CATEGORY: ALKYLATION
PATENT
HF
alkylation process with internal acid regeneration
Patent number: 8212098
Issue date: Jul 3, 2012
Application number: 12/007,301
Inventors: D'Arcy H. J. Blais, Doug F. Bodeux, Steve L. Burgwin, Alexander D.
Chan, Gary S. Locke, Jerry H. Squires, Sarah J. Virtue
Original Assignee: ExxonMobil Research & Engineering Company
Abstract
An
improved process for removing polymeric by-product (ASO) from the HF alkylation
acid in an HF alkylation unit used for the production of gasoline boiling range
alkylate product by olefin/iso-paraffin alkylation, comprises fractionating a
portion of the circulating HF alkylation acid inventory of the unit with a
portion of hot alkylate product in a fractionation zone to from an overhead
product comprising HF alkylation acid and water and a bottoms fraction
comprising the polymeric by-product and alkylate. The bottoms fraction is sent
to the isoparaffin stripper of the unit to remove trace HF alkylation acid as
overhead and form a product stream of hot alkylate as a bottoms fraction.
FIELD OF THE INVENTION
This invention relates to iso-paraffin/ olefin alkylation and more
particularly, to hydrofluoric acid (HF) alkylation. In this specification, the
term “alkylation” Will be used to refer to the iso-paraflin/olefin alkylation
process used to make gasoline blend components useful in aviation and motor
gasolines and “HF alkylation” to this process using hydrofluoric acid as the
catalyst.
BACKGROUND OF THE INVENTION
The iso-paraffin/ olefin alkylation process is Widely used to manufacture a
high octane quality blend component for aviation and motor gasoline Which is
also valued for its relatively loW vapor pressure, loW sensitivity and, because
of its freedom from aromatic components, its environmental acceptability. The
process typically reacts a C2 to C5 olefin With isobutane in the presence of an
acidic catalyst to produce the alkylate product.
Hydrofluoric and sulfuric acid alkylation processes share inherent draWbacks
including environmental and safety concerns, acid consumption, and sludge
disposal but in spite of efforts to develop an inherently safe alkylation
process, both processes have achieved Widespread utilization With the HF
process being noted for producing a higher quality product With more favorable
unit economics. Although hydrogen fluoride, or hydrofluoric acid (HF) is highly
toxic and corrosive, extensive experience in its use in the refinery have shoWn
that it can be handled safely, provided the hazards are recognized and
precautions taken. The HF alkylation process is described in general terms in
Modern Petroleum Technology, Hobson et al (Ed), Applied Science Publishers Ltd.
1973, ISBN 085334 487 6. A survey of HF alkylation may be found in Handbook of
Petroleum Refining Processes, Meyers, R. A. (Ed.), McGraW-Hill Professional
Publishing, 2nd edition (Aug. 1, 1996), ISBN: 0070417962.
In order to improve the operation of the HF alkylation process as Well as the
economics of the process it is desirable to regenerate the HF alkylation acid
by removing the polymeric by-product Which forms during the alkylation
reactions; this polymer, comprising polymers of differing degrees of
conjugation, is frequently referred to as “acid soluble oil” (ASO) since it is
miscible With the HF acid phase. Removal of the ASO is necessary to preserve
the concentration of the acid at the high level desirable for good alkylation
performance While removal of Water is required in order to reduce corrosion
Within the unit as Well as to maintain product octane quality. Normally, the
acid concentration is maintained at 88 to 94 Weight percent by the continuous
or periodic addition of fresh acid and WithdraWal of spent acid With the Water
content kept in the range of 0.5 to 1.0 percent.
One previously used method for removing the polymer from the acid inventory is
by internal regeneration. A small amount of acid (With polymer and trace Water)
is injected into the isostripper feed line With the large amount of alkylate
and butanes feeding the toWer. The acid flashes overhead and the polymer leaves
With the alkylate via the bottom of the toWer. There is, hoWever, a limit on
the amount of the acid in the hydrocarbon feed to the isostripper: major
corrosion problems in the iso stripper overhead may occur With excess acid in
the isostripper feed. Excess acid can also result in a separate acid phase in
the doWnstream isoparaflin recycle circuit Where it mixes With olefin feed,
resulting in accelerated corrosion in the toWer.
When removal of Water is the objective, as it is on a fairly frequent schedule,
external regeneration is necessary. In the external regeneration method, a
small amount of acid (With polymer and trace Water) is injected into a separate
distillation column, Which is operated in batch mode With isoparaffin used as a
heating and stripping medium. The toWer separates dry acid overhead and a
mixture of HF acid, Water and polymer leaves as a bottoms fraction. The mixture
is neutralized, and the aqueous phase is separated from polymer through a
series of separator drums. This method results in loss of HF acid and costly
use of neutralization chemicals. It is also manually intensive.
An external regeneration method of this type is described in U.S. Pat. No.
5,547,909 (Carlson). In this method, the acid phase from the settler is removed
and a portion is routed to a separator column Which enables the polymer (ASO)
to be separated from the HF of the acid phase. Cooled isoparaflin is used as
column reflux and heat is supplied by means of isoparaflin introduced as
stripping medium at the foot of the column. Acid, free of ASO and Water is
removed as overhead and is recirculated to the settler. A portion of the
bottoms fraction is recycled to a higher level in the toWer, possibly to make
the separation more effective. While this technique may be capable of improving
on the conventional external separation by attempting to get closer to an
azeotropic mixture of Water, acid and polymer in the bottom of the toWer, (acid
content of the bottoms stream about 40-50%), it still fails to achieve a
satisfactory level of acid recovery and significant losses of acid can be expected.
Another external HF acid regeneration scheme is proposed in U.S. Pat. No.
6,228,650 (Moore et al) using an improved control scheme to monitor and control
process operation but again, since the same basic regeneration scheme is used
in Which the heat is supplied solely by the iso-paraffin used for stripping,
the acid regeneration remains at a level Which is less than optimal. A method
of stripping the HF from the alkylation acid using hydrogen is proposed in U.S.
Pat. No. 5,461,183 (Del Rossi et al) but this method, requiring external
hydrogen is not Well suited to incorporation Within the non-hydrogenative HF
alkylation unit.
There are therefore deficiencies in both methods of regeneration: internal
regeneration in the iso stripper removes polymer but is ineffective for removal
of Water to the loW levels required in the process While external regeneration,
by contrast, is required for the removal of Water but results in an uneconomic
loss of HF acid if the Water content is to be maintained at the appropriate
level. Given that the process economics favor internal regeneration, it Would
be desirable to improve the operation of that practice even if it Were not
completely effective at removal of Water.
We have noW devised a method of HF acid regeneration Which enables the polymer
to be separated from almost all of the acid, together With Water, leaving the
polymer ASO With only trace acid in the alkylate product as a bottoms fraction.
The method We have devised operates by using the heat from a stream of hot
alkylate to strip the acid, together With trace levels of Water, from a
slipstream of alkylation acid With its polymer (and trace Water) in an acid
treating toWer (fractionation toWer) in Which the acid and Water are vaporized
as
overhead, leaving the polymer behind as a bottoms fraction Which leaves the
toWer With recycled alkylate. This polymerladen alkylate is injected into the
isostripper feed to remove any trace residual acid as isostripper overhead. The
HP acid, Water and light hydrocarbon vapors from the treating toWer are
condensed into an overhead receiver drum, Where light hydrocarbon is separated
from the acid phase. The remaining acid and trace Water is virtually polymer
free and can be returned to the circulating acid system or fed to an external
regeneration unit for removal of Water, When required. The acid treating toWer
alloWs for elimination of internal regeneration as Well as a reduction in
external regeneration. In addition, since the acid treating toWer configuration
sends only acid (and trace Water) to the external regeneration unit, the costs
associated With extensive handling of polymer in external regeneration are
eliminated. Because Water and acid are largely removed in the acid treating
toWer, the problems of isostripper overhead corrosion from excess acid are
largely eliminated.
SUMMARY OF THE INVENTION
According to the present invention, an improved process for removing polymeric
by-product (ASO) from the HF alkylation acid in an HP alkylation unit used for
the production of gasoline boiling range alkylate product by
olefin/iso-parafiin alkylation, comprises fractionating a portion of the
circulating HF alkylation acid inventory of the unit With a portion of hot
alkylate product in a fractionation zone to from an overhead product comprising
HF alkylation acid and Water and a bottoms fraction comprising the polymeric
by-product and alkylate. The bottoms fraction is sent to the isoparafiin
stripper of the unit to remove trace HF alkylation acid as overhead and form a
product stream of hot alkylate as a bottoms fraction.
In its essentials, the HF alkylation unit incorporating this recovery system
comprises:
(i) an alkylation reactor With its associated acid settler having an upper
outlet for alkylate product and a loWer outlet for HP alkylation acid,
(ii) an isostripper for separating isoparafiin from alkylate product from the
settler by fractionation to produce an isoparafiin overhead stream at an
overhead outlet and an alkylate product stream as a bottoms fraction at a loWer
outlet, the isostripper having an inlet connected to the upper outlet of the
settler,
(iii) a fractionator toWer having an inlet connected to the loWer outlet of the
settler to receive a slipstream portion of the HF alkylation acid from the acid
circuit,
(iv) an inlet connected to the loWer outlet of the isostripper to receive a
slipstream portion of the alkylate bottoms stream from the isostripper.
The isostripper is also fitted With an overhead outlet for frac
tionated HF alkylation acid and trace Water and a bottoms
outlet for alkylate product and polymeric by-product ASO, the bottoms outlet
being connected to the inlet of the isostripper to provide the hot alkylate for
the fractionation zone as
Well as alloWing for WithdraWal of the alkylate product stream
Which is taken to the recovery and purification section.
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