The disclosure relates to the field of electronic cigarette preheating technology, more particularly to an electronic cigarette preheating control method.
The electronic cigarette usually heats and vaporizes liquid substances or paste-like substances, such as drugs and cigarette liquid, to generate aerosol or vapor for users to use. As people pay more attention to their health, they realize that tobacco may be harmful to health. Thus, the electronic cigarettes are widely used.
The electronic cigarette usually comprises cigarette liquid and a heating device for vaporizing the cigarette liquid. The cigarette liquid usually is stored inside the liquid storage chamber. During vaporization, the cigarette liquid stored inside the liquid storage chamber may be permeated or fed to the heating device.
Usually, when existing electronic cigarette is turned on to operate, no preheating control method is provided to automatically determine how to warm up the electronic cigarette. In particular when the electronic cigarette is used in cold winter or at cold areas such as higher latitudes or higher elevations, the viscosity of the cigarette liquid or tobacco tar or liquid substances containing drugs of the electronic cigarette is increased and the fluidity thereof is reduced at low temperature. In such a case, it is not easy for the cigarette liquid or drugs to be permeated or fed to the heating device for vaporization, such that the vapor can hardly be produced when the electronic cigarette initially starts. In this instance, it is desired to provide a preheating control method which preheats the cigarette liquid or liquid substances containing drugs by means of the heating device when the electronic cigarette is turned on, to facilitate production of the vapor.
An object of the disclosure is to overcome the above shortcomings and provide an electronic cigarette preheating control method.
The disclosure provides a technical solution as follow. According to an electronic cigarette preheating control method, setting preheating parameters and preheating routine in a microcontroller MCU arranged in the electronic cigarette, wherein the preheating parameters at least include preset temperature value, and preset heating time or preset target temperature value, and the preheating routine comprises: after turning on the electronic cigarette, activating preheating function when preheating button arranged on the electronic cigarette is pressed, detecting real-time temperature value by means of a temperature detection unit arranged in the electronic cigarette; by means of the microcontroller MCU, comparing the real-time temperature value with the preset temperature value, and determining whether preheating of the cigarette liquid stored inside the liquid storage chamber is required or not. If no, directly entering an available stand-by state of the electronic cigarette. If yes, controlling a heating device arranged in the electronic cigarette by means of the microcontroller MCU to perform preheating for the preset heating time or until the preset target temperature value is reached, and then ending the preheating and entering the available stand-by state of the electronic cigarette. In addition, deactivating preheating function when the preheating button is pressed, and then stopping the preheating routine by means of the microcontroller MCU such that the heating device is controlled to not preheat or stop preheating. Herein, the temperature detection unit may be configured to detect temperature by detecting a resistance value of a thermistor heating coil of the heating device to calculate the real-time temperature value.
Preferably, the preheating parameters may further include the preset stand-by time. The preheating routine may comprise, after entering the available stand-by state of the electronic cigarette, automatically shutting down the electronic cigarette if the electronic cigarette detects that the user does not take even a puff within the preset stand-by time.
Preferably, the preheating routine may further comprise, by means of the microcontroller MCU, recurrently detecting real-time temperature within the preset stand-by time and comparing the real-time temperature with the preset temperature value to determine whether the preheating is required again or not. If yes, controlling the heating device of the electronic cigarette by means of the microcontroller MCU to perform heating again.
Preferably, the preheating routine may further comprise, when it is determined by means of the microcontroller MCU that the preheating is required, controlling an LED indicator light arranged on the electronic cigarette by means of the microcontroller MCU, to emit light for warning. When the preheating is finished, controlling a vibrator arranged on the electronic cigarette by means of the microcontroller MCU, to provide vibration for warning.
Preferably, the preset heating time may be a constant value or set as a function which is inversely proportional to the real-time temperature value, that is, the lower the real-time temperature value, the longer the period of the preset heating time.
Preferably, the preheating parameters may further comprise preset preheating power, and the preset preheating power may be a constant value or set as a function which is inversely proportional to the real-time temperature value, that is, the lower the real-time temperature value, the greater the preset preheating power.
Preferably, the preset preheating power may be a constant value set to a range of 2 W˜6 W.
Preferably, the preset temperature value may be set to a range of −10° C.˜10° C., the preset heating time may be set to a range of 1˜5 seconds or the preset target temperature value may be set to a range of 10° C.˜80° C., and the preset stand-by time may be set to a range of 5˜10 minutes.
Preferably, the method may comprise steps of:
Preferably, the method may comprise steps of:
The electronic cigarette preheating control method according to the disclosure achieve parameter and routine setting and controlling by the microcontroller MCU. The automatic preheating control routine is provided. After detecting real-time temperature, it is capable of automatically determining whether preheating is required. The heating device of the electronic cigarette is used to perform heating and generate heat energy. As the heat energy is transferred to the liquid storage chamber of the electronic cigarette, the cigarette liquid or liquid substances containing drugs may be preheated such that the viscosity may be reduced and the fluidity may be increased. In this way, even when the electronic cigarette is used in cold winter or at cold areas such as higher latitudes or higher elevations, the cigarette liquid or tobacco tar or liquid substances containing drugs of the electronic cigarette may be preheated at such low temperature, facilitating the cigarette liquid or drugs to penetrate or flow to the heating device of the electronic cigarette for vaporization. Hence, the electronic cigarette may produce vapor even at low temperature.
In order to make purposes, technical solutions and advantages of the disclosure clearer, the disclosure will be further explained in detail with reference to drawings and embodiments described hereinafter. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
According to an electronic cigarette preheating control method of the disclosure, setting preheating parameters and a preheating routine in a microcontroller MCU arranged in the electronic cigarette, wherein the preheating parameters at least include preset temperature value, and preset heating time or preset target temperature value, and the preheating routine comprises: after turning on the electronic cigarette, activating preheating function when preheating button arranged on the electronic cigarette is pressed, detecting real-time temperature value by means of a temperature detection unit arranged in the electronic cigarette; by means of the microcontroller MCU, comparing the real-time temperature value with the preset temperature value, and determining whether preheating of the cigarette liquid stored inside the liquid storage chamber is required or not. If it is determined that the preheating is not required as the real-time temperature value is greater than the preset temperature value, directly entering an available stand-by state of the electronic cigarette. If it is determined that the preheating is required as the real-time temperature value is lower than the preset temperature value, controlling a heating device arranged in the electronic cigarette by means of the microcontroller MCU to perform preheating for the preset heating time or until the preset target temperature value is reached, and then ending the preheating and entering the available stand-by state of the electronic cigarette. In addition, deactivating preheating function when the preheating button is pressed, and then stopping the preheating routine by means of the microcontroller MCU such that the heating device is controlled to not preheat or stop preheating. During the above procedure, the preheating button may have a default setting of shutting down the preheating function when it is not operated. Among the preheating parameters in the method, either the preset heating time or the preset target temperature value, but not both at the same time, may be set to achieve function. Herein, the temperature detection unit may be configured to detect temperature by detecting a resistance value of a thermistor heating coil of the heating device to calculate the real-time temperature value.
The preheating button may be set in such a manner that the preheating function is activated or deactivated when the preheating button is continuously pressed different times. For example, the preheating function may be activated when the preheating button is pressed one time, and may be deactivated when the preheating button is continuously pressed two times.
The heating device is arranged inside the electronic cigarette, and the heating coil is arranged inside the heating device. When the heating coil is energized, it generates heat and heats the cigarette liquid of the electronic cigarette such that the cigarette liquid may be vaporized at high temperature to produce electronic cigarette vapor. The heating coil of the heating device according to the disclosure may be made of the thermistor having its resistance varied with a change in temperature. The higher the temperature, the higher the resistance, i.e., the change in resistance is proportional to the change in temperature. In this way, the temperature of the heating coil may be determined by detecting the resistance of the heating coil. Before the electronic cigarette is used, the temperature of the heating coil is close to the ambient temperature.
The cigarette liquid stored inside the liquid storage chamber according to the disclosure may be flowable cigarette liquid, or tobacco tar having poor fluidity or waxy solid formed by solidification of tobacco tar, or liquid substances containing drugs or waxy solid formed by solidification of drug liquid, etc.
Further, the preheating parameters may further include the preset stand-by time. The preheating routine may comprise, after entering the available stand-by state of the electronic cigarette, automatically shutting down the electronic cigarette if the electronic cigarette detects that the user does not take even a puff within the preset stand-by time. The preheating routine may further comprise, by means of the microcontroller MCU, recurrently detecting real-time temperature within the preset stand-by time and comparing the real-time temperature with the preset temperature value to determine whether the preheating is required again or not. If yes, controlling the heating device of the electronic cigarette by means of the microcontroller MCU to perform heating again.
The preheating routine may further comprise, when it is determined by means of the microcontroller MCU that the preheating is required, controlling the LED indicator light arranged on the electronic cigarette by means of the microcontroller MCU, to emit light for warning. When the preheating is finished, controlling the vibrator arranged on the electronic cigarette by means of the microcontroller MCU, to provide vibration for warning. In this way, it is convenient to inform the user of the operating state of the electronic cigarette in time.
The preset heating time may be a constant value or set as a function which is inversely proportional to the real-time temperature value, that is, the lower the real-time temperature value, the longer the period of the preset heating time. In such a case, the preset heating time may be automatically adjusted depending on the real-time ambient temperature of the electronic cigarette. Hence, the heating device may be controlled to have longer period of preheating time at lower real-time temperature, such that the cigarette liquid of the electronic cigarette stored inside the liquid storage chamber may have lower viscosity and higher fluidity, and the electronic cigarette may easily produce vapor.
The preheating parameters may further comprise preset preheating power, and the preset preheating power may be a constant value or set as a function which is inversely proportional to the real-time temperature value, that is, the lower the real-time temperature value, the greater the preset preheating power and the preheating efficiency.
The preset preheating power may be a constant value set to a range of 2 W˜6 W.
The preset temperature value may be set to a range of −10° C.˜10° C., the preset heating time may be set to a range of 1˜5 seconds or the preset target temperature value may be set to a range of 10° C.˜80° C., and the preset stand-by time may be set to a range of 5˜10 minutes.
Referring to
Referring to
MCU shown in
All the above are merely preferred embodiments of the disclosure. The present invention is intended to cover all modifications and equivalent arrangements those skilled in the art can make according to the technical essence of the present invention.
Number | Date | Country | Kind |
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201910562913.5 | Jun 2019 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/094081 | 6/3/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/259237 | 12/30/2020 | WO | A |
Number | Name | Date | Kind |
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11896060 | Yu | Feb 2024 | B2 |
20160227840 | Xiang | Aug 2016 | A1 |
20170042232 | Gorilovsky | Feb 2017 | A1 |
20200120988 | Qiu | Apr 2020 | A1 |
20200237014 | Lee | Jul 2020 | A1 |
20210015165 | He | Jan 2021 | A1 |
Number | Date | Country |
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107156915 | Sep 2017 | CN |
110200328 | Sep 2019 | CN |
110200329 | Sep 2019 | CN |
Entry |
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International Search Report of PCT Patent Application No. PCT/CN2020/094081 issued on Aug. 31, 2020. |
Number | Date | Country | |
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20220192275 A1 | Jun 2022 | US |