Aerosol generator

The aerosol generating device uses a carbonaceous heater with separate temperature measurement and power control to address rapid heating issues, ensuring efficient and accurate temperature regulation, improving user satisfaction.

JP2026511493APending Publication Date: 2026-04-14KT&G CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-04-24
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

Conventional aerosol generating devices using carbonaceous materials face issues with rapid temperature rise, leading to unstable power supply and inaccurate temperature measurement, and overheating, which affects heating efficiency and user satisfaction.

Method used

An aerosol generating device with a heater made of carbonaceous material, where the temperature is measured in a separate section from the heating section, using a control unit to determine the heater's resistance and apply controlled power to maintain accurate temperature measurement and minimize heating operation interference.

Benefits of technology

The device achieves faster heating, accurate temperature control, and improved heating efficiency by minimizing the impact of temperature measurement on the heating process, enhancing user satisfaction.

✦ Generated by Eureka AI based on patent content.

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Abstract

An aerosol generating apparatus is disclosed. The aerosol generating apparatus of this disclosure includes a body, a heater disposed in the body and containing a carbonaceous material, a power supply for supplying power to the heater, and a control unit for controlling the power supplied to the heater, wherein the control unit can determine the temperature of the heater based on the resistance value of the heater determined in a first section, and heat the heater by controlling the power supplied to the heater in a second section different from the first section.
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Description

Technical Field

[0001] The present disclosure relates to an aerosol generating device.

Background Art

[0002] An aerosol generating device is for extracting a predetermined component from a medium or a substance through an aerosol. The medium can contain substances with various components. The substances contained in the medium may be flavor substances with various components. For example, the substances contained in the medium can include a nicotine component, a herb component, and / or a coffee component, etc. In recent years, many studies have been conducted on such aerosol generating devices.

[0003] In an aerosol generating device, a heater heats an aerosol generating substance to generate an aerosol. Conventional metal heaters made of copper, constantan, etc. have a problem that a lot of time and power are consumed to heat up to the temperature for aerosol generation.

[0004] Carbonaceous substances such as carbon nanotubes or graphene have higher thermal conductivity compared to conventional common metals. When a heater made of a carbonaceous substance is applied to an aerosol generating device, only a time within several seconds may be required to heat up to the temperature for aerosol generation. However, in the case of a heater made of a carbonaceous substance, the temperature rising speed is fast, and the current or voltage applied to the heater may instantaneously become high, causing the power supply circuit to become unstable. Also, there is a problem that the heater overheats unnecessarily to a temperature higher than the required temperature.

[0005] Therefore, it is very important to accurately measure the temperature of the heater and control the heater. However, when the voltage applied to the heater fluctuates constantly or the temperature of the heater rises quickly, there is a problem that a conventional temperature sensor cannot accurately measure the temperature of the heater.

Summary of the Invention

Problems to be Solved by the Invention

[0006] This disclosure aims to resolve the aforementioned issues and other problems.

[0007] Another objective is to provide an aerosol generating device that utilizes a heater composed of carbonaceous material.

[0008] Another objective is to provide an aerosol generating device that measures the resistance of the heater in a section separated from the heating section of the heater and derives the heater temperature. [Means for solving the problem]

[0009] According to one aspect of the present disclosure for achieving the above-mentioned objectives, an aerosol generating apparatus is provided which includes a body, a heater disposed in the body and containing a carbonaceous material, a power supply for supplying power to the heater, and a control unit for controlling the power supplied to the heater, wherein the control unit determines the temperature of the heater based on the resistance value of the heater determined in a first section, and heats the heater by controlling the power supplied to the heater in a second section different from the first section. [Effects of the Invention]

[0010] According to at least one of the embodiments of this disclosure, by applying a heater made of a carbonaceous material, the time required to heat the heater can be reduced, thereby increasing user satisfaction.

[0011] According to at least one embodiment of the present disclosure, the temperature of the heater can be accurately measured by applying a voltage of a certain magnitude to the heater and measuring the resistance of the heater.

[0012] According to at least one embodiment of the present disclosure, by setting a short length for measuring the heater temperature, the influence of measuring the heater temperature on the heater's heating operation can be minimized.

[0013] According to at least one embodiment of the present disclosure, by setting a constant voltage applied to the heater to correspond to the voltage applied in the heater heating section, the influence of heater temperature measurement on the heater's heating operation can be minimized.

[0014] According to at least one embodiment of the present disclosure, by providing a heat diffusion section on the outside of the heater, heat generated locally by the heater can be diffused, reducing the amount of heat generated by the heater that escapes to the outside of the heater, and thereby increasing the heating efficiency of the aerosol generating device.

[0015] Any additional applicable scope of this disclosure will become apparent from the following detailed description. However, since various changes and modifications within the spirit and scope of this disclosure will be readily apparent to those skilled in the art, the detailed description and specific embodiments, such as preferred embodiments of this disclosure, should be understood to be given only as examples. [Brief explanation of the drawing]

[0016] [Figure 1] This figure shows an aerosol generating apparatus according to an embodiment of the present disclosure. [Figure 2] This figure shows an aerosol generating apparatus according to an embodiment of the present disclosure. [Figure 3] This figure shows an aerosol generating apparatus according to an embodiment of the present disclosure. [Figure 4] This figure shows an aerosol generating apparatus according to an embodiment of the present disclosure. [Figure 5] This is a front perspective view of the heater of an aerosol generating apparatus according to one embodiment of the present disclosure. [Figure 6] Figure 5 is a front perspective view showing the heater with each layer extended. [Figure 7] Figure 5 is a cross-sectional view of the heater with the heat diffusion section arranged on it. [Figure 8] Figure 5 is a cross-sectional view of the heater with the heat diffusion section arranged on it. [Figure 9] This is a circuit diagram of an aerosol generating apparatus according to one embodiment of the present disclosure. [Figure 10] A circuit diagram for measuring the heater resistance of an aerosol generating device according to an embodiment of the present disclosure. [Figure 11] A flowchart illustrating the heater temperature calculation and heater heating control of an aerosol generating device according to an embodiment of the present disclosure. [Figure 12] A graph illustrating the heating section and temperature section of an aerosol generating device according to an embodiment of the present disclosure. [Figure 13] A graph illustrating the heating section and temperature section of an aerosol generating device according to an embodiment of the present disclosure. [Figure 14] A graph illustrating the heating section and temperature section of an aerosol generating device according to an embodiment of the present disclosure. [Figure 15] A block diagram of an aerosol generating device according to an embodiment of the present disclosure.

Mode for Carrying Out the Invention

[0017] Hereinafter, embodiments disclosed in this specification will be described in detail with reference to the accompanying drawings. The same or similar components are given the same reference numerals even if they are illustrated in different drawings, and redundant descriptions thereof are omitted.

[0018] The suffixes "module" and "section" for the components used in the following description are used only for the ease of explanation in the specification. "Module" and "section" do not have different meanings or roles from each other.

[0019] Furthermore, in subsequent descriptions of the embodiments disclosed herein, detailed explanations of related known technologies will be omitted if they could obscure the essence of the embodiments disclosed herein. The accompanying drawings are provided to facilitate understanding of the embodiments disclosed herein, and the accompanying drawings do not limit the technical ideas disclosed herein. Therefore, the accompanying drawings should be construed as including all modifications, equivalents, and substitutions included in the ideas and scope of this disclosure.

[0020] Terms including ordinal numbers, such as "first," "second," etc., can be used to describe a variety of components, but it should be understood that the components are not limited by such terms. These terms are used solely for the purpose of distinguishing one component from another.

[0021] When we say that one component is "linked" to another, it is understandable that other components may exist in between. On the other hand, when we say that one component is "directly linked" to another, it is understandable that there are no other components in between.

[0022] A singular expression includes plural expressions unless explicitly indicated otherwise in the context.

[0023] Throughout this specification, the orientation of the aerosol generator and cartridge can be defined with respect to a Cartesian coordinate system. In the Cartesian coordinate system, the x-axis can be defined as the left-right direction of the aerosol generator and cartridge. Here, with respect to the origin, the direction toward +x may mean the right direction, and the direction toward -x may mean the left direction. The y-axis can be defined as the front-back direction of the aerosol generator and cartridge. Here, with respect to the origin, the direction toward +y may mean the rear direction, and the direction toward -y may mean the front direction. The z-axis can be defined as the up-down direction of the aerosol generator and cartridge. With respect to the origin, the direction toward +z may mean the up direction, and the direction toward -z may mean the down direction.

[0024] Figures 1 to 4 show an aerosol generating apparatus 1 according to an embodiment of the present disclosure.

[0025] Referring to Figures 1 and 2, the aerosol generator 1 may include at least one of a power supply 11, a control unit 12, a sensor 13, a heater 18, and a cartridge 19. At least one of the power supply 11, the control unit 12, the sensor 13, and the heater 18 may be located inside the body 10 of the aerosol generator. The body 10 may provide an upwardly opening space into which a stick S, which is an aerosol product, can be inserted. This upwardly opening space can be called an insertion space 43. The insertion space 43 may be formed by recessing into the body 10 to a predetermined depth so that at least a portion of the stick S can be inserted. The depth of the insertion space 43 may correspond to the length of the region in the stick S that contains the aerosol generating substance and / or medium. The lower end of the stick S is inserted into the body 10, and the upper end of the stick S may protrude outside the body 10. The user can inhale air by putting the exposed upper end of the stick S in their mouth.

[0026] The heater 18 can heat the stick S. The heater 18 can extend upward around the space into which the stick S is inserted. For example, the heater 18 may be in the form of a tube with a hollow interior. The heater 18 may be positioned around the insertion space 43. The heater 18 may be positioned to surround at least a portion of the insertion space 43. The heater 18 can heat the insertion space 43 or the stick S inserted into the insertion space 43. The heater 18 may include an electrical resistance heater and / or an induction heater.

[0027] For example, the heater 18 may be a resistive heater. For example, the heater 18 may include an electrically conductive track, and the heater 18 can be heated by an electric current flowing through the electrically conductive track. The heater 18 may be electrically connected to a power supply 11. The heater 18 can generate heat directly by receiving an electric current from the power supply 11.

[0028] For example, the aerosol generator 1 may include an induction coil surrounding a heater 18. The induction coil can cause the heater 18 to generate heat. The heater 18 is a susceptor, and the heater 18 can generate heat through a magnetic field generated by an AC current flowing through the induction coil. The magnetic field penetrates the heater 18 and can generate eddy currents within the heater 18. The current can generate heat in the heater 18.

[0029] On the other hand, a susceptor can be included inside the stick S, and the susceptor inside the stick S can be heated by the magnetic field generated by the AC current flowing through the induction coil.

[0030] The cartridge 19 may contain an aerosol-generating substance having one of the following states: liquid, solid, gaseous, or gel. The aerosol-generating substance may include a liquid composition. For example, the liquid composition may be a liquid containing a tobacco-containing substance that includes volatile tobacco flavor components, or a liquid containing a non-tobacco substance.

[0031] The cartridge 19 may be integrally formed with the body 10 or may be detachably attached to the body 10.

[0032] For example, referring to Figure 1, the cartridge 19 is integrally formed with the body 10 and can communicate with the insertion space 43 via the airflow channel CN.

[0033] For example, referring to Figure 2, a space is formed on one side of the body 10, and the cartridge 19 can be mounted on the body 10 by inserting at least a portion of the cartridge 19 into the space formed on one side of the body 10. The airflow channel CN ​​is defined by a portion of the cartridge 19 and / or a portion of the body 10, and the cartridge 19 can communicate with the insertion space 43 via the airflow channel CN.

[0034] The body 10 can be formed in such a way that outside air can flow into the body 10 when the cartridge 19 is inserted. Here, the outside air that flows into the body 10 can pass through the cartridge 19 and flow into the user's mouth.

[0035] The cartridge 19 may include a storage section C0 containing an aerosol-generating substance and / or a heater 24 for heating the aerosol-generating substance in the storage section C0. The storage section C0 can be described as a container. At least a portion of a liquid transport means impregnated (containing) the aerosol-generating substance may be located inside the storage section C0. Here, the liquid transport means may include a wick such as cotton fibers, ceramic fibers, glass fibers, or porous ceramic. The electrically conductive track of the heater 24 may be formed in the form of a coil structure winding around the liquid transport means or in a structure that contacts one side of the liquid transport means. The heater 24 can be described as a cartridge heater 24.

[0036] Cartridge 19 can generate an aerosol. An aerosol can be generated by heating the liquid transfer means with the cartridge heater 24. An aerosol can be generated by heating the stick S with the heater 18. As the aerosol generated by the cartridge heater 24 and heater 18 passes through the stick S, tobacco substances are added to the aerosol, and the aerosol with added tobacco substances can be inhaled into the user's mouth through one end of the stick S.

[0037] The aerosol generator 1 is equipped only with a cartridge heater 24, and the body 10 does not need to be equipped with a heater 18. In this configuration, the aerosol generated by the cartridge heater 24 can absorb tobacco substances as it passes through the stick S and be inhaled into the user's mouth.

[0038] The aerosol generator 1 may include an upper case (not shown). The upper case may be detachably attached to the body 10 so as to cover at least a portion of the cartridge 19 which is coupled to the body 10. The stick S may be inserted into the body 10 by passing through the upper case.

[0039] The power supply 11 can provide power to the components of the aerosol generator. The power supply 11 can be described as a battery. The power supply 11 can supply power to at least one of the control unit 12, sensor 13, cartridge heater 24, and heater 18. If the aerosol generator 1 includes an induction coil, the power supply 11 can supply power to the induction coil.

[0040] The control unit 12 can control the overall operation of the aerosol generator. The control unit 12 can be mounted on a printed circuit board. The control unit 12 can control the operation of at least one of the following: the power supply 11, the sensor 13, the heater 18, and the cartridge 19. The control unit 12 can control the operation of a display, motor, etc., installed in the aerosol generator. The control unit 12 can check the status of each component of the aerosol generator and determine whether the aerosol generator is in an operational state.

[0041] The control unit 12 can analyze the results sensed by the sensor 13 and control subsequent processing. For example, based on the results sensed by the sensor 13, the control unit 12 can control the power supplied to the cartridge heater 24 and / or heater 18 so that the operation of the cartridge heater 24 and / or heater 18 starts or stops. For example, based on the results sensed by the sensor 13, the control unit 12 can control the amount of power supplied to the cartridge heater 24 and / or heater 18 and the duration for which power is supplied so that the cartridge heater 24 and / or heater 18 are heated to a predetermined temperature or maintained at an appropriate temperature.

[0042] Sensor 13 may include at least one of the following: a temperature sensor, a puff sensor, an insertion sensor, a color sensor, a cartridge sensor, and an upper case sensor. For example, sensor 13 can sense at least one of the following: the temperature of the heater 18, the temperature of the power supply 11, and the internal and external temperatures of the body 10. For example, sensor 13 can sense the user's puff. For example, sensor 13 can sense whether the stick S has been inserted into the insertion space. For example, sensor 13 can sense whether a cartridge has been installed. For example, sensor 13 can sense whether the upper case has been installed.

[0043] Referring to Figures 3 and 4, an aerosol generator 1 according to one embodiment may include at least one of a power supply 11, a control unit 12, a sensor 13, and a heater 18. At least one of the power supply 11, control unit 12, sensor 13, and heater 18 may be located inside the body 10 of the aerosol generator. Detailed explanation of the same configuration as the aerosol generator 1 in Figures 1 and 2 is omitted.

[0044] The heater 18 can heat the stick S. The heater 18 can extend upward around the space into which the stick S is inserted. For example, the heater 18 may be in the form of a tube with a hollow interior. The heater 18 may be positioned around the insertion space 43. The heater 18 may be positioned to surround at least a portion of the insertion space 43. The heater 18 can heat the insertion space 43 or the stick S inserted into the insertion space 43. The heater 18 may include an electrical resistance heater and / or an induction heater.

[0045] For example, referring to Figure 3, the heater 18 may be a resistive heater. For example, the heater 18 includes an electrically conductive track, and the heater 18 can be heated by current flowing through the electrically conductive track. The heater 18 can be electrically connected to a power supply 11. The heater 18 can generate heat directly by receiving current from the power supply 11.

[0046] For example, referring to Figure 4, the aerosol generator may include an induction coil 181 surrounding a heater 18. The induction coil 181 can cause the heater 18 to heat up. The heater 18 is a susceptor, and it can heat up due to the magnetic field generated by the AC current flowing through the induction coil 181. The magnetic field penetrates the heater 18 and can generate eddy currents within the heater 18. The current can generate heat in the heater 18.

[0047] On the other hand, a susceptor can be included inside the stick S, and the susceptor inside the stick S can be heated by the magnetic field generated by the AC current flowing through the induction coil 181.

[0048] The power supply 11 can supply power to at least one of the control unit 12, the sensor 13, and the heater 18. If the aerosol generator 1 includes an induction coil 181, the power supply 11 can supply power to the induction coil 181.

[0049] The control unit 12 can control the operation of at least one of the power supply 11 and the sensor 13. The control unit 12 can analyze the results sensed by the sensor 13 and control subsequent processing. For example, based on the results sensed by the sensor 13, the control unit 12 can control the power supplied to the heater 18 so that the heater 18 starts or stops operating. For example, based on the results sensed by the sensor 13, the control unit 12 can control the amount of power supplied to the heater 18 and the power supply time so that the heater 18 is heated to a predetermined temperature or maintains an appropriate temperature.

[0050] Sensor 13 may include at least one of a temperature sensor, a puff sensor, and an insertion sensing sensor. For example, sensor 13 can sense at least one of the temperature of the heater 18, the temperature of the power supply 11, and the internal and external temperatures of the body 10. For example, sensor 13 can sense the user's puff. For example, sensor 13 can sense whether the stick S has been inserted into the insertion space 43.

[0051] Figure 5 is a front perspective view of the heater of an aerosol generating apparatus according to one embodiment of the present disclosure, Figure 6 is a front perspective view of the heater in Figure 5 with each layer spread out, and Figures 7 and 8 are cross-sectional views of the heater in Figure 5 with a heat diffusion section arranged therein.

[0052] Referring to Figures 5 and 6, the heater 18 can be long. The heater 18 may be in the shape of a tube or cylinder with a hollow interior. The heater 18 may be located inside the body 10 of the aerosol generator 1. The heater 18 may surround the insertion space 43 (see Figures 1 to 4) of the body 10. The heater 18 can heat the insertion space 43 or a stick S inserted into the insertion space 43. The heater 18 may include two terminals 182, 183 that are electrically connected to the heater drive circuit 200 (see Figure 9).

[0053] The heater 18 may contain a carbonaceous material. The carbonaceous material may include at least one of graphene and carbon nanotubes (CNTs). Graphene and carbon nanotubes have high thermal and electrical conductivity. Therefore, the heater 18 containing graphene and / or carbon nanotubes has high heating efficiency, and the temperature of the heater 18 can rise quickly. In addition, because graphene and carbon nanotubes are lightweight and highly flexible, the heater 18 can be made lighter, and the heater 18 is easy to manufacture.

[0054] The heater 18 may include a carbon layer 184 containing a carbonaceous material, and a first film 186 and a second film 187 that are in contact with both sides of the carbon layer 184, respectively. The carbon layer can be described as a graphene layer or a carbon nanolayer.

[0055] The carbon layer 184 can be manufactured using at least one of the following methods: chemical vapor deposition, arc discharge, laser deposition, vapor phase growth, and flame synthesis.

[0056] An electrically conductive pattern 185 may be formed in the carbon layer 184. The electrically conductive pattern 185 may include two patterns spaced apart from each other. One end of the first pattern 1851 of the electrically conductive pattern 185 may be connected to one end 182 of the heater 18. One end of the heater 18 can be called the first terminal. The first pattern 1851 may include a first base pattern 1851a that is connected to the first terminal 182 and extends elongated in one direction. The first pattern 1851 may include a plurality of first extension patterns 1851b that extend from the first base pattern 1851a in a direction intersecting one direction and are spaced apart from each other.

[0057] The second pattern 1852 of the electrically conductive pattern 185 may be connected to the other end 183 of the heater 18. The other end of the heater 18 can be called the second terminal. The second pattern 1852 may include a second base pattern 1852a that is connected to the second terminal 183 and extends elongated in one direction. The second pattern 1852 may include a plurality of second extension patterns 1852b that extend from the second base pattern 1852a in a direction intersecting one direction and are spaced apart from each other.

[0058] Multiple first extension patterns 1851b and multiple second extension patterns 1852b can be arranged alternately apart from each other in one direction. The spacing between the multiple first extension patterns 1851b and multiple second extension patterns 1852b in one direction can be set to be the same. However, the shape and arrangement of the multiple first extension patterns 1851b and multiple second extension patterns 1852b are not limited thereto, and a variety of shapes and arrangements in which the first extension patterns 1851b and multiple second extension patterns 1852b are separated from each other can be applied.

[0059] When a voltage is applied to the first pattern 1851 and the second pattern 1852, the carbon layer 184 can generate heat in proportion to the voltage difference applied to the first pattern 1851 and the second pattern 1852.

[0060] The first film 186 may be positioned to contact one surface of the carbon layer 184, and the second film 187 may be positioned to contact the other surface of the carbon layer 184. The first film 186, the carbon layer 184, and the second film 187 may be laminated in sequence. The first film 186 and the second film 187 can isolate the carbon layer 184 from the outside and protect the carbon layer 184.

[0061] The first film 186 and the second film 187 may be polyimide films. However, the types of the first film 186 and the second film 187 are not limited thereto.

[0062] Referring to Figures 7 and 8, the heat diffusion section 188 may be positioned outside the heater 18. The heat diffusion section 188 can surround at least a portion of the tubular or cylindrical heater 18. The heat diffusion section 188 can be in contact with at least a portion of the heater 18.

[0063] For example, referring to Figure 7, the heat diffusion section 188 can surround the outside of the heater 18. The heat diffusion section 188 may be a hollow graphite sheet. The graphite sheet can surround the outside of the heater 18. The graphite sheet can be positioned in contact with the second film 187 of the heater 18 and can surround the outside of the second film 187.

[0064] For example, referring to Figure 8, the heat diffusion section 188 can surround at least a portion of the outside of the heater 18. Multiple heat diffusion sections 188 may be provided. The heat diffusion sections 188 can be spaced apart from each other along the periphery of the heater 18 and can each be in contact with at least a portion of the outside of the heater 18. The heat diffusion section 188 may be a vacuum tube or a heat pipe. A vacuum tube may have an internal space that is sealed to the outside. The internal space of a vacuum tube may be in a vacuum state. A heat pipe may have an internal space that is sealed to the outside. The internal space of a heat pipe may contain a material that can transfer heat.

[0065] The heat diffusion section 188 is configured to contact and surround the cylindrical heater 18, thereby uniformly diffusing the heat generated by the heater 18. Furthermore, it reduces the amount of heat generated by the heater 18 that dissipates to the outside of the heater 18, and allows the heat generated by the heater 18 to dissipate to the inside of the heater 18.

[0066] Therefore, the heating efficiency of the heater 18 can be increased.

[0067] Figure 9 is a circuit diagram of an aerosol generating apparatus according to one embodiment of the present disclosure.

[0068] Referring to Figure 9, the aerosol generator 1 may include at least one of the following: a power supply 11, a control unit 12, a heater 18, a resistance measuring sensor 131, and a heater drive circuit 200.

[0069] The heater 18 may be located in the body 10. The heater 18 receives power from the power supply 11 and can heat the insertion space 43 and / or the stick S inserted into the insertion space 43. The heater 18 may have the features of the heater 18 described earlier in Figures 5 to 7.

[0070] The resistance sensor 131 can sense the current and / or voltage flowing through the heater 18. The resistance sensor 131 may be positioned adjacent to the heater 18. The resistance sensor 131 may be electrically connected to the heater 18. The resistance sensor 131 may be connected in series with the heater 18. The operation of the resistance sensor 131 will be described in detail later with reference to Figure 10.

[0071] The power supply 11 can supply power to the heater 18. The power supply 11 can supply power to the heater 18 under the control of the control unit 12.

[0072] The heater drive circuit 200 can be electrically connected to the heater 18, the power supply 11, and the control unit 12. The heater drive circuit 200 can supply power output from the power supply 11 to the heater 18 under the control of the control unit 12.

[0073] The heater drive circuit 200 may include a first circuit 210, a second circuit 220, and a switching circuit 230. The heater drive circuit 200 can apply voltage and / or current to the terminals 182 and 183 of the heater 18 via the first circuit 210, the second circuit 220, and the switching circuit 230.

[0074] The first circuit 210 can convert the voltage output from the power supply 11. For example, the first circuit 210 can convert the voltage output from the power supply 11. For example, the first circuit 210 can be implemented as a buck converter, boost converter, or buck-boost converter that converts the voltage output from the power supply 11. The first circuit can be called a converter or power conversion circuit. The first circuit 210 can output a constant voltage. The first circuit 210 can convert the voltage output from the power supply 11 and output a voltage of a certain magnitude. For example, the magnitude of the voltage output from the first circuit 210 may be the same as or lower than the magnitude of the voltage output from the power supply 11.

[0075] The second circuit 220 can output a pulsed voltage under the control of the control unit 12. The second circuit can be described as a PWM circuit or a power supply circuit. The control unit 12 can control the power supplied to the heater 18 using pulse width modulation (PWM). The control unit 12 can control the second circuit 220 to supply pulses having a predetermined frequency and duty cycle to the heater 18 from the second circuit 220. The control unit 12 can control the power supplied to the heater 18 by adjusting the pulse frequency and / or duty cycle via the second circuit 220.

[0076] The switching circuit 230 can be electrically connected to the first circuit 210, the second circuit 220, and the heater 18. The switching circuit 230 can be electrically connected to the heater 18 by control of the control unit 12 to either the first circuit 210 or the second circuit 220. The switching circuit 230 can supply the heater 18 with the voltage and / or current output from either the first circuit 210 or the second circuit 220.

[0077] A voltage output from the first circuit 210 may be applied to one end of the switching circuit 230. In this case, the first voltage Va applied to both ends 182 and 183 of the heater 18 via the switching circuit 230 may be a voltage of a magnitude corresponding to the voltage output from the first circuit 210.

[0078] A voltage output from the second circuit 220 may be applied to one end of the switching circuit 230. In this case, pulses output from the second circuit 220 may be applied to both ends 182 and 183 of the heater 18 via the switching circuit 230.

[0079] The control unit 12 can derive or determine the temperature of the heater 18. The control unit 12 can derive or determine the temperature of the heater 18 in response to a signal received from the resistance measuring sensor 131. Based on the derived or determined temperature of the heater 18, the control unit 12 can determine the power to be supplied to the heater 18. The control unit 12 can control the power supply 11 to supply the determined power to the heater 18.

[0080] Figure 10 is a circuit diagram for measuring the heater resistance of an aerosol generating apparatus according to one embodiment of the present disclosure.

[0081] Referring to Figure 10, the resistance measuring sensor 131 may be configured as a sensor that detects the resistance value of the heater 18. The resistance measuring sensor can be considered a temperature sensor. The resistance measuring sensor 131 can output a signal corresponding to the resistance value of the heater 18.

[0082] The resistance measuring sensor 131 can be electrically connected to the heater 18. The heater drive circuit 200 can supply power to the heater 18 using the power stored in the power supply 11. The power supplied from the heater drive circuit 200 to the heater 18 can be adjusted by the control of the control unit 12.

[0083] The same level of current can flow through the heater 18 and the resistance measuring sensor 131. The resistance value Rs of the shunt resistor provided in the resistance measuring sensor 131 may be a value that does not change with temperature.

[0084] The control unit 12 can determine the voltage Vc applied to the heater 18 and the resistance measuring sensor 131 based on the power supplied to the heater 18 from the heater drive circuit 200, the current flowing through the heater 18 and the resistance measuring sensor 131, etc. The control unit 12 can calculate or determine the voltage Vd applied to the shunt resistor based on the current flowing through the shunt resistor of the resistance measuring sensor 131 and the resistance value Rs of the shunt resistor. The control unit 12 can calculate or determine the difference (Vc-Vd) between the voltage Vc applied to the heater 18 and the resistance measuring sensor 131 and the voltage Vd applied to the shunt resistor as the voltage applied to the heater 18. The control unit 12 can calculate or determine the resistance value Rh of the heater 18 based on the voltage applied to the heater 18 and the current flowing through the heater 18.

[0085] The heater 18 is made of a material that has a temperature coefficient of resistance, and the resistance value Rh of the heater 18 can change with temperature. The control unit 12 can calculate or determine the temperature coefficient of resistance of the heater 18, the resistance value Rh of the heater 18, and the temperature of the heater 18 corresponding to the resistance value of the heater 18 at a reference temperature, based on a calculation formula for calculating or determining the temperature of the heater 18. Here, the calculation formula for calculating or determining the temperature of the heater 18 may correspond to the following mathematical formula 1.

[0086]

number

[0087] In the above mathematical formula 1, TCR may be the temperature coefficient of resistance of the heater 18, T1 may be the temperature of the heater 18, R1 may be the resistance of the heater 18, T0 may be the reference temperature, and R0 may be the resistance of the heater 18 at the reference temperature. Here, T0 may be 25°C and R0 may be the resistance of the heater 18 at 25°C.

[0088] The resistance value of the heater 18 at the reference temperature may differ for each aerosol generator 1. Taking this into consideration, the memory 17 of the aerosol generator 1 (see Figure 15) can store data such as the resistance value of the heater 18. Based on the data stored in the memory 17, the control unit 12 can determine the resistance value (R0) of the heater 18 at the reference temperature (T0) used in the calculation formula for calculating or determining the temperature of the heater 18.

[0089] On the other hand, although the drawings illustrate a resistance measuring sensor 131 connected in series with the heater 18 as an example, the present invention is not limited to this, and the resistance measuring sensor 131 can be realized by a voltage sensor that senses the voltage applied to the heater 18.

[0090] Figure 11 is a flowchart illustrating the heater temperature calculation and heater heating control of an aerosol generating apparatus according to one embodiment of the present disclosure, and Figures 12 to 14 are graphs illustrating the control of the first and second sections of the aerosol generating apparatus according to one embodiment of the present disclosure.

[0091] Referring to Figure 11 together with Figure 12, the control unit 12 can control the heater 18. The operation of the control unit 12 to control the heater 18 can include temperature measurement operation and heating control operation. Temperature measurement operation can be performed in a first section P1 (see Figure 12), and heating control operation can be performed in a second section P2 (see Figure 12) which is different from the first section P1. The control unit 12 can derive or determine the temperature of the heater 18 in the first section P1. Based on the temperature of the heater 18 derived or determined in the first section P1, the control unit 12 can control the power supplied to the heater 18 in the second section P2. The first section P1 and the second section P2 may be sections that are linked to each other in a time series. The first section P1 and the second section P2 may be repeated alternately.

[0092] In the first section P1, the control unit 12 controls at least one of the power supply 11, the first circuit 210, and the switching circuit 230 to apply a first voltage Va of a constant magnitude (see Figure 12) to the heater 18 (S1110).

[0093] In the first section P1, the control unit 12 controls the switching circuit 230 to electrically connect the output terminal of the first circuit 210 to both ends 182 and 183 of the heater 18. In the first section P1, the control unit 12 controls the first circuit 210 to apply a voltage of a constant magnitude output from the first circuit 210 to both ends 182 and 183 of the heater 18. Here, a voltage of a constant magnitude may mean a voltage whose magnitude does not change throughout the entire first section P1.

[0094] The first voltage Va may correspond to the output voltage of the power supply 11. The first voltage Va may be the same as or lower than the output voltage of the power supply 11. For example, the first voltage Va may be 3.2V or more and 4.3V or less. Preferably, the first voltage Va may be about 3.8V. The control unit 12 can control the first circuit 210 so that even if the output voltage of the power supply 11 changes, the first circuit 210 outputs a first voltage Va of a constant magnitude.

[0095] The control unit 12 can calculate or determine the resistance value of the heater 18 in response to a signal received from the resistance measuring sensor 131 while a first voltage Va of a constant magnitude is applied to the heater 18, and derive or determine the temperature of the heater 18 based on this (S1120).

[0096] The control unit 12 can determine the power supplied to the heater 18 in the second section P22 following the first section P1 based on the temperature of the heater 18 derived or determined in the first section P1 (S1130). The control unit 12 can compare the temperature of the heater 18 derived or determined in the first section P1 with the target temperature and determine the power supplied to the heater 18 in the second section P22 following the first section P22 based on the difference between the temperature of the heater 18 and the target temperature. For example, if the difference between the temperature of the heater 18 and the target temperature is greater than a reference value, the control unit 12 can determine the power supplied to the heater in the second section P22 following the first section P1 to be greater than the power supplied to the heater in the second section P21 following the first section P1. For example, if the difference between the temperature of the heater 18 and the target temperature is the same as a reference value, the control unit 12 can determine the power supplied to the heater in the second section P21 following the first section P1 to be the same as the power supplied to the heater in the second section P22 following the first section P1. For example, if the difference between the temperature of the heater 18 and the target temperature is smaller than a reference value, the control unit 12 can determine the power supplied to the heater in the subsequent second section P22 to be less than the power supplied to the heater in the second section P21 prior to the current first section P1.

[0097] The control unit 12 can supply power to the heater 18 in the subsequent second section P22 based on the determined power (S1140). The control unit 12 can determine the duty cycle or duty cycle for PWM control in the subsequent second section P22 based on the determined power. The control unit 12 can apply the second voltage Vb (see Figure 12) to the heater 18 by controlling at least one of the power supply 11, the second circuit 220, and the switching circuit 230. The control unit 12 can electrically connect the output terminal of the second circuit 220 to both ends 182 and 183 of the heater 18 by controlling the switching circuit 230. The control unit 12 can supply pulses having a predetermined frequency and duty cycle to the heater 18 by controlling the second circuit 220 in the subsequent second section P22.

[0098] Based on the temperature of the heater 18 derived or determined in the first section P1, the control unit 12 can repeatedly perform the operation of supplying power to the heater 18 in the subsequent second section P2.

[0099] In the second section P2, the voltage Vb applied to the heater 18 changes to a pulsed form, so when measuring the temperature of the heater 18 in the second section P2, the accuracy of the measured temperature may decrease. An aerosol generator 1 according to one embodiment of the present disclosure can improve the accuracy of the measured heater temperature by measuring the temperature of the heater 18 in a section P1 different from the second section P2 in which the heater is heated, and by applying a constant voltage of a certain magnitude to the heater 18 and measuring the temperature of the heater 18.

[0100] The length of the second section P2 can be set to be longer than the length of the first section P1. For example, the ratio of the length of the second section P2 to the length of the first section P1 may be greater than 50:1. Preferably, the ratio of the length of the second section P2 to the length of the first section P1 may be 99:1. For example, the length of the second section P2 can be set to 990ms and the length of the first section P1 to 10ms.

[0101] The power applied in the first section P1 for deriving or determining the temperature of the heater 18 may be different from the power applied in the second section P2 for heating the heater 18. Therefore, by setting the length of the first section P1 to be shorter than the length of the second section P2, the influence of the temperature measurement section of the heater 18 on heating the heater 18 can be reduced.

[0102] Referring to Figure 13, the control unit 12 can determine the magnitude of the first voltage Va before applying the first voltage Va to the heater 18. The control unit 12 can determine the first voltage Va1 based on the power supplied to the heater 18 in the second section P21 prior to the first section P1.

[0103] The control unit 12 can calculate or determine the average voltage Vavg1 applied to the heater 18 in the second section P21 prior to the first section P1. The control unit 12 can calculate or determine the average voltage Vavg1 applied to the heater 18 in the previous second section P21 based on the frequency and / or duty cycle of the pulses applied to the heater 18 in the previous second section P21.

[0104] The control unit 12 can determine a first voltage Va1 based on the calculated or determined average voltage Vavg1. For example, the control unit 12 can determine the first voltage Va1 to be a voltage that is the same as or similar in magnitude to the calculated or determined average voltage Vavg1.

[0105] In the first section P1, the control unit 12 can apply the determined first voltage Va1 to the heater 18 and calculate or determine the temperature of the heater 18. Based on the temperature of the heater 18, the control unit 12 can determine the power to be supplied to the heater 18 in the subsequent second section P22 and supply power to the heater 18.

[0106] Similarly, the control unit 12 can calculate or determine the average voltage Vavg2 applied to the heater 18 in the subsequent second section P22, and based on this, determine the magnitude of the first voltage Va2 applied in the previous first section P1. The control unit 12 can apply the first voltage Va2 to the heater 18 in the previous first section P1 and calculate or determine the temperature of the heater 18. The control unit 12 determines the power supplied to the heater 18, and the details of power supply overlap with the explanation given earlier in Figure 12, so a detailed explanation is omitted.

[0107] By determining that the first voltage Va applied in the first section P1 corresponds to the average voltage Vavg applied in the previous second section P2, the influence of the temperature measurement section of the heater 18 on the heating of the heater 18 can be reduced.

[0108] Referring to Figure 14, the heater drive circuit 200 of the aerosol generating apparatus 1 according to other embodiments of the present disclosure includes a second circuit 220, and may not include the first circuit 210 and the switching circuit 230.

[0109] The control unit 12 can control the second circuit 220 in the first section P1 to apply a first voltage Va to both ends 182 and 183 of the heater 18. The control unit 12 can control the duty cycle of the pulses output from the second circuit 220 to be 100%. In other words, the control unit 12 can control the second circuit 220 to output a voltage of a constant magnitude during the first section P1.

[0110] In the first section P1, the control unit 12 can apply a first voltage Va to the heater 18 and calculate or determine the temperature of the heater 18. The control unit 12 determines the power supplied to the heater 18, and the details of how the power is supplied overlap with what was explained earlier in Figure 12, so a detailed explanation is omitted.

[0111] In this way, the heater drive circuit can be simplified by adjusting the duty cycle of the pulse output to the second circuit 220 and applying a constant voltage during the first section P1.

[0112] Figure 15 is a block diagram of an aerosol generating apparatus 1 according to one embodiment of the present disclosure.

[0113] The aerosol generator 1 may include a power supply 11, a control unit 12, a sensor 13, an output unit 14, an input unit 15, a communication unit 16, a memory 17, and at least one heater 18, 24. However, the internal structure of the aerosol generator 1 is not limited to that shown in Figure 15. In other words, it will be understood by those with ordinary skill in the art relating to this embodiment that the design of the aerosol generator 1 may allow for the omission of some of the components shown in Figure 15 or the addition of new components.

[0114] The sensor 13 can sense the state of the aerosol generator 1 or the state of the area around the aerosol generator 1, and transmit the sensed information to the control unit 12. Based on the sensed information, the control unit 12 can control the aerosol generator 1 to perform various functions such as controlling the operation of the cartridge heater 24 and / or heater 18, restricting smoking, determining whether a stick S and / or cartridge 19 has been inserted, and displaying notifications.

[0115] Sensor 13 may include at least one of the following: temperature sensor 131, puff sensor 132, insertion sensor 133, reuse sensor 134, cartridge sensor 135, upper case sensor 136, motion sensor 137, and humidity sensor 138.

[0116] The temperature sensor 131 can sense the temperature at which the cartridge heater 24 and / or heater 18 are heated. The aerosol generator 1 may include a separate temperature sensor that senses the temperature of the cartridge heater 24 and / or heater 18, or the cartridge heater 24 and / or heater 18 themselves may act as a temperature sensor.

[0117] The temperature sensor 131 can output a signal corresponding to the temperature of the cartridge heater 24 and / or heater 18. For example, the temperature sensor 131 may include a resistive element whose resistance changes in response to temperature changes in the cartridge heater 24 and / or heater 18. The temperature sensor 131 can be implemented using a thermistor or other element that utilizes the property that resistance changes with temperature. Here, the temperature sensor 131 can output a signal corresponding to the resistance value of the resistive element as a signal corresponding to the temperature of the cartridge heater 24 and / or heater 18. For example, the temperature sensor 131 may be configured as a sensor that detects the resistance value of the cartridge heater 24 and / or heater 18. Here, the temperature sensor 131 can output a signal corresponding to the resistance value of the cartridge heater 24 and / or heater 18 as a signal corresponding to the temperature of the cartridge heater 24 and / or heater 18.

[0118] The temperature sensor 131 may be positioned around the power supply 11 to monitor its temperature. The temperature sensor 131 may be positioned adjacent to the power supply 11. For example, the temperature sensor 131 may be attached to one side of the battery which is the power supply 11. For example, the temperature sensor 131 may be mounted on one side of a printed circuit board.

[0119] The temperature sensor 131 is located inside the body 10 and can sense the internal temperature of the body 10.

[0120] The puff sensor 132 can detect a user's puff based on various physical changes in the airflow path. The puff sensor 132 can output a signal corresponding to the puff. For example, the puff sensor 132 may be a pressure sensor. The puff sensor 132 can output a signal corresponding to the internal pressure of the aerosol generator. Here, the internal pressure of the aerosol generator 1 may correspond to the pressure of the airflow path through which the gas flows. The puff sensor 132 may be positioned in the aerosol generator 1 corresponding to the airflow path through which the gas flows.

[0121] The stick sensing sensor 133 can detect the insertion and / or removal of the stick S. The stick sensing sensor can be described as an insertion sensing sensor. The insertion sensing sensor 133 can detect a signal change caused by the insertion and / or removal of the stick S. The insertion sensing sensor 133 may be provided around the insertion space. The insertion sensing sensor 133 can detect the insertion and / or removal of the stick S by a change in dielectric constant inside the insertion space. For example, the insertion sensing sensor 133 may be an inductive sensor and / or a capacitance sensor.

[0122] An induction sensor may include at least one coil. The coil of the induction sensor may be positioned adjacent to the insertion space. For example, if the magnetic field changes around a coil through which current flows, the characteristics of the current flowing through the coil may change according to Faraday's law of electromagnetic induction. Here, the characteristics of the current flowing through the coil may include the frequency of the alternating current, the current value, the voltage value, the inductance value, the impedance value, etc.

[0123] Induction sensors can output signals that correspond to the characteristics of the current flowing through a coil. For example, an induction sensor can output a signal that corresponds to the inductance value of a coil.

[0124] A capacitance sensor may include a conductor. The conductor of the capacitance sensor may be positioned adjacent to the insertion space. The capacitance sensor can output a signal corresponding to the surrounding electromagnetic properties, such as the capacitance around the conductor. For example, if a stick S including a metal wrapper is inserted into the insertion space, the wrapper of the stick S may alter the electromagnetic properties around the conductor.

[0125] The reuse detection sensor 134 can detect whether the stick S has been reused. The reuse detection sensor 134 may also be a color sensor. The color sensor can detect the hue of the stick S. The color sensor can detect the hue of a portion of the wrapper surrounding the outside of the stick S. The color sensor can detect a value for an optical property corresponding to the hue of an object based on light reflected from the object. For example, the optical property may be the wavelength of light. The color sensor may be implemented as an integrated configuration with the proximity sensor, or as a separate configuration separated from the proximity sensor.

[0126] At least a portion of the wrapper constituting the stick S can change hue due to aerosols. The reuse sensing sensor 134 may be positioned corresponding to the location where at least a portion of the wrapper whose hue changes due to aerosols is located when the stick S is inserted into the insertion space. For example, before the stick S is used by the user, at least a portion of the wrapper may have a first hue. Here, as the aerosol generated by the aerosol generator 1 passes through the stick S, at least a portion of the wrapper becomes wet with the aerosol, causing the hue of at least a portion of the wrapper to change to a second hue. On the other hand, after the hue of at least a portion of the wrapper has changed from the first hue to the second hue, it may be maintained at the second hue.

[0127] The cartridge sensing sensor 135 can detect the insertion and / or removal of the cartridge 19. The cartridge sensing sensor 135 can be implemented as an inductance-based sensor, a capacitive sensor, a resistive sensor, or a Hall sensor (Hall IC) using the Hall effect.

[0128] The upper case sensing sensor 136 can detect the installation and / or removal of the upper case. When the upper case 200 is separated from the body 10, the cartridge 19 and a portion of the body 10 that were covered by the upper case 200 may be exposed to the outside. The upper case sensing sensor 136 can be implemented as a contact sensor, a Hall sensor (Hall IC), an optical sensor, or the like.

[0129] The motion sensor 137 can detect the movement of the aerosol generator. The motion sensor 137 can be implemented using at least one of an accelerometer and a gyro sensor.

[0130] The humidity sensor 138 can sense the humidity of the aerosol generator and / or the cartridge. The humidity sensor 138 can sense the humidity of the outside air and / or the humidity inside the cartridge. The humidity sensor 138 can be implemented as a capacitive sensor or the like. The humidity sensor 138 can be located on the outside of the body 10 or in the path through which outside air flows in, and can measure the humidity around the aerosol generator 1. The humidity sensor 138 can be located inside the storage section C1 of the cartridge 19, and can measure the humidity inside the cartridge 19.

[0131] Sensor 13 may further include at least one of the following, in addition to the aforementioned sensors 131 to 138: a barometric pressure sensor, a magnetic sensor, a GPS position sensor, and a proximity sensor. The function of each sensor can be intuitively inferred by a person skilled in the art from its name, so a detailed explanation can be omitted.

[0132] The output unit 14 can output and provide to the user information about the status of the aerosol generator 1. The output unit 14 may include, but is not limited to, a display 141, a haptic unit 142, and an acoustic output unit 143. If the display 141 and the touchpad form a layered structure and constitute a touchscreen, the display 141 can be used as an input device in addition to an output device.

[0133] The display 141 can visually provide the user with information about the aerosol generator 1. For example, the information about the aerosol generator 1 can include various types of information such as the charging / discharging status of the power supply 11 of the aerosol generator 1, the preheating status of the heater 18, the insertion / removal status of the stick S and / or cartridge 19, the mounting / removal status of the upper case, or a state in which the use of the aerosol generator 1 is restricted (e.g., detection of an abnormal object), and the display 141 can output this information to the outside. For example, the display 141 may be in the form of an LED light-emitting element. For example, the display 141 may be a liquid crystal display panel (LCD), an organic light-emitting display panel (OLED), etc.

[0134] The haptic unit 142 can convert electrical signals into mechanical or electrical stimuli, providing the user with tactile information about the aerosol generator 1. For example, if initial power is supplied to the cartridge heater 24 and / or heater 18 during a set time, the haptic unit 142 can generate vibrations corresponding to the completion of initial preheating. The haptic unit 142 may include a vibration motor, a piezoelectric element, or an electrical stimulator.

[0135] The acoustic output unit 143 can provide the user with auditory information about the aerosol generator 1. For example, the acoustic output unit 143 can convert electrical signals into acoustic signals and output them externally.

[0136] The power supply 11 can supply the power used to operate the aerosol generator 1. The power supply 11 can supply power so that the cartridge heater 24 and / or heater 18 can be heated. The power supply 11 can also supply the power necessary for the operation of other components provided in the aerosol generator 1, namely the sensor 13, output unit 14, input unit 15, communication unit 16, and memory 17. The power supply 11 may be a rechargeable battery or a disposable battery. For example, the power supply 11 may be, but is not limited to, a lithium polymer (LiPoly) battery.

[0137] Although not shown in Figure 15, the aerosol generator 1 may further include a power protection circuit. The power protection circuit is electrically connected to the power supply 11 and may include a switching element.

[0138] The power protection circuit can shut off the circuit to the power supply 11 under predetermined conditions. For example, the power protection circuit can shut off the circuit to the power supply 11 if the voltage level of the power supply 11 is equal to or greater than a first voltage corresponding to overcharging. For example, the power protection circuit can shut off the circuit to the power supply 11 if the voltage level of the power supply 11 is less than a second voltage corresponding to over-discharge.

[0139] The heater 18 receives power from the power supply 11 and can heat the medium or aerosol-generating material inside the stick S. Although not shown in Figure 15, the aerosol generator 1 may further include a power conversion circuit (e.g., a DC / DC converter) that converts the power from the power supply 11 and supplies it to the cartridge heater 24 and / or heater 18. Furthermore, if the aerosol generator 1 generates aerosols using an induction heating method, the aerosol generator 1 may further include a DC / AC converter that converts the DC power supply of the power supply 11 to AC power supply.

[0140] The control unit 12, sensor 13, output unit 14, input unit 15, communication unit 16, and memory 17 can function by receiving power from the power supply 11. Although not shown in Figure 15, a power conversion circuit, such as an LDO (low dropout) circuit or a constant voltage circuit, may be further included to convert the power from the power supply 11 and supply it to each component. Also, although not shown in Figure 15, a noise filter may be provided between the power supply 11 and the heater 18. The noise filter may be a low-pass filter. The low-pass filter may include at least one inductor and a capacitor. The cutoff frequency of the low-pass filter may correspond to the frequency of the high-frequency switching current applied from the power supply 11 to the heater 18. The low-pass filter prevents high-frequency noise components from being applied to the sensor 13, such as the insertion sensing sensor 133.

[0141] In one embodiment, the cartridge heater 24 and / or heater 18 may be formed from any suitable electrical resistant material. For example, suitable electrical resistant materials may be, but are not limited to, metals or metal alloys including titanium, zirconium, tantalum, platinum, nickel, cobalt, chromium, hafnium, niobium, molybdenum, tungsten, tin, gallium, manganese, iron, copper, stainless steel, nichrome, etc. Also, the heater 18 may be, but is not limited to, a metal heating wire, a metal heating plate on which an electrically conductive track is arranged, a ceramic heating element, etc.

[0142] In other embodiments, the heater 18 may be an induction heating type heater. For example, the heater 18 may include a susceptor that generates heat by a magnetic field applied by a coil and heats the aerosol-generating material.

[0143] The input unit 15 can receive information input from the user or output information to the user. For example, the input unit 15 may be a touch panel. The touch panel may include at least one touch sensor that senses touch. For example, the touch sensor may include, but is not limited to, a capacitive touch sensor, a resistive touch sensor, an ultrasonic touch sensor (surface acoustic wave touch sensor), or an infrared touch sensor.

[0144] The display 141 and the touch panel can be realized by a single panel. For example, the touch panel can be embedded within the display 141 (on-cell type or in-cell type). For example, the touch panel may be added on top of the display panel 141 (add-on type).

[0145] On the other hand, the input section 15 may include, but is not limited to, buttons, keypads, dome switches, jog wheels, jog switches, etc.

[0146] Memory 17 is hardware that stores various data processed within the aerosol generator 1, and can store data processed by the control unit 12 and data to be processed. Memory 17 can include at least one type of storage medium from among flash memory type, hard disk type, multimedia card micro type, card type memory (e.g., SD or XD memory), RAM (random access memory), SRAM (static random access memory), ROM (read-only memory), EEPROM (electrically erasable programmable read-only memory), PROM (programmable read-only memory), magnetic memory, magnetic disk, and optical disk. Memory 17 can store data such as the operating time of the aerosol generator 1, the maximum number of puffs, the current number of puffs, at least one temperature profile, and the user's smoking pattern.

[0147] The communication unit 16 may include at least one component for communication with other electronic devices. For example, the communication unit 16 may include at least one of a short-range communication unit and a wireless communication unit.

[0148] The short-range wireless communication unit may include, but is not limited to, a Bluetooth® communication unit, a BLE (Bluetooth® Low Energy) communication unit, a Near Field Communication unit, a WLAN (Wi-Fi) communication unit, a Zigbee® communication unit, an infrared (IrDA, infrared Data Association) communication unit, a WFD (Wi-Fi Direct) communication unit, a UWB (ultra wideband) communication unit, an Ant+ communication unit, and the like.

[0149] The wireless communication unit may include, but is not limited to, a cellular network communication unit, an Internet communication unit, or a computer network (e.g., LAN or WAN) communication unit.

[0150] Although not shown in Figure 15, the aerosol generator 1 further includes a connection interface such as a USB (universal serial bus) interface, and can connect to other external devices via such a connection interface to send and receive information or charge the power supply 11.

[0151] The control unit 12 can control the overall operation of the aerosol generator 1. In one embodiment, the control unit 1 may include at least one processor. The processor can also be realized by an array of numerous logic gates, or by a combination of a general-purpose microprocessor and memory storing a program executable by this microprocessor. It is also understandable to those with ordinary skill in the art to which this embodiment belongs that it can be realized by other forms of hardware.

[0152] The control unit 12 can control the temperature of the heater 18 by controlling the supply of power from the power supply 11 to the heater 18. The control unit 12 can control the temperature of the cartridge heater 24 and / or heater 18 based on the temperature of the cartridge heater 24 and / or heater 18 sensed by the temperature sensor 131. The control unit 12 can adjust the power supplied to the cartridge heater 24 and / or heater 18 based on the temperature of the cartridge heater 24 and / or heater 18. For example, the control unit 12 can determine a target temperature for the cartridge heater 24 and / or heater 18 based on a temperature profile stored in the memory 17.

[0153] The aerosol generator 1 may include a power supply circuit (not shown) electrically connected to the power supply 11 between the power supply 11 and the cartridge heater 24 and / or heater 18. The power supply circuit may be electrically connected to the cartridge heater 24, heater 18, or induction coil 181. The power supply circuit may include at least one switching element. The switching element can be embodied by a bipolar junction transistor (BJT), a field-effect transistor (FET), or the like. The control unit 12 can control the power supply circuit.

[0154] The control unit 12 can control the power supply by controlling the switching of the switching elements in the power supply circuit. It may also be an inverter that converts the DC power output from the power supply 11 to AC power. For example, the inverter can be configured as a full-bridge circuit or a half-bridge circuit including multiple switching elements.

[0155] The control unit 12 can turn on the switching element so that power is supplied from the power supply 11 to the cartridge heater 24 and / or heater 18. The control unit 12 can turn off the switching element so that power is cut off to the cartridge heater 24 and / or heater 18. The control unit 12 can adjust the current supplied from the power supply 11 by adjusting the frequency and / or duty cycle of the current pulse input to the switching element.

[0156] The control unit 12 can control the voltage output from the power supply 11 by controlling the switching of the switching elements in the power supply circuit. The power conversion circuit can convert the voltage output from the power supply 11. For example, the power conversion circuit may include a buck converter that steps down the voltage output from the power supply 11. For example, the power conversion circuit can be implemented using a buck-boost converter, a Zener diode, or the like.

[0157] The control unit 12 can adjust the voltage level output from the power conversion circuit by controlling the on / off operation of the switching element included in the power supply circuit. When the switching element remains in the on state, the voltage level output from the power conversion circuit may correspond to the voltage level output from the power supply 11. The duty cycle for the on / off operation of the switching element may correspond to the ratio of the voltage output from the power conversion circuit to the voltage output from the power supply 11. The lower the duty cycle for the on / off operation of the switching element, the lower the voltage level output from the power conversion circuit can be. The heater 18 may be heated based on the voltage output from the power conversion circuit.

[0158] The control unit 12 can control the supply of power to the heater 18 using at least one of the following methods: pulse width modulation (PWM) and proportional-integral-differential (PID).

[0159] For example, the control unit 12 can use a PWM method to control the supply of current pulses having a predetermined frequency and duty cycle to the heater 18. The control unit 12 can control the power supplied to the heater 18 by adjusting the frequency and duty cycle of the current pulses.

[0160] For example, the control unit 12 can determine a target temperature for control based on the temperature profile. The control unit 12 can control the power supplied to the heater 18 using a PID method, which is a feedback control method that uses the difference between the heater temperature 18 and the target temperature, the integral of the difference over time, and the derivative of the difference over time.

[0161] The control unit 12 can prevent the cartridge heater 24 and / or heater 18 from overheating. For example, the control unit 12 can control the operation of the power conversion circuit to interrupt the power supply to the cartridge heater 24 and / or heater 18 if the temperature of the cartridge heater 24 and / or heater 18 exceeds a previously set limit temperature. For example, the control unit 12 can reduce the amount of power supplied to the cartridge heater 24 and / or heater 18 by a certain ratio if the temperature of the cartridge heater 24 and / or heater 18 exceeds a previously set limit temperature. For example, if the temperature of the cartridge heater 24 exceeds the limit temperature, the control unit 12 can determine that the aerosol-generating material contained in the cartridge 19 has been exhausted and can cut off the power supply to the cartridge heater 24.

[0162] The control unit 12 can control the charging and discharging of the power supply 11. The control unit 12 can check the temperature of the power supply 11 in accordance with the output signal of the temperature sensor 131.

[0163] When a power line is connected to the battery terminal of the aerosol generator 1, the control unit 12 can check whether the temperature of the power supply 11 is equal to or above a first limiting temperature, which is the criterion for shutting off the charging of the power supply 11. If the temperature of the power supply 11 is below the first limiting temperature, the control unit 12 can control the charging of the power supply 11 based on a previously set charging current. If the temperature of the power supply 11 is equal to or above the first limiting temperature, the control unit 12 can shut off the charging of the power supply 11.

[0164] With the aerosol generator 1 powered on, the control unit 12 can check whether the temperature of the power supply 11 is above the second limiting temperature, which is the criterion for shutting off the discharge of the power supply 11. If the temperature of the power supply 11 is below the second limiting temperature, the control unit 12 can control the system to use the power stored in the power supply 11. If the temperature of the power supply 11 is above the second limiting temperature, the control unit 12 can interrupt the use of the power stored in the power supply 11.

[0165] The control unit 12 can calculate the remaining capacity of the power supply 11 relative to the power stored in the power supply 11. For example, the control unit 12 can calculate the remaining capacity of the power supply 11 based on the voltage and / or current sensing values ​​of the power supply 11.

[0166] The control unit 12 can determine whether the stick S is inserted into the insertion space using the insertion sensing sensor 133. The control unit 12 can determine that the stick S has been inserted based on the output signal from the insertion sensing sensor 133. If it determines that the stick S has been inserted into the insertion space, the control unit 12 can control the supply of power to the cartridge heater 24 and / or heater 18. For example, the control unit 12 can supply power to the cartridge heater 24 and / or heater 18 based on the temperature profile stored in the memory 17.

[0167] The control unit 12 can determine whether the stick S has been removed from the insertion space. For example, the control unit 12 can determine whether the stick S has been removed from the insertion space using the insertion sensing sensor 133. For example, the control unit 12 can determine that the stick S has been removed from the insertion space if the temperature of the heater 18 is above a limit temperature or if the temperature change gradient of the heater 18 is above a set gradient. If the control unit 12 determines that the stick S has been removed from the insertion space, it can cut off the power supply to the cartridge heater 24 and / or heater 18.

[0168] The control unit 12 can control the power supply time and / or power supply amount to the heater 18 based on the state of the stick S sensed by the sensor 13. The control unit 12 can check the level range that includes the level of the capacitance sensor signal based on a lookup table. The control unit 12 can determine the amount of moisture in the stick S based on the checked level range.

[0169] If the stick S is in an over-humidified state, the control unit 12 can control the power supply time to the heater 18, thereby increasing the preheating time of the stick S compared to normal conditions.

[0170] The control unit 12 can determine whether the stick S inserted into the insertion space has been reused by the reuse sensing sensor 134. For example, the control unit 12 can compare the sensing value of the reuse sensing sensor signal with a first reference range that includes a first hue, and if the sensing value falls within the first reference range, it can determine that the stick S has not been used. For example, the control unit 12 can compare the sensing value of the reuse sensing sensor signal with a second reference range that includes a second hue, and if the sensing value falls within the second reference range, it can determine that the stick S has been used. If it is determined that the stick S has been used, the control unit 12 can cut off the power supply to the cartridge heater 24 and / or heater 18.

[0171] The control unit 12 can determine the coupling and / or removal of the cartridge 19 based on the cartridge sensing sensor 135. For example, the control unit 12 can determine the coupling and / or removal of the cartridge 19 based on the sensing value of the signal from the cartridge sensing sensor.

[0172] The control unit 12 can determine whether the aerosol-generating material in the cartridge 19 has been depleted. For example, the control unit 12 can preheat the cartridge heater 24 and / or heater 18 by applying power, and determine whether the temperature of the cartridge heater 24 exceeds a limit temperature during the preheating period. If the temperature of the cartridge heater 24 exceeds the limit temperature, the control unit 12 can determine that the aerosol-generating material in the cartridge 19 has been depleted. If the control unit 12 determines that the aerosol-generating material in the cartridge 19 has been depleted, it can cut off the power supply to the cartridge heater 24 and / or heater 18.

[0173] The control unit 12 can determine whether the cartridge 19 has been used. For example, based on the data stored in the memory 17, the control unit 12 can determine that the cartridge 19 cannot be used if the current number of puffs is greater than or equal to the maximum number of puffs set for the cartridge 19. For example, the control unit 12 can determine that the cartridge 19 cannot be used if the total time the heater 24 has been heated is greater than or equal to a previously set maximum time, or if the total amount of power supplied to the heater 24 is greater than or equal to a previously set maximum amount of power.

[0174] The control unit 12 can make decisions regarding the user's inhalation based on the puff sensor 132. For example, the control unit 12 can determine whether a puff has occurred based on the sensing value of the signal from the puff sensor. For example, the control unit 12 can determine the intensity of the puff based on the sensing value of the signal from the puff sensor 132. If the number of puffs reaches a pre-set maximum number of puffs or if no puff is detected for a period of time longer than a pre-set time, the control unit 12 can cut off the power supply to the cartridge heater 24 and / or heater 18.

[0175] The control unit 12 can determine whether to connect and / or remove the upper case based on the upper case sensing sensor 136. For example, the control unit 12 can determine whether to connect and / or remove the upper case based on the sensing value of the signal from the upper case sensing sensor.

[0176] The control unit 12 can control the output unit 14 based on the results sensed by the sensor 13. For example, when the number of puffs counted by the puff sensor 132 reaches a pre-set number, the control unit 12 can notify the user that the aerosol generator 1 will immediately shut off via at least one of the display 141, the haptic unit 142, and the acoustic output unit 143. For example, if the control unit 12 determines that there is no stick S in the insertion space, it can notify the user via the output unit 14. For example, if the control unit 12 determines that the cartridge 19 and / or upper case have not been installed, it can notify the user via the output unit 14. For example, the control unit 12 can transmit information about the temperature of the cartridge heater 24 and / or heater 18 to the user via the output unit 14.

[0177] The control unit 12 can save and update a history of the event in the memory 17 when a predetermined event occurs. Events can include operations performed by the aerosol generator 1, such as detection of stick S insertion, start of stick S heating, puff detection, end of puffing, detection of overheating of the cartridge heater 24 and / or heater 18, detection of overvoltage application to the cartridge heater 24 and / or heater 18, end of stick S heating, on / off of the aerosol generator 1, start of charging of the power supply 11, detection of overcharge of the power supply 11, and end of charging of the power supply 11. The history of an event can include the date and time the event occurred, log data corresponding to the event, etc. For example, if a predetermined event is the detection of stick S insertion, the log data corresponding to the event can include data such as the sensing value of the insertion detection sensor 133. For example, if a predetermined event is the detection of overheating of the cartridge heater 24 and / or heater 18, the log data corresponding to the event may include data such as the temperature of the cartridge heater 24 and / or heater 18, the voltage applied to the cartridge heater 24 and / or heater 18, and the current flowing through the cartridge heater 24 and / or heater 18.

[0178] The control unit 12 can be controlled to form a communication link with an external device, such as the user's mobile terminal. Upon receiving authentication data from the external device via the communication link, the control unit 12 can remove the restriction on the use of at least one function of the aerosol generator 1. Here, the authentication data may include data indicating the completion of user authentication for the user corresponding to the external device. The user can perform user authentication via the external device. The external device can determine whether the user data is valid based on the user's date of birth, a unique number identifying the user, etc., and can receive data regarding the right to use the aerosol generator 1 from an external server. Based on the data regarding the right to use, the external device can transmit data indicating the completion of user authentication to the aerosol generator 1. Once user authentication is complete, the control unit 12 can remove the restriction on the use of at least one function of the aerosol generator 1. For example, once user authentication is complete, the control unit 12 can remove the restriction on the use of the heating function that supplies power to the heater 18.

[0179] The control unit 12 can transmit data about the status of the aerosol generator 1 to the external device via a communication link formed with the external device. Based on the received status data, the external device can output the remaining capacity of the power supply 11 of the aerosol generator 1, the operating mode, and other information via the external device's display.

[0180] An external device can transmit a location search request to the aerosol generator 1 based on an input that initiates a location search for the aerosol generator 1. When the control unit 12 receives a location search request from the external device, it can control at least one of the output devices to perform an operation corresponding to the location search based on the received location search request. For example, the haptic unit 142 can generate vibrations in response to the location search request. For example, the display 141 can output an object corresponding to the location search and the end of the search in response to the location search request.

[0181] The control unit 12 can control the aerosol generator 1 to perform a firmware update when it receives firmware data from an external device. The external device can check the current firmware version of the aerosol generator 1 and determine if a new firmware version is available. When the external device receives an input requesting a firmware download, it can receive the new firmware data and transmit the new firmware data to the aerosol generator 1. When the control unit 12 receives the new firmware data, it can control the aerosol generator 1 to perform a firmware update.

[0182] The control unit 12 can transmit data about the sensing values ​​of at least one sensor 13 to an external server (not shown) via the communication unit 16, learn the sensing values ​​from the server via machine learning such as deep learning, and receive and store the generated learning model. Using the learning model received from the server, the control unit 12 can perform operations such as determining the user's inhalation pattern and generating a temperature profile. The control unit 12 can store the sensing value data of at least one sensor 13 and data for training an artificial neural network (ANN) in the memory 17. For example, the memory 17 can store a database of each component provided in the aerosol generator 1, weights and biases that make up the artificial neural network (ANN) structure, etc., for training the artificial neural network (ANN). The control unit 12 can learn the data about the sensing values ​​of at least one sensor 13, the user's inhalation pattern, the temperature profile, etc., stored in the memory 17, and generate at least one learning model used for determining the user's inhalation pattern and generating a temperature profile.

[0183] As described above, according to at least one of the embodiments of this disclosure, by applying a heater made of a carbonaceous material, the time required to heat the heater can be reduced, thereby increasing user satisfaction.

[0184] According to at least one embodiment of the present disclosure, the temperature of the heater can be accurately measured by applying a voltage of a certain magnitude to the heater and measuring the resistance of the heater.

[0185] According to at least one embodiment of the present disclosure, by setting a short length for measuring the heater temperature, the influence of measuring the heater temperature on the heater's heating operation can be minimized.

[0186] According to at least one embodiment of the present disclosure, by setting a constant voltage applied to the heater to correspond to the voltage applied in the heater heating section, the influence of heater temperature measurement on the heater's heating operation can be minimized.

[0187] According to at least one embodiment of the present disclosure, by providing a heat diffusion section on the outside of the heater, heat generated locally by the heater can be diffused, reducing the amount of heat generated by the heater that escapes to the outside of the heater, and thereby increasing the heating efficiency of the aerosol generating device.

[0188] Referring to Figures 1 to 15, an aerosol generating apparatus 1 according to one aspect of the present disclosure includes a body 10, a heater 18 disposed in the body 10 and containing a carbonaceous material, a power supply 11 that supplies power to the heater 18, and a control unit 12 that controls the power supplied to the heater 18, wherein the control unit 12 can determine the temperature of the heater 18 based on the resistance value of the heater 18 determined in a first interval P1, and heat the heater 18 by controlling the power supplied to the heater 18 in a second interval P2 different from the first interval P1.

[0189] Furthermore, according to another aspect of this disclosure, the first section P1 and the second section P2 are repeated alternately, and the control unit 12 can determine the power supplied to the heater 18 in the second section P2 after the first section P1 based on the temperature of the heater 18 determined in the first section P1.

[0190] Furthermore, according to other aspects of this disclosure, the resistance of the heater 18 changes depending on the temperature of the heater 18, and the control unit 12 can determine the temperature of the heater 18 based on the temperature coefficient of resistance of the heater 18.

[0191] Furthermore, according to another aspect of this disclosure, the control unit 12 can control the power supply 11 in the first section P1 to apply a first voltage Va of a certain magnitude to the heater 18.

[0192] Furthermore, according to other aspects of this disclosure, the first voltage Va may correspond to the output voltage of the power supply 11.

[0193] Furthermore, according to other aspects of this disclosure, the first voltage Va may be greater than or equal to 3.2V, and less than or equal to 4.3V.

[0194] Furthermore, according to another aspect of this disclosure, the control unit 12 can determine the first voltage Va based on the voltage Vb applied to the heater 18 in the preceding second section P2 of the first section P1.

[0195] Furthermore, according to another aspect of this disclosure, the control unit 12 can determine the average voltage Vavg applied to the heater 18 in the preceding second section P2 of the first section P1, and determine the first voltage Va based on the determined average voltage Vavg.

[0196] Furthermore, according to other aspects of this disclosure, the length of the second section P2 may be longer than the length of the first section P1.

[0197] Furthermore, according to other aspects of this disclosure, the ratio of the length of the second section P2 to the length of the first section P1 may be greater than 50:1.

[0198] Furthermore, according to other aspects of this disclosure, the carbonaceous material may include at least one of graphene and carbon nanotubes.

[0199] Furthermore, according to other aspects of this disclosure, the body 10 may include an insertion space 43 that is open on one side, and the heater 18 may be cylindrical in shape and surround the insertion space 43.

[0200] Furthermore, according to other aspects of this disclosure, a heat diffusion portion 188 may be further included, which is located outside the heater 18 and is in contact with at least a portion of the heater 18.

[0201] Furthermore, according to other aspects of this disclosure, the heat diffusion section 188 may include at least one of a hollow graphite sheet, a vacuum tube, and a heat pipe.

[0202] The specific or other embodiments of the above-mentioned embodiments of the present disclosure are not mutually exclusive or distinguishable. The specific or all elements of the above-mentioned embodiments of the present disclosure can be combined with or combined with other elements in terms of configuration or function.

[0203] For example, configuration A described in one embodiment of this disclosure and drawings and configuration B described in another embodiment of this disclosure and drawings can be combined with each other. That is, even if combinations between configurations are not directly described, such combinations are possible unless otherwise stated as impossible.

[0204] While the embodiments have been described above with reference to numerous exemplary examples, those skilled in the art in the field relating to the principles of this disclosure should understand that many other modifications and embodiments are possible. More specifically, a variety of modifications and variations are possible in the components and / or arrangements of the subject combinations within the scope of this disclosure, drawings, and appended claims. In addition to the modifications and variations of the components and / or arrangements, other applications will also become apparent to those skilled in the art.

Claims

1. The body and, The body is arranged to include a heater containing a carbonaceous material, A power supply that provides power to the heater, The set includes a control unit that controls the power supplied to the heater, The control unit determines the temperature of the heater based on the resistance value of the heater determined in a first section, and heats the heater by controlling the power supplied to the heater in a second section different from the first section.

2. The first and second sections are repeated alternately. The aerosol generating apparatus according to claim 1, wherein the control unit determines the power to be supplied to the heater in a second section after the first section based on the temperature of the heater determined in the first section.

3. The resistance value of the heater changes depending on the temperature of the heater. The aerosol generating apparatus according to claim 1, wherein the control unit determines the temperature of the heater based on the temperature coefficient of resistance of the heater.

4. The aerosol generating apparatus according to claim 1, wherein the control unit controls the power supply in the first section to apply a first voltage of a constant magnitude to the heater.

5. The aerosol generating apparatus according to claim 4, wherein the first voltage corresponds to the output voltage of the power supply.

6. The aerosol generating apparatus according to claim 4, wherein the first voltage is greater than or equal to 3.2V and less than or equal to 4.3V.

7. The aerosol generating apparatus according to claim 4, wherein the control unit determines the first voltage based on the voltage applied to the heater in the second section prior to the first section.

8. The aerosol generating apparatus according to claim 7, wherein the control unit determines the average voltage applied to the heater in the second section prior to the first section, and determines the first voltage based on the determined average voltage.

9. The aerosol generating apparatus according to claim 1, wherein the length of the second section is longer than the length of the first section.

10. The aerosol generating apparatus according to claim 9, wherein the ratio of the length of the second section to the length of the first section is greater than 50:

1.

11. The aerosol generating apparatus according to claim 1, wherein the carbonaceous material comprises at least one of graphene and carbon nanotubes.

12. The body includes an insertion space that is open on one side. The aerosol generating apparatus according to claim 1, wherein the heater is cylindrical in shape and surrounds the insertion space.

13. The aerosol generating apparatus according to claim 12, further comprising a heat diffusion section disposed on the outside of the heater and in contact with at least a portion of the heater.

14. The aerosol generating apparatus according to claim 13, wherein the heat diffusion section includes at least one of a hollow graphite sheet, a vacuum tube, and a heat pipe.