Method and system for measuring temperature using a photovoltaic module

The method estimates ambient temperature in systems with photovoltaic modules by using measurements of short-circuit current and open-circuit voltage, and a mathematical model defined by fixed coefficients related to the ideality factor of the module, addressing integration challenges and simplifying calibration.

FR3150286B1Active Publication Date: 2025-05-30COMMISSARIAT A LENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES +1
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Patent Information

Application Number
FR2023006348
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-06-20
Publication Date
2025-05-30
Estimated Expiration
2043-06-20

AI Technical Summary

Technical Problem

Integrating a dedicated temperature probe into systems with photovoltaic modules can be challenging and costly, and existing methods for estimating temperature using photovoltaic modules require significant calibration data and may need re-calibration with changes in photovoltaic module types.

Method used

A method and system that use a photovoltaic module to estimate ambient temperature by measuring the short-circuit current and open-circuit voltage, and applying a single mathematical model with fixed coefficients, where one coefficient is defined by the ideality factor of the equivalent diode of the photovoltaic module.

Benefits of technology

This approach allows for precise estimation of ambient temperature without the need for an external temperature sensor, simplifies calibration, and adapts easily to different types of photovoltaic modules, reducing complexity and costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

Method and system for measuring temperature by means of a photovoltaic module The present description relates to a method for determining the external ambient temperature Ta in a system comprising a photovoltaic module (104), comprising the following steps: a) measuring the short-circuit current Isc and the open-circuit voltage Voc of the photovoltaic module (104); b) calculating the external ambient temperature Ta, by means of an electronic processing device (110), as a function of the value of the short-circuit current Isc and the value of the open-circuit voltage Voc measured in step a), by means of a single mathematical model with two input variables, the mathematical model comprising fixed coefficients, one of said fixed coefficients being defined by a function of an ideality factor of an equivalent diode of the photovoltaic module. Figure for abstract: Fig. 3
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Description

Title of the invention: Method and system for measuring temperature using a photovoltaic module Technical field

[0001] The present description relates generally to systems integrating photovoltaic modules, and more particularly relates to a method and a system for measuring temperature by means of a photovoltaic module. Prior art

[0002] Many systems comprising one or more photovoltaic modules configured to power a load, for example an electric battery, have been proposed.

[0003] In many situations, it may be desirable to measure a temperature within the system, for example in order to control an element of the system accordingly.

[0004] To do this, a temperature probe dedicated to this measurement is conventionally provided.

[0005] However, integrating such a probe into the system can pose difficulties. Summary of the invention

[0006] One embodiment provides a method for determining the outside ambient temperature Ta in a system comprising a photovoltaic module, comprising the following steps: a) measure the short-circuit current Isc and the open-circuit voltage Voc of the photovoltaic module; b) calculating the outside ambient temperature Ta, by means of an electronic processing device, as a function of the value of the short-circuit current Isc and the value of the open-circuit voltage Voc measured in step a), by means of a single mathematical model with two input variables, the mathematical model comprising fixed coefficients, one of said fixed coefficients being defined by a function of an ideality factor of an equivalent diode of the photovoltaic module.

[0007] According to one embodiment, the mathematical model is defined by the following relation:

[0008] [Math.l] Ta(Isc Voc)= ax V^+bx ln(Isc) + ex 1^ + d+ e •>

[0009] where a, b, c, d and e are the fixed coefficients of the model, the coefficient e being defined by a function of the ideality factor of the equivalent diode of the photovoltaic module.

[0010] According to one embodiment, the coefficient e is defined by the following relation:

[0011] [Math.2] e = fx X2 + g •>

[0012] where f and g are fixed coefficients and X2 is the ideality factor of the equivalent diode of the photovoltaic module.

[0013] According to one embodiment, the fixed coefficients of the mathematical model are stored in a memory of the electronic processing device.

[0014] According to one embodiment, in step a), the value of the short-circuit current Isc of the photovoltaic module is determined by measuring a voltage across a shunt resistor connected to the terminals of the photovoltaic module.

[0015] According to one embodiment, the value of the shunt resistor is such that the voltage across the terminals of the shunt resistor when measuring the short-circuit current Isc of the photovoltaic module is less than 5% of the open-circuit voltage Voc of the photovoltaic module.

[0016] According to one embodiment, the method further comprises a step of controlling an electrically controllable element of the system taking into account the value of the ambient temperature Ta calculated in step b).

[0017] Another embodiment provides a system comprising a photovoltaic module and an electronic processing device configured to implement a method as defined above.

[0018] According to one embodiment, the system comprises a motorized occultation device powered by the photovoltaic module. Brief description of the drawings

[0019] These characteristics and advantages, as well as others, will be explained in detail in the following description of particular embodiments given without limitation in relation to the attached figures among which:

[0020] [Fig.l] is a perspective view schematically illustrating an example of a system integrating a photovoltaic module;

[0021] [Fig. 2] schematically represents, in the form of blocks, an example of a temperature measurement system according to one embodiment; and

[0022] [Fig. 3] schematically represents, in the form of blocks, an example of a temperature measurement method according to one embodiment. Description of the embodiments

[0023] The same elements have been designated by the same references in the different figures. In particular, the structural and / or functional elements common to the different embodiments may have the same references and may have identical structural, dimensional and material properties.

[0024] For the sake of clarity, only the steps and elements useful for understanding the embodiments described have been shown and are detailed. In particular, the control and processing circuits suitable for implementing the methods described have not been detailed, the production of such circuits being within the reach of the person skilled in the art from the indications of the present description. In addition, the production of the photovoltaic modules of the systems described has not been detailed, the embodiments described being compatible with all or most of the known photovoltaic modules.

[0025] Unless otherwise specified, when referring to two elements connected to each other, this means directly connected without intermediate elements other than conductors, and when referring to two elements connected (in English "coupled") to each other, this means that these two elements can be connected or be connected by means of one or more other elements.

[0026] In the following description, when reference is made to absolute position qualifiers, such as the terms "front", "back", "top", "bottom", "left", "right", etc., or relative position qualifiers, such as the terms "above", "below", "upper", "lower", etc., or to orientation qualifiers, such as the terms "horizontal", "vertical", etc., reference is made unless otherwise specified to the orientation of the figures.

[0027] Unless otherwise specified, the expressions "about", "approximately", "substantially", and "of the order of" mean to within 10%, preferably to within 5%.

[0028] [Fig.l] is a perspective view schematically illustrating an example of a system 100 integrating a photovoltaic module.

[0029] In this example, the system 100 is a motorized blackout device of the roller shutter type.

[0030] The device 100 comprises an apron 102 consisting of an assembly of several blades, and further comprises a motorized shaft (not visible in [Fig.l]) on which the apron 102 can be wound and from which the apron 102 can be unwound.

[0031] The device 100 further comprises a photovoltaic generator or photovoltaic module 104, comprising one or more photovoltaic panels. For example, the device 100 comprises a box 106 in which the motorized shaft is arranged. The photovoltaic panel(s) of the photovoltaic module 104 are for example arranged on the box 106.

[0032] The device 100 further comprises an electric battery 108 supplied with electrical energy by the photovoltaic module 104 and supplying electrical energy to the device 100, and in particular the drive motor (not visible in [Fig.l]) of the winding shaft of the apron 102. By way of example, the battery 108 is arranged in the box 106.

[0033] The device 100 further comprises an electronic control device 110, allowing in particular to control the motor of the device. For example, the control device 110 is arranged inside the box 106.

[0034] The electronic control device 110 may comprise various sensors, as well as an electronic circuit for processing the data measured by the sensors. For example, the electronic processing circuit comprises a microcontroller-type processing unit, and may further comprise one or more memory circuits.

[0035] The occulting device 100 is intended to be mounted in front of an opening (not visible in [Fig.l]) of a building, capable of letting light pass through, for example in front of a window equipped with a transparent pane.

[0036] In this example, the electronic control device 110 is configured to implement a so-called intelligent automatic control method for the occultation device, taking into account in particular the solar irradiation and the outside temperature. Such a method makes it possible to manage the solar contributions in the building, for example by favoring the opening of the shutters exposed to the sun when the outside temperatures are low, and / or by closing the shutters exposed to the sun when the outside temperatures are high.

[0037] The solar irradiation can be estimated by the electronic control device 110 by measuring the short-circuit current of the photovoltaic module 104.

[0038] The outside temperature can be measured using a temperature probe. However, providing such a probe involves an additional cost. In addition, integrating such a probe into the device 100 may present difficulties.

[0039] According to one aspect of an embodiment, it is provided to use the photovoltaic module 104 to estimate the temperature.

[0040] For this, the control device 110 is configured to, during a temperature measurement phase, measure the open-circuit voltage Voc of the photovoltaic module 104, measure the short-circuit current Isc of the photovoltaic module 104, then calculate a value Ta representative of the ambient temperature in the vicinity of the photovoltaic module 104, as a function of the value of the open-circuit voltage Voc and the value of the short-circuit current Isc.

[0041] By ambient temperature is meant here the temperature of the outside ambient air, that is to say the air outside the module, in the vicinity of the module, for example at a distance of 1 to 30 cm from the module, for example at a distance of 1 to 10 cm from the module.

[0042] French patent application FR2201446, previously filed by the applicant on February 18, 2022, describes a method for estimating the ambient temperature Ta in the vicinity of a photovoltaic module directly from a measurement of the open circuit voltage Voc and the short circuit current Isc of the module, using for this a single polynomial mathematical model with two input variables Voc and Isc.

[0043] This method makes it possible to estimate the ambient temperature Ta precisely, from a measurement of the short-circuit current Isc of the module and a measurement of the open-circuit voltage Voc of the module, and this by a simple calculation which can easily be implemented by an electronic control circuit on board the system.

[0044] The fixed coefficients of the polynomial model are determined during a calibration phase, at the design stage of the system, by multiple polynomial regression from empirically measured data, and stored in a memory circuit of the electronic control device of the system.

[0045] For example, during the calibration phase, the system can be installed in a calibration chamber allowing the ambient temperature Ta and the irradiation to be varied. The range of ambient temperature values ​​Ta to which the module is likely to be subjected under real conditions of use is then scanned. For each ambient temperature value Ta, the irradiation is varied so as to scan the range of irradiations to which the module is likely to be subjected under real conditions of use. For each irradiation value and for each ambient temperature value Ta, the short-circuit current Isc and the open-circuit voltage Voc are measured. The fixed coefficients of the model are then determined by multiple polynomial regression from the measurements made.

[0046] A limitation of this solution lies in the significant quantity of usage data that it is necessary to acquire during the calibration phase, to determine the fixed coefficients of the polynomial model.

[0047] Furthermore, a change in the type of photovoltaic module, for example a change in the technology of the photovoltaic cells of the module, or a change in the dimensions of the photovoltaic panel of the module, requires a recalibration of the system, and consequently to acquire again a complete history of usage data of the module to update the coefficients of the polynomial model.

[0048] This makes the solution relatively complex to implement, particularly in systems in which the type of photovoltaic module used is likely to change from one product range to another or even within the same product range.

[0049] According to one aspect of an embodiment, provision is made to estimate the ambient temperature Ta in the vicinity of the module directly from a measurement of the open circuit voltage Voc and the short circuit current Isc of the module, using for this a single mathematical model with two input variables Voc and Isc, the model comprising fixed coefficients which can be determined without module usage data or with only a limited quantity of module usage data.

[0050] According to one aspect of an embodiment, one of the fixed coefficients of the model is defined as a function of an ideality factor of an equivalent diode of the photo module voltaic, for example by a linear function of the ideality factor of the equivalent diode of the photovoltaic module. The other fixed coefficients of the model are for example independent of the characteristics of the photovoltaic module.

[0051] This makes it considerably easier to calibrate the model, since it is sufficient to know the ideality factor of the equivalent diode of the photovoltaic module to define the fixed coefficients of the model.

[0052] The ideality factor of the equivalent diode of the photovoltaic module, in electron volts (eV), can be provided directly by the manufacturer of the photovoltaic module, or be determined by relatively simple measurements, for example from two measurements of the I(V) characteristic of the photovoltaic module, at two different irradiation levels. For example, the ideality factor of the equivalent diode of the photovoltaic module can be determined as described in the article entitled "Improvement and validation of a model for photovoltaic array performance", by W. De Soto et al. (Solar Energy, Vol 80, p78-88, 2006).

[0053] As an example, the mathematical model is defined by the following equation:

[0054] [Math.l] Ta (Vac) -axNoc + bx +cx Isc + d + e •>

[0055] where a, b, c, d and e are the fixed coefficients of the model.

[0056] The coefficients a, b, c, d are coefficients independent of the physical parameters of the photovoltaic module. In particular, the coefficients a, b, c and d are independent of the usual manufacturer parameters as defined in the aforementioned article by W. De Soto et al., namely: - the temperature coefficient for the short-circuit current, without unit, hereinafter called XI; - the ideality factor of the equivalent diode of the photovoltaic module under reference conditions (typically solar irradiation of 1000 W / m2 and an ambient temperature of 25°C), in electron volts, hereinafter called X2; - the photocurrent under reference conditions, in amperes, hereinafter called X3; - the saturation current of the diode under reference conditions, in amperes, hereinafter called X4; - the shunt resistance under reference conditions, in ohms, hereinafter called X5; and - the series resistance, in ohms, hereinafter called X6.

[0057] The fixed coefficient e is dependent only on the ideality factor X2 of the diode, and is defined as being a linear function of the ideality factor X2.

[0058] More particularly, the fixed coefficient e is defined by the following relation:

[0059] [Math.2] e = / xX2 + g

[0060] where f and g are fixed coefficients independent of the aforementioned parameters of the photovoltaic module.

[0061] To achieve such a mathematical model, the inventors based themselves on the simplified model defined in the aforementioned article by De Soto et al., making it possible to simulate the behavior of a photovoltaic module in all temperature and illumination conditions, from the six parameters XI, X2, X3, X4, X5, X6 mentioned above.

[0062] Variation ranges for each of the parameters XI, X2, X3, X4, X5 and X6 have been defined, corresponding respectively to the ranges in which each of the parameters is likely to vary for a given application, considering the different types of photovoltaic modules compatible with the application. As a non-limiting example, for an application to a solar-powered motorized roller shutter, the following ranges have been considered: for parameter XI: range from 0.001 to 0.005; for parameter X2: range from 0.05 to 0.40 eV; for parameter X3: range from 0.4 to 1.2 A; for parameter X4: range from 0.0 to 3.5 nA; for parameter X5: range from 0 to 3000 ohms; for parameter X6: range from 0 to 1 ohm.

[0063] A set of N samples of photovoltaic modules to be simulated was then selected from the ranges considered, according to a defined statistical distribution. Each sample corresponds to a set of values ​​of the 6 parameters XI, X2, X3, X4, X5, X6, chosen from the respective ranges considered. The number N of samples is preferably relatively large, for example greater than 100, for example of the order of 1000.

[0064] For each of the N defined samples, the De Soto model was used to estimate the open circuit voltage Voc and the short circuit current Isc of the corresponding photovoltaic module, under various conditions of ambient temperature and solar irradiation.

[0065] This made it possible to construct, by simulation, a database corresponding to a large number of different types of photovoltaic modules.

[0066] From this database, a mixed linear regression was implemented to take into account the variability of the samples as a function of the aforementioned parameters XI, X2, X3, X4, X5 and X6.

[0067] This led to the aforementioned equation Math 1, where the coefficients a, b, c and d, common to all samples in the database, characterize fixed effects, and where the coefficient e, specific to each sample in the database, characterizes random effects.

[0068] A statistical analysis of the sensitivity of the coefficient e to the aforementioned parameters XI, X2, X3, X4, X5, X6 then showed that the coefficient e could be considered as substantially independent of the parameters XI, X3, X4, X5 and X6, and be approximated by a linear function of the ideality factor X2 of the equivalent diode of the module, as defined by the equation Math 2 above.

[0069] For the above considered ranges of variability of the parameters XI, X2, X3, X4, X5 and X6, the inventors obtained the following values ​​for the fixed coefficients a, b, c, d, f and g of the equations Math 1 and Math 2 above: a between -50 and -10, for example of the order of -15; b between 1 and 10, for example of the order of 3; c between -20 and -5, for example of the order of -6; d between 50 and 200, for example of the order of 100; f between 200 and 800, for example of the order of 250; g between -200 and -20, for example of the order of -50.

[0070] The person skilled in the art will understand that different values ​​of the coefficients a, b, c, d, f and g can be obtained for different applications and in particular for different variability ranges of the parameters X1, X2, X3, X4, X5 and X6.

[0071] The estimated ambient temperature Ta in the vicinity of the photovoltaic module 104 can be calculated by the control device 110 using the model Ta(Isc, Voc) defined by the equation Math 1 above.

[0072] The voltage Voc and the current Isc can be measured respectively by a voltage sensor and by a current sensor of the electronic control device 110. The control device 110 can also comprise controllable switches to open-circuit the photovoltaic module when measuring the voltage Voc and short-circuit the photovoltaic module when measuring the current Isc.

[0073] The current Isc is for example determined by measuring a voltage across a shunt resistor connected to the terminals of the photovoltaic module. The shunt resistor used for measuring the short-circuit current Isc is preferably relatively low so as to obtain an accurate measurement. For example, the shunt resistor is such that the voltage drop across the shunt resistor during the measurement of the current Isc does not exceed 5%, and is preferably of the order of 1% of the value of the open-circuit voltage Voc of the module. For example, for a photovoltaic module with an open circuit voltage Voc of around 7.5 V and a short circuit current Isc of around 0.75 A, a shunt resistance of around 0.1 ohms can be provided (leading to a voltage drop across the shunt resistance of around 0.075 V or 1% of the voltage Vœ).

[0074] The fixed coefficients a, b, c, d and e of the model can be stored in a circuit memory of the electronic control device 110. The coefficient e is for example determined during a calibration phase, when designing the system, for example by means of a calibration chamber making it possible to vary the irradiation in a controlled manner to measure the ideality factor of the diode equivalent to the photovoltaic module. As a variant, the coefficient e can be determined automatically by the electronic control circuit 110, by means of any known method for determining the ideality factor of the equivalent diode of a photovoltaic module.

[0075] The method described above makes it possible to estimate the ambient temperature Ta precisely, from a measurement of the short-circuit current Isc of the module and a measurement of the open-circuit voltage Voc of the module, and this by a simple calculation requiring limited computing resources and which can easily be implemented by an electronic control circuit on board the system integrating the photovoltaic module. It is thus possible to do without an external temperature sensor dedicated to this measurement.

[0076] Advantageously, the mathematical model implemented in the method described above can easily be adapted to different types of photovoltaic modules, without requiring a complete characterization of the module over the entire range of ambient temperature and irradiation to which the module is likely to be subjected.

[0077] The embodiments described are not limited to the aforementioned application to a motorized roller shutter type system. More generally, the proposed solution can be applied to any system comprising a photovoltaic module, and in which it is desired to be able to measure the ambient temperature in the vicinity of the module. For example, the photovoltaic module can be installed on a roof of a building. The ambient temperature Ta in the vicinity of the module can, for example, be used by an electronic control device to automatically control a heating or cooling system of the building, or simply transmitted to the user via an electronic display device, for information.

[0078] [Fig. 2] schematically represents, in the form of blocks, an example of a temperature measurement system 100 according to one embodiment. The system 100 of [Fig. 2] may be a system of the type described in relation to [Fig. 1], or, more generally, any system integrating a photovoltaic module 104. The system 100 comprises an electronic control device 110 connected to the photovoltaic module 104 and adapted to measure the open circuit voltage Voc and the short circuit current Isc of the module. The electronic control device 110 is further connected to an electrically controllable element 102 of the system. The electronic device 110 is configured to estimate the ambient temperature Ta in the vicinity of the photovoltaic module 104 from the voltage Voc and the current Isc using a mathematical model of the type described above, and to control the element 102 accordingly.

[0079] [Fig. 3] schematically represents, in the form of blocks, an example of a temperature measurement method according to one embodiment, implemented by the electronic control device 110 in a system of the type described in relation to [Fig. 2],

[0080] The method comprises a step 301 of measuring the open circuit voltage Voc of the module 104, followed by a step 303 of measuring the short-circuit current Isc of the module. In practice, the order of steps 301 and 303 may be reversed. Preferably, steps 301 of measuring the open circuit voltage Voc of the module 104 and 303 of measuring the short-circuit current Isc of the module are implemented in a close time interval, for example less than one minute apart, in order to maintain substantially identical temperature and irradiation conditions during the two measurements.

[0081] The method further comprises, after steps 301 and 303, a step 305 of calculating the ambient temperature Ta in the vicinity of the module from the voltage Voc and the current Isc, by means of a mathematical model as described above.

[0082] The method further comprises, after step 305, a step 307 of controlling an element 102 of the system taking into account the temperature Ta calculated in step 305.

[0083] Various embodiments and variants have been described. Those skilled in the art will understand that certain features of these various embodiments and variants could be combined, and other variants will occur to those skilled in the art. In particular, the described embodiments are not limited to the application examples explicitly mentioned above, but can be adapted to any system integrating a photovoltaic module and in which one can benefit from an ambient temperature measurement in the vicinity of the photovoltaic module.

[0084] Furthermore, the described embodiments are not limited to the particular example described above in which the ambient temperature calculation is implemented by the electronic control device of the module. As a variant, the calculation may be implemented by a remote external electronic processing device, for example a computer, for example during a post-processing phase of past data acquired by the electronic control device of the module.

Claims

Claims

1. Method for determining the external ambient temperature Ta in a system comprising a photovoltaic module (104), comprising the following steps: a) measuring the short-circuit current Isc and the open-circuit voltage V oc of the photovoltaic module (104); b) calculating the external ambient temperature Ta, by means of an electronic processing device (110), as a function of the value of the short-circuit current Isc and the value of the open-circuit voltage Voc measured in step a), by means of a single mathematical model with two input variables, the mathematical model comprising fixed coefficients, one of said fixed coefficients being defined by a function of an ideality factor of an equivalent diode of the photovoltaic module.

2. Method according to claim 1, in which the mathematical model is defined by the following relation: [Math.l] Ta ( Isc, Vpc ) - axVoc + bx ln( / 5C) + exlsc + d + e •> where a, b, c, d and e are the fixed coefficients of the model, the coefficient e being defined by a function of the ideality factor of the equivalent diode of the photovoltaic module.

3. Method according to claim 2, in which the coefficient e is defined by the following relation: [Math.2] e = fxX2 + g •> where f and g are fixed coefficients and X2 is the ideality factor of the equivalent diode of the photovoltaic module.

4. Method according to any one of claims 1 to 3, in which the fixed coefficients of the mathematical model are stored in a memory of the electronic processing device.

5. Method according to any one of claims 1 to 4, wherein, in step a), the value of the short-circuit current Isc of the photovoltaic module is determined by measuring a voltage across a shunt resistor connected to the terminals of the photovoltaic module (104).

6. A method according to claim 5, wherein the value of the resistance

7.

8.

9. of shunt is such that the voltage across the shunt resistor when measuring the short-circuit current Isc of the photovoltaic module (104) is less than 5% of the open-circuit voltage Voc of the photovoltaic module (104). Method according to any one of claims 1 to 6, further comprising a step of controlling an electrically controllable element (102) of the system taking into account the value of the ambient temperature Ta calculated in step b). System (100) comprising a photovoltaic module (104) and an electronic processing device (110) configured to implement a method according to any one of claims 1 to 7. System (100) according to claim 8, comprising a motorized occultation device powered by the photovoltaic module (104).