Fuel cell membrane humidifier capable of controlling flow direction of fluid
11469428 · 2022-10-11
Inventors
- Na-Hyeon An (Seoul, KR)
- Kyoung-Ju Kim (Seoul, KR)
- Young-Seok Oh (Seoul, KR)
- Jin-Hyung Lee (Seoul, KR)
- Woong-Jeon Ahn (Seoul, KR)
Cpc classification
B01D2313/23
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D63/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
H01M8/04
ELECTRICITY
H01M8/04119
ELECTRICITY
Abstract
The present invention relates to a fuel cell membrane humidifier capable improving humidifying efficiency by controlling the flow direction of fluid, and the fuel cell membrane humidifier according to an embodiment of the present invention comprises: a hollow fiber membrane module for accommodating a hollow fiber membrane in which a first fluid and a second fluid perform moisture exchange while the first fluid flows therein and the second fluid flows on the outside thereof; and a housing part constituting the appearance of the membrane purifier, wherein a fluid guide part for uniformly guiding the flow of fluid is formed between the hollow fiber membrane and the housing part.
Claims
1. A membrane humidifier for a fuel cell, the membrane humidifier comprising: a hollow fiber membrane module comprising hollow fiber membranes configured to allow moisture exchange between a first fluid flowing inside the hollow fiber membranes and a second fluid flowing outside the hollow fiber membranes; a housing unit defining an external appearance of the membrane humidifier, wherein a fluid guide unit configured to uniformly guide a flow of the second fluid is formed between the hollow fiber membranes and the housing unit, the fluid guide unit comprises a base unit configured to wrap the hollow fiber membranes and a protrusion unit formed on the base unit, the protrusion unit protruding so as to have a predetermined size, the protrusion unit comprises a plurality of stripes, and the plurality of stripes are formed to have a height equivalent to 50 to 300% of a diameter of a single hollow fiber membrane.
2. A membrane humidifier for a fuel cell, the membrane humidifier comprising: a hollow fiber membrane module comprising hollow fiber membranes configured to allow moisture exchange between a first fluid flowing inside the hollow fiber membranes and a second fluid flowing outside the hollow fiber membranes; a housing unit defining an external appearance of the membrane humidifier, wherein a fluid guide unit configured to uniformly guide a flow of the second fluid is formed between the hollow fiber membranes and the housing unit, the fluid guide unit comprises a base unit configured to wrap the hollow fiber membranes and a protrusion unit formed on the base unit, the protrusion unit protruding so as to have a predetermined size, the protrusion unit comprises a plurality of stripes, and the plurality of stripes are formed to have an interval therebetween equivalent to 50 to 300% of a diameter of a single hollow fiber membrane.
3. A membrane humidifier for a fuel cell, the membrane humidifier comprising: a hollow fiber membrane module comprising hollow fiber membranes configured to allow moisture exchange between a first fluid flowing inside the hollow fiber membranes and a second fluid flowing outside the hollow fiber membranes; a housing unit defining an external appearance of the membrane humidifier, wherein a fluid guide unit configured to uniformly guide a flow of the second fluid is formed between the hollow fiber membranes and the housing unit, the fluid guide unit comprises a base unit configured to wrap the hollow fiber membranes and a protrusion unit formed on the base unit, the protrusion unit protruding so as to have a predetermined size, the protrusion unit comprises a plurality of stripes, and an angle defined between each of the plurality of stripes and a central axis of the hollow fiber membrane module ranges from 30 to 90°.
4. A membrane humidifier for a fuel cell, the membrane humidifier comprising: a hollow fiber membrane module comprising hollow fiber membranes configured to allow moisture exchange between a first fluid flowing inside the hollow fiber membranes and a second fluid flowing outside the hollow fiber membranes; a housing unit defining an external appearance of the membrane humidifier, wherein: a fluid guide unit configured to uniformly guide a flow of the second fluid is formed between the hollow fiber membranes and the housing unit; the fluid guide unit comprises a base unit configured to wrap the hollow fiber membranes and a protrusion unit formed on the base unit, the protrusion unit protruding so as to have a predetermined size; the protrusion unit comprises a plurality of stripes; the plurality of stripes are formed to have a height equivalent to 50 to 300% of a diameter of a single hollow fiber membrane; the plurality of stripes are formed to have an interval therebetween equivalent to 50 to 300% of a diameter of a single hollow fiber membrane; and an angle defined between each of the plurality of stripes and a central axis of the hollow fiber membrane module ranges from 30 to 90°.
5. The membrane humidifier according to claim 1, wherein the second fluid has higher humidity than the first fluid.
6. The membrane humidifier according to claim 2, wherein the second fluid has higher humidity than the first fluid.
7. The membrane humidifier according to claim 3, wherein the second fluid has higher humidity than the first fluid.
8. The membrane humidifier according to claim 4, wherein the second fluid has higher humidity than the first fluid.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
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BEST MODE
(7) The present disclosure may be changed in various manners and may have various embodiments, wherein specific embodiments will be illustrated and described in detail in the following detailed description. However, the present disclosure is not limited to the specific embodiments, and it should be understood that the present disclosure includes all modifications, equivalents, or substitutions included in the idea and technical scope of the present disclosure.
(8) The terms used in the present disclosure are provided only to describe the specific embodiments, and do not limit the present disclosure. Singular forms are intended to include plural forms as well, unless the context clearly indicates otherwise. In the present disclosure, it should be understood that the terms “includes,” “has,” etc. specify the presence of features, numbers, steps, operations, elements, components, or combinations thereof described in the specification, but do not preclude the presence or addition of one or more other features, numbers, steps, operations, elements, components, or combinations thereof. Hereinafter, a hollow fiber membrane module including hollow fiber membranes made of different materials according to an embodiment of the present disclosure and a fuel cell membrane humidifier including the same will be described with reference to the accompanying drawings.
(9)
(10) As shown in
(11) The housing unit 100 defines the external appearance of the membrane humidifier. The housing unit 100 may include a housing body 110 and housing caps 120, which may be coupled to each other in order to constitute an integrated housing unit. Each of the housing body 110 and the housing caps 120 may be made of hard plastic, such as polycarbonate, or metal.
(12) In addition, the lateral sectional shape of each of the housing body 110 and the housing caps 120 may be a circle, as shown in
(13) The housing body 110 is provided at opposite ends thereof with a second fluid inlet 131, through which a second fluid is supplied, and a second fluid outlet 132, through which the second fluid is discharged. A first fluid may be a low-humidity fluid, and the second fluid may be a high-humidity fluid. Alternatively, the second fluid may be a low-humidity fluid, and the first fluid may be a high-humidity fluid.
(14) The housing caps 120 are coupled to opposite ends of the housing body 110. The housing caps 120 are provided with a first fluid inlet 121 and a first fluid outlet 122, respectively. A first fluid introduced through the first fluid inlet 121 of one of the housing caps 120 is introduced into the hollow fiber membrane module 200, passes through an inner pipeline of each hollow fiber membrane, flows out of the hollow fiber membrane module 200, and is discharged outside through the first fluid outlet 122 of the other housing cap 120.
(15) A plurality of bundles of hollow fiber membranes 210 configured to selectively transmit moisture may be disposed in the hollow fiber membrane module 200. Each bundle of hollow fiber membranes may be disposed in the form of a cartridge.
(16) The hollow fiber membranes 210 may be hollow fiber membranes made of, for example, Nafion, polyetherimide, or polyphenylsulfone.
(17) A fluid guide unit 220 configured to uniformly guide the flow of a fluid is formed around the hollow fiber membranes 210. Here, the fluid may be a high-humidity fluid. The fluid guide unit 220 will be described later with reference to
(18) The hollow fiber membrane module 200 is provided at opposite ends thereof with potting units (not shown) configured to bind the hollow fiber membranes 210 and the fluid guide unit 220 and to fill gaps between the hollow fiber membranes. As a result, the opposite ends of the hollow fiber membrane module 200 are blocked by the potting units, whereby a flow channel configured to allow the second fluid to pass therethrough is defined in the hollow fiber membrane module. Each of the potting units is made of a known material, and a detailed description thereof will be omitted from this specification.
(19)
(20) As shown in
(21) The base unit 221 includes a plurality of first stripes S1 having a predetermined height (see
(22) The protrusion unit 222 is formed on the base unit 221, and includes a plurality of second stripes S2 protruding from the base unit so as to have a predetermined size (see
(23) The protrusion unit 222 is formed so as to have a predetermined height, interval, and angle in order to effectively control the flow direction of the high-humidity fluid.
(24) Referring to
(25) Preferably, the height h of the protrusion unit 222 is formed so as to be equivalent to 50 to 300% of the diameter of a single hollow fiber membrane. Here, the diameter of a single hollow fiber membrane may be, for example, about 1 mm, and therefore the height h of the protrusion unit 222 may be formed so as to have a size of 0.5 to 3 mm.
(26) In the case in which the height h of the protrusion unit 222 is less than 50% of the diameter of a single hollow fiber membrane, a flow channel having a sufficient depth is not formed, whereby the fluid introduced into the hollow fiber membrane module 200 may not flow along the flow channel F and may then be discharged outside. Also, in the case in which the height h of the protrusion unit 222 is greater than 300% of the diameter of a single hollow fiber membrane, the effect is equal to the effect in the case in which the height of the protrusion unit is less than 300% of the diameter of a single hollow fiber membrane, and therefore this is not suitable for miniaturization.
(27) Preferably, the interval W between the second stripes S2 constituting the protrusion unit 222 is formed so as to be equivalent to 50 to 300% of the diameter of a single hollow fiber membrane. Here, the diameter of a single hollow fiber membrane may be, for example, about 1 mm, and therefore the interval W between the second stripes S2 may be formed so as to have a size of 0.5 to 3 mm.
(28) In the case in which the interval W between the second stripes S2 is less than 50% of the diameter of a single hollow fiber membrane and in the case in which the interval W between the second stripes S2 is greater than 300% of the diameter of a single hollow fiber membrane, the interval is too small or too large, whereby the effect of adjusting the flow of a fluid is insignificant.
(29) Preferably, the angle θ between each second stripe S2 constituting the protrusion unit 222 and the central axis X of the hollow fiber membrane module 200 (see
(30) Next, a process of moisture exchange between the first fluid and the second fluid in the membrane humidifier constructed as described above will be described. In the following description, the first fluid may be a low-humidity fluid, and the second fluid may be a high-humidity fluid. Alternatively, the second fluid may be a low-humidity fluid, and the first fluid may be a high-humidity fluid.
(31) The first fluid flows in the hollow fiber membranes 210 of the hollow fiber membrane module 200, and is then discharged from the membrane humidifier through the first fluid outlet 122 of the other housing cap 120. Meanwhile the first fluid may flow in the direction in which the first fluid is introduced through the first fluid outlet 122 and is then discharged through the first fluid inlet 121.
(32) The second fluid is supplied to the housing body 111 through the second fluid inlet 131 of the housing body 110, flows outside the hollow fiber membranes 210, and is then discharged outside through the second fluid outlet 132 of the housing body 110.
(33) At this time, the flow of the second fluid is uniformly guided by the second stripes constituting the protrusion unit 222 before the second fluid flows outside the hollow fiber membranes 210, and then the second fluid is introduced into spaces defined between the first stripes constituting the base unit 221, and flows outside the hollow fiber membranes 210, during which the second fluid exchanges moisture with the low-humidity first fluid flowing in the hollow fiber membranes 210.
(34) According to the embodiment of the present disclosure described above, the flow of the fluid introduced into the hollow fiber membrane module 200 is uniformly guided by the protrusion unit of the fluid guide unit, whereby it is possible to improve humidification efficiency.
(35) In addition, the dual-layer net structure constituted by the base unit and the protrusion unit, each of which has a predetermined height, is formed between the hollow fiber membranes and the housing unit in order to prevent direct contact between the hollow fiber membranes and the inner wall of the housing unit, whereby it is possible to prevent damage to the hollow fiber membranes due to the inner wall of the housing unit.
(36) Although embodiments of the present disclosure have been described above, it will be apparent from a person having ordinary skill in the art to which the present disclosure pertains that the present disclosure can be variously modified and altered through addition, change, deletion, or supplement of components without departing from the idea of the present disclosure recited in the following claims and that such modifications and alterations fall within the scope of right of the present disclosure.
(37) TABLE-US-00001 [Description of Reference Numerals] 100: Housing unit 110: Housing body 120: Housing caps 200: Hollow fiber membrane module 210: Hollow fiber membranes 220: Fluid guide unit 221: Base unit 222: Protrusion unit