Photochlorination of partially chlorinated chloromethane to carbon tetrachloride
The photochlorination process efficiently converts chloromethane into carbon tetrachloride with high selectivity, minimizing by-products and allowing direct use in subsequent processes without additional purification.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-07-10
- Publication Date
- 2026-04-01
AI Technical Summary
There is a need for an efficient industrial process to synthesize carbon tetrachloride with high selectivity and minimize the formation of undesirable by-products such as hexachloroethane, allowing the product to be used directly in subsequent synthetic processes without costly purification.
A photochlorination process is employed to convert a chloromethane stream containing chloroform, initial carbon tetrachloride, and methyl chloride or methylene chloride into carbon tetrachloride by introducing electromagnetic radiation into a reaction mixture with a stoichiometric level of chlorine, resulting in a product stream with less than 2,500 ppm of unwanted chlorinated hydrocarbons.
The process achieves industrially useful conversion levels with substantial selectivity for carbon tetrachloride, reducing the need for costly purification steps and enabling direct use in subsequent synthetic processes.
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Abstract
Description
[Technical Field]
[0001] This application claims the benefit of U.S. Provisional Application No. 62 / 790,934, filed on January 10, 2019, which is incorporated herein by reference.
[0002] Embodiments of the present invention relate to a chlorination process, including the photochlorination of partially chlorinated chloromethane to carbon tetrachloride. [Background technology]
[0003] Carbon tetrachloride is a valuable raw material for synthesizing many important commercial chemicals. In particular, carbon tetrachloride often serves as a basic raw material for the production of chlorinated propane, which is used to produce hydrofluoroolefins (HFOs).
[0004] Initially formed by reacting chloroform with chlorine, most commercial processes synthesize carbon tetrachloride by chlorinating methane. Industrial methods have also been proposed for chlorinating partially chlorinated methane, such as methyl chloride, methylene chloride, and chloroform, to produce carbon tetrachloride. For example, U.S. Patent No. 9,169,177 discloses a process for producing carbon tetrachloride from partially chlorinated methane. To achieve even greater reaction selectivity for carbon tetrachloride, this patent proposes maintaining a conversion rate of less than 90%, thereby producing a product stream containing chloroform and carbon tetrachloride with little to no production of methyl chloride or methylene chloride. The chlorinated methane in the product stream that is not fully chlorinated (e.g., chloroform) is recycled back to the original reactor for further chlorination. [Overview of the project] [Problems that the invention aims to solve]
[0005] Given the increasing demand for carbon tetrachloride, there is a need for industrial processes for the efficient synthesis of carbon tetrachloride. [Means for solving the problem]
[0006] One or more embodiments of the present invention provide a method for producing carbon tetrachloride, comprising the steps of: preparing a chloromethane stream comprising chloroform, initial carbon tetrachloride, and at least one of methyl chloride and methylene chloride, wherein the chloromethane stream comprises about 99.0 to about 100% by weight of chloroform, initial carbon tetrachloride, and at least one of methyl chloride and methylene chloride; combining the chloromethane stream with chlorine and additional carbon tetrachloride to form a reaction mixture wherein the reaction mixture comprises at least a stoichiometric level of chlorine relative to chloroform and at least one of methyl chloride and methylene chloride; introducing electromagnetic radiation into the reaction mixture to subject the reaction mixture to conditions suitable for reacting chlorine with chloroform and at least one of methyl chloride and methylene chloride, thereby forming the product carbon tetrachloride; and collecting the product stream after the introduction step, wherein the product stream contains less than 2,500 ppm (parts per million by weight) of chlorinated hydrocarbons other than carbon tetrachloride. [Brief explanation of the drawing]
[0007] [Figure 1] This is a flowchart illustrating a process according to one or more embodiments of the present invention.
[0008] [Figure 2] This is a flowchart illustrating a process according to one or more embodiments of the present invention.
[0009] [Figure 3] This is a schematic diagram of a system for performing a process according to an embodiment of the present invention.
[0010] [Figure 4] This is a flowchart of a process according to one or more embodiments of the present invention. [Modes for carrying out the invention]
[0011] Embodiments of the present invention are based, at least in part, on the discovery of a process for producing carbon tetrachloride by photochlorination of partially chlorinated chloromethane. According to embodiments of the present invention, the reaction is carried out in a carbon tetrachloride medium containing relatively high levels of chlorine and relatively low levels of partially chlorinated chloromethane. It was unexpectedly found that by carrying out the method of the present invention, industrially useful conversion levels with substantial selectivity for carbon tetrachloride can be achieved. Advantageously, it was found that the formation of hexachloroethane, obtained from the dimerization of two trichloromethyl radicals, can be kept below commercially acceptable levels. As a result, the carbon tetrachloride product produced by embodiments of the present invention can be used directly as a crude product stream in subsequent synthetic processes such as the Carrach reaction without requiring costly purification to remove undesirable heavy chlorinated organic matter. Process Overview
[0012] An outline of one or more embodiments of the present invention can be described with reference to Figure 1, which shows the chlorination method 11. The carbon tetrachloride supply stream 12' and the chlorine gas supply stream 14' supply carbon tetrachloride 12 and chlorine gas 14 to the introduction step 13, where the carbon tetrachloride 12 and chlorine gas 14 are combined to form a mixture 15 of carbon tetrachloride 12 and chlorine gas 14, which may also be called an initial mixture 15. The initial mixture 15 of carbon tetrachloride and chlorine gas is then exposed to electromagnetic radiation 18' from an electromagnetic radiation source 18 in the free radical step 17. The free radical formation step 17 forms a mixture 19 of chlorine gas, carbon tetrachloride, and chlorine free radicals, which may also be called a free radical mixture 19. The chlorine free radicals may also be called chloride radicals.
[0013] A chloromethane stream 20', which may be called an organic compound-containing feed stream 20' or a chloroform feed stream 20', introduces chloromethane 20, such as chloroform 20, into the free radical mixture 19 to form a reaction mixture 22. As is generally known in the art, the term chloromethane encompasses methyl chloride, methylene chloride, chloroform, and carbon tetrachloride. Methyl chloride, methylene chloride, and chloroform may further be defined as partially chlorinated chloromethane or partially chlorinated methane. As long as chloroform is one of the target chloromethanes, aspects of the present invention may be described with respect to chloroform, and those skilled in the art will understand that other chloromethanes may be applicable to those aspects of the present invention.
[0014] A reaction step 21 is carried out in which a partially chlorinated chloromethane, such as chloroform, in chloromethane 20 is converted to the desired product, carbon tetrachloride, and a reaction byproduct, hydrochloric acid 24. Carbon tetrachloride, chlorine, and hydrochloric acid are contained in a product mixture 28, which may be revealed to be an intermediate product stream 28' or crude product stream 28' from reaction step 21. The crude product stream 28' is then subjected to one or more additional processing steps 25, such as a stripping step 25, which may include gas stripping, for example, utilizing an inert gas, to concentrate carbon tetrachloride 26 via a purified stream 26' by removing at least a portion of the chlorine and hydrochloric acid 24 via a gas stream 24'. In one or more embodiments, at least a portion of the chloromethane stream 20' may be used in the stripping step 25 as a scrubbing medium (washing medium) to remove chlorine and / or hydrochloric acid 24 from the crude product stream 28'.
[0015] In one or more embodiments, at least a portion of the purified carbon tetrachloride 26 may be recycled back to the original reaction step 21 via a recycling stream 29'. In other cases, at least a portion of the purified carbon tetrachloride 26 may be recovered as product 30 via a purified product stream 30'. As described above, the purified stream 26' may be advantageously used directly as a reaction stream in subsequent chemical synthesis without requiring a distillation process, which may normally be necessary to remove organic species such as heavy chlorinated organic compounds, which are often by-products in the production of chlorinated organics. Nevertheless, it is considered desirable to further purify the product stream for specific applications. Therefore, certain embodiments of the present invention may include a distillation process for further purifying the stream 26'. In one or more embodiments, the purification and / or distillation process removes components other than carbon tetrachloride from the stream 26'. In one or more embodiments, the purification and / or distillation process for further purifying the stream 26' includes removing a certain amount of partially chlorinated chloromethane from the stream 26'. The recovered, partially chlorinated chloromethane may be used as a recycled stream returning to the process, such as a portion of the chloromethane stream 20'. In one or more embodiments, a purification and / or distillation process further purifying the stream 26' includes removing a certain amount of chlorine from the stream 26'. The recovered chlorine may be used as a recycled stream returning to the process, such as a chlorine gas supply stream 14'.
[0016] An alternative process scheme can be described with reference to Figure 2, which shows the chlorination method 31. Carbon tetrachloride 12 from feed stream 12' is combined with electromagnetic radiation 18' from radiation source 18 to produce the irradiated medium 32 in introduction step 33. Chloromethane 20, such as chloroform 20, from feed stream 20' is combined with chlorine 14 from feed stream 14' to form a reaction mixture 34 in combination step 35. Carbon tetrachloride may optionally be combined with chloromethane 20, such as chloroform 20, and chlorine 14 in this step.
[0017] The irradiated medium 32 and the reaction mixture 34, which may be continuously exposed to electromagnetic radiation, are introduced into step 37 to form the reaction mixture 22, thereby initiating the reaction step 21, where chloroform, methyl chloride, and methylene chloride 20 are converted to carbon tetrachloride (i.e., chloroform is chlorinated), and hydrochloric acid is produced as a reaction byproduct. Carbon tetrachloride and hydrochloric acid are contained in the product mixture 28, which can be identified as the intermediate product stream 28' or the crude product stream 28' from the reaction step 21. The crude product stream 28' may then be subjected to one or more additional processing steps 25, such as a stripping step 25 that may include gas stripping, to concentrate carbon tetrachloride 26 via the purified stream 26' by removing at least a portion of chlorine and hydrochloric acid 24 via the gas stream 24'.
[0018] In one or more embodiments, at least a portion of the carbon tetrachloride 26 may be recycled via the recycle stream 29' to the original initial step 33 and / or step 35. At least a portion of the purified carbon tetrachloride 26 may otherwise be recovered as the product 30 via the purified product stream 30'. As already shown while referring to FIG. 1, additional purification such as distillation may be avoided. Further, in other embodiments, additional purification including distillation may be desired. System for Photochlorination
[0019] The system for performing the method of the present invention can be described while referring to FIG. 3 showing the system 51 for performing the chlorination method. The system 51 includes a reaction tank 53 that includes an inlet 57, a vent 61, a lamp 63, a stirring element 65, and a product outlet 67.
[0020] According to an exemplary embodiment, chloroform 54, such as chloromethane, via a chloromethane feed stream 54', which may also be referred to as chloroform feed stream 54', is combined with carbon tetrachloride, for example via recycle stream 75', such that a reaction prep-mixture is formed. Then chlorine 52 is combined with the reaction prep-mixture containing chloromethane, such as chloroform and carbon tetrachloride, via feed stream 52' (e.g., via an in-line sparger) to form a reaction mixture in stream 77'. As described elsewhere herein, iron and other impurities may be removed from chlorine 52 by an impurity removal device or technique, such as a filter. As shown in FIG. 3, chloroform and carbon tetrachloride can be mixed or, if not, stirred in a mixing device, such as in-line mixer 55, prior to the introduction of chlorine. In other embodiments not shown, a mixture containing chlorine, chloroform, and carbon tetrachloride contained in stream 77' can likewise be stirred in an in-line mixer or the like prior to introduction into reactor 53. In these embodiments, chlorine and chloromethane may be mixed in a light-free condition, which may also be referred to as dark mixing. The feed stream 77' is then introduced into reactor 53 via inlet 57. <关于电磁辐射的内容重复,无需翻译,保留原文即可>
[0021] <关于电磁辐射的内容重复,无需翻译,保留原文即可> As described above, electromagnetic radiation from lamp 63 causes a chlorination reaction, whereby chloroform is converted to carbon tetrachloride. The resulting carbon tetrachloride product is removed from reactor 53 via outlet 67 as product stream 66', which may also be referred to as crude product stream 66'. Product stream 66' may contain one or more of chloroform, chlorine, and hydrogen chloride, as well as other by-products, at relatively low levels. Gaseous by-products, such as hydrogen chloride and chlorine, can be removed from reactor 53 via vent 61 to form stream 79'. This stream may be neutralized to discard chlorine and hydrochloric acid or to further separate and isolate them, and then this may be used in other synthetic chemical processes and / or recycled to the original process 51.
[0022] The crude product stream 66' can pass through a tank 69, which may include a degassing tank, to concentrate the crude product stream 66' by removing lighter components such as chlorine and hydrogen chloride via a gas stream 69' that can be combined with the stream 79'. For example, the crude product stream 66' containing concentrated carbon tetrachloride can be passed through a recirculation loop 71' via a pump 71 and returned to the reactor 53 via a carbon tetrachloride feed stream 75'. Alternatively, the concentrated crude product stream can be passed outside the system for storage and further use via a carbon tetrachloride product stream 73'.
[0023] In one or more embodiments, the carbon tetrachloride product stream 73' can be subjected to additional electromagnetic radiation (described herein for lamp 63), supplied from, for example, a polishing UV reactor, thereby photochlorinating any residual chloroform and / or other residual organic matter in the product stream. In one or more embodiments, additional chlorine can be added to the product stream treated in this downstream polishing reactor. In certain embodiments, the polishing reactor may be a tubular reactor. In other embodiments, the polishing reactor may be a CSTR or a well-mixed reactor. In one or more embodiments, the residual chloroform may instead be collected and recycled back into the original process 51.
[0024] In certain embodiments of the present invention, it should be understood that the recirculation loop 71' is optional, insofar as the crude product flow 66' can be directly passed through other processes (i.e., the flow 66' can be directly passed through 73'). However, in these embodiments, an alternative source to carbon tetrachloride must be used as the reaction medium.
[0025] Therefore, it should be understood that the process (and system) of the present invention can be operated as a continuous process in which reactants are continuously supplied to the reactor and products are continuously removed from the reactor. Furthermore, the process requirements for carbon tetrachloride can be met from the product stream induced from the system (e.g., the carbon tetrachloride product stream 66' can be recycled back to the original reactor 53 via the input stream 75'). In one or more embodiments, after the initial startup of the system, which requires an external source of carbon tetrachloride (e.g., carbon tetrachloride 12), the process of the present invention can receive more than 90%, more than 95%, and more than 99% of the carbon tetrachloride requirements for the operation of the system from carbon tetrachloride recycled from the system (e.g., recycled via loop 71').
[0026] It should be understood that various modifications can be made to the system 51 without departing from the present invention. For example, chlorine 52 and chloroform 54 can be injected directly into the reactor 53 via their respective feed streams without the need to premix the chlorine 52 and chloroform 54 before introducing them into the reactor 53. In certain embodiments, the chloroform feed stream 54' can be introduced below the liquid level in the reactor (e.g., via an immersion tube). In these or other embodiments, the chlorine feed stream 52' can similarly be introduced below the liquid level, for example, via a sparger. In one or more embodiments, separate, entirely different feed streams can be introduced directly into the reactor 53, first combined with carbon tetrachloride. The reactor 53 can also be configured to bring the material flow from the bottom to the top of the reactor, as schematically shown in Figure 3, or the material flow can be reversed so that the input is received at the top of the reactor and the product is removed from the bottom of the reactor.
[0027] In one or more embodiments, the inlet 57 may include a dispersion device such as a sparger or immersion tube, and the tank 53 may include a number of inlets (not shown).
[0028] In one or more embodiments, the tank 53 may include a single lamp as shown in Figure 3, or it may include multiple lamps. In one or more embodiments, the lamps 63 may include ultraviolet lamps, lasers, and light-emitting diodes (LEDs). In one or more embodiments, the lamps include mercury vapor arc lamps such as Hanovia lamps. In one or more embodiments, the lamp(s) (e.g., lamps 63) may be at least partially immersed in the reaction medium contained in the reactor or tank 53, or they may be completely immersed in the reaction medium. In other embodiments, not shown, the lamps may be located outside the reactor but still positioned so as to emit desired electromagnetic radiation into the reactor medium.
[0029] In some embodiments, the lamp 63 or the assembly housing the lamp 63 may be equipped with a physical wiper system and / or a chemical wiping system to reduce scale formation, which is thought to be caused by iron compounds derived from iron impurities introduced into one of the reaction logistics. These impurities can result in scale formation on the lamp 63, particularly on its outer surface exposed to the process. In one or more embodiments, the recirculation loop may include a filter and / or other impurity removal technique for collecting impurities such as scale or iron compounds that may be present at the reactor outlet.
[0030] Furthermore, the reaction vessel 53 may be equipped with a temperature control system such as a heating / cooling jacket. In one or more embodiments, the stirring element 65 may include a single mechanical stirrer as shown in Figure 3, or a number of stirring devices may be used. Various mixing configurations, including mixers mounted on the top and bottom, can be used. In one or more embodiments, one or more mechanical stirrers may be characterized by their mixing power. In one or more embodiments, the mixing power of one or more mechanical stirrers may be between 0.02 kilowatts per cubic meter and 2.0 kilowatts per cubic meter, in other embodiments it may be between 0.04 kilowatts per cubic meter and 1.0 kilowatts per cubic meter, and in other embodiments it may be between 0.1 kilowatts per cubic meter and 0.4 kilowatts per cubic meter.
[0031] In one or more embodiments, the reaction mixture (e.g., mixture 22 or the contents of reactor 53) may be used without the use of a mechanical stirrer. In these or other embodiments, some minimal stirring, but sufficient to achieve the desired reaction, may be induced solely on the basis of introducing one or more feed streams and / or one or more recirculating streams and / or product formation in the form of a gaseous product such as HCl.
[0032] In one or more embodiments, the reactor 58 is configured to include a dark area, which is a region within the reactor that is not exposed to a recognizable level of electromagnetic radiation causing the desired photochlorination reaction described herein. The dark area can advantageously provide time and space for the incoming flow 77' to be diluted and thoroughly mixed with the larger volume of carbon tetrachloride contained within the reactor 53 before the chlorine is radicalized and / or before the chlorine radical reacts with chloroform in the presence of appropriate electromagnetic radiation. As will be understood by those skilled in the art, the dark area can be created by using several mechanisms. For example, a physical obstruction can be placed within the reactor, thereby shielding the region from electromagnetic radiation emitted from the lamp 63. Alternatively, or in combination with a physical obstruction, the dark area can be formed by providing an appropriate distance between the lamp 63 and the desired location of the dark area. In one or more embodiments, the inlet 57 may preferably be located inside or adjacent to the dark area.
[0033] It should be understood that at startup, reactor 53 is initially filled with carbon tetrachloride to form the initial medium in which the reaction takes place. In one or more embodiments, the reactor is free of or substantially free of chloroform at the start of the reaction so as to avoid having an excess of chloroform compared to chlorine at any point in the reaction. As the reaction progresses, an appropriate balance of chlorine and chloromethane such as chloroform, and thus likewise carbon tetrachloride, in reactor 53 can be maintained by regulating the input amounts of chlorine, chloroform, and optionally carbon tetrachloride into reactor 53, as described below herein.
[0034] While this system has been described with reference to specific embodiments of the present invention, those skilled in the art can adapt the system to other processes described herein without excessive calculation or experimentation. Treatment of chlorine supply stream
[0035] In one or more embodiments, the chlorine gas supply stream may be subjected to a purification technique before introducing the chlorine gas supply stream (e.g., combination step 35). One or more of these techniques may be performed in a chlorine purification unit. In one or more embodiments, it may be included to spray the chlorine gas supply stream with nitrogen or other inert medium, such as argon, before introducing the chlorine gas supply stream. In these or other embodiments, the chlorine gas supply stream or conventional liquefied chlorine stream may be cooled and / or vented to reduce the solubility of oxygen and other components in the stream. Thereafter, these solubility-reducing components may be vented from the chlorine gas supply stream or conventional liquefied chlorine stream. In one or more embodiments, the chlorine gas supply stream may be distilled. This distillation includes removing lighter components (e.g., oxygen) and / or heavier components (e.g., iron, bromine, and bromyl chloride).
[0036] In one or more embodiments, the purification technique for a chlorine gas supply stream includes removing iron from the chlorine gas supply stream by means of filtration or the like before introducing the chlorine gas supply stream. Other exemplary purification techniques for a chlorine gas supply stream, such as removing iron, include sealing, cation exchange, and oxidation. Oxygen removal step
[0037] Process components (e.g., reactors and associated piping) may be purged with oxygen as part of a start-up operation, which may include nitrogen sweeping, in order to reduce or eliminate oxygen from the operating process. One or more specific embodiments of oxygen purging may be known to those skilled in the art. Characteristics of carbon tetrachloride supply flows
[0038] In one or more embodiments, the carbon tetrachloride feed stream (e.g., 12', 75') refers to a feed stream that is substantially carbon tetrachloride and does not contain any recognizable amounts of components other than carbon tetrachloride. In one or more embodiments, the carbon tetrachloride feed stream (e.g., 12', 75') refers to a composition that is essentially carbon tetrachloride and does not contain any other components that would normally be considered to substantially affect the basic and novel features of embodiments of the present invention. In one or more embodiments, the carbon tetrachloride feed stream (e.g., 12', 75') consists of carbon tetrachloride. In one or more embodiments, the carbon tetrachloride is industrial-grade carbon tetrachloride. In one or more embodiments, the carbon tetrachloride feed stream 12', 75' contains about 99.9 to about 100% by weight of carbon tetrachloride. In one or more embodiments, the carbon tetrachloride feed stream (e.g., 12', 75') contains chlorinated organic components other than carbon tetrachloride in amounts less than 7000 ppm, less than 6000 ppm in other embodiments, less than 5500 ppm in other embodiments, less than 5000 ppm in other embodiments, less than 2500 ppm in other embodiments, less than 1000 ppm in other embodiments, less than 750 ppm in other embodiments, less than 500 ppm in other embodiments, and less than 100 ppm in other embodiments. Characteristics of chlorine supply flow
[0039] In one or more embodiments, the chlorine feed stream (e.g., 14', 52') refers to a feed stream that is substantially chlorine gas and does not contain any recognizable amounts of components other than chlorine gas. In one or more embodiments, the chlorine gas feed stream (e.g., 14', 52') refers to a composition that is essentially made of chlorine gas and does not contain any other components that would typically substantially affect the basic and novel features of embodiments of the present invention. In one or more embodiments, the chlorine gas feed stream (e.g., 14', 52') consists of chlorine gas. In one or more embodiments, the chlorine feed stream (e.g., 14', 52') contains about 99.5 to about 100 volume percent chlorine. In one or more embodiments, the chlorine supply stream (e.g., 14', 54') contains non-chlorine components in amounts less than 5000 ppm, less than 1000 ppm in other embodiments, less than 750 ppm in other embodiments, less than 500 ppm in other embodiments, less than 250 ppm in other embodiments, less than 100 ppm in other embodiments, less than 50 ppm in other embodiments, and less than 25 ppm in other embodiments.
[0040] In one or more embodiments, the chlorine gas feedstream (e.g., 14', 52') is substantially oxygen-free and refers to a feedstream that does not contain any recognizable amount of oxygen. In one or more embodiments, the chlorine feedstream (e.g., 14', 52') contains less than 2500 ppm of oxygen, less than 1000 ppm in other embodiments, less than 750 ppm in other embodiments, less than 500 ppm in other embodiments, less than 250 ppm in other embodiments, less than 100 ppm in other embodiments, less than 50 ppm in other embodiments, less than 30 ppm in other embodiments, less than 20 ppm in other embodiments, and less than 15 ppm in other embodiments. Generally, lower amounts of oxygen in the chlorine gas feedstream allow for higher chlorination reaction rates.
[0041] In one or more embodiments, the chlorine gas feedstream (e.g., 14', 52') refers to a feedstream that is substantially iron-free and does not contain any recognizable amount of iron. In one or more embodiments, the chlorine feedstream (e.g., 14', 52') contains less than 3 ppm of iron, less than 2 ppm in other embodiments, less than 1.5 ppm in other embodiments, less than 1 ppm in other embodiments, and less than 0.5 ppm in other embodiments. Characteristics of chloromethane flow
[0042] In one or more embodiments, the chloromethane stream 20', 54' substantially comprises one or more of methyl chloride, methylene chloride, chloroform, and carbon tetrachloride, and this refers to a feed stream that does not contain any recognizable amounts of components other than methyl chloride, methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, this stream refers to a composition that essentially consists of one or more of methyl chloride, methylene chloride, chloroform, and carbon tetrachloride, and does not contain any other components that would normally be considered to substantially affect the basic novel features of embodiments of the present invention. In one or more embodiments, this stream consists of one or more of methyl chloride, methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, this stream contains about 95.0 to about 100% by weight of methyl chloride, methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, this stream contains about 99.0 to about 100% by weight of methyl chloride, methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, this stream contains about 99.5 to about 100% by weight of methyl chloride, methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, the chloromethane stream 20', 54' contains less than 7,000 ppm, less than 6,000 ppm in other embodiments, less than 5,500 ppm in other embodiments, less than 5,000 ppm in other embodiments, less than 2,500 ppm in other embodiments, and less than 1,000 ppm in other embodiments, of chlorinated organic components other than methyl chloride, methylene chloride, chloroform, and carbon tetrachloride (e.g., ethylene dichloride, perchloroethylene).
[0043] In one or more embodiments, the chloromethane stream 20', 54' substantially comprises one or more of methylene chloride, chloroform, and carbon tetrachloride, and refers to a feed stream that does not contain any recognizable amounts of components other than methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, this stream refers to a composition that essentially consists of one or more of methylene chloride, chloroform, and carbon tetrachloride, and does not contain other components that would typically substantially affect the basic and novel features of the embodiments of the present invention. In one or more embodiments, this stream consists of one or more of methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, this stream contains about 95.0 to about 100% by weight of methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, this stream contains about 99.0 to about 100% by weight of methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, this stream contains about 99.5 to about 100% by weight of methylene chloride, chloroform, and carbon tetrachloride. In one or more embodiments, the chloromethane streams 20' and 54' contain chlorinated organic components other than methylene chloride, chloroform, and carbon tetrachloride (e.g., ethylene dichloride, perchloroethylene) in amounts less than 7,000 ppm, less than 6,000 ppm in other embodiments, less than 5,500 ppm in other embodiments, less than 5,000 ppm in other embodiments, less than 2,500 ppm in other embodiments, and less than 1,000 ppm in other embodiments.
[0044] In one or more embodiments, the chloromethane streams 20' and 54' contain about 40% to about 80% by weight of methylene chloride, about 10% to about 45% by weight of chloroform, and about 5% to about 20% by weight of carbon tetrachloride. In one or more embodiments, the chloromethane streams 20' and 54' contain about 50% to about 70% by weight of methylene chloride, about 20% to about 40% by weight of chloroform, and about 5% to about 15% by weight of carbon tetrachloride. In one or more embodiments, the chloromethane streams 20' and 54' contain about 55% to about 65% by weight of methylene chloride, about 25% to about 35% by weight of chloroform, and about 7% to about 13% by weight of carbon tetrachloride. In one or more embodiments, the chloromethane stream 20', 54' contains about 60% by weight of methylene chloride, about 30% by weight of chloroform, and about 10% by weight of carbon tetrachloride.
[0045] In one or more embodiments, the chloromethane stream 20', 54', which may be called the chloroform feed stream 20', 54', refers to a feed stream that is substantially chloroform and does not contain any recognizable amounts of components other than chloroform. In one or more embodiments, the chloroform feed stream 20', 54' refers to a composition that consists essentially of chloroform and does not contain any other components that would normally be considered to substantially affect the basic and novel features of the embodiments of the present invention. In one or more embodiments, the chloroform feed stream 20', 62 consists of chloroform. In one or more embodiments, the chloroform is industrial-grade chloroform. In other embodiments, fluorocarbon-grade chloroform is used. In yet another embodiment, the chloroform may include a feed stream from another synthesis process, such as the production of chloromethane. In one or more embodiments, the chloroform feed stream 20', 54' contains about 99.8 to about 100% by weight of chloroform. In one or more embodiments, the chloroform supply stream 20', 62 contains components other than chloroform in amounts less than 5000 ppm, less than 2500 ppm in other embodiments, less than 2000 ppm in other embodiments, less than 1000 ppm in other embodiments, less than 750 ppm in other embodiments, and less than 500 ppm in other embodiments.
[0046] In one or more embodiments, the chloromethane streams 20', 54' may be methane-free or substantially methane-free. In one or more embodiments, the chloromethane streams 20', 54' may contain methane at a concentration of less than 1,000 ppm, less than 500 ppm in other embodiments, and less than 100 ppm in other embodiments. Embodiments in which the chloromethane feed streams 20', 54' are methane-free or substantially methane-free may allow for the use of lower pressures and thus potentially result in lower capital and energy costs. In one or more embodiments, all feed streams to the process may be methane-free or substantially methane-free.
[0047] In one or more embodiments, the chloromethane streams 20' and 54' may be methyl chloride-free or substantially methyl chloride-free. In one or more embodiments, the chloromethane streams 20' and 54' may contain less than 1,000 ppm of methyl chloride, less than 500 ppm in other embodiments, and less than 100 ppm in other embodiments. In one or more embodiments, all feed streams to the process may be methyl chloride-free or substantially methyl chloride-free.
[0048] Any carbon tetrachloride present in the chloromethane stream at 20' and 54' may be called initial carbon tetrachloride, insofar as separate carbon tetrachloride supply streams can be provided. Characteristics of the reaction mixture
[0049] In one or more embodiments, the reaction mixture (e.g., the contents of reaction mixture 22 or reactor 53) containing carbon tetrachloride, chlorine, hydrogen chloride, and chloroform (generally chloromethane), as well as residual by-products such as heavy chlorinated organic compounds, are maintained at a temperature and pressure that will keep the carbon tetrachloride in the liquid phase. Those skilled in the art will understand that since the process of the present invention is preferably carried out in the liquid phase, higher operating pressures will enable higher operating temperatures.
[0050] In one or more embodiments, the reaction mixture (e.g., mixture 22 or the contents of reactor 53) is subjected to conditions suitable for reacting chlorine with partially chlorinated chloromethane during and optionally before the reaction or chlorination step (e.g., reaction step 21).
[0051] In one or more embodiments, the reaction mixture (e.g., mixture 22 or the contents of reactor 53) is maintained at a temperature higher than 10°C, in other embodiments higher than 15°C, and in other embodiments higher than 20°C, during and optionally before the reaction or chlorination step (e.g., reaction step 21). In these or other embodiments, the reaction mixture is maintained at a temperature below 70°C, in other embodiments below 60°C, and in other embodiments below 50°C, both before or during the reaction step. In one or more embodiments, the reaction mixture is maintained at a temperature of about 10 to about 70°C, in other embodiments about 15 to about 60°C, and in other embodiments about 20 to about 50°C, both before or during the reaction step. In one or more embodiments, the reaction mixture (e.g., mixture 22 or the contents of reactor 53) is maintained at a temperature and pressure sufficient to maintain relatively high levels of chlorine, as well as chloroform, in the carbon tetrachloride medium.
[0052] In one or more embodiments, the reaction mixture (e.g., mixture 22 or the contents of reactor 53) is maintained at a pressure greater than 0.8 atmospheres, greater than 0.9 atmospheres in other embodiments, and greater than 0.95 atmospheres in other embodiments, before or during the reaction or chlorination step (e.g., step 21). In these or other embodiments, the reaction mixture is maintained at a pressure less than 15 atmospheres, less than 10 atmospheres in other embodiments, and less than 5 atmospheres in other embodiments, both before or during the reaction step. In one or more embodiments, the reaction mixture is maintained at a pressure of about 0.8 to about 15 atmospheres, about 0.9 to about 10 atmospheres in other embodiments, and about 0.95 to about 5 atmospheres in other embodiments, both before or during the reaction step.
[0053] In one or more embodiments, the reaction mixture (e.g., mixture 22 or the contents of reactor 53) is maintained at a temperature below the boiling point of the reaction mixture in the reactor at a given pressure during and optionally before the reaction or chlorination step (e.g., reaction step 21). This may include avoiding the boiling of a considerable amount of lighter components at the top of the reactor.
[0054] In one or more embodiments, the reaction mixture (e.g., mixture 22 or the contents of reactor 53) is maintained under stirring both before and during the reaction or chlorination step (e.g., step 21). In one or more embodiments, stirring is sufficient to create turbulence in the reactor (e.g., reactor 53) in which the reaction takes place. In one or more embodiments, stirring is sufficient to create turbulence that can be quantified by a Reynolds number greater than 4,000, greater than 10,000 in other embodiments, greater than 20,000 in other embodiments. In one or more embodiments, stirring is sufficient to create turbulence that can be quantified by a Reynolds number greater than 100,000, greater than 200,000 in other embodiments, greater than 400,000 in other embodiments, and greater than 800,000 in other embodiments. In these or other embodiments, the reaction mixture is maintained and stirred both before and during the reaction step (e.g., step 21) to produce turbulence that can be quantified by Reynolds numbers of about 4,000 to about 30,000, in other embodiments about 8,000 to about 28,000, or in other embodiments about 10,000 to about 26,000. In one or more embodiments, the photochlorination process of the present invention is carried out in a reactor (e.g., reactor 53) which is a well-mixed reactor with sufficient stirring to approach an ideal continuous stirred tank reactor (CSTR). As described elsewhere in this specification, in one or more embodiments, the reaction mixture (e.g., mixture 22 or contents of reactor 53) is not stirred with a stirrer during the reaction or chlorination step (e.g., step 21). In these or other embodiments, some minimum amount of stirring, but sufficient to achieve the desired reaction, may be performed solely on the basis of introducing one or more feed streams and / or one or more recirculating streams, and / or forming a product in the form of a gaseous product such as HCl.
[0055] As suggested above, the introduction of chloromethane (e.g., chloroform) into the reaction mixture (e.g., the contents of mixture 22 or reactor 53), whose supply rate thereby regulates the concentration of chloromethane in the reactor, is carried out in an amount and manner that results in a substantially instantaneous reaction between partially chlorinated chloromethane and carbon tetrachloride in the presence of UV light. We have unexpectedly discovered that the dilution and dispersion of partially chlorinated chloromethane, which is mixed with carbon tetrachloride in the reactor immediately before or during the reaction step (e.g., step 21), can be a critical parameter for obtaining the favorable results of the present invention.
[0056] In one or more embodiments, the rate of supply of chloromethane to the reactor (e.g., reactor 53) can be quantified by comparison with the carbon tetrachloride in the reactor. In one or more embodiments, the rate of supply of chloromethane is more than 10 pounds per hour per 1000 pounds of carbon tetrachloride in the reactor, more than 15 pounds per hour in other embodiments, more than 25 pounds per hour in other embodiments, more than 35 pounds per hour in other embodiments, more than 45 pounds per hour in other embodiments, more than 55 pounds per hour in other embodiments, more than 65 pounds per hour in other embodiments, more than 75 pounds per hour in other embodiments, more than 85 pounds per hour in other embodiments, more than 95 pounds per hour in other embodiments, more than 110 pounds per hour in other embodiments, and more than 120 pounds per hour in other embodiments. In these and other embodiments, the chloromethane supply rate is less than 1,000 pounds per hour per 1,000 pounds of carbon tetrachloride in the reactor, less than 800 pounds in other embodiments, less than 650 pounds in other embodiments, less than 500 pounds in other embodiments, less than 250 pounds in other embodiments, less than 200 pounds in other embodiments, less than 150 pounds in other embodiments, less than 125 pounds in other embodiments, less than 100 pounds in other embodiments, less than 80 pounds in other embodiments, less than 60 pounds in other embodiments, less than 40 pounds in other embodiments, less than 30 pounds in other embodiments, and less than 25 pounds in other embodiments. In one or more embodiments, the chloromethane supply rate is about 10 to about 1,000 pounds per hour per 1,000 pounds of carbon tetrachloride in the reactor, about 25 to about 650 pounds in other embodiments, and about 55 to about 200 pounds in other embodiments.
[0057] In one or more embodiments, the dilution of the chloromethane feed stream can also be quantified based on the amount of partially chlorinated chloromethane in the reaction mixture (e.g., the contents of mixture 22 or reactor 53). For example, the concentration of partially chlorinated chloromethane in the reaction mixture can be quantified based on the weight of partially chlorinated chloromethane relative to the weight of the reaction mixture containing carbon tetrachloride, chlorine, hydrogen chloride, and partially chlorinated chloromethane. Those skilled in the art will understand that these amounts (i.e., partially chlorinated chloromethane in the reaction mixture) can be determined by measuring the amount of partially chlorinated chloromethane in the reactor effluent (i.e., the outlet), which, in a well-agitated reactor, is equivalent to the amount of partially chlorinated chloromethane in the reaction zone, which refers to the location in the reaction medium (i.e., inside the reactor) where the chlorination of chloromethane occurs (i.e., where the reaction mixture is exposed to electromagnetic radiation of the appropriate wavelength). In one or more embodiments, the concentration of partially chlorinated chloromethane in the reaction mixture is less than 5% by weight (50,000 ppm) of partially chlorinated chloromethane relative to the total weight of the reaction mixture, less than 4% by weight in other embodiments, less than 3% by weight in other embodiments, less than 2% by weight in other embodiments, and less than 1% by weight in other embodiments. In one or more embodiments, the concentration of partially chlorinated chloromethane in the reaction mixture is less than 5,000 ppm (by weight) of chloromethane relative to the total weight of the reaction mixture, less than 4,000 ppm in other embodiments, less than 3,000 ppm in other embodiments, and less than 2,000 ppm in other embodiments. In one or more embodiments, the concentration of partially chlorinated chloromethane in the reaction mixture is less than 1,000 ppm (by weight) of partially chlorinated chloromethane relative to the total weight of the reaction mixture, less than 750 ppm in other embodiments, less than 500 ppm in other embodiments, and less than 200 ppm in other embodiments.In one or more embodiments, the concentration of partially chlorinated chloromethane in the reaction mixture is about 1 to about 5,000 ppm of partially chlorinated chloromethane, about 50 to about 3,000 ppm in other embodiments, and about 100 to about 2,000 ppm in other embodiments, relative to the total weight of the reaction mixture. In one or more embodiments, the concentration of partially chlorinated chloromethane in the reaction mixture is about 1 to about 50,000 ppm of partially chlorinated chloromethane, about 50 to about 30,000 ppm in other embodiments, and about 100 to about 20,000 ppm in other embodiments, relative to the total weight of the reaction mixture. In one or more embodiments, the concentration of partially chlorinated chloromethane in the reaction mixture is about 1 to about 1,000 ppm of chloromethane, about 50 to about 750 ppm in other embodiments, and about 100 to about 500 ppm in other embodiments, relative to the total weight of the reaction mixture.
[0058] As suggested above, the amount of chlorine present in the reaction step (e.g., reaction step 21), or in other words, in the reaction mixture, is considered an important parameter for carrying out the present invention. In one or more embodiments, the introduction of chlorine into the reaction mixture (e.g., into tank 53) is carried out in an amount or manner that results in a reaction with at least a stoichiometric amount or a stoichiometric excess of chlorine relative to the partially chlorinated chloromethane. In one or more embodiments, the concentration of chlorine in the reaction medium (i.e., carbon tetrachloride) is at the saturation level of carbon tetrachloride with respect to chlorine at the temperature and pressure in which the reaction takes place. In one or more embodiments, the amount of chlorine in the reactor (e.g., reactor 53) is sufficient to maintain a recognizable level of chlorine in the reactor headspace. As long as an excess of chlorine relative to the partially chlorinated chloromethane is supplied to the reactor, the concentration of chlorine in the reactor continues to accumulate over time until it reaches a saturation level with respect to the temperature and pressure in the reactor, although the recirculation of carbon tetrachloride through a recirculation loop may serve to regulate the amount of chlorine in the reactor.
[0059] For example, if the chloromethane stream is substantially chloroform, the amount of chlorine introduced into the reaction mixture can be quantified based on the molar ratio of chlorine to the chloroform supplied to the reactor. In one or more embodiments, the molar ratio of chlorine to, for example, the chloroform supplied to reactor 53 is greater than 1.00:1.00, in other embodiments greater than 1.02:1.00, and in other embodiments greater than 1.04:1.00. In one or more embodiments, the molar ratio of chlorine to chloroform is about 1.00:1.00 to about 1.10:1.00; in other embodiments, about 1.01:1.00 to about 1.08:1.00; in other embodiments, about 1.02:1.00 to about 1.06:1.00; in other embodiments, about 1.00:1.00 to about 1.50:1.00; in other embodiments, about 1.02:1.00 to about 1.40:1.00; and in other embodiments, about 1.06:1.00 to about 1.30:1.00.
[0060] Those skilled in the art should understand that the above ratios are based on chloroform, and the required stoichiometric amounts are based on it (i.e., one chlorine atom or radical reacts with one chloroform molecule). As long as other partially chlorinated methanes are present in the reaction mixture, the amount of chlorine required for the conversion of those partially chlorinated methanes to carbon tetrachloride should be adjusted to maintain a similar excess of chlorine.
[0061] In one or more embodiments, the amount of chlorine introduced into the reaction mixture can be quantified based on a molar excess percentage of chlorine relative to all partially chlorinated methane supplied to the reactor. In other words, the excess chlorine is calculated relative to the stoichiometric requirement of any given partially chlorinated methane in order to produce carbon tetrachloride from the partially chlorinated methane. In one or more embodiments, with respect to all partially chlorinated methane supplied to the reactor, the amount of chlorine may be a molar excess of at least 2%, at least 5% in other embodiments, at least 10% in other embodiments, at least 15% in other embodiments, and at least 20% in other embodiments. In these or other embodiments, with respect to all partially chlorinated methane supplied to the reactor, the amount of chlorine may be a molar excess of less than 50%, less than 40% in other embodiments, less than 30% in other embodiments, and less than 25% in other embodiments. These endpoints, and any other endpoints provided herein, may be used to form any suitable range.
[0062] Those skilled in the art will understand that the amount of chlorine required or supplied can be pressure-dependent. That is, at relatively low pressures, relatively high amounts of chlorine may be required or supplied due to its lower solubility. Similarly, at relatively high pressures, relatively low amounts of chlorine may be required or supplied due to its higher solubility.
[0063] Those skilled in the art will understand that the amount of chlorine required or supplied may be higher than the amounts disclosed herein, but this generally necessitates additional operating and / or manufacturing costs, such as large-scale facilities for recycling excess chlorine. In some embodiments, this even greater excess chlorine and associated additional operating and / or manufacturing costs may be considered desirable.
[0064] In these or other embodiments, the amount of chlorine used in the process of the present invention can be quantified based on the concentration of chlorine in the reaction mixture. Those skilled in the art will understand that these amounts (i.e., chlorine in the reaction mixture) can be determined by measuring the amount of chlorine in the reaction effluent (i.e., outlet) equal to the amount of chlorine in the reaction zone, which is the location in the reaction medium (i.e., inside the reactor) where the chlorination of chloroform occurs, in a well-agitated reactor. In one or more embodiments, the concentration of chlorine in the effluent is greater than 0.01% by weight of the total weight of the reaction mixture, greater than 0.1% by weight in other embodiments, greater than 0.3% by weight in other embodiments, greater than 0.6% by weight in other embodiments, greater than 1.2% by weight in other embodiments, greater than 1.5% by weight in other embodiments, greater than 1.8% by weight in other embodiments, and greater than 2.0% by weight in other embodiments. In these or other embodiments, the concentration of chlorine in the reactor effluent is at a saturation level at a given temperature and pressure, and is less than 5% by weight in other embodiments, less than 4.6% by weight in other embodiments, and less than 4.2% by weight in other embodiments, based on the total weight of the reaction mixture. In one or more embodiments, the concentration of chlorine in the reactor effluent ranges from about 0.01% by weight to saturation based on the total weight of the reaction mixture in other embodiments, from about 0.1% to about 5% by weight in other embodiments, from about 0.3% to about 5% by weight in other embodiments, from about 1.8% to about 4.6% by weight in other embodiments, and from about 2.0% to about 4.2% by weight in other embodiments. It should be understood that the above-mentioned supplied molar ratio of chlorine to chloroform, and the above-mentioned concentration of supplied chloroform in the reaction mixture, can also be used to form other appropriate concentrations of chlorine by using their respective molar weights and corresponding conversions.
[0065] In one or more embodiments, the reaction mixture contains less than 0.5 ppm of iron, less than 0.3 ppm in other embodiments, less than 0.2 ppm in other embodiments, less than 0.15 ppm in other embodiments, and less than 0.1 ppm in other embodiments. Generally, lower amounts of iron, particularly embodiments with less than 0.3 ppm in the reaction mixture, are considered to be sufficient to prevent significant scaling from forming on the lamp.
[0066] In one or more embodiments, the reactor (e.g., reactor 53) avoids the use of materials corrosive to the reaction mixture. In one or more embodiments, the reactor avoids the use of iron-based materials. In one or more embodiments, the reactor avoids the use of stainless steel materials. In one or more embodiments, the reactor and / or certain components thereof (e.g., stirring element 65) are made from nickel-copper based alloys such as Monel® 400 and Monel® K500. Other materials suitable for the reactor and / or components of the reactor include polyethylene, polytetrafluoroethene, glass, and tantalum. Characteristics of electromagnetic radiation
[0067] In one or more embodiments, the electromagnetic radiation used to carry out the present invention (e.g., emitted from lamp 63) is characterized by including wavelengths of about 200 to about 500 nm, in other embodiments about 200 to about 400 nm, in other embodiments about 280 to about 380 nm, in other embodiments about 300 to about 350 nm, in other embodiments about 330 to about 530 nm, and in other embodiments about 360 to about 500 nm. In these and other embodiments, the electromagnetic radiation is characterized by a wavelength distribution based on relative intensity, with about 50 to about 60% of the electromagnetic radiation having wavelengths of about 280 to about 435 nm, in these and other embodiments about 40 to about 50% of the electromagnetic radiation having wavelengths of about 300 to about 380 nm, and in these and other embodiments about 20 to about 30% of the electromagnetic radiation having wavelengths of about 330 to about 370 nm. In one or more embodiments, the electromagnetic radiation includes ultraviolet light.
[0068] In one or more embodiments, the electromagnetic radiation used to carry out the present invention (e.g., emitted from lamp 63) is characterized by including wavelengths of about 470 to about 530 nm, in other embodiments about 480 to about 510 nm, in other embodiments about 490 to about 500 nm, and in other embodiments 495 nm or an approximate wavelength. In one or more embodiments, the electromagnetic radiation is characterized by a wavelength distribution based on relative intensity, where at least 50% of the electromagnetic radiation, and in other embodiments at least 80%, has a wavelength of 495 nm or an approximate wavelength.
[0069] In one or more embodiments, the electromagnetic radiation used to carry out the present invention (e.g., generated from lamp 63) is characterized by including wavelengths of about 350 to about 420 nm, about 370 to about 400 nm in other embodiments, about 380 to about 390 nm in other embodiments, and 385 nm or an approximate value thereof in other embodiments. In one or more embodiments, the electromagnetic radiation is characterized by a wavelength distribution based on relative intensity, where at least 50% of the electromagnetic radiation, and at least 80% in other embodiments, has a wavelength of 385 nm or an approximate value thereof.
[0070] In one or more embodiments, the electromagnetic radiation used to carry out the present invention (e.g., generated from lamp 63) is characterized by including wavelengths of about 330 to about 400 nm, about 350 to about 380 nm in other embodiments, about 360 to about 370 nm in other embodiments, and 365 nm or an approximate value in other embodiments. In one or more embodiments, the electromagnetic radiation is characterized by a wavelength distribution based on relative intensity, where at least 50% of the electromagnetic radiation, and at least 80% in other embodiments, has a wavelength of 365 nm or an approximate value.
[0071] In one or more embodiments, the electromagnetic radiation used to carry out the present invention (e.g., emitted from lamp 63) is characterized by having a wavelength distribution that avoids ozone formation. As will be understood by those skilled in the art, this may be defined by the theoretical wavelength required to activate oxygen, which is 240 nm or an approximation thereof in some embodiments. In one or more embodiments, the electromagnetic radiation does not include wavelengths shorter than 230 nm, wavelengths shorter than 240 nm in other embodiments, wavelengths shorter than 250 nm in other embodiments, and wavelengths shorter than 260 nm in other embodiments.
[0072] In one or more embodiments, using electromagnetic radiation with a wavelength distribution that avoids ozone formation allows for the use of advantageous oxygen-additive-containing media, such as air, as a cooling medium for lamps. In other embodiments, oxygen-additive-free media, such as nitrogen and water, are used as cooling mediums for lamps.
[0073] In one or more embodiments, the electromagnetic radiation used in carrying out the present invention (e.g., emitted from lamp 63) is characterized by wavelengths in the band of about 30 nm, about 20 nm in other embodiments, about 15 nm in other embodiments, and about 10 nm in other embodiments.
[0074] In one or more embodiments, electromagnetic radiation is supplied from one or more photogenerating lamps operating at 40 to about 20,000 W, in other embodiments about 75 to about 18,000 W, and in other embodiments about 100 to about 10,000 W. In one or more embodiments, electromagnetic radiation is supplied from one or more mercury lamps. In one or more embodiments, electromagnetic radiation is supplied from one or more light-emitting diodes. Characteristics of the product flow
[0075] As discussed above, the crude carbon tetrachloride product streams (e.g., streams 28' and 66') contain the desired carbon tetrachloride product, chlorine, and hydrogen chloride, as well as residual by-products such as heavy chlorinated organic compounds. In one or more embodiments, these product streams (e.g., 28', 66') refer to product streams that are substantially carbon tetrachloride, chloroform, hydrogen chloride, and optionally chlorine, and that do not contain any recognizable amounts of components other than carbon tetrachloride, chloroform, hydrogen chloride, and optionally chlorine. In one or more embodiments, the product streams (e.g., 28', 66') refer to compositions that essentially consist of carbon tetrachloride, optionally chloroform, optionally hydrogen chloride, and optionally chlorine, and do not contain any other components that would normally be considered to substantially affect the basic and novel features of embodiments of the present invention. In one or more embodiments, the product streams (e.g., 28', 66') consist of carbon tetrachloride, optionally chloroform, optionally hydrogen chloride, and optionally chlorine.
[0076] In one or more embodiments, the product stream (e.g., 28', 66') contains chlorinated hydrocarbons other than carbon tetrachloride (e.g., hexachloroethane) in amounts less than 2500 ppm, less than 1000 ppm in other embodiments, less than 500 ppm in other embodiments, less than 250 ppm in other embodiments, and less than 100 ppm (parts per million by weight) in other embodiments.
[0077] In one or more embodiments, the product stream (e.g., 28', 66') contains components other than carbon tetrachloride, hydrogen chloride, and chlorine in amounts less than 2500 ppm, less than 1000 ppm in other embodiments, less than 750 ppm in other embodiments, and less than 500 ppm (parts per million by weight) in other embodiments.
[0078] In one or more embodiments, the product stream (e.g., 28', 66') is advantageously characterized by a low level of chloroform, resulting in a high reaction yield. In one or more embodiments, the reaction yield to chloroform is higher than 90.00%, in other embodiments higher than 92.00%, in other embodiments higher than 95.00%, in other embodiments higher than 97.00%, in other embodiments higher than 98.00%, in other embodiments higher than 99.00%, in other embodiments higher than 99.50%, and in other embodiments higher than 99.99%. In certain embodiments, the yield to chloroform is 100%. As a result, product streams 28' and 66' may contain chloroform in amounts of less than 6000 ppm, less than 5500 ppm in other embodiments, less than 5000 ppm in other embodiments, less than 4500 ppm in other embodiments, less than 4000 ppm in other embodiments, less than 3000 ppm in other embodiments, less than 2000 ppm in other embodiments, less than 1000 ppm in other embodiments, less than 500 ppm in other embodiments, less than 250 ppm in other embodiments, less than 100 ppm in other embodiments, less than 50 ppm in other embodiments, and less than 10 ppm (parts per million by weight) in other embodiments. Reaction mechanism
[0079] As presented herein, the method and sequence of this process are thought to promote the formation of chlorine-free radicals and their reaction with chloroform before any side reactions (e.g., dimerization of chloroform), thereby increasing the selectivity of the reaction. Without adhering to any particular theory, the following reactions are thought to occur during one or more steps of the present invention: Cl2 + hν → 2Cl * (1)Start CHCl3+Cl * →CCl3 * +HCl (2) propagation CCl3 * +Cl2→CCl4+Cl * (3) Propagation CCl3 * + CCl3 * → C2Cl6(4) end CCl3 * + Cl * → CCl4(5) end Cl * + Cl * → Cl2(6) end.
[0080] Reactions 1 - 3 are the desired pathways for converting chloroform and chlorine gas to carbon tetrachloride and HCl by - products. Reaction 5 yields the desired product but at the expense of terminating the free - radical chain reaction. Reaction 4 terminates the chain and involves the formation of hexachloroethane by the dimerization of two trichloromethyl radicals; this reaction is substantially avoided by the present invention. Reaction 6 terminates the chain reaction but generates chlorine which can generate free radicals again in the presence of an initiator such as UV light. Industrial Applicability
[0081] In one or more embodiments, a crude product stream from the photochlorination step or process (e.g., stream 28’ or 66’, 73’) can be used in the synthesis of chlorinated organic compounds. As described above, the process of one or more embodiments of the present invention advantageously provides a product stream that can be used directly in these downstream synthesis processes without the need for separation steps such as distillation steps to remove heavier chlorinated organic by - products such as hexachloroethane.
[0082] As discussed elsewhere in this specification, in one or more embodiments, the carbon tetrachloride produced by embodiments of the present invention as a crude product stream can be directly combined with an olefin and reacted in the presence of a suitable catalyst to form chlorinated propane and / or chlorinated propene. In this regard, U.S. Patents 6,187,978 and 6,313,360; and U.S. Publications 2019 / 0284118; 2012 / 0310020; 2009 / 0216055; and 2004 / 0225166 are incorporated herein by reference. This reaction may also be called a carrach reaction. In one or more embodiments, the crude carbon tetrachloride product stream may be subjected to a purification process to remove hydrogen chloride and / or chlorine. In one or more embodiments, the crude carbon tetrachloride product stream does not require separation or purification from chlorinated organic matter before being combined with the olefin.
[0083] As a further description of embodiments, including the combination of a crude carbon tetrachloride product stream with an olefin, exemplary olefins used in these reactions include ethylene and vinyl chloride. Those skilled in the art will understand that other olefins can be used in a similar manner. The reaction between carbon tetrachloride and olefins can be catalyzed by using a variety of catalyst species, many of which are insoluble or partially soluble in the reaction medium, or derived from such species. A common catalyst or catalyst precursor is iron. Those skilled in the art will understand that embodiments of the present invention can also be extended to other insoluble or partially soluble catalysts or catalyst precursors. Furthermore, those skilled in the art will understand that these insoluble or partially soluble catalysts may be used in combination with additional components that are considered to complement the catalyst, which may be called co-catalysts, ligands, or chelating agents. For example, tributyl phosphate has been used in combination with iron catalysts. Those skilled in the art will understand that the present invention can be extended to the use of other co-catalysts, ligands, or chelating agents.
[0084] In addition to embodiments in which a crude product stream from a photochlorination step or process may be used in the synthesis of chlorinated organic compounds, in one or more embodiments, the photochlorination step or process may advantageously receive a crude product stream from a chloromethane step or process. In one or more embodiments, the chloromethane reaction stream (i.e., 20', 54') includes a compositional product stream from a chloromethane production process after the product stream has optionally undergone separation (e.g., distillation) to separate chloromethane from heavier compounds and chloromethane from lighter inorganic substances such as hydrogen chloride. Advantageously, this crude product stream from the chloromethane production process may be supplied directly to the photochlorination step or process without requiring the separation of various chloromethane components (i.e., chloroform, which does not need to be separated from methylene chloride).
[0085] Embodiments in which a photochlorination step or process receives a crude product stream from a chloromethane step or process, and / or a crude product stream from a photochlorination step or process can be used in the subsequent synthesis of a chlorinated organic compound, may be called an integrated process. Referring particularly to Figure 4, an aspect of the present invention includes an integrated process 110 comprising a chloromethane process 112, which may be called a chloromethane step 112, which is integrated with a photochlorination process 114, which may be called a photochlorination step 114, which is integrated with a chlorinated organic synthesis process 116, which may be called a chlorinated organic synthesis step 116.
[0086] In one or more embodiments, the chloromethane process 112 may include a type in which a chlorine-containing feed stream and an organic compound-containing feed stream are supplied to the reactor. The product stream 112' from the chloromethane process 112 (e.g., chloromethane streams 20', 54') may be supplied to the photochlorination process 114. The photochlorination process 114 may include a process or system as described elsewhere in this specification. That is, the stream 112' from the chloromethane process 112 may be provided as or as part of the chloromethane streams 20', 54' for the photochlorination process or system described herein.
[0087] In one or more embodiments, process 112 may be of a type in which the organic compound-containing feedstream contains only methanol or substantially only methanol. These embodiments generally utilize a two-step reaction in the chloromethane process 112. In the first step, methanol reacts with hydrogen chloride under appropriate reaction conditions, such as in a hydrogen halide reaction, to form methyl chloride. The second step then involves reacting methyl chloride with chlorine under appropriate reaction conditions, such as in thermal chlorination, to form methylene chloride, chloroform, and carbon tetrachloride.
[0088] In other embodiments, process 112 may be of a type in which the organic compound-containing feedstream contains only or substantially only methane. These embodiments generally utilize a one-step reaction in the chloromethane process 112, in which methane is reacted with chlorine under appropriate reaction conditions to form methyl chloride, methylene chloride, chloroform, and carbon tetrachloride.
[0089] In one or more embodiments, stream 112' may include a product stream that has undergone separation (e.g., distillation) before being supplied to form the photochlorination process 114. This separation step may include separating carbon tetrachloride and lighter components (e.g., partially chlorinated chloromethane) from components heavier than carbon tetrachloride. Furthermore, this separation step may include separating hydrogen chloride from carbon tetrachloride and partially chlorinated chloromethane to yield a chloromethane stream that can be supplied to the photochlorination process 114. The hydrogen chloride stream may further be utilized in the separation process.
[0090] The product stream 114' from the photochlorination process 114 may be supplied to a subsequent synthesis process 116, as further described above. In one or more embodiments, the stream 114' may be supplied directly to an olefin addition process. For example, carbon tetrachloride in the crude stream 114' may be combined with an olefin such as ethylene or vinyl chloride to produce chlorinated propane. The subsequent synthesis process 116 may include any suitable process, such as one involving a catalyst suitable for forming chlorinated alkanes or alkenes using various synthetic techniques, such as the Carrach reaction. An olefin-containing stream (not shown) may be supplied to the subsequent synthesis process 116.
[0091] In one or more embodiments, the chlorine may be removed from stream 114' before it is supplied to the subsequent synthesis process 116. Advantageously, in one or more embodiments, stream 114' does not need to undergo other separation (e.g., distillation) to remove substantially carbon tetrachloride-containing, for example, organic compounds from stream 114' before introducing stream 114' to the subsequent synthesis process 116. As suggested above, stream 114' advantageously contains less than a recognizable amount of unreacted partially chlorinated chloromethane and / or heavier organic compounds.
[0092] In one or more embodiments, the chloromethane process 112, the photochlorination process 114, and the subsequent synthesis process 116 may be located in the same chemical facility. In one or more embodiments, the chloromethane process 112, the photochlorination process 114, and the subsequent synthesis process 116 may be operated sequentially. In one or more embodiments, the chloromethane process 112, the photochlorination process 114, and the subsequent synthesis process 116 may be within 20 miles of each other, within 10 miles in other embodiments, within 5 miles in other embodiments, within 1 mile in other embodiments, and within 0.5 miles in other embodiments. In one or more embodiments, the chloromethane process 112, the photochlorination process 114, and the subsequent synthesis process 116 are connected by a fixed pipeline. These processes may also be referred to as the chloromethane process 112 carried out in the first tank, the photochlorination process 114 carried out in the second tank, and the subsequent synthesis process 116 carried out in the third tank, with the first, second, and third tanks connected by a fixed pipeline. Specific Embodiments
[0093] The embodiments described below are provided in accordance with this disclosure.
[0094] Paragraph A: A method comprising: preparing a chloromethane stream containing chloroform, initial carbon tetrachloride, and at least one of methyl chloride and methylene chloride; combining the chloromethane stream with chlorine and additional carbon tetrachloride to form a reaction mixture, wherein the reaction mixture contains at least a stoichiometric amount of chlorine relative to chloroform and at least one of methyl chloride and methylene chloride; introducing electromagnetic radiation into the reaction mixture to subject the reaction mixture to conditions suitable for reacting chlorine with chloroform and at least one of methyl chloride and methylene chloride, thereby forming the product carbon tetrachloride; and collecting the product stream after the introduction step.
[0095] Paragraph B: The method of Paragraph A, wherein the chloromethane stream contains approximately 99.0 to approximately 100% by weight of chloroform, initial carbon tetrachloride, and at least one of methyl chloride and methylene chloride.
[0096] Paragraph C: The method according to either Paragraph A or Paragraph B, wherein the product flow contains chlorinated hydrocarbons other than carbon tetrachloride in a concentration of less than 2,500 ppm (parts per million by weight).
[0097] Paragraph D: Any of the methods described in Paragraphs A through C, wherein the concentration of chloroform and at least one of methyl chloride and methylene chloride in the reaction mixture is less than 50,000 ppm by weight relative to the weight of the reaction mixture.
[0098] Paragraph E: Any method from Paragraphs A to D, further comprising the step of combining the product stream with an olefin, a catalyst, and a chelating agent, thereby reacting the carbon tetrachloride in the product stream with the olefin.
[0099] Paragraph F: Any method from Paragraphs A to E, wherein the olefin comprises ethylene or vinyl chloride, the catalyst comprises iron, and the chelating agent comprises tributyl phosphate.
[0100] Paragraph G: Any of the methods described in Paragraphs A through F, wherein the chloromethane stream contains methylene chloride.
[0101] Paragraph H: Any method from paragraphs A to G, further comprising the step of combining methanol with hydrogen chloride under appropriate reaction conditions to form initial methyl chloride.
[0102] Paragraph I: Any method from Paragraphs A to H, further comprising the step of combining initial methyl chloride with chlorine under appropriate reaction conditions to form methylene chloride, chloroform, and initial carbon tetrachloride.
[0103] Paragraph J: The chloromethane stream is one of the methods described in Paragraphs A through I, wherein the chloromethane stream contains both methyl chloride and methylene chloride.
[0104] Paragraph K: Any method from Paragraphs A to J, further comprising the step of combining methane with chlorine under appropriate reaction conditions to form methyl chloride, methylene chloride, chloroform, and initial carbon tetrachloride.
[0105] Paragraph L: Electromagnetic radiation having wavelengths in the band of approximately 30 nm, as described in any of the methods from Paragraph A to Paragraph K.
[0106] Paragraph M: Any of the methods described in paragraphs A through L, in which electromagnetic radiation is supplied by light-emitting diodes.
[0107] Paragraph N: Any method from Paragraphs A to M, further comprising the step of filtering iron from chlorine.
[0108] Paragraph O: Any method from Paragraphs A to N, wherein a chloromethane stream is supplied from a first tank, the steps of combining the chloromethane stream with chlorine and introducing electromagnetic radiation are carried out in a second tank, and the step of combining the product stream with olefin is carried out in a third tank.
[0109] Paragraph P: Any of the methods described in Paragraphs A through O, wherein the first tank, the second tank, and the third tank are connected by a fixed pipeline.
[0110] Paragraph Q: Any method from Paragraphs A to P, wherein the step of combining a chloromethane stream with chlorine comprises supplying chlorine in a molar excess of at least 5% to less than 40% relative to the sum of chloroform and at least one of methyl chloride and methylene chloride.
[0111] Paragraph R: Any method from Paragraphs A to Q, wherein the product stream contains less than 1000 ppm of hexachloroethane.
[0112] Paragraph S: Any of the methods described in Paragraphs A through R, in which the step of combining the chloromethane stream with chlorine consumes more than 99.00% of the chloroform.
[0113] Paragraph T: Any method from Paragraphs A to S, which does not include the step of removing the organic compound from the product stream before the step of combining the product stream with the olefin.
[0114] Paragraph U: The chloromethane stream is prepared by any of the methods described in Paragraphs A through T, comprising approximately 99.5 to 100% by weight of methyl chloride, methylene chloride, chloroform, and initial carbon tetrachloride.
[0115] Paragraph V: Any of the methods described in paragraphs A through U, which do not include the step of separating the chloromethane before the step of combining the chloromethane stream with chlorine.
[0116] Paragraph W: Any of the methods from Paragraphs A to V, wherein the product stream contains chlorine and hydrochloric acid, and the method further comprises the step of scrubbing (washing) the chlorine and hydrochloric acid from the product stream with an additional amount of chloromethane stream.
[0117] Paragraph X: Any method from Paragraphs A to W, wherein the step of combining the chloromethane stream with chlorine comprises introducing chlorine into the reactor in a molar excess of 10% to 30% relative to the sum of chloroform in the reaction mixture and at least one of methyl chloride and methylene chloride.
[0118] Paragraph Y: Any of the methods from Paragraphs A through X, wherein the method does not include the step of stirring the reaction mixture with a mechanical stirrer.
[0119] Paragraph Z: Any of the methods described in Paragraphs A through Y, wherein the chlorine supply stream contains components other than chlorine, with a concentration of less than 1000 ppm.
[0120] Paragraph AA: The reactor and / or certain components thereof (e.g., stirring elements) are made from a nickel-copper based alloy, and / or the use of iron-based materials and stainless steel materials is avoided, in any way described in paragraphs A through Z.
[0121] Paragraph AB: Any method from Paragraph A to Paragraph AA that avoids the use of iron-based materials in the reactor and / or certain components thereof (e.g., stirring elements).
[0122] Paragraph AC: Any method from Paragraph A to Paragraph AB to avoid the use of stainless steel material in the reactor and / or certain components thereof (e.g., stirring elements).
[0123] Various modifications and changes that do not depart from the scope and spirit of the present invention will be apparent to those skilled in the art. The present invention is not necessarily limited to the exemplary embodiments described herein.
Claims
1. A method for producing carbon tetrachloride, and subsequently producing a chlorinated organic compound, (i) A step of preparing a chloromethane stream containing 99.5 to 100% by weight of chloroform, initial carbon tetrachloride, methyl chloride, and methylene chloride, wherein the chloromethane stream contains less than 5,000 ppm of chlorinated organic compound components other than methyl chloride, methylene chloride, chloroform, and initial carbon tetrachloride. (ii) The step of combining the chloromethane stream with chlorine and additional carbon tetrachloride to form a reaction mixture containing at least a stoichiometric amount of chlorine relative to the methyl chloride, methylene chloride, and chloroform, and in which the concentrations of the methyl chloride, methylene chloride, and chloroform are 100 ppm by weight to 20,000 ppm by weight, (iii) The step of introducing electromagnetic radiation into the reaction mixture and subjecting the reaction mixture to conditions suitable for reacting the methyl chloride, methylene chloride, and chloroform with chlorine to form the product carbon tetrachloride from the reaction mixture, (iv) After step (iii), a step of collecting the product flow, (v) The step of reacting the carbon tetrachloride in the product stream with the olefin by combining the product stream with an olefin, Includes, The step between step (iv) and step (v) does not include a step of removing the organic compound from the product stream. method.
2. The method according to claim 1, wherein the olefin comprises ethylene or vinyl chloride, the catalyst comprises iron, and the chelating agent comprises tributyl phosphate.
3. The electromagnetic radiation has wavelengths extending to a 30 nm band and is supplied by a light-emitting diode. The method according to claim 1.
4. The method according to claim 1, wherein the step of combining the chloromethane stream with chlorine comprises supplying the chlorine in a molar excess of at least 5% to less than 40% relative to the sum of the methyl chloride, methylene chloride, and chloroform.
Citation Information
Patent Citations
Continuous process for producing halogenated compounds
JP2002544181A
Water-promoted production of 1,1,1,3,3-pentachloropropane
JP2004530712A
Method for producing methyl chloride and method for producing highly chlorinated methanes
JP2006028092A
Chlorinated methane production process
JP2018531906A
Photochlorination of chloroform to carbon tetrachloride
WO2018009459A1