Room and area disinfection utilizing pulsed light with modulated power flux and light systems with visible light compensation between pulses
Abstract
A method of reducing bacterial contamination on surfaces in an enclosed space that is suitable for human occupancy, wherein the method comprises: generating pulses of light at a frequency greater than about 20 Hz from a germicidal light source of an apparatus disinfection that is arranged in an enclosed space that is suitable for human occupation; and projecting the light pulses to surfaces in the enclosed space at least 1.0 meter from the disinfection apparatus, where the light pulses generated by the germicidal light source comprise a pulse duration and energy flux sufficient to generate a energy flux between about 200 W / m2 and about 5000 W / m2 of ultraviolet light in the wavelength range between 200 and 320 nm on the surfaces.

Term
9 yearsto projected expiry
Projected expiry 18 September 2035, counted from filing; an application has no term until it is granted.
- Priority
- Filed
- Published
- Today
- Projected expiry
13 claims: 1 independent, 12 dependent
- 1ES 2 811 360 T3 REIVINDICACIONES 1. Un método para reducir la contaminación bacteriana en superficies en un espacio cerrado que es adecuado para la ocupación humana, en donde el método comprende:generar pulsos de luz a una frecuencia mayor que aproximadamente 20 Hz a partir de una fuente de luz germicida de un aparato de desinfección que está dispuesto en un espacio cerrado que es adecuado para la ocupación humana;y proyectar los pulsos de luz a superficies en el espacio cerrado al menos 1,0 metros del aparato de desinfección, en donde los pulsos de luz generados por la fuente de luz germicida comprenden una duración de pulso y un flujo de energía suficientes para generar un flujo de energía entre aproximadamente 200 W/m 2 y aproximadamente 5000 W/m 2 de luz ultravioleta en el intervalo de longitud de onda entre 200 nm y 320 nm en las superficies.
- 2El método de la reivindicación 1, que además comprende inhibir o terminar la operación del aparato de desinfección basado en una señal de detección de un sensor de ocupación que comprende el aparato de desinfección.
- 3El método de la reivindicación 1, en donde la etapa de proyectar los pulsos de luz comprende proyectar los pulsos de luz directamente a superficies en el espacio cerrado al menos 2,0 metros del aparato de desinfección.
- 4El método de la reivindicación 1, en donde la etapa de generar los pulsos de luz comprende generar los pulsos de luz a una frecuencia mayor que aproximadamente 40 Hz.
- 5El método de la reivindicación 1, en donde la etapa de generar los pulsos de luz comprende generar los pulsos de luz a una frecuencia mayor que aproximadamente 60 Hz.
- 6El método de la reivindicación 1, en donde la etapa de generar los pulsos de luz comprende generar los pulsos de luz a una frecuencia entre aproximadamente 55 Hz y aproximadamente 80 Hz.
- 7El método de la reivindicación 1, en donde la etapa de generar los pulsos de luz comprende generar los pulsos de luz a una frecuencia mayor que aproximadamente 80 Hz.
- 8El método de la reivindicación 1, en donde los pulsos de luz generados por la fuente de luz germicida comprenden una duración de pulso y un flujo de energía suficientes para generar un flujo de energía entre aproximadamente 200 W/m 2 y aproximadamente 2500 W/m 2 de luz ultravioleta en el intervalo de longitud de onda entre 200 nm y 320 nm en las superficies.
- 9El método de la reivindicación 1, en donde los pulsos de luz generada por fuente de luz germicida comprenden una duración de pulso y un flujo de energía suficientes para generar un flujo de energía entre aproximadamente 200 W/m 2 y aproximadamente 1000 W/m 2 de luz ultravioleta en el intervalo de longitud de onda entre 200 nm y 320 nm en las superficies.
- 10El método de la reivindicación 1, que además comprende mover automáticamente la fuente de luz germicida con relación a una estructura de soporte del aparato de desinfección durante las etapas de generación y proyección de los pulsos de luz.
- 11El método de la reivindicación 1, que además comprende mover automáticamente el aparato de desinfección durante las etapas de generación y proyección de los pulsos de luz.
- 12El método de la reivindicación 1, en donde la fuente de luz germicida es una fuente de luz germicida policromática.
- 13El método de la reivindicación 1, en donde la fuente de luz germicida genera luz ultravioleta y luz visible, en donde el método además comprende generar pulsos de luz desde una fuente de luz visible distinta de la fuente de luz germicida de forma que las proyecciones combinadas de luz visible desde la fuente de luz visible y la fuente de luz germicida producen un flujo continuo de luz visible o un flujo conjunto de luz visible pulsada a una frecuencia mayor que 50 Hz.
Independent claims13
97 paragraphs in 7 sections, as filed
ES 2 811 360 T3
DESCRIPTION
Methods of disinfection of rooms and spaces using pulsed light
Background
Field of the invention
This invention generally relates to methods using light disinfection systems, and more specifically to methods using power flow modulated pulsed light.
Description of Related Art
Pulsed light sources are used in a variety of applications to generate recurring pulses of ultraviolet (UV) light. Examples of applications include, but are not limited to, polymer curing, food sterilization, liquid and object disinfection, and room / area decontamination. Area / room disinfection in particular is increasingly becoming an application of interest, as pulsed ultraviolet light has been shown to significantly reduce the number of pathogenic microorganisms in an area / room in a short period of time. In particular, pulsed UV light has been shown to inactivate and in some cases kill microorganisms on objects and surfaces in a room / area at distances of approximately 3 meters from a UV light source, depending on factors such as reflectivity and the complexity of the objects in the room. Furthermore, pulsed ultraviolet light has been shown to reduce the number of pathogenic microorganisms within a room / area to a level considered much less harmful to human health in less than approximately 5 minutes. Examples of zone / room disinfection applications are those used in hospitals and those used in agricultural operations, such as animal husbandry and / or livestock.
Many studies suggest that the germicidal efficacy for the inactivation of microorganisms is mainly due to the dose of ultraviolet electromagnetic radiation subtype C (UVC) applied, as well as the efficacy of the electromagnetic radiation subtype ultraviolet B (UVB), or to the energy dose. within the wavelengths of 200 and 320 nanometers. This efficiency is determined by measuring the quantum yield or the number of germicidal actions that take place per incident photon that reaches a microorganism. Conventional uses of pulsed ultraviolet light for UV sanitizing of foods generally rely on a high level of power per pulse to maximize the UVC dose, specifically so that ultraviolet light can penetrate the cracks or pores of the surface of a food. UV curing and sintering processes also use a relatively high level of power per pulse to maximize the UV dose. In other applications that use pulsed ultraviolet light to inactivate microorganisms, such as wastewater disinfection, a relatively low pulse power can be used, but at a relatively high frequency to maximize the UVC dose over a given period of time. In particular, pulse power and pulse rate are known to have an effect on UVC dose (not necessarily a proportional effect, however), but have an inverse relationship to each other (i.e. the higher the power per pulse, the lower the pulse rate and vice versa) and therefore each can vary based on application needs.
However, zone / room disinfection applications using pulse UV light create limits for which pulse power and frequency can be optimized. In particular, zone / room disinfection processes differ from other pulsed UV light processes (e.g. curing, sintering, food sanitizing and wastewater treatment processes) in that UV light must be transmitted over a relatively long distance (for example, up to 3 meters from a UV source). Due to the inverse square law of distance, conventional zone / room disinfection applications using pulsed ultraviolet light are generally limited to using a relatively high level of power per pulse to ensure that a sufficient dose of UVC is transmitted through of a room / zone. To maximize the UVC dose generated, conventional room / area disinfection applications using pulsed UV light use a relatively low pulse frequency (eg, less than about 2 Hz). Despite the compromise of a relatively low pulse rate, a zone / room disinfection device using pulsed UV light may be limited in the level of power it can generate for a pulse due to device size limitations. In particular, it is often preferred that room / zone disinfection devices are easily portable so that they can be moved to multiple rooms in a building and hence the size of the pulsed lamp and power supply used for operating it may be limited. Other applications of pulsed UV (p. g., curing, sintering, food sanitizing, and wastewater treatment processes) are generally not designed for portability and are therefore often not limited in the amount of UV light they can generate.
Additionally, conventional zone / room disinfection applications using pulsed UV light are generally limited to frequencies below 2 Hz to prevent the pulse rate from inducing seizures (the range of which is generally considered to be 3-60 Hz). . In particular, although zone / room disinfection using pulsed UV light is typically performed by an automated device in an unoccupied room / zone to limit or prevent UV light exposure, some rooms / zones may not
ES 2 811 360 T3 block the visible light generated by the disinfection device. To limit exposure to the intensity and / or pulse rate of pulsed light, measures are often used to protect the transmission of visible light from the room / area, such as blocking windows in a room or covering spaces. at the top and / or bottom of a room divider. However, such protective measures may not block all light from all zones / rooms and therefore the pulse rate of a zone / room disinfection device using pulsed UV light can generally be limited to 2 Hz. or less for security reasons.
In view of the general knowledge that the germicidal efficacy of pulsed UV light depends primarily on the total UVC dose and the above-mentioned restrictions of zone / room disinfection devices using pulsed UV light, the efficiency and efficacy of Conventional room / area disinfection devices using pulsed UV light have been limited. Consequently, it would be beneficial to develop methods and systems to increase the efficiency and effectiveness of zone / room disinfection devices using pulsed ultraviolet light.
US 2006/216193 A1 describes a combination tool for cleaning and sanitizing a surface. The tool includes a cleaning device and at least one UV flash unit. The cleaning device can be adapted to either moisten or clean. The combination tool can also include a dispensing unit that can dispense a treatment agent. The tool can also include a sensor that can detect surface properties. In some arrangements, the tool includes a motion component that can propel the tool robotically.
Compendium
The following description of various arrangements of apparatus should in no way be construed as limiting the subject matter of the appended claims. Instead, the claims define the scope of the invention.
Embodiments of a method for reducing bacterial contamination on surfaces in an enclosed space that is suitable for human occupancy that includes generating pulses of light at a frequency greater than about 20 Hz from a germicidal light source of a disinfection apparatus It is arranged in the enclosed space that is suitable for human occupancy and projecting the light pulses to surfaces in the enclosed space at least 1.0 m from the disinfection apparatus. The light pulses generated by the germicidal light source comprise a pulse duration and energy flow sufficient to generate a power flow between approximately 200 W / m<sup>2</sup> and about 5000 W / m<sup>2</sup> of ultraviolet light in the wavelength range between 200 nm and 320 nm on the surfaces. An apparatus arrangement for performing such a method includes a germicidal light source arranged within the apparatus such that germicidal light generated from the germicidal light source is projected outside the apparatus. The apparatus further includes circuitry configured to generate pulses of light from the germicidal light source at a frequency greater than about 20 Hz.
Other methods discussed herein for disinfecting surfaces include generating pulses of light from a germicidal light source, wherein the light pulses from the germicidal light source comprise germicidal light and visible light, and generating pulses of light from a light source. visible that is distinct from the germicidal light source. Visible light projections from the visible light source and visible light projections from the germicidal light source produce a continuous flow of visible light or a joint flow of pulsed visible light at a frequency greater than 60 Hz. One arrangement of a disinfection apparatus for performing such a method includes a germicidal light source configured to emit germicidal light and visible and pulse light circuits configured to generate pulses of light from the germicidal light source at a specified frequency. The apparatus further includes a visible light lamp other than the pulsed germicidal light source and additional circuitry configured to cause the visible light lamp to generate light.
Brief description of the drawings
Other objects and advantages of the invention will become apparent upon reading the following detailed description and referring to the accompanying drawings in which:
fig. 1 illustrates an example of a room / zone disinfection device;
fig. 2 illustrates an example of a cooling system that can be used for the light sources of the apparatus described herein;
fig. 3 illustrates an example of a different room / zone disinfection device;
figs. 4 and 5 illustrate examples of enclosed spaces;
fig. 6 illustrates ultraviolet light power flux and energy flux target ranges between about 200 nm and about 320 nm for a lamp surface and at distances of 1.0, 2.0, and 3.0 meters from the lamp;
ES 2 811 360 T3 fig. 7 illustrates a graph showing the disinfection efficacy of five different firing voltage frequencies over time on a surface approximately 2 meters from a pulsed germicidal light source;
fig. 8 illustrates an example of an apparatus having a germicidal light source and a separate visible light source; and fig. 9 illustrates a diagram of options for generating light in each of the light sources of the apparatus depicted in FIG. 8.
While the invention is susceptible to various modifications and alternative forms, specific embodiments thereof are shown by way of example in the drawings and will be described in detail herein. However, it should be understood that the drawings and the detailed description thereof are not intended to limit the invention to the particular form described, but rather are intended to cover all modifications that fall within the scope of the present invention according to is defined by the appended claims.
Detailed description
Methods and apparatus are provided for disinfecting surfaces that generate pulses of light from germicidal light sources at a frequency greater than about 3 Hz. In particular, methods and apparatus are provided that generate pulses of ultraviolet light at a frequency greater than about 20 Hz with a power flow significantly lower than light pulses generated from conventional disinfection devices. Such methods and apparatus are described in more detail below with reference to Figs. 1-7. In addition, methods and apparatus are provided that generate pulses of light that include ultraviolet light and visible light from a lamp at a frequency between about 3 Hz and about 60 Hz and that further emit visible light from a separate lamp to ensure that the emitted visible light by the two lamps it produces a continuous flow of visible light or a continuous flow of pulsed visible light at a frequency greater than 50 Hz. Such methods and apparatus are described in more detail below with reference to Figs. 8 and 9. As will be discussed in more detail below, the apparatus and components described herein are not limited to the representations in the drawings. Various other device and component configurations can be considered. Furthermore, it is noted that the drawings are not necessarily drawn to scale.
Each of the methods and apparatus described herein includes the use of a germicidal light source. The term "germicidal light source" as used herein refers to a light source designed to generate and emit germicidal light, that is, light that is capable of deactivating or killing microorganisms, particularly disease-bearing microorganisms and / or microorganisms. disease producers (also known as germs). The term killing, as used herein, means causing the death of an organism. The term "deactivate", as used herein, means rendering an organism incapable of reproducing without killing it. The germicidal light sources considered for the methods and apparatus described herein can be configured to generate any type of germicidal light. Ranges of light that are known to be germicidal include ultraviolet light between about 200 nm and about 320 nm and visible blue violet light (also known as high intensity narrow spectrum light (HINS)) between about 400 nm and about 470 nm. Examples of germicidal light sources that can be configured to generate ultraviolet light and / or HINS light include discharge lamps, solid-state devices or light-emitting diodes (LEDs), and excimer lasers. HINS lamps are generally built with LEDs. In some cases, the germicidal light sources considered for the methods and apparatus described herein may be polychromatic in that they generate light of more than one wavelength. In some additional arrangements, the germicidal light sources considered for the methods and apparatus described herein may generate light that is not germicidal, such as, but not limited to, visible light, but such ability will not preclude reference to light sources are germicidal.
In any case, the germicidal light sources considered for the devices described herein can be of any size and shape, depending on the design specifications of the devices. Lamps that have outer surfaces between approximately 50 cm<sup>2</sup> and about 250 cm<sup>2</sup> they may be particularly suitable for the methods and apparatus described herein, as they are aimed at room / area disinfection processes, but lamps with smaller or larger outer surfaces can be used.
As noted above, the methods and apparatus described herein generate recurring pulses of light from germicidal light sources at frequencies greater than about 3 Hz. As such, the methods and apparatus described herein include configurations by which to generate light pulses from germicidal light sources. For example, the methods and apparatus described herein may utilize a pulsed germicidal light source and suitable circuitry to fire a stored amount of electrical energy for a given pulse duration at the pulsed germicidal light source. An example of an apparatus with such a component configuration is described in more detail below with reference to FIG. 1. The term "pulsed germicidal light source", as used herein, refers to a lamp that is designed to only generate and emit recurring pulses of germicidal light (ie, it cannot generate and emit continuous streams of germicidal light). Such lamps differ from continuous germicidal light sources that are configured to
ES 2 811 360 T3 generating and emitting continuous streams of germicidal light by applying direct current thereto. In some cases, the methods and apparatus described herein may utilize a continuous germicidal light source and suitable circuits to turn the continuous germicidal light source on and off at a certain frequency so that the continuous germicidal light source can generate and emit recurrent pulses of germicidal light. An example of an apparatus with such a component configuration is described in more detail below with reference to FIG. 3. To accommodate both types of light sources of the methods and apparatus described herein, the methods and apparatus described herein may be referred to as methods, apparatus, devices, or systems that generate recurring pulses of germicidal light.
As noted above, examples of germicidal light sources that can be configured to generate ultraviolet light and / or HINS light include discharge lamps. A discharge lamp, as used herein, refers to a lamp that generates light by means of an internal electrical discharge between electrodes in a gas. The term encompasses gas discharge lamps, which generate light by sending an electrical discharge through an ionized gas (i.e. a plasma). The term also encompasses surface discharge lamps, which generate light by sending an electrical discharge along a surface of a dielectric substrate in the presence of a gas, producing a plasma along the surface of the substrate. As such, discharge lamps that can be considered for the germicidal light sources described herein may include gas discharge lamps, as well as surface discharge lamps. Discharge lamps can also be characterized by the type of gas used and the pressure at which they operate. Discharge lamps that may be considered for the methods and apparatus described herein include low pressure, medium pressure, and high intensity lamps. In addition, the gases used may include helium, neon, argon, krypton, xenon, nitrogen, oxygen, hydrogen, water vapor, carbon dioxide, mercury vapor, sodium vapor. and any combination thereof. In some arrangements, various additives and / or other substances may be included in the gases. In any event, the discharge lamps considered for the germicidal sources described herein may include those that generate continuous light and those that generate recurring light pulses, the latter of which are often referred to as flash tubes or flash lamps. .
A gas discharge lamp commonly used to produce continuous light is a mercury vapor lamp, which can be considered for some of the germicidal sources described herein. It emits a strong light peak at 253.7 nm, which is considered particularly suitable for germicidal disinfection and is therefore commonly referred to for ultraviolet germicidal irradiation (UVGI). A flashlamp in common use that can be considered for the disinfection apparatus described herein is a xenon flash tube. A xenon flash tube generates a broad spectrum of light from ultraviolet to infrared (including visible light) and thus provides ultraviolet light across the spectrum that is known to be germicidal (i.e., between about 200 nm and about 320 nm). In addition, a xenon flash tube can provide relatively sufficient intensity in wavelength ranges that are known to be optimally germicidal (ie, between about 229 nm and about 231 nm and between about 260 nm and about 265 nm). In addition, a xenon flash tube generates an extreme amount of heat, which can further contribute to the deactivation and death of microorganisms.
As noted above, a surface discharge lamp can also be considered for some of the disinfection apparatus described herein. Similar to a xenon flash tube, a surface discharge lamp produces ultraviolet light across the spectrum that is known to be germicidal (ie, between about 200nm and about 320nm). Instead, surface discharge lamps operate at higher energy levels per pulse and therefore higher UV efficiency, as well as offering longer lamp life compared to xenon flash tubes. . It is noted that the aforementioned descriptions and comparisons of a mercury vapor lamp, a xenon flash lamp and a surface discharge lamp in no way restrict the disinfection apparatus described herein to the inclusion of such lamps. Rather, the descriptions and comparisons mentioned above are provided merely to offer aspects that one skilled in the art may contemplate when selecting a discharge lamp for a disinfection apparatus, particularly in function of the purpose and application of the apparatus.
Returning to the drawings, fig. 1 illustrates an example of an apparatus configured to generate pulses of ultraviolet light at frequencies greater than about 20 Hz with significantly less power flux relative to pulses of light generated by conventional disinfection apparatus. In particular, fig. 1 shows the apparatus 20 with base 24 with a series of components for determining said functionalities for the source 22 of pulsed germicidal light, the details of which will be described in more detail below. More specifically, fig. 1 illustrates base 24 including energy storage element (s) 26, trip voltage circuitry 28, power circuitry 30, pulse duration circuitry 32, program instructions 34, processor 36 and optional battery 38. As shown in fig. 1, apparatus 20 may include additional components, such as remote user interface 40, power cord 42, wheels 44, and presence sensor 46. It is noted that the placement of the indicated components is not limited to the representation of fig. 1, but rather the components may be arranged in any position to determine the functionality they impart to the apparatus 20. As such, the components shown in the base 24 of FIG. 1 need not be located within base 24 necessarily. Furthermore, the power cable 42, the wheels 44 and the presence sensor 46 may be located in other positions of the apparatus 20. In any case, the apparatus 20 may include
ES 2 811 360 T3 additional or alternative components not shown in fig. 1, such as, but not limited to, a user interface on the device (additional or alternative to the remote user interface 40), a handle to contribute to the portability of the device, a power socket input (additional or alternative to the cable 42 power supply) and / or additional sensors, such as presence sensors and light sensors.
Regardless of their location within the apparatus 20, the electrical components of the apparatus 20 are generally in electrical communication with each other through wired and / or wireless connections to determine the operations of the apparatus. For example, power circuitry 30 is electrically coupled to energy storage element (s) 26, trip voltage circuitry 28, and pulse duration circuitry 32 to generate a pulse of light from source 22. of pulsed germicidal light and power circuitry 30 is also electrically coupled to processor 36, to remote user interface 40 (and / or to a user interface on the apparatus) and to presence sensor 46 to determine the start and end of apparatus operations. Additionally, processor 36 is electrically coupled to program instructions 34 so that the processor can execute program instructions, and furthermore, processor 30 is electrically coupled to remote user interface 40 (and / or a user interface on the apparatus) and / or any sensor of the apparatus 20 to determine the operations of the pulsed germicidal light source 22 in accordance with program instructions 34. Other electrical connections may be included in apparatus 20 between any of the listed components and other components of apparatus 20 to determine operations thereof.
As noted above, apparatus 20 includes a series of components in base 24 to determine the generation of pulsed light from pulsed germicidal light source 22 at a frequency greater than about 20 Hz with significantly less power flux at relation to the light pulses generated by conventional disinfection devices. In particular, base 24 includes firing voltage circuitry 28 that is configured to apply a sufficient voltage at a set frequency by which to activate pulsed germicidal light source 22 to generate recurring pulses of light. Furthermore, base 24 includes energy storage element (s) 26 and pulse duration circuitry 32, respectively, configured to discharge a specified amount of stored energy in a specified time to source 22 of pulsed germicidal light. The components that make up the trigger voltage circuitry 28, the storage element (s) 26, and the pulse duration circuitry 32 and the operation performed by such elements will generally depend on the design of the germicidal light source. For example, a flashlamp includes one or more capacitors for the energy storage element (s) and includes one or more inductors for its pulse duration circuitry 32. Furthermore, the firing voltage of a flashlamp serves to ionize the gas in the flashlamp and cause the capacitor (s) to discharge its accumulated energy to it during the time regulated by the inductor (s). . In any event, the voltage levels applied to the trip voltage circuitry 28 and pulse duration circuitry 32, as well as to the energy storage element (s) 26 to accumulate charge thereon, can generally depend of design specifications (e.g., desired pulse rate, pulse duration, pulse intensity, outer surface area of pulsed germicidal light source 22, among other parameters known to those skilled in the art of pulsed light source design). Example ranges are described with reference to FIG. 6 with respect to the desired power flows shown therein.
As noted above, apparatus 20 is configured to generate pulses of ultraviolet light at frequencies greater than about 20 Hz. Such functionality is governed by trigger voltage circuitry 28. In particular, it may be particularly suitable that the trigger voltage circuitry 28 can be configured to apply a trigger voltage at a frequency greater than 20 Hz to the pulsed germicidal light source 22 and, in some applications, at frequencies greater than 40 Hz. , at more than 50 Hz or even at more than 55 Hz. In other embodiments, the trigger voltage circuitry 28 may be configured to apply a trigger voltage at a frequency greater than 60 Hz, and particularly between about 60 Hz and about 100 Hz to the pulsed germicidal light source 22. In particular, it may be advantageous for the trigger voltage circuitry 28 to apply a trigger voltage to the pulsed germicidal light source 22 at a frequency above the safe threshold for inducing seizures (generally considered to be about 60 Hz). ). In still other arrangements, it may be advantageous for the trigger voltage circuitry 28 to apply a trigger voltage to the pulsed germicidal light source 22 at a frequency slightly above the seizure induction threshold for safety reasons (e.g. light of the variability of the voltage consumption of the electrical network of an AC power supply of a building), such as at a frequency of 65 Hz or higher.
In some cases, it may be advantageous for the firing voltage circuitry 28 to apply a firing voltage to the pulsed germicidal light source 22 at a frequency where the light appears continuous to the human eye. For example, light pulsed at frequencies of 60 Hz and above where pulse durations are approximately 25 microseconds appear continuous to the human eye. It is believed that the minimum frequency level to evoke the appearance of continuous light to the human eye varies with the duration of the pulses, specifically the minimum frequency level increases as the pulse duration decreases and vice versa. Therefore, the frequency level for setting a trigger voltage to evoke the appearance of continuous light to the human eye may vary between applications depending on the design specifications of the pulsed germicidal light source, particularly the duration of the pulse. . In still other arrangements, a frequency range of 60 Hz to 90 Hz may be beneficial in maximizing the UVC dose from a pulsed germicidal light source within a given period without causing undue operational stress on the discharge lamp. It is observed that, for the development of ideas
In ES 2 811 360 T3 provided herein, trigger voltages of 67 Hz were repeatedly tested, but the scope of the ideas described herein should not be limited to that frequency. Other exemplary ranges of frequencies above 20 Hz may be considered, including those exceeding 100 Hz.
As noted above, apparatus 20 may include an optional battery 38 connected to power supply circuitry, which can be used to supply power to one or more components of the apparatus. However, it is noted that, given their large power requirements, it is generally advantageous to power the pulsed germicidal light source 22, energy storage elements 26, trip voltage circuitry 28, and pulse duration circuitry 32 from a building ac power source to which the appliance is connected via a power cord contained in the appliance or connected to an input socket of the appliance. In such cases, the power supply circuitry may include a step-up transformer to increase the alternating current received through the power cord and / or outlet input and further a rectifier to convert the alternating current received from the step-up transformer in direct current for the operation of the pulsed germicidal light source. However, it is contemplated that the continuous germicidal light sources in some appliances can be powered by a battery, as they have much lower power requirements. In such cases, it may be possible for the apparatus to be devoid of a power cord and / or a socket outlet for connection to a building AC power source.
In some cases, pulsed germicidal light sources can generate a lot of heat and therefore may need to be refrigerated during operation. The type of cooling system may include convection cooling, forced air / gas cooling, or liquid cooling, the selection of which may generally depend on the design characteristics of the appliance, particularly the flow of power it is configured to generate. An example of a forced air system is illustrated in fig. 2 as an example for the pulsed germicidal light source 22 of FIG. 1. In particular, fig. two illustrates pulsed germicidal light source 22 disposed within adjacent circumferential barrier 50 between air inlet 52 and air outlet 54 with air inlet 52 having an air moving device 56 disposed in proximity thereto, forming at effect a plenum 58 around the source 22 of pulsed germicidal light. Adjacent circumferential barrier 50 is made of a germicidal light transparent material such that germicidal light generated by pulsed germicidal light source 22 can be transmitted out of apparatus 20.
In some arrangements, the adjacent circumferential barrier 50 may include a material that attenuates some or all of the visible light generated by the pulsed germicidal light source 22 and / or the apparatus may include an additional adjacent circumferential barrier of such material that surrounds the barrier 50. adjacent circumferential. The inclusion of such material in any such case may be beneficial when the intensity of the visible light generated by the pulsed germicidal light source 22 is very high, particularly when it causes visual discomfort or distraction after exposure. However, in other cases, when the intensity of the visible light generated by the pulsed germicidal light source 22 is relatively low, it may be advantageous to remove the barrier around the pulsed germicidal light source 22 that attenuates the visible light. In particular, a visible light filter could reduce the intensity of the light in other ranges, such as a germicidal range, and thus reduce the power flux of the germicidal light emitted by the apparatus 20.
In either case, air moving device 56 draws air into plenum 58 through air inlet 52 and discharges through air outlet 54. In an alternative embodiment, the air moving device 56 may be located near the air outlet 54. In either case, the air moving device 56 can be any device configured to cause air flow, including but not limited to a fan or turbine. In cases where a turbine is used in the apparatus described herein, the turbine can be used to supply power to one or more components of the apparatus, including any of the components described herein, or to a battery of the apparatus. In either case, the air inlet 52 may include a filter to remove particular matter from an incoming air stream.
In some cases, the air outlet 54 may include an ozone reducing device 60, such as a carbon filter or a device that produces free radical catalysts that convert ozone to diatomic oxygen. In particular, ozone can, in some cases, be created as a by-product of the use of the pulsed germicidal light source 22, specifically if the lamp generates ultraviolet light of shorter wavelengths of about 240 nm since said UV light spectrum causes the oxygen atoms of the oxygen molecules to dissociate, starting the ozone generation process. Ozone is a known health and air quality hazard and therefore its release is regulated by devices. Ozone is also known to be an effective germicidal agent and deodorizer and therefore if the amount of ozone generated by the pulsed germicidal light source 22 is less than the local / regional exposure limits for ozone, It may be beneficial to exclude an ozone reducing device 60 from the air outlet 56. In other cases, the air outlet 56 may have a section with an ozone reducing device and a section without an ozone reducing device and further an air flow regulator to respectively direct the air through the different sections depending on parameters. operating and / or modes of disinfection processes employed by the apparatus 20. Examples of air vents having such elements are described in more detail in US application no. No. 14 / 790.827 filed July 2, 2015.
ES 2 811 360 T3
Regardless of whether apparatus 20 includes an ozone reducing device, apparatus 20 may, in some cases, include a reflector at a height above pulsed germicidal light source 22 to redirect light emitted from germicidal light source 22 pressed down. In particular, the methods and apparatus described herein may be particularly specific for room / area disinfection and therefore it may be advantageous to include a reflector to redirect light from pulsed germicidal light source 22 to a region. outside of the apparatus 20 and is between about 2 feet (61 cm) and about 4 feet (122 cm) from the floor of a room in which the apparatus 20 is located. In general, the region between about 2 feet (61 cm) and about 4 feet (122 cm) from the floor of a room is considered a multi-contact region of a room as frequently used objects are generally placed in said region. Examples of objects typically found in a high-contact area of a room include, but are not limited to, desks, keyboards, telephones, chairs, door and cabinet handles, light switches, and sinks. Examples of objects in the high-contact areas of hospital rooms additionally or alternatively include beds, nightstands, tables with trays, and IV stands. Because this region is considered a high-contact area, it is generally considered the area most likely to come into contact with germs, and some studies indicate that the high-contact area may be the area with the highest concentration of germs.
Fig. 2 illustrates an example of a reflector for apparatus 20 arranged at a height above pulsed germicidal light source 22 to redirect light emitted from the light source downward to a region that is between approximately 61 cm (2 feet) and approximately 4 feet (122 cm) from the floor of a room in which the apparatus 20 is located, specifically the annular reflector 62 around the air outlet 54. Other configurations (eg, size, shape, angle, distance from pulsed germicidal light source 22) of reflectors may be used and / or reflectors may be located at other positions within apparatus 20 to help distribute light to areas. of interest in a room, particularly at distances of 1 to 3 meters from the appliance 20. Examples of room / area disinfection devices that have reflectors with this feature are described in U.S. application serial numbers 13 / 706,926, filed December 6, 2012, and 13 / 708,208, filed December 7, 2012. , as well as in international patent application no. PCT / US2014 / 059698 filed October 8, 2014.
Another configuration that characterizes the apparatus described herein for specifically determining room / area disinfection is that the germicidal light source is arranged within the apparatus such that the germicidal light generated from the germicidal light source is project outside the apparatus. In some cases, a germicidal light source may be arranged longitudinally and substantially perpendicular to a horizontal plane of a support structure supporting one end of the light source. Additionally or alternatively, the apparatus may lack a 360 ° opaque component around an elongated section of the germicidal light source so that light emitted from the germicidal light source surrounds the apparatus, as shown in the source 22 of pulsed germicidal light of Figs. 1 and 22. In addition, some of the apparatus described herein may include an actuator to move its germicidal light source within the apparatus (for example, relative to a support structure that supports the light source) to aid in light distribution in a room or in an area. In this regard, the methods described herein may include automatically moving a germicidal light source within the apparatus while the germicidal light source emits light and / or between light pulses. Another element that characterizes the apparatus described herein to specifically determine the disinfection of the room / area is to have a presence sensor, for example a motion sensor, a thermal sensor or a light recognition sensor. In such cases, the methods described herein may include inhibiting and / or stopping the generation of light pulses from the germicidal light source by making a detection that is indicative of presence within the area / room in which it is located. the apparatus.
Still other items that may be included in the apparatus described herein to specifically determine room / area sanitization are those that determine the portability of the apparatus, such as wheels and / or a handle. In particular, it is often preferred that room / zone disinfection devices are easily portable so that they can be moved to multiple rooms in a building. In some arrangements, the apparatus described herein may include instructions from the processor executable program to receive data regarding the characteristics of an enclosed space in which the disinfection apparatus is to be operated. In general, the phrase "characteristics of a closed space" as used herein refers to physical attributes as well as non-physical attributes of a closed space. Non-physical attributes of an enclosed space include, but are not limited to, identifiers used to refer to a closed space (for example, room number and / or room name) and occupancy information regarding an enclosed space ( for example, infection information for a patient who previously occupied the space or a patient programmed to occupy the space). The physical attributes of an enclosed space include, but are not limited to, the size and / or dimensions of the enclosed space and / or the number, size, distances, positions, reflectivity, and / or identification of surfaces, objects, and / or elements within the space. closed In some cases, a physical attribute of a closed space may be the identification of one or more pathological organisms and sometimes the number or concentration of these organisms in the closed space, in a particular region of the enclosed space, or on a particular surface of the enclosed space.
In any case, the data received regarding the characteristics of the enclosed space in which the disinfection apparatus is to be operated can be used in various ways, including, but not limited to, registration purposes or the
ES 2 811 360 T3 reporting or setting one or more operating parameters of the apparatus. In some arrangements, the apparatus described herein may include a means for automatically moving the apparatus. In some cases, the apparatus may include program instructions for moving the apparatus along a predetermined route. Additionally, or alternatively, the apparatus may include program instructions for moving the apparatus according to room characteristics of a room that has been analyzed by one or more sensors of the apparatus, including sensors for creating a map or model of an area. /bedroom. In United States application no. No. 13 / 706.926 filed December 6, 2012 describes examples of room / zone disinfection devices with some of the program instructions mentioned above.
Other configurations can be considered that can help improve room / zone disinfection devices. More specifically, the apparatus described herein can be configured (with the configurations indicated above or with other configurations) to expose areas and rooms, as well as objects as a whole to germicidal light and can therefore be specifically configured to distribute light widely to a room environment where the disinfection apparatus is located. Furthermore, the apparatus described herein can be configured to distribute germicidal light to surfaces within a room or area that are more than 1 meter or even 2 or 3 meters from a germicidal flashlamp. The devices can be of any shape, size or configuration to achieve these objectives. Examples of room / zone disinfection devices are described in US application serial numbers 13 / 706,926, filed December 6, 2012, and 13 / 708,208, filed December 7, 2012; as well as in international patent application no. PCT / US2014 / 059698 filed October 8, 2014.
However, other configurations of zone / room disinfection apparatus may be employed for the apparatus described herein.
As used herein, the term "room / area disinfection" refers to the cleaning of a space that is suitable for human occupation to deactivate, destroy, or prevent the growth of disease-bearing microorganisms in the area. The phrase a space that is suitable for human occupation as used herein refers to a space in which an average-sized adult human can comfortably occupy for at least a period of time to eat, sleep, work, rest, participate in an activity, or perform a task in it. In some cases, spaces suitable for human occupation may be delimited and include a door to enter and exit the room. In other cases, a suitable space for human occupation may be an area with indeterminate boundaries. Examples of spaces that are suitable for human occupancy include, but are not limited to, single patient rooms, multi-occupancy patient rooms, bathrooms, dressing rooms, hallways, bedrooms, offices, operating rooms, patient examination rooms, waiting areas, and / or rest and ambulatory. As used herein, the term "enclosed space" refers to a space that has its boundaries defined by barriers that block a large majority or all of the transmission of germicidal light outside the area.
In figs. 4 and 5 show examples of closed spaces suitable for human occupancy in which the apparatus described herein can be used to carry out zone / room disinfection processes. In particular, fig. 4 illustrates the operating or patient room 80 having the door 82 closed and having a disinfection apparatus 84 located therein. In such cases, the walls and windows (if applicable) of room 80 as well as door 82 serve as barriers that define the boundaries of room 80 to form an enclosed space suitable for human occupancy. Although the door 82 is closed to consider the space closed, germicidal light can be transmitted around the periphery of the door if it is not sealed. In such cases, a large part of the germicidal light transmission is prevented from being transmitted outside of room 80 and is therefore considered an enclosed space.
Fig. 5, on the other hand, illustrates multi-occupancy room 86 having door 88 open but including separate area 90 isolated by room divider 92, such as a cubicle curtain. As shown, the separate zone 90 includes one of the plurality of disinfection apparatus 94. In such cases, the walls and windows (if applicable) of room 86 of the separated zone 90, as well as the room divider 92 serve as barriers that define the boundaries of the separated zone 90 to form a closed space suitable for occupancy. human. It is appreciated that room divider 92 may not fully extend to the walls, ceiling, and / or floor of room 86, and therefore germicidal light may be transmitted around room divider 92. In such cases, a large part of the germicidal light transmission is prevented from being transmitted outside of the separated zone 90 and is therefore considered an enclosed space. In general, the disinfection apparatuses 84 and 94 shown in FIGS. 4 and 5 may include any of the apparatus described herein. It is noted that the number, size, placement, and portability of the disinfection apparatuses 84 and 94 are not unique to the respective configurations of FIGS. 4 and 5 showing a room as a closed space and a separate section of a room as a closed space. In particular, any of the apparatus described herein can be used in any enclosed space that is suitable for human occupancy.
As noted above, the apparatus 20 of FIG. 1 is an example of an apparatus that can be used to generate pulses of ultraviolet light at frequencies above about 20 Hz with significantly less power flux relative to pulses of light generated by conventional disinfection apparatus. Several other device configurations can be considered for these functionalities, one of which is
ES 2 811 360 T3 shown in fig. 3. In particular, fig. 3 illustrates the apparatus 70 including a plurality of germicidal light sources 72 disposed on the holder 74. In some cases, the rear of the apparatus 70 may include a rear panel spanning the space dimension of the holder 74 to prevent the emission of germicidal from the rear of the apparatus 70. In other arrangements, the rear of the apparatus 70 may be open so that light can be emitted on both sides of the apparatus. In either case, the use of apparatus 70 for zone / room disinfection may be considered. In some arrangements, the apparatus 70 can be mounted to a wall or ceiling. Alternatively, apparatus 70 may be a separate device.
In any event, the dimensions and shape of the support 74 may vary from those shown in FIG. 3. More specifically, bracket 74 is not limited to being rectangular and / or having the relatively thin side walls depicted in FIG. 3. Furthermore, the orientation of the apparatus 70 is not limited to its longitudinal dimension being horizontal. Furthermore, apparatus 70 is not limited to having multiple cylindrical germicidal light sources oriented in the manner shown in FIG. 3. Rather, apparatus 70 can include any number, size, shape, and orientation of germicidal light sources. In addition, the germicidal light sources 72 may include the same type of germicidal light source or different types of germicidal light sources. In some cases, the apparatus 70 may be configured to move one or more of the germicidal sources 72 to extend out of the support 74 to improve the distribution of germicides generated therefrom to an environment of the apparatus. An example configuration offering such an option may include retractable tracks extending outward from support 74 in alignment with germicidal sources 72, along which germicidal sources can be moved manually or by actuator.
In any event, apparatus 70 may include any of the elements described with reference to apparatus 20 of FIG. 1. In particular, the apparatus 70 may include one or more of the energy storage elements 26, the trip voltage circuitry 28, the power circuitry 30, the pulse duration circuitry 32, the program instructions 34, the processor 36, optional battery 38, remote user interface 40, power cable 42, wheels 44, presence sensor 46, a user interface on the apparatus (additional or alternative to remote user interface 40), a handle to aid portability of the apparatus, a power socket input (additional or alternative to power cord 42) and / or sensors additional, such as presence sensors and additional light sensors. Such elements are not shown in apparatus 70 to simplify the drawing of FIG. 3. Furthermore, such elements are not described with reference to apparatus 70 for the sake of brevity.
In addition, apparatus 70 may include any of the elements of the refrigeration system described with reference to apparatus 20 of FIG. 1 and the specific embodiment of the forced air cooling system described with reference to fig. 2. For example, although not shown, apparatus 70 can include any number of air moving devices, air inlets, and air outlets. In addition, the front side and possibly the rear side of apparatus 70 may include panels within bracket 74 that are transparent to ultraviolet light and, if desired, are also opaque to visible light. In general, the air movement device (s), the air inlet (s), and the air outlet (s) may be located within either side of the bracket 74. Additionally, or alternatively, the air movement devices may be located internal to the bracket 74, particularly, but not necessarily, in alignment with the air inlets or outlets within the bracket. In either case, the air moving devices can be located upstream or downstream of an induced air flow through the support 44. In some cases, the apparatus 70 may include an air-moving device located at one end of at least one of the germicidal sources 72 (and, in some cases, include an air-moving device located at the end of each of germicidal sources 72) to induce airflow that flows substantially parallel to the longitudinal dimension of the germicidal light sources, as described for germicidal source 22 with reference to FIG. two. In other cases, the apparatus 70 may have air moving devices arranged to induce a flow of air through the germicidal sources 72.
However, as noted above, the apparatus described herein may include several different configurations, and thus, apparatus 70 may, in some cases, include elements other than apparatus 20 of FIG. 1. For example, germicidal light sources 72 may not be pulsed germicidal light sources, but rather continuous germicidal light sources, and thus apparatus 70 may not include the energy storage element (s) 26, trip voltage circuitry 28 and pulse duration circuitry 32. Instead, apparatus 70 may include circuitry to turn continuous germicidal light sources on and off at a set frequency (eg,> 20 Hz) so that continuous germicidal light sources can generate and emit recurring pulses of germicidal light.
As noted above, Figs. 1 and 3 depict examples of apparatus configured to generate pulses of ultraviolet light at frequencies above about 20 Hz with significantly less power flux relative to pulses of light generated by conventional disinfection apparatus. The term "power flux," as used herein, refers to the rate of radiant energy transmission over a given surface per unit area. Synonymous terms for power flux include irradiance, power density, and radiation intensity, and therefore the terms can be used interchangeably herein. The term energy flux, as used herein, refers to the amount of radiant energy on a given surface per unit area. A term synonymous with energy flow is radiant energy, and therefore the terms can be used interchangeably herein.
As noted above, many studies suggest that germicidal efficacy for inactivation of
ES 2 811 360 T3 microorganisms is mainly due to the dose of ultraviolet electromagnetic radiation of subtype C (UVC) applied, or to the energy dose within the wavelengths of 200 and 320 nanometers. In light of this, studies aimed at analyzing the energy requirements for germicidal efficacy generally focus on the power flow or the energy flow of ultraviolet light and, in some cases, the power flow or energy flow. UVC energy flow. In particular, some studies teach that a minimum power flux of ultraviolet radiation is needed to achieve sufficient germicidal efficacy. Other studies teach that additional parameters must be met in addition to the power flux, such as the relationships of the maximum, mean and root mean square of the ultraviolet radiation and / or a forced relationship that correlates the energy discharged to the lamp, the area lamp surface area and pulse duration. However, other studies link pulse rate requirements in addition to power flow, such as specifying a minimum pulse rate or a required pulse rate range.
For example, United States Patent No. 6,264,802 to Kamrukov et al. teaches how to apply UV radiation to liquids, air and surfaces with a radiation intensity of at least 100 KW / m<sup>2</sup>, a pulse duration between 1 and 1000 microseconds and also that the energy discharged to the lamp, the surface area of the lamp and the pulse duration meet a specified relationship. The patent does not mention what pulse frequencies can be used. United States Patent No. 5,144,146 from Wekhof teaches different power requirements for wastewater purification where an average UV power density must be kept at a value of at least 100 W / m<sup>2</sup> into the wastewater while pulsing the UV source at a frequency of 5 to 100 Hz. It is observed that the teaching of maintaining an average UV power density at a value of at least 100 W / m<sup>2</sup> refers to the complete operating cycle of the lamp rather than only when UV radiation is supplied from the lamp, which differs from the other power requirement parameters described in the patent. In particular, United States Patent No. 5, 144,146 from Wekhof further teaches that the ratio of the root mean square power to the mean power supplied by the UV source should be in the range of 10: 1 to 100: 1 and the ratio of the peak power to the mean power supplied by the UV source should be in the range of 1000: 1 to 10,000: 1
As will be described in more detail below, the zone / room disinfection processes described herein do not meet any of these prior art requirements, specifically that the processes be carried out with power flows significantly less than distances of 1.0 meter and further from disinfection devices. In particular, it was discovered during the development of the ideas provided herein that sufficient germicidal efficiency could be obtained with light pulses generated at frequencies above about 50 Hz and with a relatively low power flow, particularly less than 5000 W / m<sup>2</sup> of UV light in the wavelength range of 200 nm to 320 nm on surfaces at least 1.0 meter from the disinfection apparatus. As used herein, sufficient germicidal efficacy refers to a 2 to 10 g or greater reduction in bacterial contamination on surfaces.
More specifically, in developing the ideas provided herein, the disinfection efficiencies of five different frequencies ranging from 1.0 Hz to 100 Hz were evaluated on a surface 2.0 meters from a pulsed germicidal light source. , the results of which are shown in fig. 7. The lamps used for each of the frequencies were xenon flash lamps constructed of the same materials, the same surface, and the same filling pressure. In the interest of evaluating any variation induced by the differences in the frequencies, the cycle times of the disinfection processes for each of the frequencies were the same (i.e., 5 minutes) and the lamps were managed with operating parameters that produced a comparable power flux at the lamp surface during that cycle time (i.e. all the light generated in the lamp, not just UV or UVC). To accommodate such power flow, the pulse duration and the amount of energy accumulated in the condenser (s) for discharge to the lamps in disinfection processes performed at higher frequencies are generally lower than in disinfection processes. performed at lower frequencies. By making these adjustments, higher frequency processes run with a lower power flow per pulse than lower frequency processes. In other words, the rate of radiant energy transmission on a given surface per unit area is lower for each pulse.
As shown in fig. 7, the disinfection efficiency is substantially similar among the five different firing voltage frequencies for 5-minute disinfection processes. Based on the data obtained for the 5 different frequencies tested, it is evident that a disinfection process can be modulated by varying the amount, duration and frequency of UV light applied to a surface at a given distance without substantially affecting the effectiveness of the disinfection. More specifically, it has been discovered that UV light can be applied at a lower intensity and shorter pulse duration, but at a higher frequency on a surface at a given distance during a given cycle time and produce substantially germicidal efficacy. similar compared to processes that apply higher UV light intensity at lower doses. Various theories are contemplated to explain such findings. One theory involves keeping the target pathogen in a state of shock, in which there is the possibility of harm. In particular, it is theorized that the longer the pathogen is in a state of shock, which is caused by the incident photons, the more likely the cell is to be deactivated. To acquire this state, it is believed that a minimum level of ultraviolet light intensity is needed, which based on the data obtained could be achieved with frequencies of at least 100 Hz. For the sake of efficiency, it is speculated that higher pulse frequencies minimize the number of photons to reach this state, but at the same time maximize the number of cases of shock state.
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A second theory involves overloading the enzymatic cell repair mechanisms that aid in photorepair (that is, to repair a previously inactivated cell). In particular, a more frequent photon flux induced by higher frequency applications could overload cellular repair mechanisms before repair can be completed. It is further contemplated that these theories may be interrelated, specifically that the disinfection efficacy tested at the higher frequencies could involve a combination of the two. Furthermore, it is conceivable that these theories and / or the results found in the aforementioned five frequency test could be limited to inanimate objects and / or nosocomial pathogens.
Furthermore, it is speculated that the comparable disinfection efficiencies achieved among the five different pulse frequencies tested relative to FIG. 7 may be due to an increase in power flux at specific wavelengths that potentially have a greater degree of germicidal effect relative to other wavelengths in the UVC range as the pulse rate increases. In particular, it was discovered during the development of the ideas provided herein that a disinfection process that generates pulsed light between 60 Hz and about 70 Hz produces increased power flux at wavelengths of about 230 nm, about 248 nm. and approximately 261 nm than a disinfection process that generates pulsed light between 1.0 Hz and 2.0 Hz, even though the total power flux in the UVC range of the 60-70 Hz disinfection process is less than the power flux generated in the UVC range of the 1.0-2.0 Hz disinfection process. Larger peaks at about 230nm, about 248nm, and about 261nm can compensate for the lower total power flux in the UVC range relative to the 1.0-2.0Hz process conferring comparable disinfection efficiency.
Furthermore, it is speculated that the comparable disinfection efficiencies achieved among the five different pulse frequencies tested relative to FIG. 7 may be due to greater power flux variations in germicidal light ranges as the pulse rate is increased. In particular, it was discovered during the development of the ideas provided herein that a disinfection process that generates pulsed light between 60 Hz and 70 Hz produces a greater variation in power flux in the UVC range, specifically between 210 and 320 nm. nm and, more specifically between about 225 nm and about 265 nm, than a disinfection process that generates pulsed light between 1.0 Hz and 2.0 Hz. It was theorized that the greater power flux variation can compensate for the lower total power flux in the UVC range relative to the 1.0-2.0 Hz process conferring comparable disinfection efficiency. In particular, greater variation in power flux within a radiation spectrum correlates with atomic line radiation, which generally corresponds to photons' bond-to-bond energy state transitions. In contrast, a smaller variation in power flux within a radiation spectrum correlates with continuous radiation, which generally corresponds to the free-to-bond and free-to-free energy state transitions of the photons. In general, photons in bond-to-bond energy state transitions have a higher amount of energy than photons in free-to-bond and free-to-free energy state transitions. It is theorized that the higher photon energy induced by a greater power flux variation exhibited in the UVC range in the 60-70 Hz disinfection process may compensate for the lower total power flux in the UVC range relative to the process at 1.02.0 Hz, conferring a comparable disinfection efficiency between the two processes.
Part of the power flux variation in the UVC range in the 60-70 Hz disinfection process is due to large peaks centered at approximately 230 nm, approximately 248 nm, and approximately 261 nm. By taking the integral of such peaks in relation to the integral of the interval between approximately 225 nm and approximately 265 nm, an approximation of the degree of variation across said interval was quantified. In particular, about 60% of the power flow in that range was due to the process peaks at 60-70 Hz and about 50% of the power flow in that range is due to the process peaks at 1.0- 2.0 Hz. It is observed that the 60-70 Hz process exhibited greater power flux variations in other wavelength ranges of the ultraviolet spectrum and it is contemplated that these variations may further contribute to the relatively comparable disinfection efficiency of the 60-70 process. Hz relative to the 1.0-2.0 Hz process despite the lower total power flux in the UVC range of the 60-70 Hz process. In addition, the 60-70 Hz process exhibited greater variation in visible blue-violet light power fluxes between about 420 nm and about 470 nm than the process power flux variation at 1.0-2.0 Hz in the same range and it is contemplated that larger power flow variations may contribute to the relatively comparable disinfection efficiency of the 60-70 Hz process relative to the 1.0 Hz process. In particular, visible blue-violet light between about 400nm and about 470nm is known to be germicidal, and therefore greater variation in power flux in that region can contribute to germicidal efficacy.
Given the discovery that comparable disinfection efficiencies can be obtained from 2.0 meters away from a pulsed light source directed at pulse frequencies ranging from 1.0 Hz to 100 Hz, It is contemplated that a room / zone disinfection apparatus can operate at any pulse rate if the operating parameters are adjusted to generate a set light power flux into the lamp that is known to determine sufficient germicidal efficacy at a distance desired value of the disinfection apparatus. It is further contemplated that a room / zone disinfection apparatus may operate at any pulse rate if it is known that a desired power flux of UVC radiation determines sufficient germicidal efficacy at a desired distance from the disinfection apparatus. In particular, the operating parameters of the apparatus, such as the pulse duration, the energy discharged to the lamp and the lamp itself (particularly the outer surface of the lamp) can be optimized to achieve the desired power flux of UVC radiation to the desired pulse rate.
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The description provided herein focuses on ranges of ultraviolet light power fluxes between about 200nm and about 320nm during a pulse given that it can be used for room / area disinfection devices operated at frequencies above about 20Hz, particularly for sufficient germicidal efficacy at 1.0, 2.0 and 3.0 meters away from the apparatus. In particular, fig. 6 illustrates germicidal light source 98 of a room / zone disinfection apparatus with target ranges of energy flux and ultraviolet light power flux between about 200nm and about 320nm specified for the lamp surface and distances of 1.0, 2.0 and 3.0 meters away from the device. To simplify the drawing, the entire room / zone disinfection apparatus is not shown in fig. 6, but the apparatus may generally include any of the elements and configurations of the apparatus described with reference to FIGS. 1-3. It is particularly noted that the germicidal light source 98 may be a pulsed germicidal light source or it may be a continuous germicidal light source, wherein the latter embodiment, the room / space disinfection apparatus includes circuitry for turning the source on and off. of light to press the light of it.
As shown in fig. 6, the target ranges of the ultraviolet light energy flux between about 200 nm and about 320 nm at the surface of the germicidal light source 98 can be between about 20 J / m<sup>2</sup> and approximately 1500 J / m<sup>2</sup>. In addition, the target range of the ultraviolet light power flux between about 200 nm and about 320 nm at the surface of the germicidal light source 98 can be between about 0.8 MW / m.<sup>2</sup> and approximately 5.0 MW / m<sup>2</sup>. In more specific arrangements, the energy flux and the power flux of the ultraviolet light between about 200 nm and about 320 nm at the surface of the germicidal light source 98 can be between about 20 J / m<sup>2</sup> and approximately 500 J / m<sup>2</sup> and between approximately 0.8 MW / m<sup>2</sup> and approximately 1.5 MW / m<sup>2</sup>, respectively. As further shown in FIG. 6, the target ranges of the ultraviolet light energy flux between about 200 nm and about 320 nm at about 1.0 meter from the germicidal light source 98 can be between about 0.02 J / m<sup>2</sup> and about 1.5 J / m<sup>2</sup>. In addition, the target range of the ultraviolet light power flux between about 200 nm and about 320 nm, about 1.0 meter away from the germicidal light source 98 can be between about 800 W / m.<sup>2</sup> and approximately 5000 W / m<sup>2</sup>. In more specific arrangements, the energy flux and power flux of ultraviolet light between about 200 nm and about 320 nm, at about 1.0 meter from the germicidal light source 98 can be between about 0.02 J / m<sup>2</sup> and approximately 0.5 J / m<sup>2</sup> and between approximately 800 W / m<sup>2</sup> and approximately 1500 W / m<sup>2</sup>, respectively.
Fig. 6 further shows that the ultraviolet light energy flux target ranges between about 200 nm and about 320 nm, at about 2.0 meters from the germicidal light source 98 can be between about 6.0 DJ / m<sup>2</sup> and approximately 370 DJ / m<sup>2</sup>. In addition, the target range of the ultraviolet light power flux between about 200 nm and about 320 nm at about 2.0 meters from the germicidal light source 98 can be between about 200 W / m.<sup>2</sup> and approximately 1300 W / m<sup>2</sup>. In more specific arrangements, the energy flux and the power flux of the ultraviolet light between about 200 nm and about 320 nm at about 2.0 meters from the germicidal light source 98 can be between about 6.0, DJ / m<sup>2</sup> and approximately 250 DJ / m<sup>2</sup> and approximately between 200 W / m<sup>2</sup> and approximately 800 W / m<sup>2</sup>, respectively. Furthermore, fig. 6 further shows that the target range of ultraviolet light energy flux between about 200 nm and about 320 nm, about 3.0 meters from the germicidal light source 98 can be between about 1.5 DJ / m<sup>2</sup> and approximately 95 DJ / m<sup>2</sup>. In addition, the target range of the ultraviolet light power flux between about 200 nm and about 320 nm, about 3.0 meters from the germicidal light source 98 can be between about 50 W / m.<sup>2</sup> and approximately 300 W / m<sup>2</sup>. In more specific arrangements, the energy flux and power flux of ultraviolet light between about 200 nm and about 320 nm, about 3.0 meters from the germicidal light source 98 can be between about 6.0 DJ / m<sup>2 </sup>and approximately 120 DJ / m<sup>2</sup> and between approximately 200 W / m<sup>2</sup> and approximately 600 W / m<sup>2</sup>, respectively.
As noted above, the zone / room disinfection processes described herein do not meet any of the parameter requirements taught in US Patent No. 6,264,802 to Kamrukov et al., Nor in US Patent No. 5,144,146 to Wekhof, nor in US application no. US 2008/0150443 by Tipton for the operation of pulsed germicidal light sources. In particular, the maximum power flow indicated with reference to fig. 6 for distances of 1.0, 2.0 and 3.0 meters from a germicidal light source is 5000 W / m<sup>2</sup>, which is two orders of magnitude less than the minimum power flow requirement of 100 kW / m<sup>2</sup> taught in United States Patent No. 6,264,802 to Kamrukov et al. Similarly, the average power density of ultraviolet light during a cycle time of a disinfection process that is carried out using any of the target power flow ranges observed in FIG. 6 is likely to be at least two orders of magnitude less than the requirement taught in US Patent No. 5,144, 146 to Wekhof. In particular, a disinfection process performed with a pulse frequency between 60 Hz and approximately 70 Hz was calculated for the development of the ideas provided herein to have a mean power flux in the UV range during operation of the process. 2.9 W / m disinfection<sup>2</sup>, which is two orders of magnitude less than the minimum power flow requirement of 100 W / m<sup>2</sup> taught in United States Patent No. 5,144,146 to Wekhof. In addition, any disinfection process carried out
ES 2 811 360 T3 using any of the target power flow ranges outlined in FIG. 6 may not meet the requirement for the ratio of RMS power to mean power or the requirement for the ratio of peak power to mean power. For example, a disinfection process performed with a pulse frequency between 60 and 70 Hz for the development of the ideas herein exhibited a RMS power to mean power ratio of 1.4 and a peak power ratio. at the average power of about 4.2 at 1.0 meter from the germicidal light source during a given pulse.
For some embodiments, frequencies in the range 55 Hz to 80 Hz, and particularly 67 Hz, were considered particularly suitable for the disinfection processes described herein. In particular, the frequencies of these values have a higher power per pulse than the higher frequencies, and therefore the total UVC dose of the indicated frequencies is higher and the UVC dose is substantially higher at greater distances due to the inverse square law of distance. Furthermore, the conversion of electrical energy to optical energy at the frequencies in the indicated range is more efficient than at the higher frequencies. In addition, there is less total energy loss at the frequencies in the indicated range for relatively large angles of incidence and reflection. In room disinfection processes, it is desirable to maximize light handling to reach areas that are not in visual range of the disinfection source. Although frequencies in the range of 55 Hz to 80 Hz can be advantageous for a number of reasons, it is reasonable to consider frequencies higher than 80 Hz or lower than 55 Hz for the disinfection processes described herein.
Furthermore, frequencies of 50 Hz and higher exhibited beneficial characteristics different from processes performed at a frequency between 1.0 Hz and 2.0 Hz. In particular, the noise of light generated from frequencies of 50 Hz and higher was substantially less than the noise of light generated from the frequencies 1.0-2.0 Hz. Furthermore, the visual intensity of light generated from frequencies of 50 Hz and higher was substantially less than the intensity of light generated from the frequency of 1.0-2.0 Hz. In addition to this, it was found in further tests that the visual intensity of light generated from frequencies of 50 Hz and higher was also substantially lower than the intensity of light generated from the frequency of 1.0-2.0. Hz when a visible light filter was used to block the visible light emitted by the lamp in the process with frequencies of 1.0-2.0 Hz (and no filter was used in the apparatus with frequencies of 50 Hz and higher ).
Furthermore, in such tests, it was found that the disinfection efficiency of a 5 minute cycle time of the 1.0-2.0 Hz frequency process using a visible light filter was substantially decreased, in particular by more than half. of a log difference, relative to the embodiments in which a visible light filter was not used in the disinfection apparatus during a 1.0-2.0 Hz run. It is believed that the decrease in disinfection efficiency was due to a combination of altered spectra of emitted light radiation, as well as a decrease in the total UVC dose at the target surface. Since a visible light filter is generally required for disinfection processes at frequencies of 1.0-2.0 Hz due to the enormity of the visible light generated, there is the possibility of shorter disinfection cycles (i.e. less than 5 minutes) for disinfection processes using frequencies of 50 Hz and higher since a visible light filter may not be necessary to attenuate visual stimuli. Additionally, improved bulb life can be achieved in disinfection processes using frequencies of 50 Hz and higher due to the lower power flow per pulse employed.
As noted above, it may be advantageous to use a frequency above the safe threshold to induce seizures (generally considered to be around 60 Hz) in the methods and apparatus described herein, but as noted above, Lower frequencies can be used (ie, frequencies less than 60 Hz). More specifically, frequencies believed to be capable of inducing seizures (the range of which is generally considered to be 3-60 Hz) may be employed in the methods and apparatus described herein. In such cases, measures can be used to protect or shield the visible light generation from the germicidal light source. For example, the disinfection apparatus may include an optical filter configured to attenuate most or all of the visible light generated from the germicidal light source. Additionally or alternatively, the disinfection apparatus may include a visible light source other than the germicidal light source that is used to mask the visible light generated by the germicidal light source or that is pulsed synchronously with pulses of light from the germicidal light source such that the joint visible light projection of the two light sources is greater than a seizure-inducing safety threshold (eg, greater than 60 Hz).
Fig. 8 illustrates an example of an apparatus that includes a germicidal light source and a separate visible light source that can be used in such a way. In particular, fig. 8 illustrates apparatus 100 including germicidal light source 102 and visible light source 112. Germicidal light source 102 may include any germicidal light source 102 that is configured to generate both germicidal light and visible light. For example, germicidal light source 102 can be configured to generate germicidal ultraviolet light and visible light. Additionally or alternatively, the germicidal light source 102 may be configured to generate visible blue violet germicidal light. In either case, the germicidal light source 102 may be a pulsed germicidal light source or it may be a continuous germicidal light source. In the latter case, apparatus 100 may include circuitry for turning the continuous germicidal light source on and off at a certain frequency such that recurring light pulses can be generated from the continuous germicidal light source.
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The visible light source 112 may include any light source 102 that is configured to generate visible light, including those that can produce continuous light and those that produce pulsed light. In some cases, the visible light source 112 may additionally generate light that is not visible. In particular embodiments, the visible light source 112 may additionally generate germicidal light, such as germicidal ultraviolet light and germicidal visible blue violet light. In some such cases, the visible light source 112 may generate the same type of light as the germicidal light source 102 and, in further arrangements, it may be a similar type of light source as the germicidal light source 102 (ie that is, light sources generate light in the same way). However, in other cases, the visible light source 112 may not be configured to generate germicidal light. Examples of visible light lamps that may be considered include, but are not limited to, LED lamps, fluorescent lamps, and any type of germicidal light source that produces visible light.
In either case, the visible light generated by the visible light source 112 may have an average intensity of at least about 90% of the average intensity of visible light projected from the germicidal light source 102 or passed through an optical filter. surrounding the germicidal light source 102, if applicable. In some arrangements, the visible light generated by the visible light source 112 may have an intensity greater than the intensity of visible light projected from the germicidal light source 102 or pass through an optical filter surrounding the germicidal light source 102. , if appropriate. For example, in arrangements where the visible light source 112 emits continuous light, the intensity of the visible light generated by the visible light source 112 may be at least about 150% greater than the intensity of the visible light projected from germicidal light source 102 or passed through an optical filter surrounding the germicidal light source, if applicable. Alternatively, in arrangements where the visible light source 112 generates pulses of visible light, the visible light generated by the visible light source 112 may have an average intensity between about 90% and about 110% of the average intensity of visible light projected from germicidal light source 102 or passed through an optical filter surrounding the germicidal light source, if applicable. In general, such intensities can be measured at any given distance from light sources, but it may be particularly suitable if the indicated intensities are measured at a given distance of 1.0 meter or more from light sources and, in some cases, at distances of 2.0 meters or more or even 3.0 meters or more from light sources. In this manner, the visible light projection from the visible light source 112 may be sufficient to mask or be substantially equivalent (ie, +/- 10%) to the visible light projection from the germicidal light source 102.
In some particular cases, the visible light source 112 may include similar dimensional configurations (ie, shape and size) to the germicidal light source 102. For example, it may be advantageous for visible light source 112 and germicidal light source 102 to have exterior surface areas within about 20% of each other. Having such comparable surface areas can make it easier for light sources to emit a comparable amount of light in addition to the light being of comparable intensity. In some cases, the visible light source 112 and the germicidal light source 102 may have exterior surface areas within about 10% or less of each other. In particular arrangements, the visible light source 112 and the germicidal light source 102 may have approximately the same outer surface areas.
In some cases, the visible light lamp 112 may be tinted to match the spectrum of visible light generated by the germicidal light source 102. Additionally or alternatively, it may be advantageous for the visible light source 112 to be a lamp that uses less power than the germicidal light source 102. In particular, a disinfection process that uses such a visible light lamp and that also uses a pulsed germicidal light source at a frequency whose light appears to the human eye to be pulsed (for example, at frequencies below 60 Hz) can require less power consumption compared to a disinfection process that uses a pulsed germicidal light source at a frequency whose light appears continuous to the human eye. Such lower power consumption can be an incentive to use the dual lamp process versus a process that only uses a germicidal light source.
Although not necessarily so limited, the apparatus 100 may be a room / zone disinfection apparatus, and therefore the germicidal light source 102 and the visible light source 112 may be configured to distribute light widely to a environment of a zone / room in which the apparatus 100 is located. Additionally, germicidal light source 102 and visible light source 112 can be configured within the apparatus described herein to distribute light to surfaces within a room or area that are greater than 1.0 meter or even 2 , 0 or 3.0 meters from apparatus 100. In specific arrangements, germicidal light source 102 and visible light source 112 can be configured to have substantially similar spatial patterns of light scattering. The light sources can be of any shape, size or configuration to achieve these objectives. In specific arrangements, the germicidal light source 10 and the visible light source 112 may be arranged longitudinally perpendicular to a horizontal plane of a support structure of an apparatus as shown in FIG. 8.
Other elements that can promote or improve disinfection within a room or area can be included in the apparatus 100, particularly at distances of 1.0, 2.0, or 3.0 meters from the apparatus 100. Several examples were previously described in relation to with figs. 1-3 and are not repeated for brevity reasons. In addition, apparatus 100 may include any of the elements described with reference to apparatus described with reference to FIGS. 1-3, including, but not limited to, energy storage element (s) 26, trip voltage circuitry 28, power circuitry 30, pulse duration circuitry 32, program instructions 34, processor
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36, optional battery 38, remote user interface 40, power cord 42, wheels 44, presence sensor 46, a user interface on the device (additional or alternative to remote user interface 40), a handle to contribute to the portability of the apparatus, a power socket (additional or alternative to the power cable 42) and / or additional sensors, such as additional presence sensors and light sensors. Some of these elements are not shown in apparatus 100 to simplify the drawing of FIG. 9. Furthermore, some of such items are not described with reference to apparatus 100 for the sake of brevity.
As shown in fig. 8, apparatus 100 may include power supply circuitry 26, pulse circuitry 108, program instructions 28, processor 30, battery 32, remote user interface 34, and presence sensor 48. In general, the power supply circuitry 26 is configured to supply power to each of the light sources 102 and 112 for operation thereof and the pulse circuitry is configured to enable the light pulses in the power source 102. germicidal light and possibly at the visible light source 112, depending on whether the light from the visible light source is to be emitted in recurring pulses or continuously. In cases where the visible light source 102 is operated to continuously generate visible light, the visible light can serve to substantially mask the visible light generated by the germicidal light source. In contrast, in cases where the visible light source 102 is operated to generate recurring pulses of visible light, the pulses of visible light from the visible light source may be projected between light projections from the germicidal light source of such that the visible light projections from the two light sources produce a joint flux of pulsed visible light at a frequency greater than 60 Hz minimizing the induction of seizures. In such cases, the germicidal light source and the visible light source are pulsed at the same frequency, but with a phase difference from each other. The pulse durations of the germicidal light source and the visible light source may be the same or different.
Fig. 9 illustrates a diagram of the two operational options of generating light at each of the light sources 102 and 112 relative to each other. In particular, fig. 9 shows block 120 indicating that the light pulse is generated in a germicidal light source. Furthermore, fig. 9 shows block 122 indicating that light generated in a visible light source other than the germicidal light source is continuously generated or pulsed. Furthermore, fig. 9 shows block 124 indicating that the generation of light from the two light sources is governed such that visible light projections from the visible light source and visible light projections from the germicidal light source produce a continuous flow of visible light or a joint flow of pulsed visible light at a frequency greater than 60 Hz.
As noted above, an optical filter configured to attenuate most or all of the visible light generated from a germicidal light source can be used to mask the visible light generation from the germicidal light source. It is noted that the use of such an optical filter is not limited to embodiments in which the germicidal light source is pulsed at a frequency between 3 Hz and 50 Hz. In particular, any of the apparatus described herein may include an optical filter configured to attenuate a majority or all of the visible light generated from the germicidal light source, regardless of the pulse frequency of the light generated therefrom. . However, it is observed that an optical filter configured to attenuate visible light generally reduces the germicidal efficacy of room disinfection devices, particularly at distances of 1, 2, and 3 meters from a germicidal light source of a device. Therefore, in some cases, it may be advantageous to omit an optical filter to attenuate visible light in the apparatus described herein.
Those skilled in the art having the aid of this disclosure will appreciate that pulsed light disinfection systems and methods have been described that fire a pulsed germicidal light source at a frequency greater than 3 Hz. Other modifications and alternative arrangements of various aspects of The invention will be apparent to those skilled in the art in light of this description. Accordingly, this description is to be construed as illustrative only and is intended to teach those skilled in the art the general manner of carrying out the invention. It should be understood that the forms of the invention shown and described herein are to be taken as the presently preferred embodiments. Elements and materials can be substituted for those illustrated and described herein, parts and processes can be reversed, and certain elements of the invention can be used independently, all of which would be apparent to one skilled in the art after having the aid of this description of the invention. Changes can be made to the elements described herein without departing from the scope of the invention as described in the following claims. The term "approximately" as used herein refers to variations of up to +/- 5% from the indicated number.
Contents7
4 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4
56 members in 14 offices
Priority claims2
| Document | Office | Kind | Date |
|---|---|---|---|
| 201462052036P | United States of America | – | |
| 201462052036 | United States of America | P |
Members56
| Document | Office | Kind | |
|---|---|---|---|
| CA2961224A1 | Canada | A1 | |
| WO2016044759A1 | World Intellectual Property Organization (WIPO) | A1 | |
| KR20170046799A | Republic of Korea | A | |
| AU2015317384A1 | Australia | A1 | |
| GB201705340D0 | United Kingdom | D0 | |
| GB2545375A | United Kingdom | A | |
| US2017173195A1 | United States of America | A1 | |
| EP3193634A1 | European Patent Office (EPO) | A1 | |
| CN106998764A | China | A | |
| JP2017530777A | Japan | A | |
| GB201717442D0 | United Kingdom | D0 | |
| AU2015317384B2 | Australia | B2 | |
| JP6313523B2 | Japan | B2 | |
| KR20180040733A | Republic of Korea | A | |
| KR101851368B1 | Republic of Korea | B1 | |
| AU2018202610A1 | Australia | A1 | |
| EP3335573A1 | European Patent Office (EPO) | A1 | |
| JP2018102976A | Japan | A | |
| GB2558367A | United Kingdom | A | |
| RU2663459C1 | Russian Federation | C1 | |
| US2018272017A1 | United States of America | A1 | |
| GB2545375B | United Kingdom | B | |
| SG11201808015VA | Singapore | A | |
| CA2961224C | Canada | C | |
| RU2018127141A | Russian Federation | A | |
| US10245340B2 | United States of America | B2 | |
| US10245341B2 | United States of America | B2 | |
| SG10201902236TA | Singapore | A | |
| US2019209722A1 | United States of America | A1 | |
| KR102002451B1 | Republic of Korea | B1 | |
| KR20190088570A | Republic of Korea | A | |
| GB2558367B | United Kingdom | B | |
| EP3193634B1 | European Patent Office (EPO) | B1 | |
| HK1258131A | Hong Kong, China | A | |
| HK1258131A1 | Hong Kong, China | A1 | |
| EP3335573B1 | European Patent Office (EPO) | B1 | |
| KR102120209B1 | Republic of Korea | B1 | |
| KR20200067906A | Republic of Korea | A | |
| ES2767401T3 | Spain | T3 | |
| AU2020207856A1 | Australia | A1 | |
| EP3718413A1 | European Patent Office (EPO) | A1 | |
| PL3335573T3 | Poland | T3 | |
| KR102214927B1 | Republic of Korea | B1 | |
| KR20210016092A | Republic of Korea | A | |
| ES2811360T3This record | Spain | T3 | |
| JP6873076B2 | Japan | B2 | |
| KR102268480B1 | Republic of Korea | B1 | |
| JP2021106939A | Japan | A | |
| CN106998764B | China | B | |
| CN113398295A | China | A | |
| US11382992B2 | United States of America | B2 | |
| AU2020207856B2 | Australia | B2 | |
| US2022323625A1 | United States of America | A1 | |
| AU2022287589A1 | Australia | A1 | |
| CN113398295B | China | B | |
| US12296058B2 | United States of America | B2 |
Numbers
- Publication
- 2811360
- Application
- 18152537
Titles2
- Spanish
- Métodos de desinfección de habitaciones y espacios utilizando luz pulsada
- English
- Methods of disinfection of rooms and spaces using pulsed light
Classification
- CPC, 9
- A23B2/53
- A61L2/10
- A61L9/00
- A61L2/24
- A61L2202/14
- A61L2/26
- A61L2202/11
- A61L2103/75
- A23V2002/00
- IPC, 3
- A23L3 28
- A61L2 10
- A61L2 24