SYSTEM AND METHOD FOR CHLORINATION OF WATER IN A SWIMMING POOL
Patent Information
- Application Number
- DE602024002487
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-06-29
- Filing Date
- 2024-06-27
- Publication Date
- 2026-02-11
- Estimated Expiration
- 2044-06-27
AI Technical Summary
Existing chlorination systems for swimming pools, particularly electrolyzers, face limitations such as finite production capacity, electrode lifespan issues, and reduced efficiency at low temperatures, leading to inadequate chlorine production during heatwaves or high usage, with abrupt transitions between electrolysis and chemical injection.
A chlorination system that integrates electrolyzing and injecting means, controlled by a module that distributes chlorine supply based on temperature thresholds and additional parameters, ensuring a gradual transition between electrolysis and chemical injection to maintain consistent chlorine levels.
Ensures consistent chlorine supply by avoiding abrupt transitions, maintaining effective disinfection despite temperature variations and high usage, extending electrode lifespan, and adapting to environmental conditions.
Description
Technical field of the invention
[0001] The present invention relates to the technical field of installations for the chlorination of swimming pool water. State of the art
[0002] Swimming pools are popular recreational facilities and the quality of their water is of paramount importance to protect the health of swimmers.
[0003] A widely used method for maintaining water quality is to add chlorine compounds, which effectively disinfect the water by eliminating harmful microorganisms.
[0004] Current installations rely on different technologies for water chlorination, particularly electrolyzers.
[0005] The operation of the electrolyzer consists of passing an electric current between two platinum plates (electrolysis cell) in order to produce chlorine from the salt dissolved in the water.
[0006] This type of equipment is very widespread but does have some limitations: The electrolyzer has a finite chlorine production capacity: in the event of a heatwave, storm or intensive use of the pool, it may happen that the chlorine produced is not enough to treat the water; the lifespan of the electrodes is limited (wear during production); the lower the water temperature, the less efficient the chlorine production and the faster the electrodes wear out.
[0007] In particular, it is common practice to stop the production of chlorine by the electrolyzer when the water temperature is below a minimum threshold value (for example 15°C) in order to avoid unnecessarily damaging the electrodes.
[0008] Some chlorination installations then incorporate an additional dosing pump, which is used below the minimum threshold value, instead of the production of chlorine by the electrolyzer.
[0009] Such dosing pumps are thus used to precisely inject chlorination chemicals into pool water in order to maintain appropriate chlorine levels.
[0010] But, in practice, the limit between the rapid degradation temperature, on the one hand, and the nominal operation of the electrodes of an electrolyzer, on the other hand, is not limited to a minimum threshold value.
[0011] There is therefore a need for a technical solution that would overcome the limitations of electrolyzers, particularly in relation to temperature thresholds.
[0012] Documents FR3069860A1, EP2273039A1 and FR3119186A1 relate to installations dedicated to the chlorination of swimming pool water. Presentation of the invention
[0013] In order to remedy the aforementioned drawback of the prior art, the present invention proposes an installation for the chlorination of swimming pool water.
[0014] This chlorination plant includes: Chlorination means, for supplying chlorine to said water, comprising: -- electrolyzing means, for example a swimming pool electrolyzer, and -- injector means connected to a chlorine reservoir, for example a liquid chlorine dosing pump, temperature sensor means, for measuring a collected value of the water temperature of said swimming pool, chlorine level measurement means, for measuring a collected chlorine content of the water of said swimming pool, and control means, comprising: -- a calculation module, for determining a quantity of chlorine to be supplied taking into account said collected chlorine content and a set chlorine content, and -- a control module, for controlling said chlorination means according to said quantity of chlorine to be supplied.
[0015] And, according to the invention, said control module is configured to distribute said quantity of chlorine to be supplied between said electrolyzing means and said injecting means, taking into account said collected temperature value and temperature thresholds of the water of said swimming pool, namely: an injection configuration, where the collected temperature value is below a minimum temperature threshold, in which the injector means are controlled to supply the quantity of chlorine; an electrolyzer configuration, where the collected temperature value is above a maximum temperature threshold, in which the electrolyzer means are controlled to produce the quantity of chlorine; and a hybrid configuration, where the collected temperature value is between the temperature thresholds, in which the electrolyzer means and the injector means are each controlled to supply a share of the quantity of chlorine. said share of the quantity of chlorine produced by said electrolyzing means increasing with said collected temperature value.
[0016] Such a technical solution makes it possible to avoid an abrupt switchover between the electrolyzing means and the injecting means, at the minimum threshold temperature.
[0017] On the contrary, it ensures a gradual transition between the electrolyzing means and the injecting means, over a range between two threshold temperatures.
[0018] Other non-limiting and advantageous features of the product / process according to the invention, taken individually or in all technically possible combinations, are as follows: the minimum temperature threshold is 14 to 16°C and the maximum temperature threshold is 19 to 21°C; said control module is configured to increase continuously, or discontinuously, said first share Ca1 of the quantity of chlorine produced by said electrolyzing means; said control module is configured to increase continuously said first share of the quantity of chlorine to be supplied produced by said electrolyzing means, among a continuous linear increase, a continuous logarithmic increase, a continuous exponential increase, a continuous polynomial increase; said control module is configured to increase discontinuously said first share of the quantity of chlorine produced by said electrolyzing means, among steps, for example each degree of temperature;the control means include an additional calculation module, to determine an additional quantity of chlorine to be added, taking into account at least one additional parameter, which additional parameter is chosen for example from weather conditions which do not allow the electrolyzing means to counter the development of bacteria and algae, intensive use of said swimming pool, the status of the electrolyzing means, in particular of the electrodes, especially at the end of life, a salt level in the water which is below a minimum threshold;The control means include means for implementing the following steps: a step for calculating the quantity of chlorine to be supplied, taking into account the collected chlorine content and a setpoint chlorine content; a chlorination step, taking into account the collected temperature value and the temperature thresholds, according to one of the configurations chosen from the injection configuration, the electrolyzer configuration, and the hybrid configuration; the injection means are connected to a chlorine reservoir.
[0019] The present invention also relates to a swimming pool equipped with an installation for chlorinating the water of a swimming pool, according to the invention.
[0020] The present invention also relates to a method for chlorinating swimming pool water, by implementing an installation according to the invention.
[0021] This process includes: a calculation step for said quantity of chlorine to be added, taking into account said collected chlorine content and a setpoint chlorine content, a chlorination step, taking into account said collected temperature value and said temperature thresholds, according to one of the following configurations: -- an injection configuration, when said collected temperature value is below said minimum temperature threshold, in which said injection means are controlled to add said quantity of chlorine to be added, -- an electrolysis configuration, when the collected temperature value is above said maximum temperature threshold, in which said electrolysis means are controlled to add said quantity of chlorine to be added, and -- a hybrid configuration, when the collected temperature value is between said temperature thresholds,in which said electrolyzing means and said injection means are controlled to each supply a share of said quantity of chlorine to be supplied, the proportion of the quantity of chlorine to be supplied by the said electrolyzing means increasing with the said collected temperature value.
[0022] Preferably, the process includes an additional chlorination step, taking into account at least one additional parameter.
[0023] This additional parameter is chosen, for example, from: weather conditions which do not allow the electrolyzers to counter the development of bacteria and algae, intense use of said swimming pool, the condition of the electrolyzers, in particular the electrodes, especially at the end of their life, a salt level in the water which is below a minimum threshold.
[0024] Of course, the different features, variants and embodiments of the invention can be combined with each other in various ways as long as they are not incompatible or mutually exclusive. Detailed description of the invention
[0025] Furthermore, various other features of the invention become apparent from the attached description made with reference to the drawings which illustrate non-limiting embodiments of the invention and where: [ Fig. 1 ] is a schematic view, in the form of a block diagram, of the chlorination plant according to the invention; [ Fig. 2 ] is a schematic view, in the form of a block diagram, illustrating the algorithm implemented by the control means; [ Fig. 3 ] is a schematic view, in the form of a block diagram, of the chlorination process according to the invention.
[0026] IlIt should be noted that, in these figures, the structural and / or functional elements common to the different variants may have the same references.
[0027] As described in connection with the figure 1 The present invention thus relates to installation 1 for chlorinating the water of a swimming pool (not shown). Such an installation 1 is also called a "chlorination installation 1".
[0028] The term "chlorination system" advantageously refers to a system designed to add chlorine compounds to pool water in order to effectively disinfect the water by eliminating harmful microorganisms.
[0029] In general, the chlorination installation 1 according to the invention comprises: chlorination means 2, to supply chlorine to the pool water, temperature sensor means 3, to measure a collected value of temperature Tc of the pool water, chlorine level measurement means 4, to measure a collected chlorine content Cc of the pool water, and control means 5, in particular to control the chlorination means 2 according to a quantity of chlorine to be supplied Ca and the collected value of temperature Tc. Chlorination methods
[0030] According to the present invention, the chlorination means 2 comprise two components: electrolyzing means 21, and injecting means 22.
[0031] Electrolyzers 21, for example an electrolyzer for swimming pools, are advantageously conventional in themselves.
[0032] Such electrolyzing means 21 advantageously consist of circulating an electric current between two platinum plates (electrolysis cell) so as to produce chlorine from salt dissolved in water.
[0033] Injector means 22, for example a liquid chlorine dosing pump, are advantageously conventional in themselves.
[0034] Injector means 22 are connected to a chlorine reservoir, for the distribution of a dose of chlorine into the pool water.
[0035] In general, chlorination devices 2 can be positioned on the pool water filtration circuit. Temperature sensor methods
[0036] The temperature sensor means 3 are advantageously conventional in themselves.
[0037] For example, these temperature sensor means 3 consist, for example, of a thermistor or a digital temperature sensor, immersed in the pool water or installed to measure the water temperature in the water circulation pipes. Methods of measuring chlorine levels
[0038] The methods for measuring the chlorine level 4 are advantageously conventional in themselves.
[0039] For example, these means of measuring the chlorine level 4 consist of a redox probe or a chlorine probe. Ordering methods
[0040] Preferably, the control means 5 include a data processing system comprising means for implementing the process described below.
[0041] Preferably, the control means 5 advantageously include a microcontroller in which is stored a computer program which includes instructions which, when said computer program is executed by said microcontroller, lead the latter to control the chlorination means 2 according to a process described hereafter (also called "algorithm").
[0042] In general, the control means 5 are advantageously presented in the form of an industrial programmable logic controller, namely a programmable digital electronic device which sends commands to the chlorination means 2 from input data from sensors (in particular the temperature sensor means 3 and the chlorine level measurement means 4), setpoints and a computer program.
[0043] More specifically, the control means 5 include: a calculation module 51, to determine a quantity of chlorine to be supplied Ca taking into account the collected chlorine content Cc and a setpoint chlorine content Ct, and a control module 52, to control the chlorination means 2 according to the quantity of chlorine to be supplied Ca.
[0044] In particular, calculation module 51 determines the amount of chlorine to be supplied Ca as a difference between the collected chlorine content Cc and the target chlorine content Ct.
[0045] Furthermore, the control module 52 controls the respective operation of the electrolyzer means 21 and the injector means 22, to achieve the quantity of chlorine to be supplied Ca.
[0046] According to the invention, the control module 52 is configured to distribute the quantity of chlorine to be supplied Ca between the electrolyzer means 21 and the injector means 22.
[0047] In this sense, the quantity of chlorine to be supplied (Ca) is divided into shares which are designated respectively by: a first quota Ca1, for the quota of the quantity of chlorine produced by the electrolyzing means 21, in relation to the quantity of chlorine to be supplied Ca, and a second quota Ca2, for the quota of the quantity of chlorine produced by the injecting means 22, in relation to the quantity of chlorine to be supplied Ca.
[0048] Generally, each Ca1, Ca2 share represents a value from 0% to 100% of the required amount of chlorine (Ca). The sum of the Ca1 and Ca2 shares is equal to 100% and corresponds to the required amount of chlorine (Ca).
[0049] For this purpose, preferably the pilot control module 52: the operating time of the electrolyzing means 21, to obtain the first quota Ca1, or the volume of chlorine to be injected by the injecting means 22, to obtain the second quota Ca2.
[0050] To manage these quotas, the management module 52 includes, in particular: a calculation unit 521, configured to calculate the distribution of the quantity of chlorine to be supplied Ca, between the electrolyzing means 21 and the injecting means 22 (namely the respective Ca1 and Ca2 shares), and a control unit 522, configured to control the respective operation of the electrolyzing means 21 and the injecting means 22, taking into account the aforementioned Ca1, Ca2 shares.
[0051] The control module 52 thus advantageously consists of a computer program which includes instructions which, when said computer program is executed, lead it to control the chlorination means 2 according to configurations described later.
[0052] In other words, the control module 52, and advantageously the calculation unit 521, automatically determines the respective Ca1 and Ca2 shares.
[0053] According to the invention and as schematically represented on the figure 2 , this distribution of the quantity of chlorine to be supplied Ca (namely the respective Ca1 and Ca2 shares) takes into account the collected value of temperature Tc and temperature thresholds TMin, TMax of the water of said swimming pool.
[0054] Preferably, the temperature thresholds TMin, TMax are chosen from: a minimum temperature threshold TMin ranging from 14 to 16°C, preferably 15°C, and a maximum temperature threshold TMax ranging from 19 to 21°C, preferably 20°C.
[0055] More specifically, the control module 52 (advantageously via the computing unit 521) is configured to distribute the amount of chlorine to be supplied Ca according to three configurations taking into account the collected value of temperature Tc.
[0056] First, the control module 52 is driven in an "injection" configuration when the collected temperature value Tc is less than a minimum temperature threshold TMin.
[0057] The injector means 22 are then controlled to supply the quantity of chlorine to be supplied Ca.
[0058] The value of the second Ca2 share is then equal to the value of Ca (the second Ca2 share is equal to 100%); 100% of the chlorine is thus injected by the injector means 22. The value of the first Ca1 share is zero.
[0059] Secondly, the control module 52 is controlled in an "electrolyzer" configuration when the collected temperature value Tc is greater than a maximum temperature threshold TMax.
[0060] The electrolyzer means 21 are then controlled to produce the quantity of chlorine to be supplied Ca.
[0061] The value of the first quota Ca1 is equal to the value of Ca (the first quota Ca1 is equal to 100%); 100% of the chlorine is produced by the electrolyzer means 21. The value of the second quota Ca2 is zero.
[0062] Thirdly, the control module 52 is controlled in a "hybrid" configuration when the collected temperature value Tc is between the temperature thresholds TMin and Tmax.
[0063] The term "included" advantageously encompasses a temperature range extending from the minimum temperature threshold TMin to the maximum temperature threshold Tmax.
[0064] The electrolyzer means 21 and the injector means 22 are then controlled to each provide a share of the quantity of chlorine to be provided Ca (the sum of the values of Ca1 and Ca2 is equal to the value of Ca; the values of the shares Ca1 and Ca2 are non-zero).
[0065] In this case, the first Ca1 share (produced by the electrolyzing means 21) increases with the collected value of temperature Tc.
[0066] Conversely, the second Ca2 share (produced by the injector means 22) decreases with the collected value of temperature Tc.
[0067] Preferably, control means 5 include means for implementing the following steps: a calculation step of said quantity of chlorine to be supplied Ca (advantageously via the calculation module 51), taking into account said collected chlorine content Cc and a setpoint chlorine content Ct, then a chlorination step (advantageously via the control module 52), taking into account said collected temperature value Tc and the temperature thresholds TMin, TMax, according to one of the aforementioned configurations (injection configuration, electrolyzer configuration or said hybrid configuration).
[0068] Preferably, the control module 52 is configured to continuously, or discontinuously, increase the first Ca1 share produced by the electrolyzing means 21.
[0069] According to a first preferred embodiment, the control module 52 is configured to continuously increase the first Ca1 share produced by the electrolyzing means 21, among: a continuous linear increase, a continuous logarithmic increase, a continuous exponential increase, a continuous polynomial increase.
[0070] In the case of a continuous linear increase, the value of the first share Ca1 can be obtained using the following formula: Ca 1 = Tc - TMin / TMax - TMin × 100 %
[0071] According to a second embodiment, the control module 52 is configured to increase discontinuously the first Ca1 share produced by the electrolyzing means 21, advantageously in the form of steps, for example one step per degree of temperature.
[0072] An example of discontinuous increase is detailed below: the first Ca1 quota is equal to 0% when the collected temperature value Tc is less than the minimum temperature threshold TMin, the first Ca1 quota increases from 20 to 30% for each degree of temperature, between the temperature thresholds TMin, TMax, and the first Ca1 quota is equal to 100% when the collected temperature value Tc is greater than the maximum temperature threshold TMax.
[0073] According to the invention, the control means 5 advantageously include an additional calculation module 53, to determine an additional quantity of chlorine Cd to be supplied, taking into account at least one additional parameter.
[0074] This additional parameter is chosen, for example, from: weather conditions which do not allow the electrolyzers 21 to counteract the development of bacteria and algae, intensive use of the pool, the condition of the electrolyzers 21, in particular the electrodes, especially at the end of their life, a salt level in the water which is below a minimum threshold.
[0075] In particular, monitoring weather conditions makes it possible to anticipate the destabilization of chlorine regulation and therefore to anticipate the development of undesirable microorganisms.
[0076] For this purpose, the control means 5 are advantageously associated with at least one interface adapted to providing additional information, namely, for example, among: a human-machine interface (a touch screen or not, a keyboard, etc.) for input of information by an operator (for example, intensive use of the pool), means of detecting the status of the electrolyzer means 21, means of detecting the salt level in the water, a telecommunications network, for the transmission of weather conditions.
[0077] In practice, this additional quantity of chlorine Cd to be supplied is supplied by the injector means 22. Pool
[0078] The present invention also relates to the swimming pool equipped with this chlorination installation 1.
[0079] Such a chlorination installation 1 can possibly be integrated into an electrical system dedicated to the power supply and control of the electrical equipment of a swimming pool, which is described in document FR3119186. Method for chlorinating swimming pool water
[0080] The present invention also relates to the method for chlorinating swimming pool water, by implementing the chlorination installation 1 according to the invention.
[0081] This chlorination process comprises a series of steps, illustrated schematically on the figure 3 namely: a calculation step A, for calculating the quantity of chlorine to be supplied Ca, taking into account the collected chlorine content Cc and a setpoint chlorine content Ct, a chlorination step B, taking into account the collected temperature value Tc and the temperature thresholds TMin, Tmax.
[0082] This chlorination step B is carried out according to the aforementioned configurations: an injection configuration B1, when said collected temperature value Tc is less than said minimum temperature threshold TMin, in which said injector means 22 are controlled to supply said quantity of chlorine to be supplied Ca, an electrolyzer configuration B2, when the collected temperature value Tc is greater than said maximum temperature threshold TMax, in which said electrolyzer means 21 are controlled to supply said quantity of chlorine to be supplied Ca, and a hybrid configuration B3, when the collected temperature value Tc is between said temperature thresholds TMin, TMax, in which said electrolyzer means 21 and said injector means 22 are controlled to supply each a share Ca1, Ca2 of said quantity of chlorine to be supplied Ca.
[0083] As previously developed, in the B3 hybrid configuration, the first Ca1 quota increases with the collected temperature value Tc.
[0084] As discussed previously, such a technical solution according to the invention makes it possible to avoid an abrupt switchover between the electrolyzing means 21 and the injecting means 22, at a threshold temperature.
[0085] On the contrary, it ensures a gradual transition between the electrolyzing means 21 and the injecting means 22, over a range between two threshold temperatures.
[0086] Preferably, this process includes an additional chlorination step B5, taking into account at least one additional parameter.
[0087] This additional parameter is chosen, for example, from: weather conditions which do not allow the electrolyzer means 21 to counter the development of bacteria and algae, intense use of said swimming pool, the status of the electrolyzer means 21, in particular the electrodes, especially at the end of their life, a salt level in the water which is below a minimum threshold.
[0088] This additional chlorination step is advantageously implemented by the injector means 22.
[0089] Of course, various other modifications can be made to the invention within the scope of the attached claims.
Claims
1. System for the chlorination of the water of a swimming pool, said chlorination system (1) comprising: - chlorination means (2) for adding chlorine to said water, comprising: -- electrolyzing means (21) and -- injection means (22) connected to a chlorine tank, - temperature sensor means (3) for measuring a captured temperature (Tc) of the water of the swimming pool, - means for measuring the chlorine content (4) for measuring a captured chlorine content (Cc) of the water of the swimming pool and - control means (5) comprising: -- a calculating module (51) for determining a quantity of chlorine Ca to be added, taking into account the captured chlorine content Cc and a set content of chlorine Ct, and -- a control module (52) for controlling said chlorination means (2) depending on the quantity of chlorine Ca to be added, characterized in that said control module (52) is configured for dividing said quantity of chlorine Ca to be added between said electrolyzing means (21) and said injection means (22), taking into account said captured value Tc of the temperature and set temperature values TMin, TMax of the water of the swimming pool, i.e.: - an injection configuration when said captured value Tc of the temperature is lower than a set minimum temperature TMin, in which said injection means (22) are controlled for adding said quantity of chlorine Ca to be added, - an electrolyzing configuration when said captured value Tc of the temperature is higher than a set maximum temperature TMax, in which said electrolyzing means (21) are controlled for producing said quantity of chlorine Ca to be added, and - a hybrid configuration when the captured value Tc of the temperature is between said set values TMin, TMax of the temperature, in which said electrolyzing means (21) and said injection means (22) are controlled for each adding a respective proportion Ca1, Ca2 of said quantity of chlorine Ca to be added, a first proportion Ca1 of the quantity produced by said electrolyzing means (21) increasing with said captured value Tc of the temperature.
2. System for the chlorination of the water of a swimming pool according to claim 1, characterized in that said minimum temperature TMin is from 14 to 16 °C and in that said set maximum temperature TMax is from 19 to 21 °C.
3. System for the chlorination of the water of a swimming pool according to anyone of claims 1 or 2, characterized in that said control module (52) is configured for increasing continuously or discontinuously said first proportion Ca1 of the quantity of chlorine produced by said electrolyzing means (21).
4. System for the chlorination of the water of a swimming pool according to claim 3, characterized in that said control module (52) is configured for increasing continuously said first proportion Ca1 of the quantity of chlorine Ca to be added amongst: - a linear continuous increase, - a logarithmic continuous increase, - an exponential continuous increase, - a polynomial continuous increase.
5. System for the chlorination of the water of a swimming pool according to claim 3, characterized in that said control module (52) is configured for increasing discontinuously said proportion of the quantity of chlorine produced by said electrolyzing means (21) amongst steps, e.g. each degree of the temperature.
6. System for the chlorination of the water of a swimming pool according to anyone of claims 1 to 5, characterized in that the control means (5) comprise an additional calculating module (53) for determining an additional quantity of chlorine Cd to be added, taking into account at least one additional parameter, said additional parameter being selected from: - meteorological conditions which do not allow the electrolyzing means (21) to counteract the development of bacteria and algae, - an intensive utilization of the swimming pool, - the state of the electrolyzing means (21), especially of the electrodes, and especially at the end of life, - a salt content in the water which is lower than a set minimum.
7. System for the chlorination of the water of a swimming pool according to anyone of claims 1 to 6, characterized in that the control means (5) comprise means for carrying out the following steps: - a calculating step for calculating the quantity of chlorine Ca to be added, taking into account the captured content of chlorine Cc and a set value of chlorine Ct, - a chlorination step, taking into account the captured value Tc of the temperature and the set temperatures TMin, TMax according to the selected configurations amongst said injection configuration, said electrolyzing configuration, and said hybrid configuration.
8. System for the chlorination of the water of a swimming pool according to anyone of claims 1 to 7, characterized in that the injection means comprise a metering pump for liquid chlorine.
9. Swimming pool provided with a system for the chlorination of the water of a swimming pool according to anyone of claims 1 to 8.
10. Process for the chlorination of the water of a swimming pool by implementing a system according to anyone of claims 1 to 8, characterized in that it comprises: - a step of calculating said quantity of chlorine Ca to be added, taking into account the captured content Cc of chlorine and a set content Ct of chlorine, - a step of chlorination, taking into account the captured value Tc of the temperature and set temperature TMin, TMax according to one of the following configurations: -- an injection configuration when said captured value Tc of the temperature is lower than a set minimum temperature TMin, in which said injection means (22) are controlled for adding said quantity of chlorine Ca to be added, -- an electrolyzing configuration when said captured value Tc of the temperature is higher than a set maximum temperature TMax, in which said electrolyzing means (21) are controlled for producing said quantity of chlorine Ca to be added, and -- a hybrid configuration when the captured value Tc of the temperature is between said set values TMin, TMax of the temperature, in which said electrolyzing means (21) and said injection means (22) are controlled for each adding a respective proportion Ca1, Ca2 of said quantity of chlorine to be added, a first proportion Ca1 of the quantity produced by said electrolyzing means (21) increasing with said captured value Tc of the temperature.
11. Process for the chlorination of the water of a swimming pool according to claim 10, characterized in that it comprises a step of complementary chlorination, taking into account at least one additional parameter, said additional parameter being selected for example amongst: - meteorological conditions which do not allow the electrolyzing means (21) to counteract the development of bacteria and algae, - an intensive utilization of the swimming pool, - the state of the electrolyzing means (21), especially of the electrodes, and especially at the end of life, - a salt content in the water which is lower than a set minimum.