Multi-Mode Lighting Device
20220040366 · 2022-02-10
Inventors
Cpc classification
B01D2273/30
PERFORMING OPERATIONS; TRANSPORTING
B01D46/2403
PERFORMING OPERATIONS; TRANSPORTING
B01D46/521
PERFORMING OPERATIONS; TRANSPORTING
B01D46/0028
PERFORMING OPERATIONS; TRANSPORTING
B01J21/063
PERFORMING OPERATIONS; TRANSPORTING
A61L2209/111
HUMAN NECESSITIES
International classification
Abstract
A multi-mode lighting device includes a visible light source configured to emit a visible light and a controlling mechanism. The controlling mechanism is configured to operate the lighting device in at least two operational modes: a regular mode and a therapeutic mode. In the regular mode, the controlling mechanism operates the visible light source for general illumination. In the therapeutic mode, the controlling mechanism is configured to either flash the visible light source at a frequency in a frequency range of 35˜45 Hz or generate an audible sound at a frequency in a frequency range of 35˜45 Hz, or both. Some embodiments may support additionally a germicidal lighting mode, and some other embodiments with continuous photocatalyst-based air filtering and sanitization.
Claims
1. A lighting device, comprising: a first visible light source configured to emit a visible light; an air filter coated with an antiviral photocatalyst material; and an air circulation mechanism, wherein, in operation: the air circulation mechanism sucks an ambient air from outside the lighting device to force the air through the air filter; the air filter traps airborne microbials in the air as the air passes through; the visible light emitted by the first visible light source activates the antiviral photocatalyst material on the air filter; and the activated antiviral photocatalyst material kills or deactivates the airborne microbials trapped on the air filter.
2. The lighting device of claim 1, further comprising: an air inlet port, wherein the air circulation mechanism is disposed near the air inlet port.
3. The lighting device of claim 1, wherein the first visible light source is disposed inside the air filter such that the visible light shines through the air filter to activate the antiviral photocatalyst material on the air filter, and wherein the air filter diffuses the visible light emitted from the first visible light source.
4. The lighting device of claim 1, wherein there is no ultraviolet (UV) light source or infrared (IR) light source in the lighting device.
5. The lighting device of claim 1, wherein the air filter requires no frame to house the first visible light source.
6. The lighting device of claim 1, further comprising: a housing configured to house the air filter and the air circulation mechanism, wherein the housing has openings thereon to allow the air to exit out of the lighting device.
7. The lighting device of claim 1, wherein the antiviral photocatalyst material coated on the air filter contains titanium dioxide (TiO.sub.2).
8. The lighting device of claim 1, wherein the antiviral photocatalyst material coated on the air filter contains titanium dioxide (TiO.sub.2) and at least one metal photocatalyst material such as silver, gold, copper, zinc, nickel, or a combination thereof.
9. The lighting device of claim 1, wherein the air circulation mechanism comprises a fan.
10. The lighting device of claim 1, wherein the first visible light source comprises one or more light emitting diodes (LEDs).
11. The lighting device of claim 1, wherein the first visible light source comprises a second visible light source and a third visible light source, and wherein a color temperature of the second visible light source is higher than a color temperature of the third visible light source.
12. The lighting device of claim 11, further comprising: a color-tuning controller, wherein the color-tuning controller is configured to tune a color temperature of the first visible light source by mixing a combination ratio of the color temperatures of the second visible light source and the third visible light source, either manually or automatically.
13. The lighting device of claim 1, further comprising: a controlling mechanism configured to either flash a light output of the first visible light source at a frequency in a frequency range of 35˜45 Hz or generates an audible sound at a frequency in a frequency range of 35˜45 Hz, or both flash the light output and generate the audible sound.
14. The lighting device of claim 13, wherein the controlling mechanism is further configured to operate the lighting device in at least two operational modes comprising a regular mode and a therapeutic mode such that: in the regular mode, the controlling mechanism turns on the first visible light source as general illumination, and in the therapeutic mode, the controlling mechanism either flashes the light output of the first visible light source at the frequency in the frequency range of 35˜45 Hz or generates the audible sound at the frequency in the frequency range of 35˜45 Hz, or both flash the light output and generate the audible sound.
15. The lighting device of claim 13, wherein the controlling mechanism flashes the light output of the first visible light source by turning on and off the first visible light source at the frequency in the frequency range of 35˜45 Hz.
16. The lighting device of claim 13, wherein the controlling mechanism flashes the light output of the visible light source by alternating a light output level of the first visible light source between two different levels at the frequency in the frequency range of 35˜45 Hz.
17. The lighting device of claim 13, wherein the controlling mechanism flashes the light output of the first visible light source by alternating the color temperature of the first visible light source between two different color temperatures at the frequency in the frequency range of 35˜45 Hz.
18. The lighting device of claim 13, further comprising: a sound generator, wherein the controlling mechanism generates an audible sound at the frequency in the frequency range of 35˜45 Hz via the sound generator.
19. A lighting device, comprising: a visible light source configured to emit a visible light, and a controlling mechanism, wherein: the controlling mechanism is configured to either flash a light output of the visible light source at a frequency in a frequency range of 35˜45 Hz or generate an audible sound at a frequency in a frequency range of 35˜45 Hz, or both flash the light output and generate the audible sound.
20. The lighting device of claim 19, wherein the controlling mechanism is further configured to operate the lighting device in at least two operational modes comprising a regular mode and a therapeutic mode such that: in the regular mode, the controlling mechanism turns on the first visible light source as general illumination, and in the therapeutic mode, the controlling mechanism flashes the light output of the first visible light source at the frequency in the frequency range of 35˜45 Hz or generates the audible sound at the frequency in the frequency range of 35˜45 Hz, both flash the light output and generate the audible sound.
21. The lighting device of claim 19, wherein the controlling mechanism flashes the light output of the first visible light source by turning on and off the first visible light source at the frequency in the frequency range of 35˜45 Hz.
22. The lighting device of claim 19, wherein the controlling mechanism flashes the light output of the first visible light source by alternating the light output level of the first light source between two different levels at a frequency in a frequency range of 35˜45 Hz.
23. The lighting device of claim 19, wherein the controlling mechanism flashes the light output of the first visible light source by alternating the color temperature of the first visible light source between two different color temperatures at the frequency in the frequency range of 35˜45 Hz.
24. The lighting device of claim 19, further comprising: a sound generator, wherein the controlling mechanism generates the audible sound at the frequency in the frequency range of 35˜45 Hz via the sound generator.
25. The lighting device of claim 19, further comprising: a second light source configured to emit a light in a wavelength range of 190 nm 420 nm, wherein the controlling mechanism is further configured to operate the lighting device in at least three operational modes comprising a regular mode, a therapeutic mode, and a germicidal mode such that: in the regular mode, the controlling mechanism turns on the first visible light source as general illumination, in the therapeutic mode, the controlling mechanism either flashes the light output of the first visible light source at the frequency in the frequency range of 35˜45 Hz or generates the audible sound at the frequency in the frequency range of 35˜45 Hz, or both flash the light output and generate the audible sound, and in the germicidal mode, the controlling mechanism turns on the second light source as germicidal irradiation.
26. The lighting device of claim 25, wherein a light output of the second light source is confined within the lighting device.
27. The lighting device of claim 26, wherein the controlling mechanism is further configured to always operate the lighting device in the germicidal mode.
28. A lighting device adaptor, comprising: an electrical input port; an electrical output port; and a controller circuit, wherein: the electrical input port is configured to connect to an external power source, the electrical output port is configured to connect to an electrical input port of a lighting device to provide power to the external lighting device, and the controller circuit is configured to either flash a light output of the lighting device at a frequency in a frequency range of 35˜45 Hz or generate an audible sound at a frequency in a frequency range of 35˜45 Hz, or both flash the light output and generate the audible sound.
29. The lighting device adaptor of claim 28, wherein the controller circuit is further configured to operate the lighting device in at least two operational modes comprising a regular mode and a therapeutic mode such that: in the regular mode, the controller circuit turns on the lighting device as general illumination, and in the therapeutic mode, the controller mechanism either flashes the light output of the lighting device at the frequency in the frequency range of 35˜45 Hz or generates the audible sound at the frequency in the frequency range of 35˜45 Hz, or both flashes the light output and generates the audible sound.
30. The lighting device adaptor of claim 28, wherein the controller circuit flashes the light output of the lighting device by turning on and off the lighting device at the frequency in the frequency range of 35˜45 Hz.
31. The lighting device adaptor of claim 28, wherein the controller circuit comprises dimming control lines connected to dimming control lines of the lighting device, and wherein the controller circuit flashes the light output of the lighting device by alternating a light output level of the lighting device between two different levels at the frequency in the frequency range of 35˜45 Hz via the dimming control lines of the controller circuit.
32. The lighting device adaptor of claim 28, wherein the controller circuit comprises color-temperature tuning control lines connected to color-temperature tuning control lines of the lighting device, and wherein the controller circuit flashes the light output of the lighting device by alternating a color temperature of the lighting device between two different color temperatures at the frequency in the frequency range of 35˜45 Hz via the color-tuning control lines.
33. The lighting device adaptor of claim 28, further comprising: a sound generator, wherein the controller circuit generates the audible sound at the frequency in the frequency range of 35˜45 Hz via the sound generator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] The accompanying drawings are included to aid further understanding of the present disclosure, and are incorporated in and constitute a part of the present disclosure. The drawings illustrate a select number of embodiments of the present disclosure and, together with the detailed description below, serve to explain the principles of the present disclosure. It is appreciable that the drawings are not necessarily to scale, as some components may be shown to be out of proportion to size in actual implementation in order to clearly illustrate the concept of the present disclosure.
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
Overview
[0044] Various implementations of the present disclosure and related inventive concepts are described below. It should be acknowledged, however, that the present disclosure is not limited to any particular manner of implementation, and that the various embodiments discussed explicitly herein are primarily for purposes of illustration. For example, the various concepts discussed herein may be suitably implemented in a variety of lighting devices having different form factors.
[0045] The present disclosure discloses a multi-mode lighting device includes a visible light source configured to emit a visible light and a controlling mechanism. The controlling mechanism is configured to operate the lighting device in at least two operational modes: a regular mode and a therapeutic mode. In the regular mode, the controlling mechanism operates the visible light source for general illumination. In the therapeutic mode, the controlling mechanism is configured to either flash the visible light source at a frequency in a frequency range of 35˜45 Hz or generate an audible sound at a frequency in a frequency range of 35˜45 Hz, or both.
Example Implementations
[0046]
[0047] Through the touch button 110 (with an icon “40 Hz”), the controller alternates the light output level of the LED light sources 103 and 104 between 50% and 100% at 40 Hz frequency and generate simultaneously an audible sound at 40 Hz frequency. The visual and sound stimuli induce synchronized gamma oscillations in at least one brain region of a user in the space. Since this desktop lamp 100 has 5000K and 2700K LED light sources 103, 104, another controller may be designed to alternate the color temperature of the desktop lamp between 5000K and 2700K at 40 Hz. When the touch button 110 is activated, the desktop lamp 100 operates in the therapeutic mode. When the touch button 110 is not activated, the desktop lamp 100 operates in the regular mode. The fan 105 may stay on for both modes for continuously air filtering. The photocatalytic activities remain active for both modes since the light sources 103, 104 are either fully on as in the regular mode or flashing as in the therapeutic modes, and the flashing of the light sources 103, 104 at 40 Hz can still active the antiviral photocatalyst material coated on the air filter 102.
[0048]
[0049]
[0050]
[0051] The construction of the two airways 404a and 404b are the same, therefore the description below is on the airway 404a. The second light source 403a concealed in the housing 401 comprises multiple UV LEDs and their light outputs are confined in the lighting device. The airway 404a has an air inlet port 407a and an air outlet 408a. The fan 405a and the air filter 406a are positioned inside the airway 404a. As the fan 405a forces the air through the airway 404a, airborne microbials are trapped on the surface of the air filter 406a. The air filter 406a is coated with an antiviral photocatalyst material TiO.sub.2, which can be adequately activated by the nearby UV LEDs 403a to kill and decompose the trapped microbials on the air filter.
[0052] As mentioned above, the memory module 413 also stores a schedule for the therapeutic mode. During the therapeutic mode, the controller 412 flashes the light output of the first light source 402a, 402b at 40 Hz by alternating the light output between 402a and 402b, and generate simultaneously an audible sound at 40 Hz frequency via one sound generating component inside the controller. The therapeutic mode operation doesn't affect the operation of the second light source 403a, 403b or the fans 405a, 405b for they are operating continuously around the clock. Therefore, the air filtering and the antiviral photocatalyst activities would continue in the therapeutic mode.
[0053]
[0054]
Additional and Alternative Implementation Notes
[0055] Although the techniques have been described in language specific to certain applications, it is to be understood that the appended claims are not necessarily limited to the specific features or applications described herein. Rather, the specific features and examples are disclosed as non-limiting exemplary forms of implementing such techniques.
[0056] As used in this application, the term “or” is intended to mean an inclusive “or” rather than an exclusive “or.” That is, unless specified otherwise or clear from context, “X employs A or B” is intended to mean any of the natural inclusive permutations. That is, if X employs A; X employs B; or X employs both A and B, then “X employs A or B” is satisfied under any of the foregoing instances. In addition, the articles “a” and “an” as used in this application and the appended claims should generally be construed to mean “one or more,” unless specified otherwise or clear from context to be directed to a singular form.