Solar Spectrum Simulation Device
20220353972 · 2022-11-03
Inventors
Cpc classification
A61N2005/0626
HUMAN NECESSITIES
H05B47/11
ELECTRICITY
F21S8/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H05B47/11
ELECTRICITY
F21S8/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention is comprised of a novel solar radiation simulation device that simulates the sun by radiating the same spectrum of wavelengths, with the accompanying power levels, as the sun when the sun projects energy upon the Earth in accordance with the time of the day, year, and location. It will bring “the sun inside.” The device can be controlled manually by an end-user or can include pre-programmed modes that control settings of the device or can be dynamically controlled through the input from solar light meters located around the world. This device improves human health but can also be used as a typical light source and can even function as an entertainment device.
Claims
1. A solar spectrum simulation device comprising: at least one light panel comprising at least one light source having an accompanying power-supply/driver: at least one controller software; at least one controller hardware; at least one sensor connected to the said device: At least one light-meter connected to said device through IoT platform: and an Internet of Things (IoT) platform to connect to the internet.
2. The Solar Spectrum Simulation Device as in claim 1, wherein said light panel comprises individual controllable light sources combined to cover a solar spectrum measured at earth's sea level at different Air Mass (AM) with wavelengths (nm), irradiance (W/m2), and illuminance (LUX) to match the sun.
3. The Solar Spectrum Simulation Device as in claim 1, wherein specific wavelengths of the at least one light panel are added and subtracted, either manually or dynamically, to simulate the solar spectrum depending on a time of day and a time of year.
4. The Solar Spectrum Simulation Device as in claim 2, wherein a spectral light output of the at least one light panel is either manually or automatically controlled in accordance with a time of day, a time of year, location, and altitude.
5. The Solar Spectrum Simulation Device as in claim 1, wherein the IoT platform interfaces the controller software and the controller hardware with deployed sensors/light-meters and home automation devices.
6. The Solar Spectrum Simulation Device as in claim 5, wherein at least one sensor/light-meter can be deployed world-wide that collects real-time solar spectral measurements which are relayed through the IoT platform to the Solar Spectrum Simulation Device.
7. The Solar Spectrum Simulation Device as in claim 1, wherein the solar spectral measurements obtained from the world-wide deployed solar sensors/meters can be delayed, either automatically or manually, by a certain time to match circadian rhythms aligned with a location of the device as in claim 1.
8. The Solar Spectrum Simulation Device as in claim 1, wherein said at least one light panel can included in any of a ceiling panel, wall panel, desk lamp, floor lamp and Edison screw bulb.
9. The Solar Spectrum Simulation Device as in claim 1 wherein said at least one light panel can be daisy-chained with at least one other light panel and work together while this can either be accomplished by hard wiring the panels or by controlling multiple panels from the controller software/hardware.
10. The Solar Spectrum Simulation Device as in claim 1 wherein at least one said light panel works in harmony with at least one other light panel to transfer the simulated sun spectrum from one panel to the other, and vice-versa, (as flowing from A to B with an overlapping effect) representing the distribution of spectrum's wavelengths, irradiance and color temperatures while simulating the sun's incoming angle at the time of the day.
11. A Solar Spectrum Simulation Device as in claim 1, can be connected and controlled through home automation devices setup including Amazon Alexa, Google Assistant.
12. The Solar Spectrum Simulation Device as in claim 1, wherein at least one of the hardware controllers can display, on a screen, a graphical user interface representing the world-wide deployed solar meters and allows the end-user to select a solar meter, with its associated program mode, to control the spectral radiation of the device.
13. The Solar Spectrum Simulation Device as in claim 1 wherein the at least one light panel illuminates within the Ultraviolet-C spectrum to provide germicidal features.
14. The solar Spectrum Simulation Devices as in claim 1, wherein an embedded resonance generator generates phonons, including quanta of vibrations that include sound, to produce positive physiological and psychological stimulations.
15. The solar Spectrum Simulation Devices as in claim 1, comprises of a visualization display of the invisible (UV & IR) wavelengths to ensure the end-user that the light-source in the invisible spectrum is turned on (radiating).
16. The Solar Spectrum Simulation Device as in claim 1, wherein some of the UV light sources, as in claim 2, embedded in the at least one light panel provide benefit of Vitamin-D creation in accordance with pre-programmed modes that take several variables including Fitzpatrick skin type, age, BMI, clothing worn, etc., into consideration.
17. The Solar Spectrum Simulation Device as in claim 1, wherein an intensity of the at least one light panel can be automatically altered to adjust a spectrum intensity and colors to mimic human behavior when seeking the shade during peak solar noon as measured outside and automatically up-regulate the spectrum intensity again after a scheduled time.
18. The Solar Spectrum Simulation Device as in claim 1, wherein the real-time simulated solar radiation, obtained from at least one of the connected solar light-meters, is adjusted to compensate when less favorable atmospheric conditions are present outside, determined by at least one of the connected air pollution sensors, so that the light panels radiate a healthier spectrum, as would have occurred without air pollution, inside.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] The disclosure will now be described with reference to the drawings wherein:
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DETAILED DESCRIPTION OF THE DISCLOSURE
[0031] Although certain configurations of the configurations will be shown and described in detail, it should be understood that various additional changes and modifications not specifically described herein may be made without departing from the scope of the
[0032] constituting components, the materials thereof, the shapes thereof, the relative arrangement thereof, etc., and are disclosed simply as examples of configurations.
[0033] The terminology used herein is for the purpose of describing particular configurations only and is not in-tended to be limiting of the configurations. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. As used herein, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well as the singular forms, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and/or groups thereof.
[0034] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one having ordinary skill in the art to which this configurations belong. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and the present disclosure and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
[0035] In describing the configurations, it will be understood that a number of techniques and steps are disclosed. Each of these has an individual benefit and each can also be used in conjunction with one or more, or in some cases all, of the other disclosed techniques. Accordingly, for the sake of clarity, this description will refrain from repeating every possible combination of the individual steps in an unnecessary fashion. Nevertheless, the specification and claims should be read with the understanding that all such combinations are entirely within the scope of the configurations and the claims.
[0036] When using the terminology “power levels”, it refers either to irradiance, radiance, or illuminance, or all combined, of the light source.
[0037] A need exists for a novel device that simulates the sun in every aspect as the sun projects EM energy upon the Earth. The device disclosed herein “brings the sun inside” to improve human health but can also function as a typical lighting/illumination device and can even function as an entertainment device.
[0038] A Solar Spectrum Simulation Device is disclosed herein. In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the present configurations. It will be evident, however, to one skilled in the art that the present configurations may be practiced without these specific details.
[0039] The present disclosure is to be considered as an exemplification of the configurations and is not intended to limit the configurations to the specific configurations illustrated by the figures or description below.
[0040] In one embodiment, the device 1 comprises of several components such as, but is not limited to, at least one light panel 2 with embedded power-supply/driver 3, at least one controller hardware 4, controller software 5 which can be embedded in the controller hardware 4 or IoT (cloud based) platform 8, at least one sensor 6, at least one light meter 7 and an Internet of Things (IoT) platform 8.
[0041] The device(s), such as those shown in
[0042] In one configuration, the device deploys LEDs 24, with the accompanying power-supply and drivers 3, covering a spectral band of wavelengths
[0043] At least one light panel 2 can be daisy-chained with at least one other light panel 2 to link them together.
[0044] In the configuration that deploys LEDs, the light panel/fixture 9-10-11-12 contains multiple LEDs 13-14-15-16 (comprising any configuration such as single LEDs, DIP, SMD, COB, etc.) of different wavelengths 24. These wavelengths comprise the solar spectrum to mimic that of the sun
[0045] Humans have several photoreceptors in their eyes that are sensitive to different wavelengths/colors. The location of these photoreceptors is aligned (lower-eye or upper-eye) with the correlating position/angle of the sun (sunrise and sunset). This is not surprising since our anatomy evolved under the sun and adapted to become the most efficient and effective. The light panel/fixture 9-10-11-12 that are part of the device 1 disclosed can simulate the sun's angle and expose the photoreceptors in our eyes at the right angle, by “flowing” 18 the light over different light panels as they are working in harmony. Since the device can consist of multiple light panels, such as wall 17 and ceiling 9 panels, the distribution of the spectral illumination representing the color temperature of that time of the day, can be transferred from one panel, where it starts radiating, in one or more wavelengths, to the next panel by taking over the spectral radiation and simulate the angle of the sun through its daily sunrise and sunset path. For example, at sunrise, when the angle of the sun is almost ninety degrees compared to zenith
[0046] Each LED can separately be turned on/off 24; the EM energy (light, visible and non-visible) output is controlled, either manually and/or automatically via the device 1. This distinct control over the LEDs allows the device to simulate the correct solar spectrum correlating to the desired output. Any wavelength, or combination of wavelengths, can be selected within the spectrum of available LEDs 24.
[0047] In manual mode, an end-user has complete control over which LED(s) 24 to turn on or off and at the desired intensity. In automatic program-mode, preprogrammed settings (preprogrammed modes/settings can be updated or added over the IoT platform 8) will control when the LED is turned on/off and at the desired intensity. In the dynamic mode, solar light-meter 7 will control the settings of the device based upon the real-time spectral input from the sun wherever these solar light-meters are located around the world
[0048] Automatic program-mode mode will turn the LEDs 24 on with those wavelengths according to the solar spectrum
[0049] For instance, at 8 am in July in Washington D.C., the light illumination of the device 1 will project the cycle of the solar spectrum which is similar with the one outdoors. In this particular instance, it will contain IR, VIS in the early morning 22 and UVA spectrum will be added mid-morning 23. Going through the cycle, sometime later in the morning 25, UVB will be added to the spectrum. Later in the mid-afternoon, UVB spectrum will disappear 26 and in the early evening, UVA will be omitted and only the VIS+IR 27 will remain until sunset. During this entire spectral cycle, power levels will be properly adjusted to match the correct settings. After sunset, the light can be used as a healthy illumination device to radiate certain wavelengths to avoid, e.g., high-energy visible (HEV) light and Blue-light hazard. The wrong wavelengths can deregulate the circadian rhythm, suppress melatonin release, and cause eye health issues which can be avoided by selecting certain wavelengths/colors 19 after sunset. However, the end-user can override these pre-programmed settings if they desire to do so.
[0050] The end-user can select several preprogrammed modes from other world-wide locations, on their device. The end-user can create his own spectral radiance programs and save them for later use. These custom created programs allow the creator to grant permissive use to other users via the cloud-based service. The end-user has complete control over which LEDs 24 are turned on and their desired power levels. This can all be accomplished from several devices, e.g., LCD touch control wall panel 28, mobile device 29, internet connected computer or a home automation device (Amazon Alexa, Google Assistant, etc.).
[0051] Another aspect of the automatic mode is that the device can radiate a different spectrum (colors and power levels) than what the sun would radiate outside at that time of the day. This will accommodate for the fact that humans, and animals, seek the shade during peak solar hours and would not get the full power of the sun, which would be harmful when receiving too high of a dose. The device will lower, or eliminate, the “high intensity” wavelengths (e.g., UV 31 and blue light 20) during these periods and up-regulate the spectrum intensity again after a scheduled time. This can also be manually selected by the end-user via the device.
[0052] Since the device contains separate LEDs
[0053] The device can also be connected to the Cloud through an IoT platform 8. An enhanced feature is provided by the IoT platform 8 where world-wide distributed solar EM/light meters
[0054] Since the Solar light meters 7, as a near real-time spectral input instruments, are world-wide deployed
[0055] The device 1 can radiate the correct solar spectrum
[0056] Since the device can radiate the actual solar spectrum in near real-time provided by the solar light meters, the Fraunhofer lines 35 (Omission of certain spectrum due to atmospheric conditions, etc.) can be represented within the device's 1 spectrum
[0057] To ensure that individuals receive the correct amount of ultraviolet (both UVA and UVB) radiation, the platform does include dose calculators. These calculators take into consideration several variables such as someone's Fitzpatrick skin type, age, BMI, clothing worn, etc. Dose calculators use certain formulas, but not limited to, e.g., J/m2=W/m2×time (s) to control the light output of the panels based upon the numbers the calculator computes. These calculators can be part of the mobile app 4 executed by the device 1, cloud-based network 8, and/or control wall panels 17 and can take input from sensor 6, in this case, a light sensor that measures the amount of UV light the individual/area has received.
[0058] Since wavelengths outside (UV & IR) the VIS are not detectable by the human eye, one cannot visually observe if the light panels 9-10-11-12 is radiating this energy at any given time since these [outside the VIS spectrum] LEDs radiate light our eyes cannot detect. To provide confirmation that these wavelengths are emitted (LEDs are turned on), an indication is provided by visual feedback
[0059] The device 1 can, in a configuration, have several entertainment settings which can be used for different occasions like “mood” and “party” modes. E.g., the device 1 can display running lights that simulate disco lights, just one single color or a starlight simulation.
[0060] The assembly of this device's 1 configuration, individual controllable LEDs 24 covering the entire solar EM spectrum, will allow for new modes and programs based upon newly found understandings of light and its effect on our health.
[0061] The device may also include an embedded resonance generator 33 to provide additional health benefits than those discussed above. Phonons are quanta of vibrations that include sound, and certain frequencies are known to produce positive physiological and psychological stimulations.
[0062] System Components
[0063] The device comprises of the following components, but is not limited to:
[0064] [Illumination Panel 2] Certain configurations disclosed relate to the illumination panel include, but are not limited to, a ceiling mounted fixture 9, floor lamp 10 and desk lamp 11, wall panels 17 and Edison screw bulbs 12. The device 1 consists of parts which can contain different illumination devices, e.g., LEDs 24. Since LEDs are monochromatic
[0065] [Power supply/Driver 3] The LED power supply/driver 3, will control the electrical current(s) to LEDs on the panel to perform multiple functions, e.g., dimming and/or color sequencing.
[0066] [Controller Software 5] The Controller Software 5 will, one of its many functions, instruct the Driver 3. The communications channel between the driver/light-panel and controller software 5 can either be hardwired or wireless. The Controller Software 5 has multiple preselected programs to set lighting patterns based upon programs that are preinstalled and/or customized programs by the end-user. The Controller Software 5 can also receive input from the solar light meters. The Controller Software 5 runs on any of the hardware controller devices 4. It is presented to the end-user as an application with a Graphical User Interface (GUI), sensors and/or voice controls. The application can perform many functions such as but not limited to, management of the device, visual feedback of the performance of the device (e.g., display the solar spectrum graph of the device), etc. The application (Apps and firmware) can be upgraded to add functionality, security updates, or on any other basis to enhance the device.
[0067] [Controller Hardware
[0068] [IoT platform
[0069] [Solar light Meters 7] The Solar light meters 7 will provide near real-time solar spectrum input to the device. These light meters 7 can be a single device such as Pyranometer, Radiometer, Spectrometers, Spectroradiometers, etc., or a combination thereof. By contrast, the Controller Software 5 can delay this spectrum by several hours by matching the time zone in which the receiving device is located with the circadian rhythm of the user's zone. Solar light meters 7 are located around the world
[0070] [Sensors 6] The device can contain several sensors 6 to perform a multitude of functions. These sensors 6 could include, but are not limited to, motion detector sensors, light sensors, air pollution sensors, etc. Light sensors 6 are used, but not limited to, to measure, and calibrate, the emission intensity of the device 1 and adjust the output accordingly to radiate the correct spectrum if there is any fluctuation. Motion detection sensors can be used, but not limited to, to detect if a person is present in the area and adjust the settings that control the device 1. Air pollution sensors 6 can be installed outside to measure the air quality and the amount of pollution in the air.
[0071] Systems Programs/Modes
[0072] The device facilitates several programs/modes. Each with its own desired output or several modes can be combined to meet the needs of the end-user. These modes can be, but are not limited to:
[0073] [Solar Spectrum output] The device 1 will radiate the entire solar spectrum
[0074] Earth's sea-level depending on the end-user's selection of programs.
[0075] [Vitamin D mode] Vitamin D is essential for our immune system and vitamin D deficiency has been contributed to many deceases. The peak absorption wavelength to create vitamin D is around 293-295 nm 31 and the light panels 2 that comprises this configuration will contain UVB light sources 31, such as, but not limited to, LEDs. To provide the optimal exposure to the body (assuming that minimum or no clothes are worn), the wall mounted panels 17 will be the fixtures with the majority of the UVB LEDs 31. To offset the harmful effects of higher-energy wavelengths (UV and Blue light), the deep-red and IR LEDs 24 will also be turned on within the vitamin D mode since these lower-energy wavelengths are the anecdote to UV and blue light. The Vitamin D mode requires an end-user to provide personal information, (this can be done on the mobile App or other means) such as Fitzpatrick skin type, age, BMI, clothing worn, etc. to calculate the right dose to produce Vitamin D and to shut-down the system when the correct dose is reached.
[0076] [UVC/germicidal sanitizing mode] The device 1 includes a germicidal sanitizing mode to sanitize the air and surfaces in a room. Since the device 1 contains a wide UV spectrum, different wavelengths can be selected, or combinations thereof, to meet the requirements of its purpose. Some modes operate in the Far-UV (−222 nm 32) range, no harm to humans or animals is warranted since this wavelength does not penetrate deeper than the utmost upper-layer of the skin, but other modes can utilize UV wavelengths that are potentially harmful to humans and can only be operated with no one in the room. The device allows a user to select these other modes in areas where there are not humans to harm.
[0077] [PBM Mode] The Photobiomodulation (PBM) or Chromotherapy modes allows the end-user to select certain single, or a combination, of wavelengths depending upon the desired treatments. Exposure timers, to ensure that the correct dose is received, could be included in the controller hardware 4 and controller software 5.
[Entertainment Mode] The device 1 has a mode to facilitate the entertainment needs of the end-user. This could include, but is not limited to, one single color, running color lights (disco effects), strobe lights, etc. In addition to the pre-programmed entertainment modes that come with the device, the end-user will have the ability to program their own entertainment modes or control the device in real-time.
[Resonance mode 33] The resonance mode 33 provides additional health benefits such as, but not limited to, vibrations that include sound, as certain frequencies are known to produce positive physiological and psychological stimulations.