DEVICE FOR SEEDING A CLOUD CELL
20200196539 ยท 2020-06-25
Assignee
Inventors
Cpc classification
H01Q15/145
ELECTRICITY
F42B12/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B3/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42B12/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention relates to a device for seeding a cloud cell, comprising a pyrotechnic torch containing an active substance. The invention further relates to a pneumatic projection apparatus for projecting such a device, the apparatus comprising a guide element and a fastener, which fastener is arranged to cooperate with the distal portion of a projection base of the device. The invention also relates to a system for seeding a cloud cell.
Claims
1. A device for seeding a cloud cell, comprising a pyrotechnic torch containing an active substance and comprising a detonator, said device further comprising a trigger designed for bringing about actuation of the detonator, and thus a diffusion of the active substance by means of the torch, said trigger cooperating with the detonator of said torch, wherein the torch cooperates in an integral manner with the proximal portion (of a projection base, said base comprising: a proximal portion that is designed for: cooperating, in accordance with a fitted mechanical connection, with a pyrotechnic torch; obstructing an opening made in an end of a guide element of a projection apparatus; a distal portion that is designed for: cooperating, in accordance with a fitted mechanical connection, with a fastener that is present within the guide element of said projection apparatus.
2. The device according to the claim 1, wherein the torch and the base form a single physical entity.
3. The device according to claim 1, comprising a shroud element that cooperates in an integral manner with the torch or that forms one physical entity, together with said torch, the outer casing of which is arranged so as to improve the aerodynamism of said torch.
4. The device according to claim 1, wherein the active substance is primarily formed of silver iodide or a hygroscopic salt.
5. The device according to claim 1, wherein the pyrotechnic torch also comprises propagation marker particles that can be detected by any suitable analysts analyzer.
6. The device according to claim 1, wherein the detonator of the torch is mechanically controlled, and the trigger comprises a firing pin.
7. The device according to claim 1, wherein the detonator of the torch is pyrotechnically controlled, and the trigger comprises a squib in the form of a delay detonator.
8. The device according to claim 1, wherein: the trigger comprises a processing unit, said processing unit being arranged so as to draw up and generate an actuation command intended for the detonator of the pyrotechnic torch, in accordance with a specified trigger event; the detonator is electrically controlled and capable of interpreting the commands generated by the trigger.
9. The device according to claim 8, wherein: the trigger furthermore comprises a sensor that cooperates with said processing unit and that provides said processing unit with a measure of a physical magnitude that represents the altitude or the speed and/or the acceleration of the torch; the processing unit is configured to compare the measure of the physical magnitude with a predetermined threshold; the trigger event comprises a comparison demonstrating a measure of said physical magnitude that is substantially equal to said specified threshold.
10. The device according to claim 9, wherein the sensor comprises an altimeter, an accelerometer and/or a gyroscope.
11. The device according to claim 8, wherein: the processing unit is arranged configured to cause a meter to move, and to compare the value of said meter with the specified threshold value; the trigger event comprises a comparison demonstrating a measure of said meter that is equal to said specified threshold.
12. The device according to claim 8, wherein the pyrotechnic torch comprises propagation marker particles that can be defected by any suitable analyzer, and further comprising a second sensor which cooperates with the processing unit, said second sensor being capable of detecting the propagation marker particles, according to a suitable analyzer.
13. The device according to claim 1, wherein the base comprises a mechanical fuse, said fuse comprising a central portion of which the elastic limit is less than those of the other elements forming the base, said portion being arranged so as to break suddenly when a specified mechanical stress is applied to said portion.
14. A pneumatic projection apparatus designed for projecting a device for seeding a cloud cell according to claim 1, comprising a guide element having a port, said port being arranged so as to receive the torch of said device for seeding, and having a cross section that is substantially identical to the largest cross section of the external wall of said device, said guide element comprising or cooperating in an integral manner with a fastener, said fastener being arranged so as to cooperate with the distal portion of said projection base.
15. The projection apparatus according to claim 14, wherein the fastener cooperates with the base by means of an interface comprising a mechanical fuse, said fuse comprising a portion that is configured to break suddenly when a specified mechanical stress is applied to said portion.
16. The protection apparatus according to claim 14, further comprising a pressurized chamber, said chamber cooperating in an integral manner with one of the ends of the guide element.
17. A system for seeding a cloud cell, comprising: a device for seeding a cloud cell according to claim 1; a projection apparatus comprising a guide element having a port said port being arranged so as to receive the torch of said device for seeding, and having a cross section that is substantially identical to the largest cross section of the external wall of said device, said guide element comprising or cooperating in an integral manner with a fastener, said fastener being arranged so as to cooperate with the distal portion of said projection base; and a gas tank that is arranged so as to supply gas to and to pressurize the projection apparatus, said tank cooperating fluidically with said projection apparatus.
Description
[0041] Other features and advantages will appear more clearly from reading the following description and studying the accompanying drawings, in which:
[0042]
[0043]
[0044]
[0045]
[0046]
[0047] Within the meaning of the invention, and throughout the document, cloud cell is intended to mean any cluster or mass of fine droplets of liquid or vaporized water in suspension in the atmosphere, said droplets possibly being kept in suspension as a result of the presence of updrafts. Indeed, when the size of said droplets does not exceed a few microns, said droplets can be kept in suspension naturally.
[0048] In order to perform seeding of a cloud cell of this kind, i.e. to disturb the microphysical equilibria within the cell, particles or active substances, also known as artificial freezing nuclei when the active substance or substances act in a cold region, are introduced within said cloud cell in order to alter, disturb, or even modify, the exchanges between the different states of the water, for example by accelerating the growth of particular droplets or the solidification of said droplets into ice crystals. As specified above, throughout the document, the terms active charge, artificial particle or active substance will be used to define an agent responsible for seeding a cloud cell.
[0049] According to non-limiting embodiments described in connection with
[0050] In order to ensure optimum operation of said projection apparatus 30, a system 100 for seeding a cloud cell according to the invention also comprises a gas tank 40 that is arranged so as to supply gas to and to pressurize the projection apparatus 30, said tank 40 cooperating fluidically with said projection apparatus 30. The tank 40 is thus in fluid communication with the projection apparatus 30, by means of one or more ducts and/or one or more valves that are suitable for regulating the pressure of the compressed air, or any other gas used in the system, that prevails in said ducts. In a variant or in addition, when a projection apparatus 30 according to the invention comprises a pressurized chamber 33, as indicated in
[0051]
[0052] A device 20 for seeding a cloud cell according to the invention advantageously comprises a pyrotechnic torch 21 containing an active substance AS. A pyrotechnic torch 21 of this kind also comprises a pyrotechnic mixture (not shown in
[0053] Furthermore, the pyrotechnic torch 21 of a device 20 of this kind comprises a detonator (not shown in
[0054] As specified above, a system 100 for seeding a cloud cell according to the invention comprises a device 20 for seeding a cloud cell and a projection apparatus 30 that is arranged so as to receive and project said device. In order to ensure cooperation with a separate projection apparatus and to guarantee projection of a device 20 for seeding a cloud cell according to the invention, the torch 21 thereof cooperates in an integral manner with the proximal portion 28 of the base 25. Within the meaning of the invention, and throughout the document, base is intended to mean any part or any element, optionally bulbous, that is used for bearing and/or supporting the pyrotechnic torch 21. By way of advantageous and non-limiting example, described in connection with
[0055] According to a non-limiting embodiment, described in particular in connection with
[0056] Furthermore, the proximal portion 27 of the base 25 is also designed for obstructing an opening made in an end 33 of a guide element 31 of a projection apparatus 30. An obstruction of this kind advantageously makes it possible to create a sealed chamber 31c1 within a guide element 31 of a projection apparatus 32, inside which is a device 20 for seeding a cloud cell, the pressure of which chamber can advantageously be determined and controlled. It will be seen below that the device 20 is projected under the effect of a sudden release of the pressure contained within a chamber of this kind. In order to obstruct said opening that is made in the guide element, the proximal portion 27 of a base 25 according to the invention has dimensions, in particular a cross section, substantially equal to those of the interior wall of a guide element 31 of said projection apparatus, within which said base 25 and said device 20 for seeding a cloud cell, with which device a base of this kind cooperates, are received. In addition, according to the invention the base 25 can cooperate with a seal 29 which makes it possible to reduce, or even prevent, any possible leak of gas within the projection apparatus, and thus increase the effectiveness thereof. According to
[0057] In addition, according to
[0058] One of the aims of the invention is that of proposing a device for seeding a cloud cell according, the projection of which is advantageously rapid and controlled, so as to ultimately allow for a diffusion of a substance in accordance with a controlled trajectory, even in the presence of downdrafts or updrafts. In order to achieve this, a base of a device for seeding a cloud cell according to the invention may further comprise a mechanical fuse. Within the meaning of the invention, and throughout the document, fuse is intended to mean any part or any element that is arranged so as to break when a significant mechanical stress is transmitted. In accordance with a preferred but non-limiting manner embodiment described in connection with
[0059] Before the tank and the projection apparatus 30 are put into gas communication, said tank advantageously being designed to supply said projection apparatus with gas, the gas pressure inside the guide element is substantially equal on either side of the base. When the tank supplies the guide element with gas, as described in particular in connection with FIGS. 5A and 5B, the presence or quantity of gas molecules within the chamber 31c1 increases due to the presence of the base 25 obstructing the chamber 31c1 or sealing or hermetically sealing said chamber. Since the base 25 allows for creation of a sealed chamber 31c1 within the guide element, the quantity of gas molecules remains invariable in the second chamber 31c2 of the guide element, a second chamber of this kind comprising an opening through which the gas escapes as soon as the base no longer obstructs said opening upon the sudden break of the mechanical fuse, projecting a device for seeding a cloud cell according to the invention. Indeed, since the collisions of gas molecules within the chamber 31c1 are more and more considerable, and since the material forming the guide element is rigid, and since the mechanical fuse has the lowest elastic limit, said fuse is the first to break suddenly, due to the mechanical stress applied by the pressure, thus allowing for release of the gas molecules, and finally the projection of said device for seeding a cloud cell. Consequently, various criteria may make it possible to control a projection of this kind, and therefore the diffusion of the active substance, as well as the seeding of a cloud cell. Firstly, the material that primarily forms the mechanical fuse, more generally the base, has its own elastic limit. Therefore, depending on the material selected, in particular the composition thereof and the dimensions, for forming the mechanical fuse and more generally the projection base, in accordance with the desired application and/or the altitude of the cloud cell to be treated, it is possible to substantially control the trigger and the delivery of the active substance by substantially programming the pressure at which the mechanical fuse will give. The device for seeding a cloud cell will then be propelled, in accordance with a trajectory defined by the impulse thereof at the output of the guide element of the projection apparatus.
[0060] Furthermore, in a variant or in addition, according to the non-limiting embodiment described in connection with
[0061] In a variant, a mechanical fuse of this kind, as described above, can cooperate or be arranged not in the region of the distal portion of the base, but in the region of the distal portion of a fixing means 32 contained within the projection apparatus 30. In this case, said fuse, at least the portion that remains connected to the fixing means 32 after the projection of the device 20 for seeding a cloud cell, can be removed in order to cooperate with a new fuse for a subsequent projection of a device 20. A cooperation of this kind can be ensured by means of any suitable mechanical connection, as described above, i.e. achieved by a screw system or, in a variant, a pneumatic connection.
[0062] Using a mechanical fuse in particular allows for a sudden break, which is necessary for the projection of a device for seeding a cloud cell according to the invention. A slower loss of tightness would reduce the projection power. Today, no valve appears to be capable of resisting the pressure or ensuring such suddenness. The invention thus provides for the presence and use of a structural mechanical fuse. In a variant, if researchers were to develop a valve that makes it possible to ensure a sudden break, according to the invention a valve of this kind could be used instead and in place of the fuse described above.
[0063] As specified above, said active substance AS must preferably have a strong affinity with water. Depending on the application and the structure of the device 20 for seeding a cloud cell, said active substance AS can be in various forms, generally solid, such as, by way of non-limiting examples, crystals of various sizes, or powders. Using an active substance AS in the form of powders has been found to be of interest, since the delivery, dispersion and/or diffusion thereof can be more easily controlled and/or regulated than the use of an active substance in a liquid form. In addition, delivery of the active substance AS in the form of powders can be achieved in a sudden or progressive manner.
[0064] In general, said active substance AS can advantageously, but in a non-limiting manner, consist of ice nuclei, such as silver iodide or even copper iodide. Preferably, the active substance of a device 20 according to the invention may be formed primarily of silver iodide. The use of silver iodide is of particular interest, and is therefore preferred, because this is a particle that is particularly effective at 5 C., in small quantities. However, in many cases silver iodide has been found to be toxic and unecological. In a variant or in addition, the active substance of a device 20 according to the invention may be formed primarily of hygroscopic salts. Indeed, depending on the desired application, due to the high toxicity resulting from the silver iodide, the use of hygroscopic salts, for example in the form of sodium, calcium or magnesium salts, alginates, or even cooling materials such as dry ice, or liquid propane or nitrogen, is preferred.
[0065] Furthermore, whatever the configuration of the device 20 for seeding a cloud cell according to the invention, in a variant or in addition the active substance AS of a device 20 according to the invention can be associated with propagation marker particles M that can be detected by any suitable analysis means. Thus, as described in connection with
[0066] According to a particularly expedient embodiment, marker particles M of this kind may comprise particles, aluminum flakes or filaments, plastics materials, or micro glasses that are highly reflective using radar, which are commonly used within countermeasure systems of the CHAFF type.
[0067] As already mentioned, the trigger means of a device 20 for seeding a cloud cell according to the invention allow a user thereof to actuate the detonator of a device for seeding a cloud cell according to the invention at the appropriate time, and thereby ensure delivery or diffusion of the active substance AS at a predetermined location and in accordance with a predetermined trajectory, between a minimum altitude and a maximum altitude, corresponding to the aspiration zone of the cloud cell, and ultimately to ensure more effective seeding, by guaranteeing more precise, or even optimum, targeting of the cloud cell to be seeded. Three non-limiting examples of trigger means of a device 20 for seeding a cloud cell according to the invention will be described later in the document.
[0068] According to a first embodiment (not shown in the drawings), the detonator of the torch 21 of a device 20 for seeding a cloud cell according to the invention can be mechanically controlled, i.e. actuatable or actuated by means of a mechanical element or part. According to this first embodiment, the trigger means are thus arranged so as to produce one or more mechanical commands, for example a force that then brings about a movement and mechanical contact. By way of example, trigger means of this kind may comprise a percussion system, such as a firing pin, i.e. a metal part, optionally ending in a spike, which, under the action of a previously tensioned spring, strikes the detonator, a detonator of this kind generally consisting in a primer intended for igniting the pyrotechnic mixture responsible for combustion of the torch 21, thus triggering the diffusion of the active substance AS.
[0069] In a variant, according to a second embodiment (not shown in the drawings), the detonator of the torch of a device for seeding a cloud cell according to the invention can be pyrotechnically controlled, i.e. actuatable or actuated by means of a pyrotechnic element or part. By way of non-limiting examples, a detonator of this kind may comprise a tube, generally made of aluminum or copper, containing in particular primary and secondary explosive mixtures, as well as a seal foil. The trigger means comprise an igniter in the form of a delay detonator, also referred to as a slow fuse. Once the delay detonator has been activated, the flame conveyed thereby directly initiates the primary explosive mixture.
[0070] In a variant, according to a third embodiment that is generally preferred and is described in connection with
[0071] According to a first non-limiting example, a trigger event of this kind may consist in a comparison demonstrating a measure of a physical magnitude that is substantially equal to a specified threshold. In order to achieve this, the trigger means 24, in the form of the electronic object, may comprise one of more measuring sensors 244 that cooperate with said processing unit 241 and that provide said processing unit with a measure of a physical magnitude GP1 that represents the altitude or the trajectory of the torch 21 of a device 20 for seeding a cloud cell according to the invention. In a variant or in addition, a sensor 244 of this kind can measure the speed or even the acceleration of a torch 21 of this kind. By way of non-limiting examples, a sensor 244 of this kind may consist in one or more altimeters, accelerometers and/or gyroscopes. Said sensor 244 advantageously cooperates with said processing unit 241 by means of internal communication buses, which are indicated in
[0072] In a variant or in addition, according to a second non-limiting example, a trigger event of this kind may consist in a comparison demonstrating a value of a meter that is equal to a specified threshold. The processing unit 241 is arranged so as to cause a meter to move in accordance with a given periodicity, and to compare the value of said meter with the specified threshold value. The parameterization of the value of said threshold and/or that of the update periodicity of said meter makes it possible to program the actuation altitude of the detonator.
[0073] In a variant or in addition, in order to prevent any unexpected trigger of the pyrotechnic torch of a device for seeding a cloud cell prior to the projection of said device, according to the invention the trigger event may be generated by or may result from the cooperation between a conductive element outside a device 20 of this kind, with a second conductive element that is positioned in the region of the end of the guide element of a projection apparatus 30 by means of which said device 20 will advantageously be propelled. A trigger event of this kind may thus consist in an electrical signal, for example short-circuiting when the device 20 passes into the projection phase. The processing unit 241 of the trigger means 24 is arranged so as to interpret said electrical signal and generate an actuation command, in the form of one or more electrical signals, which command is intended for the detonator and requires triggering of the delivery of the active substance AS. As described above, in order to achieve this the detonator is electrically controlled and capable of interpreting an actuation command generated by the trigger means 24. By way of non-limiting example, a conductive element of this kind may consist in a conductive ring that is associated with a first element in the form of one or more terminals, or vice versa. In a variant or in addition, according to the invention the trigger event may be produced at the output of the projection apparatus 30, by using a first element and a second element that are arranged at the output of the guide element of the projection apparatus 30 and in the region of the device 20, respectively, in order to form a magnetic contactor that can be interpreted by the processing unit 241.
[0074] Furthermore, in order that the electronic object can function in a completely autonomous manner, said object can advantageously comprise an electrical energy source 245, in the form of one or more batteries for example, or even in the form of solar cells that are positioned on the device 20, in the form of a wind energy source, or even in the form of one or more capacitors that have been previously charged and are capable of delivering sufficient electrical energy for allowing the functioning of the electronic object. The ability of an electronic object to function is directly linked to the remaining and available energy capacity of said electronic object.
[0075] Furthermore, in a variant or in addition, in order to allow for improved traceability of the seeding of a cloud cell of this kind, a device 20 for seeding a cloud cell of this kind according to the invention may furthermore comprise tracking means (not shown in the drawings) for tracking the trajectory and/or position of said device, said tracking means cooperating with the pyrotechnic torch of said device 20. In order to achieve this, said tracking means, advantageously consisting of a second electronic object, comprise, in a non-limiting manner: [0076] a processing unit; [0077] a sensor for measuring and collecting a physical magnitude relating to the trajectory and/or the position of the device that cooperates with said processing unit; [0078] a data memory that cooperates with said processing unit and into which said processing unit enters the magnitude measured and collected in accordance with a specified periodicity.
[0079] The processing units of the trigger means and the tracking means, respectively, advantageously consist of the same physical entity 241. However, the respective processing units of the trigger means may optionally be separate. Furthermore, in the manner of the processing units, said trigger means and said tracking means may optionally be separate.
[0080] As described above, tracking and/or trigger mean of this kind comprise a processing unit 241 in the form, for example, of a microcontroller or microprocessor. Said electronic object also comprises a data memory 242, possibly a program memory 246, said memories optionally being separate. The processing unit 241 cooperates with said memories 242 and 246 by means of internal communication buses, which are indicated in
[0081] As already mentioned, the electronic object also comprises one or more measuring sensors 244 that cooperate with said processing unit 241, the sensor or sensor being arranged so as to measure and collect a physical magnitude GP1 relating to the trajectory and/or the position of the device 20 at a specified time or according to a specified periodicity. A sensor 244 of this kind can measure and gather the acceleration, the position, the trajectory, the altitude, or even the angular speed of a device 20 according to the invention, during the movement thereof in the atmosphere. In order to achieve this, the sensor or sensors 244 may consist of an altimeter, an accelerometer and/or a gyroscope which advantageously cooperate with the pyrotechnic torch in accordance with a mechanical connection. In a variant or in addition to the altimeter, the accelerometer and/or the gyroscope, the sensor or sensors 244 may comprise an inertial unit, generally comprising three gyrometers and three accelerometers, or even a geolocation system of the GPS type (global positioning system), said unit and/or said system advantageously cooperating with the torch 21 of a device 20 for seeding a cloud cell according to the invention.
[0082] Whatever the type of physical magnitude GP1 measured and gathered, a digital representation thereof is ultimately entered, by the processing unit 241, in the data memory 242 in accordance with a predetermined periodicity. A periodicity of this kind can be defined in advance, prior to launching the device 20, either automatically or manually. By way of non-limiting examples, a periodicity of this kind may be of the order of one or more tens of seconds.
[0083] Optionally, the sensor or sensors 244 of the tracking and/or trigger means of a device 20 according to the invention may also be capable of detecting propagation marker particles M in accordance with a suitable analysis means. By way of non-limiting examples, sensors 244 of this kind may optionally be based on detections by means of microwaves, conductivity sensors, vibrating reeds, or even optical and chemical detections. Furthermore, as specified above, marker particles M of this kind can advantageously be traced by any suitable analysis means such as, by way of non-limiting examples, an ultraviolet spectrophotometer or an infrared spectrometer, by absorption or by fluorescence. In a variant or in addition, a device for seeding a cloud cell according to the invention may comprise or cooperate with one or more radar reflectors in order to track the trajectory of said device 20.
[0084] In the manner as described above, for the purpose of efficiency, the tracking of the position and/or of the trajectory of a device 20 according to the invention can advantageously be ensured by means of recordings, entered by the processing unit 241 in the data memory 242, of digital representations of the physical magnitude GP1 relative to the trajectory and/or the position of said device 20, measured and gathered in accordance with a specified periodicity. Once the seeding has ended, said measurements are gathered and transferred.
[0085] In a variant, it may be possible for the device 20 to be able to communicate and/or transfer a representation of the physical magnitude(s) GP1 measured and gathered in real time. In order to achieve this, the electronic object forming the trigger means and/or the tracking means may comprise communication means 243 that cooperate with the processing unit 241, also by means of internal communication buses. Said communication means 243 can thus ensure communication N, optionally wired or wireless, with any remote electronic entity 50 within communication range. Communication means 243 of this kind can also be of the long-distance type, and make it possible for a device 20 of this kind to be able to transmit, to said remote entity 50, all or some of the content of the data memory 242 via messages distributed by a network making use, for example of GPRS, Sigfox or satellite technologies, in the event of said communication taking place wirelessly.
[0086] According to another object, the invention relates to a pneumatic projection apparatus 30 that is designed for projecting a device 20 for seeding a cloud cell according to the invention.
[0087] As specified above, a projection apparatus 30 of this kind, just like any other pneumatic system, operates by means of a pressure difference, also referred to as a gradient, between two separate zones or chambers, a pressure difference of this kind then creating a compression force, said force itself bringing about a movement or a mechanical stress, allowing for breakage of a mechanical fuse, contained for example by a base according to the invention, and finally the projection of said device 20 according to the invention.
[0088] In order to achieve this, according to
[0089] As mentioned above, one of the aims of the invention is that of guaranteeing the rapid and controlled projection of a device 20 for seeding a cloud cell, so as to ultimately allow for a diffusion of an active substance AS in accordance with a controlled trajectory, even in the presence of downdrafts or updrafts. In order to achieve this, a projection apparatus 30 advantageously comprises one or more fixing means 32 for fixing a device for seeding a cloud cell according to the invention within said projection apparatus. According to a first non-limiting embodiment, described in connection with
[0090] Furthermore, as specified above, a fixing means 32 of this kind is advantageously arranged so as to cooperate with the distal portion 28 of a base 25 according to the invention, in order to ultimately ensure retention of a device 20 for seeding a cloud cell according to the invention, and the controlled projection of said device. According to
[0091] As already mentioned, in accordance with the non-limiting embodiments described in connection with
[0092] As mentioned above, the invention also relates to a system 100 for seeding a cloud cell according to the invention comprises, two non-limiting embodiments of which device are described in connection with
[0093] Furthermore, in a variant or in addition, the electronic entity 50 of a system 100 for seeding a cloud cell according to the invention can be arranged so as to read the content of the data memory 242 of said device 20. In order to achieve this, the data memory 242 of a device 20 according to the invention can correspond physically to one or more removable memory cards, for example of the SD (Secure Digital) type. According to this arrangement, the electronic entity 50 is thus arranged so as to read and access the content of said memory card. An arrangement of this kind can result from loading a suitable computer program product P into a program memory 246 of said electronic entity 50.
[0094] In the same manner, the processing unit 241 of the trigger means and/or the tracking means of a device 20 according to the invention can be arranged so as to produce one or more actuation and/or propulsion commands from the loading, into the data memory 242 or into the program memory 246, which may be separate from the data memory, of a computer program product P comprising one or more program instructions which, when executed or interpreted by said processing unit, cause suitable processes to be implemented.
[0095] Furthermore, preferably but in a non-limiting manner, a system 100 for seeding a cloud cell according to the invention can advantageously comprise: [0096] a projection apparatus 30, the guide element of which is of a length of approximately one meter and eighty centimeters; [0097] a device 20 for seeding a cloud cell, the torch 21 of which has a diameter of approximately fifty-five millimeters and a mass of approximately three hundred grams; [0098] a projection pressure of approximately thirty bar that is maintained in the first chamber 31c1 of the guide element 31 of said projection apparatus 30 for approximately thirteen milliseconds.
[0099] The invention has been described in the case of the use thereof in connection with applications for seeding cloud cells, in particular in order to prevent hail. Said invention can also be implemented in order to act on any type of meteorological phenomena such as, by way of non-limiting examples, prevention of fog, increase of precipitation in the form of rain, reduction of tropical cyclones, lightning conservation, or even combatting frost. In a variant, the invention can also be used for increasing snowfall, for example in ski resorts, or for storing water in winter in the form of snow.
[0100] It is also conceivable that the device 20 according to the invention could guarantee other functions and/or applications than those described and/or mentioned above, such as, by way of non-limiting examples, decontamination or treatment of water present within the cloud cells, or even reducing the acidity thereof. The invention is not intended to be limited to the application within which the device 20 according to the invention is used.
[0101] The device 20 according to the invention may also comprise a plurality of active substances AS for acting in different zones of the cloud cell, in accordance with one or more predetermined altitudes, by using one or more suitable active substances. Diffusion of this kind, at various stages, in particular makes it possible to limit the trigger of the diffusion of one or more active substances in zones of less significance.