SYSTEM AND METHOD FOR GROUNDWATER REMEDIATION
20220371917 · 2022-11-24
Assignee
Inventors
Cpc classification
B01D1/14
PERFORMING OPERATIONS; TRANSPORTING
B01D1/22
PERFORMING OPERATIONS; TRANSPORTING
B09C1/002
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A groundwater remediation system includes a capillary media supported and positioned such that it is partially submerged into a groundwater source to be remediated. Groundwater is drawn into the submerged portion of the capillary media and further into the non-submerged portion of the capillary material via natural capillary action. As the water evaporates from the non-submerged portion of the capillary media, the dissolved solids within the water precipitate onto the media leaving the precipitated solids for reclamation or disposal and allowing the cleaned water vapor to disperse into the ambient air. In some embodiments, heat may be added to the media, water, or air to accelerate the evaporative process.
Claims
1. A system for groundwater remediation, comprising: a capillary media configured to absorb water and propagate the water from a first portion of the media to a second portion of the media via capillary action; a structure for supporting the capillary media within a contaminated water source such that the capillary media is partially submerged and partially exposed so that contaminated water is drawn upwardly through the capillary media via capillary action to precipitate soluble materials from the contaminated water onto the capillary media upon evaporation of the water from the exposed portion of the capillary media; and an air source permitting air to circulate around the capillary media to facilitate evaporation of water from the exposed portion of the capillary media.
2. The system of claim 1, further comprising a heat source operable to heat the capillary media, the contaminated water, the air, and combinations thereof.
3. The system of claim 2, wherein the heat source comprises microwave heater comprising a magnetron microwave emitter configured to generate microwaves.
4. The system of claim 3, wherein the capillary media is seeded with microwave conducive materials to enhance the heating of the capillary media by the generated microwaves.
5. The system of claim 3, further comprising a reflector positioned to reflect the generated microwaves toward the capillary media.
6. The system of claim 1, further comprising a fan configured to circulate air across the capillary media to enhance the evaporation of water from the exposed portion of the capillary media.
7. The system of claim 6, further comprising an exhaust tube in fluid communication with the fan to direct air drawn across the capillary media outwardly away from the contaminated water source.
8. The system of claim 1, wherein the support structure comprises a center open area and a series of outwardly extending spokes for supporting a plurality of capillary media panels.
9. A method for groundwater remediation, comprising: supplying a capillary media configured to absorb water and propagate the water from a first portion of the media to a second portion of the media via capillary action; positioning a structure for supporting the capillary media within a contaminated water source such that the capillary media is partially submerged and partially exposed so that contaminated water is drawn upwardly through the capillary media via capillary action to precipitate soluble materials from the contaminated water onto the capillary media upon evaporation of the water from the exposed portion of the capillary media; and providing an air source permitting air to circulate around the capillary media to facilitate evaporation of water from the exposed portion of the capillary media.
10. The method of claim 9, further comprising providing a heat source operable to heat the capillary media, the contaminated water, the air, and combinations thereof.
11. The method of claim 10, wherein the heat source comprises microwave heater comprising a magnetron microwave emitter configured to generate microwaves.
12. The method of claim 11, wherein the capillary media is seeded with microwave conducive materials to enhance the heating of the capillary media by the generated microwaves.
13. The method of claim 11, further comprising providing a reflector positioned to reflect the generated microwaves toward the capillary media.
14. The method of claim 9, further comprising providing a fan configured to circulate air across the capillary media to enhance the evaporation of water from the exposed portion of the capillary media.
15. The method of claim 9, further comprising removing the capillary media and extracting precipitated materials.
16. The method of claim 15, wherein the materials are identified and extracted based at least partially on their stratification arrangement on the removed capillary media.
17. The method of claim 15, further comprising replacing the removed capillary media with new capillary media.
18. The method of claim 9, wherein the support structure comprises a center open area and a series of outwardly extending spokes for supporting a plurality of capillary media panels.
Description
DESCRIPTION OF THE DRAWINGS
[0013] Illustrative embodiments of the invention are described in detail below with reference to the attached drawing figures, and wherein:
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION
[0019] The subject matter of select embodiments of the invention is described with specificity herein to meet statutory requirements. But the description itself is not intended to necessarily limit the scope of claims. Rather, the claimed subject matter might be embodied in other ways to include different components, steps, or combinations thereof similar to the ones described in this document, in conjunction with other present or future technologies. Terms should not be interpreted as implying any particular order among or between various steps herein disclosed unless and except when the order of individual steps is explicitly described. The terms “about” or “approximately” as used herein denote deviations from the exact value in the form of changes or deviations that are insignificant to the function.
[0020] Embodiments of the invention include systems and methods for groundwater remediation. Various embodiments employ various components, features, and methods for removing contaminants from a water source using a capillary material.
[0021] Looking first to
[0022] Captured groundwater 14 originates from an underground water supply, i.e., the water table and aquifer 20 present under much of the earth's ground surface, with well 12 including an opening or pit 17 tapping through the earth into the aquifer 20. Alternatively, well 12 may include any other passage allowing groundwater 14 into the well 12. High TDS groundwater 22 may enter the aquifer 20 through any mechanism, such as through percolation from the ground surface 18.
[0023] Well 12 may be any type of well, vessel, container, opening or void as known in the art that allows access to captured groundwater 14. For example, in one embodiment well 12 may comprise a liner encircling a hole dug or bored into the ground surface 18.
[0024] The capillary media 16 is preferably positioned and supported in the well 12 by a support structure such as a frame, beam, truss, or the like that positions and supports the capillary media 16 in the desired partially submerged position. Most preferably, the support structure allows the capillary media 16 to be easily removed and replaced as required.
[0025] With the capillary media 16 thus positioned within the well 12, contaminated (i.e., high TDS) groundwater is drawn into the submerged portion of the media 16 and upwardly into the non-submerged portion of the media via natural capillary action. One or more openings 19 at the top of the well allow ambient air 21 to enter the well and circulate surround the media, allowing the water drawn into the media to evaporate. As the water evaporates from the non-submerged portion of the media 16, the dissolved solids within the water precipitate onto the media 16 as their solubility is exceeded in the evaporating water. Thus, the dissolved solids within the groundwater 14 are drawn into the capillary media and deposited onto the capillary media as the water (minus the undesired contaminants) evaporates into the ambient air.
[0026] Because the various materials and contaminants in the groundwater have different solubilities, those precipitated solid materials 24 are deposited across the capillary media 16 in a stratified arrangement, i.e., with less soluble materials generally being deposited lower on the capillary media 16 and more soluble materials generally being deposited higher on the capillary media 16. This stratification of the various materials permits easier extraction and reclamation of the materials from the capillary media 16 if desired. In conjunction with the materials being deposited onto the capillary media 16, the water formerly containing those materials is evaporated into the ambient air—minus those unwanted materials. Thus, the system as just described removes the contaminants from the groundwater and permits the now-cleaned water to evaporate into the air, without the use of any pumps or requiring any powered movement of the water.
[0027] It should be understood that while the exemplary embodiment of
[0028] Looking still to
[0029] With the structure and general operation of the system 10 set forth, looking to
[0030] At block 106, a heat source provides heat to the system to accelerate the evaporation of the water once drawn into the capillary media. It should be understood that the heat source may heat the water, the capillary media, the air, or combinations of those. It should be further understood that in other embodiments that no external heat source may be applied.
[0031] At block 108, air is directed across the capillary media to accelerate the evaporation of water. As described above, as the water evaporates from the capillary media the solids within the water are precipitated to the capillary media.
[0032] At block 110, the capillary media is removed and replaced with new media to allow further removal of additional contaminants if necessary.
[0033] Finally, at block 112, the materials precipitated onto the capillary media are extracted from the media for reclamation, reuse, or disposal.
[0034] It should be understood that the steps as just described are exemplary, and that various combinations of the described steps are within the scope of the present invention. For example, in some embodiments, no heat may be applied to the system to accelerate the evaporation of the water from the capillary media. In other embodiments, the air may circulate naturally around the capillary media, with no fan or air mover to accelerate or direct the air flow. These and other embodiments are within the scope of the present invention.
[0035] Turning to
[0036] Turning to
[0037] A series of horizontal support rods 310 extend outwardly like spokes from each of the lower ring 302 and the upper ring 304, with the upper and lower support rods aligned in pairs. A sheet or pocket of capillary media material 312 is attached over each pair of upper and lower support rods so that the material 312 is held vertically upright, extending between the upper and lower rods.
[0038] As can be seen in
[0039] With reference back to
[0040] It should be understood that the cylindrical shape and spoked arrangement of the capillary media and support structure are exemplary, and that other configurations of structure and media may be used in accordance with the present invention. For example, the capillary media may be configured as a single cylindrical cartridge, may be configured as multiple rectangular or square sections of media stacked in a cubical arrangement, or may be any other arrangement of media and support structure.
[0041] With reference to
[0042] As can be seen, the system and method as just described are well adapted for removing contaminants from groundwater or other water sources using a capillary media, and without requiring the use of pumps or otherwise requiring movement of the water to be remediated.
[0043] While the system and method of the present invention have been described herein with respect to exemplary embodiments, it should be understood that other configurations and arrangements are within the scope of the present invention. Furthermore, many different arrangements of the various components depicted, as well as components not shown, are possible without departing from the scope of the claims below. Embodiments of the technology have been described with the intent to be illustrative rather than restrictive. Alternative embodiments will become apparent to readers of this disclosure after and because of reading it. Alternative means of implementing the aforementioned can be completed without departing from the scope of the claims below. Identification of structures as being configured to perform a particular function in this disclosure and in the claims below is intended to be inclusive of structures and arrangements or designs thereof that are within the scope of this disclosure and readily identifiable by one of skill in the art and that can perform the particular function in a similar way. Certain features and sub-combinations are of utility and may be employed without reference to other features and sub-combinations and are contemplated within the scope of the claims.