Monitoring box for a hospital fluid network with two operating modes

The fluid monitoring box with dual operating modes simplifies configuration and secure access, addressing setup and maintenance challenges by enabling easy parameterization and secure operation in hospital environments.

FR3160036A1Pending Publication Date: 2025-09-12AIR LIQUIDE MEDICAL
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Patent Information

Application Number
FR2024002295
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-07
Publication Date
2025-09-12

AI Technical Summary

Technical Problem

Existing fluid monitoring boxes in hospital environments face challenges in configuration complexity, unauthorized modifications, and untimely alarm triggering, necessitating a simplified and secure setup process during installation and maintenance.

Method used

A fluid monitoring box with two operating modes - 'normal' and 'maintenance' - allowing easy configuration and secure access, featuring mode selection, audible and visual alarms, and secure compartment locking, along with storage of configuration parameters for each fluid line.

Benefits of technology

Facilitates straightforward setup and maintenance while preventing unauthorized changes, ensuring timely alarm activation only in the 'normal' mode, thus enhancing operational reliability and security.

✦ Generated by Eureka AI based on patent content.

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Abstract

Title of the invention Monitoring box for a hospital fluid network with two operating modes The invention relates to an installation (1) for conveying fluid, such as gases or vacuum, in a hospital establishment, comprising fluid conveying lines (14-1 to 14-3) with pressure sensors (5), and a fluid monitoring box (3) and alarm means (35). The front housing part (11) comprises mode selection means (18) arranged in the internal compartment (32) of the box (3) and operable by the user to activate a so-called "normal operating" mode or a so-called "maintenance" mode. Abstract figure: Figure 1
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Description

Title of the invention: Monitoring box for a hospital fluid network with two operating modes

[0001] The invention relates to a fluid conveyance installation in a hospital establishment equipped with a box or device for monitoring medical fluids, such as gases or medical vacuum (i.e. depression).

[0002] Medical fluid monitoring boxes are mandatory safety elements that make it possible to monitor medical fluid distribution networks, typically lines or pipes for conveying medical gases, such as air, oxygen or nitrous oxide (N2O), or even carbon dioxide (CO2), or vacuum (i.e. depression), arranged in hospital establishments, such as hospitals, clinics or the like.

[0003] A monitoring box is usually installed on a wall, a partition or the like, of the hospital establishment in question, for example in the area(s) of production of medical fluids and / or at the entrance to one or more hospital departments. Pressure sensors connected to the different lines of the network of medical fluids to be monitored are electrically connected to the monitoring box, in particular to the control means of the box to which the sensors supply the pressure measurements made so that they can be processed electronically.

[0004] Each pressure sensor is connected to a monitoring channel of the monitoring box which is configured specifically. More precisely, in order to ensure correct monitoring of the fluid network, it is essential to define the parameters characterizing each monitoring channel of the box in order to then be able to trigger an alarm when an anomaly is detected, typically a crossing of the alert pressure threshold value for example.

[0005] However, the programming of the box varies according to the different parameters to be monitored, in particular according to the type of fluid monitored (i.e. oxygen, air, nitrous oxide or vacuum, i.e. depression), the type of sensor (i.e. its intrinsic characteristics), the pressure levels to be monitored, etc., but also according to the use of the box, for example to monitor fluid production or a fluid supply. The programming or configuration of the box is usually done at the time of commissioning of the monitoring box, i.e. when it is installed in the hospital or similar. Sometimes, (re)programming may also be necessary after commissioning, for example after a few months, typically in the event of modifications following a maintenance operation or similar.

[0006] For obvious reasons, it is desirable that the configuration can be done as simply as possible but that after configuration of the box, it is not possible for unauthorized persons, such as hospital staff, to modify the configuration of the box. The configuration must also be possible without causing an untimely alarm triggering.

[0007] Furthermore, it must be possible to easily check the correct operation of the box, in particular of an audible alarm, but without giving access to the internal elements of the box in order to avoid incorrect handling which could lead to a malfunction of the settings.

[0008] A problem is therefore to propose an improved installation for conveying fluids in a hospital establishment, in particular to allow and / or facilitate the configuration of a fluid monitoring box used in the installation, in particular during the start-up of the box, typically at the end of a worksite for installing a fluid network, i.e. medical gases and / or medical vacuum, while avoiding all or part of the aforementioned problems.

[0009] A solution then concerns an installation for conveying fluid (i.e. one or more fluids) in a hospital establishment, comprising: - fluid delivery lines each comprising a pressure sensor, - a fluid monitoring box electrically connected to the pressure sensors to recover pressure measurements from said pressure sensors, comprising: • storage means for storing low and / or high pressure thresholds for each of the fluid delivery lines, • processor control means for processing the pressure measurements from the pressure sensors and determining any inadequate pressure by comparing said pressure measurements with the stored low and high pressure thresholds, and • alarm means controlled by the control means.

[0010] Furthermore, in the installation of the invention, the fluid monitoring box is configured to operate according to two operating modes comprising:

[0011] - a so-called “normal operating” mode, in which the control means are configured to activate the alarm means and trigger at least one audible alarm, when the control means detect inadequate pressure in one of said fluid delivery lines, and

[0012] - a so-called “maintenance” mode, in which the control means are configured to prevent any audible alarm from being triggered.

[0013] Furthermore, the fluid monitoring box further comprises means of mode selection, operable by a user, to activate the “normal operating” mode or, alternatively, the “maintenance” mode, when manually operated by the user.

[0014] Depending on the embodiment considered, the installation of the invention may comprise one or more of the following characteristics: - the mode selection means comprise a button, such as a push button, a rocker switch (such as a switch) or the like. - the mode selection means are arranged inside the case. - the mode selection means are arranged on an electronic card forming part of the means of control. - alarm means include a buzzer. - the housing includes display means, in particular a display screen. - the fluid monitoring housing comprising a rear housing part and a front housing part defining between them an internal compartment of the housing. - the front housing part is pivotally mounted (axis XX), i.e. articulated, on the rear housing part between at least one open position in which a user has access to the internal compartment and a closed position in which the user does not have access to the internal compartment. - the front housing part comprises on the internal side, the processor control means configured to operate a monitoring of the pressure in the fluid delivery lines by processing the pressure measurements coming from the pressure sensors. - the front casing part includes on the front, at least one control key activated by digital pressure from the user, for example by pressing the index finger. - the fluid monitoring box and the fluid delivery lines are arranged within the hospital establishment, in particular mounted on one or more walls of said hospital establishment. - the mode selection means are arranged in the front housing part of the housing. - in “maintenance” mode, the control means allow you to configure the box, i.e. to set or select at least one configuration parameter. - the box includes, on the front, at least one control key configured, when the “normal operating” mode has been activated, to allow the user to stop an audible alarm having been triggered by the means alarm or to test the correct operation of the audible alarm means. the housing comprises, on the front, at least one control key configured to, when the “maintenance” mode has been activated, allow the user to select or set at least one configuration parameter. the alarm means are configured to trigger an audible alarm and a visual alarm. the rear housing part is fixed to a wall of the hospital establishment, for example a wall, a partition or the like. the electronic card of the box includes the (micro)processor. at least two finger-activated control keys The user's keys are arranged on the front of the box, i.e. two separate keys. The two control keys include a first control key and a second control key. the first control key is configured to allow the user to stop an audible alarm having been triggered by the alarm means when the "normal operating" mode is activated and / or to choose a display language when the "maintenance" mode is activated. the second control key is configured to allow the user to test correct operation of the alarm means, in particular the audible alarm, when the “normal operating” mode is activated and / or select or set at least one configuration parameter of the box when the “maintenance” mode is activated. said at least one configuration parameter of the box is chosen from a type of fluid, a type of pressure sensor, a low pressure threshold and a high pressure threshold. the second control key is configured to allow the user to select or set multiple configuration parameters, in particular a set of configuration parameters. when the “maintenance” mode is activated, the control means are configured to control the alarm means to deliver an audible signal at a given frequency, typically every 1 to 10 minutes, typically every 3 to 7 minutes, in particular an audible “beep” signaling that the box is in “maintenance” mode. the control means are configured to continue to monitor the pressure in the fluid delivery lines, including when the “maintenance” mode is activated. when the "maintenance" mode is activated, the alarm means are configured to trigger or deliver a visual alarm to signal to the user that the box is in “maintenance” mode or that inadequate pressure has been detected by the control means. - the fluid delivery lines are chosen from at least one oxygen line, one air line and one vacuum line, or even one nitrous oxide line and / or one CO2 line. - the fluid monitoring box and the fluid delivery lines are arranged on one or more walls of the hospital establishment. - the front casing part comprises display means arranged on the front, i.e. on the outside, for example a display screen. - the alarm means cooperating with the display means to display or trigger a visual alarm, simultaneously with the triggering of an audible alarm. - the alarm means are controlled by the pilot means.

[0015] Depending on the embodiment considered, the housing and / or the installation according to the invention may comprise one or more of the following additional characteristics: - the housing comprises several monitoring channels each comprising means of electrical connection to a pressure sensor, the monitoring channels being electrically connected to the pressure sensors, via electrical connection means and electrical links. - processor control means cooperating with the monitoring channels to process pressure measurements from the pressure sensors. - the processor control means comprise one or more (micro)processor(s). - the (micro)processor(s) are arranged on (at least) one electronic card electronics. - the processor control means include a microcontroller. - the electronic card(s) is (are) arranged in the front part of the case, i.e. on the inside. - the alarm means are controlled by the pilot means. - the visual alarm comprises a light signal, for example a flashing or fixed light, and / or a display on the display means of an alarm message or an alarm pictogram, or other. - the housing comprises storage means configured to store several sets (Ei) of configuration parameters, where each set (Ei) of configuration parameters comprises several configuration parameters chosen from a type of fluid, a type of pressure sensor, a low pressure threshold and a high pressure threshold. selection means configured to allow an operator to choose at least one of said sets (Ei) of stored configuration parameters and to associate it specifically with one of the monitoring channels, the front housing part is pivotally mounted (ie articulated) on the rear housing part around a horizontal pivot axis, typically a hinge or the like. the front housing part tilts around the horizontal pivot axis of the housing until it reaches the open position. the front housing part tilts around the horizontal pivot axis of the housing by an angle of between approximately 120 and 180°. the horizontal pivot axis of the case is arranged at the bottom of the case, typically at the lower edge of the rear case part, when the rear case part is considered arranged on a wall, i.e. at the edge of the rear case part located closest to the ground. in the closed position, the front case part covers and closes the rear case part, i.e. a user does not have access to the internal compartment of the case. the housing comprises locking means configured to allow the front housing part to be locked onto the rear housing part to prevent an unauthorized person from putting it in the open position, i.e. to prevent any access to the internal compartment, the locking means can be unlocked to release the front housing part and allow passage into the open position using a dedicated unlocking means, such as a tool, a key, a code or the like, the locking means comprise an opening and / or closing mechanism. the opening and / or closing mechanism is configured to be operable by means of a dedicated tool or a key in order to operate a locking or unlocking operation. alternatively, the opening and / or closing mechanism comprises a locking / unlocking system by confidential or biometric code, the monitoring channels comprise electrical connections connecting the control means to the electrical connection means, for example wired connections, of the printed circuit type or others. the rear part of the box includes one or more inlets or openings sized to allow the passage of electrical connections, such as cables or others. the front and rear parts of the case form a rigid enclosure, in particular in the closed position. the front and rear parts of the case are made of polymer or other suitable material. the processor control means comprise one or more (micro)processor(s). storage means include computer memory, such as flash memory, RAM or other. the storage means are arranged on the electronic card(s). according to one embodiment, the or one electronic card comprises at least one USB type connection socket allowing an external device to be connected to it, via an additional USB cable or the like, for example an external device allowing advanced or other configuration to be carried out. the control means are configured to compare the pressure measurements from the different monitoring channels with the low pressure and / or high pressure thresholds of the configuration parameters associated with the different monitoring channels and stored by the data storage means in order to trigger an audible alarm and / or a visual alarm when an inadequate or non-compliant pressure is detected, i.e. typically an excessive or insufficient pressure compared to the low pressure and / or high pressure thresholds. the control means are configured to determine that a measured pressure is inadequate and / or non-compliant and corresponds to an excessive pressure when said measured pressure is greater than a given high pressure threshold, i.e. stored. the control means are configured to determine that an inadequate and / or non-compliant measured pressure corresponds to an insufficient pressure when said measured pressure is lower than a given low pressure threshold, i.e. stored. the electrical connection means of the housing comprise electrical connectors or the like, such as an electrical terminal block or the like, i.e. several electrical connection locations, each electrical connection location of the housing is configured to connect a pressure sensor there. the box includes 2 to 10 monitoring channels, preferably 3 to 8 monitoring channels, for example 4 channels. the monitoring channels are arranged in parallel with each other, each or the sets (Ei) of configuration parameters comprise as configuration parameter a type of fluid chosen from at least oxygen, air and / or vacuum (i.e. depression), or even nitrous oxide and / or carbon dioxide (CO2) and / or another medical gas, typically medical-grade oxygen or air. the fluid delivery lines are selected from at least one oxygen line, one air line and one vacuum line, and optionally one nitrous oxide line and / or one carbon dioxide (CO2) line and / or another medical gas. the fluid monitoring box and the fluid delivery lines are arranged within the hospital establishment, in particular mounted on one or more walls of said hospital establishment, i.e. a wall, a partition, a ceiling or other. the sets (Ei) of configuration parameters include as a configuration parameter, for a pressurized gas, a low pressure threshold between 3 and 7 bar abs and a high pressure threshold between 4.5 and 10 bar abs. the sets (Ei) of configuration parameters include as configuration parameter, for vacuum (depression), a low pressure threshold between -0.8 and -0.3 bar abs and a high pressure threshold between -0.1 and 0.5 bar abs. the set (Ei) of configuration parameters includes as a configuration parameter, a type of sensor chosen from a 0 to 16 bar sensor, a 0 to 250 bar sensor and a 0 to -0.90 bar sensor. alternatively, the set (Ei) of configuration parameters includes as a configuration parameter, a type of sensor chosen from the all-or-nothing sensors. alternatively, the sets (Ei) of configuration parameters comprise as a parameter of a gas production source, a low pressure threshold of between 15 and 25 bar abs, for example of the order of 17 bar abs, or a high pressure threshold of between 110 and 150 bar abs, for example of the order of 130 bar abs. the selection means are configured to allow the operator to choose several sets (Ei) of stored configuration parameters and to associate said sets (Ei) of configuration parameters specifically with dedicated monitoring channels. the display means are configured to display data or information useful to the operator, in particular the configuration parameters, the set (Ei) of configuration parameters, the different channels, one or more alarm (thresholds) or others.

[0016]

[0017]

[0018]

[0019]

[0020] - the display means include a color or black and white display screen. - according to one embodiment, the display screen may be a touch screen. - the control means are configured to command or control the displays on display media. - the control means are electrically connected to the display means, for example via an electrical cable or other. - the audible alarm means are configured to emit an audible signal(s) audible to the human ear when triggered. - the audible alarm means comprise a loudspeaker device, integrated into the housing, typically of the buzzer type or the like. - the visual alarm means are configured to emit one or more visual signals, for example a visual alert displayed on the display screen and / or a light signal emitted by one or more diodes (LEDs) of the housing. - it includes electrical supply means supplying the elements requiring electrical current to operate, in particular the control means and / or the display means and / or the alarm means. - the electrical supply means include means of connection to the mains (110 / 220V), in particular one or more electrical supply cables. - pressure sensors provide measurements of the pressure or depression (i.e. vacuum) measured in the fluid delivery lines, to the control means which process these measurements in order to trigger an alarm in the event of detection of inadequate pressure, or even another problem, in particular excessive or insufficient pressure. The invention will now be better understood thanks to the following detailed description, given for illustrative but non-limiting purposes, with reference to the appended figures among which: [Fig.l] shows a diagram of an embodiment of a fluid conveying installation comprising a monitoring box according to the invention. [Fig.2] shows a diagram of an embodiment of the front panel of a housing according to the invention. [Fig.3] shows a diagram of a housing according to the invention with the front housing part in the open position. [Fig.l] schematizes an embodiment of a fluid conveying installation 1 according to the invention comprising several fluid conveying lines 14-1, 14-2, 14-3 forming part of a network of fluid pipes 14 arranged within a hospital establishment, such as a hospital, a clinic or the like. For example, a oxygen delivery line 14-1, a medical air delivery line 14-2 and a vacuum delivery line 14-3, i.e. depression (i.e. < 1 atm).

[0021] The network 14 of pipes makes it possible to convey medical fluids, i.e. here gases and vacuum (depression), from their production or storage site on the site of the hospital establishment, to wall distribution outlets 10 arranged in their places of use within the hospital establishment, such as treatment, operating or recovery rooms, emergency rooms, bedrooms or others.

[0022] Thus, medical grade air can be produced directly on site by means of a PSA air 12 type unit, as described by EP-A-864818, and the same applies to vacuum which can also be produced on site by means of one (or more) vacuum pumps 13, as described by EP-A-1026567.

[0023] Furthermore, oxygen or other gases, such as N2O or CO2, can be produced off-site, before being brought there by tanker or the like, where they are stored in storage tanks 11, or gas cylinders which can be arranged in a frame bringing together several cylinders connected together.

[0024] Alternatively, oxygen can also be produced on site by a VS A O2 type unit. In a known manner, a PSA (pressure swing adsorption) unit can produce gas by pressure modulation, while a VSA (vacuum swing adsorption) unit can produce gas by vacuum modulation.

[0025] The fluid conveying lines 14-1, 14-2, 14-3 of the pipe network 14 are usually fixed to the walls or partitions of the hospital establishment. The same applies to the wall outlets 10 located at the free ends of these fluid conveying lines, as described by EP-A-3719377.

[0026] The installation 1 further comprises a monitoring box 3 for the network 14 formed of two half-boxes 30, 31, namely a rear box part 30 and a front box part 31 defining between them an internal compartment 32 of the box 3.

[0027] The front housing part 31 is pivotally mounted, i.e. articulated, on the rear housing part 10, typically around a horizontal axis XX carried by the lower edge 33 of the housing 3, between at least one open position in which a user has access to the internal compartment 32, as illustrated in [Fig. 3], and a closed position in which the user does not have access to the internal compartment 32, with the front housing part 31 covering the rear housing part 30 in the manner of a lid.

[0028] As illustrated in [Fig. 3], the tilting of the front housing part 31 to move from the closed position to the open position (see [Fig. 3]), can be done at an angle A of between approximately 120° and 180°, preferably between approximately 140° and 180°, which gives easy access to the elements present on the internal side 3-2 of the front part 31 of the housing 3, typically to the control means 4 (i.e. electronic card 34, mi microprocessor 4-1, memory 4-2...), to the audible alarm means 35, to the channels 16; 16-1... 16-4, that is to say the electrical connections used for the connection of measuring means 5....

[0029] The front housing part 31 comprises, on its internal side 31-1, control means 4 comprising one (or more) (micro) processor(s) 4-1 implementing one or more algorithms to process measurements, information, data, or other, and / or trigger one or more alarms as explained below. The monitoring housing 3 forms a rigid box, for example made of polymer, which is fixed to a wall of the hospital establishment.

[0030] The control means 4 may also be called a control unit, information processing unit or means, on-board electronics, controller or the like. They typically comprise an electronic card 34 carrying the (micro)processor(s) 4-1 and advantageously storage means 4-2, such as a flash memory or the like, used to store or store configuration parameters, data or other information, as illustrated in [Fig.l] and [Fig.3].

[0031] Furthermore, the front casing part 31 comprises, on the front 3-1, that is to say on the external side of the casing 3 as illustrated in [Fig.2], a display means 19, such as a screen or display 19-1, and, on the internal side 3-2, alarm means 35 capable of triggering an audible alarm, typically a loudspeaker device or the like, such as a buzzer, carried here by the electronic card 34, and preferably a visual alarm, such as a light signal or alert information displayed on the display means 19, such as the screen 19-1.

[0032] The display means 19 and the sound alarm means 35 are controlled by the control means 4. Preferably, the screen 19-1 is in color and is used to display different information.

[0033] The housing 3 also comprises several channels 16; 16-1... 16-4, that is to say electrical connections, intended for the connection of measuring means 5, typically pressure sensors 5-1, 5-2, 5-3 used to provide pressure measurements measured or determined by these measuring means 5, to the control means 4 which process them. Optionally, it is also possible to provide a device 15 for monitoring the production of vacuum by the vacuum pump 13 or by one of the other gas sources 11, 12, ie PSA or other.

[0034] More precisely, the pressure sensors 5-1, 5-2, 5-3 acting as measuring means 5 are arranged on the different fluid conveying lines 14-1, 14-2, 14-3 of the network 14 so as to be able to measure the pressure of the fluids circulating in these different lines 14-1, 14-2, 14-3.

[0035] These pressure sensors 5-1, 5-2, 5-3 are electrically connected to the control means 4 by the electrical connections 6, such as electrical cables or the like, and electrical connection means, such as electrical connectors, for example a terminal block or the like comprising several connection locations, and in order to provide them with the pressure measurements made, i.e. values ​​or signals. For example, a Huba® brand 0-16 bar analog pressure sensor can be used.

[0036] In other words, the control means 4 are configured to monitor the pressure in the fluid delivery lines 14-1-14-3 by processing the pressure measurements coming from the pressure sensors 5 and thus being able to detect any inadequate pressure, i.e. excessive or insufficient.

[0037] Similarly, the vacuum pump 13 used to produce the vacuum, i.e. the depression used for suction, can be equipped with a monitoring device 15, which returns a summary of the equipment faults (i.e. breakdowns or anomalies), also connected to the control means 4, via a dedicated channel 6-4, to provide them with operating information on the pump 13 in order to be able to detect any malfunction of this vacuum pump 13 and trigger one (or more) alarms in response to this detection.

[0038] The pressure measurements from the measuring means 5 are processed by computer by the control means 4, in particular by the processor(s) 4-1, to detect any pressure problem or possible malfunction of the network 14, i.e. the fluid delivery lines 14-1, 14-2, 14-3, or the vacuum pump 13, for example inadequate pressures, i.e. non-compliant, typically excessive or insufficient pressures, and then trigger an audible alarm and / or a visual alarm in response to the detection, for example, of a pressure drop in one of the gas pipes of the network 14 or a malfunction of the vacuum pump 13, in order to alert the hospital staff and allow them to take appropriate measures.

[0039] Electrical power supply means 20, such as the mains (110 / 220 V), electrically supply the various components of the installation 1 requiring electrical current to operate, in particular the control means 4, the various sensors 5, the monitoring device 15, the vacuum pump 13, etc.

[0040] In order for the control means 4 to be able to fulfill their function, it is imperative that the monitoring box 3 be programmed or configured correctly, particularly when it is put into service, in order to ensure compliance of the installation, particularly in terms of safety. In particular, the alarm pressure thresholds, i.e. the high and low pressure thresholds, must be defined precisely, as well as other configuration parameters, as explained below.

[0041] To do this, each channel 16 of the box 3 is configured within the monitoring box 3, that is to say that specific configuration parameters associated with each of the different channels 16 are stored within the storage means. 4-2.

[0042] Similarly, the storage means 4-2, for example a flash memory or RAM, also serve to store low and / or high pressure thresholds for each of the fluid delivery lines 14-1 to 14-3, and / or settings of the housing 3.

[0043] The control means 4 with processor 4-1 process the pressure measurements coming from the pressure sensors 5 in order to detect any inadequate pressure, i.e. excessive or insufficient, by comparing the pressure measurements made by the sensors 5 and transmitted to the control means 4, with the low and high pressure thresholds stored by the storage means 4-2.

[0044] The parameterization, that is to say the configuration parameters, of the different channels 16 of the monitoring box 3, in particular the low and high pressure thresholds, will vary according to the fluid monitored by each of these channels 16 and / or, possibly according to the type of use, for example monitoring of production or monitoring of the supply of a service.

[0045] In general, a monitoring box 3 of an installation 1 according to the invention can comprise up to 8 to 10 different channels.

[0046] To do this, a set (Ei) of several (i>2) specific configuration parameters is defined and stored within the storage means 4-2, namely typically: - the type of fluid, typically oxygen, air, vacuum, or even nitrous oxide (N2O), CO2 or other, - the high and / or low alarm pressure thresholds correspond to the type of fluid considered, - the type of sensor used, i.e. the characteristics of the sensor connected to channel 16 in question, and / or - preferably the type of hospital service supplied by the fluid in question, for example cardiology......

[0047] Each set (Ei) of configuration parameters is then specifically assigned to one or other of the channels 16 considered. It is therefore specific, (i.e. dedicated and / or associated) with one of the (i=4) channels 16, for example one of the 4 channels 16 shown diagrammatically in [Fig.l].

[0048] Thus, we have for example:

[0049] - a first set of configuration parameters (Ei) is specific to the first channel 16-1 which is connected (via a first electrical connection 6-1) to the first pressure sensor 5-1 measuring the oxygen pressure in the oxygen delivery line 14-1 supplied by the oxygen source 11;

[0050] - a second set of configuration parameters (E2) is specific to the second track 16-2 which is connected (via a second electrical connection 6-2) to the second pressure sensor 5-2 measuring the medical air pressure in the medical air delivery line 14-2 supplied by the medical air source 12; and

[0051] - a third set of configuration parameters (E3) is specific to the third channel 16-3 which is connected (via a third electrical connection 6-3) to the third pressure sensor 5-3 measuring the depression (i.e. vacuum level) in the vacuum delivery line 14-3 connected to the vacuum pump 13.

[0052] The electrical connections 6-1 to 6-3 are typically electrical or analog cables used to carry the measurement signals, whether analog or digital.

[0053] Similarly, the fourth channel 6-4 is defined by a set of specific configuration parameters allowing production monitoring via a vacuum pump operation sensor.

[0054] The sets of configuration parameters (Ei) are stored in the storage means 4-2 preferably forming part of the control means 4 and cooperating with them, such as a flash memory or the like.

[0055] As an example, [Tab. 1] below gives representative values ​​of several parameters of such sets of configuration parameters (E) stored for the different channels 16 (nos. 16-1 to 16-8) of a 3 to 8 channel monitoring box.

[0056] [Tab. 1] Channel No. Gas Type Sensor Type Low Pressure Threshold High Pressure Threshold 16-1 o2 0 to 16 bar 3.8 bar 5.8 bar 16-2 n2o 0 to 16 bar 3.4 bar 5 bar 16-3 Medical Air 0 to 16 bar 3.6 bar 5.4 bar 16-4 SEGA Air 0 to 16 bar 4 bar 6 bar 16-5 Air 800 0 to 16 bar 6.4 bar 9.6 bar 16-6 co2 0 to 16 bar 3.6 bar 5.4 bar 16-7 Medical Vacuum 0 to -0.900 bar -0.34 bar 0 bar 16-8 Vacuum Pump On / Off Switch On / Off - -

[0057] As can be seen, each channel 16-1 to 16-7 is associated with a set of configuration parameters (Ei) comprising a gas type, a sensor type and low and high pressure thresholds defining the alert or alarm levels or pressures. Thus, by selecting a given channel, the parameters associated with it are immediately immediately found in the 4-2 storage means, which avoids any risk of error which can occur in the case of manual entry.

[0058] Channel 16-8 is associated with the all-or-nothing type contactor 15 of the vacuum pump 13 and is used to monitor the correct operation of the vacuum production, as explained above.

[0059] In addition, the sets of parameters E; can advantageously be grouped into groups Gn (n>1) each comprising several sets of parameters (E;). The groups Gn are also stored by the storage means 4-2.

[0060] Thus, when commissioning the monitoring box 3 of the installation 1 of [Fig.l], after having connected for example the channels 16 to the measuring means 5, typically to the pressure sensors 5-1 to 5-3, or even to the monitoring device 15 of the vacuum pump 13, as explained above, the operator only has to select at the monitoring box 3, via selection means 18, such as one or more selection buttons or keys, the desired Gn group from among the Gn groups.

[0061] This allows the user to quickly configure, i.e. in one go, all the channels 16 concerned to which the parameters of the parameter sets Ei of the selected group Gn are assigned. For example, by selecting the group Gl, the user will assign the parameter sets El, E2, E3 to the 3 channels concerned, for example channels 16-1 to 16-3 of [Fig.l].

[0062] Such a box makes it possible to avoid parameterization errors when starting up the box 3, in particular when the operator selects a group Gn formed of several sets of parameters E; dedicated to specific channels 16 which will then be parameterized simultaneously on the basis of the stored parameters, which avoids errors.

[0063] [Fig.2] represents a diagram of an embodiment of the front face or facade 3-1 of a housing 3 according to the invention.

[0064] We see the display screen 19-1, preferably in color, which here displays different information, such as the name of the fluid 190 of each channel, e.g. here oxygen, air, vacuum, etc.; the (de)pression value 191 measured for each fluid (in bar); one or more pictograms 192 illustrating a state of the different channels, in particular “normal” or “alarm” pressure in the event of excessive or insufficient pressure, i.e. a visual alarm pictogram, etc.

[0065] According to the invention, in order to allow an operator to make all the connections while avoiding the triggering of an audible alarm, mode selection means 18 are provided, arranged in the rear part 30 of the housing 3, which are accessible in the internal compartment 32 and can be actuated by the user to activate, i.e. select, a so-called “normal operating” mode or a so-called “maintenance” mode.

[0066] The mode selection means 18 comprise a button, such as a push button, a rocker switch or the like. Advantageously, the mode selection means 18 are arranged in the front part of the housing 31, for example on the electronic card 34 forming part of the control means 4 or elsewhere.

[0067] When the user actuates the mode selection means 18, for example toggles a contactor or “switch”, an electrical signal can be emitted or conversely interrupted (e.g. closing or opening of an electrical circuit) to signal this actuation to the control means 4, typically to the processor 4-1, which then take into account the change from the “normal operating” mode to the “maintenance” mode, or vice versa.

[0068] Thus, when the mode selection means 18 are actuated to activate or switch to “normal operating” mode, the control means 4 can activate the alarm means 35 so as to be able to trigger an audible alarm and preferably a visual alarm in the event of detection of inadequate pressure in one or more of the fluid delivery lines 14-1 to 14-3, whereas conversely, in “maintenance” mode, the control means 4 act on the alarm means 35 to prevent any triggering of an audible alarm as long as the so-called “maintenance” mode is activated.

[0069] However, it may be desirable for the control means 35 to be able to continue to monitor the pressure in the fluid delivery lines 14-1 to 14-3, when the “maintenance” mode is activated so as to be able to trigger or deliver a visual alarm to signal to the user that the box 3 is in “maintenance” mode or that inadequate pressure has been detected by the control means 35.

[0070] Switching the box 3 to “maintenance” mode makes it possible to avoid untimely triggering of audible alarms, in particular when the operator is connecting electrical connections, configuring channels or other things.

[0071] Furthermore, the front part 31 of the housing 3 comprises, on the front panel 3-1, control keys 21, 22 actuated by digital pressure from the user, namely a first control key 21 and a second control key 22.

[0072] These control keys 21, 22 allow the user, when the “normal operating” mode has been activated, to stop an audible alarm having been triggered by the audible alarm means 35, that is to say to acknowledge an alarm, or to test the correct operation of the audible alarm means 35, such as a buzzer, or, conversely, when the “maintenance” mode has been activated, to allow the user to select or set at least one configuration parameter.

[0073] Preferably, the control keys 21, 22 each provide a dual function.

[0074] For example, the first control key 21 allows the user to stop an audible alarm having been triggered by the audible alarm means 35 when the “normal operating” mode is activated and, moreover, to choose a display language when the “maintenance” mode is activated, while the second control key 22 allows the user to test correct operation of the audible alarm means 35 when the “normal operating” mode is activated and to select or set at least one configuration parameter when the “maintenance” mode is activated.

[0075] Advantageously, when the “maintenance” mode is activated, the control means 4 control the alarm means 35 to deliver an audible signal, i.e. a reminder signal, such as an “audible beep” or the like, at a given frequency, for example every 1 to 10 minutes, typically every 3 to 7 minutes, so as to remind the operator that the box 3 is in “maintenance” mode.

[0076] Preferably, the housing 3 also comprises one or more visual alarms which are preferably activated at the same time as the audible alarm, for example in the event of detection of inadequate or non-compliant pressure, typically a light signal and / or an alarm message displayed on the screen 19-1.

[0077] Advantageously, the monitoring box 3 also comprises locking means (not shown) making it possible to lock the front box part 30 on the rear box part 31 to prevent an unauthorized person from opening the box 3 by placing the front box part 30 in the open position, thus preventing any unauthorized access to the internal compartment 32 defined by the two half-boxes 30, 31.

[0078] When they are unlocked, the locking means release the front part of the housing 30 and thus allow it to move into the open position.

[0079] The locking means typically comprise an opening and / or closing mechanism configured to be operable by means of a dedicated unlocking means enabling locking or unlocking to be carried out.

[0080] The unlocking means may comprise a tool, a key or the like, or alternatively, a locking / unlocking system using a confidential or biometric code. This makes it possible to reinforce the security of the housing 3.

[0081] Such a box 3 is particularly well suited to use within a hospital establishment in order to monitor the medical fluid network, i.e. the medical gas or vacuum network (i.e. depression) and to be able to warn in the event of detection of a malfunction causing inadequate pressure within the network, i.e. too low or too high.

Claims

Claims

1. Installation (1) for conveying fluid in a hospital establishment, comprising: • fluid delivery lines (14-1 to 14-3) each comprising a pressure sensor (5), and • a fluid monitoring box (3) electrically connected to the pressure sensors (5) to recover pressure measurements from said pressure sensors (5), comprising: • storage means (4-2) for storing low and / or high pressure thresholds for each of the fluid delivery lines (14-1 to 14-3), • control means (4) with processor (4-1) for processing the pressure measurements coming from the pressure sensors (5) and determining any inadequate pressure by comparing said pressure measurements with the stored low and high pressure thresholds, and • alarm means controlled by the control means (4), characterized in that: - the fluid monitoring box (3) is configured to operate according to two operating modes comprising: • a so-called “normal operating” mode, in which the control means (4) are configured to activate the alarm means and trigger at least one audible alarm, when the control means (4) detect inadequate pressure in one of said fluid delivery lines (14-1 to 14-3), and • a so-called “maintenance” mode, in which the control means (4) are configured to prevent any triggering of an audible alarm, - and the fluid monitoring box (3) further comprises mode selection means (18), operable by a user, for activating the “normal operating” mode or, alternatively, the “maintenance” mode, when manually operated by the user.

2. Installation according to claim 1, characterized in that the mode selection means (18) comprise a button, such as a push button, or a rocker switch.

3. Installation according to one of the preceding claims, characterized in that the mode selection means (18) are arranged inside the housing (3).

4. Installation according to one of claims 1 to 3, characterized in that the mode selection means (18) are arranged on an electronic card (34) forming part of the control means (4).

5. Installation according to claim 1, characterized in that the alarm means comprise a buzzer.

6. Installation according to claim 1, characterized in that the housing (3) comprises display means (19).

7. Installation according to claim 1, characterized in that the fluid monitoring housing (3) comprising a rear housing part (30) and a front housing part (31) defining between them an internal compartment (32) of the housing (3), said front housing part (31) being pivotally mounted (XX) on the rear housing part (30) between at least one open position in which a user has access to the internal compartment (32) and a closed position in which the user does not have access to the internal compartment (32.

8. Installation according to one of claims 1 or 7, characterized in that the front housing part (31) comprises: • on the internal side (3-2), control means (4) with processor (4-1) configured to monitor the pressure in the fluid delivery lines (14-1, 14-2, 14-3) by processing the pressure measurements coming from the pressure sensors (5) and • on the front (3-1), at least one control key (21, 22) actuated by digital pressure from the user.

9. Installation according to claim 1, characterized in that the fluid monitoring box (3) and the fluid delivery lines (14-1 to 14-3) are arranged within the hospital establishment, in particular mounted on one or more walls of said hospital establishment.

10. Installation according to claim 9, characterized in that the fluid delivery lines (14-1 to 14-3) are chosen from at least one oxygen line, one air line and one vacuum line.

Citation Information

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