CATEGORY: SEPARATION
PATENT
Solvent
Quality Control In Extraction Processes (Exxonmobil)
Publication number US20130251596 A1
Publication type Application
Application number US 13/900,103
Publication date Sep 26, 2013
Also published as US8327614
Inventors
John Joseph Monson, Arnold Hee-Sur CHOI, Dana Lynn Pilliod
Original Assignee
Exxonmobil Chemical Patents Inc.
Abstract
The
invention concerns the control of solvent systems in processes and apparatus
for the separation of aromatic hydrocarbons from non-aromatic hydrocarbons in
liquid-liquid extraction, extractive distillation, and the combination thereof.
BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention relates to hydrocarbon separation, and more particularly
to liquid-liquid solvent extraction, vapor-liquid solvent extraction (also
known as extractive distillation) and a system adapted for the practice
thereof.
2. Description of the Related Art
Aromatic hydrocarbons, such as benzene, toluene and xylenes (collectively,
“BTX”), serve as important building blocks for a variety of plastics, foams and
fibers. Often these compounds are produced via catalytic reformation of naphtha
through steam cracking of naphtha or gas oils, or other methods where
substantial amounts of non-aromatic compounds are present. When simple distillation
or fractionation is not a cost effective or practical method for separation,
liquid-liquid extraction or vapor-liquid extraction techniques are used. Such
extraction techniques separate a desired substance selectively from a mixture
or remove unwanted impurities from solution, and, in the present context of
aromatic hydrocarbon separation from non-aromatic hydrocarbons, typically use a
solvent which exhibits a higher affinity for the aromatic compounds than the
non-aromatic compounds, thereby selectively extracting the aromatic compounds
from the mixture of aromatics and non-aromatics. The aromatic species of
interest can then be isolated from the solvent by distillation, adsorptive
separation techniques, and the like.
One widely used solvent extraction technique is the Sulfolane™ process
developed by UOP, which is discussed in numerous patents and other literature
too numerous to cite. The process uses a combination of liquid-liquid
extraction and extractive distillation in a single, integrated design, and
employs tetrahydrothiophene-1,1-dioxide (or sulfolane) as a solvent and water
as a co-solvent. One of the problems with this process is that light impurities
have a tendency to buildup in the system, such as in one or more distillation
towers and recycle streams. Without wishing to be bound by theory, this may be
due at least in part to sieve tray fouling or high unit rates, both reducing
disengaging times. These undesired effects result in the incapacity of the
extractor to efficiently remove and recover the aromatic compounds within the
mixed feedstock and may also lead to leaks due to corrosion, the latter of
which may have catastrophic results.
Other solvents conventionally used in liquid-liquid extraction include
oxygen-containing species such as tetraethylene glycol and nitrogen-containing
species such as N-methyl pyrolidine, each having similar issues, as well as
their own unique problems, that lead to decreasing the capacity of the
extraction process.
Typical responses to correcting the incapacity of the extractor include one or
more of moving the recycle location, adding more stages of sieved trays,
reducing operating rates, or cleaning and/or replacing the sieve tray decks.
Numerous other solutions have been disclosed, such as in U.S. Pat. No. 7,288,184,
and U.S. Publication 2010-0096321. Other references of interest include U.S.
Pat. Nos. 7,288,184; 3,720,605; and 2,878,182; and FR 2079236.
The present inventors have discovered that proper control of the solvent
systems in the separation of aromatic hydrocarbons from non-aromatic
hydrocarbons, including liquid-liquid extraction processes and extractive
distillation processes, and the combination thereof, can result, in
embodiments, in at least an order of magnitude improvement in reliability and integrity
of the solvent systems and processes for the separation of aromatic
hydrocarbons and non-aromatic hydrocarbons.
SUMMARY OF THE INVENTION
The invention concerns the control of solvent systems in processes and
apparatus for the separation of aromatic hydrocarbons from non-aromatic
hydrocarbons in liquid-liquid extraction, extractive distillation, and the
combination thereof.
In embodiments, the invention concerns a systematic quality control program
that includes control of free oxygen and organic-chlorides in the feed stream,
solvent and water systems used in liquid-liquid extraction or extractive
distillation processes and apparatus adapted therefor. In preferred
embodiments, control of ingress of oxygen and organic chlorides into these
liquid-liquid extraction processes can result in an order of magnitude
improvement in quality and long-term reliability of said systems.
It is an object of the invention to maintain long-term solvent stability land
therefore the quality) by preventing the formation of unwanted by-products,
including polymers and organic acids, resulting in corrosion of materials such
as carbon steel and associated equipment fouling.
These and other objects, features, and advantages of the present invention will
become apparent in the following detailed description, drawings, specific
embodiments, experiments, and claims.
Free Full Text Source: https://www.google.com/patents/US20130251596?dq=hydrogen+inassignee:exxonmobil&hl=en&sa=X&ei=j__wUs5Ex_DIAbr_gVg&ved=0CGwQ6AEwCA
No comments:
Post a Comment