This application is a national stage application of International Application No. PCT/JP2020/028911, filed on Jul. 28, 2020, which designates the United States, the entire contents of which are herein incorporated by reference, and which is based upon and claims the benefit of priority to Japanese Patent Application No. 2019-158561, filed on Aug. 30, 2019, the entire contents of which are herein incorporated by reference.
The present disclosure relates to a cell stack device, a module, and a module housing device.
In recent years, various fuel cell stack devices have been proposed as next-generation energy sources in which a plurality of fuel cells are arranged, each of the fuel cells being a type of cell capable of generating electrical power by using a fuel gas (hydrogen-containing gas) and an oxygen-containing gas (air).
In such a fuel cell stack device, for example, lower ends of the plurality of fuel cells are bonded to a holding member by a fixing material (see Patent Document 1).
Patent Document 1: JP 2013-157191 A
A cell stack device according to an aspect of an embodiment of the present disclosure includes a cell stack, a holding member, and a positive electrode terminal. The cell stack is constructed by stacking a plurality of cells. The holding member holds the cells. The positive electrode terminal functions as a positive electrode when power generated by the cell stack is output to the outside. Furthermore, the potential of the positive electrode terminal is not more than that of the holding member.
Furthermore, a module of the present disclosure includes the cell stack device described above in a housing container.
Moreover, a module housing device of the present disclosure includes, in an outer case, the module described above and an auxiliary device for operating the module.
Hereinafter, embodiments of a cell stack device, a module, and a module housing device disclosed in the present specification will be described with reference to the accompanying drawings. The disclosure is not limited by the following embodiments.
Furthermore, it is noted that the drawings are schematic and the dimensional relationship between elements, the proportions of elements, and the like may differ from realistic ones. Even between the drawings, there may be a case where portions having different dimensional relationships, proportions, and the like from one another are included.
Configuration of Cell
First, an example of a solid oxide fuel cell will be described as a cell constituting a cell stack device according to an embodiment with reference to
In the example illustrated in
As illustrated in
The element part is provided on the first flat surface n1 of the support substrate 2. The element part has a fuel electrode 3, a solid electrolyte layer 4, and an air electrode 5. In the example illustrated in
As illustrated in
Hereinafter, respective constituent members constituting the cell 1 will be described.
The support substrate 2 is provided therein with gas flow paths 2a through which a gas flows.
The material of the support substrate 2 contains, for example, an iron group metal component and an inorganic oxide. For example, the iron group metal component may be Ni and/or NiO. For example, the inorganic oxide may be a specific rare earth element oxide.
As the material of the fuel electrode 3, a generally known material may be used. The fuel electrode 3 can be formed from a porous conductive ceramic, for example, a ceramic containing a solid solution of a calcium oxide, a magnesium oxide, or a rare earth element oxide in ZrO2 and Ni and/or NiO. As the rare earth element oxide, for example, Y2O3 or the like is used. Hereinafter, a solid solution of a calcium oxide, a magnesium oxide, or a rare earth element oxide in ZrO2 is referred to as stabilized zirconia. In the present disclosure, stabilized zirconia also includes partially stabilized zirconia.
The solid electrolyte layer 4 is an electrolyte and bridges ions between the fuel electrode 3 and the air electrode 5. At the same time, the solid electrolyte layer 4 has a gas blocking property and makes it difficult for fuel gas and oxygen-containing gas to leak.
The material of the solid electrolyte layer 4 is, for example, a solid solution of 3 mol % to 15 mol % of a rare earth element oxide in ZrO2. As the rare earth element oxide, for example, Y2O3 or the like is used. Another material may be used as the material of the solid electrolyte layer 4 as long as it has the above characteristics.
The material of the air electrode 5 is not particularly limited as long as it is generally used for an air electrode. The material of the air electrode 5 may be, for example, a conductive ceramic such as a so-called ABO3 type perovskite type oxide.
The material of the air electrode 5 may be, for example, a composite oxide in which Sr and La coexist in the A site. Examples of such a composite oxide include LaxSr1-xCoyFe1-yO3, LaxSr1-xMnO3, LaxSr1-xFeO3, LaxSr1-xCoO3, and the like. Here, x is 0<x<1 and y is 0<y<1.
Furthermore, the air electrode 5 has gas permeability. The open porosity of the air electrode 5 may be 20% or more, and is particularly in the range of 30% to 50%.
As the material of the interconnector 6, a lanthanum chromite-based perovskite type oxide (LaCrO3-based oxide), a lanthanum strontium titanium-based perovskite type oxide (LaSrTiO3-based oxide), or the like may be used. These materials have conductivity, and are neither reduced nor oxidized even when they come into contact with a fuel gas such as a hydrogen-containing gas, and an oxygen-containing gas such as air.
Furthermore, the interconnector 6 is dense and makes it difficult for the fuel gas flowing through the gas flow paths 2a formed in the support substrate 2 and the oxygen-containing gas flowing outside the support substrate 2 to leak. The interconnector 6 may have a relative density of 93% or more, particularly 95% or more.
Configuration of Cell Stack Device
Next, a cell stack device 10 according to the present embodiment using the aforementioned cell 1 will be described with reference to
As illustrated in
The fixing member 12 has a fixing material 13 and a holding member 14. The holding member 14 holds the cells 1. The fixing material 13 fixes the cells 1 to the holding member 14. Furthermore, the holding member 14 has a holding body 15 and a gas tank 16. The holding body 15 and the gas tank 16, which constitute the holding member 14, are made of metal and have conductivity.
As illustrated in
The gas tank 16 has an opening for supplying a reaction gas to the plurality of cells 1 via the insertion hole 15a and a recessed groove 16a provided around the opening. An outer peripheral end of the holding body 15 is bonded to the gas tank 16 by a bonding material 21 filled in the recessed groove 16a of the gas tank 16.
In the example illustrated in
Hydrogen-rich fuel gas may be produced, for example, by steam reforming a raw material. The fuel gas produced by steam reforming contains steam.
The example illustrated in
The insertion hole 15a has, for example, an oval shape in the top view. The length of the insertion hole 15a, for example, in the arrangement direction of the cells 1, that is, the thickness direction T, is larger than a distance between two end current collection members 17 located at both ends of the cell stack 11. The width of the insertion hole 15a is, for example, larger than the length of the cell 1 in the width direction W (see
As illustrated in
The fixing material 13 and the bonding material 21 have oxide ion conductivity. The fixing material 13 and the bonding material 21 can use a material having lower conductivity. As a specific material of the fixing material 13 and the bonding material 21, amorphous glass or the like may be used, or particularly, crystallized glass or the like may be used.
As the crystallized glass, for example, any of SiO2—CaO-based, MgO—B2O3-based. La2O3—B2O3—MgO-based. La2O3—B2O3—ZnO-based, and SiO2—CaO—ZnO-based materials may be used, or, particularly, a SiO2—MgO-based material may be used.
As illustrated in
As illustrated in
As illustrated in
The positive electrode terminal 19A functions as a positive electrode when power generated by the cell stack 11 is output to the outside, and is electrically connected to the end current collection members 17 on a positive electrode side in the cell stack 11A. The negative electrode terminal 19B functions as a negative electrode when power generated by the cell stack 11 is output to the outside, and is electrically connected to the end current collection members 17 on a negative electrode side in the cell stack 11B.
The connection terminal 19C electrically connects the end current collection members 17 on the negative electrode side in the cell stack 1I A and the end current collection members 17 on the positive electrode side in the cell stack 11B.
A reference example illustrated in
As illustrated in
Specifically, the PCS 101 converts DC power generated by the cell stack device 10 into AC power, and supplies the AC power to the power system 102. Therefore, both the positive electrode terminal 19A and the negative electrode terminal 19B of the cell stack device 10 are connected to the PCS 101.
Furthermore, in the power system 100 illustrated in
Furthermore, the holding member 14 made of metal and having conductivity is grounded in order to ensure stable operation of the cell stack device 10. The holding member 14 includes the holding body 15 and the gas tank 16. That is, the potential of the holding body 15 (holding member 14) is 0 (V). The potential of the holding body 15 may be a potential slightly deviated from the just intermediate potential between the potential of the positive electrode terminal 19A and the potential of the negative electrode terminal 19B.
Due to such a magnitude relation of the potentials, as illustrated in
Due to such a potential difference, as illustrated in
Consequently, this causes a loss of the oxide film on the surface of the holding body 15 in the interface with the fixing material 13, and such a loss causes a gap C to be formed between the fixing material 13 and the holding body 15 as illustrated in
The holding body 15 may be a flat plate-shaped holding body 15 as illustrated in
Subsequently, the cell stack device 10 according to the embodiment will be described with reference to
As illustrated in
Consequently, as illustrated in
That is, in the embodiment, there is no potential difference between the cell 1 in the vicinity of the positive electrode terminal 19A and the holding body 15 described in the above reference example, which makes it possible to prevent a reduction reaction from occurring in the interface between the fixing material 13 and the holding body 15.
Consequently, according to the embodiment, it is possible to reduce the loss of the oxide film on the surface of the holding body 15 in the interface with the fixing material 13. As a consequence, the gap C is not easily formed between the fixing material 13 and the holding body 15. That is, according to the embodiment, it is possible to improve the durability of the cell stack device 10.
Furthermore, in the embodiment, the noise reduction unit 32 may be provided between the positive electrode terminal 19A and the ground potential 31. In the noise reduction unit 32, for example, a coil 32a and a resistor 32b are connected in series between the positive electrode terminal 19A and the ground potential 31, and a capacitor 32c is connected in parallel with the resistor 32b.
In the embodiment, by providing the noise reduction unit 32 between the positive electrode terminal 19A and the ground potential 31, it is possible to reduce noise included in DC power supplied from the cell stack device 10. Consequently, according to the embodiment, the PCS 101 can stably convert DC power into AC power.
The circuit configuration of the noise reduction unit 32 illustrated in
First Modification
Subsequently, the cell stack device 10 according to a first modification of the embodiment will be described with reference to
The first modification is different from the embodiment in that a separate battery 33 is provided between the positive electrode terminal 19A and the ground potential 31. A positive electrode of the battery 33 is connected to the ground potential 31 via the noise reduction unit 32. Furthermore, a negative electrode of the battery 33 is connected to the positive electrode terminal 19A.
As illustrated in
That is, in the first modification, since a potential difference opposite to the potential difference described in the above reference example can be generated, an oxidation reaction opposite to the reduction reaction can occur in the interface between the fixing material 13 and the holding body 15.
Consequently, even though the oxide film on the surface of the holding body 15 in the interface with the fixing material 13 may grow due to the oxidation reaction, it is possible to reduce the loss of the oxide film. Therefore, according to the first modification, the gap C is not easily formed between the fixing material 13 and the holding body 15, which makes it possible to improve the durability of the cell stack device 10.
The battery 33 is an example of a negative voltage application unit that applies a negative voltage to the positive electrode terminal 19A. That is, such a negative voltage application unit is not limited to the battery 33, and may have any configuration as long as it can apply a negative voltage to the positive electrode terminal 19A with respect to the ground potential 31.
Furthermore, in the first modification, the noise reduction unit 32 may be provided between the positive electrode terminal 19A and the ground potential 31 as in the embodiment. With this, it is possible to reduce noise included in DC power supplied from the cell stack device 10, and thus the PCS 101 can stably convert DC power into AC power.
Module
Next, a module 80 according to the embodiment of the present disclosure using the cell stack device 10 described above will be described with reference to
As illustrated in
The reformer 82 generates fuel gas by reforming raw fuel such as natural gas and kerosene, and supplies the generated fuel gas to the cell 1. The raw fuel is supplied to the reformer 82 through a raw fuel supply pipe 83. The reformer 82 may include a vaporizing part 82a for vaporizing water and a reforming part 82b. The reforming part 82b includes a reforming catalyst (not illustrated) and reforms the raw fuel into the fuel gas. The reformer 82 such as that described above can perform steam reforming which is a highly efficient reforming reaction.
The fuel gas generated by the reformer 82 is supplied to the gas flow paths 2a (see
Furthermore, in the module 80 having the configuration described above, the temperature in the module 80 during normal power generation is 500° C. to 1.000° C. due to the combustion of gas and power generation of the cells 1.
In the module 80 such as that described above, by providing the cell stack device 10 having high durability, which is less likely to form the gap C as described above, the module 80 having high durability can be acquired.
Module Housing Device
The outer case of the module housing device 90 illustrated in
Furthermore, the partition plate 93 has an air circulation port 96 for causing the air in the auxiliary device housing chamber 95 to flow toward the module housing chamber 94. The outer plate 92 constituting the module housing chamber 94 has an exhaust port 97 for exhausting the air in the module housing chamber 94.
In the module housing device 90 such as that described above, by providing the module housing chamber 94 with the module 80 having high durability as described above, the module housing device 90 having high durability can be acquired.
So far, although the present disclosure has been described in detail, the present disclosure is not limited to the aforementioned embodiment, and various changes, improvements, and the like can be made without departing from the gist of the present disclosure.
The aforementioned embodiment has exemplified a vertical stripe type cell stack device in which so-called “vertical stripe type” cells are stacked, the cells being provided with only one power generation element part including a fuel electrode, a solid electrolyte layer, and an air electrode on the surface of a support substrate. The present disclosure can be applied to a horizontal stripe type cell stack device in which so-called “horizontal stripe type” cells are stacked, the cells including power generation element parts provided at a plurality of locations separate from each other on the surface of a support substrate, adjacent power generation element parts being electrically connected to each other.
Furthermore, the aforementioned embodiment has exemplified the case where a hollow flat plate type support substrate is used. The present disclosure can also be applied to a cell stack device using a cylindrical support substrate. Furthermore, the present disclosure can also be applied to a flat plate type cell stack device in which a so-called “flat plate type” cell is stacked in the thickness direction.
Furthermore, the aforementioned embodiment gives an example in which a fuel electrode is provided on a support substrate and an air electrode is disposed on the surface of a cell. The present disclosure can also be applied to an opposite arrangement, that is, a cell stack device in which an air electrode is provided on a support substrate and a fuel electrode is disposed on the surface of a cell.
Furthermore, in the aforementioned embodiment, a fuel cell, a fuel cell stack device, a fuel cell module, and a fuel cell device are illustrated as examples of the “cell”, the “cell stack device”, the “module”, and the “module housing device”; however, in other examples, an electrolytic cell, an electrolytic cell stack device, an electrolytic module, and an electrolytic device may be the “cell”, the “cell stack device”, the “module”, and the “module housing device”, respectively.
The cell 201 of the second modification has an element part 202, a separator 203, an air-electrode-side frame 204, a fuel-electrode-side frame 205, an air-electrode-side current collector 206, a fuel-electrode-side current collector 207, and an interconnector 208.
The separator 203 divides the cell 201 into an air chamber 264 facing the air electrode 202a and a fuel chamber 265 facing the fuel electrode 202c (see
The air-electrode-side frame 204 is a frame-shaped member having a through hole penetrating the air-electrode-side frame 204 in the vertical direction near the center thereof. The material of the air-electrode-side frame 204 may be, for example, an insulator such as mica. The air-electrode-side frame 204 comes into contact with a peripheral edge portion of a surface on a side of the separator 203, which is opposite to a side of the separator 203, which faces the solid electrolyte layer 202b, and a peripheral edge portion of a surface on a side of the interconnector 208, which faces the air electrode 202a.
Since the cell 201 located at the uppermost position in the cell stack 210 does not have the upper interconnector 208, the air-electrode-side frame 204 in the cell 201 comes into contact with the end current collection member 220.
The through hole of the air-electrode-side frame 204 constitutes the air chamber 264 facing the air electrode 202a. Furthermore, the air-electrode-side frame 204 electrically insulates adjacent interconnectors 208 from each other.
The fuel-electrode-side frame 205 is a frame-shaped member having a through hole penetrating the fuel-electrode-side frame 205 in the vertical direction near the center thereof. The material of the fuel-electrode-side frame 205 may be, for example, metal. The through hole of the fuel-electrode-side frame 205 constitutes the fuel chamber 265 facing the fuel electrode 202c.
The fuel-electrode-side frame 205 comes into contact with a peripheral edge portion of a surface on a side of the separator 203, which faces the solid electrolyte layer 202b, and a peripheral edge portion of a surface on a side of the interconnector 208, which faces the fuel electrode 202c.
The air-electrode-side current collector 206 is disposed in the air chamber 264. The air-electrode-side current collector 206 is composed of a plurality of columnar conductive members arranged at predetermined intervals. The material of the air-electrode-side current collector 206 may be, for example, stainless steel.
The air-electrode-side current collector 206 comes into contact with a surface on a side of the air-electrode 202a, which is opposite to a side of the air electrode 202a, which faces the solid electrolyte layer 202b, and a surface on a side of the interconnector 208, which faces the air electrode 202a. Since the cell 201 located at the uppermost position in the cell stack 210 does not have the upper interconnector 208, the air-electrode-side current collector 206 in the cell 201 comes into contact with the end current collection member 220.
That is, the air-electrode-side current collector 206 electrically connects between the air electrode 202a and the interconnector 208, or between the air electrode 202a and the end current collection member 220. The air-electrode-side current collector 206 and the interconnector 208 may be formed as an integrated member.
The fuel-electrode-side current collector 207 is disposed in the fuel chamber 265. The fuel-electrode-side current collector 207 is composed of a plurality of columnar conductive members arranged at predetermined intervals. The material of the fuel-electrode-side current collector 207 may be, for example, stainless steel. As illustrated in
The electrode facing part 207a faces the fuel electrode 202c of the element part 202. The interconnector facing part 207b faces the interconnector 208 (or the end current collection member 221). The connection part 207c connects the electrode facing part 207a and the interconnector facing part 207b. The electrode facing part 207a, the interconnector facing part 207b, and the connection part 207c may all be made of metal, or may be integrally formed with one another, for example.
The spacer 207d is located between the electrode facing part 207a and the interconnector facing part 207b. The material of the spacer 207d may be, for example, mica. By disposing the spacer 207d in the fuel-electrode-side current collector 207, the fuel-electrode-side current collector 207 can easily follow the deformation of the cell 201 due to a temperature cycle, a pressure fluctuation of the reaction gas, and the like.
Consequently, the cell 201 having the fuel-electrode-side current collector 207 as illustrated in
The cell 201 in contact with the end current collection member 220 or the end current collection member 221 has no interconnector 208 because the end current collection member 220 or the end current collection member 221 has the function of the interconnector 208.
A positive electrode terminal 222 functions as a positive electrode when power generated by the cell stack 210 is output to the outside, and is electrically connected to the positive-electrode-side end current collection member 220 in the cell stack 210. A negative electrode terminal 223 functions as a negative electrode when power generated by the cell stack 210 is output to the outside, and is electrically connected to the negative-electrode-side end current collection member 221 in the cell stack 210.
The cell stack device 200 has communication holes 261 and 262 through which the end current collection member 220, the cell stack 210, and the end current collection member 221 communicate with one another, and metal bolts 231 are inserted into the communication holes 261 and 262, respectively.
Furthermore, metal nuts 232 are fitted to the bolts 231 exposed to the outside from the end current collection member 220 and the end current collection member 221, so that the plurality of cells 201 are held between the end current collection member 220 and the end current collection member 221. That is, in the second modification, the bolts 231 and the nuts 232 form holding members 230 that hold the plurality of cells 201.
A fixing material 240 is located between the end current collection member 220 and the holding member 230 and between the end current collection member 221 and the holding member 230. The fixing material 240 of the second modification may be made of the same material as that of the fixing material 13 of the embodiment, for example. The fixing material 240 of the second modification is not limited to the same material as that of the fixing material 13 of the embodiment, and may be made of an insulating sheet, for example.
Either the end current collection member 220 or the end current collection member 221 may be formed with a screw hole. For example, when the end current collection member 220 is formed with a screw hole, the bolt 231 may be screwed into the screw hole. The inner wall of the screw hole and the bolt 231 may be in direct contact with each other, or the fixing material 240 may be located between the inner wall of the screw hole and the bolt 231. In such a case, the bolt 231 is exposed to the outside from the end current collection member 221 and the metal nut 232 is fitted to the exposed bolt 231. The fixing material 240 is located between the end current collection member 221 and the holding member 230.
Instead of the bolt 231 and the nut 232, a bolt having a flange portion may be used as the holding member 230. The bolt having a flange portion is screwed into the screw hole of the end current collection member 220, and the fixing material 240 is located between the flange portion of the holding member 230 and the end current collection member 221. The screw hole may go through the end current collection member 220, or may have a bottom portion without going through the end current collection member 220.
That is, in the cell stack device 200 according to the second modification, the positive electrode terminal 222 is grounded by being connected to the ground potential 31.
With this, as illustrated in
Consequently, in the second modification, there is no potential difference between the positive electrode terminal 222 and the holding member 230 as in the embodiment, which makes it possible to prevent a reduction reaction from occurring in the interface between the fixing material 240 and the holding member 230.
Consequently, according to the second modification, it is possible to reduce the loss of the oxide film on the surface of the holding member 230 in the interface with the fixing material 240. As a consequence, a gap is not easily formed between the fixing material 240 and the holding member 230. That is, according to the second modification, it is possible to improve the durability of the cell stack device 200.
The power system 100A including the cell stack device 200 according to the second modification is not limited to the example in
The example in
Consequently, even in the second modification, as in the first modification described above, an oxidation reaction opposite to a reduction reaction can occur in the interface between the fixing material 240 and the holding member 230. That is, in the example in
Consequently, according to the example in
Furthermore, in the examples in
The remaining parts in the cell stack device 200 illustrated in
The oxygen-containing gas flowing through the oxygen supply manifold is supplied from the communication hole 261 to the air chamber 264 via a flow path (not illustrated) formed in the air-electrode-side frame 204. Furthermore, the oxygen-containing gas discharged from the air chamber 264 flows into the communication hole 262 via a flow path (not illustrated) formed in the air-electrode-side frame 204.
A gas passage member 250 is located at an inlet of the communication hole 261. The gas passage member 250 has a body 251 and a branch part 252, and is interposed between the end current collection member 221 and the nut 232.
A gas passage member 270 is located at an outlet of the communication hole 262. The gas passage member 270 has a body 271 and a branch part 272, and is interposed between the end current collection member 221 and the nut 232.
Although not illustrated in
Moreover, the cell stack device 200 may have a communication hole through which the bolt 231 is not inserted, in addition to a communication hole through which the bolt 231 is inserted. The communication hole through which the bolt 231 is not inserted may function as a gas supply manifold or a gas discharge manifold.
Furthermore, in the aforementioned embodiment, the example in which the cell stacks 11A and 11B in the cell stack device 10 are connected in series has been described; however, the cell stacks 11A and 11B may be connected in parallel to form one battery.
Furthermore, in the aforementioned embodiment, the example in which the holding member 14 is grounded has been described; however, the holding member 14 does not necessarily have to be grounded. Even in such a case, by setting the potential of the positive electrode terminal 19A to be not more than that of the holding member 14, the gap C is not easily formed between the fixing material 13 and the holding body 15, which makes it possible to improve the durability of the cell stack device 10.
As described above, the cell stack device 10 (200) according to the embodiment includes the cell stack 11 (210), the holding member 14 (230), and the positive electrode terminal 19A (222). The cell stack 11 (210) is constructed by stacking the plurality of cells 1 (201). The holding member 14 (230) holds the cells 1 (201). The positive electrode terminal 19A (222) functions as a positive electrode when power generated by the cell stack 11 (210) is output to the outside. Furthermore, the potential of the positive electrode terminal 19A (222) is not more than that of the holding member 14 (230). With this, it is possible to improve the durability of the cell stack device 10 (200).
Furthermore, in the cell stack device 10 (200) according to the embodiment, the positive electrode terminal 19A (222) and the holding member 14 (230) have the same potential. With this, it is possible to improve the durability of the cell stack device 10 (200).
Furthermore, in the cell stack device 10 (200) according to the embodiment, the potential of the positive electrode terminal 19A (222) is lower than that of the holding member 14 (230). With this, it is possible to improve the durability of the cell stack device 10 (200).
Furthermore, in the cell stack device 10 (200) according to the embodiment, the positive electrode terminal 19A (222) is connected to the ground potential 31. In addition, in the cell stack device 10 (200) according to the embodiment, the noise reduction unit 32 that reduces noise is located between the positive electrode terminal 19A (222) and the ground potential 31. With this, the PCS 101 can stably convert DC power into AC power.
Furthermore, the module 80 according to the embodiment is constructed by housing the cell stack device 10 (200) described above in the housing container 81. With this, it is possible to acquire a module 80 having high durability.
Furthermore, the module housing device 90 according to the embodiment is constructed by housing, in an outer case, the module 80 described above and an auxiliary device for operating the module 80. With this, it is possible to acquire a module housing device 90 having high durability.
Noted that the embodiment disclosed herein is exemplary in all respects and not restrictive. Indeed, the aforementioned embodiment can be embodied in a variety of forms. Furthermore, the aforementioned embodiment may be omitted, replaced, or changed in various forms without departing from the scope of the appended claims and the purpose thereof.
Number | Date | Country | Kind |
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JP2019-158561 | Aug 2019 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2020/028911 | 7/28/2020 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2021/039251 | 3/4/2021 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20090004532 | Haltiner, Jr. et al. | Jan 2009 | A1 |
20090301898 | Backhaus-Ricoult | Dec 2009 | A1 |
20110136029 | Shimura et al. | Jun 2011 | A1 |
Number | Date | Country |
---|---|---|
102106024 | Jun 2011 | CN |
2009-158143 | Jul 2009 | JP |
2011-525287 | Sep 2011 | JP |
2012-178968 | Sep 2012 | JP |
2012-178968 | Sep 2012 | JP |
2013-157191 | Aug 2013 | JP |
2019-057407 | Apr 2019 | JP |
2019013269 | Jan 2019 | WO |
WO 2019-013269 | Jan 2019 | WO |
Entry |
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English translation of JP Publication 2019-057407, Apr. 2019. |
Decision to Grant a Patent for the corresponding JP Application No. 2020-566862, dated Aug. 2, 2021, 5 pages. |
Notice of Reasons for Refusal for the corresponding JP Application No. 2020-566862, dated Mar. 9, 2021, 6 pages. |
International Search Report for the corresponding JP Application No. PCT/JP2020/028911 dated Oct. 20, 2020, 2 pages. |
Number | Date | Country | |
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20220271319 A1 | Aug 2022 | US |