Fluid meter detecting and distinguishing between leak and offset problem

The monitoring method in ultrasonic fluid meters distinguishes between leaks and offset problems by checking valve status and flow rate conditions, using standard deviation and temperature adjustments, enabling efficient problem identification and management.

FR3149973B1Active Publication Date: 2025-09-12SAGEMCOM ENERGY & TELECOM SAS
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Patent Information

Application Number
FR2023006077
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-06-14
Publication Date
2025-09-12
Estimated Expiration
2043-06-14

AI Technical Summary

Technical Problem

Existing ultrasonic fluid meters face challenges in accurately distinguishing between a real fluid leak and an offset problem due to mechanical and electronic tolerances, which can lead to erroneous flow rate measurements and difficulty in differentiating between a poorly calibrated offset and a real leak, especially when the actual flow rate is uncertain.

Method used

A monitoring method is implemented in the fluid meter that includes a preliminary phase of acquiring flow rate measurements, followed by a detection phase to check the status of a valve, and subsequent conditions to determine if the flow rate is constant or variable, using standard deviation calculations and temperature adjustments to differentiate between a leak, offset, or valve malfunction.

Benefits of technology

The method allows for precise identification of leaks, offset issues, and valve malfunctions, minimizing user disruption by proactive notification and enabling accurate water consumption management, ensuring timely corrective actions.

✦ Generated by Eureka AI based on patent content.

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Abstract

Monitoring method, implemented in a fluid meter (1) which comprises a measuring device (6) arranged to measure a flow rate of the fluid and a valve (12), the monitoring method comprising a preliminary phase comprising the step of acquiring first flow rate measurements, and a detection phase, carried out when the flow rate remains non-zero and below a first predetermined threshold for at least a predetermined duration, and comprising the steps of: - checking that the valve is open and, if so, closing the valve; - acquiring at least a second flow rate measurement; - detecting a fluid leak if the flow rate is zero. FIGURE OF THE ABSTRACT: Fig.1
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Description

Title of the invention: Fluid meter detecting and distinguishing a leak and an offset problem

[0001] The invention relates to the field of fluid meters, and in particular ultrasonic fluid meters.

[0002] BACKGROUND OF THE INVENTION

[0003] An ultrasonic fluid meter very conventionally comprises a conduit in which the fluid circulates, and an ultrasonic measuring device comprising an upstream transducer (network side) and a downstream transducer (subscriber installation side). Each transducer successively plays the role of an emitter and a receiver of ultrasonic signals. The upstream transducer thus emits an ultrasonic signal into the conduit, which is received by the downstream transducer after having traveled a predefined path (of perfectly controlled length) in the fluid. Then, the downstream transducer in turn emits an ultrasonic signal, which is received by the upstream transducer after having traveled the predefined path (in the other direction) in the fluid. The ultrasonic measuring device then evaluates the speed of the fluid from the transit times of the ultrasonic signals, then the flow rate of the fluid from the speed of the fluid.Estimating the fluid flow rate allows you to evaluate and bill the quantity of fluid consumed.

[0004] The operating principle of the ultrasonic measuring device is therefore based on the measurement of the transit times of the ultrasonic signals between the two transducers. The basic equations are as follows:

[0005] v = L / (t_AB - t_BA) (equation 1),

[0006] where v is the fluid velocity, L is the distance between the transducers, t_AB is the transit time between the upstream transducer and the downstream transducer, and t_BA is the transit time between the downstream transducer and the upstream transducer.

[0007] Q = A * v (equation 2),

[0008] where Q is the volumetric flow rate and A is the cross-sectional area of ​​the duct.

[0009] However, in practice, it is observed that at zero flow rate, the transit time between the upstream transducer and the downstream transducer (t_AB) is not always equal to the transit time between the downstream transducer and the upstream transducer (t_BA). This phenomenon is due to the mechanical and electronic tolerances of the measuring chain integrated in the ultrasonic measuring device. This difference in transit time at zero flow rate is called “offset error” (which is sometimes translated as “zero error”, or “shift”), and which will be called “offset” in the rest of this document.

[0010] To avoid degrading the accuracy of the meter, it is therefore necessary to calibrate the meter at zero flow rate in order to take into account its offset value.

[0011] The speed is then obtained using the following equation:

[0012] V = L / (t_AB - t_BA - offset) (equation 3).

[0013] [Fig.l] shows an example of the measurement of the offset at zero flow rate of an ultrasonic water meter, before calibration (points PI) and after calibration (points P2). Before calibration, we see that the offset is centered around 2 L / h, which looks like a small drip leak. The offset calibration aims to bring the curve back to zero to avoid any erroneous measurements.

[0014] This offset poses a very particular problem.

[0015] It is of course very advantageous to be able to detect a fluid leak in the installation downstream of the meter.

[0016] A method is known from the prior art, consisting of detecting a leak by looking for the presence of a constant but non-zero flow rate. However, a drift of the ultrasonic measuring device, or a poorly calibrated electronic offset, can generate an erroneous flow rate which can last indefinitely. The value of this flow rate can vary depending on the water temperature.

[0017] It is therefore very difficult to differentiate between a poorly calibrated offset and a real leak, especially since we can never be certain that the actual flow rate is zero.

[0018] SUBJECT OF THE INVENTION

[0019] The object of the invention is, in a fluid meter, to detect a real leak downstream of the meter or an offset problem, by correctly distinguishing these two events. Summary of the invention

[0020] With a view to achieving this goal, a monitoring method is proposed, implemented in a fluid meter which comprises:

[0021] - a conduit in which a fluid circulates;

[0022] - a measuring device arranged to measure a flow rate of the fluid;

[0023] - a valve located upstream of the measuring device;

[0024] - a processing unit;

[0025] the monitoring method being implemented in the processing unit and comprising a preliminary phase comprising the step of acquiring first flow rate measurements;

[0026] the monitoring method further comprising a detection phase, carried out when the flow rate remains non-zero and below a first predetermined threshold for at least a predetermined duration, and comprising the steps of:

[0027] - check that the valve is open and, if so, close the valve;

[0028] - acquire at least a second flow measurement;

[0029] - detect a fluid leak if the flow rate is zero.

[0030] When the flow rate remains non-zero and low for a relatively long time, this means that there may be a leak in the installation downstream of the meter, or that the measuring device has an offset problem. Closing the valve then creates a zero flow rate (with certainty), which makes it possible to detect and distinguish between these two events.

[0031] We further propose a monitoring method as previously described, in which the detection phase comprises the steps, following the acquisition of the at least one second flow rate measurement, if the flow rate is not zero, of:

[0032] - verifying at least a first condition, comprising a first condition primary, which is that the flow rate is constant;

[0033] - if the at least one first condition is verified, detect an offset problem in the measuring device.

[0034] A monitoring method is further provided as previously described, in which the at least one first condition also comprises a first secondary condition, which is that the flow rate is less than a second predetermined threshold.

[0035] A monitoring method is further proposed as previously described, in which the detection phase comprises the steps, following the acquisition of the at least one second flow rate measurement, if the flow rate is not zero, of:

[0036] - verifying at least one second condition, including a second condition primary, which is that the flow rate is variable;

[0037] - if the at least one second condition is verified, detect a functional fault valve operation.

[0038] A monitoring method is further provided as previously described, wherein the at least one second condition also comprises a second secondary condition, which is that the flow rate is greater than a third predetermined threshold.

[0039] A monitoring method is further proposed as previously described, in which the detection phase comprises the step of calculating a standard deviation over a predefined number of second flow rate measurements, the first primary condition being verified when the standard deviation is less than a predetermined deviation threshold, the second primary condition being verified when the standard deviation is greater than the predetermined deviation threshold.

[0040] A monitoring method is further proposed as previously described, in which the detection phase comprises, following the step of verifying that the valve is open, if the valve is closed, detecting an offset problem in the measuring device.

[0041] A monitoring method as previously described is further provided, wherein the preliminary phase further comprises the step of acquiring measurements of a temperature of the fluid, the monitoring method further comprising the step of repeat the detection phase each time the fluid temperature has varied by at least a predefined temperature threshold since the previous detection phase.

[0042] We further propose a monitoring method as previously described, the detection phase being implemented at night.

[0043] A monitoring method is further proposed as previously described, further comprising the step, from the moment a leak or an offset problem or a valve malfunction has been detected, of separately recording water consumption by the installation.

[0044] We further propose a fluid meter, comprising:

[0045] - a conduit in which a fluid can circulate;

[0046] - a measuring device arranged to measure a flow rate of the fluid;

[0047] - a valve located upstream of the measuring device;

[0048] - a processing unit in which the monitoring method is implemented such as as previously described.

[0049] A fluid meter as previously described is further provided, the measuring device being an ultrasonic measuring device.

[0050] A computer program is further provided comprising instructions which cause the processing unit of the meter as previously described to execute the steps of the monitoring method as previously described.

[0051] A computer-readable recording medium is further provided, on which the computer program as previously described is recorded.

[0052] The invention will be better understood in light of the following description of a particular non-limiting embodiment of the invention. Brief description of the drawings

[0053] Reference will be made to the attached drawings, among which:

[0054] [Fig-1] [Fig.l] represents a graph comprising measurement points of a electronic noise at zero flow rate before calibration, and measurement points of this noise after calibration;

[0055] [Fig.2] [Fig.2] represents an ultrasonic water meter;

[0056] [Fig.3] [Fig.3] represents steps of the monitoring method. DETAILED DESCRIPTION OF THE INVENTION

[0057] With reference to [Fig. 2], the invention is implemented in an ultrasonic fluid meter 1. The meter 1 is in this case a water meter, which is used to measure the water consumption of a subscriber's installation 2. The water is supplied to the installation 2 by a water distribution network 3.

[0058] The meter 1 comprises a conduit 4 in which the water supplied by the network 3 to the installation 2 circulates. The water circulates in the conduit 4 from upstream to downstream, as is indicated by the direction of the arrows F. Here, by "upstream" we mean on the side of network 3, and by "downstream" we mean on the side of installation 2.

[0059] The counter 1 comprises a processing unit 5 (electronic and software). The processing unit 5 comprises at least one processing component 5a, which is for example a “generalist” processor, a processor specialized in signal processing (or DSP, for Digital Signal Processor), a microcontroller, or a programmable logic circuit such as an FPGA (for Field Programmable Gate Arrays) or an ASIC (for Application Specified Integrated Circuit). The processing circuit 5 also comprises one or more memories 5b, connected to or integrated in the processing component 5a. At least one of these memories 5b forms a computer-readable recording medium, on which is recorded at least one computer program comprising instructions which cause the processing component 5a to execute at least some of the steps of the monitoring method which will be described below.

[0060] The meter 1 also comprises an ultrasonic measuring device 6. The ultrasonic measuring device 6 is used to measure the flow rate of water supplied to the installation 2 by the network 3.

[0061] The ultrasonic measuring device 6 comprises an upstream transducer 7a and a downstream transducer 7b. The ultrasonic measuring device 6 also comprises a processing module 9 connected to the upstream transducer 7a and to the downstream transducer 7b. The processing module 9 is here implemented in the processing unit 5.

[0062] The upstream transducer 7a and the downstream transducer 7b are advantageously (but not necessarily) paired. The upstream transducer 7a and the downstream transducer 7b are here piezoelectric transducers.

[0063] Each transducer 7a, 7b successively plays the role of a transmitter and a receiver of ultrasonic signals.

[0064] The processing module 9 generates an electrical excitation signal Se, and provides the transmitter with the electrical excitation signal. The transmitter then generates an ultrasonic signal Su. The receiver receives the ultrasonic signal after it has traveled a predefined path in the fluid, and the processing module 9 measures the transit time.

[0065] The predefined path is here a direct path (parallel to a longitudinal axis of the duct 4, as is the case in [Fig.l], or inclined to said axis). The predefined path could also be an indirect path: the ultrasonic signals are then reflected against the internal wall of the duct (possibly against reflectors themselves located on the internal wall).

[0066] The predefined path has a length L, which is known very precisely.

[0067] Thus, the upstream transducer 7a first emits the ultrasonic signal, which is received by the downstream transducer 7b. The processing module 9 measures the transit time between the upstream transducer and the downstream transducer.

[0068] Then, the downstream transducer 7b emits the ultrasonic signal, which is received by the upstream transducer 7a. The processing module 9 measures the transit time between the downstream transducer and the upstream transducer.

[0069] The processing module 9 calculates the speed of the water flow from the transit times, then the flow rate of the water from the speed.

[0070] The meter 1 also includes a valve 12 which allows the water to pass through or to cut off the water flow. The valve 12 is therefore a two-position valve.

[0071] The valve 12 is a motorized (electromechanical) valve: it is a solenoid valve. The valve 12 comprises a movable member which extends into the conduit 4. Here, the valve 12 is a ball valve and the movable member is therefore a ball. The angular position of the ball can therefore be controlled either to cut off the flow or to allow the water to pass.

[0072] It is noted that the valve 12 could also be a multi-position valve allowing the water flow to be regulated, limited or cut off. In this case, the valve 12 is not only dedicated to implementing the monitoring method described here, but could also fulfill another function, and for example allow the water distributor and / or the network manager to cut off or limit the water flow in the event of non-payment.

[0073] The valve 12 is positioned, along a length of the conduit 4, upstream of the two transducers 7a, 7b.

[0074] The meter 1 also comprises a temperature sensor 14, which measures a temperature of the water in the meter 1.

[0075] The meter 1 further comprises a communication module 15 which is capable of implementing any type of communication, and for example communication via a cellular network of the 2G, 3G, 4G, Cat-M or NB-IOT type, communication according to the LoRa protocol, according to the W-Mbus protocol, radio communication according to the Wize standard operating at the frequency of 169 MHz, etc.

[0076] The principle of the invention is now described.

[0077] If valve 12 is open and meter 1 measures a non-zero flow rate, for a relatively long period, typically several hours, there are three possibilities: - either there is a real leak downstream of meter 1, which therefore occurs either in the subscriber's installation 2, or at the interface between downstream of meter 1 and installation 2 (in the case, for example, where meter 1 is incorrectly connected); - either the measuring device 6 has an offset problem (offset poorly calibrated or offset drifts depending on time and / or temperature); - either valve 12 has a malfunction.

[0078] The monitoring method firstly comprises a preliminary phase during which the processing unit 5 acquires first flow rate measurements.

[0079] If, during the preliminary phase, the flow rate remains non-zero and below a first predetermined threshold for at least a predetermined duration, the processing unit 5 starts a detection phase.

[0080] The first predetermined threshold is for example equal to 3 L / h or 5 L / h. The predetermined duration is for example equal to 1 h or 2 h.

[0081] During the detection phase, the processing unit 5 first checks that the valve 12 is indeed open.

[0082] If the valve 12 is closed, the processing unit 5 detects an offset problem in the measuring device 6. In fact, the measured flow rate should have been zero (because the actual flow rate is indeed zero, the valve 12 being closed).

[0083] If the valve 12 is open, the processing unit 5 closes the valve 12.

[0084] The processing unit 5 acquires at least a second flow measurement, in the occurrence here of several second flow measurements.

[0085] The processing unit 5 then detects a water leak if the flow rate is zero. By closing the valve 12, a truly zero flow rate has in fact been generated. If the measuring device 6 correctly measures this zero flow rate, this means that there is no offset problem or problem on the valve 12.

[0086] On the other hand, following the acquisition of at least one second flow rate measurement, if the flow rate is not zero, the processing unit 5: - verifies at least a first condition, including a first primary condition, which is that the flow rate is constant; - if at least one first condition is verified, detects an offset problem in the measuring device 6.

[0087] Here, the at least one first condition also comprises a first secondary condition, which is that the flow rate is less than a second predetermined threshold.

[0088] The second predetermined threshold is here equal to 5 L / h.

[0089] Indeed, if the measured flow rate is not zero but constant, like a flow rate actually null was generated, this means that measuring device 6 is malfunctioning and, more specifically, that there is an offset problem in measuring device 6.

[0090] Following the acquisition of at least one second flow rate measurement, if the flow rate is not zero, the processing unit 5: - verifies at least one second condition, including a second primary condition, which is that the flow rate is variable; - if at least one second condition is verified, detect a malfunction of valve 12.

[0091] Here, the at least one second condition also includes a second secondary condition, which is that the flow rate is greater than a third predetermined threshold.

[0092] The third predetermined threshold is here equal to 10 L / h.

[0093] Indeed, if the measured flow rate is not zero but variable, as a truly zero flow rate has been generated, this means that the valve 12 is malfunctioning.

[0094] Following the acquisition of at least one second flow rate measurement, if the flow rate is not zero, the processing unit 5 therefore checks whether the flow rate is constant (first primary condition) or variable (second primary condition).

[0095] For this, the processing unit 5 calculates a standard deviation on a predefined number of the second flow rate measurements, the first primary condition being verified when the standard deviation is less than a predetermined deviation threshold (here less than or equal), the second primary condition being verified when the standard deviation is greater than the predetermined deviation threshold (here strictly greater).

[0096] The predefined number is for example equal to 10.

[0097] The predetermined deviation threshold is for example equal to 1 L / h.

[0098] A particular embodiment of the monitoring method is now described with reference to [Fig.3].

[0099] The method begins at step E0.

[0100] The processing unit 5 implements the preliminary phase and acquires the first flow rate measurements.

[0101] The processing unit 5 compares the flow rate with the first predetermined threshold SI: step EL

[0102] SI is for example equal to 3 L / h or 5 L / h.

[0103] As long as the flow rate is greater than SI (here strictly), the process loops back to step E0 then to step EL

[0104] When the flow rate becomes less than SI (here less than or equal), while being non-zero, the processing unit 5 starts a stopwatch: step E2.

[0105] The processing unit 5 checks whether the flow rate remains non-zero and lower than the first predetermined threshold S1 for at least a predetermined duration D (here equal for example to 1 h or 2 h): step E3.

[0106] If this is not the case, the method returns to step E0.

[0107] If this is the case, the detection phase begins. The method proceeds to step E4. The processing unit 5 checks that the valve 12 is open.

[0108] If the valve 12 is closed, the processing unit 5 detects an offset problem in the measuring device 6: step E5.

[0109] The processing unit 5 produces an alarm message indicating this offset problem: step E6.

[0110] In step E4, if the valve 12 is open, the processing unit 5 closes the valve 12: step E7.

[0111] The processing unit 5 checks whether the flow rate is zero: step E8.

[0112] If this is the case, it detects a “real” leak (step E9), and it produces an alarm message indicating the presence of this leak: step E10.

[0113] If this is not the case, the processing unit 5 checks the first primary condition and the second primary condition (in this embodiment, the at least one first condition comprises only the first primary condition and the at least one second condition comprises only the second primary condition).

[0114] The verification of the first primary condition and the second primary condition consists first of all in measuring the standard deviation o on the predefined number (here equal for example to 10) of second flow rate measurements: step Eli.

[0115] The processing unit 5 checks whether the standard deviation o is greater than the predetermined deviation threshold M (here strictly greater): step El2. The predetermined deviation threshold is for example equal to 1 L / h.

[0116] If this is not the case, the method proceeds to step E5: the processing unit 5 detects an offset problem in the measuring device 6. The processing unit 5 produces an alarm message indicating this offset problem: step E6.

[0117] If this is the case, the processing unit 5 detects a malfunction of the valve 12: step E13. The processing unit 5 produces an alarm message indicating this problem linked to the valve 12: step El4.

[0118] In steps E6, E10 and E14, the alarm messages are sent to the water distributor and / or the network manager via the communication module 15. The alarm messages can also be transmitted to the user. The alarms can be displayed on the screen of the meter 1.

[0119] It is recommended to repeat the detection phase for different water temperatures. It may indeed be that the meter 1 does not measure a non-zero flow rate lower than the first predetermined threshold at one or more given temperatures, but measures such a flow rate at one or other temperatures.

[0120] This situation is observed for example in the case of drift of the offset as a function of the temperature. For example, the offset may be well calibrated at 20°C, but not at 40°C, so that the meter 1 will not measure a non-zero flow rate at 20°C (in the case where for example the valve 12 is closed), while at a temperature close to 40°C, it will measure a false flow rate.

[0121] Thus, during the preliminary phase, and therefore at step E0 in [Fig.2], the processing unit 5 also acquires measurements of the water temperature produced by the temperature sensor 14.

[0122] In step E5, the offset problem is associated with the temperature of the fluid; the alarm message sent back therefore also includes said temperature.

[0123] The detection phase is repeated each time the temperature of the fluid has varied by at least a predefined temperature threshold since the previous detection phase.

[0124] The predefined temperature threshold is for example equal to 5° (it can be an increase or a decrease in temperature).

[0125] Optionally, from the moment when a leak or an offset problem or a malfunction of the valve 12 has been detected, the processing unit 5 separately records water consumption by the installation 2. We thus distinguish the overall, total consumption of the installation 2 from the consumption of the installation 2 from the moment when the anomaly has been detected.

[0126] This allows the water distributor and / or the network manager and / or the user to take measures to correct and possibly compensate for the billing problems resulting from this anomaly.

[0127] It should be noted that it is advantageous to implement the detection phases during the night. The detection phases require closing the valve 12 for a few moments, which cuts off the water flow.

[0128] It is also advantageous to carry out the second measurements with a high frequency (example: several measurements per second), which makes it possible to limit the closing time of the valve 12.

[0129] The advantages provided by the invention are as follows.

[0130] The invention makes it possible to carry out continuous and precise monitoring of the flow rate and temperature of the fluid.

[0131] It allows for rapid identification of potential problems, such as leaks, electronic offset problems and valve-related problems. It therefore also allows for rapid and effective intervention to correct the problem.

[0132] The invention minimizes disruption to the user through limited intervention on the valve.

[0133] The meter proactively transmits notifications of detected problems to the water distributor and / or the network manager and / or the customer, by means of alarm messages which are either displayed on the screen of the meter 1, or sent by the communication module 15.

[0134] As we have seen, it is possible to separately account for the volume of water consumed in the event of an identified problem, thus allowing better management of the customer's overall consumption.

[0135] Thus, the invention provides an effective and proactive solution for monitoring and managing issues related to fluid flow and temperature, while maintaining an optimal user experience for the user (end customer).

[0136] Of course, the invention is not limited to the embodiment described but encompasses any variant falling within the scope of the invention as defined by the claims.

[0137] The invention of course applies regardless of the positioning and configuration. of the upstream transducer and the downstream transducer. The ultrasonic signals can be emitted with an orientation of any angle relative to a longitudinal axis of the duct.

[0138] The predefined path between the transducers is not necessarily a direct path. The ultrasonic signals, emitted and received in the conduit by the transducers, can for example be reflected by reflectors (for example by mirrors oriented at 45°).

[0139] The fluid meter is not necessarily an ultrasonic meter.

[0140] The invention does not apply only to a water meter, but to any meter for any fluid: gas, oil, etc.

[0141] The valve is not necessarily a ball valve. Any type of valve can be used to shut off the flow, for example a slide valve.

Claims

Claims

1. Monitoring method, implemented in a fluid meter (1) which comprises: - a conduit (4) in which a fluid circulates; - a measuring device (6) arranged to measure a flow rate of the fluid; - a valve (12) located upstream of the measuring device; - a processing unit (5); the monitoring method being implemented in the processing unit and comprising a preliminary phase comprising the step of acquiring first flow rate measurements; the monitoring method further comprising a detection phase, carried out when the flow rate remains non-zero and below a first predetermined threshold (SI) for at least a predetermined duration (D), and comprising the steps of: - verifying that the valve (12) is open and, if so, closing the valve; - acquiring at least a second flow rate measurement; - detecting a fluid leak if the flow rate is zero.

2. Monitoring method according to claim 1, in which the detection phase comprises the steps, following the acquisition of the at least one second flow rate measurement, if the flow rate is not zero, of: - verifying at least one first condition, comprising a first primary condition, which is that the flow rate is constant; - if the at least one first condition is verified, detecting an offset problem in the measuring device (6).

3. A monitoring method according to claim 2, wherein the at least one first condition also comprises a first secondary condition, which is that the flow rate is less than a second predetermined threshold.

4. Monitoring method according to one of the preceding claims, in which the detection phase comprises the steps, following the acquisition of the at least one second flow measurement, if the flow is not zero, of: - verifying at least one second condition, comprising a second primary condition, which is that the flow is variable; - if the at least one second condition is verified, detecting a fault in the operation of the valve (12).

5. The monitoring method of claim 4, wherein the at least one second condition also comprises a second secondary condition, which is that the flow rate is greater than a third predetermined threshold.

6. Monitoring method according to claims 2 and 4, wherein the detection phase comprises the step of calculating a standard deviation on a predefined number of second flow rate measurements, the first primary condition being verified when the standard deviation is less than a predetermined deviation threshold (M), the second primary condition being verified when the standard deviation is greater than the predetermined deviation threshold.

7. Monitoring method according to one of the preceding claims, in which the detection phase comprises, following the step of verifying that the valve (12) is open, if the valve is closed, detecting an offset problem in the measuring device (6).

8. A monitoring method according to one of the preceding claims, wherein the preliminary phase further comprises the step of acquiring measurements of a temperature of the fluid, the monitoring method further comprising the step of repeating the detection phase each time the temperature of the fluid has varied by at least one predefined temperature threshold since the previous detection phase.

9. Monitoring method according to one of the preceding claims, the detection phase being implemented at night.

10. Monitoring method according to one of the preceding claims, further comprising the step, from the moment when a leak or an offset problem or a malfunction of the valve (12) has been detected, of separately recording a water consumption by the installation (2).

11. Fluid meter (1), comprising: - a conduit (4) in which a fluid can circulate; - a measuring device (6) arranged to measure a flow rate of the fluid; - a valve (12) located upstream of the measuring device; - a processing unit (5) in which the monitoring method according to one of the preceding claims is implemented.

12. A fluid meter according to claim 11, the measuring device being an ultrasonic measuring device.

13. Computer program comprising instructions which cause the processing unit (5) of the meter (1) according to one of claims 11 or 12 to execute the steps of the monitoring method according to one of claims 1 to 10.

14. A computer-readable recording medium on which the computer program according to claim 13 is recorded.