Filter arrangement

Information

  • Patent Grant
  • 6495032
  • Patent Number
    6,495,032
  • Date Filed
    Wednesday, February 14, 2001
    23 years ago
  • Date Issued
    Tuesday, December 17, 2002
    22 years ago
Abstract
A filter arrangement for use with a vessel that receives fluid includes a body engageable with the vessel. The body has an inlet port, an outlet port, a body cavity, a first fluid path disposed between the inlet port and body cavity, and a second fluid path disposed between the body cavity and the outlet port. A filter is disposed at least partially in the body cavity, and includes a filter cavity and filter media for filtering the fluid. A valve is associated with the body for allowing the fluid to flow into and out of the vessel. When the fluid flows into the vessel, the fluid flows through the filter cavity and along the first fluid path without flowing through the filter media. When the fluid flows out of the vessel, the fluid flows along the first fluid path, through the filter media and along the second fluid path.
Description




BACKGROUND OF THE INVENTION




1. Field of the Invention




The invention relates to a filter arrangement for use with a vessel that is configured to receive fluid, and the arrangement includes a particle filter having filter media that can be bypassed when the vessel is being filled.




2. Background Art




Particle filters are used in fuel systems to remove particles, such as dirt and/or metal particles, from fuel that is supplied to an engine. In one known fuel system, a particle filter is located downstream of a vessel or cylinder containing compressed fuel, such as natural gas, and upstream of a pressure regulator that regulates pressure of the fuel supplied to an engine. The fuel system also includes a cylinder valve mounted on the cylinder for controlling flow of fuel out of the cylinder. The fuel system may also include additional cylinders connected in series, and additional cylinder valves connected to the additional cylinders.




While such a system is effective, it is desirable to provide a simplified system in which multiple components are combined together and are disposed proximate a particular cylinder.




SUMMARY OF THE INVENTION




Under the invention, a filter arrangement is provided for use with a vessel configured to receive fluid. The filter arrangement includes a body engageable with the vessel and having an inlet port, an outlet port, a body cavity, a first fluid path disposed between the inlet port and the body cavity, and a second fluid path disposed between the body cavity and the outlet port. The filter arrangement further comprises an additional inlet port in fluid communication with the body cavity for receiving fluid from a fluid source. For example, the additional inlet port may receive fluid from one or more additional vessels. A filter is disposed at least partially in the body cavity, and the filter defines a filter cavity. The filter further includes filter media for filtering the fluid. Advantageously, the filter may be used to filter fluid from such additional vessels. A valve is associated with the body for allowing the fluid to flow into the vessel and out of the vessel. When the fluid flows into the vessel, the fluid flows through the filter cavity and along the first fluid path without flowing through the filter media. When the fluid flows out of the vessel, the fluid flows along the first fluid path, through the filter media and along the second fluid path.




Advantageously then, the filter arrangement is configured such that the filter media can be bypassed during a vessel filling operation. As a result, the flow of fluid is not restricted by the filter during such a filling operation.




In one embodiment of the invention, the filter arrangement further includes a pressure regulating device disposed in the body for regulating pressure of the fluid. Such a pressure regulating device may also be used to regulate pressure of fluid provided by other fluid sources.




Further under the invention, a system for filtering fluid is provided. The system comprises a vessel for receiving fluid, and a body engaged with the vessel. The body has an inlet port, an outlet port, a body cavity, a first fluid path disposed between the body cavity and the inlet port, and a second fluid path disposed between the body cavity and the outlet port. A filter is disposed at least partially in the body cavity, and the filter defines a filter cavity. The filter further includes filter media for filtering the fluid. A valve is associated with the body for allowing the fluid to flow into the vessel and out of the vessel. When the fluid flows into the vessel, the fluid flows through the filter cavity and along the first fluid path without flowing through the filter media. When the fluid flows out of the vessel, the fluid flows along the first fluid path, through the filter media and along the second fluid path.




These and other objects, features and advantages of the invention are readily apparent from the following detailed description of the best modes for carrying out the invention, when taken in conjunction with the accompanying drawings.











BRIEF DESCRIPTION OF THE DRAWINGS





FIG. 1

is an end view of a system according to the invention for supplying filtered fuel to an engine, and the system includes first, second and third cylinders connected together, and a filter arrangement connected to the third cylinder;





FIG. 2

is a fragmentary side view of the third cylinder and filter arrangement, with the third cylinder shown in section;





FIG. 3

is an end view of the filter arrangement;





FIG. 4

is a cross-sectional view of the filter arrangement taken along line


4





4


of

FIG. 3

, wherein the filter arrangement includes a pressure regulator and a supply valve connected to the pressure regulator;





FIG. 5

is a cross-sectional view of the filter arrangement taken along line


5





5


of

FIG. 2

;





FIG. 6

is a cross-sectional view of the filter arrangement taken along line


6





6


of

FIG. 3

;





FIG. 7

is a cross-sectional view of the filter arrangement taken along line


7





7


of

FIG. 2

;





FIG. 8

is a schematic view of the third cylinder and filter arrangement; and





FIG. 9

is a schematic diagram of the third cylinder and filter arrangement.











DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)





FIG. 1

shows a system


10


according to the invention for supplying filtered fluid for a particular application. In a preferred embodiment, the system


10


supplies filtered fuel to an engine


11


of a vehicle or other engine operated equipment. Alternatively, the system


10


may be used to filter any suitable fluid, such as carbon dioxide, oxygen, or other commercial gases.




The system


10


includes one or more vessels, such as tanks or cylinders, that are preferably configured to receive pressurized fuel, such as compressed natural gas, hydrogen, or other fuel. In the embodiment shown in FIG.


1


, the system


10


includes first, second and third cylinders


12


,


14


and


16


, respectively, that are made of any suitable material such as steel, aluminum and/or fiber reinforced plastic. The cylinders


12


,


14


and


16


may be filled using a fill receptacle


18


, which is connected to the cylinders


12


,


14


and


16


with first, second and third high pressure lines


20


,


22


and


24


, respectively.




The system


10


further includes two cylinder valves


26


, with one cylinder valve


26


being connected to the first cylinder


12


, and the other cylinder valve


26


being connected to the second cylinder


14


. Each cylinder valve


26


includes an inlet port


28


, an outlet port


30


, a thermally activated pressure relief device


32


, a manual valve


34


for isolating a respective cylinder


12


or


14


from corresponding ports


28


and


30


, and a supply valve such as a high pressure solenoid-operated valve (not shown) that is preferably disposed inside a respective cylinder


12


or


14


. The ports


28


and


30


of each cylinder valve


26


allow fuel to flow straight through each cylinder valve


26


, and also allow fuel to flow into and out of a respective cylinder


12


or


14


. In order for fuel to flow into or out of a respective cylinder


12


or


14


and through a corresponding port


28


or


30


, the corresponding manual valve


34


must be open. Furthermore, when the system


10


is supplying fuel to the engine


11


, one or both of the solenoid-operated valves (not shown) may be energized so as to open the solenoid-operated valves and allow fuel to flow out of one or both of the cylinders


12


and


14


. During a filling operation, the solenoid-operated valves preferably act as check valves that are forced open by the fuel even if the solenoid-operated valves are de-energized.




The system


10


also includes a filter arrangement


36


connected to the third cylinder


16


. Referring to

FIGS. 1 and 2

, the filter arrangement


36


includes a pressure regulator


38


and a supply valve


40


connected to the pressure regulator


38


. The pressure regulator


38


regulates outlet pressure of the third cylinder


16


, as well as the pressure of fuel supplied by the first and second cylinders


12


and


14


, respectively, and includes a body


42


threadingly engaged with a neck


44


of the third cylinder


16


.




Referring to

FIGS. 2-8

, the body


42


includes first and second inlet ports


46


and


48


, respectively, a body cavity


50


, an outlet port


51


, a first fluid path


52


extending between the first inlet port


46


and the body cavity


50


, and a second fluid path


54


extending between the body cavity


50


and the outlet port


51


. These features are most clearly shown in

FIG. 8

, which is a schematic view of the filter arrangement


36


shown in

FIGS. 2 through 7

. It should be understood that inlet port


48


may form part of body cavity


50


, or inlet port


48


may be separate from body cavity


50


.




Referring to

FIGS. 4

,


5


and


8


, the first fluid path


52


includes a first passage


56


disposed adjacent the body cavity


50


and having a first passage axis


58


. The first fluid path


52


may further include additional passages, such as passage


59


, disposed between the first inlet


46


and the first passage


56


. Alternatively, the first fluid path


52


may have any suitable configuration. Referring to

FIGS. 6 through 8

, the second fluid path


54


includes a second fluid passage


60


disposed adjacent the body cavity


50


and having a second passage axis


62


. The second fluid path


54


may further include additional passages, such as passage


63


and passage


64


, disposed between the second fluid passage


60


and the outlet port


51


. Alternatively, the second fluid path


54


may have any suitable configuration.




Referring to

FIGS. 5

,


6


and


8


, a particle filter


65


is disposed in the body cavity


50


for removing particles, such as dirt or metal particles, from the fuel. As shown in

FIG. 5

, filter


65


is preferably held securely in place between inlet fitting


66


and shoulder


67


of body


42


. Seals such as O-rings


68


may also be provided to seal ends of the filter


65


against the inlet fitting


66


and the shoulder


67


.




Filter


65


defines a filter cavity


69


and includes filter media


70


for filtering the fuel. Filter media


70


may comprise any suitable material such as pleated wire cloth, sintered stainless steel, or sintered brass. The filter


65


further includes a filter axis


71


that is coaxially aligned with the first passage axis


58


and nonparallel to the second passage axis


62


.




Returning to

FIG. 4

, the pressure regulator


38


also includes a pressure regulating device


72


that extends into a pressure regulating chamber


74


of the second fluid path


54


. While the pressure regulating device


72


may have any suitable configuration and include any suitable components, such as a single piston, in a preferred embodiment the pressure regulating device


72


includes a compensation piston


76


and a main or sensor piston


78


. The compensation piston


76


compensates for varying pressure of fuel provided to the pressure regulating device


72


, and the sensor piston


78


cooperates with the compensation piston


76


to regulate outlet pressure. In addition, the pressure regulator


38


preferably includes a pressure adjuster


81


for adjusting the outlet pressure.




Referring to

FIGS. 1

,


5


and


9


, the pressure regulator


38


further preferably includes a manual shutoff valve


80


that operates in a similar manner as described above with respect to the manual shutoff valves


34


. The pressure regulator


38


may also be provided with a thermally activated pressure relief device


82


, a bleed valve


84


that allows the cylinder


16


to be emptied in case the supply valve


40


fails, and a heating fluid circuit


86


for routing heating fluid, such as engine coolant, through the body


42


. As shown in

FIG. 9

, the heating fluid circuit


86


may include, for example, a coolant inlet port


88


, a coolant path


90


, and a coolant outlet port


92


. As shown in

FIG. 1

, coolant lines


94


may be connected to the pressure regulator


38


for supplying engine coolant to the heating fluid circuit


86


.




Additional details regarding the pressure regulator


38


are disclosed in, copending patent application Ser. No. 09/642,747, now U.S. Pat. No. 6,321,779, which is hereby incorporated by reference in its entirety. Alternatively, in lieu of the pressure regulator


38


, the filter arrangement


36


may be provided with any suitable body that is engageable with the third cylinder


16


, such as a valve body or an end cap. Such a body, however, should include features similar to inlets


46


and


48


, body cavity


50


, outlet port


51


, first fluid path


52


and second fluid path


54


.




Referring to

FIGS. 4

,


8


and


9


, the supply valve


40


controls flow of fuel from the third cylinder


16


into the pressure regulator


38


. Preferably, the supply valve


40


is an electrically controlled valve, such as a solenoid-operated valve, that is normally closed. In other words, supply valve


40


is preferably closed when not energized, and open when energized. The supply valve


40


operates in a similar manner as the solenoid-operated valves described above with respect to the cylinder valves


26


.




With reference to

FIGS. 1

,


8


and


9


, operation of the system


10


will now be described. During a filling operation, fuel may be supplied to fill receptacle


18


. As described above, fuel may then enter first and second cylinders


12


and


14


, respectively, via first and second high pressure lines


20


and


22


, respectively. Next, fuel may flow through third high pressure line


24


and onto second inlet port


48


of third cylinder


16


. If manual valve


80


is open, the fuel may then flow through filter cavity


69


and along first fluid path


52


without flowing through filter media


70


. Supply valve


40


will also be forced open by the fuel so as to allow the fuel to flow through apertures


85


and into third cylinder


16


.




Advantageously, because the fuel does not pass through filter media


70


prior to flowing into third cylinder


16


, the flow of fuel is not restricted by the filter


65


. Furthermore, the filter media


70


is not adversely affected by such flow, which may be more than 100 times greater than flow during a withdrawal operation. During a withdrawal operation, supply valve


40


may be energized so as to allow fuel to flow through apertures


85


and along first fluid path


52


. Next, the fuel will flow through filter media


70


and along second fluid path


54


to pressure regulating chamber


74


, where the fuel will be regulated to a desired pressure such as 100 pounds per square inch. The fuel will then continue along second fluid path


54


to outlet port


51


. From outlet port


51


, the fuel may travel along supply line


94


to the engine


11


.




If fuel is also being supplied by one or both of the cylinders


12


and


14


, then such fuel will enter pressure regulator


38


at second inlet port


48


. This fuel will mix with the fuel from third cylinder


16


, pass through filter media


70


and along second fluid path


54


. It is to be understood that fuel may be provided from any one of the cylinders


12


,


14


and


16


, or from more than one of the cylinders


12


,


14


and


16


.




Advantageously, filter


65


may be used to filter fuel supplied by any of the cylinders


12


,


14


and


16


. Furthermore, because filter


65


may be disposed inside of pressure regulator


38


or other suitable body, the filter arrangement


36


of the invention is robust.




While embodiments of the invention have been illustrated and described, it is not intended that these embodiments illustrate and describe all possible forms of the invention. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the invention.



Claims
  • 1. A filter arrangement for use with a vessel configured to receive and discharge fluid through the same opening, the arrangement comprising:a body engageable with the vessel and having a body cavity, a first inlet port in fluid communication with the vessel, a first fluid path disposed between the first inlet port and the body cavity, a second inlet port in fluid communication with the body cavity for receiving fluid from a fluid source, an outlet port, and a second fluid path disposed between the body cavity and the outlet port; and a filter, having filter media, positioned in the body cavity so that the second fluid path is connected to the first fluid path through the filter media and so that fluid communication of the first fluid path with the second inlet port through the body cavity is unimpeded by the filter media, wherein when the fluid flows from the fluid source into the vessel, the fluid flows along the first fluid path without flowing through the filter media, and when the fluid flows through the outlet port and out of the vessel, the fluid flows through the filter media.
  • 2. The filter arrangement of claim 1 wherein the first fluid path includes a first passage disposed adjacent the body cavity and having a first passage axis, the second fluid path includes a second passage disposed adjacent the body cavity and having a second passage axis, and the filter has a filter axis that is coaxially aligned with the first passage axis and nonparallel to the second passage axis.
  • 3. The filter arrangement of claim 2 further comprising a supply valve associated with the body and first fluid path for allowing the fluid to flow in and out of the vessel along the first fluid path.
  • 4. The filter arrangement of claim 3 wherein the valve is an electrically controlled valve supported by the body.
  • 5. The filter arrangement of claim 1 further comprising a pressure regulating device disposed in the body for regulating pressure of the fluid flowing along the second fluid path.
  • 6. The filter arrangement of claim 1 wherein the filter further defines a filter cavity, separated from the body cavity by the filter media, wherein when the fluid flows into the vessel from the second inlet port, the fluid flows through the filter cavity to the first fluid path and wherein when the fluid flows out of the vessel, the fluid flows through the filter media.
  • 7. The filter arrangement of claim 1 further comprising at least one additional vessel in fluid communication with the second inlet port, wherein the filter media will also filter fluid from said additional vessel.
  • 8. A system comprising:a vessel for receiving and discharging fluid through the same opening; a body engageable with the vessel and having a body cavity, a first inlet port in fluid communication with the vessel, a first fluid path disposed between the first inlet port and the body cavity, a second inlet port in fluid communication with the body cavity for receiving fluid from a fluid source, an outlet port, and a second fluid path disposed between the body cavity and the outlet port; and a filter, having filter media, positioned in the body cavity so that the second fluid path is connected to the first fluid path through the filter media and so that fluid communication of the first fluid path with the second inlet port through the body cavity is unimpeded by the filter media, wherein when the fluid flows from the fluid source into the vessel, the fluid flows along the first fluid path without flowing through the filter media, and when the fluid flows through the outlet port and out of the vessel, the fluid flows through the filter media.
  • 9. The system of claim 8 further comprising at least one additional vessel in fluid communication with the second inlet port.
  • 10. The system of claim 8 wherein the first fluid path includes a first passage disposed adjacent the body cavity and having a first passage axis, the second fluid path includes a second passage disposed adjacent the body cavity and having a second passage axis, and the filter has a filter axis that is coaxially aligned with the first passage axis and nonparallel to the second passage axis.
  • 11. The filter arrangement of claim 10 further comprising a supply valve associated with the body and first fluid path for allowing the fluid to flow in and out of the vessel along the first fluid path.
  • 12. The system of claim 11 wherein the valve is an electrically controlled valve supported by the body.
  • 13. The system of claim 8 further comprising a pressure regulating device disposed in the body for regulating pressure of the fluid flowing along the second fluid path.
  • 14. The system of claim 8 wherein the filter further defines a filter cavity, separated from the body cavity by the filter media, wherein when the fluid flows into the vessel from the second inlet port, the fluid flows through the filter cavity to the first fluid path and wherein when the fluid flows out of the vessel, the fluid flows through the filter media.
CROSS-REFERENCE TO RELATED APPLICATIONS

This application is a continuation-in-part of Ser. No. 09/642,747, filed on Aug. 18, 2000, now U.S. Pat. No. 6,321,779, which is a continuation-in-part of Ser. No. 09/314,756, filed May 19, 1999, now U.S. Pat. No. 6,186,168.

US Referenced Citations (78)
Number Name Date Kind
664383 Claude et al. Dec 1900 A
903134 Giron Nov 1908 A
1734514 Benson et al. Nov 1929 A
1799914 Lemoine Apr 1931 A
2294432 Weidner Sep 1942 A
2731033 Cable Jan 1956 A
2793504 Webster May 1957 A
2987570 Bluth Jun 1961 A
3059210 Luenberger Oct 1962 A
3084210 Bluth et al. Apr 1963 A
3094141 Maienknecht Jun 1963 A
3109882 Maltby Nov 1963 A
3118295 Van Poppel Jan 1964 A
3164308 Marcovitch et al. Jan 1965 A
3211175 Replogle Oct 1965 A
3352963 Homrig Nov 1967 A
3386072 Chandler May 1968 A
3520989 Funk et al. Jul 1970 A
3565201 Petsinger Feb 1971 A
3789820 Douglas et al. Feb 1974 A
4020863 Fabish May 1977 A
4173986 Martin Nov 1979 A
4458108 Kashimoto et al. Jul 1984 A
4481969 Fallon et al. Nov 1984 A
4489700 van der Weide Dec 1984 A
4520838 Fisher et al. Jun 1985 A
4561465 Rogers Dec 1985 A
4572477 Phlipot et al. Feb 1986 A
4599487 Blank et al. Jul 1986 A
4611628 Pasternack Sep 1986 A
4643215 Phlipot et al. Feb 1987 A
4655246 Phlipot et al. Apr 1987 A
4718638 Phlipot et al. Jan 1988 A
4723567 Phlipot et al. Feb 1988 A
4785847 Steer et al. Nov 1988 A
4971957 Ross Dec 1988 A
4811752 Lyons et al. Mar 1989 A
4817658 Lyons Apr 1989 A
4820889 Seghetti Apr 1989 A
4858583 Sonntag Aug 1989 A
4887638 Hellquist et al. Dec 1989 A
4971224 Scremin Nov 1990 A
5009249 Fisher et al. Apr 1991 A
5025758 Djurdjevic Jun 1991 A
5026026 Sever et al. Jun 1991 A
5029730 Kostecki et al. Jul 1991 A
5088622 Valy et al. Feb 1992 A
5193580 Wass et al. Mar 1993 A
5197671 Wass et al. Mar 1993 A
5197710 Wass et al. Mar 1993 A
5330031 Hill et al. Jul 1994 A
5341844 Wass et al. Aug 1994 A
5379761 Schuler Jan 1995 A
5452738 Borland et al. Sep 1995 A
5458151 Wass Oct 1995 A
5495865 Wass et al. Mar 1996 A
5507308 Chambonnet Apr 1996 A
5562117 Borland et al. Oct 1996 A
5566713 Lhomer et al. Oct 1996 A
5584318 Brandt Dec 1996 A
5611316 Oshima et al. Mar 1997 A
5614091 Janik et al. Mar 1997 A
5644104 Porter et al. Jul 1997 A
5649561 Brandt Jul 1997 A
5651477 Takahashi et al. Jul 1997 A
5755254 Carter et al. May 1998 A
5799640 Sugimoto et al. Sep 1998 A
5829418 Tamura et al. Nov 1998 A
5899221 Holt et al. May 1999 A
5989413 Jauss et al. Nov 1999 A
6012485 Connelly et al. Jan 2000 A
6029629 Tipton Feb 2000 A
6041762 Sirosh et al. Mar 2000 A
6063269 Miller et al. May 2000 A
6155238 Briggs et al. Dec 2000 A
6186168 Schultz et al. Feb 2001 B1
6213143 Schwegler et al. Apr 2001 B1
6321779 Miller et al. Nov 2001 B1
Continuation in Parts (2)
Number Date Country
Parent 09/642747 Aug 2000 US
Child 09/783180 US
Parent 09/314756 May 1999 US
Child 09/642747 US