NL2004530C2 - Purification device and method for purifying a fluid. - Google Patents

Purification device and method for purifying a fluid. Download PDF

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Publication number
NL2004530C2
NL2004530C2 NL2004530A NL2004530A NL2004530C2 NL 2004530 C2 NL2004530 C2 NL 2004530C2 NL 2004530 A NL2004530 A NL 2004530A NL 2004530 A NL2004530 A NL 2004530A NL 2004530 C2 NL2004530 C2 NL 2004530C2
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NL
Netherlands
Prior art keywords
fluid
purifying
waves
wave
purification device
Prior art date
Application number
NL2004530A
Other languages
Dutch (nl)
Inventor
Mateo Jozef Jacques Mayer
Jaap Caro
Cees Jan Nico Buisman
Karel Keesman
Hendrik Jannis Cappon
Original Assignee
Stichting Wetsus Ct Excellence Sustainable Water Technology
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Stichting Wetsus Ct Excellence Sustainable Water Technology filed Critical Stichting Wetsus Ct Excellence Sustainable Water Technology
Priority to NL2004530A priority Critical patent/NL2004530C2/en
Priority to EP11715071A priority patent/EP2556030A2/en
Priority to PCT/NL2011/050236 priority patent/WO2011126371A2/en
Application granted granted Critical
Publication of NL2004530C2 publication Critical patent/NL2004530C2/en

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Classifications

    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/008Control or steering systems not provided for elsewhere in subclass C02F
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B06GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS IN GENERAL
    • B06BMETHODS OR APPARATUS FOR GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS OF INFRASONIC, SONIC, OR ULTRASONIC FREQUENCY, e.g. FOR PERFORMING MECHANICAL WORK IN GENERAL
    • B06B1/00Methods or apparatus for generating mechanical vibrations of infrasonic, sonic, or ultrasonic frequency
    • B06B1/02Methods or apparatus for generating mechanical vibrations of infrasonic, sonic, or ultrasonic frequency making use of electrical energy
    • B06B1/0207Driving circuits
    • B06B1/0223Driving circuits for generating signals continuous in time
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B06GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS IN GENERAL
    • B06BMETHODS OR APPARATUS FOR GENERATING OR TRANSMITTING MECHANICAL VIBRATIONS OF INFRASONIC, SONIC, OR ULTRASONIC FREQUENCY, e.g. FOR PERFORMING MECHANICAL WORK IN GENERAL
    • B06B3/00Methods or apparatus specially adapted for transmitting mechanical vibrations of infrasonic, sonic, or ultrasonic frequency
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/30Treatment of water, waste water, or sewage by irradiation
    • C02F1/302Treatment of water, waste water, or sewage by irradiation with microwaves
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/34Treatment of water, waste water, or sewage with mechanical oscillations
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/34Treatment of water, waste water, or sewage with mechanical oscillations
    • C02F1/36Treatment of water, waste water, or sewage with mechanical oscillations ultrasonic vibrations

Description

Purification device and method for purifying a fluid
The present invention relates to a purifying 5 device for purifying a fluid, like drinking water.
Known purification devices often use chemicals and/or require significant amounts of energy to enable the purification of the fluid.
The object of the present invention is to provide 10 an effective and efficient purification device for purifying a fluid, like drinking water.
This object is achieved with the purification device according to the invention, the device comprising: wave-generating means for generating acoustic 15 and/or electromagnetic waves capable to produce wave interference and/or local enhancement of wave intensity/ and control means for controlling the wave generating means capable to achieve a structure 20 with the generated waves such that the structure behaves as a filter.
The device according to the invention is capable of purifying a fluid, including air and liquids, with purification involving separating and/or filtering of 25 contaminations in the fluid, including separation of particles. For example, contaminations include grass seed, graphite, micro-organisms, algae. Other substances and particles can also be considered as contaminations.
The purification according to the invention is 30 based upon interference of acoustic waves or electromagnetic waves in regular structures and/or on local concentration of these waves in a periodic structure. Through the induced interference, in case of electromagnetic waves wave energy 2 is concentrated, while in case of acoustic waves pressure nodes result. These pressures nodes and/or energy concentrations enable the formation of a structure. To achieve such structure control means control the wave 5 generating means that generate the acoustic and/or electromagnetic waves that are capable to achieve wave interference and/or local enhancement of the acoustic and/or electromagnetic field in a periodic structure. The control means generate a structure such that this structure behaves 10 as a reactor or filter. Such reactor or filter purifies the fluid that is forced through this structure.
In fact, the waves accumulate contaminations in the fluid. The accumulated contaminations are removed from the device more or less continuously through a separate exit 15 and/or periodically by interrupting the flow of fluid for a short time period to enable the accumulated contaminations to leave the device separately from the purified fluid.
The control means control the frequency and/or the amplitude of the wave and/or waves that are generated. The 20 frequency and/or amplitude are selected as function of particle characteristics, for example. Preferably, the selection is made such that the use of energy is minimised. The device according to the invention can be applied in a continuous and/or semi-continuous and/or batch process, 25 periodically or continuously.
In one of the presently preferred embodiments according to the invention the fluid comprises drinking water that is purified with the purification device according to the present invention. It is also possible to 30 purify other liquids and gasses. Other applications include the application of the device according to the invention in clean rooms. In such application particles are concentrated in pressure modes and/or energy concentrations. Next, the 3 concentrated particles are removed from the clean room. This improves climate and quality of the clean room. Also, in processes particles can be separated as function of weight and/or diameter by selecting the frequencies and/or 5 amplitude of the waves on the particle characteristics. This can be applied as alternative to, or in combination with, membranes or filters in the processes. Also it is possible to provide "traps", created by the pressure modes and/or energy concentrations operating as a sort of membrane-less 10 membrane. A number of these traps can be provided in series, each trap directed towards a specific particle or contamination. Micro-organisms can be provided in a trap to feed on the substrate.
The forming of the structure with the purification 15 device according to the invention shows some similarities with optical tweezing, which is a known method of trapping small particles of the micro- to nano-scale, including micro-organisms, using highly focussed laser beams, or the locally enhanced electromagnetic field at a photonic crystal 20 cavity. In optical tweezing light waves are concentrated generating an electromagnetic field attracting the small particles. Energy is required for the particle to enable movement from this position and a barrier against such movement results. The use of electromagnetic waves and/or 25 acoustic waves according to the invention enables filtering of particles that can even be larger as compared to the micro- to nano-scale.
As an additional advantage of the device according to the invention it is possible to control the formation of 30 a three dimensional structure by the control means using the wave interference and/or local wave concentration. Such structure provides channels for the fluid to be purified in stead of holes in a two dimensional structure. Such three 4 dimensional effect improves the effect of the filter on the fluid.
The purification device according to the invention is able to purify a fluid effectively and efficiently 5 without requiring additional chemicals and/or the use of a significant amount of energy for the purification. A further advantage is that the purification device can be used on a small scale with a production rate of a few liters per hour as well as on a large scale with a production rate of 10 thousands of m3 fluid per hour. Another advantage of the purification device according to the present invention are the relatively low investment costs associated with such device. In case of the fluid being drinking water this enables the provision of low cost drinking water in a 15 sustainable manner, for example.
The purification device is able to purify a fluid containing particles preferably in a range of up to 0.5 mm, and possibly even up to 1 mm, and preferably in a range of 0.01-0.5 mm. This range includes grass seed, graphite, and 20 larger algae. Furthermore, micro-organisms can be inactivated, such as the algae. The purification can be performed both by using acoustic and/or electromagnetic waves. Acoustic waves have the beneficial effect that forces acting on the particles are relatively small as compared to 25 conventional membranes for example, although this effect requires modulated radio waves, for example. In this respect it is noted that although forces can be relatively small, the forces should be larger than the drag force acting on the particles by the flowing fluid. A beneficial effect of 30 electromagnetic waves is that these waves require less energy when propagating through the fluid, like water or another fluid, when operating in a transparency window.
5
In a preferred embodiment according to the present invention, the waves comprise ultrasound acoustic waves with one or more frequencies in the range of 1 MHz-10 MHz.
Using ultrasounds as relatively high frequency 5 acoustic waves provides a structure that can be used as a filter for purifying a fluid. In fact, providing such structure can be considered as a type of acoustical tweezing method for capturing particles in a fluid. In case this acoustical tweezing is used as a water filter, this filter 10 structure is capable of trapping particles thereby purifying the fluid, like drinking water, that contains these particles. The frequency range of 1-10 MHz is effectively used to perform such acoustical tweezing. Especially this frequency range is capable of being performed effectively 15 both in a small scale and in a large scale application of the purification device according to the present invention. For this range of applications the mentioned frequency range can be applied efficiently without requiring a significant amount of energy.
20 In a preferred embodiment according to the present invention the ultrasound acoustic waves comprise one or more frequencies in the range of 20-50 kHz.
The relatively low frequency range of 20-50 kHz can be used for disinfecting purposes in the purification 25 device according to the present invention, although providing this relatively low frequency requires the use of additional energy. At these frequencies the ultrasound is able to disinfect a fluid like water by cavitation. The acoustic wave provides air bubbles in the fluid that 30 collapse after a short period of resonance at the ultrasound frequency. These collapses create high energy implosions that are associated with shock waves and locally high 6 temperatures. These effects disrupt cell structures and also decompose organic compounds that are present in the fluid.
Optionally, the frequency range for the acoustical tweezing mentioned above is combined with the low frequency 5 for disinfecting purposes. Such combination of frequencies for trapping and treatment like disinfection provides an efficient purification device for purifying a fluid. As an additional effect of such combination the energy efficiency of the acoustic wave generating means can be improved 10 through the design of resonant structures.
In a preferred embodiment according to the present invention the electromagnetic waves comprise one or more frequencies in the range of 1 GHz-30 GHz.
The range of 1-30 GHz appears to be relevant to 15 purifying a fluid. Experiments and/or calculations have shown that this range is most attractive.
In a preferred embodiment according to the invention the device comprises one or more resonant structures or resonators in a periodic structure.
20 By providing one or more resonant structures, the energy efficiencies of especially the ultrasonic waves are improved. This minimises energy consumption while improving the purification operation.
According to the invention the resonant structures 25 may comprise photonic and/or sonic crystals. Photonic crystals are made from dielectric material with a periodic modulation of the dielectric constant, or equivalent therewith a periodic modulation of the refractive index. Sonic crystals are the sonic equivalent of the above 30 photonic crystals with a periodic variation of the mass density and the bulk modulus.
Both the photonic and sonic crystals have a band gap restricting transmission through the crystal. By 7 introducing a defect in the structure locally a transmission peak is achieved in the band gap. In fact, the defect acts as a resonator or cavity and has a local amplifying effect of the electromagnetic or acoustic/ultrasonic field 5 achieving significant field gradients. For example, with a cavity or defect in the sonic crystal particles and/or contaminations in the fluid are "pushed" away from the field maximum thereby achieving a purifying effect of the fluid.
Providing a periodic geometrical structure in 10 connection with a flow tube or flow reactor to make this tube or reactor a cavity for electromagnetic or sonic waves a purifying effect can be achieved. To improve the throughput of the device according to the present invention more than one defects or resonators can be provided. In such 15 an embodiment the flow tube or flow reactor works as a defect and thus induces locally the resonant behaviour.
In an advantageous embodiment according to the present invention the use of acoustic and electromagnetic waves is combined to provide an efficient and effective 20 purification device. Such device may comprise any combination of features mentioned above and below in relation to the present invention. The combination of these two types of waves has as an additional effect that the energy consumption, especially for the low frequency 25 acoustic waves, is minimised, thereby further improving the purification device.
In a preferred embodiment according to the invention the structure comprises more than one stage, wherein each stage behaves as a filter.
30 By providing different stages behaving as a filter each stage is optimised for a specific contamination in the fluid and/or substance that that requires filtration or separation. Preferably, the stages are provided in series.
8
The series configuration enables a continuous purification of the fluid.
In a further preferred embodiment according to the invention the structure comprises micro-organisms feeding on 5 substrate trapped or filtered by the structure.
By configuring the structure as a filter with one or more stages and providing micro-organisms in some or all of these stages the fluid is purified effectively.
Preferably, the micro-organisms are monitored to ensure a 10 correct operation with these micro-organisms. In addition, the behaviour of the micro-organisms, like growth, is related to the type and quantity of contamination in the fluid.
In a further preferred embodiment according to the 15 invention the structure comprises one or more node lines in a direction substantial perpendicular to the flow direction of the fluid.
By providing the node lines in a direction substantially perpendicular to the flow direction an 20 effective filtering can be realised.
The present invention also relates to a method for purifying a fluid, the method comprising the steps of: - providing a purification device as described above, and generating acoustic and/or electromagnetic wave 25 interference with wave generating means; realising a structure with the generated wave interference by control means controlling the wave generating means such that the structure behaves as a filter; and 30 - purifying the fluid by forcing the fluid through the structure .
Such method provides the same effects and advantages as those stated with reference to the 9 purification device. In addition, the method preferably comprises filtering the fluid from particles with a size of up to 0.5 mm, and preferably larger than 20 pm. These particle sizes include filtering the fluid from grass seed, 5 graphite and larger algae. In the presently preferred embodiment according to the present invention purifying the fluid further comprises generating ultrasound acoustic waves for inactivating micro-organisms that are present in the fluid. This inactivation of micro-organisms in the fluid can 10 be performed at the relatively low frequencies that are mentioned above. The disinfecting of the fluid is preferably combined using generating of cavitations with acoustic waves in the fluid.
Further advantages, features and details of the 15 invention are elucidated on basis of preferred embodiments thereof, wherein reference is made to the accompanying drawing wherein: figure 1 illustrates a purification device according to the invention; 20 - figure 2 illustrates an experimental set up of a purification device according to the invention; figures 3A-D illustrate particle movements in the device of figure 2; figures 4A and B illustrate wave patterns generated 25 in the device of figure 2; figure 5 illustrates simulation results with node lines substantially perpendicular to the flow direction; and figure 6 illustrates a two-dimensional resonant 30 structure of a sonic or photonic crystal.
A purification device 2 (figure 1) is provided with a pipe 4 that enables a fluid 6 to flow from inlet 8 to outlet 10. In the illustrated embodiment from outlet 10 a 10 purified flow 9 and a flow 11 with the separated particles or contaminations from fluid 6. Alternatively, a separate outlet (not shown), for example shaped as a gap, is provided for flow 11 with the separation between flows 9, 11 being 5 achieved using bends, for example, thereby achieving a type of cyclone. Alternatively, ratchets are provided in device 2 to deflect the particles or contaminations. Also, separation can be achieved by periodically flushing device 2 to achieve a periodic flow 11 with the separated particles or 10 contaminations that are maintained in device 2 in between two flushing operations. The above approaches can also be combined together to further improve the performance of device 2. Purification device 2 enables a continuous operation of the purification process. Pipe 4 is provided 15 with wave-generating means 12. Controller 14 activates generating means 12. Controller 4 is provided with information from sensor 16 that is provided in pipe 4 by measurement signal 18. Depending on signal 18 and the desired characteristics of the purification operation 20 controller 14 sends a control signal 20 to the wave generating means 12.
To purify a fluid 6 this fluid 6 is pumped through pipe 4. Preferably, relevant properties, like the amount of particles in the fluid, are measured by sensor 16. This 25 measurement enables adjustment of the settings of the wave generating means 12 by controller 14 to optimise the purification operation in purification device 2.
A separating device 22 (figure 2) comprises a signal generator 24 (Velleman PCGU 1000), 12V DC power unit 30 25, an audio amplifier 26 (Raveland XCA 1200), a computer 27, and four low budget 50W piezo tweeters, 28, 30, 32, 34 (Conrad, brandless TE-300) of which the horns were removed. The tweeters 28, 30, 32, 34 are placed on a table or plate 11 36 and are set up to create a resonance field in between them.
Polystyrene particles 38 (figure 3A) of various sizes, in the illustrated embodiment in the range of 0.5-3 5 mm, were randomly placed in the resonance area and the determined optimal resonance frequency was about 12.6 kHz for the illustrated embodiment. When applying the optimal resonance frequency the particles 38 were moved (figure 3B) towards the stable position and consistently separated in 10 three band 40 (figure 3C en D).
Rows 40 resemble the nodal bands of the resonance area. Particles 38 could even be made to spin or be placed upright when applying the frequency.
Further experimental results show the resonance 15 area 42 between the four tweeters 28, 30, 32 and 34 of the illustrated device 22 with one and a half cosine using two tweeters 28, 34 (figure 4A) and with one and a half cosine, also using the two other tweeters 30, 32 operating. The results show the nodes 44, 46 representing stable positions 20 for particles 38.
Simulation results (figure 5) show a line of nodes 48 extending in a direction substantial perpendicular to the flow direction of the fluid. This enables a continuous treatment of particles captured by the device and/or method 25 according to the present invention. Lines of nodes 48 are placed in series with each line aiming to filter a specific contamination, based on the corresponding dimensions of this contamination, for example.
A sonic or photonic crystal 50 (figure 6) 30 comprises long massive bars 52 of an appropriate material. Crystal 50 is provided with defect or cavity 54. Locally in and around cavity 54 the applied field is amplified. In the illustrated embodiment the applied electromagnetic or 12 acoustic field is indicated with arrows and oriented substantially perpendicular to the length direction of the bars or tubes 52. The typical periodicity of the raster is about 1-2 cm. for electromagnetic and ultrasound waves.
5 The present invention is by no means limited to the above described embodiments thereof. The rights sought are defined by the following claims, within the scope of which many modifications can be envisaged. For example, instead of the pillar slab 52 (figure 6) it is also possible 10 to use a so-called hole slab where holes are provided in a plate achieving similar effects.
13
Clauses 1. Purification device for purifying a fluid, the device 5 comprising: - wave-generating means for generating acoustic and/or electromagnetic waves capable to produce wave interference and/or local enhancement of wave intensity; and 10 - control means for controlling the wave generating means capable to achieve a structure with the generated waves such that the structure behaves as a filter.
15 2. Purification device according to clause 1, wherein the wave interference comprises pressure nodes and/or local enhancement of the waves.
3. Purification device according to clause 1 or 2, wherein 20 the wave interference comprises energy concentrations.
4. Purification device according to clause 1, 2 or 3, wherein the fluid comprises a liquid, preferably drinking water.
25 5. Purification device according to any of clauses 1-4, wherein the waves comprise ultrasound acoustic waves with one or more frequencies in the range of 1 MHz-10 MHz, preferably in the range of 20 kHz-50 kHz.
30 6. Purification device according to any of clauses 1-5, wherein the waves comprise electromagnetic waves with one or more frequencies in the range of 1 GHz-30 GHz.
14 7. Purification device according to any of clauses 1-6, wherein the device further comprises one or more resonant structures and/or resonators in a periodic structure .
8. Purification device according to any of clauses 1-7, the structure comprising more than one stage, wherein each stage behaves as a filter.
9. Purification device according to clause 8, wherein the stages are provided in series.
10. Purification device according to any of clauses 1-9, wherein the structure comprising micro-organisms feeding on substrate trapped or filtered by the structure .
11. Purification device according to any of clauses 1-10, wherein the structure comprising one or more node lines in a direction substantially perpendicular to the flow direction of the fluid.
5 12. Method for purifying a fluid, comprising the steps of: providing a purification device according to any of clauses 1-11, and generating acoustic and/or electromagnetic wave interference with wave generating means; 10 - realising a structure with the generated wave interference by control means controlling the wave generating means such that the structure behaves as a filter; and purifying the fluid by forcing the fluid through the 15 structure.
15 13. Method according to clause 12, wherein purifying the fluid comprises filtering the fluid from particles with a size of up to 0.5 mm.
5 14. Method according to clause 12 or 13, wherein purifying the fluid comprises generating ultrasound acoustic waves for inactivating micro-organisms in the fluid.
10 15. Method to clause 14, further comprising the step of generating cavitations with the acoustic wave.

Claims (15)

1. Zuiveringsinrichting voor het zuiveren van een fluïdum, de inrichting omvattende: 5. golfgenererende middelen voor het genereren van akoestische en/of elektromagnetische golven geschikt voor het realiseren van golfinterferentie en/of het locaal versterken van de golfintensiteit; en 10. regelmiddelen voor het regelen van de golfgenererende middelen geschikt voor het produceren van een structuur met de gerealiseerde golven, zodanig dat de structuur zich gedraagt als een filter. 15A purifying device for purifying a fluid, the device comprising: 5. wave generating means for generating acoustic and / or electromagnetic waves suitable for realizing wave interference and / or locally amplifying the wave intensity; and 10. control means for controlling the wave generating means suitable for producing a structure with the realized waves, such that the structure behaves like a filter. 15 2. Zuiveringsinrichting volgens conclusie 1, waarin de golfinterferentie omvattende drukknopen en/of locale versterking van de golven.A purification device according to claim 1, wherein the wave interference comprising push buttons and / or local amplification of the waves. 3. Zuiveringsinrichting volgens conclusie 1 of 2, waarin de golfinterferentie omvattende energieconcentraties.3. Purification device according to claim 1 or 2, wherein the wave interference comprises energy concentrations. 4. Zuiveringsinrichting volgens conclusie 1, 2 of 3, waarin het fluïdum omvattende een vloeistof, bij 25 voorkeur drinkwater.4. Purifying device according to claim 1, 2 or 3, wherein the fluid comprises a liquid, preferably drinking water. 5. Zuiveringsinrichting volgens één of meer van de conclusies 1-4, waarin de golven omvattende ultrasone akoestische golven met één of meer frequenties in het 30 bereik van 1 MHz-10 MHz.5. Purifying device as claimed in one or more of the claims 1-4, wherein the waves comprising ultrasonic acoustic waves with one or more frequencies in the range of 1 MHz-10 MHz. 6. Zuiveringsinrichting volgens één of meer van de conclusies 1-5, waarin ultrasone akoestische golven omvattende één of meer frequenties in het bereik van 20 kHz-50 kHz. 5A purifier according to one or more of claims 1-5, wherein ultrasonic acoustic waves comprising one or more frequencies in the range of 20 kHz-50 kHz. 5 7. Zuiveringsinrichting volgens één of meer van de conclusies 1-6, waarin de inrichting verder omvattende één of meer resonerende structuren en/of resonerend systeem in een periodieke structuur. 10Purification device according to one or more of claims 1-6, wherein the device further comprising one or more resonant structures and / or resonant system in a periodic structure. 10 8. Zuiveringsinrichting volgens één of meer van de conclusies 1-7, waarin the structuur omvattende meer dan één stadium, waarbij elk stadium zich gedragend als een filter. 15A purifying device as claimed in one or more of claims 1-7, wherein the structure comprises more than one stage, wherein each stage acts as a filter. 15 9. Zuiveringsinrichting volgens conclusie 8, waarin de stadia in serie zijn voorzien.The purification device according to claim 8, wherein the stages are provided in series. 10. Zuiveringsinrichting volgens één of meer van de 20 conclusies 1-9, waarin the structuur omvattende micro- organismen levend op substraat gevangen of gefilterd door de structuur.10. Purifier as claimed in one or more of the claims 1-9, wherein the structure comprising microorganisms live on substrate captured or filtered by the structure. 11. Zuiveringsinrichting volgens één of meer van de 25 conclusies 1-10, waarin de structuur omvattende één of meer knooplijnen in hoofdzaak loodrecht of de stromingsrichting van het fluïdum.11. Purifying device as claimed in one or more of the claims 1-10, wherein the structure comprising one or more nodes substantially perpendicular or the direction of flow of the fluid. 12. Werkwijze voor het zuiveren van een fluïdum, omvattende de stappen van: - het voorzien van een zuiveringsinrichtng 5 volgens één of meer van de conclusies 1-11, en het genereren van akoestische en/of elektromagnetische golfinterferentie met golfgenererende middelen; - het realiseren van een structuur met de 10 gegenereerde golfinterferentie door regelmiddelen welke de golfgenererende middelen regelen, zodanig dat de structuur optreedt als een filter; en - het zuiveren van het fluïdum door het sturen 15 van het fluïdum door de structuur.A method for purifying a fluid, comprising the steps of: - providing a purification device 5 according to one or more of the claims 1-11, and generating acoustic and / or electromagnetic wave interference with wave generating means; realizing a structure with the generated wave interference by control means which control the wave generating means, such that the structure acts as a filter; and - purifying the fluid by directing the fluid through the structure. 13. Werkwijze volgens conclusie 12, waarin het zuiveren van het fluïdum omvattende het filteren van het fluïdum van deeltjes met een afmeting tot 0,5 mm. 20The method of claim 12, wherein purifying the fluid comprising filtering the fluid of particles up to 0.5 mm in size. 20 14. Werkwijze volgens conclusie 12 of 13, waarin het zuiveren van het fluïdum omvattende het genereren van ultrasone akoestische golven voor het deactiveren van micro-organismen in het fluïdum. 25A method according to claim 12 or 13, wherein purifying the fluid comprising generating ultrasonic acoustic waves to deactivate microorganisms in the fluid. 25 15. Werkwijze volgens conclusie 14, verder omvattende de stap van het genereren van cavitatie met akoestische golven.The method of claim 14, further comprising the step of generating cavitation with acoustic waves.
NL2004530A 2010-04-09 2010-04-09 Purification device and method for purifying a fluid. NL2004530C2 (en)

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NL2004530A NL2004530C2 (en) 2010-04-09 2010-04-09 Purification device and method for purifying a fluid.
EP11715071A EP2556030A2 (en) 2010-04-09 2011-04-08 Purification device and method for purifying a fluid
PCT/NL2011/050236 WO2011126371A2 (en) 2010-04-09 2011-04-08 Purification device and method for purifying a fluid

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Citations (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4523682A (en) * 1982-05-19 1985-06-18 The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Administration Acoustic particle separation
US4673512A (en) * 1984-07-06 1987-06-16 Internationale Octrooi Maatschappij "Octropfa" Bv Particle separation
US4743361A (en) * 1983-10-31 1988-05-10 Internationale Octrooi Maatschappij "Octropa" Bv Manipulation of particles
US4759775A (en) * 1986-02-21 1988-07-26 Utah Bioresearch, Inc. Methods and apparatus for moving and separating materials exhibiting different physical properties
US4877516A (en) * 1986-05-27 1989-10-31 National Research Development Corporation Manipulating particulate matter
US5164094A (en) * 1987-05-19 1992-11-17 Wolfgang Stuckart Process for the separation of substances from a liquid and device for effecting such a process
US5225089A (en) * 1988-11-03 1993-07-06 Ewald Benes Method and apparatus for separating particles
EP0633049A1 (en) * 1993-05-11 1995-01-11 Trampler, Felix, Dipl. Ing. Method for treating a liquid
US5626767A (en) * 1993-07-02 1997-05-06 Sonosep Biotech Inc. Acoustic filter for separating and recycling suspended particles
US5688405A (en) * 1996-02-28 1997-11-18 The United States Of America As Represented By The Secretary Of The Navy Method and apparatus for separating particulate matter from a fluid
US6216538B1 (en) * 1992-12-02 2001-04-17 Hitachi, Ltd. Particle handling apparatus for handling particles in fluid by acoustic radiation pressure
JP2004024959A (en) * 2002-06-21 2004-01-29 National Institute Of Advanced Industrial & Technology Noncontact filtering method and apparatus using supersonic wave
US20040057866A1 (en) * 2001-09-25 2004-03-25 Jona Zumeris System and method for sterilization of a liquid
US20040112841A1 (en) * 2002-12-17 2004-06-17 Scott Harold W. System and apparatus for removing dissolved and suspended solids from a fluid stream
US20040173541A1 (en) * 2003-03-06 2004-09-09 Hitachi, Ltd. Water treatment method and water treatment device
US20060096353A1 (en) * 2002-09-16 2006-05-11 The Secretary Of State For Defence Apparatus for directing particles in a fluid

Patent Citations (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4523682A (en) * 1982-05-19 1985-06-18 The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Administration Acoustic particle separation
US4743361A (en) * 1983-10-31 1988-05-10 Internationale Octrooi Maatschappij "Octropa" Bv Manipulation of particles
US4673512A (en) * 1984-07-06 1987-06-16 Internationale Octrooi Maatschappij "Octropfa" Bv Particle separation
US4759775A (en) * 1986-02-21 1988-07-26 Utah Bioresearch, Inc. Methods and apparatus for moving and separating materials exhibiting different physical properties
US4877516A (en) * 1986-05-27 1989-10-31 National Research Development Corporation Manipulating particulate matter
US5164094A (en) * 1987-05-19 1992-11-17 Wolfgang Stuckart Process for the separation of substances from a liquid and device for effecting such a process
US5225089A (en) * 1988-11-03 1993-07-06 Ewald Benes Method and apparatus for separating particles
US6216538B1 (en) * 1992-12-02 2001-04-17 Hitachi, Ltd. Particle handling apparatus for handling particles in fluid by acoustic radiation pressure
EP0633049A1 (en) * 1993-05-11 1995-01-11 Trampler, Felix, Dipl. Ing. Method for treating a liquid
US5626767A (en) * 1993-07-02 1997-05-06 Sonosep Biotech Inc. Acoustic filter for separating and recycling suspended particles
US5688405A (en) * 1996-02-28 1997-11-18 The United States Of America As Represented By The Secretary Of The Navy Method and apparatus for separating particulate matter from a fluid
US20040057866A1 (en) * 2001-09-25 2004-03-25 Jona Zumeris System and method for sterilization of a liquid
JP2004024959A (en) * 2002-06-21 2004-01-29 National Institute Of Advanced Industrial & Technology Noncontact filtering method and apparatus using supersonic wave
US20060096353A1 (en) * 2002-09-16 2006-05-11 The Secretary Of State For Defence Apparatus for directing particles in a fluid
US20040112841A1 (en) * 2002-12-17 2004-06-17 Scott Harold W. System and apparatus for removing dissolved and suspended solids from a fluid stream
US20040173541A1 (en) * 2003-03-06 2004-09-09 Hitachi, Ltd. Water treatment method and water treatment device

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