IP Library › Granted Patent US 12,207,361
Granted Patent B2
US 12,207,361 · App. 17/241,488 · Granted Jan 21, 2025

Aerosol-generating systems with liquid level determination and methods of determining liquid level in aerosol-generating systems

Inventor: Tony Reevell (London, GB)
Assignee: Altria Client Services LLC
H05B1/0227A24F40/50G01F23/22A24F40/10G01F22/00
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Quick Facts
Patent No.
US 12,207,361
App. No.
17/241,488
Granted
Jan 21, 2025
Kind
B2
Abstract

An electrically operated aerosol-generating system may include a liquid storage portion configured to store a liquid from which aerosol may be generated, an electric heater, a capillary wick extending between the liquid storage portion and the electric heater and configured to convey liquid from the liquid storage portion to the electric heater and electric circuitry connected to the electric heater. The electric circuitry may be configured to: activate the electric heater for a first heating time period in response to an input to vaporize liquid in the capillary wick, activate the electric heater for a second heating time period upon the elapse of a first cooling time period after the first heating time period, record a temperature measurement of the electric heater during the second heating time period, and determine an amount of liquid in the liquid storage portion based on the temperature measurement.

Claims (26)

1. A non-transitory computer readable storage medium having stored thereon a computer program which, when run on programmable electric circuitry in an electrically operated aerosol-generating system, causes the programmable electric circuitry to perform a method for determining an amount of liquid in the electrically operated aerosol-generating system, the electrically operated aerosol-generating system including a liquid storage portion configured to store a liquid from which aerosol may be generated, an electric heater, a capillary wick between the liquid in the liquid storage portion and the electric heater and configured to convey liquid from the liquid storage portion to the electric heater, the programmable electric circuitry being connected to the electric heater, the programmable electric circuitry configured to control activation of the electric heater, the method comprising:

activating the electric heater for a first heating time period in response to air being drawn through the electrically operated aerosol-generating system, such that

liquid in the capillary wick is vaporized during the first heating time period, and

the electric heater is deactivated at an ending of the first heating time period based on an end of the drawing of air through the electrically operated aerosol-generating system,

activating the electric heater for a second heating time period in response to an elapse of a first cooling time period after the ending of the first heating time period, the second heating time period beginning at a first time and ending at a second time such that the electric heater is deactivated at the second time, wherein the second heating time period is shorter than the first heating time period such that a temperature of the electric heater remains below a vaporization temperature of the liquid and the liquid in the capillary wick is not vaporized during the activation of the electric heater for the second heating time period,

recording a first temperature measurement of the electric heater at the second time at the ending of the second heating time period, such that the first temperature measurement is recorded while the temperature of the electric heater remains below the vaporization temperature of the liquid and the liquid is still wicking on to the capillary wick;

activating the electric heater for a third heating time period in response to an elapse of a second cooling time period after the ending of the second heating time period, the third heating time period beginning at a third time and ending at a fourth time such that the electric heater is deactivated at the fourth time, wherein the third heating time period is shorter than the first heating time period such that the temperature of the electric heater remains below the vaporization temperature of the liquid during the activation of the electric heater for the third heating time period,

recording a second temperature measurement of the electric heater at the fourth time at the ending of the third heating time period, such that the second temperature measurement is recorded while the temperature of the electric heater remains below the vaporization temperature of the liquid and the liquid is still wicking on to the capillary wick,

determining a temperature difference between the first temperature measurement and the second temperature measurement, and

determining an amount of liquid in the liquid storage portion based on applying the temperature difference to an empirically-determined relationship, stored in a memory of the electrically operated aerosol-generating system, between temperature differences and amounts of liquid in the liquid storage portion.

2. The non-transitory computer readable storage medium according to according to claim 1 wherein the second heating time period is between 0.05 and 0.5 seconds.

3. The non-transitory computer readable storage medium according to claim 1 , wherein the elapse of the first cooling time period is between 0.2 and 2 seconds after the ending of the first heating time period.

4. The non-transitory computer readable storage medium according to claim 1 , the method further comprising:

determining whether to subsequently activate the electric heater for the second heating time period upon the elapse of the first cooling time period after the first heating time period based on a previously determined amount of liquid or based on stored heater activation data.

5. The non-transitory computer readable storage medium according to claim 1 , wherein the electrically operated aerosol-generating system is an electrically operated vaping system.

6. The non-transitory computer readable storage medium according to claim 1 , wherein

the electric heater is associated with a temperature coefficient of resistance; and

the first and second temperature measurements of the electric heater are recorded, at the second and fourth times, respectively, based on

measuring a voltage across the electric heater,

measuring a voltage across a resistor that is electrically connected in series with the electric heater,

determining an electrical current through the electric heater based on a known electrical resistance of the resistor and the voltage across the resistor and further based on the resistor being electrically connected in series with the electric heater,

determining an electrical resistance of the electric heater based on the voltage across the electric heater and the electrical current through the electric heater, and

determining the temperature of the electric heater based on the electrical resistance of the electric heater and the temperature coefficient of resistance of the electric heater.

7. The non-transitory computer readable storage medium according to claim 1 , wherein

the electrically operated aerosol-generating system is configured to sense the temperature of the electric heater; and

the first and second temperature measurements of the electric heater are recorded, at the second and fourth times, respectively, based on the temperature of the electric heater at the second and fourth times, respectively.

Priority Claims (1)
EP 16157420 · Feb 25, 2016 · regional
Continuity (3)
Division 15441795 · Feb 24, 2017
Continuation PCTEP2017050374 · Jan 10, 2017
Related Publication 20210251044A1 · Aug 12, 2021
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