IP Library Granted Patent US 11,831,047
Granted Patent B2
US 11,831,047 · App. 17/418,257 · Granted Nov 28, 2023

Membrane humidifier for fuel cell, and fuel cell system comprising same

Inventors: Do Woo Kim (Seoul, KR); Kyoung Ju Kim (Seoul, KR); Na Hyeon An (Seoul, KR)
Assignee: KOLON INDUSTRIES, INC.
H01M8/04149B01D63/04H01M8/04014H01M8/04029H01M8/04074H01M8/04141
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Quick Facts
Patent No.
US 11,831,047
App. No.
17/418,257
Granted
Nov 28, 2023
Kind
B2
Abstract

The present invention relates to a membrane humidifier for a fuel cell capable of simplifying a fuel cell system and miniaturizing the fuel cell system by performing humidification by moisture exchange and cooling by heat exchange in one membrane humidifier, and a fuel cell system comprising same. The membrane humidifier for a fuel cell of the present invention comprises both a humidification module and a heat exchange module in a housing part, and distributes a first fluid to the humidification module and the heat exchange module at a variable distribution ratio.

Claims (56)

1. A fuel cell membrane humidifier comprising:

a housing unit having first and second spaces, between which a partition wall is disposed;

a humidification module disposed in the first space, the humidification module comprising a plurality of hollow fiber membranes, moisture exchange being performed between a first fluid and a second fluid through the plurality of hollow fiber membranes, the second fluid having higher humidity than the first fluid;

a heat exchange module disposed in the second space, the heat exchange module being configured to cool the first fluid introduced thereinto; and

a channel valve configured to distribute the first fluid to the humidification module and the heat exchange module at a variable distribution ratio,

wherein the housing unit comprises:

a housing body having the first and second spaces defined therein; and

housing caps coupled respectively to opposite ends of the housing body, the housing caps being provided respectively with first fluid inlet, through which the first fluid is introduced, and a first fluid outlet, through which the first fluid is discharged, and

wherein the housing cap provided with the first fluid inlet comprises the channel valve and a cap partition wall configured to guide the first fluid to the humidification module and the heat exchange module according to a distribution ratio set by the channel valve.

2. A fuel cell membrane humidifier comprising:

a housing unit having first and second spaces, between which a partition wall is disposed;

a humidification module disposed in the first space, the humidification module comprising a plurality of hollow fiber membranes, moisture exchange being performed between a first fluid and a second fluid through the plurality of hollow fiber membranes, the second fluid having higher humidity than the first fluid;

a heat exchange module disposed in the second space, the heat exchange module being configured to cool the first fluid introduced thereinto; and

a channel valve configured to distribute the first fluid to the humidification module and the heat exchange module at a variable distribution ratio,

wherein the housing unit comprises:

a housing body having the first and second spaces defined therein, the housing body being provided with a first fluid inlet, through which the first fluid is introduced, and a first fluid outlet, through which the first fluid is discharged; and

housing caps coupled respectively to opposite ends of the housing body, the housing caps being provided respectively with a second fluid inlet, through which the second fluid is introduced, and a second fluid outlet, through which the second fluid is discharged, and

wherein the housing body comprises an extending partition wall configured to guide the first fluid to the humidification module and the heat exchange module according to a distribution ratio set by the channel valve.

3. The fuel cell membrane humidifier according to claim 2 , wherein both the first fluid inlet and the first fluid outlet are on one surface of the housing body, and

wherein the housing body further comprises intersecting partition wall configured to prevent the first fluid flowing from the first fluid inlet to the humidification module and the heat exchange module from being mixed with the first fluid flowing from the humidification module and the heat exchange module to the first fluid outlet.

4. The fuel cell membrane humidifier according to claim 1 , wherein the heat exchange module is a shell and tube type heat exchange module, a honeycomb type heat exchange module, or a plate type heat exchange module.

5. The fuel cell membrane humidifier according to claim 1 , wherein the channel valve is configured to be controlled depending on an output state of a fuel cell stack.

6. A fuel cell membrane humidifier comprising:

a housing unit having first and second spaces, between which a partition wall is disposed;

a humidification module disposed in the first space, the humidification module comprising a plurality of hollow fiber membranes, moisture exchange being performed between a first fluid and a second fluid through the plurality of hollow fiber membranes, the second fluid having higher humidity than the first fluid;

a heat exchange module disposed in the second space, the heat exchange module being configured to cool the first fluid introduced thereinto; and

a channel valve configured to distribute the first fluid to the humidification module and the heat exchange module at a variable distribution ratio,

wherein

the housing unit comprises a coolant inlet, through which a coolant is supplied to the heat exchange module, and a coolant outlet, through which the coolant, after performing cooling, is discharged, and

the coolant inlet is connected to a bypass channel configured to bypass at least a portion of outside air that would otherwise be introduced into an air compression means.

7. A fuel cell system comprising:

an air compression means configured to receive and compress outside air in order to generate a first fluid;

a fuel cell stack configured to generate a second fluid through reaction between hydrogen and oxygen, the second fluid having higher humidity than the first fluid; and

the fuel cell membrane humidifier according to claim 1 .

8. A fuel cell system comprising:

an air compression means configured to receive and compress outside air in order to generate a first fluid;

a fuel cell stack configured to generate a second fluid through reaction between hydrogen and oxygen, the second fluid having higher humidity than the first fluid; and

the fuel cell membrane humidifier according to claim 2 .

9. The fuel cell system according to claim 8 , wherein both the first fluid inlet and the first fluid outlet are provided on one surface of the housing body, and

wherein the housing body further comprises an intersecting partition wall configured to prevent the first fluid flowing from the first fluid inlet to the humidification module and the heat exchange module from being mixed with the first fluid flowing from the humidification module and the heat exchange module to the first fluid outlet.

10. The fuel cell system according to claim 7 , further comprising:

a sensing unit configured to sense an output state of the fuel cell stack; and

a controller configured to output a control signal for controlling the channel valve based on the output state of the fuel cell stack sensed by the sensing unit.

11. A fuel cell system comprising:

an air compression means configured to receive and compress outside air in order to generate a first fluid;

a fuel cell stack configured to generate a second fluid through reaction between hydrogen and oxygen, the second fluid having higher humidity than the first fluid; and

the fuel cell membrane humidifier according to claim 6 .

12. The fuel cell system according to claim 7 , wherein

the housing unit comprises a coolant inlet, through which a coolant is supplied to the heat exchange module, and a coolant outlet, through which the coolant, after performing cooling, is discharged, and

the coolant inlet is connected to a bypass channel configured to bypass at least a portion of outside air that would otherwise be introduced into the air compression means.

13. The fuel cell system according to claim 8 , wherein

the housing unit comprises a coolant inlet, through which a coolant is supplied to the heat exchange module, and a coolant outlet, through which the coolant, after performing cooling, is discharged, and

the coolant inlet is connected to a bypass channel configured to bypass at least a portion of outside air that would otherwise be introduced into the air compression means.

14. The fuel cell system according to claim 9 , wherein

the housing unit comprises a coolant inlet, through which a coolant is supplied to the heat exchange module, and a coolant outlet, through which the coolant, after performing cooling, is discharged, and

the coolant inlet is connected to a bypass channel configured to bypass at least a portion of outside air that would otherwise be introduced into the air compression means.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2021
From: KIM, DO WOO; KIM, KYOUNG JU; AN, NA HYEON
To: KOLON INDUSTRIES, INC.
Reel/Frame 056682/0329 →
Priority Claims (1)
KR 10-2019-0026120 · Mar 7, 2019 · national
Continuity (1)
Related Publication 20220093946A1 · Mar 24, 2022
Cited By (2)
US 12,476,265 US 12,542,288