IP Library Granted Patent US 12,601,529
Granted Patent B2
US 12,601,529 · App. 18/382,464 · Granted Apr 14, 2026

Method to charge multiple refrigerants with desired concentrations

Inventors: Michael A. Saunders (Sidney, OH); Andrew M. Welch (Franklin, OH)
Assignee: Copeland LP
F25B45/00F25B41/20F25B41/42F25B2345/001F25B2345/003F25B2345/004F25B2345/006
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Quick Facts
Patent No.
US 12,601,529
App. No.
18/382,464
Granted
Apr 14, 2026
Kind
B2
Abstract

A charging device includes: a first inlet configured to receive a first refrigerant in vapor form; a second inlet configured to receive the first refrigerant in liquid form; a third inlet configured to receive a second refrigerant in liquid form, where the second refrigerant is a different type of refrigerant than the first refrigerant; an outlet configured to output the first and second refrigerants to a refrigeration system; a first valve fluidly connected between the first inlet and the outlet; a second valve fluidly connected between the second inlet and the outlet; a third valve fluidly connected between the third inlet and the outlet; and a control module configured to selectively open the first, second, and third valves and charge the refrigeration system with target amounts of the first and second refrigerants, respectively.

Claims (55)

1 . A charging device comprising:

a first inlet configured to receive a first refrigerant in vapor form;

a second inlet configured to receive the first refrigerant in liquid form;

a third inlet configured to receive a second refrigerant in liquid form,

wherein the second refrigerant is a different type of refrigerant than the first refrigerant;

an outlet configured to output the first and second refrigerants to a refrigeration system;

a first valve fluidly connected between the first inlet and the outlet;

a second valve fluidly connected between the second inlet and the outlet;

a third valve fluidly connected between the third inlet and the outlet; and

a control module configured to selectively open the first, second, and third valves and charge the refrigeration system with target amounts of the first and second refrigerants, respectively;

a pump fluidly connected between the third valve and the outlet and configured to pump the second refrigerant to the outlet; and an injector configured to receive refrigerant output from the pump.

2 . The charging device of claim 1 further comprising a fourth valve fluidly connected between (a) the outlet and (b) the first, second, and third valves.

3 . The charging device of claim 2 wherein the control module is configured to further control the fourth valve.

4 . The charging device of claim 2 further comprising a fifth valve fluidly connected between (a) the fourth valve and (b) the first, second, and third valves.

5 . The charging device of claim 1 wherein the control module is configured to, before opening the second and third valves, open the first valve and output the first refrigerant in vapor form to the refrigeration system.

6 . The charging device of claim 5 wherein the control module is configured to open the first valve and output the first refrigerant in vapor form to the refrigeration system until a pressure of refrigerant within the refrigeration system is greater than a predetermined pressure.

7 . The charging device of claim 6 wherein the predetermined pressure is at least 75 pounds per square inch gauge.

8 . The charging device of claim 6 wherein the control module is configured to, after the pressure of the refrigerant within the refrigeration system is greater than the predetermined pressure, close the first valve and selectively open the second and third valves.

9 . The charging device of claim 8 further comprising a pump fluidly connected between the third valve and the outlet and configured to pump the second refrigerant to the outlet,

wherein the control module is configured to operate the pump when the third valve is open.

10 . The charging device of claim 9 wherein the control module is configured to operate the pump based on a target concentration of the second refrigerant, a predetermined density of the second refrigerant, and a mass flowrate of the first refrigerant.

11 . The charging device of claim 1 wherein the first refrigerant includes carbon dioxide.

12 . The charging device of claim 1 wherein the second refrigerant includes R1233zd refrigerant.

13 . A charging method comprising:

receiving a first refrigerant in vapor form via a first inlet of a charging device;

receiving the first refrigerant in liquid form via a second inlet of the charging device;

receiving a second refrigerant in liquid form via a third inlet of the charging device,

wherein the second refrigerant is a different type of refrigerant than the first refrigerant;

outputting the first and second refrigerants from an outlet of the charging device to a refrigeration system; and

selectively opening first, second, and third valves and charging the refrigeration system with target amounts of the first and second refrigerants, respectively,

wherein:

the first valve is fluidly connected between the first inlet and the outlet;

the second valve is fluidly connected between the second inlet and the outlet;

the third valve is fluidly connected between the third inlet and the outlet;

selectively opening the first, second and third valves includes, before opening the second and third valves, opening the first valve and outputting the first refrigerant in vapor form to the refrigeration system; and

selectively opening the first, second, and third valves includes, after a pressure of the refrigerant within the refrigeration system is greater than a predetermined pressure, closing the first valve and selectively opening the second and third valves.

14 . The charging method of claim 13 further comprising, by a pump of the charging device fluidly connected between the third valve and the outlet, pumping the second refrigerant to the outlet.

15 . The charging method of claim 13 further comprising selectively opening a fourth valve of the charging device, wherein the fourth valve is fluidly connected between (a) the outlet and (b) the first, second, and third valves.

16 . The charging method of claim 15 further comprising selectively opening a fifth valve of the charging device, wherein the fifth valve is fluidly connected between (a) the fourth valve and (b) the first, second, and third valves.

17 . A charging device comprising:

a first inlet configured to receive a first refrigerant in vapor form;

a second inlet configured to receive the first refrigerant in liquid form;

a third inlet configured to receive a second refrigerant in liquid form,

wherein the second refrigerant is a different type of refrigerant than the first refrigerant;

an outlet configured to output the first and second refrigerants to a refrigeration system;

a first valve fluidly connected between the first inlet and the outlet;

a second valve fluidly connected between the second inlet and the outlet;

a third valve fluidly connected between the third inlet and the outlet;

a control module configured to selectively open the first, second, and third valves and charge the refrigeration system with target amounts of the first and second refrigerants, respectively,

wherein the control module is configured to, before opening the second and third valves, open the first valve and output the first refrigerant in vapor form to the refrigeration system,

wherein the control module is configured to open the first valve and output the first refrigerant in vapor form to the refrigeration system until a pressure of refrigerant within the refrigeration system is greater than a predetermined pressure,

wherein the control module is configured to, after the pressure of the refrigerant within the refrigeration system is greater than the predetermined pressure, close the first valve and selectively open the second and third valves; and

a pump fluidly connected between the third valve and the outlet and configured to pump the second refrigerant to the outlet,

wherein the control module is configured to operate the pump when the third valve is open, and

wherein the control module is configured to operate the pump based on a target concentration of the second refrigerant, a predetermined density of the second refrigerant, and a mass flowrate of the first refrigerant.

Assignments (5)
SECURITY INTEREST Recorded Feb 4, 2025
From: COPELAND LP
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 070100/0081 →
SECURITY INTEREST Recorded Feb 4, 2025
From: COPELAND LP
To: ROYAL BANK OF CANADA, AS COLLATERAL AGENT
Reel/Frame 070100/0169 →
SECURITY INTEREST Recorded Feb 3, 2025
From: COPELAND LP; COPELAND SCROLL COMPRESSORS LP; COPELAND INDUSTRIAL LP; COPELAND COMFORT CONTROL LP; COPELAND COLD CHAIN LP
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 070568/0920 →
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 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2023
From: SAUNDERS, MICHAEL A.; WELCH, ANDREW M.
To: COPELAND LP
Reel/Frame 065300/0233 →
Continuity (1)
Related Publication 20250129980A1 · Apr 24, 2025
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