Corrugated filtration media for polarizing air cleaner
11452960 · 2022-09-27
Assignee
Inventors
Cpc classification
B01D46/785
PERFORMING OPERATIONS; TRANSPORTING
B01D46/0032
PERFORMING OPERATIONS; TRANSPORTING
B03C3/47
PERFORMING OPERATIONS; TRANSPORTING
B03C3/60
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D46/00
PERFORMING OPERATIONS; TRANSPORTING
B01D46/52
PERFORMING OPERATIONS; TRANSPORTING
B03C3/47
PERFORMING OPERATIONS; TRANSPORTING
B03C3/60
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A filter media includes flat sheets that are corrugated into a honeycomb matrix wherein air flows through the material and airborne contaminants are captured on the sidewalls of the material, wherein an active electrostatic field is applied to the flat sheets.
Claims
1. An active field polarized media air cleaner comprising: a conductive screen; a corrugated sheet, wherein the corrugated sheet comprises alternating flat layers and corrugated layers that define channels therethrough that allow for passage of air, wherein the channels are aligned with a direction of airflow and do not interrupt airflow through the channels, wherein each channel extends from a first side of the corrugated sheet to a second side of the corrugated sheet; a high-voltage power supply connected to the conductive screen that applies a voltage to the conductive screen that creates a polarizing field upstream of the corrugated sheet that charges particles passing through the field; wherein when the voltage is applied to the conductive screen, the corrugated sheet at a ⅜″ thickness and under a voltage of 7 kv removes at least 34%, 34%, 39%, 39%, 45%, and 67% of particle sizes in microns respectively: 0.3, 0.5, 0.7, 1, 2, and 3, as compared to a 0-voltage applied media that removes 20%, 17%, 19%, 23%, 26%, and 42% of particle sizes in the same particle sizes.
2. The active field polarized media air cleaner of claim 1, wherein the charged particles are captured on sidewalls of the corrugated sheet.
3. The active field polarized media air cleaner of claim 1, wherein the conductive screen is located between two filter media, one of which is the corrugated sheet.
4. An active field polarized media air cleaner comprising: a corrugated sheet, wherein the corrugated sheet comprises alternating flat layers and corrugated layers that define channels therethrough that allow for passage of air, wherein the channels are aligned with a direction of airflow for direct airflow therethrough, wherein each channel extends from a first side of the corrugated sheet to a second side of the corrugated sheet; a high-voltage power supply connected to a conductive member embedded within the corrugated sheet, wherein the high-voltage power supply applies a voltage to the conductive member that creates a polarizing field within the corrugated sheet that charges particles passing through the field; wherein when the voltage is applied to the conductive member, the corrugated sheet at a ⅜″ thickness and under a voltage of 7 kv removes at least 34%, 34%, 39%, 39%, 45%, and 67% of particle sizes in microns respectively: 0.3, 0.5, 0.7, 1, 2, and 3, as compared to a 0-voltage applied media that removes 20%, 17%, 19%, 23%, 26%, and 42% of particle sizes in the same particle sizes.
5. The active field polarized media air cleaner of claim 4, wherein the conductive member is a sheet.
6. The active field polarized media air cleaner of claim 4, wherein the conductive member is a band.
7. The active field polarized media air cleaner of claim 1, wherein the corrugated sheet comprises alternating corrugated layers and flat sheet layers.
8. The active field polarized media air cleaner of claim 7, wherein the corrugated layers define sidewalls of the channels and at least one of a top and bottom of each channel.
9. The active field polarized media air cleaner of claim 4, wherein the corrugated sheet comprises alternating corrugated layers and flat sheet layers.
10. The active field polarized media air cleaner of claim 9, wherein the corrugated layers define sidewalls of the channels and at least one of a top and bottom of each channel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAIL DESCRIPTION
(16) An embodiment of an active field polarized media air cleaner in accordance with the present invention is shown in
(17) In one embodiment of the invention, the filter media itself consists of a dielectric media support frame 120, a first pad of fibrous dielectric material 16A, fiberglass mesh screen 14A, a second pad of fibrous dielectric material 16B, a center screen 13, a third pad of fibrous dielectric material 16C, another fiberglass mesh screen 14B and a fourth pad of dielectric filter material 16D. The filter frame that holds the filter media consists of a first conductive holding frame 116A with a first conductive outer screen 12A, and a second conductive holding frame 116B with a second conductive outer screen 12B. While for the sake of clarity, the same basic configuration using the media frame 120 and holding frames 116A, B, are used for drawings, these are but one possible embodiment. The essential elements of the current invention are the various configurations of media between two electrodes in a polarized media air cleaner. While there are certain advantages to the specific embodiments disclosed in the illustrations, the center screen need not go all the way to the edge, nor have a frame around-it and the media layers.
(18) The first pad of dielectric filter material 16A is attached to the dielectric media support frame 120 and/or the center electrode 13 by a suitable means such as adhesive material 121A or ultrasonic welding. The fourth pad of dielectric filter material 16D is attached to the dielectric media support frame 120 by a suitable means, such as adhesive material 121B or ultrasonic welding. In embodiments with no media support frame, the various layers of media 16A-D and 14A and B and center screen 13 would be typically be attached together by a suitable means such as adhesives, ultrasonic welding, sewing or clamping. The first conductive outer screen 12A is held in place by a first conductive holding frame 116A. The second conductive outer screen 1213 is held in place by a second conductive holding frame 116B.
(19) In operation, one terminal of a high voltage power supply 108 is connected to center screen 13. The other terminal of the high-voltage power supply 108 is coupled to the first conductive outer screen 12A and the second conductive outer screen 12B, which is held typically at ground potential.
(20) Particles in the incoming air passing through dielectric filter material 16A, 16B, 16C and 16D of the active field polarized media air cleaner of
(21) Filter media of the present invention include two layers of fibrous dielectric material with a higher resistance air permeable material sandwiched between the lower resistance dielectric layers. While other material combinations are possible, specifically, in
(22) It has been found that this disposition of materials allows for a higher and more stable voltage differential between the electrodes. This increases particle removal efficiencies as higher voltage means higher field strength and therefore higher efficiencies. Specifically, it has been found the above disposition of materials allows for up to a 25% higher voltage without arcing and spraying between electrodes.
(23) Filter media of the present invention include a mixed fiber layer in an active field polarized media air cleaner, said mixed fiber layer having fibers from different parts of the triboelectric series of materials. Most materials will generate and store some static electricity. The capacity of the material to generate and store an electric charge defines where it belongs on the triboelectric scale.
(24) Triboelectric Series of Materials Causing Static Electricity
(25) Some materials create more static electricity than others. Since static electricity is the collection of electrically charged particles on the surface of a material, various materials have a tendency of either giving up electrons and becoming positive (+) in charge, or attracting electrons and becoming negative (−) in charge. The triboelectric series is a list of materials, showing which have a greater tendency to become positive (+) and which have a greater tendency to become negative (−). The list is used to determine which combinations of materials create the most static electricity.
(26) For illustration purposes, some common materials are listed below according how well they create static electricity when rubbed with another material, as well as what charge the material will possess. The list is not an exhaustive list and every material fits somewhere is the positive or negative triboelectric scale.
(27) Materials that Become Positive in Charge
(28) The following materials will tend to give up electrons when brought in contact with other materials. They are listed from those with the greatest tendency to give electrons to those that barely give up electrons.
Comments
(29) TABLE-US-00001 Dry human skin Greatest tendency to giving up electrons and becoming highly positive (+) in charge Leather Rabbit fur Fur is often used to create static electricity Glass The glass on your TV screen gets charged and collects dust Nylon Wool Lead A surprise that lead would collect as much static electricity as cat fur Cat fur Silk Aluminum Gives up some electrons Paper
(30) Materials that are Neutral
(31) There are very few materials that do not tend to readily attract or give up electrons when brought in contact or rubbed with other materials.
Comments
(32) TABLE-US-00002 Cotton Best for non-static clothes Steel Not useful for static electricity
(33) Materials that Become Negative in Charge
(34) The following materials will tend to attract electrons when brought in contact with other materials. They are listed from those with the least tendency to attract electrons to those that readily attract electrons.
Comments
(35) TABLE-US-00003 Wood Attracts some electrons, but is almost neutral Amber Hard rubber Some combs are made of hard rubber Nickel, Copper Copper brushes used in Wimshurst electrostatic generator Brass, Silver Gold, Platinum It is surprising that these metals attract electrons almost as much as polyester Polyester Clothes have static cling Styrene Packing material seems to stick to everything (Styrofoam) Saran Wrap You can see how Saran Wrap will stick to things Polyurethane Polyethylene (like Pull Scotch Tape off surface and it will Scotch Tape) become charged Polypropylene Vinyl (PVC) Many electrons will collect on PVC surface Silicon Teflon Greatest tendency of gathering electrons on its surface and becoming highly negative (−) in charge
(36) The best combinations of materials to create static electricity would be one from the positive charge list and one from the negative charge list. However, a moderate amount of static electricity can be created from two materials on the positive charge list or two materials on the negative charge list. For example, when two materials that tend to give up electrons are rubbed together, the one with the greatest tendency will moderately become positive (+) in charge. Likewise, when two materials that tend to attract electrons are rubbed together, the one with the greatest tendency will moderately become negative (−) in charge.
(37) A filter media of the present invention for use in an active field polarized media air cleaner using a mix of fibers from different parts and/or preferably different sides of the triboelectric scale is shown in
(38) Mixed triboelectric filter layer 15B is similar to mixed triboelectric filter layer 15A. The important feature of mixing together (by interweaving or bringing into contact) fibers from different sides of the triboelectric scale is that the mixture of such fibers produces sits of relative positive and negative charge on the fibers within such mixed triboelectric fiber layers 15A, 15B. Such integrated materials are available are available from, among others, Alhstrom Air Media who's HP series of material is a mix of modacrylic and polypropylene and Hollingsworth and Vose who's Technostat materials are a mix of acrylic and polypropylene.
(39) It is well known in the manufacture and design of passive electrostatic filters that the proper mix of materials from different sides of the triboelectric scale will boost the efficiency of the media beyond what would be anticipated solely from the density of the media, i.e. from the passive mechanisms of the media. Other types of passive electrostatic filters have charges imposed on the media by a variety of techniques. One issue with passive electrostatic filters is that the initial efficiencies due to electrostatic attraction actually decline as the fibers become covered with contaminants and/or gradually discharge due to a variety of factors (humidity, chemicals, and temperature).
(40) While putting many filter medias in an electrostatic field can increase their efficiency, this is not universally the case. In fact, many passive electrostatic media show no improvement or actually perform worse. However, it has been found that putting triboelectric type electret media in a polarizing field does improve its effectiveness and eliminate the efficiency dip that is seen. The triboelectric layer tends to be relatively thin, it may therefore be used in one or more layers together or separate, at various positions within the air cleaner media, i.e. with other media materials positioned on either or both sides of it.
(41) In another embodiment of the present invention, above the mixed triboelectric filter layer 15A is a relatively sparse fibrous layer 16E. The filter media structure above the center screen 13 is repeated below the center screen 13, namely a second relatively sparse fibrous layer 16F above a second mixed triboelectric filter layer 15B. The relatively sparse layers could be a variety of materials or different materials from each other.
(42) A filter media of the present invention for use in an active field polarized media air cleaner which combines both a fiberglass center screen 14A, 14B and a mix of fibers from different sides of the triboelectric scale is shown in
(43) This combination combines the benefits of each embodiment, allowing for the for maximum system efficiency.
(44) A filter media incorporating a layer of higher density dielectric material followed by layer of low density dielectric material is shown in
(45) Another filter media incorporating a layer of lower density dielectric material following a layer of higher density dielectric material is shown in
(46) The benefit of these embodiments is a reduction in resistance to airflow. The densest layer of media will have the highest resistance to airflow. If the densest layer is against one of the electrodes, its area will be effectively reduced by that of the electrode. This would increase the air velocity through the remaining area and increase the resistance to airflow. By putting a less dense layer between the electrode and the densest layer, it increases the air speed through the less dense material instead of the denser material thereby reducing resistance to airflow significantly.
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(48) This embodiment provides superior loading characteristics. By capturing the larger particles or particles of lower density and/or lower momentum, on the less dense upstream layers, the more dense layers do not become clogged and are able to collect primarily the smaller (i.e., higher density and/or higher momentum) particles and therefore have a longer service life. The media thus allows a homogenous distribution of particulate through the volume of the media.
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(51) In a further embodiment of the invention, one of the outer most layers of media could be treated with a photocatalytic material. The air cleaner could then be coupled with a UV light for the breakdown of gas phase contaminants. Hydroxyls produced in this embodiment could inactivate biologicals and breakdown gas phase contaminants. In such an embodiment, under the influence of UV light, the media creates hydroxyl radicals and super-oxide ions to react with the captured and airborne bioaerosols and gas phase contaminants. The photocatalytic layer could be the furthest downstream layer. This would keep it substantially free of particle contamination.
(52) In a further embodiment of the invention, the external screen/electrode of the filter frame is treated with the photo catalyst.
(53) In a further embodiment of the invention the center screen would have odor absorbing properties, such as a carbon impregnated foam or mesh.
(54) The downstream layer of lower density material could be treated with a catalyst for breaking down VOC's, other reactive gas phase contaminants and/or Ozone and/or biological contaminants.
(55) At least one of the external screens and/or a layer of media can be treated with a photocatalyst that tends to destroy gaseous impurities such as VOC's and biological contaminants in the presence of light, typically UV light. The latter configuration could be coupled with one or more UV sources in close proximity to thereby bring about the photocatalytic effect. The resulting integration of components would significantly reduce the cost of applying photocatalysis to the air stream. The catalyst may be applied to either the upstream or the downstream screen. The system may include central UV lights to shine on treated screens both upstream and downstream of the treated screens. In the case of applying the photocatalyst to a layer of media, the preferred embodiment would be to have it be the most downstream layer, as this layer would be less likely to be fouled by contaminants.
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(57) As shown in
(58) In preliminary testing, TVOC levels were brought down almost twice as quickly with the same catalyst when it was placed in an electrostatic field. The experiment was as follows: A u-shaped duct with fan were configured to draw and return air from and to an approximately 1,000 cubic foot room. Tolulene was poured on a cloth and the cloth left in the space for several minutes. An Aircuity Optima unit was used to measure TVOC levels in the room. A V-bank air cleaner was placed in the duct with a 254 urn UVC lamp upstream. A circulating fan was set to 1,000 cfm. The air cleaner frames could hold a media and were able to create and electrostatic field inside the media. After 25 minutes, with no filter, TVOC levels dropped 6%. With UV lamp on and a catalyst coated media with no electrostatic field, there was a 12% drop. With the same arrangement and the electrostatic field energized, there was a 24% drop.
(59) Such a device could be applied to a variety of HVAC and air moving systems for purification of the airstream. The catalyst could also be applied to a woven material and could be a variety of materials other than glass. The catalyst coated material could be sprayed or dipped in the catalyst.
(60) In another embodiment shown in
(61) The electrodes could be made from a variety of conductive materials and may be electrically uniform and include evenly spaced grids on either side of the coated media material. Further they may be as open as possible to allow the maximum light penetration into the coated material. The electrodes themselves could be coated with the catalyst as well.
(62) In all cases, the device may be put in close proximity to a UV light source(s) to supply primary energy for the catalytic reaction. Hydroxyls produced in this scenario could inactivate biologicals and breakdown gas phase contaminants. In such an embodiment, under the influence of UV light, the media creates hydroxyl radicals and super-oxide ions to react with the captured and airborne bioaerosols and gas phase contaminants.
(63) While the inventions described above have made reference to various embodiments, modifications can be made to the structure and elements of the invention without departing from the spirit and scope of the invention as a whole. In particular, various layers or elements could be combined or repeated to achieve various effects. For example, while
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(65) Active field polarization of the material 1100, 1200 as shown in
(66) TABLE-US-00004 TABLE 1 Particle size in Microns and % Removal Rate Voltage, media, ionizer 0.3 0.5 0.7 1 2 5 7 kV, ⅜″ thick CM 82% 80% 80% 81% 83% 99+% w/ionizer 7 kV, ⅜″ thick CM 34% 34% 39% 39% 45% 67% 0 kV, ⅜″ thick CM 20% 17% 19% 23% 26% 42%
(67) One example of such a material 1100, 1200 is from a family of products developed by 3M and marketed as HAPA. It has been found that putting such a material in an active electrostatic field significantly enhances both short term and long-term efficiency.
(68) The corrugated media (CM) could be used in an assembly with layers of other CM or other materials. For example, an upstream layer of a glass or non-woven material could help to capture the larger dust particles in the air and keep them from clogging the relatively small channels of the CM.
(69) Another advantage of the CM is that its fairly rigid structure (v. a lofted and/or non-woven media) gives options for insulating and sealing a media assembly with an active voltage applied to one or more of the layers.
(70) Another benefit of the corrugated material is that it can be used at a higher voltage. In normal operation a filter relies on an air gap to keep the charged center screen from arcing to the ground screen. The flatter the ground screen and the center screen, and the more consistent the distance, the higher the voltage that can be applied. This higher voltage results in a stronger field and greater efficiency.
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(75) The invention(s) disclosed above could be used in variety of ways, including, but not limited to, use in HVAC systems, self-contained filter/fan units, and industrial air cleaning systems, and dust collectors. While the above embodiments primarily describe flat filter configurations, the inventions could be adapted to other configurations as well, including but not limited to V-bank groupings of multiple flat panels, interconnected groupings of panel and V-Bank units and cylindrical filters for dust collection systems.