FUEL CELL STACK, FUEL CELL AND SHELL
20170324109 ยท 2017-11-09
Assignee
Inventors
Cpc classification
Y02E60/10
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
H01M8/04276
ELECTRICITY
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
H01M8/2459
ELECTRICITY
International classification
Abstract
A fuel cell stack, includes a plurality of fuel cells. Each fuel cell includes a shell, an anode and a cathode mounted in the shell. A liquid storage chamber used for storing electrolyte and a communicating part used for communicating the liquid storage chamber are provided in the shell of each fuel cell. The liquid storage chambers of every two adjacent fuel cells communicate by the communicating part. The liquid storage chambers of every two adjacent fuel cells communicate through the communicating part, so that the electrolyte of each fuel cell can cross flow each other to make the electrolyte of each unit highly consistent. Therefore, the performance parameters of each fuel cell in the same fuel cell stack are basically the same, rendering the working performance of fuel cell stack improved. The present invention also relates to a fuel cell and a shell.
Claims
1. A fuel cell stack, comprising: a plurality of fuel cells; each fuel cell includes a shell, an anode and a cathode mounted in the shell, a liquid storage chamber used for storing electrolyte and a communicating part used for communication between liquid storage chambers are provided in the shell of the each fuel cell; liquid storage chambers of each two adjacent fuel cells communicate through the communicating part.
2. The fuel cell stack of claim 1, wherein an upper communicating port and a lower communicating port used for communication between the liquid storage chambers are provided respectively in an upper end and a lower end of each shell; the upper communicating ports or the lower communicating ports of the each two adjacent shells communicate to each other; the communicating part is the upper communicating port or the lower communicating port.
3. The fuel cell stack of claim 1, wherein a cross-sectional area of the communicating part is 1.1 cm.sup.2 to 3.2 cm.sup.2.
4. The fuel cell stack of claim 2, wherein an upper communicating port of a first fuel cell in the find cell stack is used for filling electrolyte, or a liquid inlet used for filling electrolyte is provided in an upper end of the shell of the first fuel cell.
5. The fuel cell stack of claim 2, wherein an upper communicating port of a last fuel cell in the fuel cell stack is used for discharging gas, or a discharged outlet used for discharging gas is provided in an upper end of the shell of the last fuel cell.
6. The fuel cell stack of claim 1, wherein a cathode accommodating part used for mounting the cathode is provided in each shell, an anode accommodating part used for mounting the anode is provided in the each shell, and the liquid storage chamber is located between the cathode accommodating part and the anode accommodating part.
7. The fuel cell stack of claim 1, wherein the anode includes an anode plate and an anode support; the anode support is provided on the upper end of the anode plate for fixing the anode plate inside the shell; the anode is flat shaped.
8. A fuel cell, comprising: a shell, an anode and a cathode mounted in the shell, a liquid storage chamber used for storing electrolyte and a communicating part used for communication between liquid storage chambers are provided in the shell; the communicating part is used for communication between the liquid storage chambers of adjacent fuel cells.
9. The fuel cell of claim 8, wherein two upper communicating ports respectively provided on two sides of the anode are provided in an upper end of the shell; the communicating part includes two upper communicating ports; an cross-sectional area of the communicating part is 1.1 cm.sup.2 to 3.2 cm.sup.2.
10. A fuel cell shell, comprising: a liquid storage chamber used for storage electrolyte and a communicating pan used for communication between liquid storage chambers in the shell; the communicating part is used fin communication between the liquid storage chambers of adjacent fuel cells.
11. The fuel cell stack of claim 3, wherein the upper communicating port of a first fuel cell in the fuel cell stack is used for filling electrolyte, or a liquid inlet used for tilling electrolyte is provided in an upper end of the shell of the first fuel cell.
12. The fuel cell stack of claim 3, wherein an upper communicating port of a last fuel cell in the fuel cell stack is used for discharging gas, or a discharged outlet used for discharging gas is provided in an upper end of the shell of the last fuel cell.
13. The fuel cell of claim 8, wherein an upper communicating port and a lower communicating port are provided in an upper end and a lower end of the shell; the communicating part is the upper communicating port or the lower communicating port; a cross-sectional area of the communicating part is 1.1 cm.sup.2 to 3.2 cm.sup.2.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] The present invention will be further described, in combination with the drawings and specific embodiments:
[0031] Referring to
[0032] Each fuel cell 10 includes a shell, anode 20 and cathode 30 mounted in the shell. Liquid storage chamber 11 that is used for storing electrolyte and a communicating part used for communication between liquid storage chambers 11 are provided in the shell of each fuel cell 10. Liquid storage chambers 11 of two adjacent fuel cells 10 are communicate through the communicating part, so that the electrolyte of each fuel cell 10 can cross flow to reach the reaction heat balance of the electrolyte. Therefore, the performance parameters of each fuel cell in one fuel cell stack are the consistent, optimizing the work performance of the fuel cell stack.
[0033] Referring to
[0034] In this way, the electrolyte can flow from liquid storage chamber 11 of first fuel cell 10 into liquid storage chamber 11 of second fuel cell 10, through lower communicating port 14 or upper communicating port 13 of first fuel cell 10 and lower communicating port 14 or upper communicating port 13 of second fuel cell 10. Then the electrolyte flows through lower communicating port 14 or upper communicating port 13 of second fuel cell 10 into liquid storage chamber 11 of third fuel cell 10, through lower communicating port 14 or upper communicating port 13 of third fuel cell 10, rendering the reaction heat balance effect of the electrolyte of each fuel cell 10 better.
[0035] Anode limiting slot 16 is also provided in the shell, used for limiting the position of the anode.
[0036] Referring to
[0037] Upper communicating port 13 and lower communicating port 14 of each two adjacent shells can directly communicate or communicate through a delivery pipe.
[0038] The number of upper communicating port 13 and lower communicating port 14 can be one or more.
[0039] Preferably, a cross-sectional area of the communicating part is 1.1 cm.sup.2 to 3.2 cm.sup.2. In this way, the value of the by-pass current between two adjacent fuel cells 10 can be 0.1 A to 2 A, so that the work performance of the fuel cell stack is better.
[0040] Referring to
[0041] In this embodiment, upper communicating port 13 of the last fuel cell 10 in the fuel cell stack is used for discharging gas. The gas generated from the chemical reaction of each fuel cell 10 is collected together and discharged through upper communicating port 13 of the last fuel cell 10, which simplifies the structure of the fuel cell stack. It can also ensure that the decompression effect and reaction effect of each fuel cell 10 are consistent. Besides, when the fuel cell stack fails due to the incidence, upper communicating port 13 of the last fuel cell 10 can be used for discharging the electrolyte, so that the chemical reaction will stop to avoid the damage of the fuel cell stack. In other embodiments, a discharged outlet used for discharging gas is provided on an upper end of the last fuel cell 10.
[0042] In other embodiments, two upper communicating ports respectively on two sides of the anode are provided on the upper end of each shell. The liquid storage chambers of each two adjacent shells communicate through the upper communicating ports, and then the flowing direction of the electrolyte in each fuel cell is that the electrolyte flows into each fuel cell from top to bottom while the electrolyte flows out of each fuel cell from bottom to top.
[0043] Referring to
[0044] Preferably, liquid through hole 23 is provided in anode support 22, and liquid through hole 23 communicates to liquid inlet 19 of the shell.
[0045] Preferably, anode 20 is aluminium-magnesium alloy, and the cathode is air electrode. The electrolyte is neutral electrolyte solution.
[0046] For the ordinary skilled person in the art, various modifications and transformations based on the described technical solution and concept are within the scope of the claimed present invention.