WO2022134284A1 - 一种智能手环的紫外线照射方法 - Google Patents

一种智能手环的紫外线照射方法 Download PDF

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Publication number
WO2022134284A1
WO2022134284A1 PCT/CN2021/075674 CN2021075674W WO2022134284A1 WO 2022134284 A1 WO2022134284 A1 WO 2022134284A1 CN 2021075674 W CN2021075674 W CN 2021075674W WO 2022134284 A1 WO2022134284 A1 WO 2022134284A1
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WIPO (PCT)
Prior art keywords
irradiation
ultraviolet
radiation range
effective radiation
ultraviolet irradiation
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PCT/CN2021/075674
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English (en)
French (fr)
Inventor
张剑钢
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小熙医疗科技(烟台)有限公司
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Publication of WO2022134284A1 publication Critical patent/WO2022134284A1/zh

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    • AHUMAN NECESSITIES
    • A44HABERDASHERY; JEWELLERY
    • A44CPERSONAL ADORNMENTS, e.g. JEWELLERY; COINS
    • A44C5/00Bracelets; Wrist-watch straps; Fastenings for bracelets or wrist-watch straps
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61LMETHODS OR APPARATUS FOR STERILISING MATERIALS OR OBJECTS IN GENERAL; DISINFECTION, STERILISATION OR DEODORISATION OF AIR; CHEMICAL ASPECTS OF BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES; MATERIALS FOR BANDAGES, DRESSINGS, ABSORBENT PADS OR SURGICAL ARTICLES
    • A61L2/00Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor
    • A61L2/02Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lenses; Accessories therefor using physical phenomena
    • A61L2/08Radiation
    • A61L2/10Ultraviolet radiation

Definitions

  • the present invention relates to the technical field of smart bracelets, and in particular, to a smart bracelet and an ultraviolet irradiation method thereof, computer equipment and storage medium.
  • a smart bracelet is a wearable smart device, similar to a watch. It has built-in sensors, and transmits and synchronizes data with other smart devices through the interface configured on the smart bracelet. Because it is convenient to carry and its appearance meets the aesthetic needs of users, it has gradually become one of the smart devices commonly used by users.
  • the common smart bracelets have the following functions, such as step counting, exercise monitoring, sleep monitoring, and some other functions for special groups, such as anti-lost for the elderly and children, etc., but there is no sterilization and disinfection on the market. Functional smart bracelet.
  • the main purpose of the present invention is to provide a smart wristband and its ultraviolet irradiation method, computer equipment and storage medium in view of the technical problems of complicated operation and high cost of sterilizing small objects in the prior art. Disinfect objects, simplify the operation process of disinfection of small objects, and reduce the disinfection cost of small objects.
  • the present invention provides a method for irradiating ultraviolet rays of a smart bracelet, comprising:
  • the changes of objects within the effective radiation range are monitored in real time, and the working mode of the ultraviolet lamps is adjusted according to the changes.
  • the change of the object includes: the change of the position of the object or the change of the type of the object; the working mode includes: the irradiation duration, the irradiation intensity, and the irradiation direction.
  • the real-time monitoring of changes in objects within the effective radiation range during the ultraviolet irradiation process, and adjusting the working mode of the ultraviolet lamps according to the changes specifically includes:
  • the irradiation direction of the UV lamp so that the object is irradiated with the original irradiation intensity within the effective radiation range
  • the irradiation duration of the object within the effective irradiation range is calculated cumulatively until the cumulatively calculated irradiation duration
  • the irradiation is stopped when the original irradiation duration is reached.
  • the real-time monitoring of changes in objects within the effective radiation range during the ultraviolet irradiation process, and adjusting the working mode of the ultraviolet lamps according to the changes specifically includes:
  • the method further includes:
  • the ultraviolet lamp is controlled to stop ultraviolet irradiation, and danger reminder information is generated and played to remind the object to be protected to leave the effective radiation range.
  • the control ultraviolet light fixture stops ultraviolet irradiation, and after generating and playing the danger reminder information, it also includes:
  • the present invention also provides a smart bracelet, the smart bracelet includes:
  • the object type monitoring module is used to monitor the type of objects within the effective radiation range after receiving the ultraviolet irradiation instruction;
  • a working mode search module used to search for a working mode corresponding to the object, and control the ultraviolet lamp to irradiate in the working mode
  • the working mode adjustment module is used to monitor the changes of objects within the effective radiation range in real time during the ultraviolet irradiation process, and adjust the working mode of the ultraviolet lamps according to the changes.
  • the change of the object includes: the change of the position of the object or the change of the type of the object; the working mode includes: the irradiation duration, the irradiation intensity, and the irradiation direction.
  • the working mode adjustment module includes:
  • the position change monitoring unit is used for real-time monitoring of whether there is a position change of the object within the effective radiation range during the ultraviolet irradiation process;
  • the irradiation duration judgment unit is used to judge whether the irradiation time of the object within the current effective radiation range reaches the time when the position of the object changes and a part of the object is not within the current effective radiation range within the set time. original exposure time;
  • the irradiation direction adjustment unit is used to adjust the irradiation direction of the ultraviolet lamp when the irradiation time of the object within the current effective radiation range does not reach the original irradiation time length, so that the object is irradiated with the original irradiation intensity within the effective radiation range;
  • the irradiation duration calculation unit is used for accumulatively calculating the irradiation duration of the object within the effective irradiation range after the irradiation direction adjustment unit adjusts the irradiation direction of the ultraviolet lamp, and stops when the cumulatively calculated irradiation duration reaches the original irradiation duration irradiate.
  • the working mode adjustment module includes:
  • the type change monitoring unit is used for real-time monitoring of whether there is a change in the type of objects within the effective radiation range during the ultraviolet irradiation process;
  • a working mode adjustment unit configured to search for a working mode matching the changed first object when the type of the object within the effective radiation range changes, and control the ultraviolet lamp to irradiate with the working mode matching the first object;
  • the calling unit is configured to sequentially call the category change monitoring unit and the working mode adjustment unit to perform corresponding operations.
  • the smart bracelet further includes:
  • the protection object monitoring module is used to monitor in real time whether there is an object to be protected within the effective radiation range after the object type monitoring module receives the ultraviolet irradiation instruction;
  • the ultraviolet irradiation control module controls the ultraviolet lamp to stop ultraviolet irradiation when there is an object to be protected within the effective radiation range;
  • the danger information prompting module is used to generate and play danger warning information after the ultraviolet irradiation control module controls the ultraviolet lamp to stop ultraviolet irradiation, so as to remind the object to be protected to leave the effective radiation range.
  • the smart bracelet further comprises: an irradiation time calculation module;
  • the protection object monitoring module is also used to monitor in real time whether the object to be protected leaves the effective radiation range after the danger information prompting module generates and plays the danger reminder information;
  • the ultraviolet irradiation control module is further configured to restore the ultraviolet irradiation function of the ultraviolet lamp when the object to be protected leaves the effective radiation range;
  • the irradiation time calculation module is used for accumulatively calculating the irradiation time after resuming the ultraviolet irradiation function of the ultraviolet lamp, and stopping the irradiation when the accumulatively calculated irradiation time reaches the original irradiation time.
  • a computer device includes a memory and a processor, wherein the memory stores a computer program, and when the computer program is executed by the processor, the processor causes the processor to execute the steps in the ultraviolet irradiation method of the smart bracelet.
  • a storage medium stores a plurality of instructions, and the instructions are suitable for being loaded by a processor to execute the steps of the ultraviolet irradiation method of the smart bracelet.
  • the smart bracelet monitors the types of objects within the effective radiation range after receiving the ultraviolet irradiation instruction; Control the ultraviolet lamps to irradiate in the working mode; monitor the changes of objects within the effective radiation range in real time during the ultraviolet irradiation process, and adjust the working mode of the ultraviolet lamps according to the changes.
  • the ultraviolet irradiation instruction After receiving the ultraviolet irradiation instruction, it can automatically According to the type of objects within the effective radiation range, the matching working mode is used to irradiate ultraviolet rays to achieve sterilization and disinfection of the corresponding objects without user intervention, and the disinfection cost is low. It is suitable for sterilization and disinfection of small objects in daily life, and the user experience effect it is good.
  • FIG. 1 is a schematic flowchart of the first embodiment of the ultraviolet irradiation method of the smart bracelet of the present invention
  • FIG. 2 is a schematic diagram of a specific refinement process of step S30;
  • step S30 is a schematic diagram of another specific refinement process of step S30;
  • FIG. 4 is a schematic flowchart of the second embodiment of the ultraviolet irradiation method of the smart bracelet of the present invention.
  • FIG. 5 is a schematic flowchart of a third embodiment of the ultraviolet irradiation method of the smart bracelet of the present invention.
  • FIG. 6 is a schematic diagram of functional modules of the first embodiment of the smart bracelet of the present invention.
  • FIG. 7 is a schematic diagram of a detailed functional module of the working mode adjustment module 130 of the present invention.
  • FIG. 8 is a schematic diagram of another specific detailed functional module of the working mode adjustment module 130 of the present invention.
  • FIG. 9 is a schematic diagram of functional modules of the second embodiment of the smart bracelet of the present invention.
  • FIG. 10 is a schematic diagram of functional modules of the third embodiment of the smart bracelet of the present invention.
  • FIG. 1 is a schematic flowchart of the first embodiment of the ultraviolet irradiation method for a smart bracelet of the present invention. As shown in FIG. 1 , in the first embodiment, the ultraviolet irradiation method of the smart bracelet includes the following steps:
  • Step S10 After receiving the ultraviolet irradiation instruction, monitor the types of objects within the effective radiation range.
  • the smart bracelet of this embodiment is equipped with an ultraviolet lamp with sterilization and disinfection.
  • the user can send ultraviolet irradiation instructions to the smart bracelet by pressing the corresponding button set on the smart bracelet, and can also send ultraviolet irradiation instructions to the smart bracelet through a communication device.
  • the ultraviolet lamps can be arranged on the outer surface of the smart bracelet, as well as on the inner surface, preferably on the outer surface.
  • an ultraviolet protection cover can be set around the ultraviolet lamp, and the effective radiation range is determined according to the distance between the ultraviolet protection cover, the area to be sterilized and the ultraviolet lamp.
  • image information within the effective radiation range can be collected, image analysis is performed on the collected image information, and the type of objects within the effective radiation range can be determined according to the analysis result.
  • the ultraviolet lamp of the smart bracelet provided by the present invention is suitable for sterilizing and sterilizing small objects such as mobile phones, watches, keys, wallets, office stationery, etc., and can also sterilize the air of a local small space, or sterilize and sterilize a small volume of water.
  • Step S20 searching for a working mode corresponding to the object, and controlling the ultraviolet lamp to irradiate in the working mode.
  • the smart bracelet in this embodiment is provided with corresponding working modes for different types of objects, and after determining the types of objects in the effective radiation range, the corresponding working modes will be automatically selected for irradiation.
  • Step S30 During the ultraviolet irradiation process, the changes of objects within the effective radiation range are monitored in real time, and the working mode of the ultraviolet lamps is adjusted according to the changes.
  • the ultraviolet irradiation method of the smart bracelet after receiving the ultraviolet irradiation instruction, can automatically use the matching working mode to carry out ultraviolet irradiation according to the type of the object within the effective radiation range, so as to realize the sterilization and disinfection of the corresponding object, without the need for User intervention, low disinfection cost, suitable for sterilization and disinfection of small objects in daily life, and good user experience.
  • the change of the object includes: the change of the position of the object or the change of the type of the object.
  • the working mode includes: irradiation duration, irradiation intensity, and irradiation direction.
  • FIG. 2 is a schematic diagram of a detailed detailed flow of step S30.
  • the step S30 monitors the changes of objects within the effective radiation range in real time during the ultraviolet irradiation process, and adjusting the working mode of the ultraviolet lamps according to the changes specifically includes:
  • Step S31 During the ultraviolet irradiation process, monitor in real time whether there is a position change of the object within the effective radiation range.
  • Step S32 when the position of the object changes, and a part of the object is not within the current effective radiation range within the set time, then determine whether the irradiation time of the object within the current effective radiation range reaches the original irradiation time; If yes, turn off the ultraviolet lamp irradiation function; if not, go to step S33.
  • the position of the object when the position of the object changes but does not move out of the current effective radiation range, it means that the object has always been within the current effective radiation range, and it is sufficient to continue to irradiate according to the predetermined working mode.
  • the position of the object changes, and the entire object or part of the object moves out of the current effective radiation range, but the irradiation time in the current effective radiation range has reached the original irradiation time, it means that the object has been sterilized by ultraviolet irradiation. Directly turn off the UV lamp irradiation function.
  • the original irradiation duration in the present invention refers to the irradiation duration in the working mode matched with the object.
  • Step S33 Adjust the irradiation direction of the ultraviolet lamp so that the object is irradiated with the original irradiation intensity within the effective radiation range, and cumulatively calculate the irradiation duration of the object within the effective radiation range until the cumulatively calculated irradiation duration reaches The irradiation is stopped when the original irradiation time is long.
  • the value range of the set time in this embodiment may be set in 5 seconds to 10 seconds, for example, may be set as 5 seconds, 7 seconds, 8 seconds, and 10 seconds.
  • the original irradiation intensity in the present invention refers to the irradiation intensity in the working mode matched with the object.
  • the smart bracelet can automatically adjust The irradiation direction of the ultraviolet lamp can ensure that the corresponding object to be sterilized and disinfected is within the effective radiation range without manual intervention by the user, so as to achieve the effect of ultraviolet irradiation sterilization and disinfection of the object.
  • FIG. 3 is a schematic diagram of another specific refinement flow of step S30 .
  • the step S30 monitors the changes of objects within the effective radiation range in real time during the ultraviolet irradiation process, and adjusts the working mode of the ultraviolet lamps according to the changes.
  • Another processing process specifically includes:
  • Step 301 During the ultraviolet irradiation process, monitor in real time whether there is a change in the type of objects within the effective radiation range; if not, continue to irradiate in the current working mode; if so, go to step S302.
  • Step 301 search for a working mode matching the changed first object, and control the ultraviolet lamp to irradiate in the working mode matching the first object; return to step S301 .
  • the change in the type of the object refers to that the object that was in the current effective radiation range before moves out of the current effective radiation range, and the other first objects move into the current effective radiation range.
  • the working mode of the ultraviolet lamp is automatically adjusted without the need for manual intervention by the user when the objects in the effective radiation range change, and the user experience effect is good.
  • FIG. 4 is a schematic flowchart of the second embodiment of the ultraviolet irradiation method of the smart bracelet of the present invention.
  • This second embodiment is improved on the basis of the above-mentioned first embodiment, and the improvement lies in: after receiving the ultraviolet irradiation instruction, it also includes the following processing:
  • Step S40 monitor whether there is an object to be protected within the effective radiation range; if yes, go to step S50 ; if not, continue to irradiate in the current working mode.
  • an infrared sensor can be used to monitor whether there is an object to be protected in the effective radiation range, and the object to be protected is a human being or an animal. According to the analysis results, it is determined whether there is an object to be protected within the effective radiation range.
  • Step S50 Control the ultraviolet lamp to stop ultraviolet irradiation, generate and play danger reminder information, and remind the object to be protected to leave the effective radiation range.
  • the ultraviolet lamp when an object to be protected is detected within the effective radiation range, the ultraviolet lamp is controlled to stop ultraviolet irradiation, and danger reminder information is played to remind the object to be protected to leave the effective radiation range, so as to ensure that the object to be protected is irradiated by the ultraviolet lamp. It is not accidentally injured by ultraviolet rays during the sterilization and disinfection process, which improves the intelligence of the smart bracelet and improves the user experience.
  • FIG. 5 is a schematic flowchart of the third embodiment of the ultraviolet irradiation method of the smart bracelet of the present invention.
  • This third embodiment is improved on the basis of the above-mentioned second embodiment, and the improvement lies in that: after the above-mentioned step S50, it further includes:
  • Step S60 monitor in real time whether the object to be protected leaves the effective radiation range; if so, go to step S70; if not, periodically generate and play danger reminder information to remind the object to be protected to leave the effective radiation range .
  • Step S70 The ultraviolet irradiation function of the ultraviolet lamp is resumed, and the irradiation time is cumulatively calculated, and the irradiation is stopped when the cumulatively calculated irradiation time reaches the original irradiation time.
  • the ultraviolet irradiation function can be restored after monitoring the departure of the object to be protected, without manual intervention by the user, the object to be protected can be protected, and the subsequent ultraviolet irradiation sterilization and disinfection work can be completed, and the user experience effect is good.
  • FIG. 6 is a schematic diagram of functional modules of the first embodiment of the smart bracelet of the present invention.
  • the smart bracelet 100 includes: an object type monitoring module 110 , a work mode search module 120 , and a work mode adjustment module 130 .
  • the object type monitoring module 110 is configured to monitor the type of objects within the effective radiation range after receiving the ultraviolet irradiation instruction.
  • the working mode search module 120 is configured to search for a working mode corresponding to the object, and control the ultraviolet lamp to irradiate in the working mode.
  • the working mode adjustment module 130 is used to monitor the changes of objects within the effective radiation range in real time during the ultraviolet irradiation process, and adjust the working mode of the ultraviolet lamps according to the changes.
  • the smart bracelet 100 of this embodiment is equipped with an ultraviolet lamp with sterilization and disinfection.
  • the user can send an ultraviolet irradiation instruction to the smart bracelet by pressing the corresponding button set on the smart bracelet, and can also send an ultraviolet irradiation instruction to the smart bracelet through a communication device.
  • the ultraviolet lamps may be arranged on the outer surface of the smart bracelet 100, or may be arranged on the inner surface, preferably arranged on the outer surface.
  • an ultraviolet protection cover can be set around the ultraviolet lamp, and the effective radiation range is determined according to the distance between the ultraviolet protection cover, the area to be sterilized and the ultraviolet lamp.
  • image information within the effective radiation range can be collected, image analysis is performed on the collected image information, and the type of objects within the effective radiation range can be determined according to the analysis result.
  • the ultraviolet lamp of the smart bracelet 100 provided by the present invention is suitable for sterilizing and sterilizing small objects such as mobile phones, watches, keys, wallets, office stationery, etc., and can also sterilize air in local small spaces or sterilize small volumes of water. .
  • the smart bracelet in this embodiment is provided with corresponding working modes for different types of objects. After determining the types of objects in the effective radiation range, the corresponding working modes will be automatically selected for irradiation.
  • the smart bracelet 100 after receiving the ultraviolet irradiation instruction, can automatically irradiate the ultraviolet rays according to the type of the object within the effective radiation range in a matching working mode, so as to realize the sterilization and disinfection of the corresponding object without user intervention,
  • the disinfection cost is low, and it is suitable for sterilization and disinfection of small objects in daily life, and the user experience effect is good.
  • the change of the object includes: the change of the position of the object or the change of the type of the object; the working mode includes: the irradiation duration, the irradiation intensity, and the irradiation direction.
  • FIG. 7 is a schematic diagram of a specific detailed functional module of the working mode adjustment module 130 of the present invention.
  • the working mode adjustment module 130 includes: a position change monitoring unit 131 , an irradiation duration determination unit 132 , an irradiation direction adjustment unit 133 , and an irradiation duration calculation unit 134 .
  • the position change monitoring unit 131 is used to monitor in real time whether there is a position change of the object within the effective radiation range during the ultraviolet irradiation process.
  • the irradiation duration judging unit 132 is configured to judge the irradiation of the object within the current effective radiation range when the position of the object changes and a part of the object is not within the current effective radiation range within the set time. Whether the time reaches the original exposure duration.
  • the irradiation direction adjustment unit 133 is used to adjust the irradiation direction of the ultraviolet lamp when the irradiation time of the object within the current effective radiation range does not reach the original irradiation time length, so that the object is within the effective radiation range with the original irradiation intensity. Irradiate.
  • the irradiation duration calculation unit 134 is used for accumulatively calculating the irradiation duration of the object within the effective irradiation range after the irradiation direction adjustment unit adjusts the irradiation direction of the ultraviolet lamp, until the cumulatively calculated irradiation duration reaches the original irradiation duration. Stop irradiating for a long time.
  • the position of the object when the position of the object changes but does not move out of the current effective radiation range, it means that the object has always been within the current effective radiation range, and it is sufficient to continue to irradiate according to the predetermined working mode.
  • the position of the object changes, and the entire object or part of the object moves out of the current effective radiation range, but the irradiation time in the current effective radiation range has reached the original irradiation time, it means that the object has been sterilized by ultraviolet irradiation. Directly turn off the UV lamp irradiation function.
  • the original irradiation duration in the present invention refers to the irradiation duration in the working mode matched with the object.
  • the value range of the set time in this embodiment may be set in 5 seconds to 10 seconds, for example, may be set as 5 seconds, 7 seconds, 8 seconds, and 10 seconds.
  • the original irradiation intensity in the present invention refers to the irradiation intensity in the working mode matched with the object.
  • the smart bracelet 100 In the smart bracelet 100 provided in this embodiment, during the ultraviolet irradiation process, the position of the object to be sterilized and sterilized is shifted under the action of external force, and some areas are not within the current effective radiation range.
  • the smart bracelet can automatically adjust the brightness of the ultraviolet lamp.
  • the irradiation direction can ensure that the corresponding object to be sterilized and sterilized is within the effective radiation range without manual intervention by the user, so as to achieve the effect of ultraviolet irradiation sterilization and disinfection of the object.
  • FIG. 8 is a schematic diagram of another specific detailed functional module of the working mode adjustment module 130 of the present invention.
  • another specific refinement module of the working mode adjustment module 130 includes: a type change monitoring unit 1301 , a working mode adjustment unit 1302 , and a calling unit 1303 .
  • the type change monitoring unit 1301 is used to monitor in real time whether there is a change in the type of objects within the effective radiation range during the ultraviolet irradiation process.
  • the working mode adjustment unit 1302 is configured to search for a working mode matching the changed first object when the type of object within the effective radiation range changes, and control the ultraviolet lamp to use the working mode matching the first object Irradiate.
  • the calling unit 1303 is configured to sequentially call the category change monitoring unit and the working mode adjustment unit to perform corresponding operations.
  • the change in the type of the object refers to that the object that was in the current effective radiation range before moves out of the current effective radiation range, and the other first objects move into the current effective radiation range.
  • the working mode of the ultraviolet lamp is automatically adjusted without the need for manual intervention by the user when the objects in the effective radiation range change, and the user experience effect is good.
  • FIG. 9 is a schematic diagram of functional modules of the second embodiment of the smart bracelet of the present invention.
  • the second embodiment is improved on the basis of the above-mentioned first embodiment.
  • the improvement is that the smart bracelet 100 further includes: a protection object monitoring module 140 , an ultraviolet irradiation control module 150 , and a danger information prompt module 160 .
  • the protection object monitoring module 140 is configured to monitor in real time whether there is an object to be protected within the effective radiation range after the object type monitoring module receives the ultraviolet irradiation instruction.
  • the ultraviolet irradiation control module 150 controls the ultraviolet lamp to stop ultraviolet irradiation when there is an object to be protected within the effective radiation range.
  • the danger information prompting module 160 is used to generate and play danger reminder information after the ultraviolet irradiation control module controls the ultraviolet lamp to stop ultraviolet irradiation, to remind the object to be protected to leave the effective radiation range.
  • the smart bracelet 100 can use an infrared sensor to monitor whether there is an object to be protected in the effective radiation range, and the object to be protected is a human being or an animal. It can also collect image information within the effective radiation range. Perform image analysis on the image information, and determine whether there is an object to be protected within the effective radiation range according to the analysis result.
  • the ultraviolet lamp when an object to be protected is detected within the effective radiation range, the ultraviolet lamp is controlled to stop ultraviolet irradiation, and danger reminder information is played to remind the object to be protected to leave the effective radiation range, so as to ensure that the object to be protected is irradiated by the ultraviolet lamp.
  • danger reminder information is played to remind the object to be protected to leave the effective radiation range, so as to ensure that the object to be protected is irradiated by the ultraviolet lamp.
  • it In the process of sterilization and disinfection, it is not accidentally injured by ultraviolet rays, which improves the intelligence of the smart bracelet 100 and improves the user experience effect.
  • FIG. 10 is a schematic diagram of functional modules of the third embodiment of the smart bracelet of the present invention.
  • the third embodiment is improved on the basis of the above-mentioned second embodiment, and the improvement lies in that: the smart bracelet 100 further includes: an irradiation time calculation module 170 .
  • the protection object monitoring module 140 is further configured to monitor in real time whether the object to be protected leaves the effective radiation range after the danger information prompting module generates and plays the danger reminder information.
  • the ultraviolet irradiation control module 150 is further configured to resume the ultraviolet irradiation function of the ultraviolet lamp when the object to be protected leaves the effective radiation range.
  • the irradiation time calculation module 170 is used for accumulatively calculating the irradiation time after resuming the ultraviolet irradiation function of the ultraviolet lamp, and stopping the irradiation when the accumulatively calculated irradiation time reaches the original irradiation time.
  • the ultraviolet irradiation function can be restored after monitoring the departure of the object to be protected, without manual intervention by the user, the object to be protected can be protected, and the subsequent ultraviolet irradiation sterilization and disinfection work can be completed, and the user experience effect is good.
  • An embodiment of the present invention further provides a computer device, including a memory and a processor, wherein the memory stores a computer program, and when the computer program is executed by the processor, the processor causes the processor to execute the smart bracelet as described above steps in the UV irradiation method.
  • a computer device may include components such as a processor of one or more processing cores, one or more memory including a computer-readable storage medium, a power supply, and an input unit. in:
  • the processor is the control center of the computer equipment, using various interfaces and lines to connect various parts of the entire computer equipment, by running or executing the software programs and/or modules stored in the memory, and calling the data stored in the memory.
  • the processor may include one or more processing cores, and the processor may integrate an application processor and a modem processor, wherein the application processor mainly processes the operating system, user interface, and application programs, etc., and the modem processor Mainly deals with wireless communication. It can be understood that, the above-mentioned modulation and demodulation processor may not be integrated into the processor.
  • the memory can be used to store software programs and modules, and the processor executes various functional applications and blood vessel image processing by running the software programs and modules stored in the memory.
  • the memory may mainly include a stored program area and a stored data area, wherein the stored program area may store an operating system, an application program required for at least one function, and the like; Additionally, the memory may include high-speed random access memory, and may also include non-volatile memory, such as at least one magnetic disk storage device, flash memory device, or other volatile solid state storage device. Accordingly, the memory may also include a memory controller to provide processor access to the memory.
  • the computer equipment also includes a power supply for supplying power to various components.
  • the power supply can be logically connected to the processor through a power management system, so that functions such as charging, discharging, and power consumption management are implemented through the power management system.
  • the power source may also include one or more DC or AC power sources, recharging systems, power failure detection circuits, power converters or inverters, power status indicators, and any other components.
  • the computer device may also include an input unit operable to receive input numerical or character information and generate keyboard, mouse, joystick, optical or trackball signal input related to user settings and functional control.
  • the computer device may also include a display unit and the like, which will not be described herein again.
  • the processor in the computer device will load the executable files corresponding to the processes of one or more application programs into the memory according to the following instructions, and the processor will run the executable files stored in the memory. application program, so as to realize the ultraviolet irradiation method of the smart bracelet provided by the embodiment of the present invention, as follows:
  • the changes of objects within the effective radiation range are monitored in real time, and the working mode of the ultraviolet lamps is adjusted according to the changes.
  • the change of the object includes: the change of the position of the object or the change of the type of the object; the working mode includes: the irradiation duration, the irradiation intensity, and the irradiation direction.
  • the real-time monitoring of changes in objects within the effective radiation range during the ultraviolet irradiation process, and adjusting the working mode of the ultraviolet lamps according to the changes specifically includes:
  • the irradiation direction of the ultraviolet lamp so that the object is irradiated with the original irradiation intensity within the effective radiation range
  • the irradiation duration of the object within the effective radiation range is calculated cumulatively until the cumulatively calculated irradiation time is reached.
  • the irradiation is stopped when the duration reaches the original irradiation duration.
  • the real-time monitoring of changes in objects within the effective radiation range during the ultraviolet irradiation process, and adjusting the working mode of the ultraviolet lamps according to the changes specifically includes:
  • the method further includes:
  • the ultraviolet lamp is controlled to stop ultraviolet irradiation, and danger reminder information is generated and played to remind the object to be protected to leave the effective radiation range.
  • the controlling the ultraviolet lamp to stop ultraviolet irradiation, and after generating and playing the danger reminder information further comprises:
  • the present invention also provides a storage medium, the storage medium stores a plurality of instructions, and the instructions are suitable for the processor to load, so as to execute the steps of the ultraviolet irradiation method of the smart bracelet. That is, the storage medium stores a plurality of instructions, and the instructions can be loaded by the processor to execute the steps in any of the ultraviolet irradiation methods for the smart bracelet provided in the embodiments of the present invention.
  • the instruction can perform the following steps:
  • the changes of objects within the effective radiation range are monitored in real time, and the working mode of the ultraviolet lamps is adjusted according to the changes.
  • the change of the object includes: the change of the position of the object or the change of the type of the object; the working mode includes: the irradiation duration, the irradiation intensity, and the irradiation direction.
  • the real-time monitoring of changes in objects within the effective radiation range during the ultraviolet irradiation process, and adjusting the working mode of the ultraviolet lamps according to the changes specifically includes:
  • the irradiation direction of the UV lamp so that the object is irradiated with the original irradiation intensity within the effective radiation range
  • the irradiation duration of the object within the effective irradiation range is calculated cumulatively until the cumulatively calculated irradiation duration
  • the irradiation is stopped when the original irradiation duration is reached.
  • the real-time monitoring of changes in objects within the effective radiation range during the ultraviolet irradiation process, and adjusting the working mode of the ultraviolet lamps according to the changes specifically includes:
  • the method further includes:
  • the ultraviolet lamp is controlled to stop ultraviolet irradiation, and danger reminder information is generated and played to remind the object to be protected to leave the effective radiation range.
  • the controlling the ultraviolet lamp to stop ultraviolet irradiation, and after generating and playing the danger reminder information further comprises:
  • the storage medium may include: a read-only memory (ROM, Read Only Memory), a random access memory (RAM, Random Access Memory), a magnetic disk or an optical disk, and the like.
  • ROM Read Only Memory
  • RAM Random Access Memory
  • magnetic disk or an optical disk and the like.
  • any smart bracelet provided by the embodiments of the present invention can be executed, and therefore, any smart bracelet provided by the embodiments of the present invention can be implemented.
  • the beneficial effects that can be achieved by the ultraviolet irradiation method can be seen in the previous embodiments, which will not be repeated here.

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Abstract

一种智能手环(100)的紫外线照射方法。智能手环(100)的紫外线照射方法包括:在接收到紫外线照射指令后,监测有效辐射范围内物体种类(S10);查找与物体相应匹配的工作模式,控制紫外线灯具以相应工作模式进行照射(S20);在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据变化情况调整紫外线灯具的工作模式(S30)。智能手环(100)在接收到紫外线照射指令后,可以自动根据有效辐射范围内物体的种类采用相匹配的工作模式进行紫外线照射,实现对相应的物体进行杀菌消毒,无需用户干预,消毒成本低,适用于日常生活中的小物件杀菌消毒,用户使用体验效果好。

Description

一种智能手环的紫外线照射方法
本申请要求于2020年12月22日提交中国专利局、申请号为202011542451.X、发明名称为“一种智能手环的紫外线照射方法”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本发明涉及智能手环技术领域,尤其涉及一种智能手环及其紫外线照射方法、计算机设备和存储介质。
背景技术
人们日常生活会用到很多小物件,如钥匙,耳机、指甲剪,发卡等,使用时间一长容易滋生细菌,人们一般通过消毒液擦拭的方式进行消毒,这种消毒方式需要用到棉签,棉片和消毒液等卫生用品,操作复杂、消毒成本高。
智能手环是一种穿戴式智能设备,类似于手表。其中内置传感器,并通过智能手环上配置的接口与其它智能设备进行传输及同步数据。由于其方便携带且外观符合用户的审美需求,逐渐成为用户常用的智能设备之一。
目前常见的智能手环有如下几种功能,计步、运动监测、睡眠监测,针对特殊人群还有一些别的功能,比如针对老人、儿童的防走失等,但市面上并未见具有杀菌消毒功能的智能手环。
发明内容
本发明的主要目的在于针对现有技术中人们给小物件消毒的操作复杂、成本高的技术问题,提供一种智能手环及其紫外线照射方法、计算机设备和存储介质,通过智能手环对小物件进行消毒,简化对小物件消毒的操作流程,降低小物件的消毒成本。
为实现上述目的,本发明提供一种智能手环的紫外线照射方法,包括:
在接收到紫外线照射指令后,监测有效辐射范围内物体种类;
查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射;
在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所 述变化情况调整紫外线灯具的工作模式。
优选地,所述的智能手环的紫外线照射方法中,所述物体变化情况包括:物体位置变化或物体种类变化;所述工作模式包括:照射时长、照射强度、照射方向。
优选地,所述的智能手环的紫外线照射方法中,所述在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
在紫外线照射过程中实时监测有效辐射范围内物体是否有位置变化;
当所述物体位置发生变化,并在设定时间内所述物体的部分区域不在当前有效辐射范围内,则判断所述物体在当前有效辐射范围内的照射时间是否达到原始照射时长;
若否,则调整紫外线灯具的照射方向,使得述物体在有效辐射范围内,以原始照射强度进行照射,并累计计算所述物体在有效所辐射范围内的照射时长,直至累计计算得到的照射时长达到所述原始照射时长时停止照射。
优选地,所述的智能手环的紫外线照射方法中,所述在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化;
当有效辐射范围内的物体种类发生变化,则查找与所述变化后的第一物体匹配的工作模式,控制紫外线灯具以所述第一物体匹配的工作模式进行照射;
返回执行所述在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化。
优选地,所述的智能手环的紫外线照射方法中,在接收到紫外线照射指令之后还包括:
监测有效辐射范围内是否存在需保护对象;
若有,则控制紫外线灯具停止紫外线照射,生成并播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内。
优选地,所述的智能手环的紫外线照射方法中,所述控制紫外线灯具 停止紫外线照射,生成并播放危险提醒信息之后还包括:
实时监测所述需保护对象是否离开所述有效辐射范围内;
若是,则恢复启动紫外线灯具紫外线照射功能,累计计算照射时间,直至累计计算的照射时间达到原始照射时长时停止照射。
为实现上述目的,本发明还提供了一种智能手环,所述智能手环包括:
物体种类监测模块,用于在接收到紫外线照射指令后,监测有效辐射范围内物体种类;
工作模式查找模块,用于查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射;
工作模式调整模块,用于在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式。
优选地,所述的智能手环中,所述物体变化情况包括:物体位置变化或物体种类变化;所述工作模式包括:照射时长、照射强度、照射方向。
优选地,所述的智能手环中,所述工作模式调整模块包括:
位置变化监测单元,用于在紫外线照射过程中实时监测有效辐射范围内物体是否有位置变化;
照射时长判断单元,用于当所述物体位置发生变化,并在设定时间内所述物体的部分区域不在当前有效辐射范围内,则判断所述物体在当前有效辐射范围内的照射时间是否达到原始照射时长;
照射方向调整单元,用于当所述物体在当前有效辐射范围内的照射时间未达到原始照射时长,则调整紫外线灯具的照射方向,使得述物体在有效辐射范围内,以原始照射强度进行照射;
照射时长计算单元,用于在照射方向调整单元调整紫外线灯具的照射方向后,累计计算所述物体在有效所辐射范围内的照射时长,直至累计计算得到的照射时长达到所述原始照射时长时停止照射。
优选地,所述的智能手环中,所述工作模式调整模块包括:
种类变化监测单元,用于在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化;
工作模式调整单元,用于当有效辐射范围内的物体种类发生变化,则查找与变化后的第一物体匹配的工作模式,控制紫外线灯具以所述第一物 体匹配的工作模式进行照射;
调用单元,用于依序调用所述种类变化监测单元、所述工作模式调整单元执行相应的操作。
优选地,所述的智能手环还包括:
保护对象监测模块,用于在物体种类监测模块接收到紫外线照射指令之后,实时监测有效辐射范围内是否存在需保护对象;
紫外线照射控制模块,当所述有效辐射范围内存在需保护对象,则控制紫外线灯具停止紫外线照射;
危险信息提示模块,用于在紫外线照射控制模块控制紫外线灯具停止紫外线照射之后,生成并播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内。
优选地,所述的智能手环还包括:照射时间计算模块;
所述保护对象监测模块,还用于危险信息提示模块生成并播放危险提醒信息后,实时监测所述需保护对象是否离开所述有效辐射范围内;
所述紫外线照射控制模块,还用于当所述需保护对象离开所述有效辐射范围内,则恢复启动紫外线灯具紫外线照射功能;
所述照射时间计算模块,用于在所述恢复启动紫外线灯具紫外线照射功能后,累计计算照射时间,直至累计计算的照射时间达到原始照射时长时停止照射。
一种计算机设备,包括存储器和处理器,所述存储器存储有计算机程序,所述计算机程序被所述处理器执行时,使得所述处理器执行上述智能手环的紫外线照射方法中的步骤。
一种存储介质,所述存储介质存储有多条指令,所述指令适于处理器进行加载,以执行上述智能手环的紫外线照射方法的步骤。
本发明提供的智能手环及其紫外线照射方法、计算机设备和存储介质,智能手环通过在接收到紫外线照射指令后,监测有效辐射范围内物体种类;查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射;在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式的方式,在接收到紫外线照射指令后,可以自动根据有效辐射范围内物体的种类采用相匹配的工 作模式进行紫外线照射,实现对相应的物体进行杀菌消毒,无需用户干预,消毒成本低,适用于日常生活中的小物件杀菌消毒,用户使用体验效果好。
说明书附图
图1为本发明的智能手环的紫外线照射方法第一实施例的流程示意图;
图2为步骤S30具体细化流程示意图;
图3为步骤S30的另一具体细化流程示意图;
图4为本发明的智能手环的紫外线照射方法的第二实施例的流程示意图;
图5为本发明的智能手环的紫外线照射方法的第三实施例的流程示意图;
图6为本发明的智能手环第一实施例的功能模块示意图;
图7为本发明的工作模式调整模块130的具体细化功能模块示意图;
图8为本发明的工作模式调整模块130的另一具体细化功能模块示意图;
图9为本发明的智能手环第二实施例的功能模块示意图;
图10为本发明的智能手环第三实施例的功能模块示意图。
具体实施方式
本发明目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。
应当理解,此处所描述的优选实施例仅用于说明和解释本发明,并不用于限定本发明。
本发明提出一种智能手环的紫外线照射方法第一实施例,参见图1,图1为本发明的智能手环的紫外线照射方法第一实施例的流程示意图。如图1所示,在本第一实施例中所述智能手环的紫外线照射方法包括以下步骤:
步骤S10:在接收到紫外线照射指令后,监测有效辐射范围内物体种类。
本实施例的智能手环安装有具有杀菌消毒的紫外线灯具。用户可以通过按压智能手环上设置的相应按钮的方式向智能手环发送紫外线照射指 令,也可以通过通讯设备向智能手环发送紫外线照射指令。
本实施例中,紫外线灯具可以设置在智能手环的外表面,也设置在内表面,优选设置在外表面。本发明中可以在紫外线灯具周围套设一个紫外线防护罩,根据紫外线防护罩、待消毒区域与紫外线灯具的距离来确定有效辐射范围。
本实施例具体可以通过采集有效辐射范围内的图像信息,对采集到的图像信息进行图像分析,根据分析结果来确定在有效辐射范围内的物体种类。
本发明所提供的智能手环的紫外线灯具适用于对手机、手表、钥匙、钱包、办公文具等小物件进行杀菌消毒,也可以对局部小空间进行空气消毒,或小体积的水进行杀菌消毒。
步骤S20:查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射。
由于不同材质的物体对紫外线的耐受程度不同,因此本实施例在确保能够杀死物体表面的细菌病毒的前提下,针对不同材质的物体采用不同的照射强度和不同照射时间,确保物体本身不会遭到破坏。即本实施例中所述智能手环内针对不同种类物体设置有相应的工作模式,在确定有效辐射范围的物体种类后,会自动选择与之相适应的工作模式进行照射。
步骤S30:在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式。
本实施提供的智能手环的紫外线照射方法,在接收到紫外线照射指令后,可以自动根据有效辐射范围内物体的种类采用相匹配的工作模式进行紫外线照射,实现对相应的物体进行杀菌消毒,无需用户干预,消毒成本低,适用于日常生活中的小物件杀菌消毒,用户使用体验效果好。
上述第一实施例中,所述物体变化情况包括:物体位置变化或物体种类变化。所述工作模式包括:照射时长、照射强度、照射方向。
参见图2,图2为步骤S30具体细化流程示意图。在本实施例中所述步骤S30在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
步骤S31:在紫外线照射过程中实时监测有效辐射范围内物体是否有 位置变化。
步骤S32:当所述物体位置发生变化,并在设定时间内所述物体的部分区域不在当前有效辐射范围内,则判断所述物体在当前有效辐射范围内的照射时间是否达到原始照射时长;若是,则关闭紫外线灯具照射功能;若否,则转入步骤S33。
本实施例当所述物体位置发生变化,但没有移出当前有效辐射范围内,说明所述物体一直处在当前有效辐射范围内,继续按照既定的工作模式进行照射即可。当物体位置发生变化,整个物体或物体的部分区域移出当前有效辐射范围内,但在当前有效辐射范围的照射时间已达到原始照射时长,则说明所述物体已完成紫外线照射杀菌消毒,此时可以直接关闭紫外线灯具照射功能。本发明中所述的原始照射时长是指与所述物体相匹配的工作模式中的照射时长。
步骤S33:调整紫外线灯具的照射方向,使得述物体在有效辐射范围内,以原始照射强度进行照射,并累计计算所述物体在有效所辐射范围内的照射时长,直至累计计算得到的照射时长达到所述原始照射时长时停止照射。
本实施例中所述设定时间的取值范围可以设置在5秒至10秒中,如可以设置为5秒、7秒、8秒、10秒。本发明中所述原始照射强度是指与所述物体相匹配的工作模式中的照射强度。
本实施例提供的智能手环的紫外线照射方法,在紫外线照射过程中,待杀菌消毒的物体在外力的作用下发生位置的偏移,部分区域不在当前有效辐射范围内,智能手环能够自动调整紫外线灯具的照射方向,无需用户手动干预,即可确保相应的待杀菌消毒的物体在有效辐射范围内,达到完成对该物体紫外线照射杀菌消毒的效果。
参见图3,图3为步骤S30的另一具体细化流程示意图。在本实施例中所述步骤S30在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式另一处理过程具体包括:
步骤301:在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化;若否,则继续以当前工作模式进行照射;若是,则转入步骤 S302。
步骤301:查找与变化后的第一物体匹配的工作模式,控制紫外线灯具以所述第一物体匹配的工作模式进行照射;返回执行步骤S301。
本实施例中所述物体种类变化是指:之前在当前有效辐射范围的物体移出当前有效辐射范围,其他的所述第一物体移入当前有效辐射范围。
本实施例通过在有效辐射范围的物体发生变化,无需用户手动干预,自动调整紫外线灯具的工作模式,用户使用体验效果好。
本发明还提出所述智能手环的紫外线照射方法的第二实施例。参见图4,图4为本发明的智能手环的紫外线照射方法的第二实施例的流程示意图。本第二实施例,在上述第一实施例的基础进行了改进,改进之处在于:在接收到紫外线照射指令之后还包括如下处理:
步骤S40:监测有效辐射范围内是否存在需保护对象;若是,则转入步骤S50;若否,则继续以当前工作模式进行照射。
本实施例可以通过红外传感器监测有效辐射范围是否有需保护对象,所述需保护对象为人类或动物类,也可以通过采集有效辐射范围内的图像信息,对采集到的图像信息进行图像分析,根据分析结果来确定在有效辐射范围内是否有需保护对象。
步骤S50:控制紫外线灯具停止紫外线照射,生成并播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内。
本实施例通过在监测到有效辐射范围内存在需保护对象,控制紫外线灯具停止紫外线照射,播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内,确保需保护对象在紫外线灯具进行物体照射杀菌消毒过程中不被紫外线误伤,提升了智能手环的智能性,提高了用户体验效果。
本发明还提出所述智能手环的紫外线照射方法的第三实施例。参见图5,图5为本发明的智能手环的紫外线照射方法的第三实施例的流程示意图。本第三实施例,在上述第二实施例的基础进行了改进,改进之处在于:在上述步骤S50之后还包括:
步骤S60:实时监测所述需保护对象是否离开所述有效辐射范围内;若是,则转入步骤S70;若否,则定时生成并播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内。
步骤S70:恢复启动紫外线灯具紫外线照射功能,累计计算照射时间,直至累计计算的照射时间达到原始照射时长时停止照射。
本实施例通过在监测到需保护对象离开后恢复紫外线照射功能,在无需用户手动干预的情况下,能够保护需保护对象,并完成后续紫外线照射杀菌消毒工作,用户使用体验效果好。
本发明提供一种智能手环第一实施例,参见图6,图6为本发明的智能手环第一实施例的功能模块示意图。在第一实施例中,所述智能手环100包括:物体种类监测模块110、工作模式查找模块120、工作模式调整模块130。其中,所述物体种类监测模块110,用于在接收到紫外线照射指令后,监测有效辐射范围内物体种类。所述工作模式查找模块120,用于查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射。所述工作模式调整模块130,用于在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式。
本实施例的智能手环100安装有具有杀菌消毒的紫外线灯具。用户可以通过按压智能手环上设置的相应按钮的方式向智能手环发送紫外线照射指令,也可以通过通讯设备向智能手环发送紫外线照射指令。
本实施例中,紫外线灯具可以设置在智能手环100的外表面,也可以设置在内表面,优选设置在外表面。本发明中可以在紫外线灯具周围套设一个紫外线防护罩,根据紫外线防护罩、待消毒区域与紫外线灯具的距离来确定有效辐射范围。
本实施例具体可以通过采集有效辐射范围内的图像信息,对采集到的图像信息进行图像分析,根据分析结果来确定在有效辐射范围内的物体种类。
本发明所提供的智能手环100的紫外线灯具适用于对手机、手表、钥匙、钱包、办公文具等小物件进行杀菌消毒,也可以对局部小空间进行空气消毒,或小体积的水进行杀菌消毒。
由于不同材质的物体对紫外线的耐受程度不同,因此本实施例在确保能够杀死物体表面的细菌病毒的前提下,针对不同材质的物体采用不同的照射强度和不同照射时间,确保物体本身不会遭到破坏。即本实施例中所 述智能手环内针对不同种类物体设置有相应的工作模式,在确定有效辐射范围的物体种类后,会自动选择与之相适应的工作模式进行照射。
本实施提供的智能手环100,在接收到紫外线照射指令后,可以自动根据有效辐射范围内物体的种类采用相匹配的工作模式进行紫外线照射,实现对相应的物体进行杀菌消毒,无需用户干预,消毒成本低,适用于日常生活中的小物件杀菌消毒,用户使用体验效果好。
在上述智能手环100第一实施例中,所述物体变化情况包括:物体位置变化或物体种类变化;所述工作模式包括:照射时长、照射强度、照射方向。
参见图7,图7为本发明的工作模式调整模块130的具体细化功能模块示意图。在所述智能手环100第一实施例中,所述工作模式调整模块130包括:位置变化监测单元131、照射时长判断单元132、照射方向调整单元133、照射时长计算单元134。其中,所述位置变化监测单元131,用于在紫外线照射过程中实时监测有效辐射范围内物体是否有位置变化。所述照射时长判断单元132,用于当所述物体位置发生变化,并在设定时间内所述物体的部分区域不在当前有效辐射范围内,则判断所述物体在当前有效辐射范围内的照射时间是否达到原始照射时长。所述照射方向调整单元133,用于当所述物体在当前有效辐射范围内的照射时间未达到原始照射时长,则调整紫外线灯具的照射方向,使得述物体在有效辐射范围内,以原始照射强度进行照射。所述照射时长计算单元134,用于在照射方向调整单元调整紫外线灯具的照射方向后,累计计算所述物体在有效所辐射范围内的照射时长,直至累计计算得到的照射时长达到所述原始照射时长时停止照射。
本实施例当所述物体位置发生变化,但没有移出当前有效辐射范围内,说明所述物体一直处在当前有效辐射范围内,继续按照既定的工作模式进行照射即可。当物体位置发生变化,整个物体或物体的部分区域移出当前有效辐射范围内,但在当前有效辐射范围的照射时间已达到原始照射时长,则说明所述物体已完成紫外线照射杀菌消毒,此时可以直接关闭紫外线灯具照射功能。本发明中所述的原始照射时长是指与所述物体相匹配的工作模式中的照射时长。
本实施例中所述设定时间的取值范围可以设置在5秒至10秒中,如可以设置为5秒、7秒、8秒、10秒。本发明中所述原始照射强度是指与所述物体相匹配的工作模式中的照射强度。
本实施例提供的智能手环100,在紫外线照射过程中,待杀菌消毒的物体在外力的作用下发生位置的偏移,部分区域不在当前有效辐射范围内,智能手环能够自动调整紫外线灯具的照射方向,无需用户手动干预,即可确保相应的待杀菌消毒的物体在有效辐射范围内,达到完成对该物体紫外线照射杀菌消毒的效果。
参见图8,图8为本发明的工作模式调整模块130的另一具体细化功能模块示意图。在所述智能手环第一实施例中,所述工作模式调整模块130的另一具体细化模块包括:种类变化监测单元1301、工作模式调整单元1302、调用单元1303。其中,所述种类变化监测单元1301,用于在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化。所述工作模式调整单元1302,用于当有效辐射范围内的物体种类发生变化,则查找与所述变化后的第一物体匹配的工作模式,控制紫外线灯具以所述第一物体匹配的工作模式进行照射。所述调用单元1303,用于依序调用所述种类变化监测单元、所述工作模式调整单元执行相应的操作。
本实施例中所述物体种类变化是指:之前在当前有效辐射范围的物体移出当前有效辐射范围,其他的所述第一物体移入当前有效辐射范围。
本实施例通过在有效辐射范围的物体发生变化,无需用户手动干预,自动调整紫外线灯具的工作模式,用户使用体验效果好。
本发明还提出所述智能手环100第二实施例,参见图9,图9为本发明的智能手环第二实施例的功能模块示意图。本第二实施例,在上述第一实施例的基础进行了改进,改进之处在于:所述智能手环100还包括:保护对象监测模块140、紫外线照射控制模块150、危险信息提示模块160。其中,所述保护对象监测模块140,用于在物体种类监测模块接收到紫外线照射指令之后,实时监测有效辐射范围内是否存在需保护对象。所述紫外线照射控制模块150,当所述有效辐射范围内存在需保护对象,则控制紫外线灯具停止紫外线照射。所述危险信息提示模块160,用于在紫外线照射控制模块控制紫外线灯具停止紫外线照射之后,生成并播放危险提醒 信息,提醒需保护对象离开所述有效辐射范围内。
本实施例中所述智能手环100可以通过红外传感器监测有效辐射范围是否有需保护对象,所述需保护对象为人类或动物类,也可以通过采集有效辐射范围内的图像信息,对采集到的图像信息进行图像分析,根据分析结果来确定在有效辐射范围内是否有需保护对象。
本实施例通过在监测到有效辐射范围内存在需保护对象,控制紫外线灯具停止紫外线照射,播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内,确保需保护对象在紫外线灯具进行物体照射杀菌消毒过程中不被紫外线误伤,提升了智能手环100的智能性,提高了用户体验效果。
本发明还提出所述智能手环100第三实施例,参见图10,图10为本发明的智能手环第三实施例的功能模块示意图。本第三实施例,在上述第二实施例的基础进行了改进,改进之处在于:所述智能手环100还包括:照射时间计算模块170。其中,所述保护对象监测模块140,还用于危险信息提示模块生成并播放危险提醒信息后,实时监测所述需保护对象是否离开所述有效辐射范围内。所述紫外线照射控制模块150,还用于当所述需保护对象离开所述有效辐射范围内,则恢复启动紫外线灯具紫外线照射功能。所述照射时间计算模块170,用于在所述恢复启动紫外线灯具紫外线照射功能后,累计计算照射时间,直至累计计算的照射时间达到原始照射时长时停止照射。
本实施例通过在监测到需保护对象离开后恢复紫外线照射功能,在无需用户手动干预的情况下,能够保护需保护对象,并完成后续紫外线照射杀菌消毒工作,用户使用体验效果好。
本发明实施例还提供一种计算机设备,包括存储器和处理器,所述存储器存储有计算机程序,所述计算机程序被所述处理器执行时,使得所述处理器执行如所述的智能手环的紫外线照射方法中的步骤。计算机设备可以包括一个或者一个以上处理核心的处理器、一个或一个以上包含计算机可读存储介质的存储器、电源和输入单元等部件。其中:
处理器是该计算机设备的控制中心,利用各种接口和线路连接整个计算机设备的各个部分,通过运行或执行存储在存储器内的软件程序和/或模块,以及调用存储在存储器内的数据,执行计算机设备的各种功能和处 理数据,从而对计算机设备进行整体监控。优选地,处理器可包括一个或多个处理核心,处理器可集成应用处理器和调制解调处理器,其中,应用处理器主要处理操作系统、用户界面和应用程序等,调制解调处理器主要处理无线通信。可以理解的是,上述调制解调处理器也可以不集成到处理器中。
存储器可用于存储软件程序以及模块,处理器通过运行存储在存储器的软件程序以及模块,从而执行各种功能应用以及血管图像处理。存储器可主要包括存储程序区和存储数据区,其中,存储程序区可存储操作系统、至少一个功能所需的应用程序等;存储数据区可存储根据网络设备的使用所创建的数据等。此外,存储器可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他易失性固态存储器件。相应地,存储器还可以包括存储器控制器,以提供处理器对存储器的访问。
计算机设备还包括给各个部件供电的电源,优选地,电源可以通过电源管理系统与处理器逻辑相连,从而通过电源管理系统实现管理充电、放电、以及功耗管理等功能。电源还可以包括一个或一个以上的直流或交流电源、再充电系统、电源故障检测电路、电源转换器或者逆变器、电源状态指示器等任意组件。该计算机设备还可包括输入单元,该输入单元可用于接收输入的数字或字符信息,以及产生与用户设置以及功能控制有关的键盘、鼠标、操作杆、光学或者轨迹球信号输入。尽管未示出,计算机设备还可以包括显示单元等,在此不再赘述。
具体在本实施例中,计算机设备中的处理器会按照如下的指令,将一个或一个以上的应用程序的进程对应的可执行文件加载到存储器中,并由处理器来运行存储在存储器中的应用程序,从而实现本发明实施例提供的智能手环的紫外线照射方法,如下:
在接收到紫外线照射指令后,监测有效辐射范围内物体种类;
查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射;
在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式。
优选地,所述的智能手环的紫外线照射方法中,所述物体变化情况包括:物体位置变化或物体种类变化;所述工作模式包括:照射时长、照射强度、照射方向。
优选地,所述的智能手环的紫外线照射方法中,所述在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
在紫外线照射过程中实时监测有效辐射范围内物体是否有位置变化;
当所述物体位置发生变化,并在设定时间内所述物体的部分区域不在当前有效辐射范围内,则判断所述物体在当前有效辐射范围内的照射时间是否达到原始照射时长;
若否,则调整紫外线灯具的照射方向,使所述物体在有效辐射范围内,以原始照射强度进行照射,并累计计算所述物体在有效所辐射范围内的照射时长,直至累计计算得到的照射时长达到所述原始照射时长时停止照射。
优选地,所述的智能手环的紫外线照射方法中,所述在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化;
当有效辐射范围内的物体种类发生变化,则查找与变化后的第一物体匹配的工作模式,控制紫外线灯具以所述第一物体匹配的工作模式进行照射;
返回执行所述在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化。
优选地,所述的智能手环的紫外线照射方法中,在接收到紫外线照射指令之后还包括:
监测有效辐射范围内是否存在需保护对象;
若有,则控制紫外线灯具停止紫外线照射,生成并播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内。
优选地,所述的智能手环的紫外线照射方法中,所述控制紫外线灯具停止紫外线照射,生成并播放危险提醒信息之后还包括:
实时监测所述需保护对象是否离开所述有效辐射范围内;
若是,则恢复启动紫外线灯具紫外线照射功能,累计计算照射时间,直至累计计算的照射时间达到原始照射时长时停止照射。
以上各个操作的具体实施可参见前面的实施例,在此不再赘述。
本领域普通技术人员可以理解,上述实施例的各种方法中的全部或部分步骤可以通过指令来完成,或通过指令控制相关的硬件来完成,该指令可以存储于一计算机可读存储介质中,并由处理器进行加载和执行。
为此,本发明还提供一种存储介质,所述存储介质存储有多条指令,所述指令适于处理器进行加载,以执行所述的智能手环的紫外线照射方法的步骤。即所述存储介质存储有多条指令,该指令能够被处理器进行加载,以执行本发明实施例所提供的任一种智能手环的紫外线照射方法中的步骤。例如,该指令可以执行如下步骤:
在接收到紫外线照射指令后,监测有效辐射范围内物体种类;
查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射;
在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式。
优选地,所述的智能手环的紫外线照射方法中,所述物体变化情况包括:物体位置变化或物体种类变化;所述工作模式包括:照射时长、照射强度、照射方向。
优选地,所述的智能手环的紫外线照射方法中,所述在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
在紫外线照射过程中实时监测有效辐射范围内物体是否有位置变化;
当所述物体位置发生变化,并在设定时间内所述物体的部分区域不在当前有效辐射范围内,则判断所述物体在当前有效辐射范围内的照射时间是否达到原始照射时长;
若否,则调整紫外线灯具的照射方向,使得述物体在有效辐射范围内,以原始照射强度进行照射,并累计计算所述物体在有效所辐射范围内的照射时长,直至累计计算得到的照射时长达到所述原始照射时长时停止照 射。
优选地,所述的智能手环的紫外线照射方法中,所述在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化;
当有效辐射范围内的物体种类发生变化,则查找与变化后的第一物体匹配的工作模式,控制紫外线灯具以所述第一物体匹配的工作模式进行照射;
返回执行所述在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化。
优选地,所述的智能手环的紫外线照射方法中,在接收到紫外线照射指令之后还包括:
监测有效辐射范围内是否存在需保护对象;
若有,则控制紫外线灯具停止紫外线照射,生成并播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内。
优选地,所述的智能手环的紫外线照射方法中,所述控制紫外线灯具停止紫外线照射,生成并播放危险提醒信息之后还包括:
实时监测所述需保护对象是否离开所述有效辐射范围内;
若是,则恢复启动紫外线灯具紫外线照射功能,累计计算照射时间,直至累计计算的照射时间达到原始照射时长时停止照射。
以上各个操作的具体实施可参见前面的实施例,在此不再赘述。
其中,该存储介质可以包括:只读存储器(ROM,Read Only Memory)、随机存取记忆体(RAM,Random Access Memory)、磁盘或光盘等。
由于该存储介质中所存储的指令,可以执行本发明实施例所提供的任一种智能手环的紫外线照射方法中的步骤,因此,可以实现本发明实施例所提供的任一种智能手环的紫外线照射方法所能实现的有益效果,详见前面的实施例,在此不再赘述。
以上仅为本发明的优选实施例,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围 内。

Claims (10)

  1. 一种智能手环的紫外线照射方法,其特征在于,包括:
    在接收到紫外线照射指令后,监测有效辐射范围内物体种类;
    查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射;
    在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式。
  2. 根据权利要求1所述的智能手环的紫外线照射方法,其特征在于,所述物体变化情况包括:物体位置变化或物体种类变化;所述工作模式包括:照射时长、照射强度和照射方。
  3. 根据权利要求2所述的智能手环的紫外线照射方法,其特征在于,所述在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
    在紫外线照射过程中实时监测有效辐射范围内物体是否有位置变化;
    当所述物体位置发生变化,并在设定时间内所述物体的部分区域不在当前有效辐射范围内,则判断所述物体在当前有效辐射范围内的照射时间是否达到原始照射时长;
    若否,则调整紫外线灯具的照射方向,使得述物体在有效辐射范围内,以原始照射强度进行照射,并累计计算所述物体在有效所辐射范围内的照射时长,直至累计计算得到的照射时长达到所述原始照射时长时停止照射。
  4. 根据权利要求2所述的智能手环的紫外线照射方法,其特征在于,所述在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式具体包括:
    在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化;
    当有效辐射范围内的物体种类发生变化,则查找与变化后的第一物体匹配的工作模式,控制紫外线灯具以所述第一物体匹配的工作模式进行照射;
    返回执行所述在紫外线照射过程中实时监测有效辐射范围内是否有物体种类变化步骤。
  5. 根据权利要求1所述的智能手环的紫外线照射方法,其特征在于,在接收到紫外线照射指令之后还包括:
    监测有效辐射范围内是否存在需保护对象;
    若有,则控制紫外线灯具停止紫外线照射,生成并播放危险提醒信息,提醒需保护对象离开所述有效辐射范围内。
  6. 根据权利要求5所述的智能手环的紫外线照射方法,其特征在于,所述控制紫外线灯具停止紫外线照射,生成并播放危险提醒信息之后还包括:
    实时监测所述需保护对象是否离开所述有效辐射范围内;
    若是,则恢复启动紫外线灯具紫外线照射功能,累计计算照射时间,直至累计计算的照射时间达到原始照射时长时停止照射。
  7. 一种智能手环,其特征在于,所述智能手环包括:
    物体种类监测模块,用于在接收到紫外线照射指令后,监测有效辐射范围内物体种类;
    工作模式查找模块,用于查找与所述物体相应匹配的工作模式,控制紫外线灯具以所述工作模式进行照射;
    工作模式调整模块,用于在紫外线照射过程中实时监测有效辐射范围内物体变化情况,根据所述变化情况调整紫外线灯具的工作模式。
  8. 根据权利要求7所述的智能手环,其特征在于,所述物体变化情况包括:物体位置变化或物体种类变化;所述工作模式包括:照射时长、照射强度和照射方向。
  9. 一种计算机设备,包括存储器和处理器,其特征在于,所述存储器存储有计算机程序,所述计算机程序被所述处理器执行时,使得所述处理器执行如权利要求1至6任一项所述的智能手环的紫外线照射方法中的步骤。
  10. 一种存储介质,其特征在于,所述存储介质存储有多条指令,所述指令适于处理器进行加载,以执行权利要求1至6任一项所述的智能手环的紫外线照射方法的步骤。
PCT/CN2021/075674 2020-12-22 2021-02-06 一种智能手环的紫外线照射方法 WO2022134284A1 (zh)

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CN108413701A (zh) * 2018-03-05 2018-08-17 青岛海尔股份有限公司 一种用于冰箱杀菌的控制方法及冰箱
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