CONNECTION SYSTEM BETWEEN A DISTRIBUTION MEMBER AND A RECEIVING MEMBER AND LEAK DETECTION METHOD
20200217436 · 2020-07-09
Assignee
Inventors
- Rémi Stephan (Moissy-Cramayel, FR)
- Matthieu Baron (Moissy-Cramayel, FR)
- Théophile Horde (Moissy-Cramayel, FR)
Cpc classification
F16L2201/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L41/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A connection system comprising: a dispensing member; a receiving member; first sealing means and second sealing means arranged at the interface between the dispensing member and the receiving member to enable redundant leak-tight engagement between the dispensing member and the receiving member; a control chamber defined between the first sealing means and the second sealing means; and means for measuring the current pressure in the control chamber so as to detect a gas leak.
Claims
1-10. (canceled)
11. A method for detecting a leak in a connection system comprising: a distribution member fluidically connected to a first environment comprising a gas having a first pressure, the distribution member comprising first connection means; a receiving member in contact with a second environment having a second pressure lower than the first pressure of the gas, the receiving member comprising second connection means mechanically engaging with the first connection means of the distribution member; first sealing means and second sealing means arranged at the interface between the first connection means of the distribution member and the second connection means of the receiving member to enable redundant leak-tight engagement between the distribution member and the receiving member, the first sealing means being in contact with the first environment; a control chamber defined between the first sealing means and the second sealing means, the default pressure in the control chamber being lower than the second pressure of said second environment; means for measuring the current pressure in the control chamber so as to detect a gas leak; and monitoring means. the method comprising: a step of measuring the current pressure of the control chamber; and a step of generating a fault alarm of the first sealing means if the current pressure in the control chamber is higher than the second pressure of the second environment.
12. The method according to claim 1, wherein the gas is hydrogen.
13. The method for detecting a leak according to claim 1 in an assembly comprising a plurality of connection systems, each connection system comprising a control chamber, the control chambers are fluidically connected together in order to form an overall control chamber.
14. The method according to claim 3 only comprising one measuring device in the overall control chamber.
15. The method according to claim 1 in a connection system connecting a gas tank and a mechanical device.
16. The method according to claim 1 in a connection system connecting a hydrogen tank and a mechanical device of a fuel cell.
17. The method according to claim 1 in a connection system connecting a hydrogen tank and a mechanical device of a fuel cell in an aircraft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The invention will be better understood on reading the description that follows, given uniquely as an example and by referring to the appended drawings in which:
[0030]
[0031]
[0032]
[0033]
[0034]
[0035] It should be noted that the figures present the invention in a detailed manner to implement the invention, said figures obviously being able to serve to better define the invention if need be.
DETAILED DESCRIPTION
[0036] The invention will now be described for a fuel cell in an aeronautics application.
[0037] In this example, with reference to
[0038] The expansion device 101 is directly connected at the level of the outlet of the tank 100, which avoids resorting to pipes wherein circulates high pressure hydrogen. Indeed, the presence of pipes increases the risk of leak associated with said tubing pipes (impacts, vibrations, maintenance errors, leaks at the interfaces, etc.). In a known manner, with reference to
[0039] Such an expansion device 101 comprises in a known manner a plurality of leak-tight connection systems between a distribution member connected to a high pressure environment and a receiving member, in contact with the ambient environment, in order to convey the gas G and expand it.
[0040] The invention will now be described for a connection system of an expansion device 101 but it goes without saying that the invention applies to any connection between a distribution member and a receiving member.
[0041] In a known manner, with reference to
[0042] In this example, with reference to
[0043] As illustrated in
[0044] According to the invention, with reference to
[0045] In this example, the sealing means 4, 5 are in the form of annular seals but it goes without saying that they could be of different shapes, in particular toroid or flat shaped. As illustrated in
[0046] The connection system S further comprises a control chamber 6 also called inter-seal cavity, defined between the first sealing means 4 and the second sealing means 5, and means for measuring 7 the current pressure Pc in the control chamber 6. The control chamber 6 is in this example in the form of a ring but it goes without saying that its form could be different.
[0047] In this example, the means for measuring 7 the current pressure Pc are in the form of a pressure sensor but it goes without saying that it could be different, notably a mechanical measuring device.
[0048] As will be described hereafter, the default pressure Pd in the control chamber 6 is lower than the second pressure P2 of said second environment E2 (ambient pressure) so as to ensure an increase in the current pressure Pc in the control chamber 6 in the event of a leak. Indeed, the volume of the control chamber 6 is small and the current pressure Pc in the control chamber 6 tends to equal out with the pressure of the environment from where the leaks comes.
[0049] Preferably, during the connection of the distribution member 1 with the receiving member 2, the current pressure Pc in the control chamber 6 is lowered by means of a vacuum pump in order to reach the desired default pressure Pd, for example, a pressure below the ambient pressure wherein the connection system S is used.
[0050] Indeed, the control chamber 6 is leak-tight given that it is bounded by the first sealing means 4 and the second sealing means 5. Also, in normal operation, the current pressure Pc remains constant over time in the control chamber 6. In the event of degraded operation during a leak of one of the sealing means 4, 5, the measuring means 7 make it possible to detect an increase in the current pressure Pc and, furthermore, to determine the sealing means 4, 5 that are defective.
[0051] In the event of leak of the first sealing means 4, the current pressure Pc increases in the leak-tight chamber 6 given that the first environment E1 filled with gas G has a pressure higher than the default pressure Pd of the control chamber 6 (P1Pc>P2>Pd). The current pressure Pc measured by the measuring means 7 exceeds the second pressure P2 and comes closer to the first pressure P1, which indicates that the sealing means in contact with the first environment E1 are defective, that is to say the first sealing means 4.
[0052] In an analogous manner, in the event of a leak of the second sealing means 5, the current pressure Pc increases in the leak-tight chamber 6 given that the second environment E2 has a pressure higher than the default pressure Pd of the control chamber 6 (P1>P2Pc>Pd). The current pressure Pc measured by the measuring means 7 comes closer to the second pressure P2, which indicates that the sealing means in contact with the second environment E2 are defective, that is to say the second sealing means 5. Thanks to the invention, the origin of the leak may be detected in a preventive manner in order to carry out a maintenance step.
[0053] According to an aspect, with reference to
[0054] According to another aspect with reference to
[0055] Preferably, the connection system S comprises monitoring means (not represented) configured to generate a visual, audible, computer, electric or other alarm in the event of difference of the current pressure Pc compared to the default pressure Pd. In particular, the monitoring means are configured to generate a fault alarm when the current pressure of the control chamber is higher than the default pressure Pd. The monitoring means are also configured to generate a fault alarm of the first sealing means 4 when the current pressure Pc of the control chamber 6 exceeds the second pressure P2 and comes closer to the first pressure P1. Such a connection system makes it possible not only to detect a leak but also makes it possible to determine the origin of the leak, which is very advantageous for carrying out maintenance operations.
[0056] A particular structural form of the connection system S is represented in
[0057] The receiving member 2 is in contact with the second environment E2, that is to say the ambient environment. As illustrated in
[0058] An exemplary embodiment of detection of a leak in a connection system S as described previously will now be described. During installation, the distribution member 1 and the receiving member 2 are connected in a leak-tight manner thanks to the sealing means 4, 5. The current pressure Pc of the control chamber 6 is lowered to a default pressure Pd which is lower than the first pressure P1 of the first environment E1 and the second pressure P2 of the second environment E2. In this exemplary embodiment, the default pressure Pd is equal to 1 Pa whereas the first pressure P1 is 35 MPa and the second pressure P2 is the ambient pressure equal to 0.1 MPa. It goes without saying that the ambient pressure varies in an aeronautics context. As an example, the ambient pressure may be low, in particular, of the order of 20 kPa in a non-pressurized zone of an airplane.
[0059] In the absence of leak, the measuring means 7 measure a current pressure Pc which is constant and equal to the default pressure Pd.
[0060] As indicated previously, in the event of a leak of the first sealing means 4, the current pressure Pc increases in the leak-tight chamber 6. The gas G begins to fill progressively the control chamber 6. The current pressure Pc measured by the measuring means 7 increases to exceed the value of the second pressure P2 (ambient pressure) and to come closer to the value of the first pressure P1, which indicates that the first sealing means 4 are defective. An alarm is then generated in order to warn operators that maintenance is necessary. Advantageously, through knowledge of the value of the current pressure Pc, operators can determine which seal means are to be replaced.
[0061] The presence of second sealing means 5 enables redundancy of the first sealing means 4 and makes it possible to confine the gas G in the control chamber 6. Also, there is no risk of creating an explosive atmosphere, the leak being advantageously contained. The reliability of the connection system S is increased in a significant manner, which limits the risk relating to safety and makes the use of a fuel cell in an aircraft possible. A similar detection is carried out in the event of fault of the second sealing means 5. In this case, the current pressure Pc is higher than the default pressure Pd but lower than or equal to the second pressure P2 (ambient pressure).
[0062] Advantageously, with reference to
[0063] The invention has been described for a fuel cell in an aeronautics application but it goes without saying that the invention also applies in other fields, in particular the field of land, sea or railway transport. Similarly, the invention applies to any connection of a high pressure distribution member to a receiving member in contact with an environment having a lower pressure.