AIR CLEANING SYSTEM AND METHOD
20230067247 · 2023-03-02
Inventors
Cpc classification
International classification
Abstract
An air cleaning system for removing carbon dioxide from polluted air and generating oxygen as a biproduct. A plurality of diatoms in water are held within a transparent vessel. Polluted air is injected into the water and is aerated with nanobubbles. The flow of air into the vessel is regulated to control the flow of nutrients to the diatoms. A light source provides light to permit the diatoms to use photosynthesis to consume the pollutants in the injected air and generate oxygen as a biproduct. The generated oxygen diffuses or bubbles out of the solution and is released from the system back into the atmosphere. A method of treating polluted air and generating oxygen as a byproduct using the air cleaning system is also provided.
Claims
1. An air cleaning system configured to remove pollutants from air and generate oxygen as a biproduct, the air cleaning system comprising: a recipient vessel configured to retain a liquid solution and a plurality of diatoms; an air injecting component configured to draw polluted air into the recipient vessel; an aeration component configured to aerate the liquid solution in the recipient vessel; and a lighting component for illuminating the recipient vessel.
2. The air cleaning system of claim 1, wherein the recipient vessel is transparent.
3. The air cleaning system of claim 1, wherein the recipient vessel is a glass container.
4. The air cleaning system of claim 1, wherein the liquid solution is seawater.
5. The air cleaning system of claim 1, wherein the liquid solution is fresh water.
6. The air cleaning system of claim 1, wherein the air injecting component is an air pump.
7. The air cleaning system of claim 1, wherein the aeration component is a nanobubble pump.
8. The air cleaning system of claim 1, wherein the lighting component is solar powered.
9. The air cleaning system of claim 1, wherein the lighting component is externally located to the recipient vessel.
10. The air cleaning system of claim 1, wherein the recipient vessel comprises an outlet for releasing generated oxygen into the atmosphere.
11. The air cleaning system of claim 10, wherein the outlet comprises an outlet cover.
12. An air cleaning system configured to remove carbon dioxide from polluted air and generate oxygen as a biproduct, the air cleaning system comprising: a transparent recipient vessel configured to retain a liquid solution and a plurality of diatoms; a diatom carcass extractor housed partially within the recipient vessel; a base for supporting the recipient vessel; an air injecting component configured to draw polluted air into the recipient vessel; an aeration component configured to aerate the liquid solution in the recipient vessel; and a lighting component for illuminating the recipient vessel.
13. The air cleaning system of claim 12 further comprising an air regulator in fluid communication with the air injecting component for regulating a food source in the drawn polluted air for the diatoms.
14. The air cleaning system of claim 12 further comprising a solar power source.
15. The air cleaning system of claim 12, wherein the diatom carcass extractor comprises a funnel portion for receiving a plurality of diatom carcasses.
16. The air cleaning system of claim 15, wherein the funnel portion comprises a plurality of orifices configured to filter the diatom carcasses out of the funnel portion.
17. The air cleaning system of claim 16, wherein the diatom carcass extractor further comprises a carcass retaining portion for collecting the filtered diatom carcasses once filtered out of the funnel portion.
18. The air cleaning system of claim 12, wherein the diatom carcass extractor further comprises an outlet.
19. A method of treating polluted air and generating oxygen comprising: providing a plurality of diatoms in a liquid solution; injecting polluted air into the liquid solution; aerating the liquid solution; illuminating the liquid solution; allowing the plurality of diatoms to consume pollutants and generate oxygen; and releasing the generated oxygen to the atmosphere.
20. The method of claim 19 further comprising the step of removing diatom carcasses from the liquid solution
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The description refers to provided drawings in which similar reference characters refer to similar parts throughout the different views, and in which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION
[0028] The innovation is now described with reference to the drawings, wherein like reference numerals are used to refer to like elements throughout. In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding thereof. It may be evident, however, that the innovation can be practiced without these specific details. In other instances, well-known structures and devices are shown in block diagram form in order to facilitate a description thereof. Various embodiments are discussed hereinafter. It should be noted that the figures are described only to facilitate the description of the embodiments. They do not intend as an exhaustive description of the invention or do not limit the scope of the invention. Additionally, an illustrated embodiment need not have all the aspects or advantages shown. Thus, in other embodiments, any of the features described herein from different embodiments may be combined.
[0029] The present invention, in one exemplary embodiment, is a diatomic air cleaner and oxygen and/or water generator. The device is comprised of a generator system featuring a glass body powered by a solar panel assembly attached to one side of the globe-like glass. The solar energy can power a lamp that shines on the glass body for illuminating the system at nighttime or other lowlight day hours.
[0030] The bottom of the system features a vacuum that suctions in polluted air, an air regulator, a nanobubble pump for sea water or a regular pump for fresh water, and a diatom carcasses extractor. The middle of the device includes a funnel-like mechanism. Diatoms from the top portion are suspended in water and nano bubbles can be sucked into the bottom of the device. The top includes a clean air extractor and an exit cover that expels oxygen once cleaned by the diatoms. The diatoms convert the CO2 into clean oxygen that is expelled through the pipe at the top, back into the atmosphere.
[0031] The invention provides users with an air cleaning system that utilizes diatoms to remove CO2 from the polluted air. Users inject polluted air into water into the system to ensure the diatoms within can ‘eat’ the CO2 prior to the air being pumped back into the atmosphere as clean oxygen. The system utilizes a solar panel assembly designed to power the system and LED lights that can illuminate at nighttime or other lowlight hours of the day. An air regulator and a nanobubble pump work in conjunction to push the polluted air and water through the water in the system for cleaning via the diatoms. The system offers a simple method of generating clean, breathable oxygen.
[0032] Referring initially to the drawings,
[0033] As illustrated in
[0034] The air cleaning system 100 may further comprise a base 140. The base 140 may be of any size or configuration and is configured to support the recipient vessel 110. The base 140 is also configured to house additional components as described infra. The base 140 may be constructed form metal, cement, plastic, or a similar durable material.
[0035] As illustrated in
[0036] The air cleaning system 100 further comprises a lighting component 160 and a power component 170. As diatoms require light for photosynthesis to consume pollutants and generate oxygen, the lighting component 160 is used to supplement natural light or provide an independent light source during low light hours or at night, The lighting component 160 is configured to illuminate the recipient vessel 110 and may be externally located as illustrated in
[0037] As illustrated in
[0038] The subject matter disclosed and claimed herein, in another embodiment thereof, comprises a method 200 of treating polluted air and generating oxygen. As illustrated in
[0039] Polluted air is then injected into the liquid solution in the recipient vessel 110 via an air injecting component 150 which may be regulated with an air regulator 152 at 230. The liquid solution is then aerated by an aeration component 154, such as a nanobubble pump at 240. The air regulator 152 is configured to regulate a flow of the polluted air into the recipient vessel 110, thereby regulating a food source for the plurality of diatoms. The food source for the plurality of diatoms is the pollutants in the drawn polluted air, including CO2.
[0040] Next, a lighting source 160 is used to illuminate the aerated liquid solution containing the plurality of diatoms and the injected polluted air retained within the recipient vessel 110 at 250. Then at 260, the plurality of diatoms are allowed to consume pollutants from the polluted air in the aerated liquid solution. Oxygen is produced from the plurality of diatoms via photosynthesis which diffuses out or the aerated liquid solution and is released out of the recipient vessel into the atmosphere at 270. The method continues at 280 by removing diatom carcasses from the liquid solution in the recipient vessel 110 via a carcass extractor 130.
[0041] Notwithstanding the forgoing, the air cleaning system 100 can be any suitable size, shape, and configuration as is known in the art without affecting the overall concept of the invention, provided that it accomplishes the above stated objectives. One of ordinary skill in the art will appreciate that the shape and size of the air cleaning system 100 and its various components, as show in the FIGS. are for illustrative purposes only, and that many other shapes and sizes of the air cleaning system 100 are well within the scope of the present disclosure. Although dimensions of the air cleaning system 100 and its components (i.e., length, width, and height) are important design parameters for good performance, the air cleaning system 100 and its various components may be any shape or size that ensures optimal performance during use and/or that suits user need and/or preference. As such, the air cleaning system 100 may be comprised of sizing/shaping that is appropriate and specific in regard to whatever the air cleaning system 100 is designed to be applied.
[0042] What has been described above includes examples of the claimed subject matter. It is, of course, not possible to describe every conceivable combination of components or methodologies for purposes of describing the claimed subject matter, but one of ordinary skill in the art may recognize that many further combinations and permutations of the claimed subject matter are possible. Accordingly, the claimed subject matter is intended to embrace all such alterations, modifications and variations that fall within the spirit and scope of the appended claims. Furthermore, to the extent that the term “includes” is used in either the detailed description or the claims, such term is intended to be inclusive in a manner similar to the term “comprising” as “comprising” is interpreted when employed as a transitional word in a claim.