The invention generally relates to a grade vent valve assembly, sometimes referred to as a roll-over vent valve assembly.
Vehicular fuel systems include a fuel tank having a grade vent valve assembly. The grade vent vale assembly opens fluid communication between the fuel tank and other components of the fuel system to allow pressurized fuel vapor to escape the fuel tank under normal conditions, and closes fluid communication between the fuel tank and the other components of the fuel system to prevent liquid fuel from flowing out of the fuel tank when the vehicle is at an extreme angle or in an inverted position, i.e., in a rolled-over position.
A grade vent valve assembly for a fuel tank of a vehicle is provided. The grade vent valve assembly includes a housing. The housing defines a float chamber, an inlet open to the float chamber, a liquid sealing chamber in fluid communication with the float chamber, and an orifice open to the liquid sealing chamber. A float is disposed within the float chamber. The float is moveable between a lowered position and a raised position. The grade vent valve assembly further includes a lever. The lever includes a first end that is coupled to the float. The lever extends from the first end across the orifice to a second end. The lever pivots about a fulcrum between an open position and a sealing position. When in the open position, the lever allows fluid communication between the orifice and the inlet. When in the sealing position, the lever blocks fluid communication between the orifice and the inlet. The lever moves between the open position and the sealing position in response to movement of the float between the lowered position and the raised position. The lever is disposed in the sealing position when the float is disposed in the raised position, and is disposed in the open position when the float is disposed in the lowered position.
A roll-over vent valve assembly for a fuel tank of a vehicle is also provided. The roll-over vent valve assembly includes a housing. The housing defines a float chamber, an inlet open to the float chamber, a liquid sealing chamber in fluid communication with the float chamber, and an orifice open to the liquid sealing chamber. A float is disposed within the float chamber. The float is moveable between a lowered position and a raised position. A biasing device is disposed within the float chamber between the housing and the float. The biasing device is configured for biasing the float into the raised position. The roll-over vent valve assembly further includes a lever. The lever includes a first end pivotably coupled to the float. The lever extends from the first end across the orifice to a second end. The lever pivots about a fulcrum between an open position and a sealing position. When in the open position, the lever allows fluid communication between the orifice and the inlet. When in the sealing position, the lever blocks fluid communication between the orifice and the inlet. The lever moves between the open position and the sealing position in response to movement of the float between the lowered position and the raised position. The lever is disposed in the sealing position when the float is disposed in the raised position, and is disposed in the open position when the float is disposed in the lowered position. A sealing member is attached to the lever adjacent the second end of the lever. The sealing member is moveable with the lever. The sealing member includes a synthetic rubber material and is configured for sealing against an interior surface of the liquid sealing chamber to seal the orifice. A locating mechanism interconnects the sealing member and the housing. The locating mechanism is configured for positioning the sealing member relative to the orifice. A cover is attached to and in sealing engagement with the housing. The cover further defines the float chamber and the liquid sealing chamber.
Accordingly, the leverage created by rotating the lever about the fulcrum, which is disposed between the first end of the lever and the second end of the lever, increases the force applied to break the seal between the sealing member and the interior surface of the liquid sealing chamber, thereby improving the re-opening characteristics of the vent valve assembly.
The above features and advantages and other features and advantages of the present invention are readily apparent from the following detailed description of the best modes for carrying out the invention when taken in connection with the accompanying drawings.
Those having ordinary skill in the art will recognize that terms such as “above,” “below,” “upward,” “downward,” “top,” “bottom,” etc., are used descriptively for the figures, and do not represent limitations on the scope of the invention, as defined by the appended claims.
Referring to the Figures, wherein like numerals indicate like parts throughout the several views, a grade vent valve assembly is generally shown at 20. The grade vent valve assembly 20 may also be referred to as a roll-over vent valve assembly 20. The grade vent valve assembly 20 is positioned at a top wall 22 of a fuel tank 24 of a vehicle. The grade vent valve assembly 20 includes a pressure relief mechanism 26, described in greater detail below, which allows fuel vapors to escape from the fuel tank 24 during normal operating condition. When the fuel tank 24 is oriented at an extreme angle or upside down, such as in the event of a vehicular roll-over, the grade vent valve assembly 20 is configured to block fluid flow from the tank, thereby preventing fuel leakage from the tank.
Referring to
The grade vent valve assembly 20 includes a cover 38. The cover 38 is attached to and in sealing engagement with the housing 28. The cover 38 may be attached to the housing 28 in any suitable manner, including but not limited to attaching the cover 38 to the housing 28 with detents 40 and/or fasteners. The cover 38 may include and be manufactured from, but is not limited to, HDPE or some other similar material. The cover 38 cooperates with the housing 28 to further defining the float chamber 30 and the liquid sealing chamber 34. More specifically, the cover 38 defines the top surface and/or region of the float chamber 30 and the liquid sealing chamber 34.
The float 42 is disposed within the float chamber 30. The float 42 may include and be formed from, but is not limited to an acetal material, or some other similar material. The float 42 is moveable between a lowered position, shown in
A biasing device 44 is disposed within the float chamber 30. The biasing device 44 is disposed between the housing 28 and the float 42. More specifically, the biasing device 44 is disposed between a bottom wall 46 of the float chamber 30 and the float 42. The biasing device 44 is configured to bias the float 42 into the raised position. Accordingly, the biasing device 44 provides a biasing force acting to move the float 42 from the lowered position into the raised position. While the biasing force is not great enough to move the float 42 alone, the biasing device 44 cooperates with the buoyancy force generated by any liquid entering the float chamber 30 to move the float 42 into the raised position. Preferably, the biasing device 44 includes a coil spring manufactured from stainless steel. However, the biasing device 44 may include a device other than the coils spring shown, and may be manufactured from some other material.
A lever 48 is disposed within the housing 28, and spans across the float chamber 30 and the liquid sealing chamber 34. The lever 48 includes an elongated planar substrate, and may include and be manufactured from, but is not limited to an acetal material, or some other similar material. A pivotable connection 50 interconnects the lever 48 and the housing 28. The pivotable connection 50 may be formed in any suitable manner capable of connecting the lever 48 to the housing 28 and cause the lever 48 to rotate about a rotation axis 52. As shown, the lever 48 includes two perpendicularly extending pins 54 that are rotatably supported by a pair of supports 56 disposed on opposite longitudinal sides of the lever 48. The interaction between the pins 54 and the supports 56 define the pivotable connection 50. The pivotable connection 50 may be positioned relative to the lever 48 other than shown and described herein, i.e., below or level with the lever 48. The pivotable connection 50 defines a fulcrum about which the lever 48 rotates. Accordingly, the fulcrum defines the rotation axis 52.
The lever 48 includes a first end 58 that is pivotably coupled to the float 42. The first end 58 of the float 42 moves vertically with the float 42 as the float 42 moves between the lowered position and the raised position. The first end 58 of the lever 48 may be pivotably coupled to the float 42 in any manner capable of allowing rotation of the lever 48 about the rotation axis 52, while securing the first end 58 of the lever 48 relative to the float 42 for vertical movement therewith.
The lever 48 extends from the first end 58 to a second end 60 disposed across the orifice 36 from the first end 58. The lever 48 pivots or rotates about the fulcrum, which is disposed between the first end 58 of the lever 48 and the second end 60 of the lever 48. The lever 48 pivots between an open position, shown in
The first end 58 of the lever 48 is coupled to the float 42 at a first force application location 62. A center of the orifice 36 is positioned relative to the lever 48 at a second force application location 64. The lever 48 defines a length 66 between the first force application location 62 and the second force application location 64. The fulcrum is disposed a first distance 68 from the first force application location 62 and a second distance 70 from the second force application location 64. The first distance 68 is preferably at least equal to or greater than ten percent (10%) of the length 66 of the lever 48, and the second distance 70 is preferably also at least equal to or greater than ten percent (10%) of the length 66 of the lever 48. Preferably, the fulcrum is disposed at an approximate midsection of the lever 48, with the first distance 68 approximately equal to the second distance 70.
A sealing member 72 may be attached to the lever 48 adjacent the second end 60 of the lever 48. The sealing member 72 may be moveable with the lever 48. As shown, the sealing member 72 is configured for sealing against an interior surface 74 of the liquid sealing chamber 34 about a periphery of the orifice 36 to seal the orifice 36. The sealing member 72 is brought into contact with the interior surface 74 when the lever 48 is moved into the sealing position. Accordingly, liquid entering the float chamber 30, which is shown in
As shown, the sealing member 72 includes a ribbon 76 disposed between the lever 48 and the interior surface 74 of the liquid sealing chamber 34. Referring to
Referring to
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While the best modes for carrying out the invention have been described in detail, those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention within the scope of the appended claims.