The invention concerns a fluid supply device.
The invention more particularly concerns a fluid supply device including a pressurized fluid valve, with or without an integrated pressure-reducing valve, including a body, a fluid circuit accommodated at least in part in the body, the circuit having an upstream end intended to be connected to a reserve of pressurized fluid and a downstream end intended to be connected to a receiving device, the circuit including at least one member for controlling the flow rate in the circuit and a member for actuating the latter.
To improve the functionalities of a valve for pressurized fluid bottle(s) it is known to provide units for monitoring the fluid. See for example the documents EP2663793A, EP2674660A or US20050126571A.
These units are adapted to cooperate with a pressurized fluid valve to adapt the functionalities of the valve.
Adapting the flow rate monitoring functionalities necessitates the provision of modular elements that satisfy requirements in terms of reliability, safety and correct operation.
An object of the present invention is to improve on the prior art referred to above or to alleviate some or all of the disadvantages thereof.
To this end, the fluid supply device according to the invention, otherwise conforming to the generic definition thereof given in the above preamble, is essentially characterized in that the at least one control member includes an adjustable flow rate regulator, controlled by a data acquisition and processing electronic unit integrated into the valve and including an antenna or a wired connection configured to receive a remote control signal from the flow rate regulator to monitor and to control remotely the flow rate imposed by the latter.
Moreover, embodiments of the invention may include one or more of the following features:
The invention may equally concern a pressurized fluid bottle or set of bottles (rack) including a device of the above kind.
The invention may equally concern any alternative device or method including any combination of the above or following features.
For a further understanding of the nature and objects for the present invention, reference should be made to the following detailed description, taken in conjunction with the accompanying drawings, in which like elements are given the same or analogous reference numbers and wherein:
The fluid supply device illustrated in the figures includes a pressurized fluid valve 1 with or without an integrated pressure-reducing valve.
The valve 1 illustrated in the figures includes a body 2 accommodating a fluid circuit 3, 13. The fluid circuit 3, 13 has an upstream end 4 that is intended to be connected to a reserve of pressurized fluid (for example a bottle 140 of a set of pressurized gas bottles, cf.
The circuit 3, 13 conventionally includes at least one unit 6, 60 for monitoring the flow rate in the circuit 3, 13.
In the example from
The valve 1 further includes an actuator member 7 for controlling at least one flow rate monitoring unit (for example the pressure-reducing valve or an isolating valve or a valve pusher).
In the example from
The valve 1 includes in particular an adjustable flow rate regulator 16 that is preferably controlled by a data acquisition and processing electronic unit 12 integrated into the valve 1. The data acquisition and processing electronic unit 12 includes for example at least one programmable microprocessor associated with a memory.
The data acquisition and processing electronic unit 12 includes or is connected to an antenna 112 configured to receive a remote control signal from the flow rate regulator 16 for remote monitoring and modification of the flow rate imposed by the latter. In addition to or instead of this, the data acquisition and processing electronic unit 12 could include a wired connection port or a port for any other communication device.
In the example from
According to one advantageous particular feature, the device and notably the valve 1 may include a unit 101, 102 for determining the nature of the fluid in the circuit 3 connected to the data acquisition and processing electronic unit 12. That electronic unit 12 may be configured to adapt how the flow rate regulator 16 is controlled, preferably automatically as a function of the nature of the fluid, that is to say to adjust or to calibrate the flow rate regulator 16 as a function of said nature of the fluid from at least one predetermined nature and/or a plurality of predetermined natures.
For example, for the same flow rate setpoints, the more the gas mixture contains a gas having a high viscosity and/or large molecules, the larger the orifice will be. Conversely, the more the gas mixture contains gas having a low viscosity and/or small molecules, the relatively smaller the orifice will be.
The flow rate regulator 16 includes for example a mechanism for modifying the size of at least one passage for the fluid to modify its flow rate. The data acquisition and processing electronic unit 12 may be configured to store or to receive calibration data, notably calibration curves, or an adaptive algorithm defining respective sizes of the at least one passage as a function of the nature and/or the composition of the fluid from a plurality of natures and/or compositions passing through the flow rate regulator 16 to obtain a particular flow rate.
For example, as illustrated in
Depending on the nature of the gas or gas mixture determined from among a plurality of possibilities (for example from among: argon, oxygen, helium, carbon dioxide, hydrogen, etc.), the same orifice size can generate flow rate differences. Accordingly, as shown diagrammatically in
The above method corrects this difference, and the device enables more accurate regulation of the gas flow rate.
The unit for determining the nature of the fluid may include a wireless scanning (and possibly writing) electronic device 101 such as a wireless communication scanner or transponder configured to scan remotely and wirelessly (and possibly to write) information stored by a data storage electronic device 102 such as a wireless communication RF tag attached to a fluid source (cf.
These data media 101, 102 may include a passive transponder with no device for generating electromagnetic waves, an active transponder including a device for generating electromagnetic waves, the transponder including a data read only or data read/(re)write electronic memory, with or without a battery.
That is to say that information (nature of the gas, bottle reference numbers, etc.) can be transmitted wirelessly between the bottle 140 or the set of the bottles and the valve 1 and then the module 8 via the transponders 102, 101.
Moreover, as illustrated in
The gas is preferably identified by near field communication (NFC). Of course, other technologies with the same range or different ranges may be envisaged (“RFID”, “Bluetooth”, “WIFI”, “LoRA”, “SigFox”, infrared, barcode, flash code, etc.).
Accordingly, the information medium 102 storing the identification of the type of gas may be situated on the bottle 140 or the set of bottles (rack), for example directly on the bottle and/or on a basic valve 330 mounted on the bottle and/or on a cap or protection frame or any other appropriate element of the device. Similarly, this gas identification information may be provided remotely, for example by radio, for example by remote control and/or a local or remote interface (see below with reference to
The flow rate regulator 16 may include for example a variable orifice mechanism of piezoelectric type or a variable orifice mechanism using a mobile slide valve, or any other appropriate system.
In the case of an electrically controlled piezoelectric type flow rate regulator 16, the setpoint may be expressed by the data acquisition and processing electronic unit 12 (notably via a processor) after the type of gas has been determined (or determined by default). This control setpoint may be converted into a voltage (in volts for example). The piezoelectric flow rate regulator 16 is then able to adjust the deformation of a leaf spring to adjust an orifice and therefore the flow rate between an inlet and an outlet.
If the flow rate regulator 16 uses a mechanism with a mobile slide valve moved by a motor, the setpoint may be expressed in terms of distinct positions of a shaft or a mobile part driven by the motor. The motor may for example adjust the position of the slide valve to open to a greater or lesser degree a passage for the gas between an inlet and an outlet.
As shown in
At least one sensor 19 may be connected to an electrical connector 33 opening onto the body 2 in the housing 5, for example adjacent to the orifices 30, 31.
For example, the device may include at least:
By flow rate sensor is meant either a sensor measuring the flow rate directly (flow meter) or a calculation algorithm measuring the flow rate on the basis of pressure values on the upstream and downstream sides of a (possibly temperature-corrected) pressure-reducing valve or variable orifice.
The data acquisition and processing electronic unit 12 of the valve 1 may notably be configured to determine or to calculate the real value of the fluid flow rate in the circuit 3 on the basis of information from the aforementioned at least one sensor (for example via a simple state equation).
For example, the data acquisition and processing electronic unit 12 may be configured to receive the measurements from at least one temperature sensor 22 in the circuit 3, 13 and to calculate the flow rate of fluid in the circuit as a function of the temperature measurement, the pressure measurement and the configuration of the flow rate regulator 16.
As symbolically represented in
This wireless communication may use at least one of the communication technologies mentioned above.
The electronic device 40 preferably includes a human-machine interface configured to display tactile control symbols 240 for modifying the flow rate value imposed by the flow rate regulator 16. This device may also display the actual (measured or calculated) flow rate and a gas flow rate recommended on the basis of parameters entered by the user or detected by the device.
When the acquisition electronic unit 12 is accommodated in the removable regulator module 8, to transmit data from sensor(s) 19 between the body 2 and the module 8, the regulator module 8 may have on its lower surface at least one electrical connector 133 connected to the data acquisition and processing electronic unit 12. The body 2 includes at least one conjugate electrical connector 33. These electrical connectors 33, 133 are configured to cooperate and to transmit information when the regulator module 8 is mounted in position on the body 2.
In the embodiment with a removable regulator module 8, a part of the circuit 3 is for example housed in the body 2 of the valve and has a first end opening onto the body 2 at the level of a first orifice 30. A fluid circuit 13 portion is situated in the regulator module 8 and has an upstream end including a first fluidic connector 130 configured to be connected in fluid-tight manner at the level of the first orifice 30 when the module 8 is mounted in position on the body 2. The flow rate regulator 16 therefore regulates the flow rate or fluid in the circuit 3, 13 on the upstream side of the downstream end 15.
The first fluidic connector 130 of the regulator module 8 and the first orifice 30 of the body 2 form a male-female fluidic connection system including a sealing system 230 such as an O-ring for example. The first fluidic connector 130 is of the male type and projects on the regulator module 8 and includes a seal 230 such as an O-ring, for example.
The fluid circuit 3 situated in the body 2 may include a first portion extending between the upstream end 4 and the first orifice 30 and a second portion extending between a second orifice 31 opening onto the body 2 and an outlet downstream end 15 fitted for example with a connector.
In the example from
In this case, the gas the flow rate of which has been regulated exits at the level of an end 15 of the body 2.
As for the first connector 130, the second fluidic connector 131 of the regulator module 8 and the second orifice 31 of the body 2 form a male-female fluidic connection system including a sealing system 230 such as an O-ring (for example of the same type as for the first connector 130).
This provides a reliable mechanical and fluidic connection between these two entities 2, 8.
As shown, the body 2 of the valve 1 preferably includes a housing 5 intended to receive the regulator module 8. The housing 5 includes a bottom 50 that is substantially horizontal when the valve 1 is in the vertical position of use. The bottom 50 is intended to receive the base (lower face) of the regulator module 8 when the regulator module 8 is in position mounted on the body 2. As shown, the first orifice 30 and the second orifice 31 preferably discharge at the level of said bottom 50 of the housing 5.
The two connectors 130, 131 of the regulator module are therefore situated on the lower face of the latter.
This arrangement improves the strength and the protection of the fluidic connections and contributes to the correct positioning and retention of the module 8 on the body 2.
The regulator module 8 is retained on the body 2 by clips and/or by removable retaining members such as a system of nuts and bolts or tapped holes (cf. for example references 123, 23 in
As illustrated in
As mentioned above and illustrated in
For example, the regulator module 8 is mobile in translation in a first direction A (cf.
In this way, when the module 8 is correctly mounted on the body 2 of the valve 1 a physical electrical connection is established enabling the transmission of data or of energy for example.
Of course, as mentioned above, the flow rate regulator 16 could be integrated into the body 2 (rather than housed in a removable module 8).
Similarly, the valve 1 is not limited to the embodiment from
As illustrated in
This mobile support part 100 may be the support of a transponder or RF tag 101 described above (cf.
The actuator member 7 (in this nonlimiting example a lever) may be mobile between a first position which it does not hinder the movement of the regulator module 8 relative to the body 2 of the valve 1 (lever in bottom position for example) and a second position in which the actuator member 7 forms a mechanical abutment preventing movement of the regulator module 8 relative to the body 2 to prevent demounting it from the body 2 (lever in top position for example, cf.
For example, the actuator member 7 has a shape adapted to nest with or immobilize the exterior shape of the regulator module 8. This makes it possible for example to prevent unintended disconnection of this module 8 when the valve is under pressure (position of the actuator member 7 allowing for example the pressurization of a part of the fluid circuit 3).
As illustrated diagrammatically in
For example each set of connector(s) 130 is associated with a different regulator unit 16 (calibrated orifice of different sections for example). For example, the sets of connector(s) 130 are disposed symmetrically relative to the center of the lower face of the module 8.
The operative is therefore able to choose a monitoring unit 16 by using the associated connectors 130 (the respective positions may be associated with markings on the module 8).
Just like the module from
It will be understood that many additional changes in the details, materials, steps and arrangement of parts, which have been herein described in order to explain the nature of the invention, may be made by those skilled in the art within the principle and scope of the invention as expressed in the appended claims. Thus, the present invention is not intended to be limited to the specific embodiments in the examples given above.
Number | Date | Country | Kind |
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1656903 | Jul 2016 | FR | national |
This application is a 371 of International PCT Application PCT/FR2017/051628, filed Jun. 20, 2017, which claims priority to French patent Application 1656903, filed Jul. 20, 2016, the entire contents of which are incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/FR2017/051628 | 6/20/2017 | WO | 00 |