WO2024217427A1 - 电子雾化设备及其控制方法、装置 - Google Patents

电子雾化设备及其控制方法、装置 Download PDF

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Publication number
WO2024217427A1
WO2024217427A1 PCT/CN2024/088154 CN2024088154W WO2024217427A1 WO 2024217427 A1 WO2024217427 A1 WO 2024217427A1 CN 2024088154 W CN2024088154 W CN 2024088154W WO 2024217427 A1 WO2024217427 A1 WO 2024217427A1
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WO
WIPO (PCT)
Prior art keywords
baseband
color
detection result
position information
module
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2024/088154
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English (en)
French (fr)
Inventor
刘增日
余光平
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Shenzhen Smoore Technology Ltd
Smoore International Holdings Ltd
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Shenzhen Smoore Technology Ltd
Smoore International Holdings Ltd
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Filing date
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Publication of WO2024217427A1 publication Critical patent/WO2024217427A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/40Constructional details, e.g. connection of cartridges and battery parts
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/40Constructional details, e.g. connection of cartridges and battery parts
    • A24F40/46Shape or structure of electric heating means
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/40Constructional details, e.g. connection of cartridges and battery parts
    • A24F40/46Shape or structure of electric heating means
    • A24F40/465Shape or structure of electric heating means specially adapted for induction heating
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/50Control or monitoring
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/50Control or monitoring
    • A24F40/51Arrangement of sensors
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/50Control or monitoring
    • A24F40/53Monitoring, e.g. fault detection

Definitions

  • the present application relates to the field of atomization equipment, and in particular to an electronic atomization equipment and a control method and device thereof.
  • an electronic atomization device which is equipped with a conveyor belt on which a blade or rod-shaped array is arranged. Each array unit is provided with an atomization matrix, which can provide one or more inhalations.
  • the electronic atomization device drives the conveyor belt to a heating device for heating, thereby realizing the atomization of the atomization matrix.
  • the electronic atomization equipment of traditional technology transmits at a fixed speed during the process of driving the conveyor belt, and cannot identify the position of the conveyor belt, which may cause the user to be unable to inhale the atomized atomized matrix when the user inhales faster; or when the user inhales slowly, the atomized matrix is atomized and overflows into the air, causing waste.
  • the present application provides an electronic atomization device, the electronic atomization device comprising:
  • Baseband processing module, detection module and transmission mechanism
  • the baseband carries an atomized matrix, and a position mark is provided on one side of the baseband facing the detection module;
  • a detection module used to detect the position mark on the baseband and obtain the detection result
  • the processing module is used to determine the position information of the baseband according to the detection result, and control the transmission mechanism to drive the baseband to move according to the position information.
  • the position marker includes a plurality of colors arranged in sequence
  • the detection module includes a color sensor, the color sensor being used to detect the colors on the baseband and form a color detection result
  • the processing module is also used to determine the position information of the baseband according to the color detection result.
  • the color detection result includes the detected color and the number of times each color is detected
  • the processing module is further used to determine the position information of the baseband according to the detected color and the number of times each color is detected.
  • the unit lengths of each color are the same.
  • the position marker includes a plurality of materials with different reflectivity
  • the detection module includes a photoelectric sensor
  • the photoelectric sensor is used to detect light reflected by each material on the baseband, obtain a corresponding current value, and send the current value to the processing module;
  • the processing module is also used to determine the position information of the baseband according to the current value.
  • the unit lengths of the materials of different reflectivity are the same.
  • the detection module includes: a fill light, which is used to emit fill light to the side of the baseband with the position mark.
  • the present application further provides a control method for an electronic atomization device, the method being applied to a processing module in the electronic atomization device;
  • the electronic atomization device further comprises a baseband, a detection module and a transmission mechanism;
  • the baseband carries an atomization matrix, and a position mark is provided on one side of the baseband facing the detection module; the method comprises:
  • the detection result being obtained by detecting the position identifier by the detection module
  • the position information of the base belt is determined according to the detection result, and the transmission mechanism is controlled to drive the base belt to move according to the position information.
  • the present application further provides a control device for an electronic atomization device, which is applied to a processing module in the electronic atomization device;
  • the electronic atomization device also includes a baseband, a detection module and a transmission mechanism;
  • the baseband carries an atomization matrix, and a position mark is provided on one side of the baseband facing the detection module;
  • the device includes:
  • An acquisition module used to acquire a detection result of the detection module, where the detection result is obtained by detecting the position identifier by the detection module;
  • the control module is used to determine the position information of the baseband according to the detection result, and control the transmission mechanism to drive the baseband to move according to the position information.
  • FIG1 is a schematic diagram of the structure of an electronic atomization device in a first embodiment of the present application
  • FIG2 is a schematic diagram of the structure of a baseband in an embodiment of the present application.
  • FIG3 is a schematic diagram showing that different colors are set on the side of the baseband facing the detection module in one embodiment of the present application;
  • FIG4 is a schematic diagram of a baseband having materials with different reflectivity disposed on the side facing the detection module in one embodiment of the present application;
  • FIG5 is a schematic flow chart of a control method for an electronic atomization device in an embodiment of the present application.
  • FIG. 6 is a schematic diagram of the module structure of a control device for an electronic atomization device in one embodiment of the present application.
  • an electronic atomization device is provided, as shown in FIG1 , the electronic atomization device includes:
  • the baseband 110 The baseband 110, the processing module 120, the detection module 130 and the transmission mechanism 140.
  • the baseband 110 carries an atomized matrix, and a position mark is provided on the side of the baseband 110 facing the detection module 130.
  • the detection module 130 is used to detect the position mark on the baseband 110 and obtain the detection result.
  • the processing module 120 controls the transmission mechanism 140 to drive the baseband 110 to move according to the detection result.
  • one side of the base belt 110 is provided with spaced limiting holes 111, and the transmission mechanism 140 is provided with transmission gears, and each gear alternately passes through and moves out of the limiting holes during the rotation process, thereby driving the base belt 110 to run.
  • the transmission mechanism 140 can also adopt a combination of a limiting wheel and a transmission wheel, that is, the base belt 110 is placed between the limiting wheel and the transmission wheel, and the limiting wheel and the transmission wheel apply pressure to the base belt 110, so that during the driving process, the friction between the transmission wheel and the base belt 110 drives the base belt 110 to move.
  • the baseband 110 has two surfaces.
  • one of the surfaces is defined as the first surface, and the other surface is defined as the second surface.
  • the position-limiting hole 111 passes through the first surface and the second surface.
  • a solid atomization matrix is loaded on the first surface, and the atomization matrix may be an atomization matrix containing nicotine, such as tobacco material, or may be other atomization matrix, such as medicinal materials, etc., and the present application does not limit this.
  • a position mark is provided on the second surface, and the position mark can be provided on the second surface by printing, spraying, splicing or other possible methods.
  • the second surface faces the detection module 130, so that the detection module 130 can detect the baseband 110 and obtain the position mark on the baseband 110 as the detection result.
  • the position mark can be a number, a letter or a combination thereof arranged in sequence.
  • the position mark can be marked by using different punching methods, for example, punching can be performed in different shapes or depths, or punching can be performed in a dot matrix arranged as different bar codes or matrices.
  • the detection module may include a perspective sensor to identify the punching shapes corresponding to different position marks.
  • the electronic atomization device may also include a limit groove (not shown in the figure), which is arranged on the transmission route of the baseband 110, so that the baseband 110 can be in close contact with the transmission mechanism 140 and run on the transmission route.
  • the processing module 120 is used to determine the position information of the baseband 110 according to the detection result, and control the transmission mechanism 140 to drive the baseband 110 to move according to the position information.
  • the detection module 130 after the detection module 130 obtains the detection result, it sends the detection result to the processing module 120, and the processing module 120 can determine the location information of the baseband 110 according to the detection result.
  • the processing module 120 obtains the detection result of the detection module 130, determines the location information of the baseband 110 according to the detection result, and controls the working state of the electronic atomization device according to the location information.
  • the position identification of the baseband 110 is a number set in sequence. After the detection module 130 detects the number on the baseband 110, it sends it to the processing module 120, and the processing module 120 determines the position of the baseband 110 according to the number. It should be noted that the position information of the baseband 110 can indicate that the unit length of the substrate to be atomized on the baseband 110 corresponds to the position of the heating element 150, that is, the unit length of the substrate to be atomized is in a position that can be heated by the heating element 150. There is a possible situation that the position identification detected by the detection module 130 is incomplete, or the detected position identification is offset. The processing module 120 can also control the movement of the baseband 110 or control the working state of the heating element 150 according to the detection result to heat the atomized substrate or not to heat the atomized substrate.
  • the electronic atomization device also includes a heating element 150 , and the processing module 120 controls the transmission mechanism 140 to drive the baseband 110 to move to a position corresponding to the heating element, and controls the heating element 150 to atomize the atomization matrix on the baseband 110 .
  • the processing module 120 can control the transmission mechanism 140 to drive the baseband 110 to move or not move according to the position information, so that the heating element 150 atomizes the atomization matrix on the baseband 110.
  • the processing module 120 can control the transmission mechanism 140 to drive the baseband 110 to move or not move according to the position information, so that the heating element 150 atomizes the atomization matrix on the baseband 110.
  • the processing module 120 controls the transmission mechanism 140 to drive the baseband 110 to move a unit length, and controls the heating element 150 to heat and atomize the atomized matrix on the baseband 110; or the processing module 120 controls the heating element 150 to heat and atomize the atomized matrix on the baseband 110 after sensing the user's puffing action, and after the user puffs, controls the transmission mechanism 140 to drive the baseband 110 to move a unit length to facilitate the next puff.
  • the processing module 120 controls the transmission mechanism 140 to drive the baseband 110 to move a unit length to facilitate the next puff.
  • the number of atomizations corresponding to each unit length of the baseband 110 is defined as the unit atomization number.
  • the processing module 120 can also determine the number of user puffing actions sensed (equivalent to the number of times the baseband 110 of the unit length is atomized) during the atomization of each unit length of the baseband 110.
  • the heating element 150 After sensing the user's puffing action, when the number of times the baseband 110 is atomized is less than the unit atomization number, the heating element 150 is controlled to heat, thereby atomizing the atomized matrix on the baseband 110; when the number of times the baseband 110 is atomized is equal to the unit atomization number, the heating element 150 is controlled to heat, atomize the atomized matrix on the baseband 110, and the transmission mechanism 140 is controlled to drive the baseband 110 to move a unit length to facilitate the next puff.
  • the processing module 120 can also obtain the detection result of the microphone (airflow sensor) in the electronic atomization device, so as to determine the user's suction action, and then control the transmission mechanism 140 to rotate according to the user's suction action and the position information of the baseband 110, so as to drive the baseband 110 to move.
  • the microphone airflow sensor
  • the heating element 150 is controlled to work, so as to realize the atomization of the atomization matrix in the baseband 110; or when the user's suction action is detected by the airflow sensor, the transmission mechanism 140 is first controlled to drive the baseband 110 to move a certain distance, and the heating element 150 is controlled to work at the same time, so as to realize the atomization of the atomization matrix in the baseband 110.
  • the above-mentioned electronic atomization device includes: a baseband, a processing module, a detection module and a transmission mechanism; the baseband carries an atomization matrix, and a position mark is set on the side of the baseband facing the detection module; the detection module is used to detect the position mark on the baseband and obtain the detection result; the processing module is used to determine the position information of the baseband according to the detection result, and control the transmission mechanism to drive the baseband to move according to the position information.
  • the present application sets a position mark on the baseband, and then detects the position mark on the baseband through the detection module, accurately determines the position information of the baseband, and thus accurately controls the transmission mechanism to drive the baseband to move according to the position information of the baseband.
  • the position marker may include multiple colors set in sequence.
  • the detection module 130 includes a color sensor, which can detect the color on the baseband 110 and form a color detection result.
  • the processing module 120 is also used to determine the position information of the baseband 110 based on the color detection result.
  • multiple colors can be sequentially set on the baseband 110, for example, the seven colors of red, orange, yellow, green, cyan, blue, and purple are sequentially set on the baseband 110.
  • other colors can be used, such as the three primary colors (RGB).
  • the color sensor can detect the color on the baseband 110 to form a color detection result. Then the color sensor can actively send the color detection result to the processing module 120, or the processing module 120 actively obtains the color detection result detected by the color sensor, and the processing module 120 determines the position information of the baseband 110 according to the obtained color detection result.
  • the color detection result includes the detected color and the number of times each color is detected
  • the processing module is further used to determine the position information of the baseband according to the detected color and the number of times each color is detected.
  • the position markers are black and gray that are set at intervals.
  • the color sensor can detect the current color and count the detected colors. Specifically, when black is detected, the black is counted, and when gray is detected, the gray is counted. Then, when black and/or gray is detected, the detected color and the number corresponding to the color are sent to the processing module 120.
  • the unit length on the baseband 110 is equal to the length of the heating element 150, so that the atomized matrix per unit length on the baseband 110 is uniformly atomized, that is, the atomized matrix on the baseband 110 is relatively uniform. Uniform atomization can prevent the situation where local matrix is not atomized or local matrix is over-atomized, thereby further improving the user experience.
  • the color sensor may only detect the color on the baseband 110, and does not count the detected color.
  • the color sensor only sends the detected color to the processing module 120, or the processing module 120 actively obtains its detection result from the color sensor. After obtaining the detection result, the processing module 120 may count the detected color, so that the processing module 120 obtains the detected color and the number of times the color is detected.
  • the detection module 130 may also use other photoelectric sensors besides the color sensor. After detecting the light reflected by each color on the baseband 110, the photoelectric sensor obtains the corresponding current value, and sends the current value to the processing module 120. The processing module 120 identifies the detected color based on the received current value.
  • the count is reset to zero. Specifically, after the user triggers the button to replace the baseband 110 , the color sensor or processing module 120 resets the count of the baseband 110 to zero.
  • the processing module 120 may also store the length information corresponding to each color, and then upon receiving the detection result transmitted by the color sensor, determine the position information of the baseband 110 according to the color in the detection result and the corresponding length.
  • the position marker may also include a start position and an end position.
  • the start position and the end position may be colorless or in other colors.
  • a prompt may be given.
  • the display module (not shown) may display: The baseband has been used up, please replace the baseband.
  • the position mark includes a plurality of materials with different reflectivity (each different grayscale is made of materials with different reflectivity).
  • the baseband 110 is made of materials with different reflectivity, or materials with different reflectivity are pasted on the side of the baseband 110 facing the detection module.
  • the detection module 130 includes a photoelectric sensor, which is used to detect the light reflected by each material on the baseband 110, obtain the corresponding current value, and send the current value to the processing module 120.
  • the processing module 120 determines the position information of the baseband 110 according to the received current value.
  • the processing module 120 can also count the detection results, so as to accurately determine the position information of the baseband 110 according to the detected current value and the number of current current values.
  • the photoelectric sensor detects a certain current value, it can also count it.
  • the length of the material with different reflectivity per unit on the baseband 110 is equal to the length of the heating element 150, so that the processing module 120 moves the unit length each time, which is convenient for control.
  • the count is reset to zero. Specifically, after the user triggers the button to replace the baseband 110 , the photoelectric sensor or processing module 120 resets the count of the baseband 110 to zero.
  • the processing module 120 can also store the length information corresponding to the materials of each reflectivity, and then when receiving the detection result transmitted by the photoelectric sensor, determine the position information of the baseband 110 according to the current value in the detection result and the corresponding length.
  • the detection module 130 can use a camera or other module to capture the image of the baseband 110 and then send it to the processing module 120.
  • the processing module 120 recognizes the image and extracts the numbers, Chinese characters or letters in the image, thereby realizing the location information of the baseband 110.
  • the position marker may also include a start position and an end position.
  • the start position and the end position may be made of materials with a specific reflectivity. The materials with this reflectivity are only used at the start position and the end position.
  • a prompt may be given.
  • the display module (not shown) may display: The baseband has been used up. Please replace the baseband.
  • the embodiment of the present application also provides a control method for an electronic atomization device for realizing the electronic atomization device involved above.
  • the implementation scheme for solving the problem provided by the method is similar to the implementation scheme recorded in the above electronic atomization device, so the specific limitations in the control method embodiments of one or more electronic atomization devices provided below can refer to the limitations on electronic atomization devices above, and will not be repeated here.
  • the present application provides a control method for an electronic atomization device. Based on the above embodiment, the method is applied to a processing module in the electronic atomization device; the electronic atomization device further includes a baseband, a detection module and a transmission mechanism; the baseband carries an atomization matrix, and a position mark is provided on one side of the baseband facing the detection module. It can be understood that the position mark can be provided on a side of the baseband with the atomization matrix, or on a side of the baseband without the atomization matrix; the method includes:
  • Step 510 obtaining the detection result of the detection module, the detection result is obtained by detecting the position mark by the detection module;
  • the detection result can be obtained by receiving the detection result sent by the detection module;
  • Step 520 determining the position information of the baseband according to the detection result, and controlling the transmission mechanism to drive the baseband to move according to the position information.
  • the transmission mechanism drives the base belt to move so that the heating element in the electronic atomization device atomizes the atomization matrix on the base belt.
  • the control method of the electronic atomization device is to set a position mark on the baseband and then detect the position mark through the detection module.
  • the position mark on the baseband accurately determines the position information of the baseband, thereby accurately controlling the transmission mechanism to drive the baseband to move according to the position information of the baseband.
  • the detection result includes a color detection result for a color on the baseband, and determining the position information of the baseband according to the detection result includes:
  • the position information of the baseband is determined according to the color detection result.
  • the color detection result includes the detected color and the number of times the color is detected, and determining the position information of the baseband according to the color detection result includes:
  • the position information of the baseband is determined based on the detected color and the number of times the color is detected.
  • the position marker includes a plurality of materials with different reflectivities
  • the detection module includes a photoelectric sensor
  • the detection result includes a current value
  • the position information of the baseband is determined according to the detection result, including:
  • the position information of the baseband is determined according to the current value; the current value is obtained by the photoelectric sensor detecting the light reflected by each material on the baseband.
  • the embodiment of the present application also provides a control device for an electronic atomization device for implementing the control method of the electronic atomization device involved above.
  • the implementation scheme for solving the problem provided by the device is similar to the implementation scheme recorded in the control method of the electronic atomization device above, so the specific limitations in the control device embodiments of one or more electronic atomization devices provided below can refer to the limitations of the control method of the electronic atomization device above, and will not be repeated here.
  • a control device for an electronic atomization device is provided, and the device is applied to a processing module in the electronic atomization device;
  • the electronic atomization device further includes a baseband, a detection module and a transmission mechanism;
  • the baseband carries an atomization matrix, and a position mark is provided on one side of the baseband facing the detection module;
  • the device includes:
  • the acquisition module 610 is used to receive the detection result sent by the detection module, where the detection result is obtained by detecting the position identifier by the detection module;
  • the control module 620 is used to determine the position information of the baseband according to the detection result, and control the transmission mechanism to drive the baseband to move according to the position information, so that the heating element in the electronic atomization device atomizes the atomization matrix on the baseband.
  • the detection result includes a color detection result for the color on the baseband, and the control module 620 is further used to:
  • the position information of the baseband is determined according to the color detection result.
  • the color detection result includes the detected color and the number of times each color is detected.
  • the control module 620 is further used to:
  • the position information of the baseband is determined based on the detected color and the number of times the color is detected.
  • the position marker includes a plurality of materials with different reflectivities
  • the detection module includes a photoelectric sensor
  • the detection result includes a current value
  • the control module 620 is further used to:
  • the position information of the baseband is determined according to the current value; the current value is obtained by the photoelectric sensor detecting the light reflected by each material on the baseband.
  • Each module in the control device of the above-mentioned electronic atomization device can be implemented in whole or in part by software, hardware and a combination thereof.
  • the above-mentioned modules can be embedded in or independent of the processing module in the computer device in the form of hardware (that is, the control module 620 and the acquisition module 610 are embedded in the processing module 120), or can be stored in the memory of the computer device in the form of software, so that the processing module can call and execute the operations corresponding to the above modules.
  • a computer-readable storage medium on which a computer program is stored.
  • the steps of the embodiment of any of the above-mentioned control methods for electronic atomization devices are implemented.
  • any reference to the memory, database or other medium used in the embodiments provided in the present application can include at least one of non-volatile and volatile memory.
  • Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory, optical memory, high-density embedded non-volatile memory, resistive random access memory (ReRAM), magnetoresistive random access memory (MRAM), ferroelectric random access memory (FRAM), phase change memory (PCM), graphene memory, etc.
  • Volatile memory can include random access memory (RAM) or external cache memory, etc.
  • RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM).
  • SRAM static random access memory
  • DRAM dynamic random access memory
  • the database involved in each embodiment provided in this application may include at least one of a relational database and a non-relational database.
  • Non-relational databases may include distributed databases based on blockchains, etc., but are not limited to this.
  • the processing modules involved in each embodiment provided in this application may be general processing modules, central processing modules, graphics processing modules, digital signal processing modules, programmable logic devices, data processing logic devices based on quantum computing, etc., but are not limited to this.

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Abstract

本申请涉及一种电子雾化设备及其控制方法、装置。电子雾化设备包括:基带(110)、处理模块(120)、检测模块(130)、传动机构(140)和发热体(150);所述基带(110)携带有雾化基质,所述基带(110)上面向所述检测模块(130)的一侧设置有位置标识;所述检测模块(130),用于检测所述基带(110)上的位置标识,获得检测结果,并将所述检测结果发送至所述处理模块(120);所述处理模块(120),用于根据所述检测结果确定所述基带(110)的位置信息,并根据所述位置信息控制所述传动机构带动所述基带(110)移动,以使得所述发热体(150)对所述基带(110)上的雾化基质进行雾化。

Description

电子雾化设备及其控制方法、装置
相关申请
本申请要求2023年04月21日提交的,申请号为2023104377307,名称为“电子雾化设备及其控制方法、装置”的中国专利申请的优先权,在此将其全文引入作为参考。
技术领域
本申请涉及雾化设备领域,特别是涉及一种电子雾化设备及其控制方法、装置。
背景技术
传统技术中公开了一种电子雾化设备,该设备配置了一种传送带,传送带上设置叶片或者棒状的阵列,每个阵列单元上设置有雾化基质,能够提供一次或者多次抽吸,在使用时,电子雾化设备驱动传送带传输到加热装置中进行加热,从而实现雾化基质的雾化。
然而传统技术的电子雾化设备,在驱动传送带的过程中按照固定速度进行传输,无法识别传送带的位置,从而导致用户在抽吸较快时,可能无法抽吸到雾化的雾化基质;或者用户在抽吸较慢时,雾化基质被雾化并溢出到空气,造成浪费。
发明内容
第一方面,本申请提供了一种电子雾化设备,电子雾化设备包括:
基带、处理模块、检测模块和传动机构;
基带携带有雾化基质,基带上面向检测模块的一侧设置有位置标识;
检测模块,用于检测基带上的位置标识,获得检测结果;
处理模块,用于根据检测结果确定基带的位置信息,并根据位置信息控制传动机构带动基带移动。
在其中一个实施例中,位置标识包括依次设置的多种颜色,检测模块包括颜色传感器,颜色传感器,用于检测基带上的颜色并形成颜色检测结果;
处理模块,还用于根据颜色检测结果确定基带的位置信息。
在其中一个实施例中,颜色检测结果包括检测到的颜色和检测到各颜色的次数,处理模块,还用于根据检测到的颜色和检测到各颜色的次数确定基带的位置信息。
在其中一个实施例中,各颜色的单位长度相同。
在其中一个实施例中,位置标识包括多个不同反射率的材料,检测模块包括光电传感器,光电传感器,用于检测基带上各材料反射的光,获得对应的电流值,并将电流值发送给处理模块;
处理模块,还用于根据电流值确定基带的位置信息。
在其中一个实施例中,各反射率的材料的单位长度相同。
在其中一个实施例中,检测模块,包括:补光灯,补光灯,用于对基带上带有位置标识的一侧发射补光光线。
第二方面,本申请还提供了一种电子雾化设备的控制方法,方法应用于电子雾化设备中的处理模块;电子雾化设备还包括基带、检测模块和传动机构;基带携带有雾化基质,基带上面向检测模块的一侧设置有位置标识;方法包括:
获取检测模块的检测结果,检测结果由检测模块检测位置标识所获得;以及
根据检测结果确定基带的位置信息,并根据位置信息控制传动机构带动基带移动。
第三方面,本申请还提供了一种电子雾化设备的控制装置,装置应用于电子雾化设备中的处理模块;电子雾化设备还包括基带、检测模块和传动机构;基带携带有雾化基质,基带上面向检测模块的一侧设置有位置标识;装置包括:
获取模块,用于获取检测模块的检测结果,检测结果由检测模块检测位置标识所获得;以及
控制模块,用于根据检测结果确定基带的位置信息,并根据位置信息控制传动机构带动基带移动。
传动机构本申请的一个或多个实施例的细节在下面的附图和描述中提出。本申请的其它特征、目的和优点将从说明书、附图以及权利要求书变得明显。
附图说明
为了更清楚地说明本申请实施例或传统技术中的技术方案,下面将对实施例或传统技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据公开的附图获得其他的附图。
图1为本申请第一实施例中电子雾化设备的结构示意图;
图2为本申请一实施例中基带的结构示意图;
图3为本申请一实施例中基带面向检测模块一侧设置不同颜色的示意图;
图4为本申请一实施例中基带面向检测模块一侧设置不同反射率的材料的示意图;
图5为本申请一实施例中电子雾化设备的控制方法的流程示意图;以及
图6为本申请一实施例中电子雾化设备的控制装置的模块结构示意图。
具体实施方式
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本申请一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
在一个实施例中,提供了一种电子雾化设备,如图1所示,该电子雾化设备包括:
基带110、处理模块120、检测模块130和传动机构140。基带110携带有雾化基质,基带110上面向检测模块130的一侧设置有位置标识。检测模块130,用于检测基带110上的位置标识,获得检测结果,处理模块120根据检测结果控制传动机构140带动基带110移动。
作为一种实施例,如图2所示,基带110的一侧设置间隔设置的限位孔111,传动机构140上设置有传动齿轮,各齿轮在转动过程中交替穿过和移出限位孔,从而驱动基带110进行运行。作为另一种实施例,传动机构140还可以采用限位轮和传动轮组合的方式,即将基带110放置在限位轮和传动轮之间,限位轮和传动轮对基带110施加压力,从而在驱动过程中,通过传动轮和基带110的摩擦力驱动基带110进行运动。
同时,继续参阅图2,基带110具有两个面,为方便描述,将其中一个面定义为第一面,另一个面定义为第二面,限位孔111穿过第一面和第二面。第一面上装载有固态的雾化基质,该雾化基质可能是含尼古丁的雾化基质,例如烟草材料,也可能是其他雾化基质,例如药材等,本申请对此不做限制。第二面上设置有位置标识,该位置标识可以通过印刷、喷涂、拼接或其他可能的方式设置在第二面上。在使用过程中第二面面向检测模块130,从而使得检测模块130能够对基带110进行检测,获得基带110上的位置标识,作为检测结果。作为一种实施例,位置标识可以为按照顺序设置的数字、字母或者其组合。作为一种实施例,位置标识可以为采用不同的打孔方式进行标识,例如,可以采用不同形状或深度的方式进行打孔,也可以采用排列为不同的条形码或矩阵的点阵的方式进行打孔。相应的,检测模块可以包括透视传感器,以用于识别不同位置标识对应的打孔形状。
进一步的,为了使得基带110能够紧贴传动机构140,电子雾化设备还可以包括限位槽(图中未示出),限位槽设置在基带110的传动路线上,使得基带110能够紧贴传动机构140,并在传动路线上运行。
处理模块120,用于根据检测结果确定基带110的位置信息,并根据位置信息控制传动机构140带动基带110移动。
其中一种实施方式为,检测模块130获得检测结果后,将检测结果发送给处理模块120,处理模块120即可根据检测结果确定基带110的位置信息。另一种实施方法为:处理模块120获取检测模块130的检测结果,并根据检测结果确定基带110的位置信息并根据该位置信息控制电子雾化设备的工作状态。
举例来说,基带110的位置标识为按照顺序设置的数字,检测模块130检测到基带110上的数字后,发送给处理模块120,处理模块120根据数字确定基带110的位置。需要说明的是,基带110的位置信息可以表示基带110上的单位长度的待雾化基质对应于发热体150所在的位置,即该单位长度的待雾化基质处于可被发热体150加热的位置。存在一种可能的情况是,检测模块130检测到的位置标识不完整,或者检测到的位置标识有偏移,处理模块120亦可依据该检测结果控制基带110的移动或者控制发热体150的工作状态来对雾化基质加热或者不对雾化基质进行加热。
进一步的,该电子雾化设备还包括发热体150,处理模块120控制传动机构140带动基带110移动至发热体对应的位置,并控制发热体150对基带110上的雾化基质进行雾化。
具体的,处理模块120在确定基带110的位置信息后,根据该位置信息即可控制传动机构140带动基带110移动或者不移动,以使得发热体150对基带110上的雾化基质进行雾化。在获取基带110的位置信息后,结合发热体150对基带110的加热情况(是否被雾化、雾化程度等),在感受到用户抽吸动作后,即可确定是否控制传动机构140带动基带110移动和/或控制发热体150进行加热。示例性的,每个单位长度的基带110仅供用户抽吸一次,处理模块120在感受到用户抽吸动作后控制传动机构140带动基带110移动单位长度,并控制发热体150进行加热,雾化基带110上的雾化基质;或者处理模块120在感受到用户抽吸动作后控制发热体150进行加热,雾化基带110上的雾化基质,在用户抽吸后,控制传动机构140带动基带110移动单位长度,以方便下一次抽吸。示例性的,当每个单位长度的基带110可以供用户抽吸多次时,用户每次抽吸对应基带110则被雾化一次,为方便描述将每个单位长度的基带110对应的雾化次数定义为单位雾化次数,处理模块120还可以对每个单位长度的基带110进行雾化的过程中,确定感受到用户抽吸动作的数量(相当于该单位长度的基带110被雾化的次数),在感受到用户抽吸动作后,当基带110被雾化的次数少于单位雾化次数时,控制发热体150进行加热,从而雾化基带110上的雾化基质;当基带110被雾化的次数等于单位雾化次数时,控制发热体150进行加热,雾化基带110上的雾化基质,并控制传动机构140带动基带110移动单位长度,以方便下一次抽吸。
进一步的,为了更好的为用户提供抽吸体验,处理模块120还可以获取电子雾化设备中的咪头(气流传感器)的检测结果,从而确定用户的抽吸动作,然后根据用户的抽吸动作和基带110的位置信息控制传动机构140转动,带动基带110移动。例如,在通过气流传感器检测到用户抽吸动作时,控制发热体150工作,从而实现对基带110内的雾化基质进行雾化;或者在通过气流传感器检测到用户抽吸动作时,先控制传动机构140带动基带110移动一定距离,并同时控制发热体150工作,从而实现对基带110内的雾化基质进行雾化。
上述电子雾化设备包括:基带、处理模块、检测模块和传动机构;基带携带有雾化基质,基带上面向检测模块的一侧设置有位置标识;检测模块,用于检测基带上的位置标识,获得检测结果;处理模块,用于根据检测结果确定基带的位置信息,并根据位置信息控制传动机构带动基带移动。通过上述方式,本申请在基带上设置位置标识,然后通过检测模块检测基带上的位置标识,准确地确定基带的位置信息,从而准确根据基带的位置信息控制传动机构带动基带移动。
在一个实施例中,位置标识可以包括依次设置的多种颜色,对应的,检测模块130包括颜色传感器,颜色传感器可以检测基带110上的颜色并形成颜色检测结果,处理模块120还用于根据颜色检测结果确定基带110的位置信息。
作为一种实施例,可以在基带110上依次设置多种颜色,例如,采用赤橙黄绿青蓝紫这7种颜色,依次在在基带110上设置,具体实施中可以采用其他颜色,比如三原色(RGB三色)。颜色传感器可以检测到基带110上的颜色,形成颜色检测结果。然后颜色传感器可以主动将颜色检测结果发生给处理模块120,或者处理模块120主动从颜色传感器获取到其检测的颜色检测结果,处理模块120根据获得的颜色检测结果确定基带110的位置信息。
作为另一种实施例,颜色检测结果包括检测到的颜色和检测到各颜色的次数,处理模块,还用于根据检测到的颜色和检测到各颜色的次数确定基带的位置信息。
示例性的,如图3所示,位置标识为间隔设置的黑色和灰色,颜色传感器可以检测当前的颜色,并对检测到的颜色进行计数,具体的,检测到黑色时,并对该黑色进行计数,检测到灰色时,对灰色进行计数,然后将检测到黑色和/或灰色时,将检测到的颜色和该颜色对应的数量发送给处理模块120,处理模块120根据检测到的颜色和检测到颜色的次数即可确定基带110的位置信息。进一步的,为了使得结果的准确性,各颜色的单位长度相同,即L1=L2。如此,处理模块120即可根据检测的颜色和次数,实现准确确定基带110的位置信息。进一步的,基带110上的单位长度与发热体150的长度相等,从而使得基带110上单位长度的雾化基质获得一致性的雾化,即使得基带110上的雾化基质获得较为均 匀的雾化,防止出现局部基质未雾化或者局部基质雾化过度的情况,从而进一步提高用户的使用体验。
具体实施例中,颜色传感器可以仅检测基带110上的颜色,并不对检测到的颜色进行计数,颜色传感器仅将检测到的颜色发送给处理模块120,或者处理模块120主动从颜色传感器获取其的检测结果。在获得检测结果后,处理模块120可以对检测到的颜色进行计数,从而处理模块120获得检测到的颜色和检测到该颜色的次数。检测模块130也可以采用除颜色传感器之外的其他光电传感器,光电传感器器在检测到基带110上各颜色反射的光后,获得对应的电流值,将该电流值发送给处理模块120,处理模块120根据接收到的电流值识别出检测到的颜色。
需要说明的是,根据检测到某个颜色的次数识别出基带110使用完成后,则对计数进行归零,具体的,在用户触发更换基带110的按钮后,颜色传感器或者处理模块120对该基带110的计数进行归零。
作为另一种实施例,处理模块120中还可以存储各个颜色对应的长度信息,然后在接收到颜色传感器传送的检测结果时,根据检测结果中的颜色,以及对应的长度,确定基带110的位置信息。
进一步的,继续参阅图3,位置标识还可以包括开始位置和结束位置,开始位置和结束位置可以采用无色,或者其他颜色,处理模块120在接收到的检测结果为开始位置和结束位置时,可以进行提示,例如,在处理模块120在接收到的检测结果为结束位置时,通过显示模块(图未示)显示:基带已经使用完,请更换基带。
在一个实施例中,如图4所示,位置标识包括多个不同反射率的材料(每个不同灰度由不同的反射率的材料制成),具体的,采用不同反射率的材料制作基带110,或者在基带110面向检测模块的一侧粘贴不同反射率的材料,本实施例与上述采用颜色作为位置标识的实施例区别仅在于采用了不同反射率的材料作为位置标识,对应的,检测模块130包括光电传感器,该光电传感器,用于检测基带110上各材料反射的光,获得对应的电流值,并将电流值发送给处理模块120。处理模块120根据接收到的电流值确定基带110的位置信息。进一步的,为了使得结果的准确性,各颜色的单位长度相同,即L3=L4=L5=L6=L7=L8=L9=L10。同样的,当基带110上存在相同的反射率的材料时,则处理模块120还可以对检测的结果进行统计,从而根据检测到的电流值和当前电流值的次数,实现准确确定基带110的位置信息,当然光电传感器在检测到某个电流值时,还可以对其进行计数。进一步的,基带110上的单位不同反射率的材料的长度与发热体150的长度相等,从而使得处理模块120每次移动单位长度,方便控制。
需要说明的是,根据检测到某个电流值的次数识别出基带110使用完成后,则对计数进行归零,具体的,在用户触发更换基带110的按钮后,光电传感器或处理模块120对该基带110的计数进行归零。
作为另一种实施例,处理模块120中还可以存储各个反射率的材料对应的长度信息,然后在接收到光电传感器传送的检测结果时,根据检测结果中的电流值,以及对应的长度,确定基带110的位置信息。
在一个实施例中,当位置标识采用数字、汉字或者字母等其他形式时,则检测模块130可以采用摄像头等模块,通过采集基带110的图像,然后发送给处理模块120,由处理模块120对图像进行识别,提取图像中的数字、汉字或者字母等,从而实现基带110的位置信息。
进一步的,继续参阅图4,位置标识还可以包括开始位置和结束位置,开始位置和结束位置可以采用特定的反射率的材料,该反射率的材料仅在开始位置和结束位置,处理模块120识别为开始位置和结束位置时,可以进行提示,例如,在处理模块120识别为结束位置时,通过显示模块(图未示)显示:基带已经使用完,请更换基带。
基于同样的发明构思,本申请实施例还提供了一种用于实现上述所涉及的电子雾化设备的电子雾化设备的控制方法。该方法所提供的解决问题的实现方案与上述电子雾化设备中所记载的实现方案相似,故下面所提供的一个或多个电子雾化设备的控制方法实施例中的具体限定可以参见上文中对于电子雾化设备的限定,在此不再赘述。
在一个实施例中,如图5所示,本申请提供一种电子雾化设备的控制方法,基于上述实施例,方法应用于电子雾化设备中的处理模块;电子雾化设备还包括基带、检测模块和传动机构;基带携带有雾化基质,基带上面向检测模块的一侧设置有位置标识,可以理解的,该位置标识可以设置在基带具有雾化基质的一面,也可以设置在基带不具有雾化基质的一面;方法包括:
步骤510,获取检测模块的检测结果,检测结果由检测模块检测位置标识所获得;
其中,可以通过接收检测模块发送的检测结果实现检测结果的获取;
步骤520,根据检测结果确定基带的位置信息,并根据位置信息控制传动机构带动基带移动。
其中,传动机构带动基带移动,以使得电子雾化设备中的发热体对基带上的雾化基质进行雾化。
本实施中各步骤的执行过程可以参考上述实施例,此处不再赘述。
上述电子雾化设备的控制方法,通过在基带上设置位置标识,然后通过检测模块检测 基带上的位置标识,准确地确定基带的位置信息,从而准确根据基带的位置信息控制传动机构带动基带移动。
作为一种实施例,检测结果包括针对基带上的颜色的颜色检测结果,根据检测结果确定基带的位置信息,包括:
根据颜色检测结果确定基带的位置信息。
作为一种实施例,颜色检测结果包括检测到的颜色和检测到颜色的次数,根据颜色检测结果确定基带的位置信息,包括:
根据检测到的颜色和检测到颜色的次数确定基带的位置信息。
作为一种实施例,位置标识包括多个不同反射率的材料,检测模块包括光电传感器;检测结果包括电流值,根据检测结果确定基带的位置信息,包括:
根据电流值确定基带的位置信息;电流值由光电传感器检测基带上各材料反射的光所获得。
应该理解的是,虽然如上的各实施例所涉及的流程图中的各个步骤按照箭头的指示依次显示,但是这些步骤并不是必然按照箭头指示的顺序依次执行。除非本文中有明确的说明,这些步骤的执行并没有严格的顺序限制,这些步骤可以以其它的顺序执行。而且,如上的各实施例所涉及的流程图中的至少一部分步骤可以包括多个步骤或者多个阶段,这些步骤或者阶段并不必然是在同一时刻执行完成,而是可以在不同的时刻执行,这些步骤或者阶段的执行顺序也不必然是依次进行,而是可以与其它步骤或者其它步骤中的步骤或者阶段的至少一部分轮流或者交替地执行。
基于同样的发明构思,本申请实施例还提供了一种用于实现上述所涉及的电子雾化设备的控制方法的电子雾化设备的控制装置。该装置所提供的解决问题的实现方案与上述电子雾化设备的控制方法中所记载的实现方案相似,故下面所提供的一个或多个电子雾化设备的控制装置实施例中的具体限定可以参见上文中对于电子雾化设备的控制方法的限定,在此不再赘述。
在一个实施例中,如图6所示,提供了一种电子雾化设备的控制装置,装置应用于电子雾化设备中的处理模块;电子雾化设备还包括基带、检测模块和传动机构;基带携带有雾化基质,基带上面向检测模块的一侧设置有位置标识;装置包括:
获取模块610,用于接收检测模块发送的检测结果,检测结果由检测模块检测位置标识所获得;以及
控制模块620,用于根据检测结果确定基带的位置信息,并根据位置信息控制传动机构带动基带移动,以使得电子雾化设备中的发热体对基带上的雾化基质进行雾化。作为一 种实施例,检测结果包括针对基带上的颜色的颜色检测结果,控制模块620还用于:
根据颜色检测结果确定基带的位置信息。
作为一种实施例,颜色检测结果包括检测到的颜色和检测到的各颜色的次数,控制模块620还用于:
根据检测到的颜色和检测到颜色的次数确定基带的位置信息。
作为一种实施例,位置标识包括多个不同反射率的材料,检测模块包括光电传感器;检测结果包括电流值,控制模块620还用于:
根据电流值确定基带的位置信息;电流值由光电传感器检测基带上各材料反射的光所获得。
上述电子雾化设备的控制装置中的各个模块可全部或部分通过软件、硬件及其组合来实现。上述各模块可以硬件形式内嵌于或独立于计算机设备中的处理模块中(即控制模块620和获取模块610内嵌于处理模块120中),也可以以软件形式存储于计算机设备中的存储器中,以便于处理模块调用执行以上各个模块对应的操作。
在一个实施例中,提供了一种计算机可读存储介质,其上存储有计算机程序,计算机程序被处理器执行时实现上述任一电子雾化设备的控制方法所述实施例的步骤。
本领域普通技术人员可以理解实现上述实施例方法中的全部或部分流程,是可以通过计算机程序来指令相关的硬件来完成,所述的计算机程序可存储于一非易失性计算机可读取存储介质中,该计算机程序在执行时,可包括如上述各方法的实施例的流程。其中,本申请所提供的各实施例中所使用的对存储器、数据库或其它介质的任何引用,均可包括非易失性和易失性存储器中的至少一种。非易失性存储器可包括只读存储器(Read-Only Memory,ROM)、磁带、软盘、闪存、光存储器、高密度嵌入式非易失性存储器、阻变存储器(ReRAM)、磁变存储器(Magnetoresistive Random Access Memory,MRAM)、铁电存储器(Ferroelectric Random Access Memory,FRAM)、相变存储器(Phase Change Memory,PCM)、石墨烯存储器等。易失性存储器可包括随机存取存储器(Random Access Memory,RAM)或外部高速缓冲存储器等。作为说明而非局限,RAM可以是多种形式,比如静态随机存取存储器(Static Random Access Memory,SRAM)或动态随机存取存储器(Dynamic Random Access Memory,DRAM)等。本申请所提供的各实施例中所涉及的数据库可包括关系型数据库和非关系型数据库中至少一种。非关系型数据库可包括基于区块链的分布式数据库等,不限于此。本申请所提供的各实施例中所涉及的处理模块可为通用处理模块、中央处理模块、图形处理模块、数字信号处理模块、可编程逻辑器、基于量子计算的数据处理逻辑器等,不限于此。
以上所述实施例的各技术特征可以进行任意的组合,为使描述简洁,未对上述实施例中的各个技术特征所有可能的组合都进行描述,然而,只要这些技术特征的组合不存在矛盾,都应当认为是本说明书记载的范围。
以上所述实施例仅表达了本申请的几种实施方式,其描述较为具体和详细,但并不能因此而理解为对申请专利范围的限制。应当指出的是,对于本领域的普通技术人员来说,在不脱离本申请构思的前提下,还可以做出若干变形和改进,这些都属于本申请的保护范围。因此,本申请专利的保护范围应以所附权利要求为准。

Claims (12)

  1. 一种电子雾化设备,所述电子雾化设备包括:
    基带、处理模块、检测模块和传动机构;
    所述基带携带有雾化基质,所述基带上面向所述检测模块的一侧设置有位置标识;
    所述检测模块,用于检测所述基带上的所述位置标识,获得检测结果;
    所述处理模块,用于根据所述检测结果确定所述基带的位置信息,并根据所述位置信息控制所述传动机构带动所述基带移动。
  2. 根据权利要求1所述的设备,其中,所述位置标识包括依次设置的多种颜色,所述检测模块包括颜色传感器,所述颜色传感器用于检测所述基带上的颜色并形成颜色检测结果;
    所述处理模块,还用于根据所述颜色检测结果确定所述基带的所述位置信息。
  3. 根据权利要求2所述的设备,其中,所述颜色检测结果包括检测到的颜色和检测到各颜色的次数,所述处理模块,还用于根据检测到的颜色和检测到各颜色的次数确定所述基带的所述位置信息。
  4. 根据权利要求2或3所述的设备,其中,各所述颜色的单位长度相同。
  5. 根据权利要求1所述的设备,其中,所述位置标识包括多个不同反射率的材料,所述检测模块包括光电传感器,所述光电传感器,用于检测所述基带上各材料反射的光,获得对应的电流值;
    所述处理模块,还用于根据所述电流值确定所述基带的所述位置信息。
  6. 根据权利要求5所述的设备,其中,各反射率的所述材料的单位长度相同。
  7. 根据权利要求1所述的设备,其中,所述检测模块包括补光灯,所述补光灯用于对所述基带上带有位置标识的一侧发射补光光线。
  8. 一种电子雾化设备的控制方法,所述方法应用于所述电子雾化设备中的处理模块;所述电子雾化设备还包括基带、检测模块和传动机构;所述基带携带有雾化基质,所述基带上面向所述检测模块的一侧设置有位置标识;所述方法包括:
    获取所述检测模块的检测结果,所述检测结果由所述检测模块检测所述位置标识所获得;以及
    根据所述检测结果确定所述基带的位置信息,并根据所述位置信息控制所述传动机构带动所述基带移动。
  9. 根据权利要求8所述的方法,其中,所述检测结果包括针对所述基带上的颜色的 颜色检测结果,所述根据所述检测结果确定所述基带的位置信息,包括:
    根据所述颜色检测结果确定所述基带的所述位置信息。
  10. 根据权利要求9所述的方法,其中,所述颜色检测结果包括检测到的颜色和检测到各颜色的次数;所述根据所述颜色检测结果确定所述基带的所述位置信息,包括:
    根据检测到的颜色和检测到各颜色的次数确定所述基带的所述位置信息。
  11. 根据权利要求8所述的方法,其中,所述位置标识包括多个不同反射率的材料,所述检测模块包括光电传感器;所述检测结果包括电流值;
    所述根据所述检测结果确定所述基带的位置信息,包括:
    根据所述电流值确定所述基带的位置信息;所述电流值由所述光电传感器检测所述基带上各材料反射的光所获得。
  12. 一种电子雾化设备的控制装置,所述装置应用于所述电子雾化设备中的处理模块;所述电子雾化设备还包括基带、检测模块和传动机构;所述基带携带有雾化基质,所述基带上面向所述检测模块的一侧设置有位置标识;所述装置包括:
    获取模块,用于获取所述检测模块的检测结果,所述检测结果由所述检测模块检测所述位置标识所获得;以及
    控制模块,用于根据所述检测结果确定所述基带的位置信息,并根据所述位置信息控制所述传动机构带动所述基带移动。
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