Head for dispensing a fluid product
11278925 · 2022-03-22
Assignee
Inventors
- Stephane Beranger (Surtauville, FR)
- Frederic DUQUET (Crespières, FR)
- Julien Sagliet (Franqueville Saint Pierre, FR)
Cpc classification
B05B15/40
PERFORMING OPERATIONS; TRANSPORTING
B05B1/14
PERFORMING OPERATIONS; TRANSPORTING
B05B11/1097
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B11/00
PERFORMING OPERATIONS; TRANSPORTING
B05B15/40
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A fluid dispenser head for mounting on a dispenser member, such as a pump, and including a bearing surface for actuating the dispenser member, and a spray wall that is perforated with a network of holes through which the fluid under pressure passes so as to be sprayed in small droplets, the dispenser head being characterized in that it further includes a suction chamber of volume that is variable, such that the volume of the suction chamber decreases when pressure is exerted on the bearing surface and increases when the pressure on the bearing surface is relaxed.
Claims
1. A fluid dispenser head for mounting on a dispenser member and including a bearing surface for actuating the dispenser member and dispensing the fluid, and a spray wall that is perforated with a network of spray holes through which the fluid under pressure passes so as to be sprayed in small droplets; the dispenser head further includes a suction chamber of volume that is variable, such that the volume of the suction chamber decreases when pressure is exerted on the bearing surface and increases when the pressure on the bearing surface is relaxed, and such that fluid present between the spray wall and the suction chamber is sucked back into the suction chamber when the pressure on the bearing surface is relaxed.
2. A dispenser head according to claim 1, wherein the spray holes present a diameter lying in the range about 1 μm to about 100 μm.
3. A dispenser head according to claim 1, wherein the spray holes present a diameter lying in the range of about 5 μm to about 30 μm.
4. A dispenser head according to claim 1, further including at least one filter upstream from the spray wall.
5. A dispenser head according to claim 4, wherein the filter is a filter plate including filter holes that are more numerous than the spray holes, but presenting a diameter that is smaller than a diameter of the spray holes.
6. A dispenser head according to claim 4, wherein the filter is a filter block forming a network of open cavities.
7. A dispenser head according to claim 6, wherein, when an intermediate space is formed between the spray wall and the filter, the variation in the volume of the suction chamber is greater than combined volumes of the spray holes, of the intermediate space, and of the filter holes, and/or of the network of open cavities.
8. A dispenser head according to claim 1, wherein the variation in the volume of the suction chamber is greater than the combined volumes of the spray holes.
9. A dispenser head according to claim 1, wherein the suction chamber includes a piston or a flexible dome.
10. A dispenser head according to claim 1, said dispenser head being in the form of a pusher, comprising: a connection sleeve for connecting to an outlet of the dispenser member; an inlet well in line with the connection sleeve; an axial assembly housing; a feed duct that connects the inlet well to the axial assembly housing; and a nozzle that is engaged in the axial assembly housing, the spray wall being secured to the nozzle; wherein the suction chamber is formed between the connection sleeve and the inlet well or between the inlet well and the feed duct.
11. The dispenser head according to claim 1, wherein the dispenser member is a pump.
12. The dispenser head according to claim 1, wherein the spray holes present a diameter lying in the range of about 10 μm to about 20 μm.
Description
(1) In the figures:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9) Reference is made to
(10) The dispenser head T comprises three essential component parts, namely a head body 1, a nozzle 2, and a piston 3. The parts can be made by injection-molding plastics material. The head body 1 is preferably made as a single part: however, it could be made from a plurality of parts that are assembled together. The same applies for the nozzle 2 that may be made as a single part out of a single material, by overmolding, by bi-injecting a plurality of materials, or by mechanical assembly.
(11) The head body 1 includes a substantially-cylindrical peripheral skirt 10 that is closed at its top end by a disk 16. The inside of the head body 1 defines an inlet well 11 that is open at its bottom end, and that is closed at its top end by the disk 16. The head body 1 also defines a feed duct 13 that connects the inlet well 11 to an assembly housing 12, as can be seen in
(12) Optionally, the head body 1 may be engaged in a cover 4 that comprises a top bearing surface 41 on which a finger can press, and a side casing 42 that forms a side opening 43 through which the nozzle 2 can pass. In the absence of a cover 4, the bearing surface is formed by the disk 16 of the head body 1.
(13) The nozzle 2 presents a configuration that is generally substantially conventional, in the form of a cup that is open at one end and closed at its opposite end by a spray wall D, advantageously in the form of a small plate, in which a plurality of spray holes or orifices DO are formed. With reference to
(14) The spray wall D is secured to the nozzle body 20, advantageously occupying the central opening 26. The spray wall D is fastened to the nozzle body 20 by any means, such as by overmolding, by bi-injection, by molding as a single part made of a single material, by snap-fastening, by crimping, by rolling, by force-fitting, etc.
(15) The spray wall D may be a single-piece plate made of a single material, an assembly of a plurality of parts, or a multilayer structure, e.g. a laminate. It can be made of metal, plastics material, ceramic, glass, or a combination thereof. More generally, any material that is suitable for being perforated with small holes or orifices can be used. The thickness of the spray wall D where the holes DO are formed lies in the range about 1 μm to about 100 μm. The number of holes DO lies in the range about 20 to about 500. The diameter of the spray wall D where the holes DO are formed lies in the range about 0.5 millimeters (mm) to about 5 mm.
(16) In an advantageous method of manufacture, the holes DO are perforated in the spray wall D while it is already secured to the nozzle body 20. Thus, the nozzle body 20 may be used as a holder for holding the spray wall D while it is being perforated, which may be done by laser, for example. It should be kept in mind that the spray wall D is a very small part, and as a result is difficult to handle. It should be observed that perforating the holes DO with the spray wall D pre-mounted on the nozzle body 20 is a method that may be implemented regardless of the size of the holes DO, i.e. regardless of the fact that the dispenser head incorporates a suction chamber.
(17) Advantageously, the spray nozzle 2 also includes two filters F1 and F2 that are arranged upstream from the spray wall D.
(18) The filter F1 is mounted on a step of the inside wall 23, behind the spray wall D, defining between them a first intermediate space E1. The filter F1 is a plate that is substantially similar to the spray wall D, with filter holes FO that are advantageously more numerous than the spray holes DO, but that advantageously present a diameter that is smaller than the diameter(s) of the spray holes DO. It should also be observed that the diameter of the filter plate F1 is greater than the diameter of the spray wall D. Its thickness may be substantially the same as the thickness of the spray wall D, or a little greater.
(19) The filter F2 is also mounted on a step of the inside wall 23, upstream from the filter F1, defining between them a second intermediate space E2. The filter F2 is in the form of a block of porous material that is advantageously rigid, such as Porex®, and that forms a network of open cavities having an average pore size that may lie in the range about 7 μm to about 100 μm.
(20) Thus, by pressing on the dispenser head T, fluid delivered by the pump P flows through the inlet well 11 and the feed duct 13, passes through the filter F2, fills the second intermediate space E2, passes through the filter F1, fills the first intermediate space E1, and finally passes through the spray wall D, at the outlet of which it is sprayed in small droplets.
(21)
(22) In the invention, the dispenser head T incorporates a suction chamber 30 that is formed by the head body 1 co-operating with the piston 3. With reference to
(23) With reference once again to
(24) When the dispenser head T is at rest (
(25)
(26) By pressing the elastically-deformable actuator wall 34′, as shown in
(27) It is clear that the nozzle 2′ in
(28) The present invention thus relies on the combination of a suction chamber with a nozzle having multiple micro-holes (20 to 500 1 μm to 100 μm holes), advantageously fitted with one or more filters.