Improved water distribution basin
Patent Information
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- EURO MEDITERRANEENNE DE TOURISME RESIDENTIEL & DE SERVICES
- Filing Date
- 2024-07-24
- Publication Date
- 2026-06-03
AI Technical Summary
Existing water distribution systems for fountains and similar applications face challenges in synchronizing the emission of water jets from nozzles, leading to disharmonious displays due to uneven air pressure and nozzle alignment issues, especially when the distribution tank is not perfectly horizontal.
Incorporating a tubing system that extends from one nozzle to control air pressure and ensure synchronized emission of water jets, with nozzles positioned to emit drops or continuous jets uniformly, and using a motor pump to manage water flow and recirculation for efficient operation.
The solution provides a harmonious and synchronized flow of water jets or drops from all nozzles, maintaining aesthetic appeal even when the tank is slightly inclined, with efficient water usage through recirculation and reduced turbulence, enhancing decorative effects and operational reliability.
Smart Images

Figure EP2024070996_30012025_PF_FP_ABST
Abstract
Description
[0001] Improved water distribution tank
[0002] This description relates to a water dispersion tank, for producing water jets, in particular for an ornamental fountain.
[0003] Such a fountain can find applications in particular in furnishing decorations, for example as a table leg or as a support column or to form a water curtain (for discretion, or as a mosquito net, or for cooling compared to hot outside air).
[0004] Such an embodiment is described in particular in the applicant's document WO-2020 / 212209.
[0005] Figure 1 attached hereto shows a presentation of the distribution tank 2 of this document. The tank 2 comprises a lower wall 4 comprising openings 5 housing nozzles for emitting water jets from these nozzles, which are distributed in the lower wall 4 of the tank.
[0006] As illustrated in Figure 1, one of the openings 8 provided in the lower wall 4 of the tank 2 is a water supply opening from a supply column 3. This opening 8 is in principle much wider than a nozzle opening 5. Indeed, as described in the aforementioned document, a motor pump PO is mounted in a water receiving tank (located under the distribution tank 2). The pump PO then injects water in a controlled manner into the supply tube 3. This water reaches the distribution tank 2, which is closed and sealed. The water flows through nozzles 51.
[0007] As seen in Figure 2, each nozzle 51 has an internal water pipe 513 to guide it by a uniform jet JET downwards according to a laminar flow (without dispersion of the jet at the outlet 514 of the nozzle). The jets JET at the outlet of the tank 2 are then straight and all vertical, thus giving an aesthetic harmony to this distribution of water.
[0008] Furthermore, as described in the aforementioned document, the PO pump can be configured to emit water at a controlled flow rate in order to generate:
[0009] - continuous jets at the nozzle outlet, at a sufficiently high pump flow rate, greater than a flow rate limit threshold, - or alternatively discontinuous jets at the nozzle outlet, in drip mode, at a pump flow rate lower than the flow rate limit threshold.
[0010] The frequency of drop outputs in drip mode therefore depends on the pump flow rate (and decreases with lower pump flow rate).
[0011] In this drip mode, the problem then arises of ensuring that all the nozzles can emit a drop at the same time, and then also stop emitting a drop at the same time. The unsynchronized emission and stopping of the drops would be disharmonious for an ornamental fountain.
[0012] In other fields of application, for example relating to shower heads and as known from document GB 2 582 801, a shower head mechanism is proposed which stops the untimely flow of drops from the nozzles of the shower head when the water flow stops. This comprises for this purpose a sliding sealing plate configured to cover and block all the water outlet nozzles, which stop dripping at the same time when the water pressure in the shower head decreases. However, such a mechanism does not provide a solution for controlling the synchronized emission of drops from all the nozzles, in drip mode in particular.
[0013] Furthermore, depending on the inclination of the fountain distribution tank, if its lower wall is not perfectly horizontal, some of the nozzles at one end of the tank may appear to drip more frequently than others (or even produce a continuous jet while the other nozzles are in drip mode), which is disharmonious. This lack of flatness can in fact cause holes 511 and 512 of a nozzle to be exposed to the air, which has the effect of causing air to rise into tank 2 and thus allowing other nozzles to empty.
[0014] This description improves the situation.
[0015] To this end, it proposes a device for an ornamental water jet, in particular of the fountain type, comprising a water outlet tank comprising a lower flat wall comprising a plurality of openings in each of which is inserted a nozzle for discharging a water jet outside the outlet tank, characterized in that one of the nozzles, at an opposite end of a water jet outlet, is surmounted by a tube of a length chosen to avoid a disparity in the jets at the outlet of the other nozzles, at the start and stop of the jets.
[0016] Thus, covering the head of a nozzle with this tubing makes it possible to control the air pressure in the water outlet tank, thus ensuring a synchronized and harmonious flow for all the nozzles.
[0017] Typically in a drip mode in which the nozzles are configured to emit discontinuous jets, the nozzles other than the one capped with the aforementioned tubing, can emit drops at the same time, and / or stop the emission of a drop at the same time.
[0018] The device within the meaning of the present disclosure is intended to decorate, for example, a piece of furniture such as a table, a screen curtain, a window or even a stair step. Typically, the water outlet tray of such a device may be intended to be arranged under the transparent top of a table, its flat lower wall being oriented towards the ground and the nozzles thus allowing the water to flow vertically by gravity. Advantageously, the visual appearance of drops falling all at the same time from the nozzles provides a decorative effect that is highly appreciated for the aforementioned piece of furniture. Indeed, the flow of water in drops, similar to a rain flow, has the advantage of not masking objects or landscapes from a viewer, and is intended to improve in a more discreet manner the aesthetics of an object, decoration or piece of furniture.
[0019] To achieve a better visual effect of the drip irrigation, the flow of water through the nozzles must be harmonious and controlled. More specifically, the flow of drops must be synchronized for all the nozzles in the device, even in conditions where the water outlet tray is slightly inclined and the lower wall is not perfectly horizontal, as can be the case on floors that are not perfectly flat.
[0020] This simultaneous operation of the nozzles is made possible in particular by the clever design of the nozzle capped with the tubing of the chosen length.
[0021] In one possible embodiment, the flow nozzles may be positioned in the same plane on the bottom wall, and the nozzles may be arranged equidistant from each other, and distributed in rows, over the entire surface of the bottom wall of the outlet tray.
[0022] More generally, it will be understood that the nozzles of the device can all be coplanar with the nozzle surmounted by said tubing.
[0023] In addition, the openings on the bottom wall of the water outlet tray can be configured to be the same shape and size as the nozzles, thus ensuring a tight contact between the nozzles inserted into the openings and the bottom wall of the water outlet tray. Seals can also be added in the openings, around each of the nozzles, to reinforce the tightness of the bottom wall.
[0024] Furthermore, in an embodiment described in detail later with reference to Figure 2, each nozzle is cylindrical in shape, and comprises a head, extending vertically inside the water outlet tank and through which the water enters, opposite the nozzle outlet through which the water flows out of the outlet tank. It has proven advantageous for the nozzle to comprise two water inlet holes at the head, of smaller diameters than the single outlet hole formed by an internal conduit in the nozzle. The nozzle head is larger than the opening in the wall into which the nozzle is inserted, in order to ensure a seal of the water outlet tank. The nozzle outlet is the same size as the opening in the wall in order to be force-fitted therein.
[0025] The distribution and distance between each nozzle modify the visual rendering of the water flow. It is thus of course possible to distribute the nozzles with a variable distance between them, or by group, for example to form polygons, to leave a free space for the passage of people, or to follow the particular shape of the objects to be decorated. The nozzles of the same group or of the same row are for example separated by a regular pitch, which is greater than a threshold distance so as to eject individual jets at the outlet of the nozzles, and thus avoid a quasi-continuous veil of water, in this embodiment.
[0026] In such an embodiment where the jets at the outlet of the nozzles are thus individual, it is preferable to ensure that in drip mode, the drops are emitted at the same time, which also makes it possible to apply other decorative aspects such as in particular frequency lighting of the device at a lighting frequency close to the drip mode to provide a stroboscopic effect.
[0027] A possible interpretation of the role of the tubing covering one of the nozzles in achieving this effect of emitting drops at the same time can be explained as follows. The tubing, by cooperating with the nozzle it covers, forms an airtight and watertight barrier around the nozzle, particularly around the nozzle head, as illustrated in Figure 3. In other words, the tube prevents the nozzle head from being exposed to air when a sufficient volume of water is present in the water outlet tank.
[0028] The flow control mechanism by the capped nozzle is illustrated in Figure 5, which is discussed in detail later. In general terms here, as the water outlet tank (which is closed and airtight) gradually fills with water, the air volume decreases and air escapes from the capped nozzle of the tubing, generating an air pressure vacuum in the tank. Once the head of the aforementioned nozzle is submerged, the volume of water in the tank is sufficient to increase the air pressure. This excess air pressure allows water to be ejected from the nozzles outside the tank, and a drop to be emitted. But as soon as the water supply stops, the volume of water in the tank decreases, while the volume of water from the capped nozzle remains constant. The air pressure then becomes insufficient for the other nozzles to emit a drop. This phenomenon is repeated for each drop emitted by the drip nozzles.
[0029] For this purpose, the water outlet tank further comprises at least one motor pump supplying the water outlet tank, and configured to inject water in a controlled manner into the device.
[0030] The pump can then supply the water distribution tank at a droplet emission frequency from the nozzles, in drip mode. In other words, the frequency of the pump's on and off operation generates a controlled water flow to the outlet tank, and thus controls the droplet emission frequency. The higher the pump's operating frequency and the water flow rate, the higher the droplet emission frequency.
[0031] Furthermore, when the flow rate sent by the pump exceeds a flow rate limit threshold, defined according to the length and shape of the nozzles, the water flows from the nozzles in continuous jets, and no longer in drops. The pump can also be set to send a water flow rate greater than the flow rate limit threshold and stop cyclically so as to generate interrupted and successive jets of water (water "strokes").
[0032] In this embodiment, the pump is mounted for example in a water receiving tank located below the water outlet tank, for recirculation of water from the receiving tank to the water outlet tank.
[0033] This means that the device can be filled with water before it is actually put into operation. The pump then uses the water already present to reinject it into the water outlet tank.
[0034] The water receiving tray includes rims to enclose the water, and is shaped to the same or larger dimensions as the water outlet tray, in order to properly collect the water flowing from the nozzles. Thus, the water receiving tray may generally be designed with a shape similar to, or somewhat larger than, that of the water outlet tray. A large portion of the water used is thus recycled, without the need for regular replenishment of water.
[0035] The water outlet tray further comprises on its lower wall at least one water supply opening of larger dimension than the nozzle openings, the supply opening being connected to a supply tube by which the pump distributes the water in a closed circuit from the receiving tray to the water outlet tray.
[0036] In one embodiment, the water supply tube may be made of a rigid material, capable of supporting the water outlet tray above the receiving tray, and it is preferably transparent or translucent to blend in with the jets (for example made of glass or Plexiglass®). In this embodiment, the supply tube may then be straight and vertical in order to blend in as best as possible with the water jets. Alternatively, it is of course possible to choose a supply tube that may be curved.
[0037] In another embodiment, several supply tubes may be provided, each comprising a motor pump, and each connecting the outlet tank to the receiving tank. In such a configuration, the tubes are preferably positioned regularly between the tanks, as in the example illustrated in Figure 6, so that the weight of the water outlet tank is better distributed over the tubes. But it is also possible to arrange the supply tube(s) at the ends of the tanks, or off-center, depending on the chosen visual.
[0038] A design with several water supply tubes then makes it possible to create larger, heavier devices with several dozen, or even several hundred, jets. In such a configuration, several nozzles topped with tubing can then be provided, in order to ensure the synchronized flow of all the nozzles.
[0039] In one embodiment, the feed opening is arranged as close as possible to the nozzle surmounted by the tubing, as to the other nozzles. An example of this embodiment is shown in particular in Figure 6. In this configuration, the feed tube is thus placed to advantageously camouflage the flow at the outlet of the nozzle surmounted by the tubing, which does not necessarily drip in a synchronized manner with the other nozzles.
[0040] Furthermore, the nozzles are all the same length, the length of the nozzles being chosen so that the water flows in laminar flow at the nozzle outlet.
[0041] In such an embodiment, there is no dispersion of water at the nozzle outlet, the water jets and drops are uniform and flow without turbulence to the receiving tank. In this way, it is also possible to limit water splashes.
[0042] It has thus been empirically defined that the length of the nozzles is of the order of ten times their internal diameter.
[0043] In addition, the tubing exceeds the nozzle by a few millimeters.
[0044] In one embodiment, the tubing may surmount said nozzle by 2 millimeters for example while the length of a nozzle is between 20 and 30 millimeters.
[0045] More generally, the tubing can surmount said nozzle by a height of between 1 and 5 millimeters, with a nozzle length of between 20 and 50 millimeters.
[0046] In particular, in the embodiment illustrated in Figure 3, the tubing surmounting the nozzle by 2 mm ensures a water level high enough to submerge the holes in the head of the capped nozzle. When the water supply by the pump is stopped, the capped nozzle is then always fully submerged and prevents uncontrolled flow from all the other nozzles. In one embodiment, the nozzles have dimensions comprising a length of 25 mm and a diameter of 2.5 mm.
[0047] Other advantages and characteristics of this device will appear on reading the detailed description below of examples of embodiments and on examining the attached drawings in which:
[0048] - Figure 1 schematically illustrates an example of the general shape of the water distribution tank 2,
[0049] - Figure 2 schematically illustrates an example of the general shape of one of the water distribution nozzles 51,
[0050] - Figure 3 illustrates a nozzle of the type shown in Figure 2 (left) and a nozzle of the same type overhung by tube 6 (right),
[0051] - Figure 4 illustrates an example of an embodiment of a water outlet tank 2 (on the left) comprising the tube 6 overhanging one of its openings 5 arranged in its lower wall 4 (water outlet), as well as a transverse profile A-A' of the device (on the right) and an enlarged view of the tube 6 (at the bottom of figure 4),
[0052] - Figure 5 illustrates an example of the construction of a tank with several nozzles, one of which is topped by a tube 6, with water being supplied (top left), until the first drops come out of the nozzles (right), then the water supply is stopped (bottom left),
[0053] - Figure 6 illustrates an alternative embodiment to that of Figure 4, with several water conveying columns.
[0054] The present description proposes that the water distribution tank 2 comprises a tube 6 inside the tank and that one of the nozzles 52 is surrounded by this tube 6 overhanging the head of the nozzle 52, as illustrated in FIG. 3. Such an embodiment advantageously makes it possible to ensure that all the nozzles (at least the nozzles 51 other than that 52 capped with the tube 6) emit a drop at the same time and stop the emission of a drop at the same time, in particular in drip mode.
[0055] Thus, the frequency of the drops emitted by all of these nozzles 51 is the same. As indicated previously, this drip frequency is regulated by the flow rate provided by the pump PO (lower than a limit flow rate beyond which the nozzles deliver uniform jets, in continuous mode).
[0056] Thus, in drip mode, all nozzles 51 drip at the same time and at the same frequency.
[0057] Such an effect of producing a regular drip on all the nozzles 51 could also be achieved, without tube 6, but by choosing one of the nozzles 52 longer than the others. Nevertheless, from an aesthetic point of view, it can be understood that this would amount to leaving visible a nozzle length different from the others, which may appear disharmonious.
[0058] In terms of dimensions, with reference to Figure 4, in particular on the transverse profile A- A' and on the enlarged view, the tube 6 can overhang the head of the nozzle 52 by only a few millimeters, and measure for example 13 mm in height. In the example illustrated, it is 2 mm higher than the level of the inlet holes 511 and 512 of the nozzles, and in particular of the nozzle 52 which is capped by it, which makes it possible, during filling, to ensure a sufficient water level to submerge the latter. Thus, when the water supply is stopped or with very low flow rates such as in drip mode, a depression is sufficient to prevent the water from flowing uncontrolled from certain nozzles. Among other things, the water level in the tube serves to prevent air from succeeding in passing through another nozzle and thus maintains a depression necessary for the proper uniform operation of all the nozzles.
[0059] The tube 6 then forms a watertight barrier for the holes of the nozzle 52, which is open to the air only through its lower opening 514.
[0060] When the tank 2 is first filled (or when it is refilled with water after emptying), the role of the tube 6 can be seen as keeping a single nozzle 52 as a possible air outlet. Thus, with a sufficient flow rate, the tank 2 gradually fills, while producing the beginning of a drop from all the other nozzles 51. When the water level reaches the top of the tube 6, it fills, and thus closes the air vent holes 511 and 512 of the head of the nozzle 52, making them completely airtight.
[0061] From then on, a pressure regulation marks the operation of the emitting tank 2: in depression, the tank reduces the flow of water through the nozzles, while maintaining a constant volume of air inside the tank. All the nozzles then stop ejecting water at the same time, if the water is no longer injected through the tube 3. On the other hand, when water arrives through the tube 3, the tank fills with water as before, which submerges all the nozzle heads 51 up to the tube 6, so that water is evacuated from all the other nozzles 51 at the same time when the tube 6 becomes submerged. A slow drip is therefore possible: the output flow of the drops (at outlet 514 of the nozzles) now only depends on the incoming flow (via tube 3 and the large opening 8), in the absence of any possibility for air to fill the space which would be freed by an output flow guided solely by gravity. Tank 2 thus remains in a slight depression.
[0062] To obtain faster drip operation, or even jet operation, simply increase the water flow rate coming from tube 3.
[0063] Thus, the role of this tube 6 is to close the air vent of tank 2 with a water level high enough above the nozzles to avoid recreating a connection between the volume of air above the nozzles and the outside air, even in the event of a variation in water height or a lack of flatness of the ground.
[0064] These different situations are illustrated in Figure 5. At the top left, the tank 2 gradually fills with water during a tank filling phase. The tube 6 is not yet submerged and the nozzle 52 which is capped by it is still in the open air so that air from the tank escapes, which creates a depression in the tank. In particular, the atmospheric pressure (in air) which prevails in the tank 2 is insufficient to make the other nozzles 51 flow, even though their head is covered with water.
[0065] Referring now to the right-hand intermediate figure of Figure 5, water enters tank 2 through opening 8 until it submerges tube 6. The water in tube 6 forms an airtight barrier. The volume of water occupied in tank 2 becomes sufficient to increase the air pressure of the remaining air volume in tank 2 (complementary to the water volume). This excess air pressure, together with the volume of water present in tank 2, is sufficient to push the water out of the nozzles downwards. The drip then has a uniform frequency at the outlet of the nozzles 51.
[0066] Referring now to the bottom of Figure 5, when the water supply stops, the volume of water decreases but that in the tube remains constant, leaving the tube 6 submerged and airtight. The air pressure is no longer sufficient to cause the other nozzles 51 to drip. Thus, all the nozzles 51 (other than the nozzle 52 capped by the tube 6) stop dripping together.
[0067] As soon as the nozzles start dripping at the same time and stop dripping at the same time, at the same frequency, it is possible to illuminate the fountain with LEDs, with a frequency equal to or close to the drop emission frequency (or one can be a multiple of the other). At the same frequency, the drops appear motionless above a drop collection tray. At a similar frequency (slightly different), the drops appear to fall slowly into the collection tray or rise slowly towards the distribution tray, by stroboscopic effect.
[0068] The nozzle 52 may have an erratic flow (i.e. different from the other nozzles). However, on the one hand, it is only a single, isolated nozzle, and, on the other hand, its arrangement can be advantageously chosen, for example hidden by the jets of other nozzles as illustrated in Figure 4 where the tube is in a middle position in the radius of the tank 2, here circular in shape (for a table leg). It is in fact an isolated nozzle 52, among about a hundred nozzles 51 (for a distribution tank of about 30 cm in diameter and 3 cm in height).
[0069] In a possible embodiment of the nozzles themselves 51, 52, the latter may comprise two holes 511 and 512, 0.8 mm in diameter. This size has been determined empirically, as representing a good compromise between a significant pressure drop, and a sufficiently low initial filling flow rate.
[0070] It is preferable to place at least two off-axis holes to feed the nozzles. The openings from these holes are sufficiently fine, in the axis of the nozzle, to each produce a fine jet that practically does not touch the internal walls of the conduit 513, and therefore does not produce uncontrolled drops at the nozzle outlet 514, thus allowing a uniform jet at the nozzle outlet 51.
[0071] The angle between the two holes was determined by simulation to be the best for limiting turbulence at the nozzle outlet. It was set at 30° from the vertical.
[0072] The length of the nozzles has been set at 10 diameters, i.e. 25 mm for a diameter of 2.5 mm, in order to also limit the turbulence at the nozzle outlet, and therefore allow the formation of a laminar jet JET as long as possible. Of course, these are examples of possible embodiments and dimensions. The present description is not limited to these embodiments. Other shapes, for example, of the tank 2 (not like a drum for a table leg as illustrated in Figure 4), but like a parallelepiped for a privacy curtain for example, are possible. Furthermore, the use of a single tube 6 to cover one of the nozzles 52 has been described above. However, it is possible to provide more than one tube 6, in particular in the case of a tank 2 of large dimensions and with more than one hundred nozzles 1 for example.
[0073] Furthermore, in Figure 4, an embodiment is illustrated where a single column 8 conveys the water from the pump to the distribution tank 2. This is of course an example of an embodiment. Alternatively, several columns 81-85 may be provided to convey the water into the distribution tank, which may advantageously conceal the nozzle 52 capped with the tube 6 (and which may consequently have an erratic flow relative to the other nozzles 51) against one of these multiple columns, for example the column 82 in the example illustrated in Figure 6.
Claims
CLAIMS 1. Device for a decorative water jet, comprising a water outlet tank (2) comprising a lower flat wall (4) comprising a plurality of openings (5) in each of which is inserted a nozzle (51) for discharging a water jet outside the outlet tank (2), Characterized in that one of the nozzles (52), at an opposite end of a water jet outlet, is surmounted by a tube (6) of length chosen to avoid a disparity of the jets at the outlet of the other nozzles (51), at the start and stop of the jets.
2. Device according to claim 1, characterized in that the nozzles (51) are configured to emit discontinuous jets, in drip mode.
3. Device according to claim 2, characterized in that said other nozzles (51), in drip mode, emit drops at the same time.
4. Device according to one of claims 2 and 3, characterized in that said other nozzles (51), in drip mode, stop the emission of a drop at the same time.
5. Device according to one of the preceding claims, characterized in that it further comprises at least one motor pump (PO) supplying the water outlet tank (2).
6. Device according to claim 5, characterized in that said pump is mounted in a water receiving tank located under the water outlet tank (2), for recirculation of water from the receiving tank to the water outlet tank (2).
7. Device according to one of claims 5 and 6, taken in combination with one of claims 2 to 4, characterized in that the pump (PO) supplies the water distribution tank at a frequency of emission of drops by the nozzles (51), in drip mode.
8. Device according to one of claims 5 to 7, characterized in that the water outlet tank (2) comprises on its lower wall (4) at least one water supply opening (8; 81-85) of larger dimension than the nozzle openings (5), the supply opening (8) being connected to a supply tube (3) by which the pump (PO) distributes the water in a closed circuit from the receiving tank to the water outlet tank (2).
9. Device for a decorative water jet according to claim 7, characterized in that the supply opening (8) is arranged as close as possible to the nozzle (52) surmounted by the tubing (6), than to the other nozzles (51).
10. Device according to one of the preceding claims, characterized in that the nozzles (51) are all of the same length, the length of the nozzles being chosen so that the water flows in laminar flow at the outlet of the nozzles.
11. Device according to claim 10, in which the length of the nozzles is of the order of ten times their internal diameter.
12. Device according to one of the preceding claims, characterized in that the tubing surmounts said nozzle (52) by a few millimeters.
13. Device according to claim 12, characterized in that the tubing surmounts said nozzle (52) by 2 millimeters while the length of a nozzle is between 20 and 30 millimeters.
14. Device according to one of the preceding claims, characterized in that the distribution tank (2) comprises several dozen nozzles (51).
15. Device according to one of the preceding claims, characterized in that the water outlet tank (2) is closed and watertight.