IP Library › Granted Patent US 12,631,372
Granted Patent B2
US 12,631,372 · App. 18/436,664 · Granted May 19, 2026

Liquid hydrogen vaporization system and liquid hydrogen vaporization method

Inventors: Jong H Baik (Titusville, FL); Hyung Jin Kim (Gyeonggi-do, KR); Sung Yong Kim (Gyeonggi-do, KR)
Assignee: H2CREO Corp.
F25B1/10F25B43/00
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Quick Facts
Patent No.
US 12,631,372
App. No.
18/436,664
Granted
May 19, 2026
Kind
B2
Abstract

The present disclosure relates to a liquid hydrogen vaporization system and a liquid hydrogen vaporization method for vaporizing hydrogen in a liquid state into a gaseous state so as to supply hydrogen to a fuel cell, comprising a blower for supercharging wet air in atmosphere, a moisture eliminator for removing moisture contained in wet air supercharged through the blower and converting wet air into dry air, and a heat exchange unit for heating hydrogen through heat exchange between dry air and hydrogen so that hydrogen in a liquid state supplied from a hydrogen tank can be vaporized into a gaseous state and be supplied to a fuel cell, wherein the moisture eliminator condenses moisture contained in wet air by using cooling energy released when hydrogen supplied from the hydrogen tank vaporizes, thereby removing moisture contained in wet air.

Claims (55)

1 . A liquid hydrogen vaporization system, comprising,

a blower for supercharging wet air in atmosphere;

a moisture eliminator for removing moisture contained in the wet air supercharged through the blower and converting the wet air into dry air; and

a heat exchange unit for heating hydrogen through heat exchange between the dry air and the hydrogen so that the hydrogen in a liquid state supplied from a hydrogen tank can be vaporized into a gaseous state and supplied to a fuel cell,

wherein the moisture eliminator is configured to condense moisture contained in the wet air by using cooling energy released when the hydrogen supplied from the hydrogen tank vaporizes, thereby removing moisture contained in the wet air.

2 . The liquid hydrogen vaporization system according to claim 1 , wherein the moisture eliminator includes:

a cooling module for forming a cooling space in which the wet air can be cooled and converted into the dry air;

a cooling line formed in a spiral shape along an inner circumferential surface of the cooling module and flowing the hydrogen supplied from the hydrogen tank toward the heat exchange unit so as to form a cooling atmosphere in the cooling space;

an air inlet formed to penetrate a side portion of the cooling module so as to introduce the wet air supercharged through the blower into the cooling space of the cooling module; and

an air outlet configured to penetrate an upper portion of the cooling module so as to discharge the dry air, which had been converted in the cooling space, toward the heat exchange unit.

3 . The liquid hydrogen vaporization system according to claim 2 , wherein the cooling line is formed in a downward spiral shape spirally extending from an upper side to a lower side along the inner circumferential surface of the cooling module.

4 . The liquid hydrogen vaporization system according to claim 2 , wherein the cooling line releases cooling energy, which had been generated in a process that at least a portion of the hydrogen is vaporized, to the cooling space, and discharges the hydrogen mixed in a liquid state and a gaseous state toward the heat exchange unit.

5 . The liquid hydrogen vaporization system according to claim 2 , wherein the air inlet is formed on an upper side of the cooling module to be in contact with an outer circumferential surface of the cooling module so that the wet air flowing into the cooling space has a swirling flow from an upper side to a lower side along the cooling line that is spirally formed in the cooling space.

6 . The liquid hydrogen vaporization system according to claim 2 , wherein the air outlet is formed in a cylindrical shape having an axis coaxial with a central axis of the cooling module, and penetrates the upper portion of the cooling module and extends in a direction toward a lower side of the cooling space.

7 . The liquid hydrogen vaporization system according to claim 6 , wherein the air outlet is installed with a filter in at least a partial section thereof so as to filter moisture remaining in the dry air to be discharged to outside of the cooling module.

8 . The liquid hydrogen vaporization system according to claim 1 , wherein the heat exchange unit includes:

a first heat exchanger installed on a hydrogen line connecting the moisture eliminator and the fuel cell, heating the hydrogen to a first heating temperature through heat exchange between the dry air and the hydrogen.

9 . The liquid hydrogen vaporization system according to claim 8 , wherein the first heat exchanger cools the dry air to a predetermined liquefaction temperature or lower through heat exchange between the dry air and the hydrogen, and separates the cooled dry air into the liquefied air or liquid nitrogen, together with ((and)) liquefied oxygen, to discharge them separately.

10 . The liquid hydrogen vaporization system according to claim 8 , wherein the heat exchange unit includes:

a second heat exchanger installed at a rear of the first heat exchanger on the hydrogen line based on a flow direction of the hydrogen flowing through the hydrogen line toward the fuel cell, heating the hydrogen to a second heating temperature higher than the first heating temperature through heat exchange between the dry air and the hydrogen.

11 . The liquid hydrogen vaporization system according to claim 10 , wherein the heat exchange unit further includes:

a distributor for controlling and distributing an amount of the dry air supplied to at least one of the first heat exchanger and the second heat exchanger.

12 . The liquid hydrogen vaporization system according to claim 11 , wherein the distributor is installed at a branch of an air line, which connects the moisture eliminator and the heat exchange unit and branches in a middle to connect the first heat exchanger and the second heat exchanger in parallel and flows the dry air to the first heat exchanger and the second heat exchanger, respectively; and distributes the dry air discharged from the moisture eliminator at a predetermined distribution ratio and discharges the distributed dry air to the first heat exchanger and the second heat exchanger.

13 . The liquid hydrogen vaporization system according to claim 11 , wherein the distributor is installed between the second heat exchanger and the first heat exchanger on the air line, which connects the moisture eliminator and the heat exchange unit, connects the second heat exchanger and the first heat exchanger in series, and flows the dry air in an order of the second heat exchanger and the first heat exchanger based on a flow direction of dry air, and distributes the dry air, which had been separated into oxygen gas and nitrogen gas in a process of passing through the second heat exchanger, at a predetermined distribution ratio, to be discharged to the first heat exchanger and atmosphere.

14 . The liquid hydrogen vaporization system according to claim 10 , wherein the heat exchange unit further includes:

a heater installed, on an air line, in front of the second heat exchanger based on a flow direction of the dry air, heating the dry air flowing into the second heat exchanger to room temperature or higher.

15 . The liquid hydrogen vaporization system according to claim 10 , wherein the first heat exchanger and the second heat exchanger are plate-fin heat exchangers.

16 . A liquid hydrogen vaporization system, comprising, a blower for supercharging wet air in atmosphere;

a moisture eliminator for removing moisture contained in the wet air supercharged through the blower and converting the wet air into dry air; and

a heat exchange unit for heating the hydrogen through heat exchange between the dry air and the hydrogen so that the hydrogen in a liquid state supplied from a hydrogen tank can be vaporized into a gaseous state and supplied to a fuel cell,

wherein the moisture eliminator includes:

a cooling module for forming a cooling space in which the wet air can be cooled and converted into the dry air by condensing moisture contained in the wet air by using cooling energy released when the hydrogen supplied from the hydrogen tank vaporizes so as to remove moisture contained in the wet air;

a cooling line formed in a downward spiral shape from an upper side to a lower side along an inner circumferential surface of the cooling module so as to form a cooling atmosphere in the cooling space, releasing cooling energy, which had been generated in a process that at least a portion of the hydrogen is vaporized, to the cooling space, and discharging the hydrogen mixed in a liquid state and a gaseous state toward the heat exchange unit;

an air inlet formed on an upper side of the cooling module to be in contact with an outer circumferential surface of the cooling module and to penetrate a side portion of the cooling module so as to introduce the wet air supercharged through the blower into the cooling space of the cooling module; and

an air outlet formed in a cylindrical shape having an axis coaxial with a central axis of the cooling module so as to discharge the dry air, which had been converted in the cooling space, toward the heat exchange unit, penetrating an upper portion of the cooling module and extending in a direction toward a lower side of the cooling space;

wherein the heat exchange unit includes:

a first heat exchanger installed on a hydrogen line connecting the moisture eliminator and the fuel cell, heating the hydrogen to a first heating temperature through heat exchange between the dry air and the hydrogen;

a second heat exchanger installed at a rear of the first heat exchanger on the hydrogen line based on a flow direction of the hydrogen flowing through the hydrogen line toward the fuel cell, heating the hydrogen to a second heating temperature higher than the first heating temperature through heat exchange between the dry air and the hydrogen;

a distributor for controlling and distributing an amount of the dry air supplied to at least one of the first heat exchanger and the second heat exchanger; and

a heater installed in front of the second heat exchanger based on a flow direction of the dry air, heating the dry air flowing into the second heat exchanger to room temperature or higher;

wherein the first heat exchanger and the second heat exchanger are plate-fin heat exchangers.

17 . A liquid hydrogen vaporization method, comprising the following steps,

(a) supercharging wet air in atmosphere;

(b) removing moisture contained in the supercharged wet air and converting the wet air into dry air; and

(c) heat exchanging for heating the hydrogen through heat exchange between the dry air and the hydrogen so that the hydrogen in a liquid state supplied from a hydrogen tank can be vaporized into a gaseous state and supplied to a fuel cell;

wherein (b) includes:

condensing moisture contained in the wet air by using cooling energy released when the hydrogen supplied from the hydrogen tank vaporizes, thereby removing moisture contained in the wet air.

18 . The liquid hydrogen vaporization method according to claim 17 , wherein step (c) includes:

(c-1) a first heat exchanging for heating the hydrogen to a first heating temperature through heat exchange between the dry air, which had been converted in (b), and the hydrogen supplied from the hydrogen tank; and

(c-2) a second heat exchanging for heating the hydrogen to a second heating temperature higher than the first heating temperature through heat exchange between the dry air, which had been converted in (b), and the hydrogen heated to the first heating temperature; and

wherein steps (c-1) and (c-2) are performed through plate-fin heat exchangers.

19 . The liquid hydrogen vaporization method according to claim 18 , wherein, in step (c-1),

the dry air is cooled to a predetermined liquefaction temperature or lower through heat exchange between the dry air and the hydrogen, and is separated into liquefied air or liquid nitrogen, together with ((and)) liquefied oxygen, to be discharged separately.

20 . The liquid hydrogen vaporization method according to claim 18 , wherein step (c-2) includes:

heating the dry air to room temperature or higher by passing the dry air through the heater before heat exchange with the hydrogen.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2024
From: BAIK, JONG H; KIM, HYUNG JIN; KIM, SUNG YONG
To: H2CREO CORP.
Reel/Frame 066632/0354 →
Continuity (2)
Provisional Application 63452776 · Mar 17, 2023
Related Publication 20240310083A1 · Sep 19, 2024
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