Method, system, and apparatus for the electro conductive extraction of water molecules from the air
11708686 · 2023-07-25
Assignee
Inventors
Cpc classification
Y02A20/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D5/006
PERFORMING OPERATIONS; TRANSPORTING
B01D5/0051
PERFORMING OPERATIONS; TRANSPORTING
B01D5/009
PERFORMING OPERATIONS; TRANSPORTING
B01D5/0042
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An apparatus, system, and method for the extraction of water molecules from the air includes a combination of electrical mechanisms and materials engineering. With the help of hydrophobic and hydrophilic materials on an array of thermally conductive and electrically insulated materials, the extraction of water from the air is significantly increased. A combination of hydrophobic and hydrophilic materials and an electric field gradient moves the water molecules towards the collection system thus speeding up the water formation process. This also inhibits the re evaporation of the water droplets.
Claims
1. A system for collecting water from air, the system comprising: a casing comprising: an air input port, an air output port, and a collection container, a voltage supply, a plurality of electrically chargeable elements electrically connected to the voltage supply and configured to emit an electrostatic field, at least one cooling element, at least one humidity sensor, at least one temperature sensor, and control circuitry configured to: receive measurement data from the at least one humidity sensor and the at least one temperature sensor, and adjust the electrostatic field to a selected value from among a gradient of electric field values and adjust the at least one cooling element based on the measurement data to promote condensation.
2. The system of claim 1, wherein the casing comprises an inner shell and an outer shell and wherein the plurality of electrically chargeable elements are configured within the inner shell.
3. The system of claim 2, wherein the inner shell is thermally conductive.
4. The system of claim 2, wherein the outer shell comprises an insulative thermoplastic material.
5. The system of claim 1, further comprising one or more grounding components configured to direct the electrostatic fields of each of the electrically chargeable elements.
6. The system of claim 5, wherein the one or more grounding components comprise a grounding rod.
7. The system of claim 5, wherein the one or more grounding components comprise a plurality of grounding plates, each configured proximate to one of the electrically chargeable elements.
8. The system of claim 5, wherein the one or more grounding components are configured such that the electric fields are configured to induce flow of water toward the grounding components.
9. The system of claim 1, wherein each of the electrically chargeable elements comprise a first plate and a collector configured as a second plate connected to the first plate.
10. The system of claim 9, wherein each of the collectors comprise one or more pointed tips at an edge of the second plate, wherein the one or more pointed tips are configured to coalesce water droplets.
11. The system of claim 10, wherein the second plates comprise one or more grooves configured to direct water toward the one or more tips.
12. The system of claim 1, further comprising a fan air input port configured to facilitate air movement into the casing.
13. The system of claim 1, wherein the cooling elements are fans or thermoelectric coolers.
14. The system of claim 1, wherein the at least one temperature sensor and at least one humidity sensor are configured to sense the temperature and humidity, respectively, of air entering the air input port.
15. The system of claim 14, wherein adjusting the electrostatic field and the at least one cooling element based on the measurement data comprises calculating a dew point temperature of the air entering the input port.
16. The system of claim 15, wherein adjusting the electrostatic field and the at least one cooling element based on the measurement data comprises adjusting the at least one cooling element to provide a temperature that is below the calculated dew point temperature.
17. The system of claim 15, wherein adjusting the electrostatic field and the at least one cooling element based on the measurement data comprises adjusting the electrostatic field to change the dew point temperature inside the casing.
18. The system of claim 1, further comprising one or more pressure sensors configured to measure pressure within the casing.
19. The system of claim 18, further comprising one or more fans, wherein the control circuitry is configured to adjust the one or more fans based on the measured pressure within the casing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
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(10) While the cooling element 306 is shown for simplicity, it may be substituted for cooling devices 102 such as cooling fans, heat sinks, or any other temperature regulation mechanism that can accomplish substantially the same function. These maybe used interchangeably as they accomplish substantially the same purpose and are within the scope of the invention. Cooling devices 102 may be used to supplement the work of cooling elements 306.
(11) The plate 301 in an exemplary embodiment is made of hydrophilic or super hydrophilic material or a type of surfactant coating, which will reduce the surface tension of water that accumulates on the plate 301. Alternatively, it may be etched with a type of microgroove pattern. The hydrophilic material on the plate 301 lowers the surface energy for the water to condense and spreads the water across the entire surface of the plate 301, which creates conditions favorable for condensation due to polar nature of water. The hydrophilic surface of the plate 301 also ensures that the energy of evaporation is at its maximum due to the attraction of the water on the plate 301, thus minimizing the amount of condensed water reevaporating in the air.
(12) In an alternative embodiment, the plate 301 can be etched with nanoparticles to act as nucleation points for the water molecules in the air to condense on the plate 301. As the diameter of the water molecules are in the nanometer-micrometer size range, this helps in enhancing condensation of further water droplets on the surface of the plate 301 by using the already formed nano droplets as a point of condensation until they reach a critical mass to form a full water droplet.
(13) In an exemplary embodiment, the plate 301 is connected to a voltage source higher than 5 kV and draws minimum amperage. The electric field emanating from the condensation focus device 103 directs the polar water molecules toward the tip 302, which in turn clusters water molecules together, further lowering the surface energy required for condensation. This creates an optimum condition for water condensation. Additionally, grooves 308 that are engraved on the plate 301 further direct the water towards the pointed tip 302. The tips 302 also form a gradient for the electric field, which in turn pulls the charged water towards the tip 302. In an exemplary embodiment, it is the material combination of the hydrophilic plate 301 and the hydrophobic tip 302 along with the electric field effect that lowers the minimum energy required for condensation.
(14) The water reaches the tips 302 where it coalesces to form bigger drops until it reaches critical mass to drop. In order prevent the wetting of tips 302 and ensure drop formation, the tips 302 are made of or coated with hydrophobic or super hydrophobic material. The hydrophobic nature of the tips 302 allow for the increase in liquid-liquid interaction making it favorable for the water to coalesce similar to the ‘lotus effect’ where the water balls up. In another embodiment of the condensation focus device 103, the plate 301 can contain a channel 305 through which a refrigerant can be circulated as shown in
(15) The added advantage of the plate 301 and tips 302 is the elimination of bacterial/live biological material due to the high voltage charge stored on the surface of the plate 301. This aids in reducing the intensity of the filtering process later.
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(17) The water generator 100 contains an input port 101 to access ambient air and an output port 105 from which the air exits the water generator 100. While the exemplary embodiment shows the input port 101 and the output port 105 on the side of the water generator 100, it may also be on the any surface without departing from the scope of the invention. The water generator 100 contains of an arrangement of condensation focus devices 103 as was previously discussed that are connected radially inwards along the inner shell 107. The condensation focus devices 103 maybe angled towards the bottom of the water generator 100 for gravity to act as an additional force to enhance wetting of the plate 301 and coalescence on the tip 302 to speed of the precipitation of water. The inner shell 107 allows for structural stability to hold the condensation focus device 103 as well as support the grounding rod 104. The inner shell 107 also allows for the connections to attach additional cooling devices 102 as shown in
(18) Within the inner shell 107, condensation focus devices 103 are influenced by the grounding rod 104, creating an electrical field. The grounding rod 104 provides a path to electrical ground to create a means of directing the electric field from the plate 301 towards the pointed tips 302 on the condensation focus device 103. In another embodiment of the invention, the grounding rod 104 can be connected to a negative potential source relative to the condensation focus device 103.
(19) The voltage source 109 for the water generator 300 may be DC or AC depending on the source of power or the type of transformer used in the system. In an exemplary embodiment, the voltage source 109 is represented using a generic DC power source that generates a minimum of 3 kV. For AC voltage sources, the condensation focus device 103 may be modified by changing the materials that can build charge with AC voltage. The system voltage source 109 can be modified to a pulsed voltage output to create a pulsed electric field for use in industrious environment where flammable chemicals might enter the air stream inside the water generator 100.
(20) In an alternative embodiment, the air may enter the water generator 100 through use of an air movement device, such as an input fan 602 in communication with the input port 101 as shown in
(21) Additionally, the ambient air maybe pre-cooled using an optional cooling device 102. An example would be a thermo electric cooler. In the exemplary embodiment of the water generator 100 depicted in the drawings, thermoelectric air coolers such as AC-055 CP by TE TECHNOLOGY INC represent the cooling device 102.
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(23) The external monitor logic device 203 may also be configured to command an air movement device in an alternative embedment, such as the type in
(24) The flowchart of the control strategy shown in
(25) With the process started, a flow meter 207 (if installed) can monitor output of the system (step 516). The water collection system in the water generator 100 records the water output in the collection system by a flow meter 207 or appropriate sensor system (step 518). If the water output is sufficient (step 520), then the settings remain at their current levels. If the water output is insufficient, the internal monitor logic device 208 combines the signals from the internal temperature sensor 206, the pressure sensor 210, and the flow meter 207 to determine what needs to be adjusted. If the electrical field needs to be adjusted (step 526), then the voltage required to generate the required electric field is adjusted (step 528), and the process continues. If the pressure of the system needs to be adjusted (step 554), then the pressure level is altered (step 556) and the process continues. This may be accomplished by any means know to those skilled in the art, including altering the speed of an input fan 602. If the cooling of the system needs to be adjusted (step 522), then the cooling level is altered (step 524). This may be accomplished by any means know to those skilled in the art, including increasing power to cooling devices 102 and or the cooling elements 306. The adjustment of any of these systems decrease the energy of condensation, allowing water to condensation.
(26) In an exemplary embodiment with a relative humidity above 70%, the methodology in
(27) While the above disclosed methodology shows one exemplary embodiment, it is understood that they may be rearranged in any order. Further, items that enhance the effectiveness of the condensation focus devices 103 may be added or deleted and still fall within the scope of this disclosure.
(28) Multiple water generators 100 can be put together as modules of a larger water generation system that allow for redundancy in case if one of the water generators 100 fails or stops working. The external monitor logic device 203 can be used to run the redundant modules in case any of the active ones fail to keep the continuous generation of water in critical locations.
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(30) In addition to the elements to extract water from the air, the water generator 100 contains a collection container 106 to store the water as shown in
(31) In an alternative embodiment, the water generator 100 can be modified in design to increase the pressure of the system by compressing the air flowing into the water generator 100 at a higher rate which can build the internal pressure inside the water generator 100. This increase in internal pressure in this embodiment would change the dew point, reducing the intensive cooling required by the condensation focus device 103, which in turn can reduce the overall energy footprint of the entire water generator 100 as well as increase the rate of condensation on each individual condensation focus device 103.
(32) It will be understood that while the above disclosed embodiment used an external monitor logic device 203 and an internal monitor logic device 208, these functions may be combined by a single logic device, such as a multipurpose computer programmed to act as the previously described logic devices. It is also understood that any references to electrical voltage, amperage or other electrical properties are illustrative only and are in no way limiting.
(33) One of skill in the art will appreciate that the above disclosed embodiments provide improved water collection devices. Although specific embodiments are illustrated and described herein, it will be appreciated by those of ordinary skill in the art that any arrangement which is calculated to achieve the same purpose can be substituted for the specific embodiments shown. This specification is intended to cover any adaptations or variations of embodiments. In particular, one of skill in the art will appreciate that the names, terminology, or electrical values listed are not intended to limit embodiments. Furthermore, additional apparatus can be added to the components, functions can be rearranged among components, and new components corresponding to future enhancements and future physical devices used in embodiments can be introduced without departing from the scope of the invention. The terminology used in this application is intended to include all embodiments and alternatives which provide the same functionality as described herein.