Method and device for heating a furnace
A method for heating a furnace is provided in which in the furnace has at least one heating zone which is heated by combusting a fuel with an oxidant. The furnace further has a dark zone, downstream of the heated zone, to which) no fuel is supplied directly. The fuel and oxidant are supplied to the heating zone is substoichiometric manner, in that between 10% and 40% of the total oxidant for achieving stoichiometric or near stoichiometric combustion is supplied directly to the dark zone. The flue gas temperature is measured in and/or downstream of the dark zone, and the share of the total oxidant supplied to the dark zone is controlled so as not to exceed a predetermined maximum measured temperature. A method for retrofitting an existing furnace is also provided.
1 . A method for heating a furnace with a longitudinal direction and a cross plane which is perpendicular to the longitudinal direction, which furnace is arranged with at least one heating zone which is heated using combustion of a fuel with an oxidant, and which furnace is further arranged with a dark zone downstream of said heated zone, to which dark zone no fuel is supplied directly, wherein the fuel and oxidant supplied to the heating zone is substoichiometric, in that between 10% and 40% of the total oxidant for achieving stoichiometric or near stoichiometric combustion is supplied directly to the dark zone, in that a flue gas temperature is measured in and/or downstream of the dark zone, and in that the share of the total oxidant supplied to the dark zone is controlled so as not to exceed a predetermined maximum measured such temperature,
wherein all oxidant supplied to the dark zone is supplied via one or more lances located in the side walls of the furnace.
2 . The method according to claim 1 , wherein all fuel and all oxidant supplied to the heating zone are supplied via one or more burners and/or via one or more lances located in one or more side walls of the furnace.
3 . The method according to claim 2 , wherein a portion of the oxidant supplied to the heating zone is supplied via at least one lance.
4 . The method according to claim 1 , wherein the portion of the oxidant supplied to the dark zone is regulated so as to achieve a predetermined measured such temperature.
5 . The method according to claim 1 , the total amount of oxidant supplied to the heating zone and the dark zone is regulated so as to achieve a predetermined heating power.
6 . The method according to claim 1 , wherein the oxidant supplied to the heating zone and to the dark zone are supplied from the same source.
7 . The method according to claim 1 , wherein the oxidant supplied to the heated zone and/or to the dark zone comprises at least 85% oxygen.
8 . The method according to claim 1 , wherein that the oxidant is supplied to the dark zone via at least one oxidant lance operated at a lancing velocity of at least Mach 1.
9 . The method according to claim 1 , wherein that the oxidant supplied to the dark zone is supplied to the 35 % most upstream arranged part of the dark zone.
10 . The method according to claim 1 , wherein that the oxidant supplied to the dark zone is supplied through at least one lance which is substantially parallel to the cross plane.
11 . The method according to claim 1 , wherein the oxidant supplied to the dark zone is supplied via at least two lances on either side of the furnace, so that the two lanced streams of oxidant either intersect or cooperate so as to give rise to a rotation of the atmosphere within the dark zone.
12 . The method according to claim 1 , wherein each of said lances are arranged in a respective tube, through which tube cooling air is supplied.
13 . A method for retrofitting an existing furnace for operation according to claim 1 , which existing furnace has a longitudinal direction and a cross plane which is perpendicular to the longitudinal direction, which existing furnace is arranged with at least one heating zone which is heated using combustion of a fuel with an oxidant, and which existing furnace is further arranged with a dark zone downstream of said heated zone, to which dark zone no fuel is supplied directly, wherein the method comprises
providing a separate oxidant lance located in a side wall of the furnace to provide oxidant directly to the dark zone;
connecting the separate oxidant lance to a source of oxidant;
modifying the furnace to supply the fuel and oxidant supplied to the heating zone substoichiometrically to provide between 10% and 40% of the total oxidant for achieving stoichiometric or near stoichiometric combustion by supplying oxidant directly to the dark zone;
providing a flue gas temperature sensor arranged to measure the flue gas temperature in and/or downstream of the dark zone; and,
modifying the furnace to control the share of the total oxidant supplied to the dark zone so as not to exceed a predetermined maximum measured such temperature.