Battery unit, flavor inhaler, method for controlling battery unit, and program

The battery unit in flavor inhalers controls power supply based on output voltage changes, addressing inefficiencies and safety issues by authenticating loads and managing connections, ensuring optimal operation.

JP7728420B2Active Publication Date: 2025-08-22JAPAN TOBACCO INC
View PDF 13 Cites 0 Cited by

Patent Information

Application Number
JP2024151207
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-09-03
Publication Date
2025-08-22
Estimated Expiration
2037-03-06

AI Technical Summary

Technical Problem

Existing flavor inhalers lack effective control mechanisms for managing power supply to atomizers based on the load's electrical characteristics, leading to potential inefficiencies and safety risks.

Method used

A battery unit with a detection unit to monitor output voltage changes, a control unit to execute specific power supply modes, and a switch to manage connections to loads or chargers, ensuring controlled power delivery and authentication of the load based on voltage changes.

Benefits of technology

Enhances safety and efficiency by ensuring proper power supply to atomizers, detecting load authenticity, and preventing abnormal conditions, thereby optimizing the operation of flavor inhalers.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007728420000001
    Figure 0007728420000001
  • Figure 0007728420000002
    Figure 0007728420000002
  • Figure 0007728420000003
    Figure 0007728420000003
Patent Text Reader

Abstract

To provide a battery unit which has a connection part that can be connected to an atomizer for atomizing an aerosol source, a flavor sucker including the battery unit, a method for controlling the battery unit and a program for executing the method.SOLUTION: A battery unit comprises: a power source; a detection part which detects the output voltage of the power source; a connection part to which a load for atomizing an aerosol source or heating a flavor source can be connected; and a control part which can execute the power supply mode of supplying the power to the load from the power source. The control part executes specific control different from the power supply to the load on the basis of a change amount per prescribed period of the output voltage in the power supply mode.SELECTED DRAWING: Figure 8
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a battery unit including a connector that can be connected to an atomizer that atomizes an aerosol source, a flavor inhaler including the battery unit, a method for controlling the battery unit, and a program for executing the method. [Background technology]

[0002] Non-combustion flavor inhalers (electronic cigarettes) have been proposed as an alternative to cigarettes for inhaling flavors without combustion (Patent Documents 1 to 6). The flavor inhaler includes at least one of an aerosol source and a flavor source, an atomizer which is an electrical load that atomizes the flavor components contained in at least one of the aerosol source and the flavor source, a power source that supplies power to the atomizer, and a control unit that controls the atomizer and the power source.

[0003] Patent Document 1 describes that the atomizer is configured to be detachable from a battery unit equipped with a power source and a control unit, and discloses that the atomizer connected to the battery unit can be identified using identification information such as an ID.

[0004] Patent Document 2 discloses an electronic smoking device in which an atomizer and a charger can be alternatively connected to a common connection portion (interface) of a battery unit.

[0005] Patent Document 3 discloses detecting overcurrent and short circuits in electronic circuits within an electronic cigarette. Patent Document 4 discloses a fuse that prevents overheating of an atomizer within an electronic cigarette. Patent Document 5 discloses blowing a fuse in an electronic circuit in the event of a system abnormality in an aerosol generating device such as an electric smoking device, rendering the system unusable. Patent Document 6 discloses detecting overcurrent and overvoltage during charging of a battery unit in an electronic cigarette.

[0006] Patent Document 7 discloses a charging monitoring device that monitors the charging state of a battery when the battery is being charged. This charging monitoring device detects abnormalities in the charging state by monitoring the change in the voltage of the battery being charged over time or the change in the voltage of the battery being charged relative to the amount of electricity charged, and also by monitoring the measured voltage value of the battery obtained by voltage measurement means.

[0007] Cited Document 8 discloses a user authentication technology for a flavor inhaler based on the suction pressure when the user puffs.

[0008] Reference 9 discloses a technology for easily disabling a flavor inhaler. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] US Patent No. 2016 / 0174076 [Patent Document 2] International Publication No. 2016 / 119626 [Patent Document 3] US Patent No. 2014 / 0254055 [Patent Document 4] US Patent No. 2014 / 0283856 [Patent Document 5] Special table number 2014-501106 [Patent Document 6] US Patent No. 2015 / 0036250 [Patent Document 7] Japanese Patent Application Laid-Open No. 2003-317811 [Patent Document 8] WO 2015 / 167000 [Patent Document 9] Special table No. 11-507718 Summary of the Invention

[0010] A first feature is a battery unit including a power source, a detection unit that detects the output voltage of the power source, a connection unit that can connect a load that atomizes an aerosol source or heats a flavor source, and a control unit that can execute a power supply mode that supplies power from the power source to the load, wherein the control unit executes specific control that is different from the supply of power to the load based on the amount of change in the output voltage per predetermined period in the power supply mode.

[0011] A second feature is summarized as the first feature, wherein the specific control is authentication of the load.

[0012] A third feature is summarized as the second feature, wherein authentication of the load is continued when the amount of change in the output voltage per predetermined period falls within a predetermined range.

[0013] A fourth feature is summarized as the second or third feature, wherein when the amount of change in the output voltage per predetermined period is not within a predetermined range, authentication of the load is cancelled.

[0014] A fifth feature is summarized as follows: in the fourth feature, when authentication of the load is cancelled, the control unit determines whether to authenticate the load based on the amount of change in the output voltage per the predetermined period, triggered by detection of a recovery operation.

[0015] A sixth feature is summarized as being related to any of the first to fifth features, wherein the connection unit is capable of connecting the load to a charger that charges the power source, the control unit is capable of executing the power supply mode and a charging mode in which the charger charges the power source, and the specific control is control for determining an abnormality in the charging mode.

[0016] A seventh feature is summarized in that, in the sixth feature, when an amount of decrease in the output voltage per predetermined period in the charging mode is equal to or less than a first threshold value set based on an amount of decrease in the output voltage per predetermined period in the power supply mode, the control unit determines an abnormality in the charging mode.

[0017] An eighth feature is summarized as the seventh feature, wherein the first threshold is set to be equal to or less than the amount of change in the output voltage per predetermined period in the power supply mode.

[0018] A ninth feature is summarized as follows: in any of the sixth to eighth features, the battery unit includes a switch capable of electrically connecting and disconnecting the power source to the load or the charger connected to the connection portion, and the control unit turns on the switch when a first condition is satisfied in the power supply mode, and turns on the switch when a second condition different from the first condition is satisfied in the charging mode.

[0019] A tenth feature is summarized as the ninth feature, wherein the battery unit includes a detection unit that detects an operation for using the load, and the first condition is a condition based on the detection of the operation.

[0020] An eleventh feature is summarized as the ninth or tenth feature, wherein the second condition is a condition based on connection of the charger to the connection portion.

[0021] A twelfth feature is a battery unit according to any one of the first to eleventh features, The present invention is a flavor inhaler including a load.

[0022] A thirteenth feature is a method for controlling a battery unit including a control unit capable of executing a power supply mode in which a load that atomizes an aerosol source or heats a flavor source is connected to a connection part, the method including the steps of detecting an output voltage of the power source and executing specific control different from the power supply to the load based on an amount of change in the output voltage per predetermined period in the power supply mode.

[0023] A fourteenth feature is summarized as a program for causing a battery unit to execute the method according to the thirteenth feature.

[0024] Here, a few points about the terminology used in the claims are provided. The "amount of decrease in output voltage per predetermined period" refers to the amount by which the output voltage has decreased over the predetermined period. In other words, it refers to the amount by which the output voltage at the end of the predetermined period is smaller than the output voltage at the beginning of the predetermined period. For example, the "amount of decrease in output voltage per predetermined period" can be calculated by subtracting the output voltage at the beginning of the predetermined period from the output voltage at the end of the predetermined period. If the "amount of decrease in output voltage per predetermined period" is a negative value, the output voltage decreases over the predetermined period. On the other hand, if the "amount of decrease in output voltage per predetermined period" is a positive value, the output voltage increases over the predetermined period. When comparing two "amounts of decrease in output voltage per predetermined period" that are different in amount, the smaller "amount of decrease in output voltage per predetermined period" refers to the one in which the output voltage has decreased more over the predetermined period, in other words, the one in which the output voltage at the end of the predetermined period is smaller than the output voltage at the beginning of the predetermined period. [Brief explanation of the drawings]

[0025] [Figure 1] FIG. 1 is an exploded view showing a flavor inhaler according to one embodiment. [Figure 2] FIG. 2 is a diagram showing an atomization unit according to one embodiment. [Figure 3] FIG. 3 is a diagram showing an electric circuit provided in the battery unit. [Figure 4] FIG. 4 is a diagram showing the electric circuit of the atomization unit and the battery unit when a load is connected. [Figure 5] FIG. 5 is a diagram showing the electric circuit of the charger and the battery unit when the charger is connected. [Figure 6] FIG. 6 is a flowchart showing a control flow for transitioning to the power supply mode and the charging mode. [Figure 7] FIG. 7 is a flowchart illustrating a power supply mode according to one embodiment. [Figure 8]FIG. 8 is a flowchart illustrating an example of a load authentication process according to an embodiment. [Figure 9] FIG. 9 is a flowchart illustrating a charging mode according to one embodiment. [Figure 10] FIG. 10 is a graph showing an example of the relationship between the deterioration of a power supply and the output voltage of the power supply. [Figure 11] FIG. 11 is a flowchart illustrating an example of an abnormality process according to an embodiment. [Figure 12] FIG. 12 is a flowchart illustrating another example of anomaly processing according to an embodiment. [Figure 13] FIG. 13 is a diagram showing an electric circuit of the flavor inhaler according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0026] Hereinafter, embodiments will be described. In the following description of the drawings, the same or similar parts are denoted by the same or similar reference numerals. However, it should be noted that the drawings are schematic and the ratios of the dimensions may differ from those of the actual parts.

[0027] Therefore, specific dimensions should be determined with reference to the following explanation. Of course, there may be cases where the dimensional relationships and ratios differ between the drawings.

[0028] [Disclosure Summary] A flavor inhaler, such as an electronic cigarette, includes an electrical load that atomizes an aerosol source or heats the flavor source. The electrical load uses power supplied from a power source to atomize the aerosol source or heat the flavor source. Because power is supplied from the power source to the electrical load, which is electrically connected to an electronic circuit within the flavor inhaler, the output voltage of the power source decreases. The inventors of the present application have noted that the amount of change in this output voltage varies depending on the specifications of the electrical load, and have found that this amount of change in the output voltage of the power source can be effectively utilized to control the battery unit and the flavor inhaler.

[0029] According to the outline of the disclosure, the battery unit includes a power source, a detection unit that detects the output voltage of the power source, a connection unit to which a load that atomizes an aerosol source or heats a flavor source can be connected, and a control unit that can execute a power supply mode in which the power source supplies power to the load. The control unit executes specific control different from the power supply to the load based on the amount of change in the output voltage per predetermined period in the power supply mode.

[0030] [First embodiment] (Non-burning flavor inhaler) The flavor inhaler according to the first embodiment will be described below. Fig. 1 is an exploded view showing a flavor inhaler according to one embodiment. Fig. 2 is a view showing an atomization unit according to one embodiment. Fig. 3 is a view showing an electric circuit provided in a battery unit. Fig. 4 is a view showing an electric circuit of a load and a battery unit when the load is connected. Fig. 5 is a view showing an electric circuit of a charger and a battery unit when the charger is connected.

[0031] The flavor inhaler 100 may be a non-combustion type flavor inhaler for inhaling inhaled components (smoking flavor components) without combustion. The flavor inhaler 100 may have a shape extending along a predetermined direction A, which is the direction from the non-suction end E2 toward the mouth end E1.

[0032] The flavor inhaler 100 may include a battery unit 112 and an atomization unit 111. The atomization unit 111 may include an aerosol source that generates an aerosol and / or a flavor source that generates a flavor component, and an electrical load 111R that atomizes the aerosol source or heats the flavor source. The load 111R may be any element that can generate an aerosol and / or a flavor component from the aerosol source and / or the flavor source by receiving power.

[0033] The battery unit 112 includes a power source 40 and a control unit 51. The power source 40 stores power necessary for the operation of the flavor inhaler 100. The power source 40 supplies power to the control unit 51 and the load of the atomizing assembly 120. The power source 40 may be a rechargeable battery such as a lithium-ion secondary battery.

[0034] The battery unit 112 has a connection part 120 that can connect the load 111R of the atomization unit 111 and a charger 200 that charges the power source 40. The connection part 120 of the battery unit 112 is configured to be able to alternatively connect the load 111R and the charger 200. In other words, the charger 200 or the load 111R is exclusively connected to the connection part 120 of the battery unit 112, and the charger 200 and the load 111R are not connected at the same time. However, this does not apply if the battery unit 112 has multiple connection parts 120.

[0035] The connection part 120 of the battery unit 112 has an electric terminal 120t for electrically connecting to the load 111R of the atomization unit 111 and the charger 200. The electric terminal 120t is It is electrically connected to the power supply 40 and the control unit 51 (see FIG. 3).

[0036] When the atomization unit 111 is connected to the connection part 120 of the battery unit 112, the load 111R provided on the atomization unit 111 is electrically connected to the power supply 40 of the battery unit 112 via the electrical terminal 120t (see FIG. 4). Also, when the charger 200 is connected to the connection part 120 of the battery unit 112, the charger 200 is electrically connected to the power supply 40 of the battery unit 112 via the electrical terminal 120t (see FIG. 5).

[0037] The battery unit 112 may have an inlet 112A for allowing air to flow in from the outside. The air flowing in from the inlet 112A passes through a flow path provided inside the atomizing unit 111 and reaches a mouthpiece provided at the mouthpiece end E1 of the flavor inhaler 100. Note that another inlet may be provided in the atomizing unit 111 to be used in place of or together with the inlet 112A. As another variation, the atomizing unit 111 and the battery unit 112 may be configured such that an inlet is formed at the connection point (boundary point) when the atomizing unit 111 and the battery unit 112 are connected.

[0038] A detailed example of the atomization unit 111 will be described below with reference to FIGS. 1 and 2. The atomization unit 111 may include a reservoir 111P, a wick 111Q, and a load 111R. The reservoir 111P stores a liquid aerosol source. For example, the reservoir 111P may be a porous body made of a material such as a resin web. The wick 111Q is a liquid retention member that draws the aerosol source from the reservoir 111P by utilizing capillary action or the like. For example, the wick 111Q is made of glass fiber, porous ceramic, or the like.

[0039] The load 111R may be a resistive heating element that atomizes the aerosol source held by the wick 111Q. The resistive heating element may be, for example, a resistive heating element (e.g., a heating wire) wound around the wick 111Q.

[0040] The air flowing in from the inlet hole 112A passes near the load 111R in the atomization unit 111. The aerosol generated by the load 111R flows toward the mouthpiece together with the air.

[0041] The aerosol source may be liquid at room temperature. For example, a polyhydric alcohol may be used as the aerosol source. The aerosol source itself may contain a flavor component. Alternatively, the aerosol source may contain a tobacco material or an extract derived from a tobacco material that releases a flavor component upon heating.

[0042] In the above embodiment, an example of an aerosol source that is liquid at room temperature has been described in detail. However, instead of this, an aerosol source that is solid at room temperature can also be used.

[0043] The atomization unit 111 may include a replaceable flavor unit 130. The flavor unit 130 may include a cylindrical body 131, a flavor source 132, a mesh 133A, and a filter 133B. The cylindrical body 131 has a cylindrical shape extending along a predetermined direction A. The cylindrical body 131 includes a holder 134 that holds the flavor source 132.

[0044] The flavor source 132 is provided on the flow path of air sucked through the mouthpiece, closer to the mouthpiece than the atomization unit 111. The flavor source 132 imparts flavor components to the aerosol atomized by the load 111R of the atomization unit 111. The flavor imparted to the aerosol by the flavor source 132 is carried to the mouthpiece of the flavor inhaler 100.

[0045] The flavor source 132 may be solid at room temperature. As an example, the flavor source 132 is composed of raw material pieces of plant material that impart flavor components to the aerosol. The raw material pieces that make up the flavor source 132 may be formed into particles of tobacco material such as cut tobacco or tobacco raw material. Alternatively, the flavor source 132 may be a formed product of tobacco material that is formed into a sheet. Furthermore, the raw material pieces that make up the flavor source 132 may be formed from plants other than tobacco (e.g., mint, herbs, etc.). The flavor source 132 may be imparted with a flavoring such as menthol.

[0046] The mesh 133A is provided to close the opening of the cylindrical body 131 on the non-smoking side of the flavor source 132. The filter 133B is provided to close the opening of the cylindrical body 131 on the mouth side of the flavor source 132. The mesh 133A has a roughness that does not allow the raw material pieces that make up the flavor source 132 to pass through. The filter 133B is made of a breathable material. The filter 133B has a roughness that does not allow the raw material pieces that make up the flavor source 132 to pass through.

[0047] In this embodiment, the atomization unit 111 includes both an aerosol source and a flavor source. Alternatively, the atomization unit 111 may include only one of an aerosol source and a flavor source.

[0048] In this embodiment, the aerosol is inhaled by the user of the flavor inhaler 100 by placing his / her mouth near the filter 113B, and therefore the flavor unit 130 serves as a mouthpiece. Alternatively, a mouthpiece separate from the flavor unit 130 may be provided.

[0049] In this embodiment, the load 111R is provided as an element that atomizes the aerosol source. Alternatively, the load 111R may be provided as an element that heats the flavor source 132. Alternatively, the load 111R may be provided as an element that atomizes the aerosol source and heats the flavor source 132.

[0050] In this embodiment, the load 111R is provided near the reservoir 111P that stores the aerosol source. Alternatively, the load 111R may be provided near the flavor unit 130 that houses the flavor source 132. The number of the load 111R is not limited to one, and the load 111R may be provided near the reservoir 111P and the flavor unit 130, respectively.

[0051] The load 111R is not limited to a resistive heating element, but may be any element capable of atomizing the aerosol source or heating the flavor source. For example, the load 111R may be a heating element such as a heater or an element such as an ultrasonic generator. Examples of heating elements include a heating resistor, a ceramic heater, and an induction heater.

[0052] Next, a specific example of the configuration of the battery unit 112 will be described. The battery unit 112 includes a switch 140 that can electrically connect and disconnect the load 111R or the charger 200 connected to the connection unit 120 to the power supply 40. The switch 140 is opened and closed by the control unit 51. The switch 140 may be configured by, for example, a MOSFET.

[0053] When the switch 140 is turned on with the load 111R connected to the connection unit 120, power is supplied from the power supply 40 to the load 111R (see FIG. 4). When the switch 140 is turned on with the charger 200 connected to the connection unit 120, the power supply 40 is charged by the charger 200 (see FIG. 5).

[0054] The battery unit 112 determines whether the charger 200 is connected to the connection unit 120. The connection unit 120 has a determination unit that determines whether a charger is connected based on, for example, a potential difference between electrical terminals 120t provided on the connection unit 120. In this embodiment, the determination unit includes a pair of electrical resistors 150, 152 arranged in series. One of the pair of electrical resistors 150 is provided at a position that connects the connection terminals 120t. The other of the pair of electrical resistors 152 is connected to one terminal of a control module that constitutes the control unit 51.

[0055] The electrical resistance values ​​150 and 152 of the pair of electrical resistors may be known. The electrical resistance values ​​of the pair of electrical resistors 150 and 152 may be sufficiently high compared to the load 111R, and may be, for example, 10 kΩ.

[0056] The potential at the point between the pair of electrical resistors 150, 152 differs depending on whether nothing is connected to the electrical terminal 120t or the charger 200 is connected to the electrical terminal 120t. Therefore, by receiving a signal (hereinafter referred to as the "WAKE signal") from the other of the pair of electrical resistors 152, the control unit 51 can infer whether nothing is connected to the connection unit 120 or whether the charger 200 is connected to the connection unit 120. Specifically, when the control unit 51 detects a WAKE signal of a first level (e.g., HIGH), it can infer that the charger 200 is not connected to the connection unit 120. Furthermore, when the control unit 51 detects a WAKE signal of a second level (e.g., LOW), it can infer that the charger 200 is connected to the connection unit 120.

[0057] The difference between the WAKE signal when the load 111R is connected to the connection unit 120 and the WAKE signal when the charger 200 is connected to the connection unit 120 will be described in more detail.

[0058] 3, when switch 140 is OFF and charger 200 is not connected to connector 120, a dark current discharged from power supply 40 as standby power flows through electrical resistors 150 and 152. The voltage drop across electrical resistors 150 and 152 at this time is detected by control unit 51 as a first-level WAKE signal.

[0059] 5, when charger 200 is connected to connection unit 120, the current flowing from charger 200 to power source 40 is preferentially distributed to power source 40, which has the lowest resistance value in the parallel circuit of electrical resistor 150 and power source 40. At this time, the potential at the terminal of electrical resistor 152 connected to electrical resistor 150 drops to a level equivalent to ground, so there is almost no voltage drop across electrical resistor 152, and control unit 51 detects a second-level WAKE signal.

[0060] The first level and the second level may be values ​​having predetermined ranges that do not overlap each other.

[0061] In this embodiment, the determination unit determines whether or not the charger 200 is connected to the connection unit 120. Alternatively, the determination unit may determine a state in which neither the charger 200 nor the load 111R is connected to the connection unit 120, a state in which the charger 200 is connected to the connection unit 120, and a state in which the load 111R is connected to the connection unit 120. By setting the electrical resistance value of the load 111R to a value that is sufficiently larger than that of the electrical resistor 150, the WAKE signal detected by the control unit 51 will exhibit different levels in these three states.

[0062] 4, when switch 140 is OFF and load 111R is connected to connection unit 120, the current discharged from power supply 40 flows preferentially through load 111R, which has a lower resistance value in the parallel circuit of load 111R and electrical resistor 150, and then flows through electrical resistor 152. At this time, control unit 51 detects the voltage drop across load 111R and electrical resistor 152 as a WAKE signal of a third level that does not overlap with the first and second levels.

[0063] The battery unit 112 may have a detection unit 160 that detects the output voltage of the power supply 40. The detection unit 160 may be provided in an electric circuit within the battery unit 112. The detection unit 160 may be configured by any well-known electric module. In this embodiment, the control unit 51 and the detection unit 160 are configured by separate modules. Alternatively, the control unit 51 and the detection unit 160 may be configured by a single module.

[0064] The battery unit 112 may include a disconnecting means 170 that at least temporarily disables the supply of power from the power source 40 to the load 111R. The disconnecting means 170 may be provided in the electric circuit of the battery unit 112 between the power source 40 and the electric terminal 120t.

[0065] The disconnecting means 170 is preferably configured to be switchable between a first mode in which power supply from the power source 40 to the load 111R is temporarily disabled so that power supply can be resumed by the control unit 51, and a second mode in which power supply from the power source 40 to the load 111R is irreversibly disabled so that power supply cannot be resumed by the control unit 51. The control unit 51 may be configured to be able to control the disconnecting means 170 between the first mode and the second mode.

[0066] As an example of a specific configuration, the disconnecting means 170 may include a fuse 172. The disconnecting means 170 may be branched in parallel from a line L1 on which the fuse 172 is provided to a normal line L2 and an abnormal line L3. In the normal line L2, a first electrical resistor 174 and a first switch 175 may be connected in series with each other. In the abnormal line L3, a second electrical resistor 176 and a second switch 177 may be connected in series with each other.

[0067] When both the first switch 175 and the second switch 177 are OFF, power cannot be supplied from the power supply 40 to the load 111R, and the power supply 40 cannot be charged by the charger 200. During normal operation, that is, when no abnormal situation occurs, the first switch 175 is ON and the second switch 177 is OFF. As a result, the load 111R or the charger 200 connected to the connection unit 120 is connected to the power supply 40 via the normal line L2.

[0068] In the first mode, both the first switch 175 and the second switch 177 are turned off. This electrically disconnects the power supply 40 from the load 111R connected to the connection unit 120, temporarily disabling power supply from the power supply 40 to the load 111R.

[0069] In the second mode, the first switch 175 and the second switch 177 are turned ON. As a result, current flows through both the normal line L2 and the abnormal line L3, and a current larger than that during normal operation flows through the fuse 172, which results in the fuse 172 melting. Melting the fuse 172 irreversibly disables the power supply from the power source 40 to the load 111R so that the control unit 51 cannot resume power supply to the load 111R.

[0070] Alternatively, in the second mode, first switch 175 may be OFF and second switch 177 may be ON, instead of the above-described embodiment. Even in this case, if the resistance value of second electrical resistor 176 is sufficiently smaller than the resistance value of first electrical resistor 174, a current larger than that during normal operation flows through fuse 172, and as a result, fuse 172 can be blown.

[0071] The resistance values ​​of the first electrical resistor 174 and the second electrical resistor 176 may be set so that the fuse 172 does not melt in the first mode and melts in the second mode.

[0072] In addition, the abnormal line L3 does not have the second resistor 176, but has only the conductor resistance of the lead wire. It may be a so-called short circuit line.

[0073] 3 to 5, the disconnecting means 170 may be a means capable of executing only the first mode, which temporarily disables the power supply from the power source 40 to the load 111R so that the power supply can be resumed by the control unit 51. In this case, the disconnecting means 170 may be configured with only a single switch and may not include the fuse 172.

[0074] Furthermore, the disconnecting means 170 may be a means capable of executing only the second mode in which power supply from the power source 40 to the load 111R is irreversibly disabled so that power supply from the power source 40 to the load 111R cannot be resumed by the control unit 51. In this case, the disconnecting means 170 does not need to include the first switch 175.

[0075] A DC-DC converter may be used as another example of the cutting means 170. When blowing the fuse 172, the output current of the DC-DC converter is controlled so that a current equal to or greater than the current value at which the fuse 172 blows can be passed through the fuse 172.

[0076] The flavor inhaler 100 may have a power supply degradation estimation means for estimating the degradation state (lifespan) of the power supply 40. The power supply degradation detection means may be any known means, such as a current integration method. As a specific example, the degradation state of the power supply 40 can be estimated by calculating the total integrated value of the current charged and discharged by the power supply 40. Note that instead of using the current integration method, the power supply degradation estimation means may estimate the degradation state of the power supply 40 from changes accompanying an increase in the impedance of the power supply 40, such as an increase in the internal temperature of the power supply 40 or a decrease in the power value or voltage value output by the power supply 40.

[0077] The control unit 51 may be configured to be able to execute a plurality of operation modes. The operation modes include a power supply mode and a charging mode. The power supply mode is a mode in which power can be supplied from the power source 40 to the load 111R. The charging mode is a mode in which charging can be performed from the charger 200 to the power source 40.

[0078] The flavor inhaler 100 may include a detection unit 20 that detects an operation for using the load 111R. The detection unit 20 is preferably provided in the battery unit 112. A signal from the detection unit 20 can be detected by the control unit 51.

[0079] The detection unit 20 may be, for example, a suction sensor that detects inhalation from the mouthpiece of the flavor inhaler 100 by the user. The suction sensor may be a MEMS (Micro Electro Mechanical Systems) sensor having a capacitor, and outputs a value (for example, a voltage value) indicating the capacitance of the capacitor according to the differential pressure generated in the flow path by the suction action. The output value may be recognized as a pressure, or as a flow rate or flow velocity per unit time. Instead of a suction sensor, the detection unit 20 may be, for example, configured as a push button that detects the user pressing the button.

[0080] The flavor inhaler 100 may have a notification means 30. The notification means 30 is preferably provided in the battery unit 112. Examples of the notification means 30 include a light-emitting element such as an LED, a sound output device, and a sensory feedback device such as Haptics. When a sensory feedback device is used as the notification means, it may be equipped with, for example, an oscillator element, and can notify the user by transmitting vibrations. The control unit 51 can control the notification means 30 to notify the user of a difference in the operation mode of the flavor inhaler, an abnormality occurring in the flavor inhaler, etc.

[0081] (Transition to power supply mode or charging mode) FIG. 6 shows an example of a control flow for transitioning to the power supply mode M1 and the charging mode M2.

[0082] The control unit 51 monitors the WAKE signal, and when the WAKE signal is at the first level, the process proceeds to step S30 (step S10). Then, the control unit 51 determines whether the detection unit 20 has detected an operation for using the load 111R (step S30), and if the detection unit 20 has detected an operation for using the load 111R, the process proceeds to power supply mode M1 (if step S30 is Yes), and if the detection unit 20 has not detected an operation for using the load 111R, the process returns to the determination of step S10 (if step S30 is No).

[0083] Furthermore, when the WAKE signal is at the second level, the control unit 51 transitions to the charging mode M2 ​​(step S20).

[0084] The present example is not limiting, and the control unit 51 may transition to the power supply mode M1 based on any signal indicating that the load 111R has been attached to the connection unit 120 of the battery unit 112. Similarly, the control unit 51 may transition to the charging mode M2 ​​based on any signal indicating that the charger 200 has been attached to the connection unit 120 of the battery unit 112.

[0085] (Power supply mode) FIG. 7 is a flowchart showing power supply modes according to an embodiment. When a first condition is satisfied in power supply mode M1, the control unit 51 turns on the switch 140 (step S102). Turning on the switch 140 starts power supply from the power supply 40 to the load 111R. Before turning on the switch 140, the output voltage of the power supply 40 may be stored in the control unit 51 (step S100). The amount of power supplied from the power supply 40 to the load 111R may be controlled arbitrarily. For example, the amount of power supplied from the power supply 40 to the load 111R may be adjusted by pulse width control. The duty ratio related to the pulse width may be a value smaller than 100%. The amount of power supplied from the power supply 40 to the load 111R may be adjusted by pulse frequency control instead of pulse width control.

[0086] In the present embodiment, the first condition may be a condition based on the detection of an operation for using the load 111R. As a specific example, the first condition may be the detection of an operation for using the load 111R itself. That is, when the detection unit 20 detects an operation for using the load 111R, the control unit 51 may turn on the switch 140. For example, if the detection unit 20 is a suction sensor, the control unit 51 may turn on the switch 140 when the suction sensor detects a suction action by the user. Furthermore, if the detection unit 20 is a push button, the control unit 51 may turn on the switch 140 when it detects that the push button has been pressed by the user.

[0087] Instead of the above specific example, the first condition may be a condition that an operation for using the load 111R is detected and another condition is satisfied. For example, when the detection unit 20 detects an operation for using the load 111R, if the condition that the user is pressing a push button is satisfied, the control unit 51 may turn on the switch 140. As another example, when the detection unit 20 detects an operation for using the load 111R, if the condition that the load 111R is authenticated is satisfied as described below, the control unit 51 may turn on the switch 140.

[0088] Before power is supplied to the load 111R (the power supply is in an unloaded state) and while power is being supplied to the load 111R (the power supply is in a loaded state), the detection unit 160 detects the output voltage of the power supply 40 at predetermined time intervals, and the detected output voltage of the power supply 40 is stored in the control unit 51 (steps S100, S104, S106, S108). The output voltage of the power supply 40 detected by the detection unit 160 during the power supply mode M1 is stored in a memory provided in the control unit 51.

[0089] In this embodiment, during the power supply mode M1, the control unit 51 may execute specific control other than the power supply to the load 111R based on the amount of change per predetermined period in the output voltage of the power supply 40 in the power supply mode M1. As an example, the specific control may be, for example, an authentication process for the load 111R (step S110).

[0090] 8, in the authentication process for the load 111R, specifically, the control unit 51 determines whether the amount of change in the output voltage of the power supply 40 per predetermined period is within a predetermined range (step S200). Note that the amount of change in the output voltage of the power supply 40 per predetermined period may correspond to the difference between the output voltage when the load 111R is energized and the output voltage when the load 111R is not energized.

[0091] If the amount of change in the output voltage of the power supply 40 per predetermined period is within the predetermined range, authentication of the load 111R continues (step S202), and the process proceeds to step S112 in the power supply mode.

[0092] If the amount of change in the output voltage of the power supply 40 per predetermined period is not within a predetermined range, the switch 140 is turned OFF (step S206) and the authentication of the load 111R is cancelled (step S208). If the authentication of the load 111R is cancelled, the control unit 51 may notify the user of this (step S210). The notification to the user can be performed by the notification means 30.

[0093] When the authentication of the load 111R is cancelled, it is preferable that the control unit 51 does not turn on the switch 140, i.e., does not supply power to the load 111R, even if the detection unit 20 detects an operation for using the load 111R.

[0094] After the authentication of the load 111R is cancelled, the control unit 51 may perform a re-authentication process for the load 111R upon detecting a restoration operation (restore signal) (step S214). Specifically, when the control unit 51 detects the restoration signal (step S212), the control unit 51 turns on the switch 140 (step S213) and detects the output voltage of the power supply 40 at predetermined time intervals. If the amount of change in the output voltage of the power supply 40 per predetermined period is not within a predetermined range, the control unit 51 leaves the authentication of the load 111R cancelled and notifies the user (step S210). Note that when the switch is turned on in step S213 to detect a change in the output voltage of the power supply 40, it is preferable to shorten the energization time or limit the power supplied from the power supply 40 to the load 111R by pulse width control or pulse frequency control so as to prevent the aerosol source from being atomized by the current flowing through the load 111R. In other words, it is preferable that switch 140 be turned ON for a short period of time so as to supply less power than that supplied to load 111R when atomizing the aerosol source in the power supply mode.

[0095] If the amount of change in the output voltage of the power supply 40 per predetermined period is within a predetermined range, the load 111R is authenticated (step S216), and the process proceeds to the start of the power supply mode. Note that the amount of change in the output voltage of the power supply 40 per predetermined period may correspond to the difference between the output voltage when the load 111R is energized and the output voltage when the load 111R is not energized after the return signal is detected.

[0096] The return operation (signal) may be a signal detecting the reconnection of the load 111R, a signal detecting the pressing of a push button in a predetermined pattern, a signal detecting an inhalation operation in a predetermined pattern, or a signal detecting the end of one puff operation, etc.

[0097] The authentication 111R of the load may be performed, for example, to determine whether the atomization unit 111 connected to the battery unit 112 is usable. In the above embodiment, for example, when the authentication of the load 111R is cancelled, the control unit 51 may The control unit 51 can determine that the connected load 111R is unusable and recommend replacing the load 111R. For example, if the amount of change in the output voltage of the power supply 40 per predetermined period exceeds an allowable range, the control unit 51 can determine that the load 111R has deteriorated, cancel its authentication, and recommend replacing the load 111R. Alternatively, if an unauthorized atomization unit with a different voltage drop than the authorized atomization unit 111 is connected to the battery unit 112, the control unit 51 can cancel its authentication and recommend replacing the unauthorized load with the authorized load 111R.

[0098] In the load authentication process, if the authentication of the load 111R continues (step S202), the process proceeds to step S112 of the power supply mode (see FIG. 7). In step S112, the control unit 51 determines whether or not the timing to end the power supply to the load 111R has been detected. If the control unit 51 detects the timing to end the power supply to the load 111R, the control unit 51 turns off the switch 140, maintains the power supply mode M1, and waits until the start of the power supply to the next load 111R. If the first condition described above is satisfied again, the control unit 51 turns on the switch 140 (steps S100, S102), and repeats the processes from step S100 to S102.

[0099] The timing of ending the power supply to the load 111R may be the timing of detecting that a predetermined time has elapsed since the start of the power supply to the load 111R. Alternatively, the timing of ending the power supply to the load 111R may be the timing of detecting that the detection unit 20 has finished using the load 111R. For example, if the detection unit 20 is a suction sensor, the timing of ending the power supply to the load 111R may be the timing of detecting that the user has finished suctioning.

[0100] (prescribed range) The above-mentioned predetermined range is set based on the amount of voltage drop across the load 111R during normal operation. Specifically, the lower limit of the predetermined range may be set to a value smaller than the difference (amount of voltage drop) between the voltage when power is not being supplied to the load 111R and the voltage when power is being supplied to the load 111R. Alternatively, the lower limit of the predetermined range may be set to a value smaller than the amount of decrease in the output voltage of the power supply per predetermined period in the power supply mode when a regular, normal load 111R is connected to the connection unit 120. In this case, when a regular, normal load 111R is connected to the connection unit 120, the amount of change in the output voltage of the power supply is greater than the lower limit of the predetermined range and is therefore within the predetermined range, so the power supply mode can be continued.

[0101] On the other hand, when an irregular or severely deteriorated load is connected to the connection unit 120, the change in the power supply's output voltage tends to be different from that when a normal, genuine load 111R is connected to the connection unit 120. For example, when an irregular load is used, the change in the power supply's output voltage will be a unique value due to factors such as the resistance value of the load itself being different from that of a normal load and poor contact at the connection unit 120. By excluding these unique values ​​and setting a predetermined range to include the decrease in the power supply's output voltage per predetermined period in the power supply mode when a normal, genuine load 111R is connected to the connection unit 120, the authentication of the irregular load can be deactivated. Furthermore, a severely deteriorated load, despite being a normal load, will exhibit an abnormal resistance value that is significantly different from that of a normal load. By excluding these abnormal values ​​and setting a predetermined range to include the decrease in the power supply's output voltage per predetermined period in the power supply mode when a normal, genuine load 111R is connected to the connection unit 120, the authentication of the severely deteriorated load can be deactivated.

[0102] (Charging mode) 9 is a flowchart showing a charging mode according to an embodiment. It is preferable that the control unit 51 turns on the switch when a second condition different from the first condition is satisfied in the charging mode M2. That is, the control unit 51 turns on the switch in the charging mode and the power supply mode. Conditions are different The conditions for turning on switch 140 are different between the charging mode and the power supply mode, making it easier to prevent malfunctions.

[0103] The second condition may be a condition based on the connection of the charger 200 to the connection unit 120. Here, the condition based on the connection of the charger 200 to the connection unit 120 may be a condition that a signal (a second level WAKE signal) indicating the connection of the charger 200 to the connection unit 120 has been detected. For example, the condition based on the connection of the charger 200 to the connection unit 120 may be a condition that a second level WAKE signal has been detected once or multiple times in succession.

[0104] Alternatively, the condition based on the connection of the charger 200 to the connector 120 may be a combination of the detection of a signal (second-level WAKE signal) indicating the connection of the charger 200 to the connector 120 and the detection of another signal. The another signal may be, for example, a signal detecting the user pressing a push button. The push button may be provided on either the battery unit 112 or the charger 200, or on both the battery unit 112 and the charger 200.

[0105] When the control unit 51 turns on the switch 140, if the charger 200 is connected to the connection unit 120 of the battery unit 112, electricity flows from the charger 200 to the power supply 40, and the power supply 40 is charged (step S300). The control unit 51 also turns on the switch 140 and starts a timer built into the battery unit (step S302). The timer is set to "0" at the time of start-up. The timer measures the time from the time of start-up.

[0106] The control unit 51 determines whether a predetermined period has elapsed since the timer was started (step S304), and if the predetermined period has elapsed, turns off the switch 140 (step S306). This predetermined period may be, for example, 100 ms.

[0107] When a predetermined waiting time has elapsed since the control unit 51 turned off the switch 140 (step S308), the control unit 51 turns the switch 140 on again (step S310). Here, the predetermined waiting time may be, for example, 400 μs. The control unit 51 stores the value of the WAKE signal between steps S308 and S310 (step S309).

[0108] The control unit 51 repeats steps S306 to S310 a predetermined number of times. In this embodiment, the predetermined number of times is 10. Next, the control unit 51 determines whether the WAKE signal is not at the second level for all of the predetermined consecutive times (here, 10 times) (step S314).

[0109] If the WAKE signal is not at the second level for all of the predetermined consecutive times, the control unit 51 recognizes that the charger 200 has been removed from the battery unit 112, turns off the switch 140 (step S316), and then ends the series of control flows. If the WAKE signal is at the second level at least once among the predetermined consecutive times, the control unit 51 continues the charging mode M2.

[0110] Next, control unit 51 performs a step of determining an abnormality in the charging mode (step S318). Here, even if it is determined based on the WAKE signal that charger 200 is connected to connection unit 120, the determination may be incorrect. For example, when load 111R is attached to connection unit 120, a malfunction may occur due to a phenomenon such as chattering, resulting in an erroneous transition to charging mode M2. Step S318 of determining an abnormality in charging mode M2 ​​is intended to determine the abnormality when such an erroneous transition to charging mode occurs.

[0111] Specifically, in the step of determining an abnormality in the charging mode, if the amount of decrease per predetermined period in the output voltage of the power source 40 in the charging mode M2 ​​is equal to or less than a first threshold value set based on the amount of decrease per predetermined period in the output voltage in the power supply mode M1, the control unit 51 determines that an abnormality has occurred in the charging mode. That is, the control unit 51 presumes that in this case, the load 111R connected to the connection unit 120 has been mistakenly determined to be the charger 200. In other words, the control unit 51 determines that the charging mode is being executed with the load 111R connected to the connection unit 120. The output voltage of the power source 40 may be measured and stored at predetermined intervals in the charging mode.

[0112] If the control unit 51 determines that an abnormality has occurred in the charging mode, the control unit 51 proceeds to specific processing, for example, specific processing described below and shown in Figures 11 and 12. Alternatively, if the control unit 51 determines that an abnormality has occurred in the charging mode, the control unit 51 may stop the switch 140 and notify the user of the abnormality using a notification means.

[0113] If the control unit 51 determines that no abnormality exists in the charging mode, the control unit 51 continues the charging mode. Specifically, the control unit 51 resets and restarts the timer, and repeats the process from step S302 onwards.

[0114] (Regarding the first threshold) When load 111R is connected to connection unit 120, the output voltage of power supply 40 per predetermined period when switch 140 is ON decreases according to the electrical resistance value of load 111R. On the other hand, when charger 200 is connected to connection unit 120, the output voltage of power supply 40 per predetermined period ideally does not decrease. This is because, when charger 200 is connected to connection unit 120, power supply 40 is either in a charging state by charger 200 or in an unloaded state. In the former case, the voltage between the terminals of power supply 40 increases, and in the latter case, the voltage between the terminals of power supply 40 ideally does not change. Therefore, the first threshold value may be equal to or less than the amount of decrease in the output voltage per predetermined period in the charging mode executed when charger 200 is connected to connection unit 120.

[0115] Strictly speaking, when the charger 200 is connected to the connection unit 120, the output voltage of the power supply 40 per predetermined period decreases in accordance with a voltage drop due to dark current caused by natural discharge of the power supply 40. In this case, it is preferable that the first threshold value be larger than a value corresponding to the voltage drop due to dark current. Furthermore, it is preferable that the first threshold value be set taking into consideration an error in the detected output voltage value.

[0116] Furthermore, if the power supply 111R erroneously transitions to the charging mode despite the load 111R being connected, a power greater than the power supplied to the load 111R in the power supply mode M1 may be supplied to the load 111R. In this case, the amount of decrease in the output voltage per predetermined period is smaller than the amount of decrease in the output voltage per predetermined period in the power supply mode. In consideration of this, the first threshold value may be set to a value equal to or smaller than the amount of decrease in the output voltage per predetermined period in the power supply mode.

[0117] The first threshold value may be preset when the battery unit 112 is manufactured. However, the first threshold value does not need to be permanently maintained at the preset value.

[0118] As an example, the first threshold value may be changed depending on the deterioration of the power source 40 and the charge / discharge history. Specifically, as shown in FIG. 10, as the power source 40 deteriorates, that is, as the number of charge / discharge cycles increases, the output voltage of the power source 40 generally decreases and the amount of voltage drop also increases. This is due to a decrease in the storage capacity caused by irreversible decomposition of the electrolyte and aggregation of the active material and conductive additive. This is due to an increase in internal resistance caused by a change in the electrode structure. Therefore, when load 111R is connected to connection unit 120, power supply 40 deteriorates and the amount of decrease in the output voltage of power supply 40 over a predetermined period of time becomes smaller. Taking this into consideration, by appropriately changing the first threshold value in accordance with the deterioration of power supply 40, the accuracy of determining an abnormality in the charging mode can be improved.

[0119] Specifically, it is preferable to reduce the first threshold value as the power supply 40 deteriorates. Generally, as the power supply 40 deteriorates, the amount of decrease in output voltage during a predetermined period when the load 111R is connected to the connection unit 120 increases. Therefore, even if the first threshold value is reduced, it is possible to determine an abnormality in the charging mode. On the other hand, by reducing the first threshold value, it is possible to prevent a problem in which the amount of decrease in the output voltage of the power supply 40 during a predetermined period detected in the charging mode falls below the first threshold value due to an error in the detected value of the output voltage, etc., even when the charger 200 is connected to the connection unit 120.

[0120] It is well known that when a lithium-ion secondary battery is used as the power source 40, a solid electrolyte interphase (SEI) resulting from decomposition of the electrolyte forms a film on the negative electrode surface during relatively early charge / discharge cycles. This SEI stabilizes the electrochemical reaction, and is expected to improve the reduction in the output voltage of the power source 40 over a predetermined period of time. Even in such cases, the accuracy of determining an abnormality in the charge mode can be improved by changing the first threshold value according to the charge / discharge history and number of cycles.

[0121] As another example, the first threshold value may be changed based on the amount of decrease in the output voltage per predetermined period in the power supply mode. As described above, the output voltage in the power supply mode is stored in the control unit 51 for each predetermined period. Therefore, the amount of decrease in the output voltage per predetermined period in the power supply mode can be calculated using the output voltage of the power source 40 stored in the power supply mode. The control unit 51 can feed back the amount of decrease in the output voltage per predetermined period in the power supply mode to the first threshold value. This allows an appropriate first threshold value to be set based on the voltage drop value for the new load 111R, even when the atomization unit 111 (load 111R) is replaced. Furthermore, even if the power source 40 deteriorates and the amount of output voltage drop increases, the first threshold value can be set to reflect the amount of output voltage drop due to deterioration of the power source 40, thereby improving the accuracy of detecting abnormalities in the charging mode.

[0122] By determining an abnormality in the charging mode, even if the charger 200 is erroneously detected as being connected to the connection unit 120 despite the fact that the load 111R is connected to the connection unit 120, the control unit 51 can determine the erroneous detection in the charging mode. This prevents the switch 140 in the battery unit 112 from being erroneously kept ON, thereby reducing unnecessary consumption of power from the power source.

[0123] (Specific example of step S318 for determining abnormality in charging mode) In the step of determining an abnormality in the charging mode, if the amount of decrease in the output voltage per predetermined period in the charging mode is equal to or less than a threshold set based on the amount of decrease in the output voltage per predetermined period in the power supply mode, the control unit 51 determines that an abnormality has occurred in the charging mode. In order to calculate the amount of decrease in the output voltage of the power supply per predetermined period in the charging mode, the output voltage of the power supply 40 is detected at predetermined intervals in the charging mode.

[0124] As an example, in step S318, the amount of decrease in the output voltage per predetermined period in the charging mode is calculated as the difference between the value of the output voltage in the latest detection and the value of the output voltage in the detection immediately before the latest detection. The difference between the detected value and the immediately previous detected value is compared with the first threshold value. Note that the detected value to be subtracted from the latest detected value does not necessarily have to be the immediately previous detected value, but may be a detected value before the immediately previous detected value, or may be a detected value before switch 140 is turned ON to start the charging mode (prior to execution of step S300).

[0125] As another example, the amount of decrease in the output voltage per predetermined period in the charging mode may be determined by a predicted value derived from multiple output voltage values ​​of the power supply detected at each predetermined period, i.e., a predicted value obtained from an approximate line or curve. For example, the decrease in the output voltage can be approximated by a straight line using the least squares method based on the multiple output voltage values ​​of the power supply detected at each predetermined period, and the predicted amount of decrease in the output voltage per predetermined period in the charging mode can be calculated from the approximate line. The number of data points (output voltage values) used to perform the least squares method is arbitrary, and is preferably large enough to sufficiently minimize the influence of detection errors. In this way, if the decrease in the output voltage per predetermined period in the charging mode is derived from a predicted value obtained from an approximate line or curve, if the slope of the approximate line or the differential value of the approximate curve is non-zero, the value is likely to be due to dark current caused by self-discharge of the power supply 40 when no load is present, thereby minimizing the influence of detection errors.

[0126] As another example, in step S318, the amount of decrease in the output voltage per predetermined period in the charging mode may be different depending on whether the number of times the output voltage has been detected since the start of the charging mode is less than the predetermined number or whether the number of times the output voltage has been detected since the start of the charging mode is equal to or greater than the predetermined number. For example, when the number of times the output voltage has been detected since the start of the charging mode is less than the predetermined number, the amount of decrease in the output voltage per predetermined period in the charging mode may be calculated as the difference between the output voltage value in the most recent detection and the output voltage value in the detection immediately before the most recent detection, as described above. However, when the number of times the output voltage has been detected since the start of the charging mode is equal to or greater than the predetermined number, the amount of decrease in the output voltage per predetermined period in the charging mode may be calculated as the difference between the output voltage value in the most recent detection and a predicted value obtained based on multiple output voltages detected since the start of the charging mode. The predicted value may be calculated, for example, using the least squares method described above.

[0127] Here, when a predicted value is used, the greater the number of data (output voltage values) used to calculate the predicted value, the greater the accuracy of the predicted value. This is because, as is widely known, the least squares method has the property that the deviation of actual data from an approximate line or curve decreases in proportion to the reciprocal of the square root of the number of data. Therefore, although the predetermined number of times is arbitrary, it is preferable that it is large enough to sufficiently reduce the influence of detection errors in the output voltage. This makes it possible to suppress the influence of detection errors in the output voltage of the power supply in the determination in step S318.

[0128] As another example, instead of using the above-mentioned approximate line or approximate curve, a slope may be derived from a plurality of output voltage values ​​of the power supply detected at predetermined intervals, and this slope may be used as the amount of decrease in the output voltage of the power supply in the charging mode per predetermined interval. Alternatively, the amount of decrease in the output voltage of the power supply in the charging mode per predetermined interval may be estimated based on a moving average value derived from a plurality of output voltage values.

[0129] (Specific example of specific processing 1) If control unit 51 determines in step S318 that an abnormality has occurred in the charging mode, control unit 51 performs specific processing that can at least selectively disable power supply from power supply 40 to load 111R at least temporarily (FIG. 11). FIG. 11 shows an example of such specific processing.

[0130] First, when a specific process is started, the value of a specific variable is set to "1" (step S4 00). In this example, the specific variable indicates the number of times a specific condition is met. In this example, the specific condition is that the amount of decrease in the output voltage per predetermined period in the charging mode is equal to or less than the first threshold value.

[0131] Next, it is determined whether the value of the specific variable is equal to or greater than a second threshold (step S402). The second threshold may be any natural number equal to or greater than 1. As an example, the second threshold may be "1." Alternatively, the second threshold may be a natural number equal to or greater than 2. In this case, in the specific process, the control unit 51 can recheck whether the load 111R is connected to the connection unit 120 before at least temporarily disabling power supply from the power source 40 to the load 111R. The recheck whether the load 111R is connected to the connection unit 120 can be determined again by determining whether a specific condition is satisfied.

[0132] As a specific example, if the value of the specific variable is not equal to or greater than the second threshold, the output voltage of the power supply 40 is measured (step S404), and the decrease in the output voltage per predetermined period is recalculated. Then, it is determined whether the aforementioned specific condition is met, in this case, whether the decrease in the output voltage of the power supply 40 per predetermined period is equal to or less than the first threshold (step S406). If the decrease in the output voltage of the power supply 40 per predetermined period exceeds the first threshold, there is a possibility that an abnormality does not exist in the charging mode, and the charging mode can be restarted from the start. Alternatively, instead of restarting from the start of the charging mode, if the decrease in the output voltage of the power supply 40 per predetermined period is greater than the first threshold, the charging mode can be restarted from the middle. As an example, the process may return to step S302, in which the timer in the charging mode is started.

[0133] On the other hand, if the decrease in the output voltage of the power supply 40 per specified period is again less than or equal to the first threshold, the value of the specific variable is increased by "1" (step S408), and then it is determined whether the value of the specific variable is greater than or equal to the second threshold (step S402).

[0134] If the value of the specific variable is equal to or greater than the second threshold, the control unit 51 provisionally determines that an abnormality has occurred in the charging mode, and implements a first mode in which power supply from the power source 40 to the load 111R is temporarily disabled so that power supply can be resumed by the control unit 51 (step S410). The first mode can be implemented by the control unit 51 controlling the disconnection means 170 described above. Then, the control unit 51 notifies the user that the first mode has been implemented (step S412). The notification to the user can be performed by the notification means 30.

[0135] After the first mode is executed, switches 140 and 175 are turned ON (step S413), the output voltage of power supply 40 is measured (step S414), and it may be determined again whether the specific condition described above is satisfied, in this case, whether the amount of decrease in the output voltage of power supply 40 per predetermined period is equal to or less than the first threshold (step S416). Note that after notifying the user (step S412), if a recovery operation (recovery signal) is detected, the output voltage of power supply 40 may be measured (step S414).

[0136] If the decrease in the output voltage of power supply 40 per predetermined period is greater than the first threshold, it is possible that there is no abnormality in the charging mode or that the abnormality was resolved after the first mode was implemented, so the first mode is canceled (step S418) and the charging mode can be restarted from the start. Alternatively, the charging mode may be restarted from the middle instead of from the start.

[0137] On the other hand, if the decrease in the output voltage of the power supply 40 per predetermined period is equal to or less than the first threshold, the value of the specific variable is increased by "1" (step S420), and then it is determined whether the value of the specific variable is equal to or greater than the third threshold (step S422). Here, the third threshold is a natural number greater than the second threshold. As an example, the third threshold is a natural number greater than the second threshold by "1". That's fine.

[0138] If the value of the specific variable is less than the third threshold, the output voltage of the power supply 40 is measured (step S414), and it is again determined whether the aforementioned specific condition is met, in this case whether the decrease in the output voltage of the power supply 40 per specified period is less than or equal to the first threshold (step S416).

[0139] If the value of the specific variable is equal to or greater than the third threshold, the control unit 51 concludes that an abnormality has occurred in the charging mode or determines that it is difficult to resolve the abnormality, and implements a second mode in which power supply 40 is irreversibly disabled so that power supply to load 111R cannot be resumed by the control unit 51 (step S424). The second mode can be implemented by the control unit 51 controlling the disconnection means 170 described above. Then, the control unit 51 notifies the user that the second mode has been implemented (step S426). The notification to the user can be performed by the notification means 30.

[0140] As described above, a first condition (step S402) and a second condition (step S422) may be provided to determine whether to execute the first mode and the second mode, respectively. In this case, the second condition is stricter than the first condition. In other words, the second condition is harder to satisfy than the first condition. For example, there are cases where the first condition can be satisfied but the second condition cannot, such as when the value of a specific variable is equal to or greater than the second threshold and less than the third threshold. This allows the control unit 51 to execute the first mode, in which power supply to the load is temporarily disabled when it detects the possibility of an abnormality, and to execute the second mode, in which power supply to the load is irreversibly disabled when it is extremely likely that an abnormality exists.

[0141] (Specific example of specific processing 2) Fig. 12 shows another example of the specific process instead of Fig. 11. First, when the specific process starts, the value of the specific variable is set to "the most recent amount of decrease in the output voltage per predetermined period" (step S500). Thus, in this example, the specific variable includes the amount of decrease in the output voltage per predetermined period.

[0142] Next, it is determined whether the value of the specific variable is equal to or less than a fourth threshold (step S502). The fourth threshold may be the same as the first threshold, for example, and may be set based on the amount of decrease in the output voltage of the power supply 40 per predetermined period in the power supply mode.

[0143] If the value of the specific variable is greater than the fourth threshold, there is a possibility that there is no abnormality in the charging mode, so the charging mode can be restarted from the start. Also, instead of restarting from the start of the charging mode, the charging mode can be restarted from the middle.

[0144] If the value of the specific variable is equal to or less than the fourth threshold, it is determined whether the value of the specific variable is equal to or less than a fifth threshold (step S504). Here, the fifth threshold is a value smaller than the fourth threshold. The fifth threshold may be set to, for example, a value below the lower limit of the decrease in the output voltage of power supply 40 per predetermined period when a regular, normal load 111R is used, for example, the decrease in the output voltage of power supply 40 per predetermined period when power supply 40 is fully charged and supplies power to load 111R at a duty ratio of 100%.

[0145] If the value of the specific variable is equal to or less than the fourth threshold and greater than the fifth threshold, the control unit 51 provisionally determines that an abnormality has occurred in the charging mode, and implements a first mode in which power supply from the power source 40 to the load 111R is temporarily disabled so that power supply can be resumed by the control unit 51 (step S510). Then, the control unit 51 notifies the user that the first mode has been implemented (step S512).

[0146] If the value of the specific variable is equal to or less than the fifth threshold, the control unit 51 determines that an abnormality has occurred in the charging mode, and executes a second mode in which the power supply 40 is irreversibly disabled so that the power supply to the load 111R cannot be resumed by the control unit 51 (step S524). Then, the control unit 51 notifies the user that the second mode has been executed (step S526).

[0147] As described above, a first condition (step S502) and a second condition (step S504) may be provided to determine whether to execute the first mode and the second mode, respectively. In this case, the second condition is stricter than the first condition. In other words, the second condition is more difficult to satisfy than the first condition. For example, there are cases where the first condition can be satisfied but the second condition cannot, such as when the value of a specific variable is equal to or less than the fourth threshold and greater than the fifth threshold.

[0148] (Timing of Cutting Means Control) In the above-mentioned example, when the charging mode is executed when the load 111R is connected to the connection unit 120, in other words, when the load 111R connected to the connection unit 120 is mistakenly determined to be the charger 200, the control unit 51 performs a specific process that can at least selectively disable the supply of power from the power source 40 to the load 111R at least temporarily (see Figures 11 and 12).

[0149] Without being limited to the above-mentioned example, when the control unit 51 detects any abnormality in the load 111R or the power supply 40, the control unit 51 may perform specific processing that can at least selectively disable power supply from the power supply 40 to the load 111R at least temporarily. Examples of abnormalities in the load 111R or the power supply 40 include connection of an unauthorized load to the connection unit 120, use of the battery unit by an unauthorized user (cancellation of user authentication), other malfunctions of the battery unit, etc. Connection of an unauthorized load to the connection unit 120 can be detected, for example, by the load authentication processing described above.

[0150] For example, if the detection unit 20 is a push button, user authentication can be performed by pressing the push button in a predetermined pattern. As another example, if the detection unit 20 is a suction sensor, user authentication can be performed by pressing the suction action in a predetermined pattern.

[0151] (Programs and storage media) The above-described flows shown in Figures 6 to 9, 11 and 12 can be executed by the control unit 51. That is, the control unit 51 may have a program that causes the battery unit 112 and the flavor inhaler 100 to execute the above-described methods, and a storage medium in which the program is stored.

[0152] [Second embodiment] Next, a flavor inhaler according to a second embodiment will be described with reference to Fig. 13. Note that the same components as those in the previous embodiment are denoted by the same reference numerals, and their description may be omitted. Below, components different from those in the previous embodiment will be described in detail.

[0153] In this embodiment, the aforementioned cutting means 170 is provided in the atomizing assembly 111, i.e., the load 111R, rather than in the battery unit 112. The first switch 175 and second switch 177 constituting the cutting means 170 may be configured to be electrically connected to the control unit 51 via electrical terminals (not shown) provided in the connection unit 120. The control unit 51 is able to control the first switch 175 and second switch 177 of the cutting means 170 when the load 111R is connected to the connection terminal 120t. This allows the control unit 51 to execute specific processes shown in FIGS. 11 and 12.

[0154] According to this embodiment, the power supply from the power source 40 to the load 111R can be resumed by the control unit 51. When the second mode, which irreversibly disables the load 111R so that it cannot be used again, is executed, the flavor inhaler 100 can be restored to a usable state by replacing the load 111R, i.e., the atomizing assembly 111, with a new one. Generally, the atomizing assembly 111 tends to be inexpensive compared to the battery unit 112, which has expensive components such as the power source 40. Therefore, this embodiment is advantageous, particularly from the viewpoint of cost. Furthermore, the cutting means 170 may be provided in both the battery unit 112 and the atomizing assembly 111.

[0155] [Other embodiments] Although the present invention has been described by the above-mentioned embodiments, the descriptions and drawings that form part of this disclosure should not be understood to limit the present invention. From this disclosure, various alternative embodiments, examples, and operating techniques will become apparent to those skilled in the art.

[0156] For example, the configurations described in the above embodiments can be combined and / or substituted with each other whenever possible.

Claims

1. 1. A device configured to power an aerosol inhalator, comprising: Housing and A battery, a connection portion configured to be connectable to an atomization unit including a load for atomizing the aerosol source and a charger for charging the battery; a plurality of terminals included in the connection unit, the plurality of terminals being configured to be electrically connected to the atomization unit when the connection unit is connected to the atomization unit, and to be electrically connected to the charger when the connection unit is connected to the charger; a sensor configured to detect an input from a user; A control unit, determining whether the connection part is connected to the atomization unit or the charger based on the potential difference between the plurality of terminals; When the connection part is connected to the atomization unit, the device operates in a first mode to control power supply from the battery to the atomization unit; When the connection unit is connected to the charger, the battery operates in a second mode to control power supply from the charger to the battery. a control unit configured to: Equipped with the battery, the control unit, the connection unit, and the sensor are housed within the housing; The connection portion is disposed at a first longitudinal end of the housing; the sensor is disposed adjacent a second longitudinal end of the housing, the second end being opposite the first longitudinal end of the housing; the battery is disposed between the connection portion and the sensor; The control unit is further configured to execute a process of authenticating the atomization unit including the load when the connection unit is connected to the atomization unit including the load and power is supplied to the load from the battery.

2. 10. The apparatus of claim 1, The device, wherein the connection portion is configured to be exclusively connectable to the atomization unit including the load or the charger.

3. 3. The device according to claim 1 or 2, The apparatus, wherein the connection portion comprises an inlet port configured to receive airflow from outside the housing.

4. 4. The apparatus of claim 3, The device, wherein the sensor is a suction sensor configured to detect suction action.

5. 5. The apparatus of claim 4, The device, wherein the sensor is configured to detect the inhalation action based on a differential pressure created in an air flow path based on air flow from the exterior to the housing.

6. 6. The device according to claim 1, The apparatus, wherein the control unit is configured to operate in the first mode when the output of the sensor satisfies a predetermined condition and the connection unit is connected to the load.

7. 7. The device of claim 6, wherein the predetermined condition is that the signal output from the sensor indicates that the input from the user corresponds to a command to perform a suction operation.

8. 8. The device according to claim 1, wherein: The apparatus, wherein the control unit is further configured to perform a process for authenticating the atomization unit including the load.

9. 9. The device according to any one of claims 1 to 8, further comprising: an apparatus comprising: a circuit configured to detect a potential difference between the plurality of terminals;

10. 10. The apparatus of claim 9, The control unit is further configured to identify whether the connection unit is connected to the atomization unit including the load or the charger based on an output of the circuit.

11. 1. A device configured to power an aerosol inhalator, comprising: Housing and A battery, a connection portion configured to be connectable to an atomization unit including a load for atomizing the aerosol source and a charger for charging the battery; a plurality of terminals included in the connection unit, the plurality of terminals being electrically connected to the load when the connection unit is connected to the atomization unit, and being connected to the charger when the connection unit is connected to the charger; a user interface configured to receive input from a user; A circuit comprising: determining whether the connection part is connected to the atomization unit or the charger based on the potential difference between the plurality of terminals; When the connection part is connected to the atomization unit, the device operates in a first mode to control power supply from the battery to the atomization unit; When the connection unit is connected to the charger, the battery operates in a second mode to control power supply from the charger to the battery. The circuit and Equipped with the battery, the circuitry, the connections, and the user interface are contained within the housing; The connection portion is disposed at a first longitudinal end of the housing; the user interface is disposed adjacent a second longitudinal end of the housing, the second end being opposite the first longitudinal end of the housing; the battery is disposed between the connection and the user interface; The circuit is further configured to execute a process for authenticating the atomization unit including the load when the connection portion is connected to the atomization unit including the load and power is supplied to the load from the battery.

12. 12. The apparatus of claim 11, The device, wherein the connection portion is configured to be exclusively connectable to the atomization unit including the load or the charger.

13. 13. The device according to claim 11 or 12, The apparatus, wherein the connection portion comprises an inlet port configured to receive airflow from outside the housing.

14. 14. The device according to any one of claims 11 to 13, The device, wherein the user interface is a suction sensor configured to detect a suction action as the input from the user.

15. 15. The device according to any one of claims 11 to 14, The device is configured to operate in the first mode when the circuit receives the input from the user and the connection is connected to the atomization unit including the load.

16. 16. The device according to any one of claims 11 to 15, The apparatus, wherein the circuitry is further configured to perform a process for authenticating the atomization unit including the load.

17. 17. The device according to any one of claims 11 to 16, The circuit is further configured to execute a process for authenticating the atomization unit including the load when the connection portion is connected to the atomization unit including the load and power is supplied to the load from the battery.

18. 18. The apparatus of any one of claims 11 to 17, wherein the circuitry further comprises: detecting a potential difference between the plurality of terminals; and determining whether the connection part is connected to the atomization unit including the load or the charger based on the detected potential difference. The apparatus is configured to:

19. A method performed by a device configured to supply power to an aerosol inhaler, the device comprising: a housing; a battery; a connector configured to be connectable to an atomization unit including a load that atomizes an aerosol source; and a charger that charges the battery, the connector comprising a plurality of terminals; the method comprising: determining whether the connection unit is connected to the atomization unit or the charger based on a potential difference between the plurality of terminals; Executing a first mode of controlling power supply from the battery to the atomization unit when the connection part is connected to the atomization unit; executing a second mode of controlling power supply from the charger to the battery when the connection portion is connected to the charger; When an output of a sensor configured to detect a user input satisfies a predetermined condition and the connection part is identified as being connected to the load, executing the first mode to supply power to the atomization unit including the load; and the method further comprises: The method includes a step of executing a process to authenticate the atomization unit including the load when the connection portion is connected to the atomization unit including the load and power is supplied to the load from the battery.

Citation Information

Patent Citations

  • Protective & Cigarette Ejection Systems for Electric Lighters

    JP1999507718A

  • Charge monitoring device

    JP2003317811A

  • Inhaler

    JP2012506263A

  • Aerosol generation system equipped with means for disabling consumables

    JP2014501106A

  • HEAT CONTROL CONFIGURATIONS FOR ELECTRONIC SMOKING ARTICLES AND RELATED SYSTEMS AND METHODS

    JP2016517270A