Device and method for the automated diffusion of volatile substances comprising a photovoltaic cell
11351562 · 2022-06-07
Assignee
Inventors
Cpc classification
B05B12/02
PERFORMING OPERATIONS; TRANSPORTING
Y02E10/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E70/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A61L9/14
HUMAN NECESSITIES
B65D83/26
PERFORMING OPERATIONS; TRANSPORTING
H02S99/00
ELECTRICITY
International classification
B05B12/02
PERFORMING OPERATIONS; TRANSPORTING
A61L9/14
HUMAN NECESSITIES
B65D83/26
PERFORMING OPERATIONS; TRANSPORTING
H02S40/38
ELECTRICITY
Abstract
A device and method for diffusing volatile substances which obtains the energy required for the autonomous operation thereof from one or more photovoltaic cells. The activation periods and switch-on frequency of the emission means are determined adaptively by an electronic controller depending on the light conditions, thereby maximizing the time in which the device diffuses the volatile substance without compromising its autonomy.
Claims
1. A device for automated diffusion of at least one volatile substance, the device comprising: a volatile substance emitter configured to diffuse the at least one volatile substance; at least one battery; at least one photovoltaic cell configured to transform light energy into electric energy and to store said electric energy in the at least one battery; and an electronic controller configured to set an inactive interval when the stored electric energy reaches a first threshold, the electronic controller inactivating the volatile substance emitter during the inactive interval; and the electronic controller configured to set, when the first threshold has not been reached, a first activation frequency or a second activation frequency, the electronic controller configured to activate the volatile substance emitter according to the set activation frequency, wherein the electronic controller is configured to set, when the electric energy is being generated at a first speed as measured automatically by the electronic controller, the first activation frequency as the set activation frequency, and the electronic controller is configured to set, when the electric energy is generated at a second speed as measured automatically by the electronic controller, the second activation frequency as the activation frequency, wherein the second speed is greater than the first speed, and second frequency is greater than the first frequency.
2. The device according to claim 1, wherein the volatile substance emitter comprises: a movable element a movement of which generates an airflow over the at least one volatile substance, said movable element comprising at least one magnet; and a magnetic flux generator configured to control movement of the magnet.
3. The device according to claim 1, wherein the emitter comprises an aerosol with a valve storing the at least one volatile substance under pressure.
4. The device according to claim 3, wherein the valve is an electrovalve.
5. The device according to claim 3, wherein the valve is a mechanical valve controlled by a rotary motor.
6. The device according to claim 1, wherein the emitter comprises a piezoelectric mechanism.
7. The according to claim 6, wherein the piezoelectric mechanism is in direct contact with the at least one volatile substance.
8. The according to claim 6, wherein the piezoelectric mechanism is in contact with the at least one volatile substance through a porous wick.
9. The device according to claim 1, wherein the energy being generated is measured at the at least one photovoltaic cell.
10. A method for the automated diffusion of at least one volatile substance, the method comprising: periodically diffusing the at least one volatile substance; extracting electric energy from at least one battery for diffusing the at least one volatile sub stance; storing the electric energy transformed from light energy in the battery; and setting emission intervals of the at least one volatile substance by setting automatically by an electronic controller a first activation interval defining time intervals between emitter activations and setting a second activation interval defining time intervals between emitter activations less frequent in time than the emitter activations defined by the first activation interval, the setting of the first and second activation intervals of the emitter depending at least on both the stored electric energy and a speed at which electric energy is being generated as measured automatically by the electronic controller.
11. A non-transitory computer-readable medium product incorporating a program configured, when the program is run on a processor, to control a volatile substance diffusion device to carry out steps comprising: periodically diffusing the at least one volatile substance; extracting electric energy from at least one battery for diffusing the at least one volatile sub stance; storing the electric energy transformed from light energy in the battery; and setting emission intervals of the at least one volatile substance by setting a first activation interval defining time intervals between emitter activations and setting a second activation interval defining time intervals between emitter activations less frequent in time than the emitter activations defined by the first activation interval, the setting of the first and second activation intervals of the emitter depending at least on both the stored electric energy and a speed at which electric energy is being generated as measured automatically by the electronic controller.
Description
DESCRIPTION OF THE DRAWINGS
(1) For the purpose of aiding to better understand the features of the invention according to a preferred practical embodiment thereof, and for complementing this description, the following illustrative and non-limiting drawings are attached as an integral part thereof:
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PREFERRED EMBODIMENT OF THE INVENTION
(7) In this text, the words “comprises” and its variants (such as “comprising”, etc.) must not be understood in an excluding manner, i.e., these terms must not be interpreted as excluding the possibility that what is described and defined may include more elements, steps, etc.
(8)
(9) The photovoltaic cell (101) makes the device autonomous by supplying the electric energy required for the operation of the electronic controller (102), the emission means (103), as well as any other additional element integrated in the device. Likewise, it provides the electronic controller (102) with information concerning the environmental light conditions through the amount of light energy transformed into electric energy in said photovoltaic cell (101), allowing adaptive control of the emission means (103). The electronic controller (102) can be implemented, for example, in an application-specific integrated circuit, a microprocessor, a microcontroller or any other form of programmable hardware, said electronic controller (102) comprising computer program coding means which implement the adaptive control of the emission means (103) when being run.
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(12) In particular, a preferred embodiment of the method of the invention implemented in a preferred embodiment of the electronic controller (102) of the invention establishes two thresholds of energy stored in the battery (104) for adaptively determining the active intervals (t.sub.ON) and inactive intervals (t.sub.OFF). When a first level (E.sub.1) is reached, the electronic controller (102) activates the emission means (103) and an active interval (t.sub.ON) starts. Then, when the energy stored in the battery (104) drops to a second level (E.sub.2), lower than the first level (E.sub.1), the electronic controller (102) stops the emission means (103), starting an inactive interval (t.sub.OFF).
(13) Within each active interval (t.sub.ON), the emission frequency of the emission means (103) is adaptively controlled by the electronic controller (102) depending on the light conditions measured through the energy generated by the photovoltaic cell (101). It must be noted that emission frequency is understood as the frequency at which the emission means (103) act on the volatile substance, inducing its diffusion, said actuation being variable in nature according to the particular embodiment of said emission means (103). For example, said emission frequency can be the frequency with which an air stream over the volatile substance is generated, the frequency with which a magnetic or piezoelectric element is moved or, etc.
(14)
(15) The adaptive determination of the active intervals (t.sub.ON) and their emission frequency is therefore configured for maximizing the duration of the active intervals (t.sub.ON) and the autonomy of the battery (104). It must be noted, however, that various modifications can be made on the described adaptive determination algorithm within the object of the invention as claimed, provided that the diffusion of the volatile substance is reduced as the amount of light received in the photovoltaic cell (101) decreases. For example, maximum and minimum limits can be established for the different control parameters of the emission means (103), the emission intensity (103) and the frequency can be acted on, a variable frequency can be used within one and the same active interval (t.sub.ON), additional input parameters can be used for determining the active intervals (t.sub.ON) and their emission frequency that are fixed or can be controlled by a user, etc.
(16) Finally,
(17) In view of this description and drawings, the person skilled in the art will be able to understand that the invention has been described according to some preferred embodiments thereof, but that a number of variations can be introduced in said preferred embodiments without departing from the object of the invention as claimed. In particular, it must be noted that the emission means (103) based on controlling by means of magnetic flux can be replaced with any other technology for the diffusion of volatile substances known in the state of the art, provided that said technology allows the adaptive control thereof from an electronic controller (102).