Suction device, substrate, and control method

The suction device optimizes temperature control in inhalation devices by adjusting heating periods based on initial temperatures, addressing inconsistent heating issues and enhancing user experience through precise temperature management.

JP7789797B2Active Publication Date: 2025-12-22JAPAN TOBACCO INC
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Patent Information

Application Number
JP2023556036
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-29
Publication Date
2025-12-22
Estimated Expiration
2041-10-29

AI Technical Summary

Technical Problem

Existing inhalation devices lack mechanisms to optimize temperature control during aerosol generation, leading to inconsistent user experiences due to excessive or insufficient heating, which affects flavor quality and efficiency.

Method used

A suction device with a heating unit and control unit that adjusts the temperature rise period based on the initial temperature, employing variable and fixed periods to ensure precise temperature control, optimizing the flavor experience by adjusting the length of the heating period accordingly.

Benefits of technology

The solution provides improved user experience by preventing excessive or insufficient heating, maintaining consistent flavor quality, and ensuring efficient aerosol generation throughout the process.

✦ Generated by Eureka AI based on patent content.

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Abstract

[Problem] To provide a mechanism that can further improve quality of a user experience related to an inhalation device. [Solution] An inhalation device including: a heating unit that heats a base material containing an aerosol source and generates aerosol; and a control unit that controls operation of the heating unit on the basis of a temperature setting specifying time-series transition of a target temperature, which is a target value of the temperature of the heating unit, wherein the temperature setting includes a temperature increasing period where the temperature of the heating unit is increased from an initial temperature, which is the temperature of the heating unit at start of heating, to a predetermined temperature, and the control unit controls the length of the temperature increasing period on the basis of the initial temperature.
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Description

[Technical Field]

[0001] The present invention relates to a suction device, a substrate, and a control method. [Background technology]

[0002] Inhalation devices, such as electronic cigarettes and nebulizers, that generate substances to be inhaled by users are widely used. For example, inhalation devices generate aerosols containing flavor components using a substrate containing an aerosol source for generating aerosols and a flavor source for imparting flavor components to the generated aerosol. Users can enjoy the flavor by inhaling the flavor-imparted aerosol generated by the inhalation device. The action of a user inhaling an aerosol is hereinafter also referred to as a puff or a puffing action.

[0003] Typically, inhalation devices generate aerosol by heating a substrate. Because the quality of the user experience is significantly affected by the temperature at which the substrate is heated, technological developments are being conducted to achieve appropriate temperature control. Patent Document 1 listed below discloses a technology for controlling the rate of temperature rise of a heater during the period from the start of heating until puffing becomes possible, based on the heater temperature at the start of heating. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] International Publication No. 2019 / 186668 Summary of the Invention [Problem to be solved by the invention]

[0005] However, the technology disclosed in Patent Document 1 has only recently been developed, and there is still room for improvement in various respects.

[0006] Therefore, the present invention has been made in consideration of the above problems, and an object of the present invention is to provide a mechanism that can further improve the quality of the user experience with the suction device. [Means for solving the problem]

[0007] In order to solve the above problem, according to one aspect of the present invention, there is provided an suction device comprising: a heating unit that generates an aerosol by heating a substrate containing an aerosol source; and a control unit that controls the operation of the heating unit based on a temperature setting that specifies the time series progression of a target temperature, which is a target value for the temperature of the heating unit, wherein the temperature setting includes a heating period in which the temperature of the heating unit is raised from an initial temperature, which is the temperature of the heating unit at the start of heating, to a predetermined temperature, and the control unit controls the length of the heating period based on the initial temperature.

[0008] The temperature rise period may consist of a first period having a variable length and a second period following the first period and having a fixed length, and the control unit may control the length of the first period based on the initial temperature.

[0009] The control unit may shorten the first period as the initial temperature increases, and may lengthen the first period as the initial temperature decreases.

[0010] The control unit may change the length of the first period determined based on the initial temperature, based on the temperature of the heating unit during the first period.

[0011] The control unit may terminate the first period and switch to the second period when the temperature of the heating unit at the end of the first period, the length of which is determined based on the initial temperature, reaches the predetermined temperature.

[0012] The control unit may extend the first period if the temperature of the heating unit at the end of the first period, the length of which is determined based on the initial temperature, does not reach the predetermined temperature.

[0013] The control unit may extend the first period, the length of which is determined based on the initial temperature, by a time period corresponding to the initial temperature.

[0014] The control unit may stop operation of the heating unit when the temperature of the heating unit at the end of the extended first period has not reached the predetermined temperature.

[0015] The control unit may terminate the first period and switch to the second period if the temperature of the heating unit reaches the predetermined temperature before the end of the first period, the length of which is determined based on the initial temperature.

[0016] The suction device may include a plurality of the heating units, and the control unit may perform control so that the lengths of the first periods at the plurality of temperature settings corresponding to the plurality of heating units are different from each other.

[0017] The control unit may make the first period in the temperature setting corresponding to the heating unit located upstream among the plurality of heating units longer than the first period in the temperature setting corresponding to the heating unit located downstream.

[0018] The control unit may control the operation of the heating unit so as to raise the temperature of the heating unit from the initial temperature to the predetermined temperature during the first period, and to maintain the temperature of the heating unit at the predetermined temperature during the second period.

[0019] The temperature rise period may be a period from the start of heating to the time when the user is able to inhale the aerosol.

[0020] The control unit may control the length of the temperature rise period based on the temperature of the heating unit during the temperature rise period.

[0021] The control unit may control the length of the temperature rise period based on the time that has elapsed since the previous end of heating based on the temperature setting.

[0022] In addition, in order to solve the above-mentioned problems, according to another aspect of the present invention, there is provided a substrate containing an aerosol source that is heated to generate the aerosol by a suction device, the substrate comprising: a heating unit that heats a substrate containing an aerosol source to generate an aerosol; and a control unit that controls the operation of the heating unit based on a temperature setting that specifies the time series transition of a target temperature that is a target value for the temperature of the heating unit, wherein the temperature setting includes a temperature rise period in which the temperature of the heating unit is raised from an initial temperature that is the temperature of the heating unit at the start of heating to a predetermined temperature, and the control unit controls the length of the temperature rise period based on the initial temperature.

[0023] In addition, in order to solve the above-mentioned problems, according to another aspect of the present invention, there is provided a control method for controlling a suction device having a heating unit that generates an aerosol by heating a substrate containing an aerosol source, the control method comprising: controlling the operation of the heating unit based on a temperature setting that specifies the time series progression of a target temperature, which is a target value for the temperature of the heating unit; the temperature setting includes a heating period in which the temperature of the heating unit is raised from an initial temperature, which is the temperature of the heating unit at the start of heating, to a predetermined temperature; and controlling the operation of the heating unit comprises controlling the length of the heating period based on the initial temperature. [Effects of the Invention]

[0024] As described above, the present invention provides a mechanism that can further improve the quality of the user experience with the suction device. [Brief explanation of the drawings]

[0025] [Figure 1] FIG. 2 is a schematic diagram illustrating a configuration example of a suction device. [Figure 2] 10 is a graph showing an example of the transition of the temperature of the heating unit when temperature control is performed based on the heating profile shown in Table 1. [Figure 3] 10 is a graph showing an example of the transition of the temperature of the heating unit during a preheating period. [Figure 4]10 is a graph showing an example of the transition of the temperature of the heating unit when the length of the time variable period shown in Table 2 is controlled. [Figure 5] 10 is a graph showing an example of the transition of the temperature of the heating unit when the length of the time variable period shown in Table 2 is controlled. [Figure 6] 6 is a flowchart illustrating an example of a flow of processing executed by the suction device according to the present embodiment. [Figure 7] FIG. 10 is a schematic diagram illustrating a configuration example of a suction device according to a modified example. [Figure 8] 10 is a graph showing an example of the transition of the temperature of the heating unit when the length of the time variable period shown in Tables 3 and 4 is controlled. DETAILED DESCRIPTION OF THE INVENTION

[0026] Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings. In this specification and drawings, components having substantially the same functional configurations are designated by the same reference numerals, and redundant explanations will be omitted.

[0027] <1. Configuration example> An inhalation device is a device that generates a substance to be inhaled by a user. In the following description, the substance generated by the inhalation device is described as an aerosol. Alternatively, the substance generated by the inhalation device may be a gas.

[0028] 1 is a schematic diagram showing an example of the configuration of a suction device. As shown in Fig. 1, a suction device 100 according to this example configuration includes a power supply unit 111, a sensor unit 112, a notification unit 113, a storage unit 114, a communication unit 115, a control unit 116, a heating unit 121, a holding unit 140, and a heat insulating unit 144.

[0029] Power supply unit 111 stores electric power. Power supply unit 111 supplies electric power to each component of suction device 100 based on the control of control unit 116. Power supply unit 111 can be configured by, for example, a rechargeable battery such as a lithium ion secondary battery.

[0030] The sensor unit 112 acquires various types of information related to the suction device 100. As one example, the sensor unit 112 is configured with a pressure sensor such as a microphone capacitor, a flow rate sensor, or a temperature sensor, and acquires values ​​associated with suction by the user. As another example, the sensor unit 112 is configured with an input device such as a button or a switch that accepts information input from the user.

[0031] The notification unit 113 notifies the user of information. The notification unit 113 is configured by, for example, a light emitting device that emits light, a display device that displays an image, a sound output device that outputs sound, or a vibration device that vibrates.

[0032] The storage unit 114 stores various types of information for the operation of the suction device 100. The storage unit 114 is configured by a non-volatile storage medium such as a flash memory, for example.

[0033] The communication unit 115 is a communication interface capable of performing communication in accordance with any wired or wireless communication standard, such as Wi-Fi (registered trademark) or Bluetooth (registered trademark).

[0034] The control unit 116 functions as an arithmetic processing unit and a control unit, and controls the overall operation of the suction device 100 in accordance with various programs. The control unit 116 is realized by electronic circuits such as a CPU (Central Processing Unit) and a microprocessor, for example.

[0035] The holding part 140 has an internal space 141 and holds the stick-shaped substrate 150 while accommodating a portion of the stick-shaped substrate 150 in the internal space 141. The holding part 140 has an opening 142 that connects the internal space 141 to the outside, and holds the stick-shaped substrate 150 inserted into the internal space 141 through the opening 142. For example, the holding part 140 is a cylindrical body with the opening 142 and a bottom 143 as its bottom surface, and defines a columnar internal space 141. The holding part 140 also has the function of defining a flow path for air to be supplied to the stick-shaped substrate 150. An air inlet, which is an entrance for air to this flow path, is located in, for example, the bottom 143. On the other hand, an air outlet, which is an exit for air from this flow path, is the opening 142.

[0036] Stick-shaped substrate 150 includes substrate portion 151 and mouthpiece portion 152. Substrate portion 151 includes an aerosol source. Note that in this configuration example, the aerosol source is not limited to a liquid and may be a solid. When stick-shaped substrate 150 is held by holder 140, at least a portion of substrate portion 151 is contained in internal space 141, and at least a portion of mouthpiece portion 152 protrudes from opening 142. When a user holds mouthpiece portion 152 protruding from opening 142 in their mouth and inhales, air flows into internal space 141 through an air inlet hole (not shown) and reaches the user's mouth together with the aerosol generated from substrate portion 151.

[0037] The heating unit 121 generates aerosol by heating the aerosol source and atomizing the aerosol source. In the example shown in FIG. 1 , the heating unit 121 is configured in a film shape and is arranged to cover the outer periphery of the holding unit 140. When the heating unit 121 generates heat, the substrate unit 151 of the stick-shaped substrate 150 is heated from the outer periphery, and an aerosol is generated. The heating unit 121 generates heat when power is supplied from the power supply unit 111. For example, power may be supplied when the sensor unit 112 detects that the user has started inhaling and / or that predetermined information has been input. Power supply may be stopped when the sensor unit 112 detects that the user has stopped inhaling and / or that predetermined information has been input.

[0038] The heat insulating section 144 prevents heat transfer from the heating section 121 to other components. For example, the heat insulating section 144 is made of a vacuum heat insulating material, an aerogel heat insulating material, or the like.

[0039] The above describes an example of the configuration of the suction device 100. Of course, the configuration of the suction device 100 is not limited to the above, and various configurations such as those exemplified below may be used.

[0040] As one example, the heating unit 121 may be configured in a blade shape and disposed so as to protrude from the bottom 143 of the holding unit 140 into the internal space 141. In this case, the blade-shaped heating unit 121 is inserted into the substrate 151 of the stick-shaped substrate 150 and heats the substrate 151 of the stick-shaped substrate 150 from the inside. As another example, the heating unit 121 may be disposed so as to cover the bottom 143 of the holding unit 140. Furthermore, the heating unit 121 may be configured as a combination of two or more of a first heating unit covering the outer periphery of the holding unit 140, a blade-shaped second heating unit, and a third heating unit covering the bottom 143 of the holding unit 140.

[0041] As another example, the holding unit 140 may include an opening / closing mechanism such as a hinge that opens and closes a portion of the outer shell that forms the internal space 141. The holding unit 140 may then open and close the outer shell to clamp the stick-shaped substrate 150 inserted into the internal space 141. In this case, the heating unit 121 may be provided at the clamping location in the holding unit 140, and heat the stick-shaped substrate 150 while pressing it.

[0042] Furthermore, the means for atomizing the aerosol source is not limited to heating by the heating unit 121. For example, the means for atomizing the aerosol source may be induction heating.

[0043] Here, the inhalation device 100 and the stick-type substrate 150 work together to generate an aerosol that is inhaled by the user. Therefore, the combination of the inhalation device 100 and the stick-type substrate 150 may be considered as an aerosol generating system.

[0044] <2. Technical Features> (1) Heating profile The control unit 116 controls the operation of the heating unit 121 based on the temperature setting. The control of the operation of the heating unit 121 is achieved by controlling the power supply from the power supply unit 111 to the heating unit 121. The temperature setting is information that defines the time series transition of the target temperature, which is the target value of the temperature of the heating unit 121. Hereinafter, such a temperature setting is also referred to as a heating profile.

[0045] The control unit 116 controls the temperature of the heating unit 121 so that the change in temperature (hereinafter also referred to as the actual temperature) of the heating unit 121 is similar to the change in the target temperature defined in the heating profile. The heating profile is typically designed to optimize the flavor that the user experiences when the user inhales the aerosol generated from the stick-shaped substrate 150. Therefore, by controlling the power supply to the heating unit 121 based on the heating profile, the flavor that the user experiences can be optimized.

[0046] The heating profile includes one or more combinations of a target temperature and information indicating the timing at which the target temperature should be reached. The control unit 116 controls the temperature of the heating unit 121 by switching the target temperature depending on the elapsed time since the start of heating based on the heating profile. Specifically, the control unit 116 controls the temperature of the heating unit 121 based on the difference between the current actual temperature and the target temperature corresponding to the elapsed time since the start of heating based on the heating profile. The temperature control of the heating unit 121 can be achieved, for example, by known feedback control. The feedback control may be, for example, a proportional-integral-differential controller (PID) control. The control unit 116 may supply power from the power supply unit 111 to the heating unit 121 in the form of pulses obtained by pulse width modulation (PWM) or pulse frequency modulation (PFM). In this case, the control unit 116 can control the temperature of the heating unit 121 by adjusting the duty ratio or frequency of the power pulses in the feedback control. Alternatively, the control unit 116 may perform simple on / off control in the feedback control. For example, the control unit 116 may perform heating by the heating unit 121 until the actual temperature reaches the target temperature, stop heating by the heating unit 121 when the actual temperature reaches the target temperature, and resume heating by the heating unit 121 when the actual temperature becomes lower than the target temperature. Alternatively, the control unit 116 may adjust the voltage through feedback control.

[0047] The temperature of the heating unit 121 can be quantified, for example, by measuring or estimating the electrical resistance of the heating unit 121 (more precisely, the heating resistor that constitutes the heating unit 121). This is because the electrical resistance of the heating resistor changes depending on the temperature. The electrical resistance of the heating resistor can be estimated, for example, by measuring the amount of voltage drop across the heating resistor. The amount of voltage drop across the heating resistor can be measured by a voltage sensor that measures the potential difference applied to the heating resistor. In another example, the temperature of the heating unit 121 can be measured by a temperature sensor such as a thermistor installed near the heating unit 121.

[0048] The period from the start to the end of the process of generating aerosol using the stick-shaped substrate 150 is also referred to as a heating session below. In other words, a heating session is a period during which power supply to the heating unit 121 is controlled based on a heating profile. The start of a heating session is the timing when heating based on the heating profile starts. The end of a heating session is the timing when a sufficient amount of aerosol is no longer generated. A heating session includes a pre-heating period in the first half and a puffable period in the second half. The puffable period is a period during which a sufficient amount of aerosol is expected to be generated. The pre-heating period is the period from the start of heating to the start of the puffable period. Heating performed during the pre-heating period is also referred to as pre-heating.

[0049] The heating profile may include multiple periods in which different target temperatures are set. The temperature may be controlled to reach the target temperature set for a certain period at any timing during that period, or may be controlled to reach the target temperature at the end of that period. In either case, the temperature of the heating unit 121 can be changed in the same way as the target temperature set in the heating profile.

[0050] An example of a heating profile is shown in Table 1 below.

[0051] [Table 1]

[0052] The temperature change of the heating unit 121 when the control unit 116 performs temperature control in accordance with the heating profile shown in Table 1 will be described with reference to FIG. 2. FIG. 2 is a graph showing an example of the temperature change of the heating unit 121 when the temperature control is performed based on the heating profile shown in Table 1. The horizontal axis of this graph is time (seconds). The vertical axis of this graph is the temperature of the heating unit 121. Line 21 in this graph shows the temperature change of the heating unit 121. As shown in FIG. 2, the temperature of the heating unit 121 changes in the same way as the target temperature change defined in the heating profile.

[0053] As shown in Table 1, the heating profile begins with an initial temperature rise period. The initial temperature rise period is a period during which the temperature of the heating unit 121 rises from the initial temperature. The initial temperature is the temperature of the heating unit 121 at the start of heating. As shown in FIG. 2, during the initial temperature rise period, the temperature of the heating unit 121 reaches 310°C 17 seconds after the start of heating and is maintained at 310°C for 35 seconds after the start of heating. This is expected to allow the temperature of the stick-shaped substrate 150 to reach a temperature at which a sufficient amount of aerosol is generated. By quickly raising the temperature to 310°C immediately after the start of heating, it is possible to end preheating early and start the puffable period early. Note that although the initial temperature rise period and the preheating period coincide in FIG. 2, they do not necessarily have to coincide.

[0054] As shown in Table 1, the heating profile includes an intermediate temperature-reducing period after an initial temperature-rising period. The intermediate temperature-reducing period is a period during which the temperature of the heating unit 121 decreases. As shown in FIG. 2, during the intermediate temperature-reducing period, the temperature of the heating unit 121 decreases from 310°C to 260°C between 35 and 45 seconds after the start of heating. During this period, power supply to the heating unit 121 may be stopped. Even in this case, a sufficient amount of aerosol is generated due to the residual heat of the heating unit 121 and the stick-shaped substrate 150. If the heating unit 121 is maintained at a high temperature, the aerosol source contained in the stick-shaped substrate 150 may be rapidly consumed, which may result in flavor deterioration, such as an overpowering flavor experienced by the user. In this regard, providing an intermediate temperature-reducing period midway through the puffing process can avoid such flavor deterioration and improve the quality of the user's puffing experience.

[0055] As shown in Table 1, the heating profile includes a reheating period after the intermediate temperature-lowering period. The reheating period is a period during which the temperature of the heating unit 121 increases. As shown in FIG. 2, during the reheating period, the temperature of the heating unit 121 increases from 260°C to 290°C between 45 seconds and 180 seconds after the start of heating and remains at 290°C until 260 seconds after the start of heating. If the temperature of the heating unit 121 continues to decrease, the temperature of the stick-shaped substrate 150 also decreases, reducing the amount of aerosol generated and potentially degrading the flavor experienced by the user. Furthermore, as the heating profile progresses toward the latter half, the remaining amount of aerosol source contained in the stick-shaped substrate 150 decreases, which tends to decrease the amount of aerosol generated even when heating is continued at the same temperature. In this regard, by increasing the amount of aerosol generated by increasing the temperature again in the latter half of the heating profile, the decrease in the amount of aerosol generated due to the decrease in the remaining amount of aerosol source can be compensated for. This makes it possible to prevent degradation of the flavor experienced by the user, even in the latter half of the heating profile.

[0056] As shown in Table 1, the heating profile includes a heating end period at the end. The heating end period is a period following the reheating period during which heating is not performed. A target temperature does not need to be set. As shown in FIG. 2, the temperature of the heating unit 121 begins to decrease after 260 seconds from the start of heating. Power supply to the heating unit 121 may be terminated after 260 seconds from the start of heating. Even in this case, a sufficient amount of aerosol is generated for a while due to residual heat from the heating unit 121 and the stick-shaped substrate 150. In the example shown in FIG. 2, the puffable period, i.e., the heating session, ends after 270 seconds from the start of heating.

[0057] The user may be notified of the start and end timings of the puffable period. Furthermore, the user may be notified of the timing a predetermined time before the end of the puffable period (for example, the timing when power supply to the heating unit 121 ends). In this case, the user can puff during the puffable period by referring to such notification.

[0058] (2) Relationship between the initial temperature of the heating part 121 and preheating Some users engage in chain smoking. Chain smoking is the act of using multiple stick-type substrates 150 consecutively at short intervals. When chain smoking is performed, heating of the next stick-type substrate 150 may begin while heat from the previous use of the stick-type substrate 150 remains in the heating unit 121. In this case, the stick-type substrate 150 may be overheated during the pre-heating period, which could cause inconvenience such as delivering an inferior flavor to the user during the puffable period.

[0059] On the other hand, when the ambient temperature is low, it is conceivable that the temperature rise will start from an initial temperature lower than normal. In this case, the stick-shaped substrate 150 may not be heated sufficiently during the pre-heating period, which may result in inconvenience such as the delivery of an inferior flavor to the user during the puffing period.

[0060] Therefore, the suction device 100 according to this embodiment controls the length of the preheating period in accordance with the initial temperature of the heating unit 121. With this configuration, it is possible to prevent the above-mentioned inconveniences caused by excessive or insufficient preheating due to high or low initial temperatures.

[0061] (3) Control based on the initial temperature of the heating unit 121 The control unit 116 controls the length of the temperature-raising period included in the heating profile, during which the temperature of the heating unit 121 is raised from the initial temperature to a predetermined temperature, based on the initial temperature, which is the temperature of the heating unit 121 at the start of heating. The control unit 116 acquires the initial temperature at the start of heating and then periodically acquires the temperature of the heating unit 121, performing this control. The predetermined temperature is a temperature at which a sufficient amount of aerosol is expected to be generated when the temperature of the stick-shaped substrate 150 reaches this temperature. Hereinafter, this predetermined temperature will also be referred to as the first target temperature. With this configuration, the length of the temperature-raising period is controlled according to the initial temperature, making it possible to prevent inconveniences caused by a high or low initial temperature.

[0062] The temperature rise period, the length of which is controlled based on the initial temperature of the heating unit 121, is the period from the start of heating until the user is able to inhale the aerosol. In other words, the temperature rise period is a pre-heating period. The first target temperature is a target temperature during the pre-heating period (e.g., the initial temperature rise period). By controlling the length of the pre-heating period according to the initial temperature, it is possible to prevent inconveniences caused by excessive or insufficient pre-heating due to high or low initial temperatures.

[0063] Control of the length of the preheating period will be described with reference to Fig. 3. Fig. 3 is a graph showing an example of the change in temperature of the heating unit 121 during the preheating period. The horizontal axis of this graph represents time (seconds). The vertical axis of this graph represents the temperature of the heating unit 121. Line 31 in this graph represents the change in temperature of the heating unit 121.

[0064] As shown in FIG. 3, the preheating period consists of a time-variable period whose length is variable and a time-fixed period whose length is fixed and follows the time-variable period. The time-variable period is an example of a first period in this embodiment. The time-fixed period is an example of a second period in this embodiment. In the example shown in FIG. 3, the length of the time-variable period is 17 seconds. The length of the time-fixed period is 18 seconds.

[0065] As shown in FIG. 3 , the control unit 116 controls the operation of the heating unit 121 so as to raise the temperature of the heating unit 121 from an initial temperature to a first target temperature during the time-variable period and maintain the temperature of the heating unit 121 at the first target temperature during the time-fixed period. In the example shown in FIG. 3 , the first target temperature is 310°C. The stick-shaped substrate 150 may contain moisture. When a stick-shaped substrate 150 containing moisture is heated to a high temperature, an excessively high-temperature aerosol may be generated. To prevent the user from inhaling an excessively high-temperature aerosol, it is desirable to evaporate the moisture contained in the stick-shaped substrate 150 during the pre-heating period. In this regard, according to the present embodiment, by providing a sufficient period during which the temperature of the heating unit 121 is maintained at a high temperature such as the first target temperature, it is possible to reliably evaporate the moisture contained in the stick-shaped substrate 150 during the pre-heating period.

[0066] The control unit 116 controls the length of the preheating period based on the initial temperature of the heating unit 121, and thus controls the length of the time-variable period based on the initial temperature of the heating unit 121. With this configuration, it is possible to prevent inconveniences caused by excessive or insufficient preheating due to high or low initial temperatures, while maintaining a fixed time period for reliably evaporating the moisture contained in the stick-shaped substrate 150.

[0067] Specifically, the control unit 116 shortens the time variable period as the initial temperature of the heating unit 121 increases, and lengthens the time variable period as the initial temperature of the heating unit 121 decreases. For example, the storage unit 114 stores a table, shown in Table 2 below, that specifies the control details for the length of the time variable period in the heating profile. The control unit 116 then references the table shown in Table 2 and determines the length of the time variable period to be a length that corresponds to the initial temperature of the heating unit 121. With this configuration, if the initial temperature is high, the time variable period is shortened, making it possible to prevent excessive temperature rise. On the other hand, if the initial temperature is low, the time variable period is lengthened, making it possible to prevent the temperature from rising insufficiently.

[0068] [Table 2]

[0069] FIG. 4 is a graph showing an example of the temperature transition of the heating unit 121 when the length of the time variable period shown in Table 2 is controlled. The horizontal axis of this graph is time (seconds). The vertical axis of this graph is the temperature of the heating unit 121. Line 32 in this graph shows the temperature transition of the heating unit 121. In the example shown in this graph, the initial temperature is 160°C, so the length of the time variable period is shortened to 8 seconds. Therefore, at the end of the time variable period, the temperature of the heating unit 121 reaches the first target temperature of 310°C, preventing excessive temperature rise.

[0070] The control unit 116 may change the length of the time-variable period determined based on the initial temperature of the heating unit 121, based on the temperature of the heating unit 121 during the time-variable period. That is, the control unit 116 may change the length of the time-variable period, which was once determined based on the initial temperature of the heating unit 121, in real time based on the temperature of the heating unit 121. It is conceivable that the temperature rise rate of the heating unit 121 may be faster or slower than expected due to environmental influences such as air temperature and humidity. In this regard, with this configuration, it is possible to more reliably cause the temperature of the heating unit 121 to reach the first target temperature during the time-variable period. This makes it possible to deliver an appropriate flavor to the user during the puffable period.

[0071] Specifically, when the temperature of the heating unit 121 reaches the first target temperature at the end of the time-variable period, the length of which is determined based on the initial temperature of the heating unit 121, the control unit 116 may end the time-variable period and switch to a fixed-time period. If the temperature of the heating unit 121 rises as expected, the temperature of the heating unit 121 will reach the first target temperature at the end of the time-variable period, the length of which is determined by reference to the table shown in Table 2. In such a case, by ending the time-variable period and switching to the fixed-time period and maintaining the temperature of the heating unit 121 at the first target temperature, it becomes possible to deliver an appropriate flavor to the user during the puffable period.

[0072] If the temperature of the heating unit 121 at the end of the time-variable period, the length of which is determined based on the initial temperature of the heating unit 121, has not reached the first target temperature, the control unit 116 may extend the time-variable period. It is possible that the temperature rise rate of the heating unit 121 may be slower than expected due to environmental factors such as air temperature and humidity. In this regard, this configuration makes it possible to more reliably cause the temperature of the heating unit 121 to reach the first target temperature. This will be described in detail with reference to FIG. 5.

[0073] FIG. 5 is a graph showing an example of the transition of the temperature of the heating unit 121 when the length of the time-variable period shown in Table 2 is controlled. The horizontal axis of this graph is time (seconds). The vertical axis of this graph is the temperature of the heating unit 121. Line 33 in this graph shows the transition of the temperature of the heating unit 121. In the example shown in this graph, the length of the time-variable period is determined to be 17 seconds because the initial temperature is 0°C. However, at the end of the 17-second time-variable period determined based on the initial temperature of the heating unit 121, the temperature of the heating unit 121 has not reached the first target temperature of 310°C, so the time-variable period is extended by 10 seconds. As a result, at the end of the extended time-variable period, the temperature of the heating unit 121 reaches the first target temperature of 310°C, preventing insufficient temperature rise.

[0074] Here, the control unit 116 may extend the time-variable period, the length of which is determined based on the initial temperature of the heating unit 121, by a time period corresponding to the initial temperature of the heating unit 121. For example, the control unit 116 may extend the time-variable period by a length corresponding to the length of the original time-variable period determined based on the initial temperature of the heating unit 121. This is because it is considered that the longer the time-variable period, the greater the error between the temperature of the heating unit 121 at the end of the time-variable period and the first target temperature. With this configuration, it is possible to extend the time-variable period to an appropriate length.

[0075] If the temperature of heating unit 121 at the end of the extended time-variable period has not reached the first target temperature, control unit 116 may stop the operation of heating unit 121. That is, control unit 116 may stop the supply of power from power supply unit 111 to heating unit 121. If the temperature of heating unit 121 has not reached the first target temperature even at the end of the extended time-variable period, there is a risk that some kind of malfunction has occurred in suction device 100. In this regard, such a configuration makes it possible to improve safety when using suction device 100.

[0076] If the temperature of the heating unit 121 reaches the first target temperature before the end of the time-variable period, the length of which is determined based on the initial temperature of the heating unit 121, the control unit 116 may end the time-variable period and switch to a time-fixed period. It is possible that the temperature rise rate of the heating unit 121 may be faster than expected due to environmental factors such as temperature and humidity. In this regard, this configuration makes it possible to more reliably prevent the heating unit 121 from rising above the first target temperature.

[0077] (4) Processing flow FIG. 6 is a flowchart showing an example of the flow of processing executed by the suction device 100 according to this embodiment.

[0078] As shown in FIG. 6, first, the control unit 116 determines whether a puff request has been detected (step S102). A puff request is a user operation requesting the generation of aerosol. An example of a puff request is an operation on the inhalation device 100, such as operating a switch or the like provided on the inhalation device 100. Another example of a puff request is inserting the stick-shaped substrate 150 into the inhalation device 100. Note that the insertion of the stick-shaped substrate 150 into the inhalation device 100 can be detected by a capacitance-type proximity sensor that detects the capacitance of the space near the opening 142, a pressure sensor that detects the pressure within the internal space 141, or the like.

[0079] If it is determined that a puff request has not been detected (step S102: NO), control unit 116 waits until a puff request is detected.

[0080] On the other hand, if it is determined that a puff request has been detected (step S102: YES), the control unit 116 acquires the initial temperature of the heating unit 121 (step S104). For example, the control unit 116 acquires the initial temperature of the heating unit 121 based on the electrical resistance value when a weak current is applied to the heating unit 121, or from a temperature sensor installed near the heating unit 121.

[0081] Next, the control unit 116 determines the length of the preheating period based on the initial temperature of the heating unit 121 (step S106). For example, the control unit 116 determines the length of the time variable period of the preheating period by referring to the table shown in Table 2.

[0082] Next, the control unit 116 controls the operation of the heating unit 121 to perform heating based on the heating profile in which the length of the pre-heating period has been adjusted (step S108). For example, the control unit 116 starts supplying power from the power supply unit 111 to the heating unit 121 based on the heating profile in which the length of the pre-heating period has been adjusted in step S106.

[0083] Next, the control unit 116 determines whether a termination condition is satisfied (step S110). One example of the termination condition is when the elapsed time from the start of heating reaches a predetermined time. Here, the predetermined time refers to the duration of the entire heating profile in which the length of the pre-heating period has been adjusted in step S106. Another example of the termination condition is when the number of puffs since the start of heating reaches a predetermined number.

[0084] If it is determined that the termination condition is not satisfied (step S110: NO), the control unit 116 waits until the termination condition is satisfied.

[0085] If it is determined that the termination condition is satisfied (step S110: YES), control unit 116 terminates heating based on the heating profile (step S112). Specifically, control unit 116 terminates the supply of power from power supply unit 111 to heating unit 121. Thereafter, the process ends.

[0086] <3. Modifications> In the above embodiment, an example in which the inhalation device 100 includes one heating unit 121 has been described, but the present invention is not limited to such an example. The inhalation device 100 may include multiple heating units 121. In this case, the control unit 116 controls the lengths of the time-variable periods at multiple temperature settings corresponding to the multiple heating units 121 so that they are different from each other. The multiple heating units 121 heat different parts of the stick-shaped substrate 150. In this regard, with this configuration, it is possible to raise the temperature of each part of the stick-shaped substrate 150 at an appropriate temperature rise rate. This makes it possible to deliver a more appropriate flavor to the user.

[0087] Each of the multiple heating units 121 is disposed at a different position in the direction in which the stick-shaped substrate 150 is inserted. For example, the multiple heating units 121 may be disposed at different positions from upstream to downstream of the holder 140. "Downstream" refers to the side closer to the opening 142. On the other hand, "upstream" refers to the side closer to the bottom 143. When a puff is taken, an airflow is generated from upstream to downstream.

[0088] The control unit 116 sequentially increases the temperature of the heating unit 121 from the downstream side to the upstream side. As an example, the control unit 116 may sequentially start heating the heating unit 121 from the downstream side to the upstream side, or may sequentially increase the temperature to the maximum temperature. With this configuration, the aerosol source is heated sequentially from the downstream side to the upstream side of the substrate unit 151, generating aerosol. If the upstream side of the substrate unit 151 is heated before the downstream side, the aerosol generated in the upstream side may be cooled and condensed as it passes through the downstream side. In this case, the downstream side of the substrate unit 151, which has not yet been heated, becomes moist, which may deteriorate the flavor experienced by the user when the downstream side of the substrate unit 151 is heated. In this regard, with this configuration, the generated aerosol does not pass through the unheated portion of the substrate unit 151. Therefore, the unheated portion of the base material portion 151 is prevented from becoming wet, and it is possible to prevent deterioration of the flavor that the user enjoys.

[0089] In this case, the control unit 116 makes the time-variable period in the heating profile corresponding to the heating unit 121 arranged upstream among the multiple heating units 121 longer than the time-variable period in the heating profile corresponding to the heating unit 121 arranged downstream. For example, the control unit 116 makes the duty ratio of the power pulse applied to the heating unit 121 arranged upstream during the time-variable period smaller than the duty ratio of the power pulse applied to the heating unit 121 arranged downstream. This configuration can slow the temperature rise rate of the portion of the stick-shaped substrate 150 heated by the heating unit 121 arranged upstream. This prevents pain from the aerosol source due to a sudden temperature change and prevents deterioration of the flavor experienced by the user. The points described above will be explained in detail with reference to FIGS. 7 and 8.

[0090] FIG. 7 is a schematic diagram showing an example of the configuration of suction device 100 according to this modification. As shown in FIG. 7, suction device 100 according to this modification differs from the example shown in FIG. 1 in that it has two heating units 121 (heating units 121A and 121B). Heating unit 121A is an example of heating unit 121 arranged on the side closer to opening 142, i.e., the downstream side. Heating unit 121B is an example of heating unit 121 arranged on the side closer to bottom 143, i.e., the upstream side. Below, of the configurations of the components of suction device 100 according to this modification, differences from the configuration described above will be mainly described with reference to FIG. 1.

[0091] The control unit 116 shortens the time variable period as the initial temperature of the heating unit 121 increases, and lengthens the time variable period as the initial temperature of the heating unit 121 decreases. However, the control unit 116 lengthens the time variable period in the heating profile corresponding to the heating unit 121B than the time variable period in the heating profile corresponding to the heating unit 121A.

[0092] For example, the memory unit 114 stores the tables shown in Tables 3 and 4 below. Table 3 is a table that specifies the control details for the length of the time-variable period in the heating profile applied to the heating unit 121A. Table 4 is a table that specifies the control details for the length of the time-variable period in the heating profile applied to the heating unit 121B. The control unit 116 refers to Table 3 and controls the length of the time-variable period during preheating using the heating unit 121A to a length that corresponds to the initial temperature of the heating unit 121A. The control unit 116 refers to Table 4 and controls the length of the time-variable period during preheating using the heating unit 121B to a length that corresponds to the initial temperature of the heating unit 121B. As shown in Tables 3 and 4, when the initial temperatures of the heating units 121A and 121B are the same, the time-variable period during preheating using the heating unit 121B is longer than the time-variable period during preheating using the heating unit 121A.

[0093] [Table 3]

[0094] [Table 4]

[0095] FIG. 8 is a graph showing an example of the change in temperature of the heating unit 121 when the length of the time-variable period shown in Tables 3 and 4 is controlled. The horizontal axis of this graph is time (seconds). The vertical axis of this graph is the temperature of the heating unit 121. Line 41A in this graph shows the change in temperature of the heating unit 121A. Line 41B in this graph shows the change in temperature of the heating unit 121B. In the example shown in this graph, since the initial temperature of the heating unit 121A was 0°C, the length of the time-variable period in the heating profile applied to the heating unit 121A is set to 17 seconds. On the other hand, since the initial temperature of the heating unit 121B was 0°C, the length of the time-variable period in the heating profile applied to the heating unit 121B is set to 67 seconds.

[0096] 8, heating by heating unit 121B starts at the end of the time-variable period in the heating profile applied to heating unit 121A, but these timings may be different. Also, the lengths of the time-fixed periods are the same for heating unit 121A and heating unit 121B, but these may be different.

[0097] <4. Supplementary Information> Although the preferred embodiments of the present invention have been described in detail above with reference to the accompanying drawings, the present invention is not limited to these examples. It is clear that a person skilled in the art to which the present invention pertains can conceive of various modifications and alterations within the scope of the technical ideas set forth in the claims, and it is understood that these also naturally fall within the technical scope of the present invention.

[0098] For example, in the above embodiment, an example has been described in which the length of the time-variable period determined based on the initial temperature of the heating unit 121 is changed based on the temperature of the heating unit 121 during the time-variable period. However, the present invention is not limited to such an example. The control unit 116 may control (i.e., determine) the length of the pre-heating period based on the temperature of the heating unit 121 during the pre-heating period, in addition to or instead of the initial temperature. More specifically, the control unit 116 may control the length of the time-variable period based on the temperature of the heating unit 121 during the time-variable period, in addition to or instead of the initial temperature. For example, the control unit 116 periodically acquires the temperature of the heating unit 121 during the time-variable period. Then, the control unit 116 may end the time-variable period and switch to the fixed-time period when the temperature of the heating unit 121 reaches the first target temperature. This configuration also makes it possible to reliably cause the temperature of the heating unit 121 to reach the first target temperature during the time-variable period. This makes it possible to deliver an appropriate flavor to the user during the puffable period.

[0099] For example, in the above embodiment, an example has been described in which the length of the preheating period is controlled based on the initial temperature of the heating unit 121, but the present invention is not limited to such an example. For example, the control unit 116 may control (i.e., determine) the length of the preheating period based on the time elapsed since the previous heating based on the heating profile was completed, in addition to or instead of the initial temperature. Specifically, the control unit 116 may lengthen the preheating period the longer the time elapsed since the previous heating based on the heating profile was completed. This is because the longer the interval between uses of the stick-shaped substrate 150, the lower the initial temperature is considered to be. On the other hand, the control unit 116 may shorten the preheating period the shorter the time elapsed since the previous heating based on the heating profile was completed. This is because the shorter the interval between uses of the stick-shaped substrate 150, the higher the initial temperature is considered to be. This configuration also makes it possible to prevent inconveniences associated with excessive or insufficient preheating due to high or low initial temperatures.

[0100] The series of processes performed by each device described herein may be realized using software, hardware, or a combination of software and hardware. The programs constituting the software are stored in advance, for example, on a recording medium (more specifically, a non-transitory storage medium readable by a computer) provided inside or outside each device. Each program is then loaded into RAM when executed by a computer controlling each device described herein, and executed by a processor such as a CPU. Examples of the recording medium include a magnetic disk, an optical disk, a magneto-optical disk, and a flash memory. Furthermore, the computer programs may be distributed, for example, via a network, without using a recording medium.

[0101] Furthermore, the processes described herein using flowcharts and sequence diagrams do not necessarily have to be performed in the order shown. Some process steps may be performed in parallel. Furthermore, additional process steps may be employed, and some process steps may be omitted.

[0102] The following configurations also fall within the technical scope of the present invention. (1) a heating section that heats a substrate containing an aerosol source to generate an aerosol; a control unit that controls the operation of the heating unit based on a temperature setting that defines a time series transition of a target temperature that is a target value of the temperature of the heating unit; Equipped with the temperature setting includes a temperature rise period in which the temperature of the heating unit is raised from an initial temperature, which is the temperature of the heating unit at the start of heating, to a predetermined temperature; The control unit controls the length of the temperature rise period based on the initial temperature. Suction device. (2) the temperature rise period comprises a first period having a variable length and a second period following the first period and having a fixed length; The control unit controls the length of the first period based on the initial temperature. The suction device according to (1) above. (3) the control unit shortens the first period as the initial temperature increases, and lengthens the first period as the initial temperature decreases. The suction device according to (2) above. (4) the control unit changes the length of the first period determined based on the initial temperature based on the temperature of the heating unit during the first period. The suction device according to (2) or (3) above. (5) the control unit ends the first period and switches to the second period when the temperature of the heating unit at the end of the first period, the length of which is determined based on the initial temperature, has reached the predetermined temperature. The suction device according to (4) above. (6) the control unit extends the first period if the temperature of the heating unit at the end of the first period, the length of which is determined based on the initial temperature, has not reached the predetermined temperature. The suction device according to (4) or (5) above. (7) the control unit extends the first period, the length of which is determined based on the initial temperature, by a time period corresponding to the initial temperature. The suction device according to (6) above. (8) the control unit stops the operation of the heating unit when the temperature of the heating unit at the end of the extended first period has not reached the predetermined temperature. The suction device according to (6) or (7) above. (9) when the temperature of the heating unit reaches the predetermined temperature before the end of the first period, the length of which is determined based on the initial temperature, the control unit ends the first period and switches to the second period. The suction device according to any one of (4) to (8) above. (10) the suction device includes a plurality of the heating units, the control unit controls the lengths of the first periods at the plurality of temperature settings corresponding to the plurality of heating units so that they are different from each other. The suction device according to any one of (2) to (9) above. (11) the control unit sets the first period in the temperature setting corresponding to the heating unit arranged on the upstream side among the plurality of heating units to be longer than the first period in the temperature setting corresponding to the heating unit arranged on the downstream side. The suction device according to (10) above. (12) the control unit controls the operation of the heating unit so as to increase the temperature of the heating unit from the initial temperature to the predetermined temperature during the first period, and to maintain the temperature of the heating unit at the predetermined temperature during the second period. The suction device according to any one of (2) to (11) above. (13) The temperature rise period is a period from the start of heating to the time when the user can inhale the aerosol. The suction device according to any one of (1) to (12) above. (14) the control unit controls the length of the temperature rise period based on the temperature of the heating unit during the temperature rise period. The suction device according to any one of (1) to (13) above. (15) the control unit controls the length of the temperature rise period based on the elapsed time since the previous end of heating based on the temperature setting. The suction device according to any one of (1) to (14) above. (16) a heating section that heats a substrate containing an aerosol source to generate an aerosol; a control unit that controls the operation of the heating unit based on a temperature setting that defines a time series transition of a target temperature that is a target value of the temperature of the heating unit; Equipped with the temperature setting includes a temperature rise period in which the temperature of the heating unit is raised from an initial temperature, which is the temperature of the heating unit at the start of heating, to a predetermined temperature; The control unit controls the length of the temperature rise period based on the initial temperature. A substrate containing the aerosol source that is heated by an aspirator to generate the aerosol. (17) A control method for controlling a suction device having a heating unit that generates an aerosol by heating a substrate containing an aerosol source, comprising: Controlling the operation of the heating unit based on a temperature setting that defines a time series transition of a target temperature, which is a target value of the temperature of the heating unit; Including, the temperature setting includes a temperature rise period in which the temperature of the heating unit is raised from an initial temperature, which is the temperature of the heating unit at the start of heating, to a predetermined temperature; controlling the operation of the heating unit includes controlling the length of the temperature rise period based on the initial temperature; A control method comprising: [Explanation of symbols]

[0103] 100 Suction device 111 Power supply section 112 Sensor unit 113 Notification Department 114 Storage section 115 Communications Department 116 Control Unit 121 Heating section 140 Holding part 141 Interior Space 142 Aperture 143 Bottom 150 Stick-type base material 151 Base material part 152 Mouthpiece

Claims

1. a heating section that heats a substrate containing an aerosol source to generate an aerosol; a control unit that controls the operation of the heating unit based on a temperature setting that defines a time series transition of a target temperature that is a target value of the temperature of the heating unit; Equipped with the temperature setting includes a temperature rise period in which the temperature of the heating unit is raised from an initial temperature, which is the temperature of the heating unit at the start of heating, to a predetermined temperature; the temperature rise period comprises a first period having a variable length and a second period following the first period and having a fixed length; the control unit controls the operation of the heating unit so as to increase the temperature of the heating unit from the initial temperature to the predetermined temperature during the first period and to maintain the temperature of the heating unit at the predetermined temperature during the second period; the control unit controls the length of the first period based on the initial temperature, and if the temperature of the heating unit at the end of the first period has not reached the predetermined temperature, extends the first period by a length corresponding to the initial length of the first period determined based on the initial temperature of the heating unit. Suction device.

2. the control unit shortens the first period as the initial temperature increases, and lengthens the first period as the initial temperature decreases; 10. The suction device of claim 1.

3. the control unit ends the first period and switches to the second period when the temperature of the heating unit at the end of the first period has reached the predetermined temperature.

10. The suction device of claim 1.

4. the control unit stops the operation of the heating unit when the temperature of the heating unit at the end of the extended first period has not reached the predetermined temperature.

10. The suction device of claim 1.

5. the control unit, when the temperature of the heating unit reaches the predetermined temperature before the end of the first period, the length of which is determined based on the initial temperature, ends the first period and switches to the second period. The suction device according to any one of claims 1 to 4.

6. the suction device includes a plurality of the heating units, the control unit controls the lengths of the first periods at the plurality of temperature settings corresponding to the plurality of heating units so that the lengths of the first periods are different from each other. The suction device according to any one of claims 1 to 5.

7. the control unit sets the first period in the temperature setting corresponding to the heating unit arranged on the upstream side among the plurality of heating units to be longer than the first period in the temperature setting corresponding to the heating unit arranged on the downstream side.

7. The suction device according to claim 6.

8. The temperature rise period is a period from the start of heating to the time when the user can inhale the aerosol. The suction device according to any one of claims 1 to 7.

9. the control unit controls the length of the temperature rise period based on the temperature of the heating unit during the temperature rise period. The suction device according to any one of claims 1 to 8.

10. the control unit controls the length of the temperature rise period based on the elapsed time since the previous end of heating based on the temperature setting. The suction device according to any one of claims 1 to 8.

11. A control method for controlling a suction device having a heating unit that generates an aerosol by heating a substrate containing an aerosol source, comprising: Controlling the operation of the heating unit based on a temperature setting that defines a time series transition of a target temperature, which is a target value of the temperature of the heating unit; Including, the temperature setting includes a temperature rise period in which the temperature of the heating unit is raised from an initial temperature, which is the temperature of the heating unit at the start of heating, to a predetermined temperature; the temperature rise period comprises a first period having a variable length and a second period following the first period and having a fixed length; an operation of the heating unit is controlled so as to increase the temperature of the heating unit from the initial temperature to the predetermined temperature during the first period and to maintain the temperature of the heating unit at the predetermined temperature during the second period; controlling the operation of the heating unit includes controlling the length of the first period based on the initial temperature, and if the temperature of the heating unit at the end of the first period has not reached the predetermined temperature, extending the first period by a length corresponding to the initial length of the first period determined based on the initial temperature of the heating unit; A control method comprising:

Citation Information

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