IP Library Granted Patent US 10,352,602
Granted Patent B2
US 10,352,602 · App. 15/096,186 · Granted Jul 16, 2019

Portable method and apparatus for monitoring refrigerant-cycle systems

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 10,352,602
App. No.
15/096,186
Granted
Jul 16, 2019
Kind
B2
Abstract

A portable monitoring system that monitors various aspects of the operation of a refrigerant-cycle system is described. In one embodiment, the system includes a processor that measures power provided to the refrigerant-cycle system and gathers data from one or more sensors and uses the sensor data to calculate a figure of merit related to the efficiency of the system. In one embodiment, the measurements performed by the monitoring system include one or more of: an evaporator input air temperature, an evaporator output air temperature, evaporator air flow, evaporator air humidity, condenser air input temperature, condenser air output temperature sensor, electrical power. In one embodiment, the portable monitoring system receives information about the refrigerant-cycle system from either the system itself or from a computer network.

Claims (56)

1. A portable monitoring system for monitoring operation of a refrigerant-cycle system, the portable monitoring system comprising:

a temperature sensor configured to generate ambient air temperature data for air provided to an evaporator of the refrigerant-cycle system;

a humidity sensor configured to generate ambient air humidity data for air provided to the evaporator;

a processing system configured to:

determine a present maximum expected efficiency of the refrigerant-cycle system based on a present value of the ambient air temperature data and a present value of the ambient air humidity data; and

compute a present efficiency of the refrigerant-cycle system based on a present measured value of airflow flowing through the evaporator and a present measured value of power consumption by the refrigerant-cycle system;

a network interface, wherein the processing system is configured to use the network interface to query and receive expected efficiency data regarding the refrigerant-cycle system;

an input device configured to receive input from a user; and

a screen configured to display a relationship between the present efficiency and the present maximum expected efficiency to the user.

2. The portable monitoring system of claim 1 wherein:

the screen includes a touchscreen; and

the input device includes the touchscreen.

3. The portable monitoring system of claim 1 wherein the input device includes at least one of a keypad, a trackball, and a track pad.

4. The portable monitoring system of claim 1 wherein:

the input device includes a microphone; and

the processing system is configured to receive voice commands via the microphone.

5. The portable monitoring system of claim 1 further comprising an airflow sensor configured to measure the airflow flowing through the evaporator.

6. The portable monitoring system of claim 5 wherein the airflow sensor is mounted to a body of the portable monitoring system.

7. The portable monitoring system of claim 1 further comprising a power sensor configured to measure the power consumption by the refrigerant-cycle system.

8. The portable monitoring system of claim 1 further comprising:

an airflow sensor configured to measure the airflow flowing through the evaporator; and

a power sensor configured to measure the power consumption by the refrigerant-cycle system,

wherein the processing system is configured to communicate with the power sensor and the airflow sensor via wireless communication.

9. The portable monitoring system of claim 1 wherein the processing system is configured to compute the present efficiency of the refrigerant-cycle system based on (i) the present measured value of airflow flowing through the evaporator, (ii) the present measured value of power consumption by the refrigerant-cycle system, and (iii) the present value of the ambient air temperature data.

10. The portable monitoring system of claim 9 wherein the processing system is configured to compute the present efficiency of the refrigerant-cycle system based on (i) the present measured value of airflow flowing through the evaporator, (ii) the present measured value of power consumption by the refrigerant-cycle system, (iii) the present value of the ambient air temperature data, and (iv) output air temperature data for air flowing from the evaporator.

11. The portable monitoring system of claim 1 wherein the expected efficiency data specifies maximum expected efficiency of the refrigerant-cycle system as a function of ambient air temperature and ambient air humidity.

12. The portable monitoring system of claim 1 wherein:

the refrigerant-cycle system is identified by a model number; and

the processing system is configured to query and receive the expected efficiency data using the model number.

13. The portable monitoring system of claim 1 wherein the processing system is configured to calculate energy usage.

14. The portable monitoring system of claim 1 wherein the processing system is configured to calculate energy costs due to inefficient operation of the refrigerant-cycle system.

15. The portable monitoring system of claim 1 wherein the processing system is configured to identify performance problems due to at least one of (i) low airflow and (ii) excessive load.

16. The portable monitoring system of claim 1 wherein the processing system is configured to identify performance problems due to at least one of (i) refrigerant undercharge and (ii) refrigerant overcharge.

17. The portable monitoring system of claim 1 wherein the processing system is configured to provide data related to operation of the refrigerant-cycle system to a remote monitoring center.

18. A method of measuring performance of a central heating, ventilation, and air conditioning (HVAC) system, the method comprising:

connecting a temperature sensor of a portable monitoring system to the central HVAC system, wherein the temperature sensor is configured to generate ambient air temperature data for air provided to an evaporator of the HVAC system and wherein the portable monitoring system further includes:

a humidity sensor configured to generate ambient air humidity data for air provided to the evaporator;

a processing system configured to:

determine a present maximum expected efficiency of the HVAC system based on a present value of the ambient air temperature data and a present value of the ambient air humidity data; and

compute a present efficiency of the HVAC system based on a present measured value of airflow flowing through the evaporator and a present measured value of power consumption by the HVAC system;

a network interface, wherein the processing system is configured to use the network interface to query and receive expected efficiency data regarding the HVAC system;

an input device configured to receive input from a user; and

a screen configured to display a relationship between the present efficiency and the present maximum expected efficiency to the user;

connecting the humidity sensor of the portable monitoring system to the central HVAC system; and

controlling the processing system of the portable monitoring system using the input device of the portable monitoring system.

19. A method of measuring performance of a self-contained heating, ventilation, and air conditioning (HVAC) system, the method comprising:

connecting a temperature sensor of a portable monitoring system to the self-contained HVAC system, wherein the temperature sensor is configured to generate ambient air temperature data for air provided to an evaporator of the self-contained HVAC system and wherein the portable monitoring system further includes:

a humidity sensor configured to generate ambient air humidity data for air provided to the evaporator;

a processing system configured to:

determine a present maximum expected efficiency of the self-contained HVAC system based on a present value of the ambient air temperature data and a present value of the ambient air humidity data; and

compute a present efficiency of the self-contained HVAC system based on a present measured value of airflow flowing through the evaporator and a present measured value of power consumption by the self-contained HVAC system;

a network interface, wherein the processing system is configured to use the network interface to query and receive expected efficiency data regarding the self-contained HVAC system;

an input device configured to receive input from a user; and

a screen configured to display a relationship between the present efficiency and the present maximum expected efficiency to the user,

connecting the humidity sensor of the portable monitoring system to the self-contained HVAC system; and

controlling the processing system of the portable monitoring system using the input device of the portable monitoring system.

Assignments (5)
SECURITY INTEREST Recorded Jul 9, 2024
From: COPELAND LP
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 068241/0264 →
SECURITY INTEREST Recorded Jul 17, 2023
From: COPELAND LP
To: ROYAL BANK OF CANADA, AS COLLATERAL AGENT
Reel/Frame 064278/0598 →
SECURITY INTEREST Recorded Jul 17, 2023
From: COPELAND LP
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 064279/0327 →
SECURITY INTEREST Recorded Jul 17, 2023
From: COPELAND LP
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 064280/0695 →
ENTITY CONVERSION Recorded Jun 22, 2023
From: EMERSON CLIMATE TECHNOLOGIES, INC.
To: COPELAND LP
Reel/Frame 064058/0724 →