Cell for ion exchange membrane electrolysis
09828684 · 2017-11-28
Assignee
Inventors
- Kiyohito Asaumi (Tamano, JP)
- Koichi Hirashima (Tamano, JP)
- Zhengkan Huang (Tamano, JP)
- Mitsumasa Okamoto (Tamano, JP)
- Koji Yoshimura (Tamano, JP)
Cpc classification
C25B9/63
CHEMISTRY; METALLURGY
International classification
Abstract
Provided is a cell for ion exchange membrane electrolysis obtained by improving the performance in electrolysis of an existing bipolar cell for ion exchange membrane electrolysis, in which a cathode partition wall and a rigid cathode being connected together by a plurality of intermediating V-shaped springs, by a simple method. It is a cell for ion exchange membrane electrolysis which is separated by an ion exchange membrane (7) into an anode chamber (1) having a rigid anode (1a) and an anode partition wall (1b) and a cathode chamber (2) having a rigid cathode (2a) and a cathode partition wall (2b), the rigid cathode (2a) and the cathode partition wall (2b) being connected together by a plurality of intermediating V-shaped springs (3). It is a cell for ion exchange membrane electrolysis in which a metal elastic body (5) and a flexible cathode (6) are disposed in layers on the surface of the rigid cathode (2a), the surface being opposite to the surface to which the V-shaped springs (3) are attached, and a conductive member (4) is disposed near one end on the opening side of a V-shaped spring (3), which conductive member (4) is electrically connected with the V-shaped spring (3) when the V-shaped spring (3) is compressed.
Claims
1. A cell for ion exchange membrane electrolysis separated by an ion exchange membrane into an anode chamber having a rigid anode and an anode partition wall and a cathode chamber having a rigid cathode and a cathode partition wall, the rigid cathode and the cathode partition wall being connected together by a plurality of intermediating V-shaped springs, wherein a conductive member is disposed within opening side of the V-shaped spring so that the conductive member and the V-shaped spring are electrically connected when the V-shaped spring is compressed.
2. The cell for ion exchange membrane electrolysis according to claim 1, wherein the conductive member is elastic.
3. The cell for ion exchange membrane electrolysis according to claim 2, wherein a metal elastic body and a flexible cathode are further disposed in layers on the surface of the rigid cathode, the surface being opposite to the surface to which the V-shaped springs are attached.
4. The cell for ion exchange membrane electrolysis according to claim 1, wherein a metal elastic body and a flexible cathode are further disposed in layers on the surface of the rigid cathode, the surface being opposite to the surface to which the V-shaped springs are attached.
5. The cell for ion exchange membrane electrolysis according to claim 4, wherein the metal elastic body is an elastic cushion member comprising a metal elastic body wound around a corrosion-resistant frame.
6. The cell for ion exchange membrane electrolysis according to claim 4, wherein the metal elastic body is a metal coil body.
7. The cell for ion exchange membrane electrolysis according to claim 4, wherein the metal elastic body is a comb-shaped body comprising a plurality of pairs of plate spring-like bodies which extend inclining from a plate spring-like body holding member.
8. A cell for ion exchange membrane electrolysis separated by an ion exchange membrane into an anode chamber having a rigid anode and an anode partition wall and a cathode chamber having a rigid cathode and a cathode partition wall, the rigid cathode and the cathode partition wall being connected together by a plurality of intermediating V-shaped springs, wherein ends on opening side of the V-shaped spring are directly contacted to each other to establish an electrical connection between the ends on the opening side by compressing the V-shaped spring.
9. The cell for ion exchange membrane electrolysis according to claim 8, wherein a metal elastic body and a flexible cathode are further disposed in layers on the surface of the rigid cathode, the surface being opposite to the surface to which the V-shaped springs are attached.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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MODE FOR CARRYING OUT THE INVENTION
(12) Now, embodiments of the present invention will be described in detail with reference to the drawings.
(13) A cell for ion exchange membrane electrolysis of the present invention comprises a given number of bipolar cell units disposed in layers with an ion exchange membrane interposed between respective units.
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(15)
(16) The cross-sectional shape of the conductive member (4) in
(17) In the cell according to the first embodiment of the present invention, a conductive member (4) is preferably elastic. In cases where a conductive member (4) is a rigid member such as a metal rod, it may be difficult in terms of manufacture to bring the entire part of the conductive member (4) into contact with a V-shaped spring (3). In this case, the V-shaped spring (3) and the conductive member (4) are in partial contact with each other and the contact resistance between them cannot be sufficiently reduced. Thus, imparting elasticity to the conductive member (4) increases the area of contact between the V-shaped spring (3) and the conductive member (4), which can further reduce the contact resistance between them and consequently minimize electric power loss in the V-shaped spring (3).
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(19) Moreover, in the cell according to the first embodiment of the present invention, a metal elastic body (5) (a metal coil body in the illustrated example) and a flexible cathode (6) are preferably disposed sequentially in layers on the surface of the rigid cathode (2a), the surface being opposite to the surface to which V-shaped springs (3) are, attached. This is designed to allow zero-gap assembly without any space between a rigid cathode (2a) and an ion exchange membrane (7), which is generated by compressing a V-shaped spring (3). That is, a metal elastic body (5) uniformly presses a flexible cathode (6) toward an ion exchange membrane (7) and it results in close contact between the flexible cathode (6) and the rigid anode of the cell unit adjacent to the ion exchange membrane (7) without breakage of the ion exchange membrane (7). This allows the cell for ion exchange membrane electrolysis to improve its performance in electrolysis.
(20) Next, a cell for ion exchange membrane electrolysis according to the second embodiment of the present invention will be described.
(21) Also in the second embodiment of the present invention, a cell for ion exchange membrane electrolysis comprises a given number of bipolar cell units disposed in layers with an ion exchange membrane interposed between respective units.
(22) In the cell according to the second embodiment of the present invention, a concave portion (18) is provided in a region of the rigid cathode (12a) which a plurality of V-shaped springs (13) are not touching.
(23) Additionally, in the present embodiment, the procedure to provide a concave portion (18) to a rigid cathode (12a) is not particularly limited and a concave portion (18) may be prepared, for example, using a hammer. Moreover, this concave portion (18) is anchored to the cathode partition wall (12b) by TIG welding and the like so that the contact resistance between them can be reduced. Differing from the cell according to the first embodiment, the cell according to the second embodiment of the present invention does not need other members to be newly installed but a concave portion (18) toward a cathode partition wall (12b) to be provided to an existing rigid cathode (12a) and therefore has an advantage that the cell is manufactured easily.
(24) Also in the present embodiment, a metal elastic body (15) (a metal coil body in the illustrated example) and a flexible cathode (16) are preferably disposed sequentially in layers on the surface of a rigid cathode (12a), the surface being opposite to the surface to which V-shaped springs (13) are attached. This is designed to allow zero-gap assembly by a metal elastic body (15) and a flexible cathode (16) without any space between a rigid cathode (12a) and an ion exchange membrane (17), which is generated by compressing a V-shaped spring (13).
(25) Next, a cell for ion exchange membrane electrolysis according to the third embodiment of the present invention will be described.
(26) Also in the third embodiment of the present invention, a cell for ion exchange membrane electrolysis likewise comprises a given number of bipolar cell units disposed in layers with an ion exchange membrane interposed between respective units.
(27) Moreover, in the cell according to the third embodiment of the present invention, compressing a V-shaped spring (23) provides a contact and then an electrically connection between the ends on the opening side of the V-shaped spring (23). In that case, the V-shaped spring (23) is completely flattened. Creating such a situation allows an electrolytic current, which conventionally flows along the shape of a V-shaped spring (23), to flow along the shortest path, which can minimize electric power loss. The ends of the V-shaped spring (23) are secured together by TIG welding and the like so that the contact resistance between them can be further reduced. Additionally, the cell according to the third embodiment also does not need new members to be installed and therefore has an advantage that the cell is manufactured easily.
(28) Also in the cell according to the third embodiment of the present invention, a metal elastic body (25) (a metal coil body in the illustrated example) and a flexible cathode (26) are preferably disposed sequentially in layers on the surface of the rigid cathode (22a), the surface being opposite to the surface to which V-shaped springs (23) are attached. This is designed to allow zero-gap assembly by a metal elastic body (25) and a flexible cathode (26) without any space between a rigid cathode (22a) and an ion exchange membrane (27), which is generated by compressing a V-shaped spring (23). Additionally, in the present embodiment, a metal elastic body (25) must be thicker than those of the cells (10) and (20) according to the first and second embodiments because a V-shaped spring (23) is flattened.
(29) In the cell for ion exchange membrane electrolysis according to the first to third embodiments of the present invention, examples of metal elastic bodies (5), (15) and (25) include a metal coil body and a metal elastic body (5), (15) or (25) in a cell for ion exchange membrane electrolysis of the present invention is not particularly limited as long as it is made of a conductive material and has an elastic property such that it can supply electric power while pressing a pliable flexible cathode (6), (16), or (26) toward an ion exchange membrane (7), (17), or (27). For example, a plate spring-like body as described below, which extends inclining from a plate spring-like body holding member, may be used other than a metal coil body.
(30) In cases where a metal coil body is employed on a metal elastic body (5), (15) or (25), the metal coil body is obtained, for example, by manufacturing a spiral coil through roll forming from a wire made of a metal having a low specific resistance, such as nickel, nickel alloy, stainless steel, or copper, which exhibits good corrosion resistance, and coated with nickel and the like, which exhibit good corrosion resistance, by plating and the like. The cross-sectional shape of the obtained wire is preferred to be a circular shape, an oval shape, a rectangular shape with rounded corners, and the like from the viewpoint of preventing damage to an ion exchange membrane. Specifically, subjecting a nickel wire of 0.17 mm in diameter (NW2201) to roll forming can yield a coil wire, which has a cross-sectional shape of a rectangle of about 0.05 mm×0.5 mm with rounded corners and a winding diameter of about 6 mm.
(31) In
(32) In the examples shown in
(33) That is, a metal elastic body (54) has a high deformation ratio and therefore is difficult to handle and often causes difficulty in installation to a determined part of a cell in accordance with a worker's intention. Furthermore, the metal elastic body is easily deformed (its strength is insufficient) and it sometimes causes difficulty in uniformly close contact with respective members due to deviation of the metal elastic body by an electrolyte and/or generated gas in a cell even if the metal elastic body is once installed to a determined part of the cell. In contrast, an elastic cushion member (53) comprises a rectangular corrosion-resistant frame, which is composed of four rods, as shown, for example, in
(34) In cases where a metal coil body was used as a metal elastic body, the diameter of the metal coil body (the nominal diameter of the coil) would be usually reduced by 10 to 70% and elasticity would be provided in the metal coil body itself or an elastic cushion member (53) obtained by winding the metal coil body when it was attached into a cell. This elasticity allows an elastic connection between a rigid cathode (2a), (12a), or (22a) and a flexible cathode (6), (16), or (26) to be established and to facilitate power supply to the electrodes. In cases where a metal coil body formed of a wire having a small diameter is used, the number of contact points between a rigid cathode (2a), (12a), or (22a) and an elastic cushion member or between a flexible cathode (6), (16), or (26) and an elastic cushion member is consequently increased, which enables uniform contact to be achieved. Moreover, the shape of an elastic cushion member (53) is maintained by its corrosion-resistant frame (50) after the elastic cushion member is attached into a cell, and therefore the elastic cushion member scarcely undergoes plastic deformation and can be, in most cases, reused in reassembly after disassembly of a cell.
(35) Moreover, in a cell of the present invention, a plate spring-like body may be used as a metal elastic body, as described above.
(36) Furthermore, a plate spring-like body (60) preferably has an attachment part (60a) at its distal portion, which is folded nearly parallel to a plate spring-like body holding member (61) to make contact with a flexible cathode, as shown by the drawing. Providing an attachment part (60a) allows a plate spring-like body (60) to avoid damaging a flexible cathode as well as to improve the connection between a flexible cathode and an ion exchange membrane. Additionally, a plate spring-like body produced by attaching a spring-like body to a plate with any method may be used, though another plate spring-like body is used in the illustrated example, which is produced by making incisions in a plate to form a tab and pulling up the tab.
(37) The present invention has been described so far using a metal coil body, an elastic cushion member and a plate spring-like body as an example of a metal elastic member related to the cell for ion exchange membrane electrolysis of the present invention. In addition to these articles, a fine metal wire shaped in a wave form or a metal non-woven fabric may be used in a cell for ion exchange membrane electrolysis of the present invention. In addition to these articles, a knitted fabric, a woven fabric, a layered product made of these fabrics, a fabric knitted three-dimensionally, and a fabric which has undergone undulation after three dimensional knitting, which fabrics are formed of a metal wire, may be used as a metal elastic body.
(38) In the cell for ion exchange membrane electrolysis of the present invention, when a cell for ion exchange membrane electrolysis comprising a metal elastic body or an elastic cushion member is assembled, an elastic cushion member and the like is disposed between a rigid cathode (2a), (12a), or (22a) and a flexible cathode (6), (16), or (26) and then the remaining parts of the cell are normally assembled to obtain a cell for ion exchange membrane electrolysis which holds an elastic cushion member and the like at a predetermined position.
(39) Assembly of an elastic cushion member can be easily performed using a metal elastic body, because it is performed outside of a cell. The obtained elastic cushion member should be installed at assembly of a cell to provide electrical connection to a current collector mounted on an electrode of interest in the cell. During this installation, the elastic cushion member itself is not deformed so much due to the strength of its corrosion-resistant frame as to affect the assembly of the cell and therefore the elastic cushion member can be easily installed to a predetermined position. In the present invention, electricity is normally transmitted in a contact power distribution system.
(40) The cell for ion exchange membrane electrolysis of the present invention relates to an improved cell for ion exchange membrane electrolysis, which is separated by an ion exchange membrane into an anode chamber having an anode and an anode partition wall and a cathode chamber having a rigid cathode and a cathode partition wall, wherein the rigid cathode is supported by a plurality of V-shaped springs attached to the cathode partition wall. Only realizing the above-described configurations of the cell for ion exchange membrane electrolysis of the present invention is important and conventionally used configurations can be appropriately employed without particular limitation on the other structures of the cell for ion exchange membrane electrolysis.
(41) For example, a flexible cathode (6), (16), or (26) is not particularly limited as long as it is compressed by a metal elastic body (5), (15) or (25) or an elastic cushion member so as to make contact with an ion exchange membrane (7), (17), or (27) and generally any flexible cathode can be used as long as it is used for electrolysis. However, preferred is a pyrolytic activated cathode selected from a group consisting of Ru—La—Pt-based, Ru—Ce-based, Pt—Ce-based and Pt—Ni based cathodes, which has a thin but highly active catalytic film and does not induce mechanical damage to an ion exchange membrane due to the smooth surface of the film.
EXAMPLES
(42) Now, the present invention will be described in more detail by means of Examples.
Example 1
(43) A conductive member, in which a rod-shaped body of 3.0 mm in diameter made of stainless steel SUS310S and a conductive mesh were welded together, was disposed near one end on the opening side of a V-shaped spring of an existing cell for ion exchange membrane electrolysis (BiTAC®: produced by Chlorine Engineers Corp., Ltd.), which is separated by an ion exchange membrane into an anode chamber having a rigid anode and an anode partition wall and a cathode chamber having a rigid cathode and a cathode partition wall and in which the rigid cathode is supported by a plurality of V-shaped springs attached to the cathode partition wall. Subsequently, a cathode mesh was anchored to the conductive member by TIG welding at positions where an interspace between adjacent V-shaped springs was shown.
(44) A coil wire of about 0.5 mm in diameter was manufactured through roll forming from a nickel wire (NW2201) having a wire diameter of 0.17 mm and a tensile strength of 620 to 680 N/m.sup.2. A metal coil body having a winding diameter of about 6 mm was produced by using the obtained coil wire. This metal coil body was wound around a frame formed of nickel round bar having a diameter of 1.2 mm (corrosion-resistant frame) to form a cubic body and thereby an elastic cushion member of roughly 350 mm in length×110 mm in width×10 mm in height was produced. The density of the coil wire in this elastic cushion member was about 7 g/dm.sup.2. The obtained elastic cushion member was inserted between the rigid cathode and the flexible cathode, while retaining the elasticity, to perform electrolysis at a current density of 4 kA/m.sup.2 for 30 days.
(45) A dimensionally stable electrode produced by Permelec Electrode Ltd., an activated cathode formed of a nickel micromesh substrate and a nickel expanded metal were employed on an anode, a flexible cathode and a rigid cathode, respectively. The size of each reaction surface was 110 mm in width×1400 mm in height in the anode and the cathodes. An ion exchange membrane Flemion F-8020 produced by Asahi Glass Co., Ltd. was employed.
Example 2
(46) Electrolysis was performed according to the same procedure as in Example 1 except that a conductive member was not disposed near one end on the opening side of a V-shaped spring and a rigid cathode was recessed using a hammer to form a concave portion at a position where a V-shaped spring was not attached to the rigid cathode and to bring this concave portion into contact with a cathode partition wall and this attachment was subsequently secured by TIG welding.
Example 3
(47) Electrolysis was performed according to the same procedure as in the above Example except that a metal coil body having a winding diameter of 8 mm and a flexible cathode were disposed sequentially in layers on a V-shaped spring, which had been completely flattened.
Conventional Example
(48) Electrolysis was performed as usual by using a cell BiTAC® produced by Chlorine Engineers Corp., Ltd.
(49) Lead wires were welded to the both sides of a V-shaped spring in individual cells of Examples 1 to 3 and Conventional Example and the difference in electric potential between them was measured with a digital voltmeter.
(50) According to the results of the measurement, the difference in electric potential was 25 mV in Conventional Example while it was 13 mV in Example 1, 10 mV in Example 2, and 7 mV in Example 3, which can confirm that the voltage in each Example was able to be reduced as compared to that in Conventional Example.
DESCRIPTION OF SYMBOLS
(51) 1, 11, 21, 31 Anode chamber 1a, 11a, 21a, 31a Rigid anode 1b, 11b, 21b, 31b Anode partition wall 2, 12, 22, 32 Cathode chamber 2a, 12a, 22a, 32a Rigid cathode 2b, 12b, 22b, 32b Cathode partition wall 3, 13, 23, 33 V-shaped spring 4 Conductive member 4a Metal rod 4b Conductive mesh 5, 15, 25 Metal elastic body 6, 16, 26 Flexible cathode 7, 17, 27, 37 Ion exchange membrane 18 Concave portion 10, 20, 30, 40 Cell unit 50 Corrosion-resistant frame 51 Rectangular frame 52 Supporting rod 53 Elastic cushion member 54 Metal elastic body 60 Plate spring-like body 60a Distal portion 61 Plate spring-like body holding member