Combined system for producing steel and method for operating the combined system
10697031 · 2020-06-30
Assignee
Inventors
- Reinhold Achatz (Essen, DE)
- Jens Wagner (Frankfurt a.M., DE)
- Markus Oles (Hattingen, DE)
- Peter Schmöle (Dortmund, DE)
- Ralph Kleinschmidt (Mülheim a.d.Ruhr, DE)
- Stefan GEHRMANN (Dortmund, DE)
- Bärbel Kolbe (Witten, DE)
- Matthias Patrick Krüger (Herne, DE)
Cpc classification
C12P7/30
CHEMISTRY; METALLURGY
Y02P20/133
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E50/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C07C29/00
CHEMISTRY; METALLURGY
F02C1/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/36
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C01B2203/0233
CHEMISTRY; METALLURGY
C01B3/12
CHEMISTRY; METALLURGY
C01B2203/043
CHEMISTRY; METALLURGY
C21B2100/62
CHEMISTRY; METALLURGY
F01D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C01B2203/0283
CHEMISTRY; METALLURGY
C01B3/56
CHEMISTRY; METALLURGY
Y02P10/25
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02P10/143
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C21B2100/60
CHEMISTRY; METALLURGY
International classification
C01B3/56
CHEMISTRY; METALLURGY
C01B3/12
CHEMISTRY; METALLURGY
C07C29/00
CHEMISTRY; METALLURGY
F01D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C12P7/30
CHEMISTRY; METALLURGY
Abstract
The invention relates to a plant complex for steel production comprising a blast furnace for producing pig iron, a converter steel mill for producing crude steel, a gas-conducting system for gases that occur when producing the pig iron and/or the crude steel, and a power-generating plant for electricity generation. The power-generating plant is designed as a gas-turbine power-generating plant or gas-turbine and steam-turbine power-generating plant and is operated with a gas that comprises at least a partial amount of the blast-furnace top gas that occurs in the blast furnace and/or a partial amount of the converter gas. The plant complex additionally comprises a chemical plant and a biotechnological plant, the power-generating plant, the chemical plant and the biotechnological plant being arranged in a parallel setup with regard to the gas supply. The gas-conducting system comprises an operationally controllable gas-distributing device for dividing the streams of gas.
Claims
1. A plant complex for producing steel, comprising: a blast furnace for producing pig iron; a converter steel mill for producing crude steel; a gas-conducting system for transporting one or more streams of gases that occur in the production of pig iron and crude steel; and a power-generating plant for electricity generation, the power-generating plant being designed as a gas-turbine power-generating plant or gas-turbine and steam-turbine power generating plant and being operated with a gas supply that comprises at least a partial amount of one of a blast-furnace top gas that occurs in the production of pig iron in the blast furnace, and a converter gas that occurs in the converter steel mill; wherein: a chemical plant and a biotechnological plant are connected to the gas-conducting system; the power-generating plant, the chemical plant, and the biotechnological plant are arranged in a parallel setup, wherein each of the power-generating plant, the chemical plant, and the biotechnological plant receive a partial stream of gas diverted from the gas supply such that the power-generating plant, the chemical plant, and the biotechnological plant are operated simultaneously in parallel; and the gas-conducting system comprises an operationally adjustable gas-distributing device for dividing and controlling the gas supply that is fed to the power-generating plant, the chemical plant, and the biotechnological plant, wherein the gas-distributing device is adjusted when a price for externally obtained electricity reaches a predetermined threshold; the biotechnological plant produces a hydrocarbon compound by a fermentation of a syngas comprising CO and H.sub.2 as main constituents; and the gas supply to the chemical plant remains substantially constant during operation of the plant.
2. The plant complex according to claim 1, wherein the plant complex further comprises a coke-oven plant, and wherein the gas-conducting system includes a gas distribution for coke-oven gas that occurs in a coking process in the coke-oven plant.
3. The plant complex according to claim 1, wherein the gas-conducting system has, upstream of the gas-distributing device in the direction of flow, a mixing device for producing a mixed gas consisting of at least one of the blast-furnace top gas, the converter gas, and the coke-oven gas.
4. The plant complex according to claim 1, wherein the plant complex additionally has a plant for producing hydrogen, which is connected to the gas-conducting system by a hydrogen-carrying line.
5. A plant complex for producing steel, comprising: a biotechnological plant coupled to a metallurgical plant, the metallurgical plant comprising at least one blast furnace for producing pig iron, a converter steel mill, and a gas-operated power-generating plant for electricity generation, the gas-operated power-generating plant being designed as a gas-turbine power-generating plant or gas-turbine and steam-turbine power-generating plant; wherein: a partial amount of at least one of a blast-furnace top that occurs in the production of pig iron and a converter gas that occurs in the production of crude steel is used as a useful gas for operating the power-generating plant, the chemical plant, and the biotechnological plant; the chemical plant, the biotechnological plant, and the power-generating plant are connected in parallel with respect to the carrying of gas such that the chemical plant, the biotechnological plant, and the power-generating plant are operated simultaneously; the biotechnological plant produces a hydrocarbon compound by a fermentation of a syngas comprising CO and H.sub.2 as main constituents; and at least the partial streams of the useful gas that are fed to the biotechnological plant and the power-generating plant can be controlled separately via a gas-distributing device, wherein the partial streams of the useful gas are adjusted when a price for externally obtained electricity reaches a predetermined threshold.
6. The plant complex of claim 1, wherein the gas supply to the chemical plant is within 20% of a predetermined chemical gas supply value.
7. The plant complex of claim 5, wherein the syngas is the converter gas, or a mixed gas comprising the converter gas and the blast furnace top gas.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
WRITTEN DESCRIPTION
(3) The plant complex for steel production comprises a blast furnace for producing pig iron, a converter steel mill for producing crude steel, a gas-conducting system for gases that occur in the production of pig iron and/or in the production of crude steel, and also a power-generating plant for electricity generation. The power-generating plant is designed as a gas-turbine power-generating plant or gas-turbine and steam-turbine power-generating plant and is operated with a gas that comprises at least a partial amount of the blast-furnace top gas that occurs in the blast furnace when producing the pig iron and/or a partial amount of the converter gas that occurs in the converter steel mill.
(4) Proceeding from a plant complex for steel production comprising a blast furnace for producing pig iron, a converter steel mill for producing crude steel, a gas-conducting system for gases that occur in the production of pig iron and/or the production of crude steel and a power-generating plant for electricity generation, according to the invention a chemical plant and a biotechnological plant are connected to the gas-conducting system, the power-generating plant, the chemical plant and the biotechnological plant being arranged in a parallel setup with regard to the gas supply. According to the invention, the gas-conducting system comprises an operationally controllable gas-distributing device for dividing the streams of gas that are fed to the power-generating plant, the chemical plant and the biotechnological plant.
(5) The subject of the invention is also a method for operating a plant complex that has a blast furnace for producing pig iron, a converter steel mill, a chemical plant, a biotechnological plant and a power-generating plant. According to the method according to one embodiment of the invention, at least a partial amount of the blast-furnace top gas that occurs in the production of pig iron in the blast furnace and/or a partial amount of the converter gas that occurs in the production of crude steel is used as a useful gas for operating the power-generating plant, the chemical plant and the biotechnological plant. A first partial stream of the useful gas is fed to the chemical plant and used after a gas-conditioning operation as syngas for producing chemical products. A second partial stream of the useful gas is used in the power-generating plant for electricity generation. A third partial stream of the useful gas is fed to the biotechnological plant and used for biochemical processes. The third partial stream may be used for biochemical processes with or without gas conditioning. In the case of a change of the gas stream fed to the power-generating plant, the second partial stream and the third partial stream of the useful gas are changed alternately, so that the chemical plant can be operated with a partial stream of the useful gas that is subject to less operational fluctuations than the partial stream of useful gas that is used in the biotechnological plant. The third partial stream of useful gas is expediently controlled in such a way that the first partial stream of useful gas, used in the chemical plant, is operated constantly with a range of fluctuation of 20%.
(6) In the chemical plant, chemical products are produced from syngases that respectively contain the components of the reactant. Chemical products may be for example ammonia or methanol or else other hydrocarbon compounds.
(7) A biotechnological plant is taken to mean a plant for the fermentation of syngas that contains CO and H.sub.2 as the main constituents. Hydrocarbon compounds, for example ethanol, acetone and the like, can likewise be produced from this syngas. However, the hydrogen fraction in this case originates substantially from water, which is used as a medium in the fermentation. Therefore, a gas which has a high proportion of CO is required for producing the syngas. Converter gas or a mixed gas comprising converter gas and blast-furnace top gas is preferably used.
(8) The partial stream of useful gas that is used in the power-generating plant for electricity generation is subject to considerable operational fluctuations. The electricity produced by the power-generating plant covers part of the electricity demand of the plant complex. In addition, external electricity is obtained, preferably obtained completely or at least partially from renewable energy and originating for example from wind turbine generator plants, solar plants, geothermal power-generating plants, hydroelectric power-generating plants, tidal power-generating plants and the like. To achieve operation of the plant complex that is as cost-effective as possible, the operation of the power-generating plant is cut back if external electricity is available in a sufficient amount and at favourable prices. If electricity from regenerative sources is not available to a sufficient extent or external electricity has a higher price than electricity that can be produced in the power-generating plant, the output of the power-generating plant is increased and most of the useful gas is used in the power-generating process for electricity generation. The proportion of the useful gas that can be used as syngas for producing chemical products is therefore subject as a result to considerable operational fluctuations, which are predetermined by the operation of the power-generating plant.
(9) The dynamic control of a chemical plant under load changes is technically complex. The problem that a chemical plant operated in combination with a power-generating plant cannot react sufficiently flexibly to load changes of the power-generating plant is solved according to the invention by initially only the product output of the biotechnological plant being adapted when there is a load change of the power-generating plant and by the partial stream of useful gas that is intended for the biotechnological plant and the partial stream of useful gas that is used in the power-generating plant being changed alternately, so that the chemical plant can be operated with a partial stream of the useful gas that is subject to significantly less operational fluctuations than the partial stream of useful gas that is used in the biotechnological plant. The teaching according to the invention thereby makes use of the fact that a biotechnological plant is much more flexible with regard to load changes in comparison with a chemical plant.
(10) According to a preferred embodiment of the invention, the plant complex additionally comprises a coke-oven plant. If the production of pig iron and the production of crude steel are operated in combination with a coking plant, a partial amount of the blast-furnace top gas that occurs in the production of pig iron and/or a partial amount of the converter gas that occurs in the converter steel mill may be mixed with a partial amount of the coke-oven gas that occurs in the coke-oven plant and the mixed gas may be used as a useful gas. A mixture of coke-oven gas and blast-furnace top gas or a mixed gas comprising coke-oven gas, converter gas and blast-furnace top gas may be used for producing a syngas, for example for ammonia synthesis. A mixed gas comprising coke-oven gas and converter gas or a mixed gas comprising coke-oven gas, converter gas and blast-furnace top gas is suitable for producing hydrocarbon compounds.
(11) Converter gas, blast-furnace top gas or a mixed gas comprising these two gas components is preferably used for operating the biotechnological plant. The coke-oven gas is not suitable or less suitable for the biotechnical process. To this extent it may be expedient to use in the chemical plant and in the biotechnological plant streams of useful gas that differ with regard to their composition.
(12) The raw gasescoke-oven gas, converter gas and/or blast-furnace top gasmay be conditioned individually or in combination as a mixed gas and then used as a syngas in the chemical plant and the biotechnological plant. The conditioning of coke-oven gas in particular comprises a cleaning of the gas to separate out troublesome contents, in particular tar, sulphur and sulphur compounds, aromatic hydrocarbons (BTX) and high-boiling hydrocarbons. A gas-conditioning operation is also necessary for the production of the syngas. In the course of the gas conditioning, the proportion of the components CO, CO.sub.2 and H.sub.2 within the raw gas is changed. The gas conditioning comprises for example pressure swing adsorption for separating out and enriching H.sub.2 and/or a water-gas-shift reaction for converting CO into hydrogen and/or a steam reformer for converting the CH.sub.4 fraction into CO and hydrogen in the coke-oven gas.
(13) The first partial stream of the useful gas, used in the chemical plant, may be enriched with hydrogen that is produced in an additionally connected plant. The production of hydrogen preferably takes place by electrolysis of water, it being possible for the electrolysis of water to be operated with electrical power from regenerative sources. Oxygen is also produced in the electrolysis of water, and can be used in the blast furnace for producing pig iron and/or in the converter steel mill for producing crude steel.
(14) The invention also covers the use of a chemical plant in combination with a biotechnological plant for coupling to a metallurgical plant.
(15) The plant complex for producing steel that is represented in
(16) In the blast furnace 1, pig iron 6 is obtained substantially from iron ore 4 and reducing agents 5, in particular coke and coal. Reduction reactions cause the production of a blast-furnace top gas 7, which contains nitrogen, CO and CO.sub.2 as the main constituents and a small proportion of H.sub.2. In the converter steel mill 2 that is arranged downstream of the blast-furnace process, pig iron 6 is converted into crude steel 8. By blowing oxygen onto the liquid pig iron, troublesome impurities, in particular carbon, silicon and phosphorus, are removed. For cooling, scrap may be added in amounts of up to 25% with respect to the amount of pig iron. Furthermore, lime is added for forming slag and an alloying agent. At the top of the converter, a converter gas 9 that has a very high proportion of CO is drawn off.
(17) The power-generating plant 3 is designed as a gas-turbine power-generating plant or gas-turbine and steam-turbine power-generating plant and is operated with a gas that comprises at least a partial amount of the blast-furnace top gas 7 that occurs in the production of pig iron in the blast furnace 1 and a partial amount of the converter gas 9 that occurs in the converter steel mill 2. A gas-conducting system is provided for carrying the gases.
(18) According to the overall balance represented in
(19) According to the representation in
(20) The blast-furnace top gas 7 and the converter gas 9 may be combined with one another in any way desired. The combination of gas streams 7, 9 depends on the desired syngas or the product that is to be produced in the chemical plant 12. It is also within the scope of the invention that the biotechnological plant 13 is fed a stream of gas of a composition that differs from the gas composition used in the chemical plant 12.
(21) In the case of the plant complex represented in
(22) Externally obtained electricity 16 and power-generating plant electricity 17, which is produced by the power-generating plant 3 of the plant complex, are used to cover the electricity demand of the plant complex. The externally obtained electricity 16 is preferably obtained completely or at least partially from renewable energy and originates for example from wind turbine generator plants, solar plants, hydroelectric power-generating plants and the like. To achieve operation of the plant complex that is as cost-effective as possible, electricity is bought in as external electricity 16 at times of low electricity prices and the power-generating process for supplying electricity is cut back. At times of high electricity prices, the partial stream 15.2 of the useful gas that is used in the power-generating plant 3 for producing electricity is increased.
(23) In the case of a change of the gas stream fed to the power-generating plant 3, the second partial stream 15.2 and the third partial stream 15.3 of the useful gas are changed alternately, so that the chemical plant 12 can be operated with a partial stream 15.1 of the useful gas that is subject to less operational fluctuations than the partial stream of useful gas 15.3 that is used in the biotechnological plant 13. The third partial stream of useful gas 15.3 is expediently controlled in such a way that the first partial stream of useful gas 15.1, used in the chemical plant 12, is operated constantly with a range of fluctuation of 20%.
(24) In the exemplary embodiment of
(25) The blast-furnace top gas 7, the converter gas 9 and the coke-oven gas 20 may be combined with one another in any way desired. The combination of gas streams 7, 9, 20 depends on the desired syngas or the product that is to be produced in the chemical plant 12. It is also within the scope of the invention that the biotechnological plant 13 is fed a stream of gas of a composition that differs from the gas composition used in the chemical plant 12.
(26) Also in the case of the plant concept represented in
(27) The first partial stream 15.1 of the useful gas, used in the chemical plant 12, may also be enriched with hydrogen 22 that is produced in an additionally connected plant for producing hydrogen 23 that is optionally provided.
(28) Many different arrangements of the described invention are possible without departing from the spirit and scope of the present invention. Embodiments of the present invention are described herein with the intent to be illustrative rather than restrictive. Alternative embodiments will become apparent to those skilled in the art that do not depart from its scope. A skilled artisan may develop alternative means of implementing the disclosed improvements without departing from the scope of the present invention.
(29) Further, it will be understood that certain features and subcombinations are of utility and may be employed without reference to other features and subcombinations and are contemplated within the scope of the claims. Not all steps listed in the various figures and description need to be carried out in the specific order described. The description should not be restricted to the specific described embodiments.