Fuel cell system
10707500 ยท 2020-07-07
Assignee
Inventors
Cpc classification
H01M8/04201
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
H01M8/04014
ELECTRICITY
International classification
H01M8/04014
ELECTRICITY
H01M8/04082
ELECTRICITY
Abstract
A fuel cell system includes a fuel cell module, auxiliary equipment, a power converter, and a casing containing the fuel cell module, the auxiliary equipment, and the power converter. The casing has a plurality of surfaces including one detachable maintenance surface. Only the maintenance surface has an air intake port for taking an oxygen-containing gas into the casing, an air exhaust port for discharging an exhaust gas discharged from the fuel cell module, to the outside of the casing, and a ventilation inlet port and a ventilation outlet port for ventilation of an inside of the casing by air.
Claims
1. A fuel cell system comprising: a fuel cell module configured to generate electric power by electrochemical reactions of a fuel gas and an oxygen-containing gas; auxiliary equipment as a peripheral device of the fuel cell module; a power converter configured to convert direct-current electric power generated in the fuel cell module into an electric power according to a power supply output specification; and a casing housing the fuel cell module, the auxiliary equipment, and the power converter, wherein the casing has a plurality of surfaces, the surfaces including one maintenance surface, the maintenance surface being one of detachable or openable/closable; only the maintenance surface has: an air intake port configured to take the oxygen-containing gas into the casing; an air exhaust port configured to discharge an exhaust gas discharged from the fuel cell module, to outside of the casing; and a ventilation inlet port and a ventilation outlet port for ventilation of an inside of the casing by air; the casing contains therein: a power converter chamber communicating with the air intake port and containing the power converter; an air intake flow channel configured to allow the oxygen-containing gas introduced from the air intake port into the casing to flow along the power converter provided in the power converter chamber; and a fuel cell module chamber containing the fuel cell module; the power converter chamber is divided by a guide wall plate into: a first area that is provided with the air intake port and extends between the maintenance surface and a back surface of the casing that is opposite to the maintenance surface, and a second area that extends between the maintenance surface and the back surface of the casing, an oxygen-containing gas supply unit is provided in the second area inside the maintenance surface, the oxygen-containing gas supply unit being configured to supply the oxygen-containing gas that has flowed through the air intake flow channel, to an oxygen-containing gas system flow channel of the fuel cell module; the oxygen-containing gas supply unit has a chemical filter; and the power converter chamber and the fuel cell module chamber are separated by a partition plate.
2. The fuel cell system according to claim 1, wherein the air intake flow channel has a serpentine flow channel section, and the serpentine flow channel section is positioned downstream of the power converter in a flow direction of the oxygen-containing gas, and includes a bent or curved portion.
3. The fuel cell system according to claim 1, wherein, in the air intake flow channel, an air intake fan is provided adjacent to an inner side of the back surface of the casing opposite to the maintenance surface.
4. The fuel cell system according to claim 1, wherein the power converter chamber and the fuel cell module chamber are separated vertically by the partition plate; and a communication port is formed in the partition plate on a side opposite to the maintenance surface, the communication port being configured to allow the oxygen-containing gas to flow from the power converter chamber to the fuel cell module chamber.
5. The fuel cell system according to claim 1, wherein the ventilation outlet port is provided above the ventilation inlet port.
6. The fuel cell system according to claim 1, wherein the fuel cell module includes: an output terminal configured to output the generated electric power to the outside; and a bus bar electrically connected to the output terminal, and wherein the output terminal and the bus bar are provided inside the maintenance surface; and a ventilation flow channel is formed, the ventilation flow channel being configured to allow the air introduced at least from the ventilation inlet port into the casing to flow along the bus bar, and then discharge the air to the ventilation outlet port.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5) A fuel cell system 10 according to an embodiment of the present invention shown in
(6) The fuel cell system 10 includes a fuel cell module 12, auxiliary equipment 14, a power converter 16, and a casing 18 housing the fuel cell module 12, the auxiliary equipment 14, and the power converter 16. The fuel cell module 12 performs power generation by electrochemical reaction of a fuel gas (hydrogen gas) and an oxygen-containing gas (air). In the casing 18, as described later, the auxiliary equipment 14, the fuel cell module 12, and the power converter 16 are arranged in the order recited, from the lower side to the upper side.
(7) Though not shown, the fuel cell module 12 includes an electrolyte electrode assembly. The electrolyte electrode assembly includes an anode, a cathode, and an electrolyte interposed between the anode and the cathode. The electrolyte is a solid electrolyte (solid oxide) as an oxide ion conductor made of, e.g., stabilized zirconia. The electrolyte electrode assembly and separators are stacked together to form a solid oxide fuel cell, and a plurality of the fuel cells are stacked together in the vertical direction.
(8) As shown in
(9) The one end of the rectangular bus bar 22a in the longitudinal direction is fixed to the output terminal 20a using a bolt, and the one end of the rectangular bus bar 22b in the longitudinal direction is fixed to the output terminal 20b using a bolt. The other end of the rectangular bus bar 22a in the longitudinal direction is fixed to one end of a wiring line 24a using a bolt, and the other end of the rectangular bus bar 22b is fixed to one end of a wiring line 24b using a bolt. The other end of the wiring line 24a and the other end of the wiring line 24b are electrically connected to the power converter 16 for transmitting electric power.
(10) The auxiliary equipment 14 includes peripheral devices (BOP) of the fuel cell modules 12. Though not shown, the auxiliary equipment 14 includes a reformer, an evaporator, an exhaust gas combustor, a start-up combustor, an air preheater, blowers, pumps, sensors, etc. The reformer performs steam reforming of a raw fuel chiefly containing hydrocarbon (e.g., city gas) to produce a fuel gas supplied to the fuel cell module 12. The evaporator evaporates water to produce water vapor, and supplies the water vapor to the reformer.
(11) The exhaust gas combustor combusts the fuel gas discharged from the fuel cell module 12 as a fuel exhaust gas and the oxygen-containing gas discharged from the fuel cell module 12 as an oxygen-containing exhaust gas, to thereby produce a combustion exhaust gas. The start-up combustor combusts the raw fuel and the oxygen-containing gas to produce a combustion gas. The air preheater heats the oxygen-containing gas by heat exchange with the combustion gas or the fuel exhaust gas, and supplies the heated oxygen-containing gas to the fuel cell module 12.
(12) The power converter (power conditioner) 16 converts direct-current electric power generated in the fuel cell module 12 into an electric power according to a power supply output specification. An alternating-current power can be supplied to the power converter 16 from a system power supply.
(13) The casing 18 includes a plurality of, e.g., six surfaces. One side surface at one end in a direction indicated by an arrow A is a detachable maintenance surface 18a. The maintenance surface 18a is fixed to the casing 18 using a plurality of screw bolts 26. The maintenance surface 18a can open, and close an opening 28. In the casing 18, the auxiliary equipment 14 is provided on the lower side, and the fuel cell module 12 is provided above the auxiliary equipment 14 (on an upper side in the direction indicated by the arrow C). The power converter 16 is provided above the fuel cell module 12. Alternatively, the maintenance surface 18a may be attached to the casing 18 through hinges, etc. so as to be openable and closable.
(14) In the casing 18, only the maintenance surface 18a has an air intake port 32, an air exhaust port 34, a ventilation inlet port 36, and a ventilation outlet port 38. The air intake port 32 includes a plurality of openings for taking the oxygen-containing gas into the casing 18, the openings being arranged in the direction indicated by the arrow C on an upper part of the maintenance surface 18a. The air exhaust port 34 is a single pipe for discharging the exhaust gases (fuel exhaust gas and oxygen-containing exhaust gas) discharged from the fuel cell module 12, to the outside of the casing 18. The air exhaust port 34 is provided at a position shifted downward from the center of the maintenance surface 18a in the height direction.
(15) The ventilation inlet port 36 includes a plurality of inlet openings for ventilation of the inside of the casing 18 by air, the inlet openings being arranged in a direction indicated by an arrow B on a lower part of the maintenance surface 18a. The ventilation outlet port 38 includes a plurality of outlet openings for ventilation of the inside of the casing 18 by air, the outlet openings being arranged in the direction indicated by the arrow B on an upper side of the maintenance surface 18a (below the air intake port 32) in two upper and lower rows.
(16) In the casing 18, the ventilation inlet port 36 and the ventilation outlet port 38 are connected by a duct, and a ventilation fan (not shown) is provided between the ventilation inlet port 36 and the ventilation outlet port 38. A ventilation flow channel 39 is formed in the casing 18. The ventilation flow channel 39 communicates with the ventilation inlet port 36 and the ventilation outlet port 38 and allows air to flow inside the maintenance surface 18a along the rectangular bus bars 22a, 22b (see
(17) As shown in
(18) An air intake fan 46 is attached to the guide wall plate 44, adjacent to the inner side of a back surface 18b opposite to the maintenance surface 18a. The air intake flow channel 42 has a serpentine flow channel section 42s. The serpentine flow channel section 42s is positioned downstream of the power converter 16 in the flow direction of the oxygen-containing gas, i.e., positioned in the area 40b, and includes bent or curved portions.
(19) An oxygen-containing gas supply unit 48 is provided just inside the maintenance surface 18a, for supplying the oxygen-containing gas that has flowed through the air intake flow channel 42, to the oxygen-containing gas system flow channel of the fuel cell module 12. The oxygen-containing gas supply unit 48 has a chemical filter.
(20) A fuel cell module chamber 50 containing the fuel cell module 12 is provided in the casing 18. The power converter chamber 40 and the fuel cell module chamber 50 are separated vertically by a partition plate 52. A plurality of communication ports 52a are formed in the partition plate 52 on a side opposite to the maintenance surface 18a. The oxygen-containing gas flows from the power converter chamber 40 into the fuel cell module chamber 50 through the communication ports 52a.
(21) Operation of the fuel cell system 10 will be described below.
(22) At the time of starting operation of the fuel cell system 10, alternating current electric power is supplied from the system power supply to the power converter 16, and the electric power is supplied to the auxiliary equipment 14. Therefore, a fuel gas produced by steam reforming of a raw fuel such as the city gas (containing CH.sub.4, C.sub.2H.sub.6, C.sub.3H.sub.8, C.sub.4H.sub.10), etc. is supplied to the fuel gas system flow channel of the fuel cell module 12. In the meanwhile, for example, the air as an oxygen-containing gas is supplied to the oxygen-containing gas system flow channel of the fuel cell module 12.
(23) Specifically, as shown in
(24) Therefore, in the electrolyte electrode assembly, power generation is performed by electrochemical reactions of the fuel gas and the air. The direct current voltage outputted from each of the fuel cells is collected from the output terminals 20a, 20b to the rectangular bus bars 22a, 22b, and transmitted to the power converter 16.
(25) In the embodiment of the present invention, as shown in
(26) Further, as shown in
(27) Further, the oxygen-containing gas supply unit 48 is provided inside the maintenance surface 18a, for supplying the air that has flowed through the air intake flow channel 42, to the oxygen-containing gas system flow channel of the fuel cell module 12. In this regard, the oxygen-containing gas supply unit 48 has the chemical filter. Therefore, the chemical filter, which is a part that requires maintenance, is positioned inside the maintenance surface 18a, and thus the maintenance operation of the chemical filter can be performed easily and promptly.
(28) Further, as shown in
(29) Further, in the air intake flow channel 42, the air intake fan 46 is provided adjacent to the inner side of the back surface 18b opposite to the maintenance surface 18a. Therefore, by operation of the air intake fan 46, the air introduced from the air intake port 32 into the casing 18 flows through the air intake flow channel 42, and cools the power converter 16 provided in the power converter chamber 40. Thereafter, the air flows into the serpentine flow channel section 42s. Accordingly, it is possible to reliably cool the power converter 16.
(30) Further, in the casing 18, the fuel cell module chamber 50 containing the fuel cell module 12 is provided, and the power converter chamber 40 and the fuel cell module chamber 50 are separated vertically by the partition plate 52. In this regard, the communication ports 52a are formed in the partition plate 52 on the side opposite to the maintenance surface 18a, for allowing air to flow from the power converter chamber 40 into the fuel cell module chamber 50.
(31) In the structure, when the flow rate of the air supplied to the air intake flow channel 42 is larger than the flow rate of the air (oxygen-containing gas) required for the fuel cell module 12, the excessive air flows through the communication ports 52a of the partition plate 52, and the excessive air is supplied to the fuel cell module chamber 50. Therefore, even if the excessive air is supplied to the air intake flow channel 42, it becomes possible to efficiently use the excessive air as a coolant.
(32) Further, as shown in
(33) Further, as shown in
(34) Further, the ventilation flow channel 39 is formed for allowing the air introduced from the ventilation inlet port 36 into the casing 18 to flow along the rectangular bus bars 22a, 22b, and then discharging the air to the ventilation outlet port 38. In the structure, it becomes possible to easily and reliably cool the rectangular bus bars 22a, 22b heated to high temperature due to high electric current.
(35) While the invention has been particularly shown and described with reference to a preferred embodiment, it will be understood that variations and modifications can be effected thereto by those skilled in the art without departing from the scope of the invention as defined by the appended claims.