Zinc production by solar carbothermic reduction of ZnO offers a CO2 emission reduction by a factor of 5 vis-a`-vis the conventional fossil-fuel-based electrolytic or Imperial Smelting processes. Zinc can serve as a fuel in Zn-air fuel cells or can be further reacted with H2O to form high-purity H2. In either case, the product ZnO is solar-recycled to Zn. We report on experimental results obtained with a 5 kW solar chemical reactor prototype that features two cavities in series, with the inner one functioning as the solar absorber and the outer one as the reaction chamber. The inner cavity is made of graphite and contains a windowed aperture to let in concentrated solar radiation. The outer cavity is well insulated and contains the ZnO-C mixture that is subjected to irradiation from the inner graphite cavity. With this arrangement, the inner cavity protects the window against particles and condensable gases and further serves as a thermal shock absorber. Tests were conducted at PSI’s Solar Furnace and ETH’s High-Flux Solar Simulator to investigate the effect of process temperature (range 1350-1600 K), reducing agent type (beech charcoal, activated charcoal, petcoke), and C:ZnO stoichiometric molar ratio (range 0.7–0.9) on the reactor’s performance and chemical conversion. In a typical 40-min solar experiment at 1500 K, 500 g of a ZnO-C mixture were processed into Zn(g), CO, and CO2. Thermal efficiencies of up to 20% were achieved.

1.
Steinfeld, A., and Palumbo, R., 2001, “Solar Thermochemical Process Technology,” Encyclopedia of Physical Science and Technology, R. A. Meyers ed., Academic Press, 15, pp. 237–256.
2.
Steinfeld
,
A.
,
2002
, “
Solar Hydrogen Production via a 2-step Water-Splitting Thermochemical Cycle based on Zn/ZnO Redox Reactions
,”
Int. J. Hydrogen Energy
,
27
, pp.
611
619
.
3.
Adinberg, R., and Epstein, M., 2002, “Experimental Study of Solar Reactors for Carboreduction of ZnO,” Proc. 11th SolarPaces Int. Symposium Zurich, pp. 277–286.
4.
Steinfeld
,
A.
,
Brack
,
M.
,
Meier
,
A.
,
Weidenkaff
,
A.
, and
Wuillemin
,
D.
,
1998
, “
A Solar Chemical Reactor for the Co-Production of Zinc and Synthesis Gas
,”
Energy (Oxford)
,
23
, pp.
803
814
.
5.
Kra¨upl
,
S.
, and
Steinfeld
,
A.
,
2001
, “
Experimental Investigation of a Vortex-Flow Solar Chemical Reactor for the Combined ZnO-Reduction and CH4-Reforming
,”
J. Sol. Energy Eng.
,
123
, pp.
237
243
.
6.
Zoxy Energy Systems AG, http://www.zoxy.net/
7.
Wieckert, C., Epstein, M., Olalde, G., Palumbo, R., Pauling, H. J., Reichardt, H. U., Robert, J. F., Santen, S., and Steinfeld, A., 2002, “The SOLZINC-Project for Solar Carbothermic Production of Zn from ZnO,” Proc. 11th SolarPaces Int. Symposium Zurich, pp. 239–245.
8.
Berman
,
A.
, and
Epstein
,
M.
,
1999
, “
The Kinetic Model for Carboreduction of Zinc Oxide
,”
J. of Physics IV
, France,
9
, pp.
319
324
.
9.
Boustead, I., and Dove, W. T., 1998, “Ecoprofile of Primary Zinc Production, Report for the Int. Zinc Association, Brussels.
10.
Wieckert
,
C.
, and
Steinfeld
,
A.
,
2002
, “
Solar Thermal Reduction of ZnO Using CH4:ZnO and C:ZnO Molar Ratios Less than 1
,”
J. Sol. Energy Eng.
,
124
, pp.
55
62
.
11.
Haueter
,
P.
,
Seitz
,
T.
, and
Steinfeld
,
A.
,
1999
, “
A New High-Flux Solar Furnace for High-Temperature Thermochemical Research
,”
J. Sol. Energy Eng.
,
121
, pp.
77
80
.
12.
Hirsch
,
D.
,
v. Zedtwitz
,
P.
,
Osinga
,
T.
,
Kinamore
,
J.
, and
Steinfeld
,
A.
,
2003
, “
A New 75 kW High-Flux Solar Simulator For High-Temperature Thermal and Thermochemical Research
,”
J. Sol. Energy Eng.
,
125
,
117
120
.
13.
Yogev
,
A.
,
Kribus
,
A.
,
Epstein
,
M.
, and
Kogan
,
A.
,
1998
, “
Solar “Tower Reflector” Systems: A new Approach for High-Temperature Solar Plants
,”
Int. J. Hydrogen Energy
,
23
, pp.
239
245
.
14.
Wieckert
,
C.
,
Meier
,
A.
, and
Steinfeld
,
A.
,
2003
, “
On Indirectly Irradiated Solar Receiver Reactors for High-Temperature Thermochemical Processes
,”
J. Sol. Energy Eng.
,
125
,
120
123
.
15.
Tschudi
,
H.-R.
, and
Morian
,
G.
,
Tschudi
,
H.-R.
,
2001
, “
Pyrometric Temperature Measurements in Solar Furnaces
,”
ASME J. Sol. Energy Eng.
,
123
, pp.
164
170
.
16.
Wieckert, C., Palumbo, R., and Frommherz, U., 2002, “A Two Cavity Reactor for Solar Chemical Processes: Heat Transfer Model and Application to Carbothermic Reduction of ZnO,” Proc. 11th SolarPaces Int. Symposium Zurich, 2002, pp. 287–299 and 2004, Energy, The Int. J., in press.
17.
Osinga, T., 2002, “Experimental Investigation of a Two-Cavity Solar Chemical Reactor for Carbothermic Reduction of ZnO,” Diploma Thesis, ETH Zurich.
You do not currently have access to this content.