HIGHLY EFFICIENT FAR UV FILTRATION SYSTEM
20230044306 · 2023-02-09
Inventors
Cpc classification
H01J61/40
ELECTRICITY
A61L2202/14
HUMAN NECESSITIES
H01J61/16
ELECTRICITY
A61L2/24
HUMAN NECESSITIES
H05B47/115
ELECTRICITY
H01J61/94
ELECTRICITY
H01J65/046
ELECTRICITY
H01J61/12
ELECTRICITY
H01J61/52
ELECTRICITY
A61L2202/11
HUMAN NECESSITIES
International classification
A61L2/24
HUMAN NECESSITIES
H01J61/12
ELECTRICITY
H01J61/40
ELECTRICITY
H01J61/52
ELECTRICITY
Abstract
A Far UV radiation system including a Far UV radiation source and a high pass filter. The high pass filter having a cutoff wavelength of 234 nm-237 nm when measured at an incidence angle of zero degrees and adapted to substantially reduce UV C radiation emitted from the Far UV radiation source so that the Far UV radiation system does not emit substantial UV radiation in wavelengths longer than 240 nm. The Far UV radiation system may be adapted to substantially reduce UV C, UV B, and UV A radiation from the Far UV radiation source.
Claims
1. A Far UV radiation system, comprising: a Far UV radiation source; and a high pass filter, said high pass filter having a cutoff wavelength of 234 nm when measured at an incidence angle of zero degrees, and said high pass filter adapted to substantially reduce UV C radiation emitted from said Far UV radiation source, wherein said Far UV radiation source and said high pass filter adapted such that the Far UV radiation system does not emit substantial UV C radiation in wavelengths longer than 240 nm.
2. The Far UV radiation system of claim 1 wherein said high pass filter is adapted to substantially reduce UV C and UV B radiation from said Far UV radiation source.
3. The Far UV radiation system of claim 1 wherein said high pass filter is adapted to substantially reduce UV C, UV B, and UV A radiation from said Far UV radiation source.
4. The Far UV radiation system of claim 1 wherein said Far UV radiation source is an excimer bulb.
5. The Far UV radiation system of claim 5 wherein said excimer bulb is an krypton-chloride excimer bulb.
6. The Far UV radiation system of claim 1 wherein said Far UV radiation source is an LED.
7. The Far UV radiation system of claim 1 wherein said Far UV radiation source is an array of LEDs.
8. A Far UV radiation system, comprising: a Far UV radiation source; and a high pass filter, said high pass filter having a cutoff wavelength of 231 nm when measured at an incidence angle of zero degrees, and said high pass filter adapted to substantially reduce UV C radiation emitted from said Far UV radiation source, wherein said Far UV radiation source and said high pass filter adapted such that the Far UV radiation system does not emit substantial UV radiation in wavelengths longer than 240 nm.
9. The Far UV radiation system of claim 8 wherein said high pass filter is adapted to substantially reduce UV C and UV B radiation from said Far UV radiation source.
10. The Far UV radiation system of claim 8 wherein said high pass filter is adapted to substantially reduce UV C, UV B, and UV A radiation from said Far UV radiation source.
11. The Far UV radiation system of claim 8 wherein said Far UV radiation source is an excimer bulb.
12. The Far UV radiation system of claim 11 wherein said excimer bulb is an krypton-chloride excimer bulb.
13. The Far UV radiation system of claim 8 wherein said Far UV radiation source is an LED.
14. The Far UV radiation system of claim 8 wherein said Far UV radiation source is an array of LEDs.
15. A Far UV radiation system, comprising: a Far UV radiation source; and a high pass filter, said high pass filter having a cutoff wavelength of 232 nm when measured at an incidence angle of zero degrees, and said high pass filter adapted to substantially reduce UV C radiation emitted from said Far UV radiation source, wherein said Far UV radiation source and said high pass filter adapted such that the Far UV radiation system does not emit substantial UV radiation in wavelengths longer than 240 nm.
16. The Far UV radiation system of claim 15 wherein said high pass filter is adapted to substantially reduce UV C and UV B radiation from said Far UV radiation source.
17. The Far UV radiation system of claim 15 wherein said high pass filter is adapted to substantially reduce UV C, UV B, and UV A radiation from said Far UV radiation source.
18. The Far UV radiation system of claim 15 wherein said Far UV radiation source is an excimer bulb.
19. The Far UV radiation system of claim 18 wherein said excimer bulb is an krypton-chloride excimer bulb.
20. The Far UV radiation system of claim 15 wherein said Far UV radiation source is an LED.
21. The Far UV radiation system of claim 15 wherein said Far UV radiation source is an array of LEDs.
22. A Far UV radiation system, comprising: a Far UV radiation source; and a high pass filter, said high pass filter having a cutoff wavelength of 233 nm when measured at an incidence angle of zero degrees, and said high pass filter adapted to substantially reduce UV C radiation emitted from said Far UV radiation source, wherein said Far UV radiation source and said high pass filter adapted such that the Far UV radiation system does not emit substantial UV radiation in wavelengths longer than 240 nm.
23. The Far UV radiation system of claim 22 wherein said high pass filter is adapted to substantially reduce UV C and UV B radiation from said Far UV radiation source.
24. The Far UV radiation system of claim 22 wherein said high pass filter is adapted to substantially reduce UV C, UV B, and UV A radiation from said Far UV radiation source.
25. The Far UV radiation system of claim 22 wherein said Far UV radiation source is an excimer bulb.
26. The Far UV radiation system of claim 25 wherein said excimer bulb is an krypton-chloride excimer bulb.
27. The Far UV radiation system of claim 22 wherein said Far UV radiation source is an LED.
28. The Far UV radiation system of claim 22 wherein said Far UV radiation source is an array of LEDs.
29. A Far UV radiation system, comprising: a Far UV radiation source; and a high pass filter, said high pass filter having a cutoff wavelength of 235 nm when measured at an incidence angle of zero degrees, and said high pass filter adapted to substantially reduce UV C radiation emitted from said Far UV radiation source, wherein said Far UV radiation source and said high pass filter adapted such that the Far UV radiation system does not emit substantial UV radiation in wavelengths longer than 240 nm.
30. The Far UV radiation system of claim 29 wherein said high pass filter is adapted to substantially reduce UV C and UV B radiation from said Far UV radiation source.
31. The Far UV radiation system of claim 29 wherein said high pass filter is adapted to substantially reduce UV C, UV B, and UV A radiation from said Far UV radiation source.
32. The Far UV radiation system of claim 29 wherein said Far UV radiation source is an excimer bulb.
33. The Far UV radiation system of claim 32 wherein said excimer bulb is an krypton-chloride excimer bulb.
34. The Far UV radiation system of claim 29 wherein said Far UV radiation source is an LED.
35. The Far UV radiation system of claim 29 wherein said Far UV radiation source is an array of LEDs.
36. A Far UV radiation system, comprising: a Far UV radiation source; and a high pass filter, said high pass filter having a cutoff wavelength of 236 nm when measured at an incidence angle of zero degrees, and said high pass filter adapted to substantially reduce UV C radiation emitted from said Far UV radiation source, wherein said Far UV radiation source and said high pass filter adapted such that the Far UV radiation system does not emit substantial UV radiation in wavelengths longer than 240 nm.
37. The Far UV radiation system of claim 36 wherein said high pass filter is adapted to substantially reduce UV C and UV B radiation from said Far UV radiation source.
38. The Far UV radiation system of claim 36 wherein said high pass filter is adapted to substantially reduce UV C, UV B, and UV A radiation from said Far UV radiation source.
39. The Far UV radiation system of claim 36 wherein said Far UV radiation source is an excimer bulb.
40. The Far UV radiation system of claim 39 wherein said excimer bulb is an krypton-chloride excimer bulb.
41. The Far UV radiation system of claim 36 wherein said Far UV radiation source is an LED.
42. The Far UV radiation system of claim 36 wherein said Far UV radiation source is an array of LEDs.
43. A Far UV radiation system, comprising: a Far UV radiation source; and a high pass filter, said high pass filter having a cutoff wavelength of 237 nm when measured at an incidence angle of zero degrees, and said high pass filter adapted to substantially reduce UV C radiation emitted from said Far UV radiation source, wherein said Far UV radiation source and said high pass filter adapted such that the Far UV radiation system does not emit substantial UV radiation in wavelengths longer than 240 nm.
44. The Far UV radiation system of claim 43 wherein said high pass filter is adapted to substantially reduce UV C and UV B radiation from said Far UV radiation source.
45. The Far UV radiation system of claim 43 wherein said high pass filter is adapted to substantially reduce UV C, UV B, and UV A radiation from said Far UV radiation source.
46. The Far UV radiation system of claim 43 wherein said Far UV radiation source is an excimer bulb.
47. The Far UV radiation system of claim 46 wherein said excimer bulb is an krypton-chloride excimer bulb.
48. The Far UV radiation system of claim 43 wherein said Far UV radiation source is an LED.
49. The Far UV radiation system of claim 43 wherein said Far UV radiation source is an array of LEDs.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0053] The embodiments herein and the various features and advantageous details thereof are explained more fully with reference to the non-limiting embodiments that are illustrated in the accompanying drawings and detailed in the following description. Descriptions of well-known components and processes and manufacturing techniques are omitted so as to not unnecessarily obscure the embodiments herein. The examples used herein are intended merely to facilitate an understanding of ways in which the invention herein may be practiced and to further enable those of skill in the art to practice the embodiments herein. Accordingly, the examples should not be construed as limiting the scope of the claimed invention.
[0054] Before explaining the present invention in detail, it is important to understand that the invention is not limited in its application to the details of the construction illustrated and the steps described herein. The invention is capable of other embodiments and of being practiced or carried out in a variety of ways. It is to be understood that the phraseology and terminology employed herein is for the purpose of description and not of limitation.
[0055] Referring now to the drawings, wherein like reference numerals indicate the same parts throughout the several views, a representative depiction of an (existing art) Low pressure mercury bulb 100 shown in
[0056] A newer and different technology is shown in
[0057] The next drawing in
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[0063] The quartz envelope 800 starts as a round cylinder and is heated and pulled through rollers that flatten the two sides, the front face 802, and the back face 804 to be parallel with each other. The ends of the flattened tube are then sealed at both ends 806 and 808 by heat welding to seal them. The fill point 810 as shown starts as a small fill tube that is melted shut after the bulb has been cleaned and filled with the low-pressure gasses. The sides of the bulb 812, and 814 allow light to pass as well, the right side 812 and the left side 814. These pathways of light have been ignored by prior art devices and enormous amount of wasted optical energy will be harnessed here by the inventive device.
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[0065] A rear reflector 908 is added against the outside of the rear electrode 904. The rear reflector 908 and the rear grid 904 could be combined as one part to both conduct electricity and reflect light, and as such could be a vapor plated on aluminum layer which would be deposited directly to the back side face 804 of the bulb 800 to further minimize parts and costs. Side reflectors 926, and 928 are set at 45% angles in order to capture light that escapes the sides 812 and 814 of the bulb 800 and send it directly forward and parallel to the light that is being emitted by the main face 804 of the bulb 800. Spaced as closely as possible to the two side reflectors 926 and 928 and the front electrode 902 is the UV filter plate 906 which is made of polished quartz and plated layers of Hafnium Oxide that form a narrow band pass filter in the 200 nm-234 nm range.
[0066] A heatsink 910 which could be aluminum but ideally would be ceramic to add electrical insulation to the high voltage back electrode 904. The heatsink 910 will block any unfiltered light from emitting through cracks between the mirrors 908, 926, and 928 or out of the ends of the bulb 800. Ideally the heatsink 910 would also capture many of the individual elements of the bulb assembly mentioned so far including the bulb 800, the rear reflector 908, the side reflectors 926 and 928, the rear electrode 904, the front electrode 902, and the front filter plate 906 and it would be tightly sealed using UV compatible epoxy would be used around the edges of the bulb 812 to stabilize the mechanical connections between these components and completely seal air and dust incursion. Existing art designs allow for air to be blown directly over the bulbs and dust could then deposit over time to the bulbs and the inside face of the filter. Dust can absorb large amounts of the UV C light and become very inefficient very quickly. The inventive device eliminates these faces from dust incursion by making a sealed cartridge 900 using the end caps 912 and 914. These end caps 912 and 914 of the bulb assembly 900 will be made of ceramic and the end cap 912 would encapsulate thermal sensors and a smart chip 916, as well as provide a mechanical rotation point for the bulb including detents 918 for preset individual position stops in a fixture. This means a light emitting cartridge that has no wires or flying leads to connect. The smart chip and temperature sensor 916 has an hours of operation meter, serial number, manufacturing date, temperature, out of range flags, and encryption communication capabilities to prevent counterfeit operation. There as a conductive jumper 930 in connection with the front electrode 902 that passes through the ceramic end cap 912 and then is electrically connected by to a conductive pin 920. Similarly, there is a conductive jumper 932 that is in connection to the rear electrode 904 that passes through the ceramic end cap 914 and then is electrically connected to a conductive pin 922. There are 3 plated-on conductive traces 924 around the ceramic end cap 912 that are connected to the smart chip and thermo sensor 916. These traces 924 allow communication from the bulb cartridge 900 to contacts on the fixture receiver to allow the fixture to communicate with these chips 916. Such mechanical and electrical connections are well understood by one skilled in the art and other methods of connectivity could be used. This assembly becomes an easy to replace safe UV C bulb cartridge 900 that is hermetically sealed with all high voltage portions insulated and removed from those who handle it or are exposed to it.
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[0070] The saddles 1218 also hold detent springs 1216 which mate with detent ridges and groves on the bulb end caps 912 and 914. This allows the bulb cartridges 900 to have several exact angles that they can easily be set to, the spring 1216 holding them 900 in each position but allowing finger pressure to allow it to snap to the next detent position. The front bezel 1222 of the fixture swings away from the base 1202 by means of a latch and hinged connection 1208 between the front bezel 1222 and the rear housing 1202 to expose the bulb cartridges 900 for maintenance or replacement. When the front bezel 1222 is closed completely it presses against a safety switch 1210 which is mounted in the rear housing 1202, the pressed microswitch 1210 then enables power to the fixture 1200. Proximity and distance checking is also determined by distance sensor 1214 which looks through a small hole in the bezel 1222 and checks distance to the closest object or floor. The safety switch 1210, distance sensor 1214 and data from the 3-bulb cartridge's smart chip and thermo sensors 916 are all connect to and coordinated by the smart power supply 1204. The power supply 1204 also has digital communication capabilities such as Wi-Fi and Ethernet to name just a couple. Air is pulled through perforations in the front bezel 1222 by a fan 1206 that is supported by a fan frame 1224 then blows this air over the top of the power supply 1204 and over the bulb cartridge's heatsinks 910 and out through holes in the base 1202. The power supply 1204 measures bulb cartridge 900 temperatures and modifies the fan 1206 speed for optimum efficiency of the bulb cartridge 900 efficiency. A mounting plate 1226 is capable of mounting first to standard electrical boxes found in existing architectural situations and then the plate snaps to the rear housing and can spin in the rear housing tracks to allow the upper bezel to aim in infinite directions. Because UV C light filters tend to allow light to only pass at narrow angles the emitted light tends to be in a narrow beam. This inventive fixture allows for multiple heads in a single fixture to allow for wider beams and asymmetrical light dispersion to best fit the widest range of environmental confines. Ideally the fixture would have an illuminated indicator 1228 to show functions and or faults from a distance, in the illustration the indicator 1228 is a backlit logo. The preferred embodiment shows 3 bulbs in a fixture 0 but any number of bulbs could be used in the inventive device.
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[0078] People entering a room can quickly look and see that the light 1200 is functioning or needs maintenance by looking at the LED 1228. The led 1228 may also indicate output level. When there is low activity and low bacterial load events it could have one LED on, when there is high activity with increased bacterial load events, the light increases output and the LEDs 1228 will change to signal this event. The fixture could receive data from crowd density sensors and use this information to set the output power levels.
[0079] Crowd density sensors 1906 such as CrowdScan 1906 an rf monitor from Antwerp or Density 1906 which is a Lidar based device from San Francisco have the ability to determine how many people are in a given space at a given time without violating their privacy, i.e. using cameras or cell phone snooping techniques. There are several more services similar to these which are simply examples of crowd density sensors 1906 that communicate as IoT 1906 and interne resources such as the inventive device 1900.
[0080] The light 1200 may integrate several different kinds of communication 1904 to include BlueTooth 1904, WiFi 1904, Cellular 1904, Sidewalk 1904 from Google, and hard-wired technologies 1904 to mention a few. This communication 1904 will allow for the monitoring of the light function and allow remote control of the light by remote means.
[0081] The light 1200 may have local mechanical control systems such as simple on/off and dimmable light switches. The light(s) 1200 may also have a control panel with switches and LEDs to control many lights. The LEDs in the panels can show status or light (on, off, status, etc.). The inventive device lights 1200 can be integrated with other traditional visible/functional lighting. These physical controls would allow controls over those lights also. Physical controls can vary depending on the light fixture application. For applications the fixture 1200 is installed permanently in a space the controls can be integrated into the facility infrastructure. For stand-alone portable applications the controls may be fully integrated into a light 1200 to include integrated power source with power level indicators and a graphic user interface display and control panel.
[0082] The light fixture 1200 can communicate 1904 to facility/installation managers and operators. The information can be accessed by a smartphone application 1906, web interface on a laptop 1908 or desktop 1908. The fixture 1200 will push information to the site and the operator can pull information from the light 1200. The wireless interface can be customized for different users' needs. The light 1200 can communicate what output level it is at, what the energy consumption level is, internal temperature, lifecycle/hours the bulb 900 has been in use and how long till it will need to be replaced, work in combination with motion detection to determine if there is a high bacterial load in the space it is set up in. The operator can also control the level of the light 1200 output and schedule the operation profile customizable to best sterilize the area and optimize energy consumption.
[0083] The light fixture 1200 can communicate the status to the public or space occupants. The information can be accessed by a smartphone 1906 application, web interface on a laptop 1908 or desktop 1908. This will reassure occupants that the space is being sterilized. The information can also be displayed on an information display in the space.
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[0089] It is to be understood that the terms “including”, “comprising”, “consisting” and grammatical variants thereof do not preclude the addition of one or more components, features, steps, or integers or groups thereof and that the terms are to be construed as specifying components, features, steps or integers.
[0090] If the specification or claims refer to “an additional” element, that does not preclude there being more than one of the additional element.
[0091] It is to be understood that where the claims or specification refer to “a” or “an” element, such reference is not be construed that there is only one of that element.
[0092] It is to be understood that where the specification states that a component, feature, structure, or characteristic “may”, “might”, “can” or “could” be included, that particular component, feature, structure, or characteristic is not required to be included.
[0093] Where applicable, although state diagrams, flow diagrams or both may be used to describe embodiments, the invention is not limited to those diagrams or to the corresponding descriptions. For example, flow need not move through each illustrated box or state, or in exactly the same order as illustrated and described.
[0094] Methods of the present invention may be implemented by performing or completing manually, automatically, or a combination thereof, selected steps or tasks.
[0095] The term “method” may refer to manners, means, techniques and procedures for accomplishing a given task including, but not limited to, those manners, means, techniques and procedures either known to, or readily developed from known manners, means, techniques and procedures by practitioners of the art to which the invention belongs.
[0096] The term “at least” followed by a number is used herein to denote the start of a range beginning with that number (which may be a ranger having an upper limit or no upper limit, depending on the variable being defined). For example, “at least 1” means 1 or more than 1. The term “at most” followed by a number is used herein to denote the end of a range ending with that number (which may be a range having 1 or 0 as its lower limit, or a range having no lower limit, depending upon the variable being defined). For example, “at most 4” means 4 or less than 4, and “at most 40%” means 40% or less than 40%. Terms of approximation (e.g., “about”, “substantially”, “approximately”, etc.) should be interpreted according to their ordinary and customary meanings as used in the associated art unless indicated otherwise. Absent a specific definition and absent ordinary and customary usage in the associated art, such terms should be interpreted to be ±10% of the base value.
[0097] When, in this document, a range is given as “(a first number) to (a second number)” or “(a first number)—(a second number)”, this means a range whose lower limit is the first number and whose upper limit is the second number. For example, 25 to 100 should be interpreted to mean a range whose lower limit is 25 and whose upper limit is 100. Additionally, it should be noted that where a range is given, every possible subrange or interval within that range is also specifically intended unless the context indicates to the contrary. For example, if the specification indicates a range of 25 to 100 such range is also intended to include subranges such as 26-100, 27-100, etc., 25-99, 25-98, etc., as well as any other possible combination of lower and upper values within the stated range, e.g., 33-47, 60-97, 41-45, 28-96, etc. Note that integer range values have been used in this paragraph for purposes of illustration only and decimal and fractional values (e.g., 46.7-91.3) should also be understood to be intended as possible subrange endpoints unless specifically excluded.
[0098] It should be noted that where reference is made herein to a method comprising two or more defined steps, the defined steps can be carried out in any order or simultaneously (except where context excludes that possibility), and the method can also include one or more other steps which are carried out before any of the defined steps, between two of the defined steps, or after all of the defined steps (except where context excludes that possibility).
[0099] Thus, the present invention is well adapted to carry out the objects and attain the ends and advantages mentioned above as well as those inherent therein. While presently preferred embodiments have been described for purposes of this disclosure, numerous changes and modifications will be apparent to those skilled in the art. Such changes and modifications are encompassed within the spirit of this invention as defined by the appended claims.