Heat integration in electrically heated reactors
The integration of an electrically heatable reactor with a preheater and heat integration device addresses the challenge of preheating in steam crackers, achieving CO2-neutral operation and flexible design by utilizing recycled by-products for efficient preheating and reducing power demand.
Patent Information
- Application Number
- JP2023520315
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-02
- Filing Date
- 2021-10-01
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2041-10-01
AI Technical Summary
The integration of electrically heated reactors into steam crackers is challenging due to the absence of a convection zone for preheating starting materials, which is typically provided by natural gas heating in conventional systems.
A plant and method that incorporates an electrically heatable reactor with a preheater and heat integration device, utilizing recycled by-products to preheat feedstock and process steam, allowing for partial energy recovery and reducing the need for external heating sources.
Achieves CO2-neutral operation and flexible design by using electrically generated heat, enabling efficient preheating and reducing power demand while maintaining reaction efficiency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a plant for producing a reaction product and to a method for heat integration in the production of a reaction product. [Background technology]
[0002] Production plants, such as steam crackers, are known in principle to those skilled in the art; see, for example, https: / / de.wikipedia.org / wiki / Steamcracken. In a steam cracker, naphtha is cracked at high temperatures in the presence of steam to obtain ethylene and propylene. For this purpose, the naphtha is preheated in the so-called convection zone of the steam cracker and hot steam is added. In the subsequent radiant zone, the naphtha is cracked into ethylene and propylene at approximately 850°C. Steam crackers are traditionally heated by burning natural gas, which is associated with carbon emissions. In conventional steam crackers, not only is the heat generated by natural gas combustion used for cracking, but the waste heat rising up the chimney is also used to preheat the naphtha in the convection zone. Such conventional production plants are known, for example, from U.S. Pat. No. 5,629,299, ... or U.S. Pat. No. 5,629,299.
[0003] Conventional furnaces are also known from US Pat. No. 5,629,299, US Pat. No. 5,629,299 and US Pat. No. 5,629,299.
[0004] Electrically heatable reactors are also known, for example, from US Pat. No. 5,629,299, ... and US Pat. No. 5,629,299.
[0005] An electrically heatable reactor can make it possible to achieve CO2-neutral operation of the reactor.
[0006] US Patent No. 5,949,999 describes a means for heating a fluid using at least one electrically conductive conduit for receiving the fluid and at least one voltage source connected to the at least one conduit, the at least one voltage source being configured to generate an alternating current in the at least one conduit, thereby heating the at least one conduit and thereby the fluid.
[0007] Patent Document 9 describes a means for heating a fluid, comprising at least one electrically conductive conduit and / or at least one electrically conductive conduit segment for containing the fluid and at least one DC current source and / or DC voltage source, wherein each conduit and / or conduit segment is assigned a respective DC current source and / or DC voltage source connected to the respective conduit and / or conduit segment, and the respective DC current source and / or DC voltage source is configured to generate an electric current in the respective conduit and / or conduit segment, which heats the respective conduit and / or conduit segment via Joule heat formed when the electric current passes through the electrically conductive tubing material, thereby heating the fluid.
[0008] Patent Document 10 describes an apparatus for heating a fluid, comprising at least one electrically conductive conduit for containing the fluid, at least one electrically conductive coil, and at least one alternating current source connected to the coil and adapted to supply an alternating current voltage to the coil. The coil is adapted to generate an electromagnetic field via the supplied alternating current voltage. The conduit and coil are arranged such that the electromagnetic field of the coil induces a current in the conduit, which heats the conduit by Joule heat generated when the current passes through the electrically conductive tubing, thereby heating the fluid. [Prior art documents] [Patent documents]
[0009] [Patent Document 1] European Patent No. 2653524 [Patent Document 2] U.S. Patent No. 4,361,478 [Patent Document 3] European Patent No. 0245839 [Patent Document 4] European Patent No. 3415587 [Patent Document 5] US Patent Application Publication No. 2006 / 116543 [Patent Document 6] German Patent Application Publication No. 102018132736 [Patent Document 7] US Patent Application Publication No. 2011 / 163003 [Patent Document 8] International Publication No. 2015 / 197181 Brochure [Patent Document 9] International Publication No. 2020 / 035575 Brochure [Patent Document 10] International Publication No. 2020 / 035574 Brochure [Patent Document 11] German Patent Application Publication No. 10317197 [Patent Document 12] International Publication No. 2017 / 186437 Brochure Summary of the Invention [Problem to be solved by the invention]
[0010] The integration of electrically heated reactors into steam crackers remains an open question. Without natural gas heating, the convection zone, and therefore the possibility of preheating the starting materials in particular, is also omitted. The problem of integrating electrically heated reactors into plants has not yet been solved. [Means for solving the problem]
[0011] It is therefore an object of the present invention to provide a plant for producing a reaction product and a method for heat integration in the production of a reaction product, which at least largely avoids the disadvantages of known devices and methods. In particular, it is an object of the present invention to realize the heat integration of an electrically heatable reactor in a plant, such as a plant for carrying out at least one endothermic reaction, a heating plant, a preheating plant, a steam cracker, a steam reformer, an alkane dehydrogenation unit, a reformer, a dry reformer, a styrene production unit, an ethylbenzene dehydrogenation unit, a urea, isocyanate, melamine cracker, a cracker, a catalytic cracker, a dehydrogenation unit.
[0012] This object has been achieved by a plant and a method having the features of the independent claims. Preferred embodiments of the invention are specified inter alia in the accompanying dependent claims and the dependent relations of the dependent claims.
[0013] In the following, the terms "have", "exhibit", "comprise" or "include", or any grammatical derivatives thereof, are used in a non-exclusive manner. Thus, these terms may relate to a situation in which, in addition to the features introduced by these terms, no further features are present, or to a situation in which one or more further features are present. For example, the terms "A has B", "A exhibits B", "A comprises B", or "A includes B" may relate either to a situation in which no further elements other than B are present in A (i.e., a situation in which a consists only of B), or to a situation in which, in addition to B, one or more further elements, such as element E, elements C and D, or even other elements, are present in A.
[0014] Furthermore, it should be noted that the terms "at least one" and "one or more," as well as grammatical derivatives of these terms or similar terms, when used in connection with one or more elements or features and intended to clarify that the element or feature may be provided singly or in plural, are generally used only once, e.g., upon the initial introduction of the feature or element. In subsequent new references to the feature or element, the corresponding terms "at least one" or "one or more" are generally no longer used, but this does not limit the possibility that the feature or element may be provided singly or in plural.
[0015] Furthermore, the terms "preferably," "particularly," "for example," or similar terms are used below in connection with optional features, but this does not limit alternative embodiments. Features introduced by these terms are therefore optional features and are not intended to limit the scope of protection of the claims, in particular the independent claims. The present invention can therefore also be implemented using different embodiments, as understood by those skilled in the art. Similarly, features introduced by the phrases "in one embodiment of the present invention" or "in an exemplary embodiment of the present invention" should be understood as optional features and are therefore not intended to limit the scope of protection of alternative embodiments or the independent claims. Furthermore, these introductory phrases are intended to leave open all options for combining the features introduced thereby with other features, even if they are described as optional features or non-optional.
[0016] A first aspect of the invention proposes a plant for producing a reaction product.
[0017] In the context of the present invention, a "plant" should be understood to mean a chemical production plant. By way of example, the plant may be selected from the group consisting of a plant for carrying out at least one endothermic reaction, a heating plant, a preheating plant, a steam cracker, a steam reformer, an alkane dehydrogenation unit, a reformer, a dry reformer, a styrene production unit, an ethylbenzene dehydrogenation unit, a urea, isocyanate, or melamine cracker, a cracker, a catalytic cracker, or a dehydrogenation unit. By way of example, the plant may be adapted to carry out at least one process selected from the group consisting of at least one endothermic reaction, preheating, steam cracking, steam reforming, alkane dehydrogenation, reforming, dry reforming, styrene production, ethylbenzene dehydrogenation, urea, isocyanate, or melamine cracking, cracking, catalytic cracking, or dehydrogenation.
[0018] The plant includes at least a preheater. The plant includes at least one feedstock supply adapted to supply at least one feedstock to the preheater. The preheater is adapted to preheat the feedstock to a predetermined temperature. The plant includes at least one electrically heatable reactor adapted to at least partially convert the preheated feedstock into reaction products and by-products. The plant includes at least one heat integration device adapted to at least partially supply the by-products to the preheater. The preheater is adapted to at least partially utilize the energy required to preheat the feedstock from the by-products.
[0019] In the context of the present invention, a "preheater" should be understood to mean at least one element of a plant adapted to preheat a feedstock to a predetermined temperature. The feedstock may have a first temperature during feeding. For example, the first temperature may be 100°C. The preheater may be adapted to heat the feedstock to a second temperature, which is higher than the first temperature. The predetermined temperature may be, for example, 500°C to 750°C. The predetermined temperature may depend on the feedstock, the intended chemical reaction, and / or the reaction products to be produced. The preheater may comprise at least one burner. The preheater may be adapted to generate an energy demand for preheating the feedstock by combustion of a gas, for example, methane. The gas may also be referred to as heating gas. As explained further below, recycled by-products may be combusted in the preheater to at least partially provide the energy required for heating in the preheater.
[0020] The plant may comprise at least one process steam supply adapted to supply at least one process steam to the preheater. The electrically heatable reactor may be adapted to convert a feedstock into cracked gases in the presence of the process steam. In the context of the present invention, "process steam" should be understood to mean steam in the presence of which a feedstock can be converted into reaction products and by-products. The process steam may be high-temperature process steam, for example, having a temperature of 180°C to 200°C. In the context of the present invention, a "process steam supply" may be an element of the plant adapted to supply process steam to the preheater. The process steam supply may comprise at least one pipe or pipe system.
[0021] In the context of the present invention, "feedstock" should be understood to mean a starting material, also known as a feedstock, from which a reaction product can be generated and / or produced by at least one chemical reaction. The feedstock may be, in particular, a reactant in which a chemical reaction is carried out. The feedstock may be a liquid or gaseous feedstock. The feedstock may comprise at least one element selected from the group consisting of methane, ethane, propane, butane, naphtha, ethylbenzene, diesel, condensates, bioliquids, biogas, pyrolysis oil, waste oil, and liquids from renewable sources. The bioliquids may be, for example, fats or oils or derivatives thereof derived from renewable sources, such as bio-oil or biodiesel. In the context of the present invention, a "feedstock supply" should be understood to mean an element adapted to supply the feedstock to the preheater. The feedstock supply may comprise at least one pipe or pipe system.
[0022] The feedstock and the process steam may each be fed to a preheater in a line and heated thereby. The preheater may be particularly adapted to superheat the feedstock. The plant may be adapted to mix the preheated feedstock with preheated process steam. The feedstock mixed with the process steam may be passed, for example via a further line, to a region of the preheater close to the burner and superheated. For example, the feedstock mixed with the process steam may be superheated to a temperature somewhat below the cracking temperature. The superheated fluid may then be passed to an electrically heatable reactor and cracked therein.
[0023] The plant may include at least one supply line adapted to supply a fluid preheated by a preheater, in particular superheated, to the electrically heatable reactor. In particular, a feedstock preheated by a preheater and / or a preheated mixture of feedstock and process steam may be supplied to the electrically heatable reactor via the supply line. In the context of the present invention, "fluid" should be understood to mean a gaseous medium and / or a liquid medium. The fluid may in particular be a mixture of a feedstock superheated by a preheater and process steam. For example, the fluid may be a hydrocarbon for pyrolysis, in particular a mixture of hydrocarbons for pyrolysis. The fluid may be, for example, water or steam, and may further comprise a hydrocarbon for pyrolysis, in particular a mixture of hydrocarbons for pyrolysis. The fluid may, for example, be a preheated mixture of hydrocarbons for pyrolysis and steam.
[0024] In the context of the present invention, a "reaction product" should be understood to mean the main product produced, also called a primary product or a value product. The plant may be adapted to carry out at least one chemical reaction, from which a main product and a by-product are produced. The reaction product may comprise at least one element selected from the group consisting of acetylene, ethylene, propylene, butene, butadiene, benzene, styrene, and synthesis gas. In the context of the present invention, a "by-product" should be understood to mean a further product of the chemical reaction produced in addition to the reaction product. The by-product may comprise, for example, an element selected from the group consisting of hydrogen, methane, ethane, and propane. In the context of the present invention, "at least partially" converting to a reaction product and a by-product should be understood to mean that embodiments in which the feedstock and / or the mixture of feedstock and process steam is completely converted are possible, as well as embodiments in which the feedstock and / or the mixture of feedstock and process steam is incompletely converted are possible.
[0025] In the context of the present invention, a "reactor," also known as a chemical reactor, is understood to mean a device adapted to carry out at least one chemical process and / or at least one chemical reaction. In the context of the present invention, an "electrically heatable" reactor is understood to mean an electrically powered reactor. An electrically heatable reactor may be adapted to heat a fluid present in the reactor using electric current. An electrically heatable reactor may be heatable with electric current. The energy required for the reaction in an electrically heatable reactor may be generated entirely by electric current, particularly in the form of Joule heat. In principle, it is possible to use electricity from any desired power source to heat the reactor. The electricity used may advantageously come from renewable energy sources, thus further increasing the plant's climate compatibility. Furthermore, the use of a preheater for producing the reaction product may mean that only partial energization for the process in the electrically heatable reactor is necessary. This may therefore limit power demand. An electrically heatable reactor may use an electrical and transformer concept independent of the rest of the plant.
[0026] Electrically heatable reactors differ from conventional furnaces, i.e., furnaces with a convection zone, as known from, for example, U.S. Patent No. 5,627,669, U.S. Patent No. 5,627,669, and U.S. Patent No. 5,627,669. The reactions occurring in an electrically heatable reactor are identical to those in conventional furnaces, but the energy for heating and endothermic reactions is generated from electricity, for example, by direct or indirect heating. For this purpose, electrically heatable reactors have a current supply, in particular one or more of a transformer for electrical connections, a switchgear, and additional electrical equipment. In contrast, conventional furnaces use radiant heat. In particular, in conventional furnaces, the energy for heating and endothermic reactions is generated from the combustion of natural gas, methane, or H2. Thus, electrically heatable reactors ensure that reactants, such as preheated naphtha and steam, react to produce products, and the energy required for the reactions is generated from electricity. Electrically heatable reactors allow for up to 100% CO2 reduction to be achieved. In contrast, conventional furnaces generate CO2 by burning heating gases. By implementing an electrically heatable reactor with a controller, it may be possible to achieve further energy reductions through optimization of reaction or temperature control. Electrically heatable reactions can achieve temperatures higher than those required for the process, but not as high as those achieved by combustion in conventional furnaces. To achieve these temperatures, electrically heatable reactors may use large electrical currents. Conventional furnaces do not use electrical currents but rather heat gas combustion. The design of the reaction space in an electrically heatable reactor may be influenced by electrical heating. In contrast, the design of the furnace space in a conventional furnace may be influenced by gas heating. Material selection for an electrically heatable reactor may be based on process engineering, such as reaction, coke formation, reaction temperature, etc., and electrical heating. In the case of direct heating, ohmic resistance may also be taken into account. In the case of indirect heating, greater freedom in material selection may be possible. In conventional furnaces, material selection is based solely on process engineering, such as reaction, coke formation, reaction temperature, etc.
[0027] Conventional furnaces have a convection zone, which is bounded by the radiation zone, and the convection zone is always located above the radiation zone. Heat integration in conventional furnaces is known to those skilled in the art. In conventional furnaces, the heat integration is comprised of, for example, the following heat exchangers: boiler feedwater preheater, naphtha preheater, process steam superheater, high-pressure steam superheater, and input material superheater. In conventional cracking furnaces, the tubes of these heat exchangers are arranged horizontally one above the other in the flue gas flow of the gas burners. In electrically heatable reactors, the convection zone does not necessarily have to be located above the furnace radiation zone. Because heating is performed via independent gas burners, the location can be more flexible. Because the electrically heatable reactor and the heat integration are separated from each other, there is flexibility in terms of design, location, and concept.
[0028] According to the present invention, it is proposed to utilize H2, methane, ethane, and all combustible substances produced from cracked gases and purified in the separation section to preheat the raw material and steam, also known as the feed stream. Therefore, an electrically heatable reactor can be involved in a downstream reaction, for example, the reaction of preheated naphtha with steam to obtain products. Combustion of recovered heating gases (H2, methane, ethane, etc.) allows them to be energetically utilized for preheating. Additional natural gas for preheating can also be obtained from an external source if necessary. Only partial heat integration is possible.
[0029] The electrically heatable reactor may include at least one device adapted to accommodate preheated raw materials. The electrically heatable reactor may include at least one reaction tube, also referred to as a conduit, through which a chemical reaction can proceed. The reaction tube may include, for example, at least one conduit and / or at least one conduit segment for accommodating a fluid. The terms conduit and conduit segment are used synonymously hereinafter. The reaction tube may further be adapted to transport a fluid preheated by a preheater through the electrically heatable reactor. The shape, surface area, and / or material of the reaction tube may be selected independently of the fluid being transported. The electrically heatable reactor may include multiple conduits. The electrically heatable reactor may include I conduits, where I is a natural number greater than or equal to 2. For example, the electrically heatable reactor may include at least 2, 3, 4, 5, or more conduits. The electrically heatable reactor may include, for example, up to 100 conduits. The conduits may be identical or different.
[0030] The pipes may include symmetric and / or asymmetric tubes and / or combinations thereof. In a purely symmetric embodiment, the electrically heatable reactor may include pipes of the same tube type. The terms "asymmetric tube" and "combination of symmetric and asymmetric tubes" should be understood to mean that the electrically heatable reactor may include any desired combination of tube types, which may be connected, for example, in parallel or in series as desired. "Tube type" may be understood to mean a category or type of pipe characterized by certain characteristics. A tube type may be characterized at least by characteristics selected from the group consisting of the horizontal configuration of the pipe, the vertical configuration of the pipe, the length of the inlet (l1) and / or outlet (l2) and / or transition (l3), the diameters of the inlet (d1) and outlet (d2) and transition (d3), the number of passes (n), the length per pass, the diameter per pass, the shape, the surface area, and the material. The electrically heatable reactor may include a combination of at least two different tube types connected in parallel and / or in series. For example, the electrically heatable reactor may be equipped with pipes of different lengths at the inlet (l1) and / or outlet (l2) and / or transition (l3). For example, the electrically heatable reactor may be equipped with pipes with asymmetry in the diameter of the inlet (d1) and / or outlet (d2) and / or transition (d3). For example, the electrically heatable reactor may be equipped with pipes with, for example, different numbers of passes. For example, the electrically heatable reactor may be equipped with pipes with passes of different lengths per pass and / or different diameters per pass. Any desired combination of any pipe types arranged in parallel and / or in series is in principle conceivable.
[0031] An electrically heatable reactor may include multiple inlets and / or outlets and / or product streams. Pipes of different or identical pipe types may be arranged in parallel and / or series with multiple inlets and / or outlets. Pipes may exist in different pipe types in the form of a modular system and may be selected and combined as desired depending on the intended application. The use of pipes of different pipe types allows for more precise temperature control and / or adaptation of the reaction when changing the reaction feed and / or selective yield and / or optimized process engineering. Pipes may have the same or different shapes and / or surface areas and / or materials.
[0032] The conduits can be connected in series, thus forming a conduit system for containing a fluid. A "conduit system" can be a device composed of at least two, particularly interconnected, conduits. The conduit system can include a supply conduit and a discharge conduit. The conduit system can include at least one inlet for receiving a fluid. The conduit system can include at least one outlet for discharging a fluid. The term "series connected" should be understood to mean that the conduits are fluidly connected to each other. Thus, the conduits can be arranged and connected so that a fluid flows continuously through the conduits. The conduits can be connected in parallel to each other so that a fluid can flow through at least two conduits in parallel. The conduits, particularly those connected in parallel, can be adapted to transport different fluids in parallel. The conduits connected in parallel can have different shapes and / or surface areas and / or materials, particularly for transporting different fluids. In particular, for transporting a fluid, several or all of the conduits can be configured in parallel, thereby dividing the fluid across the conduits configured in parallel. A combination of series and parallel connections is also conceivable.
[0033] The reactor vessel may, for example, comprise at least one electrically conductive conduit for containing a fluid. The term "electrically conductive conduit" should be understood to mean that the conduit, in particular the material of the conduit, is adapted to conduct electric current. However, embodiments in the form of non-electrically conductive conduits or conduits with low electrical conductivity are also conceivable.
[0034] The pipelines and the corresponding supply and discharge pipelines may be fluidly connected to each other. When electrically conductive pipelines are used, the supply and discharge pipelines may be galvanically isolated from each other. Galvanically isolated from each other should be understood to mean that the pipelines and the supply and discharge pipelines are isolated from each other so that no electrical conduction and / or permissible electrical conduction occurs between the pipelines and the supply and discharge pipelines. The electrically heatable reactor may include at least one insulator, in particular multiple insulators. Galvanic isolation between each pipeline and the supply and discharge pipelines may be ensured by the insulators. The insulators may ensure the free passage of fluids.
[0035] The electrically heatable reactor may be electrically heated by the use of multi-phase alternating current and / or single-phase alternating current and / or direct current and / or radiation.
[0036] The electrically heatable reactor may comprise at least one alternating current source and / or at least one alternating voltage source. The alternating current source and / or the alternating voltage source may be single-phase or multi-phase. The term "alternating current source" should be understood to mean a current source adapted to provide alternating current. "Alternating current" should be understood to mean a current whose polarity changes in a regular, repeating pattern. The alternating current may be, for example, a sinusoidal alternating current. A "single-phase" alternating current source should be understood to mean an alternating current source that supplies a single-phase current. A "multi-phase" alternating current source should be understood to mean an alternating current source that supplies a current having two or more phases. An "alternating voltage source" should be understood to mean a voltage source adapted to provide an alternating voltage. "Alternating voltage" should be understood to mean a voltage whose magnitude and polarity follow a regular, repeating pattern. The alternating voltage may be, for example, a sinusoidal alternating voltage. The voltage generated by the alternating voltage source results in a flow of current, in particular a flow of alternating current. A "single-phase" alternating voltage source should be understood to mean an alternating voltage source that provides a single-phase current. A "polyphase" AC voltage source should be understood to mean an AC voltage source that provides two or more phases of current.
[0037] The electrically heatable reactor may include multiple single-phase or multi-phase AC current or voltage sources. Each of the conduits may have its own assigned AC current or voltage source electrically connected to the respective conduit, particularly via at least one electrical connection. Embodiments are also contemplated in which at least two conduits share an AC current and / or AC voltage source. To connect the AC current or AC voltage sources and the respective conduits, the electrically heatable reactor may include 2 to N feed conductors and 2 to N return conductors, where N is a natural number greater than or equal to 3. Each AC current and / or AC voltage source may be adapted to generate a current in the respective conduit. The AC current and / or AC voltage sources may be controlled or uncontrolled. The AC current and / or AC voltage sources may be configured with or without the option of controlling at least one electrical starting value. "Starting value" should be understood to mean a current value and / or a voltage value and / or a current signal and / or a voltage signal. An electrically heatable reactor can include 2 to M different AC current and / or AC voltage sources, where M is a natural number greater than or equal to 3. The AC current and / or AC voltage sources may be electrically controllable independently of one another. Thus, for example, it is possible to achieve different currents in each line and different temperatures in the lines.
[0038] An electrically heatable reactor can be configured, for example, as described in U.S. Patent No. 6,277,999, the contents of which are incorporated herein by reference, and includes at least one electrically conductive conduit for containing a fluid and at least one voltage source connected to the at least one conduit, the at least one voltage source configured to generate an alternating current in the at least one conduit that heats the at least one conduit and thereby heats the fluid.
[0039] An electrically heatable reactor can be configured, for example, as described in U.S. Patent No. 6,277,999, the contents of which are incorporated herein by reference, and includes at least one electrically conductive conduit for containing a fluid, at least one electrically conductive coil, and at least one alternating current source connected to the coil and adapted to supply an alternating current voltage to the coil. The coil can be adapted to generate an electromagnetic field via the supplied alternating current voltage. The conduit and coil can be arranged such that the electromagnetic field of the coil induces a current in the conduit, heating the conduit and thereby heating the fluid by Joule heating formed when the current passes through the electrically conductive tubing.
[0040] The reactor tube can be configured, for example, as described in European Patent Application No. 20157516.4, filed February 14, 2020, the contents of which are incorporated herein by reference. The reactor tube can include at least one electrically conductive conduit for containing a fluid. The electrically heatable reactor can include at least one single-phase AC current source and / or at least one single-phase AC voltage source. Each conduit can have an assigned single-phase AC current source and / or single-phase AC voltage source connected to it. Each single-phase AC current source and / or single-phase AC voltage source can be configured to generate an electric current in the conduit, which heats the conduit and heats the fluid by Joule heating formed when the electric current passes through the electrically conductive tubing material. The single-phase AC current source and / or single-phase AC voltage source can be electrically connected to the conduits such that the generated AC current flows into the conduits via a supply conductor and flows back to the AC current source and / or AC voltage source via a return conductor. When a conduit is heated by an alternating current introduced into this conduit by an alternating current source and / or an alternating voltage source, the fluid flowing through the conduit can be heated therein, thus generating Joule heat in the conduit that is transferred to the fluid and thus heating said fluid as it flows through the conduit. A "supply conductor" should be understood to mean any desired electrical conductor, in particular a supply conductor, and the term "supply" indicates the direction of flow from an alternating current source or an alternating voltage source to the conduit. A "return conductor" should in principle be understood to mean any desired electrical conductor adapted to conduct an alternating current, in particular to an alternating current source or an alternating voltage source, after passing through the conduit. The term "return" indicates the direction of flow from the conduit to the alternating current source or an alternating voltage source.
[0041] The electrically heatable reactor may comprise at least one direct current source and / or at least one direct current voltage source. A "direct current source" should be understood to mean a device adapted to provide a direct current. A "direct current voltage source" should be understood to mean a device adapted to provide a direct current voltage. The direct current source and / or the direct current voltage source are configured to generate a direct current in the respective conduits. The term "direct current" should be understood to mean a current whose magnitude and direction are substantially constant. The term "direct current voltage" should be understood to mean a substantially constant voltage. A current or voltage may be understood to be "substantially constant" if its variations are not significant for the intended effect.
[0042] The electrically heatable reactor may include multiple DC current and / or DC voltage sources. Each of the conduits may have a respective DC current and / or DC voltage source assigned to it, particularly electrically connected to it via at least one electrical connection. To connect the DC current and / or DC voltage sources to the respective conduits, the electrically heatable reactor 122 may include 2 to N positive terminals and / or conductors and 2 to N negative terminals and / or conductors, where N is a natural number greater than or equal to 3. Each DC current and / or DC voltage source may be adapted to generate an electric current in the respective conduit. The generated electric current may heat the respective conduit by Joule heating, which is formed when the electric current passes through the conductive tubing, thereby heating the fluid.
[0043] The reactor tube can be configured, for example, as described in U.S. Patent No. 6,277,999, the contents of which are incorporated herein by reference, and includes at least one electrically conductive conduit and / or at least one electrically conductive conduit segment for containing a fluid, and at least one DC current source and / or DC voltage source. Each DC current source and / or DC voltage source can be configured to generate an electric current in each conduit and / or each conduit segment, which can heat the respective conduit and / or each conduit segment by Joule heating formed when the electric current passes through the electrically conductive tubing, thereby heating the fluid.
[0044] An electrically heatable reactor may be electrically heatable, for example, by the use of radiation, in particular by the use of induction, infrared and / or microwave radiation.
[0045] The electrically heatable reactor may be heatable, for example, through the use of at least one electrically conductive medium. A current or voltage source, such as an AC current, an AC voltage, or a DC current or a DC voltage, may be adapted to generate an electric current in the electrically heatable medium, heating the electrically heatable reactor by Joule heat generated when the electric current passes through the electrically heatable medium. The electrically conductive medium and the electrically heatable reactor may be arranged relative to each other such that the electrically conductive medium at least partially surrounds the electrically heatable reactor and / or the electrically heatable reactor at least partially surrounds the electrically heatable medium. The electrically conductive medium may be in the solid, liquid, and / or gaseous state of matter selected from the group consisting of solids, liquids, and gases, and mixtures, such as emulsions and suspensions. The electrically conductive medium may be, for example, electrically conductive granules or an electrically conductive fluid. The electrically conductive medium may include at least one material selected from the group consisting of carbon, carbides, silicides, electrically conductive oils, salt melts, inorganic salts, and solid / liquid mixtures. The electrically conductive medium may have a resistance of 0.1 Ωmm. 2 / m≦ρ≦1000Ωmm 2 / m, preferably 10 Ωmm 2 / m≦ρ≦1000Ωmm 2 It can have a resistivity ρ of 1 / m.
[0046] The electrically heatable reactor may be adapted to heat the raw material to a temperature between 200°C and 1700°C. The reactor may in particular be adapted to further heat a preheated fluid to a predetermined or prespecified temperature value by heating. The temperature range may be independent of the application. The fluid may be heated, for example, to a temperature in the range between 200°C and 1700°C, preferably between 300°C and 1400°C, particularly preferably between 400°C and 875°C.
[0047] The electrically heatable reactor may be part of a steam cracker, for example. "Steam cracking" refers to the process of converting relatively long-chain hydrocarbons, such as naphtha, propane, butane, and ethane, as well as gas oil and hydrogenated wax, into short-chain hydrocarbons by thermal cracking using oil, biodiesel, liquids from renewable feedstocks, pyrolysis oil, and waste oil in the presence of steam. Steam cracking can produce ethylene, propylene, butenes and / or butadiene, and benzene as reaction products. Methane, ethane, propane, and / or hydrogen can be produced, for example, as by-products. The electrically heatable reactor can be adapted for use in a steam cracker to heat preheated fluids to temperatures ranging from 550°C to 1700°C.
[0048] The electrically heatable reactor can be part of a reforming furnace, for example, particularly for steam reforming. "Steam reforming" is understood to mean a process for producing hydrogen and carbon oxides from water and a carbon-containing energy carrier, particularly a hydrocarbon, such as natural gas, light gasoline, methanol, biogas, or biomass. The fluid can be heated, for example, to a temperature ranging from 200°C to 875°C, preferably from 400°C to 700°C. Usable raw materials, also known as starting materials, include bio-oil, biodiesel, renewable feedstocks, pyrolysis oil, and waste oil. H2 and CO can be formed as the main products, with methane, ethane, or propane formed as by-products.
[0049] The electrically heatable reactor may be, for example, part of an apparatus for dehydrogenation. "Dehydrogenation" should be understood to mean the process of producing alkenes by dehydrogenation of alkanes, for example, dehydrogenation of butane to butenes (BDH) or dehydrogenation of propane to propene (PDH). The apparatus for dehydrogenation may be adapted to heat the fluid to a temperature in the range of 400°C to 700°C. The raw material used may be ethylbenzene. Styrene and acetylene may be formed as main products at 1700°C.
[0050] However, any temperature and temperature range is contemplated.
[0051] The plant may comprise at least one atmospheric connection adapted to allow atmospheric exchange of the reaction space atmosphere, in particular from the reaction space of the reactor to the preheater, which in particular allows the reaction space atmosphere to be evacuated with the flue gas flow of the preheater.
[0052] The plant may comprise at least one safety device adapted to allow a return flow of the feed from the electrically heatable reactor to the preheater. In the context of the present invention, a "safety device" should be understood to mean a device that allows venting of the electrically heatable reactor in the event of a malfunction.
[0053] The plant may include at least one ventilation device. In the context of the present invention, "ventilation device" should be understood to mean a device adapted to cool any desired element of the plant. The ventilation device may be adapted to cool a power source for heating an electrically heatable reactor. The ventilation device may be adapted to ensure the operating temperature, in particular the temperature range, of the power source. This can prevent overheating of the power source. The ventilation device may be adapted to cool the power source using air, in particular ambient air. The ambient air can be heated during and / or as a result of the cooling process. The ventilation device may be adapted to supply ambient air, in particular ambient air heated by the power source cooling, to a preheater. The heated ambient air can be used directly in the preheater without the need for additional heating of the ambient air.
[0054] The plant may comprise at least one heat exchanger, also called a heat transfer device, adapted to terminate the ongoing chemical reaction of the reaction products and / or by-products. The heat exchanger is arranged in the plant downstream of the electrically heatable reactor in the direction of fluid transport. The heat exchanger may be adapted to cool the hot cracking gas produced by the electrically heatable reactor, in particular to a temperature of 350°C to 400°C. The heat exchanger may, for example, comprise a thermal cooler, in particular a high-pressure boiler feedwater cooler.
[0055] The plant may include at least one separation section adapted to separate reaction products and by-products. In the context of the present invention, "separation section" should be understood to mean an apparatus adapted to separate substances present in the cracked gas from each other. Separation may include purification. The separation section may be adapted to perform at least one separation process, for example at least one distillation, in particular rectification. The separation section may further include an absorption and / or extraction section and a compressor adapted to compress the cracked gas. The compressor may be located upstream of the separation element with respect to its placement in the process. The separation section may be adapted to purify the cracked product using various process engineering separation processes. The separation process may include one or more of distillation, extraction, rectification, adsorption, absorption, compression, hydrogenation, and phase separation. Separation elements for performing the separation process may be located in processes downstream of cracking and compression. Such separation processes and processes are known to those skilled in the art. The separation section may be adapted to ensure that the main product produced is in a pure form after passing through the separation section.
[0056] The plant may further include at least one steam system. The steam system may include at least one steam separator, also known as a steam drum. The steam system may be adapted to preheat boiler feedwater in a preheater and introduce it into the steam drum. The steam system may include at least one connection between the steam drum and the heat exchanger so that the boiler feedwater from the steam drum can be introduced into the heat exchanger. The heat exchanger may be adapted to return the boiler feedwater and saturated steam to the steam drum. The steam system may further include at least one connection between the steam drum and a preheater so that the saturated steam from the steam drum can pass through the preheater. The preheater may be adapted to superheat the saturated steam for at least a short period of time. The resulting superheated high-pressure steam exits the preheater and can be utilized to drive a turbine, for example, to generate electricity.
[0057] The plant comprises at least one heat integration device. In the context of the present invention, "heat integration device" should be understood to mean a device adapted to use, in particular reuse or further use, the generated by-products to recover heat and produce reaction products. Undesired cracked gases, in particular methane and hydrogen, ethane and propane fractions, can be recycled to the preheater. In particular, the excess methane fraction generated by the electrically heatable reactor can be recycled to the preheater. The heat integration device is adapted to at least partially supply the by-products to the preheater. The heat integration device can comprise at least one pipe adapted to at least partially guide and / or transport the by-products from the electrically heatable reactor, in particular from the separation section, to the preheater. In the context of the present invention, "at least partially" should be understood to mean that embodiments are conceivable in which the generated by-products are completely supplied to the preheater, as well as embodiments in which only a portion of the generated by-products are supplied to the preheater. The preheater is adapted to at least partially utilize the energy required to preheat the feedstock from the by-products. The preheater may be adapted to at least partially utilize the energy required to heat the feedstock and process steam from the by-products. The recycled by-products can be burned in the preheater to at least partially cover the energy demand of the process therein. The excess methane fraction from the cracked gas can be used to ignite and heat the preheater. In the context of the present invention, "at least partially generated" should be understood to mean that energy is completely generated from the by-products, and / or embodiments are conceivable in which additional gas for combustion is supplied to the preheater, for example, from another plant, a conventional reactor based on a combustion furnace, and / or an additional electrically heatable reactor. Unsupplied by-products may be discharged, for example, to a further plant or to a further area of the plant, for example, for the production of further products or as semi-finished products. Possible by-products include ethane and / or propane.
[0058] The plant may comprise at least one feedstock integrator adapted to supply the preheater with feedstock not converted by the electrically heatable reactor. In the context of the present invention, "feedstock integrator" should be understood to mean a device adapted to use, in particular to reuse or further use, the unconverted feedstock as a feedstock for producing a reaction product. The feedstock integrator may comprise at least one conduit adapted to at least partially conduct and / or transport the unconverted feedstock from the electrically heatable reactor, in particular from a separation section, to the preheater.
[0059] The electrically heatable reactor can be fully integrated into existing plants, such as conventional steam crackers, without the need for a convection zone. This is possible, in particular, due to the use of excess methane fraction and the presence of a separation section. This allows the use of conventional technology with known dimensions outside the reactor space.
[0060] Up-numbering of electrically heatable reactors may be possible, similar to existing furnaces based on gas combustion. The plant may comprise multiple electrically heatable reactors. The plant may further comprise at least one reactor with an integrated convection zone. A reactor with an integrated convection zone should be understood to mean a reactor adapted to generate the energy required to heat a fluid from the combustion of a heating gas, in particular natural gas, methane, or H2. The integrated convection zone of the reactor may be defined by a radiant zone.
[0061] Upscaling of electrically heatable reactors may be possible, similar to existing furnaces based on gas combustion. Increasing the diameter and / or length of the electrically heatable reactor may allow for the production of larger amounts of reaction product.
[0062] In a further aspect, the present invention proposes a method for heat integration in the production of a reaction product using a plant according to the invention. The method steps may be performed in the specified order, one or more steps may also be performed at least partially simultaneously, and one or more steps may be repeated multiple times. Furthermore, further steps may also be performed, whether or not mentioned herein.
[0063] The method is: supplying at least one feedstock to the preheater via at least one feedstock supply; Preheating the raw material to a predetermined temperature in a preheater; at least partially converting the preheated feedstock into reaction products and by-products using at least one electrically heatable reactor; at least partially feeding the by-products to a preheater using at least one heat integration device; generating the energy required to preheat the feedstock using a preheater at least in part from the by-products; Includes.
[0064] With regard to embodiments and definitions, reference may be made to the above description of the plant.
[0065] The plant and method according to the present invention exhibit many advantages over known devices and methods. The plant and method according to the present invention enable the integration of an electrically heatable reactor into a chemical production plant, particularly heat integration. The energy required for preheating can be covered by by-products also produced during the production of the reaction product. The additional supply of fuel for the preheating and cracking processes can be avoided by using an electrically heatable reactor. Electricity for operating the electrically heatable reactor can be obtained from renewable sources and / or self-generated via the proposed steam system. The plant according to the present invention allows for an improved energy balance and reduced emissions, such as CO2, compared to plants based on combustion furnaces.
[0066] In summary, the following embodiments are particularly preferred in the context of the present invention:
[0067] Embodiment 1: A plant for producing a reaction product, the plant comprising at least one preheater, the plant comprising at least one feedstock supply adapted to supply at least one feedstock to the preheater, the preheater adapted to preheat the feedstock to a predetermined temperature, the electrically heatable reactor adapted to at least partially convert the preheated feedstock into a reaction product and a by-product, the plant comprising at least one heat integration device adapted to at least partially supply the by-product to the preheater, the preheater adapted to at least partially utilize the energy required to preheat the feedstock from the by-product.
[0068] Embodiment 2: The plant of embodiment 1, characterized in that the plant comprises at least one feedstock integration device adapted to supply the preheater with feedstock not converted by the electrically heatable reactor.
[0069] Embodiment 3: The plant according to embodiment 1 or 2, characterized in that the plant comprises at least one ventilation device, the ventilation device being adapted to supply ambient air to the preheater, and the ventilation device being further adapted to cool the power source for heating the electrically heatable reactor.
[0070] Embodiment 4: A plant according to any one of embodiments 1 to 3, characterized in that the electrically heatable reactor is heatable by electric current.
[0071] Embodiment 5: A plant according to any one of embodiments 1 to 4, characterized in that the electrically heatable reactor is electrically heatable by the use of multi-phase alternating current and / or single-phase alternating current and / or direct current and / or radiation and / or induction.
[0072] Embodiment 6: A plant according to any one of embodiments 1 to 5, characterized in that the electrically heatable reactor is adapted to heat the feedstock to a temperature in the range of 200°C to 1700°C, preferably to a temperature in the range of 300°C to 1400°C, particularly preferably to a temperature in the range of 400°C to 875°C.
[0073] Embodiment 7: A plant according to any one of embodiments 1 to 6, characterized in that the plant comprises at least one heat exchanger adapted to terminate an ongoing chemical reaction of the reaction products and / or by-products.
[0074] Embodiment 8: A plant according to any one of embodiments 1 to 7, characterized in that the plant comprises at least one separation section adapted to separate the reaction products and by-products.
[0075] Embodiment 9: A plant according to any one of embodiments 1 to 8, characterized in that the plant comprises at least one atmospheric-side connection adapted to allow atmospheric exchange from the electrically heatable reactor to the preheater.
[0076] Embodiment 10: A plant according to any one of embodiments 1 to 9, characterized in that the plant comprises at least one safety device adapted to allow a return flow of the feedstock from the electrically heatable reactor to the preheater.
[0077] Embodiment 11: The plant according to any of embodiments 1 to 10, characterized in that the plant comprises at least one process steam supply adapted to supply at least one process steam to the preheater, the electrically heatable reactor adapted to convert the feedstock into cracked gases in the presence of the process steam, and the preheater adapted to at least partially utilize the energy required to preheat the feedstock from the by-products.
[0078] Embodiment 12: The plant according to any one of embodiments 1 to 11, wherein the feedstock comprises at least one member selected from the group consisting of methane, ethane, propane, butane, naphtha, ethylbenzene, diesel, condensates, bioliquids, biogas, pyrolysis oil, waste oil and liquids from renewable feedstocks.
[0079] Embodiment 13: The plant of any one of embodiments 1 to 12, wherein the reaction product comprises at least one member selected from the group consisting of acetylene, ethylene, propylene, butene, butadiene, benzene, styrene, and synthesis gas.
[0080] Embodiment 14: The plant of any one of embodiments 1 to 13, wherein the by-products comprise at least one member selected from the group consisting of hydrogen, methane, ethane, and propane.
[0081] Embodiment 15: The plant according to any one of embodiments 1 to 14, characterized in that the plant is selected from the group consisting of a plant for carrying out at least one endothermic reaction, a heating plant, a preheating plant, a steam cracker, a steam reformer, an alkane dehydrogenation unit, a reformer, a dry reformer, a styrene production unit, an ethylbenzene dehydrogenation unit, a urea, isocyanate, melamine cracker, a cracker, a catalytic cracker, a dehydrogenation unit.
[0082] Embodiment 16: A plant according to any one of embodiments 1 to 15, characterized in that the plant comprises a plurality of electrically heatable reactors.
[0083] Embodiment 17: The plant of any of embodiments 1 to 16, wherein the plant further comprises at least one reactor with an integral convection zone.
[0084] Embodiment 18: A method for heat integration in the production of a reaction product using a plant according to any one of plant embodiments 1 to 17, the method comprising: supplying at least one feedstock to the preheater via at least one feedstock supply; Preheating the raw material to a predetermined temperature in a preheater; at least partially converting the preheated feedstock into reaction products and by-products using at least one electrically heatable reactor; at least partially feeding the by-products to a preheater using at least one heat integration device; generating the energy required to preheat the feedstock using a preheater at least in part from the by-products; A method comprising:
[0085] Further details and features of the invention are apparent from the following description of preferred exemplary embodiments, in particular in conjunction with the dependent claims. Each feature may be realized alone or in multiple combinations with one another, without the invention being limited by these embodiments. The exemplary embodiments are represented diagrammatically in the drawings. The same reference numbers in the different figures describe identical or functionally identical or functionally corresponding elements. [Brief explanation of the drawings]
[0086] [Figure 1] 1 is a schematic diagram of an exemplary embodiment of a plant according to the invention; [Figure 2] 1 is a schematic diagram of an exemplary embodiment of a plant according to the invention; [Figure 3] 1 is a schematic diagram of an exemplary embodiment of a plant according to the invention; [Figure 4] 1 is a schematic diagram of an exemplary embodiment of a plant according to the invention; [Figure 5] 2 is a schematic diagram of a further exemplary embodiment of a plant according to the invention in the form of a steam cracker; FIG. DETAILED DESCRIPTION OF THE INVENTION
[0087] FIG. 1 shows a schematic diagram of an exemplary embodiment of a plant 110 of the present invention for producing a reaction product, represented generally by arrow 112 in FIG. 1 . Plant 110 may be a chemical production plant. For example, plant 110 may be selected from the group consisting of a plant for performing at least one endothermic reaction, a heating plant, a preheating plant, a steam cracker, a steam reformer, an alkane dehydrogenator, a reformer, a dry reformer, a styrene production plant, an ethylbenzene dehydrogenator, a urea, isocyanate, or melamine cracker, a cracker, a catalytic cracker, or a dehydrogenation plant. Plant 110 may be adapted to perform at least one process selected from the group consisting of at least one endothermic reaction, preheating, steam cracking, steam reforming, dehydrogenation, reforming, dry reforming, styrene production, ethylbenzene dehydrogenation, urea, isocyanate, or melamine cracking, cracking, catalytic cracking, or dehydrogenation.
[0088] The plant 110 includes at least one preheater 114. The preheater 114 is adapted to preheat the feedstock to a predetermined temperature. The feedstock may have a first temperature during feeding. For example, the first temperature may be 100°C. The preheater 114 may be adapted to heat the feedstock to a second temperature, the second temperature being higher than the first temperature. The predetermined temperature may be, for example, 500°C to 750°C. The predetermined temperature may depend on the feedstock, the intended chemical reaction, and / or the reaction products to be produced. The preheater 114 may include at least one burner 116, as shown in FIG. 5. The preheater 114 may be adapted to generate energy demand for preheating the feedstock by combustion of a gas, for example, methane. Recycled by-products also generated during the production of the reaction products may be combusted in the preheater 114 to at least partially provide the energy required for heating in the preheater 114.
[0089] The feedstock may be, in particular, a reactant in which a chemical reaction takes place. The feedstock may be a liquid or gaseous feedstock. The feedstock may comprise at least one member selected from the group consisting of methane, ethane, propane, butane, naphthenics, ethylbenzene, diesel, condensates, bioliquids, pyrolysis oils, waste oils, and liquids from renewable sources. The plant 110 comprises at least one feedstock supply 118, represented diagrammatically by an arrow in FIG. 1 . The feedstock supply 118 is adapted to supply at least one feedstock to the preheater 114. The feedstock supply 118 may comprise at least one pipeline or pipeline system.
[0090] The plant 110 may include at least one process steam supply 120 adapted to supply process steam to the preheater 114 at least once. The process steam supply 120 is also represented as an arrow in FIG. 1 . The process steam may be, in particular, steam in the presence of which raw materials may be converted into reaction products and by-products. The process steam may be high-temperature process steam, for example, having a temperature of 180°C to 200°C. The process steam supply 120 may be adapted to supply process steam to the preheater 114. The process steam supply 120 may include at least one pipeline or pipeline system.
[0091] The plant 110 includes at least one electrically heatable reactor 122. The electrically heatable reactor 122 is adapted to at least partially convert a preheated feedstock into reaction products and by-products. The electrically heatable reactor 122 may be adapted to convert the feedstock into cracked gases in the presence of process steam.
[0092] The plant 110 may include at least one supply line 124 (see, for example, FIGS. 4 and 5 ) adapted to supply a fluid preheated by the preheater 114, in particular superheated, to the electrically heatable reactor 122. In particular, the feedstock preheated by the preheater 114 and / or a preheated mixture of the feedstock and process steam may be supplied to the electrically heatable reactor 122 via the supply line 124. The fluid may be a gaseous medium and / or a liquid medium. In particular, the fluid may be a mixture of the feedstock superheated by the preheater 114 and process steam. The fluid may be, for example, a hydrocarbon to be pyrolyzed, in particular a mixture of hydrocarbons to be pyrolyzed. The fluid may be, for example, water or steam, and may further include a hydrocarbon to be pyrolyzed, in particular a mixture of hydrocarbons to be pyrolyzed. The fluid may be, for example, a preheated mixture of the hydrocarbon to be pyrolyzed and steam.
[0093] The plant 110 may be adapted to allow a chemical reaction to proceed, producing a primary product and a secondary product. The reaction product may include at least one element selected from the group consisting of acetylene, ethylene, propylene, butene, butadiene, benzene, styrene, and syngas. The secondary product may be an additional product of the chemical reaction produced in addition to the reaction product. The secondary product may include at least one element selected from the group consisting of hydrogen, methane, ethane, and propane.
[0094] The electrically heatable reactor 122 may be adapted to allow at least one chemical process to proceed and / or allow at least one chemical reaction to occur. The electrically heatable reactor 122 may be an electrically powered reactor. The electrically heatable reactor 122 may be adapted to heat a fluid present in the reactor using an electric current. The electrically heatable reactor 122 may be heatable by an electric current. The supply of electric current is represented by arrow 130 in FIG. 1 . In principle, electricity from any desired power source can be used to heat the reactor 122. Electricity from renewable energy sources can be advantageously used, thus further increasing the climate compatibility of the plant 110. Furthermore, the use of a preheater 114 to produce the reaction product can result in only a partial power supply for the process in the electrically heatable reactor as required. This can limit power demand. An electrical and transformer concept independent of the rest of the plant 110 may be possible for the electrically heatable reactor 122.
[0095] The electrically heatable reactor 122 may include at least one device adapted to accommodate preheated raw materials. The electrically heatable reactor 122 may include at least one reaction tube 126, also referred to as a conduit, through which a chemical reaction may proceed (see FIG. 5). The reaction tube 126 may include, for example, at least one conduit 128 and / or at least one conduit segment for accommodating a fluid. The reaction tube 126 may further be adapted to transport a fluid preheated by the preheater 114 through the electrically heatable reactor 122. The shape and / or surface area and / or material of the reaction tube 126 may be independent of the fluid being transported. The electrically heatable reactor 122 may include multiple conduits 128. The electrically heatable reactor 122 may include L conduits 128, where L is a natural number greater than or equal to 2. For example, the electrically heatable reactor 122 may include at least 2, 3, 4, 5, or more conduits 128. The electrically heatable reactor 122 can include, for example, up to 100 lines 128. The lines 128 can be identical or different.
[0096] The conduits 128 may include symmetric and / or asymmetric tubes and / or combinations thereof. In the case of a purely symmetric configuration, the electrically heatable reactor 122 may include conduits 128 of the same tube type. The tube type may be characterized by at least one feature selected from the group consisting of the horizontal configuration of the conduits 128, the vertical configuration of the conduits 128, the length of the inlet (l1) and / or outlet (l2) and / or transition (l3), the diameter of the inlet (d1) and outlet (d2) and / or transition (d3), the number of passes n, the length per pass, the diameter per pass, the shape, the surface area, and the material. The electrically heatable reactor 122 may also include a combination of at least two different tube types connected in parallel and / or in series. For example, the electrically heatable reactor 122 may include conduits 128 of different lengths at the inlet (l1) and / or outlet (l2) and / or transition (l3). The electrically heatable reactor may, for example, comprise pipes with asymmetry in the diameter of the inlet (d1) and / or outlet (d2) and / or transition (d3). For example, the electrically heatable reactor may comprise pipes 128 with, for example, a different number of passes. The electrically heatable reactor 122 may, for example, comprise pipes 128 with passes with different lengths per pass and / or different diameters per pass. Any desired combination of any pipe types in parallel and / or series is in principle conceivable.
[0097] The electrically heatable reactor 122 may include multiple inlets and / or outlets and / or product streams. Pipes 128 of different or identical pipe types may be arranged in parallel and / or series with multiple inlets and / or outlets. Pipes 128 may exist in different pipe types in the form of a modular system and may be selected and combined as desired depending on the intended application. The use of pipes 128 of different pipe types allows for more precise temperature control and / or adaptation of the reaction when changing the reaction feed and / or selective yield and / or optimized process engineering. Pipes 128 may have the same or different shapes and / or surface areas and / or materials.
[0098] The conduits 128 can be connected in series, thus forming a pipe system for containing a fluid. The pipe system may include a supply pipe and a discharge pipe. The conduit system can include at least one inlet for receiving a fluid. The conduit system can include at least one outlet for discharging a fluid. The conduits 128 can be arranged and connected so that a fluid flows continuously through the conduits 128. The conduits 128 can be connected in parallel with each other so that a fluid can flow through at least two conduits 128 in parallel. The conduits 128, particularly the conduits 128 connected in parallel, can be adapted to transport different fluids in parallel. The conduits 128 connected in parallel can have different shapes and / or surface areas and / or materials, particularly for transporting different fluids. In particular, for transporting a fluid, several or all of the conduits 128 can be configured in parallel, thereby dividing the fluid among the conduits 128 configured in parallel. Combinations of series and parallel connections are also conceivable.
[0099] The reaction vessel 126 may, for example, include at least one electrically conductive conduit 128 for containing a fluid, although embodiments with non-conductive conduits 128 or conduits 128 with low conductivity are also contemplated.
[0100] The lines 128 and the corresponding supply and discharge lines 128 may be fluidly connected to one another. When electrically conductive lines 28 are used, the supply and discharge lines 128 may be galvanically isolated from one another. The electrically heatable reactor 122 may include at least one insulator, not shown, and in particular multiple insulators. Galvanic isolation between the respective lines 128 and the supply and discharge lines 128 may be ensured by the insulators. The insulators may ensure the free passage of fluid.
[0101] The electrically heatable reactor 122 may be electrically heated by the use of multi-phase alternating current and / or single-phase alternating current and / or direct current and / or radiation.
[0102] The electrically heatable reactor 122 may include at least one AC current source and / or at least one AC voltage source. The AC current source and / or AC voltage source may be single-phase or multi-phase. The AC current may be, for example, a sinusoidal AC current. The AC voltage may be, for example, a sinusoidal AC voltage. The voltage generated by the AC voltage source results in a current flow, particularly an AC current flow. The electrically heatable reactor 122 may include multiple single-phase or multi-phase AC current sources or AC voltage sources. Each of the conduits 128 may have its own assigned AC current source and / or AC voltage source electrically connected to the respective conduit 128, particularly via at least one electrical connection. Embodiments in which at least two conduits 128 share an AC current source and / or AC voltage source are also contemplated. To connect the AC current source or AC voltage source and the respective conduits 128, the electrically heatable reactor 122 may include 2 to N feed conductors and 2 to N return conductors, where N is a natural number greater than or equal to 3. Each AC current source and / or AC voltage source may be adapted to generate a current in each conduit 128. The AC current source and / or AC voltage source may be controlled or uncontrolled. The AC current source and / or AC voltage source may be configured with or without the option of controlling at least one electrical starting value. The electrically heatable reactor 122 may include 2 to M different AC current sources and / or AC voltage sources, where M is a natural number greater than or equal to 3. The AC current sources and / or AC voltage sources may be electrically controllable independently of one another. Thus, for example, it is possible to achieve different currents and temperatures in each conduit 128. The electrically heatable reactor 122 may be configured, for example, as described in U.S. Pat. No. 6,279,499, U.S. Pat. No. 6,279,499, or as described in European Patent Application Publication No. 20157516.4, filed February 14, 2020, the contents of which are incorporated herein by reference.
[0103] The electrically heatable reactor 122 may include at least one DC current source and / or at least one DC voltage source. The DC current source and / or DC voltage source is configured to generate a DC current in each of the conduits 128. The electrically heatable reactor 122 may include multiple DC current sources and / or DC voltage sources. Each of the conduits 128 may have a respective DC current source and / or DC voltage source assigned thereto, particularly electrically connected via at least one electrical connection. To connect the DC current source and / or DC voltage source to each of the conduits 128, the electrically heatable reactor 122 may include 2 to N positive terminals and / or conductors and 2 to N negative terminals and / or conductors, where N is a natural number greater than or equal to 3. Each DC current source and / or DC voltage source may be adapted to generate a current in each of the conduits 128. The generated electrical current can heat the fluid by heating each conduit 128 through Joule heating, which is formed when the electrical current passes through the conductive tubing. The electrically heatable reactor 122 can be constructed, for example, as described in U.S. Patent No. 6,273,999, the contents of which are incorporated herein by reference.
[0104] The electrically heatable reactor 122 may be electrically heatable, for example, by the use of radiation, in particular by the use of induction, infrared and / or microwave radiation.
[0105] The electrically heatable reactor 122 may be heatable, for example, through the use of at least one electrically conductive medium. A current or voltage source, such as an AC current, an AC voltage, or a DC current or a DC voltage, may be adapted to generate an electric current in the electrically heatable medium, heating the electrically heatable reactor 122 by Joule heat generated when the electric current passes through the electrically heatable medium. The electrically conductive medium and the electrically heatable reactor 122 may be arranged relative to each other such that the electrically conductive medium at least partially surrounds the electrically heatable reactor 122 and / or the electrically heatable reactor 122 at least partially surrounds the electrically heatable medium. The electrically conductive medium may be in the solid, liquid, and / or gaseous state of matter selected from the group consisting of solids, liquids, and gases, and mixtures, such as emulsions and suspensions. The electrically conductive medium may be, for example, electrically conductive granules or an electrically conductive fluid. The electrically conductive medium may include at least one material selected from the group consisting of carbon, carbides, silicides, electrically conductive oils, salt melts, inorganic salts, and solid / liquid mixtures. The electrically conductive medium may have a resistance of 0.1 Ωmm. 2 / m≦ρ≦1000Ωmm 2 / m, preferably 10 Ωmm 2 / m≦ρ≦1000Ωmm 2 It can have a resistivity ρ of 1 / m.
[0106] The electrically heatable reactor 122 may be adapted to heat the feedstock to a temperature between 200°C and 1700°C. The reactor 122 may in particular be adapted to further heat a preheated fluid to a predetermined or prespecified temperature value by heating. The temperature range may be independent of the application. The fluid may be heated, for example, to a temperature in the range between 200°C and 1700°C, preferably between 300°C and 1400°C, particularly preferably between 400°C and 875°C.
[0107] The electrically heatable reactor 122 may be part of a steam cracker, as shown in FIG. 5, for example. "Steam cracking" refers to the process of converting relatively long-chain hydrocarbons, such as naphtha, propane, butane, and ethane, as well as gas oils and hydrogenated waxes, bio-oil, biodiesel, liquids from renewable feedstocks, pyrolysis oil, and waste oil, into shorter-chain hydrocarbons by thermal cracking in the presence of steam. Steam cracking can produce ethylene, propylene, butenes, and / or butadiene, and benzene as reaction products. Methane, ethane, propane, and / or hydrogen can be produced, for example, as by-products. The electrically heatable reactor 122 can be adapted for use in a steam cracker to heat preheated fluids to temperatures ranging from 550°C to 1700°C. Feedstocks, also known as starting materials, can include bio-oil, biodiesel, liquids from renewable feedstocks, pyrolysis oil, and waste oil. The primary product formed may be butenes, and the by-products formed may be ethane or propane.
[0108] The plant 110 comprises at least one heat integration device 132 adapted to at least partially supply the by-products to the preheater 114. The preheater is adapted to at least partially utilize the energy required for heating the feedstock and process steam from the by-products. The heat integration device 132 may use the generated by-products, in particular for reuse or further use, to recover heat and produce reaction products. Undesired cracked gases, in particular methane and hydrogen, ethane and propane fractions, may be recycled to the preheater 114. In particular, an excess amount of methane produced by the electrically heatable reactor 122 may be recycled to the preheater. The heat integration device 132 is adapted to at least partially supply the by-products to the preheater 114. The heat integration device 132 may comprise at least one pipe adapted to at least partially guide and / or transport the by-products from the electrically heatable reactor to the preheater 114. The generated by-products may be fed entirely to the preheater 114, or only a portion of the generated by-products may be fed to the preheater 114. The preheater 114 may be adapted to at least partially utilize the energy required for preheating the feedstock from the by-products. The preheater 114 may also be adapted to at least partially utilize the energy required for heating the feedstock and process steam from the by-products. The recycled by-products may be combusted in the preheater 144 to at least partially cover the energy demand of the process therein. The excess methane fraction from the cracked gas may be used to ignite and superheat the preheater 114. The preheater may be supplied with additional gas for combustion, for example, from another plant, a conventional reactor based on a combustion furnace, and / or an additional electrically heatable reactor. The supply of additional gas is indicated by arrow 134 in FIG. 5. The unsupplied by-products may be discharged, for example, to a further plant or to a further area of the plant 110, for example, for the production of further products or as semi-finished products.
[0109] FIG. 2 shows a schematic diagram of a further embodiment of the plant 110. For a description of the embodiment shown in FIG. 2, reference may be made to the description of FIG. 1. In the embodiment shown in FIG. 2, the plant 110 comprises at least one heat exchanger 136 adapted to terminate an ongoing chemical reaction of reaction products and / or by-products. The heat exchanger 136 is arranged in the plant 110 downstream of the electrically heatable reactor 122 in the fluid transport direction. The plant 110 may comprise at least one pipe 138 adapted to conduct cracked gas from the reactor 122 to the heat exchanger 136. The heat exchanger 136 may be adapted to cool the hot cracked gas produced by the electrically heatable reactor 122, in particular to a temperature of 350° C. to 400° C. The heat exchanger 136 may comprise, for example, a thermal cooler, in particular a high-pressure boiler feedwater cooler.
[0110] The plant 110 may include at least one separation section 140 adapted to separate reaction products and by-products. The separation section 140 may be adapted to separate substances present in the decomposition gas from each other. The decomposition gas may be fed to the separation section 140 via a further line 142. The separation section 140 may be adapted to perform at least one separation step, for example at least one distillation, in particular rectification. The separation section 140 may further comprise an absorption and / or extraction section and a compressor adapted to compress the decomposition gas. Such separation steps and processes are known to those skilled in the art. The separation section 140 may be adapted to ensure that the main product produced is in a pure form after passing through the separation section 140.
[0111] The plant 110 may comprise at least one feedstock integrator 144, shown schematically in FIG. 2 by an arrow, adapted to supply the feedstock not converted by the electrically heatable reactor 122 to the preheater 114. The feedstock integrator 144 may be adapted to use, in particular to reuse or further use, the unconverted feedstock as a feedstock for producing the reaction product. The feedstock integrator 144 may comprise at least one conduit, for example as shown in FIG. 3, adapted to at least partially conduct and / or transport the unconverted feedstock from the electrically heatable reactor 122, in particular from the separation section 140, to the preheater 114.
[0112] FIG. 3 shows a further embodiment of the plant 110 in a schematic diagram. For a description of the embodiment shown in FIG. 3, reference can be made to the descriptions of FIGS. 1 and 2. As mentioned above, the feedstock and process steam are in each case fed to a preheater 114 in a line, passed through it, and may be heated by said preheater. The preheater 114 may be adapted to superheat the feedstock, in particular, as represented by reference numeral 146 in FIG. 3. The plant 110 may also be adapted to mix the preheated feedstock with preheated process steam. The feedstock mixed with the process steam may be passed, for example, via a further line, to a region of the preheater 114 close to the burner 116 and superheated. For example, the feedstock mixed with the process steam may be superheated to a temperature somewhat below the cracking temperature. The superheated fluid may then be passed to an electrically heatable reactor 122 and cracked therein.
[0113] The plant 110 may further include at least one steam system 148. The steam system 148 may include at least one steam separator, also known as a steam drum 150, as shown in FIGS. 4 and 5 , for example. The steam system 148 may be adapted to preheat boiler feed water 152 in the preheater 114 and introduce it to the steam drum 150. The steam system 148 may include at least one connection 154 between the steam drum 150 and the heat exchanger 136 so that the boiler feed water from the steam drum 150 can be introduced into the heat exchanger 136. The heat exchanger 136 may be adapted to return the boiler feed water and saturated steam to the steam drum 150, for example, via at least one pipe 156. The steam system 148 may further include at least one connection 158 between the steam drum 150 and the preheater 114 so that the saturated steam from the steam drum 150 can be passed through the preheater 114. The preheater 114 may be adapted to superheat the saturated steam for at least a short period of time. The resulting superheated high-pressure steam exits the preheater 114 and can be utilized to drive a turbine (represented by arrow 160), for example, to generate electricity.
[0114] The plant 110 may further include at least one refrigeration circuit 162, as shown in FIG. 3. The refrigeration circuit 162, also referred to as a refrigeration circuit, may be an open or closed circuit containing one or more suitable refrigerants. Furthermore, the refrigerant circuit may include one or more condensation and evaporation steps. After condensation of the refrigerant, liquid refrigerant may be supplied to each of the different process stages at the final compressor pressure. The refrigerant may be evaporated in each of the process stages, and the evaporation to different pressure levels in the process stages provides the required refrigeration capacity. The evaporated refrigerant in the refrigeration consumer may be recompressed to the required final pressure by a multi-stage compressor.
[0115] FIG. 4 shows a schematic diagram of a further embodiment of the plant 110. For a description of the embodiment shown in FIG. 4, reference can be made to the descriptions of FIGS. 1 to 3. FIG. 4 shows different regions of the preheater 114, the temperature of which decreases from bottom to top. In region 164, farthest from the burner 116, the boiler feed water 152 may be heated. The feedstock may be received and preheated in region 166, located below. Region 168 represents the reception of saturated steam from the steam drum 150, which may be superheated in region 170. In region 172, closest to the burner 116, the feedstock mixed with process steam may be superheated to a temperature somewhat below the cracking temperature. The preheater 114 may be equipped with a chimney through which off-gas 174 from the preheater 114 may be discharged.
[0116] For example, in the case of cracking naphtha as a feedstock, the energy utilization of the methane fraction may be as follows: the production process provides the energy of the methane fraction, which can be partially utilized, for example, around 20% or up to 20%, to heat the boiler feed water 152 and generate superheated steam in zones 168 and 170. For example, 80% or up to 80% of the energy of the methane fraction can be utilized for preheating and superheating the feedstock.
[0117] Figure 5 shows a schematic diagram of a further exemplary embodiment of a plant according to the invention in the form of a steam cracker. For the description of the embodiment shown in Figure 5, reference can be made to the descriptions of Figures 1 to 4. The electrically heatable reactor 122 can be fully integrated into an existing plant, for example a conventional steam cracker, although the electrically heatable reactor 122 does not include a convection zone. Full integration is possible, in particular, due to the availability of an excess amount of methane fraction and the presence of a separation section 140. This makes it possible to use conventional technology of known dimensions outside the reactor space.
[0118] In the embodiment shown in FIG. 5 , the conduit 128 in the electrically heatable reactor 122 can be heated, for example, by alternating current. Three conductors L1, L2, and L3 connected to the conduit 128 are shown. The plant 110 may include at least one ventilation device 176. The ventilation device 176 may be adapted to cool any desired element of the plant 110. The ventilation device 176 may be adapted to cool a power source for heating the electrically heatable reactor 122. The ventilation device 176 may be adapted to ensure the operating temperature, particularly the temperature range, of the power source. This may prevent the power source from overheating. The ventilation device 176 may be adapted to cool the power source using air, particularly ambient air 178. The ambient air may be heated during and / or as a result of the cooling process. The ventilation device 176 may be adapted to supply ambient air, particularly ambient air heated by the power source cooling, to the preheater 114, for example, using a conduit 180. The heated ambient air can be used directly in the preheater 114 without the need for additional heating of the ambient air. The plant 110 may comprise at least one atmosphere-side connection adapted to allow atmospheric exchange, in particular of the reaction space atmosphere from the reaction space of the reactor 122 to the preheater 114. This makes it possible, in particular, to vent the reaction space atmosphere with the flue gas flow of the preheater 114. The plant 110 may comprise at least one safety device 182 adapted to allow a return flow of feed from the electrically heatable reactor 122 to the preheater 114. The safety device 182 may be adapted to allow venting of the electrically heatable reactor 122 in the event of a malfunction. [Explanation of symbols]
[0119] 110 Plant 112 Reaction Products 114 Preheater 116 Burner 118 Raw material supply department 120 Process steam supply section 122 Electrically Heatable Reactor 124 Supply pipeline 126 Reaction tube 128 Pipeline 130 Current Supply 132 Heat Integration Device 134 Further Gas Supply 136 Heat exchanger 138 Pipeline 140 Separation section 142 Pipeline 144 Raw material integration equipment 146 Raw material superheating 148 Steam System 150 steam drums 152 Boiler feed water 154 Connection 156 Pipeline 158 Connection 160 High-pressure steam 162 Cooling circuit 164 areas 166 areas 168 areas 170 areas 172 areas 174 Offgassing 176 Ventilation Equipment 178 Ambient Air 180 Pipeline 182 Safety equipment
Claims
1. A plant (110) for producing a reaction product, said plant (110) comprising at least one preheater (114), said plant (110) comprising at least one raw material supply (118) adapted to supply at least one raw material to said preheater (114), said preheater (114) adapted to preheat said raw material to a predetermined temperature, said plant (110) comprising at least one electrically heatable reactor (122), said electrically heatable reactor (122) being an electrically powered reactor, said electrically heatable reactor (122) adapted to heat a fluid present in said reactor (122) using an electric current, said electrically heatable reactor a reactor (122) adapted to at least partially convert the preheated feedstock into reaction products and by-products, the plant (110) comprising at least one heat integration device (132) adapted to at least partially supply the by-products to the preheater (114), the preheater (114) adapted to at least partially utilize the energy required to preheat the feedstock from the by-products, and the plant (110) comprising at least one safety device (182) adapted to allow a return flow of the feedstock from the electrically heated pipe system of the reactor (122) to the preheater (114).
2. 2. The plant (110) of claim 1, comprising at least one feedstock integrator (144) adapted to supply feedstock not converted by the electrically heatable reactor (122) to the preheater (114).
3. 3. The plant (110) of claim 1 or 2, wherein the plant (110) comprises at least one ventilation device (176), the ventilation device (176) adapted to supply ambient air to the preheater (114), and the ventilation device (176) further adapted to cool a power source for heating the electrically heatable reactor (122).
4. The plant (110) according to any one of claims 1 to 3, wherein the electrically heatable reactor (122) is heatable by means of an electric current.
5. 5. The plant (110) according to any one of claims 1 to 4, wherein the electrically heatable reactor (122) is electrically heatable by use of multi-phase alternating current and / or single-phase alternating current and / or direct current and / or radiation and / or induction.
6. 6. The plant (110) according to any one of claims 1 to 5, wherein the electrically heatable reactor (122) is adapted to heat the feedstock to a temperature in the range of 200°C to 1700°C, preferably to a temperature in the range of 300°C to 1400°C, particularly preferably to a temperature in the range of 400°C to 875°C.
7. 7. The plant (110) according to claim 1, wherein the plant (110) comprises at least one atmospheric connection adapted to allow atmospheric exchange from the electrically heatable reactor (122) to the preheater (114).
8. 8. The plant (110) of claim 1, wherein the plant (110) comprises at least one process steam supply (120) adapted to supply at least one process steam to the preheater (114), the electrically heatable reactor (122) adapted to convert the feedstock into cracked gases in the presence of the process steam, and the preheater (114) adapted to at least partially utilize the energy required to preheat the feedstock from the by-products.
9. 9. The plant (110) of any one of claims 1 to 8, wherein the feedstock supply (118) is adapted to supply the at least one feedstock to the preheater (114), the feedstock comprising at least one member selected from the group consisting of methane, ethane, propane, butane, naphtha, ethylbenzene, diesel, condensates, bioliquids, biogas, pyrolysis oil, waste oil, and liquids from renewable feedstocks.
10. 10. The plant (110) of any one of claims 1 to 9, wherein the electrically heatable reactor (122) is adapted to at least partially convert the preheated feedstock into reaction products, the reaction products comprising at least one member selected from the group consisting of acetylene, ethylene, propylene, butene, butadiene, benzene, styrene, and synthesis gas.
11. 11. The plant (110) of any one of claims 1 to 10, wherein the electrically heatable reactor (122) is adapted to at least partially convert the preheated feedstock into by-products, the by-products comprising at least one member selected from the group consisting of hydrogen, methane, ethane, and propane.
12. 12. The plant (110) according to any one of claims 1 to 11, wherein the plant (110) is selected from the group consisting of a plant for carrying out at least one endothermic reaction, a heating plant, a preheating plant, a steam cracker, a steam reformer, an alkane dehydrogenator, a reformer, a dry reformer, a styrene production plant, an ethylbenzene dehydrogenator, a urea, isocyanate, melamine cracker, a cracker, a catalytic cracker, a dehydrogenator.
13. 13. The plant (110) of any one of claims 1 to 12, wherein the plant (110) comprises a plurality of electrically heatable reactors (122) and / or the plant (110) further comprises at least one reactor with an integral convection zone.
14. A plant (110) as described in any one of claims 1 to 13, wherein the plant (110) is provided with at least one steam system (148).
15. The steam system (148) comprises at least one steam drum (150), the steam system (148) is adapted to preheat boiler feed water in the preheater (114) and introduce it into the steam drum (150), the plant (110) comprises at least one heat exchanger (136) adapted to terminate an ongoing chemical reaction of reaction products and / or by-products, the steam system (148) comprises at least one steam drum (150) so that the boiler feed water from the steam drum can be introduced into the heat exchanger (136).
15. The plant (110) of claim 14, wherein the plant (110) comprises at least one connection between the steam drum (150) and the heat exchanger (136), the heat exchanger (136) being adapted to return the boiler feed water and saturated steam to the steam drum (150), the steam system (148) comprising at least one connection between the steam drum (150) and the preheater (114) so that saturated steam from the steam drum (150) can be passed through the preheater (114), the preheater being adapted to superheat the saturated steam for at least a short time.
16. 16. A method for heat integration in the production of a reaction product using a plant (110) according to any one of claims 1 to 15, said method comprising: supplying at least one feedstock to a preheater (114) via at least one feedstock supply; preheating the raw material to a predetermined temperature in the preheater (114); at least partially converting the preheated feedstock into reaction products and by-products using at least one electrically heatable reactor (122), wherein the electrically heatable reactor (122) is an electrically powered reactor, the electrically heatable reactor (122) is adapted to heat a fluid exiting the reactor (122) using an electric current, and the plant (110) comprises at least one safety device (182) adapted to allow a return flow of the feedstock from the electrically heated piping system of the reactor (122) to the preheater (114); at least partially feeding the by-products to the preheater (114) using at least one heat integration device; generating, at least in part from said by-products, the energy required to preheat said feedstock using said preheater (114); A method comprising:
Citation Information
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