IP Library Granted Patent US 12,607,414
Granted Patent B2
US 12,607,414 · App. 18/213,696 · Granted Apr 21, 2026

Heat transfer apparatus and method

Inventors: Jian Xu (Ellicott City, MD); Yohann Lilian Rousselet (Baltimore, MD); Ellie M. Litwack (Columbia, MD); Preston Blay (Silver Spring, MD); Iuliu Iosifescu (Phoenix, AZ); Philip Hollander (Silver Spring, MD); Nikhin Herbert Mascarenhas (Woodstock, MD)
Assignee: Baltimore Aircoil Company, Inc.
F28D20/0034F28D2020/0069
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Quick Facts
Patent No.
US 12,607,414
App. No.
18/213,696
Granted
Apr 21, 2026
Kind
B2
Abstract

In one aspect, a heat transfer apparatus for an industrial process that requires process fluid at a process fluid set temperature. The heat transfer apparatus includes a process fluid heat exchange circuit having a heat exchanger, an airflow generator, and a thermal energy storage. The controller is configured to operate the process fluid heat exchange circuit in a second mode wherein the thermal energy storage transfers heat between the process fluid and the thermal energy storage and the heat exchanger transfers heat between the process fluid and the air based at least in part upon a parameter of the air and a determination of the process fluid heat exchange circuit in a first mode, wherein the process fluid bypasses the thermal energy storage, being unable to provide the process fluid at the process fluid set temperature.

Claims (83)

1 . A heat transfer apparatus comprising:

an air inlet and an air outlet;

a process fluid inlet;

a process fluid outlet;

a process fluid heat exchange circuit connecting the process fluid inlet to the process fluid outlet, the process fluid heat exchange circuit configured to receive a process fluid at an initial temperature and return the process fluid via the process fluid outlet at a process fluid set temperature lower than the initial temperature, the process fluid heat exchange circuit comprising:

a heat exchanger;

an airflow generator operable to cause air to travel from the air inlet to the air outlet and contact the heat exchanger;

a thermal energy storage; and

a mechanical cooler;

the process fluid heat exchange circuit having a plurality of modes including:

a first mode wherein the heat exchanger transfers heat between the process fluid and the air;

a second mode wherein the heat exchanger transfers heat between the process fluid and the air and the mechanical cooler removes heat from the process fluid; and

a third mode wherein the heat exchanger transfers heat between the process fluid and the air and the thermal energy storage removes heat from the process fluid; and

a fourth mode wherein the heat exchanger transfers heat between the process fluid and the air, the mechanical cooler removes heat from the process fluid, and the thermal energy storage removes heat from the process fluid;

a controller operatively connected to the process fluid heat exchange circuit, the controller configured to operate the process fluid heat exchange circuit in one of the plurality of modes based at least in part upon a determination of a thermal duty of the heat transfer apparatus.

2 . The heat transfer apparatus of claim 1 wherein the controller is configured to determine a charge of the thermal energy storage; and

wherein the controller is configured to operate the process fluid heat exchange circuit in one of the plurality of modes based at least in part upon the determination of the thermal duty of the heat transfer apparatus and the charge of the thermal energy storage.

3 . The heat transfer apparatus of claim 1 wherein the controller is configured to receive a request to minimize either water consumption or energy consumption; and

wherein the controller is configured to operate the process fluid heat exchange circuit in one of the plurality of modes based at least in part upon the determination of the thermal duty of the heat transfer apparatus and the request to minimize either water consumption or energy consumption.

4 . The heat transfer apparatus of claim 1 wherein the controller is configured to determine whether the thermal energy storage has an adequate charge; and

wherein the controller is configured to inhibit the process fluid heat exchange circuit from being in the third mode or the fourth mode in response to the thermal energy storage not having the adequate charge.

5 . The heat transfer apparatus of claim 1 wherein the heat exchanger has a wet mode and a dry mode; and

wherein the heat exchanger is operable in either the wet mode or the dry mode with the process fluid heat exchange circuit is in the first, second, third, and fourth modes.

6 . The heat transfer apparatus of claim 1 wherein the process fluid heat exchange circuit is configured to direct the process fluid around the thermal energy storage with the process fluid heat exchange circuit in the first mode and the second mode.

7 . The heat transfer apparatus of claim 1 wherein the process fluid heat exchange circuit is configured to direct the process fluid around the mechanical cooler with the process fluid heat exchange circuit in the first mode and the third mode.

8 . The heat transfer apparatus of claim 1 wherein the mechanical cooler is off with the process fluid heat exchange circuit in the first mode and the third mode.

9 . The heat transfer apparatus of claim 1 wherein the heat exchanger includes an indirect heat exchanger and an adiabatic precooler.

10 . The heat transfer apparatus of claim 1 wherein, with the process fluid heat exchange circuit in the first mode, the mechanical cooler and the thermal energy storage are inoperable to remove heat from the process fluid.

11 . The heat transfer apparatus of claim 1 wherein the mechanical cooler includes a condenser configured to be contacted by the airflow after the airflow has contacted the heat exchanger as the airflow travels from the air inlet to the air outlet.

12 . The heat transfer apparatus of claim 1 further comprising an outer structure; and

wherein the heat exchanger, mechanical cooler, and thermal energy storage are in the outer structure.

13 . The heat transfer apparatus of claim 1 wherein the mechanical cooler comprises a shape memory alloy cooler.

14 . The heat transfer apparatus of claim 1 wherein the process fluid heat exchange circuit has a fifth mode wherein:

the heat exchanger transfers heat between the process fluid and the air; and

the mechanical cooler charges the thermal energy storage.

15 . The heat transfer apparatus of claim 14 wherein the process fluid heat exchange circuit in the fifth mode is configured to direct a closed-loop process fluid between the mechanical cooler and the thermal energy storage.

16 . The heat transfer apparatus of claim 14 wherein the mechanical cooler includes a condenser and an evaporator;

wherein the process fluid heat exchange circuit in the fifth mode includes:

a first process fluid closed loop including the evaporator of the mechanical cooler, the thermal energy storage, and a first closed loop pump to circulate a first process fluid between the evaporator and the thermal energy storage.

17 . The heat transfer apparatus of claim 1 wherein the process fluid heat exchange circuit has a sixth mode wherein the heat exchanger and mechanical cooler charge the thermal energy storage.

18 . A heat transfer apparatus comprising:

an air inlet and an air outlet;

a process fluid heat exchange circuit for receiving a process fluid, the process fluid heat exchange circuit comprising:

a heat exchanger;

an airflow generator operable to cause air to travel from the air inlet to the air outlet and contact the heat exchanger;

a thermal energy storage; and

a mechanical cooler;

the process fluid heat exchange circuit having a plurality of modes including:

a first mode wherein the heat exchanger is operable to transfer heat between the process fluid and the air;

a second mode wherein the heat exchanger is operable to transfer heat between the process fluid and the air and the mechanical cooler is operable to remove heat from the process fluid; and

a third mode wherein the heat exchanger is operable to transfer heat between the process fluid and the air and the thermal energy storage is operable to remove heat from the process fluid; and

a fourth mode wherein the heat exchanger is operable to transfer heat between the process fluid and the air, the mechanical cooler is operable to remove heat from the process fluid, and the thermal energy storage is operable to remove heat from the process fluid;

a controller operatively connected to the process fluid heat exchange circuit, the controller configured to operate the process fluid heat exchange circuit in one of the plurality of modes based at least in part upon a determination of a thermal duty of the heat transfer apparatus;

wherein the process fluid heat exchange circuit has a sixth mode wherein the heat exchanger and mechanical cooler are operable to charge the thermal energy storage;

wherein the mechanical cooler includes a condenser and an evaporator; and

wherein the process fluid heat exchange circuit in the sixth mode includes:

a first process fluid closed loop including the evaporator of the mechanical cooler, the thermal energy storage, and a first closed loop pump to circulate a first process fluid between the evaporator and the thermal energy storage; and

a second process fluid closed loop including the condenser of the mechanical cooler, the heat exchanger, and a second closed loop pump to circulate a second process fluid between the condenser and the heat exchanger.

19 . The heat transfer apparatus of claim 1 wherein the mechanical cooler includes a condenser, an evaporator, a compressor, and an expansion valve.

20 . The heat transfer apparatus of claim 19 wherein the condenser and the evaporator are configured to receive the process fluid.

21 . A method of operating a heat transfer apparatus including a process fluid heat exchange circuit connecting a process fluid inlet to a process fluid outlet, the process fluid heat exchange circuit comprising:

a heat exchanger;

a thermal energy storage; and

a mechanical cooler;

the process fluid heat exchange circuit configured to receive a process fluid at an initial temperature and return the process fluid via the process fluid outlet at a process fluid set temperature lower than the initial temperature, the process fluid heat exchange circuit having a plurality of modes including:

a first mode wherein the heat exchanger transfers heat between a process fluid and air;

a second mode wherein the heat exchanger transfers heat between the process fluid and the air and the mechanical cooler removes heat from the process fluid;

a third mode wherein the heat exchanger transfers heat between the process fluid and the air and the thermal energy storage removes heat from the process fluid; and

a fourth mode wherein the heat exchanger transfers heat between the process fluid and the air, the mechanical cooler removes heat from the process fluid, and the thermal energy storage removes heat from the process fluid;

the method comprising:

determining a thermal duty of the heat transfer apparatus; and

operating the process fluid heat exchange circuit in one of the plurality of modes based at least in part upon the thermal duty of the heat transfer apparatus.

22 . The method of claim 21 further comprising determining a charge of the thermal energy storage; and

wherein operating the process fluid heat exchange circuit in one of the plurality of modes includes operating the process fluid heat exchange circuit in one of the plurality of modes based at least in part upon the thermal duty of the heat transfer apparatus and the charge of the thermal energy storage.

23 . The method of claim 21 further comprising receiving a request to minimize either water consumption or energy consumption; and

wherein operating the process fluid heat exchange circuit in one of the plurality of modes includes operating the process fluid heat exchange circuit in one of the plurality of modes based at least in part upon the thermal duty of the heat transfer apparatus and the request to minimize either water consumption or energy consumption.

24 . The method of claim 21 further comprising operating the process fluid heat exchange circuit in a fifth mode wherein:

the heat exchanger transfers heat between the process fluid and the air; and

the mechanical cooler charges the thermal energy storage.

25 . The method of claim 21 further comprising determining a charge of the thermal energy storage; and

wherein operating the process fluid heat exchange circuit in one of the plurality of modes includes not operating the thermal energy storage in the third mode or the fourth mode in response to the thermal energy storage not having an adequate charge.

26 . The method of claim 21 wherein the heat exchanger has a wet mode and a dry mode; and

wherein operating the process fluid heat exchange circuit in one of the plurality of modes includes operating the heat exchanger in either the wet mode or the dry mode.

Assignments (2)
SECURITY AGREEMENT Recorded Feb 10, 2025
From: AMSTED RAIL COMPANY, INC.; BALTIMORE AIRCOIL COMPANY, INC.; CONSOLIDATED METCO, INC.; MEANS INDUSTRIES, INC.; TRANSFORM AUTOMOTIVE, LLC
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 070171/0231 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 2, 2023
From: XU, JIAN; ROUSSELET, YOHANN LILIAN; LITWACK, ELLIE M.; BLAY, PRESTON; IOSIFESCU, IULIU; HOLLANDER, PHILIP; MASCARENHAS, NIKHIN HERBERT
To: BALTIMORE AIRCOIL COMPANY, INC.
Reel/Frame 065096/0047 →
Continuity (4)
Provisional Application 63427326 · Nov 22, 2022
Provisional Application 63407630 · Sep 17, 2022
Provisional Application 63355449 · Jun 24, 2022
Related Publication 20230417494A1 · Dec 28, 2023
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