The present disclosure relates to an ultraviolet ray radiation apparatus.
An ultraviolet ray radiation apparatus has been utilized to remove viruses, bacteria, mold, or the like. Examples of a light source of the ultraviolet ray radiation apparatus include a lamp, a light emitting diode (LED), and the like. These light sources vary in the amount of light, e.g., they emit a less amount (intensity) of light due to the influence of an ambient temperature or with the passage of time of the use thereof.
Japanese Unexamined Patent Publication No. 2010-275840 discloses detecting the intensity of light emitted from an LED to control the LED, thereby keeping the amount of light emitted constant.
A first aspect of the present disclosure is directed to an ultraviolet ray radiation apparatus including a light emitter, a light receiver, and a protector. The light emitter is configured to emit ultraviolet light. The light receiver is configured to output a signal varying with an amount of light received. The protector is configured to protect the light receiver from ultraviolet light.
An embodiment will be described with reference to the drawings. An ultraviolet ray radiation apparatus (100) of this embodiment is provided in, e.g., an indoor unit of an air conditioner illustrated in
In the indoor unit illustrated in
As illustrated in
The emission wavelength of the light emitter (101) may be, e.g., less than or equal to about 380 nm, or may be, e.g., less than or equal to about 300 nm to provide a strong bactericidal effect. The light emitter (101) may be, e.g., one or more LEDs such as a semiconductor light emitting element including a light emitting layer made of a nitride semiconductor, or may be, e.g., a mercury lamp, an excimer lamp, or the like. If one or more LEDs are used, the dimension of the LED, the number of LEDs installed, the installation distance between LEDs, and the like can be appropriately set in accordance with a target to be irradiated with ultraviolet light. If a plurality of LEDs are used, the LEDs may all be of the same type, or the LEDs may have different emission wavelengths or different optical output powers. The LED may be a light emitting element contained in a package, or may be a bare-chip light emitting element.
The light receiver (102) outputs a signal (a current value or a voltage value) varying with the amount of light received (the energy intensity of incident light), at the sensitivity determined depending on the light wavelength. The light receiver (102) is any light receiver having sensitivity to ultraviolet light emitted from the light emitter (101), and may be a light receiving element made of a semiconductor material or the like, such as a photodiode, a phototransistor, a photocapacitor, or the like, or may be a photomultiplier (a photomultiplier tube). The light receiver (102) may be a light receiving element or the like contained in a package, or may be a bare-chip light receiving element or the like.
The control unit (103) controls the amount of light emitted from the light emitter (101), specifically, the emission intensity or the emission time, based on the signal output from the light receiver (102). The amount of light emitted (dose (J/cm2)) is equal to the product of the emission intensity (irradiation intensity (W/cm2)) and the emission time (irradiation time (second)). If the light emitter (101) is one or more LEDs, the control unit (103) controls the driving current of the one or more LEDs to control the amount of light emitted from the one or more LEDs. If the light emitter (101) is one or more lamps, the control unit (103) controls the number of lamps activated or the switching-on/off of the lamp(s) to control the amount of light emitted from the one or more lamps. The control unit (103) may be configured to include, e.g., a microcomputer (not shown) and a program for operating the microcomputer. The control unit (103) may be configured as a part of the control unit of the indoor unit illustrated in
In the configuration illustrated in
If a target to be irradiated with ultraviolet light by the ultraviolet ray radiation apparatus (100) is made of a material that reflects ultraviolet light, the ultraviolet ray radiation apparatus (100) may be provided without the reflector (104B) so that ultraviolet light having reflected off the target (e.g., the dust filter (11)) to be irradiated with ultraviolet light enters the light receiver (102) as illustrated in
If the reflector (104B) does not attenuate a sufficient amount of ultraviolet light, the ultraviolet ray radiation apparatus (100) may further include a light shield (104C) as a protector for the light receiver (102) on the path L of ultraviolet light from the reflector (104B) to the light receiver (102), as illustrated in
A detailed configuration example of the control unit (103) in a situation where the light emitter (101) is configured as an LED (which may be hereinafter referred to as the “LED (101)”) will be described below. As shown in
The LED (101) emits a less amount of light at the same driving current with the passage of time of the use thereof. In other words, to maintain the same amount of light emitted, the LED (101) needs larger driving current with the passage of time of the use thereof. However, the LED (101) has an upper limit of the driving current value. Thus, when the target current value adjusted by the current value adjuster (113) reaches the upper limit of the driving current value of the LED (101), the control unit (103) may inform a user or the like through sound or light that the LED (101) has ended its life.
Sunlight reaching the ground and light emitted from interior lighting contain ultraviolet light with a wavelength greater than or equal to 300 nm. If this ultraviolet component serves as a disturbance and enters the light receiver (102), the amount of ultraviolet light emitted from the light emitter (101) cannot be detected accurately. Thus, as illustrated in
If a space where the ultraviolet ray radiation apparatus (100) is arranged is small just like the interior of the indoor unit illustrated in
As described above, the ultraviolet ray radiation apparatus (100) of this embodiment includes the light emitter (101) emitting ultraviolet light, the light receiver (102) outputting a signal varying with the amount of light received, and the protectors (104A, 104B, 104C) protecting the light receiver (102) from ultraviolet light.
According to the ultraviolet ray radiation apparatus (100) of this embodiment, the protectors (104A, 104B, 104C) protect, from ultraviolet light, the light receiver (102) outputting a signal varying with the amount of light received. Thus, the light receiver (102) is less deteriorated with the passage of time of the use thereof. Thus, the amount of ultraviolet light emitted from the light emitter (101) can be stably controlled based on the signal from the light receiver (102). In addition, the performance of the ultraviolet ray radiation apparatus (100) can be assured, whereas the substantial life of the ultraviolet ray radiation apparatus (100) can be made larger without overdesigning.
In the ultraviolet ray radiation apparatus (100) of this embodiment, the protectors (104A, 104B, 104C) may attenuate the amount of ultraviolet light entering the light receiver (102). According to this, ultraviolet light emitted from the light emitter (101) enters the light receiver (102) via the protectors (104A, 104B, 104C), and thus the light receiver (102) can be less irradiated with ultraviolet light having high energy intensity and great damage power.
In the ultraviolet ray radiation apparatus (100) of this embodiment, the protectors (104A, 104B, 104C) may include the reflector (104B) reflecting ultraviolet light at least once before (until) the ultraviolet light enters the light receiver (102) from the light emitter (101). Light with a short wavelength such as ultraviolet light is more easily attenuated by reflection than light with a long wavelength. Thus, ultraviolet light emitted from the light emitter (101) is reflected once or more by the reflector (104B) and then enters the light receiver (102), such that the light receiver (102) can be less deteriorated.
In the ultraviolet ray radiation apparatus (100) of this embodiment, the protectors (104A, 104B, 104C) may include the light shield (104C) blocking light with a wavelength shorter than the peak wavelength of ultraviolet light emitted from the light emitter (101) or light with a wavelength less than or equal to 280 nm. According to this, the ultraviolet light emitted from the light emitter (101), which particularly has a shorter wavelength or a wavelength less than or equal to 280 nm to provide great damage power, is blocked. Thus, the light receiver (102) can be less deteriorated.
In the ultraviolet ray radiation apparatus (100) of this embodiment, the light emitter (101) may be an LED (101) that can achieve downsizing, weight-reduction, less power consumption, and the like. In this case, the control unit (103) may be further provided that adjusts the driving current of the LED (101) based on the signal from the light receiver (102) to control the amount of light emitted from the LED (101). In this case, the driving current of the LED (101) is adjusted so that the signal from the light receiver (102) (i.e., the amount of light received) is constant. Thus, the amount of light emitted from the LED (101) can be made constant.
In the ultraviolet ray radiation apparatus (100) of this embodiment, the optical filter (105) blocking light with a wavelength greater than or equal to 300 nm may be provided in front of the light receiver (102). According to this, wavelength band components (disturbance components) of ultraviolet rays emitted from the light emitter (101), where the wavelength band components are contained in sunlight, illumination light, and the like, can be blocked by the optical filter (105). Thus, the amount of light emitted from the light emitter (101) can be controlled accurately based on the signal from the light receiver (102).
In the ultraviolet ray radiation apparatus (100) of this embodiment, the light emitter (101) and the light receiver (102) may be integrated together. This enables downsizing of the ultraviolet ray radiation apparatus (100). In addition, it is easier to determine the positional relationship between the light emitter (101) and the light receiver (102), the specifications of peripheral members, and the like. Thus, desired functions can be more reliably achieved.
The above-described embodiment (including variations, where the same also applies hereinafter) illustrates the situation where the ultraviolet ray radiation apparatus (100) is provided in the indoor unit of the air conditioner (see
For example, as illustrated in
In the air cleaner (20), a fan (23), a filter (24), and a dust collection unit (25) are successively arranged on a ventilation path from the inlet (22) provided in a lower portion of a side surface (21b) of the substantially rectangular parallelepiped casing (21) to the outlet (26) provided in a top panel surface (21a) of the casing (21). An operating section (27) of the air cleaner (20) is arranged at the upper end of the side surface (21b) of the casing (21). When the fan (23) is operated in the air cleaner (20), indoor air is taken into the casing (21) through the inlet (22). Then, when the indoor air passes through the filter (24) and the dust collection unit (25), dust and the like are removed. Then, the resultant clean air is blown out of the casing (21) through the outlet (26).
The casing (21) includes the side surfaces (21b) facing each other, each of which is provided with a holder (28) holding the light emitter (101) and a holder (29) holding the light receiver (102). The light emitter (101) is arranged so as to be able to irradiate nearly the entire surface of the filter (24) with ultraviolet light. Irradiation with ultraviolet light enables sterilization and disinfection of the filter (24). The light receiver (102) is arranged such that ultraviolet light having reflected off the filter (24) enters the light receiver (102). The holder (29) holding the light receiver (102) includes a light shield (104A) as a protector that prevents ultraviolet light from entering the light receiver (102) directly from the light emitter (101). The control unit (103) of the ultraviolet ray radiation apparatus (100) may be configured as a part of a control unit of the air cleaner (20).
In the above-described embodiment, the protectors (104A, 104B, 104C) protecting the light receiver (102) from ultraviolet light is provided. Alternatively, the light receiver (102) may be arranged without the protectors (104A, 104B, 104C) in a region that is irradiated with ultraviolet light at an intensity less than or equal to a predetermined intensity so that the light receiver (102) is less deteriorated.
While the embodiments have been described above, it will be understood that various changes in form and details can be made without departing from the spirit and scope of the claims. The above embodiment may be combined or replaced as appropriate as long as the functions of the target of the present disclosure are not impaired.
Number | Date | Country | Kind |
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2021-093634 | Jun 2021 | JP | national |
This is a continuation of International Application No. PCT/JP2022/021396 filed on May 25, 2022, which claims priority to Japanese Patent Application No. 2021-093634, filed on Jun. 3, 2021. The entire disclosures of these applications are incorporated by reference herein.
Number | Date | Country | |
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Parent | PCT/JP2022/021396 | May 2022 | US |
Child | 18519965 | US |