Embodiments of the invention relate to a humidifier for a fuel cell device, having a plurality of flow field frames, between each of which there is arranged a humidifier membrane. Embodiments of the invention furthermore relate to a motor vehicle.
Humidifiers are generally used to bring about a transfer of moisture in the case of two gaseous media having a different moisture content to the dryer medium. Such gas/gas-humidifiers find use in particular in fuel cell device in which air with the oxygen contained therein is compressed in the cathode circuit in order to supply the cathode spaces of the fuel cell stack, so that relatively warm and dry compressed air is present whose humidity is not sufficient for use in the fuel cell stacks for the membrane electrode unit. The dry air for the fuel cell stack which is provided by the compressor is humidified by moving it past the membrane, which is permeable to water vapor, the other side of which is swept with the moist exhaust air from the fuel cell stack. For the conditioning of the air being supplied to the cathode spaces of the fuel cell stack a temperature control is also necessary, generally using for this an intercooler positioned downstream from the compressor. The humidifier and the intercooler are large components, contributing to a great increase in the design space required for a fuel cell device and curbing the efficiency of the fuel cell device, since large thermal losses are present.
In US 2015/0004504 A1 there is disclosed an integrated gas management device for a fuel cell, comprising a humidifier and a heat exchanger which is situated at a first end of the humidifier core.
A problem which the present disclosure proposes to solve is to modify a humidifier of the kind mentioned above so that the degree of complexity of a fuel cell system can be reduced. A further problem is to provide an improved motor vehicle.
A humidifier may be characterized in that a plurality of cooling flow field frames formed identical to the flow field frames, between each of which there is arranged a separating plate, form an integrated intercooler. On the one hand, this ensures that the required design space can be significantly decreased, since the intercooler is integrated in the humidifier, i.e., it is assembled together with it. Moreover, besides increasing the degree of integration, the number of identical parts in the overall system of humidifier plus intercooler is also increased, since the cooling flow field frames of the intercooler are formed identical to the flow field frames of the humidifier, i.e., a production of identical parts becomes possible, and only afterwards will the parts be distributed among the humidifier and the intercooler, being then assigned and designated as flow field frames or cooling flow field frames.
A coupling plate may be provided between the flow field frames arranged in a stack and the cooling flow field frames arranged in a stack. The coupling plate provided between the flow field frames and the cooling flow field frames enables an optimization of the flow management in the respective components, so that even though the flow field frames and the cooling flow field frames have an identical layout, they can have different flow rates according to their purpose.
It is then advantageous for the coupling plate flow to be configured free of flow fields and having the identical cross section as the flow field frames and to comprise a continuous dry air line coupling the flow field frames and the cooling flow field frames for the dry air. The identical cross section as the flow field frames and cooling flow field frames ensures that the coupling plate can be integrated in the stack formed by these. It is not necessary to reproduce the thickness of the flow field frames in the case of the coupling plate, beyond maintaining the same cross section; the coupling plate may have a different thickness than the flow field frames, in particular an increased thickness. This is especially convenient in that the coupling plate can then comprise a side coolant port having a coolant line in order to take the coolant to the cooling flow field frames, and the coupling plate comprises a side air exit for the emergence of the moist air after passing through an air line from the flow field frames.
For the functioning of the humidifier it is necessary to arrange a seal on either side of each humidifier membrane. Identically formed seals are also arranged on either side of each separating plate, so that this increases the number of identical parts which are present and advantageous scale effects can be utilized during the production and assembly process.
It is furthermore proposed that the separating plate is formed of a metal or a metal alloy in order to ensure a reliable separation of the flows in the cooling flow field frames with a good heat exchange.
It is also proposed that surface enlarging elements are arranged between the separating plates in the cooling flow field frames for an improved heat transfer, being selected from a group comprising baffle plates and porous fleece.
It is furthermore proposed that shaped or porous regions are provided in the flow field frames and the cooling flow field frames for the flow field duct.
This humidifier with integrated intercooler thus has a modified layout with a large number of identical parts and it is easily possible in particular to use a different number of modules in order to adapt it to the required performance of the humidifier and/or intercooler, the number of flow field frames used being chosen independently of the number of cooling flow field frames in accordance with the needs.
Hence, it is also possible to improve a motor vehicle having a fuel cell device formed with a humidifier of the aforementioned kind, since the design space required for the humidifier with integrated intercooler is decreased and thus design space is freed up in the motor vehicle for further use, and moreover the costs of the motor vehicle are lower, while its efficiency is increased.
Further benefits, features and details are provided in the following description and in the drawings.
In
Fuel cells are used to provide electrical energy in a chemical reaction between a fuel, generally hydrogen, and an oxygen-containing oxidizing agent, generally air. Insofar as the power demand is greater than the power furnished by the fuel cell, the possibility exists of hooking up multiple fuel cells in series to form a fuel cell stack 2, although this increases the demand on the reactants taking part in the chemical reaction and there is a need on the cathode side to compress the cathode gas in a compressor 3. Due to this compression, greatly heated dry cathode gas is present in the cathode feed line 4 after the compressing, which is not suitable for immediate use in the fuel cell stack 2, because a sufficient humidity is required for the proton exchange membrane present in the fuel cell. Therefore, an intercooler 5 is situated in the cathode feed line 4 downstream from the compressor 3 and a humidifier 6 is situated in turn downstream from this, in which the cathode gas is moistened by taking the product water accruing during the chemical reaction through a cathode exhaust gas line 7 to the humidifier 6.
Contrary to the separate providing of a humidifier 6 and an intercooler 5 as is known in the prior art and shown in
The humidifier 6 comprises a plurality of flow field frames 8, the layout of which is shown merely as an example in
The flow relations in the humidifier 6 with integrated intercooler 5 per
The flow relations in the intercooler 5 are also explained schematically in the cube represented in
The moist air from the humidifier 6 enters the coupling plate 12 at 18 and can leave it once more through the side air exit 15.
It is pointed out that the corresponding flow ducts in the humidifier 6 and the intercooler 5 correspond to the corners 23 in the flow field frames 8 and cooling flow field frames 10, from which the flowing media are distributed into the ducts 24 of the flow fields.
It should furthermore be noted that seals not represented in the drawing itself are situated on both sides of each humidifier membrane 9, and identically formed seals are also arranged on both sides of each separating plate 11, i.e., the identical parts are also present in regard to the seals.
The separating plates 11 arranged between the cooling flow field frames 10 consist of a metal or a metal alloy.
In general, in the following claims, the terms used should not be construed to limit the claims to the specific embodiments disclosed in the specification and the claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which such claims are entitled.
Number | Date | Country | Kind |
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10 2018 218 317.1 | Oct 2018 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2019/060408 | 4/24/2019 | WO | 00 |