WO2016195955A1 - Processes for separating an isobutane recycle stream from a mixed c4 stream - Google Patents

Processes for separating an isobutane recycle stream from a mixed c4 stream Download PDF

Info

Publication number
WO2016195955A1
WO2016195955A1 PCT/US2016/032018 US2016032018W WO2016195955A1 WO 2016195955 A1 WO2016195955 A1 WO 2016195955A1 US 2016032018 W US2016032018 W US 2016032018W WO 2016195955 A1 WO2016195955 A1 WO 2016195955A1
Authority
WO
WIPO (PCT)
Prior art keywords
stream
zone
effluent
isobutane
butene
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/US2016/032018
Other languages
French (fr)
Inventor
Andrea G. Bozzano
Vesna Havran Mueller
Bing Sun
Bipin V. Vora
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
Original Assignee
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 UOP LLC filed Critical UOP LLC
Publication of WO2016195955A1 publication Critical patent/WO2016195955A1/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
    • C07C5/3335Catalytic processes with metals
    • C07C5/3337Catalytic processes with metals of the platinum group
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C41/00Preparation of ethers; Preparation of compounds having groups, groups or groups
    • C07C41/01Preparation of ethers
    • C07C41/05Preparation of ethers by addition of compounds to unsaturated compounds
    • C07C41/06Preparation of ethers by addition of compounds to unsaturated compounds by addition of organic compounds only
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C5/00Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms
    • C07C5/02Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms by hydrogenation
    • C07C5/03Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms by hydrogenation of non-aromatic carbon-to-carbon double bonds
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C5/00Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms
    • C07C5/22Preparation of hydrocarbons from hydrocarbons containing the same number of carbon atoms by isomerisation
    • C07C5/23Rearrangement of carbon-to-carbon unsaturated bonds
    • C07C5/25Migration of carbon-to-carbon double bonds
    • C07C5/2506Catalytic processes
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C2523/00Catalysts comprising metals or metal oxides or hydroxides, not provided for in group C07C2521/00
    • C07C2523/70Catalysts comprising metals or metal oxides or hydroxides, not provided for in group C07C2521/00 of the iron group metals or copper
    • C07C2523/74Iron group metals
    • C07C2523/755Nickel

Definitions

  • This invention relates generally to processes for separating an isobutane recycle stream from a mixed C4 hydrocarbons stream, and more particularly to processes in which the isobutane is recycled back to a dehydrogenation zone.
  • Isobutene can be used to produce a number of desired chemicals.
  • etherification processes make high octane compounds which are used as blending components in lead-free gasoline. These etherification processes will usually produce ethers by combination of an isoolefin with a monohydroxyl alcohol such as methanol or ethanol.
  • the etherification process can also be used as a means to produce pure isoolefins by cracking of the product ether.
  • pure isobutylene can be obtained for the manufacture of polyisobutylenes and tert-butyl -phenol by cracking methyl tertiary butyl ether (MTBE).
  • MTBE methyl tertiary butyl ether
  • MTBE has emerged as a predominant etherification process which uses C4 isoolefins as the feedstock.
  • isobutene can also be used to form other chemicals, including isoprene and isooctane, to name a few.
  • a normal butane feed is selectively isomerized to produce isobutane which can be dehydrogenated to form isobutene.
  • dehydrogenation catalysts are particularly sensitive to normal butene. Normal butene can further dehydrogenate forming butadiene which is highly prone to coking, thus normal butenes must be separated from any stream entering the dehydrogenation zone.
  • most complexes include a fractionation column, such as a deisobutanizer column having 120 or more distillation trays that is require to separate normal butane and butenes from isobutane.
  • a fractionation column such as a deisobutanizer column having 120 or more distillation trays that is require to separate normal butane and butenes from isobutane.
  • the effluent stream produced by the dehydrogenation zone typically contains a low concentration of normal C4 hydrocarbons, due to isomerization activity in the dehydrogenation zone. Therefore, the unconverted C4 hydrocarbons are typically returned to the deisobutanizer column to separate out the normal C4 hydrocarbons.
  • olefins and dienes in the unconverted stream are typically fully statured to remove any olefins returning to the deisobutanizer column - since normal butene can be harmful for the dehydrogenation zone and olefins can be harmful for the isomerization zone.
  • the saturation zone also requires an oxygenate removal zone to remove any oxygenates from entering the saturation zone to protect the catalyst in the saturation zone.
  • the unconverted iC4 hydrocarbons do not have the option to return to the deisobutanizer column. Accordingly, the unconverted iC4 hydrocarbons are typically treated in a raffinate column. However, a raffinate column having 60 distillation trays typically does not have the ability to separate normal hydrocarbons from iso hydrocarbons as well as a deisobutanizer column can.
  • One or more processes have been invented in which an isobutane recycle stream may be provided.
  • the processes allow for the elimination of the oxygenate removal zone from the process.
  • the processes allow for a reduction of the normal hydrocarbons from the iC4 recycle stream with a rerun column (not a deisobutanizer column).
  • the processes allow for substitution of the saturation zone catalyst with a nickel based catalyst.
  • the processes allow for consolidation of the depropanizer column with the rerun column into a single column.
  • the present invention may be characterized broadly as providing a process for converting hydrocarbons by: dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene in a reaction zone to provide a reaction effluent; separating a reaction product from a C4 stream, the C4 stream comprising isobutane, n-butane, 1-butene, 2- butene, and oxygenates; hydrogenating a least a portion of the C4 stream in a hydrogenation zone to provide a hydrogenated effluent, the hydrogenation zone receiving at least a portion of the C4 stream including oxygenates; separating an isobutane recycle stream from the hydrogenated effluent; and, recycling the isobutane recycle stream to the dehydrogenation zone.
  • the process further comprises separating the isobutane recycle stream, a normal paraffin stream comprising normal butane, and a propane stream from the hydrogenated effluent. It is contemplated that the hydrogenated effluent stream is separated in a separation zone having a dividing wall column. It is also contemplated that the hydrogenation zone is configured to hydrogenated both dienes and olefins in the C4 olefin stream. It is further contemplated that the hydrogenation zone is configured to hydrogenate dienes in the C4 olefin stream. [00013] In at least one embodiment of the present invention, the hydrogenation zone includes a nickel based catalyst. [00014] In various embodiments of the present invention, the process further comprises separating a propane stream from the C4 stream before hydrogenating the C4 stream.
  • the present invention may be generally characterized as providing a process for converting hydrocarbons by: dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene with methanol to provide an effluent stream, the effluent stream comprising methyl tert-butyl ether; separating a methyl tert-butyl ether product stream from a C4 stream, the C4 stream comprising 1-butene and 2-butene; hydrogenating at least a portion of the C4 stream in a hydrogenation zone to provide a hydrogenated effluent; separating the hydrogenated effluent into an isobutane recycle stream, a normal paraffin stream comprising normal butane, and a propane stream; and, recycling the isobutane recycle stream to the dehydrogenation zone.
  • the process further comprises removing oxygenates from the C4 stream before hydrogenating at least a portion of the C4 stream in the hydrogenation zone.
  • the hydrogenation zone includes a nickel based catalyst. It is contemplated that the process further comprises injecting sulfur into the hydrogenation zone to selectively hydrogenated dienes in the C4 stream. It is contemplated that the process also comprises selectively isomerizing 1-butene to 2-butene in the hydrogenation zone. It is further contemplated that a conversion ratio of 2- butene to 1-butene is at least 8: 1. It is also contemplated that a conversion ratio of 2-butene to 1-butene is at least 12: 1. It is even further contemplated that the hydrogenation zone is configured to hydrogenate both dienes and olefins in the C4 stream.
  • the present invention may be broadly characterized as providing a process for converting hydrocarbons by: dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene in a reaction zone with formaldehyde to provide an effluent stream, the effluent stream comprising isoprene; separating an isoprene product stream from a C4 stream, the C4 stream comprising 1-butene and 2-butene; separating a propane stream from the C4 stream to provide a depropanized C4 stream, the depropanized C4 olefin stream including oxygenates; hydrogenating the depropanized C4 olefin stream in a hydrogenation zone to provide a hydrogenated effluent; separating the hydrogenated effluent into at least an isobutane recycle stream; and, recycling the isobutane recycle stream to the dehydrogenation zone.
  • the hydrogenation zone includes a nickel based catalyst. It is contemplated that the process includes injecting sulfur into the hydrogenation zone to selectively hydrogenated dienes in the C4 stream. It is also contemplated that the process includes selectively isomerizing 1-butene to 2-butene in the hydrogenation zone. It is further contemplated that the hydrogenation zone is configured to hydrogenate both dienes and olefins in the C4 stream.
  • Figure 1 shows a process flow scheme of one or more embodiments of the present invention
  • Figure 2 shows another process flow scheme of various embodiments of the present invention.
  • Figure 3 shows yet another process flow scheme of additional embodiments of the present invention.
  • processes which allow for an economical process to provide an isobutane recycle stream.
  • the processes may be incorporated into processes which produce isobutene and include an isomerization zone and an deisobutanizer column or into processes which receive a relatively pure isobutene stream and which do not have an isomerization zone and an deisobutanizer column.
  • some of the processes according to the present invention utilize a nickel based catalyst in a hydrogenation zone and do not require an oxygenate removal zone from the process.
  • Some processes according to the present invention allow for a reduction of the normal hydrocarbons from the iC4 recycle stream with a rerun column (not a deisobutanizer column).
  • some processes according to the present invention consolidate a depropanizer column with a rerun column.
  • a feed stream 10 comprising mostly isobutane is passed to a dehydrogenation zone 12.
  • the isobutane from the feed stream 10 will be selectively dehydrogenated to form isobutene.
  • the dehydrogenation zone 12 will typically contain a reaction zone and associated auxiliary process equipment such as condensers and a vapor-liquid separator which receives the partially condensed reactor effluent stream.
  • the dehydrogenation zone preferably contains at least one fractionation column. This column is designed and operated to eliminate all lighter boiling components from a net effluent stream from the dehydrogenation zone 12.
  • lighter boiling compounds may include some and possibly all of the propane, propylene contained in the reactor effluent stream.
  • the propylene may result from the dehydrogenation of a part of propane present in the feed stream to the process or from the cracking of feed butanes.
  • a hydrogen-rich gas stream is separated from the liquid condensed from the reactor effluent. A portion of this gas will normally be recycled and the remainder will be drawn off as a net hydrogen product gas stream.
  • This gas stream will contain a mixture of the various olefins produced in the dehydrogenation zone 12 at a concentration set by the separation conditions.
  • the dehydrogenation zone 12 preferably comprises at least one radial flow reactor in which the catalyst gradually moves downward by gravity flow to allow the continuous replacement of used catalyst with catalyst having a higher activity. It is preferred that the reactants make at least two passes through a catalyst bed within the reaction zone.
  • moving bed reactors of this type may be obtained by reference to U.S. Pat. Nos. 3,647,680; 3,652,231; 3,706,536; 3,785,963; 3,825, 116; 3,839,196; 3,839, 197; 3,854,887 and 3,856,662.
  • the particular dehydrogenation conditions employed within the dehydrogenation zone 12 may vary depending on such factors as the catalyst activity, feed carbon number and the desired conversion.
  • the dehydrogenation zone 12 conditions normally employed for butane dehydrogenation include a temperature of from about 500° to 700° C, a pressure of from 0.5 to 10 atmospheres absolute and a liquid hourly space velocity of 1 to 20.
  • the preferred operating temperature will be within the range of from 550° to 660°C, and the preferred operating pressure is 0.5 to 2 atmospheres absolute.
  • a preferred butane dehydrogenation catalyst is comprised of a platinum group component, a tin component and an alkali metal component with a porous inorganic carrier material.
  • Other catalytic compositions may be used within the dehydrogenation zone 12 if desired.
  • U.S. Pat. No. 4,816,607 discloses various characteristics of suitable catalysts.
  • An isobutene rich stream 14 (meaning that the effluent stream from the dehydrogenation zone 12 has a higher amount of isobutene compared to the feed stream 10 to the dehydrogenation zone 12) may be passed from the dehydrogenation zone 12 to a reaction zone 16.
  • the isobutene will be converted into a product in a reaction effluent stream 18.
  • the isobutene may be subjected to an etherification process and, in the presence of methanol, produce a methyl tert- butyl ether product.
  • Such reaction zones are known in the art. See, U.S. Pat. No. 4,816,607 to Vora, incorporated herein by reference, which discloses a process for the production of methyl tertiary butyl ether and other ethers from precursor light paraffins, olefins and alcohols.
  • the isobutene may be subjected to a dimerization process to produce an isooctane product.
  • Such reaction zones are known in the art. See, U.S. Pat. Pub. No.2015/0045599, incorporated herein by reference.
  • reaction zonel6 the isobutene may be reacted with formaldehyde to produce an isoprene product.
  • reaction zones are likewise known in the art as described in U.S. Pat. No. 3,437,711, U.S. Pat. Pub. No. 2014/0255263, as well as described in "New Synthesis of Isoprene based on Formaldehyde and isobutylene by David W. Hall et al in Ind. Eng. Chem. Prod. Res. Develop., Vol 9 No. 2, 1970" incorporated herein by reference.
  • the particular reaction zone 16 is not necessary for an understanding or practicing of the present invention.
  • the reaction effluent stream 18 comprising the reaction product of the isobutene reaction, as well as other compounds, including, isobutane, n-butane, 1-butene, 2-butene, and oxygenates, is passed to a separation zone 20, preferably including a separation column 22 configured to separate a product stream 24 being rich in the reaction product and a C4 stream 26.
  • the C4 stream26 may be passed through a water wash 27 to remove some of the oxygenates, like aldehydes, ethers, and alcohols.
  • the C4 stream 26 is passed to a hydrogenation zone 28 which is operated to hydrogenated at least a portion of the C4 stream 26 to provide a hydrogenated effluent 30.
  • the hydrogenation zone 28, in this embodiment preferably, includes a nickel based catalyst which is not as sensitive to water and oxygenates, and thus, allows the process to be practiced without the need for an oxygenate removal zone.
  • an oxygenate removal zone may be included in some embodiments.
  • the conditions for the hydrogenation zone 28 are known and a broad range of hydrogenation conditions includes an LHSV (liquid hourly space velocity based at 15 °C liquid) between 0.5 and 20, a pressure between 5 and 500 psig, and a temperature of 50 to 500 °C.
  • the catalyst in the hydrogenation zone 28 may be sulfided, and the hydrogenation zone 28 may be operated as a selective hydrogenation zone in which the dienes are selectively hydrogenated, but olefins are not hydrogenated.
  • the hydrogenation zone 28 will also act to isomerize 1-butene in the C4 stream 26into 2-buntenes.
  • a ratio of 2-butenes to 1 butene in the hydrogenation zone 28 may be from 8: 1 to 12: 1.
  • the conversion of some of the 1-butene to 2-butene will allow for easier separation (i.e., less energy and/or shorter separation column) of the isobutane (and possibly isobutene) from the 1-butene, which is discussed below.
  • the catalyst in the hydrogenation zone 28 may not be sulfide. In such cases, the hydrogenation zone 28 may be operated to fully hydrogenate all of the olefins and dienes in the C4 stream 26.
  • the hydrogenated effluent 30 may be passed to a separation zone 32 having a dividing wall column 34.
  • the dividing wall column 34 comprises a fractionation column in which an upper portion 36 and a lower portion 38 of the column 34 are open, while a middle portion 40 of the column is separated into two portions 40a, 40b by a vertical wall or baffle 42.
  • Such dividing wall column 34 are known in the art.
  • the dividing wall column 34 will separate the hydrogenated effluent 30 into an isobutane recycle stream 44, a normal paraffin stream 46 comprising normal butane, and a propane stream 48 comprising propane and lighter compounds, such as hydrogen. If the hydrogenation zone 28 is operated to only hydrogenate the dienes in the C4 stream 24, the isobutane recycle stream 44 may also include a small amount of isobutene— which is not harmful to the catalyst in the dehydrogenation zone 12. The isobutane recycle stream 44, along with any isobutene, may be recycled back to the dehydrogenation zone 12 by, for example, being combined with the feed stream 10.
  • the propane stream 48 and the normal paraffin stream 46 may be processed further as is known in the art.
  • the C4 stream 26from the separation column 22(and after the optional water wash27), is passed to a separation zone 50 including a depropanizer column 52.
  • a depropanizer column 52 an overhead stream 54 comprising propane may be removed from a bottoms stream 56 rich in C4 hydrocarbons.
  • the overhead stream 54 may be processed in known methods.
  • the bottoms stream 56 from the depropanizer column 52 may be passed to the hydrogenation zone 28, which may be operated either to fully saturate both olefins and dienes or may be operated to saturate only the dienes and convert 1-butene to 2-butenes, as discussed above.
  • the hydrogenation zone 28 includes a catalyst which comprises a nickel catalyst that is not sensitive to oxygenates, allowing for the process to be practiced without an oxygenate removal zone. Again, however, in some embodiments, an oxygenate removal zone may be included.
  • the hydrogenated effluent 30 from the hydrogenation zone 28 is passed to the separation zone 32 which includes a rerun column 58 to separate the isobutane recycle stream 44 and the normal paraffin stream 46 comprising normal butane. Any excess hydrogen present in stream 30 will also be recycled to the dehydrogenation zone along with the isobutane.
  • the isobutane recycle stream 44 may be recycled back to the dehydrogenation zone 12 from the rerun column 58.
  • the remaining portions of this embodiment may be the same as discussed above, therefore, those portions of the above embodiments are expressly incorporated herein by reference.
  • an oxygenate removal zone 60 is disposed upstream of the hydrogenation zone 28.
  • the oxygenate removal zone 60 may comprise any known technology for removing oxygenates from the C4 stream26.
  • a variety of methods are known to remove such compounds which include water washing, adsorption and extraction processes.
  • Oxygenated compounds and nitrogen compounds can be removed by typical adsorbents for the removal of these contaminants comprised zeolitic molecular sieves.
  • Suitable types of zeolites are faujasites having pore sizes of 10 angstroms.
  • such zeolites include X, Y and L types as described in U.S. Pat. Nos.
  • a particularly preferred type of zeolite is 13X.
  • the use of type 13X sieves for the removal of oxygenate compounds such as dimethyl ethers from the effluent from an etherification process is described in U.S. Pat. No. 4,814,517, the contents of which are hereby incorporated by reference.
  • the catalyst in the hydrogenation zone 28 may comprise a noble metal catalyst, such as palladium or other metals typically sensitive to water.
  • a water was is not depicted, but may be included and disposed between the hydrogenation zone 28 and the separation zone 20.
  • the hydrogenated effluent 30 may be passed from the hydrogenation zone 28 to the separation zone 32 which includes the dividing wall column 34.
  • the dividing wall column 34 will provide the isobutane recycle stream 44, the normal paraffin stream 46 comprising normal butane, and the propane stream 48.
  • the isobutane recycle stream 44 may be passed back to the dehydrogenation zonel2. The remaining portions of these embodiments are similar to the above described embodiments.
  • the isobutane recycle stream may be passed back to the dehydrogenation zone without passing to a deisobutanizer column (to separate out normal butane) and/or an isomerization zone configured to convert normal butanes to isobutane before being passed to the dehydrogenation zone.
  • a deisobutanizer column to separate out normal butane
  • an isomerization zone configured to convert normal butanes to isobutane before being passed to the dehydrogenation zone.
  • an oxygenate removal zone may be eliminated from the system.
  • a first embodiment of the invention is a process for converting hydrocarbons, the process comprising dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene in a reaction zone to provide a reaction effluent; separating a reaction product from a C4 stream, the C4 stream comprising isobutane, n-butane, 1-butene, 2-butene, and oxygenates; hydrogenating a least a portion of the C4 stream in a hydrogenation zone to provide a hydrogenated effluent, the hydrogenation zone receiving at least a portion of theC4 stream including oxygenates; separating an isobutane recycle stream from the hydrogenated effluent; and, recycling the isobutane recycle stream to the dehydrogenation zone.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph further comprising separating the isobutane recycle stream, a normal paraffin stream comprising normal butane, and a propane stream from the hydrogenated effluent.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph wherein the hydrogenated effluent is separated in a separation zone having a dividing wall column.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph wherein the hydrogenation zone is configured to hydrogenated both dienes and olefins in the C4 olefin stream.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph wherein the hydrogenation zone is configured to hydrogenate dienes in the C4 olefin stream.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph wherein the hydrogenation zone includes a nickel based catalyst.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph further comprising separating a propane stream from the C4 stream before hydrogenating the C4 stream.
  • a second embodiment of the invention is a process for converting hydrocarbons, the process comprising dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene with methanol to provide an effluent stream, the effluent stream comprising methyl tert-butyl ether; separating a methyl tert-butyl ether product stream from a C4 stream, the C4 stream comprising 1-butene and 2- butene; hydrogenating at least a portion of the C4 stream in a hydrogenation zone to provide a hydrogenated effluent; separating the hydrogenated effluent into an isobutane recycle stream, a normal paraffin stream comprising normal butane, and a propane stream; and, recycling the isobutane recycle stream to the dehydrogenation zone.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph further comprising removing oxygenates from theC4 stream before hydrogenating at least a portion of the C4 stream in the hydrogenation zone.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph wherein the hydrogenation zone includes a nickel based catalyst.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph further comprising injecting sulfur into the hydrogenation zone to selectively hydrogenated dienes in the C4 stream.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph further comprising selectively isomerizing 1-butene to 2-butene in the hydrogenation zone.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph wherein a conversion ratio of 2-butene to 1-butene is at least 81.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph wherein a conversion ratio of 2-butene to 1-butene is at least 121.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph wherein the hydrogenation zone is configured to hydrogenated both dienes and olefins in the C4 stream.
  • a third embodiment of the invention is a process for converting hydrocarbons, the process comprising dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene in a reaction zone with formaldehyde to provide an effluent stream, the effluent stream comprising isoprene; separating an isoprene product stream from a C4 stream, the C4 stream comprising 1-butene and 2-butene; separating a propane stream from the C4 stream to provide a depropanized C4 stream, the depropanized C4 olefin stream including oxygenates; hydrogenating the depropanized C4 olefin stream in a hydrogenation zone to provide a hydrogenated effluent; separating the hydrogenated effluent into at least an isobutane recycle stream; and, recycling the isobutane recycle stream to the dehydrogenation zone.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the third embodiment in this paragraph wherein the hydrogenation zone includes a nickel based catalyst.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the third embodiment in this paragraph further comprising injecting sulfur into the hydrogenation zone to selectively hydrogenated dienes in the C4 stream.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the third embodiment in this paragraph further comprising selectively isomerizing 1-butene to 2-butene in the hydrogenation zone.
  • An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the third embodiment in this paragraph wherein the hydrogenation zone is configured to hydrogenate both dienes and olefins in the C4 stream.

Landscapes

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

Abstract

Processes for providing an isobutane recycle stream to be recycled to a dehydrogenation zone. In some embodiments a dividing wall column is used to separate a hydrogenation effluent. The hydrogenation effluent may include olefins, or it may be fully saturated. A hydrogenation zone may include a nickel based catalyst and may fully saturate dienes and olefins, or only hydrogenate dienes.

Description

PROCESSES FOR SEPARATING AN ISOBUTANE
RECYCLE STREAM FROM A MIXED C4 STREAM
STATEMENT OF PRIORITY
[0001] This application claims priority to U.S. Application No. 14/725681 which was filed May 29, 2015, the contents of which are hereby incorporated by reference in its entirety.
FIELD OF THE INVENTION
[0002] This invention relates generally to processes for separating an isobutane recycle stream from a mixed C4 hydrocarbons stream, and more particularly to processes in which the isobutane is recycled back to a dehydrogenation zone.
BACKGROUND OF THE INVENTION
[0003] Isobutene can be used to produce a number of desired chemicals. For example, etherification processes make high octane compounds which are used as blending components in lead-free gasoline. These etherification processes will usually produce ethers by combination of an isoolefin with a monohydroxyl alcohol such as methanol or ethanol. The etherification process can also be used as a means to produce pure isoolefins by cracking of the product ether. For instance, pure isobutylene can be obtained for the manufacture of polyisobutylenes and tert-butyl -phenol by cracking methyl tertiary butyl ether (MTBE). The production of MTBE has emerged as a predominant etherification process which uses C4 isoolefins as the feedstock. Apart from the production of MTBE, isobutene can also be used to form other chemicals, including isoprene and isooctane, to name a few. [0004] Typically, a normal butane feed is selectively isomerized to produce isobutane which can be dehydrogenated to form isobutene. However, many dehydrogenation catalysts are particularly sensitive to normal butene. Normal butene can further dehydrogenate forming butadiene which is highly prone to coking, thus normal butenes must be separated from any stream entering the dehydrogenation zone. [0005] Accordingly, most complexes include a fractionation column, such as a deisobutanizer column having 120 or more distillation trays that is require to separate normal butane and butenes from isobutane. With respect to providing a recycle isobutane feed, the effluent stream produced by the dehydrogenation zone typically contains a low concentration of normal C4 hydrocarbons, due to isomerization activity in the dehydrogenation zone. Therefore, the unconverted C4 hydrocarbons are typically returned to the deisobutanizer column to separate out the normal C4 hydrocarbons.
[0006] Furthermore, olefins and dienes in the unconverted stream are typically fully statured to remove any olefins returning to the deisobutanizer column - since normal butene can be harmful for the dehydrogenation zone and olefins can be harmful for the isomerization zone. Typically the saturation zone also requires an oxygenate removal zone to remove any oxygenates from entering the saturation zone to protect the catalyst in the saturation zone. [0007] While these processes are presumable effective for their intended purposes, it is believed that modified process flow schemes may provide for more efficient and economical separation of the isobutane recycle stream.
[0008] Moreover, some complexes are provided with a high purity isobutane feed stock, and thus, do not have an isomerization section and a fractionation column. Therefore, the unconverted iC4 hydrocarbons do not have the option to return to the deisobutanizer column. Accordingly, the unconverted iC4 hydrocarbons are typically treated in a raffinate column. However, a raffinate column having 60 distillation trays typically does not have the ability to separate normal hydrocarbons from iso hydrocarbons as well as a deisobutanizer column can.
[0009] Therefore, there remains a need for effective and efficient processes for providing a recycle isobutane feed that does not include normal butane and butenes. It is believed to be desirable in some aspects to eliminate the saturation zone and the required oxygenate removal zone. It is also believed to be desirable in some aspects to optimize fractionation to reduce cost. SUMMARY OF THE INVENTION
[00010] One or more processes have been invented in which an isobutane recycle stream may be provided. In some aspects, the processes allow for the elimination of the oxygenate removal zone from the process. In various aspects, the processes allow for a reduction of the normal hydrocarbons from the iC4 recycle stream with a rerun column (not a deisobutanizer column). In one or more aspects, the processes allow for substitution of the saturation zone catalyst with a nickel based catalyst. Finally in some aspects, the processes allow for consolidation of the depropanizer column with the rerun column into a single column.
[00011] In a first embodiment of the invention, the present invention may be characterized broadly as providing a process for converting hydrocarbons by: dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene in a reaction zone to provide a reaction effluent; separating a reaction product from a C4 stream, the C4 stream comprising isobutane, n-butane, 1-butene, 2- butene, and oxygenates; hydrogenating a least a portion of the C4 stream in a hydrogenation zone to provide a hydrogenated effluent, the hydrogenation zone receiving at least a portion of the C4 stream including oxygenates; separating an isobutane recycle stream from the hydrogenated effluent; and, recycling the isobutane recycle stream to the dehydrogenation zone.
[00012] In one or more embodiments of the present invention, the process further comprises separating the isobutane recycle stream, a normal paraffin stream comprising normal butane, and a propane stream from the hydrogenated effluent. It is contemplated that the hydrogenated effluent stream is separated in a separation zone having a dividing wall column. It is also contemplated that the hydrogenation zone is configured to hydrogenated both dienes and olefins in the C4 olefin stream. It is further contemplated that the hydrogenation zone is configured to hydrogenate dienes in the C4 olefin stream. [00013] In at least one embodiment of the present invention, the hydrogenation zone includes a nickel based catalyst. [00014] In various embodiments of the present invention, the process further comprises separating a propane stream from the C4 stream before hydrogenating the C4 stream.
[00015] In a second embodiment of the present invention, the present invention may be generally characterized as providing a process for converting hydrocarbons by: dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene with methanol to provide an effluent stream, the effluent stream comprising methyl tert-butyl ether; separating a methyl tert-butyl ether product stream from a C4 stream, the C4 stream comprising 1-butene and 2-butene; hydrogenating at least a portion of the C4 stream in a hydrogenation zone to provide a hydrogenated effluent; separating the hydrogenated effluent into an isobutane recycle stream, a normal paraffin stream comprising normal butane, and a propane stream; and, recycling the isobutane recycle stream to the dehydrogenation zone.
[00016] In at least one embodiment of the present invention, the process further comprises removing oxygenates from the C4 stream before hydrogenating at least a portion of the C4 stream in the hydrogenation zone.
[00017] In some embodiments of the present invention, the hydrogenation zone includes a nickel based catalyst. It is contemplated that the process further comprises injecting sulfur into the hydrogenation zone to selectively hydrogenated dienes in the C4 stream. It is contemplated that the process also comprises selectively isomerizing 1-butene to 2-butene in the hydrogenation zone. It is further contemplated that a conversion ratio of 2- butene to 1-butene is at least 8: 1. It is also contemplated that a conversion ratio of 2-butene to 1-butene is at least 12: 1. It is even further contemplated that the hydrogenation zone is configured to hydrogenate both dienes and olefins in the C4 stream. [00018] In a third embodiment of the present invention, the present invention may be broadly characterized as providing a process for converting hydrocarbons by: dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene in a reaction zone with formaldehyde to provide an effluent stream, the effluent stream comprising isoprene; separating an isoprene product stream from a C4 stream, the C4 stream comprising 1-butene and 2-butene; separating a propane stream from the C4 stream to provide a depropanized C4 stream, the depropanized C4 olefin stream including oxygenates; hydrogenating the depropanized C4 olefin stream in a hydrogenation zone to provide a hydrogenated effluent; separating the hydrogenated effluent into at least an isobutane recycle stream; and, recycling the isobutane recycle stream to the dehydrogenation zone.
[00019] In at least one embodiment of the present invention, the hydrogenation zone includes a nickel based catalyst. It is contemplated that the process includes injecting sulfur into the hydrogenation zone to selectively hydrogenated dienes in the C4 stream. It is also contemplated that the process includes selectively isomerizing 1-butene to 2-butene in the hydrogenation zone. It is further contemplated that the hydrogenation zone is configured to hydrogenate both dienes and olefins in the C4 stream.
[00020] Additional aspects, embodiments, and details of the invention, all of which may be combinable in any manner, are set forth in the following detailed description of the invention.
DETAILED DESCRIPTION OF THE DRAWINGS
[00021] One or more exemplary embodiments of the present invention will be described below in conjunction with the following drawing figures, in which:
[00022] Figure 1 shows a process flow scheme of one or more embodiments of the present invention;
[00023] Figure 2 shows another process flow scheme of various embodiments of the present invention; and, [00024] Figure 3 shows yet another process flow scheme of additional embodiments of the present invention.
DETAILED DESCRIPTION OF THE INVENTION
[00025] As mentioned above, various processes have been invented which allow for an economical process to provide an isobutane recycle stream. The processes may be incorporated into processes which produce isobutene and include an isomerization zone and an deisobutanizer column or into processes which receive a relatively pure isobutene stream and which do not have an isomerization zone and an deisobutanizer column. As mentioned above, some of the processes according to the present invention, utilize a nickel based catalyst in a hydrogenation zone and do not require an oxygenate removal zone from the process. Some processes according to the present invention, allow for a reduction of the normal hydrocarbons from the iC4 recycle stream with a rerun column (not a deisobutanizer column). Furthermore, some processes according to the present invention consolidate a depropanizer column with a rerun column. These processes allow for an efficient and economical separation of an isobutane recycle stream.
[00026] With these general principles in mind, one or more embodiments of the present invention will be described with the understanding that the following description is not intended to be limiting.
[00027] As shown in FIGS. 1 to 3, a feed stream 10 comprising mostly isobutane is passed to a dehydrogenation zone 12. In the dehydrogenation zone 12, the isobutane from the feed stream 10 will be selectively dehydrogenated to form isobutene. Although not depicted as such, the dehydrogenation zone 12 will typically contain a reaction zone and associated auxiliary process equipment such as condensers and a vapor-liquid separator which receives the partially condensed reactor effluent stream. The dehydrogenation zone preferably contains at least one fractionation column. This column is designed and operated to eliminate all lighter boiling components from a net effluent stream from the dehydrogenation zone 12. These lighter boiling compounds may include some and possibly all of the propane, propylene contained in the reactor effluent stream. The propylene may result from the dehydrogenation of a part of propane present in the feed stream to the process or from the cracking of feed butanes. A hydrogen-rich gas stream is separated from the liquid condensed from the reactor effluent. A portion of this gas will normally be recycled and the remainder will be drawn off as a net hydrogen product gas stream. This gas stream will contain a mixture of the various olefins produced in the dehydrogenation zone 12 at a concentration set by the separation conditions.
[00028] The dehydrogenation zone 12 preferably comprises at least one radial flow reactor in which the catalyst gradually moves downward by gravity flow to allow the continuous replacement of used catalyst with catalyst having a higher activity. It is preferred that the reactants make at least two passes through a catalyst bed within the reaction zone. A detailed description of moving bed reactors of this type may be obtained by reference to U.S. Pat. Nos. 3,647,680; 3,652,231; 3,706,536; 3,785,963; 3,825, 116; 3,839,196; 3,839, 197; 3,854,887 and 3,856,662.
[00029] The particular dehydrogenation conditions employed within the dehydrogenation zone 12 may vary depending on such factors as the catalyst activity, feed carbon number and the desired conversion. The dehydrogenation zone 12 conditions normally employed for butane dehydrogenation include a temperature of from about 500° to 700° C, a pressure of from 0.5 to 10 atmospheres absolute and a liquid hourly space velocity of 1 to 20. The preferred operating temperature will be within the range of from 550° to 660°C, and the preferred operating pressure is 0.5 to 2 atmospheres absolute.
[00030] A preferred butane dehydrogenation catalyst is comprised of a platinum group component, a tin component and an alkali metal component with a porous inorganic carrier material. Other catalytic compositions may be used within the dehydrogenation zone 12 if desired. U.S. Pat. No. 4,816,607, the entirety of which is incorporated herein by reference, discloses various characteristics of suitable catalysts. [00031] An isobutene rich stream 14 (meaning that the effluent stream from the dehydrogenation zone 12 has a higher amount of isobutene compared to the feed stream 10 to the dehydrogenation zone 12) may be passed from the dehydrogenation zone 12 to a reaction zone 16.
[00032] In the reaction zone 16, the isobutene will be converted into a product in a reaction effluent stream 18. For example, in the reaction zone 16, the isobutene may be subjected to an etherification process and, in the presence of methanol, produce a methyl tert- butyl ether product. Such reaction zones are known in the art. See, U.S. Pat. No. 4,816,607 to Vora, incorporated herein by reference, which discloses a process for the production of methyl tertiary butyl ether and other ethers from precursor light paraffins, olefins and alcohols.
[00033] Alternatively, in the reaction zone 16the isobutene may be subjected to a dimerization process to produce an isooctane product. Such reaction zones are known in the art. See, U.S. Pat. Pub. No.2015/0045599, incorporated herein by reference.
[00034] Additionally, in the reaction zonel6, the isobutene may be reacted with formaldehyde to produce an isoprene product. These reaction zones are likewise known in the art as described in U.S. Pat. No. 3,437,711, U.S. Pat. Pub. No. 2014/0255263, as well as described in "New Synthesis of Isoprene based on Formaldehyde and isobutylene by David W. Hall et al in Ind. Eng. Chem. Prod. Res. Develop., Vol 9 No. 2, 1970" incorporated herein by reference. The particular reaction zone 16 is not necessary for an understanding or practicing of the present invention.
[00035] Returning to FIGS. 1 to 3, from the reaction zone 16, the reaction effluent stream 18 comprising the reaction product of the isobutene reaction, as well as other compounds, including, isobutane, n-butane, 1-butene, 2-butene, and oxygenates, is passed to a separation zone 20, preferably including a separation column 22 configured to separate a product stream 24 being rich in the reaction product and a C4 stream 26. The C4 stream26 may be passed through a water wash 27 to remove some of the oxygenates, like aldehydes, ethers, and alcohols. [00036] With reference to FIG. 1, in some embodiments of the present invention, the C4 stream 26 is passed to a hydrogenation zone 28 which is operated to hydrogenated at least a portion of the C4 stream 26 to provide a hydrogenated effluent 30. The hydrogenation zone 28, in this embodiment preferably, includes a nickel based catalyst which is not as sensitive to water and oxygenates, and thus, allows the process to be practiced without the need for an oxygenate removal zone. However, as discussed below, an oxygenate removal zone may be included in some embodiments. The conditions for the hydrogenation zone 28 are known and a broad range of hydrogenation conditions includes an LHSV (liquid hourly space velocity based at 15 °C liquid) between 0.5 and 20, a pressure between 5 and 500 psig, and a temperature of 50 to 500 °C.
[00037] In some embodiments of the present invention, the catalyst in the hydrogenation zone 28 may be sulfided, and the hydrogenation zone 28 may be operated as a selective hydrogenation zone in which the dienes are selectively hydrogenated, but olefins are not hydrogenated. In such an embodiment, the hydrogenation zone 28 will also act to isomerize 1-butene in the C4 stream 26into 2-buntenes. A ratio of 2-butenes to 1 butene in the hydrogenation zone 28 may be from 8: 1 to 12: 1. The conversion of some of the 1-butene to 2-butene will allow for easier separation (i.e., less energy and/or shorter separation column) of the isobutane (and possibly isobutene) from the 1-butene, which is discussed below.
[00038] In some embodiments, the catalyst in the hydrogenation zone 28 may not be sulfide. In such cases, the hydrogenation zone 28 may be operated to fully hydrogenate all of the olefins and dienes in the C4 stream 26.
[00039] In either mode of operation, whether the hydrogenation zone 28 is operated and configured to selectively hydrogenate or to fully saturate, the hydrogenated effluent 30 may be passed to a separation zone 32 having a dividing wall column 34. The dividing wall column 34 comprises a fractionation column in which an upper portion 36 and a lower portion 38 of the column 34 are open, while a middle portion 40 of the column is separated into two portions 40a, 40b by a vertical wall or baffle 42. Such dividing wall column 34 are known in the art.
[00040] The dividing wall column 34 will separate the hydrogenated effluent 30 into an isobutane recycle stream 44, a normal paraffin stream 46 comprising normal butane, and a propane stream 48 comprising propane and lighter compounds, such as hydrogen. If the hydrogenation zone 28 is operated to only hydrogenate the dienes in the C4 stream 24, the isobutane recycle stream 44 may also include a small amount of isobutene— which is not harmful to the catalyst in the dehydrogenation zone 12. The isobutane recycle stream 44, along with any isobutene, may be recycled back to the dehydrogenation zone 12 by, for example, being combined with the feed stream 10. The propane stream 48 and the normal paraffin stream 46 may be processed further as is known in the art. The particular processing of these streams is not necessary for the understanding of the present invention. [00041] Turning to FIG. 2, in this embodiment of the present invention, the C4 stream 26from the separation column 22(and after the optional water wash27), is passed to a separation zone 50 including a depropanizer column 52. In the depropanizer column 52, an overhead stream 54 comprising propane may be removed from a bottoms stream 56 rich in C4 hydrocarbons. The overhead stream 54 may be processed in known methods.
[00042] The bottoms stream 56 from the depropanizer column 52 may be passed to the hydrogenation zone 28, which may be operated either to fully saturate both olefins and dienes or may be operated to saturate only the dienes and convert 1-butene to 2-butenes, as discussed above. Preferably, as also discussed above, the hydrogenation zone 28 includes a catalyst which comprises a nickel catalyst that is not sensitive to oxygenates, allowing for the process to be practiced without an oxygenate removal zone. Again, however, in some embodiments, an oxygenate removal zone may be included.
[00043] The hydrogenated effluent 30 from the hydrogenation zone 28 is passed to the separation zone 32 which includes a rerun column 58 to separate the isobutane recycle stream 44 and the normal paraffin stream 46 comprising normal butane. Any excess hydrogen present in stream 30 will also be recycled to the dehydrogenation zone along with the isobutane.
[00044] The isobutane recycle stream 44 may be recycled back to the dehydrogenation zone 12 from the rerun column 58. The remaining portions of this embodiment may be the same as discussed above, therefore, those portions of the above embodiments are expressly incorporated herein by reference.
[00045] Turning to FIG. 3, in various embodiments of the present invention, an oxygenate removal zone 60 is disposed upstream of the hydrogenation zone 28. The oxygenate removal zone 60 may comprise any known technology for removing oxygenates from the C4 stream26. A variety of methods are known to remove such compounds which include water washing, adsorption and extraction processes. Oxygenated compounds and nitrogen compounds can be removed by typical adsorbents for the removal of these contaminants comprised zeolitic molecular sieves. Suitable types of zeolites are faujasites having pore sizes of 10 angstroms. In particular, such zeolites include X, Y and L types as described in U.S. Pat. Nos. 3,216,789; 2,882,244 and 3,130,007. A particularly preferred type of zeolite is 13X. The use of type 13X sieves for the removal of oxygenate compounds such as dimethyl ethers from the effluent from an etherification process is described in U.S. Pat. No. 4,814,517, the contents of which are hereby incorporated by reference. With the inclusion of the oxygenate removal zone 60, the catalyst in the hydrogenation zone 28 may comprise a noble metal catalyst, such as palladium or other metals typically sensitive to water. Typically, such hydrogenation zones 28 will fully saturate the olefins and dienes in the C4 stream 26. Additionally, in FIG. 3, a water was is not depicted, but may be included and disposed between the hydrogenation zone 28 and the separation zone 20.
[00046] As shown in FIG. 3, the hydrogenated effluent 30 may be passed from the hydrogenation zone 28 to the separation zone 32 which includes the dividing wall column 34. As with the discussion of FIG. 1, above, the dividing wall column 34 will provide the isobutane recycle stream 44, the normal paraffin stream 46 comprising normal butane, and the propane stream 48. As in the previously discussed embodiments, the isobutane recycle stream 44 may be passed back to the dehydrogenation zonel2. The remaining portions of these embodiments are similar to the above described embodiments.
[00047] In any of the above described embodiments, the isobutane recycle stream may be passed back to the dehydrogenation zone without passing to a deisobutanizer column (to separate out normal butane) and/or an isomerization zone configured to convert normal butanes to isobutane before being passed to the dehydrogenation zone. As mentioned above, some complexes may already receive a high purity isobutane stream and thus may not have such processing capabilities. Furthermore, in some embodiments in which a catalyst that is not sensitive to oxygenates is utilized in the hydrogenation zone, an oxygenate removal zone may be eliminated from the system. Additionally, operating the hydrogenation zone as a selective hydrogenation will allow for isobutene to be recycled, and may allow for more efficient separation of isobutane (and isobutene) form the normal paraffins and olefins. Finally, the use of the dividing wall column may lower capital expenditures and require less space. Thus the various processes provide for efficient and economical processes to provide an isobutane recycle stream.
[00048] It should be appreciated and understood by those of ordinary skill in the art that various other components such as valves, pumps, filters, coolers, etc. were not shown in the drawings as it is believed that the specifics of same are well within the knowledge of those of ordinary skill in the art and a description of same is not necessary for practicing or understanding the embodiments of the present invention.
SPECIFIC EMBODFMENTS [00049] While the following is described in conjunction with specific embodiments, it will be understood that this description is intended to illustrate and not limit the scope of the preceding description and the appended claims.
[00050] A first embodiment of the invention is a process for converting hydrocarbons, the process comprising dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene in a reaction zone to provide a reaction effluent; separating a reaction product from a C4 stream, the C4 stream comprising isobutane, n-butane, 1-butene, 2-butene, and oxygenates; hydrogenating a least a portion of the C4 stream in a hydrogenation zone to provide a hydrogenated effluent, the hydrogenation zone receiving at least a portion of theC4 stream including oxygenates; separating an isobutane recycle stream from the hydrogenated effluent; and, recycling the isobutane recycle stream to the dehydrogenation zone. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph further comprising separating the isobutane recycle stream, a normal paraffin stream comprising normal butane, and a propane stream from the hydrogenated effluent. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph wherein the hydrogenated effluent is separated in a separation zone having a dividing wall column. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph wherein the hydrogenation zone is configured to hydrogenated both dienes and olefins in the C4 olefin stream. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph wherein the hydrogenation zone is configured to hydrogenate dienes in the C4 olefin stream. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph wherein the hydrogenation zone includes a nickel based catalyst. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the first embodiment in this paragraph further comprising separating a propane stream from the C4 stream before hydrogenating the C4 stream.
[00051] A second embodiment of the invention is a process for converting hydrocarbons, the process comprising dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene with methanol to provide an effluent stream, the effluent stream comprising methyl tert-butyl ether; separating a methyl tert-butyl ether product stream from a C4 stream, the C4 stream comprising 1-butene and 2- butene; hydrogenating at least a portion of the C4 stream in a hydrogenation zone to provide a hydrogenated effluent; separating the hydrogenated effluent into an isobutane recycle stream, a normal paraffin stream comprising normal butane, and a propane stream; and, recycling the isobutane recycle stream to the dehydrogenation zone. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph further comprising removing oxygenates from theC4 stream before hydrogenating at least a portion of the C4 stream in the hydrogenation zone. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph wherein the hydrogenation zone includes a nickel based catalyst. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph further comprising injecting sulfur into the hydrogenation zone to selectively hydrogenated dienes in the C4 stream. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph further comprising selectively isomerizing 1-butene to 2-butene in the hydrogenation zone. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph wherein a conversion ratio of 2-butene to 1-butene is at least 81. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph wherein a conversion ratio of 2-butene to 1-butene is at least 121. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the second embodiment in this paragraph wherein the hydrogenation zone is configured to hydrogenated both dienes and olefins in the C4 stream.
[00052] A third embodiment of the invention is a process for converting hydrocarbons, the process comprising dehydrogenating isobutane to provide an isobutene rich stream in a dehydrogenation zone; reacting isobutene in a reaction zone with formaldehyde to provide an effluent stream, the effluent stream comprising isoprene; separating an isoprene product stream from a C4 stream, the C4 stream comprising 1-butene and 2-butene; separating a propane stream from the C4 stream to provide a depropanized C4 stream, the depropanized C4 olefin stream including oxygenates; hydrogenating the depropanized C4 olefin stream in a hydrogenation zone to provide a hydrogenated effluent; separating the hydrogenated effluent into at least an isobutane recycle stream; and, recycling the isobutane recycle stream to the dehydrogenation zone. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the third embodiment in this paragraph wherein the hydrogenation zone includes a nickel based catalyst. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the third embodiment in this paragraph further comprising injecting sulfur into the hydrogenation zone to selectively hydrogenated dienes in the C4 stream. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the third embodiment in this paragraph further comprising selectively isomerizing 1-butene to 2-butene in the hydrogenation zone. An embodiment of the invention is one, any or all of prior embodiments in this paragraph up through the third embodiment in this paragraph wherein the hydrogenation zone is configured to hydrogenate both dienes and olefins in the C4 stream.
[00053] Without further elaboration, it is believed that using the preceding description that one skilled in the art can utilize the present invention to its fullest extent and easily ascertain the essential characteristics of this invention, without departing from the spirit and scope thereof, to make various changes and modifications of the invention and to adapt it to various usages and conditions. The preceding preferred specific embodiments are, therefore, to be construed as merely illustrative, and not limiting the remainder of the disclosure in any way whatsoever, and that it is intended to cover various modifications and equivalent arrangements included within the scope of the appended claims.
[00054] In the foregoing, all temperatures are set forth in degrees Celsius and, all parts and percentages are by weight, unless otherwise indicated.

Claims

CLAIMS What is claimed is:
1. A process for converting hydrocarbons, the process comprising:
dehydrogenating isobutane (10) to provide an isobutene rich stream (14) in a dehydrogenation zone (12);
reacting isobutene in a reaction zone (16) to provide a reaction effluent (18);
separating a reaction product (24) from a C4 stream (26), the C4 stream (26) comprising isobutane, n-butane, 1-butene, 2-butene, and oxygenates;
hydrogenating a least a portion of the C4 stream (26) in a hydrogenation zone (28) to provide a hydrogenated effluent (30), the hydrogenation zone (28) receiving at least a portion of the C4 stream (26) including oxygenates;
separating an isobutane recycle stream (44) from the hydrogenated effluent (30); and, recycling the isobutane recycle stream (44) to the dehydrogenation zone (12).
2. The process of claim 1 further comprising:
separating the isobutane recycle stream (44), a normal paraffin stream (46) comprising normal butane, and a propane stream (48) from the hydrogenated effluent (30).
3. The process of claim 2 wherein the hydrogenated effluent (30) is separated in a separation zone (32) having a dividing wall column (34).
4. The process of any one of claims 1 to 3 wherein the hydrogenation zone (28) is configured to hydrogenate both dienes and olefins in the C4 olefin stream (26).
5. The process of any one of claims 1 to 3 wherein the hydrogenation zone (28) is configured to hydrogenate dienes in the C4 olefin stream (26).
6. The process of claim 1 wherein the hydrogenation zone (28) includes a nickel based catalyst.
7. The process of claim 1 further comprising:
separating a propane stream (54) from the C4 stream (26) before hydrogenating the C4 stream (26).
8. The process of any one of claims 1 to 3 wherein reacting the isobutene in the reaction zone (16) comprises:
reacting isobutene with methanol to provide the effluent stream (18), the effluent stream (18) comprising methyl tert-butyl ether, and wherein the product stream (24) comprises a methyl tert-butyl ether product stream.
9. The process of any one of claims 1 to 3 further comprising:
selectively isomerizing 1-butene to 2-butene in the hydrogenation zone (28)
10. The process of any one of claims 1 to 3 wherein reacting the isobutene in the reaction zone (16) comprises:
reacting isobutene with formaldehyde to provide the effluent stream (18), the effluent stream (18) comprising isoprene, and wherein the product stream (24) comprises an isoprene product stream.
PCT/US2016/032018 2015-05-29 2016-05-12 Processes for separating an isobutane recycle stream from a mixed c4 stream Ceased WO2016195955A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US14/725,681 2015-05-29
US14/725,681 US9452956B1 (en) 2015-05-29 2015-05-29 Processes for separating an isobutane recycle stream from a mixed C4 stream

Publications (1)

Publication Number Publication Date
WO2016195955A1 true WO2016195955A1 (en) 2016-12-08

Family

ID=56939597

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2016/032018 Ceased WO2016195955A1 (en) 2015-05-29 2016-05-12 Processes for separating an isobutane recycle stream from a mixed c4 stream

Country Status (2)

Country Link
US (1) US9452956B1 (en)
WO (1) WO2016195955A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2020144576A1 (en) * 2019-01-07 2020-07-16 Sabic Global Technologies B.V. Process intensification of mtbe synthesis unit

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR102387476B1 (en) 2017-11-17 2022-04-14 주식회사 엘지화학 Process for Purification of Raffinate-2 streams
CN119546564A (en) * 2022-07-09 2025-02-28 沙特基础工业公司(Sabic)全球技术有限公司 System and process for producing methyl tert-butyl ether and maleic anhydride from C4 hydrocarbons

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4329516A (en) * 1979-05-28 1982-05-11 Davy International Aktiengesellschaft Process for the production of methyl t-butyl ether
US5912191A (en) * 1996-07-24 1999-06-15 Huels Aktiengesellschaft Process for preparing alkyl tert-butyl ethers and di-n-butene from field butanes
WO2014204644A1 (en) * 2013-06-20 2014-12-24 Uop Llc Improved catalytic conversion processes using ionic liquids

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4816607A (en) 1987-03-02 1989-03-28 Uop Inc. Integrated etherification process with recycle post treatment
US5338889A (en) * 1992-12-29 1994-08-16 Uop Alkane rejection in C4 etherification and isomerization process
US6218589B1 (en) 1997-05-13 2001-04-17 Uop Llc Method for improving the operation of a propane-propylene splitter
IT1319642B1 (en) 2000-11-09 2003-10-23 Snam Progetti PROCEDURE FOR THE PRODUCTION OF HIGH-OCTANIC HYDROCARBONS FROM N-BUTANE / ISOBUTAN BLENDS SUCH AS FIELD BUTANS.
EP2186784A3 (en) 2010-01-27 2010-09-01 Shell Internationale Research Maatschappij B.V. Process for the preparation and recovery of olefins
US8927799B2 (en) 2010-11-01 2015-01-06 Uop Llc Propane dehydrogenation process utilizing fluidized catalyst system

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4329516A (en) * 1979-05-28 1982-05-11 Davy International Aktiengesellschaft Process for the production of methyl t-butyl ether
US5912191A (en) * 1996-07-24 1999-06-15 Huels Aktiengesellschaft Process for preparing alkyl tert-butyl ethers and di-n-butene from field butanes
WO2014204644A1 (en) * 2013-06-20 2014-12-24 Uop Llc Improved catalytic conversion processes using ionic liquids

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2020144576A1 (en) * 2019-01-07 2020-07-16 Sabic Global Technologies B.V. Process intensification of mtbe synthesis unit

Also Published As

Publication number Publication date
US9452956B1 (en) 2016-09-27

Similar Documents

Publication Publication Date Title
JP5435668B2 (en) Metathesis unit pretreatment method with octene formation
CA2178612C (en) Selective hydrogenation of highly unsaturated compounds in hydrocarbon streams
EP0931042B1 (en) Process for concurrent selective hydrogenation of acetylenes and 1,2 butadiene in hydrocarbon streams
US5898091A (en) Process and plant for the conversion of olefinic C4 and C5 cuts to an ether and to propylene
CA2885002C (en) Propylene via metathesis with low or no ethylene
EP3071538B1 (en) Olefin double bond isomerization catalyst with high poison resistance
JPH11322637A (en) Production of olefin
US6872862B2 (en) Propylene production
US8859834B2 (en) Process for the selective hydrogenation of multiply unsaturated hydrocarbons in olefin-containing hydrocarbon mixtures
JPH06279340A (en) Integrated mtbe process
WO2020092774A1 (en) Selective dimerization and etherification of isobutylene via catalytic distillation
US6156947A (en) Process for the production of butene-1 from a mixture of C4 olefins
US9452956B1 (en) Processes for separating an isobutane recycle stream from a mixed C4 stream
US5210327A (en) Etherification with skeletal olefin isomerization
US6495732B1 (en) Olefin isomerization process
EP2872603B1 (en) More energy efficient c5 hydrogenation process
US20040192994A1 (en) Propylene production
US12583805B2 (en) Co-production of high purity isobutylene and high purity isooctene
EP3655384B1 (en) Use of mtbe raffinate in the production of propylene
EP3847144B1 (en) Method for the production of mtbe and 1-butene from a c4 feed stream
EP4387945A1 (en) Metathesis of c4/c5 to propylene and 1-hexene
US20140296588A1 (en) Production of butadiene and mixed ethers from an oxygenate to olefin unit

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: 16803954

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 16803954

Country of ref document: EP

Kind code of ref document: A1