Acrylic acid manufacturing method
The method of using two cooling towers and separate distillation processes effectively addresses the separation and recovery of unreacted lactic acid in acrylic acid production, reducing energy and equipment costs while achieving high-purity acrylic acid.
Patent Information
- Application Number
- JP2024509455
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-09-14
- Filing Date
- 2023-05-18
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2043-05-18
AI Technical Summary
Conventional methods for producing acrylic acid face challenges in separating unreacted lactic acid, which undergoes rapid oligomerization at high temperatures, leading to difficulties in recovery and increased energy and equipment costs, and the use of fossil resources raises environmental concerns.
A method involving two cooling towers to separate unreacted lactic acid before distillation, followed by separate extraction and azeotropic distillation processes, reduces energy consumption and equipment costs while improving the recovery rate of lactic acid and purity of acrylic acid.
This approach reduces energy costs and equipment needs, enhances the recovery rate of lactic acid, and produces high-purity acrylic acid by minimizing oligomerization and by-product accumulation.
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Abstract
Description
[Technical Field]
[0001] This application claims the benefit of priority based on Korean Patent Application No. 10-2022-0115905, filed September 14, 2022, and all contents disclosed in the documents of that Korean patent application are incorporated herein by reference.
[0002] The present invention relates to a method for producing acrylic acid, and more particularly to a method for reducing the loss of acrylic acid and effectively removing by-products when producing acrylic acid by the dehydration reaction of lactic acid. [Background technology]
[0003] Acrylic acid is used as a polymer raw material for fibers, adhesives, paints, fiber processing, leather, building materials, etc., and the demand for acrylic acid is expanding. Acrylic acid is also used as a raw material for water-absorbent resins, and is widely used industrially in absorbent articles such as disposable diapers and sanitary napkins, agricultural and horticultural water retention agents, and industrial water-stopping materials.
[0004] Conventional methods for producing acrylic acid generally involve air oxidation of propylene. This method involves converting propylene into acrolein through a gas-phase catalytic oxidation reaction, which is then subjected to a gas-phase catalytic oxidation reaction to produce acrylic acid, resulting in the production of acetic acid as a by-product. This by-product has the problem of being difficult to separate from acrylic acid. Furthermore, the method for producing acrylic acid using propylene uses propylene obtained by refining crude oil, a fossil resource, as a raw material, and in consideration of the recent rise in crude oil prices and issues such as global warming, this method has problems in terms of raw material costs and environmental pollution.
[0005] In response to this, research is being conducted into methods for producing acrylic acid from carbon-neutral biomass feedstocks. For example, there is a method for producing acrylic acid (AA) through the vapor-phase dehydration of lactic acid (LA). This method generally produces acrylic acid through intramolecular dehydration of lactic acid at high temperatures of 300°C or higher in the presence of a catalyst. The dehydration of lactic acid produces a reaction product containing acrylic acid, and depending on the conversion rate, the reaction product contains unreacted lactic acid. If the reaction product contains unreacted lactic acid, recovering it in a separation process can improve the economic efficiency of the process. However, lactic acid undergoes rapid oligomerization at high concentrations and high temperatures, making it difficult to recover. Summary of the Invention [Problem to be solved by the invention]
[0006] The problem to be solved by the present invention is to solve the problems mentioned in the background art of the invention above, and an object of the present invention is to provide a method for effectively separating unreacted lactic acid from a reaction product generated in the production of acrylic acid by a dehydration reaction of lactic acid, thereby reducing energy consumption. [Means for solving the problem]
[0007] According to one embodiment of the present invention for solving the above-mentioned problems, there is provided a method for producing acrylic acid, comprising the steps of: supplying an aqueous lactic acid solution to a reactor and performing a dehydration reaction to obtain a reaction product containing unreacted lactic acid, water, light gas components, and acrylic acid; supplying the reaction product to a first cooling tower and separating it into a bottom fraction containing unreacted lactic acid and an top fraction containing water, light gas components, and acrylic acid; supplying the top fraction of the first cooling tower to a second cooling tower and separating it into a bottom fraction containing water and acrylic acid; and purifying the bottom fraction of the second cooling tower to obtain acrylic acid. [Effects of the Invention]
[0008] According to the method for producing acrylic acid of the present invention, by first separating unreacted lactic acid before distilling the reaction product containing acrylic acid, it is possible to reduce energy costs compared to the case where unreacted lactic acid is separated after distillation.
[0009] In particular, by using two cooling towers to form an aqueous acrylic acid solution having a composition advantageous for the subsequent purification of acrylic acid before distilling the reaction product, it is possible to reduce the energy cost required for the purification of acrylic acid and to obtain high-purity acrylic acid.
[0010] Furthermore, by separately supplying the aqueous acrylic acid solution discharged from the cooling tower to the extraction tower and the azeotropic distillation tower, it is possible to reduce the amount of energy required for distilling water in the azeotropic distillation tower and to reduce the loss of acrylic acid, as well as to obtain high-purity acrylic acid. [Brief explanation of the drawings]
[0011] [Figure 1] 1 is a process flowchart of a method for producing acrylic acid according to one embodiment of the present invention. [Figure 2] 1 is a process flowchart of a comparative example of a method for producing acrylic acid. DETAILED DESCRIPTION OF THE INVENTION
[0012] The terms and words used in the description and claims of the present invention should not be interpreted as being limited to their ordinary or dictionary meanings, but should be interpreted as meanings and concepts that are consistent with the technical idea of the present invention, based on the principle that the inventors can appropriately define the concepts of terms in order to best describe their invention.
[0013] In the present invention, the term "stream" can refer to the flow of fluid within a process, or the fluid itself flowing in a pipe. Specifically, the term "stream" can simultaneously refer to the fluid itself flowing in a pipe connecting each device and the flow of the fluid. Furthermore, the fluid can refer to gas or liquid, and does not exclude cases where the fluid contains solid components.
[0014] Meanwhile, in the present invention, in an apparatus such as a cooling tower, extraction tower, or distillation tower, the "lower part" of the apparatus means a point 95% to 100% below the top of the apparatus, specifically the lowest end (bottom), unless otherwise specified. Similarly, the "upper part" of the apparatus means a point 0% to 5% below the top of the apparatus, specifically the highest part (top), unless otherwise specified.
[0015] Furthermore, unless otherwise specified, in the present invention, the operating temperature of a cooling tower refers to the operating temperature at the lower part of the cooling tower, and the operating pressure of a cooling tower refers to the operating pressure at the upper part of the cooling tower. Hereinafter, each step that can be included in an embodiment of the present invention will be described with reference to FIG. 1 etc.
[0016] A method for producing acrylic acid according to one embodiment of the present invention includes the steps of: supplying an aqueous lactic acid solution to a reactor and performing a dehydration reaction to obtain a reaction product containing unreacted lactic acid, water, light gas components, and acrylic acid; supplying the reaction product to a first cooling tower and separating it into a bottom fraction containing unreacted lactic acid and an top fraction containing water, light gas components, and acrylic acid; supplying the top fraction of the first cooling tower to a second cooling tower and separating it into a bottom fraction containing water and acrylic acid; and purifying the bottom fraction of the second cooling tower to obtain acrylic acid.
[0017] First, a method for producing acrylic acid according to one embodiment of the present invention includes supplying an aqueous lactic acid solution to a reactor and subjecting it to a dehydration reaction to obtain a reaction product containing unreacted lactic acid, water, light gas components, and acrylic acid.
[0018] Specifically, a conventional method for producing acrylic acid generally involves air oxidation of propylene, which involves converting propylene into acrolein through a gas-phase catalytic oxidation reaction, and then subjecting this to a gas-phase catalytic oxidation reaction to produce acrylic acid, resulting in the generation of acetic acid as a by-product, which is problematic in that it is difficult to separate from acrylic acid. Furthermore, the method for producing acrylic acid using propylene uses propylene obtained by refining crude oil, a fossil resource, as a raw material, and in consideration of the recent rise in crude oil prices and issues such as global warming, this method has problems in terms of raw material costs and environmental pollution.
[0019] To address the problems inherent in conventional acrylic acid production methods, research has been conducted into methods for producing acrylic acid from carbon-neutral biomass feedstocks. For example, there is a method for producing acrylic acid (AA) through the vapor-phase dehydration of lactic acid (LA). This method generally involves the intramolecular dehydration of lactic acid at high temperatures in the presence of a catalyst. The dehydration of lactic acid produces a reaction product containing acrylic acid, and depending on the conversion rate, unreacted lactic acid may be present in the reaction product. If unreacted lactic acid is present in the reaction product, recovering it through a separation process can improve the economic efficiency of the process. However, lactic acid undergoes rapid oligomerization at high concentrations and high temperatures, making it difficult to recover. Furthermore, the need for a separate distillation column or other equipment to recover lactic acid increases overall process costs due to the significant energy required for operation.
[0020] In contrast, in order to solve the conventional problems, the present invention provides a method for separating lactic acid from a reaction product containing acrylic acid produced by the dehydration reaction of lactic acid prior to the distillation step, thereby shortening the time that high-concentration lactic acid is exposed to high temperatures and preventing oligomerization of lactic acid. This not only improves the recovery rate of unreacted lactic acid, but also reduces the cost of equipment such as a separate distillation apparatus for separating lactic acid in a subsequent step, as well as the operating cost for operating the apparatus.
[0021] According to one embodiment of the present invention, a reaction product containing acrylic acid can be produced by first supplying an aqueous lactic acid solution to a reactor and carrying out a dehydration reaction. The dehydration reaction can be carried out as a gas-phase reaction in the presence of a catalyst. For example, the lactic acid concentration in the aqueous lactic acid solution can be 10 wt% or more, 20 wt% or more, or 30 wt% or more, and 40 wt% or less, 50 wt% or less, 60 wt% or less, or 70 wt% or less. When lactic acid is present at a high concentration, it can form oligomers such as dimers and trimers through an equilibrium reaction, and can be used in the form of an aqueous solution with a concentration within the above range.
[0022] The reactor may include a reactor capable of performing a conventional dehydration reaction of lactic acid, and the reactor may include a reaction tube filled with a catalyst, and lactic acid may be dehydrated by a gas-phase catalytic reaction while a reaction gas containing volatile components of a raw material lactic acid aqueous solution is passed through the reaction tube to produce acrylic acid. In addition to lactic acid, the reaction gas may further include one or more diluent gases selected from water vapor, nitrogen, and air for adjusting the concentration.
[0023] The reactor may be operated under typical lactic acid dehydration reaction conditions, and the operating temperature of the reactor may refer to the set temperature of a heat medium or the like used to control the temperature of the reactor.
[0024] The catalyst used in the dehydration reaction of lactic acid may include, for example, one or more catalysts selected from the group consisting of sulfate catalysts, phosphate catalysts, and nitrate catalysts. Specific examples of the sulfates include Na2SO4, K2SO4, CaSO4, and Al2(SO4)3; the phosphates include Na3PO4, Na2HPO4, NaH2PO4, K3PO4, K2HPO4, KH2PO4, CaHPO4, Ca3(PO4)2, AlPO4, CaH2P2O7, and Ca2P2O7; and the nitrates include NaNO3, KNO3, and Ca(NO3)2. The catalyst may also be supported on a support. The support may include, for example, one or more catalysts selected from the group consisting of diatomaceous earth, alumina, silica, titanium dioxide, carbide, and zeolite.
[0025] The reaction product produced by the dehydration reaction of lactic acid may contain water (H2O), light gas components, and unreacted lactic acid in addition to the desired product, acrylic acid.
[0026] The method for producing acrylic acid by dehydration of lactic acid can secure competitiveness as a raw material and eliminate environmental pollution issues compared to the conventional method of air-oxidizing propylene, but the conversion rate of lactic acid is low and various by-products are generated, resulting in a low yield of acrylic acid. Therefore, there is a need to develop a process to improve economic efficiency. In response to this, the present invention provides a method that not only increases the recovery rate of unreacted lactic acid but also reduces overall equipment costs and energy costs, thereby improving economic efficiency.
[0027] A method for producing acrylic acid according to one embodiment of the present invention may include a step of supplying the reaction product to a first cooling tower and separating the reaction product into a bottom fraction containing unreacted lactic acid and an top fraction containing water, light gas components, and acrylic acid.
[0028] Specifically, the reactor discharge stream 1 containing the reaction product is a gas phase stream, and the reactor discharge stream 1 may be supplied to the first cooling tower 10 and cooled. That is, among the gas phase reaction products supplied to the first cooling tower 10, unreacted lactic acid, which has a relatively high boiling point, may be condensed by cooling to form a liquid phase condensate, which may be separated in a lower fraction of the first cooling tower 10. Meanwhile, the remaining components of the reaction product other than unreacted lactic acid, specifically, water, light gas components, and acrylic acid, may be separated in a gas phase in an upper fraction of the first cooling tower 10. Here, the light gas components are components with a boiling point lower than that of water, specifically, may include carbon monoxide, carbon dioxide, and acetaldehyde in addition to diluent gases.
[0029] By preliminarily separating unreacted lactic acid contained in the reaction product by cooling, deformation, e.g., oligomerization, of lactic acid due to exposure to high temperatures can be prevented, thereby increasing the recovery rate of lactic acid, and the recovered lactic acid can be efficiently reused as a raw material for the dehydration reaction for producing acrylic acid. Furthermore, since there is no need to install a separate distillation apparatus for separating and recovering unreacted lactic acid in a subsequent process, the energy cost for operating the distillation apparatus can be reduced. Furthermore, by separating unreacted lactic acid before the azeotropic distillation process described below, the amount of energy used for azeotropic distillation can be reduced.
[0030] For this reason, the operating temperature of the first cooling tower 10 can be 100°C or higher, 110°C or higher, or 120°C or higher, and 180°C or lower, 170°C or lower, or 160°C or lower. If the temperature is below 100°C, components other than unreacted lactic acid may be excessively condensed, reducing the purity of the recovered lactic acid and resulting in a loss of the desired product, acrylic acid. On the other hand, if the temperature exceeds 180°C, unreacted lactic acid cannot be sufficiently condensed. This means that unreacted lactic acid is discharged to the top of the first cooling tower 10, reducing the recovery rate of lactic acid and making it difficult to obtain high-purity acrylic acid.
[0031] The operating pressure of the first cooling tower 10 is 1 kg / cm 2 More than 1.5kg / cm 2 or more than 1.8 kg / cm 2 or more, and 20 kg / cm 2 Below, 10kg / cm 2 or less than 5kg / cm 2 When the pressure is high, the volume flow rate can be reduced to reduce the equipment cost of the cooling tower, but the operating temperature of the cooling tower becomes high, which may cause the production of dimers of lactic acid and acrylic acid, and it is therefore necessary to set an appropriate operating pressure at which the dimers are not produced.
[0032] By controlling the operating conditions of the first cooling tower 10 within the operating temperature and operating pressure ranges, the compositions of the lower discharge stream and the upper discharge stream of the first cooling tower 10 can be controlled, and thus the composition of the aqueous acrylic acid solution stream discharged from the lower part of the second cooling tower 20 can be easily controlled.
[0033] In this regard, the upper fraction discharged from the first cooling tower may not contain unreacted lactic acid, or even if it does, the content of unreacted lactic acid may be 5 wt % or less, specifically 3 wt % or less.
[0034] Meanwhile, the ratio of the flow rate of water in the stream discharged to the lower part of the first cooling tower to the flow rate (kg / hr) of water contained in the reaction product introduced into the first cooling tower 10 may be 15 wt% or less, and the ratio of the flow rate of acrylic acid in the stream discharged to the lower part of the first cooling tower to the flow rate (kg / hr) of acrylic acid contained in the reaction product introduced into the first cooling tower 10 may be 15 wt% or less.
[0035] In the past, cooling towers have been used in the production of acrylic acid, but these were used to cool the gaseous reaction product so that it would be suitable for introduction into the purification process of acrylic acid, and not for the purpose of separating substances. This is because when substances are separated by cooling, it is difficult to recover substances of the desired purity. However, the present invention controls the cooling rate of the cooling tower to adjust the amount of components cooled, thereby simultaneously achieving the effect of separating substances in addition to the primary purpose of cooling the reaction product.
[0036] Meanwhile, the upper fraction containing water, light gas components, and acrylic acid can be supplied to the second cooling tower 20 as the upper discharge stream 12 of the first cooling tower 10. Meanwhile, the lower fraction containing the unreacted lactic acid can be discharged as the lower discharge stream 11 of the first cooling tower 10, and the lactic acid recovered from the lower discharge stream 11 can be supplied to the reactor and reused for the dehydration reaction of lactic acid.
[0037] The upper discharge stream 12 of the first cooling tower 10 is then fed to the second cooling tower 20, where it can be further cooled and separated into a lower fraction containing water and acrylic acid and an upper fraction containing light gas components.
[0038] The operating temperature of the second cooling tower 20 can be 60°C or more, 80°C or more, or 100°C or more, and 140°C or less, 130°C or less, or 120°C or less, and the operating pressure can be 0.8 kg / cm 2 More than 1.0kg / cm 2 or more than 1.3 kg / cm 2 or more, and 20 kg / cm 2 Below, 10kg / cm 2 or less than 5kg / cm 2By controlling the operating conditions of the second cooling tower 20 within the operating temperature and operating pressure ranges, the composition of the light gas components separated as the upper discharge stream 24 of the second cooling tower 20 can be controlled, the loss of acrylic acid can be minimized, and the light gas components including diluent gas and acetaldehyde can be removed to the outside of the system, thereby controlling the composition of the aqueous acrylic acid stream 21 containing acrylic acid and water discharged from the bottom of the second cooling tower 20.
[0039] Meanwhile, the aqueous acrylic acid solution stream 21 derived from the lower fraction of the second cooling tower 20 containing the water and acrylic acid can be introduced into a purification step for obtaining acrylic acid. The purification step is a step for obtaining high-purity acrylic acid from water and some impurities in the aqueous acrylic acid solution, and not only must the obtained acrylic acid be recovered with high purity, but also, from an economical viewpoint, it is necessary to reduce the amount of energy used in the step.
[0040] For example, the purification step can be carried out by an extraction step in which the aqueous acrylic acid solution is separated into an extract containing acrylic acid and the extractant and a raffinate containing water in an extraction column using an extraction solvent. Although the extraction step has the advantage of reducing energy consumption compared to the distillation step, it may be difficult to obtain high-purity acrylic acid because the extract contains some by-products that must be removed together with water.
[0041] On the other hand, as another example of the purification step, the purification step may be carried out by an azeotropic distillation step. In this case, assuming the use of an azeotropic solvent, the separation efficiency of water and acrylic acid is higher than that of a simple extraction step, and therefore there is an advantage that high-purity acrylic acid can be obtained, but since this involves the distillation of water which has a high specific heat, excessive energy consumption is required, and there is a possibility that it is not so preferable from the viewpoint of economy.
[0042] Therefore, according to one embodiment of the present invention, a portion of the aqueous acrylic acid solution stream 21 is supplied to extraction column 100 as first aqueous acrylic acid solution stream 22, and the remainder is supplied to azeotropic distillation column 200 as second aqueous acrylic acid solution stream 23, so that the purification process can be carried out in a manner in which the extraction process and the azeotropic distillation process are carried out in parallel. That is, by separately supplying the aqueous acrylic acid solution stream 21 to extraction column 100 and azeotropic distillation column 200, energy consumption in the subsequent processes can be reduced, and by-products that may be partially contained in the aqueous acrylic acid solution stream 21 can be efficiently separated.
[0043] Specifically, the ratio of the flow rate of the first aqueous acrylic acid stream 22 supplied to the extraction tower to the total flow rate of the aqueous acrylic acid stream 21 before branching, i.e., the first and second aqueous acrylic acid streams after branching, can be 30% by weight to 70% by weight, and more specifically, 40% by weight to 50% by weight. When the flow rate ratio is 30% by weight or more, the flow rate introduced into the azeotropic distillation tower 200 is reduced, thereby reducing the amount of energy required for distilling water, which has a high specific heat, in the azeotropic distillation tower 200. On the other hand, when the flow rate ratio is 70% by weight or less, by-products can be efficiently separated in the upper part of the azeotropic distillation tower 200, preventing the accumulation of the by-products in the system and obtaining high-purity acrylic acid. The amount of extractant required for removing water in the extraction tower 100 can be reduced. The flow rate of the extractant introduced into the azeotropic distillation tower 200 is reduced, thereby reducing the amount of energy required for distillation, and by-products can be efficiently separated to obtain high-purity acrylic acid.
[0044] Meanwhile, the extraction tower 100 removes most of the water contained in the first aqueous acrylic acid solution stream 22 without using a large amount of energy and supplies the removed water to the azeotropic distillation tower 200, which will be described later, thereby reducing the energy used for azeotropic distillation in the azeotropic distillation tower 200. In this respect, it is preferable that the extraction in the extraction tower 100 is carried out by contacting the extraction solvent with the extraction tower feed stream through a liquid-liquid contact method, in terms of improving the energy efficiency of the entire process.
[0045] Here, the extraction solvent may be a hydrocarbon solvent that can form an azeotrope with water but not with acrylic acid, but can sufficiently extract acrylic acid, and is advantageous in the extraction process for having a boiling point of 10 to 120° C. Specifically, the extraction solvent may be benzene, toluene, xylene, n-heptane, cycloheptane, cycloheptene, 1-heptene, ethylbenzene, methylcyclohexane, n-butyl acetate, isobutyl acetate, isobutyl acrylate, n-propyl acetate, isopropyl acetate, methyl isobutyl ketone, or the like. The solvent may be one or more selected from the group consisting of methyl ketone, 2-methyl-1-heptene, 6-methyl-1-heptene, 4-methyl-1-heptene, 2-ethyl-1-hexene, ethylcyclopentane, 2-methyl-1-hexene, 2,3-dimethylpentane, 5-methyl-1-hexene, and isopropyl-butyl-ether.
[0046] Additionally, a liquid-liquid contact type extraction device may be used as the extraction tower 100. Non-limiting examples of the extraction device include a Karr-type reciprocating plate column, a rotary-disk contactor, a Scheibel column, a Kuhni column, a spray extraction tower, a packed extraction tower, a pulsed packed column, a mixer-settler bank, a mixer and a centrifugal countercurrent extractor, etc.
[0047] In this manner, a substantial amount of water is removed from the first aqueous acrylic acid solution stream 22 supplied to the extraction column 100, and an extract containing the extractant and acrylic acid is obtained. The extract can be supplied to the azeotropic distillation column 200 as the top discharge stream 102 of the extraction column.
[0048] Furthermore, water contained in the first aqueous acrylic acid solution stream 22 from the extraction step can be recovered as a raffinate. The recovered raffinate can be discharged as a bottom discharge stream 101 from the extraction tower. Since water is recovered in this manner from the extraction step, the operational burden of the distillation step described below can be reduced, and energy consumption can be significantly reduced.
[0049] Then, according to one embodiment of the present invention, the second aqueous acrylic acid solution stream 23 and the top discharge stream 102 of the extraction tower are supplied to an azeotropic distillation tower 200, where a distillation process for these streams can be carried out. The distillation process for the stream supplied to the azeotropic distillation tower 200 in the azeotropic distillation tower 200 can be a process of separating an upper fraction containing water and the extraction solvent from a lower fraction containing acrylic acid by azeotropic distillation.
[0050] According to the present invention, it is advantageous in terms of process that the distillation in the azeotropic distillation column 200 is carried out in the presence of an azeotropic solvent. Here, the azeotropic solvent is a hydrophobic solvent that can form an azeotrope with water but not with acrylic acid, and any hydrocarbon solvent that satisfies the above physical properties can be used without limitation. In addition, the azeotropic solvent may have a boiling point lower than that of acrylic acid, preferably 10 to 120°C.
[0051] According to the present invention, the azeotropic solvents satisfying the above physical properties include benzene, toluene, xylene, n-heptane, cycloheptane, cycloheptene, 1-heptene, ethylbenzene, methylcyclohexane, n-butyl acetate, isobutyl acetate, isobutyl acrylate, n-propyl acetate, isopropyl acetate, and methyl isobutyl ketone. The solvent may be one or more selected from the group consisting of methyl ketone, 2-methyl-1-heptene, 6-methyl-1-heptene, 4-methyl-1-heptene, 2-ethyl-1-hexene, ethylcyclopentane, 2-methyl-1-hexene, 2,3-dimethylpentane, 5-methyl-1-hexene, and isopropyl-butyl-ether.
[0052] The azeotropic solvent may be the same as or different from the extraction solvent used in extraction tower 100. However, in consideration of production efficiency in a continuous process, it is preferable that the azeotropic solvent is the same as the extraction solvent. When the same compound is used as the azeotropic solvent and the extraction solvent, at least a portion of the azeotropic solvent distilled and recovered in azeotropic distillation tower 200 can be supplied to extraction tower 100 and used as part of the extraction solvent.
[0053] When the azeotropic solvent is introduced into the azeotropic distillation column 200, azeotropic distillation of acrylic acid and water occurs. As a result, the water in the second aqueous acrylic acid solution stream 23 and the azeotropic solvent used in the azeotropic distillation are azeotropically distilled together and can be recovered as an upper fraction of the azeotropic distillation column 200. A lower fraction 201 containing acrylic acid can be recovered from the lower part of the azeotropic distillation column 200.
[0054] The recovered top fraction of the azeotropic distillation column can be supplied to a layer separator via the azeotropic distillation column top discharge stream 202. A layer separator is a liquid-liquid layer separator that separates immiscible fluids using gravity or centrifugal force due to differences in density, and can separate relatively light liquids into the upper portion of the layer separator and relatively heavy liquids into the lower portion of the layer separator. Specifically, the azeotropic distillation column top discharge stream 202 supplied to the layer separator can be separated into an organic layer containing the azeotropic solvent and an aqueous layer containing water.
[0055] In addition, the organic layer separated in the layer separator is discharged as a layer separator discharge stream, and the layer separator discharge stream containing the azeotropic solvent or extraction solvent can be recycled to one or more of an extraction column and an azeotropic distillation column and reused as the azeotropic solvent or extraction solvent.
[0056] The method for producing acrylic acid according to the present invention has been described and illustrated in the drawings. However, the description and the illustrations in the drawings only describe and illustrate essential components for understanding the present invention. In addition to the steps and apparatuses described and illustrated in the drawings, other steps and apparatuses not described or illustrated can be appropriately applied and used to carry out the method for producing acrylic acid according to the present invention.
[0057] The present invention will be described in more detail below with reference to examples. However, the following examples are for illustrative purposes only, and it will be apparent to those skilled in the art that various changes and modifications can be made within the scope and technical concept of the present invention. The scope of the present invention is not limited to these examples alone.
[0058] Example Example 1 The acrylic acid production process was simulated using an Aspen Plus simulator manufactured by Aspen Corporation, according to the process flow chart shown in FIG.
[0059] Specifically, a 30 wt% aqueous lactic acid solution and nitrogen (N2) as a diluent gas were supplied to a reactor, and a reaction product containing unreacted lactic acid, water, light gas components, and acrylic acid was produced by a dehydration reaction.
[0060] The reactor discharge stream containing the reaction product was supplied to a first cooling tower 10. In the first cooling tower 10, the reactor discharge stream was condensed and separated into a first cooling tower lower discharge stream 11 containing unreacted lactic acid and a first cooling tower upper discharge stream 12 containing water, light gas components, and acrylic acid. Here, the lower operating temperature of the first cooling tower 10 was set to 125°C, and the upper operating pressure was set to 1.9 kg / cm. 2 was controlled.
[0061] Next, the upper discharge stream 12 of the first cooling tower was supplied to the second cooling tower 20 for cooling and condensation, whereby the stream was separated into a lower discharge stream 21 of the second cooling tower containing water and acrylic acid, and a light gas component containing nitrogen as an upper discharge stream 24 of the second cooling tower. Here, the lower operating temperature of the second cooling tower 20 was set to 107°C, and the upper operating pressure was set to 1.3 kg / cm. 2 was controlled.
[0062] A portion of bottom discharge stream 21 from the second cooling tower was supplied to extraction tower 100 as first aqueous acrylic acid solution stream 22, and the remainder was supplied to azeotropic distillation tower 200 as second aqueous acrylic acid solution stream 23, with the mass flow rate ratio of first aqueous acrylic acid solution stream 22 supplied to extraction tower 100 to the flow rate of bottom discharge stream 21 from the second cooling tower being maintained at 50% by weight.
[0063] Meanwhile, in the extraction column 100, acrylic acid was dissolved using toluene as an extraction solvent, and then the extract containing acrylic acid and the extraction solvent was separated as an upper discharge stream 102 of the extraction column 100 and supplied to the azeotropic distillation column 200, and water was separated as a lower discharge stream 101 of the extraction column 100.
[0064] Distillation was carried out in an azeotropic distillation column 200 to which the second aqueous acrylic acid solution stream 23 and the top discharge stream 102 of the extraction column 100 were supplied, with acrylic acid being obtained in the bottom discharge stream 201 and a stream 202 containing water and the extraction solvent being discharged from the top. The stream containing water and the extraction solvent was then supplied to a layer separator to separate the water and the extraction solvent, after which the water was discharged outside the system and the extraction solvent was divided and circulated between the extraction column 100 and the azeotropic distillation column 200.
[0065] The flow rate (kg / hr) and composition (wt%) of each component in each stream in Figure 1 are shown in Table 1 below.
[0066] [Table 1]
[0067] Example 2 The acrylic acid production process was simulated using an Aspen Plus simulator manufactured by Aspen Corporation, according to the process flow chart shown in FIG.
[0068] Specifically, the same method as in Example 1 was used, except that a 40 wt % aqueous lactic acid solution was supplied to the reactor and the temperature at the bottom of the first cooling tower 10 was controlled to 133°C.
[0069] The flow rate (kg / hr) and composition (wt%) of each component in each stream in Figure 1 are shown in Table 2 below.
[0070] [Table 2]
[0071] Comparative Example Comparative Example 1 The acrylic acid production process was simulated using an Aspen Plus simulator manufactured by Aspen Corporation, according to the process flow chart shown in FIG.
[0072] Comparative Example 1 is a case in which one cooling tower is used to separate light gas components, and another distillation tower is used downstream of the extraction tower and the azeotropic distillation tower in order to realize the content of acrylic acid in the stream from which acrylic acid is recovered at 98 wt %, as in Example 1.
[0073] A reaction product was produced using the same aqueous lactic acid solution as in Example 1. Specifically, a 30 wt % aqueous lactic acid solution and nitrogen (N) as a diluent gas were supplied to a reactor, and a reaction product containing unreacted lactic acid, water, light gas components, and acrylic acid was produced by a dehydration reaction.
[0074] The reaction product was supplied to a cooling tower 10, where light gas components such as nitrogen were separated from the upper portion, and a stream containing lactic acid, acrylic acid, and water was separated from the lower portion. Here, the lower operating temperature of the cooling tower 10 was set to 108°C, and the upper operating pressure was set to 1.3 kg / cm. 2 was controlled.
[0075] Next, a part of the bottom discharge stream from the cooling tower 10 was supplied to an extraction tower 100, and the remainder was supplied to an azeotropic distillation tower 200, but the mass flow rate ratio of the aqueous acrylic acid solution stream supplied to the extraction tower 100 to the flow rate of the bottom discharge stream from the cooling tower was maintained at 50% by weight.
[0076] Meanwhile, in the extraction tower 100, acrylic acid was dissolved using toluene as an extraction solvent, and then the extract containing acrylic acid and the extraction solvent was separated as a top discharge stream from the extraction tower 100 and supplied to the azeotropic distillation tower 200. Then, distillation was carried out in the azeotropic distillation tower 200 to separate a bottom discharge stream containing lactic acid and acrylic acid from a top discharge stream containing water and the extraction solvent.
[0077] The bottom discharge stream of the extraction tower 100 and the bottom discharge stream of the azeotropic distillation tower 200 both contain lactic acid, and in order to separate the lactic acid contained therein, first and second lactic acid separation towers 300 and 400 had to be introduced.
[0078] Specifically, the first lactic acid separation tower 300 separated lactic acid and water contained in the lower discharge stream of the extraction tower 100 by distillation, and the second lactic acid separation tower 400 separated lactic acid and acrylic acid contained in the azeotropic distillation tower 200 by distillation.
[0079] On the other hand, acrylic acid was obtained from the top of the second lactic acid separation tower 400, and the energy required in the first and second lactic acid separation towers 300 and 400 to achieve the same acrylic acid content (98 wt%) as in Example 1 was 1.65 Gcal / hr and 0.18 Gcal / hr, respectively.
[0080] The flow rate (kg / hr) and composition (wt%) of each component in each stream in Comparative Example 1 (FIG. 2) are shown in Table 3 below.
[0081] [Table 3]
[0082] Comparative Example 2 The acrylic acid production process was simulated using an Aspen Plus simulator manufactured by Aspen Corporation, according to the process flow chart shown in FIG.
[0083] Specifically, the same method as in Comparative Example 1 was used, except that a 40 wt % aqueous lactic acid solution was supplied to the reactor and the temperature at the bottom of the cooling tower 10 was controlled to 109°C.
[0084] In the case of Comparative Example 2, compared to Example 2 in which a 40 wt % aqueous lactic acid solution was supplied to the reactor, the energy required in the first and second lactic acid separation towers 300 and 400 to achieve the same acrylic acid content (88 wt %) in the stream from which acrylic acid was recovered was 1.35 Gcal / hr and 0.16 Gcal / hr, respectively.
[0085] The flow rate (kg / hr) and composition (wt%) of each component in each stream in Comparative Example 2 (FIG. 2) are shown in Table 4 below.
[0086] [Table 4]
[0087] That is, in the above Example 1 and Comparative Example 1, the concentration of the aqueous lactic acid solution for the dehydration reaction of lactic acid is 30 wt%. Referring to Tables 1 and 3, when unreacted lactic acid and light gas components are separated using two cooling towers as in Example 1, the total process energy required to achieve the same acrylic acid content (98 wt%) was reduced compared to Comparative Example 1. Specifically, in Comparative Example 1, 1.83 Gcal / hr of energy was required to operate a separate distillation column to recover unreacted lactic acid, which required approximately 3.3 Gcal / ton of energy for the recovered unreacted lactic acid (flow rate: 0.563 ton / hr).
[0088] Similarly, in the above Example 2 and Comparative Example 2, the concentration of the lactic acid aqueous solution for the dehydration reaction of lactic acid is 40 wt%. Referring to Tables 2 and 4, when unreacted lactic acid and light gas components are separated using two cooling towers as in Example 2, the total process energy required to achieve the same acrylic acid content (88 wt%) as in Comparative Example 2 was reduced. Specifically, in Comparative Example 2, 1.51 Gcal / hr of energy was required to operate a separate distillation column to recover unreacted lactic acid, which required approximately 0.8 Gcal / ton of energy for the recovered unreacted lactic acid (flow rate: 1.812 ton / hr).
Claims
1. Supplying an aqueous lactic acid solution to a reactor and subjecting it to a dehydration reaction to obtain a reaction product containing unreacted lactic acid, water, light gas components and acrylic acid; Supplying the reaction product to a first cooling tower to separate it into a bottom fraction containing unreacted lactic acid and an top fraction containing water, light gas components and acrylic acid; supplying the top fraction of the first cooling tower to a second cooling tower to separate a bottom fraction comprising water and acrylic acid; and purifying the lower fraction of the second cooling tower to obtain acrylic acid, a portion of the bottom fraction of the second cooling tower is supplied as a first aqueous acrylic acid stream to an extraction tower, and the remainder is supplied as a second aqueous acrylic acid stream to an azeotropic distillation tower; The extract liquid containing acrylic acid and the extraction solvent obtained from the extraction column is supplied to an azeotropic distillation column, and obtaining acrylic acid from the lower fraction of the azeotropic distillation column.
2. The operating temperature of the first cooling tower is 100°C to 180°C, and the operating pressure is 1 kg / cm 2 ~20 kg / cm 2 2. The method for producing acrylic acid according to claim 1, wherein
3. 2. The method for producing acrylic acid according to claim 1, wherein the content of unreacted lactic acid contained in the upper fraction discharged from the first cooling tower is 5 wt% or less.
4. The operating temperature of the second cooling tower is 60°C to 140°C, and the operating pressure is 0.8 kg / cm 2 ~20 kg / cm 2 2. The method for producing acrylic acid according to claim 1, wherein
5. 2. The method for producing acrylic acid according to claim 1, wherein unreacted lactic acid is recovered from the lower fraction of the first cooling tower, and the recovered unreacted lactic acid is circulated to the reactor.
6. 2. The method for producing acrylic acid according to claim 1, wherein a ratio of a flow rate of acrylic acid contained in the bottom discharge stream of the first cooling tower to a flow rate of acrylic acid contained in the reaction product is 15 wt% or less.
7. 2. The method for producing acrylic acid according to claim 1, wherein a light gas component is separated in an upper portion of the second cooling tower.
8. 2. The method for producing acrylic acid according to claim 1, wherein a mass flow rate ratio of the first aqueous acrylic acid stream supplied to the extraction column to a total flow rate of the first aqueous acrylic acid stream and the second aqueous acrylic acid stream is 30% by weight to 70% by weight.
9. 2. The method for producing acrylic acid according to claim 1, wherein the upper fraction of the azeotropic distillation column is supplied to a layer separator to separate water and the extracting solvent, and the separated extracting solvent is recycled to one or more of the extraction column and the azeotropic distillation column.
Citation Information
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