IP Library Granted Patent US 12,201,148
Granted Patent B2
US 12,201,148 · App. 17/151,317 · Granted Jan 21, 2025

Closed system capsule with airflow, heat-not-burn (HNB) aerosol-generating devices, and methods of generating an aerosol

Inventor: Zack W. Blackmon (Williamsburg, VA)
Assignee: Altria Client Services LLC
A24F40/42A24F40/20A24F40/46A24F40/485A61M15/003A61M15/009A61M2205/3653
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Quick Facts
Patent No.
US 12,201,148
App. No.
17/151,317
Granted
Jan 21, 2025
Kind
B2
Abstract

A capsule for an aerosol-generating device includes a housing. The housing includes an inner frame defining an opening. The housing defines at least one air inlet and at least one air outlet. The capsule also includes an aerosol-forming substrate at least partially within the opening, and a heater supported by the inner frame and extending across at least a portion of the opening. The at least one air inlet, the opening, and the at least one air outlet collectively form at least one airflow pathway through the capsule. The airflow pathway is longer than a thickness of the capsule.

Claims (91)

1. A capsule for an aerosol-generating device, comprising:

a housing defining at least one air inlet and at least one air outlet, the housing including,

a first frame defining a cavity, the first frame being an inner frame, the first frame including,

a first face,

a second face,

a first end surface,

a second end surface,

a first side, and

a second side, the at least one air inlet extending through the first end surface of the first frame, the at least one air inlet opposite the at least one air outlet;

an aerosol-forming substrate at least partially within the cavity; and

a heater supported by the first frame and extending across at least a portion of the cavity,

the at least one air inlet, the cavity, and the at least one air outlet collectively forming at least one airflow pathway through the capsule, the airflow pathway being longer than a thickness of the capsule, such that air flows longitudinally across the heater and the aerosol-forming substrate so as to prolong contact with the heater and the aerosol-forming substrate, the at least one air inlet including a first air inlet and a second air inlet, the first air inlet extending through the first side and the second air inlet extending through the first end surface of the inner frame, and the at least one air outlet extending through the second end surface of the inner frame.

2. The capsule of claim 1 , wherein the aerosol-forming substrate includes a plant material.

3. The capsule of claim 2 , wherein the plant material includes tobacco.

4. The capsule of claim 1 , further comprising:

a diffuser configured to redistribute air from the at least one air inlet towards the at least one air outlet, the diffuser including at least one channel on the first face of the inner frame.

5. A capsule for an aerosol-generating device, comprising:

a housing defining at least one air inlet and at least one air outlet, the housing including,

a first frame defining a cavity, the first frame being an inner frame, the first frame including,

a first face,

a second face,

a first end surface,

a second end surface,

a first side, and

a second side, the at least one air inlet extending through the first end surface of the first frame, the at least one air inlet opposite the at least one air outlet;

an aerosol-forming substrate at least partially within the cavity; and

a heater supported by the first frame and extending across at least a portion of the cavity, the at least one air inlet, the cavity, and the at least one air outlet collectively forming at least one airflow pathway through the capsule, the airflow pathway being longer than a thickness of the capsule, such that air flows longitudinally across the heater and the aerosol-forming substrate so as to prolong contact with the heater and the aerosol-forming substrate; and

a diffuser configured to redistribute air from the at least one air inlet towards the at least one air outlet, the diffuser including,

a main channel extending longitudinally from the at least one air inlet, and

at least one secondary channel in fluid communication with the main channel.

6. The capsule of claim 5 , wherein the at least one secondary channel includes at least one parallel channel parallel to the main channel and at least one angled channel extending at an angle with respect to the main channel.

7. The capsule of claim 1 , wherein the heater is sinuously shaped.

8. A capsule assembly for an aerosol-generating device, comprising:

a capsule including,

a housing including,

a first frame defining a cavity, the first frame being an inner frame,

the first frame including,

a first face,

a second face,

a first end surface,

a second end surface,

a first side, and

a second side;

an aerosol-forming substrate at least partially within the cavity; and

a heater supported by the inner frame and extending across at least a portion of the cavity; and

a capsule enclosure surrounding at least a portion of the housing, the capsule enclosure defining at least one air inlet and at least air outlet, the at least one air inlet extending through the first end surface of the first frame, the at least one air inlet opposite the at least one air outlet, the at least one air inlet, the cavity, and the at least one air outlet collectively forming at least one airflow pathway through the capsule assembly, the airflow pathway being longer than a thickness of the capsule, such that air flows longitudinally across the heater and the aerosol-forming substrate so as to prolong contact with the heater and the aerosol-forming substrate, the at least one air inlet including a first air inlet and a second air inlet, the first air inlet extending through the first side and the second air inlet extending through the first end surface of the inner frame, and the at least one air outlet extending through the second end surface of the inner frame.

9. The capsule assembly of claim 8 , wherein the capsule enclosure further comprises:

a capsule enclosure airflow channel extending between the at least one air inlet and the at least one air outlet, the capsule enclosure airflow channel defining a portion of the at least one airflow pathway.

10. The capsule assembly of claim 8 , wherein the at least one airflow pathway extends diagonally across at least a portion of the cavity in the first frame.

11. The capsule assembly of claim 8 , wherein the at least one airflow pathway extends diagonally across at least a portion of the heater and the aerosol-forming substrate.

12. An aerosol-generating device comprising:

a device body configured to receive a capsule, the capsule including,

a housing including,

a first frame defining a cavity, at least one air inlet, and at least one air outlet, the first frame being an inner frame, the first frame including,

a first face,

a second face,

a first end surface,

a second end surface,

a first side, and

a second side, the at least one air inlet extending through the first end surface of the first frame, the at least one air inlet opposite

the at least one air outlet,

an aerosol-forming substrate at least partially within the cavity, and

a heater supported by the first frame and extending across at least a portion of the cavity,

the at least one air inlet, the cavity, and the at least one air outlet collectively forming at least one airflow pathway through the capsule, the airflow pathway being longer than a thickness of the capsule, such that air flows longitudinally across the heater and the aerosol-forming substrate so as to prolong contact with the heater and the aerosol-forming substrate, the at least one air inlet including a first air inlet and a second air inlet, the first air inlet extending through the first side and the second air inlet extending through the first end surface of the inner frame, and the at least one air outlet extending through the second end surface of the inner frame;

a plurality of electrodes within the device body and configured to electrically contact the heater of the capsule; and

a power source configured to supply an electric current to the heater of the capsule via the plurality of electrodes.

13. The aerosol-generating device of claim 12 , wherein the aerosol-forming substrate includes a plant material.

14. The aerosol-generating device of claim 13 , wherein the plant material includes tobacco.

15. The aerosol-generating device of claim 13 , wherein the capsule further comprises:

a diffuser configured to redistribute air from the at least one air inlet towards the at least one air outlet, the diffuser including at least one channel on the first face of the inner frame.

16. An aerosol-generating device comprising:

a device body configured to receive a capsule, the capsule including,

a housing including,

a first frame defining a cavity, at least one air inlet, and at least one air outlet, the first frame being an inner frame, the first frame including,

a first face,

a second face,

a first end surface,

a second end surface,

a first side, and

a second side, the at least one air inlet extending through the first end surface of the first frame, the at least one air inlet opposite the at least one air outlet,

an aerosol-forming substrate at least partially within the cavity,

a heater supported by the first frame and extending across at least a portion of the cavity, the at least one air inlet, the cavity, and the at least one air outlet collectively forming at least one airflow pathway through the capsule, the airflow pathway being longer than a thickness of the capsule, such that air flows longitudinally across the heater and the aerosol-forming substrate so as to prolong contact with the heater and the aerosol-forming substrate, and

a diffuser configured to redistribute air from the at least one air inlet towards the at least one air outlet, the diffuser including,

a main channel extending longitudinally from the at least one air inlet; and

at least one secondary channel in fluid communication with the main channel;

a plurality of electrodes within the device body and configured to electrically contact the heater of the capsule; and

a power source configured to supply an electric current to the heater of the capsule via the plurality of electrodes.

17. The aerosol-generating device of claim 16 , wherein the at least one secondary channel includes at least one parallel channel parallel to the main channel and at least one angled channel extending at an angle with respect to the main channel.

18. A method of generating an aerosol comprising:

electrically contacting a plurality of electrodes with a capsule, the capsule including a housing including an inner frame, the inner frame including a first face, a second face, a first end surface, a second end surface, a first side, and a second side, the housing defining a cavity, at least one air inlet, and at least one air outlet, the at least one air inlet extending through the first end surface of the inner frame, the at least one air inlet opposite the at least one air outlet, the at least one air inlet including a first air inlet and a second air inlet, the first air inlet extending through the first side and the second air inlet extending through the first end surface of the inner frame, and the at least one air outlet extending through the second end surface of the inner frame, an aerosol-forming substrate at least partially within the cavity, a heater supported by the inner frame and extending across at least a portion of the cavity, the at least one air outlet, the at least one air inlet, the cavity, and the at least one air outlet collectively forming at least one airflow pathway through the capsule, the airflow pathway being longer than a thickness of the capsule, such that air flows longitudinally across the heater and the aerosol-forming substrate so as to prolong contact with the heater and the aerosol-forming substrate; and

supplying an electric current to the heater of the capsule via the plurality of electrodes.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 7, 2022
From: BLACKMON, ZACK W.
To: ALTRIA CLIENT SERVICES LLC
Reel/Frame 059533/0468 →
Continuity (1)
Related Publication 20220225671A1 · Jul 21, 2022
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