STEPPER DRIVEN VALVE FOR CONTROLLING FLUID COMMUNICATION BETWEEN A FUEL TANK AND A CANISTER
20200240368 ยท 2020-07-30
Assignee
Inventors
Cpc classification
B60K15/03519
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03514
PERFORMING OPERATIONS; TRANSPORTING
F16K1/385
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K15/035
PERFORMING OPERATIONS; TRANSPORTING
B60K15/03504
PERFORMING OPERATIONS; TRANSPORTING
F16K31/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2015/03256
PERFORMING OPERATIONS; TRANSPORTING
F16K1/443
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M25/0836
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2015/0358
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A fuel system having a fuel tank, a filler pipe for adding liquid fuel, a carbon canister for collecting fuel vapors from the fuel tank during a refueling operation, a stepper motor and a stepper driven valve for controlling fluid communication between the fuel tank and the canister, where the valve is configured to be positionable in a closed position, an open position creating a passageway with a first size, and one or more intermediate positions each creating a passageway with a size which is smaller than the first size and having a moving element, movable relative to a valve opening between a closed position and an opened position, the moving element having: a sealing means for making a leak tight seal and, a deflecting means for controlling the fluid flow, where the deflecting means protrudes inside the valve opening and is adapted to be located upstream relative to sealing means.
Claims
1. A fuel system comprising a fuel tank, a filler pipe for adding liquid fuel, a carbon canister for collecting fuel vapors from the fuel tank during a refueling operation, a stepper motor and a stepper driven valve for controlling a pressure differential by regulating the fluid flow between the fuel tank and the canister, said valve being configured for being actively position able by the stepper motor in a closed position, an open position creating a fluid flow passageway with a first size, and one or more intermediate positions each creating a fluid flow passageway with a size which is smaller than said first size and comprising a moving element, movable relative to a valve opening between a closed position and an opened position, the moving element comprising: sealing means for making a leak tight seal and, deflecting means for controlling the fluid flow, said deflecting means being adapted to be located upstream relative to sealing means and protruding inside the valve opening to create said fluid flow passageways.
2. The fuel system according to claim 1, wherein the deflecting means force the fluid flow to change direction when reaching the sealing means.
3. The fuel system according to the previous claim 2, wherein the sealing means are axial, and define with the valve opening a first flow channel with a first flow direction (X1) which is substantially perpendicular to the moving direction of the moving element, the moving element includes an outer truncated conical shape defining at least partially deflecting means, the deflecting means defining with the valve opening a second flow channel with a second flow direction (X2).
4. The fuel system according to claim 3, wherein said second (X2) and first directions (X1) define an angle () which is more than 45 and less than 135, more preferably more than 90 and less than 120.
5. The fuel system according to claim 1, wherein from a longitudinal central axis towards a periphery of the moving element, the different means are radially arranged on the moving element as follows: a. a central part of the moving element, b. the deflecting means for controlling the fluid flow, c. the sealing means for making a leak tight seal when the valve is in the closed position.
6. The fuel system according to claim 1, wherein the sealing means for making a leak tight seal and the deflecting means for controlling the fluid flow are made in one piece.
7. The fuel system according to claim 1, wherein the sealing means for making a leak tight seal and the deflecting means for controlling the fluid flow are separate parts.
8. The fuel system according to claim 1, wherein the sealing means for making a leak tight seal and/or the deflecting means for controlling the fluid flow are made of elastomer.
9. The fuel system according to claim 5, wherein the central axis is a symmetry axis of said moving element.
10. A vehicle comprising a fuel system according to claim 1.
11. A method for controlling in a fuel system according to claim 1, a pressure differential by regulating a fluid flow between the fuel tank and the canister with the stepper driven valve, comprising receiving a command from an engine controller for a defined flow rate of fluid communication, converting said command into a defined position of the moving element relative to the valve opening and driving said stepper driven valve to said defined position.
12. The method according to claim 11, wherein said defined position is adjusted based on a feedback command from said engine controller, said feedback command being based on the air fuel ratio calculations in the engine.
Description
[0032] The following description shows some features of the stepper driven valve. This description is based on figures, in which:
[0033]
[0034]
[0035]
[0036]
DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0037] The present invention will be described with respect to particular embodiments and with reference to certain drawings but the invention is not limited thereto but only by the claims. The drawings described are only schematic and are non-limiting. In the drawings, the size of some of the elements may be exaggerated and not drawn on scale for illustrative purposes. The dimensions and the relative dimensions do not correspond to actual reductions to practice of the invention.
[0038] Furthermore, the terms first, second, third and the like in the description and in the claims, are used for distinguishing between similar elements and not necessarily for describing a sequence, either temporally, spatially, in ranking or in any other manner. It is to be understood that the terms so used are interchangeable under appropriate circumstances and that the embodiments of the invention described herein are capable of operation in other sequences than described or illustrated herein.
[0039]
[0040]
[0041] A stepper driven valve is designed by the reference 10 and is illustrated in
[0042] The stepper driven valve 10 illustrated in
[0043] The moving element 1 comprises a core part 6 with a substantially cylinder shape and a circular part 7 with a plate shape which is arranged upstream and orthogonal to the core part 6. The core part 6 has a longitudinal axis (A). The circular part 7 of the moving element 1 comprises a central part 5 which stays in contact with the vapor and is under pressure when the stepper driven valve 10 is at least on the closed position.
[0044] The moving element 1 further comprises sealing means 3 for making a leak tight seal and deflecting means 2 for controlling the fluid flow and thus the pressure differential between the fuel tank and the canister or engine intake manifold.
[0045]
[0046]
[0047]
[0048] As can be seen on
[0049] From the longitudinal central axis (A) towards the periphery of the moving element 1, the different means are radially arranged on the moving element as follows: [0050] a. the central part 5 of the moving element 1 [0051] b. the deflecting means 2 for controlling the fluid flow [0052] c. the sealing means 3 for making a leak tight seal
[0053] The sealing means 2 and the deflecting means 3 can be integrally made or they can be separated parts. At least one of them is made of elastomer, particularly the sealing means 3 to improve sealing. Preferably, both of them are made of elastomer for a better sealing and deflecting function.
[0054] Each of the deflecting means 2 and the sealing means 3 is a volume of a solid of revolution with specific cross sections as illustrated in
[0055] The sealing means 3 are axial, which means that they are movable along the longitudinal axis (A) to fulfill the sealing effect. As can be seen on
[0056] The deflecting means 2 is at least partially defined by an outer truncated conical shape included in the moving element 1. In other words, at least one longitudinal cross-section of the deflecting means 2 has substantially the shape of a truncated cone. The deflecting means 2 protrude inside the valve opening 4 and define with the valve opening 4 a second flow channel 20 with a second flow direction X2.
[0057] The second and the first flow directions define an angle (alpha) which is more than 0 and less than 180. Preferably, the angle which is more than 45 and less than 135, more preferably more than 90 and less than 120, for example around 100. In this preferred embodiment, the angle (beta) between the second direction X2 and the longitudinal axis A is between 0 and 30, for example around 10.
[0058]
[0059] The invention is not limited to the illustrated embodiment, especially the deflecting means 2 can have any other shapes, such as a stair-step shape, which should allow the deflecting means 2 to be adapted to be located upstream relative to sealing means 3 and to force the fluid flow to change direction when reaching the sealing means 3.
[0060] The stepper driven valve 10 can be controlled by an engine controller according to a method comprising the steps of receiving a command from the engine controller for a defined pressure differential defining a flow rate of fluid communication between the fuel tank and the canister, converting said command into a defined position of the moving element 1 relative to the valve opening 4 and driving said stepper driven valve 10 to said defined position.
[0061] In an embodiment, said defined position is adjusted based on a feedback command from said engine controller, said feedback command being based on the air fuel ratio calculations in the engine. To this end, the controller is located on the vehicle.
[0062] The controller is a simple control system. Basically, the engine is running normally and adjusts the fuel injector output based on inputs from the driver and the exhaust. When purge occurs, the purge valve is used in the same way as a fuel injector and responds to these same inputs. There is generally more input from exhaust since purge usually only occurs in steady state engine conditions. The purge input is not as precise as a fuel injector since it is not precisely known how much fuel vapor is present in the air flowing into the system.
[0063] The engine controller estimates the amount of fuel vapor coming in from the fuel tank during a purge and then the stepper driven valve 10 is opened or closed depending on this amount. Said estimation of the amount of vapor is based on inference of the effect of the incoming purge flow on the air-fuel ratio assuming the fuel injector flow is under control.
[0064] The calculations of the air-fuel ratio can be made by feedback from an oxygen sensor on the exhaust manifold. Based on the oxygen content of the exhaust gas, the system can determine how close to a stoichiometric ratio the combustion process is at.
[0065] The stepper driven valve 10 can be used in a fuel system comprising a fuel tank 200, a filler pipe for adding liquid fuel, a carbon canister 230 for collecting fuel vapors from the fuel tank 200 during a refueling operation. The stepper driven valve 10 can also be used in a vehicle comprising such a fuel system.