Method and device for reaction control
11193196 · 2021-12-07
Assignee
Inventors
Cpc classification
F27B9/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21D11/00
CHEMISTRY; METALLURGY
F27D7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D2007/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F27D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C21D11/00
CHEMISTRY; METALLURGY
F27B9/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27D7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F27B9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A furnace for annealing a sheet includes: a first section; a second vertical section, the second vertical section including openings supplied with an oxidizing medium, an opening facing each side of the sheet, and means for separately controlling a flow of the oxidizing medium on each side of the sheet; and a third section. The second vertical section is located in a distinct casing and separated from the first and third sections with sealing devices. The second vertical section includes extraction openings for extracting the oxidizing medium not consumed by the sheet, an extraction opening facing each side of the sheet. The openings supplied with an oxidizing medium are located transversally at one end of the second vertical section. The extraction openings are located transversally at an other end of the second vertical section.
Claims
1. A furnace for annealing a sheet, the furnace comprising: a first section; a second vertical section, the second vertical section comprising openings supplied with an oxidizing medium, an opening facing each side of the sheet, and a flow controller configured to separately control a flow of the oxidizing medium on each side of the sheet; and a third section, wherein the second vertical section is located in a distinct casing and separated from the first and third sections with sealing devices, wherein the second vertical section comprises extraction openings configured to extract the oxidizing medium not consumed by the sheet, an extraction opening facing each side of the sheet, wherein the openings supplied with the oxidizing medium are located at one end of the second vertical section and comprise slots extending transversally and horizontally across the second vertical section, and wherein the extraction openings are located transversally at an other end of the second vertical section.
2. The furnace according to claim 1, wherein the second vertical section comprises two independent injection pipes respectively configured to supply each side of the sheet, and wherein the flow controller comprises a fan on each injection pipe.
3. The furnace according to claim 1, wherein the second vertical section comprises two injection pipes respectively configured to supply each side of the sheet, one injection pipe being mounted on the other injection pipe to be interconnected, wherein the flow controller comprises a single fan mounted on one of the injection pipes and comprise a valve also mounted on one of the injection pipes.
4. The furnace according to claim 3, wherein the flow controller comprises a single valve mounted on an injection pipe downstream of the connection between the injection pipes.
5. The furnace according to claim 3, wherein the flow controller comprises a valve mounted on each injection pipe downstream of the connection between the injection pipes.
6. The furnace according to claim 1, wherein the second vertical section further comprises the flow controller configured to separately control for each side a temperature of the oxidizing medium and an oxidant concentration in the oxidizing medium.
7. The furnace according to claim 1, wherein the openings supplied with the oxidizing medium are located at the top of the second vertical section.
8. A method for controlling a surface reaction on the sheet running through the second vertical section of the furnace according to claim 1, comprising: separately controlling the flow of the oxidizing medium on each side of the sheet; and extracting the oxidizing medium on each side of the sheet after oxidation of the sheet, wherein there is minimal oxidizing medium flow between the first section, the second vertical section, and the third section.
9. The method according to claim 8, wherein the flow is adjusted by changing a rotation speed of the fan.
10. The method according to claim 8, further comprising separately controlling a temperature of the oxidizing medium and an oxidant concentration in the oxidizing medium on each side of the sheet.
11. The method according to claim 8, wherein the oxidizing medium extracted from the second vertical section is recirculated in the second vertical section.
12. The method according to claim 11, wherein the oxidant concentration to be injected is based on measurements of the oxidant concentration in the oxidizing medium extracted from the second vertical section.
13. The method according to claim 8, wherein a temperature of the oxidizing medium is between 50 and 200° C. below a sheet temperature.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will be described in even greater detail below based on the exemplary figures. The invention is not limited to the exemplary embodiments. Other features and advantages of various embodiments of the present invention will become apparent by reading the following detailed description with reference to the attached drawings which illustrate the following:
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DETAILED DESCRIPTION
(8) The present invention relates to a furnace for annealing a sheet comprising a first section, a second vertical section and a third section, said second section comprising openings supplied with an oxidizing medium, an opening facing each side of the sheet, wherein the second section comprises means for separately controlling the flow of the oxidizing medium on each side of the sheet, the second section being located in a distinct casing and separated from the first and third sections with sealing devices and the second section comprising extraction openings for extracted the oxidizing medium not consumed by the sheet.
(9) According to particular preferred embodiments, the furnace according to the invention further comprises at least one or a suitable combination of the following features:
(10) the second section comprises two independent injection pipes respectively supplying each side of the sheet and wherein the means comprise a fan on each injection pipe;
(11) the second section comprises two injection pipes respectively supplying each side of the sheet, one injection pipe being mounted on the other injection pipe to be interconnected, wherein the means comprise a single fan mounted on one of the injection pipes and comprise a valve also mounted on one of the injection pipes;
(12) the means comprise a single valve mounted on an injection pipe downstream of the connection between the injection pipes;
(13) the means comprise a valve mounted on each injection pipe downstream of the connection between the injection pipes;
(14) the second section further comprises means for separately controlling for each side the temperature of the oxidizing medium and the oxidant concentration in the oxidizing medium;
(15) the openings supplied with an oxidizing medium are located at the top of the second section;
(16) the opening supplied with an oxidizing medium are slots extending transversally at the top of the second section.
(17) The present invention also relates to a method for controlling a surface reaction on a sheet running through the second section of the furnace as described above, comprising a step of separately controlling the flow of the oxidizing medium on each side of the sheet and a step of extraction of the oxidizing medium after the oxidation of the sheet.
(18) According to particular preferred embodiments, the method according to the invention further comprises at least one or a suitable combination of the following features: —the flow is adjusted by changing the rotation speed of the fan;
(19) it further comprises a step of separately controlling the temperature of the oxidizing medium and the oxidant concentration in the oxidizing medium on each side of the sheet;
(20) after the oxidation of the sheet, the oxidizing medium is extracted from the second section and recirculated in the second section;
(21) the oxidant concentration to be injected is based on the measurements of the oxidant concentration in the oxidizing medium extracted from the second section;
(22) the temperature of the oxidizing medium is between 50 and 200° C. below the sheet temperature.
(23) The invention aims to provide a method with process parameters adjusted to control separately the oxide formation on each side of the steel sheet. This method allows easily adjusting the concentration and flow of the oxidant medium according to the strip width, the line speed and the steel grade. For this purpose, an annealing furnace comprising specific control means in the oxidation chamber has been developed. To allow a fine control of the oxidation, the oxidation chamber is located in a distinct casing comprising sealing means at each end and is provided with extraction means in order to control the flow of oxygen not fully consumed by the oxidation process of the sheet.
(24) The furnace 1 represented in
(25) The furnace has different sections, each located in a distinct casing.
(26) The first section 2 of the furnace 1 is a classical heating section comprising heating elements and rolls. It can be a resistance heating, an inductive heating or a radiant tube heater. This section is slightly oxidizing to limit the risk of external oxidation of the alloying elements and potentially to start forming a Fe oxide in some cases. To this end, the H.sub.2 content is below 2%, the 0.sub.2 level is below 0.1%, the H.sub.2O or C0.sub.2 content or the sum H.sub.2O and C0.sub.2 (H.sub.2O+C0.sub.2) is superior to 0.03% and, preferably superior to 0.035%, but inferior to 10% to obtain this atmosphere slightly oxidizing.
(27) The second section 3 is the oxidation chamber wherein an oxidizing mixture composed of an oxidant such as 0.sub.2 and an inert gas like N.sub.2 is injected to form a controlled iron oxide layer on the surface of the steel sheet. This section will be further detailed below.
(28) The third section 4 has a reducing atmosphere to reduce the iron oxide formed in the second section. The classical practice is to use H.sub.2 mixed with an inert gas, the concentration of H.sub.2 being adjusted between 3 and 30% and preferably between 5 and 20%.
(29) The second section 3 is a vertical section with sealing devices 11 like rolls or gates at the entry and exit of the section to separate this section from the first and third sections and so to minimize the flow of the oxidant in the other sections of the furnace. The oxidizing medium is injected on the sheet surface by openings, preferably forming slots, which ensure a uniform distribution of the flow all across the chamber. The openings 10 are located on each side of the sheet 5 and preferably located transversally at one end of the oxidation chamber 3 as shown in
(30) According to the invention, the second section 3 is provided with means for controlling separately the flow of the oxidizing medium on each side of the steel sheet. Preferably, it also comprises means for controlling separately the oxidant concentration and the temperature of the oxidizing medium for each side of the steel sheet.
(31) The control system according to a first embodiment of the invention is described in
[Added Air Flow*0.21+(Injected flow−Added air)*% 0.sub.2 in the extracted flow]/(Injected flow)=Target 0.sub.2 in injection,
(32) wherein the injected flow corresponds to the extracted flow+added air flow, the flows being expressed in Nm.sup.3/h and typically comprises between 50 and 200 Nm3/h per side;
(33) wherein the target in 0.sub.2 is preferentially comprised between 0.5 et 5% in volume.
(34) According to a second embodiment represented in
(35) The second section can also be provided with additional means to control specifically the oxidation on the edges of the sheet as disclosed in the application EP 151 831 69.
(36) The temperature of the oxidizing mixture, e.g. N.sub.2+0.sub.2, is between 50° C. and 200° C. below the sheet temperature to take benefit of the buoyancy principle whereby the gas colder than the strip moves down. For this reason, the transversal openings are located at the top of the chamber and, preferably, the strip moves down. Conversely, the gas could be warmer than the strip and the openings located at the bottom of the chamber. To compensate for the eventual variations between sides, the temperature for each side is controlled separately as shown in
(37) While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. It will be understood that changes and modifications may be made by those of ordinary skill within the scope of the following claims. In particular, the present invention covers further embodiments with any combination of features from different embodiments described above and below.
(38) The terms used in the claims should be construed to have the broadest reasonable interpretation consistent with the foregoing description. For example, the use of the article “a” or “the” in introducing an element should not be interpreted as being exclusive of a plurality of elements. Likewise, the recitation of “or” should be interpreted as being inclusive, such that the recitation of “A or B” is not exclusive of “A and B,” unless it is clear from the context or the foregoing description that only one of A and B is intended.
(39) While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. It will be understood that changes and modifications may be made by those of ordinary skill within the scope of the following claims. In particular, the present invention covers further embodiments with any combination of features from different embodiments described above and below. Additionally, statements made herein characterizing the invention refer to an embodiment of the invention and not necessarily all embodiments.
(40) The terms used in the claims should be construed to have the broadest reasonable interpretation consistent with the foregoing description. For example, the use of the article “a” or “the” in introducing an element should not be interpreted as being exclusive of a plurality of elements. Likewise, the recitation of “or” should be interpreted as being inclusive, such that the recitation of “A or B” is not exclusive of “A and B,” unless it is clear from the context or the foregoing description that only one of A and B is intended. Further, the recitation of “at least one of A, B and C” should be interpreted as one or more of a group of elements consisting of A, B and C, and should not be interpreted as requiring at least one of each of the listed elements A, B and C, regardless of whether A, B and C are related as categories or otherwise. Moreover, the recitation of “A, B and/or C” or “at least one of A, B or C” should be interpreted as including any singular entity from the listed elements, e.g., A, any subset from the listed elements, e.g., A and B, or the entire list of elements A, B and C.
REFERENCE SYMBOLS
(41) (1) Annealing furnace (2) First section (3) Second section, also called oxidation chamber (4) Third section (5) Strip or sheet (6) Sealing roll (7) Injection pipe (8) Valve (9) Fan (10) Opening for supplying the reactant (11) Sealing roll (12) Extraction opening (13) Zinc bath