IP Library Granted Patent US 9,732,977
Granted Patent B2
US 9,732,977 · App. 14/475,318 · Granted Aug 15, 2017

Systems and methods for configuring and communicating with HVAC devices

Inventors: Robert K. Alexander (Jackson, WI); Christopher Merkl (Milwaukee, WI); Gary A. Romanowich (Slinger, WI); Bernard Clement (Mequon, WI); Kevin Weiss (Gurnee, IL)
Assignee: Johnson Controls Technology Company
F24F11/006F24F11/0009G05B15/02F24F2011/0072G05B2219/2231G05B2219/2237G05B2219/2614
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Quick Facts
Patent No.
US 9,732,977
App. No.
14/475,318
Filed
Sep 2, 2014
Granted
Aug 15, 2017
Kind
B2
Art Unit
2199
USPC
700/276
Abstract

An actuator in a HVAC system includes a mechanical transducer, an input data connection, a feedback data connection, and a processing circuit. The processing circuit is configured to use a master-slave detection signal communicated via the feedback data connection to select an operating mode for the actuator from a set of multiple potential operating modes including a master operating mode and a slave operating mode. The processing circuit is configured to operate the mechanical transducer in response to a control signal received via the input data connection according to the selected operating mode.

Claims (26)

1. An actuator in a HVAC system, the actuator comprising:

a mechanical transducer;

an input data connection;

a feedback data connection; and

a processing circuit configured to use a master-slave detection signal communicated via the feedback data connection to select an operating mode for the actuator from a set of multiple potential operating modes comprising a master operating mode and a slave operating mode;

wherein the processing circuit is configured to operate the mechanical transducer in response to a control signal received via the input data connection according to the selected operating mode.

2. The actuator of claim 1 , wherein the processing circuit is configured to generate the master-slave detection signal and to output the master-slave detection signal via the feedback data connection.

3. The actuator of claim 2 , wherein the processing circuit is configured to monitor the feedback data connection for a reply signal from another actuator, wherein the reply signal is generated by the other actuator in response to receiving the output master-slave detection signal;

wherein the processing circuit is configured to select the master operating mode in response to detecting the reply signal from the other actuator at the feedback data connection.

4. The actuator of claim 1 , wherein the processing circuit is configured to monitor the input data connection for the master-slave detection signal, wherein the master-slave detection signal is generated by another actuator;

wherein the processing circuit is configured to select the slave operating mode in response to detecting the master-slave detection signal from the other actuator at the input data connection.

5. The actuator of claim 4 , wherein the processing circuit is configured to generate a reply signal in response to detecting the master-slave detection signal at the input data connection;

wherein the processing circuit is configured to output the reply signal via the input data connection.

6. The actuator of claim 1 , wherein the processing circuit is configured to monitor the input data connection for the master-slave detection signal and to monitor the feedback data connection for a reply signal;

wherein the processing circuit is configured to select a normal operating mode in response to a determination that the master-slave detection signal is not detected at the input data connection and the reply signal is not detected at the feedback data connection.

7. The actuator of claim 1 , wherein the processing circuit is configured to engage in bi-directional communications with another actuator via the feedback data connection;

wherein the feedback data connection is connected with an input data connection of the other actuator.

8. The actuator of claim 1 , wherein the processing circuit is configured to engage in bi-directional communications with another actuator via the input data connection;

wherein the input data connection is connected with a feedback data connection of the other actuator.

9. The actuator of claim 1 , further comprising:

memory storing instructions for generating the master-slave detection signal;

wherein the processing circuit generates the master-slave detection signal according to the stored instructions.

10. The actuator of claim 1 , wherein the master-slave detection signal comprises a series of digital pulses.

11. The actuator of claim 1 , wherein the processing circuit comprises:

a master detection circuit configured to monitor the input data connection for the master-slave detection signal, to generate a reply signal in response to detecting the master-slave detection signal at the input data connection, and to output the reply signal via the input data connection; and

a slave detection circuit configured to generate the master-slave detection signal, to output the master-slave detection signal via the feedback data connection, and to monitor the feedback data connection for the reply signal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2014
From: ALEXANDER, ROBERT K.; MERKL, CHRISTOPHER; ROMANOWICH, GARY A.; CLEMENT, BERNARD; WEISS, KEVIN
To: JOHNSON CONTROLS TECHNOLOGY COMPANY
Reel/Frame 033678/0623 →
Continuity (1)
Related Publication 20160061468A1 · Mar 3, 2016