Method for controlling a system connected to a geothermal source for supplying at least one building, as well as control system and system therefor

DE602022014297T2Active Publication Date: 2025-05-07ACCENTA
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
DE602022014297
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-19
Filing Date
2022-03-16
Publication Date
2025-05-07
Estimated Expiration
2042-03-16

AI Technical Summary

Technical Problem

Existing geothermal energy installations face challenges due to temperature drift in the geothermal environment, leading to inefficiencies and potential abandonment, as the geothermal source becomes either too hot or too cold to be effectively exploited.

Method used

A process and system that adjust the thermal power exchanged between the geothermal medium and the heat transfer fluid to maintain a forecasted temperature trajectory, optimizing geothermal energy supply by creating a thermal flow between the geothermal environment and natural soil, and prioritizing geothermal energy use while allowing deviations from the forecast trajectory for exceptional situations.

Benefits of technology

This approach enhances the efficiency and longevity of geothermal energy supply, reduces initial investment costs, and improves the performance of geothermal probes by maintaining thermal stability and optimizing energy use.

✦ Generated by Eureka AI based on patent content.
Patent Text Reader
Need to check novelty before this filing date? Find Prior Art

Description

[0001] The present invention relates to a method for controlling an installation connected to a geothermal source to provide thermal energy in at least one building.

[0002] The present invention also relates to an installation in which this method is implemented.

[0003] The present invention also relates to a regulation system implementing the method and / or integrated into the installation.

[0004] The invention is of particular, but not limited, interest in relatively large real estate complexes, for example apartment buildings, groups of buildings, industrial complexes, hospitals, shopping centers, hotels or hotel-type complexes, school or university complexes, etc. ETAT DE LA TECHNIQUE

[0005] In the building sector, we know of installations that can supply energy from several sources, for example, public gas or electricity distribution networks, geothermal probes, thermal solar collectors, photovoltaic solar collectors, aerothermal collectors, etc. These known installations include various equipment for transforming the collected energy and for using it, for example, heat pumps, Joule effect heaters, air conditioners, boilers, etc. It is also known to implement a process that regulates the installation by weighting the use of different sources and different equipment according to needs and according to economic or other criteria.

[0006] Documents EP 3 770 514 A1, FR 2 960 099 A1, US 2008 / 092 875 A1, WO 2015 / 014 951 A2, EP 3 012 539 A1, EP 2 141 419 A1, FR 3 065 516 A1, EP 1 987 298 B1, DE 10 2010 033 909 A1, DE 100 22 544 A1, US 2018 / 0 283 799 A1, KR 2013 00 17 182 A and KR 101 801 775 B1 describe installations of this type, improved in various ways in the sense of an optimized exploitation of the most cost-effective resources. and / or environment.

[0007] In practice, such installations encounter difficulties that may be chronic or occasional. The risk of temperature drift in the geothermal environment in which the probes are installed is an essentially chronic difficulty. For example, in temperate or cold regions, the excessively stressed geothermal environment cools down more and more over the years, to the point of becoming unusable, as the natural regeneration of the soil is not sufficient to renew the calories extracted. Conversely, in hot regions, the geothermal environment, unable to evacuate the calories provided by air conditioning, gradually becomes too hot to be usable. In either case, expensive geothermal installations fall into abandonment after a few years, or they would have to be oversized to the point of making them economically unviable.Even if such extremes are avoided, the installation equipped with geothermal energy that has drifted in temperature becomes generally less efficient since geothermal energy, supposed to be one of the most advantageous sources, is no longer as efficient as intended at the design stage. If the geothermal resource is used cautiously to avoid these risks, the resource risks being underexploited, which is serious in the case of an installation representing a high investment intended to provide access to a form of energy that is advantageous both economically and environmentally.

[0008] The aim of the present invention is thus to remedy at least in part these drawbacks by proposing a method and / or an installation and / or a regulation system capable of sustainably optimizing the supply of geothermal energy in at least one building or the like. Exposé de l'invention

[0009] According to a first aspect of the invention, the method for controlling an installation associated with an energy-consuming structure, this installation comprising at least one geothermal energy source with which thermal storage is carried out, at least one other energy source, energy transformation and distribution equipment in the structure, and a regulation system, the geothermal source comprising heat exchange probes installed in a geothermal environment and adapted to allow heat exchange between the geothermal environment and a heat transfer fluid flowing through the probes, the method comprising: the definition of a forecast trajectory of the temperature of the geothermal medium over time; the evaluation of at least substantially in real time the temperature of the geothermal medium and / or the thermal power exchanged with the geothermal medium; the operation of an adjustment of the thermal power exchanged between the heat transfer fluid and the geothermal medium in the sense of at least approximate conformity of the temperature of the geothermal medium with the forecast trajectory, in which the forecast trajectory has on an annual average a temperature differential with the temperature of the natural ground, characterized in that, in the case of an installation where the geothermal energy provides on an annual average, to the structure, more heating power than cooling power, the forecast trajectory is chosen to be, on an annual average, lower than the temperature of the natural ground;and in that, in the case of an installation where geothermal energy provides the structure with more cooling power than heating power on an annual average, the forecast trajectory is chosen to be, on an annual average, higher than the temperature of the natural ground.;

[0010] The invention rationalizes the exploitation of the geothermal environment as a natural source of thermal energy and as a thermal reservoir. It makes it possible to reduce the initial investment for a given energy performance, to improve the efficiency of the probe field as a source and of the geothermal environment as a reservoir, and to perpetuate the initial performance of the probe field.

[0011] For the purposes of the invention, "thermal" is a generic adjective designating indifferently "calorific" (or "with a warming effect"), and "refrigerating" (or "with a cooling effect"). The "heat transfer" fluid carries "thermal" energy, therefore an energy which can have both a calorific and a refrigerating effect, since by nature the fluid which carries calories tends to cool one medium and to heat another.

[0012] A geothermal medium is a portion of ground covering a certain area and extending to a certain depth (for example, 100 meters or more), in which thermal energy sensors called probes have been placed in boreholes. The probes carry the heat transfer fluid, which carries the thermal energy between the geothermal medium and the installation. Here, the term "natural soil" refers to the soil surrounding the geothermal medium without being significantly influenced by its temperature. Of course, the boundary between the geothermal medium and the natural soil is theoretical; in practice, there is a transition zone between the two.

[0013] The heat capacity of a geothermal medium is considerable. This means that a temperature variation of a few tenths of a degree in the geothermal medium corresponds to large amounts of thermal energy. Thus, not only can large amounts of thermal energy be extracted from the geothermal medium, but equally large amounts of thermal energy can also be injected into it for storage purposes. For example, heat can be stored in the summer to be used the following winter for heating purposes, and cold can be stored in the winter to be used the following summer for cooling / air conditioning purposes. The probes used in this way are often called BTES probes (Boral Thermal Energy Storage = Borehole Thermal Energy Storage).

[0014] Before the installation is started up, a temperature trajectory is defined for the geothermal medium, according to the invention, which typically corresponds to a compromise deemed optimal between various criteria, which may notably include: investment cost, operating cost, environmental aspects, available ground surface, ground characteristics. Some of these criteria involve parameters relating to other equipment in the installation. For example, the investment cost to be taken into account is in fact a cost differential with other options for capturing, producing and / or storing energy.

[0015] With the invention, the temperature of the geothermal medium is no longer an erratic consequence of the energy capture and storage processes, but a controlled data of this exploitation. Thus, for example, with the invention it is very possible to store heat in a geothermal medium colder than the natural ground or to store cold in a geothermal medium warmer than the natural ground. This is even advantageous as we will see later.

[0016] The invention provides for adjusting the thermal power exchanged with the geothermal medium. By "exchanged" is meant "brought into storage" in the geothermal medium, and / or "drawn" from the geothermal medium. The power is adjusted so that the actual temperature of the geothermal medium is as consistent as possible, at each instant, with the forecast trajectory.

[0017] In an installation implementing the invention, this search for conformity is not necessarily permanent. It may only concern certain phases of operation of the installation. In a typical installation, these phases can be described as "ordinary". We will see later the advantage that there may be in deviating from the forecast trajectory in certain circumstances, but without losing control of the actual trajectory.

[0018] In a simple example, the forecast trajectory may correspond to a uniform, or substantially uniform, temperature value. This is the case, for example, if phases of thermal energy storage and release occur quickly enough for the temperature of the geothermal environment to remain substantially constant. For example, there may be storage during the day and release at night, or vice versa.

[0019] Other examples, but with non-uniform temperature trajectories, are presented later.

[0020] In a simple version in principle, to adjust the exchanged power so that the trajectory of the actual temperature of the geothermal medium coincides with the predicted trajectory, the temperature of the geothermal medium is measured and the exchanged thermal power is adapted to constantly bring the actual temperature as close as possible to the temperature prescribed by the trajectory. In practice, this technique is not the most efficient in its implementation. The temperature of the geothermal medium is difficult to measure accurately and only changes very slowly. If we wait to notice an error in this temperature, the energy required to correct the error can be considerable.

[0021] This is why, according to the invention, it is preferred to predefine the power that the heat transfer fluid must exchange with the geothermal medium as a function of time, in other words to define a forecast schedule of thermal power exchanged, and to measure in a substantially permanent manner the power actually exchanged and, if necessary, to correct it immediately or in the short term to regain compliance with the schedule in terms of energy exchanged. Monitoring the temperature of the geothermal medium then no longer serves to regulate the exchanged power in a short response time, but to control in the long term the validity of the model on the basis of which the schedule was established, and, if necessary, to correct this model and with it the schedule, or even the trajectory itself, or to detect whether it is necessary to compensate for the cumulative effect of temporary differences between the actual temperature of the geothermal medium and the forecast trajectory.

[0022] According to the invention, the installation comprises, in addition to the geothermal source, at least one other source. Typically, the implementation of the forecast trajectory is part of an overall management of the installation. As part of this overall management, the proper management of the geothermal source enjoys a high priority. A first reason for this is that geothermal energy is very economically advantageous. A second reason for this is the need, according to the invention, to preserve the thermometric stability of the geothermal source. This prioritization of the management of the geothermal resource on the basis of criteria, some of which are unrelated to the level of demand and the nature of the demand, is made possible by the possibility of implementing at least one other source to supplement power in relation to the demand.

[0023] According to the invention, the trajectory has an annual average temperature differential with the temperature of the natural ground. This creates the conditions for establishing a heat flow between the geothermal medium and the natural ground. In particular, preferably, the trajectory has, for the entire duration for which it is established, a difference in the same direction with the temperature of the natural ground. Still according to the invention, in the case of an installation where the geothermal energy provides the structure with more heating power than cooling power on an annual average, the trajectory is chosen to be, on an annual average, lower than the temperature of the natural ground.

[0024] This choice is surprising for a thermal storage facility, in which the prejudice would be to build up a heat reserve by overheating the geothermal environment as much as possible compared to the natural ground. The invention goes against this prejudice: the geothermal environment, which is colder than the natural ground, generates a heat flow from the natural ground to the geothermal environment. Thus, the calories supplied by the facility for storage are supplemented by those coming from the natural ground. We therefore obtain "free" calories and at the same time the same thermal flywheel effect as if the probe field were larger. And again, contrary to what one might think, the lower temperature in the geothermal environment only very marginally affects the efficiency of the facility's equipment that uses the stored heat.Indeed, the heat transfer fluid reaching the probes to extract heat from the geothermal environment is in any case at a much lower temperature than the geothermal environment. If, for example, these devices are heat pumps, their coefficient of performance will be dictated by the two extreme temperatures of the heat transfer fluid, and very little by the intermediate temperature of the geothermal environment. The temperature differential between the geothermal environment and the natural ground can be a few °C, for example of the order of 2 to 4 °C.

[0025] According to the invention, where geothermal energy provides the structure with more cooling power than heating power on an annual average, the trajectory is chosen to be, on an annual average, higher than the temperature of the natural ground. With this version of the invention, "free" frigories are extracted from the natural ground by the geothermal medium, with economic advantages (reduction in the size of the probe field, increased thermal storage) similar to those mentioned above for heat storage at a lower temperature than the natural ground. Here again, the temperature differential between the geothermal medium and the natural ground can be a few °C, for example of the order of 2 to 4 °C.

[0026] In a preferred typical version, in a steady state beyond a transitional period, the forecast trajectory fluctuates over time, on either side of a substantially stable average value. This version is particularly advantageous in the frequent case of an installation where geothermal energy provides heat in winter and cold in summer. Thus, the extraction of heat in winter corresponds to the storage of cold for the following summer, and conversely, the extraction of cold in summer corresponds to the storage of heat for the following winter. In such a case, the temperature of the geothermal medium decreases during a part of the year when heat is extracted and rises during another part of the year when cold is extracted. Generally speaking, geothermal energy is almost always the most advantageous source of thermal energy.There is therefore an interest in exploiting it as soon as possible, both in extraction and in storage, without however, according to the invention, causing the temperature of the geothermal medium to drift. On the other hand, it is rare that the need for heat and the need for cold are equal. In certain installations, in particular certain installations in temperate regions, the need for heat in the cold or cool season is greater than the need for cooling in the hot season. It is then possible, according to the invention, to extract the maximum possible amount of cold, and to extract only the corresponding quantity of heat to respect the trajectory stability. By having given the trajectory an average temperature lower than the temperature of the natural ground, it will however be possible to extract more heat than cold, in accordance with the need of this example, while guaranteeing the thermal stability of the geothermal medium.

[0027] Generally speaking, in one embodiment of the method, the trajectory is defined for successive instants in the sense of a global optimization for each instant considered and its future, so as to preserve the thermal stability of the geothermal medium. In other words, according to the invention, one avoids, for example, extracting during the winter such large quantities of heat that the storage for the following summer risks being insufficient to ensure the thermal stability of the geothermal medium. To this end, in certain preferred versions of the method, the invention proposes to predict the thermal needs of the building over an entire season (1 year)

[0028] In one version of the invention, the power of the installation other than geothermal energy is sufficient to meet the needs of users. However, geothermal energy is almost always the most advantageous source. Its use takes priority over other sources. The invention may then consist of controlling the power supplied by geothermal energy so that the temperature trajectory of the geothermal medium is respected. An automation system manages the rest of the installation so as to meet the demand from at least one other source. This version is advantageous due to its relative simplicity of regulation and its ability to strictly respect the temperature trajectory planned for the geothermal medium.

[0029] However, this version requires oversizing the power of the installation and it does not optimize the use of the geothermal resource. For the same average annual power supplied by geothermal energy, there is an interest in overweighting geothermal energy in periods when other sources are particularly disadvantageous in terms of cost, environment, etc. In addition, the possibility of overweighting geothermal energy in periods of high power demand makes it possible to reduce the installed power of other sources. This is why, as already mentioned above, the method according to the invention can advantageously, at an intervention time, allow the temperature of the geothermal medium to deviate from the forecast trajectory for the time following the intervention.

[0030] Thus, at certain times after the installation has been started up, the method can control or authorise an excursion from the forecast trajectory in cases where the values ​​of at least one parameter chosen from the list comprising the parameters relating to the installation, its installation site, its intended use and its thermal energy equipment deviate from their estimate taken into account to define the forecast trajectory in force until the time of the intervention.

[0031] In the above-mentioned example of an installation that has to provide more heat than cold, it is possible, for example, to extract more cold than expected according to the forecast trajectory in the event of a particularly hot summer or, more generally, in the event of actual demand being higher than that predicted when the forecast trajectory was established. Thus, both the additional need for cold is advantageously regulated and the means are provided for additional heat extraction during the cold season, at least partially replacing another, less advantageous, heat source in the installation.

[0032] In other cases, the values ​​that deviate from their estimate may be or include forecast values ​​for times subsequent to the intervention time. For example, the power exchanged with the geothermal source may be reduced at an intervention time, even if this corresponds at that time to a deterioration in efficiency, with a view to a future alteration of a parameter taken into account for the definition of the forecast trajectory. This alteration may, for example, be the expected consequence of an announced exceptional meteorological phenomenon. On the contrary, in certain cases of an announced event, the use of geothermal energy may be intensified.For example, in anticipation of a heatwave, it may be decided to build up a cold reserve in advance by freezing the contents of a cold storage tank using a heat pump extracting cold from the geothermal environment to inject it into the tank.

[0033] In certain situations, free or very low-cost energy is available, for example if the installation's photovoltaic sensors produce more electricity than required by the user equipment. The excess electricity can power a heat pump injecting thermal energy into the geothermal medium, in the form of calories or frigories depending on the direction of a current difference between the actual temperature of the geothermal medium and the forecast trajectory, or, on the contrary, to form or increase such a difference in a favorable direction depending on the current season or in anticipation of the next season, or even to contribute to a correction of a drift in the average temperature of the geothermal medium.

[0034] Several versions of the process allow the actual temperature trajectory of the geothermal medium to deviate from the predicted trajectory, particularly in the circumstances just described.

[0035] In a first version, the method preferably comprises: initiate an excursion episode during which the trajectory temporarily deviates from the forecast trajectory to take into account exceptional situations concerning at least one of the parameters, chosen from the list comprising the parameters relating to the installation, its installation site, its intended use, its thermal energy equipment, or a combination of several of the parameters, define at the start of the episode the thermal power exchanged in the at least one probe so that the temperature of the geothermal medium deviates from the forecast trajectory, and define for the temperature of the geothermal medium an excursion trajectory temporarily deviating from the forecast trajectory.

[0036] In this version of the invention, at an intervention moment when it is decided to deviate the temperature of the geothermal environment from the forecast trajectory, an excursion trajectory is established which will make it possible to maintain control of the temperature of the geothermal environment even during the time when it has deviated from the provisional trajectory.

[0037] Preferably, the excursion trajectory includes a divergent phase along which the excursion trajectory diverges from the forecast trajectory, and a catch-up phase which connects the divergent phase to the forecast trajectory.

[0038] In a second version, the process allowing the actual temperature of the geothermal environment to deviate from the forecast trajectory without losing control of the thermal stability of the geothermal environment in the medium to long term, includes: control the thermal power exchanged according to parameters including actual demand, with a degree of freedom with respect to the forecast trajectory; and preferably, for this purpose: provide a forecast schedule of the thermal power exchanged with the geothermal environment; monitor the at least approximate conformity of the average temperature assessed in the geothermal environment with an average of the forecast trajectory; in the event of a drift in the average temperature assessed, modify at least indirectly the thermal power exchanged with the geothermal environment, compared to the forecast schedule, in a direction tending towards a return to conformity with one of the average temperature and the forecast trajectory.

[0039] As an example for the implementation of the aforementioned degree of freedom, said logic controls the equipment as a percentage of total power, so that in the case of different total power the power of each equipment is modified proportionally. In such a case the excursion of the actual temperature of the geothermal medium with respect to the forecast trajectory is undergone. A measure to correct the actual trajectory is not always necessary: ​​the inertia of the geothermal medium is so great that an individual excursion has no immediate consequences and the excursions can statistically compensate each other in the medium term. It is thus sufficient to monitor compliance with the average temperature of the geothermal medium in the long term and in the event of a drift modify the parameters of said logic. In the previous example this would amount to temporarily modifying at least some of said percentages.But it is also possible after an excursion, especially if it exceeds a certain threshold, to take immediate corrective measures aimed at ensuring that the temperature of the geothermal environment returns to the forecast trajectory as quickly as possible.

[0040] This second version of the process has the advantage of being simple and flexible. It combines in a single regulation process the deviations permitted by the degree of freedom and the deviations deliberately initiated based on short-term forecasts, or opportunities to inject inexpensive thermal energy into the geothermal environment, or to correct the average temperature of the geothermal environment.

[0041] Independently of the excursion episodes, the method may comprise a process of definitive modification of the forecast trajectory, the method then preferably comprising: update at least one of the estimates based on a long-term trend observed or anticipated for at least one of the parameters, different from the previous estimate taken into account for the definition of the current forecast trajectory; permanently replace the forecast trajectory with a new forecast trajectory taking into account at least one updated estimate.

[0042] The updated estimate may be the result of a finding that reality has contradicted the previous estimate, or of a change in certain parameters over time. For example, the purpose of a building may have changed, new equipment may have been installed, equipment may be faulty, etc.

[0043] In an advantageous version, depending on parameters relating to the climate, the sources and the energy needs of the installation, the regulation system controls a selective activation of the sources and equipment of the installation, as well as selective connections between sources and equipment, and operates a power adjustment of the equipment, in the sense of satisfying the needs and optimizing with regard to at least one criterion, said power adjustment comprising said adjustment of the thermal power exchanged between the heat transfer fluid and the geothermal medium in the at least one probe. The at least one criterion may be economic, environmental, relating to comfort, maintenance, etc.

[0044] In a particularly preferred version, the regulation system defines a succession in time of combinations of activation states of at least some of the equipment and sources over a period subsequent to the current instant, in a sense of optimization including the time to come, with regard to the at least one criterion.

[0045] Even more preferably, the method includes taking into account forecasts for at least one parameter chosen from: at least one price of energy from a source, and at least one climatic parameter from outside temperature, sunshine and wind speed.

[0046] The designers of a real estate complex usually establish what is called in France a STD (Dynamic Thermal Simulation) of the building, which is a forecast of the building's thermal energy needs in its various forms (heating, cooling / air conditioning, domestic hot water, etc.), in a very detailed way over time, depending on average weather for the region, the building's exposure to the sun, wind or other, the intended use, etc. From there, according to the invention, we obtain a catalog of equipment and systematically explore all the possible combinations that meet this demand with a sufficient safety coefficient, we take stock of each of them with regard to certain criteria which may include the investment cost, the annual operating cost, the environmental impact, etc.In this context, each of these combinations is the subject of a forecast trajectory for the temperature of the geothermal environment. For the same combination of equipment, several trajectories can be tested. The combination presenting the balance considered to be the best is retained, with its forecast trajectory considered to be the best. The chosen configuration is the subject of a scenario forecasting at a relatively high frequency, typically quarter-hour by quarter-hour, the activation and connection states of the different equipment of the combination over an entire year. The forecast trajectory and the adjustment of the power exchanged with the geothermal environment are part of this scenario. In service, the scenario is implemented by always being renewed for the coming sliding year.Preferably, the scenario is a set of recommendations provided by a control unit to a controller that manages the satisfaction of real needs by activating the equipment with priority ranks that are a function of these recommendations. It is indeed necessary to avoid that recommendations that are too strict prevent the satisfaction of needs that the equipment of the installation could have satisfied. We thus establish, between the control unit that controls the process in the sense of respecting the forecast trajectory, and the controller that controls the activation states of the equipment in the installation, the degree of freedom discussed above with regard to certain episodes of excursion of the real temperature of the geothermal environment with respect to the forecast trajectory. This degree of freedom does not exclude the control unit from initiating excursions itself, in particular to anticipate future events (heat wave, extreme cold, etc.) or exploit opportunities to inject inexpensive thermal energy into the geothermal environment, or to correct a drift in the average temperature of the geothermal environment.

[0047] In a preferred version, before commissioning the installation, thermal response tests of the geothermal medium to heat exchanges are carried out using a test probe, so as to determine the thermal conductivity and heat capacity of the geothermal medium. These tests make it possible to predict the thermometric evolution of the geothermal medium as a function of the thermal power exchanged with it.

[0048] Advantageously, in service, the temperature of the heat transfer fluid at the inlet and outlet of the probes and the flow rate of the heat transfer fluid are measured, the thermal power exchanged with the geothermal medium is calculated from the flow rate and the difference between these two temperatures, and the corresponding variation in the temperature of the geothermal medium is determined from a prior modeling of the geothermal medium. This modeling can be carried out by experiment and / or preferably from the results of the aforementioned tests. The temperature of the geothermal medium is therefore evaluated by calculation rather than by measurement. As mentioned above, direct measurement is difficult, except to verify in the long term the absence of significant drift, and to correct the exchanged power schedule for the future in the event of drift.

[0049] In the context of geothermal storage, the process includes regeneration phases during which thermal energy, hot or cold, supplied by the installation from another source connected to the installation is injected into the geothermal medium via the heat transfer fluid and at least one probe. For example, aerothermal equipment can, depending on the climatic conditions, provide free thermal energy which, particularly if it has no other use in the installation, can be captured and transferred to the geothermal medium. Another example, if the installation includes photovoltaic panels, a surplus of photovoltaic electricity can power an aerothermal heat pump transferring thermal energy from the atmosphere into the geothermal medium.

[0050] In another installation or the same one, the process may include, as geothermal storage, regeneration phases during which so-called "fatal" heat supplied by equipment in the installation supplied by a so-called other source is injected into the geothermal medium via the heat transfer fluid and at least one probe. Fatal heat is the residual heat from a process whose main purpose is not to produce this heat. This is particularly the case for the heat rejected by an air conditioner or more generally a refrigeration unit. By using the geothermal medium as a heat source for the unit, the geothermal medium is thermally regenerated as a future heat source while allowing the unit to perform its main cooling function.

[0051] According to another aspect of the invention, the installation for supplying thermal energy in a consuming structure, the installation comprising: energy collection equipment which is in an energy exchange relationship with respective sources, this equipment comprising at least one geothermal probe in a heat exchange relationship with a geothermal medium; energy transformation equipment powered at least in part by the collection equipment; energy user equipment, supplying energy to the structure; a regulation system capable of defining for at least some of the equipment different respective activation states chosen according to parameters, in particular climatic, in the sense of an optimization with regard to at least one criterion which may be economic, environmental, energy, linked to comfort or ease of maintenance; is characterized in that the regulation system implements a method according to the first aspect supplemented where appropriate by all or part of its improvements.

[0052] According to a third aspect of the invention, the system for regulating an installation for supplying thermal energy in a consuming structure, the installation comprising: energy collection equipment which is in energy exchange relationship with respective sources, this equipment comprising at least one geothermal probe in heat exchange relationship with a geothermal medium; energy transformation equipment powered at least in part by the collection equipment; energy user equipment, supplying energy to the structure; the regulation system being capable of defining, for at least some of the equipment, different respective activation states chosen according to parameters, in particular climatic, in the sense of an optimization with regard to at least one criterion which may be economic, environmental, energetic, linked to comfort or ease of maintenance; is characterized in that the regulation system implements a method according to the first aspect supplemented where appropriate by all or part of its improvements, or is integrated into an installation according to the second aspect.

[0053] Preferably, the control system of the second or third aspect comprises at least one input capable of receiving forecasts relating to a period subsequent to the current time. These may in particular be weather forecasts provided in a form usable by software, and which may thus be taken into account for updating the forecast or actual trajectory of the temperature of the geothermal medium, or in the case of the implementation of a scenario as explained above, for updating the scenario in an anticipatory manner.

[0054] Other features and advantages of the invention will emerge from the description below, relating to non-limiting examples. BREVE DESCRIPTION DES FIGURES

[0055] In the attached drawings: [ Fig.1 ] There [ Fig.1 ] is a schematic representation of an installation according to the invention, in a building; [ Fig.2 ] There [ Fig.2 ] is a temperature diagram over one year, showing the forecast trajectory of the temperature of the geothermal environment and the chronogram of the thermal power exchanged in the probes; [ Fig.3 ] There [ Fig.3 ] illustrates an excursion episode by means of a temperature versus time diagram, very schematic and with scale distortion for visibility purposes; and [ Fig.4 ] There [ Fig.4 ] is a three-part diagram of temperature versus time, corresponding to three successive slices of a year, with successive excursion episodes.

[0056] The following description is understood to describe any feature or combination of features, in the terms used below or in more general terms, provided that such feature or combination of features produces a technical effect or advantage, even if the feature or combination of features constitutes only part of a sentence or paragraph.

[0057] In the example shown in [ Fig.1 ], the installation is associated with a building 1 located on a plot of land 2. The installation comprises energy collection equipment comprising here at least one photovoltaic solar collector CPh, at least one thermal solar collector CTh transforming solar radiation into heat absorbed by a heat transfer fluid flowing through the collector, at least one aerothermal exchanger Ath capable of operating as a thermal collector or as a heat sink for a heat transfer fluid flowing through said collector, by exchanging calories between the liquid and the outside air, several geothermal probes 3 and at least one connection to a public electricity distribution network 4. The geothermal probes 3 are of the BTES type driven into an area of ​​the plot of land 2 and the corresponding subsoil which is here called the geothermal medium 31 to distinguish it from the natural soil 21 which is not thermally influenced by the probes 3.There may also be a fuel tank or a connection to a fuel distribution network, in particular gas (not shown). In other embodiments, certain types of collection equipment such as CPh, CTh and / or Ath are not present, the invention being able to be implemented as long as geothermal energy is not the only thermal source available to produce heat or cold.

[0058] An electrical box 6 receives the electrical energy from the network 4 and from the photovoltaic sensor Cph and supplies the electricity from one and / or the other of these sources to a power output 7. In certain embodiments, the box 6 can also inject electricity produced by the photovoltaic sensor CPh into the public network 4.

[0059] In addition, the installation includes a set 8 of thermal energy transformation and storage equipment, namely, in the example, PAC heat pumps, a Comb boiler for exceptional periods, as well as a cold tank 9 and a hot tank 11 which typically contain additive water. The PAC heat pump park makes it possible to produce cold and heat at will. The cold tank 9 is intended to accumulate cold by freezing all or part of the water it contains, and to restore this cold by total or partial thawing of its frozen contents. Each tank 9, 11 contains a heat exchanger for exchanging heat with a heat transfer fluid to receive or supply thermal energy in connection with the sources, by interposed heat pump, or not.

[0060] There is also in the installation a set 10 of user equipment which interfaces with the user for his energy consumption, namely for example lamps 12 and electrical outlets 13, AC air conditioning modules, Ht heating modules, heated floors 14, domestic hot water distribution points 16 (only one of each is shown to simplify the representation).

[0061] The installation further comprises a selective connection assembly 17, capable of establishing appropriate connections between the thermal sensors 3, ATh, CTh, the storage and transformation equipment 8 and the utilization equipment 10. The connection assembly 17 typically comprises pipes, single solenoid valves 18, multi-way solenoid valves 19, and pumps 21. The assembly 17 is connected to the probes 3 by pipes 22 for a heat transfer fluid, generally water with additives, circulating in the probes 3 where this heat transfer fluid exchanges heat with the geothermal medium 31.

[0062] There are also in the installation multiple temperature, pressure and flow sensors as well as electrical sensors such as ammeters, and multiple control devices such as thermostats or switches, some available to users, others available to technical or building management staff. Here, simply shown, for this purpose, are a temperature sensor Te for the heat transfer fluid entering the probes 3, a temperature sensor Ts for the heat transfer fluid leaving the probes 3, and a flow meter D measuring the flow of heat transfer fluid in the probes 3, as well as optionally a sensor Tg for the temperature of the geothermal medium 31. It is known that beyond a certain depth where it is no longer influenced by the surface temperature, the temperature of the geothermal medium increases with depth (geothermal gradient).The Tg probe is placed at a depth chosen so that the local temperature is representative of an average for the geothermal environment 31.

[0063] The representation of sets 8, 10 and 17 in the form of blocks at [ Fig.1 ] is conceptual, in practice the different equipment of each of these sets can be scattered throughout the building. This is notably, but not exclusively, the case for the user equipment 10. The double horizontal arrows 20 between these blocks symbolize the fluid connections between them.

[0064] The installation can be configured in many ways by a programmable logic controller (AUT) which selectively connects the different equipment according to parameters including the level of demand for each form of energy (electricity, heating, cooling, domestic hot water, etc.) and the power available from the local capture equipment (CPh, CTh, Ath, 3). In general, multiple combinations of activation states of the different equipment are capable of satisfying the demand. A control unit (CU) executes an optimization program which issues recommendations sent to the AUT controller to allow the AUT controller to select and activate the optimal combination of activation states.The recommendations are orders of priority between equipment with similar functions, or recommendations for equipment activation levels, or recommendations concerning operating modes for equipment with at least two operating modes, such as equipment that can be involved in the production of cold or heat (heat pumps PAC if they are reversible), equipment that can transfer or acquire energy (tanks 9, 11), sensors such as probes 3 or the Ath aerothermal sensor that can operate as a cold or heat sensor, AC air conditioning modules where applicable capable of operating in heating or cooling. The PLC and the control unit could be grouped into a single "intelligent" PLC.The subdivision proposed here is advantageous in being compatible with a pre-existing installation, equipped with a conventional AUT automaton, which has been retrofitted according to the invention by adding to it in particular the control unit CU and possibly some of the capture equipment 3, CPh, CTh, ATh, transformation and storage 8, use 10, and connection 17.

[0065] The electrical block 6 is connected to the AUT controller which controls it. The power output 7 electrically supplies the three assemblies 8, 10 and 17, as well as, in a manner not shown, the AUT controller and the control unit CU.

[0066] There are many possible configurations in service. Some preferred configurations involve the geothermal environment 31 via probes 3. For example: The geothermal medium 31 is the cold source of at least one heat pump PAC supplying heat to the underfloor heating 14 or to the reversible air conditioning module AC, with electrical energy supplied by the network 4 and / or by the photovoltaic sensors CPh. The geothermal medium 31 is the cold source of at least one heat pump PAC supplying heat to the hot tank 11, with surplus electrical energy supplied by the photovoltaic sensors CPh. The geothermal medium 31 is the hot source of at least one heat pump PAC supplying cold to the reversible air conditioning module AC, with electrical energy supplied by the network 4 and / or by the photovoltaic sensors CPh. The geothermal medium 31 is the hot source of at least one heat pump PAC supplying cold to the cold tank 9, with surplus electrical energy supplied by the photovoltaic collectors CPh. The geothermal medium 31 is heated with heat supplied by the solar thermal collector CTh or the aerothermal collector Ath, via a heat pump PAC or directly. The geothermal medium 31 is cooled by evacuating heat into the atmosphere by the aerothermal collector Ath, via a heat pump PAC or directly.

[0067] Of course, other configurations not described here, in particular those not involving the geothermal environment, are made possible by the installation, for example the production of heat by PAC heat pumps using the Ath aerothermal collector as a cold source, or by the CTh solar thermal collector via PAC heat pump or not, the production of cold by PAC heat pump using the CTh solar thermal or Ath aerothermal collectors as a hot source, additional heating by the Comb combustion boiler or by Joule effect etc. etc. Many configurations can coexist, for example additional heating by combustion or Joule effect while the over-stressed geothermal environment is being recharged with heat by one of the configurations indicated above.

[0068] According to the invention, the implementation of the geothermal probes is controlled over a fairly long time period, typically annually, so as to avoid temperature drift in the geothermal environment over the years.

[0069] For this, as shown in the [ Fig.2 ], according to the invention, a forecast trajectory TP of the temperature of the geothermal environment over the course of a year is established. The graph of the [ Fig.2 ] is graduated on the abscissa from 1 / 1 (January 1st) to 12 / 31 (December 31st). In this example, seasonal thermal storage is practiced, consisting in the fact that the cooling of the geothermal environment due to the heat drawdown during the cold season constitutes at the same time a cold storage for the hot season that will follow. Conversely, the cold drawdown of the hot season heats the geothermal environment and constitutes at the same time a heat storage for the cold season that will follow. This is why in the example shown (typical of the temperate zone of the Northern Hemisphere in terms of calendar and variations), the forecast temperature TP decreases at the beginning of the year during the cold season, then rises to a maximum during the hot season before starting to fall again at the beginning of the following cold season.

[0070] Despite these fluctuations, the temperature according to the forecast trajectory TP is stable on a multi-year average TM. For this, the thermal power exchanged through the probes 3 is adjusted in real time so that the actual temperature of the geothermal medium is generally consistent with the forecast trajectory TP. For this adjustment, one could consider regulating the exchanged power according to the temperature of the geothermal medium as measured by the Tg probe. But this simple method in itself in principle, encounters practical difficulties because the measurement by the Tg probe is too imprecise for the small differences to be detected. This is why we prefer to base ourselves on a modeling of the geothermal medium, consisting of a value of its heat capacity and a value of its thermal conductivity.For these two parameters, we can take either values ​​approximately known by experience, or values ​​determined by preliminary tests carried out using a test probe (not shown). During these tests, heat exchanges are carried out with the natural soil via the test probe and the effects are measured. Knowing these two parameters, we know that the total energy exchanged in the same direction (for example, heat extraction) over a certain period is equal to the variation in the thermal content of the medium 31 over this period, increased by the thermal input (in algebraic value) of the natural soil 21 over said period. Said thermal input is predictable based on the thermal conductivity. The Tg probe is used to verify the stability of the temperature of the geothermal medium in the long term, and therefore to validate the model or, in the event of a deviation, to trigger corrective recommendations and / or a revision of the model.

[0071] The diagram of the [ Fig.2 ] also shows the TW curve of the temperature of the heat transfer fluid leaving the probes. On the left side of the [ Fig.2 ], the actual value with very rapid variations has been represented, as measured by the Ts probe of the [ Fig.1 ]. These variations are due, for example, to the start-up of a heat pump at certain times of the day and not at others. The curve designated by the reference TW corresponds to a smoothing of the actual temperature. When TW <TP, le fluide caloporteur puise de la chaleur dans le milieu géothermique 31 ce qui fait donc baisser sa température TP. Inversement quand TW> TP, the heat transfer fluid injects heat (draws cold) into the geothermal environment 31, which increases its temperature TP.

[0072] The TP trajectory is stable in the long term when the difference between the total energy drawn in the form of heat (in the cold season) and the total energy injected in the form of heat (in the hot season) is equal to the energy supplied over the same period by the natural ground 21 to the geothermal environment 31.

[0073] The exchanged energy is the integral of the thermal power exchanged with respect to time. The exchanged power is proportional to the flow rate of the heat transfer fluid, measured by the sensor D, multiplied by the difference between its inlet temperature and its outlet temperature, as measured by the sensors Te and Ts respectively. The sensors D, Te and Ts therefore allow the control unit CU to calculate the exchanged power and then, by integration over time, the exchanged energy.

[0074] Depending on parameters related to the building, its location, its equipment and its purpose, it is determined whether the interest is to draw more cold or more heat from the geothermal environment, depending on criteria which may be economic, environmental, related to comfort or ease of maintenance or etc. According to an important feature of the invention, it is ensured that the heat flow between the natural ground 21 and the geothermal environment 31 is oriented in the same direction as the heat flow which is chosen to be favored. In the example shown in [ Fig.2 ], which typically corresponds to that of a residential building in a temperate zone, we wish to prioritize the extraction of heat. In other words, we wish to extract more heat than cold from the geothermal environment 31. For this, the trajectory TP has been chosen so that its multi-annual average temperature TM is lower than the temperature TN of the natural ground 21. Thus, the total energy that can be extracted in the form of heat is equal to the sum of the energy injected in the form of heat by the probes 3 during the hot season and the energy provided by the permanent flow between the natural ground 21 and the geothermal environment 31.

[0075] There is, in general, an imbalance between the heat energy and the cooling energy that could be drawn from the geothermal environment 31 which would result in a drift in the multi-year average TM. To define a forecast trajectory TP which avoids this pitfall without resorting to an excessive temperature differential between TM and TN (a differential which would end up harming the capture efficiency), the invention proposes, for example, to be based on a maximum draw of that of the two energies whose required quantity is the lowest (in the example of the [ Fig.2 ] the cold), and to limit the drawing of the other form of energy so that the energy balance of the whole is in a balance characterized by a stability of the multi-annual average TM.

[0076] Concretely, in the installation of the [ Fig.1 ], the AUT controller controls the instantaneous activation states of the equipment, in particular those cooperating with the probes 3, according to the request coming from users, technical personnel or certain automations such as thermostats or time switches. This instantaneous control is at the origin of the very rapid variations in temperature TW illustrated in the left part of the [ Fig.2 ]. However, thanks to the sensors D, Te, Ts, the control unit CU evaluates the thermal power exchanged and monitors to what extent this corresponds to compliance with the forecast trajectory TP of the temperature of the geothermal environment.

[0077] Typically, the CU control unit calculates the energy balance (difference between heat energy and cooling energy) of exchanges with the geothermal environment and determines whether this balance meets the average temperature TM. In the event of a deviation, the CU control unit corrects its usual recommendations and / or issues corrective recommendations.

[0078] If the measurements by the Tg probe or a drift in the difference between the water inlet and outlet temperatures for a given flow rate suggest that the average temperature of the geothermal environment is drifting while the energy balance of the exchanges is normal, a model revision procedure can be initiated.

[0079] Geothermal storage has so far been described as being powered by the fatal energy of processes whose main utility is something else. For example, cold storage results from the drawing of heat, and heat storage results from the drawing of cold. The invention is not limited to this; it also envisages episodes of regeneration of the geothermal medium, during which equipment is activated for the sole purpose, or for the main purpose, of injecting thermal energy into the geothermal medium 31. For example, in the event of surplus electricity available from the photovoltaic collector CPh, this electricity can power a heat pump PAC which injects heat or cold into the geothermal medium 31. In the event of surplus thermal energy available from one and / or the other of the collectors CTh and Ath, said energy can be conducted into the geothermal medium.

[0080] In a preferred version of the invention, the forecast trajectory of the temperature TP of the geothermal medium is part of a forecast scenario of the operation of the installation over, typically, one year. The scenario is based on the one hand on the STD (Dynamic Thermal Simulation) of the building which anticipates consumption at each moment according to different parameters relating to the building, its location, and its intended use and on the other hand on the building's thermal energy equipment. The scenario predicts at a very rapid rate, typically every quarter of an hour, the optimal combination of activation states which will satisfy the needs of the building. This optimization should not be understood for the moment considered, but also with consideration of the future.For example, we may decide not to use the geothermal medium even if it would be the most advantageous at the time in question, if we prefer to save this energy for an even more advantageous future use. The forecast trajectory TP of the temperature of the geothermal medium is part of this logic since, as we saw above, we decide not to use geothermal heat beyond what we can inject as cold later in order to remain consistent with the trajectory and the average temperature TM.

[0081] In an even more preferred version, the design of the installation involves a step of optimizing the range of equipment. To do this, we start with a catalog of equipment, we search by systematic computerized exploration for the combinations that are likely to satisfy the STD with a sufficient but not excessive safety coefficient, we search for each of them the most advantageous scenario according to criteria (economic, environmental, etc.), then we stop the choice on the installation offering the compromise deemed most favorable between an advantageous scenario with regard to the criteria and an installation itself advantageous with regard to criteria (investment cost, equipment lifespan, size, etc.) The installation having been thus defined with its scenario, said scenario prescribes in particular the thermal power exchanged, quarter of an hour by quarter of an hour, in the probes.In service, the scenario is extended in a sliding manner so that the forecast is always for a full year from the current time.

[0082] At any given moment, the parameter values ​​may differ from those on which the scenario is based, particularly the forecast trajectory TP. This may concern both current and forecast values. For example, the atmospheric temperature may be very different from that predicted in the scenario for the current moment, or the weather forecast may announce an atypical period, for example, of extreme cold or, conversely, a heatwave. Events such as an epidemic can significantly affect the occupancy of residential or professional premises. Thus, in the days preceding a given moment, it may turn out that the scenario is no longer optimal. The same may be true if the values ​​relating to the recent past period differ from those taken into account for the scenario.If, for example, a winter has been particularly mild, the geothermal environment has been less cooled than expected and it is probably possible to draw more heat than expected at the end of the cold season without too much risk of being unable to consume this cold in the warm season. Finally, user demand will generally be different at each moment from that anticipated by the scenario.

[0083] In order to be able to take weather forecasts into account automatically, the control unit CU has a connection 23 ([ Fig.1 ]), for example via the Internet, to receive computerized weather information, which is taken into account for these updates.

[0084] A preferred version of the invention thus provides that the forecast trajectory TP is only a sort of reference from which the actual temperature of the geothermal environment may deviate depending on the most recent data relating to the current or future values ​​of the parameters taken into account.

[0085] When cyclical variations affect the parameters (compared to the scenario), therefore in principle temporary, the temperature of the geothermal environment initiates an excursion episode illustrated very schematically in [ Fig.3 ] where the scales are distorted. For a certain duration, a TE excursion trajectory replaces the TP trajectory which remains but is no longer applied. The TE excursion trajectory temporarily deviates from the TP trajectory and rejoins the TP trajectory after a certain time. At the [ Fig.3 ], the excursion trajectory TE started at time t1, time t2 is when the water temperature curve should have crossed the TP trajectory, but in fact the actual curve TW1 crosses the excursion trajectory TE later, at t3. Until time t4, which in this representation is the current time, the excursion trajectory TE is divergent from the TP trajectory, then from time t4 the TE trajectory is oriented to gradually catch up with the TP trajectory at the future time t5.

[0086] In practice, reality rarely corroborates the detailed predictions of the scenario and excursion episodes can collide. An example of this is given [ Fig.4 ] showing three successive slices of the same year, shown separately to allow a better view, for each slice, of what the planned excursion trajectory was for the future of the excursion.

[0087] In the first phase, which runs from day 1 to current day 85, an exceptionally cold period in spring led to a more than expected cooling of the geothermal environment. A TE1 excursion trajectory was followed, predicted to end on day 239. But then the spring was very warm and well before the end of the first excursion a second TE2 excursion trajectory occurred as shown in the middle diagram of the [ Fig.4 ] which goes from day 85 to the current day 169. It predicts a fairly rapid catch-up of the TP trajectory on day 295, to keep cold reserves for the rest of the warm season. But finally, in anticipation of a cold winter (bottom diagram of the [ Fig.4 ], from day 169 to current day 253) the excursion episode TE2 gave way, before being finished, to an episode according to the excursion trajectory TE3 which continues above the forecast trajectory TP until beyond day 365.

[0088] These excursion episodes can be managed by the control unit CU according to one or other of the two versions of the method, set out above, namely either by a precise definition of each episode from the control unit CU, or preferably under medium-long term monitoring of compliance with the average temperature TM. Even in this second version, the control unit CU can however influence an excursion episode, and for example launch corrective recommendations if it anticipates a harmful consequence of the excursion or on the contrary amplifying recommendations if it anticipates favorable consequences.

[0089] In a manner not illustrated, the CU control unit can also permanently modify the TP temperature trajectory in different cases: observation that the actual energy consumption of the building differs from that taken into account for the trajectory in force, modification of the equipment, transformation of the building, significant temperature drift of the geothermal environment, etc.

[0090] Of course, the invention is not limited to the examples described and shown. Instead of monitoring the temperature stability of the geothermal medium 31 by a probe such as Tg, it can be done by analyzing the temperature variation of the heat transfer liquid having passed through the probes. For example, if cold liquid is injected and it heats up less than expected, it can be deduced that the geothermal medium 31 has cooled.

Claims

1. Method for controlling an installation associated with an energy-consuming structure (1), this installation comprising at least one source of geothermal energy with which thermal storage is carried out, at least one other source of energy (4, CPh, CTh, ATh), items of equipment for transforming and distributing energy in the structure, and a regulating system (AUT, CU), the geothermal source comprising thermal exchange probes (3) installed in a geothermal medium (31) and adapted to allow heat exchange between the geothermal medium and a heat transfer fluid passing through the probes, the method comprising: • defining a forecast trajectory (TP) of the temperature of the geothermal medium over time; • evaluating at least substantially in real time the temperature of the geothermal medium and / or the thermal power exchanged with the geothermal medium; • making an adjustment of the thermal power exchanged between the heat transfer fluid and the geothermal medium (31) in the direction of at least approximate conformity of the temperature of the geothermal medium (31) with the forecast trajectory (TP), wherein the forecast trajectory (TP) has, as an annual mean (TM), a temperature differential with the temperature (TN) of the natural ground (21). Characterized in that: - in the case of an installation where, as an annual mean, geothermal energy supplies the structure (1) with more heating power than cooling power, the trajectory is chosen to be, as an annual mean (TM), below the temperature (TN) of the natural ground (21), - in the case of an installation where, as an annual mean, geothermal energy supplies the structure (1) with more cooling power than heating power, the trajectory is chosen to be, as an annual mean (TM), above the temperature (TN) of the natural ground (21).

2. Method according to claim 1, characterized in that the trajectory (TP) has, over the whole duration for which it is established, a difference in one and the same direction with the temperature (TN) of the natural ground (21).

3. Method according to one of claims 1 to 2, characterized in that, in a steady state condition after a transitory period, the forecast trajectory (TP) fluctuates over time, either side of a substantially stable mean value (TM).

4. Method according to one of claims 1 to 3, characterized in that the forecast trajectory (TP) is defined for successive instants in the direction of an overall optimization for each instant in question and its future, to ensure the thermal stability of the geothermal medium.

5. Method according to one of claims 1 to 4, characterized in that at an instant of intervention the forecast trajectory (TP) can be amended for the time following the intervention.

6. Method according to one of claims 1 to 4, characterized in that at an instant of intervention of the regulation after startup of the installation, the method comprises: • amending the trajectory in cases where values of at least one parameter, chosen from a list of parameters relating to the installation, its location, its intended use and its thermal energy equipment, diverge from the estimate thereof taken into account to define the forecast trajectory in force up to the moment of the intervention.

7. Method according to claim 6, characterized in that the values that diverge from the estimate thereof comprise forecast values relating to instants subsequent to the instant of intervention.

8. Method according to one of claims 6 to 7, characterized in that it comprises: • updating at least one of the estimates according to a long-term trend observed or anticipated for at least one of the parameters, different from the preceding estimate taken into account for defining the forecast trajectory in force; • definitively replacing the forecast trajectory with a new forecast trajectory taking into account the at least one updated estimate.

9. Method according to one of claims 1 to 8, characterized in that it comprises, during an episode of deviation (TE, TE1, TE2, TE3), allowing the temperature of the geothermal medium to diverge from the forecast trajectory (TP) in an exceptional situation relating to at least one of the parameters, chosen from a list of parameters relating to the installation, its location, its intended use and its thermal energy equipment, or a combination of several of the parameters.

10. Method according to claim 9, characterized in that it comprises: • defining at the start of the episode the thermal power exchanged in the at least one probe so that the temperature of the geothermal medium (31) diverges from the forecast trajectory (TP), and • defining for the temperature of the geothermal medium a deviation trajectory temporarily divergent from the forecast trajectory.

11. Method according to claim 9, characterized in that it comprises: • controlling the thermal power exchanged as a function of the actual demand with a degree of freedom with respect to the forecast trajectory (TP).

12. Method according to claim 9 or 11, characterized in that it comprises: • acquiring a forecast timing chart of the thermal power exchanged with the geothermal medium; • monitoring the at least approximate conformity of the evaluated mean temperature of the geothermal medium (31) with a mean (TM) of the forecast trajectory (TP); • in the case of drift of the evaluated mean temperature, amending at least indirectly the thermal power exchanged with the geothermal medium, with respect to the forecast timing chart, in a direction tending towards the return to conformity with one out of the mean temperature (TM) and the forecast trajectory (TP).

13. Method according to one of claims 1 to 12, characterized in that, as a function of parameters relating to the climate, to the sources and to the energy requirements of the installation, the regulating system (AUT, CU) commands a selective activation of the sources and of the items of equipment of the installation, as well as selective connections between sources and items of equipment, and carries out power regulation of the items of equipment, in the direction of satisfying the requirements and an optimization with respect to at least one criterion, that may be economic, environmental, associated with comfort or ease of maintenance, said power regulation comprising said adjustment of the thermal power exchanged between the heat transfer fluid and the geothermal medium (31) in the at least one probe (3).

14. Method according to claim 13, characterized in that the regulating system defines a succession over time of combinations of activation states of at least some of the items of equipment and of the sources over a duration subsequent to the current instant, in a direction of an optimization including the future, with respect to the at least one criterion.

15. Method according to claim 13 or 14, characterized in that the method comprises taking into account forecasts for at least one parameter chosen from: at least one price for energy originating from a source, and at least one climatic parameter out of the exterior temperature, sunshine and wind speed.

16. Method according to one of claims 1 to 15, characterized in that, before commissioning of the installation, tests of the thermal response of the geothermal medium (31) to thermal exchanges are conducted by means of a test probe, so as to determine the thermal conductivity and the heating capacity of the geothermal medium (31).

17. Method according to one of claims 1 to 16, characterized in that the temperature of the heat transfer fluid at the inlet and at the outlet of the probes and the flow rate of the heat transfer fluid are measured, the flow rate and the difference between these two temperatures are used to calculate the thermal power exchanged with the geothermal medium, and the corresponding variation in the temperature of the geothermal medium is determined according to a prior modelling of the geothermal medium.

18. Method according to one of claims 1 to 17, characterized by regeneration phases during which thermal energy, hot or cold, supplied by the installation from another source connected to the installation is injected into the geothermal medium by means of the heat transfer fluid and the probes.

19. Method according to one of claims 1 to 18, characterized by regeneration phases during which unavoidable thermal energy, supplied by an item of equipment of the installation fed by one said other source is injected into the geothermal medium by means of the heat transfer fluid and the probes.

20. Installation for supplying thermal energy to a consuming structure (1), the installation comprising: • items of equipment for collecting energy (3, 4, CPh, CTh, ATh) that are in an energy exchange relationship with respective sources, these items of equipment comprising at least one geothermal probe (3) in a thermal exchange relationship with a geothermal medium (31); • items of equipment for transforming energy (PAC, Comb, ELEC) at least partially fed by the items of collection equipment; • items of equipment (10) that are users of energy, supplying energy to the structure; • a regulating system (AUT, CU) capable of defining, for at least some of the different items of equipment, respective activation states chosen as a function of parameters, in particular climatic parameters, in the direction of an optimization with respect to at least one criterion that may be economic, environmental, associated with comfort or ease of maintenance; characterized in that the regulating system implements a method according to one of claims 1 to 19.

21. System for regulating an installation for supplying thermal energy to a consuming structure (1), the installation comprising: • items of equipment for collecting energy (3, 4, CPh, CTh, ATh) that are in an energy exchange relationship with respective sources, these items of equipment comprising at least one geothermal probe (3) in a thermal exchange relationship with a geothermal medium (31); • items of equipment for transforming energy (PAC, Comb, ELEC) at least partially fed by the items of collection equipment; • items of equipment that are users of energy (10), supplying energy to the structure (2); the regulating system being capable of defining, for at least some of the items of equipment, different respective activation states chosen as a function of parameters, in particular climatic parameters, in the direction of an optimization with respect to at least one criterion that may be economic, environmental, associated with comfort or ease of maintenance; characterized in that the regulating system implements a method according to one of claims 1 to 19 or is integrated in an installation according to claim 20.

22. Installation according to claim 20, or system according to claim 21, characterized in that the regulating system (AUT, CU) comprises at least one input (23) capable of receiving forecasts concerning a period subsequent to the current instant.