IP Library Granted Patent US 12,521,279
Granted Patent B2
US 12,521,279 · App. 17/442,023 · Granted Jan 13, 2026

Absorbent dressing with remote measurement of dressing moisture

Inventors: Christopher Brian Locke (Bournemouth, GB); Justin Alexander Long (Lago Vista, TX)
Assignee: Solventum Intellectual Properties Company
A61F13/05A61F13/00055A61F13/00063A61F13/0223A61M1/915A61M1/985A61M1/92A61M2205/3327A61M2205/3368A61M2205/3389A61M2205/3592A61M2205/50A61M2205/7527A61M2205/7536
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Quick Facts
Patent No.
US 12,521,279
App. No.
17/442,023
Granted
Jan 13, 2026
Kind
B2
Abstract

A system or apparatus including a dressing, a dressing interface, and a humidity sensor may be suitable for use with systems and methods for treating a tissue site. Embodiments of the apparatus are provided for treating a tissue site with reduced pressure provided by a source of reduced pressure. The dressing may include a base layer, a sealing member disposed proximate the base layer to define an enclosure providing a sealed space over the tissue site, and an absorbent member disposed within the enclosure. The dressing interface may comprise a reduced-pressure port configured to be coupled to the source of reduced pressure and a therapy port covered by a hydrophobic filter defining a reduced-pressure pathway between the hydrophobic filter and the source of reduced pressure. The humidity sensor may comprise a sensing portion fluidly coupled to the reduced-pressure pathway and an output for providing a humidity signal that indicates the amount of fluid extracted from the tissue site and stored by the absorbent member. Other dressings, systems, and methods are disclosed.

Claims (48)

1 . A system for treating a tissue site with reduced pressure provided by a source of reduced pressure, comprising:

a dressing including:

a base layer having a periphery and a plurality of apertures adapted to cover the tissue site,

a sealing member having a periphery adapted to be positioned proximate the periphery of the base layer to define an enclosure with the base layer, and

an absorbent member disposed within the enclosure between the base layer and the sealing member;

a dressing interface having a hydrophobic filter and disposed proximate the sealing member in fluid communication with the enclosure through the hydrophobic filter;

a fluid conductor in fluid communication with the dressing interface and adapted to be coupled to the source of reduced pressure for providing reduced pressure to the enclosure;

a first humidity sensor having a first sensing portion fluidly coupled to the fluid conductor between the dressing interface and the source of reduced pressure and having a first output for providing a first humidity signal, the first humidity sensor further including a temperature sensor having a sensing portion fluidly coupled to the fluid conductor and having a temperature output for providing a temperature signal corresponding to the first humidity signal;

a second humidity sensor having a second sensing portion fluidly coupled to an ambient environment and having a second output for providing a second humidity signal;

an actuator coupled to the fluid conductor, the actuator configured to close and open the fluid conductor; and

a control device electrically coupled with the first humidity sensor, the second humidity sensor, and the actuator, the control device configured to receive a user input setting a fluid target, compare the first output and the second output, determine a fluid condition of the dressing based on the comparison of the first output and the second output, communicate with the actuator to close the fluid conductor in response to the first humidity signal indicating that the first output has reached a first target humidity and open the fluid conductor in response to the first humidity signal indicating that the first output has reached a second target humidity after the first target humidity, and determine a dew point based on the first output and the temperature output.

2 . The system of claim 1 , wherein the first humidity signal corresponds to an amount of fluid extracted from the tissue site and stored by the dressing.

3 . The system of claim 2 , wherein the control device is electrically coupled to the first output of the first humidity sensor for receiving the first humidity signal.

4 . The system of claim 3 , wherein the control device comprises an output adapted to provide an indication of the amount of fluid stored by the dressing based on the first humidity signal.

5 . The system of claim 4 , wherein the control device is configured to provide a dressing filled signal when humidity measured by the first humidity sensor is equal to or greater than the fluid target based on the first humidity signal.

6 . The system of claim 5 , wherein the control device further comprises a wireless transmitter for providing the amount of fluid stored by the dressing and the dressing filled signal.

7 . The system of claim 1 , wherein the fluid condition is at least one of a leak in the system, a full dressing, or a blockage in the system.

8 . The system of claim 1 , wherein at least the fluid target and the first target humidity are set via at least one of a switch or a touchscreen of the control device.

9 . An apparatus for treating a tissue site with reduced pressure provided by a source of reduced pressure, comprising:

a dressing configured to define an enclosure providing a sealed space over the tissue site;

a dressing interface having a reduced-pressure port configured to be coupled to the source of reduced pressure and a therapy port covered by a hydrophobic filter defining a reduced-pressure pathway between the hydrophobic filter and the source of reduced pressure, wherein the dressing interface is disposed proximate the dressing so that the therapy port is in fluid communication with the enclosure;

a first humidity sensor having a first sensing portion fluidly coupled to the reduced-pressure pathway and having a first output for providing a first humidity signal corresponding to an amount of fluid extracted from the tissue site and stored by the dressing, the first humidity sensor further including a temperature sensor having a sensing portion fluidly coupled to the reduced-pressure pathway and having a temperature output for providing a temperature signal corresponding to the first humidity signal;

a second humidity sensor having a second sensing portion fluidly coupled to an ambient environment and having a second output for providing a second humidity signal;

an actuator coupled to the reduced-pressure pathway, the actuator configured to close and open the reduced-pressure pathway; and

a control device electrically coupled with the first humidity sensor, the second humidity sensor, and the actuator, the control device configured to receive a user input setting a fluid target, compare the first output and the second output, determine a fluid condition of the dressing based on the comparison of the first output and the second output, and communicate with the actuator to close the reduced-pressure pathway in response to the first humidity signal indicating that the first output has reached a first target humidity and open the reduced-pressure pathway in response to the first humidity signal indicating that the first output has reached a second target humidity after the first target humidity, and determine a dew point based on the first output and the temperature output.

10 . The apparatus of claim 9 , wherein the reduced-pressure pathway includes a fluid conductor between the reduced-pressure port and the source of reduced pressure, the first sensing portion of the first humidity sensor being fluidly coupled to a portion of the reduced-pressure pathway defined by the fluid conductor.

11 . The apparatus of claim 9 , wherein the first sensing portion of the first humidity sensor is fluidly coupled to a portion of the reduced-pressure pathway between the reduced-pressure port and the hydrophobic filter.

12 . The apparatus of claim 9 , wherein the dressing interface further comprises an ambient port including a valve fluidly coupling the reduced-pressure pathway to the ambient environment, wherein the valve is coupled to the control device and actionable to open and close the ambient port in response to an output from the control device.

13 . A method for treating a tissue site with reduced pressure provided by a source of reduced pressure, comprising:

positioning a dressing on the tissue site, the dressing defining an enclosure providing a sealed space over the tissue site;

disposing a dressing interface proximate the dressing, the dressing interface having a therapy port covered by a hydrophobic filter defining a reduced-pressure pathway between the hydrophobic filter and the source of reduced pressure, the therapy port being in fluid communication with the enclosure;

applying reduced pressure to the enclosure through the reduced-pressure pathway and the hydrophobic filter;

sensing humidity within the reduced-pressure pathway with a first humidity sensor having a first output that provides a first humidity signal in response to application of reduced pressure;

sensing humidity of an ambient environment with a second humidity sensor having a second output that provides a second humidity signal;

sensing temperature associated with the first humidity signal within the reduced-pressure pathway with a temperature sensor having a temperature output that provides a temperature signal;

electrically coupling a control device to the first humidity sensor, the second humidity sensor, and an actuator coupled to the reduced-pressure pathway;

comparing, with the control device, the first output and the second output to determine an amount of fluid extracted from the tissue site and stored by the dressing;

setting the control device with a fluid target and a first target humidity received from user input to at least one switch or a touchscreen of the control device;

determining a dew point based on the first output and the temperature output;

controlling the actuator with the control device to close the reduced-pressure pathway in response to the first humidity signal indicating that the first output has reached a first target humidity and to open the reduced-pressure pathway in response to the first humidity signal indicating that the first output has reached a second target humidity after the first target humidity; and

providing the amount of fluid extracted from the tissue site and stored by the dressing to a display.

14 . The method of claim 13 , wherein the humidity within the reduced-pressure pathway is sensed by the first humidity sensor within the dressing interface.

15 . The method of claim 13 , wherein the humidity within the reduced-pressure pathway is sensed by the first humidity sensor between the dressing interface and the source of reduced pressure.

16 . The method of claim 13 , further comprising electrically coupling the control device to the first output of the first humidity sensor and the second output of the second humidity sensor for receiving the first humidity signal and the second humidity signal.

17 . The method of claim 16 , further comprising providing a dressing filled signal when the humidity within the reduced-pressure pathway measured by the first humidity sensor is equal to or greater than the fluid target based on the first humidity signal.

18 . The method of claim 16 , further comprising providing an output from the control device wherein the output is configured to provide an indication of an amount of fluid stored by the dressing based on the first humidity signal and the second humidity signal.

19 . The method of claim 16 , further comprising communicating humidity signals between the control device and a remote device utilizing a wireless transceiver coupled to the control device for providing data regarding an amount of fluid stored by the dressing.

20 . The method of claim 13 , further comprising purging the reduced-pressure pathway proximate the first humidity sensor with ambient environment through an ambient port including a valve fluidly coupling the reduced-pressure pathway to the ambient environment, wherein the valve is actionable to open and close the ambient port in response to the control device.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2024
From: 3M INNOVATIVE PROPERTIES COMPANY
To: SOLVENTUM INTELLECTUAL PROPERTIES COMPANY
Reel/Frame 066436/0225 →
CORRECTIVE ASSIGNMENT TO CORRECT THE APPLICATION LISTED ON SCHEDULE OF IP RIGHTS ATTACHED TO ASSIGNMENT AT LINES 55: 71; 89; 116-129; AND 131 NEED TO BE DELETED PREVIOUSLY RECORDED AT REEL: 064788 FRAME: 0823. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Sep 13, 2023
From: KCI LICENSING, INC.
To: 3M INNOVATIVE PROPERTIES COMPANY
Reel/Frame 064886/0479 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2023
From: KCI LICENSING, INC.
To: 3M INNOVATIVE PROPERTIES COMPANY
Reel/Frame 064788/0823 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 19, 2023
From: LOCKE, CHRISTOPHER BRIAN; LONG, JUSTIN ALEXANDER
To: KCI LICENSING, INC.
Reel/Frame 064640/0691 →
Continuity (2)
Provisional Application 62823222 · Mar 25, 2019
Related Publication 20220168152A1 · Jun 2, 2022
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