专利摘要:
The invention relates to a system for cooling (1) an air flow, in particular for a motor vehicle, comprising: - at least one nebulizing unit (3) of a nebulizing liquid in the air flow; at least one reservoir (13) of said liquid, and - at least two circulation channels (9, 11) of said liquid, the nebulizing unit (3), said reservoir (13) and said circulation channels (9, 11) defining a circuit of said liquid. Said system (1) further comprises: - at least one pumping device (17): • for sucking said liquid in a first direction from said reservoir (13) to the nebulizing unit (3), to prime said circuit, and • for sucking said liquid in a second direction (Sb) from the nebulizing unit (3) to said tank (13) or out of said circuit, so as to purge said circuit. The invention also relates to a method of refreshing implemented by such a system (1).
公开号:FR3034176A1
申请号:FR1552367
申请日:2015-03-23
公开日:2016-09-30
发明作者:Vincent Feuillard
申请人:Valeo Systemes Thermiques SAS;
IPC主号:
专利说明:

[0001] BACKGROUND OF THE INVENTION The present invention relates to a cooling system for an air flow, in particular for a motor vehicle. The invention also relates to a method of refreshing an air flow implemented by such a cooling system. In order to ensure the thermal comfort of the passengers of a vehicle for example, the motor vehicles most often incorporate a ventilation and / or air conditioning system making it possible to establish a temperature in the passenger compartment that is lower than the external temperature. To improve cooling, it is known to nebulise a liquid such as water in the air flow ducts. Thus, nebulized water droplets are diffused with the flow of air to the passenger compartment, so that they evaporate causing a lowering of temperature. This is transparent to the vehicle passenger (s), for example, who feel only the sensation of freshness without perceiving an increase in humidity. However, the use of the nebulization of a liquid in a flow of air in a passenger compartment poses some problems, in particular the risk of freezing of the nebulizing unit and in particular in the case of a piezoelectric head perforated membrane 20 very thin, in particular of the order of 401.1m, the risk of rupture of the perforated membrane, in case of stagnation of the nebulizing liquid at the nebulization unit, when the motor vehicle is stored in a cold environment, for example negative temperature. In addition, the liquid stagnant in the circuit entails a risk of development of bio-films and / or bacteria and / or algae in the circuit, in particular at the level of the nebulization unit and the liquid circulation channels. . In addition to the smelly odors it may cause, which can cause discomfort for the occupants for example of the passenger compartment of the vehicle, there is a risk of ingestion of bacteria (legionella or other) and mold by the user to cause droplets that can penetrate the bronchi of the user. A sanitation of the air flow can be implemented but it requires the use of detergent products. The object of the invention is to at least partially overcome the problems of the prior art by reducing the risks of proliferation of bacteria and of nebulizing liquid gel in the nebulizing liquid circuit. To this end, the subject of the invention is a system for cooling an air flow, in particular for a motor vehicle, comprising: at least one nebulization unit of a nebulizing liquid in the air stream, at least one a reservoir of the nebulizing liquid, and at least two nebulization liquid circulation channels between the nebulization unit and the nebulization liquid reservoir, the nebulization unit, the nebulization liquid reservoir and the liquid circulation channels nebulizing device defining a nebulization liquid circuit, characterized in that said system further comprises: at least one pumping device: for sucking the nebulizing liquid in a first direction from said reservoir towards the nebulization unit, for priming said circuit filling it with nebulizing liquid, and - for sucking the nebulizing liquid in a second direction from the nebulization unit to led tank or out of the nebulizing liquid circuit, so as to purge the nebulizing liquid circuit. Thus, by draining the circuit after each use and returning the nebulizing liquid in the circuit before each use of the cooling system, the nebulizing liquid no longer stagnates in the circulation channels or at the level of the nebulization unit. The risk of frost or rupture is eliminated in case of storage for example of a motor vehicle comprising this system in a cold environment. There is also the risk of proliferation of bacteria and / or bio-films and / or algae that could contaminate a user with the diffusion of the droplets.
[0002] Said airflow cooling system may further comprise one or more of the following characteristics, taken separately or in combination: The pumping device is configured to suck the nebulizing liquid during a liquid nebulizing priming period. during a predefined priming period, and / or for discharging nebulizing liquid during a predefined purge time, for example less than five seconds. The priming time is predefined sufficiently long for the circuit to be filled with the liquid. nebulization but short enough that the user does not have the impression that there is a malfunction of the system. Said cooling system comprises at least one means for detecting the level of the nebulizing liquid in the vicinity of the nebulization unit, able to allow or inhibit the triggering of the nebulization unit according to the level of the nebulizing liquid. Thus, in the event of absence of water for example or of a level insufficient for the proper functioning of the nebulizing unit, in particular comprising a piezoelectric element, the nebulizing unit is not started. .
[0003] The pumping device comprises at least one reversible pump adapted to suck the nebulizing liquid in the first direction from the nebulization liquid reservoir to the nebulization unit, and in the second direction from the nebulization unit to said reservoir. or out of the nebulizing liquid circuit. Such a reversible pump has the advantage of being easy to implement because it does not need to be arranged below the level of the nebulizing liquid and allows to expel the air present in said circuit. - The reversible pump is a volumetric transfer pump with rotary drive, such as a positive displacement pump, a peristaltic pump or a vane pump. The pumping device comprises at least one irreversible pump, having the advantage of being inexpensive, such as a centrifugal pump, and said cooling system further comprises at least one fluid distributor: - arranged upstream of the irreversible pump in the direction of flow of the nebulizing liquid through the irreversible pump, - having a first supply path of the nebulizing liquid circuit 30 and a second purge path of the nebulizing liquid circuit, and 3034176 -4- such that the nebulizing liquid flows through the first path when the irreversible pump is controlled so as to fill said nebulization liquid circuit, and that the nebulization liquid circulates through the second path when the irreversible pump is controlled in such a way as to to purge the circuit 5 of nebulizing liquid. Such a fluid distributor ensures with the same irreversible pump, the purge function after each use and the boot function of said circuit before each use. The pumping device comprises at least a first pump capable of sucking the nebulizing liquid in the first direction, and at least one second pump capable of sucking up the liquid in the second direction, the second pump being connected in series with the first pump. or bypassing the first pump. Said cooling system comprises: a first channel for circulating the nebulizing liquid with an end immersed in the nebulizing liquid in said reservoir, and a second channel for circulating the nebulizing liquid with an end placed above the level of the liquid nebulization in said tank. This arrangement is advantageous for pumping and return of the liquid in the tank during priming, but also for the intake of air via the second channel during the purge of said circuit.
[0004] Said cooling system comprises at least one valve arranged so as to direct the purged nebulization liquid to said tank or out of said circuit. This makes it possible to have the choice between the recovery of the nebulizing liquid or the evacuation of the nebulizing liquid outside the motor vehicle for example, further reducing the health risk. The nebulizing unit comprises at least one piezoelectric type element, such as a perforated membrane piezoelectric type nebulization head. The invention also relates to a method of cooling an air flow, in particular to the passenger compartment of a motor vehicle, implemented by a cooling system of an air flow as described above, comprising A preliminary step, called priming step, during which the pumping device sucks the nebulizing liquid in a first direction from the nebulizing liquid reservoir to the nebulization unit, so as to fill said circuit nebulizing liquid, a step of triggering the nebulization by the nebulizing unit when the preliminary so-called priming step is performed, and a purging step after each use of the nebulizing unit, during which the device of pumping sucks the nebulizing liquid in a second direction from the nebulizing unit to said reservoir or out of the nebulizing liquid circuit. With such a method, after each use of the cooling system, in particular of the nebulizer unit, the cooling system is drained so as to prevent the nebulization liquid from stagnating in the nebulization unit and in the cooling channels. circulation of the liquid, preventing the appearance of bacteria and / or bio-films in said circuit. At each start of the cooling system, it is therefore necessary to prime the circuit by sucking the nebulizing liquid so as to expel the air and fill it with nebulizing liquid. In a particular example of a nebulization unit with an electric piezoelectric head, this also makes it possible to guarantee the expulsion of air bubbles that would have jammed behind the piezoelectric nebulization head. Said method for cooling the air flow may further comprise one or more of the following characteristics, taken separately or in combination: The pumping device performs the preliminary step for a predefined duration, the so-called priming time, for example less than or equal to five seconds. - The pumping device performs the purge step for a predefined period, called purge time, for example less than or equal to five seconds. The flow rate of the pumping device is accelerated during the so-called preliminary priming step and / or during the purge step, for example of the order of five to ten times more than the flow rate during nebulization. The method for refreshing the air flow may further comprise the following steps: a step of detecting a nebulization stop command, a step of stopping the nebulization unit, a step reversing the direction of flow of the nebulizing liquid in said circuit, so that the nebulizing liquid flows from the nebulizing unit to the nebulizing liquid reservoir or out of the nebulizing liquid circuit, a purging step of the nebulizing liquid circuit, and a step of stopping the pumping device when the purging step is complete. The step of reversing the flow direction of the nebulizing liquid in said circuit can be carried out according to one of the following steps: inversion of the direction of rotation of a reversible pump of the pumping device, inversion of the path of the liquid of nebulization in a fluid distributor upstream of an irreversible pump of the pumping device in the direction of circulation of the nebulizing liquid through the irreversible pump, stopping a first pump of the pumping device, able to suck in a first direction from said tank to the nebulizing unit and starting a second pump of the pumping device, adapted to suck in a second direction from the nebulizing unit to said tank or out of the nebulizing liquid circuit.
[0005] Other features and advantages of the invention will emerge more clearly on reading the following description, given by way of illustrative and nonlimiting example, and the appended drawings in which: FIG. Refreshment system of an air flow according to a first embodiment in a step of priming the nebulizing liquid circuit before nebulization, Figure lb shows schematically and simplified the cooling system of a air flow according to the first embodiment in a step of purging the nebulization nebulization liquid circuit, FIG. 2a schematically shows a variant of the airflow cooling system of the FIG. 1a including a valve making it possible to direct the nebulizing liquid at the outlet of a nebulization liquid reservoir 5 towards a pump during the step d 2b schematically shows a variant of the airflow cooling system of Figure lb comprising a valve for directing the nebulizing liquid at the outlet of the pump during the purge step, the FIG. 3a schematically and schematically shows a cooling system of an air flow according to a second embodiment during a priming step of the nebulization liquid circuit before nebulization, FIG. 3b is a diagrammatic representation of The airflow cooling system according to the second embodiment is simplified in a purge step of the fogging liquid circuit after nebulization. FIG. 4a schematically and schematically illustrates a cooling system for the cooling system. an air flow according to a third embodiment during a priming step of the nebulization liquid circuit before nebulization, FIG. In a schematic and simplified manner, the cooling system of an air flow according to the third embodiment is described in a step of purging the nebulization liquid circuit after nebulization. FIG. 5a schematically and simpli Refreshment system of an air flow according to a fourth embodiment in a step of priming the nebulization liquid circuit before nebulization, Figure 51) schematically and simplified the cooling system of a flow of air according to the fourth embodiment during a purge step of the nebulization liquid circuit after nebulization, FIG. 6 is a simplified illustration of the steps of a method of refreshing a put air flow implemented by a cooling system of the air flow according to the invention.
[0006] In these figures, the substantially identical elements bear the same references. The following embodiments are examples. Although the description refers to one or more embodiments, this does not necessarily mean that each reference relates to the same embodiment, or that the features apply only to a single embodiment. Simple features of different embodiments can also be combined to provide other embodiments. Refreshment system of an air flow Referring to Figure la, the invention relates to a cooling system 10 1 of an air flow F, especially for a motor vehicle. The cooling system 1 of an air flow F is for example connected to a ventilation network of a ventilation system and / or air conditioning existing in particular in the motor vehicle. Alternatively, the cooling system 1 of an air flow F may include its own fan for moving a flow of air to be treated, for example to the passenger compartment of a motor vehicle. The cooling system 1 of an air flow further comprises a vent (not visible in the figures) for delivering the air flow F for example in the passenger compartment of the vehicle.
[0007] The cooling system 1 of the air flow also comprises a nebulizing unit 3 of a liquid. The nebulizing unit 3 comprises, for example, a nebulizing head 5. The nebulizing head 5 is advantageously arranged at the level of the air outlet of the air outlet, so as to deliver droplets of nebulized liquid into the nebulizer head 5. airflowF downstream of the air outlet according to the flow direction of the airflowF. The nebulizing unit 3 may comprise at least one element of piezoelectric type to ensure nebulization of the liquid. The nebulizing head 5 is for example piezoelectric type membrane perforated, or micro-perforated. The membrane has a thickness for example of the order of 401.1m. The nebulizing head 5 comprises in this case a piezoelectric transducer able to vibrate the perforated diaphragm supplied with nebulizing liquid, so as to generate droplets in the form of mist or fog 7 having a size of microdroplets lying between 3 and 15um. For this purpose, the nebulizing unit 3 is connected to at least two nebulization liquid circulation channels 9, 11, enabling the perforated membrane to be supplied with nebulizing liquid. The nebulizing liquid is advantageously water. The circulation channels of the nebulizing liquid 9, 11 are for example made in the form of flexible pipes. The pipes 9, 11 are connected to at least one reservoir 13 of the nebulizing liquid. The pipes 9, 11 thus allow the circulation of the nebulizing liquid between the nebulizing unit 3 and the reservoir 13 of the nebulizing liquid. The nebulizing unit 3, the reservoir 13 of the nebulizing liquid and the nebulization liquid circulation channels, here in the form of pipes 9, 11, define a nebulization liquid circuit. The circuit is advantageously dimensioned as linearly as possible so as to avoid, in particular, that air bubbles generated during the nebulization do not become jammed for example behind the piezoelectric head 5. According to the illustrated embodiment, a first pipe 9 has an end 91 immersed in the nebulizing liquid in the tank 13. This is the end 91 opposite the end 92 connected to the nebulization unit 3. The submerged end 91 20 is for example connected a filtration means such as a strainer 15 arranged in the bottom of the tank 13 of nebulizing liquid. The end 111 of the second pipe 11, opposite the end 112 connected to the nebulizing unit 3, can be placed above the level of the nebulizing liquid in the reservoir 13, for example on a closure cap 16 of the fluid tank 25 of nebulization. The second pipe 11 is not immersed, which allows a return of the nebulizing liquid in the tank 13 during a priming step to fill the nebulization liquid circuit before nebulization (Figure la) as explained subsequently, and also allows an air intake during a purge step of the nebulization liquid circuit after nebulization (Figure lb) as explained below.
[0008] In order to secure the concept of nebulization, especially in a motor vehicle, and to limit the risk of frost and the health risk of proliferation of bacteria and / or algae, the reservoir 13 of the nebulizing liquid is preferably arranged with accessible to a user for regularly changing the nebulizing liquid. For example, it may be a water bottle, or a cartridge for the nebulization liquid specific to the cooling system 1.
[0009] It can also be provided that the reservoir 13 of nebulizing liquid has a low storage volume, for example of the order of a quarter of a liter. This capacity is especially sufficient for one hour of autonomy. With a view to quality, it is thus avoided to keep the nebulizing liquid in the motor vehicle for too long, for example, and therefore the proliferation of bacteria and / or algae which may contaminate the users during the start-up of the system. Refreshment 1 of the air flow F. Furthermore, a means for purifying the nebulizing liquid in the reservoir 13 may be provided, for example by thermal flash or by UV LEDs.
[0010] The cooling system 1 of the air stream further comprises at least one pumping device 17; 117; 217a, 217b; 317a, 317b (Figures la to 5b), adapted to suck the nebulizing liquid. In particular, the pumping device comprises a pump 17, 117 or several pumps 217a, 217b, 317a, 317b, adapted: 20 to suck the nebulizing liquid in a first direction Sa from the tank 13 to the nebulizing unit 3, for priming said circuit by filling it with nebulizing liquid, and sucking the nebulizing liquid in a second direction Sb from the nebulizing unit 3 to the reservoir 13 or out of the nebulizing liquid circuit, so as to purge the nebulizing liquid circuit. One or more control means can be provided for this purpose, which can not be seen in the figures, suitable for controlling the pumping device 17, 117, 217a, 217b, 317a, 317b. This is for example a control electronics.
[0011] First Embodiment of the Pumping Device According to a first embodiment, and illustrated in FIGS. 1a and 1b, the pumping device comprises at least one reversible pump 17. These include, in particular, a volumetric transfer pump 3034176 with rotary drive such as a volumetric, peristaltic or paddle pump. The reversible pump 17 makes it possible to suck the nebulizing liquid in two directions, as well in a first direction Sa from the reservoir 13 of the nebulizing liquid towards the nebulization unit 3 (FIG. 1a), as in a second direction Sb. from the nebulizing unit 3 to the reservoir 13 of nebulizing liquid (Figure 1b). As a variant, the reversible pump 17 makes it possible to suck the nebulizing liquid in a second direction Sb from the nebulization unit 3 to a valve 19 (FIGS. 2a, 2b) making it possible to direct the nebulizing liquid at the outlet of the pump. reversible 17 out of the nebulizing liquid circuit according to the arrows Sb 'in Figure 2b. The valve 19 is arranged between the reservoir 13 and the nebulizer unit 3. The valve 19 thus makes it possible to direct the nebulizing liquid at the outlet of the reservoir 13 towards the reversible pump 17 and the nebulizing unit 3 (FIG. 2a) in particular for priming the nebulizing liquid circuit. The valve 19 furthermore makes it possible, in particular during the purging of the nebulizing liquid circuit, to direct the nebulizing liquid towards the reservoir 13 or out of the reservoir 13, as illustrated in FIG. 2b, via a circulation channel 20. conveying the nebulization liquid after purging elsewhere than in the circuit, in particular for discharging the nebulizing liquid after purging to the outside of the motor vehicle in the case of automotive application. Such a reversible pump 17 does not need to be arranged under the level of the nebulizing liquid and can operate in the open air. Thus when a start of the cooling system 1 of the air flow F 25 is required, for example when a user presses an associated control button, the reversible pump 17 is started and can suck the air and the nebulizing liquid until there is no air in the nebulizing liquid circuit. During priming, the sucked-up liquid circulating in the circuit can return to the tank 13 via the second circulation channel 11.
[0012] The circuit is thus purged of its air to be filled with nebulizing liquid. The reversible pump 17 allows the nebulizing liquid to reach the nebulization unit 3. Once the circuit is purged of its air and filled with nebulizing liquid, the nebulization can be switched on. In other words, the nebulizer unit 3 can begin nebulization.
[0013] According to an exemplary embodiment, the reversible pump 17 sucks the nebulizing liquid in the first direction Sa for a predefined priming time (see FIGS. 1a and 6), for example less than five seconds, advantageously between two and three seconds. . At the end of this preset priming time ta, the nebulizer unit 3 can be started to start the nebulization.
[0014] As an alternative or in addition, at least one means for detecting the presence of liquid and / or the level of the nebulizing liquid in the vicinity of the nebulization unit 3, capable of allowing or inhibiting the start-up of the nebulizer, may be provided. nebulizing unit 3. In the case of a nebulizing unit such as an acoustic fountain, it is for example a liquid presence sensor and / or the level of the nebulizing liquid in a container comprising also a piezoelectric oscillator that must be immersed for proper operation. In the case of a nebulizing unit 3 comprising a perforated membrane piezoelectric fogging head 5, it is possible to provide a sensor (not shown) 20 arranged in the piezoelectric head 5 capable of detecting the presence of nebulizing liquid. at the level of the membrane, and able to allow the start of the piezoelectric head 5 when the presence of liquid is detected, or to inhibit the start-up of the piezoelectric head 5 in the absence of liquid nebulization at the membrane of the piezoelectric head 5.
[0015] By way of non-limiting example, a detection system may be a float system, a magnetic contactor system, or a resistive or capacitive sensor. On the other hand, when the shutdown of the cooling system 1 of the air flow F is requested, for example when a user presses an associated control button, the reversible pump 17 is reversed, in particular its direction of rotation is reversed, to suck the nebulizing liquid in the pipes 9, 11 and at the level of the nebulizing unit 3 until there is no more nebulizing liquid. The purged nebulization liquid is returned to the tank 13 (Figure lb) or out of the nebulizing liquid circuit (Figure 2b), for example outside the vehicle. Due to this purging of the nebulization liquid circuit after each use, the fogging liquid circuit is necessary to be primed before each use of the nebulization unit 3. According to an example embodiment, the reversible pump 17 sucks the Nebulizing liquid in the second direction Sb during a predefined purge time tp (see Figures lb, 2b and 6), for example less than five seconds.
[0016] Alternatively or in addition, the cooling system 1 may comprise at least one detection means such as a sensor (not shown in the figures), more specifically such as a resistive sensor, arranged above the liquid level. in the reservoir 13, for example in the closure cap 16 of the reservoir 13 or between the stopper 16 and the level of liquid in the reservoir 13, 15 configured to detect the presence of liquid and capable of transmitting an end-of-flow signal. purge, for example to a control means of the pumping device, in the absence of water for example. Second embodiment of the pumping device 20 A second embodiment, illustrated in FIGS. 3a and 3b, differs from the first embodiment in that the pumping device comprises at least one irreversible pump 117 and no longer a reversible pump 17 This is for example a centrifugal pump. The representation of Figures 3a and 3b is very simplified. In practice, such an irreversible pump 117 should be arranged below the level of the nebulizing liquid and without bend of the circulation channels 9, 11 between the reservoir 13 and the irreversible pump 117, for example the irreversible pump 117 can be fitted At the bottom of the tank 13. According to this second embodiment, the cooling system 1 of the air flow F further comprises at least one fluid distributor 121 arranged upstream of the irreversible pump 117 in the direction of circulation of the liquid. of nebulization through the irreversible pump. The fluid distributor 121 is provided so as to be able to modify the flow direction of the nebulizing liquid inside the circuit. For this, the fluid distributor 121 has a first supply path of the nebulizing liquid circuit and a second purge path of the nebulizing liquid circuit 5, such that the nebulizing liquid flows through the first path during the first nebulization liquid flow. priming so as to fill the nebulizing liquid circuit, and such that the nebulizing liquid flows through the second path during purging of the nebulizing liquid circuit. More specifically, the fluid distributor 121 comprises at least two first 10 ducts 123, 125 for circulating the nebulizing liquid defining the first supply path, and at least two second nebulization liquid circulation ducts 127, 129 defining the second purge path. Each conduit 123, 125, 127, 129 respectively has a liquid inlet 123E, 125E, 127E, 129E, and a liquid outlet 123s, 125s, 127s, 129s, and is in fluid communication with a liquid circulation channel. nebulization 9 or 11 of the nebulizing liquid circuit. Thus, whether during priming or during purging, the irreversible pump 117 draws the nebulizing liquid in the same direction. In contrast, fluid dispenser 121 is configured to select the first path during priming and select the second path upon purging. In other words, for priming, the nebulizing liquid does not flow through the inputs and outputs 127E, 127s, and 129E, 129s of the second conduits 127, 129 but through the inputs and outputs 123E, 123s, and 125E, 125s first conduits 123, 125, according to the first path (Figure 3a). In contrast, for purging, the nebulizing liquid does not flow through the inlets and outlets 123E, 125E, and 123s, 125s of the first conduits 123, 125 but through the inlets and outlets 127E, 127s, and 129E, 129s. second conduits 127, 129, according to the second path (Figure 3b). As previously, during purging the nebulizing liquid at the outlet of the irreversible pump 117 and the second path of the distributor 121 can return to the reservoir 13 or alternatively be directed out of the circuit, for example by means of a valve arranged between the Fluid dispenser 121 and reservoir 13. Only the differences from the first embodiment have been described above. The other features of the refresh system 1 remain identical to the first embodiment.
[0017] Third Embodiment of the Pumping Device A third embodiment (FIGS. 4a, 4b) differs from the first or second embodiment in that the pumping device comprises at least a first pump 217a capable of sucking up the liquid. nebulizing in a first direction Sa, and at least a second pump 217b adapted to suck the liquid in a second direction Sb, the second pump being connected in series with the first pump 217a. The two pumps 217a and 217b are for example irreversible pumps. The arrangement and operation of the cooling system 1 is similar to the first embodiment, with the difference that during priming the first pump 217a is activated and the second pump 217b is inactive but traversed by the nebulizing liquid, and conversely, during purging, the second pump 217b is activated and the first pump 217a is inactive but traversed by the nebulizing liquid. As before, the nebulization liquid purged at the outlet of the second purge 217b can return to the reservoir 13 or alternatively be discharged from the circuit, for example towards the outside of the motor vehicle. Fourth Embodiment of the Pumping Device With reference to Figs. 5a and 51), a fourth embodiment differs from the third embodiment only in that the second pump 317b is arranged in shunt of the first pump 317a. The operation is similar to the third embodiment. According to this fourth embodiment, during the purge, the nebulizing liquid from the nebulizing unit 3 then circulates in a circulation channel 9 'in parallel with the first circulation channel 9, and through the second pump 317b . Various embodiments of the air flow cooling system 1 have been described above. Of course, the features of these embodiments may be combined without departing from the scope of the invention.
[0018] Method for Refreshing an Air Flow The cooling system 1 for an air flow according to one or other of the embodiments described above is suitable for implementing a method of refreshing the flow of air. air F comprising at least the following steps (FIGS. 1a-6) a preliminary stage El, referred to as priming, during which the pumping device, in particular a pump 17, 117, 217a, 317a, of the pumping device, draws the nebulizing liquid from the nebulizing liquid reservoir 13 to the nebulizing unit 3, so as to fill said nebulization liquid circuit, a step E2 for triggering the nebulization by the nebulizing unit 3 when the preliminary step El said priming is performed, and a purge step E5 after each use of the nebulizing unit 3, during which the same pump 17, 117 or another pump 217b, 317b of the pumping device, sucks the nebulizing liquid within the nebulizing liquid circuit from the nebulizer unit 3 to the reservoir 13 or out of the reservoir 13 and out of the circuit. The preliminary step E1 called priming is for example triggered when a start of the cooling system 1 of the air flow F is requested at a step E0. For this, a user presses for example an associated control button (not shown). The preliminary step El called priming can take place for a predefined duration, so-called priming time ta. This preset boot time ta is for example less than or equal to five seconds, advantageously of the order of two to three seconds.
[0019] In particular, in order to minimize the ignition time ta, the flow rate of the pump 17 or 117 or 217a or 317a of the pumping device during the preliminary priming step E 1 can be accelerated. For example, for a nebulizing unit 3 with a flow rate of the order of 5 ml / min, the flow rate of the pump 17 or 117 or 217a or 317a in normal operation during nebulization in step E2 can be of the order of 10 ml / min at 15 ml / min, and the accelerated flow rate during the priming step El can be of the order of 50 ml / min to 100 ml / min. The flow rate of the pump 17 or 117 or 217a or 317a can be accelerated of the order of five to ten times more than the flow rate during nebulization. The acceleration of the flow rate of the pump 17 or 117 or 217a or 317a also makes it possible to ensure the evacuation of air bubbles in the circuit, which would be for example wedged behind the piezoelectric head 5 of the unit nebulizer 3.
[0020] The purge step E5 is for example triggered following a stop command of the cooling system 1 of the air flow F at a step E3. For this, a user presses for example an associated control button (not shown).
[0021] Upon detection of the fog stop command in step E3, the fogging unit 3 can be stopped immediately in step E3. In order to be able to start a purge of the nebulizing liquid circuit, the direction of flow of the nebulizing liquid in said circuit is reversed in step E4, so that the nebulizing liquid can flow from the nebulizer unit 3 to the reservoir 13 of nebulizing liquid or alternatively outwardly of the nebulizing liquid circuit. To do this, the direction of rotation of a reversible pump 17 according to the first embodiment is, for example, reversed in step E4. Alternatively, the fluid distributor 121 according to the second embodiment 25 can be controlled so as to reverse the flow path of the nebulizing liquid therein, in particular by selecting the second circulation path defined by the second conduits 127, 129. According to yet another variant, in step E4, the first pump 217a, 317a of the third or fourth embodiment is stopped, and the second corresponding pump 217b, 317b of the third or fourth embodiment is activated. Once the flow direction of the nebulization liquid has been reversed, the purge step ES can take place. The purge step ES can take place for a predefined duration, called the purge duration tp. This purge time tp is, for example, less than or equal to five seconds, advantageously of the order of two to three seconds. In particular, in order to minimize the purge time tp, it is possible, for example, to speed up the flow rate of the pump 17 or 117 or 217b or 317b of the pumping device during the purge step ES. For example, for a nebulizing unit 3 with a flow rate of the order of 10 5mL / min, the flow rate of the pump 17 or 117 or 217a or 317a in normal operation during the nebulization in step E2 can be of the order of 10mL / min at 15mL / min, and the accelerated flow rate of the pump 17 or 117 or 217b or 317b during the purge step ES can be of the order of 50mL / min at 100mL / min . The flow rate of the pump 17 or 117 or 217b or 317b can thus be accelerated by about five to ten times the flow rate during nebulization. This acceleration of the flow furthermore makes it possible to guarantee that the air bubbles generated by the nebulizing unit 3 in operation are well evacuated. According to an alternative embodiment, the nebulizing unit 3 does not stop following step E3 but can be stopped when a sensor detects the venting of the piezoelectric head 5. In this case, In the latter case, the vibrations generated make it possible to dry the membrane of the piezoelectric head 5. Finally, the pumping device 17; 117; 217a, 217b; 317a, 317b can be stopped in step E6 when the purge step ES is complete, for example after the purge time tp, or alternatively when a detecting means detects that there is more water in the circulation channels 9, 11 and / or at the level of the nebulization unit 3, in particular detects the venting of the membrane of the piezoelectric head 5. According to an exemplary embodiment the detection means is for example arranged above the level of the nebulizing liquid in the reservoir, for example in the closure cap 16 of the reservoir 13 or between the closure cap 16 and the level of liquid in the reservoir 13 In addition, it is possible to provide a step of purifying the nebulizing liquid in the reservoir 13 to ensure that the nebulizing liquid present in the reservoir 13 is non-toxic.
[0022] Of course, certain steps of the previously described method may be reversed. Thus, with such purging or automatic emptying, it is avoided that the nebulizing liquid stagnates in the circulation channels 9, 11 and at the level of the nebulization unit 3, in particular in the piezoelectric head 5. The risk gel of this nebulizing liquid, but also the risk of proliferation of bacteria, or even algae, are discarded. At the start of the cooling system 1 of the air flow F, the user 15 is not likely to suck droplets containing such bacteria and may cause bronchial infection.
权利要求:
Claims (16)
[0001]
REVENDICATIONS1. Refreshment system (1) for an air flow (F), in particular for a motor vehicle, comprising: at least one nebulization unit (3) of a nebulizing liquid in the air flow, at least one reservoir (13) nebulizing liquid, and at least two circulation channels (9, 11) of the nebulizing liquid between the nebulizing unit (3) and the reservoir (13) of the nebulizing liquid, the nebulizing unit (3). ), the reservoir (13) of the nebulizing liquid and the circulation channels (9, 11) of the nebulizing liquid defining a nebulization liquid circuit, characterized in that said system further comprises: at least one pumping device ( 17; 117; 217a, 217b; 317a, 317b): to suck the nebulizing liquid in a first direction (Sa) from said reservoir (13) to the nebulizing unit (3), to prime said circuit by filling it nebulizing liquid, and - to suck the nebulizing liquid according to a second direction (Sb) from the nebulizing unit (3) to said tank (13) or out of the nebulizing liquid circuit, so as to purge the nebulizing liquid circuit.
[0002]
2. Refreshment system (1) according to the preceding claim, wherein the pumping device (17; 117; 217a, 217b; 317a, 317b) is configured to suck the nebulizing liquid for a predefined priming period (ta) and / or to discharge nebulizing liquid during a predefined purge time (tp), for example less than five seconds.
[0003]
3. Refreshment system (1) according to claim 1, comprising at least one means for detecting the level of the nebulizing liquid in the vicinity of the nebulizing unit (3), able to allow or inhibit the triggering of the unit. nebulization (3) according to the level of the nebulizing liquid. 3034176 -21-
[0004]
4. Refreshment system (1) according to any one of claims 1 to 3, wherein the pumping device comprises at least one reversible pump (17) adapted to suck the nebulizing liquid in a first direction (Sa) since the nebulizing liquid reservoir (13) to the nebulizing unit (3), and in a second direction (Sb) from the nebulizing unit (3) to said reservoir (13) or out of the nebulizing liquid circuit .
[0005]
5. Refreshment system (1) according to the preceding claim, wherein the reversible pump (17) is a rotary drive volumetric transfer pump, such as a positive displacement pump, a peristaltic pump or a vane pump.
[0006]
6. Refreshment system (1) according to any of claims 1 to 3: - wherein the pumping device comprises at least one irreversible pump (117), such as a centrifugal pump, and said system further comprising at least one fluid distributor (121): - arranged upstream of the irreversible pump (117) in the direction of flow of the nebulizing liquid through the irreversible pump (117), - having a first supply path of the circuit of the nebulizing liquid 20 and a second purge path of the nebulizing liquid circuit, and - such that the nebulizing liquid flows through the first path when the irreversible pump (117) is controlled so as to fill said nebulizing liquid circuit. and that the nebulizing liquid flows through the second path when the irreversible pump (117) is controlled to purge the nebulizing liquid circuit.
[0007]
7. Refreshment system (1) according to any one of claims 1 to 3, wherein the pumping device comprises: at least a first pump (217a; 317a) adapted to suck the nebulizing liquid in the first direction (Sa ), and at least one second pump (217b; 317b) adapted to suck the liquid in the second direction (Sb), the second pump (217b) being connected in series with the first pump (217a) or the second pump (217a). pump (317b) being mounted in parallel with the first pump (317a).
[0008]
8. Refreshment system (1) according to any one of the preceding claims, comprising: a first circulation channel (9) of the nebulizing liquid with an end (9i) immersed in the nebulizing liquid in said reservoir (13) , and a second circulation channel (11) of the nebulizing liquid with an end (11 1) placed above the level of the nebulizing liquid in said reservoir (13). 10
[0009]
9. Refreshment system (1) according to any one of the preceding claims, comprising at least one valve (19) arranged to direct the purge liquid nebulized to said reservoir (13) or out of said reservoir (13). 15
[0010]
10. Refreshment system (1) according to any one of the preceding claims, wherein the nebulizing unit (3) comprises at least one element of piezoelectric type, such as a nebulizing head (5) piezoelectric type to perforated membrane. 20
[0011]
11. A method of refreshing an air flow especially to the passenger compartment of a motor vehicle implemented by a cooling system of an air flow according to any one of the preceding claims, comprising a preliminary step (E1), referred to as initiation, during which the pumping device (17; 117; 217a; 317a) sucks the nebulizing liquid in a first direction (Sa) from the nebulization liquid reservoir (13); ) to the nebulizing unit (3), so as to fill said nebulizing liquid circuit, a step of triggering the nebulization (E2) by the nebulizing unit (3) when the preliminary step (El) said priming is performed, and - a purge step (E5) after each use of the nebulizing unit (3), during which the pumping device (17; 117; 217b; 317b) sucks the nebulizing liquid according to a second meaning (Sb) from the nebu unit (3) to said tank (13) or out of said circuit. 3034176 -23-
[0012]
12. Refreshment method according to the preceding claim, wherein the pumping device (17; 117; 217a; 317a) performs the preliminary step for a predefined duration, so-called priming time (ta), for example less than or equal to five 5 seconds.
[0013]
13. The method of refreshing according to one of claims 11 or 12, wherein the pumping device (17; 117; 217b; 317b) performs the purge step (E5) for a predefined period, called purge duration (tp ), for example less than or equal to five seconds.
[0014]
14. The method of refreshing according to any one of claims 11 to 13, wherein the flow rate of the pumping device (17; 117; 217a, 217b; 317a, 317b) during the preliminary so-called priming step and / or during the purge step (E5), for example of the order of five to ten times more than the flow rate during nebulization.
[0015]
15. The method of refreshing according to any one of claims 11 to 14, comprising the following steps: a step of detecting (E3) a fogging stop command, a step of stopping the fogging unit (3), an inversion step (E4) of the direction of flow of the nebulizing liquid in said circuit, so that the nebulizing liquid flows from the nebulizing unit (3) to the reservoir (13) of liquid nebulizing or out of said circuit, a purge step (E5) of the nebulizing circuit, and a stopping step (E6) of the pumping device (17; 117; 217b; 317b) when the purging step (E5) is completed.
[0016]
16. Refreshment method according to the preceding claim, wherein the reversal step (E4) of the flow direction of the nebulizing liquid in said circuit is carried out according to one of the following steps: - reversal of the direction of rotation of the a reversible pump (17) of the pumping device, inverting the path of the nebulizing liquid in a fluid distributor (121) upstream of an irreversible pump (117) of the pumping device in the direction of circulation nebulizing liquid through the irreversible pump, stopping a first pump (217a; 317a) of the pumping device adapted to suck in a first direction (Sa) from said reservoir (13) to the nebulizing unit (3). ) and starting a second pump (217b; 317b) of the pumping device adapted to suck in a second direction (Sb) from the nebulizing unit to said tank (13) or out of the nebulizing liquid circuit.
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同族专利:
公开号 | 公开日
FR3034176B1|2017-04-28|
CN107405985B|2020-02-21|
CN107405985A|2017-11-28|
DE112016001347T5|2017-12-07|
WO2016150822A1|2016-09-29|
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法律状态:
2016-03-31| PLFP| Fee payment|Year of fee payment: 2 |
2016-09-30| PLSC| Search report ready|Effective date: 20160930 |
2017-03-31| PLFP| Fee payment|Year of fee payment: 3 |
2018-03-29| PLFP| Fee payment|Year of fee payment: 4 |
2019-03-29| PLFP| Fee payment|Year of fee payment: 5 |
2020-03-31| PLFP| Fee payment|Year of fee payment: 6 |
2021-03-30| PLFP| Fee payment|Year of fee payment: 7 |
优先权:
申请号 | 申请日 | 专利标题
FR1552367A|FR3034176B1|2015-03-23|2015-03-23|SYSTEM FOR REFRIGERATING AN AIR FLOW, ESPECIALLY FOR A MOTOR VEHICLE, AND CORRESPONDING REFRESHING METHOD|FR1552367A| FR3034176B1|2015-03-23|2015-03-23|SYSTEM FOR REFRIGERATING AN AIR FLOW, ESPECIALLY FOR A MOTOR VEHICLE, AND CORRESPONDING REFRESHING METHOD|
CN201680015587.0A| CN107405985B|2015-03-23|2016-03-17|System for cooling a flow of air, in particular for a motor vehicle, and corresponding cooling method|
PCT/EP2016/055862| WO2016150822A1|2015-03-23|2016-03-17|System for cooling an air flow, in particular for a motor vehicle, and corresponding cooling method|
DE112016001347.7T| DE112016001347T5|2015-03-23|2016-03-17|SYSTEM FOR COOLING AN AIR FLOW, ESPECIALLY FOR A MOTOR VEHICLE AND CORRESPONDING COOLING METHOD|
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