Aromatic Alkylation Process
The riser reactor design with high superficial velocities and combined steam and aromatic feed enhances para-xylene selectivity and reduces energy consumption, addressing the challenges of existing aromatic alkylation processes.
Patent Information
- Application Number
- JP2022534213
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-12-06
- Filing Date
- 2020-12-04
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2040-12-04
AI Technical Summary
Existing aromatic alkylation processes face challenges in maximizing para-xylene production while minimizing the production of benzene as a by-product, often resulting in lower para-xylene selectivity and increased energy consumption due to the use of steam to achieve high superficial velocities.
A reactor design with a riser reactor operating at superficial velocities greater than 8 m/s, combined with steam and aromatic feed, minimizes backmixing and reduces energy consumption, achieving high para-xylene selectivity and efficient catalyst regeneration.
The process achieves para-xylene selectivity greater than 0.90 and reduces utility costs by up to 30% compared to using 100% steam, optimizing para-xylene production and minimizing benzene production.
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Abstract
Description
[Technical Field]
[0001] (Statement of priority) This application claims priority from U.S. Patent Application No. 16 / 705,791, filed December 6, 2019, which is incorporated herein in its entirety.
[0002] FIELD OF THE INVENTION The present disclosure relates to processes and apparatus for producing aromatic alkylation products, such as para-xylene, in an aromatic complex. More specifically, the present disclosure relates to processes and apparatus for aromatic alkylation in an aromatic complex to produce para-xylene. One embodiment uses a riser reactor, another embodiment uses a preceding reactor to produce dimethyl ether, and another embodiment provides partial regeneration of the catalyst. [Background technology]
[0003] Xylene isomers are produced in large quantities from petroleum as feedstocks for a variety of important industrial chemicals. The most important xylene isomer is paraxylene, the primary feedstock for polyester, which continues to enjoy high growth rates driven by many basic needs. Ortho-xylene is used to produce phthalic anhydride, which supplies a large but relatively mature market. Meta-xylene is used in smaller but growing quantities in products such as plasticizers, azo dyes, and wood preservatives. Ethylbenzene is commonly present in xylene mixtures and is generally considered a less desirable component of C8 aromatics, although it is sometimes recovered for styrene production.
[0004] Among aromatic hydrocarbons, the overall importance of xylenes rivals that of benzene as a feedstock for industrial chemicals. Xylenes and benzene are produced from petroleum by naphtha reforming, but not in sufficient quantities to meet demand, so conversion of other hydrocarbons is necessary to increase the yield of xylenes and benzene. Toluene is often dealkylated to produce benzene, or selectively disproportionated or transalkylated to produce benzene and C8 aromatics, from which the individual xylene isomers are recovered.
[0005] Aromatic complex flow schemes are disclosed by Meyers in HANDBOOK OF PETROLEUM REFINING PROCESSES, 2d. Edition in 1997 by McGraw-Hill, which is incorporated herein by reference.
[0006] Conventional aromatics complexes send toluene to the transalkylation zone, where A 9+ Transalkylation of toluene with the component produces the desired xylene isomer. 9+ The component is present in both the reformate bottoms and the transalkylated effluent. Paraxylene is most often produced from feedstocks having a methyl-to-phenyl ratio of less than 2. As a result, paraxylene production is limited by the available methyl groups in the feed. In addition, paraxylene production also typically produces benzene as a by-product. Because paraxylene is more valuable than benzene and other by-products produced in the aromatic complex, it is desirable to maximize paraxylene production from a given amount of feed. In some cases, paraxylene producers prefer to avoid producing benzene as a by-product of paraxylene production. However, in other cases, paraxylene producers prefer to make adjustments to limit the production of benzene as a by-product of paraxylene production. [Brief explanation of the drawings]
[0007] [Figure 1]1 illustrates a toluene methylation riser reactor having a mixing chamber and multiple feed injections. [Figure 2] Illustrates a toluene methylation dimethyl ether pre-reactor. [Figure 3] Illustrates a toluene methylation partial regeneration scheme. [Figure 4] The performance of partially regenerated spent catalyst with up to 6 wt. % coke on the catalyst is illustrated by the riser feed.
[0008] Corresponding reference characters indicate corresponding elements throughout the several views. Those skilled in the art will appreciate that the elements in the figures are illustrated for simplicity and clarity and are not necessarily to scale. For example, the dimensions of some of the elements in the figures may be exaggerated relative to other elements to help improve understanding of various embodiments of the present disclosure. Also, common but well-understood elements that are useful or required in commercially feasible embodiments are often not shown to facilitate viewing of these various embodiments of the present disclosure. Overview and explanation
[0009] The present subject matter relates to processes and apparatus for aromatic alkylation in an aromatic complex to produce para-xylene. In some embodiments, the disclosure relates to processes and apparatus for toluene methylation in an aromatic complex to produce para-xylene. In some embodiments, the disclosure relates to processes and apparatus for aromatic alkylation in an aromatic complex to produce para-xylene, wherein the embodiments employ a riser reactor. In some embodiments, the processes and apparatus employ a preceding reactor to produce dimethyl ether. In some embodiments, the processes and apparatus employ partial regeneration of the catalyst.
[0010] Additional objects, advantages, and novel features of the embodiments will be set forth in part in the description which follows, and in part will become apparent to those skilled in the art upon examination of the following description and the accompanying drawings, or may be learned by the manufacture or operation of the embodiments. The objects and advantages of the present concepts may be realized and attained by means of the methodologies, instrumentalities, and combinations particularly pointed out in the appended claims.
[0011] definition As used herein, the terms "stream," "feed," "product," "portion," or "moiety" may include various hydrocarbon molecules, such as straight-chain, branched-chain, or cyclic alkanes, alkenes, alkadienes, and alkynes, and optionally other substances, e.g., gases such as hydrogen, or impurities such as heavy metals, and sulfur and nitrogen compounds. Each of the above may also include aromatic and non-aromatic hydrocarbons.
[0012] Hydrocarbon molecules may be abbreviated as C1, C2, C3, Cn, where "n" represents the number of carbon atoms in one or more hydrocarbon molecules, or the abbreviation may be used as an adjective, for example, for non-aromatic or compound. Similarly, aromatic compounds may be abbreviated as A6, A7, A8, An, where "n" represents the number of carbon atoms in one or more aromatic molecules. Additionally, a superscript "+" or "-" may be used with the abbreviated hydrocarbon designation, for example, C 3+ or C 3- includes one or more abbreviated hydrocarbons. For example, the abbreviation "C 3+ " means one or more hydrocarbon molecules of three or more carbon atoms.
[0013] As used herein, the term "zone" can refer to an area that includes one or more pieces of equipment and / or one or more subzones. Equipment can include, but is not limited to, one or more reactors or reaction vessels, separation vessels, distillation columns, heaters, exchangers, pipes, pumps, compressors, and controllers. Additionally, equipment such as reactors, dryers, or vessels can further include one or more zones or subzones.
[0014] The following description is not to be taken in a limiting sense, but is made merely for the purpose of illustrating the general principles of exemplary embodiments. The scope of the present disclosure should be determined with reference to the claims.
[0015] Toluene is a low-value aromatic product that can be selectively alkylated to produce higher-value para-xylene. Para-xylene exists in equilibrium with lower-value meta-xylene and ortho-xylene. The thermodynamic equilibrium amount of para-xylene at the reaction temperature and pressure is approximately 24 wt%. Toluene alkylation has the potential to produce higher-than-equilibrium amounts of para-xylene. High para-xylene selectivity helps minimize the size of downstream units required to isolate para-xylene from lower-value xylene isomers and convert the less valuable isomers to para-xylene. Reactor design plays an important role in maximizing the conversion per pass of toluene while maintaining high selectivity to para-xylene. Most existing processes utilize fluidized beds with substantial backmixing to maximize conversion. While conversions can be higher, lower para-xylene selectivity significantly increases the size and cost of downstream units. These processes operate in turbulent fluidized beds with superficial velocities of less than 3 m / s. For example, U.S. Patent No. 5,939,597 (the '597 patent) describes a method for producing a cellulose ester at a temperature of 300 to 750°C, a pressure of 101 to 7000 kPa (g), and a time of 0.5 to 1000 hours. -1 WHSV, 100~600kg / m 3 The '597 patent describes a toluene methylation process operating at a bed density of 0.3 to 3 m / s, a toluene to methanol molar ratio of less than 5, and a superficial velocity of 0.3 to 3 m / s. The '597 patent indicates that higher superficial velocities can result in excessive entrainment of fine particles, and that operating above 10 m / s can result in the entire bed being transported out of the reaction zone. WO 2018 / 196361 describes a toluene methylation process operating at a temperature of 350 to 600°C, a pressure of 97 to 1000 kPa(g), and a superficial velocity of 200 to 1200 kg / m 3A turbulent fluidized bed reactor and process for toluene methylation is described, operating at a bed density of 0.25 to 8, a toluene to methanol molar ratio of 0.25 to 8, and a superficial velocity of 0.1 to 2 m / sec.
[0016] In contrast, the present process discloses a reactor design with high conversion and minimal backmixing that results in higher para-xylene selectivity (e.g., greater than 0.90, or greater than 0.91, or greater than 0.92, or greater than 0.93, or greater than 0.94) than the prior art (para-xylene / xylene ratio of 0.80 to 0.85). The riser reactor operates at a superficial velocity of greater than 10 m / s to minimize backmixing. To achieve these superficial velocities, typical operators use steam to lift the catalyst. However, generating this much steam is very energy intensive and wasteful. A combination of steam and aromatic feed can be used to minimize utilities for the aromatic alkylation process, reducing utilization by up to 10%, or up to 15%, or up to 20%, or up to 25%, or up to 30%, or at least 10%, or at least 15%, or at least 20%, or at least 25%, compared to using 100% steam.
[0017] Operating at a superficial velocity greater than 8 m / s minimizes backmixing of the catalyst within the reactor. As disclosed in the prior art, when the superficial velocity is less than 8 m / s, catalyst particles can become unevenly mixed within the riser, leading to a wide distribution of residence times and non-plug flow gas distribution. This wide variety of residence times results in the reaction of aromatic feed at low residence times or the reverse isomerization of xylenes at higher residence times. In contrast, operation with a superficial velocity greater than 8 m / s has a more ideal plug flow-like gas distribution. This allows for tailoring the residence time to maximize aromatic conversion while maintaining high para-xylene selectivity. When the superficial velocity exceeds 25 m / s, catalyst attrition losses become prohibitive. The superficial velocity is typically greater than 8 m / s, or greater than 9 m / s, or greater than 10 m / s, or within the range of 8 m / s to 25 m / s, or 9 m / s to 25 m / s, or 10 m / s to 25 m / s.
[0018] One aspect of the present invention is a process for alkylating an aromatic hydrocarbon with an alkylating reagent to produce an alkylated aromatic product. In one embodiment, the process includes passing an aromatic hydrocarbon feed stream and an alkylating reagent feed stream through a riser reactor operating at a superficial velocity of 10 m / s to 25 m / s in the presence of a catalyst to produce a reaction mixture comprising the alkylated aromatic product, light olefins, and unreacted aromatic hydrocarbon, and recovering the alkylated aromatic product.
[0019] In some embodiments, the process further includes introducing one or more of steam or aromatic hydrocarbons into the riser reactor.
[0020] In some embodiments, the riser reactor operates at a temperature between 300°C and 700°C.
[0021] In some embodiments, the riser reactor operates at a pressure between 68 kPa(g) and 1378 kPa(g).
[0022] In some embodiments, the riser reactor has a residence time of 0.5 seconds to 6 seconds.
[0023] In some embodiments, the riser reactor is 25 kg / m 3 ~600kg / m 3 Including operating catalyst density.
[0024] In some embodiments, the molar ratio of toluene to methanol is less than four.
[0025] In some embodiments, the weight hourly space velocity of the riser reactor is 10 h -1 ~30 hours -1 is.
[0026] In some embodiments, the riser reactor comprises multiple injection zones.
[0027] In some embodiments, the riser reactor is equipped with 1 to 4 methanol injection points.
[0028] In some embodiments, recovering the alkylated aromatic product comprises separating the reaction mixture in the light olefins column into a light olefins overhead stream comprising light olefins and a light olefins bottoms stream comprising the alkylated aromatic product and unreacted aromatic hydrocarbons.
[0029] In some embodiments, the process further comprises separating the light olefins bottoms stream in the aromatic column into an aromatic overhead stream comprising unreacted alkylated hydrocarbons and an aromatic bottoms stream comprising alkylated aromatic products.
[0030] In some embodiments, the process further comprises recycling the aromatic overhead stream to the riser reactor.
[0031] In some embodiments, the aromatic hydrocarbon feed stream comprises toluene, the alkylating reagent comprises methanol, and the alkylated aromatic product comprises xylenes.
[0032] In some embodiments, the alkylation reagent comprises methanol, and passing the alkylation reagent feed stream to the riser reactor comprises passing the alkylation reagent feed stream to a upstream reactor to produce dimethyl ether and water, and passing the dimethyl ether and water to the riser reactor.
[0033] In some embodiments, the process further includes regenerating the catalyst in a regenerator and introducing the regenerated catalyst into a riser reactor, wherein 0.5 to 4 wt. % coke is present on the regenerated catalyst.
[0034] In some embodiments, the process further comprises introducing a stream comprising a combination of steam and aromatic hydrocarbons into a riser reactor, wherein the cost of utilities for the riser reactor is reduced by at least 10% compared to introducing a stream comprising 100% steam.
[0035] Another aspect of the present invention is a process for alkylating aromatic hydrocarbons with an alkylating reagent comprising methanol to produce alkylated aromatic products. In one embodiment, the process includes passing an aromatic hydrocarbon feed stream comprising toluene and a methanol feed stream through a riser reactor operating at a superficial velocity of 8 m / s to 25 m / s in the presence of a catalyst to produce a reaction mixture comprising xylenes, light olefins, and alkylated aromatic products comprising unreacted toluene; separating the reaction mixture in the light olefins column into a light olefins overhead stream comprising the light olefins and a light olefins bottoms stream comprising the alkylated aromatic products and unreacted toluene; separating the light olefins bottoms stream in the aromatics column into an aromatic overhead stream comprising unreacted toluene and an aromatic bottoms stream comprising the aromatic products; and recycling the aromatic overhead stream to the riser reactor.
[0036] In some embodiments, the riser reactor conditions include a temperature of 300°C to 700°C; a pressure of 68 kPa(g) to 1378 kPa(g); a residence time of 0.5 seconds to 6 seconds; and 25 kg / m 3 ~600kg / m 3 the toluene to methanol molar ratio is less than 4; or 10 hours -1 ~30 hours -1 weight hourly space velocity,
[0037] In some embodiments, the process further comprises introducing a stream comprising a combination of steam and aromatic hydrocarbons into a riser reactor, wherein the cost of utilities for the riser reactor is reduced by at least 10% compared to introducing a stream comprising 100% steam.
[0038] For ease of discussion, the aromatic alkylation process will be illustrated using toluene methylation. Those skilled in the art will recognize that other aromatic hydrocarbons and alkylating reagents may be used.
[0039] FIG. 1 illustrates a toluene methylation process 10 having a riser reactor 20 and a mixing chamber 30. FIG. 1 illustrates a process for alkylating an aromatic hydrocarbon reactant with an alkylating reagent to produce an alkylated aromatic product. In some embodiments, an aromatic hydrocarbon feed 40 can be introduced into the mixing chamber 30 containing water 50. In other embodiments, the aromatic hydrocarbon can be injected directly into the riser reactor 20. In some embodiments, the aromatic hydrocarbon can be introduced at both locations. An additional stream is introduced into the riser reactor 20 containing methanol, toluene, and water. In the example illustrated in FIG. 1, there are multiple injection points 70 in the riser section 60 of the riser reactor 20. In one embodiment, there can be three injection points in the riser reactor 20 above the aromatic hydrocarbon feed 40 and water 50. The first injection point 80 can contain a mixture of toluene, methanol, and water. The second injection point 90 and the third injection point 100 can contain only methanol and water. The aromatic hydrocarbon may have a residence time of 0.5 seconds to 6 seconds at a superficial velocity of greater than 8 m / s to produce the alkylated aromatic product. The alkylated aromatic product stream 110 may include the alkylated aromatic product, including xylenes. A portion of the coked catalyst from reactor 140 may be recycled to mixing chamber 30 via line 120.
[0040] In some embodiments, the temperature of at least a portion of the coked catalyst may be adjusted as needed. For example, in some embodiments, a fraction of the coked catalyst may be cooled in heater / cooler 130 to remove heat and returned to the mixing chamber via return line 135. In other embodiments, a fraction of the coked catalyst may be heated in heater / cooler 130 to add heat and returned to the mixing chamber via return line 135. Suitable heater / coolers 130 include, but are not limited to, heat exchangers, chillers, electric heaters, fuel-fired heaters, etc.
[0041] The riser reactor 20 typically operates at a temperature of 300°C to 700°C and a pressure of 25 kg / m 3 ~600kg / m 3 bed density, and 4 hours -1 ~20 hours -1 In some embodiments, the riser reactor operates at a weight hourly space velocity of 15 h -1 The operating conditions for a specific aromatic hydrocarbon alkylation reaction will depend on the particular aromatic hydrocarbon and alkylating reagent. For example, operating conditions for the alkylation of toluene include a temperature of 500°C to 700°C and a flow rate of 50 kg / m 3 ~325kg / m 3 bed density, and 12 hours -1 ~20 hours -1 Includes weight hourly space velocity.
[0042] In one embodiment, the toluene methylation process 10 further includes passing the alkylated aromatic product stream 110 through a light olefin column (not shown) to produce a light olefin overhead stream comprising primarily light olefins and a light olefin bottoms stream comprising primarily aromatic compounds, including the alkylated aromatic product and unreacted aromatic hydrocarbons. "Light olefins" means olefins having five or fewer carbon atoms, primarily olefins having two or three carbon atoms. The light olefin bottoms stream may be passed through an aromatics column to produce an aromatics overhead stream comprising unreacted aromatic hydrocarbons and an aromatics column bottoms stream comprising an aromatic product stream, such as para-xylene. In some embodiments, the toluene methylation process 10 may include recycling the unreacted aromatic hydrocarbons to the riser reactor.
[0043] The catalyst may comprise an MFI zeolite having a silica-to-alumina ratio greater than 20, preferentially greater than 100, a silica or alumina binder, or a combined aluminosilicate binder, and a clay binder. In one embodiment, phosphorus is added to the catalyst. The MFI zeolite content in the catalyst is in the range of 25% to 65% by weight. The catalyst may be in powder form with an average particle size of 70 to 80 micrometers.
[0044] Figure 2 illustrates a process 200 for alkylating an aromatic hydrocarbon reactant with an alkylating reagent comprising methanol to produce an alkylated aromatic product. Process 200 in Figure 2 includes passing methanol 210 to a upstream reactor 220 to produce dimethyl ether (DME) and water 230, and passing the DME and water 230 and an aromatic hydrocarbon, such as toluene 240, to a riser reactor 250 to produce an alkylated aromatic product 260. The residence time in riser reactor 250 can be 0.5 seconds to 6 seconds. The aromatic hydrocarbon comprises toluene, the alkylating reagent comprises methanol or DME, and the alkylated aromatic product 260 comprises xylene.
[0045] The upstream reactor 220 operates at 400°C to 500°C. The upstream reactor is 0.30 kg / m 3 ~0.80kg / m 3 In some embodiments, the residence time in the riser reactor is 4 seconds. The weight hourly space velocity in the riser reactor is 4 to 20 hours. -1 The weight hourly space velocity of the riser reactor is 10 h -1 The riser reactor system may operate at temperatures between 500°C and 700°C. The riser reactor system may operate at temperatures between 50 kg / m 3 ~325kg / m 3 Including operating bed density.
[0046] The upstream reactor may include multiple injection zones. The riser reactor may also include multiple injection zones, as illustrated in the example of Figure 1. It is contemplated that the riser reactor may include one to four injection points. It is also contemplated that the riser reactor may include two injection points.
[0047] In one embodiment, process 200 further includes passing alkylated aromatic product 260 to a light olefins column 270 to produce a light olefins overhead stream 275 comprising light olefins and a light olefins bottoms stream 280 comprising primarily the alkylated aromatic product and unreacted aromatic hydrocarbons. Light olefins bottoms stream 280 may then be passed to an aromatics column 290 to produce an aromatic product stream 300 comprising para-xylene and an aromatics overhead stream 310 comprising unreacted aromatic hydrocarbons. Aromatics overhead stream 310 may be recycled to riser reactor 250.
[0048] The catalyst may comprise an MFI zeolite having a silica-to-alumina ratio greater than 20, preferentially greater than 100, a silica or alumina binder, or a combined aluminosilicate binder, and a clay binder. In one embodiment, phosphorus is added to the catalyst. The MFI zeolite content in the catalyst is in the range of 25% to 65% by weight. The catalyst may be in powder form with an average particle size of 70 to 80 micrometers.
[0049] FIG. 3 illustrates a toluene methylation process 315 having a riser reactor 320, a mixing chamber 330, and a regenerator 450. More specifically, FIG. 3 illustrates a process for alkylating an aromatic hydrocarbon reactant with an alkylating reagent to produce an alkylated aromatic product. In some embodiments, an aromatic hydrocarbon feed 340 can be introduced above the mixing chamber 330 containing water 350. In other embodiments, the aromatic hydrocarbon can be injected directly into the riser reactor 320. A portion of the coked catalyst 440 can be sent to the regenerator 450. An additional stream is introduced into the riser reactor 320 containing methanol, toluene, and water. In the example illustrated in FIG. 3, there are multiple injection points 370 in the riser section 360 of the riser reactor 320. In one embodiment, there can be three injection points. The first injection point 380 can contain a mixture of toluene, methanol, and water. The second injection point 390 and the third injection point 100 can contain only methanol and water. The aromatic hydrocarbons may have a residence time of 0.5 seconds to 6 seconds to produce the alkylated aromatic product. The alkylated aromatic product stream 410 may include an alkylated aromatic product containing xylenes. A portion of the coked catalyst from the riser reactor 320 may be recycled to the mixing chamber 330 via line 420. In some embodiments, the temperature of at least a portion of the coked catalyst may be adjusted as needed. For example, in some embodiments, a fraction of the coked catalyst may be cooled in the heater / cooler 430 to remove heat and returned to the mixing chamber via return line 435. In other embodiments, a fraction of the coked catalyst may be heated in the heater / cooler 430 to add heat and returned to the mixing chamber via return line 435. Suitable heater / coolers 430 include, but are not limited to, heat exchangers, chillers, electric heaters, fuel-fired heaters, and the like.
[0050] The riser reactor 320 contains a temperature of 300°C to 700°C. The riser reactor 320 contains 25 kg / m 3 ~600kg / m 3The weight hourly space velocity of the riser reactor 320 is 4 h -1 ~20 hours -1 The weight hourly space velocity of the riser reactor is 15 h -1 is.
[0051] In one embodiment, the regenerator 450 produces a catalyst 460 product stream in which 0.1% to 15% of the coke is left on the catalyst, and the partially regenerated catalyst 460 is returned to the riser reactor 320. In a preferred embodiment, the regenerator 450 produces a catalyst 460 product stream in which 2% to 4% of the coke is left on the catalyst, and the partially regenerated catalyst 460 is returned to the riser reactor 320. Suitable regenerators include, but are not limited to, bubbling bed regenerators, swinging bed regenerators, fixed bed regenerators, and combustor regenerators, including fast fluidized bed combustor regenerators. The inlet oxygen concentration can be 0.5% to 100%, or 0.5% to 21.0%.
[0052] In one embodiment, the toluene methylation process 315 further includes passing the alkylated aromatic product stream 410 through a light olefins column (not shown) to produce a light olefins overhead stream comprising light olefins and a light olefins bottoms stream comprising aromatics, primarily including the alkylated aromatic product and unreacted aromatic hydrocarbons. The light olefins bottoms stream may be passed to an aromatics column to produce an aromatics overhead stream comprising unreacted aromatic hydrocarbons and an aromatics bottoms stream comprising an aromatic product stream, such as para-xylene. In some embodiments, the toluene methylation process 315 may include recycling the unreacted aromatic hydrocarbons to the riser reactor.
[0053] The catalyst may comprise an MFI zeolite having a silica-to-alumina ratio greater than 20, preferentially greater than 100, a silica or alumina binder, or a combined aluminosilicate binder, and clay. In one embodiment, phosphorus is added to the catalyst. The MFI zeolite content in the catalyst is in the range of 25% to 65% by weight. The catalyst may be in powder form with an average particle size of 70 to 80 micrometers. [Example]
[0054] The following examples are intended to further illustrate the subject embodiments.
[0055] These illustrations of different embodiments are not meant to limit the scope of the claims to the specific details of these examples.
[0056] Figure 4 illustrates that partial regeneration of spent catalyst to retain up to 6 wt.% coke on the catalyst, returned to the riser, improves PX / X selectivity by 3-5%. Additional residual coke levels above 2% and up to 6% will allow PX / X to continue to increase without significantly adversely affecting catalyst activity, allowing PX / X to be maximized while still maintaining acceptable toluene conversion. The catalyst contained 40 wt.% MFI zeolite with a silica-to-alumina ratio of 500 and was evaporated at 1050°C for 45 minutes.
[0057] Specific Embodiments While the following is described in conjunction with specific embodiments, it will be understood that this description is illustrative and not intended to limit the scope of the foregoing description and the appended claims.
[0058] A first embodiment of the present invention is a process for producing an alkylated aromatic product by alkylating an aromatic hydrocarbon with an alkylating reagent, the process comprising: passing an aromatic hydrocarbon feed stream and an alkylation reagent feed stream through a riser reactor operating in the presence of a catalyst at a superficial velocity of 10 m / s to 25 m / s to produce a reaction mixture comprising the alkylated aromatic product, light olefins, and unreacted aromatic hydrocarbon; and recovering the alkylated aromatic product. An embodiment of the present invention is one, any, or all of the preceding embodiments through the first embodiment of this paragraph, further comprising introducing one or more of steam or aromatic hydrocarbons into the riser reactor. An embodiment of the present invention is one, any, or all of the preceding embodiments through the first embodiment of this paragraph, wherein the riser reactor operates at a temperature of 300°C to 700°C. An embodiment of the present invention is one, any, or all of the preceding embodiments through the first embodiment of this paragraph, wherein the riser reactor operates at a pressure of 68 kPa(g) to 1378 kPa(g). An embodiment of the present invention is any one, any or all of the preceding embodiments in this paragraph through the first embodiment in this paragraph, wherein the riser reactor has a residence time of 0.5 seconds to 6 seconds. An embodiment of the present invention is any one, any or all of the preceding embodiments in this paragraph through the first embodiment in this paragraph, wherein the riser reactor has a residence time of 25 kg / m 3 ~600kg / m 3 An embodiment of the present invention is one, any, or all of the preceding embodiments to the first embodiment of this paragraph, wherein the toluene to methanol molar ratio is less than 4. An embodiment of the present invention is one, any, or all of the preceding embodiments to the first embodiment of this paragraph, wherein the weight hourly space velocity of the riser reactor is less than 10 h -1 ~30 hours -1An embodiment of the present invention is one, any, or all of the preceding embodiments through the first embodiment of this paragraph, wherein the riser reactor comprises multiple injection zones. An embodiment of the present invention is one, any, or all of the preceding embodiments through the first embodiment of this paragraph, wherein the riser reactor comprises one to four methanol injection points. An embodiment of the present invention is one, any, or all of the preceding embodiments through the first embodiment of this paragraph, wherein recovering the alkylated aromatic product comprises separating the reaction mixture in the light olefin column into a light olefin overhead stream comprising light olefins and a light olefin bottoms stream comprising the alkylated aromatic product and unreacted aromatic hydrocarbons. An embodiment of the present invention is one, any, or all of the preceding embodiments through the first embodiment of this paragraph, wherein further comprising separating the light olefin bottoms stream in the aromatic column into an aromatic overhead stream comprising unreacted alkylated hydrocarbons and an aromatic bottoms stream comprising the alkylated aromatic product.
[0014] An embodiment of the present invention is one, any, or all of the preceding embodiments in this paragraph through the first embodiment in this paragraph, further comprising recycling the aromatic overhead stream to the riser reactor. An embodiment of the present invention is one, any, or all of the preceding embodiments in this paragraph through the first embodiment in this paragraph, wherein the aromatic hydrocarbon feed stream comprises toluene, the alkylating reagent comprises methanol, and the alkylated aromatic product comprises xylene. An embodiment of the present invention is one, any, or all of the preceding embodiments in this paragraph through the first embodiment in this paragraph, wherein the alkylating reagent comprises methanol, and passing the alkylation reagent feed stream to the riser reactor comprises passing the alkylation reagent feed stream to a preceding reactor to produce dimethyl ether and water, and passing the dimethyl ether and water to the riser reactor. One embodiment of the present invention is one, any, or all of the previous embodiment of this paragraph through the first embodiment of this paragraph, further comprising regenerating the catalyst in a regenerator and introducing the regenerated catalyst into a riser reactor, wherein 0.5 to 4 wt. % coke is present on the regenerated catalyst.An embodiment of the present invention is one, any, or all of the previous embodiments of this paragraph through the first embodiment of this paragraph, further comprising introducing a stream comprising a combination of steam and aromatic hydrocarbons into the riser reactor, wherein the cost of utilities for the riser reactor is reduced by at least 10% compared to introducing a stream comprising 100% steam.
[0059] A second embodiment of the present invention is a process for alkylating aromatic hydrocarbons with an alkylating reagent comprising methanol to produce alkylated aromatic products, comprising: passing an aromatic hydrocarbon feed stream comprising toluene and a methanol feed stream through a riser reactor operating at a superficial velocity of 8 m / s to 25 m / s in the presence of a catalyst to produce a reaction mixture comprising xylenes, light olefins, and alkylated aromatic products comprising unreacted toluene; separating the reaction mixture in the light olefins column into a light olefins overhead stream comprising the light olefins and a light olefins bottoms stream comprising the alkylated aromatic products and unreacted toluene; separating the light olefins bottoms stream in the aromatics column into an aromatics overhead stream comprising unreacted toluene and an aromatics bottoms stream comprising the aromatic products; and recycling the aromatics overhead stream to the riser reactor. One embodiment of the present invention is one, any, or all of the previous embodiment of this paragraph through the second embodiment of this paragraph, wherein the riser reactor conditions are a temperature of 300°C to 700°C; a pressure of 68 kPa(g) to 1378 kPa(g); a residence time of 0.5 seconds to 6 seconds; and a flow rate of 25 kg / m 3 ~600kg / m 3 the toluene to methanol molar ratio is less than 4; or 10 hours -1 ~30 hours -1 An embodiment of the present invention is one, any, or all of the previous embodiment to the second embodiment of this paragraph, further comprising introducing a stream comprising a combination of steam and aromatic hydrocarbons into the riser reactor, wherein the utility cost for the riser reactor is reduced by at least 10% compared to introducing a stream comprising 100% steam.
[0060] Without further elaboration, it is believed that one skilled in the art can, using the preceding description, readily ascertain the essential characteristics of the present invention and make various changes and modifications to the present invention to adapt it to various uses and conditions, all without departing from the spirit and scope of the present invention. The preceding preferred specific embodiments are, therefore, to be construed as merely illustrative, and not limitative of the remainder of the disclosure in any way, and are intended to cover various modifications and equivalent arrangements included within the scope of the appended claims.
[0061] Above, all temperatures are listed in degrees Celsius and all parts and percentages are by weight unless otherwise stated.
Claims
1. 1. A process for alkylating an aromatic hydrocarbon with an alkylating reagent to produce an alkylated aromatic product, comprising: passing an aromatic hydrocarbon feed stream (340) and an alkylation reagent feed stream (380) through a riser reactor (320) operating at a superficial velocity of 10 m / sec to 25 m / sec in the presence of a catalyst to produce a reaction mixture comprising said alkylated aromatic product, light olefins, and unreacted aromatic hydrocarbons; and recovering said alkylated aromatic product; the riser reactor has an operating catalyst density of 25 kg / m 3 to 600 kg / m 3 ; process.
2. The process of claim 1, further comprising introducing one or more of steam or aromatic hydrocarbons into the riser reactor (320).
3. The riser reactor (320) is configured to meet the following conditions: a temperature of 300°C to 700°C; pressure between 68 kPa(g) and 1378 kPa(g); a dwell time of 0.5 seconds to 6 seconds; the molar ratio of toluene to methanol is less than 4; or The weight hourly space velocity of the riser reactor is 10 h -1 ~30 hours -1 3. The process of claim 1 or 2, wherein the process is operated at one or more of:
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