IP Library Granted Patent US 12,584,825
Granted Patent B2
US 12,584,825 · App. 17/707,018 · Granted Mar 24, 2026

Aspirating pathogen detection system

Inventor: Pere Moix Olivé (Barcelona, ES)
Assignee: KIDDE FIRE PROTECTION, LLC
G01N1/2273G01N1/26G01N21/59G01N33/0016G01N33/0036G08B21/14G08B21/16G01N2001/222G01N1/24G01N2021/5903
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Quick Facts
Patent No.
US 12,584,825
App. No.
17/707,018
Granted
Mar 24, 2026
Kind
B2
Abstract

An aspirating detection system for monitoring for the presence of a pathogen, the aspirating detection system including: a network of one or more pipes for sampling air from a plurality of locations monitored by the aspirating detection system; a sensor unit 3 comprising a housing 13 fluidly connected to the network of one or more pipes, and a biosensor 12 mounted within the housing, the biosensor being configured to monitor for the presence of the pathogen; and an aspirator 15 configured to draw airflow through the network of one or more pipes and through the biosensor 12.

Claims (31)

1 . An aspirating detection system for monitoring for the presence of a pathogen, the aspirating detection system comprising:

a network of one or more pipes for sampling air from a plurality of locations monitored by the aspirating detection system;

a plurality of sensor units; and

one or more aspirators configured to draw airflow through the network of one or more pipes and through the sensor units;

wherein the plurality of sensor units comprises:

a first sensor unit comprising:

a first housing fluidly connected to the network of one or more pipes; and

a sensor mounted within the first housing and configured to monitor for one or more of: the presence of smoke, the presence of carbon monoxide, the presence of ammonia gas, the presence of hydrogen gas, the presence of chlorine gas, the presence of oxygen, the presence of methane gas, and the presence of sulphides; and

a second sensor unit comprising:

a second housing fluidly connected to the network of one or more pipes;

a biosensor mounted within the second housing and configured to monitor for the presence of the pathogen, and

an air control device mounted within the second housing and arranged to provide a separate regulated airflow to the biosensor, wherein the airflow speed of the airflow provided to the biosensor is slower or faster than the total airflow speed of the airflow through the second sensor unit;

wherein the plurality of sensor units are arranged in series having an inlet of one of the plurality of sensor units connected to an outlet of an upstream and adjacent sensor unit.

2 . An aspirating detection system as claimed in claim 1 , wherein the biosensor is configured to monitor for the presence of one or more viruses within a predetermined group of pathogenic viruses.

3 . An aspirating detection system as claimed in claim 1 , wherein the biosensor comprises a bioreceptor configured to undergo a property change responsive to exposure to the pathogen; and a detector configured to detect the property change of the bioreceptor and produce a signal indicative of the property change.

4 . An aspirating detection system as claimed in claim 3 , wherein the biosensor comprises a Localised Surface Plasmon Resonance (LSPR) sensor.

5 . An aspirating detection system as claimed in claim 1 , wherein the second sensor unit comprises a temperature control system configured to regulate a temperature of the airflow through the second sensor unit.

6 . An aspirating detection system as claimed in claim 5 , wherein the temperature control system is configured to maintain the temperature of the airflow at a predetermined temperature associated with the pathogen.

7 . An aspirating detection system as claimed in claim 1 , wherein the plurality of sensor units further includes a sensor unit comprising a biosensor configured to monitor for the presence of a second, different pathogen.

8 . An aspirating detection system as claimed in claim 1 , wherein the plurality of sensor units of the aspirating detection system are interchangeable, modular sensor units.

9 . A method of operating an aspirating detection system, the aspirating detection system comprising: a network of one or more pipes for sampling air from a plurality of locations monitored by the aspirating detection system; a plurality of sensor units, each sensor unit comprising a housing fluidly connected to the network of one or more pipes; and one or more aspirators configured to draw airflow through the network of one or more pipes and through the sensor units; wherein the plurality of sensor units comprises: a first sensor unit comprising a first housing fluidly connected to the network of one or more pipes, and a sensor mounted within the first housing; and a second sensor unit comprising a second housing fluidly connected to the network of one or more pipes, a biosensor mounted within the second housing, and an air control device mounted within the second housing; the method comprising:

drawing a plurality of air samples from a plurality of locations into the network of one or more pipes that direct the air samples to the plurality of sensor units;

monitoring for one or more of: the presence of smoke, the presence of carbon monoxide, the presence of ammonia gas, the presence of hydrogen gas, the presence of chlorine gas, the presence of oxygen, the presence of methane gas, and the presence of sulphides in the plurality of air samples using the sensor of the first sensor unit; and

monitoring for the presence of a pathogen in the plurality of air samples using the biosensor of the second sensor unit, wherein monitoring for the presence of a pathogen in the plurality of air samples comprises using the air control device, mounted within the housing of the second sensor unit, to provide a separate regulated airflow to the biosensor, wherein the airflow speed of the airflow provided to the biosensor is slower or faster than the total airflow speed of the airflow through the second sensor unit;

wherein the plurality of sensor units are arranged in series having an inlet of one of the plurality of sensor units connected to an outlet of an upstream and adjacent sensor unit.

10 . A method as claimed in claim 9 , further comprising:

regulating a temperature of the plurality of air samples to maintain their temperatures at a predetermined temperature associated with the pathogen.

11 . A method of adapting an existing aspirating detection system to monitor for the presence of a pathogen, the existing aspirating detection system comprising a network of one or more pipes for sampling air from a plurality of locations monitored by the aspirating detection system; a first sensor unit comprising a first housing fluidly connected to the network of one or more pipes and a sensor mounted within the first housing and configured to monitor for one or more of: the presence of smoke, the presence of carbon monoxide, the presence of ammonia gas, the presence of hydrogen gas, the presence of chlorine gas, the presence of oxygen, the presence of methane gas, and the presence of sulphides; and one or more aspirators configured to draw airflow through the network of one or more pipes and through the first sensor unit, the method comprising:

fluidly connecting a second housing of a second sensor unit to the network of one or more pipes of the aspirating detection system, the second sensor unit comprising: a biosensor mounted within the second housing and configured to monitor for the presence of a pathogen, and an air control device mounted within the second housing and arranged to provide a separate regulated airflow to the biosensor, wherein the airflow speed of the airflow provided to the biosensor is slower or faster than the total airflow speed of the airflow through the second sensor unit;

wherein the first sensor unit and the second sensor unit are arranged in series having an inlet of one of the plurality of sensor units connected to an outlet of an upstream and adjacent sensor unit.

12 . A method as claimed in claim 11 , wherein the second sensor unit is a modular sensor unit and the existing aspirating detection system comprises at least one modular sensor unit; and wherein the step of fluidly connecting the second sensor unit to the aspirating detection system comprises interchanging the modular second sensor unit with an existing modular sensor unit of the aspirating detection system.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2025
From: CARRIER CORPORATION; CARRIER GLOBAL CORPORATION; CARRIER FIRE & SECURITY EMEA; CARRIER FIRE & SECURITY, LLC; CARRIER CANADA CORPORATION; CLIMATE, CONTROLS & SECURITY ARGENTINA S.A.; KIDDE IP HOLDINGS , INC.; KIDDE LTD.; KIDDE PRODUCTS LTD.; CARRIER TRANSICOLD AUSTRIA GMBH; CARRIER TRANSICOLD FRANCE SCS
To: KIDDE FIRE PROTECTION, LLC
Reel/Frame 072829/0383 →
SECURITY INTEREST Recorded May 28, 2025
From: KIDDE FIRE PROTECTION, LLC; WALTER KIDDE PORTABLE EQUIPMENT INC.
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 071436/0526 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 14, 2025
From: CARRIER GLOBAL CORPORATION; CARRIER CORPORATION; CARRIER FIRE & SECURITY EMEA; CARRIER FIRE & SECURITY, LLC; CARRIER CANADA CORPORATION; CLIMATE, CONTROLS & SECURITY ARGENTINA S.A.; KIDDE IP HOLDINGS, INC.; KIDDE LTD.; KIDDE PRODUCTS LTD.; CARRIER TRANSICOLD AUSTRIA GMBH; CARRIER TRANSICOLD FRANCE SCS
To: KIDDE FIRE PROTECTION, LLC
Reel/Frame 070518/0387 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 30, 2022
From: MOIX OLIVÉ, PERE; UTC FIRE & SECURITY ESPANA SL
To: CARRIER FIRE & SECURITY EMEA BV
Reel/Frame 059544/0087 →
Priority Claims (1)
EP 21382271 · Mar 31, 2021 · regional
Continuity (1)
Related Publication 20220316999A1 · Oct 6, 2022
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