Technical Field
[0001] The present invention relates to fuel cells and is particularly concerned with the
fuel supply to a fuel cell electrical power generating system.
Background Art
[0002] Fuel cells convert gaseous fuels (such as hydrogen, natural gas and gasified coal)
via an electrochemical process directly into electricity. A fuel cell continuously
produces power when supplied with fuel and oxidant, normally air. A typical fuel cell
consists of an electrolyte (ionic conductor, H
+, O
2-, CO
32- etc.) in contact with two electrodes (mainly electronic conductors). On shorting
the cell through an external load, fuel oxidises at the anode resulting in the release
of electrons which flow through the external load and reduce oxygen at the cathode.
The charge flow in the external circuit is balanced by ionic current flows within
the electrolyte. Thus, at the cathode oxygen from the air or other oxidant is dissociated
and converted to oxygen ions which migrate through the electrolyte membrane and react
with the fuel at the anode/electrolyte interface. The voltage from a single cell under
load conditions is in the vicinity of 0.6 to 1.0 V DC and current densities in the
range 100 to 1000 mAcm
-2 can be achieved.
[0003] Several different types of fuel cells have been proposed. Amongst these, the solid
oxide fuel cell (SOFC) is regarded as the most efficient and versatile power generation
system, in particular for dispersed power generation, with low pollution, high efficiency,
high power density and fuel flexibility. SOFC's operate at elevated temperatures,
for example 700 - 1000°C. Other fuel cells which operate at elevated temperatures
include the molten carbonate fuel cell requiring a minimum temperature of 650°C. However,
SOFC's are the primary interest for the invention and further discussion herein will
be mainly directed to these without intending to be limited in any way.
[0004] Numerous SOFC configurations are under development, including the tubular, the monolithic
and the planar design. The planar or flat plate design is the most widely investigated.
Single planar SOFC's are connected via interconnects or gas separators to form multi-cell
units, sometimes termed fuel cell stacks. Gas flow paths are provided between the
gas separators and respective electrodes, for example by providing gas flow channels
in the gas separators. In a fuel cell stack the components - electrolyte/electrode
laminates and gas separator plates are fabricated individually and then stacked together.
With this arrangement, external and internal co-flow, counter-flow and cross-flow
manifolding options are possible for the gaseous fuel and oxidant.
[0005] Traditionally hydrogen, usually moistened with steam, has been used as a fuel cell
fuel. However, in order to be economically viable the fuel must be as cheap as possible.
One relatively cheap source of hydrogen is natural gas, primarily methane with a small
proportion of heavy hydrocarbons (C
2+). Natural gas is commonly converted to hydrogen in a steam reforming reaction, but
the reaction is endothermic and, because of the stability of methane, requires a reforming
temperature of at least about 650°C for substantial conversion and a higher temperature
for complete conversion. While high temperature fuel cell systems produce heat which
must be removed, heat exchangers capable of transferring thermal energy at the required
level of at least about 650°C from the fuel cells to a steam reformer are expensive.
Thus, hydrogen produced by steam reforming natural gas may not be a cheap source of
fuel.
[0006] One proposal of a fuel cell electricity generation process in which a hydrocarbon
fuel is converted to a fuel cell fuel stream including hydrogen in a steam pre-reformer
is disclosed in
EP-A-0435724. The temperature in the pre-reformer is described as 700 to 850°C with a resultant
product-gas composition of 65-80 vol%H
2, 5-20 vol% CO, and 5-25 vol% CO
2.
[0007] Another such proposal is disclosed in
US-A- 5,302,470 in which the steam pre-reforming reaction is said to be carried out under similar
conditions to those of known steam reforming reactions: for example, an inlet temperature
of about 450 to 650°C, an outlet temperature of about 650 to 900°C, and a pressure
of about 0 to 10 kg/cm
2.G to produce a fuel cell fuel stream which is composed mainly of hydrogen and is
fed to the fuel cell anode via a carbon monoxide shift converter.
[0008] Hydrocarbon fuels suggested for use in the above two proposals include, in addition
to natural gas, methanol, kerosene, naphtha, LPG and town gas.
[0009] It has been proposed to alleviate the aforementioned problem of the cost of substantially
complete steam pre-reforming of methane by using natural gas as a fuel source for
a high temperature planar fuel cell stack and subjecting the natural gas to steam
reforming within the stack, at a temperature of at least about 650°C, using catalytically
active anodes. However, given the endothermic nature of the methane steam reforming
reaction, too much methane in the fuel stream can lead to excessive cooling of the
fuel cell stack. To alleviate this problem the fuel stream has been restricted to
a maximum of about 25% methane with the natural gas being subjected to partial steam
pre-reforming at elevated temperatures approaching 700°C upstream of the fuel cell
stack.
[0010] Another process for producing electricity in a fuel cell from hydrocarbon fuels such
as gasified coal, natural gas, propane, naphtha or other light hydrocarbons, kerosene,
diesel or fuel oil is described in
EP-A-0673074. As described in that specification, the process involves steam pre-reforming approximately
5 to 20% of the hydrocarbon fuel at a temperature of at least 500°C after start-up
to convert ethane and higher hydrocarbons in that fraction to methane, hydrogen and
oxides of carbon and to achieve a measure of methane pre-reforming in that fraction
to oxides of carbon and hydrogen. Steam pre-reforming at this lower temperature alleviates
carbon deposition in the pre-reformer. The hydrocarbon fuel with the steam pre-reformed
fraction is then supplied to fuel inlet passages of the fuel cell stack which are
coated with or contain a catalyst for steam reforming of the methane and remaining
hydrocarbon fuel at 700-800°C into hydrogen and oxides of carbon which are supplied
to the anodes in the fuel cell stack.
[0011] Indirect internal steam reforming of the remaining hydrocarbon fuel within the fuel
inlet passages is said to allow the use of reforming catalysts within the fuel inlet
passages which are less likely to produce coking or carbon deposits from the internal
steam reforming of the higher hydrocarbons than nickel cermet anodes. It is believed
that steam pre-reforming of the hydrocarbon fuel in the described temperature range
is restricted to 5 to 20% of the fuel in order to relatively increase the level of
hydrogen in the fuel stream to the fuel cell stack and thereby alleviate carbon deposition
when the fuel is internally reformed in the stack.
[0012] US 5,302,470 describes a fuel cell system in which raw fuel is desulfurised over a copper/zinc
desulfurisation catalyst. A hydrocarbon fuel stream is subjected to steam reforming
to provide a fuel stream that has a high hydrogen content and very low methane content.
[0013] EP 0673074 describes a solid oxide fuel cell system in which a hydrocarbon fuel is processed
using a steam pre-reformer such that approximately 5-20% of the hydrocarbon fuel is
reformed to hydrogen, methane and oxides of carbon. The output of the pre-reformer
is then subjected to a second reforming stage in which hydrocarbon fuel is reformed
completely to form hydrogen and oxides of carbon.
Summary of the Invention
[0014] According to the present invention there is provided a process for producing electricity
in a high temperature solid oxide fuel cell that is operated at a temperature of at
least 700°C and that is adapted to carry out internal steam reforming of methane on
an anode of the fuel cell to produce hydrogen and oxides of carbon, which process
comprises reacting a higher carbon (C
2+) hydrocarbon fuel with steam in a steam pre-reformer at a temperature in the pre-reformer
of no greater than 500°C and at a steam to carbon ratio that is no greater than 2.5
in order to produce a fuel stream including hydrogen and no less than about 20% by
volume methane measured on a wet basis, and supplying the fuel stream and an oxidant
to the fuel cell, wherein internal reforming of methane is carried out on an anode
of the fuel cell and electricity is produced by reacting the fuel stream at an anode
of the fuel cell and reacting the oxidant at a cathode of the fuel cell.
[0015] By the present invention, a substantially wider source of fuel may be used for the
fuel cell than just methane and/or hydrogen, including ethane and liquid higher hydrocarbons
such as propane, butane, liquefied petroleum gas (LPG), gasoline (petrol), diesel,
kerosene, fuel oil, jet oil, naphtha and mixtures of these, while a lower temperature
of no greater than 500°C may be used for steam pre-reforming the higher hydrocarbon
fuel source since there is no requirement to reform any methane in the steam pre-reformer.
This permits a relatively small pre-reformer reactor to be used which, combined with
the reduced maximum operating temperature of 500°C, enables a simplified and therefore
cheaper pre-reformer system to be adopted. Such low temp steam pre-reforming also
alleviates carbon deposition in the pre-reformer.
[0016] Steam pre-reforming is conveniently performed at atmospheric pressure, but higher
pressures may be adopted if desired, for example up to 10 kgcm
-2G.
[0017] The fuel source may include non-higher hydrocarbons, such as methane, but preferably
the higher hydrocarbons form the major component of the fuel source. The preferred
fuel is selected from LPG, gasoline (petrol) and diesel.
[0018] Steam pre-reforming of the higher hydrocarbon fuel source is preferably performed
at a temperature no greater than about 450°C, more preferably in a range of about
250 to 450°C, and, depending upon the fuel and other process parameters, most preferably
in a range of about 300 to 400°C.
[0019] The relatively low maximum temperature in the steam pre-reformer tends to favour
methane formation over the reforming catalyst in the reactions:

[0020] Thus, methane is formed by steam reforming of the higher hydrocarbons to form carbon
monoxide, carbon dioxide and hydrogen followed by further reaction to methane. The
overall steam pre-reforming process may therefore be considered at least in part as
a methane generation process.
[0021] In one embodiment, at 300 to 400°C propane, C
3H
8, the principal component of LPG, may be steam pre-reformed to CH
4, CO, CO
2 and H
2. The CH
4 in this fuel stream is then internally reformed within the fuel cell in the presence
of steam during the oxidation reaction at the anode to produce a waste stream of CO
2 and H
2O. The temperature in the SOFC is at least 700°C to ensure substantially complete
reforming of the methane.
[0022] Generally, the steam pre-reforming process will be carried out such that the C
2+ hydrocarbon fuel is resident over the reforming catalyst for a sufficient time to
ensure at least substantially complete conversion of the C
2+ hydrocarbons, for example to less than about 0.1 % by volume in the fuel stream from
the pre-reformer. This alleviates deposition of carbon on the anode when heavier hydrocarbons
are reformed on the anode. However, some C
2+ hydrocarbons may be present in the fuel stream and preferably there is 97.5% or greater
conversion of the C
2+ hydrocarbons in the steam pre-reforming. More preferably, there is no more than about
0.5 vol% C
2+ hydrocarbons present in the fuel stream to the anode measured on a water basis. It
is believed that reacting a fuel stream containing a substantial proportion of methane
at the anode can produce higher voltages from the fuel cell than reacting hydrogen
alone, and thereby improve the efficiency of the fuel cell.
[0023] Generally the methane content of the fuel stream will be at least 25% by volume,
more preferably at least about 40% by volume, even more preferably at least about
50% by volume, and most preferably at least about 60% by volume, measured on a wet
basis. In a preferred embodiment, other than possibly moisture, CH
4 forms the major component of the fuel stream to the fuel cell.
[0024] These levels of methane have the potential to cause excessive cooling of the fuel
cell as a result of the endothermic methane internal steam reforming reaction. This
problem is particularly likely to be encountered in a wholly ceramic SOFC fuel cell
stack due to the low thermal conductivity of ceramic materials, but can be alleviated
by incorporating metal or metallic components in the fuel cell stack, for example
as the gas separators between individual fuel cells, to improve the thermal conductivity
across the stack. Alternatively, or in addition, other means may be provided to alleviate
excessive cooling at the fuel entry edge of each fuel cell assembly, including preheating
of the fuel stream.
[0025] Advantageously, in the process of the invention waste heat from the fuel cell is
recycled to the steam pre-reformer, which is preferably operated adiabatically. Since
the pre-reformer is only required to operate at a maximum temperature of 500°C, any
heat exchanger transferring the waste heat to the reformer may be of relatively simple
construction and be formed of relatively low-cost materials.
[0026] A variety of different steam reformers have been proposed and any of these may be
adopted for the pre-reformer, bearing in mind the maximum operating temperature of
500°C, and the fact that the pre-reformer is effectively acting as a methane generator.
The common pre-reformer catalyst is nickel-based, but may comprise, for example, platinum,
rhodium, other precious metal, or a mixture of any of these.
[0027] Generally, the heavy hydrocarbon fuel will pass through a desulphurising step upstream
of the steam pre-reformer in order to alleviate sulphur poisoning the pre-reformer
catalyst and/or the anode. Desulphurising of heavy hydrocarbon fuels is well known
and will not be described further herein.
[0028] Preferably, the anode in the fuel cell comprises a nickel material, such as a nickel/zirconia
cermet, which is used to catalyse the reforming reaction in the fuel cell. The fuel
cell and its associated assembly can take any suitable form provided it operates at
a temperature of at least 650°C to provide at least substantial conversion of the
methane in the internal reforming reaction. By way of example only, several different
planar SOFC components and systems, SOFCs and materials are described in our International
Patent Applications
WO 9628855,
WO 9735349,
WO 9857384,
WO 9913522 and
WO 9925890. Other disclosures appear in our International patent applications
WO 0040520,
WO 0075389 and
WO 0076015.
[0029] Generally, the fuel cell to which the fuel stream is supplied will be one of multiple
fuel cells to which the fuel stream is also supplied, commonly called a fuel cell
stack in the case of planar SOFCs. However, the invention also extends to the process
being performed using a single fuel cell.
[0030] Commonly, steam reforming of hydrocarbons is carried out at a steam to carbon (S/C)
ratio of greater than 2. In the present invention, this however would result in significant
dilution of the fuel with steam and thus reduction in the fuel value. For example,
for butane (C
4H
10), eight volume parts of steam must be added to one volume part of fuel for an S/C
ratio of 2. For diesel (C
10), twenty parts of steam must be added to one part of fuel to achieve an S/C ratio
of 2, with the result that there is strong fuel dilution, leading to inefficient electricity
production. Preferably therefore, the S/C ratio in the pre-reformer is below 1.5,
more preferably below 1.25 and most preferably below 1.
[0031] Potential carbon deposition problems at the proposed low steam to carbon ratios are
alleviated by the mild conditions (temperature no greater than 500°C) used in the
pre-reformer. If pre-reforming is carried out at very low steam to carbon ratios,
additional steam may be introduced to the fuel stream entering the fuel cell. Advantageously,
the addition of steam may be provided by recycling some of the anode exhaust stream.
[0032] The advantages of a relatively low S/C ratio and a relatively low temperature in
the pre-reformer may be seen from the thermodynamic equilibrium molar compositions
of LPG and gasoline reformed at the identified maximum temperatures given in Tables
1 and 2, respectively, in which S/C is the steam to hydrocarbon carbon ratio. For
example, S/C equals 1.0 is equivalent to 3.15 moles of steam for every mole of LPG
or to 7.93 moles of steam for every mole of gasoline.
TABLE 1
| Molar Compositions of Reformed LPG (Assumed to be 85% propane and 15% butane) |
| Temp. |
200°C |
250°C |
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
| CH4 |
0.7133 |
0.4965 |
0.3807 |
0.3085 |
0.2591 |
0.7091 |
0.4909 |
0.3749 |
0.3028 |
0.2536 |
| C2+ |
4.0E-06 |
1.1E-06 |
5.7E-07 |
2.4E-08 |
3.1E-12 |
6.9E-06 |
1.9E-06 |
9.8E-07 |
8.8E-08 |
3.1E-12 |
| H2O |
0.1347 |
0.3923 |
0.5306 |
0.6169 |
0.6759 |
0.1310 |
0.3845 |
0.5206 |
0.6057 |
0.6637 |
| H2 |
0.0041 |
0.0069 |
0.0080 |
0.0086 |
0.0090 |
0.0107 |
0.0182 |
0.0210 |
0.0224 |
0.0234 |
| CO |
3.2E-05 |
1.3E-05 |
8.9E-06 |
6.6E-06 |
5.3E-06 |
0.0002 |
8.7E-05 |
5.8E-05 |
4.4E-05 |
3.6E-05 |
| CO2 |
0.1479 |
0.1042 |
0.0807 |
0.0660 |
0.0560 |
0.1490 |
0.1064 |
0.0834 |
0.0690 |
0.0592 |
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
| Temp. |
300°C |
350°C |
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
| CH4 |
0.7007 |
0.4797 |
0.3635 |
0.2918 |
0.2430 |
0.6855 |
0.4606 |
0.3448 |
0.2738 |
0.2258 |
| C2+ |
1.1E-05 |
3.0E-06 |
1.5E-06 |
9.1E-07 |
3.1E-12 |
1.6E-05 |
4.3E-06 |
2.1E-06 |
1.3E-06 |
3.0E-12 |
| H2O |
0.1239 |
0.3691 |
0.5013 |
0.5839 |
0.6405 |
0.1127 |
0.3437 |
0.4694 |
0.5486 |
0.6031 |
| H2 |
0.0238 |
0.0403 |
0.0463 |
0.0493 |
0.0510 |
0.0458 |
0.0772 |
0.0880 |
0.0930 |
0.0956 |
| CO |
0.0010 |
0.0004 |
0.0003 |
0.0002 |
0.0002 |
0.0040 |
0.0017 |
0.0012 |
0.0009 |
0.0008 |
| CO2 |
0.1506 |
0.1105 |
0.0886 |
0.0748 |
0.0653 |
0.1520 |
0.1168 |
0.0966 |
0.0837 |
0.0747 |
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
| Temp. |
400°C |
|
|
|
|
450°C |
|
|
|
|
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
| CH4 |
0.6602 |
0.4318 |
0.3172 |
0.2478 |
0.2013 |
0.6196 |
0.3919 |
0.2804 |
0.2139 |
0.1699 |
| C2+ |
2.3E-05 |
5.8E-06 |
2.8E-06 |
1.6E-06 |
2.9E-12 |
2.9E-05 |
7.2E-06 |
3.3E-06 |
2.8E-12 |
2.8E-12 |
| H2O |
0.0981 |
0.3076 |
0.4243 |
0.4989 |
0.5510 |
0.0824 |
0.2627 |
0.3683 |
0.4375 |
0.4869 |
| H2 |
0.0783 |
0.1307 |
0.1475 |
0.1547 |
0.1579 |
0.1228 |
0.1995 |
0.2229 |
0.2318 |
0.2349 |
| CO |
0.0131 |
0.0058 |
0.0041 |
0.0032 |
0.0027 |
0.0352 |
0.0166 |
0.0119 |
0.0096 |
0.0082 |
| CO2 |
0.1503 |
0.1242 |
0.1069 |
0.0954 |
0.0871 |
0.1399 |
0.1292 |
0.1165 |
0.1072 |
0.1001 |
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
| Temp. |
500°C |
|
|
|
|
550°C |
|
|
|
|
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
| CH4 |
0.5584 |
0.3395 |
0.2343 |
0.1727 |
0.1325 |
0.4784 |
0.2744 |
0.1797 |
0.1257 |
0.0913 |
| C2+ |
3.3E-05 |
7.9E-06 |
3.4E-06 |
1.8E-06 |
2.6E-12 |
3.3E-05 |
7.5E-06 |
2.9E-06 |
1.4E-06 |
2.4E-12 |
| H2O |
0.0671 |
0.2137 |
0.3062 |
0.3698 |
0.4171 |
0.0511 |
0.1652 |
0.2446 |
0.3031 |
0.3492 |
| H2 |
0.1816 |
0.2802 |
0.3091 |
0.3186 |
0.3203 |
0.2544 |
0.3680 |
0.3993 |
0.4070 |
0.4053 |
| CO |
0.0772 |
0.0407 |
0.0300 |
0.0243 |
0.0207 |
0.1361 |
0.0832 |
0.0632 |
0.0517 |
0.0438 |
| CO2 |
0.1157 |
0.1259 |
0.1204 |
0.1146 |
0.1094 |
0.0800 |
0.1092 |
0.1132 |
0.1125 |
0.1103 |
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
| Temp. |
600°C |
|
|
|
|
700°C |
|
|
|
|
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
1.0 |
1.5 |
2.0 |
2.5 |
|
| CH4 |
0.3942 |
0.2018 |
0.1211 |
0.0776 |
0.0515 |
0.0825 |
0.0314 |
0.0142 |
0.0072 |
|
| C2+ |
3.1E-05 |
5.9E-06 |
2.0E-06 |
2.3E-12 |
2.3E-12 |
2.0E-06 |
3.5E-12 |
2.0E-12 |
2.1E-12 |
|
| H2O |
0.0334 |
0.1206 |
0.1896 |
0.2455 |
0.2932 |
0.0533 |
0.1185 |
0.1845 |
0.2456 |
|
| H2 |
0.3318 |
0.4563 |
0.4850 |
0.4869 |
0.4778 |
0.5955 |
0.6031 |
0.5773 |
0.5438 |
|
| CO |
0.1970 |
0.1401 |
0.1100 |
0.0902 |
0.0756 |
0.2395 |
0.1949 |
0.1561 |
0.1260 |
|
| CO2 |
0.0435 |
0.0812 |
0.0943 |
0.0997 |
0.1018 |
0.02925 |
0.0521 |
0.0679 |
0.0774 |
|
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
|
| Temp. |
700°C (cont.) |
|
750°C |
|
|
|
|
|
|
|
| S/C |
3.0 |
3.5 |
1.0 |
1.5 |
2.0 |
2.5 |
3.0 |
3.5 |
|
| CH4 |
0.0040 |
0.0023 |
0.0486 |
0.0118 |
0.0045 |
0.0021 |
0.0011 |
0.0007 |
|
| C2+ |
2.2E-12 |
2.2E-12 |
1.4E-11 |
1.9E-12 |
2.0E-12 |
2.1E-12 |
2.2E-12 |
2.2E-12 |
|
| H2O |
0.3005 |
0.3492 |
0.0331 |
0.1054 |
0.1798 |
0.2459 |
0.3033 |
0.3533 |
|
| H2 |
0.5099 |
0.4781 |
0.6362 |
0.6265 |
0.5865 |
0.5456 |
0.5083 |
0.4746 |
|
| CO |
0.1030 |
0.0855 |
0.2666 |
0.2158 |
0.1708 |
0.1374 |
0.1125 |
0.0937 |
|
| CO2 |
0.0826 |
0.0849 |
0.0155 |
0.0405 |
0.0584 |
0.0690 |
0.0748 |
0.0777 |
|
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
|
TABLE 2
| Molar Compositions of Reformed Gasoline (Assumes 93% C8H18 n-Octane and 7% C6H12: CH2 (Anti-Knock Agent)) |
| Temp. |
200°C |
|
|
|
|
250°C |
|
|
|
|
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
| CH4 |
0.7361 |
0.5000 |
0.3786 |
0.3046 |
0.2548 |
0.7320 |
0.4919 |
0.3701 |
0.2962 |
0.2466 |
| C2+ |
7.2E-06 |
1.3E-06 |
4.9E-07 |
3.4E-07 |
1.4E-07 |
1.3E-05 |
2.2E-06 |
1.0E-06 |
3.2E-12 |
3.2E-12 |
| H2O |
0.0554 |
0.3584 |
0.5142 |
0.6092 |
0.6731 |
0.0523 |
0.3476 |
0.4998 |
0.5925 |
0.6550 |
| H2 |
5.5E-11 |
5.1E-11 |
5.0E-11 |
4.9E-11 |
4.8E-11 |
0.0063 |
0.0160 |
0.0191 |
0.0207 |
0.0217 |
| CO |
6.5E-05 |
1.7E-05 |
1.2E-05 |
8.3E-06 |
7.1E-06 |
0.0004 |
0.0001 |
7.3E-05 |
5.5E-05 |
4.4E-05 |
| CO2 |
0.2084 |
0.1416 |
0.1072 |
0.0862 |
0.0721 |
0.2090 |
0.1444 |
0.1109 |
0.095 |
0.0767 |
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
| Temp. |
300°C |
|
|
|
|
350°C |
|
|
|
|
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
| CH4 |
0.7262 |
0.4819 |
0.3598 |
0.2861 |
0.2367 |
0.7144 |
0.4644 |
0.3422 |
0.2691 |
0.2204 |
| C2+ |
2.0E-05 |
3.4E-06 |
1.6E-06 |
9.5E-07 |
3.1E-12 |
3.0E-05 |
4.9E-06 |
2.3 E-06 |
1.3E-06 |
3.1E-12 |
| H2O |
0.0491 |
0.3343 |
0.4822 |
0.5724 |
0.6333 |
0.0449 |
0.3122 |
0.4530 |
0.5393 |
0.5978 |
| H2 |
0.0139 |
0.0357 |
0.0424 |
0.0457 |
0.0476 |
0.0271 |
0.0690 |
0.0814 |
0.0871 |
0.0902 |
| CO |
0.0021 |
0.0006 |
0.0004 |
0.0003 |
0.0002 |
0.0081 |
0.0022 |
0.0014 |
0.0011 |
0.0009 |
| CO2 |
0.2087 |
0.1475 |
0.1152 |
0.0955 |
0.0822 |
0.2055 |
0.1522 |
0.1220 |
0.1034 |
0.0907 |
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
| Temp. |
400°C |
|
|
|
|
450°C |
|
|
|
|
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
| CH4 |
0.6911 |
0.4374 |
0.3158 |
0.2441 |
0.1968 |
0.6486 |
0.3986 |
0.2800 |
0.2111 |
0.1661 |
| C2+ |
4.0E-05 |
6.6E-06 |
2.9E-06 |
1.7E-06 |
3.0E-12 |
4.8E-05 |
8.1E-06 |
3.5E-06 |
1.9E-06 |
1.1E-06 |
| H2O |
0.0415 |
0.2805 |
0.4109 |
0.4921 |
0.5477 |
0.0399 |
0.2409 |
0.3579 |
0.4328 |
0.4855 |
| H2 |
0.0483 |
0.1181 |
0.1380 |
0.1465 |
0.1505 |
0.0824 |
0.1826 |
0.2108 |
0.2218 |
0.2260 |
| CO |
0.0247 |
0.0072 |
0.0048 |
0.0037 |
0.0031 |
0.0592 |
0.0202 |
0.0137 |
0.0107 |
0.0089 |
| CO2 |
0.1944 |
0.1568 |
0.1305 |
0.1136 |
0.1019 |
0.1699 |
0.1577 |
0.1376 |
0.1236 |
0.1135 |
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
| Temp. |
500°C |
|
|
|
|
550°C |
|
|
|
|
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
| CH4 |
0.5830 |
0 3461 |
0.2342 |
0.1703 |
0.1293 |
0.4996 |
0.2794 |
0.1793 |
0.1234 |
0.0885 |
| C2+ |
4.9E-05 |
8.9E-06 |
3.6E-06 |
1.8E-06 |
1.0E-06 |
4.5E-05 |
8.3E-06 |
3.1E-06 |
1.4E-06 |
7.3E-07 |
| H2O |
0.0382 |
0.1975 |
0.2989 |
0.3671 |
0.4170 |
0.0329 |
0.1544 |
0.2402 |
0.3023 |
0.3507 |
| H2 |
0.1342 |
0.2597 |
0.2951 |
0.3072 |
0.3104 |
0.2032 |
0.3455 |
0.3842 |
0.3949 |
0.3944 |
| CO |
0.1135 |
0.0481 |
0.0336 |
0.0266 |
0.0222 |
0.1793 |
0.0957 |
0.0694 |
0.0554 |
0.0462 |
| CO2 |
0.1311 |
0 1486 |
0.1382 |
0.1288 |
0.1211 |
0.0849 |
0.1250 |
0.1269 |
0.1240 |
0.1202 |
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
| Temp. |
600°C |
|
|
|
|
700°C |
|
|
|
|
| S/C |
0.5 |
1.0 |
1.5 |
2.0 |
2.5 |
1.0 |
1.5 |
2.0 |
2.5 |
|
| CH4 |
0.4156 |
0.2048 |
0.1201 |
0.0755 |
0.0492 |
0.0831 |
0.0302 |
0.0133 |
0.0066 |
|
| C2+ |
4.1E-05 |
6.3E-06 |
2.0E-06 |
7.9E-07 |
2.3E-12 |
2.1E-06 |
9.1E-12 |
2.1E-12 |
2.2E-12 |
|
| H2O |
0.0227 |
0.1142 |
0.1875 |
0.2464 |
0.2962 |
0.0515 |
0.1197 |
0.1886 |
0.2520 |
|
| H2 |
0.2776 |
0.4336 |
0.4696 |
0.4740 |
0.4659 |
0.5744 |
0.5872 |
0.5620 |
0.5286 |
|
| CO |
0.2409 |
0.1568 |
0.1188 |
0.0954 |
0.0788 |
0.2594 |
0.2058 |
0.1621 |
0.1291 |
|
| CO2 |
0.0432 |
0.0906 |
0.1040 |
0.1087 |
0.1099 |
0.0316 |
0.0571 |
0.0740 |
0.0837 |
|
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
|
| Temp. |
700°C (cont.) |
|
750°C |
|
|
|
|
|
|
|
| S/C |
3.0 |
3.5 |
1.0 |
1.5 |
2.0 |
2.5 |
3.0 |
3.5 |
|
| CH4 |
0.0036 |
0.0021 |
0.0488 |
0.0112 |
0.0042 |
0.0019 |
0.0010 |
0.0006 |
|
| C2+ |
2.2E-12 |
2.3E-12 |
1.1E-06 |
1.3E-10 |
2.0E-12 |
2.1E-12 |
2.2E-12 |
2.3E-12 |
|
| H2O |
0.3085 |
0.3583 |
0.0322 |
0.1078 |
0.1851 |
0.2532 |
0.3120 |
0.3630 |
|
| H2 |
0.4947 |
0.4629 |
0.6157 |
0.6095 |
0.5699 |
0.5294 |
0.4922 |
0.4588 |
|
| CO |
0.1045 |
0.0861 |
0.2866 |
0.2268 |
0.1768 |
0.1406 |
0.1142 |
0.0944 |
|
| CO2 |
0.0887 |
0.0906 |
0.0167 |
0.0447 |
0.0640 |
0.0749 |
0.0806 |
0.0832 |
|
| Total |
1.0000 |
1.0000 |
1.0000 |
1.0000 |
1.00000 |
1.0000 |
1.0000 |
1.0000 |
|
[0033] As may be seen, the level of methane in the pre-reformed fuel decreases with increasing
reforming temperature and increasing steam to carbon ratio.
Description of the Preferred Embodiment
[0034] Embodiments of a process in accordance with the invention will now be illustrated
by way of example only with reference to the accompanying drawings in which:
Figure 1 is a block diagram of the process illustrating a typical steam pre-reformer
and an SOFC stack; and
Figure 2 is a graph representing cell output voltage over time.
[0035] Referring to Figure 1, a steam pre-reformer 10 may take any typical form but is operated
adiabatically so that the maximum operating temperature of 500°C in the pre-reformer
is at an inlet end 12.
[0036] Waste heat from the SOFC stack 14 may be recycled to the inlet end 12.
[0037] Desulphurised heavy hydrocarbon fuel (C
2+), such as LPG, is introduced to the reformer 10 at the inlet end 12 and steam is
also introduced to the reformer, at an S/C ratio of no greater than 2.0. The gas flows
are such as to provide a sufficient residence time over the catalyst to achieve at
least a 97.5% conversion of the heavy hydrocarbons to methane, hydrogen, carbon dioxide
and carbon monoxide. At the maximum temperature of 500°C, the resultant fuel stream
should have a minimum methane content, on a wet basis (that is, including the steam
in the fuel stream from the pre-reformer) of 20 vol% and, preferably, a greater proportion
of methane than hydrogen.
[0038] The fuel stream, optionally with steam from the anode outlet side of the fuel cell
stack added to it, is introduced to the anode side of the stack 14. The fuel cells
operate at a temperature of at least 700°C and when the fuel stream contacts the nickel/zirconia
cermet anodes the methane in the fuel stream is steam reformed to carbon monoxide
and hydrogen.
[0039] At the same time oxygen, in the form of air, is supplied to the cathode side of the
fuel cell stack and, when the fuel cell stack is short-circuited through an external
load (not shown), the fuel oxidises at the anodes resulting in a CO
2 and H
2O waste stream.
Examples
Example 1:
[0040] Using a steam pre-reforming process to produce high levels of methane, propane was
subjected to steam reforming using a commercially available catalyst at two different
maximum temperatures of 378°C and 328°C and at a variety of S/C ratios. The catalyst
was a nickel-based pre-reformer catalyst C11 - PR supplied by United Catalysts Corporation.
The measured conversions given in Table 3 illustrate that the results predicted by
the thermodynamic calculations given above can be at least approached. The steam reforming
was conducted adiabatically in a microreactor system with on-line analysis of the
gas compositions. It is to be noted that the experimental set-up was not ideal, and
it is believed that this accounts for the incomplete conversions. All conversions
would usually be expected to be at least 97.5% complete with appropriate residence
times over the catalyst to ensure this. All percentages are vol% and are given on
a dry basis.
TABLE 3
| Temp (°C) |
Steam/Carbon ratio |
Steam/Gas ratio |
H2 % |
CO % |
CH4 % |
CO2 % |
C3H8 % |
Conversion of Propane |
| 378 |
1.37 |
4.11 |
34 |
2.4 |
48.9 |
14.2 |
0.6 |
97.5 |
| 328 |
1.37 |
4.11 |
15.4 |
2 |
62.7 |
15 |
4.8 |
84.6 |
| 328 |
1.01 |
3.03 |
24.4 |
3.8 |
56.5 |
12.4 |
3 |
89.2 |
| 328 |
0.75 |
2.25 |
21.4 |
1.6 |
61.1 |
13.1 |
3.1 |
89.0 |
| 328 |
0.5 |
1.5 |
17.3 |
1.6 |
64.6 |
12.9 |
3.6 |
88.2 |
Examples 2-4
[0041] Further experiments were conducted on the production of a methane-rich fuel for internal
reforming on SOFC anodes from LPG available in Victoria, Australia ("Victorian LPG")
in a prototype steam pre-reformer. The composition of Victorian LPG varies from 100%
propane to a mix of propane, butane and/or ethane. The composition of the LPG used
during this work was 93% propane and 7% ethane.
[0042] The experiments were carried out in a prototype fuel processor with 0.6L of the aforementioned
commercial pre-reforming catalyst C11-PR. Operating conditions were chosen to have
higher methane content in the reformed gas than is normally generated from conventional
pre-reforming of propane and ethane, with a sufficient residence time over the catalyst
to give 100% conversion of the propane and ethane. The results of the experiments
are given below, together with the operating conditions. It should be noted that the
results are given on a dry basis.
Example 2:
[0043] Temp:353-380°C, Steam/Carbon=1.5.
| CH4: |
48.3 |
| H2: |
30.6 |
| CO2: |
21.1 |
| CO: |
0.0 |
| C3H8: |
0.0 |
| C2H6: |
0.0 |
Example 3:
[0044] Temp:361-393°C, Steam/Carbon=1.0.
| CH4: |
54.9 |
| H2: |
25.0 |
| CO2: |
20.1 |
| CO: |
0.0 |
| C3H8: |
0.0 |
| C2H6: |
0.0 |
Example 4:
[0045] Temp:367-402°C, Steam/Carbon=0.75.
| CH4: |
57.9 |
| H2: |
22.5 |
| CO2: |
19.5 |
| CO: |
0.0 |
| C3H8: |
0.0 |
| C2H6: |
0.0 |
[0046] The above examples confirm that it is possible to steam reform heavy hydrocarbons
(C
3+) at relatively low temperatures and achieve both at least 20 vol% methane on a wet
basis in the resultant fuel stream and at least 97.5% conversion of the heavy hydrocarbons.
Example 5
[0047] In this example a gas comprising approximately 28 vol% CH
4, 22 vol% H
2, 12 vol% CO
2, vol% CO and 37 vol% H
2O was supplied to a fuel cell for internal reforming and electricity production.
[0048] As may be seen from Table 1 (molar% and vol% are substantially the same) the gas
composition simulated LPG (85 vol% propane, 15 vol% butane) which has been steam reformed
at 450 ° C and an S/C ratio of 1.5.
[0049] The single fuel cell was a standard planar SOFC with a 50 micron thick cathode layer
of strontium doped lanthanum manganite (LSM) on one side of a 120 micron thick electrolyte
layer of dense 3 mol% yttria stabilised zirconia (3YSZ) and a 50 micron thick anode
layer of 50% Ni-3YSZ cermet on the other side of the electrolyte layer. The fuel cell
was mounted in a closed ceramic housing with a fuel side inlet and outlet and fuel
gas flow channels on the anode side and an air side inlet and outlet and air flow
channels on the cathode side. A seal was provided in the housing around the fuel cell
to prevent mixing of the fuel gas and air. Electrical current was taken off using
Ni mesh in contact with the anode, between the anode and the anode side of the housing,
and a Pt mesh in contact with the cathode, between the cathode and the cathode side
of the housing.
[0050] The fuel cell was heated to 930°C and the fuel gas was supplied to the anode side
inlet while air was supplied to the cathode side inlet. At this temperature, the methane
in the fuel gas was internally steam reformed on the anode to hydrogen and oxides
of carbon which were then oxidised on the anode as a result of the fuel reaction.
The resultant voltage output from the fuel cell was measured for a period of about
55 hours and is shown in Figure 2.
[0051] Over extended periods of time substantially greater than 55 hours, it is possible
that some carbon deposition from the methane internal reforming reaction may detrimentally
affect the fuel cell performance. A variety of approaches have been put forward to
alleviate this, of which the addition of promoters to Ni steam reforming catalysts
may be particularly appropriate in the present invention, should it prove necessary.
[0052] Such promoters include alkali metals (eg Na, K) and alkali earth metals (Mg, Ca,
Sr, Ba) (
J.R. Rostrup-Nielson in Catalysis Science and Technology, Volume 5, Springer, Berlin,
1984, p1). Alkali additions are not advisable for SOFC anodes, but alkali earth additions
(Mg, Ca, Sr, Ba) and ceria additions have been demonstrated for suppression of carbon
deposition {
P.Singh et al. US Patent 4 894 297 (1990);
V.D. Belyaev et al, Applied Catalysis A, 133, p47(1995)}. Addition of Mo-oxide has also been shown to be effective for carbon deposition
suppression (
R.H. Cunningham et al, Solid Oxide Fuel Cells 5, Proceedings Volume 97-40, The Electrochemical
Society, Pennington, NJ, 1997, p973).
[0053] Those skilled in the art will appreciate that the invention described herein is susceptible
to variations and modifications other than those specifically described. It is to
be understood that the invention includes all such variations and modifications which
fall within its scope. The invention also includes all of the steps, features, compositions
and compounds referred to or indicated in this specification, individually or collectively,
and any and all combinations of any two or more of said steps, features, compositions
and compounds.
[0054] Throughout this specification and the claims which follow, unless the context requires
otherwise, the word "comprise", and variations such as "comprises" and "comprising",
will be understood to imply the inclusion of a stated integer or step or group of
integers or steps but not the exclusion of any other integer or step or group of integers
or steps.
1. A process for producing electricity in a high temperature solid oxide fuel cell that
is operated at a temperature of at least 700°C and that is adapted to carry out internal
steam reforming of methane on an anode of the fuel cell to produce hydrogen and oxides
of carbon, which process comprises reacting a higher carbon (C2+) hydrocarbon fuel with steam in a steam pre-reformer at a temperature in the pre-reformer
of no greater than 500°C and at a steam to carbon ratio that is no greater than 2.5
in order to produce a fuel stream including hydrogen and no less than about 20% by
volume methane measured on a wet basis, and supplying the fuel stream and an oxidant
to the fuel cell, wherein internal reforming of methane is carried out on an anode
of the fuel cell and electricity is produced by reacting the fuel stream at an anode
of the fuel cell and reacting the oxidant at a cathode of the fuel cell.
2. A process according to claim 1 in which the fuel stream includes no less than about
25% by volume methane measured on a wet basis.
3. A process according to claim 2 in which the fuel stream includes no less than about
40% by volume methane measured on a wet basis.
4. A process according to claim 3 in which the fuel stream includes no less than about
50% by volume methane measured on a wet basis.
5. A process according to claim 4 in which the fuel stream includes no less than about
60% by volume methane measured on a wet basis.
6. A process according to any one of claims 1 to 5 in which the temperature in the steam
pre-reformer is no more than about 450°C.
7. A process according to claim 6 in which the temperature in the steam pre-reformer
is in a range of about 250°C to 450°C.
8. A process according to claim 7 in which the temperature in the steam pre-reformer
is in a range of about 300°C to 400°C.
9. A process according to any one of claims 1 to 8 in which the reaction of the fuel
with steam in the methane generator is performed adiabatically.
10. A process according to any one of claims 1 to 9 in which the said steam to carbon
ratio is no more than 1.5 and in which additional steam is introduced to the fuel
stream downstream of the steam pre-reformer.
11. A process according to claim 10 in which the additional steam is recycled from an
anode exhaust stream.
12. A process according to any one of claims 1 to 11 in which the fuel is a C3+ hydrocarbon fuel.
13. A process according to claim 12 in which the fuel is selected from the group consisting
of LPG, gasoline (petrol) and diesel.
14. A process according to any one of claims 1 to 13 in which the fuel is selected from
the group consisting of ethane, propane, butane, LPG, gasoline (petrol), diesel, kerosene,
fuel oil, jet oil, naphtha and mixtures of two or more of these.
15. A process according to any one of claims 1 to 14 in which waste heat from the fuel
cell is recycled to the steam pre-reformer.
16. A process according to any one of claims 1 to 14 in which the reaction in the steam
pre-reformer results in the conversion of at least 97.5% of the higher carbon (C2+) hydrocarbon fuel.
1. Verfahren zur Erzeugung von Elektrizität in einer Hochtemperatur-Festoxidbrennstoffzelle,
die bei einer Temperatur von wenigstens 700°C arbeitet, und geeignet ist, eine innere
Dampfreformierung von Methan auf einer Anode der Brennstoffzelle durchzuführen, um
Wasserstoff und Kohlenstoffoxide zu erzeugen, wobei das Verfahren das Umsetzen eines
Kohlenwasserstoffbrennstoffes mit höheren Kohlenstoffen (C2+) mit Dampf in einem Dampf-Vorreformer bei einer Temperatur in dem Vorreformer, die
500°C nicht übersteigt, und bei einem Dampf-Kohlenstoff-Verhältnis, das nicht größer
als 2,5 ist, um einen Brennstoffstrom zu erzeugen, der Wasserstoff und nicht weniger
als etwa 20 Vol.-% Methan, gemessen auf feuchter Basis, umfasst, sowie das Zuliefern
des Brennstoffstromes und eines Oxidationsmittels zur Brennstoffzelle, wobei die innere
Reformierung des Methans auf einer Anode der Brennstoffzelle durchgeführt wird und
Elektrizität erzeugt wird, indem der Brennstoffstrom an einer Anode der Brennstoffzelle
umgesetzt wird und das Oxidationsmittel an einer Kathode der Brennstoffzelle umgesetzt
wird.
2. Verfahren gemäß Anspruch 1, wobei der Brennstoffstrom nicht weniger als etwa 25 Vol.-%
Methan, gemessen auf feuchter Basis, umfasst.
3. Verfahren gemäß Anspruch 2, wobei der Brennstoffstrom nicht weniger als etwa 40 Vol.-%
Methan, gemessen auf feuchter Basis, umfasst.
4. Verfahren gemäß Anspruch 3, wobei der Brennstoffstrom nicht weniger als etwa 50 Vol.-%
Methan, gemessen auf feuchter Basis, umfasst.
5. Verfahren gemäß Anspruch 4, wobei der Brennstoffstrom nicht weniger als etwa 60 Vol.-%
Methan, gemessen auf feuchter Basis, umfasst.
6. Verfahren gemäß einem der Ansprüche 1 bis 5, wobei die Temperatur im Dampf-Vorreformer
etwa 450°C nicht übersteigt.
7. Verfahren gemäß Anspruch 6, wobei die Temperatur im Dampf-Vorreformer im Bereich von
etwa 250°C bis 450°C liegt.
8. Verfahren gemäß Anspruch 7, wobei die Temperatur im Dampf-Vorreformer im Bereich von
etwa 300°C bis 400°C liegt.
9. Verfahren gemäß einem der Ansprüche 1 bis 8, wobei die Reaktion des Brennstoffes mit
Dampf im Methangenerator adiabatisch durchgeführt wird.
10. Verfahren gemäß einem der Ansprüche 1 bis 9, wobei das Dampf-Kohlenstoff-Verhältnis
nicht mehr als 1,5 beträgt, und wobei zusätzlicher Dampf dem Brennstoffstrom stromab
des Dampf-Vorreformers zugeleitet wird.
11. Verfahren gemäß Anspruch 10, wobei der zusätzliche Dampf von einem Anoden-Abgasstrom
rückgeführt wird.
12. Verfahren gemäß einem der Ansprüche 1 bis 11, wobei der Brennstoff ein C3+-Kohlenwasserstoffbrennstoff ist.
13. Verfahren gemäß Anspruch 12, wobei der Brennstoff ausgewählt ist aus der Gruppe bestehend
aus LPG, Benzin und Diesel.
14. Verfahren gemäß einem der vorangehenden Ansprüche 1 bis 13, wobei der Brennstoff ausgewählt
ist aus der Gruppe bestehend aus Ethan, Propan, Butan, LPG, Benzin, Diesel, Kerosin,
Heizöl, Jet Oil, Napththa, und Mischungen zweier oder mehrerer der oben genannten.
15. Verfahren gemäß einem der Ansprüche 1 bis 14, wobei Abwärme der Brennstoffzelle in
den Dampf-Vorreformer zurückgeführt wird.
16. Verfahren gemäß einem der Ansprüche 1 bis 14, wobei die Reaktion im Dampf-Vorreformer
zu der Umwandlung von wenigstens 97,5 % des Kohlenwasserstoffbrennstoffes mit höheren
Kohlenstoffen (C2+) führt.
1. Procédé de production d'électricité dans une pile à combustible à oxyde solide à haute
température qui fonctionne à une température d'au moins 700 °C, qui est adapté pour
effectuer un reformage interne à la vapeur de méthane sur une anode de la pile à combustible
pour produire de l'hydrogène et des oxydes de carbone, lequel procédé comprend les
étapes consistant à faire réagir un combustible hydrocarbure hautement carboné (C2+) avec la vapeur dans un pré-reformeur à vapeur à une température dans le pré-reformeur
non supérieure à 500 °C et avec un rapport entre vapeur et carbone qui n'est pas supérieur
à 2,5 afin de produire un courant de combustible comprenant de l'hydrogène et au moins
environ 20 % en volume de méthane mesuré sur une base humide, et à délivrer le courant
de combustible et un oxydant dans la pile à combustible, dans lequel le reformage
interne de méthane est réalisé sur une anode de la pile à combustible et l'électricité
est produite en faisant réagir le courant de combustible sur une anode de la pile
à combustible et en faisant réagir l'oxydant sur une cathode de la pile à combustible.
2. Procédé selon la revendication 1, dans lequel le courant de combustible comprend au
moins environ 25 % en volume de méthane mesuré sur une base humide.
3. Procédé selon la revendication 2, dans lequel le courant de combustible comprend au
moins environ 40 % en volume de méthane mesuré sur une base humide.
4. Procédé selon la revendication 3, dans lequel le courant de combustible comprend au
moins environ 50 % en volume de méthane mesuré sur une base humide.
5. Procédé selon la revendication 4, dans lequel le courant de combustible comprend au
moins environ 60 % en volume de méthane mesuré sur une base humide.
6. Procédé selon l'une quelconque des revendications 1 à 5, dans lequel la température
dans le pré-reformeur à vapeur n'est pas supérieure à environ 450 °C.
7. Procédé selon la revendication 6, dans lequel la température dans le pré-reformeur
à vapeur se situe dans une plage d'environ 250 °C à 450 °C.
8. Procédé selon la revendication 7, dans lequel la température dans le pré-reformeur
à vapeur se situe dans une plage d'environ 300 °C à 400 °C.
9. Procédé selon l'une quelconque des revendications 1 à 8, dans lequel la réaction du
combustible avec de la vapeur dans le générateur de méthane est effectuée de façon
adiabatique.
10. Procédé selon l'une quelconque des revendications 1 à 9, dans lequel ledit rapport
entre vapeur et carbone n'est pas supérieur à 1,5 et dans lequel de la vapeur additionnelle
est introduite dans le courant de combustible en aval du pré-reformeur à vapeur.
11. Procédé selon la revendication 10, dans lequel la vapeur additionnelle est recyclée
depuis un courant d'échappement d'anode.
12. Procédé selon l'une quelconque des revendications 1 à 11, dans lequel le combustible
est un combustible hydrocarbure C3+.
13. Procédé selon la revendication 12, dans lequel le combustible est choisi dans le groupe
constitué par le GPL, l'essence et le gasoil.
14. Procédé selon l'une quelconque des revendications 1 à 13, dans lequel le combustible
est choisi dans le groupe constitué par l'éthane, le propane, le butane, le GPL, l'essence,
le gasoil, le kérosène, le fioul, le carburéacteur, le naphte, et des mélanges de
deux de ces éléments ou plus.
15. Procédé selon l'une quelconque des revendications 1 à 14, dans lequel de la chaleur
résiduelle issue de la pile à combustible est recyclée dans le pré-reformeur à vapeur.
16. Procédé selon l'une quelconque des revendications 1 à 14, dans lequel la réaction
dans le pré-reformeur à vapeur aboutit à la conversion d'au moins 97,5 % du combustible
hydrocarbure hautement carboné (C2+).