IP Library Granted Patent US 11,378,292
Granted Patent B2
US 11,378,292 · App. 16/687,154 · Granted Jul 5, 2022

Energy reducing retrofit apparatus for a constant volume HVAC system

Inventors: Danny Miller (Renton, WA); Justin Sipe (Federal Way, WA)
Assignee: Pro Star Energy Solutions, L.P.
F24F11/30F24F11/46F24F11/62F24F11/77G05B19/042G05B19/05G05D7/0676G05D23/1919H04L67/12H04L67/125F24F2011/0006F24F2110/20F24F2110/50F24F2110/70G05B2219/1133G05B2219/25289G05B2219/2614Y02B30/54Y02B30/70Y02B30/90
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Quick Facts
Patent No.
US 11,378,292
App. No.
16/687,154
Granted
Jul 5, 2022
Kind
B2
Abstract

An energy-reducing method and apparatus for retrofitting a single zone, constant volume HVAC system, with or without an economizer, that provides heating, cooling, and ventilation to occupants within a building space. The present invention includes the introduction of a programmable logic controller and variable frequency drive (VFD) that takes control of the existing fan, heating, cooling, and optional economizer operation. The reduction of the fan speed in the ventilation mode when the 100% operation is not needed saves significant energy of the existing constant volume HVAC system where the fan motor is designed to run 100% of the time.

Claims (29)

1. A system comprising:

a variable frequency drive configured to drive a fan motor of a heating, ventilation, and air-conditioning (HVAC) system within a range of fan motor speeds to ventilate an indoor space, the HVAC system having a cooling assembly that includes at least one of an economizer or a compressor; and

a controller configured to (i) communicate with the variable frequency drive, (ii) receive signals corresponding to whether the indoor space is less than fully occupied, (iii) control the variable frequency drive to reduce a speed of the fan motor based on the received signals, and (iv) determine an energy consumption fault,

wherein the controller is further configured to determine the energy consumption fault by: determining an outside air temperature, a heat mode runtime, a cool mode runtime, and a ventilation mode runtime at preset intervals; determining an actual energy consumption of the HVAC system; accessing a database that stores historical data correlating time of day data and outside air temperature data with energy consumption data of the HVAC system to determine a normal energy consumption range for the HVAC system when a sufficient amount of previously sampled energy consumption data is present; comparing the actual energy consumption of the HVAC system with the normal energy consumption range; and determining that the energy consumption fault exists in response to the actual energy consumption being outside of the normal energy consumption range.

2. The system recited by claim 1 , wherein the controller is further configured to communicate with a thermostatic device and control the cooling assembly based on communication with the thermostatic device.

3. The system recited by claim 1 , wherein the HVAC system includes a heating assembly and the controller is further configured to communicate with a thermostatic device and control the heating assembly to heat the indoor space.

4. The system recited by claim 1 , wherein the controller is further configured to generate an alert in response to determining that the energy consumption fault exists.

5. The system recited by claim 1 further comprising a carbon dioxide sensor, wherein the controller is further configured to receive signals from the carbon dioxide sensor.

6. The system recited by claim 1 , wherein the controller is further configured to determine a fan fault.

7. The system recited by claim 1 , wherein the controller is further configured to determine a temperature-based fault.

8. A method comprising:

receiving, with a controller of a heating, ventilation, and air-conditioning (HVAC) system for an indoor space, signals corresponding to whether the indoor space is less than fully occupied, the HVAC system having a cooling assembly that includes at least one of an economizer or a compressor;

controlling, with the controller, a variable frequency drive that drives a fan motor of the HVAC system within a range of fan motor speeds to ventilate the indoor space by reducing a speed of the fan motor based on the received signals; and

determining, with the controller, an energy consumption fault,

wherein the controller determines the energy consumption fault by: determining an outside air temperature, a heat mode runtime, a cool mode runtime, and a ventilation mode runtime at preset intervals; determining an actual energy consumption of the HVAC system; accessing a database that stores historical data correlating time of day data and outside air temperature data with energy consumption data of the HVAC system to determine a normal energy consumption range for the HVAC system when a sufficient amount of previously sampled energy consumption data is present; comparing the actual energy consumption of the HVAC system with the normal energy consumption range; and determining that the energy consumption fault exists in response to the actual energy consumption being outside of the normal energy consumption range.

9. The method recited by claim 8 , further comprising communicating, with the controller, with a thermostatic device and controlling, with the controller, the cooling assembly based on the communication with the thermostatic device.

10. The method recited by claim 8 , wherein the HVAC system includes a heating assembly, the method further comprising communicating, with the controller, with a thermostatic device and controlling, with the controller, the heating assembly to heat the indoor space.

11. The method recited by claim 8 , further comprising generating, with the controller, an alert in response to determining that the energy consumption fault exists.

12. The method recited by claim 8 , further comprising receiving, with the controller, signals from the carbon dioxide sensor.

13. The method recited by claim 8 , wherein the controller further determines a fan fault.

14. The method recited by claim 8 , wherein the controller further determines a temperature-based fault.

15. A system comprising:

a controller configured to (i) communicate with a variable frequency drive that is configured to drive a fan motor of a heating, ventilation, and air-conditioning (HVAC) system within a range of fan motor speeds to ventilate an indoor space, the HVAC system having a cooling assembly that includes at least one of an economizer or a compressor, (ii) receive signals corresponding to whether the indoor space is less than fully occupied, (iii) control the variable frequency drive to reduce a speed of the fan motor based on the received signals, and (iv)—determine an energy consumption fault,

wherein the controller is further configured to determine the energy consumption fault by: determining an outside air temperature, a heat mode runtime, a cool mode runtime, and a ventilation mode runtime at preset intervals; determining an actual energy consumption of the HVAC system; accessing a database that stores historical data correlating time of day data and outside air temperature data with energy consumption data of the HVAC system to determine a normal energy consumption range for the HVAC system when a sufficient amount of previously sampled energy consumption data is present; comparing the actual energy consumption of the HVAC system with the normal energy consumption range; and determining that the energy consumption fault exists in response to the actual energy consumption being outside of the normal energy consumption range.

16. The system recited by claim 15 , wherein the controller is further configured to communicate with a thermostatic device and control the cooling assembly based on communication with the thermostatic device.

17. The system recited by claim 15 , wherein the HVAC system includes a heating assembly and the controller is further configured to communicate with a thermostatic device and control the heating assembly to heat the indoor space.

18. The system recited by claim 15 further comprising a carbon dioxide sensor, wherein the controller is further configured to receive signals from the carbon dioxide sensor.

19. The system recited by claim 15 , wherein the controller is further configured to determine a fan fault.

20. The system recited by claim 15 , wherein the controller is further configured to determine the temperature-based fault.

Assignments (5)
SECURITY INTEREST Recorded Apr 16, 2024
From: PRO STAR ENERGY SOLUTIONS, LLC
To: ARES CAPITAL CORPORATION, AS ADMINISTRATIVE AGENT
Reel/Frame 067127/0338 →
ENTITY CONVERSION Recorded Apr 8, 2024
From: PRO STAR ENERGY SOLUTIONS, L.P.
To: PRO STAR ENERGY SOLUTIONS, LLC
Reel/Frame 067030/0045 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 30, 2022
From: TRANSFORMATIVE WAVE TECHNOLOGIES LLC
To: PRO STAR ENERGY SOLUTIONS, L.P.
Reel/Frame 058822/0243 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 18, 2019
From: MILLER, DANNY; SIPE, JUSTIN
To: PERFORMANCE HEATING AND AIR CONDITIONING, INC.
Reel/Frame 051041/0068 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 18, 2019
From: PERFORMANCE HEATING AND AIR CONDITIONING, INC.
To: TRANSFORMATIVE WAVE TECHNOLOGIES LLC
Reel/Frame 051041/0418 →
Continuity (6)
Continuation 15899916 · Feb 20, 2018
Continuation 14689344 · Apr 17, 2015
Division 14563941 · Dec 8, 2014
Continuation 13920331 · Jun 18, 2013
Continuation 12544960 · Aug 20, 2009
Related Publication 20200080738A1 · Mar 12, 2020