CENTRAL FED ROLLER FOR FILAMENT EXTENSION ATOMIZER
20190015862 ยท 2019-01-17
Inventors
Cpc classification
B05B17/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B17/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A roller has an outer cylindrical surface having an array of holes, a central feed channel inside the roller, and vanes connecting the channel to the holes, forming a path for liquid between the channel and the holes. An atomization system having a fluid reservoir; a pair of rollers, at least one of the rollers having: a central feed channel, the channel fluidically connected to the fluid reservoir, an array of holes on a surface of the roller, and vanes connecting the channels to the holes, a nip formed between the rollers, and a receiving surface positioned to receive droplets formed when liquid exits the holes, stretches between the rollers as they counterrotate to form filaments and the filaments break into droplets.
Claims
1. A roller, comprising: an outer cylindrical surface having an array of holes; a central feed channel inside the roller; vanes connecting the channel to the holes, forming a path for liquid between the channel and the holes.
2. The roller of claim 1, further comprising a coupling between the channel and a liquid repository.
3. The roller of claim 1, wherein the liquid comprises a polymer.
4. The roller of claim 1, wherein each hole in the array of holes are all a same size.
5. The roller of claim 1, wherein at least some of the holes in the array of holes are of different sizes than other holes in the array.
6. The roller of claim 1, wherein the holes are recessed.
7. The roller of claim 1, wherein the holes are protruding.
8. An atomization system, comprising: a fluid reservoir; a pair of rollers, at least one of the rollers having: a central feed channel, the channel fluidically connected to the fluid reservoir; an array of holes on a surface of the roller; and vanes connecting the channels to the holes; a nip formed between the rollers; and a receiving surface positioned to receive droplets formed when liquid exits the holes, stretches between the rollers as they counterrotate to form filaments and the filaments break into droplets.
9. The atomization system of claim 8, further comprising a pressure controller to set a pressure of the liquid to control a size of the droplets.
10. The atomization system of claim 8, further comprising multiple supply channels fluidically connected to the central feed channel, wherein each supply channel is at a different fluid pressure.
11. The atomization system of claim 10, further comprising a valve to selectively connect one of the supply channels to the central feed channel.
12. The atomization system of claim 8, wherein each of the holes of the array of holes are of a same size.
13. The atomization system of claim 8, wherein at least some of the holes of the array of holes are of different sizes.
14. The atomization system of claim 8, further comprising a controller to regulate pressure between the central feed channel and the fluid reservoir.
15. The atomization system of claim 8, wherein the vanes have different sizes to control sizes of the droplets.
16. A method of generating droplets, comprising: providing a fluid to a first roller having a central feed channel, vanes between the central feed channel and a surface of the roller, the surface of the roller having holes to form surface droplets; and contacting the first roller with a second roller, the second roller to pull the fluid away from the first roller to form a filament, and stretching the filament to form droplets.
17. The method of claim 16, further comprising controlling a back pressure of the fluid to control a size of the surface droplets.
18. The method of claim 17, wherein controlling a back pressure comprises controlling the back pressure to cause the surface droplets to have a negative film thickness.
19. The method of claim 16, wherein controlling a back pressure comprises controlling the back pressure differently in each vane.
20. The method of claim 19, wherein controlling a back pressure differently comprising altering a geometry of each vane.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0026]
[0027]
[0028] In either of the above embodiments, as well as many others, the approach works well for most fluids. Fluids having a high surface tension, however, will either not pass under the doctor blade and result in a thin film, causing it to build up behind the doctor blade. Alternatively, the fluid that reaches the diverging roller surfaces will not form filaments, but instead the roller will fling the liquid off because the surface tension of the liquid will not allow it to form filaments.
[0029] The embodiments here alter the feed location of the polymer to make the feed integral to the roller itself, shown in
[0030] The centrally fed roller connects, typically through some sort of conduit 314 to a fluid reservoir 312. As will be discussed in more detail later, a controller 316 may regulate the pressure of the fluid being delivered to the central channel Regulation of the pressure may also or instead involve geometric elements, discussed in more detail below. In addition, the conduit may consist of more than one individual conduit and the pressure in each may be controlled with different pressures.
[0031] A side profile of a hole is shown in
[0032] The holes can have constant sizes and shapes throughout. Alternatively, they could result from a core having larger diameter holes and then encasing the core in another material. This would allow for smaller holes similar to a nozzle plate. The system may also allow for more complex recessed and protruded holes. Recessed holes have the advantage of higher sensitivity to backpressure and protruded holes may increase the ability of the roller to handle excess fluid.
[0033]
[0034] The portion of the recessed surface that receives fluid may be referred to here as the wetted portion. This may also achieve a negative film thickness. A negative film thickness as used here means that the droplet does not protrude from the surface as shown in the figure. Typically, this roller is used in the presence of a deformable roller as the other roller. Since the other roller is able to deform, even with a negative film thickness, the droplet will make contact with the other roller and it will continue to spray.
[0035] In another embodiment, the hole may have a protrusion 310 that causes the droplet 306 to form at an offset distance from the surface of the roller 300. The protruded hole can function similarly to the recessed hole. Different backpressures will cause different sized bubbles to protrude different amount and create different sized filaments and droplets. However, the protruded system provides for an area in which unused or excess fluid can be collected (the open area). This can be an advantage if not all material is sprayed, there are deviations in pressure control, or it is desirable to clean the fluid off during every revolution. In this case, the excess fluid will collect in the open area. Additionally, the corner of the protrusion will be a highly desirable place to pin the fluid droplet. A large amount of pressure will be required for the fluid to wet a larger area and round that corner. This highly stable pinning point provides for a more stable pressure control since it will not be as sensitive to small changes in pressure.
[0036]
[0037] In this manner, these systems can employ liquids with a higher surface tension than would otherwise work with a doctor blade or a spinning surface. By replacing a roller and connecting it fluidically to a reservoir of the liquid, a system can provide a spray of droplets using these fluids.
[0038] It will be appreciated that variants of the above-disclosed and other features and functions, or alternatives thereof, may be combined into many other different systems or applications. Various presently unforeseen or unanticipated alternatives, modifications, variations, or improvements therein may be subsequently made by those skilled in the art which are also intended to be encompassed by the following claims.