Wireless damper testing and control system
10982876 ยท 2021-04-20
Assignee
Inventors
- Thomas R. Edwards (Leawood, KS, US)
- Josiah Wiley (Kansas City, MO, US)
- Timothy A. Vogel (Independence, MO, US)
Cpc classification
F24F2221/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F2013/1433
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/56
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F11/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62C37/50
HUMAN NECESSITIES
International classification
F24F13/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62C37/50
HUMAN NECESSITIES
Abstract
A wireless damper control and test system comprising a wireless controller for communicating with a wireless interface using an identifier whereby actuation timing of a damper actuator is transmitted by signal, the wireless interface connected to a damper to be controlled or tested using the transmitted signal, the wireless controller transmits the signals to the wireless interface for operational verification of the damper and damper actuator, and the wireless interface detects a damper state by contacts mounted on the damper and communicates the damper state to the wireless controller.
Claims
1. A damper controller comprising: a wireless interface configured to: transmit a query signal to a plurality of dampers; receive a response signal from each damper of the plurality of dampers in response to the query signal; transmit a test signal to a damper of the plurality of dampers, wherein the test signal is configured to initiate an operational test of the damper; and receive a test response signal from the damper, wherein the test response signal is generated in response to the operational test; and a display configured to display: a list of the plurality of dampers based on the response signal received from each damper of the plurality of dampers; and a test result based on the test response signal.
2. The damper controller of claim 1, wherein the wireless interface is configured to communicate directly with each damper of the plurality of dampers.
3. The damper controller of claim 1, wherein the wireless interface is configured to communicate with the damper via a relay.
4. The damper controller of claim 3, wherein the damper is a first damper, and the relay comprises a second damper of the plurality of dampers.
5. The damper controller of claim 1, comprising a user interface configured to facilitate a selection of the damper from the list, wherein the wireless interface is configured to transmit the test signal to the damper in response to the selection.
6. The damper controller of claim 5, wherein the user interface includes a plurality of physical buttons.
7. The damper controller of claim 1, comprising a user interface configured to facilitate a selection of the damper from the list, wherein the wireless interface is configured to transmit an actuation signal to the damper in response to the selection, wherein the damper is configured to actuate a blade of the damper in response to receiving the actuation signal.
8. The damper controller of claim 1, wherein the response signal includes an identification tag of a corresponding damper and a location of the corresponding damper.
9. The damper controller of claim 1, wherein the test result includes an indication of whether a reading has been received from a contact of the damper during the operational test.
10. The damper controller of claim 1, wherein the test result includes a pass indication.
11. A damper comprising: a blade configured to regulate airflow; an actuator configured to articulate the blade between a first position and a second position; and a wireless interface configured to: receive a query signal from a controller remote from the damper, wherein the query signal is transmitted as part of a scan to detect dampers; in response to receiving the query signal, responding to the scan by transmitting a query response signal identifying the damper to the controller; receive a test signal, wherein, in response to receiving the test signal, the actuator is configured to perform a test including cycling the blade between the first position and the second position; and transmit a test response signal indicative of a result of the test.
12. The damper of claim 11, comprising a smoke alarm, wherein the test includes an operational check of the smoke alarm.
13. The damper of claim 11, comprising a switch contact configured to indicate a position of the blade.
14. The damper of claim 11, wherein the test response signal includes an indication of a test failure.
15. The damper of claim 14, wherein the test response signal includes a reason for the test failure.
16. The damper of claim 11, wherein the damper is a first damper of a plurality of dampers, and wherein the wireless interface is a component of a mesh network wirelessly connecting the plurality of dampers such that the query signal, the test signal, or both are received by the wireless interface via a second wireless interface of a second damper of the plurality of dampers.
17. A heating, ventilation, or air conditioning (HVAC) system comprising: a damper including: a test circuit and a first wireless interface, wherein the test circuit is configured to perform an operational test of the damper, and wherein the first wireless interface is configured to: receive a test signal; begin the operational test based on receipt of the test signal; and transmit a test response signal based on a result of the operational test; and a wireless controller including a display and a second wireless interface, wherein the second wireless interface is configured to transmit the test signal to the first wireless interface, and wherein the display is configured to display a test result based on whether the second wireless interface receives the test response signal, wherein the damper is a first damper, and wherein the first wireless interface is configured to communicate with the second wireless interface via a third wireless interface of a second damper.
18. The HVAC system of claim 17, wherein the damper includes: a blade configured to regulate airflow; a switch contact configured to indicate a position of the blade; and an actuator configured to articulate the blade, wherein the result of the operational test is based on a reading of the switch contact.
19. The HVAC system of claim 17, comprising a plurality of dampers, wherein the second wireless interface is configured to: broadcast a query signal; and receive a response signal directly from each damper of the plurality of dampers within a broadcast range of the second wireless interface, wherein the display is configured to display a list of identified dampers, wherein the list of identified dampers includes each damper that sent a respective response signal received by the second wireless interface.
20. The HVAC system of claim 19, wherein the wireless controller is configured to transmit the test signal in response to a user selection of the damper from the list of identified dampers.
21. The HVAC system of claim 17, wherein the display is configured to display an indication of time out in response to: transmitting the test signal; and not receiving the test response signal within a threshold period of time after transmitting the test signal.
22. The HVAC system of claim 17, wherein the first wireless interface is configured to: receive a query signal from the second wireless interface; and in response to receiving the query signal, transmit a query response signal identifying the damper to the second wireless interface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated in and form a part of the specification, illustrate preferred embodiments of the present invention, and together with a description, serve to explain the principles of the invention.
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(8) The inventive system is a standalone wireless system with direct two way communication or indirect mesh communication to satisfy the requirement of manually controlling or testing the functionality of critical application products. In use, personnel responsible for inspection will walk through a building with the wireless remote controller. The handheld controller automatically locates devices within RF range when utilized for direct communication and provides a selectable list to a user on a liquid crystal display. When indirect communication is utilized, the handheld controller provides a selectable list to a user on a liquid crystal display of all devices communicating by mesh network indirectly.
(9) The inventive device can be programmed to sort devices by any desired category including by building name or floor(s) for example. When manual verification testing is complete the tool provides a test report by USB with time stamp and PASS or FAIL message for each interrogated device.
(10) A wireless damper interface is located next to the critical application device and is wired to the actuator's electrical circuit. The wireless damper interface includes a wireless transceiver for communication, switch contacts to indicate blade position, smoke alarm contact, and a relay to position the connected actuator.
(11) The remote handheld controller sends test request information to individual devices with the preprogrammed actuator timing. After receiving the test information the wireless interface cycles the device being tested to verify operation by reading the blade indication switch contacts. The wireless interface then responds with information to the remote handheld controller with the PASS or FAIL message with error code information. A FAIL message is displayed on the LCD display.
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(14) An access door AC may be provided in the duct for accessing the interior of the duct as well as the damper vanes.
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(17) All test data is stored in the portable controller for upload to a computer or tablet.
(18) Controller 500 comprises a case 501 and LCD display 502. A keyboard 503 is provided by which a user operates the system. The keys comprise navigation arrows 504, an enter key 505, a return key 506 and a home key 507. Key 508 is for on/off.
(19) The controller is capable of automatic synchronized communication. The system frequency is selected as may be appropriate for the system or installation or both, including but not limited to 2.4 GHz, 915 MHz, 902 MHz, 868.3 MHz or 315 MHz. The operating range of the system is approximately 90 feet with direct communication. When the controller incorporates indirect communication data is transmitted longer distances by hopping information between controllers until the information reaches the desired controller selected by the portable controller. For example, the mesh network technology may be based on 802.15.4-2011IEEE Standard for Local and metropolitan area networksPart 15.4: Low-Rate Wireless Personal Area Networks (LR-WPANs).
(20) Battery life is typically 21 hours of continuous operation with display LCD backlight. The system includes an automatic switchover between battery and USB. It further includes a USB connection to a PC for communication including generation of a spreadsheet test report.
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(22) On screen 13 if Scan Dampers is selected this displays a wait prompt 20. An indication 21 is made if the system times out. If there is no time out, the identified dampers are listed with their respective tag names 22. The tag names are typically limited to 6 characters.
(23) The next screen queries the user to Perform Test 23. The device provides detailed damper information for the damper being tested 24. It also displays a Testing wait screen 25. In the absence of input a time out screen is displayed 26. If there is no time out a Test Result screen is displayed 27. If the test is failed then details are displayed 28.
(24) Returning to screen 13, the user may use a lookup table 29. If there is no table then screen 30 is displayed. The user may also download a table through screen 31. The table name is limited to 16 characters. The user can then scan the downloaded damper table 32.
(25)
(26) Although a form of the invention has been described herein, it will be obvious to those skilled in the art that variations may be made in the construction and relation of parts without departing from the spirit and scope of the invention described herein.