In-situ gas measurement probe, probe assembly method and autonomous probe use

The probe addresses autonomy and accuracy issues by using a filtration-separated compartment for continuous gas detection, ensuring reliable, long-term operation with high temporal resolution in remote areas.

FR3165318A1Pending Publication Date: 2026-02-06UNIV DE PAU & DU PAYS DE LADOUR +1
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Patent Information

Application Number
FR2024008476
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-31
Publication Date
2026-02-06

AI Technical Summary

Technical Problem

Existing gas detection probes for underground applications face issues with autonomy, integrity, and measurement accuracy due to energy intensity, imprecision, and incompatibility with high temporal resolution, particularly when submerged in unsuitable soil conditions.

Method used

A probe design with a rigid body and hollow, perforated section for gas intake, incorporating an instrumented compartment with filtration to separate liquids, allowing continuous electrochemical gas detection, and a data acquisition module for high temporal resolution measurements, without external power or communication.

Benefits of technology

Enables reliable, long-term, autonomous gas detection with high temporal resolution and improved accuracy, resistant to environmental disturbances, suitable for remote areas with minimal maintenance.

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Abstract

The measuring probe, designed to be buried in the ground to obtain concentrations of a gas such as dihydrogen or a similar gas, includes internally, within its hollow lower section (2), an inlet compartment (C1) where a gas flow (FG), typically upward, is formed, and a compartment (C2) sealed against liquids. The measuring device (4) is housed internally within compartment (C2) at a considerable distance from the top of the probe. A liquid barrier interposed between these two compartments is formed by a filter element (EF) that allows the purified gas flow to diffuse into compartment (C2), where measurements are taken by a selective electrochemical sensor of the device (4). An auxiliary sensor of this device is connected to a data collection section to obtain control data and allow the determination of the reliability level of the measurements performed in situ by the electrochemical sensor.Figure for the abbreviation: Figure 3.
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Description

Title of the invention: In-situ gas measurement probe, method for assembling a probe and autonomous use of the probe. Technical field

[0001] The present invention relates to the field of equipment fitted with sensors for detecting fluids in the ground. More particularly, it proposes a probe capable of detecting a gas in a position buried underground, a method for assembling the probe, and the use of a measurement collection device in an underground probe. Previous technique

[0002] Solutions have been developed for determining the presence of a gas, such as hydrogen, in underground pockets in the soil of a region, by using probes that are installed below the surface at a depth that generally does not exceed 3 or 4 meters, thus minimizing the drilling equipment required. Such probes can be installed for a fairly long period, for example, several months, which can create difficulties in terms of autonomy and / or integrity.

[0003] A measurement device for circulating gas admitted at depth, at the lower end of the probe, to a detection unit using a pump is known from document WO 202 / 161431. Repeated communications are required for data transmission. This equipment is energy-intensive, which severely limits the autonomy of such a measurement device, unless an external power source such as solar panels is used. Moreover, the measurements taken by this type of device are very imprecise. The measurement method is not compatible with high temporal resolution: the sampling rate is limited, with a sampling interval typically on the order of half an hour and at best about one minute.

[0004] One difficulty with this type of measurement lies in the variability of soil type, particularly with regard to the risk that the probe's sensing element may be submerged in a water retention area or other type of area unsuitable for obtaining reliable measurements. A gas detection sensor can give inaccurate results, especially when used outside its operating range.

[0005] Furthermore, specific probes have been designed for measuring a gas dissolved in a liquid medium. This type of probe, as described for example in US patent 2008 / 0216591 A1, does not allow for repeated measurements: the probe is unsuitable for the type of application envisaged above and clearly belongs to another category of measuring devices.

[0006] There is therefore room for improvement in providing suitable detection solutions for autonomous operation and compatible with discreet integration (limiting the risks of degradation), particularly in remote or wild areas, without operator intervention during measurements, while providing reliable detection data over a long measurement period. Technical solution

[0007] In order to improve the situation, a measuring probe is proposed, intended to be buried in soil to detect at least one gas in that soil, the probe comprising: - a rigid body elongated from an upper end of the probe and suitable for being buried in the soil; - a hollow part supported by the rigid body, perforated and / or porous to gases and liquids, and delimiting an intake compartment through which a gas flow is admitted into the probe; - a passage opening that allows a gas flow to circulate from the intake compartment to a measurement area; - a measuring device, provided in the measuring area which is in fluidic communication with the intake compartment via the passage opening; and - a link with a measurement acquisition module from one or more sensors of the measuring device; knowing that the measuring device, which can be housed internally in the probe at a distance from the upper end, is located in an instrumented compartment sealed, with respect to the liquids present in the inlet compartment, by means of filtration, so that the measuring device allows to measure in situ one or more characteristics of a filtered gaseous fluid (corresponding to the flow only / exclusively gaseous which could have passed through the means of filtration), preferably continuously, this measuring device including a means of electrochemical, selective, detection of a gaseous component of the purified / filtered gaseous flow.

[0008] Thus, the measuring probe can carry part of the instrumentation necessary to carry out measurements for a given period, with a reliability in the measurements which is optimized simply because these measurements are carried out in situ (at depth, several tens of centimeters below the ground) with the admitted gas flow which flows / diffused naturally, without the need for pumping which is likely to destabilize the environment and the natural circulation of the gas.

[0009] The instrumented compartment can be completely separated from the outside, by being located in an internal area of ​​the probe which is, for example, an area into which gas can only reach through the filter media(s) belonging to the filtration means, via the inlet compartment which forms an upstream zone (of the probe) with respect to the filtration means. Here, the term "upstream" is understood by reference to the filtration of the gas flow diffusing inside the probe from the perforated and / or porous region, it being understood that the gas admitted, on the upstream side, may be laden with particles and / or liquids by being able to rise / circulate in the inlet part before reaching the instrumented compartment.

[0010] The purified gas stream was filtered before diffusing into the downstream zone (downstream of the filtration means), which is the zone where the measuring device is located. To limit the amount of water in the instrumented compartment, and therefore to limit humidity, the filtration means are typically interposed between the inlet compartment and the instrumented compartment, blocking the passage opening to form a liquid barrier that allows the gas stream to flow towards the measuring device in the form of the purified / filtered gas stream. The relative humidity level in the instrumented compartment can be easily regulated or controlled by utilizing filtration and typically sensors, optionally with integrated dehydration means in the probe. Such regulation can be advantageous for maintaining operation in accordance with the requirements of the electronic components mounted in the instrumented compartment.

[0011] The hollow section can be stepped, with the filtration means forming part of a transition / passage zone between the lower inlet compartment and the instrumented compartment. The top of the hollow section can correspond to a connector section or mounting support for the measuring device.

[0012] Advantageously, in the probe / in connection with the measuring device, a control data collection device is provided allowing the determination of a level of reliability of the measurements (during the measurement period, typically very long) carried out by the means of electrochemical detection, on the basis of data retrieved by at least one auxiliary sensor of the measuring device. The measurement from the sensor or electrochemical detection device can thus be verified by at least one additional data point detected in real time. The measurement frequency of this detection method can be less than 10 seconds, or optionally on the order of one second to achieve continuous measurement.

[0013] The electrochemical detection means may incorporate an electrochemical measuring unit, provided with an electrolyte, for example by having a detection cell provided with a solid electrolyte (which is preferably ionically conductive). The solid electrolyte may include a polymer. The probe's sensor(s) can be mounted on a common support, for example, a mounting plate, optionally oriented along a longitudinal plane within the probe. This support extends into the instrumented compartment. for example by extending perpendicularly to a filter cloth or layer of the filtration means.

[0014] The measuring device may be part of a pre-assembled component. The manufacturing cost of the probe can be optimized, while still having at least three sensors, including: - one measures a gas concentration, for example dihydrogen or another gaseous component whose molecular weight (molar mass) is less than or equal to 30 or 50 g / mol, - and possibly at least one other device measures temperature and / or pressure. A measurement or determination of the local humidity level in the instrumented compartment is carried out using one or more sensors, which may belong to the pre-assembled component.

[0015] The probe can operate autonomously, which is an advantage in isolated areas far from urban centers, where there is no communication network (such as coverage gaps). The probe can be of the transmitter-less type (no fragile communication antenna is required), since the measurement data is stored by the acquisition module. This improves battery life. The probe can continuously record, potentially with high temporal resolution, the emissions of the subsoil's gaseous component. It is well-suited for complete burial, rendering it invisible at the surface and thus less vulnerable to vandalism and accidental damage, for example by wildlife.

[0016] According to one particular feature, the probe can be compact to limit the radial dimensions, which do not exceed, for example, 7 cm in external diameter for the hollow part. The rigid body can form the upper end of the probe by including a metallic external lateral surface without any opening or means of communication with either or both of the compartments. The rigid body can constitute a main section of a probe pole, possibly having a length greater than or equal to 50 or 60 cm, as a non-limiting example.

[0017] The probe is configured to limit the flow of gas, internally from the intake compartment to the instrumented compartment, to passive circulation, without any mechanical / moving drive parts. With an assembly of simple parts and the use of a pre-assembled electronic component, the probe can have an optimized cost, both for its production and for its reuse (possibly with some parts to be changed, such as the filtering means, or with a cartridge assembly to be replaced before reuse). With an optimized cost price, it is possible to consider a large number of probes deployed on site, which makes it possible to improve the coverage of a region to be explored.

[0018] In some embodiments, the relative humidity inside the probe is regulated to remain below a certain humidity threshold, for example below 95% humidity, at least in the instrumented compartment. At least one desiccant may be housed in a cavity communicating with the measurement area, i.e., allowing water to be trapped to lower the humidity level in the instrumented compartment. In the case where the gaseous component to be detected is dihydrogen for example, such a threshold can be chosen to correspond to the limit case beyond which the measurement of dihydrogen is no longer possible due to risks of condensation on the electrochemical cell or where applicable on the electronic components present inside the measurement chamber (instrumented compartment).

[0019] More generally, the probe has a housing for trapping water (water in vapor form, typically). Optionally, each desiccant can be mounted in the probe via a top access which is then sealed. Preferably, this housing is accessible, during probe operation, only via a lower passage that communicates with the instrumented compartment: the water vapor thus rises in the probe to reach this housing, where it is trapped. The housing for trapping the water is equipped with one or more desiccant elements, preferably each containing a desiccant material. When the desiccant element includes a filter envelope to retain the desiccant material within a closed volume, it is understood that the envelope is permeable to water vapor, so that each desiccant element traps water within this internal / closed volume. The closed volume is optionally elongated, possibly along a central / longitudinal axis of the probe, with each envelope potentially being at least two or three times taller than it is wide.

[0020] It is understood that the probe can be buried (with the rigid body or the probe shaft fully buried), possibly without requiring external protection. The probe is well protected, as it can retain the recorded measurements through the use of a storage memory provided in the acquisition module. In some embodiments, the probe incorporates one or more of the following features: - the hollow portion is configured to form or include a lower end of the probe, the inlet compartment being a lower compartment of the probe that extends into or to the lower end. - the instrumented compartment is an upper compartment superimposed on the lower compartment. - the passage opening allows the admitted gas flow to be directed back towards the instrumented compartment. - the instrumented compartment can be an upper compartment of the hollow part, typically extending under the body. - the hollow part, which may form a tip or a point at the bottom of the probe, may be a removable part or contain a removable module. - Access to the measuring device is permitted after the removal of the removable part or module. - one and / or the other of the compartments is less wide than an external diameter of the probe body. - the intake compartment is delimited by a section of outer wall (tubular section) which is for example thicker than the section of wall (tubular section) surrounding the measuring device (this allows to lengthen a radial component of the conduits forming the orifices. - the openings in the perforated part can be of a calibrated type, for example by having an internal diameter not exceeding 1.5 mm or 2 mm.

[0021] In order to limit the risk of disturbance due to humidity in the instrumented compartment, the probe design may include at least one of the following features: - the filtration means are of the thin wall type, fabric or membrane (vapor barrier fabric). - the filtration means are hydrophobic, for example in the form of a fabric made of hydrophobic material or by including a hydrophobic layer or fabric on an external face intended for the side of the intake compartment. - the filtration means include a flexible fabric or layer of a filtering medium, for example with a peripheral edge / margin perimeter pinched between two rigid clamping parts, these two parts being made of gas-impermeable material. - the flexible fabric or layer is held between two annular support pieces which are connected to each other by clamping means arranged around the periphery of a part of the filtration means. - the fabric or flexible layer contains or consists of polytetrafluoroethene (PTFE). - the flexible layer contains or consists of a ceramic membrane (porous to allow gas to pass through). - the filtration means separate the intake compartment from the instrumented compartment, for example by being arranged in the central hollow of an insertion head / male organ which forms a portion of connection with a complementary connector carried by or made integral with the elongated rigid body. - the fabric or flexible layer is arranged perpendicular to an axis of elongation of the probe (a hydrophobic structure or a hydrophobic side, which is a lower side for this fabric or flexible layer, may be provided). - the filtration means are extractable / removable with the hollow part or with a subset of the hollow part.

[0022] The probe can be designed for operation without communication of measurement data, therefore without a transmitter. Regardless of whether measurement data is transmitted remotely, the probe can perform a series of measurements at a high rate, for example, with an interval of less than 10 seconds between successive measurements. High temporal resolution can be achieved with, for example, a measurement rate of every 4 seconds, or even approximately every second (with measurements taken every second).

[0023] In optional configurations, an electronic unit of the probe can implement an optimized recording routine by writing data only if the measurement differs from the previous one. The electronic unit can control the acquisition module and include a measurement data comparison module to compare successive measurements performed by electrochemical detection.

[0024] A setting can be implemented to define a threshold (minimum threshold) or a rule to activate a new recording. The electronic unit can be configured to implement an optimized recording routine by writing data to the acquisition module only when the comparison module detects a variation, exceeding a given minimum threshold, in successive measurements made by the electrochemical detection method.

[0025] This can increase battery life, for example, to reach or exceed two months of autonomy with reliable measurements, at least when this is done under favorable temperature conditions (positive temperatures or above 15-20°C), which is possible in hot or temperate regions. The sensor positioned at a depth of approximately one meter avoids day / night variations, while burying the battery (which can be less deeply) can prevent the risk of accelerated discharge in cold weather.

[0026] In assembly examples for integrating the instrumented compartment into the probe and the filtration means, in a manner compatible with the realization of a To ensure gas tightness around the measurement area, one or more of the following features can be used: - the hollow part includes a connection portion allowing to connect and disconnect the intake compartment or at least a lower section or tip of the probe, perforated and / or having porosity for the admission of the gas flow, which delimits at least a part of the intake compartment. - the connection portion allows for maintenance or replacement of the filtration means. - the annular or tubular connection portion, so as to delimit a hollow internal space. - the intake compartment is separable from the instrumented compartment, for example by making a disconnection which uses the connecting portion. - the connection portion provides a rigid fixing from below (i.e. on the opposite side to the upper end of the probe) by coupling with a complementary connector element provided in the probe. - rigid fixing is achieved by locking the coupling by a relative rotation between the connecting portion and the complementary connecting element. - Rigid fixing is achieved by axially locking a coupling position, by one or more elastically deformable elements to allow a snap-in. - the annular or tubular connection portion is either provided with rotational indexing means, allowing guidance or a keying effect, preventing rotation during locking of the connection of the end section, or adapted to allow connection independently of the relative angular position between the connection portion and the complementary connecting element. - the connection using the connecting portion forms a peripheral junction, which is provided with a sealing element to form a lateral barrier opposing the entry of water and also opposing, preferably, the entry of gas through this peripheral junction. - the connection portion includes the passage opening and is integral with a perforated tubular section which delimits the intake compartment, for example when the connection is made. - in a mounted state of the probe, a sealing element made of elastic material (typically elastically deformable) surrounds the connection portion and the complementary connector element or makes an annular sealing contact against the connection portion and against the complementary connector element.

[0027] In the mounted state of the probe, the instrumented compartment may only be accessible from below (only), for example through a single access point formed by the opening of passage. The instrumented compartment is isolated from the outside of the probe by the absence of a top opening or lateral communication channel.

[0028] Any type of junction can be suitable for allowing selective removal of a lower section of the probe, making it possible to replace all or part of the components involved in creating the humidity-lowering barrier effect (typically a hydrophobic barrier). To force the gas reaching the measuring device to pass through the filtration means, an internal water separation stage can be provided, for example, in a first zone, below the compartment instrumented by the filtration means, by adding a peripheral seal around or on the peripheral junction, in a second zone radially offset outwards from the first zone.

[0029] According to one particular feature, in the assembled state with the sealing element integrated on the peripheral junction, the probe is adapted to allow selective gas admission below the junction (only below this junction). The junction, whether or not combined with the aforementioned sealing element, provides gas (and liquid) tightness. In another embodiment, the peripheral junction can be adapted to form an additional admission zone, for example by having a porosity. In this latter case, instead of the sealing element integrated into or overlapping the junction, an annular sealing gasket is provided in another position: for example, a position above the peripheral junction and below the instrumented compartment to prevent upward moisture propagation.Alternatively or in addition, filtration means may be provided to form / integrate such an annular seal, for example by a peripheral frame or edge connected in a hermetically sealed manner to an external side wall structure which extends above the junction.

[0030] According to one particular feature, the sealing element, surrounding a longitudinal axis of the probe, is chosen from: - a heat-shrinkable sleeve or film suitable for wrapping an overlapping area between the connection portion and a complementary connector element of the probe; and - an annular compression seal, covered laterally by an external wall of the probe and on which an axial clamping is exerted. The complementary connecting element, which can extend lower than the electrochemical detection means, is preferably provided with a compressible material and / or can be covered, on the outside, with a heat-shrink sleeve or film.

[0031] In embodiments of the probe, the auxiliary sensor(s) are chosen to enable real-time detection of a parameter (temperature, pressure and / or humidity level, for example) that could interfere with the measurement performed by the means electrochemical detection, and potentially interfering with other measurements. For example, the control data collection device (which may include or consist of a control device / unit) controls the reliability level of measurements performed by the electrochemical detection method by: - retrieving measurements from at least one auxiliary sensor allowing the determination of a parameter representative of a humidity level in the instrumented compartment, - and / or by performing anomaly detection in physical conditions encountered during measurements, the detection being enabled by at least one auxiliary sensor of the measuring device. A simple pressure measurement can be part of, or constitute, this anomaly detection, given that it allows us to know in particular: - if the probe is submerged, because in this case a sudden pressure increase will be observed (a pressure increase typically associated with precipitation), - whether the arrival of the gases is associated with pressure variations or not, thus qualifying the process as diffusion or not.

[0032] To minimize the risk of a situation where the measurements of the electrochemical detection means are distorted by excess humidity, for example to ensure operation at a humidity level of less than or equal to 95%, the measuring device can be placed next to a desiccant gel or any suitable desiccant, placed in the instrumented compartment or in a downstream area with respect to the filtration means and in fluidic communication with the instrumented compartment. More broadly, anomaly detection can help to make measurements taken in the probe more reliable, whether these measurements are taken by electrochemical detection or by other sensors.

[0033] In the event of rain, it is understood that the buried arrangement of the probe makes it possible to avoid or limit the risk of water saturation in the environment. The elongated rigid body, preferably with an outer face of annular or cylindrical section, has for example a length of at least 50 centimeters, being adapted to keep the measuring device at least 50 cm below ground level when the rigid body is fully buried.

[0034] The rigid body of the probe can be made of robust inorganic material, for example metallic. This body forms, for example, a rod provided with a lower connector which connects and holds the hollow part (delimiting the intake compartment) in line with an internal housing of the rod. The internal housing of the stem can advantageously be used to trap water by being filled with dehydration means, for example in solid or gel form, which may consist of a gel and / or granular desiccant component. After purification via filtration means, the gas stream can therefore be dried, in order to avoid an undesirable effect of accumulation of water molecules and condensation in the instrumented compartment.

[0035] The electrochemical detection method can provide dihydrogen gas concentration measurements at a very high rate, with a link to the data acquisition module for data writing / acquisition which will subsequently allow, after the long measurement period, the provision of precise readings that do not miss a brief passage of dihydrogen. This is applicable to other types of gases detectable by an electrochemical cell or detection method.

[0036] The acquisition module can be a data logger with a data link / processing interface that connects to one or more of the sensors of the measuring device, including the electrochemical detection means. Data acquisition is controlled by suitable software. An electronic board can integrate the circuit(s) and the measuring components / sensors, in order to miniaturize the instrumented part housed in the instrumented compartment. The acquisition module is for example connected to an autonomous power supply, preferably protected in a box connected from above to the probe via a cable.

[0037] At least in the case where the instrumented compartment is adjacent to / near the intake compartment, preferably located more than fifty centimeters from the top of the constant cross-section part of the rigid body, at least one of the following arrangements can be provided: - the rigid body, which incorporates the cable, is connected in a gas-tight manner to the hollow part and has an external delimitation in two parts with: a first part, tubular, creating a lateral barrier to gas; and a second part, surmounting the first tubular part of the rigid body. - an axial gas-tight barrier, preventing gases from escaping the probe by rising beyond the second instrumented compartment, is provided in the form of an internal partition of the probe or in the second part. - the first part extends to the hollow part. - a support for the measuring device is mounted in / attached to the first tubular part. - the hollow part is designed as a part separable from the rest of the probe, preferably by separating / disconnecting from a connector element included in the first part of the rigid body. - the measuring device is surrounded by a portion of the hollow part which is permanently fixed to the rigid body, for example by being welded to the first part. - the probe may consist of a power supply unit, an upper grippable part and a probe rod (of generally circular cross-section for example, constant) which includes the instrumented compartment and the intake compartment, possibly with at least one connection-disconnection interface at the lower end where the intake compartment is formed.

[0038] According to another aspect, a method for assembling a measuring probe is proposed, in particular as presented above, the assembly method comprising: - the supply of the elongated rigid body and a hollow part, which is perforated and / or porous to gases and liquids by delimiting an intake compartment through which a gas flow can be admitted into the probe; - the mounting of a measuring device in one of the rigid body and the hollow part, on at least one support which allows a power supply from an electrical power source via a cable or link (cable / electrical link), the cable or link also allowing the measuring device to be connected to a control device or unit and to a module for acquiring measurements made by one or more sensors of the measuring device; - the watertight connection of the hollow part to a lower annular section of the rigid body, after placing the cable in the rigid body and filtration means in the hollow part, respectively, whereby the filtration means separate an instrumented compartment where the measuring device extends from the inlet compartment, forming a barrier to liquids allowing a gaseous flow, admitted into the inlet compartment, to flow towards the measuring device in the form of a purified gaseous flow, knowing that the measuring device has a means for the selective electrochemical detection of a gaseous component of the purified gaseous flow, while at least one auxiliary sensor is also integrated into the measuring device to allow the collection of control data retrieved by the device or control unit using this auxiliary sensor.

[0039] The control device or unit constitutes or is part of a collection device, which is thus configured to control a level of reliability of the measurements carried out by the means of electrochemical detection on the basis of data (the control data) retrieved using at least one auxiliary sensor of the measuring device.

[0040] Such an assembly makes it possible to provide a robust probe, suitable for a long period of autonomous operation, typically without communication with the outside. In some variants, a communication module (possibly removable) can be temporarily installed, allowing – initially - to retrieve initial results outside the borehole where the probe was placed. This communication is short-range and takes advantage of the presence of an operator (who may be the one who installed the probe at depth). This can allow for the immediate detection of a significant malfunction related to the installation, for example, by setting up a test routine that demonstrates the probe is operational.

[0041] More generally, the operator can establish a routine to ensure that everything is in order immediately after installation. With the operator still present, and a communication / verification module that signals a malfunction, they can then react and typically modify the installation accordingly, drill in another location, if necessary after drying the sensitive / instrumented part (in the hollow section) or replacing it. The communication module for such provisional communication is subsequently disconnected and transported elsewhere, to conserve battery power, so that the probe will not lose any energy activating an external data transmission once the operator has left.

[0042] Optionally, the assembly method includes the placement of one or more desiccant elements inside the probe, for example at a level higher than the filtration means. For this purpose, the method may include: - supplying the desiccant element(s) (possibly in a stackable unit format or units that can be placed side by side), each having a desiccant material and a filter envelope, to trap water in an internal volume of the envelope where the desiccant material is located; and - inserting the desiccant element(s) into the instrumented compartment and / or into a central recess (which defines a housing) of the rigid body. When the housing for this / these desiccant element(s) is located in the central hollow of the rigid body, such a housing preferably extends over a portion of electrical and mechanical connection which allows the rigid body and the hollow part to be connected (together, for example directly one on top of the other) in a separable manner.

[0043] According to another aspect, it is proposed to use the probe of the aforementioned type, the probe having its body buried in the ground and extending to the hollow part which is perforated and / or porous to gases and liquids in order to allow the admission of a gas flow into the probe's inlet compartment, which is a gas taken in situ at a lower end of the probe, in which the measuring device, when disposed in the instrumented compartment provided in the probe to be separated from the inlet compartment by filtration means, by being connected to the measurement acquisition module by a (non-fluidic) link, serves to provide: - by an electrochemical gas concentration sensor, preferably a solid electrolyte sensor, constituting the electrochemical detection means, of the first measurements in the measurement zone where the gas flow purified by the filtration means circulates; and - by at least one auxiliary sensor of the second measurements; and in which the acquisition module records measurement data whose level of reliability is evaluated by a control device or unit, preferably provided in a housing which also houses the acquisition module, by which means the probe can operate for a period of several days or several weeks without communication with the outside, accumulating the first measurements whose level of reliability can be verified with regard to the second measurements.

[0044] The probe can be used autonomously for the detection of a gas, for example, at least one gas such as dihydrogen, which tends to rise along the probe by diffusion. The probe is specifically energy-efficient for operation without transmitting measurement data, and therefore without a transmitter.

[0045] With this application, it is possible to retrieve the data stored in the probe's memory, typically on a removable part of the probe. This data consists of the electrochemical detection method and is validated using control data or measurements from the auxiliary sensor(s). Optionally, the second measurement / measurement from the auxiliary sensor(s) is digitized and / or processed as control data. The control data may include a parameter representing the humidity level in the instrumented compartment and / or at least one data point representing the detection of anomalies in the physical conditions encountered during measurements in the instrumented compartment.

[0046] Such data makes it possible to selectively disqualify measurements taken when the control device detects, using one or more detection thresholds applied to the control data, a loss of measurement reliability. This can optionally be done in real time, with the possibility of not recording defective measurements—thus saving the energy associated with writing to memory embedded in the probe (in the instrumented compartment).

[0047] The improved protection of the instrumented compartment makes the analysis efficient, while allowing data to be collected autonomously and passively with regard to the flow / diffusion of the gas flow: The measurement period, of a duration of at least 1 month for example, is carried out passively, without pumping (the instrumented compartment being of the pump-free type).

[0048] The internal cavity of the probe can be accessed by gases only through the lower perforated / porous portion, so that all the gas present in the instrumented compartment has passed through the inlet compartment and then the filtration means. A pre-filter stage, possibly with a coalescing medium, separate from the filtration means that separate the water, can be provided in the receiving / inlet compartment (which is a lower compartment in the probe). Brief description of the drawings

[0049] Other features, details and advantages will become apparent from reading the detailed description below, and from analyzing the accompanying drawings, on which: [Fig.1] is a longitudinal sectional view, showing the bottom of a probe, with a measuring device mounted in a chamber sealed against liquids, this device being close to a filtering element equipping an access passage to the sealed chamber from a lower compartment. Fig. 2 is an exploded perspective view of the openwork lower end and a mounting interface for internally mounting a filter element. Fig. 3 is a cross-sectional view along a longitudinal plane of the probe in the measurement area, illustrating an example of an embodiment that integrates the lower compartment and the instrumented compartment in the hollow part. Figure [Fig. 4A] schematically shows an example of instrumented compartment layout with sealing using at least one annular gasket and one annular weld. Figure 4B illustrates, by means of an exploded perspective view, an example of the assembly of an electronic board bringing together a control device and several sensors including an electrochemical detection cell sensor. Figure 5 schematically illustrates the installation of a probe without a transmitter, in a borehole with complete burial to prevent damage. Figure 6 shows a flowchart of steps that can be taken to achieve reliable recording / acquisition of measurements without requiring communication or intervention during the measurement period, which extends over several weeks or months. Figure 7 shows, from a view similar to Figure 3, a portion of the probe with a heat-shrink sleeve fitted to the outer side wall. Description of embodiments

[0050] Several non-limiting examples of embodiments are described in detail below. In the various figures, identical reference numerals indicate identical or similar elements. Some dimensions may be exaggerated for illustrative purposes.

[0051] In the drawings, the direction of an arrow Z indicates a downward direction in a vertical direction passing through the ground S. The terms "upper" and "lower" in this description refer to an arrangement substantially along the vertical direction, considering a direction along the length of the elongated device or probe 1. The length L of a probe 1 may reach or exceed 80 cm, for example.

[0052] With reference to figures 1 and 5, a probe 1 is presented according to an example of an embodiment, adapted to be buried below the ground level S, in a borehole to cross a subsoil strip SS which can be on the order of 1 meter or more in some embodiments. As clearly visible here, probe 1 can extend longitudinally between a lower end El and an upper end E2, in a straight line or at least along a longitudinal axis A. This structure allows the probe 1 shaft to be installed in a borehole of suitable depth, for example, a hole deeper than 50 or 80 cm and less than 1.6 m. In practical applications, the length of probe 1 can be chosen according to the tool, which may be a handheld tool used to perform the drilling.

[0053] The probe can be narrow, not exceeding 6 or 7 centimeters in external diameter in some embodiments, and even typically not exceeding 5 cm. The drilling zone ZF ([Fig. 5]) can be easily constructed, and the gripping part, arranged as a handlebar with two aligned handles or grips Id, for example, can also be concealed so as not to protrude from the ground / not be subject to movement.

[0054] The probe 1 is a measuring tool that has an instrumented compartment C2, internal to the probe 1 and offset downwards relative to ground level S, for performing in situ measurements. Thus, the probe 1 is designed and arranged to detect a gas and typically allow its concentration to be measured, at a distance from ground level S, therefore several tens of centimeters below the ground. As illustrated in particular in [Fig. 1], probe 1 is rigid, featuring a shaft that incorporates a rigid body la, elongated from the upper end E2 of the probe. The body la can be fully buried in the ground, i.e., below the ground surface level S, thus isolating / enclosing an internal volume VI ([Fig. 5]) of probe 1 from the surface of probe 1 and from the surrounding soil or subsoil SS area.

[0055] In embodiments, in the absence of top access to this internal volume VI, the probe 1 may have a hollow portion 2 supported by the rigid body la and which is perforated and / or porous to any gases and liquids that may be present (without, however, allowing such liquids to propagate into the probe, as described later). The hollow portion 2 may include a section with a connector interface TC which serves to carry at least one sensor of the probe 1. The external wall of the hollow portion may be multi-material and / or decompose into several interlocking sections, preferably without a hatch or side door. In some alternatives, a housing in the hollow section may initially be accessible laterally and subsequently sealed gas-tight by a cover. If applicable, such a housing is sealed by a sensor and / or filter cartridge, which can serve as a functional stage to form a sub-section of the instrumented compartment, possibly by forming a transverse partition that can only be traversed via a water-separating filtration medium.

[0056] The hollow portion 2 extends, for example, to a bottom 3a (domed or pointed, for example) of the probe 1, so as to include a lower end 3 of the probe 1 where through-holes 03 are provided, allowing gas to enter a lower compartment, hereinafter referred to as the inlet compartment Cl, which may be a sub-part of the internal volume VL. The lower end 3 may correspond to an inlet stage (where the diffusion of gas inside the probe begins), this stage typically being devoid of gas measurement sensors, which are located in the instrumented compartment C2. The instrumented compartment may be offset, here axially (vertically) offset, above this lower end 3, which is the only part of the probe through which gas can enter the internal volume V1 to reach the compartment C2.

[0057] The hollow part 2 can be designed separately from the body la and then connected to a lower end of this body la, opposite the upper end E2. In [Fig. 1], a central hollow 12 is provided in the rigid body la, which has a tubular structure at least in an area adjacent to the hollow part 2. The inlet compartment Cl is distinct from this central hollow 12, being surrounded / delimited by a part or end piece of the hollow part 2 that is rigidly connected to the rest of the probe 1. A fluidic communication, without the passage of liquid, can nevertheless be achieved so that a gaseous flow FG admitted via the orifices 03 can flow internally into the probe 1, for example, with the possibility of reaching the central hollow 12 during in-situ operation of the probe 1.

[0058] In some options, the rigid body la can be directly perforated in addition to the hollow part 2 or can have a perforated section, for example provided with lateral openings forming the orifices 03, to delimit the lower compartment CL The hollow part 2 can then be carried by the body la by constituting an end of this body la, or at least a section far from the upper end E2 (measurement zone in depth, surrounded by a strip of subsoil SS).

[0059] On the upper end E2 side, the probe 1 has a self-contained power supply, such as a battery. Figures 4 and 5 show A housing B is thus represented, accommodating and protecting this autonomous power supply. A connection 10, possibly in the form of a flexible cable, connects such a housing B to a head If which fits over the body la of the probe rod and which can be: - crossed by an axis common to the handles Id the longitudinal axis A, - and / or crossed by the longitudinal axis A.

[0060] Regardless of the precise external structure adopted to make it self-contained and installed in a borehole, the probe 4 forms a measuring device by allowing internal gas diffusion through its inlet compartment Cl, which can be contained within a monolithic block of the probe, optionally removably connected to the rest of the probe from below, as in the non-limiting case illustrated in Figures 1 to 3. A central circulation channel CC forms a zone of the inlet compartment Cl through which the gas flow FG ascends towards the filtration means EF. All channels with a radial component, formed by the orifices 03, can open into this central channel CC. Figures 2 and 3 show an example of a rigid part used to form the lower end 3 with the base 3a and a plurality of orifices 03 distributed both over different angular sectors of the circumference of this end 3 (at least 8 or 9 different angular sectors can be provided with such orifices 03) and also distributed vertically (Z direction), for example, forming regularly spaced vertical rows Rv of holes / orifices. An axial / vertical spacing dv can be provided between the highest orifice(s) 03 and a lower face of the filtration means EF.

[0061] Although this example illustrates orifices 03 located near the bottom 3a and formed in a single piece that includes this bottom 3a, alternatively, a separate bottom 3a may be provided, being designed separately from a part or section that is perforated with this type of hole for gas admission. In this case, the intake compartment Cl may be axially offset from the bottom 3a. In some embodiments, the bottom 3a may have an extension, possibly pointed, formed at the bottom of the probe 1. As an alternative or complement to designs using a plurality of orifices 03 for the admission of gas internally into the probe 1, a fluid-porous layer can be provided, which allows the liquid and gases to pass through a porous structure which does not have radial holes or through orifices with a purely radial component.

[0062] The probe 1 includes sensors 20, 6 and can house these sensors in an area that is distinct from the inlet compartment Cl and separated from the inlet compartment Cl by filtration means EF, which makes it possible to limit the influx of water molecules into the gas flow that circulates / diffuses along the sensors 20, 6. The probe 1 It has an electronic component to enable data acquisition, some of which represents gas concentration measurements or other gas characterization parameters. In particular, an electrochemical detection means 20 is provided in a circulation or diffusion zone for the gas flow that has passed through a wall of the probe at the lower end 3. This electrochemical detection means 20 allows the determination of a concentration of a particular gas, for example, dihydrogen, as a non-limiting example.

[0063] In some designs, the electrochemical detection means 20 is an electrochemical sensor, for example, using solid electrolyte (polymer) electrochemistry technology and amperometric detection. In the instrumented compartment C2, the electrochemical detection means includes at least one measuring electrode (where the gas to be detected forms the analyte). One or more electrochemical sensors are provided, it being understood that the electrochemical detection means 20 has high sensitivity for detecting, for example, traces of gas, with concentrations up to 40,000 ppm, 10,000 ppm, or less. The probe can be equipped with several electrochemical sensing elements, for example each covering a different detection range (measurement range / target concentration). At least one pressure sensor (specific sensor for example) may be provided, possibly two pressure sensors, where appropriate with a pressure sensor located in the instrumented compartment.

[0064] The type of sensor forming the electrochemical detection means 20 is relatively robust and suitable for underground measurement conditions. It offers an optimized signal-to-noise ratio, especially since the probe 1 is free of a pump or system to force gas or fluid circulation.

[0065] With reference to [Fig. 3], the probe 1 integrates a measuring device 4 into an electronic assembly, for example, combining the measuring device 4 and other components, including a data acquisition module 14, on a single support 4p. The measuring device 4 may optionally have a card, which may constitute all or part of the support 4p, including a digitizer and an additional component for determining a temperature and humidity level. This additional component (which may include several sensors / sensitive detection parts) is referred to as the auxiliary sensor 6 in the following. Of course, an arrangement with independently connected sensors, for obtaining measurements or determinations of similar parameters, may also be suitable. Example of gas filtration passing through the instrumented compartment

[0066] The mechanical design of the part of the probe that is close to the intake compartment Cl and houses the instrumented compartment C2 is designed to avoid The infiltration of liquid water, on the one hand, and excess water vapor / humidity, on the other. Preferably, the probe should have an IP67 rating for water and particle protection, while ensuring optimal gas flow (from the intake compartment Cl). This allows probe 1 to be temporarily immersed in water without damaging the measuring device 4 and its associated electronics.

[0067] Internally, within the probe's outer casing, which comprises the body and the underlying hollow part 2, a passage opening 3c is typically provided. This opening allows a gas flow to circulate from the inlet compartment Cl to the measurement zone, in this case, to the instrumented compartment C2, which is superimposed on the lower end 3, including the orifices 03 and enabling the inlet. The measuring device 4, arranged in the measurement zone, is thus in fluidic communication with the inlet compartment Cl via the passage opening 3c, but is located downstream of the filtration means EF, which close off this passage opening 3c. In other words, the measuring device 4 can be subjected to a purified gas flow (which will reach the measuring electrode(s) or sensitive parts of the sensors), the water content of which can be minimized due to its passage through the filter media(s) belonging to the filtration means.

[0068] This arrangement is compatible with an electrochemical sensor or detection means 20 configured to perform measurements with high temporal resolution (high measurement rate, for example less than or equal to 10 seconds, possibly on the order of 1 second for dihydrogen detection). One or more characteristics of the purified gaseous fluid can thus be recorded during a long period of probe 1 installation, which will constitute the measurement period.

[0069] With reference to [Fig. 1], it can be seen that the probe 1 can be made watertight around the instrumented compartment C2, while providing the possibility of separating the terminal part or lower end 3 for inlet. For this purpose, the filtration means EF can first be mounted on an annular insertion member 3b, formed opposite the bottom 3a, which belongs to the lower end 3 of the probe, to engage internally in an intermediate section 2b (which can serve as an extension to the rigid body 1a).

[0070] With reference to [Fig. 2], the non-limiting case of filtration means in the form of a hydrophobic fabric or membrane pinched and / or compressed at its edge using clamping rings 35a, 35b is illustrated, with at least one seal J1 integrated into the stack of these parts and in direct contact with the filtration means EF to prevent water from bypassing the filter radially from the outside. The rings 35a, 35b, with a common central hole 35c, allow the central channel CC to be extended (visible on [Fig.7]) where the orifices 03 open radially inwards and which is covered, here axially at its upper end for example, by the hydrophobic fabric or membrane. As described below, a removable mounting of the filter element and a removable mounting of the hollow section 2 are preferred. Fastening elements, such as screws or similar removable anchoring elements MF1, concealed when the probe 1 is mounted / assembled, can be provided to achieve the clamping configuration of the filter elements EF. These anchoring elements MF1 are accessible from above, for example, by being positioned on the insertion element 3a or similar upper portion of the lower end 3a, which includes the through-holes 03.

[0071] More generally, the filtration stage, with the filtration means EF, is placed in the hollow part 2 and in such a way that the lower end can be separated from the body la, making these filtration means EF accessible for disassembly and replacement. Next, a seal can be achieved by sealing a junction between the lower end 3 and the rest of the probe. A gasket J3, for example made of silicone, can optionally be added in the junction area, against a stop or connection part provided in the lower end 3.

[0072] In the embodiment shown in Figures 1 and 3, achieving this seal includes a step of wrapping the hollow part 2 with a heat-shrink sleeve or film 15 (also wrapping any seal J3). The area to be enclosed by the sleeve 15 corresponds to the junction / connection at the bottom of the rigid body or its extension, with the lower end 3. The sleeve 15, in its operational position, forms a sheath enclosing a tubular area through which gases could reach the instrumented compartment, bypassing the inner upstream area (upstream of the filtration means) where the intake compartment is located. Here, the insertion member 3b engages against a thinned and / or flexible area of ​​the extension (intermediate section 2b), with the insertion member 3b locking, for example by snapping into place (via internal lugs 2r or similar features), in an external annular groove G ([Fig. 2]) which is axially interposed between the perforated tubular portion and the insertion member 3b. The external diameter of the insertion member 3b may be larger than that of the groove G but smaller than the maximum diameter of the lower end 3. A screw connection (without snapping) may also be provided. In practice, and as can be seen in particular in [Fig. 3], the maximum diameter of the lower end 3 may correspond to an external diameter Dl, kept essentially constant, of the probe 1.

[0073] When heated, the sleeve 15 contracts, covering the junction, here overlapping the area between the lower end 3 and the extension which For the hollow section 2, this constitutes the complement of the lower end 2. In [Fig. 1], it can be seen that the chamber for the sensor 6, which is delimited by the intermediate section 2b (when the instrumented compartment C2 is located on this side, above the junction allowing the removal of components, is the filter), can be centrally accessed through the opening 3c equipped with the filter / means EF. In some embodiments, this chamber cannot be supplied by other means or gaps between the tubular sections 3, 2b, TC constituting the hollow section 2.

[0074] In an alternative design, as seen for example in [Fig. 4A], a seal J15 can be appropriately pinched or clamped in the junction area, being covered by at least one annular section of the outer wall of the probe 1. Such an elastically deformable seal J15 is axially compressed by a shoulder or similar seating surface, sufficiently to achieve gas and water tightness. A rotational coupling can be applied to lock the connection and ensure substantial compression on the seal J15.

[0075] Regardless of the method of obtaining a seal, opposite this junction with the lower open end 3, the hollow part 2 may have an axial end piece, forming an upper end 2a of this hollow part 2, which does not prevent gas exchange with an additional compartment or housing 12 provided in a hollow of the probe body la.

[0076] MF2 fastening means can also allow the measuring device 4 to be mounted removably in compartment C2, for example using screws 4f and 4g and a mounting element S4 that forms a hollow adapter. In the non-limiting case of [Fig. 3], the filtration portion (means EF) is to be fixed to the section that constitutes the lower end, with a top fixing, and conversely, the measuring device 4 is to be fixed from below, to an upper portion / end 2a of the hollow portion 2. The intermediate section 2b can be fixed to the elongated rigid body la, for example by welding or other watertight fixing, preferably permanent, to the lower annular end of the body la before or after the measuring device is connected by the MF2 fastening means.These MF2 fixing means can be complementary to a cable, or alternatively constitute an interface for mechanical, electrical and information or measurement signal transmission (this can allow, possibly, the grouping of measurement signals into vectors or in another way, when it is necessary to correlate or associate measurements that have been made at the same time).

[0077] In order to limit humidity in the instrumented compartment C2 without interfering with the natural upward flow of a gaseous stream FG from the inlet part / compartment Cl, the probe may incorporate means for trapping water, with an effect dehydration, located at a distance from the measuring device 4 but within a sub-zone downstream of the water filtration / separation performed by the filtration means EF. Housing 12, delimited by a lower section of the rigid body la, is located above the connector interface section TC and above the extension or intermediate section 2b. Housing 12 can serve as a storage location for one or more desiccant elements 8. In this case, housing 12 can typically be accessible only via a lower passage, preferably axial (to avoid increasing the radial footprint), which communicates with the instrumented compartment C2 through a cable 9 or electrical connection, which can serve as a power supply (downward direction) and data transfer (upward direction). A desiccant material can thus be stored to a certain height along the rigid body la of the probe, in an internal volume VI isolated from the outside..

[0078] An annular weld ZW ([Fig. 4A]) provides a seal for the connection, here permanent, of the intermediate section 2b to the rigid body la. This design, with an intermediate section 2b belonging to the hollow portion surrounding the instrumented compartment C2, can facilitate the initial assembly of the measuring part 21, for example, by avoiding the use of the longest part, namely the extended rigid body la. The tubular intermediate section 2b can include a shoulder adapted to house an annular mounting element S4, which allows a central gas flow channel CC' to remain despite the constrained environment in terms of radial space (the probe can thus be thin and drilling simplified).The diameter De at the upper part / end 2a can thus be sufficient to facilitate the flow and convey gas to the water / moisture trapping area (housing 12), while corresponding to a reduction in cross-section compared to an internal diameter provided in the measurement area where the support 4a extends (which is here wider than the diameter De).

[0079] The electronic board of the measuring device 21 can be easily inserted and secured onto such a mounting element S4, which can be incorporated into a pre-assembled version of the measuring device 21. Regardless of the foregoing, whatever the design of the probe 1, an intermediate section 2b can be provided, located higher than the lower end equipped with the inlet compartment Cl, which can have thinner walls than either of the two sections to which it connects, as clearly visible in [Fig. 3], for example. This allows for an enlargement of the internal cross-section to integrate the support structure (plate 4p) of the measuring device 4, in particular the removable mounting structure with the fastening means MF2.

[0080] As can be seen in [Fig. 1] for example, the housing 12 can be located higher than the measuring device 4, and higher than an MF2 connector interface (an interface which may include an MC connector module at the top of the hollow part 2, as in [Fig. 4A]) carried by the TC section to ensure the electrical connection and the data link between the measuring device 4 of the instrumented compartment C2 and an upper area, typically corresponding to the housing B, where one and / or the other of the control unit UC and the acquisition module 14 may be located (see [Fig.5]). A structure with an insertion member 2i, at the annular upper end of the TC section, may be preferred, which can allow the formation of an internal axial stop in this insertion member 2i. The dehydration element(s) 8 can then bear against this axial stop Bt which narrows the passage section (for example with the diameter De), without preventing the connection with the measuring device 4, via the annular mounting element S4.

[0081] As shown in [Fig. 4B], this mounting element S4 forms part of a connection interface, optionally in the form of fastening means MF2 allowing for disconnection. It can form a connection with two arms bl, b2, spaced apart by a distance e allowing gas circulation, to rigidly support the measuring device 21 (via the plate 4p). A set of screws 4f, 4g or equivalent fastening elements allows the measuring device 4 to be fixed to the section TC. The screws 4g secure the measuring device 4 to the mounting element S4 (here via the longitudinal arms bl, b2), while the screws 4f anchor the upper annular ring of this element S4 to a seat surface having holes that receive these screws 4f respectively.

[0082] The acquisition module 14 records the measurements (or corresponding data) from the detection means 20 and / or optionally from each of the other sensors of the measuring device 4. This acquisition module 14 forms part of the probe 1, occupying the instrumented compartment C2, which is watertight. The measuring device 4 and the electrochemical sensor / detection means 20 can be mounted on or connected to the electronic board used to digitize the signal and / or equipped with the acquisition module 14, which records the digitized signal.

[0083] This digitized signal is then transmitted via cable 9 to the typically sealed housing B, which contains the rest of the instrumentation. In some embodiments, the acquisition module 14 continuously records the measurement parameters in this housing B. These parameters include, for example, the concentration of hydrogen or other gas measured by the electrochemical detection means 20, the relative humidity, and the temperature at the bottom of the probe (typically at compartment C2). The sampling frequency can be adjusted as needed, making it easy to achieve one measurement point per second for the measured gas concentration. The data, for example, recorded on a portable card (e.g., in SD, or "Secure Digital" format) or similar memory, are typically retrieved via a standard connection port or directly from the portable card. The probe with its housing constitutes a system that can be completely buried to be completely invisible on the surface, which is a guarantee of safety.

[0084] With reference now to [Fig. 6], a sequence of operations is presented for a (non-limiting) example of using a probe 1 according to the invention. During a preparation phase 40, a first step 41 may consist of excavating the soil S and drilling a borehole. The borehole may be approximately 1 m deep, with a width suitable for the passage of the probe 1, this width typically being much less than 10 cm, given the small diameter of the probe 1. An operator may then proceed to a step 42 of installing the probe 1 to obtain the buried configuration of this probe 1, such that the inlet compartment Cl is located approximately 1 meter below the level of the soil S, or more broadly at any sufficient vertical distance, which may be greater than 50 or 60 cm, with the lower end 3 enveloped in the subsoil SS. This type of drilling does not require heavy machinery when the ground is relatively soft. The method typically involves placing the probe rod in the borehole to fill it. The measuring device 4, equipped with an electrochemical sensor, for example, to form the detection means 20, is located in the last (deepest) third of the borehole, but not in the lowest compartment, which corresponds to the intake compartment CL.

[0085] The probe 1, once powered, can then begin continuous measurements during a step 61 that starts the measurement period. During this period, the buried measuring device 4 repeatedly sends signals that are digitized and recorded to provide, for example, at least one month later, complete information on the presence of the gas to be detected. In operation as shown in [Fig. 6], the control device UC can analyze or verify the reliability level of the measurements performed by the electrochemical detection means 20, using, for example, representative information on the humidity level obtained with the help of the auxiliary sensor(s) 6 of the measuring device 4.

[0086] A control step 62 is typically performed before recording the data (recording step 63), which can save an energy-intensive write operation. In one embodiment, this control step 62 may include a comparison that reflects whether or not there has been a change in the conditions and / or measurement results. Alternatively, all sensor data is recorded with a time stamp. In this case, humidity information can be recorded and matched / associated with the gas concentration result as determined by electrochemical detection.

[0087] More generally, the probe with its instrumentation is adapted to provide context data for the measurement performed, which may be a gas concentration measurement obtained by electrochemical means. This data is used by the control unit CU, which forms a control device to ensure the reliability of the measurement results collected when they are retrieved: results linked to conditions poorly suited to the measurement may have been suppressed (at least in part) or may be identified as questionable due to the data from the auxiliary sensor(s) 6. Phenomena of pressure variation and / or other physico-chemical parameters may be retrieved in a similar way, in order to provide control data and to optimize or report on a level of reliability of the measurements.

[0088] The probe 1 thus advantageously integrates a data collection equipment which is optimized, allowing the in situ measurement and local recording of one or more characteristics of the gaseous fluid arriving in the instrumented compartment, for a period which can be very long (several days or several weeks) without communication with the outside, with a cost price which can be minimized despite autonomous operation.

[0089] When the control data includes a parameter representing a humidity level in compartment C2 and possibly at least one other data point representing the detection of anomalies in physical conditions encountered during the measurements (in this compartment C2), it is understood that the control unit UC intervenes so that the equipment collecting such data allows the end user or subsequent processing software to assess the reliability of the measurements. This makes it possible to recover the measurement context of the retrieved data (concentration of a gas) and to selectively disqualify measurements taken when this device / control unit detects, where appropriate using one or more detection thresholds applied to the control data, a loss of measurement reliability.Pressure measurements (to indicate, in particular, the pressure in compartment C2), and possibly temperature, as a complement to and / or alternative to the humidity parameter, may be included in these monitoring data. Regarding the humidity control data, this can also help determine, depending on the installation location, whether the quantity of dehydration elements 8 needs to be adjusted. If it takes 1 or 2 months to exceed 90 or 95% humidity according to the data collected, this may indicate that these dehydration elements 8 are effective. Example(s) of electrochemical detection

[0090] The detection of the gaseous component, for example H2, CO2, CH4 or H2S, without this list being exhaustive, can be carried out using a sensor forming the means Detection 20, for example in the form of an electrochemical detection cell incorporating a solid electrolyte. This could be, for example, a solid polymer within a sensitive area that allows for an electrochemical catalytic reaction. Continuous detection can be achieved by placing a solid electrolyte between two electrodes.

[0091] The electrochemical cell or sensor of the detection means 20 is for example mounted on an electronic board which has a converter or similar processing means to digitize the signal provided by the sensor 20. The electronic board can be pre-programmed in order to easily / automatically detect the sensor(s), typically by configuring a coupling with this or these sensors, thus allowing automatic recording of the information or signals delivered by this / these sensors.

[0092] Of course, the measuring device 4 can be adapted to avoid saturation situations, for example by having (among the sensors arranged in compartment C2) two separate electrochemical sensors to measure the concentration of the same gas. In one option, the resolution of the first sensor is 1000 ppm and the resolution of the other electrochemical sensor is 20,000 or 40,000 ppm. One or more carbon dioxide gas sensors, such as carbon monoxide, can be provided / integrated. More broadly, other additional electrochemical sensors can also be present for measuring another gas or several other gases.

[0093] The fineness of a filter material, in EF filtration means, can be adapted to separate very fine particles, with the specificity of preventing water from rising back up into the tube / into the instrumented compartment.

[0094] The probe 1 can be used in particularly humid environments despite the presence of an electrochemical sensor which loses its reliability when too much humidity is present in the instrumented compartment C2. The probe stem, formed by the body la with the hollow part 2 where the measurements are carried out, can be completely watertight and particle-proof, while ensuring proper gas circulation through the filter element EF, placed internally in the stem.

[0095] The probe 1 is well suited to allow continuous recording, where appropriate with high temporal resolution, of the emanations of the gaseous component of the subsoil SS such as, for example, dihydrogen. Probe 1 can be used to monitor leaks in underground gas storage areas, for example, hydrogen storage, as well as natural upwelling from geological reservoirs. It can facilitate mapping operations to identify naturally occurring hydrogen present in the ground, typically at depths exceeding 50 or 60 cm. The aim is to establish areas with potential for the extraction / exploitation of this gas which constitutes a source of carbon-free energy.

[0096] The description of the embodiments presented above is provided as examples to describe one or more ways of obtaining the device, without limitation. Furthermore, each part of this disclosure is not limited to the corresponding embodiment, and various variations may be made within the same technical framework.

Claims

1. Demands A measuring probe (1) intended to be buried in soil (S) to detect at least one gas in that soil, the probe (1) comprising: - a rigid body (la) elongated from an upper end (E2) of the probe and suitable for being buried in the ground (S); - a hollow part (2) carried by the rigid body (la), perforated and / or porous to gases and liquids, and delimiting an intake compartment (Cl) through which a gaseous flow (FG) is admitted into the probe (1); - a passage opening (3c) which allows a gas flow to circulate from the intake compartment (Cl) to a measurement zone; - a measuring device (4), provided in the measuring zone which is in fluidic communication with the intake compartment (Cl) via the passage opening (3c); and - a link with a module (14) for acquiring measurements from one or more sensors of the measuring device (4); characterized in that the measuring device (4) is housed internally in the probe (1) at a distance from the upper end (E2), in an instrumented compartment (C2) sealed, with respect to the liquids present in the inlet compartment (Cl), by filtration means (EF) which: - are interposed between the intake compartment (Cl) and the instrumented compartment (C2); and - close the passage opening (3c) to form a barrier to liquids which allows the gas flow to pass towards the measuring device (4) in the form of a filtered gas flow, so that the measuring device makes it possible to measure in situ one or more characteristics of the filtered gaseous fluid, preferably continuously, and in that the measuring device (4) includes a means for selective electrochemical detection (20) of a gaseous component of the filtered gaseous flow, the probe (1) further comprising a control data collection device enabling the determination of a level of reliability of the measurements carried out by the electrochemical detection means (20), on the basis of data retrieved by at least one auxiliary sensor (6) of the measuring device (4).

2. Probe according to claim 1, wherein the hollow portion (2) is configured to form or include a lower end (3) of the probe (1), the inlet compartment (Cl) being a lower compartment of the probe extending into or to the lower end (3), and wherein the instrumented compartment (C2) is an upper compartment superimposed on the lower compartment, the passage opening (3c) allowing the admitted gas flow to be directed upwards to the instrumented compartment (C2).

3. Probe according to claim 1 or 2, wherein the filtration means (FE) comprise a flexible cloth or layer of a filtering medium, held between two annular support pieces which are connected to each other by clamping means arranged around the periphery of a filtration portion of the filtration means.

4. Probe according to any one of the preceding claims, comprising an electronic unit (CU) controlling the acquisition module (14) and having a measurement data comparison module for comparing successive measurements made by the electrochemical detection means (20), the electronic unit (CU) being configured to implement an optimized recording routine by writing data to the acquisition module (14) only in the case where the comparison module determines a variation, exceeding a given minimum threshold, in successive measurements made by the electrochemical detection means (20).

5. Probe according to any one of the preceding claims, wherein the hollow part (2) has a connection portion (3b), annular or tubular, allowing the inlet compartment (Cl) to be connected and disconnected from below a complementary connector element provided in the probe and allowing maintenance or replacement of the filtration means (EF), wherein the connection portion (3b) includes the passage opening (3c) and is integral with a perforated tubular section which delimits the inlet compartment (Cl), and wherein, in an assembled state of the probe (1), a sealing member (15; J15) made of elastic material surrounds the connection portion (3b) and the complementary connector element or makes an annular sealing contact against the connection portion (3b) and against the complementary connector element.

6. Probe according to claim 5, wherein, in the mounted state of the probe (1), the instrumented compartment (C2) is accessible only from below, through a single access formed by the passage opening (3c), the instrumented compartment (C2) being isolated from the outside of the probe (1) by absence of a top outlet or lateral communication channel.

7. Probe according to claim 5 or 6, wherein the sealing member (15; J15), surrounding a longitudinal axis (A) of the probe (1), is selected from: - a heat-shrinkable sleeve or film (15) suitable for wrapping an overlap area between the connection portion (3b) and a complementary connector element of the probe; and - an annular compression seal (J15), covered laterally by an external wall of the probe (1) and on which an axial clamping is exerted.

8. Probe according to any one of the preceding claims, wherein the control data collection device is configured to control the level of reliability of the measurements made by the electrochemical detection means (20) by: - ​​retrieving measurements from at least one auxiliary sensor (6) enabling the determination of a parameter representative of a humidity level in the instrumented compartment (C2), - and / or by performing anomaly detection in physical conditions encountered during the measurements, the detection being enabled by at least one auxiliary sensor of the measuring device.

9. Probe according to any one of the preceding claims, comprising a housing (12) for trapping water, accessible only through an underpass which communicates with the instrumented compartment (C2), the housing (12) allowing to house one or more desiccant elements (8), preferably containing a desiccant material.

10. Probe according to any one of the preceding claims, wherein the acquisition module (14) is connected to a self-contained power supply, preferably protected in a housing (B) connected from above to the probe (1) via a cable (9), and wherein the rigid body (1), which incorporates the cable (9), is connected in a gas-tight manner to the hollow part (2) and has an external boundary in two parts with:

11. - a first, tubular section, forming a lateral barrier to gases; and - a second part, surmounting the first tubular part of the rigid body (la), knowing that an axial barrier hermetic to gases, preventing gases from escaping from the probe (1) by rising beyond the second instrumented compartment (C2), is provided in the form of an internal partition of the probe or in the second part. Method for assembling a buried gas detection probe, preferably constituting the probe (1) according to any one of the preceding claims, comprising: - the supply of an elongated rigid body (la) and a hollow part (2) perforated and / or porous to gases and liquids which delimits an inlet compartment (Cl) through which a gas flow (FG) can be admitted into the probe (1); - the mounting of a measuring device (4) in one of the rigid body (la) and the hollow part (2), on at least one support (4a) which allows supply from an electrical power source via a cable (9) or link, the cable (9) or link also allowing the measuring device (4) to be connected to a control device or unit (UC) and to a module (14) for acquiring measurements made by one or more sensors of the measuring device (4); - the tight connection of the hollow part (2) to a lower annular section (le) of the rigid body (la), after placing the cable (9) in the rigid body (la) and, respectively, of the filtration means (EF) in the hollow part (2), by which means the filtration means (EF) separate an instrumented compartment (C2) where the measuring device (4) extends from the inlet compartment (Cl), forming a barrier to liquids allowing a gaseous flow, admitted into the inlet compartment (Cl), to flow towards the measuring device (4) in the form of a filtered gaseous flow, knowing that the measuring device (4) has a means for the selective electrochemical detection (2) of a gaseous component of the filtered gaseous flow, while at least one auxiliary sensor (6) is also integrated into the measuring device (4) to allow the collection of control data retrieved by the control device or unit (UC) using this auxiliary sensor (6).

12. Assembly method according to claim 11, further comprising: - the provision of one or more desiccant elements (8), each having a desiccant material and a filter envelope, to enable the trapping of water in an internal volume of the envelope where the desiccant material is located; and - the insertion of the desiccant element(s) (8) into the instrumented compartment (C2) and / or into a central hollow which defines a housing (12) of the rigid body (la), preferably above a portion of electrical and mechanical connection which allows the rigid body (la) to be connected in a separable manner to the hollow part (2).

13. Use of the probe (1) according to any one of claims 1 to 10, the probe having its body (la) buried in the ground (S) and extending to the hollow part (2) which is perforated and / or porous to gases and liquids in order to allow the admission of a gas flow (FG) into the inlet compartment (Cl) of the probe, which is a gas taken in situ at a lower end (3) of the probe (1), in which the measuring device (4), when disposed in the instrumented compartment (C2) provided in the probe to be separated from the inlet compartment by the filtration means (EF), by being connected to the measurement acquisition module (14) by a non-fluidic link, serves to provide: - by an electrochemical gas concentration sensor, preferably a solid electrolyte sensor, constituting the electrochemical detection means (20),of the first measurements in the measurement zone where the gas flow circulates after being filtered by the filtration means; and - by at least one auxiliary sensor (6) of the second measurements; and wherein the acquisition module (14) records measurement data whose reliability level is evaluated by a control device or unit (UC), preferably provided in a housing (B) which also houses the acquisition module (14), thereby enabling the probe to operate for several days or several weeks without communication with the outside, accumulating the first measurements whose reliability level can be verified with regard to the second measurements.

14. Use according to claim 13, wherein the second measurements are digitized and / or processed as control data, which include: - a parameter representative of a humidity level in the instrumented compartment (C2), - and / or at least one data point representative of anomaly detection in physical conditions encountered during measurements in the instrumented compartment (C2), said control data enabling the selective disqualification of the first measurements taken when the control device or unit (UC) detects, using one or more detection thresholds applied to the control data, a loss of measurement reliability.

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