WO2009014432A1 - Multi component particle generating system - Google Patents
Multi component particle generating system Download PDFInfo
- Publication number
- WO2009014432A1 WO2009014432A1 PCT/NL2008/050456 NL2008050456W WO2009014432A1 WO 2009014432 A1 WO2009014432 A1 WO 2009014432A1 NL 2008050456 W NL2008050456 W NL 2008050456W WO 2009014432 A1 WO2009014432 A1 WO 2009014432A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- particle
- fluid jet
- particles
- isolated
- multicomponent
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J2/00—Processes or devices for granulating materials, e.g. fertilisers in general; Rendering particulate materials free flowing in general, e.g. making them hydrophobic
- B01J2/02—Processes or devices for granulating materials, e.g. fertilisers in general; Rendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J2/00—Processes or devices for granulating materials, e.g. fertilisers in general; Rendering particulate materials free flowing in general, e.g. making them hydrophobic
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J2/00—Processes or devices for granulating materials, e.g. fertilisers in general; Rendering particulate materials free flowing in general, e.g. making them hydrophobic
- B01J2/003—Processes or devices for granulating materials, e.g. fertilisers in general; Rendering particulate materials free flowing in general, e.g. making them hydrophobic followed by coating of the granules
Definitions
- the invention relates to a multi component particle generating system.
- EP1364718 discloses a concentric nozzle arrangement to produce a mixed or encapsulated particle.
- the tuning of relative viscosities and fluid pressures of the two components is complex and limits the application possibilities.
- US4341310 teaches an arrangement of two systems generating streams of droplets arranged at an angle, to selectively eject a droplet from one of the droplet streams by a droplet of the other of the droplet streams. This arrangement is aimed at generating precisely timed collisions by use of polarity adjustment of the fluid. It is difficult to produce large quantities of multicomponent particles in this manner.
- US patent 5.230.735 discusses a system for mixing powder particles with fluid material via a wetted inner wall. This system easily leads to clogging and coagulation of powder particles. Therefore, the provision of individually generated multicomponent particles is not possible. A similar mechanism is illustrated in US2067908.
- EP0563402 discloses a granule coating apparatus wherein a powder nozzle is formed to have a central powder blowout opening and a concentrically arranged tapered coating liquid blowout path. This system is provided to form good intermixing with the powder and the liquid, however, due to the form of the blowout jet, selected isolated coating control of particles is not possible; thus easily leading to clogging.
- a multicomponent particle generating system comprising first and second pressure systems comprising first and second nozzles respectively, for pressurizing first and second fluids respectively.
- the first nozzle is constructed to generate at least one isolated particle of first fluid; wherein said second nozzle is arranged to generate a generally uninterrupted fluid jet; said first and second nozzles arranged to have said isolated particle collide with the fluid jet so as to encapsulate said particle of first fluid by the second fluid.
- the invention provides a method of generating a multicomponent particle comprising: generating at least one isolated particle of a first material; generating a generally uninterrupted fluid jet of a second material; and colliding said isolated particle with the fluid jet so as to combine said particle of first material with the second material.
- Figure 1 shows schematically an embodiment of a printing system for use in the present invention
- Figure 2 shows schematically a multi-stage embodiment of continuous droplet generating system according to the invention
- FIG 3 shows schematically an alternative droplet form application
- Figure 4 shows some application examples of the method according to the invention.
- FIG. 5 shows schematically an alternative embodiment of the present invention.
- Figure 6 shows an additional embodiment, demonstrating a method of accelerating a particle
- Figure 1 shows schematically a droplet generating apparatus 2 for printing a fluid material 4.
- This droplet generating apparatus is an example of a particle generating system that is able to individually generated isolated particles in the form of droplets.
- the apparatus 2 comprises a droplet generating head 12, constructed and arranged for printing a fluid with a printing pressure in at least a part of a channel upstream of the printing head, preferably in an interval of 0.1-3000 bars.
- a pressure system 40 is provided comprising a fluid inlet 41 and an outlet channel 42.
- the outlet channel 42 of the pressure system 40 connects with a damper 43.
- the outlet of the damper 43 is connected to the print head 12 via channel 10.
- the channel in the print head 12 is provided with at least one outflow opening, nozzle 14 through which the fluid material 4 exits under pressure in the form of a jet breaking up into drops, in order for these drops, after being selectively deflected, or directed, towards fluid jet 300.
- a transverse dimension of the nozzle 14 can be in the interval of 5-300 micron.
- the channel 10 comprises a portion downstream of the nozzle 14 which is provided with a cock 15.
- the printhead 12 can be flushed with a flushing material/flushing ink which is present in the channel.
- the illustrated apparatus 2 is a printer of the continuous jet-type, whereby a continuous stream of drops to be printed is formed.
- the invention may be also applicable in a drop-on-demand type printer system where drops are delivered through the outflow opening only if the printhead has been activated to that effect.
- the apparatus 2 is provided with a pressure regulating mechanism for varying the pressure of the material 4 upstream of the outflow opening.
- the apparatus 2 in this example may be provided with a pre-treatment systeml ⁇ .l, 16.2 enabling the drops to be pretreated.
- the pre- treatment system 16.1, 16.2 is provided, for instance, with a heater, cooler, a drying system, gas treatment, radiation treatment (UV treatment) by means of which the drops can be pretreated.
- the apparatus 2 may be provided with a collector 18 by which particular drops can be captured.
- the collector 18 is shown to be able to collect the isolated droplets after collision, typically, after having flown in a free flight sufficiently to be able to collect the particles substantially individually, for example, after a dry-out phase or a chemical reaction phase in free flight.
- the pressure generating means 40 may be constructed for providing a printing pressure in an interval of 0.1-3000 bars. Accordingly, high-viscous materials 4, for instance in a range of 0.1-800 mPa.s may be passed under a predetermined pressure through the channel in the direction of the nozzle 14. Under this pressure, viscous fluid 4 accommodated in the reservoir is forced through the channel 10 to the nozzle 14 in the printhead 12. Next, the viscous fluid 4 is forced through the nozzle 14 to fly as droplets 30 in free flight towards the collector 18 arranged in a flight trajectory of the particle 3Q.
- the apparatus 2 according to Figure 1 is preferably provided with a heating element 34 for adjusting the viscous fluid 4 to a desired temperature.
- a second pressure system 20 is provided comprising a second nozzle 140.
- the second nozzle 140 is arranged to generate a generally uninterrupted fluid jet 300.
- the second nozzle 140 is slitted to produce a sheet form or curtain form uninterrupted fluid jet having a relatively thin thickness of about several microns, preferably less than 1500 micron, to arrive at smaller thicknesses.
- the sheet form jet at a particle traversing place has a thickness which is relatively thin so that the particles can traverse without being caught by the jet.
- the jets may have varying forms such as concentric forms flat shapes or curved shapes, but are essentially not disturbed near a particle traversing location, contrary to, for example, such as in EP0563402 by transverse directed flows of additional jets.
- a cross-section of the second nozzle 140 may be formed having broadened opposite sides.
- the second pressure system 20 is arranged to direct the fluid jet 300 at an angle relative to the direction of the beam of the isolated droplets 30 generated by the nozzle 14 of the fluid pressure system 2.
- isolated refers to the feature that particles are generated substantially separate from each other, and that, although having arbitrary incidence frequency, particles will be spatially separated when directed towards the jet.
- particle generating devices for fluid particles, drop on demand or continuous droplet generating devices based on the Rayleigh break up mechanism are suitable since these devices can impart sufficient kinetic energy to the droplets to collide with a jet and maintain their individuality.
- the fluid nozzle 14 and second nozzle 140 are arranged to have the isolated droplets 30 collide with fluid jet 300 generated by the second nozzle, either in transmissive mode or in reflective mode. Accordingly, as will be further illustrated in the examples a combined droplet is formed of the first fluid (in any phase state) with the second fluid of the fluid jet 300 to provide a multicomponent droplet.
- Printhead 120 of pressure system 20 is depicted with heating element 340; inlet channel 100; cock 150 and fluid material 400, to produce fluid jet 300.
- FIG 1 illustrates a collision of the droplets 30 with the fluid jet 300 in a transmissive mode, that is that the droplets 30 penetrate the fluid jet 300 from one side to the other side.
- figure 1 only illustrates a single nozzle system 14 for generating the droplets 30 a plurality of nozzles 14 can be provided to have a plurality of droplet beams collide with the fluid curtain formed by the second nozzle 140.
- a first embodiment is illustrated wherein droplets 30 are produced by nozzle 14 that are generally immiscible with fluid jet 300.
- a second fluid jet 310 is provided to illustrate the possibility of having colliding a droplet 30 with several fluid jets 300, 310 in order to form multilayer particles 31, 32 or particles comprised of a plurality of components.
- a "true encapsulation" of the droplets 30 with fluid jet material 300 is formed, optionally also by additional fluid jets 310 and higher.
- the droplets are formed as a core having an encapsulation formed around the core.
- complex multilayered / multimaterial particles 32 can be formed according to one aspect of the invention. Since the droplet generating arrangement 14 is of a continuous type this can produce higher volumes and will be interesting for industrial applications. It should be note that the droplets 30 are formed by ejecting a liquid but may become a solid before or after traversing fluid jet 300, for example pending on a preprocess 50 that may be performed on the droplets 30.
- Such pretreatment can be heating or cooling or drying or gas treatment or a radiation treatment, for example UV-treatment or any technique that may be feasible to pretreat the droplets 30 prior to colliding them with the fluid jet 300.
- Applications can be for example toner fillings or photography related applications or an application where uniform droplet sizes are of importance for example for providing solder paste.
- solder balls can be formed by emitting solder droplets and having them coated with the flux provided by a fluid jet. With this process solder balls can be coated with a small amount of flux to generate highly efficient solder paste.
- Another application can be in food, feed, pharma, cosmetics and other areas where a stabilization or protection of sensitive ingredients is needed. For example by encapsulating these with a permeation-limiting shell material.
- the fluid jet material can be chosen to provide a chemically protective encapsulation, or to provide a UV-protective encapsulation.
- the protection is designed against an unexpected chemical treat or physical treat of the ingredients, for example but not limited to UV-light, or oxygen, water, PH, ions or chemicals.
- the encapsulation can be provided to shield reactive ingredients, for example reactive polymers or glues or epoxy resins from environments.
- the first material is arranged to be chemically reactive with a for a predetermined environment parameter, for example but not limited to UV- light, oxygen, water, PH, ions or other chemicals. Degradation or rupturing of the encapsulation material may lead to release of the core material which would be able to provide materials that are self-repairing where such particles may be embedded in a matrix material or premixed two-component glue.
- the first droplet material may stay in any desired phase depending on material parameters including gas phase, liquid phase or solid phase.
- liquids such as water maybe encapsulated by a solid encapsulation to provide particles filled with water. These might be used to generate instant ready meal without the need of adding extra water.
- the advantage of having encapsulated is that the water releases when it is necessary and not beforehand.
- the second material can be designed to have suitable material properties to have a predetermined permeability to the first material that is encapsulated inside to provide a time delayed release of the first material.
- particles 31 can be made that can be used as slow or triggered release applications. By selecting a shell material that has a degree of permeability the payload can diffuse out of the particles with a diffusion rate depending on the permeability of the shell.
- a shell material can be selected that is impermeable until made permeable by a certain trigger (e.g. water, enzymes, pH, temperature, mechanical energy). This will then result in a release of the payload as described above.
- a certain trigger e.g. water, enzymes, pH, temperature, mechanical energy.
- a body cream may contain particles (e.g. perfume, deodorant) that, upon heating, rupture or melt to release an ingredient (e.g. menthol or ethanol), that will produce a cooling or soothing effect.
- particles e.g. perfume, deodorant
- an ingredient e.g. menthol or ethanol
- fragrances cosmetics, home care
- antibacterial paint, anti fouling coatings
- antioxidants food, feed
- the method can be extended to a collided droplet 31 with a further fluid jet 310.
- This provides a possibility to encapsulate two or more ingredients that need to be kept apart (e.g. to reactivity).
- An example may be two component glue: wherein a particle is ruptured, the two components are released and will react.
- Another example of a multiple layered particle may be a particle that is releasing one or more active ingredients in a time delayed manner.
- each of the ingredients may be released by different or identical triggers which could be used to release various compounds in different parts of a digestive tract and responds to the presence of different enzymes present in the various parts of the digestive tract.
- a post-treatment step 51 can be performed such as heating, cooling, drying or gas treatment or any other UV treatment or other techniques to post process the particles 31.
- this may be aimed at providing a droplet that is immiscible with the fluid jet material in order to provide a well defined encapsulation. This may equally apply to the encapsulation of liquefied gasses.
- the method provides a plurality of coated droplets that could be received on a substrate to provide a matrix of droplets having a predetermined interspacing.
- the dimension of the droplets can be very precisely controlled to form identical droplets.
- coloring effect can be generated by interference of light.
- particles can be distanced optically by having a transparent coating of a predetermined thickness. Placing these particles against each other provides a control distance between core particles.
- Other application could be providing encapsulated biomaterials such as cells or viruses.
- Another application could be even providing encapsulated solid objects such as plant seeds to have them coated with predetermined coating materials for example to provide antifungal or germination enhancing effects.
- Figure 3 shows a series of non-spherical droplets that can be provided by varying heat capacities and temperatures of the core material 30 and the fluid jet material 300.
- non-spherical particles can be obtained when providing droplets of water/glycol mixture through a molten paraffin or wax screen 300. Rather than spheres, elongated drops with a long tail were obtained as in Figure A.
- non-symmetrical aspect ratio can provide oriented or aligned particles 32 as in Figure 3.
- the inner material can be made addressable, which may provide applications such as a controlled diffusion or release profile of the inner material out of the particles.
- removal of the interior material may provide interesting large areas structures, for example for use as catalysts or the like.
- Figure 4 shows a further aspect of the invention, wherein the droplet material 30 and the liquid jet material 300 are chosen to be of a miscible nature, to provide a mixed multicomponent droplet.
- the material 30 and 300 are mixed, which could result in emulsified, crystallized or gelated droplets, depending on the materials and conditions chosen, for example this set-up can provide micro- compartmentalized entities or microreactors, which can form a free environments wherein reactions or processes can be employed that are difficult to control in other set-ups due to strong heat effects and /or risks of explosion.
- the materials 30 and 300 may be a pure liquid or any other suitable forms of fluids that may already be mixed or emulsified or any other condition.
- droplets 30 comprise of e.g. an oil in ethanol
- shooting drops 30 through a screen 300 e.g. water
- a screen 300 e.g. water
- each ethanol/water droplet will contain an identical oil droplet.
- This method can be used to make uniform oil droplets (or other particles) of a size that is not limited by the (lowest possible) size of the printer nozzle.
- Applications may be found in pharma where emulsions are frequently used. The potentially small particle size would result in a large surface area per weight, and hence a faster dissolution or better uptake in vivo, potentially leading to higher bioavailability (administration: dermal, pulmonal, mucosal, oral). The same holds true for food, feed, and cosmetic applications.
- smaller emulsions are of interest for pharma, food, and cosmetics as the sensory perception of such small emulsions may be more desirable.
- Solidification of the small (inner) droplets might result in interesting nanomaterials, or particles that may have applications in heterogeneous catalysis.
- droplets 30 may comprise a solid compound (non-water-soluble) dissolved in ethanol.
- Printing drops of this solution through screen 300 e.g. water
- the size of the solid particles might well be very small, allowing the formation of nanop articles or nanocrystals.
- the particle size might be very monodisperse. (Note: crystallization may also be induced by a change in pH, salt concentration or some other parameter.)
- a third embodiment 370 rather than leading to emulsification or precipitation, the mixing of solution 1 and 2 may result in gelation of the particle.
- An example of this may be to print drop of a Na-alginate solution through a Ca2+ solution screen, thus producing micro gel -particles.
- Microgel particles are being investigated widely for various applications ranging from drug delivery devices to environmental applications in which they may be used as nanosponges.
- the use of a printing setup allows one to start with a relatively viscous solution (i.e. a concentrated polymer solution), resulting in gel particles with a very high solid content not easily attainable by other methods.
- a relatively viscous solution i.e. a concentrated polymer solution
- gel particles with a very high solid content not easily attainable by other methods.
- gels generally consist of two separate but each continuous phases, the removal of one of the two phases would result in a micro/macroporous material of well defined size (monodisperse) that would have zeolite-like properties
- a fourth embodiment 380 the mixing of several reactants by coalescence of droplets 31 and fluid jet 300 can be used to carry out chemical reactions.
- Each drop would function as a microre actor, giving many of the advantages for which microfluidic devices are currently being investigated. Heat effects and dangerous compounds would be easier to control, however, the continuous process would still allow the production of significant quantities of material.
- the mixing embodiments 350, 360, 370 and 380 can be used in addition to the encapsulation embodiment discussed in Figure 2.
- the nozzle 14 illustrated in Figure 4 can be arranged to have the isolated droplets 30 collide with the fluid jet 300 in a reflective mode. It is possible to have a second fluid jet 310 parallel to first fluid jet to provide an additional reflective mode. In this way the isolated droplet 30 can be collided with one or more fluid jets to provide a nonsymmetrical coating.
- a rapidly solidifying material may be used for providing droplets 30, resulting in bouncing of solid particles 30 of the surface of fluid jet 300. This may also be a material that solidifies rapidly or which may be a paint that is dried subsequently.
- the particles in the transmissive mode, generally, as shown in Figure 3, the particles will be provided with a substantially complete encapsulation or complete intermixing, depending on the material, with fluid of the fluid jet 300.
- the coating in the reflective mode, such encapsulation or mixing may be only partial.
- the coating can be non-symmetric with respect to color, polarity, hydrophilic and/or surface chemistry characteristics resulting in different binding or reaction sites.
- One exemplary use can be as E-ink wherein particles are coated white and black on respective sides and can be addressed to show either white or black when in addition they are having a suitable polarity that can be oriented, for example by electrodes in a conventional way. This can result in higher resolution images since the particle size can be smaller than 250 micron.
- a plurality of colors for example three different colored sides may be possible.
- Another application may be used of these asymmetric coated particles as macrosurfactants, for example for novel types of emulsion stabilizers or as compatibilizers for gluing of two different materials.
- macrosurfactants for example for novel types of emulsion stabilizers or as compatibilizers for gluing of two different materials.
- particles can be made with different properties on each end, they may be applicable for us as material for coatings, and could for example convert hydrophobic surfaces to hydrophilic.
- they may be used as additives for self-stratifying layers.
- Figure 6 shows an additional embodiment, demonstrating a method of accelerating a particle 30 toward the fluid jet 300, preferably, to velocities, wherein the particles are able to penetrate and fully traverse the fluid jet, the velocities depending on the thickness of the fluid jet, the fluid jet speed and the particle speeds and masses.
- printing methods may be well capable of imparting sufficient kinetic energy to the particles 30, the particles are generated, for printing nozzles, in a fluid form, which, during flight, may change from liquid phase to another phase, for instance solid phase.
- the embodiment of Figure 6 is convenient to accelerate isolated particles that may already be in solid phase, or to impart extra kinetic energy to jetted droplets jetted from printing head 12 and particle interdistance. It can also be used to increasing its focusing accuracy.
- This embodiment includes a gas stream guiding system 60 which comprises a first part 64 having a forced air intake, and a second part 63 having with a converging diameter over essentially its entire length.
- a gas stream guiding system 60 which comprises a first part 64 having a forced air intake, and a second part 63 having with a converging diameter over essentially its entire length.
- single isolated droplets 30 are generated, this embodiment is also suitable for multiple particles released in parallel. Conveniently, this embodiment focuses the particles 30 to a single focused stream of particles.
- the tube diameter of the second part 63 at the start of the converging flow is 8-12 times larger than the tube diameter at the end of the converging flow, i.e. at the release opening 65 of the tube.
- the diameter of the second part 63 converges over the length of said part in respect of the central axis of said second part in an angle in the range of from 2-90°. More preferably, between 5° and 90°, most preferably between 5-45°.
- part 63 has a length in the range of from 0.5-150 cm.
- the second part 63 has a length in the range of from 0.5-100 cm.
- converging part 63 focus and accelerate the carrier gas flow containing particles 30.
- the carrier gas can be normal air but can also be selected from the group consisting of nitrogen, hydrogen, argon or a mixture thereof.
- a characterization of the gas flow is through the Stokes number. It will be appreciated that the Stokes number (St) of a particle in a gas flow, in our case droplets, is defined as follows:
- a carrier gas deflector system 62 is arranged to deflect the gas flow before collision with the fluid jet 300, so as to have said particle collided with the fluid jet 300 substantially free from the gas flow.
- the gas deflector system is formed by a flow channel deflecting the gas stream away from a particle collision direction.
- the gas stream guiding system comprises a first release opening 65 for releasing the gas into the gas deflector system 62.
- a steady gas flow is maintained over a first period of time, wherein the Stokes number of the droplets in the gas stream is less than 1 during the first period of time. Which will make the particles follow the gas flow and they will accelerate substantially equal with the gas acceleration.
- the steady flow of the droplets in the gas stream is converted into a converging flow and , maintaining the converging flow of the droplets over a second period of time, whereby the Stokes number of the droplets in the gas stream increases up to a value higher than 10 during the second period of time, near the end of part 63 leading to part 65.
- the first and second periods of times may be in the range of from 0.1- 10 seconds and 0.01 - 1 seconds respectively. In the second period, the particles will not be further accelerated but will follow their own course, towards second release opening 66.
- the deflector is formed by a flow channel deflecting the gas stream away from a particle collision direction and wherein, in the flow channel, along a particle collision direction and opposite the first release opening 75; a second release opening 66 is provided for providing passage to the particle 30. Due to the high Stokes number the kinetic energy of the particles will be dominant and they will follow their own trajectory through opening 66.
- the first release opening 65 is larger than the second release opening 66.
- Pumps 61 may be provided in a counter flow path between the second part and the first part, to maintain the carrier gas stream in almost a closed system, (re)injecting the gas into the first part 64, after flowing from the second part 63.
- a method for generating a multicomponent particle comprising generated at least one isolated particle 30 of a first material, generating a generally uninterrupted fluid jet of a fluid jet 300 of a second material and colliding said isolated droplet 30 with the fluid jet 300 so as to combine said droplet of the first material with the second material.
- generally uninterrupted refers to a fluid jet, without dividing up into separate droplets by Rayleigh break up effect or by any other disturbance such as mixing or combining of flows when collided, except, of course the collision of the particle itself. However, more downstream of the jet such could be taking place without consequences for the particle encapsulation.
- a generally large impact area can be provided so that a plurality of particle beams can be aimed at the fluid jet and large quantities of particles can be produced.
- the planarity of the fluid jet can be increased by having a cross-section of the fluid jet nozzle 140 in a slip form having broadened opposite sides.
- applied pressures can range from 0.1 — 3000 bars and applied temperatures can range from — 200 to + 1800 °C. Viscosities may range from 0.5 10 3 to 3000 10" 3 Pa. s. upon exit.
- the term "fluid" may encompass, without limitation, a liquid or liquid mixtures; solutions; emulsions; dispersions or melts, and may include gasses or liquefied gasses.
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Abstract
Description
Claims
Priority Applications (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2694051A CA2694051A1 (en) | 2007-07-20 | 2008-07-07 | Multi component particle generating system |
| NZ583087A NZ583087A (en) | 2007-07-20 | 2008-07-07 | Multi component particle generating system: isolated particles colliding with an uninterupted fluid jet |
| CN200880103748.7A CN101795758A (en) | 2007-07-20 | 2008-07-07 | Multi component particle generating system |
| AU2008279870A AU2008279870B2 (en) | 2007-07-20 | 2008-07-07 | Multi component particle generating system |
| EP08766877A EP2180941A1 (en) | 2007-07-20 | 2008-07-07 | Multi component particle generating system |
| US12/669,656 US8826848B2 (en) | 2007-07-20 | 2008-07-07 | Multi component particle generating system |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP07112887A EP2020261A1 (en) | 2007-07-20 | 2007-07-20 | Multi component particle generating system |
| EP07112887.0 | 2007-07-20 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2009014432A1 true WO2009014432A1 (en) | 2009-01-29 |
Family
ID=38777746
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/NL2008/050456 Ceased WO2009014432A1 (en) | 2007-07-20 | 2008-07-07 | Multi component particle generating system |
Country Status (8)
| Country | Link |
|---|---|
| US (1) | US8826848B2 (en) |
| EP (2) | EP2020261A1 (en) |
| CN (1) | CN101795758A (en) |
| AU (1) | AU2008279870B2 (en) |
| CA (1) | CA2694051A1 (en) |
| NZ (1) | NZ583087A (en) |
| TW (1) | TW200911387A (en) |
| WO (1) | WO2009014432A1 (en) |
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| EP2058131A1 (en) * | 2007-11-09 | 2009-05-13 | Nederlandse Organisatie voor toegepast- natuurwetenschappelijk onderzoek TNO | Droplet selection mechanism |
| EP2726870B1 (en) | 2011-06-29 | 2018-10-03 | Academia Sinica | The capture, purification and release of biological substance using a surface coating |
| EP2827287A1 (en) | 2013-07-15 | 2015-01-21 | Nederlandse Organisatie voor toegepast -natuurwetenschappelijk onderzoek TNO | Track and trace mail piece for registered mail and medicine wrapper |
| CN104511399B (en) * | 2013-09-30 | 2017-02-15 | 无锡华润安盛科技有限公司 | Glue dispensing head apparatus |
| US10016777B2 (en) * | 2013-10-29 | 2018-07-10 | Palo Alto Research Center Incorporated | Methods and systems for creating aerosols |
| US9962673B2 (en) * | 2013-10-29 | 2018-05-08 | Palo Alto Research Center Incorporated | Methods and systems for creating aerosols |
| TW201623605A (en) | 2014-04-01 | 2016-07-01 | 中央研究院 | Method and system for cancer diagnosis and prognosis |
| US10112198B2 (en) | 2014-08-26 | 2018-10-30 | Academia Sinica | Collector architecture layout design |
| GB2551944B (en) | 2015-12-18 | 2021-09-01 | Midatech Pharma Wales Ltd | Microparticle production process and apparatus |
| US10107726B2 (en) | 2016-03-16 | 2018-10-23 | Cellmax, Ltd. | Collection of suspended cells using a transferable membrane |
| ES2846125T3 (en) | 2016-03-30 | 2021-07-28 | Iamfluidics Holding B V | Process and device for the production in air of individual droplets, compound droplets and (compound) particles or fibers with controlled shape |
| US10850298B1 (en) * | 2016-05-06 | 2020-12-01 | Madeline A. Kuchinski | System for non-contact coating of moving component through a falling flow of coating material |
| NL2025932B1 (en) | 2020-06-26 | 2022-02-21 | Iamfluidics Holding B V | Micro-fluidic system and method |
| CN115228317B (en) * | 2022-07-05 | 2024-04-26 | 中国农业科学院烟草研究所(中国烟草总公司青州烟草研究所) | Fertilizer and pesticide preparation device and method for flue-cured tobacco planting |
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|---|---|---|---|---|
| GB2067908A (en) * | 1980-01-25 | 1981-08-05 | Neptune Microfloc Inc | Method and apparatus for wetting powder or granular material |
| WO1993011844A1 (en) * | 1991-12-17 | 1993-06-24 | Holm Christensen Boerge | A method for coated particles in a spray-drying plant |
| US5230735A (en) * | 1989-09-22 | 1993-07-27 | Nisshin Flour Milling Co., Ltd. | Apparatus for coating powder particles |
| EP0563402A1 (en) * | 1991-10-18 | 1993-10-06 | Freund Industrial Co., Ltd. | Coating apparatus |
| WO1994017941A1 (en) * | 1993-02-06 | 1994-08-18 | Osprey Metals Limited | Production of powder |
Family Cites Families (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4341310A (en) * | 1980-03-03 | 1982-07-27 | United Technologies Corporation | Ballistically controlled nonpolar droplet dispensing method and apparatus |
| JPS62282658A (en) | 1986-05-30 | 1987-12-08 | Sankyo:Kk | Droplet nozzle for producing multiple seamless capsule |
| DK160809C (en) * | 1989-01-09 | 1995-10-02 | Niro Holding As | Process and atomizer drying apparatus for producing stable particle agglomerates |
| JPH02282658A (en) | 1989-04-24 | 1990-11-20 | Fujitsu General Ltd | Heat pump type water heater |
| ES2180405B1 (en) | 2001-01-31 | 2004-01-16 | Univ Sevilla | DEVICE AND PROCEDURE FOR PRODUCING MULTICOMPONENT COMPOSITE LIQUID JEANS AND MULTICOMPONENT AND / OR MULTI-PAPER MICRO AND NANOMETRIC SIZE CAPSULES. |
| US7258428B2 (en) | 2004-09-30 | 2007-08-21 | Kimberly-Clark Worldwide, Inc. | Multiple head concentric encapsulation system |
| US20070003694A1 (en) * | 2005-05-23 | 2007-01-04 | Shivkumar Chiruvolu | In-flight modification of inorganic particles within a reaction product flow |
| TW200711809A (en) | 2005-05-23 | 2007-04-01 | Nanogram Corp | Nanostructured composite particles and corresponding processes |
-
2007
- 2007-07-20 EP EP07112887A patent/EP2020261A1/en not_active Withdrawn
-
2008
- 2008-07-07 US US12/669,656 patent/US8826848B2/en not_active Expired - Fee Related
- 2008-07-07 EP EP08766877A patent/EP2180941A1/en not_active Withdrawn
- 2008-07-07 NZ NZ583087A patent/NZ583087A/en not_active IP Right Cessation
- 2008-07-07 AU AU2008279870A patent/AU2008279870B2/en not_active Ceased
- 2008-07-07 CA CA2694051A patent/CA2694051A1/en not_active Abandoned
- 2008-07-07 CN CN200880103748.7A patent/CN101795758A/en active Pending
- 2008-07-07 WO PCT/NL2008/050456 patent/WO2009014432A1/en not_active Ceased
- 2008-07-07 TW TW97125514A patent/TW200911387A/en unknown
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB2067908A (en) * | 1980-01-25 | 1981-08-05 | Neptune Microfloc Inc | Method and apparatus for wetting powder or granular material |
| US5230735A (en) * | 1989-09-22 | 1993-07-27 | Nisshin Flour Milling Co., Ltd. | Apparatus for coating powder particles |
| EP0563402A1 (en) * | 1991-10-18 | 1993-10-06 | Freund Industrial Co., Ltd. | Coating apparatus |
| WO1993011844A1 (en) * | 1991-12-17 | 1993-06-24 | Holm Christensen Boerge | A method for coated particles in a spray-drying plant |
| WO1994017941A1 (en) * | 1993-02-06 | 1994-08-18 | Osprey Metals Limited | Production of powder |
Also Published As
| Publication number | Publication date |
|---|---|
| US8826848B2 (en) | 2014-09-09 |
| US20100247760A1 (en) | 2010-09-30 |
| CA2694051A1 (en) | 2009-01-29 |
| AU2008279870A1 (en) | 2009-01-29 |
| TW200911387A (en) | 2009-03-16 |
| EP2020261A1 (en) | 2009-02-04 |
| EP2180941A1 (en) | 2010-05-05 |
| CN101795758A (en) | 2010-08-04 |
| AU2008279870B2 (en) | 2012-07-05 |
| NZ583087A (en) | 2012-09-28 |
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