Refining device

The purification apparatus addresses stability and purity issues in crystallization and aging tanks by using a tank with an agitator shaft and bearing, and a hydraulic washing column to prevent wear and polymerization, enhancing productivity and maintaining high-quality compound production.

JP7730364B2Active Publication Date: 2025-08-27NIPPON SHOKUBAI CO LTD
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Patent Information

Application Number
JP2023525866
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-06-02
Filing Date
2022-05-31
Publication Date
2025-08-27
Estimated Expiration
2042-05-31

AI Technical Summary

Technical Problem

Existing purification methods for compounds in the chemical industry face challenges in achieving stable production and high purity while minimizing wear and polymerization issues in crystallization and aging tanks.

Method used

A purification apparatus with a crystallization or aging tank equipped with an agitator shaft and bearing, featuring a line for withdrawing slurry to a hydraulic washing column and flowing mother liquor or melt between the agitator shaft and bearing, preventing crystal mixing and wear, and using a hydraulic washing column to enhance purity.

Benefits of technology

The apparatus operates stably for extended periods, reduces maintenance costs, and improves productivity by preventing agitator shaft and bearing wear, as well as polymerization and freezing, ensuring high-quality compound production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a method for stably obtaining a product. The present invention provides a purification apparatus for compounds which comprises a tank used in the purification apparatus and a hydraulic washing column, said purification apparatus being characterized in that: the tank is a crystallization tank that generates a slurry containing crystals of the compound and / or a maturation tank that is capable of holding the crystals of the compound in a suspended state in the tank and is provided with an agitator having an agitation shaft and a bearing part; and the purification apparatus further comprises a line for extracting, from the tank, the slurry containing the crystals of the compound to be supplied to the hydraulic washing column, and a line for flowing, between the agitation shaft and the bearing part in the tank, a mother liquid derived from the slurry containing the crystals of the compound to be supplied to the hydraulic washing column and / or a melt in which the crystals are melt.
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Description

[Technical Field]

[0001] The present invention relates to a purification device, and more particularly to a purification device, a method for producing a compound, and a method for purifying a compound. [Background technology]

[0002] Purification apparatuses are widely used industrially to purify compounds used as raw materials for resins, etc. In many fields of the chemical industry, there is a demand for obtaining high-quality compounds with reduced impurities, and various investigations have been conducted into better purification apparatuses for this purpose.

[0003] In industry, many crude compounds before purification are purified by a continuous purification process. For example, a method for producing acrylic acid has been disclosed in which an acrylic acid-containing gas obtained by catalytic gas-phase oxidation of a raw material gas is collected and purified by crystallization, and a Michael adduct of acrylic acid contained in the remaining mother liquor is decomposed and returned to the collection step (see, for example, Patent Document 1).

[0004] In the purification step, a tank for producing a slurry containing crystals of the compound (crystallization tank) and a tank for growing crystals of the compound (aging tank) are used to obtain a compound with higher purity in a higher yield. Conventional purification methods using a crystallization tank and an aging tank are disclosed in Patent Documents 2 to 4. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-182437 [Patent Document 2] Japanese Patent Application Laid-Open No. 2005-28214 [Patent Document 3] Japanese Patent Application Laid-Open No. 2012-140471 [Patent Document 4] Japanese Patent Application Laid-Open No. 2002-204937 Summary of the Invention [Problem to be solved by the invention]

[0006] As described above, there is a need for a better purification apparatus for producing compounds, and a method for stably obtaining products (compounds). The present invention has been made in view of the above-mentioned current situation, and aims to provide a method for stably obtaining products. [Means for solving the problem]

[0007] The present inventors have investigated methods for stably obtaining a product and have focused on a purification apparatus comprising a tank used in the purification apparatus and a hydraulic washing column. They have discovered that if the tank is a crystallization tank for producing a slurry containing compound crystals and / or an aging tank capable of maintaining the compound crystals in a suspended state within the tank, and the tank is equipped with an agitator having an agitator shaft and a bearing, and the purification apparatus further comprises a line for withdrawing the slurry containing compound crystals from the tank and supplying it to the hydraulic washing column, and a line for flowing mother liquor derived from the slurry containing compound crystals and / or a melt obtained by melting the crystals supplied to the hydraulic washing column between the agitator shaft and the bearing in the tank, this prevents the slurry containing crystals from being mixed between the rotating agitator shaft and the stationary bearing during use of the tank, thereby preventing wear of the agitator shaft and the bearing due to crystals. Furthermore, if the compound is a polymerizable substance, this can sufficiently prevent polymerization and freezing due to friction between the agitator shaft and the bearing, thereby enabling a stable product to be obtained, thereby completing the present invention.

[0008] That is, the present invention provides a compound purification apparatus having a tank used in the purification apparatus and a hydraulic washing column, wherein the tank is a crystallization tank for producing a slurry containing compound crystals and / or an aging tank capable of maintaining the compound crystals in a suspended state within the tank, and is equipped with an agitator having an agitator shaft and a bearing, and the purification apparatus further has a line for withdrawing the slurry containing the compound crystals from the tank and supplying it to the hydraulic washing column, and a line for flowing mother liquor derived from the slurry containing the compound crystals and / or a melt obtained by melting the crystals that is supplied to the hydraulic washing column between the agitator shaft and the bearing in the tank. [Effects of the Invention]

[0009] By using the refining apparatus of the present invention, the apparatus can be operated stably for a long period of time, thereby improving productivity and reducing maintenance costs. [Brief explanation of the drawings]

[0010] [Figure 1] FIG. 1 is a schematic cross-sectional view of an example of a tank included in the purification apparatus of the present invention, as viewed from the side. [Figure 2a] FIG. 2a is a schematic diagram showing an example of a line to which the present invention can be applied in the purification apparatus of the present invention. [Figure 2b] FIG. 2b is a schematic diagram showing another example of a line to which the present invention can be applied in the purification apparatus of the present invention. [Figure 3] FIG. 3 is a schematic side view of a part of the agitator provided in the tank shown in FIG. [Figure 4] FIG. 4 is a cross-sectional schematic diagram of a bearing portion of the agitator provided in the vessel shown in FIG. 1, seen from the side. [Figure 5] FIG. 5 is a schematic diagram showing another example of a line to which the present invention can be applied in the refining apparatus of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0011] The present invention will be described in detail below. In addition, a combination of two or more of the individual preferred features of the present invention described below is also a preferred embodiment of the present invention.

[0012] In the following, first, the purification apparatus of the present invention will be described, followed by a description of the method for producing the compound of the present invention and a method for purifying the compound of the present invention.

[0013] (Purification device of the present invention) The purification system of the present invention includes a tank used in the purification system and a hydraulic wash column. The purification system of the present invention also includes the above-described line. The tank, hydraulic wash column, line, and other devices will be described below in order.

[0014] <tank> The tank is a crystallization tank that produces a slurry containing compound crystals and / or an aging tank that can hold compound crystals in a suspended state in the tank. The aging tank grows the compound crystals by holding the compound crystals for a certain period of time. The vessel is provided with an agitator having an agitation shaft and a bearing portion therein. The bearing portion may be any portion that can accommodate at least a portion of the agitation shaft of the agitator and has a gap between it and the agitation shaft. The bearing portion may or may not be in contact with at least a portion of the agitation shaft of the agitator. When the bearing portion is in contact with at least a part of the agitator shaft of the agitator, it may be in direct contact with at least a part of the agitator shaft of the agitator, or may be in contact via a ball, roller (rod), or shaft sleeve. For example, the bearing portion preferably accommodates the tip of the stirring shaft of the stirrer and supports the tip. In this specification, the interior of the bearing portion, which is surrounded by the bottom and / or side surfaces and which accommodates at least a portion of the stirring shaft, is also referred to as the interior of the bearing portion.

[0015] The direction of the stirring shaft of the stirrer is not particularly limited, but it is preferably arranged along the direction from the top plate side to the bottom side of the tank. The stirring shaft being arranged along the direction from the top plate side to the bottom side of the tank does not necessarily mean that the stirring shaft is not in contact with the top plate or the bottom surface of the tank, as long as its direction (axial direction) can be said to be the direction from the top plate side to the bottom side of the tank. In particular, the agitator is more preferably installed so that the direction of its agitation axis is in the range of 0 to 30° with respect to the vertical direction, even more preferably in the range of 0 to 15°, still more preferably in the range of 0 to 10°, particularly preferably in the range of 0 to 5°, and most preferably in the vertical direction.

[0016] The bearing portion is preferably composed of, for example, a bottom portion covering the bottom side of the tip of the stirring shaft and / or a side portion covering the side of the tip of the stirring shaft. For example, the bearing portion may be composed only of a side portion covering the side of the tip of the stirring shaft. In this case, the underside (bottom side) of the stirring shaft is not covered by the bearing portion and is not a structure in which liquid or slurry can accumulate, but the effects of the present invention can be achieved by flowing the mother liquor and / or molten liquid into the gap between the bearing portion and the side of the tip of the stirring shaft, preventing the slurry containing crystals from mixing into this gap. The side portion can be a ring-shaped portion, etc. The upper surface of the bearing is partially or entirely uncovered, allowing the liquid inside the bearing to flow out. The bottom surface may be inclined relative to the horizontal direction, but is preferably horizontal.

[0017] The size of the bearing is not particularly limited and can be set appropriately depending on the size of the stirrer, but it is preferable that the inner diameter is, for example, 10 to 500 mm. The inner diameter of the bearing portion, when viewed from above the vessel, is preferably 1 / 1000 or more, and more preferably 1 / 800 or more, of the inner diameter of the vessel. The inner diameter of the bearing portion is preferably 1 / 5 or less of the inner diameter of the tank. In this specification, the inner diameter of the bearing portion refers to the inner diameter of the portion of the bearing portion that covers the side of the agitator shaft when viewed from the direction of the agitator shaft, and if the inside of that portion is a shape other than circular, it refers to the maximum distance (distance on a horizontal plane) between two points on the contour line corresponding to the inside of that portion. The inner diameter of the tank refers to the inner diameter when the tank is viewed from above, and if the tank has a shape other than a cylindrical shape, it refers to the maximum distance (distance on a horizontal plane) between two points on the outline corresponding to the inner wall surface of the tank when viewed from above.

[0018] The inner height (depth) of the bearing is not particularly limited and can be set appropriately depending on the size of the stirrer, but is preferably, for example, 30 to 500 mm. The internal height of the bearing portion is preferably 1 / 1000 or more, more preferably 1 / 800 or more, and even more preferably 1 / 500 or more of the internal height of the tank. The internal height of the bearing portion is preferably 1 / 5 or less, more preferably 1 / 10 or less, of the internal height of the tank. In this specification, the internal height of the bearing part refers to the average height of the entire interior of the bearing part. If the bearing part does not have a top surface and / or a bottom surface, the internal height of the bearing part can be the height of the inside of the side surface of the bearing part. The height inside the tank refers to the difference between the average height of the entire top surface inside the tank and the average height of the entire bottom surface inside the tank. The distance (shortest distance) between the stirring shaft and the bearing portion is preferably within a range of 0.01 to 50 mm, and more preferably within a range of 0.05 to 10 mm. The material of the bearing portion is not particularly limited, but examples thereof include metals such as stainless steel, resins, carbon-based materials such as carbon fiber, glass, and mixtures of these materials, and preferred examples include carbon-based materials, metals containing carbon-based materials, and Teflon (registered trademark) containing glass.

[0019] The above-mentioned tank can be used with an agitator during use to keep at least a portion of the tank in a suspended state. The crystals can be held in the suspended state in the tank for a certain period of time, and after the crystals have grown sufficiently, they can be extracted, for example, as a slurry from near the bottom of the tank. For example, in an aging tank, by holding the crystals for a certain period of time, fine crystals melt by Ostwald ripening, and larger crystals grow further, narrowing the crystal size distribution. This allows high-quality crystals to be obtained, and by subjecting these crystals to the purification process in the subsequent hydraulic washing column, the purification efficiency in the hydraulic washing column can be further improved. Furthermore, even in a crystallization tank, holding the crystals for a certain period of time can be expected to achieve the same effect as in an aging tank.

[0020] In the above-mentioned tank, mother liquor derived from a slurry containing crystals of a compound supplied to the hydraulic washing column and / or a melt obtained by melting the crystals is passed between the agitator shaft and the bearing in the tank. This prevents the crystal-containing slurry from being mixed between the agitator shaft and the bearing, preventing wear on the agitator shaft and bearing due to crystals. This reduces the frequency of agitator shaft and bearing replacement, thereby reducing maintenance costs. Furthermore, if the compound is a polymerizable substance, this prevents polymerization or freezing due to friction between the agitator shaft and the bearing. This fully maintains the agitator's function as described above, allowing for stable production of products over an extended period of time. Furthermore, the pressure within the hydraulic washing column can be used to efficiently transfer the mother liquor and / or melt to the bearing in the tank. As the liquid to be passed between the stirring shaft and the bearing, for example, a mother liquor extracted from a hydraulic washing column and a circulating liquid containing a melt of crystals extracted from a hydraulic washing column can be preferably used, as will be described later.

[0021] The stirrer may be any known stirrer as long as it has a bearing. The material of the stirrer is not particularly limited, but metals such as stainless steel are preferred. The length of the stirring shaft of the stirrer is preferably 1 / 5 or more, more preferably 1 / 2 or more, and even more preferably 4 / 5 or more of the height inside the vessel. The upper limit of the length of the stirring shaft is not particularly limited, and it may be the same as the height inside the tank.

[0022] The diameter of the stirring shaft can be set appropriately depending on the size of the stirrer, but is preferably, for example, 10 to 500 mm. The diameter of the stirring shaft is preferably 1 / 1000 or more, and more preferably 1 / 800 or more, of the inner diameter of the vessel when the vessel is viewed from above. The diameter of the stirring shaft is preferably 1 / 5 or less of the inner diameter of the vessel.

[0023] The length of the stirring blades of the agitator (the distance from the stirring shaft to the tip of the stirring blade) is preferably 1 / 10 or more of the inner diameter of the tank when viewed from above, and more preferably 1 / 8 or more. The length of the stirring blade is usually 1 / 2 or less of the inner diameter of the vessel. There may be a plurality of the stirring blades in the axial direction. In other words, the stirrer may have multi-stage blades. When there are a plurality of the stirring blades in the axial direction, it is preferable that any one of the stirring blades is within the above-mentioned preferred range of inner diameter, but it is more preferable that all of the stirring blades are within the above-mentioned preferred range of inner diameter.

[0024] The vessel generally has a withdrawal port near the bottom for withdrawing the slurry containing the compound crystals from the vessel. Although FIG. 1 and other figures described below show a case where there is only one outlet for discharging the crystal-containing slurry in the vessel, a plurality of outlets may be provided in the vessel.

[0025] The tank may be provided with a baffle therein, which is preferably provided, for example, along the direction from the top plate side to the bottom side of the tank. The baffle plate is preferably provided on the bottom side of the tank. The baffle plate being provided on the bottom side of the vessel means that the height of the center of gravity of the baffle plate is located at a position that corresponds to the lower half of the vessel's internal volume. Examples of materials for the baffle plate include metals such as stainless steel, and resins. A plurality of the baffles may be provided in the tank.

[0026] The residence time of the compound in the aging tank may be adjusted appropriately depending on the type of compound to be purified, but from the viewpoint of adjusting the particle size distribution of the slurry sent to the washing column and reducing the reflux ratio in the washing column (flow rate of washing liquid / flow rate of purified compound), the residence time is preferably 0.5 to 6 hours. When the compound is (meth)acrylic acid, the residence time is more preferably 1 to 5 hours, and even more preferably 1.2 to 4.5 hours. The residence time is calculated as the volume of the suspension in the aging tank divided by the flow rate at which the slurry is supplied from the aging tank to the hydraulic washing column in the next step (later stage). The size of the crystallization tank is determined by the required heat transfer area, etc. The residence time of the compound in the crystallization tank depends on the operating conditions.

[0027] The tank preferably further includes a supply port near the top plate for supplying a slurry containing the compound crystals to the tank, thereby enabling the slurry containing the compound crystals to be suitably supplied to the tank. 1, which will be described later, shows a case in which there is only one line 52 for sending the slurry to the tank and only one supply port for the slurry is provided in the tank 21, but a plurality of supply ports may be provided in the tank. Furthermore, the nozzle (line 52) constituting the supply port may have its tip bent so that the slurry is supplied along the inner wall surface of the tank, or its tip may be placed in the liquid so that the slurry is supplied into the liquid.

[0028] The tank preferably further includes a drain port near the top plate for draining the supernatant mother liquor from the tank. The drained mother liquor can be recycled, thereby improving the yield of the compound. For example, the drained mother liquor can be returned to the tank related to the previous step (previous stage). The nozzle or pipe constituting the drain port is not particularly limited in terms of material, and can be made of, for example, a metal or alloy. In FIG. 1 described later, only one mother liquor outlet is provided in the tank 21, but a plurality of outlets may be provided in the tank. In this specification, the supernatant portion refers to the portion where the mother liquor (supernatant) derived from the slurry is present when the tank is in use. The suspension portion refers to the portion where the slurry (suspension) containing the compound crystals is present when the tank is in use. The extent of the supernatant portion and suspension portion can be determined by the size, shape, arrangement, etc. of the baffle plates.

[0029] The tank may further include a partition plate disposed between the supply port for the crystal-containing slurry and the outlet for the mother liquor, extending from the top to the bottom of the tank, thereby further preventing the crystals from contaminating the outlet for the mother liquor. The size of the partition plate can be appropriately set depending on the size of the tank. Examples of materials for the partition plate include metals such as stainless steel, and resins. The tank may be provided with only one or more of the above-mentioned partition plates.

[0030] The tank may further include a weir near the top plate for preventing crystals of the compound from entering the outlet for extracting the mother liquor. The weir portion may be provided in only one tank, or if multiple mother liquor outlets are provided, multiple weir portions may be provided in the tank, one for each mother liquor outlet, or a common weir portion may be provided for the multiple mother liquor outlets.

[0031] The size of the tank is not particularly limited, but it is preferable that the inner diameter is 100 to 50,000 mm, and the height is 1,000 to 100,000 mm, for example.

[0032] Instrumentation devices such as thermometers, pressure gauges, level gauges (radar type, etc.), and level switches (float type, etc.) may be provided in or around the crystallization tank or aging tank. Sight glasses (sight windows) may be provided on the side plates, etc. of the aging tank, and in this case, these may be covered with covers. Manholes, handholes (holes for reaching inside during maintenance), etc. may be provided on the top plate, side plate, etc. of the aging tank, and ruptures, etc. may be provided on the top plate, etc. of the aging tank. There is no limit to the number of these devices that may be provided.

[0033] <Hydraulic washing column> The purification apparatus of the present invention comprises a hydraulic washing column provided with an outlet for a circulating slurry containing crystals and a return port for a circulating liquid containing a melt of the withdrawn crystals, a pipe for supplying the crystal-containing slurry to the hydraulic washing column, a filter for filtering the crystal-containing slurry in the hydraulic washing column, a pipe connected to the filter for withdrawing a mother liquor, and equipment for melting the crystals contained in the circulating slurry withdrawn from the outlet.

[0034] The pipe connected to the filter and used to withdraw the mother liquor is usually located above the filter. In one preferred embodiment of the purification apparatus of the present invention, at least a portion of the withdrawn mother liquor is passed between the stirring shaft and the bearing in the tank. The remaining mother liquor can be reused by, for example, supplying it to the tank from the top side, or by mixing it with a slurry containing crystals supplied to the hydraulic washing column and then supplying it to the hydraulic washing column through the hydraulic washing column inlet. In this way, the slurry can be suitably supplied to the hydraulic washing column. In this way, the compound is purified, yielding a highly pure compound. Alternatively, the remaining mother liquor can be passed through a nozzle provided in the hydraulic washing column to prevent freezing. The filter is not particularly limited in terms of material, and may be made of, for example, a metal such as stainless steel, or a resin such as polytetrafluoroethylene (PTFE) or polyether ether ketone (PEEK), with the latter being preferred. The pipe is not particularly limited in terms of material, and may be made of, for example, a metal or alloy.

[0035] The purification apparatus of the present invention may further include a dummy pipe connected to a filter that filters the slurry containing crystals in the hydraulic wash column. The dummy pipe is usually placed below the filter. There are no particular restrictions on the material of the dummy pipe, but it is preferable that the dummy pipe be made of a resin such as polytetrafluoroethylene (PTFE), polyether ether ketone (PEEK), or perfluoroalkoxyalkane (PFA).

[0036] The hydraulic washing column may be provided with instrumentation devices such as a thermometer (multipoint type, etc.), a pressure gauge, an interface meter (optical type, etc.) in its main body or in its periphery.

[0037] The purification apparatus of the present invention may further include an extraction line connecting the outlet (herein also referred to as the product extraction port) for the crystal-containing slurry in the hydraulic washing column to the melting equipment, and a return line connecting the melting equipment to an outlet provided in the hydraulic washing column for returning a circulating liquid containing a melt of the extracted crystals. The extraction line is preferably installed near the bottom of the hydraulic washing column. When the purification apparatus of the present invention is in use, the extraction line and the return line may be used to circulate a circulating liquid containing the circulating slurry or the melt. In this specification, this circulation path is also referred to as a melt loop. The part of the circulation path through which the circulating slurry flows is the part from when the crystals from the hydraulic washing column are introduced into the circulating liquid to form a circulating slurry, until the crystals contained in the circulating slurry are melted. For example, in the melt loop described above, the circulating liquid returned from the return port at the bottom of the hydraulic washing column may be mixed with the crystals in the hydraulic washing column to form a circulating slurry, which then flows through a path (withdrawal line) between the circulating slurry withdrawal port and the melting equipment.

[0038] The purification system of the present invention may also include a mechanism for withdrawing crystals from the crystal bed within the hydraulic wash column. The mechanism for extracting the crystals from the crystal bed is not particularly limited, and examples thereof include the rotor blades or scrapers described in JP-A-2005-509009 and the hydraulic dynamic pressure mechanism described in EP-A-1469926, and one or more of these can be used. The rotor blades or scrapers are preferably made of a metal such as stainless steel.

[0039] A heater is usually used as the melting equipment. Examples of the heater include a device with a structure that efficiently transfers heat to the crystal-containing slurry, such as a vertical multi-tube heat exchanger, horizontal multi-tube heat exchanger, double-tube heat exchanger, spiral heat exchanger, plate heat exchanger, serpentine heat exchanger, and electric heater. The heater is preferably a forced circulation type heater installed in the melt loop, in which the circulating slurry (which becomes a circulating liquid after melting) is circulated by a pump installed in the melt loop.

[0040] The purification apparatus of the present invention may further include a mechanism (return mechanism) for returning a part of the circulating liquid containing the melt obtained in the crystal melting equipment to the hydraulic washing column. The return mechanism may be any mechanism used to separate a portion of the circulating liquid from the other portion of the circulating liquid and return it to the hydraulic washing column, and may be, for example, a branch path when there is a product withdrawal line that branches off from the return line connecting the melting equipment and the return port and is connected to the product withdrawal port. An example of such a branch path is a T-junction. The return mechanism may be, for example, a mechanism that returns a portion of the circulating liquid containing the melt obtained in the crystal melting equipment to the hydraulic washing column so that at least a portion of the circulating liquid serves as a washing liquid for washing the crystals. The return port is preferably provided at the bottom of the hydraulic washing column so that the circulating liquid can be returned upward.

[0041] The purification apparatus of the present invention may further include a mechanism for withdrawing a portion of the circulating liquid containing a melt obtained in the crystal melting equipment and flowing the portion between the agitator shaft and the bearing in the tank. The mechanism may be any mechanism used to separate a portion of the circulating liquid from the other portion of the circulating liquid and return the portion to the tank, and may be, for example, a line for withdrawing compound crystals from the hydraulic washing column and heating and melting them, and for flowing a portion of the circulating liquid containing the melt obtained by heating and melting the crystals between the agitator shaft and the bearing in the tank. In this specification, the circulating liquid can be said to consist of the mother liquid and the melt.

[0042] The size of the hydraulic washing column included in the purification apparatus of the present invention is not particularly limited, but for example, the inner diameter of the column (crystallization chamber) is preferably 30 to 2000 mm, and the height is preferably 1500 to 15000 mm. The size of the filter used to filter the crystal-containing slurry in the hydraulic washing column is not particularly limited, but it is preferable that the inner diameter is 10 to 30 mm, and the height is 20 to 300 mm, for example. The filter may have a large number of circular holes, slits (notches), or rectangular holes, and may have any shape, such as a cylindrical shape, similar to a pipe, although the shape is not particularly limited. When the filter has circular pores, the diameter may be adjusted appropriately depending on the size of the crystals, but is preferably 50 to 500 μm, for example. There is no particular limitation on the number of pores, and the number may be adjusted depending on, for example, the pressure loss.

[0043] The pipe connected to the filter and for withdrawing the mother liquor is usually arranged above the filter, as described above. The pipe for extracting the mother liquor connected to the filter is not particularly limited. For example, in an industrial-scale hydraulic washing column, the hydraulic washing column has a cross-sectional area of ​​1 m 2 It is preferable that 50 to 350 pipes are connected in parallel per unit.

[0044] The purification apparatus of the present invention may further include a mechanism for heating the outer wall surface of the hydraulic wash column. The mechanism for heating the outer wall surface of the hydraulic washing column is not particularly limited, but examples include a heat transfer medium, steam tracing, electric tracing, and a known heater for adjusting the environmental temperature of the column. For example, the hydraulic washing column may be heated by partially heating it with a heat transfer medium or the like, but it is preferable that the hydraulic washing column is heated by substantially the entirety of the hydraulic washing column (jacket type).

[0045] When the heating mechanism is, for example, a jacket type, the material thereof is not particularly limited, and may be made of metal (for example, SUS, carbon steel) or resin. It is also possible to install a heat insulating material, traces, etc. on the outside of the jacket. The structure of the jacket is not particularly limited.

[0046] The inside of the jacket may be provided with a structure for promoting heat transfer, such as a baffle, although this is not particularly limited. The average thickness of the jacket (the width of the space through which the heat transfer medium flows) is preferably, for example, 5 to 200 mm. The heat flux through the wall of the jacketed hydraulic washing column is 100 W / m 2 More than 200W / m is preferable. 2 More than 500W / m is more preferable. 2 The above is more preferable. The upper limit of the heat flux through the wall of the hydraulic washing column of the jacket is not particularly limited, but is usually 4000 W / m 2 The following is the result. The difference between the melting point of the compound and the temperature of the heat medium supplied to the jacket is preferably 1° C. or more, more preferably 2° C. or more, and even more preferably 5° C. or more. The upper limit is not particularly limited, but is usually 20° C. A sight glass or a hand hole may be provided on the side wall of the jacket. In this case, these may be covered with a cover. When providing sight glasses or hand holes, there is no limit to the number of sight glasses or hand holes that may be provided.

[0047] The heat medium is not particularly limited and may include water, antifreeze, methanol water (methanol aqueous solution), gas, steam, etc. The heat medium may be appropriately selected taking into consideration the freezing point of the compound to be purified, etc.

[0048] As will be described later, the number of pipes for supplying the crystal-containing slurry to the hydraulic washing column and the number of supply nozzles (slurry supply ports) that may be connected to the ends of the pipes are not particularly limited, and may be one or more (FIGS. 2a, 2b, and 5 show the case where there is one pipe for supplying the crystal-containing slurry to the hydraulic washing column). The supply nozzle may have a dispersion mechanism at its tip for dispersing the slurry. The hydraulic washing column may further include a dispersion chamber and a central displacement body (see JP-A-2005-509010).

[0049] The purification apparatus of the present invention further includes a line for withdrawing the slurry containing compound crystals from the tank and supplying it to the hydraulic wash column. This line can be composed of, for example, a pipe extending from the outlet for the slurry containing compound crystals in the tank to the inlet for the slurry containing crystals in the hydraulic wash column, and, as necessary, a nozzle connected to the end of the pipe, which constitutes the outlet for the slurry containing compound crystals in the tank, and a nozzle which constitutes the inlet for the slurry containing crystals in the hydraulic wash column. A pump, for example, can be used to withdraw the slurry containing crystals, and preferred pumps include a centrifugal pump, a diaphragm pump, and a rotary pump. The number of the above lines is not particularly limited, and may be one or more (FIGS. 2a, 2b, and 5 show the case where there is one line 53 for transporting the slurry from the (aging) tank to the washing column). The nozzle constituting the supply port for the crystal-containing slurry in the hydraulic washing column may have a dispersion mechanism at its tip for dispersing the slurry.

[0050] <A line for allowing the mother liquor derived from the slurry containing compound crystals and / or the molten liquid obtained by melting the crystals to be supplied to the hydraulic washing column to flow between the stirring shaft and the bearing in the tank> The purification apparatus of the present invention further includes a line for allowing a mother liquor derived from a slurry containing crystals of a compound to be supplied to the hydraulic wash column and / or a molten liquid obtained by melting the crystals to flow between the stirring shaft and the bearing in the tank. Suitable examples of the line include a line for withdrawing a mother liquor derived from a slurry containing crystals of a compound from a hydraulic washing column and flowing at least a portion of the withdrawn mother liquor between the stirring shaft and the bearing in a tank; and a line for withdrawing crystals of the compound from a hydraulic washing column, heating and melting them, and flowing a portion of a circulating liquid containing the molten liquid obtained by heating and melting them between the stirring shaft and the bearing in the tank. The mother liquor derived from the slurry containing compound crystals is obtained by removing solids from the slurry containing compound crystals supplied to a hydraulic washing column, and can be obtained by removing solids from the slurry containing the compound crystals by methods such as filtration or removal of the supernatant, but is preferably obtained by removing solids at least by filtration. For example, as described above, the slurry containing crystals can be filtered using a filter, and the mother liquor can be removed using a pipe connected to the filter. The circulating liquid containing the melt circulates through the melt loop, and can be withdrawn from the melt loop and allowed to flow between the agitator shaft and the bearing in the vessel.

[0051] When the above tank is an aging tank, the purification apparatus of the present invention may further include a crystallization tank as a stage preceding the aging tank. When the purification apparatus of the present invention further includes the crystallization tank, the purification apparatus of the present invention can have one or more crystallization tanks. When the purification apparatus of the present invention has multiple crystallization tanks (crystallization tanks 1 to N), these multiple crystallization tanks are preferably connected in series. In this case, the purification apparatus of the present invention usually has a line for sending a slurry containing compound crystals from one crystallization tank to another crystallization tank, optionally via a solid-liquid separation device. In addition, in this case, the purification apparatus of the present invention has a line for supplying a solution containing the compound to be purified to at least one crystallization tank. Furthermore, it is preferable that the purification apparatus of the present invention has a line for supplying a slurry containing compound crystals to the aging tank from at least the Nth crystallization tank. When the purification apparatus of the present invention includes a crystallization tank and an aging tank, at least one of the crystallization tank and the aging tank may be the tank of the present invention.

[0052] The purification system of the present invention preferably further comprises a line for removing the product from the hydraulic wash column. The purification apparatus of the present invention may further include a line for returning the mother liquor from a downstream tank or apparatus to an upstream tank or apparatus. The purification apparatus of the present invention may further include a mechanism for controlling the amount of the slurry sent and the amount of the mother liquor returned. Examples of such a control mechanism include valves attached to various lines. The refining apparatus of the present invention may also include other devices that are generally used in refining apparatuses. Furthermore, the purification apparatus of the present invention may be equipped with a mechanism for heating all or part of the outer wall surface of the tank or column in order to prevent freezing of the slurry containing crystals, and the purification apparatus of the present invention itself may be located inside a temperature-controlled casing (generally inside a building, etc.).

[0053] FIG. 1 is a cross-sectional schematic diagram of an example of a tank included in the purification apparatus of the present invention, viewed from the side. Crystal-containing slurry is supplied to tank 21 via line 52, which delivers the slurry to the tank. Next, by rotating the agitator shaft of tank 21, at least a portion of the tank becomes suspended. The crystal-containing slurry can be held in the suspension for a certain period of time, allowing the crystals in the slurry to grow. The crystal-containing slurry can then be extracted from near the bottom of the tank via line 53, which delivers the slurry from the tank to a washing column.

[0054] The purification apparatus of the present invention shown in Figure 1 is provided with a line 14 for flowing the mother liquor and / or melt between the agitator shaft and the bearing in the tank, and the mother liquor and / or melt can be flowed through this line 14 into the bearing 3. This prevents the mixture of slurry containing crystals between the agitator shaft and the bearing (inside the bearing) and prevents wear of the agitator shaft and bearing due to crystals. Furthermore, when the compound is a polymerizable substance, polymerization and freezing due to sliding between the agitator shaft and the bearing can be sufficiently prevented, allowing the product to be obtained stably.

[0055] As shown in Figure 1, it is also possible to recover the mother liquor from a mother liquor outlet provided in the supernatant portion of the tank via line 72. By providing a partition plate in the supernatant portion, the nozzle serving as the slurry supply port can be separated from the mother liquor outlet, preventing crystals from entering the mother liquor outlet. Furthermore, the mother liquor outlet can be covered with a weir, which also prevents crystals from entering the mother liquor outlet.

[0056] FIG. 2a is a schematic diagram showing an example of a line to which the present invention can be applied in the purification apparatus of the present invention. Slurry containing crystals is extracted from tank 21 and supplied to hydraulic washing column 41 via line 53, which transports the slurry from the tank to the washing column. In hydraulic washing column 41, the crystals move downward to form a crystal bed. At the bottom of the column, the crystal bed is scraped off, suspended in a circulating liquid, and heated and melted. A portion of the circulating liquid containing the resulting melt is discharged as high-purity compound 5. A portion of the remaining circulating liquid (washing liquid) is returned to hydraulic washing column 41 and brought into countercurrent contact with the crystal bed to wash the crystals. The hydraulic washing column 41 is also provided with a filter for filtering the crystal-containing slurry in the hydraulic washing column 41, and a pipe for extracting mother liquor connected to the filter, allowing the mother liquor to be recovered from the crystal-containing slurry. In this manner, a portion of the mother liquor derived from the slurry containing the compound crystals is supplied to the space between the agitator shaft and the bearing in the tank 21 via line 76, which allows the mother liquor to flow between the agitator shaft and the bearing in the tank. That is, the mother liquor is extracted from the mother liquor extraction port through a line, and a portion of the mother liquor is supplied to the space between the agitator shaft and the bearing in the tank 21 via line 76. The remainder of the mother liquor is recovered and reused via line 75, which returns a portion of the extracted mother liquor to the tank from the top side, and line 131, which sends a portion of the extracted mother liquor back to the hydraulic washing column 41. For example, the mother liquor returned via line 75 can be supplied to the tank 21 from the top plate of the tank 21 together with the slurry containing the compound crystals. Furthermore, the mother liquor delivered through line 131 can be mixed with the slurry delivered through line 53 and then supplied to the hydraulic washing column 41 from its inlet, thereby allowing for reuse. By using the mother liquor delivered through line 131 in this way, the slurry can be suitably supplied to the interior of the hydraulic washing column 41. In this way, the compound is purified, and a highly pure compound is obtained. Furthermore, the remaining mother liquor can be supplied to a nozzle provided on the top plate of the hydraulic washing column 41 through a line for preventing the nozzle from freezing.

[0057] The mother liquor supplied to the bearing section may be heated before being supplied. Suitable heating mechanisms include a mechanism in which a heating device is installed in the line (line 76) for transporting the mother liquor supplied to the bearing section, which heats the mother liquor as it passes through the line, and / or a mechanism that directly heats the line for transporting the mother liquor and heats the mother liquor passing through the line, or a mechanism that combines these mechanisms. Examples of the heating device include a vertical multi-tube heat exchanger, a horizontal multi-tube heat exchanger, a double-tube heat exchanger, a spiral heat exchanger, and a plate heat exchanger. Examples of mechanisms that directly heat the line for transporting the mother liquor and heat the mother liquor passing through the line include a mechanism in which an electric heater, steam tracing, hot water tracing, a steam jacket, a hot water jacket, or the like is installed in the line. The direct heating of the line may be performed entirely or partially. This prevents freezing within the bearing section. Furthermore, since the mother liquor supplied to the bearing section is extracted from the hydraulic washing column at the subsequent stage, it has a purity equal to or higher than that of the mother liquor in the tank and freezes more easily (its freezing point is slightly higher). Therefore, it is preferable to heat the mother liquor before supplying it. Furthermore, when purifying polymerizable substances, the mother liquor supplied to the bearing is extracted from a hydraulic wash column in the purification system and therefore usually contains a stabilizer, which is sufficient to prevent polymerization. Although not shown, pumps may be provided in the lines 75, 76, and 131, and in the lines for preventing freezing of the nozzles provided on the top plates of the hydraulic washing columns, and the amount of mother liquor flowing through each line can be appropriately adjusted by providing appropriate valves, orifices, and flow meters.

[0058] The crystals are extracted from the outlet at the bottom of the hydraulic washing column 41 and heated and melted, and at least a portion of them can be used as the product 5. The remainder can be returned to the washing column as a washing liquid. If desired, a line can be provided for extracting the crystals, heating and melting them, and returning a portion of them to the washing column as a washing liquid.

[0059] FIG. 2b is a schematic diagram showing another example of a line to which the present invention can be applied in the purification apparatus of the present invention. 2b, instead of line 76 for withdrawing the mother liquor derived from the slurry containing compound crystals from the top plate of the hydraulic washing column and flowing a portion of the withdrawn mother liquor between the agitator shaft and the bearing in the tank, line 59 is used for flowing a portion of the liquid obtained by withdrawing the crystals from the bottom of the hydraulic washing column and heating and melting them between the agitator shaft and the bearing in the tank. Using such a purification apparatus to flow the liquid between the agitator shaft and the bearing in the tank also prevents the slurry containing the crystals from being mixed between the agitator shaft and the bearing, thereby preventing wear on the agitator shaft and bearing due to the crystals. Furthermore, when the compound is a polymerizable substance, polymerization and freezing due to sliding between the agitator shaft and the bearing can be sufficiently prevented, thereby achieving the effects of the present invention.

[0060] The liquid obtained by the heat melting may be further heated before being supplied. Suitable heating mechanisms include a mechanism in which a heating device is provided in the path of a line (line 59) for passing a portion of the liquid obtained by the heat melting between the agitator shaft and the bearing in the tank, and / or a mechanism that directly heats the line transporting the liquid obtained by the heat melting and heats the liquid passing through the line, and a mechanism that combines these mechanisms. The heating device and heating mechanism are as described above. Furthermore, the liquid obtained by the heating and melting and supplied to the bearing section is extracted from the hydraulic washing column at the subsequent stage, and therefore has the same or higher purity as the mother liquor in the tank and is more likely to freeze (its freezing point is slightly higher). Therefore, it is preferable to heat the liquid before supplying it.

[0061] Figure 3 is a schematic side view of a portion of the agitator included in the tank shown in Figure 1. Figure 3 shows that line 14 passes through supply port 22 and is connected to the bottom surface of the bearing part of the agitator. Note that Figure 3 shows a more specific example of bearing part 3 shown in Figure 1.

[0062] FIG. 4 is a cross-sectional schematic diagram of the bearing of the agitator shown in FIG. 1, viewed from the side. The mother liquor that has passed through line 14 is supplied to the inside of bearing 3e from the bottom side and can flow between the tip 3d of the agitator shaft and bearing 3e. This effectively prevents the liquid between the tip 3d of the agitator shaft and bearing 3e from freezing. Furthermore, if the liquid between the tip 3d of the agitator shaft and bearing 3e contains an easily polymerizable component, its polymerization can also be effectively prevented. This effectively prevents the inside of bearing 3e from becoming clogged, rendering the agitator unusable. Furthermore, it prevents slurry containing crystals from being mixed between the tip 3d of the agitator shaft and bearing 3e, preventing wear on the agitator shaft and bearing due to the crystals. As a result, it becomes possible to obtain the compound more stably over a long period of time.

[0063] Fig. 5 is a schematic diagram showing another example of a line to which the present invention can be applied in the purification apparatus of the present invention. The purification apparatus shown in Fig. 5 is an apparatus having one crystallization tank and one aging tank as a crystallization apparatus, in which a line is installed to directly send mother liquor from the aging tank, which is the tank immediately upstream, to the crystallization tank, and a line is installed to directly discharge residue (mother liquor) from the crystallization tank, which is the most downstream tank. Solution 1a of the compound to be fed to the purification system is introduced into aging tank 21. It is cooled in crystallization tank 11, which is equipped with a cooling mechanism, and the slurry containing the precipitated crystals is sent to solid-liquid separator 31 via line 51. In solid-liquid separator 31, the slurry is separated into mother liquor and concentrated crystal slurry. The concentrated crystal slurry is sent to the adjacent aging tank 21 via line 52, and the mother liquor is returned to crystallization tank 11 via line 61. Residue is discharged from crystallization tank 11 to the outside of the purification system via line 71, and the liquid level in crystallization tank 11 is adjusted. After crystals are grown in aging tank 21, the slurry containing the crystals is sent to hydraulic washing column 41 via line 53. To adjust the liquid level in aging tank 21, mother liquor is sent directly from aging tank 21 to crystallization tank 11 via line 72.

[0064] The refining apparatus of the present invention is not limited to any particular state of use, but may be any apparatus having the above-described configuration and capable of causing the mother liquor and / or molten liquid to flow between the stirring shaft and the bearing portion in the tank when the refining apparatus of the present invention is in use.

[0065] (Method for producing the compound of the present invention) The present invention also provides a method for producing a compound, comprising the steps of: supplying a slurry containing compound crystals to a tank equipped with an agitator having an agitator shaft and a bearing; withdrawing the slurry containing the compound crystals from the tank and supplying it to a hydraulic washing column; and allowing a mother liquor derived from the slurry containing the compound crystals and / or a melt obtained by melting the crystals supplied to the hydraulic washing column to flow between the agitator shaft and the bearing in the tank, wherein the tank is a crystallization tank that produces a slurry containing the compound crystals and / or an aging tank that can maintain the compound crystals in a suspended state within the tank.

[0066] In the compound production method of the present invention, the steps of feeding the tank, feeding the hydraulic washing column, and flowing are basically performed in this order for the target to be purified. (For example, as shown in FIG. 2a, a crystal-containing slurry is fed into tank 21 via line 52, which feeds the slurry into the tank. The slurry containing the compound crystals is then withdrawn, for example, from an outlet near the bottom of the tank and fed to hydraulic washing column 41 via line 53. Thereafter, mother liquor derived from the slurry containing the compound crystals is withdrawn from a mother liquor outlet near the top of the hydraulic washing column, and at least a portion of the withdrawn mother liquor is passed through line 76 between the agitator shaft and the bearing in the tank.) Below, the steps of feeding the tank, feeding the hydraulic washing column, and flowing will be described in order, followed by the steps of stirring in the tank, withdrawing the mother liquor from the tank, and other steps. In a continuous purification process, the individual steps are usually performed simultaneously when viewed as the entire purification apparatus. In this specification, "compound" refers to a compound obtained by the production method of the present invention, and does not refer to raw materials, by-products, or solvents in the production method of the present invention. "Compound" can be rephrased as "target compound" or "target product." In this specification, "impurities" refer to components other than "compound," such as raw materials, by-products, and solvents.

[0067] <Process of supplying to the tank> In the step of supplying the compound to the tank, a slurry containing compound crystals is supplied to a tank equipped with an agitator having an agitator shaft and a bearing. The crystal-containing slurry is a suspension of compound crystals and mother liquor; in other words, the liquid portion of the compound crystal-containing slurry supplied to the tank is the mother liquor. As will be described later, the crystal-containing slurry can be obtained by generating crystals in a compound-containing solution (e.g., an aqueous (meth)acrylic acid solution or a crude (meth)acrylic acid solution). The compound-containing solution may be prepared by the process itself or may be procured from another source. The compound-containing solution and the mother liquor returned from the next step (such as a washing column) may also be supplied to the tank (e.g., an aging tank). The compound-containing solution referred to here also includes crude compounds.

[0068] In the step of supplying the compound crystals to the tank, the slurry containing the compound crystals is preferably supplied to the tank from near the top plate of the tank, for example, via a pipe or nozzle provided on the top plate of the tank.

[0069] From the viewpoint of obtaining a product more stably, the mass proportion of the crystals in the slurry containing the crystals supplied to the tank is preferably 25 mass% or more, more preferably 30 mass% or more, and even more preferably 35 mass% or more. From the viewpoint of improving the fluidity of the slurry and further reducing the risk of pipe clogging, the mass proportion of the crystals is preferably 55% by mass or less, more preferably 50% by mass or less, and even more preferably 45% by mass or less. The crystal-containing slurry to be supplied to the tank may be concentrated using a solid-liquid separator, for example. In this specification, when simply referring to "slurry containing crystals to be supplied to a tank," the slurry containing crystals to be supplied to the tank refers to a slurry containing crystals immediately before being supplied to the tank, for example, a slurry containing crystals in a pipe or nozzle for supplying the slurry containing crystals to the tank.

[0070] The crystal-containing slurry supplied to the tank preferably contains the compound in its mother liquor. Examples of the mother liquor include the compound and an aqueous solution of the compound. The mother liquor usually contains impurities other than the compound and water. In the method for producing a compound of the present invention, the purity (mass proportion) of the compound in the mother liquor of the crystal-containing slurry supplied to the tank is preferably 99 mass % or less. The mass proportion of the compound in the mother liquor is preferably 80 mass % or more.

[0071] In the manufacturing method of the present invention, the compound is preferably an easily polymerizable compound having a reactive double bond, which can also sufficiently prevent polymerization of the compound within the bearing portion. In particular, in the production method of the present invention, the compound is more preferably an unsaturated carboxylic acid, further preferably (meth)acrylic acid, and particularly preferably acrylic acid. In this specification, (meth)acrylic acid refers to acrylic acid and / or methacrylic acid.

[0072] In the step of supplying the crystal-containing slurry to the tank, the supply rate is not particularly limited. In the case of an industrial-scale tank, the supply rate is, for example, 0.2 × 10 3 ~4.0×10 5 kg / h.

[0073] In the step of supplying the crystal-containing slurry to the tank, the supply temperature can be appropriately set depending on the melting point of the compound, and can be adjusted appropriately within the range of preferably -1 to -15°C, more preferably -1.5 to -13.5°C, even more preferably -3.5 to -12.5°C, and particularly preferably -5 to -11.5°C relative to the melting point of the pure substance of the compound. For example, when the compound is (meth)acrylic acid, the supply temperature of the slurry containing the crystals is preferably 0 to 12°C, more preferably 1 to 10°C, and even more preferably 2 to 8.5°C. The supply temperature of the crystal-containing slurry is the temperature of the mother liquor in the crystal-containing slurry immediately before it is supplied to the tank (e.g., the crystal-containing slurry in the pipe or nozzle that supplies the crystal-containing slurry to the tank).

[0074] The tank may be operated under increased pressure, normal pressure, or reduced pressure. However, from the viewpoint of suitably supplying the mother liquor from the hydraulic washing column to the bearing portion of the tank, it is preferable to operate the tank at a pressure lower than the pressure in the hydraulic washing column, for example, at least 0.01 MPa lower.

[0075] <Step of feeding into hydraulic washing column> In the step of feeding the hydraulic wash column, the slurry containing the compound crystals is withdrawn from the vessel and fed to the hydraulic wash column.

[0076] In the step of supplying the compound to the hydraulic washing column, the slurry containing the compound crystals is first extracted from the tank, preferably from near the bottom of the tank. Next, the slurry containing the extracted compound crystals is supplied to a hydraulic washing column. In the step of supplying the slurry to the hydraulic washing column, it is preferable to supply the slurry containing the compound crystals to the hydraulic washing column from the top plate or near the top plate of the hydraulic washing column. For example, it is preferable to supply the slurry containing the compound crystals to the hydraulic washing column through a pipe or nozzle provided on the top plate of the hydraulic washing column. The step of feeding the hydraulic wash column can be suitably carried out using a pump such as a centrifugal pump, a diaphragm pump, or a rotary pump.

[0077] The mass proportion of the crystals in the crystal-containing slurry supplied to the hydraulic washing column is preferably 1 mass % or more, more preferably 3 mass % or more, and even more preferably 5 mass % or more. The mass proportion of the crystals is preferably 50% by mass or less, more preferably 40% by mass or less, even more preferably 30% by mass or less, and particularly preferably 20% by mass or less. In this specification, when the term "crystal-containing slurry to be supplied to a hydraulic wash column" is used, it refers to the crystal-containing slurry immediately before being supplied to the hydraulic wash column, for example, the crystal-containing slurry in a pipe or nozzle that supplies the crystal-containing slurry to the hydraulic wash column.

[0078] The crystal-containing slurry supplied to the hydraulic washing column preferably contains the compound in its mother liquor, similar to the crystal-containing slurry supplied to the tank. Examples of the mother liquor include the compound and an aqueous solution of the compound. The mother liquor usually contains impurities other than the compound and water. The preferred ranges of the purity of the compound, the mass proportion of water, and the mass proportion of impurities other than the compound and water in the mother liquor are the same as the preferred ranges of the purity of the compound, the mass proportion of water, and the mass proportion of impurities other than the compound and water in the mother liquor in the pouring step described below.

[0079] In the step of supplying the crystal-containing slurry to the hydraulic washing column, the supply rate of the crystal-containing slurry is not particularly limited. In the case of an industrial-scale hydraulic washing column, the supply rate is, for example, 0.2 × 10 3 ~4.0×10 5 kg / h.

[0080] In the step of supplying the crystal-containing slurry to the hydraulic washing column, the supply temperature can be appropriately set depending on the melting point of the compound, and can be adjusted, for example, within the range of 0 to 80°C. For example, when the compound is (meth)acrylic acid, the supply temperature of the slurry containing the crystals is preferably 5 to 13°C, and more preferably 6 to 12°C. The supply temperature of the crystal-containing slurry is the temperature of the mother liquor in the crystal-containing slurry immediately before it is supplied to the hydraulic wash column (e.g., the crystal-containing slurry in the pipe or nozzle that supplies the crystal-containing slurry to the hydraulic wash column).

[0081] <Pour process> The flowing step involves flowing a mother liquor derived from a slurry containing crystals of a compound and supplied to the hydraulic washing column and / or a molten liquid obtained by melting the crystals between the agitator shaft and the bearing in the tank. For example, it is preferable to withdraw the mother liquor derived from the slurry containing crystals of the compound from the hydraulic washing column and flow at least a portion of the withdrawn mother liquor between the agitator shaft and the bearing in the tank, or to withdraw the crystals of the compound from the hydraulic washing column and heat-melt them, and then further withdraw a portion of the circulating liquid containing the molten liquid obtained by heating and melting them and flow it between the agitator shaft and the bearing in the tank.

[0082] In the flowing step, first, a mother liquor derived from a slurry containing crystals of the compound and / or a melt obtained by melting the crystals is withdrawn from the hydraulic washing column. Here, the mother liquor is preferably a mother liquor obtained by removing solids from a slurry containing crystals in a hydraulic washing column by methods such as filtration and withdrawal of a supernatant, and more preferably a mother liquor obtained by filtering the slurry using a filter and withdrawing the mother liquor using a pipe connected to the filter.

[0083] The filter is not particularly limited in terms of material, and may be made of, for example, a metal such as stainless steel, or a resin such as polytetrafluoroethylene (PTFE) or polyether ether ketone (PEEK), with the latter being preferred. The pipe is not particularly limited in terms of material, and is preferably made of a metal or alloy.

[0084] The mother liquor extracted in the step of extracting the mother liquor refers to the mother liquor in the pipe or nozzle immediately after being extracted in the step of extracting the mother liquor, for example, the mother liquor in the pipe immediately after passing through the filter.

[0085] The hydraulic washing column is basically operated under pressure (preferably in the range of 0.05 to 1.0 MPaG). This pressure can be used to suitably supply the extracted mother liquor and / or melt into the bearing portion of the tank. A pump or the like may be used as needed.

[0086] In the flowing step, at least a portion of the extracted mother liquor and / or melt is then flowed between the stirring shaft and the bearing in the tank. When a portion of the extracted mother liquor is flowed between the stirring shaft and the bearing in the tank, it is preferable to reuse the remaining portion of the extracted mother liquor. For example, the remaining portion of the extracted mother liquor can be recovered and reused via line 75, which returns the mother liquor extracted from the hydraulic washing column to the tank from the top side, or line 131, which returns the mother liquor extracted from the hydraulic washing column to the hydraulic washing column. For example, the mother liquor returned via line 75 can be supplied to the tank from the top of the tank together with a slurry containing crystals of the compound. Alternatively, the mother liquor that has passed through line 131 can be mixed with the slurry delivered via line 53 and then supplied to the hydraulic washing column from the inlet of the hydraulic washing column for reuse. This allows the slurry to be efficiently supplied to the interior of the hydraulic washing column. The compound is purified in this manner, resulting in a highly purified compound. Furthermore, the remaining mother liquor can be supplied to the nozzle provided on the top plate of the washing column through a line for preventing the nozzle from freezing. Furthermore, when a portion of the circulating liquid containing the extracted melt is caused to flow between the stirring shaft and the bearing in the tank, the remainder of the circulating liquid can be taken out as a product or returned to the washing column as a washing liquid. The mother liquor and / or molten liquid is substantially free of crystals, and therefore can adequately prevent wear on the agitator shaft and bearing, making it suitable as a flushing liquid. Furthermore, the purity of the mother liquor and / or molten liquid is equal to or higher than that of the mother liquor in the tank, and therefore can adequately prevent adverse effects on quality (for example, flowing water between the agitator shaft and bearing increases impurities). Furthermore, such mother liquor and / or molten liquid has a higher freezing point than the temperature in the tank, and therefore is prone to freezing. Furthermore, when the compound in the mother liquor and / or molten liquid is a polymerizable substance, it usually contains a stabilizer, making it less likely to polymerize. When the purification apparatus of the present invention is in use, the mother liquor and / or the melt may be supplied continuously or intermittently into the bearing portion.

[0087] The mother liquor used to flow between the stirring shaft and the bearing in the tank is preferably 1 / 3 or less, more preferably 1 / 5 or less, and even more preferably 1 / 7 or less, by mass, of the mother liquor extracted from the hydraulic washing column. The mother liquor used to flow between the stirring shaft and the bearing in the tank preferably has a mass ratio of 1 / 10,000 or more, more preferably 1 / 8,000 or more, and even more preferably 1 / 5,000 or more, of the mother liquor extracted from the hydraulic washing column.

[0088] The flowing step can be performed by flowing the mother liquor and / or the molten liquid through an opening provided in the bottom or side of the bearing, and flowing the liquid between the stirring shaft and the bearing. In particular, the flowing step is preferably performed by flowing the mother liquor and / or the molten liquid through an opening provided in the bottom of the bearing.

[0089] In the above-mentioned flowing step, the supply rate of the mother liquid and / or the melt to the bearing section is not particularly limited, but in an industrial-scale tank, it is, for example, 50 to 10,000 kg / h. In the flowing step, the linear velocity of the mother liquor and / or melt flowing between the stirring shaft and the bearing is preferably within a range of 0.01 to 30 m / s, more preferably within a range of 0.1 to 10 m / s. The linear velocity can be calculated by measuring the volumetric flow rate of the mother liquor and / or the melt flowing through a line in the tank that supplies the mother liquor and / or the melt to a bearing section using a flow meter, and dividing the measured value by the cross-sectional area through which the mother liquor and / or the melt flow between the stirring shaft and the bearing section of the line. In the flowing step, the flow rate of the mother liquor and / or the melted liquid flowing between the stirring shaft and the bearing is 0.001 to 20 m 3 / h, and preferably in the range of 0.1 to 3 m 3 It is more preferable that the range is / h. The flow rate is the volumetric flow rate of the mother liquor and / or the melt flowing through the line that supplies the mother liquor and / or the melt to the bearing section, and is measured by a flow meter.

[0090] In the flowing step, the temperature at which the mother liquid and / or the melt is supplied to the bearing section can be appropriately set depending on the melting point of the compound, and can be adjusted, for example, within the range of 0 to 80°C. For example, when the compound is (meth)acrylic acid, the temperature of the mother liquid and / or melt when supplied to the bearing section is preferably 5 to 13°C, more preferably 6 to 12°C.

[0091] As described above, the mother liquor usually contains the compound. Examples of the mother liquor include a liquid in which the compound is dissolved and an aqueous solution of the compound. The mother liquor usually contains impurities other than the compound and water. In the method for producing a compound of the present invention, the purity (mass proportion) of the compound in the mother liquor is preferably 99% by mass or less, more preferably 98% by mass or less, even more preferably 97% by mass or less, and particularly preferably 96% by mass or less. The mass proportion of the compound in the mother liquor is preferably 85 mass % or more, more preferably 88 mass % or more, and even more preferably 90 mass % or more.

[0092] The mass proportion of water in the mother liquor is more preferably 0.1 mass % or more, more preferably 0.5 mass % or more, and even more preferably 1 mass % or more. The mass proportion of water in the mother liquor is preferably 8 mass % or less, more preferably 6 mass % or less, and even more preferably 4 mass % or less.

[0093] In the mother liquor, the mass proportion of impurities other than the compounds and water is preferably 0.1 mass % or more, more preferably 0.4 mass % or more, and even more preferably 0.8 mass % or more. In the mother liquor, the mass proportion of impurities other than the compounds and water is preferably 8 mass % or less, more preferably 6 mass % or less, and even more preferably 4 mass % or less.

[0094] When the compound is (meth)acrylic acid, examples of impurities other than the compound and water include acetic acid and furfural. In this case, the mass proportion of acetic acid in the mother liquor is preferably 0.1 mass % or more, more preferably 0.3 mass % or more, and even more preferably 0.7 mass % or more. The mass proportion of acetic acid in the mother liquor is preferably 8 mass % or less, more preferably 6 mass % or less, and even more preferably 4 mass % or less.

[0095] When the compound is (meth)acrylic acid, the mass proportion of furfural in the mother liquor is more preferably 0.01 mass % or more, more preferably 0.05 mass % or more, and even more preferably 0.1 mass % or more. The mass proportion of furfural in the mother liquor is preferably 2 mass % or less, more preferably 1 mass % or less, and even more preferably 0.5 mass % or less. The mother liquor is the mother liquor immediately before being supplied to the bearing section (for example, the mother liquor in the line (pipe) in the tank that supplies the mother liquor to the bearing section).

[0096] <Stirring process in a tank> The production method of the present invention may include a step of stirring a slurry containing crystals of a compound in a tank. In the stirring step, the crystal-containing slurry is usually stirred using a stirrer provided in the tank. In the stirring step, the rotation speed of the stirrer is preferably within the range of 5 to 500 rpm, and more preferably within the range of 10 to 300 rpm. Stirring may be intermittent, but is preferably carried out essentially continuously while the vessel is in use.

[0097] <Process of removing the mother liquor from the tank> The production method of the present invention may include a step of removing the supernatant mother liquor from the tank. The extracted mother liquor can be recycled and reused. For example, by supplying the extracted mother liquor to a preceding apparatus (for example, a crystallization tank for an aging tank) and reusing it, the quality of the compound can be further improved. The step of extracting the mother liquor may be carried out using a pump or the like.

[0098] <Step of obtaining a slurry containing crystals> The production method of the present invention preferably further comprises the step of obtaining a slurry containing crystals of the compound from the compound-containing solution. The compound-containing solution is preferably an aqueous (meth)acrylic acid solution or a crude (meth)acrylic acid solution. The aqueous (meth)acrylic acid solution refers to a solution in which (meth)acrylic acid is dissolved in water. The crude (meth)acrylic acid solution refers to a solution consisting of (meth)acrylic acid, which contains impurities such as by-products produced during the production of (meth)acrylic acid. These can be obtained, for example, by collecting in an absorption tower and optionally distilling the gas of a compound that is a reaction product obtained by the gas-phase oxidation reaction of propylene and isobutylene. However, they are not limited to those synthesized by the company itself, and may also be procured from other sources. For example, a slurry containing crystals of (meth)acrylic acid can be obtained by cooling the aqueous (meth)acrylic acid solution or the crude (meth)acrylic acid solution.

[0099] Examples of the impurities include acids such as propionic acid, acetic acid, maleic acid, benzoic acid, and acrylic acid dimer, aldehydes such as acrolein, furfural, formaldehyde, and glyoxal, acetone, and protoanemonin. In addition, solvents such as toluene and methyl isobutyl ketone may be contained. The production method of the present invention makes it possible to sufficiently remove impurities contained in the compound-containing solution.

[0100] <Step of Obtaining a Compound-Containing Solution> In the production method of the present invention, it is preferable that the production method further comprises a step of obtaining a compound-containing solution from a raw material.

[0101] The step of obtaining the compound-containing solution is not particularly limited as long as a compound-containing solution can be obtained. When the compound is (meth)acrylic acid, the step can be suitably carried out, for example, by a synthesis step of acrylic acid or a collection step of acrylic acid described in JP-A-2007-182437 (Patent Document 1). In the method for producing the compound of the present invention, the (meth)acrylic acid is preferably prepared from at least one raw material selected from the group consisting of propane, propylene, acrolein, isobutene, methacrolein, acetic acid, lactic acid, isopropanol, 1,3-propanediol, glycerol, and 3-hydroxypropionic acid. The (meth)acrylic acid and / or the raw material may be derived from a renewable raw material, thereby producing a bio-based (meth)acrylic acid.

[0102] In the process of obtaining the compound-containing solution, impurities such as by-products are generally produced. For example, when the compound is (meth)acrylic acid, impurities that are produced include water, acids such as propionic acid, acetic acid, maleic acid, benzoic acid, and acrylic acid dimer, aldehydes such as acrolein, furfural, formaldehyde, and glyoxal, acetone, methyl isobutyl ketone, toluene, and protoanemonin. However, by using a tank according to the production method of the present invention, the impurities can be separated with excellent efficiency, and the product can be obtained efficiently.

[0103] (Method for purifying compounds) The present invention also relates to a method for purifying a compound, the method comprising the steps of: supplying a slurry containing compound crystals to a tank equipped with an agitator having an agitator shaft and a bearing; withdrawing the slurry containing the compound crystals from the tank and supplying it to a hydraulic washing column; and allowing a mother liquor derived from the slurry containing the compound crystals supplied to the hydraulic washing column and / or a melt obtained by melting the crystals to flow between the agitator shaft and the bearing in the tank, wherein the tank is a crystallization tank that produces a slurry containing the compound crystals and / or an aging tank that can maintain the compound crystals in a suspended state within the tank.

[0104] The purification method of the present invention allows compounds to be purified efficiently. A preferred embodiment of the purification method of the present invention is the same as the preferred embodiment of the production method of the present invention described above. [Example]

[0105] The present invention will be described in more detail below with reference to examples. However, the present invention is not limited to the following examples, and can be practiced with appropriate modifications within the scope of the above and below-described aims, and all such modifications are included in the technical scope of the present invention. Unless otherwise specified, "%" means "% by mass" and "parts" means "parts by mass".

[0106] (Gas chromatography and liquid chromatography instruments) Gas chromatography: Shimadzu GC-2014 Liquid chromatography: Shimadzu LC-20AD HPLC unit Acetic acid and furfural were measured using this method.

[0107] (How to obtain acrylic acid aqueous solution) According to the method described in WO 2010 / 032665, propylene was subjected to catalytic gas phase oxidation to obtain an acrylic acid-containing gas, and the obtained acrylic acid-containing gas was treated in an absorption tower to obtain an aqueous acrylic acid solution.

[0108] (How to obtain the supply slurry) An aqueous solution of acrylic acid was supplied to a crystallization tank. A refrigerant was supplied to a jacket attached to the peripheral wall of the crystallization tank to indirectly cool the crystals. Crystals adhering to the inner surface of the crystallization tank were scraped off with a scraper attached inside the crystallization tank, thereby preparing a slurry containing crystals (supply slurry).

[0109] (purification equipment) The purification apparatus used was the same as the purification apparatus (or a part thereof) shown in FIGS. 2a, 3, and 4, which includes the following equipment. Aging tank 21: Inner diameter 5000mm, inner height 10000mm Agitator: Agitator shaft 3c (shaft diameter 135 mm, shaft length 10,000 mm), agitator blade 3b (agitator blade length 1,425 mm, two stages), and bearing part 3 (as shown in Figure 4, it is composed of a bottom part and a side part covering the tip part 3d of the agitator shaft, the top surface is not covered, inner diameter 135.4 mm, internal height approximately 150 mm). The distance between the agitator shaft and the side part of bearing part 3 is 0.2 mm. Hydraulic washing column 41 Line 52 for sending the slurry to the maturation tank 21 a line 53 for conveying the slurry from the maturation tank 21 to the hydraulic wash column 41; Line 72 for withdrawing mother liquor from the supernatant A line 75 for returning a portion of the extracted mother liquor to the maturation tank 21 from the top side. A line 76 for flowing a part of the extracted mother liquor between the stirring shaft 3c and the bearing part 3 in the aging tank 21. A line 131 through which a portion of the extracted mother liquor is sent again to the hydraulic washing column 41

[0110] Example 1 A slurry containing acrylic acid crystals was supplied from the top plate of the aging tank 21, and the slurry was stirred with a stirrer to grow crystals while maintaining the slurry in a suspended state inside the aging tank 21. Here, the mother liquor derived from the slurry containing the crystals of the compound to be supplied to the hydraulic washing column 41 is passed through a line 76 and fed to the aging tank 21 between the tip 3d of the stirring shaft and the bearing 3e at a flow rate of 0.3 m 3 The mother liquor was allowed to flow at a flow rate of 1.0 m / s and a temperature of 11° C. The composition of the mother liquor flowing between the tip 3d of the stirring shaft and the bearing 3e was 94.7% by weight of acrylic acid, 1.8% by weight of acetic acid, and 0.1% by weight of furfural. As a result, the agitator continued to operate normally without stopping.

[0111] (Comparative Example 1) The slurry containing acrylic acid crystals was supplied to the aging tank and the crystals were grown in the same manner as in Example 1, except that the mother liquor was not allowed to flow between the stirring shaft and the bearing in the aging tank. As a result, polymerization occurred in the bearings, causing the agitator to stop, the uniform suspension state in the aging tank to be lost, and the entire equipment to stop operating. [Explanation of symbols]

[0112] 1a: Compound solution 3: Bearing part 3b: Stirring blade 3c: Agitator shaft 3d: Tip of the stirring shaft 3e: Bearing part 3f: Bearing base 5:Product 11:Crystallization tank 14: A line for flowing the mother liquor and / or melt between the stirring shaft and the bearing in the (aging) tank. 21: (Aging) tank 22: Supply port 31:Solid-liquid separator 41: Hydraulic washing column 51, 61, 71: Lines 52: (Aging) Line that sends slurry to the tank 53: Line for sending slurry from the (aging) tank to the washing column 59: A line for flowing a portion of the liquid obtained by extracting crystals from the bottom of the hydraulic washing column and heating and melting them between the agitator shaft and the bearing in the (aging) tank. 72: Line for extracting mother liquor from the supernatant 75: A line for returning a portion of the extracted mother liquor to the (aging) tank from the top side. 76: A line for passing a portion of the extracted mother liquor between the agitator shaft and the bearing in the (aging) tank. 131: A line that sends a portion of the extracted mother liquor back to the hydraulic washing column

Claims

1. A compound purification apparatus having a vessel for use in the purification apparatus and a hydraulic wash column, the tank is a crystallization tank for producing a slurry containing crystals of a compound and / or an aging tank capable of maintaining crystals of the compound in a suspended state within the tank, and is equipped with a stirrer having a stirring shaft and a bearing portion; The purification apparatus further includes a line for withdrawing a slurry containing crystals of the compound from the vessel and feeding the slurry to a hydraulic wash column; a line for allowing a mother liquor derived from a slurry containing crystals of a compound to be supplied to the hydraulic washing column and / or a molten liquid obtained by melting the crystals to flow between the stirring shaft and the bearing in the tank; A purification apparatus characterized in that the compound is an easily polymerizable compound having a reactive double bond.

2. A method for producing a compound, comprising: The production method includes the steps of: supplying a slurry containing crystals of a compound to a vessel equipped with a stirrer having a stirring shaft and a bearing; withdrawing a slurry containing crystals of the compound from the vessel and feeding it to a hydraulic wash column; and a step of flowing a mother liquor derived from a slurry containing crystals of a compound to be supplied to the hydraulic washing column and / or a melt obtained by melting the crystals into a space between the stirring shaft and the bearing in the tank; the tank is a crystallization tank for producing a slurry containing crystals of the compound and / or an aging tank capable of maintaining crystals of the compound in a suspended state within the tank; A method for producing a compound, wherein the compound is an easily polymerizable compound having a reactive double bond.

3. The method for producing a compound according to claim 2, wherein the compound is (meth)acrylic acid.

4. 4. The method for producing a compound according to claim 3, wherein the (meth)acrylic acid is produced using at least one raw material selected from the group consisting of propane, propylene, acrolein, isobutene, methacrolein, acetic acid, lactic acid, isopropanol, 1,3-propanediol, glycerol, and 3-hydroxypropionic acid.

5. 1. A method for purifying a compound, comprising: The purification method includes the steps of: supplying a slurry containing crystals of the compound to a vessel equipped with an agitator having an agitation shaft and a bearing; withdrawing a slurry containing crystals of the compound from the vessel and feeding it to a hydraulic wash column; and a step of flowing a mother liquor derived from a slurry containing crystals of a compound to be supplied to the hydraulic washing column and / or a melt obtained by melting the crystals into a space between the stirring shaft and the bearing in the tank; the tank is a crystallization tank for producing a slurry containing crystals of the compound and / or an aging tank capable of maintaining crystals of the compound in a suspended state within the tank; A method for purifying a compound, wherein the compound is an easily polymerizable compound having a reactive double bond.

Citation Information

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