METHOD FOR DETECTING THE TRAPPING OR TWISTING OF A DISCHARGE PIPE
20210260990 · 2021-08-26
Inventors
Cpc classification
B60K15/03519
PERFORMING OPERATIONS; TRANSPORTING
B60K15/035
PERFORMING OPERATIONS; TRANSPORTING
F16K37/0041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2015/03528
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Disclosed is a method for detecting pinching or twisting of a discharge pipe connecting a fuel tank and an absorbent filter of an evaporation system of a motor vehicle. The method includes the steps, with the valve being initially in its closed position, of moving the valve by the gases circulating in the absorbent filter, of measuring, in the absence of control of the solenoid, the voltage generated at the terminals of the solenoid by the movement of the valve, and of detecting pinching or twisting of the discharge pipe when the voltage measured is between a first predetermined threshold and a second predetermined threshold.
Claims
1. A method for detecting pinching or twisting of a discharge pipe (320) connecting a fuel tank (20) and an absorbent filter (310) of an evaporation system (30) of a motor vehicle (1), wherein, with said evaporation system (30) comprising a pressure regulating device (420) mounted between the absorbent filter (310) and the outside of the vehicle (1) and said pressure regulating device (420) comprising a solenoid (421) and a valve (422), said valve (422) being configured to move between a closed position, in which the valve prevents the gases from passing through the pressure regulating device (420), and an open position, in which the valve allows the gases to pass from the tank (20) or to the tank (20), the movement of the valve (422) generating a current defining a voltage (U) at the terminals of the solenoid (421) when said solenoid (421) is not controlled electrically, the method comprises the following steps: with the valve (422) being initially in the closed position, moving (E1) the valve (422) by the gases circulating in the absorbent filter (310), measuring (E2), in the absence of control of the solenoid (421), the voltage (U) generated at the terminals of the solenoid (421) by the movement of the valve (422), detecting (E3) pinching or twisting of the discharge pipe (320) when the voltage (U) measured is between a first predetermined threshold (S1) and a second predetermined threshold (S2).
2. The method as claimed in claim 1, wherein the first threshold (S1) is between −10 mV and −20 mV.
3. The method as claimed in claim 1, wherein the second threshold (S2) is between +10 mV and +20 mV.
4. The method as claimed in claim 1, wherein the valve (422) is configured to move when the pressure of the filtered gases is greater than or equal to 1 millibar or less than or equal to −11 millibar.
5. A system (40) for detecting pinching or twisting of a discharge pipe (320) connecting a fuel tank (20) and an absorbent filter (310) of an evaporation system (30) of a motor vehicle (1), said detection system (40) comprising: a control module (410), a pressure regulating device (420), mounted between the absorbent filter (310) and the outside of the vehicle (1), comprising: a solenoid (421), a valve (422) configured to move between a closed position, in which the valve prevents the gases from passing through the pressure regulating device (420), and an open position, in which the valve allows the gases to pass from the tank (20) or to the tank (20), the movement of the valve then defining a voltage (U) at the terminals of the solenoid (421) when said solenoid (421) is not controlled electrically, and a measurement module (430) configured to measure the voltage (U) generated at the terminals of the solenoid (421) and to send these measurements to the control module (410), the control module (410) being configured to receive the measurements taken by the measurement module (430) during a movement of the valve (422) from the closed position and to detect pinching or twisting of the discharge pipe (320) when the measurements received are between a first predetermined threshold (S1) and a second predetermined threshold (S2).
6. The detection system (40) as claimed in the preceding claim 5, wherein the first threshold (S1) is between −10 mV and −20 mV.
7. The detection system (40) as claimed in claim 5, wherein the second threshold (S2) is between +10 mV and +20 mV.
8. The detection system (40) as claimed in claim 5, wherein the measurement module (430) is mounted on the fuel tank (20) of the vehicle (1), or integrated into the pressure regulating device (420) or into the control module (410).
9. The detection system (40) as claimed in claim 5, wherein the valve (422) is configured to move when the pressure of the filtered gases is greater than or equal to 1 millibar or less than or equal to −11 millibar.
10. A motor vehicle (1) comprising a detection system (40) as claimed in claim 5.
11. The method as claimed in claim 2, wherein the second threshold (S2) is between +10 mV and +20 mV.
12. The method as claimed in claim 2, wherein the valve (422) is configured to move when the pressure of the filtered gases is greater than or equal to 1 millibar or less than or equal to −11 millibar.
13. The method as claimed in claim 3, wherein the valve (422) is configured to move when the pressure of the filtered gases is greater than or equal to 1 millibar or less than or equal to −11 millibar.
14. The detection system (40) as claimed in claim 6, wherein the second threshold (S2) is between +10 mV and +20 mV.
15. The detection system (40) as claimed in claim 6, wherein the measurement module (430) is mounted on the fuel tank (20) of the vehicle (1), or integrated into the pressure regulating device (420) or into the control module (410).
16. The detection system (40) as claimed in claim 7, wherein the measurement module (430) is mounted on the fuel tank (20) of the vehicle (1), or integrated into the pressure regulating device (420) or into the control module (410).
17. The detection system (40) as claimed in claim 6, wherein the valve (422) is configured to move when the pressure of the filtered gases is greater than or equal to 1 millibar or less than or equal to −11 millibar.
18. The detection system (40) as claimed in claim 7, wherein the valve (422) is configured to move when the pressure of the filtered gases is greater than or equal to 1 millibar or less than or equal to −11 millibar.
19. The detection system (40) as claimed in claim 8, wherein the valve (422) is configured to move when the pressure of the filtered gases is greater than or equal to 1 millibar or less than or equal to −11 millibar.
20. A motor vehicle (1) comprising a detection system (40) as claimed in claim 6.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Further features and advantages of the invention will become apparent from the following description, which is provided with reference to the appended figures, which are given by way of nonlimiting examples and in which the same references are given to similar objects.
[0027]
[0028]
[0029]
[0030]
[0031]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0032]
[0033] The combustion engine 10 (or internal combustion engine) comprises one or more hollow cylinders 100 each delimiting a combustion chamber into which a mixture of air and fuel is injected.
[0034] The fuel, for example gasoline, is stored in the tank 20, out of which it is drawn by an injection pump 25 in order to be conveyed, via an injection rail 26 and injectors 27, into the cylinders 100 of the engine 10.
[0035] Since the pressure of the gases contained in the tank 20 needs to be controlled in order to avoid any damage or accidents and to limit pollution caused by the fuel vapors, the vehicle 1 comprises an evaporation system 30, connected to the engine 10, to the tank 20 and to the outside of the vehicle 1 via an air filter 35, which makes it possible to absorb the vapors and convey them into the combustion chambers of the engine 10 in order to be burned therein, such that the gases discharged into the atmosphere are significantly purified of the polluting components.
[0036] The evaporation system 30 comprises an absorbent filter 310 (also known as a “canister”), an evacuation circuit 320, a purge circuit 330 in which a purge valve 340 is mounted, and a ventilation circuit 350.
[0037] The absorbent filter 310 is an active carbon filter, the function of which is to trap the pollutant fuel vapors coming from the tank 20. The evacuation pipe 320 is a pipe, made for example from plastic or rubber, that connects the absorbent filter 310 to the tank 20. The purge circuit 330 connects the absorbent filter 310 to the engine 10. The ventilation circuit 350 connects the absorbent filter 310 to the air filter 35. The purge circuit 330 and the ventilation circuit 350 may be in the form of pipes, made for example of plastic or rubber, or of rigid lines.
[0038] The detection system 40 makes it possible to detect leaks in the evaporation system but also pinching or twisting of the evacuation pipe 320, which could cause some of the polluting vapors to be released into the atmosphere, in particular during the filling of the tank 20 with fuel.
[0039] To this end, the detection system 40 comprises a control module 410, a pressure regulating device 420 and a measurement module 430.
[0040] The pressure regulating device 420 is mounted in the ventilation circuit 350, between the absorbent filter 320 and the air filter 35, and comprises, with reference to
[0041] In this example, the valve 422 is configured to move between a closed position, in which it prevents the gases from passing through the pressure regulating device 420, and a plurality of open positions, in which it allows the gases to pass through the pressure regulating device 420.
[0042] The solenoid 421 may be controlled electrically by the control module 410 so as to open or close. When the solenoid 421 is not controlled electrically by the control module 410, the movement of the valve 422 by a flow of gas coming from the absorbent filter 310 generates a current in the solenoid 421. In particular, when an operator fills the tank 20 with fuel, the fuel vapors are discharged toward the absorbent filter 320 and the gases filtered by said absorbent filter 320 move the valve from its closed position to an open position at a greater or lesser distance from the closed position depending on the pressure and the flow rate of the gases. In the process, the movement of the valve 422 generates a current in the solenoid 421, the voltage of which that is induced at its terminals can be measured by the measurement module 430.
[0043] The measurement module 430 is thus configured to measure the voltage induced at the terminals of the solenoid 421 and to send these measurements to the control module 410 to which it is connected via a communication link, for example via a communication network of the proprietary or LIN type, well known to a person skilled in the art, that connects the electrical equipment of the vehicle 1.
[0044] In the embodiment described, the measurement module 430 is mounted on the tank 20 and can in particular carry out further functions. For example, the measurement module 430 may also comprise a temperature sensor for measuring the internal temperature of the tank 20. In a variant, the measurement module 430 could be incorporated in the pressure regulating device 420 or directly in the control module 410.
[0045] The control module 410 is configured to receive the measurements taken by the measurement module 430 during a movement of the valve and to detect pinching or twisting of the discharge pipe 320 when the measurements received are between a first predetermined threshold and a second predetermined threshold.
[0046] In the embodiment described, the control module 410 is also connected to the injectors 27 in order to control the injections of fuel and to the purge valve 340 in order to close it or open it when it is necessary to convey the polluting vapors retained in the absorbent filters 310 toward the cylinders 100 of the engine 10 in order to burn them.
[0047] Thus, in this example, the control module 410 is implemented by the engine control computer of the vehicle 1. However, it will be noted that the entity that receives the measurements of the intensity of the current circulating in the solenoid 421, for the one part, and the entity that controls the injectors 27 and the purge valve 340, for the other part, could be two separate physical entities.
[0048] The implementation of the detection system according to the invention will now be described with reference to
[0049] The detection of pinching or twisting of the discharge pipe 320 requires, as a prerequisite, that the valve 422 be in the closed position. This configuration can be obtained for example when the control module 410 effects the closure of the valve 422 and causes the generation of negative pressure in the tank 20 by virtue of the control of the purge valve 340, or when the control module 410 is switched off. In this case, the detection of pinching or twisting of the discharge pipe 320 can be carried out at different times, such as, for example, during leak detection or during filling of the tank 20.
[0050] Thus, in a test for detecting pinching or twisting of the discharge pipe 320, with the valve 422 being initially in its closed position, circulation of the gases from the absorbent filter 310 to from the tank 20 to the absorbent filter 310 causes filtered gases to circulate through the pressure regulating device 420, which moves the valve 422 to an open position, in a step E1, and then back into the closed position as soon as the gases stop circulating through the pressure regulating device 420.
[0051] The movement of the valve 422 generates a current in the solenoid 421, the intensity of which is measured by the measurement module 430 in a step E2.
[0052] The intensity measurements taken by the measurement module 430 are sent in real time to the control module 410, which analyzes them.
[0053] More specifically, in the absence of pinching or twisting of the discharge pipe 320, the opening and then closing movement of the valve 422 will be greater since the flow of gas circulating is not limited by the restriction of cross section caused by the pinching or twisting of the pipe, and this will generate, as illustrated in
[0054] On the other hand, in the presence of pinching or twisting of the discharge pipe 320, the amplitude of the opening and then closing movement of the valve 422 will be smaller, and this will generate, as illustrated in
[0055] The method according to the invention therefore makes it possible to determine, in a simple, quick and reliable manner, the presence of pinching or twisting of the discharge pipe 320, in particular by using existing equipment (the pressure regulating device 420) that is initially used to regulate the pressure in the evaporation system 30 and/or to detect leaks in said evaporation system 30.