IP Library Granted Patent US 12,442,556
Granted Patent B2
US 12,442,556 · App. 17/187,175 · Granted Oct 14, 2025

Flowrate determination system and method for a flow control valve

Inventors: Jason J. Raasch (Cedarburg, WI); Christopher Brophy (Cedarburg, WI); Kevin A. Weiss (Chicago, IL); Duane S. Freimuth (Franklin, WI)
Assignee: TYCO FIRE & SECURITY GMBH
F24F11/75F16K37/0033F16K37/0041F24F11/49F24F11/63F24F11/88G01F1/363G01F1/383G05D7/0635F24F2110/10F24F2110/40
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,442,556
App. No.
17/187,175
Granted
Oct 14, 2025
Kind
B2
Abstract

A flow control device for controlling flow in a heating, ventilation, or air conditioning (HVAC) system is shown. The flow control device includes a valve body including an inlet path, an outlet path, a valve member, and a valve stem coupled to the valve member. The flow control device includes a first sensor configured to obtain pressure measurements within the valve body, a second sensor configured to obtain displacement measurements of the valve stem, and a controller including a processing circuit configured to determine a flowrate based at least on the pressure measurements from the first sensor and the displacement measurements from the second sensor.

Claims (83)

1. A flow control device for controlling flow in a heating, ventilation, or air conditioning (HVAC) system, the flow control device comprising:

a pressure-regulating valve comprising an inlet path and an outlet path;

a moveable fluid barrier configured to adjust a size of an opening of the pressure-regulating valve;

a control valve comprising a valve member and a valve stem coupled to the valve member;

a first sensor configured to obtain pressure measurements within the pressure-regulating valve based on linear displacement of the moveable fluid barrier;

a second sensor configured to obtain linear and angular displacement measurements of the valve stem; and

a controller comprising a processing circuit configured to:

determine a flowrate based at least on the pressure measurements from the first sensor and the linear and angular displacement measurements from the second sensor;

determine an amount of energy provided by a heat exchanger; and

adjust the valve stem based on the amount of energy and a factor related to the flowrate.

2. The flow control device of claim 1 , wherein the controller is further configured to:

receive the pressure measurements and the displacement measurements;

receive flow control device parameters from a database, the flow control device parameters comprising at least one of a specific gravity, a flow coefficient of the flow control device, a diaphragm characteristic, and a spring characteristic;

determine a pressure differential between the pressure in the inlet path and the pressure in the outlet path based on at least the displacement measurements of the pressure-regulating valve and the flow control device parameters; and

determine the flowrate based on at least the pressure differential and the flow control device parameters.

3. The flow control device of claim 1 , wherein the controller is further configured to:

receive flow setpoint instructions for the flow control device;

provide the pressure measurements and the displacement measurements as inputs to a machine learning module;

use the machine learning module to generate a model of behavior of the flow; and

provide control signals to HVAC equipment based on the model to satisfy the flow setpoint instructions.

4. The flow control device of claim 1 , wherein determining the flowrate further comprises querying a lookup table to compare at least one of the pressure measurements and the displacement measurements to determine an estimated flowrate, wherein the lookup table comprises information specific to a type or a manufacture of the flow control device.

5. The flow control device of claim 1 , further comprising:

an actuator configured to drive the valve stem, wherein the actuator is coupled to the valve stem; and

wherein the controller is coupled to the actuator such that the controller and the actuator are located within a single housing.

6. A method of monitoring flow of a fluid through a valve in a heating, ventilation, or air conditioning (HVAC) system, the method comprising:

placing a flow control device within a fluid flow path, the flow control device comprising:

a pressure-regulating valve comprising an inlet path and an outlet path,

a moveable fluid barrier configured to adjust a size of an opening of the pressure-regulating valve,

a control valve comprising a valve member and a valve stem coupled to the valve member;

receiving pressure measurements from a first sensor for the pressure-regulating valve, based on linear displacement of the moveable fluid barrier;

receiving position measurements from a second sensor, the position measurements based on linear and angular displacement of the valve stem;

determining a flowrate based at least on measurements from the first sensor and measurements from the second sensor;

determining an amount of energy provided by a heat exchanger;

determining an error indicating that the flowrate is outside of an acceptable threshold; and

initiating corrective action within the HVAC system to correct the error, wherein initiating corrective action comprises at least adjusting the valve stem based on the amount of energy and a factor related to the flowrate.

7. The method of claim 6 , wherein initiating corrective action comprises adjusting control signals provided to HVAC equipment, the HVAC equipment configured to facilitate fluid flow through the moveable fluid barrier, wherein the HVAC equipment is a boiler or chiller or pump.

8. The method of claim 6 , wherein the method further comprises receiving the pressure measurements from the first sensor, the pressure measurements based on one or more linear and angular displacement measurements of the moveable fluid barrier.

9. The method of claim 6 , wherein the method further comprises:

receiving flow control device parameters from a database, the flow control device parameters comprising at least one of a specific gravity, a flow coefficient of the pressure-regulating valve, a diaphragm characteristic, and a spring characteristic;

determining a pressure differential between the pressure in the inlet path and the pressure in the outlet path based on at least the displacement measurements of the pressure-regulating valve and the flow control device parameters; and

determine the flowrate based on at least the pressure differential, the position measurements, and the flow control device parameters.

10. The method of claim 6 , wherein the method further comprises:

receiving flow setpoint instructions;

providing the measurements from the first sensor and the second sensor as inputs to a machine learning module;

using the machine learning module to generate a model of behavior of the fluid flowing through the pressure-regulating valve; and

providing control signals to HVAC equipment based on the model to satisfy the flow setpoint instructions.

11. The method of claim 6 , wherein determining the flowrate further comprises querying a lookup table to compare at least one of the pressure measurements or the position measurements to determine an estimated flowrate, wherein the lookup table comprises information specific to a type or a manufacture of the pressure-regulating valve.

12. The method of claim 6 , wherein the method further comprises adjusting operation of the valve stem based on control signals provided by a controller via an actuator coupled to the valve stem, the controller coupled to the actuator such that the controller and the actuator are located in a single housing.

13. A flow control device for controlling flow in a heating, ventilation, or air conditioning (HVAC) system, the flow control device comprising:

a pressure-regulating valve comprising an inlet path and an outlet path;

a moveable fluid barrier configured to adjust a size of an opening of the pressure-regulating valve;

a control valve comprising a valve member and a valve stem coupled to the valve member;

a first sensor configured to obtain pressure measurements within the pressure-regulating valve based on linear displacement of the moveable fluid barrier;

a second sensor configured to obtain linear and angular displacement measurements of the valve stem;

a third sensor located proximate to an inlet of a heat exchanger upstream of the flow control device;

a fourth sensor located proximate to an outlet of the heat exchanger; and

a controller comprising a processing circuit configured to:

determine a temperature differential of the heat exchanger based on measurements from the third sensor and the fourth sensor;

determine a flowrate based at least on measurements from the first sensor and measurements from the second sensor;

calculate energy throughput of the flow control device based on the temperature differential and the flowrate; and

adjust the valve stem based on the energy throughput and a factor related to the flowrate.

14. The flow control device of claim 13 , wherein the controller is further configured to:

receive the measurements from the first sensor and the measurements from the second sensor;

receive flow control device parameters from a database, the flow control device parameters comprising at least one of a specific gravity, a flow coefficient of the flow control device, and a diaphragm characteristic;

determine a pressure differential between the pressure in the inlet path and the pressure in the outlet path based on at least the displacement measurements of the pressure-regulating valve from the first sensor and the flow control device parameters; and

determine the flowrate based on at least the pressure differential and the flow control device parameters.

15. The flow control device of claim 13 , wherein the controller is further configured to:

receive flow setpoint instructions;

provide the measurements from the first, second, third, and fourth sensors as inputs to a machine learning module;

use the machine learning module to generate a model of behavior of the flow flowing through the flow control device; and

provide control signals to HVAC equipment based on the model to satisfy the flow setpoint instructions.

16. The flow control device of claim 13 , wherein determining the flowrate further comprises querying a lookup table to compare at least one of the measurements from the first sensor and the measurements from the second sensor to determine an estimated flowrate, wherein the lookup table comprises information specific to a type or a manufacture of the flow control device.

17. The flow control device of claim 1 , wherein the pressure-regulating valve further comprises a first spring coupled to an orifice of an opening of the pressure-regulating valve and the moveable fluid barrier;

wherein the moveable fluid barrier is configured to be displaced via the first spring, to adjust a size of the opening.

18. The flow control device of claim 1 , wherein the control valve further comprises a second spring coupled to the valve stem.

19. The method of claim 6 , wherein the flow control device further comprises:

a first spring coupled to an orifice of an opening of the pressure-regulating valve and the moveable fluid barrier; and

a second spring coupled to the valve stem;

wherein the moveable fluid barrier is configured to be displaced via the first spring, to adjust the size of the opening.

20. The flow control device of claim 13 , wherein the flow control device further comprises:

a first spring coupled to an orifice of an opening of the pressure-regulating valve and the moveable fluid barrier; and

a second spring coupled to the valve stem;

wherein the moveable fluid barrier is configured to be displaced via the first spring, to adjust the size of the opening.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 18, 2024
From: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
To: TYCO FIRE & SECURITY GMBH
Reel/Frame 066957/0796 →
NUNC PRO TUNC ASSIGNMENT Recorded Feb 4, 2022
From: JOHNSON CONTROLS TECHNOLOGY COMPANY
To: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
Reel/Frame 058959/0764 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2021
From: RAASCH, JASON J.; BROPHY, CHRISTOPHER; WEISS, KEVIN A.; FREIMUTH, DUANE S.
To: JOHNSON CONTROLS TECHNOLOGY COMPANY
Reel/Frame 055625/0472 →
Continuity (1)
Related Publication 20220275963A1 · Sep 1, 2022
References Cited (24)
US 6827100B1 · Carlson · 2004 [cited by applicant]
US 7451781B2 · Carlson · 2008 [cited by applicant]
US 9500288B2 · Semmes · 2016 [cited by applicant]
US 9658628B2 · Burt · 2017 [cited by applicant]
US 9746199B1 · Drees et al. · 2017 [cited by applicant]
US 10007239B2 · Burt · 2018 [cited by applicant]
US 10317261B2 · Noboa et al. · 2019 [cited by applicant]
US 10323768B2 · Tuineag · 2019 [cited by applicant]
US 10359208B2 · Drees et al. · 2019 [cited by applicant]
US 10635120B2 · D'Silva et al. · 2020 [cited by applicant]
US 10712042B2 · Passoni et al. · 2020 [cited by applicant]
US 10739029B2 · Sinha et al. · 2020 [cited by applicant]
US 20070151321A1 · Ohmi · 2007 [cited by examiner]
US 20120185102A1 · Skoglund · 2012 [cited by examiner]
US 20190353385A1 · Aucoin · 2019 [cited by examiner]
US 20200264067A1 · Lance et al. · 2020 [cited by applicant]
CN 111006304A · 2020 [cited by examiner]
EP 0462432A2 · 1991 [cited by applicant]
WO WO2009022148A1 · 2009 [cited by examiner]
EP Office Action for EP Appl. Ser No. 22158804.9 dated Dec. 6, 2023 (4 pages). [cited by applicant]
EP Office Action and Partial European Search Report on EP Appl. Ser. No. 22 15 8804 dated Aug. 11, 2022 (13 pages). [cited by applicant]
Extended European Search Report on EP Appl. Ser. No. 22 15 8804 dated Nov. 11, 2022 (11 pages). [cited by applicant]
EP Office Action for EP Appl. Ser. No. 22158804.9 dated Nov. 22, 2024 (3 pages). [cited by applicant]
EP Office Action for Appl. Ser. No. EP 22158804.9 dated Jul. 9, 2024 (3 pages). [cited by applicant]