lower housing portion 16. However, it should be understood to those of ordinary skill in the art that the housing 12 can take the form of a non-serviceable assembly 10 formed from a single housing element or two mating elements that are permanently affixed as will be explained further herein below.
A manifold 21 receives and evacuates diesel fuel from the housing 12. An unfiltered fuel inlet 22 is interconnected to the manifold 21 for delivering unfiltered fuel to the housing 12. A filtered fuel outlet 24 evacuates filtered fuel from the housing 12 and is interconnected with the diesel engine in a known manner.
Additionally, a manifold includes a recirculation inlet 23 and a recirculation outlet 25 that respectively receives and returns fuel to the fuel tank. The upper housing portion 14 and the lower housing portion 16 define a plurality of ribs that are configured to provide structural integrity to the housing 12. The ribs 17 present a web-like pattern that prevents the housing 12 from collapsing when a fuel pump (not shown) creates a negative pressure inside the housing 12 to extract diesel fuel from the diesel fuel tank. However, it should also be understood to those of ordinary skill in the art that the fuel pump could also be located to push fuel into the housing 12 creating a positive pressure inside the assembly 10.
A water outlet 30 is disposed in a bottom wall 32 of the lower housing portion 16. The water outlet 30 is configured as a slot at the base of an outlet member 31 extending upwardly from the bottom wall 32 into the lower housing portion 16. Alternatively, the outlet member extends downwardly or the outlet is defined by an aperture in the bottom wall 32. A valve cap 34 sealably engages a water outlet 30 for selective release of water filtered from the diesel fuel as will be explained further herein below. In addition, the valve cap 34 provides for draining fuel and water contained in the assembly 10 during service when disconnected or released from the water outlet 30.
Referring now to
A permeable water diffuser or barrier 46 is supported by a grid-shaped support feature 48. The grid-shaped support feature 48 is sealably affixed to the peripheral wall 42 over a second opening on an opposite side of the peripheral wall 42 from the first opening so that fluid exits the filter element 36 through the permeable barrier 44. While the intent is that all of the fuel exits the filter element 36 through the water diffuser 46, it is possible that some of the fuel leaks through the abutment between the peripheral wall 42 and the support feature 48. Therefore, as used herein, sealably affixed means a substantially sealed abutment or a partially sealed abutment. The support feature 48 and the impermeable barrier 44 are sealably affixed over opposing sides of the peripheral wall 42 by way of sonic welding, laser welding, adhesive, or the like so that a fluidly sealable joint is formed between the peripheral wall 42, the permeable barrier 44 and the support feature 48. Therefore, diesel fuel entering the filter element 36 may only exit the fuel element 36 though the permeable barrier 46.
As understood to those of ordinary skill in the art, moisture is prone to be disposed in diesel fuel, the content of which is detrimental to a diesel fuel engine. Therefore, it is desirable to remove moisture from the diesel fuel prior to transferring the diesel fuel from the fuel tank (not shown) to a diesel engine. As such, the permeable barrier 46 takes the form of a water diffuser capable of diffusing droplets of water disposed in diesel fuel flowing through the filter assembly 10. The water diffuser 46 is contemplated to take form of a coalescent felt or mesh. Alternatively, the water diffuser 46 includes a second hydrophobic mesh to that described below. As set forth above, because the support feature 48 is sealably affixed to the peripheral wall 42, diesel fuel may exit the filter element 36 through the permeable barrier 46.
The support feature 48 receives a conductive member 50 through a slot 52 as is best represented in
The filter media 56 is formed from an elongated filter paper including a plurality of fold 58 as best represented in
The filtered side 64 of the filter media 56 forms a filtered chamber 70 with the permeable barrier 46. Therefore, fuel passing through the filter media 56 from the unfiltered side 62 fills the filter chamber 70 and is evacuated from the filter chamber 70 through the permeable barrier 46. It should be understood by those of ordinary skill in the art that filtered fuel fills the housing 12 of the filtration assembly 10 after having passed through both the filter media 56 and the permeable barrier 46. As such, filtered diesel fuel fills a space 71 disposed between the filter element 36 and the housing 12.
Referring again to
Referring now to
A tube 86 extends downwardly into the tubular frame 80. The tube 86 includes a sealed portion 88 that seals to an upper flange 90 of the tubular frame 80. A sealing grommet 92 receives the sealed portion 88 of the tube 86. The grommet 92 seals to the filtered fuel outlet 24 in a manner that prevents diesel fuel containing water being evacuated from the filtration assembly 10 through the filtered fuel outlet 24. Therefore, to exit the filter assembly 10 through the filtered fuel outlet 24, fuel must first pass through the water separator 84 and enter a lower end 94 of the tube 86. The fuel then flows upwardly in the tube 86 and exits the filter assembly through the clean fuel outlet 24.
The filter assembly 10 is also configured to reduce, and even recirculate air trapped in the diesel fuel from entering the diesel engine through the filter assembly 10. As such, the tube 86 includes an upper air aperture 96 and a lower air aperture 98. The upper air aperture 96 includes a similar cross-sectional area as does the lower air aperture 98 to balance evacuation of air from the tube 86. Therefore, air entering the tube 86 is trapped between the upper air aperture 96 and the lower air aperture 98. In addition, the impermeable barrier 44 affixed to the peripheral wall 42 and the filter element 36 includes an air vent 100 located in an upper corner 102 to allow air to vent from the filter element 36. Therefore, while the impermeable barrier has been described herein above as being sealably affixed to the peripheral wall 42, it is possible that some diesel fuel will escape through the air vent 100.
Referring again to
The invention has been described herein in an illustrative manner, and it is to be understood that the terminology which has been used is intended to be in the nature of words of description rather than of limitation. Obviously, many modifications and variations of the invention are possible in light of the above teachings. The invention can be practiced otherwise than as specifically described within the scope of the appendant claims.
This application claims priority to U.S. Provisional Patent Application No. 62/215,332 filed Sep. 8, 2015, the contents of which are incorporated herein by reference.
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European Search Report dated Jan. 25, 2017, 6 pages. |
Number | Date | Country | |
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20170067426 A1 | Mar 2017 | US |
Number | Date | Country | |
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62215332 | Sep 2015 | US |