IP Library › Granted Patent US 12,544,520
Granted Patent B2
US 12,544,520 · App. 17/413,164 · Granted Feb 10, 2026

Aerosol delivery device and method of operating the aerosol delivery device

Inventors: Markus Reinhart (Utting, DE); Matthias Finke (Planegg, DE); Jan Pfrang (Munich, DE); Martin Schlun (Grünwald, DE)
Assignee: PARI Pharma GmbH
A61M11/005B05B12/08B05B17/0646A61M2205/0294A61M2205/3389
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Quick Facts
Patent No.
US 12,544,520
App. No.
17/413,164
Granted
Feb 10, 2026
Kind
B2
Abstract

The invention relates to an aerosol delivery device (A, B) comprising an aerosol generator for generating an aerosol in the aerosol delivery device (A, B). The aerosol generator comprises a membrane (1) and a vibrator (7) which is configured to vibrate a fluid (3) and to aerosolise the fluid (3) by the membrane (1). The aerosol delivery device (A, B) further comprises a fluid reservoir (2) for receiving the fluid (3) to be aerosolised, wherein the fluid reservoir (2) is arranged in fluid communication with the membrane (1). Moreover, the aerosol delivery device (A, B) comprises a controller (10) which is configured to operate the vibrator (7), by supplying an electrical drive signal to the vibrator (7), so as to vibrate the fluid (3), a phase detector (13) which is configured to detect a phase shift of the drive signal, and an evaluation unit (13a) which is configured to detect the presence of fluid (3) in contact with the membrane (1) and/or in the fluid reservoir (2) on the basis of the phase shift detected by the phase detector (13). Further, the invention relates to a method of operating such an aerosol delivery device (A, B).

Claims (32)

1 . An aerosol delivery device comprising:

an aerosol generator for generating an aerosol in the aerosol delivery device, the aerosol generator comprising:

a membrane, and

a vibrator which is configured to vibrate a fluid and to aerosolise the fluid by the membrane,

a fluid reservoir for receiving the fluid to be aerosolised, the fluid reservoir being arranged in fluid communication with the membrane,

a controller which is configured to operate the vibrator, by supplying an electrical drive signal to the vibrator, so as to vibrate the fluid and to aerosolize the fluid by the membrane,

a phase detector which is configured to detect a phase shift of the drive signal caused by an increase in a temperature of the vibrator from a lack of fluid in the fluid reservoir, wherein the phase shift of the drive signal is a phase shift between a voltage component of the drive signal and a reference signal, or the phase shift of the drive signal is a phase shift between a current component of the drive signal and a reference signal, and

an evaluation unit which is configured to detect the presence of fluid in contact with the membrane and/or in the fluid reservoir on the basis of the phase shift detected by the phase detector.

2 . The aerosol delivery device according to claim 1 , wherein the vibrator comprises a piezoelectric element.

3 . The aerosol delivery device according to claim 1 , wherein the controller is configured to operate the vibrator at a constant vibration frequency.

4 . The aerosol delivery device according to claim 1 , wherein the phase shift of the drive signal is a current and/or voltage phase shift of the drive signal.

5 . The aerosol delivery device according to claim 1 , wherein the reference signal is determined at a resistor arranged in electrical connection between controller and vibrator, or the reference signal is determined at an input of the controller.

6 . The aerosol delivery device according to claim 1 , wherein the phase detector is configured to periodically perform detection of the phase shift of the drive signal.

7 . The aerosol delivery device according to claim 6 , wherein the phase detector is configured to periodically perform detection of the phase shift of the drive signal at a detection frequency of 0.1 Hz or more.

8 . The aerosol delivery device according to claim 1 , wherein the phase detector is configured to perform detection of the phase shift of the drive signal during aerosolisation of the fluid by the membrane.

9 . The aerosol delivery device according to claim 1 , wherein the controller is configured to deactivate the vibrator if no presence of fluid in contact with the membrane and/or in the fluid reservoir is detected by the evaluation unit.

10 . The aerosol delivery device according to claim 1 , wherein the membrane is a passive membrane and the vibrator is configured to vibrate a fluid supply system and/or a membrane back space of the aerosol delivery device.

11 . The aerosol delivery device according to claim 1 , wherein the membrane is an active membrane and the vibrator is configured to vibrate the membrane.

12 . The aerosol delivery device according to claim 1 , further comprising an indication signal emitting means, wherein the aerosol delivery device is configured so that the indication signal emitting means emits an indication signal if the evaluation unit detects that no fluid in contact with the membrane and/or in the fluid reservoir is present.

13 . The aerosol delivery device according to claim 1 , wherein a change in phase shift of the driving signal when the fluid is exhausted is ±5° or more.

14 . A method of operating an aerosol delivery device, the aerosol delivery device comprising:

an aerosol generator for generating an aerosol in the aerosol delivery device, the aerosol generator comprising;

a membrane,

a vibrator which is configured to vibrate a fluid and to aerosolise the fluid by the membrane,

a fluid reservoir for receiving the fluid to be aerosolised, the fluid reservoir being arranged in fluid communication with the membrane, and

the method comprising the steps of:

operating the vibrator, by supplying an electrical drive signal to the vibrator, so as to vibrate the fluid and to aerosolize the fluid by the membrane,

detecting a phase shift of the drive signal caused by an increase in a temperature of the vibrator from a lack of fluid in the fluid reservoir, wherein the phase shift of the drive signal is a phase shift between a voltage component of the drive signal and a reference signal, or the phase shift of the drive signal is a phase shift between a current component of the drive signal and a reference signal, and detecting the presence of fluid in contact with the membrane and/or in the fluid reservoir on the basis of the detected phase shift.

15 . The method of operating the aerosol delivery device according to claim 14 , wherein the aerosol delivery device further comprises:

a controller which is configured to operate the vibrator, by supplying the electrical drive signal to the vibrator, so as to vibrate the fluid,

a phase detector which is configured to detect the phase shift of the drive signal, and

an evaluation unit which is configured to detect the presence of fluid in contact with the membrane and/or in the fluid reservoir on the basis of the phase shift detected by the phase detector.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 1, 2021
From: REINHART, MARKUS; FINKE, MATTHIAS; PFRANG, JAN; SCHLUN, MARTIN
To: PARI PHARMA GMBH
Reel/Frame 058254/0456 →
Priority Claims (1)
EP 18212620 · Dec 14, 2018 · regional
Continuity (1)
Related Publication 20220062565A1 · Mar 3, 2022
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