IP Library Granted Patent US 12,339,022
Granted Patent B1
US 12,339,022 · App. 18/236,665 · Granted Jun 24, 2025

System and method for evaluating air conditioner performance at part-load conditions

Inventors: Rob Craft (Mount Pleasant, SC); Kevin Muldoon (Goshen, KY)
Assignee: Kentuckiana Curb Company, Inc.
F24F11/63F24F11/74F24F11/80F24F2140/50
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Quick Facts
Patent No.
US 12,339,022
App. No.
18/236,665
Granted
Jun 24, 2025
Kind
B1
Abstract

A system generates performance data, including supply air temperature and supply air dew point temperature, of an air conditioning device when provided with parameters of the air conditioning device, such as specifications of individual components of the air conditioning device. The system automatically modulates operating parameters for the simulated air conditioning device in order to achieve set point conditions and subsequently provides suggested operating parameters for the air conditioning device to enable the air conditioning device to achieve a set point temperature, a set point relative humidity, and/or a set point dew point temperature at one or more part-load conditions. In one embodiment, the system automatically calibrates the air conditioning device to operate the device to achieve user-defined setpoints.

Claims (39)

1. A system for simulating air conditioner performance at part-load conditions, comprising:

a device, including a processor and a memory;

wherein the device receives a selection of one or more sets of condition parameters of at least one heating, air conditioning, and ventilation (HVAC) device;

wherein the one or more sets of condition parameters include at least one set of condition parameters indicating a part-load condition for the at least one HVAC device;

wherein the device receives a selection of one or more part load components for the at least one HVAC device;

wherein the device generates operating parameters for the at least one HVAC device at each of the one or more sets of condition parameters; and

wherein the operating parameters include, but are not limited to, a leaving air dew point temperature, a leaving air dry bulb temperature, and/or a leaving air wet bulb temperature for each of the at least one HVAC device; and

wherein the device receives functional parameters for the at least one HVAC device including a number of rows of an evaporator coil of the at least one HVAC device, a number of fins per inch (FPI) for the evaporator coil, a face area of the evaporator coil, a first subcooling level, a last subcooling level, an interval between subcooling levels, an additional amount of liquid subcooling, a degradation factor, a superheat temperature, and/or a wattage of the at least one HVAC device.

2. The system of claim 1 , wherein the one or more part-load components include a digital scroll compressor, a hot gas reheat coil, a head pressure control system, and/or an airflow monitor.

3. The system of claim 1 , wherein the functional parameters for the at least one HVAC device including a total cubic feet per minute (CFM) of air flow, a CFM of air flow from outside air, an external static pressure (ESP), a fan motor brake horsepower (BHP), and/or a fan motor horsepower (HP).

4. The system of claim 3 , wherein the device receives one or more files in one or more standard file formats and automatically parses the one or more files in order to determine the functional parameters of the at least one HVAC device.

5. The system of claim 1 , wherein the at least one HVAC device includes at least one dedicated outdoor air system (DOAS).

6. The system of claim 1 , wherein the operating parameters further include a moisture removal capacity (MRC), a moisture removal efficiency (MRE), and/or a hot gas reheat capacity.

7. The system of claim 1 , wherein, in order to generate the operating parameters, the device iteratively simulates the at least one HVAC device using different condenser airflow parameters, compressor capacity parameters, compressor staging, fan speed, and/or hot gas reheat percentage parameters within limits of the at least one HVAC device and checks to ensure liquid line pressure of the at least one HVAC device is within predetermined threshold limits during the simulation.

8. The system of claim 7 , wherein the device is in network communication with at least one actual HVAC device, and the device transmits instructions to the at least one actual HVAC device to adjust condenser airflow parameters, compressor capacity parameters, compressor staging, fan speed, and/or hot gas reheat percentage based on results of the simulation.

9. A method for simulating air conditioner performance at part-load conditions, comprising:

providing a device, including a processor and a memory;

the device receiving a selection of one or more sets of condition parameters of at least one heating, air conditioning, and ventilation (HVAC) device;

the one or more sets of condition parameters including at least one set of condition parameters indicating a part-load condition for the at least one HVAC device;

the device receiving a selection of one or more part load components for the at least one HVAC device;

the device generating operating parameters for the at least one HVAC device at each of the one or more sets of condition parameters; and

wherein the operating parameters including a leaving air dew point temperature, a leaving air dry bulb temperature, and/or a leaving air wet bulb temperature for each of the at least one HVAC device; and

wherein the device receives functional parameters for the at least one HVAC device including a number of rows of an evaporator coil of the at least one HVAC device, a number of fins per inch (FPI) for the evaporator coil, a face area of the evaporator coil, a first subcooling level, a last subcooling level, an interval between subcooling levels, an additional amount of liquid subcooling, a degradation factor, a superheat temperature, and/or a wattage of the at least one HVAC device.

10. The method of claim 9 , further comprising the one or more part-load components including a digital scroll compressor, a hot gas reheat coil, a head pressure control system, and/or an airflow monitor.

11. The method of claim 9 , wherein the functional parameters for the at least one HVAC device further include total cubic feet per minute (CFM) of air flow, a CFM of air flow from outside air, an external static pressure (ESP), a fan motor brake horsepower (BHP), and/or a fan motor horsepower (HP).

12. The method of claim 11 , further comprising the device receiving one or more files in one or more standard file formats and automatically parsing the one or more files in order to determine the functional parameters of the at least one HVAC device.

13. The method of claim 9 , further comprising the at least one HVAC device including at least one dedicated outdoor air system (DOAS).

14. The method of claim 9 , further comprising the operating parameters further including a moisture removal capacity (MRC), a moisture removal efficiency (MRE), and/or a hot gas reheat capacity.

15. The method of claim 9 , further comprising the device iteratively simulating the at least one HVAC device using different condenser airflow parameters, compressor capacity parameters, compressor staging, fan speed, and/or hot gas reheat percentage parameters within limits of the at least one HVAC device and checking to ensure liquid line pressure of the at least one HVAC device is within predetermined threshold limits during the simulation.

16. The method of claim 9 , further comprising the device being in network communication with at least one actual HVAC device, and the device transmitting instructions to the at least one actual HVAC device to adjust condenser airflow parameters, compressor capacity parameters, compressor staging, fan speed, and/or hot gas reheat percentage based on results of the simulation.

17. A system for simulating air conditioner performance at part-load conditions, comprising:

a device, including a processor and a memory;

wherein the device receives a selection of one or more sets of condition parameters of at least one heating, air conditioning, and ventilation (HVAC) device;

wherein the one or more sets of condition parameters include at least one set of condition parameters indicating a part-load condition for the at least one HVAC device;

the device generates operating parameters for the at least one HVAC device at each of the one or more sets of condition parameters by iteratively simulating the at least one HVAC device using different condenser airflow parameters, compressor capacity parameters, compressor staging, fan speed, and/or hot gas reheat percentage parameters within limits of the at least one HVAC device; and

wherein the operating parameters include a leaving air dew point temperature, a leaving air dry bulb temperature, and/or a leaving air wet bulb temperature for each of the at least one HVAC device.

18. The system of claim 17 , wherein device receives functional parameters for the at least one HVAC device including a total cubic feet per minute (CFM) of air flow, a CFM of air flow from outside air, an external static pressure (ESP), a fan motor brake horsepower (BHP), a fan motor horsepower (HP), a number of rows of an evaporator coil of the at least one HVAC device, a number of fins per inch (FPI) for the evaporator coil, a face area of the evaporator coil, a first subcooling level, a last subcooling level, an interval between subcooling levels, an additional amount of liquid subcooling, a degradation factor, a superheat temperature, a wattage of the at least one HVAC device, and/or other dimensions and parameters regarding the evaporator coil, a hot gas reheat coil, and/or a compressor of the at least one HVAC device.

19. The system of claim 18 , wherein the device receives one or more files in one or more standard file formats and automatically parses the one or more files in order to determine the functional parameters of the at least one HVAC device.

20. The system of claim 17 , wherein the at least one HVAC device includes at least one dedicated outdoor air system (DOAS).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2023
From: CRAFT, ROB; MULDOON, KEVIN
To: KENTUCKIANA CURB COMPANY, INC.
Reel/Frame 064669/0355 →
Continuity (2)
Continuation 18084215 · Dec 19, 2022
Provisional Application 63292178 · Dec 21, 2021
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