WO2011002828A2 - Use of mixed activity dehydrogenation catalyst following oxidative reheat - Google Patents

Use of mixed activity dehydrogenation catalyst following oxidative reheat Download PDF

Info

Publication number
WO2011002828A2
WO2011002828A2 PCT/US2010/040512 US2010040512W WO2011002828A2 WO 2011002828 A2 WO2011002828 A2 WO 2011002828A2 US 2010040512 W US2010040512 W US 2010040512W WO 2011002828 A2 WO2011002828 A2 WO 2011002828A2
Authority
WO
WIPO (PCT)
Prior art keywords
dehydrogenation
catalyst
dehydrogenation catalyst
oxidation
zone
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2010/040512
Other languages
French (fr)
Other versions
WO2011002828A3 (en
Inventor
Michael A. Schultz
Daniel A. Kauff
Kyle D. Mankin
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Honeywell UOP LLC
Sued Chemie Inc
Original Assignee
Sued Chemie Inc
UOP LLC
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Sued Chemie Inc, UOP LLC filed Critical Sued Chemie Inc
Publication of WO2011002828A2 publication Critical patent/WO2011002828A2/en
Publication of WO2011002828A3 publication Critical patent/WO2011002828A3/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C5/00Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms
    • C07C5/32Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms by dehydrogenation with formation of free hydrogen
    • C07C5/327Formation of non-aromatic carbon-to-carbon double bonds only
    • C07C5/333Catalytic processes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J35/00Catalysts, in general, characterised by their form or physical properties
    • B01J35/19Catalysts containing parts with different compositions

Definitions

  • the present invention relates to methods for the dehydrogenation of feed streams, such as in the manufacture of styrene from ethylbenzene, using catalysts with differing activities.
  • the use of upstream and downstream catalyst beds of relatively low and high activities, respectively, can reduce the production of unwanted byproducts, especially in styrene production processes employing one or more oxidative reheat steps prior to EB dehydrogenation.
  • Styrene phenylethylene, vinylbenzene
  • PEB polyethylbenzene
  • the EB is then dehydrogenated, in the presence of steam (which supplies the sensible heat needed for the endothermic reaction), to produce styrene.
  • the EB dehydrogenation effluent (or crude styrene product) is then processed in a separation section, typically using three of four distillation columns, to recover purified styrene monomer, unreacted EB and benzene, as well as byproduct benzene and other byproducts, namely toluene, and heavies (tar).
  • oxidative reheat A known method for maintaining the reaction temperature (referred to generally as "oxidative reheat") is to introduce oxygen or an oxygen-containing gas which will burn or oxidize the hydrogen formed during the dehydrogenation reaction, thus increasing the temperature of the effluent stream and consequently increasing the conversion of the EB to styrene.
  • oxidative reheat is based on the recognition that the combustion of the hydrogen generated in the dehydrogenation process performs two beneficial functions.
  • the first is a favorable shift in the dehydrogenation reaction equilibrium toward the desired dehydrogenation product as hydrogen is removed or consumed.
  • the second is the release of heat sufficient to reheat the reactants to the desired dehydrogenation conditions, prior to a subsequent stage of dehydrogenation.
  • Processes employing oxidative reheat utilize a hydrogen oxidation catalyst in an attempt to selectively oxidize the hydrogen rather than feed or product hydrocarbons that are also present in the dehydrogenation zone.
  • Embodiments of the invention relate to the finding that the oxidation temperature in an oxidation or combustion zone, used for interstage reheating (or oxidative reheat) between successive dehydrogenation stages or zones, significantly impacts the generation of unwanted, oxidized byproducts. Importantly, methods have now been discovered whereby the oxidation zone temperature can be decreased, without adversely impacting the overall level of conversion to the desired dehydrogenation product such as styrene.
  • Embodiments of the invention are based on the use of dehydrogenation catalysts (e.g., EB dehydrogenation catalysts) having differing activities in upstream and downstream beds or reactor sections.
  • dehydrogenation catalysts e.g., EB dehydrogenation catalysts
  • the catalyst configuration in which a more active catalyst for dehydrogenation is used downstream of a less active catalyst, allows the overall
  • the use of catalysts with differing activities in a dehydrogenation zone downstream of an oxidation zone, as described herein, can decrease the temperature requirement (e.g., the inlet temperature, average bed temperature, and/or maximum temperature) in the upstream oxidation reaction, thereby decreasing the extent of nonselective oxidation reactions in the oxidation zone.
  • the temperature requirement e.g., the inlet temperature, average bed temperature, and/or maximum temperature
  • FIG. 1 shows a representative reaction section of a styrene production process, having successive dehydrogenation and oxidation zones.
  • the present invention relates to method for dehydrogenating a feed stream comprising contacting the feed stream with a first dehydrogenation catalyst and then with a second dehydrogenation catalyst, wherein the second dehydrogenation catalyst has a higher activity than the first dehydrogenation catalyst.
  • the first and second dehydrogenation catalysts may be in separate reactors or in separate beds within the same reactor (e.g., at inlet and outlet positions, respectively), where the beds are not necessarily physically separated, such as by the use of a distribution device or other means.
  • the feed stream may be, for example, an oxidation zone effluent stream of an EB dehydrogenation process.
  • Dehydrogenation catalysts such as those used for the production of styrene from EB are known in the art and include iron oxide catalysts with promoter metals such as potassium. Methods for increasing or decreasing the dehydrogenation activity of catalysts are also known. For example, the regulation of catalytic activity can be achieved by varying the catalytic metal and promoter loadings or amounts (e.g., in percent by weight) or ratios of these components, using more or less inert material in a catalyst formulation, and/or subjecting catalyst to controlled amounts of activity attenuating agents (e.g., sulf ⁇ ding agents).
  • activity attenuating agents e.g., sulf ⁇ ding agents
  • Catalyst activity is generally characterized in terms of the catalyst inlet temperature or average catalyst bed temperature (e.g., the weighted average bed temperature, calculated based on temperatures measured at various axial points, which are weighted based on the catalyst weight fraction between measurement points such as those corresponding to thermocouple locations).
  • the higher activity, second dehydrogenation catalyst described herein will generally have at least a 2°C activity advantage over the upstream, lower activity dehydrogenation catalyst. Typically this activity advantage is in the range from 3°C to 10 0 C.
  • the activity advantage in this case is defined as the reduction in inlet temperature, holding all other conditions constant, required to achieve 50% conversion of a given dehydrogenation feed used in a particular process (for example 50% conversion of an EB feed to styrene).
  • equal weights of each type of dehydrogenation catalyst are used in a dehydrogenation reactor or zone, following oxidative reheat, as discussed above.
  • the downstream, higher activity dehydrogenation catalyst may generally account for at least 20% of the weight of the combined, higher and lower activity catalysts, and often accounts for 25% to 80% of the combined weight.
  • the "higher activity catalyst” may be defined as that in any catalyst bed, which is preceded by (i.e., is positioned downstream of) a catalyst having lower activity.
  • the relative activity advantages and relative amounts of higher and lower activity catalysts discussed above can therefore apply to any such pair of catalyst beds.
  • the catalyst activity may be gradually increased from the inlet to the outlet of the
  • dehydrogenation reactor or zone In this case, it is readily appreciated that the use of higher activity catalyst and lower activity catalyst may be discernable by separating the catalyst beds across a given plane or reactor cross section and considering the catalyst activity in each of the resulting, divided sections. Mixtures of dehydrogenation catalysts having differing activities, with an increasing content of the higher activity catalyst in the downstream direction of the catalyst bed, may therefore effectively be used to achieve higher and lower activity catalysts, according to the invention. In other embodiments, discreet beds, each having a single type of a higher and a lower activity catalyst, and even separate reactors employing these catalysts, may be used to achieve the advantages described herein.
  • the use of a higher, second activity dehydrogenation catalyst lowers the overall temperature needed to achieve a given EB conversion.
  • this higher activity dehydrogenation catalyst throughout an entire dehydrogenation reactor or reaction zone is not necessarily desirable because the presence of this catalyst at the higher reactor inlet temperature leads to undesirable byproducts, such as phenylacetylene, in the dehydrogenation reaction. Therefore, it is preferred that the higher activity catalyst be used in only a downstream portion of the dehydrogenation reactor or reaction zone.
  • Dehydrogenation using catalysts with differing activities is preferably carried out subsequent to, or downstream of, a selective oxidation reaction, such as the oxidative reheat step discussed above that is used for the combustion of hydrogen in a styrene production process.
  • a selective oxidation reaction such as the oxidative reheat step discussed above that is used for the combustion of hydrogen in a styrene production process.
  • This beneficially reduces the temperature requirement (e.g., average catalyst bed temperature, inlet temperature, and/or maximum or outlet temperature) of the oxidation zone (e.g., the selective oxidation catalyst) without significantly affecting the conversion of the overall dehydrogenation process, such as in the production of styrene.
  • the lower oxidation zone requirement in turn reduces the production of unwanted byproducts, and particularly oxygenated species.
  • nonselective reactions include those which form phenol, benzaldehyde, acetophenone, benzacetaldehyde, and other oxygenates.
  • Some of these byproducts result from the contact between the injected oxygen (typically in an oxygen-containing gas such as air) and the dehydrogenation effluent hydrocarbon mixture, in the absence of the oxidation catalyst. In any event, the reduction of the oxidation catalyst temperature decreases the relative production of these oxygenated byproducts, whether they result from thermal or catalyzed reactions.
  • dehydrogenation catalysts of relatively low and high activities in upstream and downstream catalyst beds can reduce the byproduct formation in both the dehydrogenation reaction zone as well as in the prior oxidation or combustion zone, in dehydrogenation processes (e.g., in the production of styrene via EB dehydrogenation) employing interstage heating (or oxidative reheat).
  • This reduction in byproducts not only reduces the level of contaminants in the desired product (e.g., styrene), but also improves the life of the dehydrogenation and/or oxidation catalyst, as the byproducts can deactivate either of these catalysts, possibly directly or indirectly as precursors to coke.
  • FIG. 1 depicts in simplified block form the basic steps in a representative dehydrogenation process employing interstage heating between separate dehydrogenation zones.
  • a dehydrogenation process inlet stream 10 e.g., styrene or a mixture of styrene and EB, with the latter being present in an amount of at least 10% by weight
  • the amount of steam used is typically in the range of 8- 10 moles per mole of hydrocarbon in the inlet stream 10.
  • the first dehydrogenation zone effluent 16 (e.g., an effluent stream comprising EB and hydrogen) is contacted with oxygen or an oxygen- containing stream 14 (e.g., air) to selectively combust or oxidize hydrogen produced in the first dehydrogenation zone 13a.
  • oxygen or an oxygen- containing stream 14 e.g., air
  • the flow of the oxygen-containing stream 14 is typically such that 0.05 to 0.4 moles of oxygen are present, per mole of hydrogen in the first dehydrogenation zone effluent 16.
  • the operating pressure of the oxidation zone 15 is normally near atmospheric pressure, although somewhat higher or lower (e.g.,
  • subatmospheric pressures may be used.
  • the first dehydrogenation zone effluent 16 due to the endothermic nature of the preceding dehydrogenation reaction, is normally at a temperature from 500-550 0 C (930-
  • the rate of oxygen injection can be controlled to achieve a desired temperature of the oxidation zone effluent 18, or a desired temperature increase from the first dehydrogenation zone effluent 16 to the oxidation zone effluent 18.
  • Oxidation therefore occurs in the oxidation zone 15 to provide an oxidation zone effluent stream (e.g., comprising EB) 18, which then serves as a feed stream to a second dehydrogenation zone 13b.
  • oxidation zone effluent stream e.g., comprising EB
  • second dehydrogenation zone 13b The use of first and second dehydrogenation catalysts with differing activities, as discussed above, is most advantageously used in this second dehydrogenation zone 13b.
  • this dual catalyst configuration allows for a reduction in the temperature of upstream oxidation zone effluent stream 18, without sacrificing dehydrogenation conversion, as measured based on the composition of the second dehydrogenation zone effluent 20. In fact, this temperature has been found to be largely dependent on the activity of the dehydrogenation catalyst in the second dehydrogenation zone.
  • the second dehydrogenation zone effluent 20 may represent the final
  • dehydrogenation reactor effluent which may be routed, for example, to a downstream separation section. Otherwise, this stream may be subjected to additional oxidative reheat in another oxidation zone, followed by another dehydrogenation zone.
  • aspects of the invention are directed to the use of catalysts having differing levels of activity, with a higher activity catalyst being positioned downstream with respect to a lower activity catalyst, in dehydrogenation processes such as in the

Landscapes

  • Chemical & Material Sciences (AREA)
  • Organic Chemistry (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Organic Low-Molecular-Weight Compounds And Preparation Thereof (AREA)
  • Low-Molecular Organic Synthesis Reactions Using Catalysts (AREA)

Abstract

Methods are disclosed for the dehydrogenation of feed streams, such as in the manufacture of styrene from ethylbenzene, using a catalyst bed having catalyst with differing activities. In particular, the use of upstream and downstream catalyst beds of relatively low and high activities, respectively, can reduce the production of unwanted byproducts, especially in styrene production processes employing an oxidative reheat step (oxidation zone) prior to ethylbenzene dehydrogenation. The methods allow the maximum temperature in the oxidation zone to be decreased, thereby reducing the formation of unwanted oxygenated byproducts (e.g., phenol).

Description

USE OF MIXED ACTIVITY DEHYDROGENATION CATALYST
FOLLOWING OXIDATIVE REHEAT
FIELD OF THE INVENTION
[OOOl] The present invention relates to methods for the dehydrogenation of feed streams, such as in the manufacture of styrene from ethylbenzene, using catalysts with differing activities. In particular, the use of upstream and downstream catalyst beds of relatively low and high activities, respectively, can reduce the production of unwanted byproducts, especially in styrene production processes employing one or more oxidative reheat steps prior to EB dehydrogenation.
DESCRIPTION OF RELATED ART
[0002] Styrene (phenylethylene, vinylbenzene), an important monomer used in the manufacture of many plastics, is commonly produced in a two-step process. First, ethylbenzene (EB) is formed by alkylating benzene, by transalkylating polyethylbenzenes (PEBs), or by both. The EB is then dehydrogenated, in the presence of steam (which supplies the sensible heat needed for the endothermic reaction), to produce styrene. The EB dehydrogenation effluent (or crude styrene product) is then processed in a separation section, typically using three of four distillation columns, to recover purified styrene monomer, unreacted EB and benzene, as well as byproduct benzene and other byproducts, namely toluene, and heavies (tar).
[0003] The dehydrogenation of EB to styrene is endothermic and therefore the temperature of the dehydrogenation catalyst bed decreases significantly during the progress of the reaction, thus lowering the conversion to styrene. This limitation of conversion arises at reduced temperatures, not only from the lower rate of EB dehydrogenation, but also from the lower equilibrium conversion level. Moreover, the decrease of temperature adversely affects the selectivity for styrene, because as the equilibrium conversion level is approached, essentially only undesirable side reactions continue to take place. A economically favorable level of conversion is therefore not achieved with only a single bed of dehydrogenation catalyst.
[0004] For these reasons, it has become standard commercial practice to perform interstage reheating, whereby the EB dehydrogenation effluent from a first reactor is heated to a desired inlet temperature of a second downstream reactor. A known method for maintaining the reaction temperature (referred to generally as "oxidative reheat") is to introduce oxygen or an oxygen-containing gas which will burn or oxidize the hydrogen formed during the dehydrogenation reaction, thus increasing the temperature of the effluent stream and consequently increasing the conversion of the EB to styrene. The use of oxidative reheat is based on the recognition that the combustion of the hydrogen generated in the dehydrogenation process performs two beneficial functions. The first is a favorable shift in the dehydrogenation reaction equilibrium toward the desired dehydrogenation product as hydrogen is removed or consumed. The second is the release of heat sufficient to reheat the reactants to the desired dehydrogenation conditions, prior to a subsequent stage of dehydrogenation. Processes employing oxidative reheat utilize a hydrogen oxidation catalyst in an attempt to selectively oxidize the hydrogen rather than feed or product hydrocarbons that are also present in the dehydrogenation zone.
[0005] Various dehydrogenation processes using some form of oxidative reheat are described in the art. For instance, US 3,437,703 discloses a dehydrogenation process which may utilize either a "homogeneous catalyst system," in which oxidation and dehydrogenation catalysts are admixed or layered, or a "multibed" system, utilizing individual catalyst beds. Similarly, US 3,855,330 describes a dehydrogenation process using sequential beds of dehydrogenation catalyst and oxidation catalyst. US 3,502,737 describes an EB
dehydrogenation process in which catalyst activity and stability are maintained by the careful control of the amount of oxygen which is present and by a reduction in the steam which is used in the reaction zone. The presence of oxygen is taught to prevent carbon deposits on the surface of catalytically active sites of the dehydrogenation catalyst, which is in a physical admixture with the hydrogen oxidation catalyst. US 4,778,941 teaches the use of an eductor to withdraw a portion of a dehydrogenation effluent from the reactor, cool it, and return it to the reactor, thereby allowing for an increased amount of hydrogen to be consumed in a separate bed of oxidation catalyst.
[0006] Regardless of the particular manner in which oxidative reheat is practiced in dehydrogenation reactions such as the conversion of EB to styrene, methods are continually being sought to better promote the oxidation of hydrogen during interstage reheating, rather than the destructive combustion or oxidation of the more valuable feed and product hydrocarbons. SUMMARY OF THE INVENTION
[0007] Embodiments of the invention relate to the finding that the oxidation temperature in an oxidation or combustion zone, used for interstage reheating (or oxidative reheat) between successive dehydrogenation stages or zones, significantly impacts the generation of unwanted, oxidized byproducts. Importantly, methods have now been discovered whereby the oxidation zone temperature can be decreased, without adversely impacting the overall level of conversion to the desired dehydrogenation product such as styrene.
[0008] Embodiments of the invention are based on the use of dehydrogenation catalysts (e.g., EB dehydrogenation catalysts) having differing activities in upstream and downstream beds or reactor sections. The catalyst configuration, in which a more active catalyst for dehydrogenation is used downstream of a less active catalyst, allows the overall
dehydrogenation process to be carried out at conditions less conducive to byproduct formation. For example, the use of catalysts with differing activities in a dehydrogenation zone downstream of an oxidation zone, as described herein, can decrease the temperature requirement (e.g., the inlet temperature, average bed temperature, and/or maximum temperature) in the upstream oxidation reaction, thereby decreasing the extent of nonselective oxidation reactions in the oxidation zone.
[0009] These and other aspects and features relating to the present invention are apparent from the following Detailed Description.
BRIEF DESCRIPTION OF THE DRAWING
[0010] FIG. 1 shows a representative reaction section of a styrene production process, having successive dehydrogenation and oxidation zones.
DETAILED DESCRIPTION
[0011] The present invention relates to method for dehydrogenating a feed stream comprising contacting the feed stream with a first dehydrogenation catalyst and then with a second dehydrogenation catalyst, wherein the second dehydrogenation catalyst has a higher activity than the first dehydrogenation catalyst. The first and second dehydrogenation catalysts may be in separate reactors or in separate beds within the same reactor (e.g., at inlet and outlet positions, respectively), where the beds are not necessarily physically separated, such as by the use of a distribution device or other means. The feed stream may be, for example, an oxidation zone effluent stream of an EB dehydrogenation process. [OO 12] Dehydrogenation catalysts such as those used for the production of styrene from EB are known in the art and include iron oxide catalysts with promoter metals such as potassium. Methods for increasing or decreasing the dehydrogenation activity of catalysts are also known. For example, the regulation of catalytic activity can be achieved by varying the catalytic metal and promoter loadings or amounts (e.g., in percent by weight) or ratios of these components, using more or less inert material in a catalyst formulation, and/or subjecting catalyst to controlled amounts of activity attenuating agents (e.g., sulfϊding agents).
[0013] Catalyst activity is generally characterized in terms of the catalyst inlet temperature or average catalyst bed temperature (e.g., the weighted average bed temperature, calculated based on temperatures measured at various axial points, which are weighted based on the catalyst weight fraction between measurement points such as those corresponding to thermocouple locations). The higher activity, second dehydrogenation catalyst described herein will generally have at least a 2°C activity advantage over the upstream, lower activity dehydrogenation catalyst. Typically this activity advantage is in the range from 3°C to 100C. The activity advantage in this case is defined as the reduction in inlet temperature, holding all other conditions constant, required to achieve 50% conversion of a given dehydrogenation feed used in a particular process (for example 50% conversion of an EB feed to styrene). [OO 14] In a representative embodiment, equal weights of each type of dehydrogenation catalyst are used in a dehydrogenation reactor or zone, following oxidative reheat, as discussed above. However, the downstream, higher activity dehydrogenation catalyst may generally account for at least 20% of the weight of the combined, higher and lower activity catalysts, and often accounts for 25% to 80% of the combined weight.
[0015] In the case where the present invention is practiced using catalysts having three or more levels of activity, for example having progressively higher activity in the downstream direction of a catalyst bed, the "higher activity catalyst" may be defined as that in any catalyst bed, which is preceded by (i.e., is positioned downstream of) a catalyst having lower activity. The relative activity advantages and relative amounts of higher and lower activity catalysts discussed above can therefore apply to any such pair of catalyst beds. In other embodiments, the catalyst activity may be gradually increased from the inlet to the outlet of the
dehydrogenation reactor or zone. In this case, it is readily appreciated that the use of higher activity catalyst and lower activity catalyst may be discernable by separating the catalyst beds across a given plane or reactor cross section and considering the catalyst activity in each of the resulting, divided sections. Mixtures of dehydrogenation catalysts having differing activities, with an increasing content of the higher activity catalyst in the downstream direction of the catalyst bed, may therefore effectively be used to achieve higher and lower activity catalysts, according to the invention. In other embodiments, discreet beds, each having a single type of a higher and a lower activity catalyst, and even separate reactors employing these catalysts, may be used to achieve the advantages described herein.
[0016] Advantageously, the use of a higher, second activity dehydrogenation catalyst lowers the overall temperature needed to achieve a given EB conversion. However, it has been determined that using this higher activity dehydrogenation catalyst throughout an entire dehydrogenation reactor or reaction zone is not necessarily desirable because the presence of this catalyst at the higher reactor inlet temperature leads to undesirable byproducts, such as phenylacetylene, in the dehydrogenation reaction. Therefore, it is preferred that the higher activity catalyst be used in only a downstream portion of the dehydrogenation reactor or reaction zone.
[0017] Dehydrogenation using catalysts with differing activities is preferably carried out subsequent to, or downstream of, a selective oxidation reaction, such as the oxidative reheat step discussed above that is used for the combustion of hydrogen in a styrene production process. This beneficially reduces the temperature requirement (e.g., average catalyst bed temperature, inlet temperature, and/or maximum or outlet temperature) of the oxidation zone (e.g., the selective oxidation catalyst) without significantly affecting the conversion of the overall dehydrogenation process, such as in the production of styrene. The lower oxidation zone requirement in turn reduces the production of unwanted byproducts, and particularly oxygenated species.
[OO 18] It has now been found that even a relatively small reduction in the average or maximum temperature of the oxidation reaction (e.g., in an oxidation zone) can significantly decrease the formation of unwanted, oxidized byproducts formed by the reaction of oxygen with valuable feed components. For example, in the case of a typical EB dehydrogenation reactor effluent (e.g., containing styrene, unreacted EB, benzene, and light byproducts such as C4-C6 olefins and diolefins) that is subjected to interstage heating (or oxidative reheat), nonselective reactions (i.e., other than the desired combustion of hydrogen) include those which form phenol, benzaldehyde, acetophenone, benzacetaldehyde, and other oxygenates. Some of these byproducts result from the contact between the injected oxygen (typically in an oxygen-containing gas such as air) and the dehydrogenation effluent hydrocarbon mixture, in the absence of the oxidation catalyst. In any event, the reduction of the oxidation catalyst temperature decreases the relative production of these oxygenated byproducts, whether they result from thermal or catalyzed reactions.
[OO 19] In this manner, the use of dehydrogenation catalysts of relatively low and high activities in upstream and downstream catalyst beds, respectively, can reduce the byproduct formation in both the dehydrogenation reaction zone as well as in the prior oxidation or combustion zone, in dehydrogenation processes (e.g., in the production of styrene via EB dehydrogenation) employing interstage heating (or oxidative reheat). This reduction in byproducts not only reduces the level of contaminants in the desired product (e.g., styrene), but also improves the life of the dehydrogenation and/or oxidation catalyst, as the byproducts can deactivate either of these catalysts, possibly directly or indirectly as precursors to coke.
[0020] Aspects of the invention are further illustrated with reference to FIG. 1, which depicts in simplified block form the basic steps in a representative dehydrogenation process employing interstage heating between separate dehydrogenation zones. A dehydrogenation process inlet stream 10 (e.g., styrene or a mixture of styrene and EB, with the latter being present in an amount of at least 10% by weight) is contacted with a flow of steam 12 in order to carry out dehydrogenation in a first dehydrogenation zone 13 a. The amount of steam used is typically in the range of 8- 10 moles per mole of hydrocarbon in the inlet stream 10. After dehydrogenation to a given extent, the first dehydrogenation zone effluent 16 (e.g., an effluent stream comprising EB and hydrogen) is contacted with oxygen or an oxygen- containing stream 14 (e.g., air) to selectively combust or oxidize hydrogen produced in the first dehydrogenation zone 13a. The flow of the oxygen-containing stream 14 is typically such that 0.05 to 0.4 moles of oxygen are present, per mole of hydrogen in the first dehydrogenation zone effluent 16. The operating pressure of the oxidation zone 15 is normally near atmospheric pressure, although somewhat higher or lower (e.g.,
subatmospheric) pressures may be used.
[0021] The first dehydrogenation zone effluent 16, due to the endothermic nature of the preceding dehydrogenation reaction, is normally at a temperature from 500-5500C (930-
10200F). The use of the oxidation zone 15, by virtue of the highly exothermic combustion reaction, raises the temperature of the oxidation zone effluent 18 generally to 600-6500C (1110-12000F), which normally approximates the temperature of the dehydrogenation process inlet stream 10, flowing to the first dehydrogenation zone 13a. The rate of oxygen injection can be controlled to achieve a desired temperature of the oxidation zone effluent 18, or a desired temperature increase from the first dehydrogenation zone effluent 16 to the oxidation zone effluent 18.
[0022] Oxidation therefore occurs in the oxidation zone 15 to provide an oxidation zone effluent stream (e.g., comprising EB) 18, which then serves as a feed stream to a second dehydrogenation zone 13b. The use of first and second dehydrogenation catalysts with differing activities, as discussed above, is most advantageously used in this second dehydrogenation zone 13b. Importantly, this dual catalyst configuration allows for a reduction in the temperature of upstream oxidation zone effluent stream 18, without sacrificing dehydrogenation conversion, as measured based on the composition of the second dehydrogenation zone effluent 20. In fact, this temperature has been found to be largely dependent on the activity of the dehydrogenation catalyst in the second dehydrogenation zone. Because a relatively more active dehydrogenation catalyst is used in an outlet position, bed, or portion of this zone or reactor, a lower inlet temperature of the oxidation zone effluent stream 18 is possible. This allows the average and/or maximum temperature at which oxygen and hydrocarbons are contacted in the oxidation zone to be reduced, thereby significantly hindering the formation of detrimental byproducts (e.g., oxygenated compounds as discussed above). The second dehydrogenation zone effluent 20 may represent the final
dehydrogenation reactor effluent which may be routed, for example, to a downstream separation section. Otherwise, this stream may be subjected to additional oxidative reheat in another oxidation zone, followed by another dehydrogenation zone.
[0023] The use of the second, more active dehydrogenation catalyst throughout the second dehydrogenation zone 13b is avoided, in order to prevent the formation of excessive dehydrogenation byproducts, such as phenylacetylene, at the higher temperature inlet of this dehydrogenation zone. Therefore, the dehydrogenation processes described herein and employing dual activity catalysts downstream of an oxidative reheat zone have a number of possible advantages. As discussed above, byproduct formation in both the oxidation and dehydrogenation zones can be reduced, the life of the dehydrogenation catalyst extended, and the product quality improved. Moreover, because a lower temperature is used for the feed stream to the dehydrogenation zone (e.g., the second dehydrogenation zone 13b, as depicted in FIG. 1), a reduced amount of oxygen is required in the upstream oxidation zone 15, providing a cost savings.
[0024] Overall, aspects of the invention are directed to the use of catalysts having differing levels of activity, with a higher activity catalyst being positioned downstream with respect to a lower activity catalyst, in dehydrogenation processes such as in the
dehydrogenation of EB to produce styrene. In view of the present disclosure, it will be seen that several advantages may be achieved and other advantageous results may be obtained. Those having skill in the art will recognize the applicability of the methods disclosed herein to any of a number of dehydrogenation processes in which oxidative reheat may be currently employed or contemplated, including the dehydrogenation of butane and other paraffins, such as any of those having carbon numbers in the C3-C14 range. It will also become apparent that embodiments of the methods disclosed herein will use multiple catalyst beds with varying activities, or catalyst beds having varying activity with respect to the axial bed position, to achieve any or all of the advantages described herein.
[0025] Those having skill in the art, with the knowledge gained from the present disclosure, will recognize that various changes could be made in the above processes without departing from the scope of the present disclosure. Mechanisms used to explain theoretical or observed phenomena or results, shall be interpreted as illustrative only and not limiting in any way the scope of the appended claims.
[0026] The following examples are set forth as representative of the present invention. These examples are not to be construed as limiting the scope of the invention as these and other equivalent embodiments will be apparent in view of the present disclosure and appended claims.
EXAMPLE 1
Effect of Oxidation Temperature on Byproduct Formation using a Model Feed
[0027] The combined air/hydrocarbon/water inlet stream to an interstage oxidative reheat zone of a commercial styrene production process was modeled using a stream that combined the following flows: (1) air at 802 standard cc per minute, (2) hydrocarbon (67% styrene and 33% EB, by weight) at 140 grams/hr, and (3) water at 265 grams/hr.
[0028] The effect of oxidation temperature on oxygenate formation was studied and the results in the following table were obtained:
Figure imgf000010_0001
[0029] The above results show the importance of minimizing the temperature at which oxygen is in contact with hydrocarbon. Because the oxidation reaction is exothermic, such that the temperature within the oxidation reactor or reaction zone can increase by as much as 1000C, the oxygen is in contact with hydrocarbon at a range of temperatures throughout oxidation. Oxygenate byproduct formation increases significantly with increasing temperature, as shown by the results obtained above. The methods disclosed herein can beneficially reduce the oxidation temperature to lower byproduct formation and thereby improve catalyst life and product quality.

Claims

CLAIMS:
1. A method for dehydrogenating a feed stream comprising contacting the feed stream with a first dehydrogenation catalyst and then with a second dehydrogenation catalyst, wherein the second dehydrogenation catalyst has a higher activity than the first dehydrogenation catalyst.
2. The method of claim 1, wherein the second dehydrogenation catalyst has at least a 2°C activity advantage over the first dehydrogenation catalyst.
3. The method of claim 1, wherein the activity advantage is in the range from 3°C to 100C.
4. The method of claim 1, wherein the second dehydrogenation catalyst accounts for at least 20% of the weight of the combined, first and second dehydrogenation catalysts.
5. The method of claim 4, wherein the second dehydrogenation catalyst accounts for from 25% to 80% of the combined weight of the combined first and second dehydrogenation catalysts.
6. The method of claim 1 , wherein the feed stream is an oxidation zone effluent stream of an ethylbenzene (EB) dehydrogenation process.
7. The method of claim 1, wherein the first and second dehydrogenation catalysts are at inlet and outlet positions, respectively, within a single reactor.
8. A method for dehydrogenating ethylbenzene (EB) to produce styrene, the method
comprising:
(a) oxidizing, in an oxidation zone, an effluent stream comprising EB and hydrogen from a first dehydrogenation reaction zone, to provide an oxidation zone effluent stream comprising EB, and (b) dehydrogenating EB in the oxidation zone effluent stream with a first
dehydrogenation catalyst and then with a second dehydrogenation catalyst, wherein the second dehydrogenation catalyst has a higher activity than the first
dehydrogenation catalyst.
9. The method of claim 8, wherein oxidizing in step (a) is carried out in the presence of an oxygen-containing gas.
10. The method of claim 9, wherein the oxygen-containing gas is air.
PCT/US2010/040512 2009-07-02 2010-06-30 Use of mixed activity dehydrogenation catalyst following oxidative reheat Ceased WO2011002828A2 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US22257709P 2009-07-02 2009-07-02
US61/222,577 2009-07-02

Publications (2)

Publication Number Publication Date
WO2011002828A2 true WO2011002828A2 (en) 2011-01-06
WO2011002828A3 WO2011002828A3 (en) 2011-04-21

Family

ID=43411708

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2010/040512 Ceased WO2011002828A2 (en) 2009-07-02 2010-06-30 Use of mixed activity dehydrogenation catalyst following oxidative reheat

Country Status (2)

Country Link
US (1) US20110004037A1 (en)
WO (1) WO2011002828A2 (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2488440C1 (en) * 2012-07-18 2013-07-27 ФЕДЕРАЛЬНОЕ ГОСУДАРСТВЕННОЕ БЮДЖЕТНОЕ УЧРЕЖДЕНИЕ НАУКИ ИНСТИТУТ ОРГАНИЧЕСКОЙ ХИМИИ им. Н.Д. ЗЕЛИНСКОГО РОССИЙСКОЙ АКАДЕМИИ НАУК (ИОХ РАН) Catalyst for continuous oxidative dehydrogenation of ethane and method for continuous oxidative dehydrogenation of ethane using said catalyst
CN105646125A (en) * 2014-11-20 2016-06-08 中国石油化工股份有限公司 Ethylbenzene dehydrogenation-hydrogen oxidation reaction process

Family Cites Families (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3515763A (en) * 1968-04-22 1970-06-02 Universal Oil Prod Co Production of styrene
US3725494A (en) * 1971-08-02 1973-04-03 Phillips Petroleum Co Two-stage dehydrogenation process for producing diolefins
US3918918A (en) * 1972-03-15 1975-11-11 Lummus Co Catalytic reactor
US4435607A (en) * 1981-04-28 1984-03-06 Uop Inc. Dehydrogenation of dehydrogenatable hydrocarbons
US4652687A (en) * 1986-07-07 1987-03-24 Uop Inc. Process for the dehydrogenation of dehydrogenatable hydrocarbons
US4827066A (en) * 1988-05-23 1989-05-02 Uop Inc. Dehydrogenation of dehydrogenatable hydrocarbons
US5510553A (en) * 1989-05-12 1996-04-23 Fina Research, S.A. Catalytic dehydrogenation of alkylaromatic hydrocarbons
US5430209A (en) * 1993-08-27 1995-07-04 Mobil Oil Corp. Process for the catalytic dehydrogenation of alkanes to alkenes with simultaneous combustion of hydrogen
US5510557A (en) * 1994-02-28 1996-04-23 Abb Lummus Crest Inc. Endothermic catalytic dehydrogenation process
EP0752402A1 (en) * 1995-06-07 1997-01-08 Fina Technology, Inc. Process for dehydrogenation of ethylbenzene to styrene
US6242379B1 (en) * 1998-04-01 2001-06-05 United Catalysts Inc. Dehydrogenation catalysts
US6756339B1 (en) * 1998-04-01 2004-06-29 Sud-Chemie Inc. Dehydrogenation catalysts
CA2387715C (en) * 2000-08-18 2009-03-24 Mitsubishi Chemical Corporation Process for producing styrene
US20020183571A1 (en) * 2000-11-30 2002-12-05 Sud-Chemie Inc. Radial reactor loading of a dehydrogenation catalyst
US7271126B2 (en) * 2002-05-15 2007-09-18 Sud-Chemie Inc. Catalyst for the dehydrogenation of ethyl benzene to STYRENE prepared with a high purity iron precursor
US7244868B2 (en) * 2002-06-25 2007-07-17 Shell Oil Company Process for the dehydrogenation of an unsaturated hydrocarbon
US20040242945A1 (en) * 2003-05-29 2004-12-02 Pelati Joseph E. Dehydrogenation of alkyl aromatic compound over a gallium-zinc catalyst

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2488440C1 (en) * 2012-07-18 2013-07-27 ФЕДЕРАЛЬНОЕ ГОСУДАРСТВЕННОЕ БЮДЖЕТНОЕ УЧРЕЖДЕНИЕ НАУКИ ИНСТИТУТ ОРГАНИЧЕСКОЙ ХИМИИ им. Н.Д. ЗЕЛИНСКОГО РОССИЙСКОЙ АКАДЕМИИ НАУК (ИОХ РАН) Catalyst for continuous oxidative dehydrogenation of ethane and method for continuous oxidative dehydrogenation of ethane using said catalyst
CN105646125A (en) * 2014-11-20 2016-06-08 中国石油化工股份有限公司 Ethylbenzene dehydrogenation-hydrogen oxidation reaction process
CN105646125B (en) * 2014-11-20 2018-04-06 中国石油化工股份有限公司 Ethylbenzene dehydrogenation hydroxide reaction technique

Also Published As

Publication number Publication date
US20110004037A1 (en) 2011-01-06
WO2011002828A3 (en) 2011-04-21

Similar Documents

Publication Publication Date Title
TWI328000B (en) Preparation of butadiene
RU2730518C2 (en) Oxidative dehydrogenation of alkanes (od)
KR101436183B1 (en) Process for regeneration of a catalyst bed deactivated in the context of a heterogeneously catalyzed partial dehydrogenation of a hydrocarbon
EP1773739B1 (en) Process for the selective hydrogenation of alkynes and/or dienes in an olefin-containing hydrocarbon stream
CN101076506B (en) Process for preparing butadiene from n-butane
JPH10506668A (en) How to convert methanol to gasoline
CA2726533C (en) Process for the production of styrene monomer by improving energy efficiency
EP3331844B1 (en) Method for hydrogenation of alkenes and alkynes in low pressure hydrocarbons process streams
JP2022539734A (en) Method for operating an acetylene hydrogenation unit in an integrated steam cracking and fluid catalytic dehydrogenation system
JP5638013B2 (en) Hydrocarbon dehydrogenation method
KR101834912B1 (en) Reactor
JP2006504762A (en) Method for catalytic dehydrogenation of hydrocarbons
US20110004037A1 (en) Use of Mixed Activity Dehydrogenation Catalyst Following Oxidative Reheat
CN112969678B (en) Dehydrogenation process with improved run time
EP1889824B1 (en) Process for production of styrene
KR102090235B1 (en) Dehydrogenation apparatus and method
CA1265539A (en) Hydrocarbon dehydrogenation process with oxidative reheat
JP6909847B2 (en) 1,3-Butadiene production system and 1,3-butadiene production method using this
KR20160083224A (en) System for manufacturing 1,3-butadiene recycling waste water and method for manufacturing 1,3-butadiene using the same
US20100022816A1 (en) Dehydrogenation of Methylbutenes to Isoprene
EP2960223B1 (en) An endothermic gas phase catalytic dehydrogenation process
RU2166494C2 (en) Method of preparing styrene
WO1995015365A1 (en) Multi-bed selective hydrogenation of acetylenes
EP0086100B1 (en) Method to extend life of iron oxide-containing catalysts using low levels of oxygen
EP4387946A1 (en) Feed purification in ethane odh process

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 10794673

Country of ref document: EP

Kind code of ref document: A2

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 10794673

Country of ref document: EP

Kind code of ref document: A2