This disclosure relates to devices for drying and sanitizing electronic devices. More particularly, this disclosure relates to a dryer and sanitizer unit configured for drying and sanitizing a wide variety of rechargeable electronic devices including, but not limited to, cell phones, hearing aids, watches, earphones, headphones, and the like, and their chargers which come in many different sizes and shapes from different manufacturers.
Improvement is desired in devices for charging, drying and sanitizing electronic devices. During use, the batteries of electronic devices such as cell phones, hearing aids, earphones, headphones, watches, and the like discharge and may collect bacteria and gather moisture that can be harmful to the electronic devices.
What is desired is a convenient way to recharge the electronic devices while also sanitizing and drying the electronic devices at the same time.
The present disclosure advantageously provides an easy-to-use unit that enables the charging of electronic devices while the electronic devices are sanitized and dried.
The above and other needs are met by a dryer and sanitizer unit for rechargeable electronic devices.
In one aspect, a dryer and sanitizer unit according to the disclosure includes a drying chamber formed by a base attached to a housing and a repositionable lid that covers the base. The drying chamber is configured to enclose one or more rechargeable electronic devices and one or more electronic charger units associated with the one or more electronic devices. The drying chamber includes one or more passages through which electric cords associated with the one or more electronic charger units may pass out of the drying chamber; and one or more disinfecting light sources located within the drying chamber.
In another aspect, a dryer and sanitizer unit according to the disclosure includes a base attached to a housing and a lid that together define a drying chamber that encloses one or more rechargeable electronic devices and one or more charger units associated with the one or more rechargeable electronic devices.
The unit also includes one or more passages through which electric cords associated with the one or more charger units pass out of the drying chamber; one or more disinfecting light sources located within the drying chamber; a heater configured to provide heated dry air; a fan configured to circulate the heated dry air in the drying chamber; a thermostat configured to measure air temperature in the drying chamber; and a controller in electrical communication with the thermostat and the heater. The controller maintains the air temperature in the drying chamber above a predetermined drying temperature and below a predetermined upper temperature corresponding to a temperature above which rechargeable batteries associated with the rechargeable electronic devices are vulnerable to overheating.
In a further aspect, a dryer and sanitizer unit according to the disclosure includes a base attached to a housing and a lid that together define a drying chamber that is configured to enclose one or more rechargeable electronic devices locatable within the drying chamber; one or more disinfecting light sources located within the drying chamber; a heater configured to provide heated dry air; a fan configured to circulate the heated dry air in the drying chamber; a thermostat configured to measure air temperature in the drying chamber; and a controller in electrical communication with the thermostat and the heater. The controller maintains the air temperature in the drying chamber above a predetermined drying temperature and below a predetermined upper temperature corresponding to a temperature above which rechargeable batteries associated with the rechargeable electronic devices are vulnerable to overheating.
In another aspect, the dryer and sanitizer unit according to the disclosure includes a thermostat that is operably associated with the drying chamber for measuring air temperature in the drying chamber.
In a further aspect, the dryer and sanitizer unit according to the disclosure is configured for drying and sanitizing rechargeable electronic devices selected from cell phones, watches, headphones, earphones, and other portable electronic devices.
In one aspect, the dryer and sanitizer unit according to the disclosure includes vents located in the housing and holes in the base through which warm air may flow into the drying chamber to contact the rechargeable electronic devices.
In a further aspect, the dryer and sanitizer unit according to the disclosure includes a fan and heater in flow communication with air vents in the housing and holes in the base for introduction of a flow of warm air into the drying chamber.
In another aspect, the dryer and sanitizer unit according to the disclosure includes vents located in the lid to promote the flow of warm air over the rechargeable electronic devices and to provide a path for the warm air to exit the drying chamber.
In one aspect, the dryer and sanitizer unit according to the disclosure includes one or more disinfecting light sources that are operated for a predetermined time sufficient to disinfect the rechargeable electronic devices within the drying chamber, after which the heater and fan are operated for a predetermined drying cycle to introduce the warm air into the drying chamber with or without the disinfecting light sources being operated.
In further aspect, the lid of the dryer and sanitizer unit according to the disclosure has an interior surface that is UV-reflective.
In another aspect, the dryer and sanitizer unit according to the disclosure has a lid open detection circuit that is operably associated with both the lid and the disinfecting light sources and operable to turn off the disinfecting light sources if the lid is opened during operation of the disinfecting light sources.
In one aspect, the dryer and sanitizer unit according to the disclosure has a wireless nearfield proximity charger built into the base.
Further advantages of the disclosure are apparent by reference to the detailed description when considered in conjunction with the figures, which are not to scale so as to more clearly show the details, wherein like reference numbers indicate like elements throughout the several views, and wherein:
With initial reference to
In
Power may be input to the dryer and sanitizing unit 10 by means of a power input 26. Power may be provided by a standard electrical plug, a USB micro plug or USB-C plug input connected to a power source, or a solar energy input.
In this regard, initially the rechargeable electronic devices are disinfected by application of sanitizing illumination. Following or simultaneous with the sanitization, heated dry air is flowed over the rechargeable electronic devices to remove moisture. The sanitization and drying operations are described in more detail below.
A lid 28 is hingedly connected to the housing 20 by hinge 21 to provide a closed chamber between the lid 28 and the housing 20 as shown in
The unit 10 also includes one or more disinfecting light sources 38 located within the drying chamber 36. The disinfecting light sources 38 are preferably UV-C lamps such as high intensity 50 mm linear germicidal lamps operating at a wavelength of 253.7 nm and rated at 70 uW/cm2. The disinfecting light sources 38 may be placed in the drying chamber 36 at an angle to provide light at an angle ranging from about 15 to about 45 degrees so that the disinfecting light is reflected off of a reflective inside surface 42 of the lid 28 as illustrated by lines 40. The reflected light 40 from the reflective surface 42 of the lid is designed to illuminate the entire surface of the cell phone 12 or other rechargeable electronic device. Accordingly, the interior reflective surface 42 of the lid 28 may contain a mirror, reflective metal foil, or other UV reflective coating to reflect light from the disinfecting light sources 38 toward exposed surfaces of the rechargeable electronic devices.
With additional reference to
The lamp control circuit 38a may be programmed to operate the light sources 38 for a predetermined time sufficient to provide a 4-log theoretical kill rate of 99.99%. A desired operation time of the light sources 38 is from about 1.5 to about 3 minutes or longer to achieve this level of disinfection. In this regard, the lamp control circuit 38a is also in electrical communication with a microprocessor 44. The microprocessor 44 is configured to control the operation of the light circuit 38a. To enhance the effect of the light sources 38, one or more interior surfaces 42 of the lid 28 may be UV-reflective as described above.
In a preferred embodiment, the microprocessor 44 is also operably associated with a lid open detection circuit 46 in communication with both the lid 28 and the light sources 38. The microprocessor 44 is operable to turn off the light sources 38 if the lid open detection circuit 46 detects that the lid 28 is opened during operation of the disinfecting light sources 38.
The lid 28 preferably has a generally rectangular prism shape having multiple angled surfaces 42 as shown to reflect light from the disinfecting light sources 28 at multiple angles of incidence toward the rechargeable electronic devices. Air outlet vents 48 (
The heated dry air is preferably supplied at a temperature that fits the specification of the manufacturer of the batteries for the hearing aids. Generally speaking, however, it has been observed that damage can occur to some rechargeable batteries for certain rechargeable electronic devices if they are exposed to temperatures above about 113 degrees F. (45 degrees C.) for prolonged periods of time. The flow rate and flow time of the heated dry air is selected based on observation of parameters that provide optimal drying, and the microprocessor 44 is programmed to provide a desired air temperature, time and fan speed to provide the desired drying effect.
A heater 52 is also operably associated with the microprocessor 44. In addition, the microprocessor 44 is operably associated with a fan 54 connected to a fan circuit 54a via a fan power connector 54b to introduce the heated dry air into the drying chamber 36 through the inlet air vents 50 and to circulate the heated dry air in the drying chamber 36. The microprocessor 44 controls operation of the heater 52 and the fan 54 to provide a desired flow of the heated dry air into the drying chamber 36. The fan 54 preferably uses a magnetic bearing assembly, available from Sunon (www.sunon.com) under the name “MAGLEV Motor Fan” instead of ball bearing types of fan motors. This fan assembly allows the unit 10 to operate with less motor noise, as well as extended life, and a higher level of reliability.
As illustrated in
The microprocessor 44 includes a thermostat 56 configured for measurement of air temperature in the drying chamber 36. The microprocessor 44 is programmed to maintain the air temperature in the drying chamber 36, that is the temperature of the heated dry air, above a predetermined drying temperature and below a predetermined upper temperature corresponding to a temperature above which damage would occur to rechargeable batteries of the electronic devices in the drying chamber 36.
The microprocessor 44 is preferably a customizable digitally programmable microprocessor with non-volatile memory and the thermostat 56 is preferably an internal digital thermostat for controlling the temperature within the drying chamber 36 to a high level of thermal accuracy. The microprocessor 44 also controls the on/off times of the light sources 38 and then the heater 52 and the fan 54 to provide a desired treatment cycle and automatically turns off after the treatment cycle has completed or if the lid 28 has been opened. The cell phones 12 or other rechargeable electronic devices are recharged during the treatment cycle and may be left on the charger 14 following the treatment cycle if desired. In this regard, a treatment cycle is understood to include sanitization via the light source 38 followed by drying via the heated dry air. An illustrative schematic drawing of a circuit diagram for operation of the unit 10 is illustrated in
During use of the unit 10, as depicted in
Next, as shown in
To accommodate electronic devices that recharge using wireless nearfield proximity charging, an embodiment of the unit 10 (
The entire base 16, housing 20 and lid 28 may be configured of various colors, shapes, and dimensions depending on the device(s) being charged. The materials for the base, lid and housing may be made from a wide variety of metal and plastic materials in in one embodiment may be made of flame retardant acrylonitrile butadiene styrene materials.
The description of preferred embodiments for this disclosure has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure to the precise form disclosed. Obvious modifications or variations are possible in light of the above teachings. The embodiments are chosen and described in an effort to provide the best illustrations of the principles of the disclosure and its practical application, and to thereby enable one of ordinary skill in the art to utilize the disclosure in various embodiments and with various modifications as are suited to the particular use contemplated. All such modifications and variations are within the scope of the disclosure as determined by the appended claims when interpreted in accordance with the breadth to which they are fairly, legally, and equitably entitled.
This application claims priority to U.S. Provisional Application Ser. No. 62/883,761 entitled DRYER AND SANITIZER FOR RECHARGEABLE ELECTRONIC DEVICES, filed Aug. 7, 2019, and to U.S. application Ser. No. 16/665,045, filed Oct. 28, 2019, incorporated by reference herein in their entirety.
Number | Date | Country | |
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62883761 | Aug 2019 | US |
Number | Date | Country | |
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Parent | 16665045 | Oct 2019 | US |
Child | 16742156 | US |