Method and system for adjustment and measurement for a photovoltaic power plant

DE602023003608T2Active Publication Date: 2025-05-21COMMISSARIAT A LENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES
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Patent Information

Application Number
DE602023003608
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-11-29
Filing Date
2023-11-28
Publication Date
2025-05-21
Estimated Expiration
2043-11-28

AI Technical Summary

Technical Problem

Existing photovoltaic power plants face challenges in simultaneously measuring 'current versus voltage' curves and adjusting frequency and voltage to maintain network stability, as current measurement methods require downtime and are costly, and prior solutions do not address the need to measure IV curves of each subsystem while providing system services.

Method used

A method and system that measure frequency variations and adjust power output by selecting and measuring DC voltage inputs across multiple inverters, creating measurement points on the IV curve while distributing residual power variations across inputs, allowing for continuous operation and comprehensive defect detection.

Benefits of technology

Enables continuous operation of photovoltaic power plants by measuring IV curves without downtime, improving availability and reducing maintenance costs while maintaining network stability through efficient power regulation.

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Abstract

A method for adjusting and measuring a photovoltaic power plant comprising at least one photovoltaic string comprising solar panels connected in series and comprising at least one inverter adapted to convert a direct current voltage generated by said at least one photovoltaic string into an alternating current voltage, said at least one inverter comprising a plurality of direct current inputs, said method comprising the following steps: A. Measuring a frequency f of an alternating current voltage generated by said photovoltaic power plant and calculating a frequency variation Δf of said alternating current voltage with respect to a predetermined reference frequency fref such that: Δf = f - fref and calculating a power variation ΔP to be applied by the photovoltaic power plant from said frequency variation, B.Select a DC voltage input from said plurality of DC voltage inputs, called the i-th input with i an integer ≥ 1, in order to start or resume a measurement of the "current as a function of voltage" curve of the i-th input, the i-th input having a DC voltage called initial Vini, then C. Calculate a variation of power called residual ΔP' to be applied by said photovoltaic power plant such that ΔP' = ΔP - Pi, D. If ΔP' ≠ 0: distribute said variation of residual power ΔP' over the different inputs of the i-th input, E. Repeat the preceding steps a plurality of times so as to create a plurality of different points of said measured "current as a function of voltage" curve.
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Description

Domaine technique :

[0001] The present invention relates to the field of regulation and measurement of a photovoltaic power plant and more particularly to the measurement of “current versus voltage” curves necessary for diagnosing the solar panels of the photovoltaic power plant. Technique antérieure :

[0002] As is commonly known, a photovoltaic power plant consists of several panels connected in series, which are connected to an inverter. An inverter is a component designed to convert a direct voltage generated by the photovoltaic panels connected in series into an alternating voltage. Large-scale photovoltaic systems can consist of several strings (several panels connected in series) and several inverters.

[0003] A photovoltaic power plant can be subject to several types of defects, including shading, soiling, aging, etc. For example, aging is generally due to short-circuit current loss related to discoloration and delamination of the encapsulant leading to an average power decline of 0.5% per year (see "Compendium of Photovoltaic Degradation Rates", DC Jordan, et al, NREL, 2015).

[0004] To maximize the production of a photovoltaic system throughout its lifetime (generally 25 years), the operator needs to detect faults and optimize maintenance actions.

[0005] Analysis of the "current produced as a function of voltage" curve (hereinafter "IV curve") is a preferred means of detecting faults and quantifying losses. An IV curve is deformed under the effect of the fault and recognition of the shape of the deformation makes it possible to identify the type of fault. figure 1 is a graphical representation of IV curves of a prior art photovoltaic system. IV curve C1 is typical of a photovoltaic system with no faults, while curve C2 is typical of a photovoltaic system with a fault related to module soiling.

[0006] However, measuring the IV curve of a photovoltaic system is expensive because it requires production downtime for at least part of the plant and equipment and requires labor. Indeed, an IV measurement generally lasts several seconds. During this time, the power of the photovoltaic plant is reduced partially or completely, to allow for voltage adjustment necessary for the measurements. At each voltage value, a measurement of the current produced is taken. For stability purposes, a minimum time for maintaining the voltage around a value is necessary.

[0007] Photovoltaic power plants, like any other means of production connected to the electricity distribution and transmission networks, must participate in the effort to maintain network stability in terms of frequency and voltage. This involves having to regulate the power produced upwards (increase the power injected) or downwards (reduce the power injected) by photovoltaic power plants.

[0008] Varying the power of a photovoltaic power plant involves varying the power of each inverter / string. For example, document FR3060229 deals with the topic of participation in frequency regulation by photovoltaic power plants. This document specifically deals with the calculation of the reference power to estimate the reserve power available at any given time.

[0009] However, none of the prior art documents describes a solution for performing system services (frequency and voltage adjustment), and at the same time measuring the IV curve of each photovoltaic subsystem (for example the different inputs of the inverters).

[0010] The invention aims to solve this problem by pooling the effort between the different voltage inputs of the different inverters to adjust the frequency and voltage delivered by the photovoltaic power plant while at the same time measuring the IV curve of the inputs. Résumé de l'invention :

[0011] To this end, an object of the invention is a method of adjustment and measurement for a photovoltaic power station comprising at least one photovoltaic chain, each photovoltaic chain comprising solar panels connected in series and comprising an inverter adapted to transform a direct voltage generated by said photovoltaic chain into an alternating voltage, each inverter comprising at least one direct voltage input, said method comprising the following steps: A. Measure a frequency f of an alternating voltage generated by said photovoltaic power station, calculate a frequency variation Δ f of said alternating voltage with respect to a reference frequency f ref predetermined such that: Δ f = f - f ref and calculate a power variation Δ Pto be applied by the photovoltaic power plant from said frequency variation, B. If ΔP = 0, repeat step A, otherwise: select a DC voltage input from among the M > 1 DC voltage inputs, called the i-th input with i being an integer from 1 to M, in order to start or resume a measurement of the “current versus voltage” curve of the i-th input, the i-th input having a DC voltage called initial V ini, then measure a power P i generated by the inverter of the i-th input, and create a measurement point with abscissa x = V ini and ordinate y = P i / V ini at said “current versus voltage” curve, C.If a DC voltage control range of the i-th input, formed by a so-called maximum DC voltage V max and a so-called minimum DC voltage V min of the i-th input, is unknown: determine, by applying a voltage or power setpoint to the i-th input according to said power measurement P i , the maximum voltage V max and the minimum voltage V min of the i-th input, C'.: apply a voltage . V n ( p ) at the i-th entry, with p an integer between 1 and N > 1 called measuring point, said voltage V n ( p ) being different from the p - 1 voltage V n ( q ) For q ranging from 1 to p - 1 and being between the maximum voltage V max and the minimum voltage V min , then, measure a power P i (p) generated by the inverter of the i-th input and create a p-th measurement point at said “current versus voltage” curve with abscissa x = V n (p) and ordinate y = P i (p) / V n (p). D. Calculate a variation in so-called residual power ΔP' to be applied by said photovoltaic power plant such that ΔP' = ΔP - (P i (p) - P i ). E. If ΔP' ≠ 0: cancel said variation in residual power ΔP' by distributing said variation over inputs different from the i-th input, F. Repeat steps C' to E a plurality of times by incrementing p between each iteration, so as to create a plurality of different measurement points of said measured “current versus voltage” curve.

[0012] According to one embodiment, when a number of measurement points created from said “current versus voltage” curve of the i-th input is equal to Nat the end of step F, steps A to F are repeated by incrementing i so as to start or resume a measurement of the “current versus voltage” curve of an input other than the i-th input.

[0013] According to one embodiment, steps A to F are repeated by incrementing i so as to begin or resume a “current versus voltage” curve measurement of the M inputs, until N measurement points are obtained for each of the M inputs.

[0014] According to one embodiment, when a new frequency variation Δ f ' of said alternating voltage generated by said photovoltaic power plant in relation to the reference frequency f ref , measured in step F, is greater than a predetermined threshold f lim , steps A to F are repeated. Preferably, the predetermined frequency threshold value is 5 mHz.

[0015] According to one embodiment, steps AE of the method of the invention are implemented in a predetermined time interval. Preferably, a duration of said predetermined time interval is equal to 10s.

[0016] According to one embodiment, if P i ≤ |Δ P |, step C is to determine an open circuit voltage V oc of the i-th input, the maximum voltage V max being equal to the open circuit voltage V oc of the i-th, the minimum voltage V min being then a predetermined voltage of the i-th input.

[0017] According to one embodiment, if P i > |Δ P |, step C consists of applying a power instruction P i + Δ P at the i-th input by increasing the voltage until reaching said maximum voltage V max , the minimum voltage V min being then equal to V ini .

[0018] According to one embodiment, the power variation Δ P is calculated by the following equation: Δ P = -k × Δ f , with k a configurable positive constant reflecting a level of commitment announced by an operator of the photovoltaic power plant.

[0019] According to one embodiment, step E consists of: i. apply power instructions to the inputs different from the i-th input, so as to modify a power produced by said power plant by a value equal to said variation in residual power Δ P ', or ii. repeat steps B to D, incrementing i, and with ΔP = Δ P ' so as to start or resume a measurement of the “current versus voltage” curve of a voltage input different from the i-th input, said measurement of the i-th input then being suspended.

[0020] Preferably, in step Ei, a value Pc j of said power setting of each input j different from i is proportional to a power P j produced by said entry j so that the said value Pc j of said power setting of each input j is equal to: Pc j = P j + P j ∑ k ≠ i P k × Δ P ′

[0021] Alternatively, in step E-ii, a paralleling of the “current versus voltage” curve measurements of a plurality of inputs is carried out by incrementing the point p measurement simultaneously for all inputs during the measurement of the “current versus voltage” curve.

[0022] According to one embodiment, the method comprises a step of correcting said “current as a function of voltage” curve from illumination measurements and / or temperature measurements carried out at the level of said at least one photovoltaic chain during the implementation of said steps.

[0023] According to one embodiment, the initial voltage V ini of the i-th input is a voltage for which a power produced by the photovoltaic chain associated with the i-th input is maximum.

[0024] Another object of the invention is a control and measurement system for a photovoltaic power station comprising: at least one photovoltaic chain, each photovoltaic chain comprising solar panels connected in series and comprising an inverter adapted to transform a direct voltage generated by said photovoltaic chain into an alternating voltage, each inverter comprising at least one direct voltage input, voltage sensors adapted to measure a voltage applied to each inverter, a frequency sensor adapted to measure a frequency fof an alternating voltage generated by said photovoltaic power plant, power sensors adapted to measure a power generated by said photovoltaic power plant and a power generated by each inverter, a processor adapted to execute the following steps: A. Measure, via said frequency sensor, said frequency f , calculate a frequency variation Δ f of said alternating voltage with respect to a reference frequency f ref predetermined such that: Δ f = f - f ref calculate a power variation Δ Pto be applied by the photovoltaic power plant from said frequency variation, B. If ΔP = 0, repeat step A, otherwise: select a DC voltage input from among the DC voltage inputs, called the i-th input with i integer ranging from 1 to M > 1, in order to start or resume a measurement of the “current versus voltage” curve of the i-th input, the i-th input having a DC voltage called initial V ini , then measure a power P i generated by the inverter of the i-th input, and create a measurement point with abscissa x = V ini and ordinate y = P i / V ini at said “current versus voltage” curve, C.If a DC voltage control range of the i-th input, formed by a so-called maximum DC voltage V max and a so-called minimum DC voltage V min of the i-th input, is unknown: determine, by applying a voltage or power setpoint to the i-th input according to said power measurement P i , the maximum voltage V max and the minimum voltage V min of the i-th input, C'. : apply a voltage V n (p) to the i-th input, with p an integer between 1 and N > 1 called a measurement point, said voltage V n (p) being different from the p - 1 voltages V n (q) for q ranging from 1 to p - 1 and being between the maximum voltage V max and the minimum voltage V min , then measure a power P i (p) generated by the inverter at the i-th input, and create a p-th measurement point at said “current versus voltage” curve with abscissa x = V n (p) and ordinate y = P i (p) / V n (p), D.Calculate a variation in so-called residual power ΔP' to be applied by said photovoltaic power station such that ΔP' = . Δ P - (P i (p) - P i ), E. If ΔP' ≠ 0: cancel said variation in residual power ΔP' by distributing said variation over inputs other than the i-th input, F. Repeat steps C' to E a plurality of times by incrementing p between each iteration, so as to create a plurality of measurement points of said measured "current versus voltage" curve.

[0025] Preferably, the system further comprises a temperature sensor adapted to measure a temperature at the level of said at least one photovoltaic chain and / or comprising an illumination sensor adapted to measure illumination at the level of said at least one photovoltaic chain, said processor being further adapted to correct said “current as a function of voltage” curve from illumination measurements and / or temperature measurements carried out during the implementation of said steps. Brève description des figures :

[0026] Other characteristics, details and advantages of the invention will emerge from reading the description given with reference to the appended drawings given by way of example and which represent, respectively: [ Fig.1 ], a graphical representation of IV curves of a prior art photovoltaic system, [ Fig.2A ], a schematic representation of a method of adjustment and measurement for a photovoltaic power plant according to the invention, [ Fig.2B ], a schematic representation of a control and measurement system for a photovoltaic power plant according to the invention, particularly suitable for implementing the method of the figure 2A , [ Fig.3 ], a schematic representation of a preferred embodiment of the method of the invention, [ Fig.4 ], a graphical representation of the IV curve of an input in the case where P i ≤ |Δ P |, [ Fig.5 ], a graphical representation of the IV curve and the power curve as a function of voltage of an input in the case where P i > |Δ P |, [ Fig.6 ], a schematic representation of a preferred embodiment of the system of the invention further comprising a temperature sensor Temp and an illuminance sensor PD.

[0027] In the figures, unless otherwise indicated, the elements are not to scale. Description détaillée :

[0028] There figure 2A schematically illustrates the progress of a method according to the invention for adjustment and measurement for a photovoltaic power plant.

[0029] There figure 2B is a schematic representation of a system 1 according to the invention for adjustment and measurement for a photovoltaic power station and particularly adapted to implement the method of the figure 2A .

[0030] The system 1 of the invention comprises at least one photovoltaic string CP. Each photovoltaic string CP comprises PV solar panels connected in series and a respective inverter O.

[0031] As a non-limiting example, the system of the figure 2B comprises four CP photovoltaic strings. According to an embodiment different from that illustrated, the system 1 comprises a large number of CP strings, typically greater than or equal to 10.

[0032] As a reminder, an inverter O is suitable for transforming a direct voltage generated by a photovoltaic chain into an alternating voltage. Each inverter O accepts the recording of its direct voltage or its alternating power via one or more control inputs E. In system 1, the instructions are issued by a processor P under the control of the operator of the photovoltaic plant. As a non-limiting example, in the system of the figure 2B , each inverter O comprises a control input E, intended to control the DC voltage input of the inverter. To simplify the description of the invention, we now consider that the total number of control inputs is M > 1 and we number these inputs from 1 to M.Similarly, the DC voltage inputs from the CP photovoltaic chains are also considered to be M > 1 and we number these entries from 1 to M.

[0033] The system 1 of the invention further comprises voltage sensors CT adapted to measure a voltage applied to each inverter O and current sensors (not shown in figure 1 ) adapted to measure a current applied to each inverter O. In addition, the system 1 includes a frequency sensor CF adapted to measure the frequency f of the alternating voltage generated by the photovoltaic power plant. This frequency f is typically the network frequency at the injection point.

[0034] Additionally, System 1 includes CPV power sensors adapted to measure power generated by each inverter and by the power plant.

[0035] The processor P of the system 1 is adapted to execute a plurality of steps allowing the adjustment of the frequency and the voltage delivered by the photovoltaic power plant while at the same time measuring the IV curve of one or more inputs, without requiring a downtime of the electrical production. Thus, the availability of the photovoltaic power plant is improved by the method and the system of the invention.

[0036] The steps implemented by the processor P correspond to those of the method of the invention, the steps of which are represented in figure 2A .

[0037] In a first step A a measurement of the frequency is carried out f via the CF frequency sensor. In addition, step A includes calculating a frequency variation of the AC voltage with respect to a reference frequency f ref predetermined: Δ f = f - f ref . The reference frequency is a frequency set by the operator of the photovoltaic power plant or the manager of the electricity network using the photovoltaic power plant. This reference frequency is the frequency of the interconnected network and used by the manager. It is worth, for example: f ref = 50 Hz in Europe. The method of the invention is implemented only when the system provides a declining service, i.e. when the measurement of step A has made it possible to identify that f > f ref (and therefore Δ f > 0). It is understood that the system 1 of the invention can be adapted to provide both a downward service ( f > f ref ) and upwards ( f < f ref ). Finally, step A includes the calculation of a power variation Δ P to be applied by the photovoltaic power plant in order to contribute to the regulation of the frequency variation Δ f. That is to say, we are trying to modify the frequency f of the value Δ f by varying the power P produced by the power plant and injected into the network. In practice, many means of production will have to contribute jointly and only their accumulation will make it possible to regulate the frequency variation Δ f towards 0, and therefore obtain in fine a variation in power Δ P equal to 0.

[0038] Preferably, as illustrated in figure 2A , the power variation Δ P is calculated as follows: Δ P = - k × Δ f , with k a configurable positive constant reflecting a level of commitment announced by an operator of the photovoltaic power plant to the electricity network manager. As explained previously, the method of the invention is implemented when the system provides a declining service, i.e. we have Δ P< 0.

[0039] If Δ P = 0 then the processor P repeats step A until it measures a power variation Δ P non-zero.

[0040] If Δ P ≠ 0, this means that a variation of the power of the plant must be applied to help regulate the frequency. Also, in a step B, the processor P is adapted to select a DC voltage input among the M DC voltage inputs, called the i-th input, with i being an integer from 1 to M, in order to start or resume an IV curve measurement of the i-th input. The i-th input is considered to have a DC voltage called the initial V ini at its terminals. This voltage V ini is by default (but not necessarily) a voltage regulated by an MPPT function (for Maximum Power Point Trackeren English) which allows the voltage at the terminals of the photovoltaic chain to be regulated in order to maximize the power produced. In addition, in step B, the processor is adapted to measure, with one of the CPV power sensors, the power P i produced by the inverter of the i-th DC voltage input. In addition, the processor creates an abscissa measurement point x = V ini and ordinate y = P i / V ini of curve IV of the i-th entry.

[0041] After step B, the processor implements a step C or a step C' depending on whether the DC voltage control range of the i-th input is known by the processor P. This control range is characterized by a so-called maximum DC voltage V max and a so-called minimum direct voltage V min of the i-th input. Indeed, in order to carry out the most complete characterization of the faults and to better quantify the losses, it is preferable to plot the IV curve of an input over the largest possible voltage range and it is therefore necessary to determine V max And V min .

[0042] In the case where the control range is unknown, the processor implements step C which consists of determining the maximum voltage V max and the minimum voltage V min of the control range of the i-th input, by applying a voltage or power setpoint to the i-th input depending on the power measurement P i The instruction is issued by the processor P. Following this step C, the processor will implement step C', because the limits of the control range of the i-th input will now be known.

[0043] There figure 3 detailed below gives an example of a preferred implementation of step C.

[0044] In the case where the control range of the i-th input is known (for example after step C), the processor implements step C' which consists of applying a voltage setpoint of value V n ( p ) at the i-th entry, with p an integer ranging from 1 to N > 1 named measuring point. In order to record different measuring points of the IV curve, each voltage V n ( p ) is different from the p - 1 voltage V n ( q ) For q ranging from 1 to p - 1 and is between the maximum voltage V max and the minimum voltage V min (both of which are known in C' steps). Finally, the processor measures the power P i ( p ) generated by the i-th entry for this new p, and created a p-th measurement point at said “current versus voltage” curve of abscissa x = V n ( p ) and ordinate y = P i ( p ) / V n ( p ).

[0045] Following a modification of the voltage or power via the instruction sent by the processor P, a variation in power called residual Δ is calculated in a step D P ' to be applied by the photovoltaic power plant to carry out the regulation. The residual power variation is worth Δ P ' = ΔP - ( P i ( p ) - P i ).

[0046] If Δ P ' ≠ 0 then, in a step E, the processor P cancels the residual power variation Δ P ' by distributing it over inputs different from the i-th input. This step E can be implemented in several ways.

[0047] According to a first embodiment, step E consists of applying power instructions to inputs different from the i-th input, so as to modify a power produced by the power station by a cumulative value equal to the variation in residual power Δ P '. For this, preferably, a value Pc j of the power setting of each input j different from i is proportional to a power P j produced by said entry j . More precisely, to distribute the variation of residual power Δ P ', the value Pc j of the power setting of each input j different from the i-th entry is worth Pc j = P j + P j ∑ k ≠ i P k × Δ P ′ .

[0048] This first embodiment makes it possible to add proliferation and thus reduce the impact on overall production of a strong local variation in power of the inverter(s) making it possible to respond to the power reduction service.

[0049] Alternatively, according to a second embodiment, step E consists of repeating steps B to D, by incrementing i, and with Δ P = Δ P ' so as to start or resume an IV curve measurement of an input i + 1 different from the i-th input. In this case, the measurement of the IV curve of the i-th input is suspended, for example until that of the input i + 1 is completed. The second embodiment is particularly interesting when the system includes inverters delivering different powers. Indeed, the second embodiment then makes it possible to favor one inverter over another in order to fulfill the condition P i ≤ ΔP and thus allow the open circuit voltage Voc of the corresponding input to be determined.

[0050] According to a variant of the second embodiment, in step E, a paralleling of the IV curve measurements of a plurality of inputs is carried out by incrementing the point p measurement simultaneously for all inputs being measured. This variant allows IV characterizations of several subsystems to be carried out simultaneously. In addition, this variant allows the IV curve of different inputs to be plotted under similar lighting and temperature conditions and therefore does not add bias to the inter-comparison of I / V characteristics.

[0051] Following step E, the residual power is therefore distributed between the different inputs so as to be cancelled and the contribution of the power plant to the frequency regulation is effective.

[0052] If Δ P' = 0 then this step E is useless and we go directly to step F.

[0053] Finally, in order to plot an IV curve of the i-th usable input it is necessary to measure a plurality of points. For this, the processor P is adapted to implement a final step F. Step F consists of repeating steps C' to E a plurality of times by incrementing p between each iteration, so as to create a plurality of measurement points of the measured IV curve for example until obtaining N measurement points. More precisely, the processor applies new voltage setpoints of different values ​​from those of the previous voltage setpoints, the value of each setpoint being between V min And V max .

[0054] Thus, at the end of the process, system 1 has enabled a contribution to the frequency regulation of the photovoltaic power plant while obtaining the IV curve of at least one input and this without requiring a downtime of the electrical production. To do this, the control voltage of the input(s) is calculated in order to be able to scan the entire possible voltage range and record the IV curve associated with this input. A pooling between the different inputs makes it possible to ensure the response to the system services in a global manner. The method of the invention therefore allows an increase in the availability of the photovoltaic power plant and a reduction in the cost associated with the characterization of faults.

[0055] In a manner known per se, the IV curve(s) obtained will subsequently be used to detect faults in the photovoltaic system.

[0056] Preferably, steps A to E of the method of the invention for contributing to frequency regulation are all implemented within a predetermined time interval. This time interval corresponds to the maximum time for implementing a power instruction granted by the service contractor. More preferably, the predetermined time interval has a duration equal to 10s.

[0057] There figure 3 schematically illustrates a preferred embodiment of the method of the invention comprising an example of implementation of step C.

[0058] In this embodiment, step C of determining V max And V min of the control range of the i-th input via a voltage or power setpoint is carried out in two different ways depending on the power measurement P i .

[0059] First of all, if P i ≤ |Δ P| then the cancellation of the power of the i-th input is insufficient to apply the variation of the power Δ P . In this case, step C is performed via a voltage logging of the i-th input. More precisely, step C consists of logging the i-th input at its maximum specification voltage. V max,s . This voltage being higher than the open circuit voltage V oc , the voltage consignment V max,s allows voltage measurement V oc , which then corresponds to the voltage V max of the control range of the i-th input. We therefore obtain a measurement point of the IV curve of abscissa x = V oc and ordinate y = I ( V oc ) = 0. In this case, the minimum voltage V min of the driving range is equal to the minimum specification voltage of the i-th input, which is a predetermined voltage.

[0060] There figure 4 is a graphical representation of the IV curve of an input in the case where P i ≤ |Δ P |, on which are detailed different steps necessary to obtain the IV curve. On the figure 4 step C is shown, which consists of determining the open circuit voltage V oc which is the first step in plotting curve IV after obtaining the initial abscissa point x = V ini . In the figure 4 , as an illustrative example, different values ​​have been represented V n ( p ) (from p = 2 to p = N ) of voltage value instructions V n ( p ) of the i-th input which are used to plot the IV curve.

[0061] Alternatively, in the event that P i > |Δ P |, step C is performed via a power recording of the i-th input. Preferably, step C consists of recording the i-th input to the power P i + ΔP by increasing the voltage until reaching a maximum voltage for which the power produced has varied by Δ P . This maximum voltage corresponds to the voltage V max of the control range of the i-th input. Thus, we obtain a measurement point of the IV curve of abscissa x = V max and ordinate y = ( P i + Δ P ) / V max .

[0062] In this case, the minimum voltage V min of the control range is equal to the initial voltage V ini of the i-th input. This voltage V ini is preferably a voltage regulated by an MPPT function, i.e. the voltage allowing the power produced by the photovoltaic chain associated with the characterized input to be maximized.

[0063] There figure 5 is a representation of the IV curve (right) and the power versus voltage curve (left) of an input in the case where P i > |Δ P |, which details the various steps necessary to obtain these curves. On the figure 5 step C is represented, which consists of reaching the maximum voltage V max via the consignment of the i-th input to the power P i + ΔP , which is the first step in plotting curve IV (after obtaining the initial abscissa point x = V ini ). In the figure 5 , as an illustrative example, the tension V ini corresponds to a maximum of the power produced. In addition, the figure 5 illustrates different values V n ( p ) (of p = 2 to p = N ) of voltage value instructions V n ( p ) of the i-th input which are used to plot the IV curve.

[0064] In the embodiment of the figure 3 , the method comprises an additional step, which consists of repeating steps A to F by incrementing i so as to start or resume a measurement of curve IV of an input different from the i-th input when a number of measurement points created of the curve IV of the i-th input is equal to a number N predetermined at the end of step F. In other words, this additional step consists of: stop step F when curve IV of the i-th entry includes N measurement points, then repeat the method of the invention for another input (by incrementing i) in order to obtain its IV curve or, if necessary, to resume the measurement of its IV curve if the measurement was interrupted in step E.

[0065] This additional step allows a more complete characterization of the photovoltaic power plant. Preferably, this additional step is repeated a sufficient number of times to obtain the IV curve of each of the M inputs in order to carry out a complete characterization of the defects of the photovoltaic power plant.

[0066] When implementing step F, it is preferable to ensure that the starting data do not vary too greatly compared to when step A was implemented. Also, preferably as illustrated in the method of figure 3 , during the execution of step F, measurements are made of the delivered frequency in order to ensure that it remains sufficiently stable, and if too large a deviation of the frequency is observed, then the process is restarted from its first step. That is to say, when a new variation of frequency Δ f' of the generated alternating voltage relative to a reference frequency f ref is measured in step F and is greater than a predetermined threshold f lim (i.e. when |Δ f ' - Δ f | ≥ f lim , steps A to F are repeated. Preferably, the predetermined frequency threshold value is 5 mHz because this corresponds to the intermediate value between the requested measurement resolution of + / - 1 mHz and the maximum uncertainty on this measurement of + / - 10 mHz, according to the current French primary frequency service. The term "maximum uncertainty" refers to the maximum admissible value of the frequency measurement error. The term "measurement resolution" refers to the difference between the value given by the measurement and the exact value of the physical quantity.

[0067] As is well known, variations in temperature and illumination in photovoltaic chains will cause variations in the measurement of the IV curve which will not be due to defects in the solar panels. These variations are therefore likely to distort the characterization of defects in the solar panels. In order to avoid these errors, the figure 6 illustrates a preferred embodiment in which the system of the invention further comprises a temperature sensor Temp and an illumination sensor PD adapted to measure the temperature and illumination respectively at the level of the photovoltaic strings. In addition, the processor P is adapted to correct the “current versus voltage” curve from illumination measurements and temperature measurements carried out during. The fault characterization is therefore more reliable in the embodiment of the figure 6 . According to an embodiment different from that illustrated in figure 6, system 1 includes a temperature sensor Temp or an illuminance sensor PD.

[0068] As a non-limiting example, the PD illumination sensor is a photodiode.

Claims

1. Method for adjusting and measuring a photovoltaic power plant comprising at least one photovoltaic chain (CP), each photovoltaic chain (CP) comprising solar panels (PV) connected in series and comprising an inverter (O) adapted to transform a direct voltage generated by said photovoltaic chain into an alternating voltage, each inverter comprising at least one direct voltage input, said method comprising the following steps: A. Measuring a frequency f of an alternating voltage generated by said photovoltaic power station, calculate a frequency variation Δ f of said alternating voltage with respect to a reference frequency f ref predetermined such that: Δ f = f - f ref and calculate a power variation Δ P to be applied by the photovoltaic power plant from said frequency variation, B. If Δ P= 0, repeat step A, otherwise: select a DC voltage input from the M > 1 DC voltage inputs, called the i-th input with i integer ranging from 1 to M, in order to start or resume a “current versus voltage” curve measurement of the i-th input, the i-th input having a DC voltage called initial V ini , then measure a power P i generated by the inverter of the i-th input, and create a measurement point of abscissa x = V ini and ordinate y = P i / V ini to said “current versus voltage” curve, C. If a continuous voltage control range of the i-th input, formed by a so-called maximum continuous voltage V max and a so-called minimum direct voltage V min of the i-th input, is unknown: determine, by applying a voltage or power setpoint to the i-th input according to said power measurement P i , the maximum voltage V maxand the minimum voltage V min of the i-th input, C'.: - apply a voltage V n ( p ) at the i-th entry, with p an integer between 1 and N > 1 called measuring point, said voltage V n ( p ) being different from the p - 1 voltage V n ( q ) For q ranging from 1 to p - 1 and being between the maximum voltage V max and the minimum voltage V min , then - measure a power P i (p) generated by the inverter of the i-th input and create a p-th measurement point at said “current versus voltage” curve of abscissa x = V n ( p ) and ordinate y = P i (p) / V n (p). D. Calculate a variation in so-called residual power ΔP' to be applied by said photovoltaic power plant such that ΔP' = ΔP - (P i (p) - P i ), E. If Δ P' ≠ 0: cancel said residual power variation Δ P ' by distributing said variation over inputs different from the i-th input, F. Repeat steps C' to E a plurality of times by incrementing p between each iteration, so as to create a plurality of different measurement points of said measured “current versus voltage” curve.

2. Method according to claim 1, wherein, when a number of measurement points created of said "current versus voltage" curve of the i-th input is equal to N at the end of step F, steps A to F are repeated by incrementing i so as to start or resume a measurement of the “current versus voltage” curve of an input different from the i-th input.

3. Method according to any one of claims 1 to 2, in which steps A to F are repeated by incrementing i so as to start or resume a measurement of the “current versus voltage” curve of the M inputs, until N measurement points are obtained for each of the M inputs.

4. Method according to any one of claims 1 to 3, in which, when a new variation in frequency Δ f ' of said alternating voltage generated by said photovoltaic power plant in relation to the reference frequency f ref , measured in step F, is greater than a predetermined threshold f lim , steps A to F are repeated.

5. Method according to the preceding claim, in which said predetermined frequency threshold value is 5 mHz.

6. Method according to any one of the preceding claims, in which steps AE of the method of the invention are carried out in a predetermined time interval.

7. Method according to the preceding claim, in which a duration of said predetermined time interval is equal to 10s.

8. A method according to any preceding claim, wherein, if P i ≤ |Δ P |, step C is to determine an open circuit voltage V oc of the i-th input, the maximum voltage V max being equal to the open circuit voltage V oc of the i-th, the minimum voltage V min being then a predetermined voltage of the i-th input.

9. A method according to any preceding claim, wherein, if P i > |Δ P |, step C consists of applying a power instruction P i + Δ Pat the i-th input by increasing the voltage until reaching said maximum voltage V max , the minimum voltage V min being then equal to V ini .

10. Method according to any one of the preceding claims, wherein said power variation Δ P is calculated by the following equation: Δ P = - k × Δ f , with k a configurable positive constant reflecting a level of commitment announced by an operator of the photovoltaic power plant.

11. Method according to any one of the preceding claims, in which step E consists of: i. applying power instructions to the inputs different from the i-th input, so as to modify a power produced by said power plant by a value equal to said variation in residual power Δ P ', or ii. repeat steps B to D, incrementing i, and with Δ P = Δ P' so as to start or resume a measurement of the “current versus voltage” curve of a voltage input different from the i-th input, said measurement of the i-th input then being suspended.

12. Method according to the preceding claim, in which, in step Ei, a value Pc j of said power setting of each input j different from i is proportional to a power P j produced by said entry j so that the said value Pc j of said power setting of each input j is equal to: Pc j = P j + P j ∑ k ≠ i P k × Δ P ′ 13. Method according to claim 11 in which, in step E-ii, a paralleling of the measurements of “current versus voltage” curves of a plurality of inputs is carried out by incrementing the measurement point p simultaneously for all the inputs currently measuring the “current versus voltage” curve.

14. Method according to any one of the preceding claims, comprising a step of correcting said “current as a function of voltage” curve from illumination measurements and / or temperature measurements carried out at the level of said at least one photovoltaic chain during the implementation of said steps.

15. A method according to any preceding claim, wherein the initial voltage V ini of the i-th input is a voltage for which a power produced by the photovoltaic chain associated with the i-th input is maximum.

16. System (1) for regulating and measuring a photovoltaic power plant comprising: - at least one photovoltaic chain (CV), each photovoltaic chain comprising solar panels (PV) connected in series and comprising an inverter (O) adapted to transform a direct voltage generated by said photovoltaic chain into an alternating voltage, each inverter comprising at least one direct voltage input, - voltage sensors (CT) adapted to measure a voltage applied to each inverter - a frequency sensor (CF) adapted to measure a frequency f of an alternating voltage generated by said photovoltaic power plant, - power sensors (CPV) adapted to measure a power generated by said photovoltaic power plant and a power generated by each inverter, - a processor (P) adapted to execute the following steps: A. measure, via said frequency sensor, said frequency f , calculate a frequency variation Δf of said alternating voltage with respect to a reference frequency f ref predetermined such that: Δ f = f - f ref calculate a power variation Δ P to be applied by the photovoltaic power plant from said frequency variation, B. If ΔP = 0, repeat step A, otherwise: select a DC voltage input from among the DC voltage inputs, called the i-th input with i integer ranging from 1 to M > 1, in order to start or resume a measurement of the “current versus voltage” curve of the i-th input, the i-th input having a DC voltage called the initial V ini , then measure a power P i generated by the inverter of the i-th input, and create a measurement point of abscissa x = V ini and ordinate y = P i / V inito said “current versus voltage” curve, C. If a continuous voltage control range of the i-th input, formed by a so-called maximum continuous voltage V max and a so-called minimum direct voltage V min of the i-th input, is unknown: determine, by applying a voltage or power setpoint to the i-th input according to said power measurement P i , the maximum voltage V max and the minimum voltage V min of the i-th input, C'.: - apply a voltage V n ( p ) at the i-th entry, with p an integer between 1 and N > 1 named measuring point, said voltage V n ( p ) being different from the p - 1 voltage V n ( q ) For q ranging from 1 to p - 1 and being between the maximum voltage V max and the minimum voltage V min , then measure a power P i ( p) generated by the inverter the i-th input, and create a p-th measurement point at said “current versus voltage” curve of abscissa x = V n ( p ) and ordinate y = P i ( p ) / V n ( p ), D. Calculate a variation in so-called residual power ΔP' to be applied by said photovoltaic power plant such that ΔP' = ΔP - (P i (p) - P i ), E. If ΔP' ≠ 0: cancel said variation in residual power ΔP' by distributing said variation over inputs other than the i-th input, F. Repeat steps C' to E a plurality of times by incrementing p between each iteration, so as to create a plurality of measurement points of said measured “current versus voltage” curve.

17. System according to the preceding claim, further comprising a temperature sensor (Temp) adapted to measure a temperature at the level of said at least one photovoltaic chain and / or comprising an illumination sensor (PD) adapted to measure illumination at the level of said at least one photovoltaic chain, said processor being further adapted to correct said “current as a function of voltage” curve from illumination measurements and / or temperature measurements carried out during the implementation of said steps.