IP Library Granted Patent US 11,998,362
Granted Patent B2
US 11,998,362 · App. 17/144,770 · Granted Jun 4, 2024

Acoustic respiratory monitoring sensor having multiple sensing elements

Inventors: Valery G. Telfort (Irvine, CA); Dimitar Dimitrov (Saint-Laurent, CA); Phi Trang (Montreal, CA)
Assignee: Masimo Corporation
A61B5/7214A61B7/003A61B7/008A61B7/04A61B5/0006A61B5/0205A61B5/02438A61B5/02444A61B5/08A61B5/0816A61B5/082A61B5/145A61B5/4818A61B5/6822A61B5/6833A61B5/721A61B2560/0412A61B2562/0204A61B2562/182A61B2562/222A61B2562/227Y10T29/49005
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Quick Facts
Patent No.
US 11,998,362
App. No.
17/144,770
Granted
Jun 4, 2024
Kind
B2
Abstract

According to certain described aspects, multiple acoustic sensing elements are employed in a variety of beneficial ways to provide improved physiological monitoring, among other advantages. In various embodiments, sensing elements can be advantageously employed in a single sensor package, in multiple sensor packages, and at a variety of other strategic locations in the monitoring environment. According to other aspects, to compensate for skin elasticity and attachment variability, an acoustic sensor support is provided that includes one or more pressure equalization pathways. The pathways can provide an air-flow channel from the cavity defined by the sensing elements and frame to the ambient air pressure.

Claims (37)

1. An acoustic sensor system comprising:

a first acoustic sensor comprising at least:

a first sensing element; and

a first electrode layer; and

a second acoustic sensor comprising at least:

a second sensing element; and

a second electrode layer,

wherein the first and second acoustic sensors are arranged in a stack,

wherein the first and second sensing elements are positioned between the first and second electrode layers, and

wherein the first and second electrode layers are configured to form an electromagnetic noise shielding barrier.

2. The acoustic sensor system of claim 1 , wherein the first and second electrode layers comprise electrode coatings on the respective first and second sensing elements.

3. The acoustic sensor system of claim 2 , wherein the first and second sensing elements comprise piezoelectric elements.

4. The acoustic sensor system of claim 3 , wherein the first and second electrode layers are coupled to a common potential.

5. The acoustic sensor system of claim 4 , wherein:

the first acoustic sensor further comprises a first inner layer positioned between the first and second sensing elements,

the second acoustic sensor further comprises a second inner layer positioned between the first and second sensing elements,

the first inner layer covers a first percentage of an inner surface area of the first sensing element, and

the first electrode layer covers a second percentage of an outer surface area of the first sensing element, the second percentage greater than the first percentage.

6. The acoustic sensor system of claim 5 , wherein the second inner layer covers a third percentage of an inner surface area of the second sensing element, and wherein the second electrode layer covers a fourth percentage of an outer surface area of the second sensing element, the fourth percentage greater than the third percentage.

7. The acoustic sensor system of claim 6 , wherein the first acoustic sensor produces a first signal in response to acoustic vibrations and provides the first signal to a noise attenuator, wherein the second acoustic sensor produces a second signal in response to acoustic vibrations and provides the second signal to the noise attenuator, and wherein the noise attenuator is responsive to the first and second signals to produce a reduced noise signal having a higher signal to noise ratio than either of the first or second signals.

8. The acoustic sensor system of claim 7 , wherein the first and second electrode layers distribute electromagnetic noise incident on the acoustic sensor system substantially evenly between the first signal and the second signal.

9. The acoustic sensor system of claim 8 , wherein the electromagnetic noise in the first signal is substantially in phase with the electromagnetic noise in the second signal.

10. The acoustic sensor system of claim 5 , further comprising an intermediate layer positioned between the first and second inner layers, the intermediate layer configured electrically insulate the first and second acoustic sensors from one another.

11. The acoustic sensor system of claim 10 , wherein the intermediate layer forms a substantially water resistant seal between the first and second acoustic sensors.

12. The acoustic sensor system of claim 11 , wherein the intermediate layer is configured to at least partially bond the first and second sensors together such that mechanically active regions of the first and second sensing elements move together in response to acoustic vibrations.

13. The acoustic sensor system of claim 5 further comprising:

a noise attenuator coupled to the first inner layer of the first acoustic sensor and the second inner layer of the second acoustic sensor, the noise attenuator configured to:

at least partially constructively combine a physiological signal component of a first signal output by the first acoustic sensing element and a physiological signal component of a second signal output by the second acoustic sensing element; and

at least partially destructively combine a noise component of the first signal output by the first acoustic sensing element and a noise component of the second signal output by the second acoustic sensing element.

14. The acoustic sensor system of claim 13 , wherein the noise attenuator comprises at least one of: circuitry including an amplifier, a signal processor, or a general-purpose processor.

15. The acoustic sensor system of claim 14 , wherein the noise attenuator is further configured to generate a reduced noise signal based on constructively combining the physiological signal components and destructively combining the noise components.

16. The acoustic sensor system of claim 15 , wherein the reduced noise signal has a lower noise component than one or more of the first and second signals.

17. The acoustic sensor system of claim 16 , wherein the noise attenuator generates the reduced noise signal using common-mode rejection.

18. A method comprising:

receiving signals from an acoustic sensor system according to claim 1 that is attachable to a medical patient and configured to provide signals responsive to acoustic vibrations indicative of one or more physiological parameters of the medical patient.

19. The method of claim 18 , wherein the acoustic sensor system further includes a coupling bump configured to apply pressure to at least one of the first and second sensing elements to push at least a portion of the one of the first and second sensing elements into a cavity of the acoustic sensor system.

20. The method of claim 19 , wherein the coupling bump is configured to transmit acoustic vibrations to the one of the first and second sensing elements through the acoustic coupling bump when the acoustic sensor is attached to the medical patient.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 20, 2021
From: TELFORT, VALERY G.; DIMITROV, DIMITAR; TRANG, PHI
To: MASIMO CORPORATION
Reel/Frame 054972/0878 →
Continuity (7)
Continuation 16193756 · Nov 16, 2018
Continuation 15366899 · Dec 1, 2016
Continuation 14247120 · Apr 7, 2014
Continuation 12904931 · Oct 14, 2010
Provisional Application 61313645 · Mar 12, 2010
Provisional Application 61252099 · Oct 15, 2009
Related Publication 20210128069A1 · May 6, 2021