INTEGRATED STABILIZER IN DEISOBUTANIZER FOR ISOMERIZATION OF HYDROCARBONS AND PRODUCT SEPARATION
20210323897 · 2021-10-21
Assignee
Inventors
- Mikhail Andreevich Suprunov (Saint-Petersburg, RU)
- Oleg Valerievich Giiazov (Saint-Petersburg, RU)
- Dmitry Nikolaevich Shalupkin (Saint-Petersburg, RU)
- Andrei Aleksandrovich Karmanovskii (Saint-Petersburg, RU)
- Nikolai Vladimirovich Litvinenko (Saint-Petersburg, RU)
- Sergey Yurievich Devyatkov (Saint-Petersburg, RU)
Cpc classification
B01D3/009
PERFORMING OPERATIONS; TRANSPORTING
C10G7/02
CHEMISTRY; METALLURGY
Y02P20/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C10G45/58
CHEMISTRY; METALLURGY
C07C5/2702
CHEMISTRY; METALLURGY
C07C7/005
CHEMISTRY; METALLURGY
C07C5/2702
CHEMISTRY; METALLURGY
International classification
B01D3/00
PERFORMING OPERATIONS; TRANSPORTING
B01D3/32
PERFORMING OPERATIONS; TRANSPORTING
B01J19/24
PERFORMING OPERATIONS; TRANSPORTING
C07C5/27
CHEMISTRY; METALLURGY
Abstract
An isomerization method consists of a deisobutanizer column receives feed comprising n-butane. The deisobutanizer column delivers its bottoms a portion to a reboiler and another portion along with hydrogen is routed to a isomerization reactor and the reactor effluent is returned to the column. A stabilizer which is integrated with the column, an overhead stream used as a reflux and bottoms containing an iso-butane-rich stream that is the iso-butane product stream.
The column overhead effluent is routed to separator, which splits the hydrocarbons and effluent, where the hydrocarbons are routed to deisobutanizer column and effluent recycled to stabilizer, where the stabilizer separates the reactor effluent into product streams contains an iso-butane product stream, a n-butane product stream, and a lighter hydrocarbon product stream.
Claims
1. An isomerization n-paraffins comprising: a deisobutanizer column receives feed comprising n-paraffins containing feedstock, it delivers a portion to a reboiler; an isomerization reactor receives another portion from deisobutanizer column bottom or from a tray located above the bottom after mixing with hydrogen and the reactor effluent is returned to the column; a stabilizer which is integrated with the column, an overhead stream used as a reflux and bottoms containing an isomerirate rich stream that is isomerirate product stream; a separator which receives the column overhead stream, which splits the hydrocarbons into at least two streams, wherein the first stream is routed to deisobutanizer column as its reflux, and the rest streams are routed to the stabilizer; where the stabilizer separates the reactor effluent into product streams comprising: an isomerate product stream, and a lighter hydrocarbon product stream.
2. The isomerization n-paraffins of claim 1 where at least a portion of the isomerate product stream is recycled to the stabilizer in a recycle stream.
3. The isomerization n-paraffins of claim 1 where the stabilizer separates the isomerate effluent into branched C4+ hydrocarbons, and lighter hydrocarbon product stream along with hydrogen.
4. The isomerization n-paraffins of claim 1 further comprising an intermediate reboiler in a bottom section of the reboiler, and where the isomerate product stream is a heating medium in the intermediate reboiler.
5. A method for isomerization of n-butane comprises: n-butane-rich fraction is a feed to the deisobutanizer column containing stabilizer; a reactor effluent is a feed to a deisobutanizer column containing stabilizer; the deisobutanizer column delivers its bottoms a portion to a reboiler and another portion after mixing with hydrogen is routed to an isomerization reactor and the reactor effluent is returned to the stabilizer; the stabilizer integrated with column of the deisobutanizer column; the stabilizer has an overhead light hydrocarbons that is C1-C3 hydrocarbons and hydrogen; the column has an overhead product withdrawn from the column and/or stabilizer that is isomerate stream that is the iso-butane product stream;
6. The method of claim 5 where the overhead iso-butane-rich stream is a recycle stream to the deisobutanizer column.
7. The method of claim 5 further comprising an intermediate reboiler in a bottom section of the deisobutanizer.
8. An isomerization method for n-paraffin's comprising: a catalytic distillation column receives feed comprising n-paraffins, which catalytic distillation column delivers its bottoms a portion to a reboiler and another portion is a heavy isomerate; a stabilizer which is integrated with the column, an overhead stream used as a reflux after separating the lighter hydrocarbons through low pressure separator and bottoms of stabilizer containing an isomerate rich product stream, a portion is recycled to stabilizer after reboiling through reboiler; the column overhead effluent is routed to high pressure separator, which splits the hydrocarbons and effluent hydrogen, where the hydrocarbons are routed to stabilizer in the column, which is integrated with top of the deisobutanizer column; the column has a side-draw product that is isomerate; where the stabilizer separates the reactor effluent into product streams comprising: an isomerate product stream, and a light hydrocarbon stream.
9. The isomerization method of claim 8 where the feed is C5-C6, C6-C7, C5-C7 fractions.
10. The isomerization method of claim 8 where the lighter hydrocarbon product stream containing C1-C3 hydrocarbons.
11. The isomerization method of claim 8 where the isomerate product stream is branched C4+ hydrocarbons.
12. The isomerization method of claim 8 further comprising an intermediate reboiler in a bottom section of the reboiler, and where the isomerate product stream is a heating medium in the intermediate reboiler.
13. The isomerization method of claim 8 where the stabilizer at or near the top or near the bottom of the column.
14. The isomerization method of claim 8 where the isomerate-rich stream is taken from a point selected from the side draw of the catalytic distillation column and or a bottom section of the stabilizer.
15. The isomerization method of claim 8 where the side draw that is isomerate-rich stream is selected from the group consisting of vapor, liquid, or a combination thereof.
16. The isomerization method of claim 8 where the isomerate-rich stream is a branched C4+ hydrocarbons.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007]
[0008]
[0009]
DETAILED DESCRIPTION
[0010] An isomerization system consists of a deisobutanizer column receives feed comprising n-butane. The deisobutanizer column delivers its bottoms a portion to a reboiler and another portion along with hydrogen is routed to an isomerization reactor and the reactor effluent is returned to the column. A stabilizer which is integrated with the column, an overhead stream of stabilizer used as a reflux and bottoms containing an iso-butane-rich stream that is the iso-butane product stream.
[0011] Methods and apparatuses for the isomerization of hydrocarbons and fractionation of the product effluent stream. Stabilizer columns have been traditionally used in isomerization of hydrocarbons. The invention could provide an isomerization process having lower capital costs and lower utilities costs due to the integration of the stabilizer section into the rectification or reaction-rectification column. The reduction of reflux demand of the distillation column due to the heat exchange between stabilizer and distillation sections, the reduction of reboiler duty are the effects of the invention. Exemplary embodiments are provided below.
[0012] More specifically as shown in
[0013] Another embodiment of the invention as shown in
[0014] Another embodiment of the invention as shown in
[0015] A catalytic distillation column receives feed, wherein some part of the feed goes down through the catalytic distillation column to a reboiler and leaves the column as heavy isomerate. Light fraction of the feed goes upward through the catalytic distillation column. A stabilizer which is integrated with the column, an overhead stream used as a reflux after separating the lighter hydrocarbons through low pressure separator and bottoms of stabilizer containing an isomerate rich product stream, a portion is recycled to stabilizer after reboil through reboiler. the column overhead effluent is routed to high pressure separator, which splits the hydrocarbons and effluent hydrogen, where the hydrocarbons are routed to stabilizer in the column, which is integrated with top of the catalytic distillation column and effluent hydrogen recycled to column through compressor and dryer. The column has a side-draw product that is isomerate. The isomerate-rich stream is taken from a point selected from the side draw of an catalytic distillation column and or a bottom section of the stabilizer. The side draw isomerate-rich stream is vapor, liquid, or a combination thereof.
[0016] The stabilizer comprises an overhead cooler configured to condense vapors from the column and the stabilizer. A reflux stream from the overhead condenser is fed to a top tray of the stabilizer.
[0017] It will be appreciated that the system and process described herein are not limited to any particular temperature ranges, pressure ranges, flow rates, stream compositions, and the like. It is expected that the system and process, now that it is described, can be modified by one of ordinary skill in the art to be applicable to a variety of reactor effluent compositions and other conditions and parameters as necessary.
[0018] It will also be appreciated that the systems and processes described herein will have a number of technical and commercial advantages. Technical advantages include, but are not necessarily limited to:
[0019] Improvement of fractionation efficiency;
[0020] Reduced utility requirements;
[0021] Reduced overall energy requirements;
[0022] Reduced reflux demand;
[0023] Reduced reboiler duty; and
[0024] Reduced iso-butane loss from the system.
[0025] Commercial advantages include, but are not necessarily limited to:
[0026] 20-30% less capital requirement as compared to the conventional column solutions;
[0027] Improvement in fractionation economics;
[0028] Less plot space (equipment footprint) requirement;
[0029] Advantages for plant upgrading/debottlenecking;
[0030] Overall improvement in the value of products; and
[0031] Alternative use of existing assets to improve overall economics of the plant.
[0032] In the foregoing specification, the invention has been described with reference to specific embodiments thereof. However, the specification is to be regarded in an illustrative rather than a restrictive sense. For example, equipment, columns, stabilizer, processes, reactants, n-paraffins, isoparaffins, products, isomerate, and operating conditions falling within the claimed or disclosed parameters, but not specifically identified or tried in a particular example, are expected to be within the scope of this invention.
[0033] The present invention may be practiced in the absence of an element not disclosed. In addition, the present invention may suitably comprise, consist or consist essentially of the elements disclosed. An isomerization system consists of a deisobutanizer column or catalytic distillation column receives feed comprising n-butane. The deisobutanizer column delivers its bottoms a portion to a reboiler and another portion along with hydrogen is routed to an isomerization reactor and the reactor effluent is returned to the column. A stabilizer which is integrated with the column, an overhead stream of stabilizer used as a reflux, lighter hydrocarbons i.e. C1-C3 hydrocarbons and bottoms containing an iso-butane-rich stream that is the iso-butane product stream.
[0034] The words “comprising” and “comprises” as used throughout the claims, are to be interpreted to mean “including but not limited to” and “includes but not limited to”, respectively.
[0035] As used herein, the word “substantially” shall mean “being largely but not wholly that which is specified.”
[0036] As used herein, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise.
[0037] As used herein, the term “about” in reference to a given parameter is inclusive of the stated value and has the meaning dictated by the context (e.g., it includes the degree of error associated with measurement of the given parameter).
[0038] As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items.