IP Library › Granted Patent US 12,635,736
Granted Patent B2
US 12,635,736 · App. 17/785,293 · Granted May 26, 2026

Aerosol generation device power system

Inventor: Grzegorz Aleksander Pilatowicz (Grens, CH)
Assignee: JT International SA
A24F40/57A24F40/20A24F40/90H01M10/4264H01M10/44H02J7/345H02J7/82H02J7/855H05B1/0252H01M2220/30H02J2207/50
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Quick Facts
Patent No.
US 12,635,736
App. No.
17/785,293
Granted
May 26, 2026
Kind
B2
Abstract

An aerosol generation device includes a power system having at least one supercapacitor and at least one battery. The power system is operable in a plurality of selectable operating modes. The aerosol generation device further includes a controller. The controller is configured to control a power flow of the at least one supercapacitor and a power flow of the at least one battery based on the selected operating mode. The plurality of operating modes includes a float mode in which a heater associated with the aerosol generation device is maintained substantially at an aerosol generation temperature. In the float mode the controller is configured to control a power flow of the power system to maintain the heater substantially at the aerosol generation temperature, and control the at least one battery to charge the at least one supercapacitor.

Claims (46)

1 . An aerosol generation device comprising:

a power system comprising at least one supercapacitor and at least one battery, wherein the power system is operable in a plurality of selectable operating modes; and

a controller, wherein the controller is configured to control a power flow of the at least one supercapacitor and a power flow of the at least one battery based on a selected one of the plurality of selectable operating modes;

wherein the plurality of selectable operating modes comprises a float mode in which a heater associated with the aerosol generation device is maintained substantially at an aerosol generation temperature, and wherein in the float mode the controller is configured to:

selectively control a rate of the power flow of the at least one battery to maintain the heater associated with the aerosol generation device substantially at the aerosol generation temperature; and

selectively control the at least one battery to charge the at least one supercapacitor.

2 . The aerosol generation device of claim 1 , wherein the plurality of selectable operating modes further comprises a post-session mode, and wherein in the post-session mode the controller is configured to:

when the at least one supercapacitor is not substantially charged at an end point of the float mode, control the at least one battery to continue to charge the at least one supercapacitor beyond the end point of the float mode in the post-session mode.

3 . The aerosol generation device of claim 1 , wherein the plurality of selectable operating modes further comprises a first preheating mode in which the heater associated with the aerosol generation device is heated to a predetermined temperature using the power system, and wherein in the first preheating mode the controller is configured to:

control both the at least one supercapacitor and the at least one battery to provide power to the heater.

4 . The aerosol generation device of claim 3 , wherein the plurality of selectable operating modes further comprises a second preheating mode in which the heater associated with the aerosol generation device is heated to a predetermined temperature using the power system, and wherein in the second preheating mode the controller is configured to:

control the at least one supercapacitor to provide power to the heater, without the at least one battery providing power to the heater.

5 . The aerosol generation device of claim 1 , wherein the plurality of selectable operating modes further comprises a first charging mode, and wherein in the first charging mode the controller is configured to:

control the at least one supercapacitor to charge, from an external power source connectable to the aerosol generation device, until the at least one supercapacitor is fully charged, then control the at least one battery to charge from the external power source.

6 . The aerosol generation device of claim 5 , wherein the plurality of selectable operating modes further comprises a second charging mode, and wherein in the second charging mode the controller is configured to:

control the at least one supercapacitor to charge, from an external power source connectable to the aerosol generation device, until the at least one supercapacitor reaches a predetermined charge level, and then control both the at least one supercapacitor and the at least one battery to charge from the external power source.

7 . The aerosol generation device of claim 6 , wherein the predetermined charge level is:

greater than 50% of a full charge.

8 . The aerosol generation device of claim 6 , wherein the plurality of selectable operating modes further comprises a third charging mode, and wherein in the third charging mode the controller is configured to:

control both the at least one supercapacitor and the at least one battery to charge from an external power source connectable to the aerosol generation device.

9 . The aerosol generation device of claim 8 , wherein in the third charging mode the controller is configured to:

control both the at least one supercapacitor and the at least one battery to charge from an external power source connectable to the aerosol generation device when the external power source has a suitable power capability.

10 . The aerosol generation device of claim 1 , wherein the at least one supercapacitor comprises at least one hybrid supercapacitor and/or at least one asymmetric supercapacitor and/or at least one pseudo supercapacitor.

11 . The aerosol generation device of claim 1 , wherein the at least one supercapacitor is configured to store enough energy to power the associated heater to aerosolise at least one aerosol generating consumable receivable in the aerosol generation device.

12 . The aerosol generation device of claim 1 , wherein the aerosol generation device is arranged to receive an aerosol generating consumable comprising a tobacco rod.

13 . The aerosol generation device of claim 1 , wherein when in the float mode, the controller is further configured to selectively control the at least one supercapacitor to prevent the power flow of the at least one supercapacitor to the heater.

14 . The aerosol generation device of claim 1 , wherein the float mode corresponds to a duration of time during which the heater is aerosolising at least part of one aerosol generating consumable after a preheating phase.

15 . The aerosol generation device of claim 14 , wherein the preheating phase corresponds to a phase during which a temperature of the heater is increased to the aerosol generation temperature for the float mode.

16 . The aerosol generation device of claim 1 , wherein when in the float mode, the controller is further configured to:

receive temperature information associated with an operating temperature of the heater; and

increase the power flow of the at least one battery when the operating temperature of the heater is below the aerosol generation temperature, or

decrease the power flow of the at least one battery when the operating temperature of the heater is above the aerosol generation temperature.

17 . The aerosol generation device of claim 1 , wherein when in the float mode, the controller is further configured to:

determine an aerosolization session has ended; and

end the float mode.

18 . A method of controlling a power system of an aerosol generation device, wherein the power system comprises at least one supercapacitor and at least one battery, and the power system is operable in a plurality of selectable operating modes, the method comprising:

controlling, by a controller, a power flow of the at least one supercapacitor and a power flow of the at least one battery based on a selected one of the plurality of selectable operating modes; and

wherein the plurality of selectable operating modes comprises a float mode in which a heater associated with the aerosol generation device is maintained substantially at an aerosol generation temperature, and in the float mode the method further comprising:

selectively controlling, by the controller, a rate of the power flow of the at least one battery to maintain the heater associated with the aerosol generation device substantially at the aerosol generation temperature; and

selectively controlling, by the controller, the at least one battery to charge the at least one supercapacitor.

19 . A non-transitory computer-readable medium storing instructions that, when executed by one or more processors, cause the one or more processors to control a power system of an aerosol generation device, wherein the power system comprises at least one supercapacitor and at least one battery, and the power system is operable in a plurality of selectable operating modes;

wherein the instructions cause the one or more processors to:

control a power flow of the at least one supercapacitor and a power flow of the at least one battery based on a selected one of the plurality of selectable operating modes; and

wherein the plurality of selectable operating modes comprises a float mode in which a heater associated with the aerosol generation device is maintained substantially at an aerosol generation temperature, and in the float mode the instructions further cause the one or more processors to:

selectively control a rate of the power flow of the at least one battery to maintain the heater associated with the aerosol generation device substantially at the aerosol generation temperature; and

selectively control the at least one battery to charge the at least one supercapacitor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 17, 2022
From: PILATOWICZ, GRZEGORZ ALEKSANDER
To: JT INTERNATIONAL S.A.
Reel/Frame 060235/0238 →
Priority Claims (1)
EP 19217721 · Dec 18, 2019 · regional
Continuity (1)
Related Publication 20230009690A1 · Jan 12, 2023
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