(19)
(11)EP 3 248 384 B1

(12)EUROPEAN PATENT SPECIFICATION

(45)Mention of the grant of the patent:
26.06.2019 Bulletin 2019/26

(21)Application number: 16701893.6

(22)Date of filing:  12.01.2016
(51)International Patent Classification (IPC): 
H04Q 9/00(2006.01)
G08B 21/12(2006.01)
G08B 25/08(2006.01)
G01N 33/00(2006.01)
H04B 5/00(2006.01)
(86)International application number:
PCT/US2016/012942
(87)International publication number:
WO 2016/118355 (28.07.2016 Gazette  2016/30)

(54)

AUTOMATIC BUMP AND CALIBRATION IN GAS DETECTORS VIA SHORT RANGE WIRELESS COMMUNICATION

AUTOMATISCHER FUNKTIONSTEST UND KALIBRIERUNG IN GASSENSOREN ÜBER DRAHTLOSE KOMMUNIKATION MIT KURZER REICHWEITE

TEST DE DÉCLENCHEMENT ET ÉTALONNAGE AUTOMATIQUES DANS DES DÉTECTEURS DE GAZ PAR L'INTERMÉDIAIRE D'UNE COMMUNICATION SANS FIL À COURTE PORTÉE


(84)Designated Contracting States:
AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

(30)Priority: 19.01.2015 US 201562105158 P

(43)Date of publication of application:
29.11.2017 Bulletin 2017/48

(73)Proprietor: Honeywell International Inc.
Morris Plains, NJ 07950 (US)

(72)Inventors:
  • JOHNSON, Kirk William
    Morris Plains, New Jersey 07950 (US)
  • ENGLOT, Kelly
    Morris Plains, New Jersey 07950 (US)
  • MROSZCZAK, Stephen
    Morris Plains, New Jersey 07950 (US)

(74)Representative: Houghton, Mark Phillip 
Patent Outsourcing Limited 1 King Street
Bakewell, Derbyshire DE45 1DZ
Bakewell, Derbyshire DE45 1DZ (GB)


(56)References cited: : 
WO-A1-92/07261
US-A1- 2012 063 956
US-A1- 2014 349 707
US-A1- 2009 231 099
US-A1- 2013 002 405
  
      
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description

    BACKGROUND



    [0001] Gas detectors may be carried by workers in environments where there is potential for harmful gases. The gas detectors may be periodically tested and/or calibrated to ensure that the detector is working properly. This may be done using a gas testing system operable to supply a sample gas to the detector and analyze the response of the gas detector. In some workplaces, the testing may occur while a user is wearing other protective gear, such as gloves, suits, helmets, respiratory equipment, etc. WO92/07261 discloses apparatus for calibrating a gas detector including a gas source circuit for providing a standard sample gas at a substantially constant predetermined pressure. The gas source circuit is a gas cylinder for holding the standard sample gas and a pressure regulator circuit for maintaining the output pressure of the gas source circuit at a substantially constant predetermined level. US2012/063956 discloses gas detector tubes which may be used to determine a concentration of target gases in air, which may be read either by an optical reader or visually by the user.

    BRIEF DESCRIPTION OF THE DRAWINGS



    [0002] For a more complete understanding of the present disclosure, reference is now made to the following brief description, taken in connection with the accompanying drawings and detailed description, wherein like reference numerals represent like parts.

    FIG. 1A illustrates a gas detector and gas delivery tubes according to an embodiment of the disclosure;

    FIG. IB illustrates a gas detector and gas testing system according to an embodiment of the disclosure; and

    FIGS. 2A-2B illustrate the operation of a gas detector and gas testing system communicating via NFC.


    DETAILED DESCRIPTION



    [0003] The invention is set out in accordance with the appended claims. It should be understood at the outset that although illustrative implementations of one or more embodiments are illustrated below, the disclosed systems and methods may be implemented using any number of techniques, whether currently known or not yet in existence. The disclosure should in no way be limited to the illustrative implementations, drawings, and techniques illustrated below, but may be modified within the scope of the appended claims along with their full scope of equivalents.

    [0004] The following brief definition of terms shall apply throughout the application:

    [0005] The term "comprising" means including but not limited to, and should be interpreted in the manner it is typically used in the patent context;

    [0006] The phrases "in one embodiment," "according to one embodiment," and the like generally mean that the particular feature, structure, or characteristic following the phrase may be included in at least one embodiment of the present invention, and may be included in more than one embodiment of the present invention (importantly, such phrases do not necessarily refer to the same embodiment);

    [0007] If the specification describes something as "exemplary" or an "example," it should be understood that refers to a non-exclusive example;

    [0008] The terms "about" or approximately" or the like, when used with a number, may mean that specific number, or alternatively, a range in proximity to the specific number, as understood by persons of skill in the art field; and

    [0009] If the specification states a component or feature "may," "can," "could," "should," "would," "preferably," "possibly," "typically," "optionally," "for example," "often," or "might" (or other such language) be included or have a characteristic, that particular component or feature is not required to be included or to have the characteristic. Such component or feature may be optionally included in some embodiments, or it may be excluded.

    [0010] There is a strong desire for compliance based portable gas detectors to be as user friendly as possible. One of the ways this can be accomplished is by limiting the device to a single button, reducing the interaction between the user and device. One of the issues with this arises if multiple types of user/device interactions are required, and it becomes difficult to come up with different types of single button interactions (e.g. long button press, short button press, double press, etc.) to cover all operations or interactions.

    [0011] In an example, gas detectors often require regular calibration (i.e. apply a known gas, read the sensor output, and adjust gas readings as needed) and bumping (i.e. apply a known gas to make sure all user alerts are still working as intended). Usually these actions are completed within a docking station or manually. When done manually, the problem described above may arise, where if there is only one button, it may be difficult to control the device to enter calibration or bump mode.

    [0012] Applicants have proposed a process using near field communication (NFC) between the gas detectors and one or more NFC tag. The tube that supplies the gas sample to the detector that is used for calibration (cal) and bumping (bump) may be redesigned to incorporate a passive NFC tag near the end of the tube operable to attach to the detector device. The NFC tag will contain information such as gas type, concentration, and the action required (bump or cal). To interact with the NFC tag, an NFC reader may be incorporated into the gas detector. When the tube is in place it will be in close enough proximity of the reader that the device will automatically read the information off the tube's NFC tag and put the device in to the appropriate mode. The proposed solution requires no interaction between the user and the device other than attaching the tube, reducing the potential for error, and reducing the time required for the bump/cal process.

    [0013] Referring now to FIG. 1A, a system 100 may comprise a detector device 102, such as a gas detector, one or more gas delivery tubes 104, and one or more NFC tags 105 attached to the gas deliver tubes 104. In some embodiments, the gas delivery tubes 104 may be part of a gas testing system. The detector 102 may comprise an attachment point 103 operable to connect to the gas delivery tube(s) 104 and an NFC reader 106. The NFC reader 106 may be operable to receive input from the NFC tag(s) 105. In some embodiments, the gas detector device may comprise a memory 112 and a processor 114. Additionally, the gas detector device may comprise an application stored in the memory 1 12, that when executed by the processor 1 14 receives instructions from the NFC tag 105 via the NFC reader 106, and executes an action based on the instructions from the NFC tag 105.

    [0014] Referring to FIG. IB, the system 100 may comprise a full gas testing system 120. In some embodiments, the NFC tag(s) 105 may be attached to the gas delivery tube 104 (as described above). Alternatively, the NFC tag(s) 105 may be attached to a gas tank 114 (which may deliver gas to the detector via a gas delivery tube 104). In alternative embodiments, the NFC tag(s) 105 may be attached to any part of the gas testing system 120, including the gas tank, the gas delivery tubes, and the area around the gas tank, for example. In some embodiments, the gas testing system 120 may comprise a testing card 122 comprising the NFC tag 105, wherein a user may swipe the card 122 near the gas detector device 102 to communicate the information. In some embodiments, the gas testing system 120 may comprise a poster 124 comprising the NFC tag 105, wherein a user may swipe the gas detector device 102 near the poster 124 to communicate the information.

    [0015] In FIGS. 1A- 1B, the detector 102 may comprise a single button 108 for interaction with a user. This may simplify the interactions required by a user, which may be hindered by a user wearing protective gear, such as gloves. In some embodiments, the detector 102 may also comprise a user interface 110, which may include a screen, a microphone, a speaker, etc., for interaction between the user and the detector 102.

    [0016] Referring to FIGS. 2A-2B, the gas delivery tube 104 may attach to the detector 102, and the NFC reader 06 of the detector 102 may interact with one of the NFC tags 05 to execute different actions, operations, or processes on the detector 102, as described above. In FIG. 2A the NFC tag 105 may initiate a bump process, by prompting the device to enter bump mode. In FIG. 2B the NFC tag 105 may initiate a calibration, by prompting the device to enter calibration mode. In other embodiments, additional NFC tags 105 may be used to initiate different actions on the detector 102,

    [0017] Embodiments of the disclosure may comprise a gas detector device comprising a processor; a memory; a near field communication (NFC) reader; an attachment point operable to attach to one or more gas delivery tubes, wherein the gas delivery tube comprises an NFC tag operable to interact with the NFC reader of the gas detector to give instructions to the detector; and an application stored in the memory , that when executed by the processor receives instructions from the NFC tag via the NFC reader, and executes an action based on the instructions from the NFC tag.

    [0018] In some embodiments, the NFC tag may instruct the detector to enter bumping mode. In some embodiments, the NFC tag may instruct the detector to enter calibration mode. In some embodiments, the gas delivery tube delivers gas to the gas detector to complete the action executed by the detector. In some embodiments, the gas detector is operable to attach to a plurality of gas deliver}' tubs and complete a plurality of actions. In some embodiments, the gas detector comprises a single button for interaction between a user and the detector. In some embodiments, the gas detector comprises a user interface for interaction between a user and the detector.

    [0019] Embodiments of the disclosure may comprise a gas detector device comprising a processor; a memory; a near field communication (NFC) reader; an attachment point operable to attach to a gas testing system, wherein the gas testing system comprises an NFC tag operable to interact with the NFC reader of the gas detector to give instructions to the detector; and an application stored in the memory, that when executed by the processor receives instructions from the NFC tag via the NFC reader, and executes an action based on the instructions from the NFC tag.

    [0020] In some embodiments, the gas detector device may comprise a gas sensor. In some embodiments, the gas sensor may receive the gas delivered by the gas delivery tube. In some embodiments, the gas testing system comprises a gas delivery tube operable to deliver gas to the gas detector to complete the action executed by the detector. In some embodiments, the gas testing system comprises one or more gas delivery tubes and one or more gas tank.

    [0021] Additional embodiments of the disclosure may comprise a method for completing an action on a gas detector device comprising: connecting, by the gas detector device, to a gas delivery tube of a gas testing system, wherein the gas delivery tube comprises a near field communication (NFC) tag; receiving, via an NFC reader of the gas detector device, instructions from the NFC tag for completing an action on the gas detector device; executing, by the gas detector device, the instructions received from the NFC tag via the NFC reader to complete the action on the gas detector device; and receiving sample gas output from the gas delivery tube to complete the action on the gas detector device. In some embodiments, the sample may be received by a sensor of the gas detector device.

    [0022] In some embodiments, the method may further comprise connecting, by the gas detector device, to a second gas delivery tube of the gas testing system, wherein the gas testing system comprises a second NFC tag; receiving, via the NFC reader of the gas detector device, instructions from the second NFC tag for completing a second action on the gas detector device; executing, by the gas detector device, the instructions received from the second NFC tag via the NFC reader to complete the second action on the gas detector device; and receiving sample gas output from the second gas delivery tube to complete the second action on the gas detector device. In some embodiments, the action comprises entering into bumping mode. In some embodiments, the method may further comprise completing a bump process by the gas detector. In some embodiments, the action comprises entering into calibration mode. In some embodiments, the method may further comprise completing a calibration process by the gas detector. In some embodiments, the NFC tag may be located on the gas delivery tube. In some embodiments, the gas detector comprises a single button for interaction between a user and the detector.

    [0023] Other embodiments of the disclosure may include a system for providing automatic interaction with gas detectors comprising: a gas testing system comprising one or more gas tanks containing sample gas for testing a gas detector device; one or more gas delivery tubes operable to attach to a gas detector device; and an NFC tag attached to each of the one or more gas delivery tubes. The system may also comprise a gas detector device comprising: a processor; a memory; a near field communication (NFC) reader, wherein the NFC tag of the gas delivery tubes is operable to interact with the NFC reader of the gas detector device to communicate instructions to the gas detector device; an attachment point operable to attach to the one or more gas delivery tubes; and an application stored in the memory, that when executed by the processor receives instructions from the NFC tag via the NFC reader, and executes an action based on the instructions from the NFC tag.

    [0024] In some embodiments, the NFC tag instructs the detector to enter bumping mode. In some embodiments, the NFC tag instructs the detector to enter calibration mode. In some embodiments, the gas delivery tube delivers gas to the gas detector to complete the action executed by the detector. In some embodiments, the gas detector is operable to attach to a plurality of gas deliver tubs and complete a plurality of actions. In some embodiments, the gas detector comprises a single button for interaction between a user and the detector, and a user interface for interaction between a user and the detector.

    [0025] While various embodiments in accordance with the principles disclosed herein have been shown and described above, modifications thereof may be made by one skilled in the art without departing from the the teachings of the disclosure. The embodiments described herein are representative only and are not intended to be limiting. Many variations, combinations, and modifications are possible and are within the scope of the disclosure. Alternative embodiments that result from combining, integrating, and/or omitting features of the embodiments) are also within the scope of the disclosure. Accordingly, the scope of protection is not limited by the description set out above, but is defined by the claims which follow, that scope including all equivalents of the subject matter of the claims. Each and every claim is incorporated as further disclosure into the specification and the claims are embodiments) of the present invention(s). Furthermore, any advantages and features described above may relate to specific embodiments, but shall not limit the application of such issued claims to processes and structures accomplishing any or all of the above advantages or having any or all of the above features.

    [0026] Additionally, the section headings used herein are provided to otherwise provide organizational cues. These headings shall not limit or characterize the invention(s) set out in any claims that may issue from this disclosure. Specifically and by way of example, although the headings might refer to a "Field," the claims should not be limited by the language chosen under this heading to describe the so-called field. Further, a description of a technology in the "Background" is not to be construed as an admission that certain technology is prior art to any invention(s) in this disclosure. Neither is the "Summary" to be considered as a limiting characterization of the invention(s) set forth in issued claims. Furthermore, any reference in this disclosure to "invention" in the singular should not be used to argue that there is only a single point of novelty in this disclosure. In all instances, the scope of the claims shall be considered on their own merits in light of this disclosure, but should not be constrained by the headings set forth herein.

    [0027] Use of broader terms such as "comprises", "includes", and "having" should be understood to provide support for narrower terms such as "consisting of, "consisting essentially of, and "comprised substantially of. Use of the term "optionally," "may," "might," "possibly," and the like with respect to any element of an embodiment means that the element is not required, or alternatively, the element is required, both alternatives being within the scope of the embodiment(s). Also, references to examples are merely provided for illustrative purposes, and are not intended to be exclusive.

    [0028] While several embodiments have been provided in the present disclosure, it should be understood that the disclosed systems and methods may be embodied in many other specific forms without departing from the scope of the present disclosure. The present examples are to be considered as illustrative and not restrictive, and the intention is not to be limited to the details given herein. For example, the various elements or components may be combined or integrated in another system or certain features may be omitted or not implemented.

    [0029] Also, techniques, systems, subsystems, and methods described and illustrated in the various embodiments as discrete or separate may be combined or integrated with other systems, modules, techniques, or methods without departing from the scope of the present disclosure. Other items shown or discussed as directly coupled or communicating with each other may be indirectly coupled or communicating through some interface, device, or intermediate component, whether electrically, mechanically, or otherwise. Other examples of changes, substitutions, and alterations are ascertainable by one skilled in the art and could be made without departing from the scope disclosed herein.


    Claims

    1. A gas detector device (102) comprising:

    a processor (114);

    a memory (112);

    a near field communication reader (106);

    an attachment point (103) configured to attach to a gas testing system (120), wherein the gas testing system (120) comprises a near field communication tag (105) configured to wirelessly interact with the near field communication reader (106) of the gas detector (102) to give instructions to the detector (102); and

    an application stored in the memory (112), that when executed by the processor (114) receives instructions from the near field communication tag (105) via the near field communication reader (106), and executes an action based on the instructions from the near field communication tag (105).


     
    2. The device (102) of claim 1, wherein the near field communication tag (105) instructs the detector (102) to enter bumping mode.
     
    3. The device (102) of claim 1, wherein the near field communication tag (105) instructs the detector (102) to enter calibration mode.
     
    4. The device (102) of claim 1, wherein the gas testing system (120) comprises a gas delivery tube (104) configured to deliver gas to the gas detector (102) to complete the action executed by the detector (102).
     
    5. The device (102) of claim 4, wherein the gas detector (102) is configured to attach to a plurality of gas delivery tubes (104) and complete a plurality of actions.
     
    6. The device (102) of claim 1, wherein the gas detector (102) comprises a single button (108) for interaction between a user and the detector (102).
     
    7. The device (102) of claim 1, wherein the gas testing system (120) comprises one or more gas delivery tubes (104) and one or more gas tank (114).
     
    8. A method for completing an action on a gas detector device comprising:

    connecting, by the gas detector device, to a gas delivery tube of a gas testing system, wherein the gas testing system comprises a near field communication tag;

    receiving, wirelessly via a near field communication reader of the gas detector device, instructions from the near field communication tag for completing an action on the gas detector device;

    executing, by the gas detector device, the instructions received from the near field communication tag via the near field communication reader to complete the action on the gas detector device; and

    receiving sample gas output from the gas delivery tube to a sensor of the gas detector device to complete the action on the gas detector device.


     
    9. The method of claim 8, further comprising:

    connecting, by the gas detector device, to a second gas delivery tube of the gas testing system, wherein the gas testing system comprises a second near field communication tag; receiving, wirelessly via the near field communication reader of the gas detector device, instructions from the second near field communication tag for completing a second action on the gas detector device;

    executing, by the gas detector device, the instructions received from the second near field communication tag via the near field communication reader to complete the second action on the gas detector device; and

    receiving sample gas output from the second gas delivery tube to a sensor of the gas detector device to complete the second action on the gas detector device.


     
    10. The method of claim 8, wherein the action comprises entering into bumping mode.
     
    11. The method of claim 10, further comprising completing a bump process by the gas detector.
     
    12. The method of claim 8, wherein the action comprises entering into calibration mode.
     
    13. The method of claim 12, further comprising completing a calibration process by the gas detector.
     
    14. The method of claim 8, wherein the near field communication tag is located on the gas delivery tube.
     
    15. The method of claim 8, wherein the gas detector comprises a single button for interaction between a user and the detector.
     


    Ansprüche

    1. Gasdetektorvorrichtung (102), umfassend:

    einen Prozessor (114);

    einen Speicher (112);

    einen Nahfeldkommunikationsleser (106);

    einen Befestigungspunkt (103), der ausgestaltet ist, an einem Gasprüfsystem (120) befestigt zu werden, wobei das Gasprüfsystem (120) ein Nahfeldkommunikationstag (105) umfasst, das ausgestaltet ist, mit dem Nahfeldkommunikationsleser (106) des Gasdetektors (102) drahtlos zu interagieren, um dem Detektor (102) Anweisungen zu geben; und

    eine in dem Speicher (112) gespeicherte Anwendung, die, wenn sie durch den Prozessor (114) ausgeführt wird, Anweisungen von dem Nahfeldkommunikationstag (105) über den Nahfeldkommunikationsleser (106) empfängt, und eine Aktion auf Grundlage der Anweisungen von dem Nahfeldkommunikationstag (105) ausführt.


     
    2. Vorrichtung (102) nach Anspruch 1, wobei das Nahfeldkommunikationstag (105) den Detektor (102) anweist, in einen Funktionsprüfungsmodus einzutreten.
     
    3. Vorrichtung (102) nach Anspruch 1, wobei das Nahfeldkommunikationstag (105) den Detektor (102) anweist, in einen Kalibrierungsmodus einzutreten.
     
    4. Vorrichtung (102) nach Anspruch 1, wobei das Gasprüfsystem (120) eine Gaszufuhrleitung (104) umfasst, die ausgestaltet ist, Gas zu dem Gasdetektor (102) zuzuführen, um die durch den Detektor (102) ausgeführte Aktion durchzuführen.
     
    5. Vorrichtung (102) nach Anspruch 4, wobei der Gasdetektor (102) ausgestaltet ist, an mehreren Gaszufuhrleitungen (104) befestigt zu sein und mehrere Aktionen durchzuführen.
     
    6. Vorrichtung (102) nach Anspruch 1, wobei der Gasdetektor (102) eine einzelne Taste (108) für eine Interaktion zwischen einem Benutzer und dem Detektor (102) aufweist.
     
    7. Vorrichtung (102) nach Anspruch 1, wobei das Gasprüfsystem (120) eine oder mehrere Gaszufuhrleitungen (104) und einen oder mehrere Gasbehälter (114) umfasst.
     
    8. Verfahren zum Durchführen einer Aktion an einer Gasdetektorvorrichtung, umfassend:

    Verbinden, durch die Gasdetektorvorrichtung, mit einer Gaszufuhrleitung eines Gasprüfsystems, wobei das Gasprüfsystem ein Nahfeldkommunikationstag umfasst;

    Empfangen, drahtlos über einen Nahfeldkommunikationsleser der Gasdetektorvorrichtung, von Anweisungen von dem Nahfeldkommunikationstag zum Durchführen einer Aktion an der Gasdetektorvorrichtung;

    Ausführen, durch die Gasdetektorvorrichtung, der von dem Nahfeldkommunikationstag über den Nahfeldkommunikationsleser empfangenen Anweisungen zum Durchführen der Aktion an der Gasdetektorvorrichtung; und

    Empfangen einer Messgasausgabe von der Gaszufuhrleitung zu einem Sensor der Gasdetektorvorrichtung zum Durchführen der Aktion an der Gasdetektorvorrichtung.


     
    9. Verfahren nach Anspruch 8, ferner umfassend:

    Verbinden, durch die Gasdetektorvorrichtung, mit einer zweiten Gaszufuhrleitung des Gasprüfsystems, wobei das Gasprüfsystem ein zweites Nahfeldkommunikationstag umfasst; Empfangen, drahtlos über den Nahfeldkommunikationsleser der Gasdetektorvorrichtung, von Anweisungen von dem zweiten Nahfeldkommunikationstag zum Durchführen einer zweiten Aktion an der Gasdetektorvorrichtung;

    Ausführen, durch die Gasdetektorvorrichtung, der von dem zweiten Nahfeldkommunikationstag über den Nahfeldkommunikationsleser empfangenen Anweisungen zum Durchführen der zweiten Aktion an der Gasdetektorvorrichtung; und

    Empfangen einer Messgasausgabe von der zweiten Gaszufuhrleitung zu einem Sensor der Gasdetektorvorrichtung zum Durchführen der zweiten Aktion an der Gasdetektorvorrichtung.


     
    10. Verfahren nach Anspruch 8, wobei die Aktion ein Eintreten in einen Funktionsprüfungsmodus umfasst.
     
    11. Verfahren nach Anspruch 10, ferner umfassend Durchführen eines Funktionsprüfungsprozesses durch den Gasdetektor.
     
    12. Verfahren nach Anspruch 8, wobei die Aktion ein Eintreten in einen Kalibrierungsmodus umfasst.
     
    13. Verfahren nach Anspruch 12, ferner umfassend Durchführen eines Kalibrierungsprozesses durch den Gasdetektor.
     
    14. Verfahren nach Anspruch 8, wobei das Nahfeldkommunikationstag an der Gaszufuhrleitung angeordnet ist.
     
    15. Verfahren nach Anspruch 8, wobei der Gasdetektor eine einzelne Taste für eine Interaktion zwischen einem Benutzer und dem Detektor aufweist.
     


    Revendications

    1. Dispositif détecteur de gaz (102) comprenant :

    un processeur (114) ;

    une mémoire (112) ;

    un lecteur de communication en champ proche (106) ;

    un point d'attache (103) configuré de façon à attacher à un système de contrôle de gaz (120), ce système de contrôle de gaz (120) comprenant une étiquette de communication en champ propre (105) configurée de façon à interagir sans fil avec le lecteur de communication en champ proche (106) du détecteur de gaz (102) pour donner des instructions au détecteur (102) ; et

    une application stockée dans la mémoire (112), qui, lorsqu'elle est exécutée par le processeur (114), reçoit des instructions de l'étiquette de communication en champ propre (105) via le lecteur de communication en champ proche (106), et qui exécute une action en se basant sur les instructions venant de l'étiquette de communication en champ propre (105).


     
    2. Dispositif (102) selon la revendication 1, dans lequel l'étiquette de communication en champ propre (105) demande au détecteur (102) d'entrer dans le mode de vérification.
     
    3. Dispositif (102) selon la revendication 1, dans lequel l'étiquette de communication en champ propre (105) demande au détecteur (102) d'entrer dans le mode de calibrage.
     
    4. Dispositif (102) selon la revendication 1, dans lequel le système de contrôle de gaz (102) comporte un tube de distribution de gaz (104) configuré de façon à distribuer du gaz au détecteur de gaz (102) afin d'accomplir l'action exécutée par le détecteur (102).
     
    5. Dispositif (102) selon la revendication 4, dans lequel le détecteur de gaz (102) est configuré de façon à être attaché à une pluralité de tubes de distribution de gaz (104) et à accomplir une pluralité d'actions.
     
    6. Dispositif (102) selon la revendication 1, dans lequel le détecteur de gaz (102) comporte un seul bouton (108) pour permettre l'interaction entre un utilisateur et le détecteur (102).
     
    7. Dispositif (102) selon la revendication 1, dans lequel le système de contrôle de gaz (120) comporte un ou plusieurs tubes de distribution de gaz (104) et un ou plusieurs réservoirs de gaz (114).
     
    8. Procédé pour accomplir une action sur un dispositif détecteur de gaz comprenant :

    le raccordement, par le dispositif détecteur de gaz, à un tube de distribution de gaz d'un système de contrôle de gaz, ce système de contrôle de gaz comportant une étiquette de communication en champ propre ;

    la réception, sans fil via un lecteur de communication en champ proche du dispositif détecteur de gaz, d'instructions venant de l'étiquette de communication en champ propre pour accomplir une action sur le dispositif détecteur de gaz ;

    l'exécution, par le dispositif détecteur de gaz, des instructions reçues de l'étiquette de communication en champ propre via le lecteur de communication en champ proche pour accomplir l'action sur le dispositif détecteur de gaz ; et

    la réception d'une sortie de gaz échantillon venant du tube de distribution de gaz jusqu'à un capteur du dispositif détecteur de gaz pour accomplir l'action sur le dispositif détecteur de gaz.


     
    9. Procédé selon la revendication 8, comprenant en outre :

    le raccordement, par le dispositif détecteur de gaz, à un deuxième tube de distribution de gaz du système de contrôle de gaz, le système de contrôle de gaz comportant une deuxième étiquette de communication en champ propre ;

    la réception, sans fil via le lecteur de communication en champ proche du dispositif détecteur de gaz, d'instructions venant de la deuxième étiquette de communication en champ propre pour accomplir une deuxième action sur le dispositif détecteur de gaz ;

    l'exécution, par le dispositif détecteur de gaz, des instructions reçues de a deuxième étiquette de communication en champ propre via le lecteur de communication en champ proche pour accomplir la deuxième action sur le dispositif détecteur de gaz ; et

    la réception d'une sortie de gaz échantillon venant du tube de distribution de gaz jusqu'à un capteur du dispositif détecteur de gaz pour accomplir la deuxième action sur le dispositif détecteur de gaz.


     
    10. Procédé selon la revendication 8, dans lequel l'action consiste en l'entrée dans le mode de vérification.
     
    11. Procédé selon la revendication 10, comprenant en outre l'accomplissement d'un processus de vérification par le détecteur de gaz.
     
    12. Procédé selon la revendication 8, dans lequel l'action consiste en l'entrée dans le mode de calibrage.
     
    13. Procédé selon la revendication 12, comprenant en outre l'accomplissement d'un processus de calibrage par le détecteur de gaz.
     
    14. Procédé selon la revendication 8, dans lequel l'étiquette de communication en champ propre est située sur le tube de distribution de gaz.
     
    15. Procédé selon la revendication 8, dans lequel le détecteur de gaz comporte un seul bouton pour permettre l'interaction entre un utilisateur et le détecteur.
     




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    Cited references

    REFERENCES CITED IN THE DESCRIPTION



    This list of references cited by the applicant is for the reader's convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.

    Patent documents cited in the description