WO2014099441A1 - Method for enhanced recovery of oil from oil reservoirs - Google Patents
Method for enhanced recovery of oil from oil reservoirs Download PDFInfo
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- WO2014099441A1 WO2014099441A1 PCT/US2013/073839 US2013073839W WO2014099441A1 WO 2014099441 A1 WO2014099441 A1 WO 2014099441A1 US 2013073839 W US2013073839 W US 2013073839W WO 2014099441 A1 WO2014099441 A1 WO 2014099441A1
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- flooding fluid
- viscosity
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- xanthan
- oil
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K8/00—Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
- C09K8/58—Compositions for enhanced recovery methods for obtaining hydrocarbons, i.e. for improving the mobility of the oil, e.g. displacing fluids
- C09K8/588—Compositions for enhanced recovery methods for obtaining hydrocarbons, i.e. for improving the mobility of the oil, e.g. displacing fluids characterised by the use of specific polymers
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08L—COMPOSITIONS OF MACROMOLECULAR COMPOUNDS
- C08L5/00—Compositions of polysaccharides or of their derivatives not provided for in groups C08L1/00 or C08L3/00
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K8/00—Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
- C09K8/02—Well-drilling compositions
- C09K8/04—Aqueous well-drilling compositions
- C09K8/06—Clay-free compositions
- C09K8/08—Clay-free compositions containing natural organic compounds, e.g. polysaccharides, or derivatives thereof
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/16—Enhanced recovery methods for obtaining hydrocarbons
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/34—Arrangements for separating materials produced by the well
- E21B43/40—Separation associated with re-injection of separated materials
Definitions
- the present invention relates to a process for recovering crude oil from oil reservoirs using a flooding fluid comprising water and a pyruvate-rich xanthan gum.
- a commonly used secondary technique is waterflooding which involves injection of water into the oil reservoir. As the water moves through the reservoir, it displaces oil therein to one or more production wells through which the oil is recovered.
- Another such technique involves increasing the viscosity of the water using non-biodegradable thickening agents such as polyvinyl aromatic sulfonates as described in U.S. Patent 3,085,063.
- U.S. Patent 8,163,678 describes methods for enhanced oil recovery using a surfactant formulation comprising (a) an alkylaromatic sulfonate; (b) an isomerized olefin sulfonate (c) a solvent; (d) a passivator; and (e) a polymer.
- Polymers disclosed therein include xanthan gum, partially hydrolyzed polyacrylamides (HPAM) and copolymers of 2-acrylamido-2-methylpropane sulfonic acid and/or sodium salt and polyacrylamide (PAM) commonly referred to as AMPS copolymer.
- M w Molecular weights of the polymers range from about 10,000 daltons to about 20,000,000 daltons. Polymers are used in the range of about 500 to about 2500 ppm concentration, in order to match or exceed the reservoir oil viscosity under the reservoir conditions of temperature and pressure.
- viscosity enhancers For off-shore drilling operations, sea water is used for waterflooding, so good solubility of the viscosity enhancer in cold, highly saline water is very desirable.
- the salinity of the water in subterranean hydrocarbon reservoirs may also vary a great deal. For example, the Minas oil field in Indonesia has total dissolved solids of between 0.2 and 0.3 weight percent. Other reservoirs may have salinities as high as or higher than 2.0 percent sodium chloride and over 0.5 percent calcium chloride and magnesium chloride. Still other reservoirs can have total dissolved solids in excess of 6 weight percent and in some cases in excess of 20 weight percent.
- the divalent ion concentrations including calcium and magnesium can well be in excess of 0.1 weight %. Salinity and the presence of divalent ions including calcium and magnesium can have an effect on the phase behavior of the various chemicals used in oil recovery.
- the viscosity enhancer is thermally stable, because the oil field deposit may be geothermally heated. Most reservoirs are warm but cool down near the injector well under prolonged water flood. Near the injector well bore, the temperatures are near 25 °C. As the water moves away from the injector to the production well, temperatures rise and the amount of oil that is likely to be left in the formation also increases as distance away from the injector to the production well increases. Hence it is desirable to have a water soluble polymer that increases the solution viscosity at low shear and at a high temperature, e.g., 80 °C.
- the water/brine soluble polymer used be stable for the long periods needed for the polymer solutions to transit the oil reservoir from the injector well to the producer well.
- a polymer that is stable against hydrolytic, thermal and anaerobic (no air present) biological degradation It is also desirable that the polymer solution not degrade under the high shear conditions encountered by the solution as it is pumped by a high pressure pump or at high shear zones in throttle valves used to regulate water flows into the injector wells. It is important that the polymer in solution is not retained in the rock matrix in the oil reservoir. That is, only a small amount of polymer can be removed from the solution by adsorption or retention on or in the rock matrix.
- the xanthan gums are obtained from Xanthomonas campestris strains, pathovar cynarae CFBP ⁇ juglandis CFBP 176, pelargonii CFBP 64, phaseoli CFBP 412 or ATCC 17915, celebenois ATCC 19046, or corylina CFBP 1847 or from a derivative or progeny thereof.
- This invention relates to the recovery of oil from a subterranean reservoir using waterflooding.
- this invention provides a method for recovering oil from a reservoir by water flooding, comprising:
- this invention is an aqueous flooding fluid for enhanced oil recovery, wherein at least one portion of said flooding fluid comprises water and 0.007 to 3 weight % a xanthan gum characterized by pyruvic acid content of at least 5.0 weight %.
- the present invention provides a method of making an aqueous flooding fluid for use in waterflooding, comprising:
- the invention provides a method for recovering oil from a reservoir by waterflooding, comprising:
- Figure 1 shows plots of the effect of pyruvate content on the viscosity temperature profile of 0.5 weight % xanthan gum in 0.1 % sodium chloride solutions.
- Figure 2 shows plots of the midpoint transition temperature as a function of salt concentration for 0.5 weight % xanthan gum solutions.
- Figure 3 shows plots on the effect of thermal degradation on apparent viscosity of xanthan gum solutions at low shear of 1 sec "1 in salt water.
- pyruvate-rich xanthan refers to a xanthan gum characterized by a pyruvic acid content of at least 5.0% (w/w), in which the pyruvic acid is incorporated into the xanthan as pyruvate ester moieties.
- the term “gum” refers to a non-starch, non-pectin carbohydrate polymer derived from land or sea plants, or microorganisms.
- water refers to water that can be supplied from any suitable source, and can include, for example, sea water, brine, production water, water recovered from an underground aquifer, including those aquifers in contact with the oil, or surface water from a stream, river, pond or lake. As is known in the art, it may be necessary to remove particulates from the water prior to injection into the one or more wells. Water also includes various "synthetic" brines or sea water having defined total dissolved solids.
- Total dissolved solids refers to the amount of inorganic material in the water as described herein, and does not include any dissolved polymer material that may be present in the water.
- the term "mobility” is defined as the ratio of the relative permeability of the fluid to its viscosity at reservoir conditions.
- the relative permeability for water is evaluated at the average water saturation of the swept zones of the oil reservoir, typically at residual oil saturation.
- water saturation refers to the fraction of the void volume occupied by water.
- the relative permeability of the oil is evaluated at the oil saturation of the unswept zone in the oil reservoir, typically at residual water saturation (Boatright, KE, 2002, Basic Petroleum Engineering Practices, 9.6; see also Integrated Petroleum Management - A Team Approach, (A. Sattar and G. Thakurm, PennWell Books, Tulsa, OK, 1994)).
- shear thinning refers to the reduction of viscosity of a liquid (such as that portion of the flooding fluid comprising the pyruvate-rich xanthan) under shear stress.
- “Viscosity” refers to the resistance of a liquid such as water or oil to flow.
- the term “shear dependent viscosity ratio” as used herein is defined as the ratio of the solution viscosity measured at a given temperature and at a shear rate of 1 sec "1 to the solution viscosity measured at that same temperature and at a shear rate of 10 sec "1 .
- temperature dependent viscosity ratio is defined as the ratio of viscosity of identical aqueous solutions of xanthans at two different temperatures, such as at 20 °C and 60 °C.
- temperature dependent viscosity ratio When discussing viscosity of compositions comprising xanthan gums, these parameters may be generally determined by use of the methods and apparatus specifically referred to in the examples or similar methods and apparatus.
- a polymeric material is considered “soluble” in a liquid if the "solution” can be passed through a 0.2 micron filter without substantial pressure buildup.
- Filterability of the solution to assess dissolution of the polymer can be determined using a method described by the American Petroleum Institute (API: "Recommended Practices for Evaluation of Polymers Used in Enhanced Oil
- production well(s) refers to well(s) through which oil and water are withdrawn from a reservoir.
- An oil reservoir or oil formation is a subsurface body of rock having sufficient porosity and permeability to store and transmit oil.
- injection well(s) and injector refer to well(s) that are used to pump water or water mixtures into an oil reservoir for waterflooding purposes.
- the invention relates to the recovery of oil from a subterranean reservoir using waterflooding.
- Waterflooding is a technique that is commonly used for secondary oil recovery from oil reservoirs. In this technique, water is injected through one or more wells into the reservoir, and as the water moves through the reservoir, it acts to displace oil therein to one or more production wells through which the oil is
- the efficacy of waterflooding is improved through the use of a pyruvate-rich xanthan.
- pyruvate-rich xanthan is readily soluble in cold saline water and maintains the ability to provide a high viscosity at low shear in highly saline solutions. This is particularly apparent compared to polyacrylamide polymers, which do not maintain their viscosifying effect in salty solutions, such as greater than 10 parts per thousand TDS.
- the present invention provides a flooding fluid for use in waterflooding operations comprising water and a pyruvate-rich xanthan.
- the invention also relates to a method for recovering oil from a reservoir by waterflooding, through introducing an aqueous flooding fluid into the reservoir.
- the flooding fluid comprises a pyruvate-rich xanthan.
- the pyruvate-rich xanthan may be prepared according to methods described in U.S. Patent Application Publication 2012/0021 1 12, the entire disclosure of which is incorporated by reference herein.
- the pyruvate-rich xanthan can be prepared using a Xanthomonas campestris strain.
- Xanthomonas campestris strain or . campestris strain
- a Xanthomonas campestris strain is a strain of the bacterial species which causes a variety of plant diseases.
- a X. campestris strain is in the current context a bacterial cell derived from X. campestris, that has preserved substantially all genomic information of the X. campestris strain-the derivative may, however, differ from the parent X. campestris strain by having recombinantly introduced genetic modifications (e.g. in the genome or in the form of a plasmid), which do not adversely affect the functionality of the xanthan gum gene cluster.
- a "progeny" of a X. campestris strain is a bacterial cell that is obtained by culture of a X. campestris strain-hence, the progeny may include later generation bacterial cells which are not genetically identical with the original X.
- a X. campestris strain producing xanthan gum having a high pyruvic acid content is a strain which produces Xanthan gum having a pyruvic acid content of at least 5 % (w/w), preferably at least 5.3 %, more preferably at least 5.5 %, such as 5.5 to 7 %.
- the pyruvic acid to acetic acid weight/weight ratio in the pyruvate-rich xanthans may be least 0.5, preferably at least 0.6, at least 0.7, at least 0.8, at least 0.9, or at least 1 .0, up to about 2. Particularly preferred is a ratio of about 0.9 to about 1 .3, such as about 1 .1 .
- the pyruvate-rich xanthans may have solubility in mixed salt brine up to the solubility limit of 350 parts per thousand (ppt) total dissolved solids (TDS), wherein solubility is measured by the ability of the solution to pass through a 0.2 micron filter.
- the pyruvate-rich xanthans may also have a viscosity measured at 0.1 % xanthan in brine solution containing salt composition up to 265 ppt TDS at shear rate of 1 sec "1 giving viscosity of at least 40 cP at 25 °C and at least 10 cp at 85 °C.
- Solutions of xanthan gum undergo a conformational transition during heating which is associated with the change from a rigid, ordered, generally helical state at low temperature to a more flexible, disordered random coil state at high
- the pyruvate-rich xanthans exhibit conformational transition behavior that is particularly useful for use in a flooding fluid for enhanced oil recovery.
- Pyruvate-rich xanthan gums having at least 5 weight % pyruvate, provide a viscosity, measured at 0.1 % xanthan in brine solution containing a salt composition up to 265 ppt at shear rate of 1 sec "1 , of at least 40 centipoise (cP) at 25 °C and at least 10 cP at 85 °C.
- a salt composition up to 265 ppt at shear rate of 1 sec "1 , of at least 40 centipoise (cP) at 25 °C and at least 10 cP at 85 °C.
- cP centipoise
- such pyruvate-rich xanthan gums provide a viscosity measured at 0.3% xanthan in 1 weight % NaCI solution at a shear rate of
- the combination of viscosity and viscosity at high temperature of the pyruvate-rich xanthans is dependent on the pyruvate content of the xanthan. Too low pyruvate may provide solubility as defined herein and sufficient viscosity at low temperature, but would not provide adequate viscosity at high temperature.
- the suitability of materials for flooding fluids may also be assessed for the following factors:
- the polymer solution(s) may be held in an inert bottle(s) and sampled periodically to measure the viscosity for a range of shear from 1 to 10 sec "1 and as a function of time at the temperature.
- a desirable value for commercial use is less than 10% loss of viscosity (measured at shears of 1 and 10 sec "1 ) over a 1 year period in synthetic sea water at 85 °C.
- the pyruvate-rich xanthan compositions described herein have minimal viscosity loss compared to previous oil-recovery polymers when measured under these conditions.
- a flooding fluid useful for waterflooding comprising water and a cold-water soluble pyruvate-rich xanthan as described above.
- the aqueous flooding fluid for use in waterflooding comprising about 0.007% to about 3% weight of a xanthan gum characterized by pyruvic acid content of at least 5.0% (weight/weight) in water.
- the concentration may be in the range of about 0.05% to about 1 %
- the aqueous flooding fluid may comprise 0.05 to 0.2 weight % of the xanthan gum and may also include greater than 10 parts per thousand total dissolved solids (TDS).
- This invention provides an advantage to existing technology in that flooding fluid comprising a pyruvate-rich xanthan as defined above exhibit shear-thinning properties such that the solution exhibits low viscosity at high shear rates and increased viscosity at low shear rates.
- the flooding fluid comprises water, wherein at least a portion of said water comprises a pyruvate-rich xanthan.
- the water may have salinity up to 10 ppt total dissolved solids (TDS), or greater than 10 ppt TDS, or greater than 25 ppt TDS, greater than 35 ppt TDS and up to the solubility limit of mixed salts in water which is about 350 ppt.
- Synthetic sea water as defined by API standards has a TDS of about 30 to 40 ppt, such as 34 ppt.
- Typical oil reservoir brines may have from 10 to 275 ppt TDS, such as 40 to 85 ppt TDS.
- the ratio of divalent ions to monovalent ions may also have an impact on low shear viscosity performance of dissolved polymers.
- the pyruvate-rich xanthan useful in the invention exhibits particularly good
- the viscosity values observed for the pyruvate-rich xanthan are superior to those of existing commercial products.
- the main advantage obtained from this property of the pyruvate-rich xanthan is that the amount of xanthan gum in the flooding fluid may be reduced while retaining high viscosity compared to a flooding fluid containing previous xanthan gums.
- the pyruvate-rich xanthan also exhibits particularly good rheological properties in highly saline solutions.
- the pyruvate-rich xanthan may have a viscosity measured at 0.1 % xanthan in synthetic sea water at a shear rate of 1 sec "1 , and a temperature of 25 ⁇ 2 °C which is at least 40 cp.
- the viscosity measured at 0.1 % xanthan in synthetic sea water at a shear rate of 1 sec "1 and at a temperature of 25 ⁇ 2 °C may be in the range from 40 to 130 cp, such as in the range from about 45 to about 125 cp.
- the pyruvate-rich xanthan may have a viscosity at a shear rate of 1 sec "1 in
- this invention provides a method of making an aqueous flooding fluid for use in waterflooding, comprising:
- the pyruvate-rich xanthan can be added as a solid powder to at least one portion of the flooding fluid.
- concentration of the pyruvate-rich xanthan in at least one portion of the flooding fluid can be in the range of about 0.007% to about 3% (weight of the pyruvate-rich xanthan/total weight of the at least one portion of flooding fluid comprising said pyruvate-rich xanthan).
- the xanthan may be added in a batch process, wherein a defined weight of xanthan is added to a defined volume of water to form a solution.
- the xanthan solution may be produced in any suitable vessel, such as a tank, vat, pail and the like.
- the xanthan gum dissolves substantially completely in water at about 25 °C within about 14 hours.
- the solution is produced in about 1 hour or less, such as in about 30 minutes.
- the xanthan may be added continuously to a stream of water. Due to the good solubility of the xanthan in water, it is contemplated that the process may proceed within a pipeline in which the components of the dispersion are charged at one end of the pipeline and form the solution as they proceed down the length of the pipeline.
- the xanthan powder may be mixed by metering solid xanthan at a defined rate with water as it passes through a pipeline, with or without added mixing, such as through static mixers.
- the xanthan may be mixed with a small portion of water to form a slurry and diluted to the final concentration by adding the slurry to additional water as they pass through a pipeline, with or without added mixing, such as through static mixers.
- This invention also relates to the recovery of oil from a subterranean reservoir using waterflooding.
- the invention provides a method for recovering oil from a reservoir by waterflooding, comprising:
- the pyruvate-rich xanthan is added to a volume of water and injected into the well(s), optionally followed by the injection of additional water (not containing the pyruvate-rich xanthan).
- the at least one portion of the flooding fluid containing the pyruvate-rich xanthan exhibits low viscosity during injection into the reservoir and higher viscosity when flowing through the reservoir. This process can be repeated one or more times if necessary.
- the relative viscosity of at least one portion of the flooding fluid comprising the pyruvate-rich xanthan is low, whereas as at least one portion of the flooding fluid flows into the reservoir, the shear decreases and the relative viscosity increases.
- the pyruvate-rich xanthan can also be added to the entire volume of flooding fluid, as long as the backpressure at the injection well(s) does not become too high.
- the bottom well pressure of the injector cannot exceed the strength of the rock formation, otherwise formation damage will occur at a given flow rate. Adjustments can be made by reducing the flow of the injection water, adding water to decrease viscosity, or by adding water mixed with a pyruvate-rich xanthan to increase viscosity in order to improve the efficacy of oil recovery.
- pyruvate-rich xanthan is added to the flooding fluid in order to increase the viscosity of at least one portion of the water in the flooding fluid, thereby improving the displacement of oil to the production well(s).
- the mobility of the water be less than the mobility of the oil.
- the oil mobility is calculated by the formula - ⁇ , where k 0 is the relative oil permeability measured at residual water saturation and ⁇ 0 is the oil dynamic viscosity measured at reservoir conditions.
- the water mobility is calculated by k w / w , where k w is the relative water permeability measured at residual oil saturation and w is the water dynamic viscosity measured at reservoir conditions.
- the water mobility is greater than the oil mobility, thus the water will tend to channel or finger through the oil.
- the pyruvate-rich xanthan is added to the at least one portion of the flooding fluid as described herein, the addition of the pyruvate-rich xanthan increases the viscosity of the at least one portion of the water, thereby reducing the effective water mobility.
- the oil is more likely to be driven towards the production well(s).
- the viscosity of at least one portion of the flooding fluid comprising the pyruvate-rich xanthan is about 30% higher at low shear rates of 1 sec "1 or less than the viscosity of the same polymer in solution measured at the same temperature but at a high shear rate of 10 sec "1 or greater. Consequently a figure of merit that will be used to illustrate the degree of shear thinning is the shear dependent viscosity ratio measured at a specific temperature at different shear rates, specifically at shear rates of 1 sec "1 and 10 sec "1 .
- this viscosity ratio for at least one portion of the flooding fluid comprising pyruvate-rich xanthan is at least 1 .3, preferably at least 1 .8, more preferably at least 2.0, or at least 2.5.
- Additional materials can optionally be added as thickening agents or surface active agents to enhance the sweep efficiency of the flooding fluid and/or reduce water mobility.
- These materials include at least one of the members of the group consisting of hay, sugar cane fibers, cotton seed hull, textile fibers, shredded paper, bentonite, rubber pulp, wood shavings and nut hulls, provided that these materials together with a pyruvate-rich xanthan provide the desired viscosity, concentration and/or particle size distribution.
- the additional materials may include propanediol thickeners, such as one or more members of the group consisting of 1 ,3-propanediol; an oligomer of 1 ,3-propanediol; a homopolymer of 1 ,3-propanediol; and a heteropolymer of 1 ,3- propanediol, wherein said heteropolymer is synthesized using at least one C2 through C12 comonomer diol, as described in the commonly owned and copending U.S.
- propanediol thickeners such as one or more members of the group consisting of 1 ,3-propanediol; an oligomer of 1 ,3-propanediol; a homopolymer of 1 ,3-propanediol; and a heteropolymer of 1 ,3- propanediol, wherein said heteropolymer is synthesized using at least one C2 through C12 com
- An "oligomer" of 1 ,3-propanediol has a degree of polymerization of 2-6, whereas a “polymer” has a degree of polymerization of at least 7.
- a "homopolymer” of 1 ,3-propanediol is a polymer synthesized using monomers of 1 ,3-propanediol.
- a “heteropolymer” of 1 ,3-propanediol is a polymer synthesized using 1 ,3-propanediol monomers as well as one or more additional C 2 through C12 straight-chain or branched comonomer diols.
- Additional thickeners include polyacrylamide, carboxymethylcellulose, polysaccharide, polyvinyl pyrrolidone, polyacrylic, and polystyrene sulfonates, and ethylene oxide polymers, as described in U.S. Patent 3,757,863; and methyl cellulose, starch, guar gum, gum tragacanth, sodium alginate, and gum arabic, as described in U.S. Patent 3,421 ,582.
- Each of the thickeners can be used alone, or in combination with one or more other thickeners as described above.
- Surfactants such as acid salts of amido-acids as described in U.S. Patent 2,802,785 can also optionally be added. Surfactants and thickeners can also be used in combination.
- the additional materials that are added to flooding fluids of the invention are preferably biodegradable, such as starch, guar gum, sodium alginate, gum arabic and methyl cellulose.
- the pyruvate-rich xanthan is added to a volume of water and injected into the well(s), followed by the injection of additional water. This process can be repeated one or more times if necessary.
- the relative viscosity of at least one portion of the flooding fluid comprising the pyruvate-rich xanthan is low, whereas as at least one portion of the flooding fluid flows into the reservoir, the shear decreases and the relative viscosity increases.
- the pyruvate-rich xanthan can also be added to the entire volume of flooding fluid, as long as the backpressure at the injection well(s) does not become too high.
- the flooding fluid can be recovered as it exits the production well(s) and at least one portion of the recovered flooding fluid can be reused, i.e., reinjected into the reservoir.
- additional pyruvate-rich xanthan as defined above can be added to at least one portion of the recovered flooding fluid.
- the additional pyruvate-rich xanthan can be added at a concentration of about 0.007% to about 3% (weight of one or more pyruvate-rich xanthan/weight of at least one portion of flooding fluid).
- at least one portion of the flooding fluid exiting the production well(s) can be disposed of, for example by disposal at sea, in a disposal well, or in a wastewater pond.
- xanthans of various pyruvate and acetate content as summarized in Table 1 were obtained.
- Some xanthans are commercially available from DuPontTM Danisco under the tradename GRINDSTED ® or under various material numbers.
- High pyruvate xanthans have xanthate content of at least 5 %, such as 5.5 to 7 weight %.
- xanthans with lower pyruvate content can be obtained by hydrolysis of pyruvate-rich xanthans by adjustment of the xanthan gum broth to acidic pH and holding at elevated temperatures prior to recovery of the gum by alcohol precipitation. The reduction in pyruvate content is a function of the pH and time held at the elevated temperature.
- Other xanthans with lower pyruvic acid content can also be obtained commercially as indicated in Table 1 .
- Pyruvate and acetate content can be quantified by HPLC after hydrolysis of the polymer.
- Additional non-xanthate materials include:
- PA-1 polyacrylamide formerly available under the tradename Performa ® PA 9510 from Hercules Corporation.
- xanthans exhibit a conformational transition from an ordered helical structure at low temperature to a disordered random coil configuration at higher temperature.
- the viscosity of xanthan solutions decreases significantly when the xanthan is in the disordered state.
- the conformational transition can be observed where the slope of the temperature dependent line is the steepest.
- the temperature dependent viscosity ratio (the ratio of the viscosity at 60 °C to the viscosity at 20 °C) of the samples is summarized in Table 2.
- Table 2 The temperature dependent viscosity ratio (the ratio of the viscosity at 60 °C to the viscosity at 20 °C) of the samples is summarized in Table 2.
- the data in Table 2 demonstrate that the temperature dependent viscosity ratio increases with increasing pyruvate content.
- the viscosity of pyruvate-rich xanthan PRX-1 Prior to the onset of the conformational transition, the viscosity of pyruvate-rich xanthan PRX-1 , with pyruvate content over 5 weight %, is virtually constant.
- the temperature dependent viscosity ratio of pyruvate-rich xanthans is greater than 0.85, preferably greater than 0.90 or 0.95. This effect is independent of the salt concentration within the range studied.
- the viscosity of xanthans with less than 5 weight % pyruvate decreases with increasing temperature, with temperature dependent viscosity ratios less than 0.85.
- Solutions of the materials tested were prepared by dissolving 0.1 weight % of the material in "fresh" (deionized) water and synthetic sea water at 25 °C. Each material dissolved easily in both distilled and salt water.
- Synthetic sea water was obtained from VWR, catalog number RC8363-1 .
- the major ion composition of this synthetic sea water is shown below.
- Other synthetic brines for specific target oil reservoirs are formulated based on ICP (inductively coupled plasma) analysis of the authentic brines and on the ion analysis (using ion
- the ratio of viscosity for each test solution was determined from viscosity measurements taken as a function of shear rate using a Brookfield DV-II+ Pro instrument (Brookfield Engineering Laboratories, Inc., Middleboro, MA) using a UL adaptor with water jacketed cup and remote temperature detection probe. The instrument was controlled using Rheocal software v2.7. The shear rate was varied from 0.25 sec "1 to 250 sec "1 at 25 and 80 °C. Values of viscosity at a shear rate of 1 sec "1 and 10 sec “1 were used in the calculation of the shear dependent viscosity ratio. This viscosity ratio was measured at the various temperatures to match the likely range in the reservoir temperature.
- the pyruvate-rich xanthan PRX-1 provides a higher viscosity in both fresh and salt water than the other biopolymers and had the most consistent performance at both temperatures tested. It also had shear dependent viscosity ratios greater than 2.0 at 25 °C and greater than 1 .8 at 80 °C. Commercial xanthan X-1 in salt water had a good shear dependent viscosity ratio at 80 °C, but at lower viscosity levels.
- Samples of PRX-1 , X-2 and X-1 were tested for the effect of heat aging on viscosity performance by preparing salt water solutions and holding them at 85 °C for a period of 20 weeks. Samples were tested for their viscosity at intervals during that period to determine whether extended heat treatment would reduce the observed viscosity. Reduced viscosity over time would indicate that the biopolymer was degrading.
- the apparent viscosity of solutions of the various soluble polymers in salt water was determined from viscosity measurements taken as a function of shear rate using the procedure described above. Values of the apparent viscosity at shear rates of 1 sec 1 and 10 sec "1 are shown as a function of time for the solution held at 85 °C in Table 6.
- the first synthetic brine contained 265 ppt TDS as
- a second salt brine was obtained from an oil reservoir in Canada. This second salt brine had a total TDS measured by a refractometer of 71 ppt.
- a low salt brine was prepared by making a 1 :1 dilution of this 71 ppt brine with fresh water resulting in a brine that measured as 36 ppt using a refractometer.
- Another low salt brine was prepared by diluting the 71 ppt salt brine with fresh water until the refractometer measured 10 ppt for this brine mixture.
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Abstract
Description
Claims
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2890966A CA2890966A1 (en) | 2012-12-18 | 2013-12-09 | Method for enhanced recovery of oil from oil reservoirs |
| GB1506368.8A GB2523482A (en) | 2012-12-18 | 2013-12-09 | Method for enhanced recovery of oil from oil reservoirs |
| US14/761,725 US20150368545A1 (en) | 2012-12-18 | 2013-12-09 | Method for enhanced recovery of oil from oil reservoirs |
| NO20150706A NO20150706A1 (en) | 2012-12-18 | 2015-06-01 | Process for improved recovery of oil from reservoir |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201261738549P | 2012-12-18 | 2012-12-18 | |
| US61/738,549 | 2012-12-18 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2014099441A1 true WO2014099441A1 (en) | 2014-06-26 |
Family
ID=49911798
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2013/073839 Ceased WO2014099441A1 (en) | 2012-12-18 | 2013-12-09 | Method for enhanced recovery of oil from oil reservoirs |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US20150368545A1 (en) |
| CA (1) | CA2890966A1 (en) |
| GB (1) | GB2523482A (en) |
| NO (1) | NO20150706A1 (en) |
| WO (1) | WO2014099441A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN107321384A (en) * | 2017-06-27 | 2017-11-07 | 广西大学 | The preparation method and applications of lignocellulosic ester/sodium alginate complex spherical class fenton catalyst |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| AU2020335027A1 (en) * | 2019-08-23 | 2022-04-14 | Trisco ICAP Pty Ltd | A modified gum |
Citations (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2316608A (en) | 1939-10-26 | 1943-04-13 | Gen Electric | Centrifugal fan |
| US2802785A (en) | 1954-08-30 | 1957-08-13 | Union Oil Co | Water flooding process |
| US3085063A (en) | 1959-12-30 | 1963-04-09 | Jersey Prod Res Co | Secondary recovery waterflooding technique |
| US3421582A (en) | 1966-03-18 | 1969-01-14 | Cities Service Oil Co | Secondary oil recovery process |
| US3757863A (en) | 1971-12-27 | 1973-09-11 | Phillips Petroleum Co | Secondary recovery methods |
| GB2176199A (en) * | 1985-06-03 | 1986-12-17 | Pfizer | Drilling fluid additive containing high pyruvate xanthan |
| WO2009097473A1 (en) * | 2008-01-31 | 2009-08-06 | E. I. Du Pont De Nemours And Company | Method for enhanced recovery of oil from oil reservoirs |
| WO2010112499A1 (en) * | 2009-04-02 | 2010-10-07 | Danisco A/S | Improved xanthan gum |
| US8163678B2 (en) | 2007-10-30 | 2012-04-24 | Chevron U.S.A. Inc. | Enhanced oil recovery surfactant formulation and method of making the same |
Family Cites Families (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3373810A (en) * | 1966-06-17 | 1968-03-19 | Mobil Oil Corp | Waterflood process employing thickened water |
| US4119546A (en) * | 1976-08-05 | 1978-10-10 | Pfizer Inc. | Process for producing Xanthomonas hydrophilic colloid, product resulting therefrom, and use thereof in displacement of oil from partially depleted reservoirs |
| FR2442955A1 (en) * | 1978-12-01 | 1980-06-27 | Ceca Sa | IMPROVEMENTS TO ASSISTED OIL RECOVERY |
| US6489270B1 (en) * | 1999-01-07 | 2002-12-03 | Daniel P. Vollmer | Methods for enhancing wellbore treatment fluids |
| MX2008012018A (en) * | 2006-03-27 | 2008-10-01 | Shell Int Research | Water injection systems and methods. |
| US20130029884A1 (en) * | 2011-07-27 | 2013-01-31 | Envirosystems, Inc. | Biocide formulations |
-
2013
- 2013-12-09 GB GB1506368.8A patent/GB2523482A/en not_active Withdrawn
- 2013-12-09 US US14/761,725 patent/US20150368545A1/en not_active Abandoned
- 2013-12-09 WO PCT/US2013/073839 patent/WO2014099441A1/en not_active Ceased
- 2013-12-09 CA CA2890966A patent/CA2890966A1/en not_active Abandoned
-
2015
- 2015-06-01 NO NO20150706A patent/NO20150706A1/en not_active Application Discontinuation
Patent Citations (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2316608A (en) | 1939-10-26 | 1943-04-13 | Gen Electric | Centrifugal fan |
| US2802785A (en) | 1954-08-30 | 1957-08-13 | Union Oil Co | Water flooding process |
| US3085063A (en) | 1959-12-30 | 1963-04-09 | Jersey Prod Res Co | Secondary recovery waterflooding technique |
| US3421582A (en) | 1966-03-18 | 1969-01-14 | Cities Service Oil Co | Secondary oil recovery process |
| US3757863A (en) | 1971-12-27 | 1973-09-11 | Phillips Petroleum Co | Secondary recovery methods |
| GB2176199A (en) * | 1985-06-03 | 1986-12-17 | Pfizer | Drilling fluid additive containing high pyruvate xanthan |
| US8163678B2 (en) | 2007-10-30 | 2012-04-24 | Chevron U.S.A. Inc. | Enhanced oil recovery surfactant formulation and method of making the same |
| WO2009097473A1 (en) * | 2008-01-31 | 2009-08-06 | E. I. Du Pont De Nemours And Company | Method for enhanced recovery of oil from oil reservoirs |
| WO2010112499A1 (en) * | 2009-04-02 | 2010-10-07 | Danisco A/S | Improved xanthan gum |
| US20120021112A1 (en) | 2009-04-02 | 2012-01-26 | Danisco A/S | Xanthan Gum |
Non-Patent Citations (11)
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN107321384A (en) * | 2017-06-27 | 2017-11-07 | 广西大学 | The preparation method and applications of lignocellulosic ester/sodium alginate complex spherical class fenton catalyst |
Also Published As
| Publication number | Publication date |
|---|---|
| GB201506368D0 (en) | 2015-05-27 |
| GB2523482A (en) | 2015-08-26 |
| NO20150706A1 (en) | 2015-06-01 |
| CA2890966A1 (en) | 2014-06-26 |
| US20150368545A1 (en) | 2015-12-24 |
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