CA2014308C

Method and apparatus for the direct reduction of iron

Abstract

A process for the direct reduction of iron-containing metal oxides to obtain iron is disclosed in which a reformed reduction gas rich in H2 and CO and having an oxidation degree in the range of from about 0.30 to about 0.35 is formed and reduction is carried out simultaneously in a single reaction zone of a reduction reactor. The reformed reduction gas is formed using a highly endothermic reaction during which a mixture of heated natural gas, recycled top gas and air, preferably oxygen enriched air, is placed into contact with heated surfaces of DRI metallized iron in the reaction zone. The resulting reformed reducing gas consists essentially of from about 45% to about 48% hydrogen, from about 32% to about 34% carbon monoxide, from about 2% to about 4% carbon dioxide, from about 1% to about 3% methane, from about 14% to about 16% nitrogen and from about 1% to about 3% water vapor.

Term

Term ended

Expired 10 April 2010, 16.5 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

24 claims: 3 independent, 21 dependent

  1. 1
    The embodiments of the invention in which an exclusive property or privilege is claimed are defined as follows:1. A process for the direct reduction of metal oxides containing iron to obtain a DRI metallized iron, said process comprising: providing a reduction reactor having a single reaction zone and a bed of partially metallized iron oxide material and direct reduced iron within said reaction zone;forming a reformed reduction gas rich in H2 and CO having an oxidation degree in the range of from about 0.05 to about 0.09 in said reaction zone;and contacting said iron oxide material in said reactor with said reformed reducing gas and reducing said iron oxide material with said reformed reducing gas.
  2. 13
    A process for the direct reduction of metal oxides containing iron to obtain a direct reduced iron, said process consisting essentially of:(a) providing a reforming-reduction reactor having a bed of partially metallized iron oxide material and a bed of direct reduced iron within said reforming-reduction reactor;(b) feeding metal oxides containing iron to the reforming-reduction reactor;(c) mixing top gas recycled from said reforming-reduction reactor with natural gas;(d) preheating said top gas and natural gas mixture to a temperature in the range of from about 650°C to about 850°C;(e) mixing air preheated to a temperature in the range of from about 650°C to about 850°C with said preheated top gas and natural gas mixture in a mixing chamber;(f) partially combusting said mixture to a temperature of between 850°C to 1100°C wherein said mixture has a degree of oxidation in the range of from about 0.27 to about 0.32 and a reducing power in the range of from about 2 to 3;(g) feeding said partially combusted mixture to said direct reduced iron in said reforming-reduction reactor so as to form a reformed reducing as comprising H2 and CO and having an oxidation degree in the range of from about 0.05 to about 0.09 in said reforming-reduction reactor;and (h) contacting said iron oxide metal in said reforming-reduction reactor with said reformed reducing gas so as to effect reduction to obtain a direct reduced iron.
  3. 21
    The process of claim 13, 14, 17, 18, 19 or 20, further comprising:cleaning and dewatering said top gas leaving said reactor;and supplying a portion of said cleaned and dewatered top gas to preheaters for preheating said top gas and natural gas mixture and said air.