WO2010077570A2 - Acrylamide removal from aqueous fluid bodies - Google Patents
Acrylamide removal from aqueous fluid bodies Download PDFInfo
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- WO2010077570A2 WO2010077570A2 PCT/US2009/066729 US2009066729W WO2010077570A2 WO 2010077570 A2 WO2010077570 A2 WO 2010077570A2 US 2009066729 W US2009066729 W US 2009066729W WO 2010077570 A2 WO2010077570 A2 WO 2010077570A2
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- acrylamide
- peroxygen
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/72—Treatment of water, waste water, or sewage by oxidation
- C02F1/722—Oxidation by peroxides
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2101/00—Nature of the contaminant
- C02F2101/30—Organic compounds
- C02F2101/38—Organic compounds containing nitrogen
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2103/00—Nature of the water, waste water, sewage or sludge to be treated
- C02F2103/34—Nature of the water, waste water, sewage or sludge to be treated from industrial activities not provided for in groups C02F2103/12 - C02F2103/32
- C02F2103/36—Nature of the water, waste water, sewage or sludge to be treated from industrial activities not provided for in groups C02F2103/12 - C02F2103/32 from the manufacture of organic compounds
- C02F2103/365—Nature of the water, waste water, sewage or sludge to be treated from industrial activities not provided for in groups C02F2103/12 - C02F2103/32 from the manufacture of organic compounds from petrochemical industry (e.g. refineries)
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2209/00—Controlling or monitoring parameters in water treatment
- C02F2209/02—Temperature
Definitions
- the present invention relates to a method for removing acrylamide from large bodies of water or other acrylamide-containing aqueous fluids.
- One example of such use is for friction reduction in water or other water- based (aqueous) fluids used for hydraulic fracturing treatments in subterranean well formations.
- Hydraulic "frac” or “tracking” treatments create fluid-conductive cracks or pathways in the subterranean rock formations in gas- and/or oil-producing zones, improving permeability of the desired gas and/or oil being recovered from the formation via the wellbore.
- "Slick water” fluids are water or other aqueous fluids that typically contain a friction-reducing agent to improve the flow characteristics of the aqueous fluid being pumped via the well into the gas- and/or oil-producing zones, whether for fracturing or other treatments.
- the friction reduction agents are usually polymers, and polyacrylamide polymers and copolymers are among the most widely used polymers for this purpose.
- Acrylamide-based or acrylamide-derived polymers and copolymers that have utility in oil and gas field applications include polyacrylamide (sometime abbreviated as PAM), acrylamide-acrylate copolymers, including partially hydrolyzed polyacrylamide copolymers (PHPA), acrylamide-methyl-propane sulfonate copolymers (AMPS) and the like.
- Such copolymers include acrylic acid- acrylamide copolymers, acrylic acid-methacrylamide copolymers, partially hydrolyzed polyacrylamides, partially hydrolyzed polymethacrylamides and the like.
- Acrylamide-based polymers and copolymers have also been described in the patent literature, e.g., U.S. Patent No. 3,254,719 of Root (Dow Chemical) and U.S. Pat. No. 4,152,274 of Phillips et al. (Nalco Chemical), for use as friction reducers in oil field applications such as well fracturing.
- Examples of commercial acrylamide-based polymer products include New- Drill ® products (Baker Hughes, Houston, Texas), FRW- 15 friction reducer (BJ Services, Houston, Texas), and FR-56TM friction reducer (Halliburton, Houston, Texas).
- acrylamide polymers and copolymers in oil and/or gas field applications is in cross-linked form, e.g., to promote formation of water-soluble, reversible gels in well treatment fluids, particularly those used to inhibit or control flow of water or formation gas and/or oil products into the well bore.
- cross- linked acrylamide-based polymers have been described in U.S. Pat. No. 4,995,461 of Sydansk (Marathon Oil) and in U.S. Pat. No. 5,268,112 of Hutchins et al. (Union Oil of California).
- the Sydansk '461 patent teaches that the cross-linked polymer gels of its invention are generally reversible and that residual polymer gel may be removed by reversing the gelation with a conventional "breaker" such as peroxides, hypochlorites or persulfates (col. 9, lines 13-18 and Example 10.)
- acrylamide-based polymers in bodies of water present in the environment is that their decomposition byproducts, whether such decomposition is induced or occurs naturally, may include acrylamide monomer.
- Acrylamide (monomer) is a known environmental hazard that is highly mobile in aqueous environments and that is readily leachable from soil.
- acrylamide monomer
- aqueous bodies of water or other aqueous fluids whether subterranean or surface
- acrylamide-containing aqueous water bodies have the potential to contaminate groundwater, surface water or other drinking water sources.
- Treatment of such large bodies of water or other aqueous fluid is complicated by their large volumes, which are typically millions of liters or gallons.
- the present invention provides a method for reducing or removing acrylamide from acrylamide-containing bodies of water or other aqueous fluids, whether subterranean or surface.
- One embodiment of the present invention is a method for removing acrylamide in an aqueous fluid body comprising contacting an aqueous fluid body contaminated with acrylamide with an aqueous treatment composition containing a peroxygen compound capable of generating free radicals for a period of time sufficient to remove at least a portion of the acrylamide in the untreated aqueous fluid.
- Another embodiment of the present invention is a method for removing acrylamide in a well treatment aqueous fluid comprising contacting a well treatment aqueous fluid containing an acrylamide-derived polymer with a peroxygen compound capable of generating free radicals for a period of time sufficient to remove at least a portion of acrylamide present or formed in the untreated aqueous fluid.
- Still another embodiment of the present invention is an aqueous well treatment fluid composition
- an aqueous well treatment fluid composition comprising an acrylamide-derived polymer and a peroxygen compound capable of generating free radicals, the peroxygen compound being present in an amount sufficient to remove acrylamide present or formed in a subterranean aqueous fluid body.
- a preferred aqueous composition of this invention is a slickwater well treatment fluid containing an acrylamide-derived polymer as a friction reducer.
- the peroxygen compound capable of generating free radicals is preferably selected from the group consisting of ammonium persulfate, potassium persulfate, sodium persulfate, activated peracetic acid, hydrogen peroxide and combinations of these.
- the Figure shows chromatogram results of HPLC analyses for treatments of an acrylamide-containing and polyacrylamide-containing aqueous solution with three peroxygens, ammonium persulfate, peracetic acid and hydrogen peroxide, in an evaluation of these peroxygens for their efficacy in acrylamide removal.
- the present invention provides a straightforward, effective and simple approach for removing acrylamide monomer from acrylamide-contaminated aqueous bodies of water or other aqueous fluids.
- the invention has the advantage of effecting efficient removal of acrylamide without introducing other undesirable compounds or chemicals into the acrylamide-containing aqueous fluid body.
- the invention provides an efficient and economic means for removing acrylamide from large bodies of acrylamide-contaminated water or other aqueous fluid, regardless of whether the acrylamide is present at very low concentrations or is a significant contaminant at higher concentrations.
- Acrylamide monomer in bodies of water or other large aqueous bodies can originate from any number of sources.
- the presence of acrylamide in water supplies or water bodies that are potentially usable for human or animal consumption has increasingly become recognized as undesirable, even in residual amounts or low concentrations, as noted earlier.
- Acrylamide-derived polymers may contain residual amounts of acrylamide monomer, which can be carried along into the end-use applications of the polymer and become leached into water bodies in such applications.
- the principal uses of acrylamide-derived polymers, particularly polyacrylamide, are in flocculation treatment (clarification) of municipal water supplies or municipal or industrial waste water, and as additives used in oil/gas well treatment aqueous media.
- Acrylamide can also contaminate or otherwise be present in water bodies through other end uses since acrylamide-derived polymers have widespread industrial uses, e.g., in wastepaper recycling, in paints and coatings, sewer grouting, and the like.
- polyacrylamide or other acrylamide-derived polymers can degrade or otherwise depolymerize in a manner that leads to some formation of acrylamide monomer.
- Degradation of acrylamide-derived polymers can occur from exposure to strong light or UV (ultraviolet) light or other polymer- degrading agents, resulting in formation of acrylamide monomer, typically in small but measurable amounts.
- the present invention is directed to the removal of acrylamide from an acrylamide-containing aqueous fluid body, as well as control of acrylamide formation in such water bodies.
- the acrylamide-containing or contaminated aqueous fluid body may also contain polyacrylamide polymer or other acrylamide- derived polymer or copolymer.
- acrylamide-derived polymers, including copolymers can be significant source of acrylamide residues in water bodies.
- References in the present specification to acrylamide in the context of the present invention are intended to mean acrylamide monomer, not acrylamide- derived polymer or copolymer.
- removal or removing refers both to the partial reduction in the initial acrylamide concentration and to the essentially complete removal of the acrylamide from the aqueous fluid body being treated.
- the acrylamide content or concentration in the water body or other aqueous fluid body requiring acrylamide removal treatment may be very small or dilute, e.g., about 1 ppm or even lower concentrations. Residual, dilute concentrations of at least about 5 ppm or at least about 10 ppm or higher may also be treated in the method of this invention.
- the treatment method of this invention is equally applicable to, and equally efficacious with, more significant concentrations of acrylamide in the water body or other aqueous fluid body, e.g., at least 50 ppm or at least 100 ppm or at least 500 ppm or higher.
- the acrylamide removal may be a partial reduction, such that there is removal of a significant portion of the acrylamide present, e.g., a reduction to less than half (less than about 50%) of the initial acrylamide concentration. More preferably, the acrylamide removal that is effected is a reduction of at least about 80% of the initial acrylamide present in the aqueous fluid being treated.
- the present invention can remove essentially all of the acrylamide initially present, i.e., reducing the acrylamide concentration to less than about 1 ppm acrylamide after treatment. Such complete removal, i.e., reduction of the acrylamide concentration such that essentially no residual acrylamide is present, e.g., to a concentration of less than about 1 ppm acrylamide, is most preferred in the method of the present invention.
- aqueous water bodies or bodies of other aqueous fluid or aqueous media that contain or are otherwise contaminated with acrylamide and that are treated according to the present invention are characterized by being substantial in size. These large bodies may be located on the earth's surface, e.g., being a lake, pond, retention basin, reservoir, or water treatment facility, or an open or closed storage vessel, containing acrylamide-containing surface water or other acrylamide- containing aqueous medium, or the like.
- the large body of water or other aqueous fluid may also be subterranean, being located below the surface of the earth, e.g., groundwater, aquifers, underground flowing water, or other below-ground natural water body.
- the subterranean body of aqueous fluid may also be man-made, e.g., a body of aqueous drilling fluid or other aqueous fluid used in connection with oil and/or gas drilling, recovery, production enhancement, or like treatment, that is located below the surface.
- the present invention is particularly preferred for treatment of acrylamide- containing subterranean aqueous fluid bodies associated with or used in connection with oil and/or gas field operations.
- a common characteristic or feature of the water or aqueous fluid bodies treated in this invention is that these aqueous bodies are large in volume, i.e., at least 10 3 gallons or more typically at least 10 4 gallons or even 10 5 gallons or more in volume.
- the term water body or body of aqueous fluid or the like is intended to mean a volume of water or other aqueous fluid requiring treatment for removal of acrylamide that is at least 1000 (10 3 ) gallons in volume and, more typically, that is at least 10,000 (10 4 ) gallons in volume.
- the present invention is particularly suited for the efficient and economic treatment of these large bodies of water or other aqueous fluid, unlike laboratory- scale acrylamide treatment procedures which cannot realistically or economically be scaled up for remediation of acrylamide-containing water bodies requiring treatment outside of the laboratory.
- the inventors have unexpectedly discovered that certain peroxygen compounds are highly effective in removing acrylamide from aqueous bodies of water or other aqueous fluids.
- the peroxygen compound also called a peroxygen in this specification, is a peroxygen that is capable of producing free radicals in an aqueous medium.
- the peroxygen employed in this invention is preferably selected from the group of peroxygen compounds consisting of, but not limited to, persulfates, hydrogen peroxide (including compounds that produce hydrogen peroxide in an aqueous medium), and activated peracetic acid.
- peroxygens for removing acrylamide monomer from aqueous bodies also containing polyacrylamide or other acrylamide- derived polymers is noteworthy and surprising, for the following reason.
- Persulfates and hydrogen peroxide are known to be useful in degrading polyacrylamide, i.e., an acrylamide polymer, used in high viscosity or gelling applications in oil and gas field well treatments, the persulfate or hydrogen peroxide functioning as "breakers" after the polymer has served its purpose.
- breakers are believed to result in the formation of shorter polymeric chain fragments when the polyacrylamide is degraded.
- Persulfates are a preferred peroxygen for use in the method of the present invention.
- the persulfate may be selected from peroxymonosulfates (monopersulfates) and peroxydisulfates (dipersulfates).
- the persulfate is preferably an inorganic persulfate and is preferably a peroxydisulfate.
- Preferred persulfates include ammonium persulfate ((NH 4 ) 2 S2 ⁇ 8) and alkali metal persulfates, particularly, sodium persulfate (Na 2 S 2 Os) and potassium persulfate (K 2 S 2 Os).
- the persulfate is preferably at least partially soluble in an aqueous medium, i.e., being at least partially water soluble.
- Hydrogen peroxide may also be used in this invention as the peroxygen for removing acrylamide from aqueous bodies of water or from other acrylami de- containing aqueous fluids.
- Hydrogen peroxide (H 2 O 2 ) is a clear colorless liquid that is slightly more dense than water; hydrogen peroxide is a weak acid.
- Hydrogen peroxide is miscible with water in all proportions and is available commercially at a wide range of concentrations, as concentrated aqueous solutions, e.g., 20 or 35 wt % H 2 O 2 and higher, as well as more dilute aqueous solutions of about 3 wt % up to about 20 wt % H 2 O 2 .
- aqueous hydrogen peroxide may be used in the present invention, with such formulations being diluted to a hydrogen peroxide concentration appropriate for treatment of the acrylamide-containing water body or aqueous fluid body.
- the hydrogen peroxide may alternatively be produced in situ in the aqueous medium from a hydrogen peroxide-generating source, e.g., a solid peroxygen compound that is a hydrogen peroxide source, introduced into the aqueous medium.
- a hydrogen peroxide-generating source e.g., a solid peroxygen compound that is a hydrogen peroxide source
- Such hydrogen peroxide-generating solid compounds are characterized by their ability to generate the required hydrogen peroxide, as a decomposition product or the like, when introduced into or when dissolved or otherwise present in an aqueous medium.
- the hydrogen peroxide-generating peroxygen compounds may be one or more solid peroxygen compounds.
- solid peroxygen compounds include without limitation percarbonates like sodium percarbonate, perborates like sodium perborate, peroxides like sodium, magnesium, calcium, lithium or zinc peroxide, peroxyurea compounds like urea peroxide, persilic acid, hydrogen peroxide adducts of pyrophosphates and phosphates like sodium phosphate perhydrate, and hydrogen peroxide adducts of citrates and sodium silicate, and the like, and mixtures thereof.
- Peracetic acid activated with a suitable activator, catalyst, initiator or its equivalent, is another peroxygen that is effective for removing acrylamide from water bodies or other aqueous fluid in the method of this invention.
- Peracetic acid sometimes called peroxyacetic acid or PAA, is a well known chemical for its strong oxidizing potential.
- Peracetic acid has a molecular formula Of C 2 H 4 O 3 or CH 3 COOOH.
- Peracetic acid is a liquid with an acrid odor and is normally sold in commercial formulations as aqueous solutions typically containing, e.g., 5, 15 or 35 wt % peracetic acid. Such aqueous formulations not only contain peracetic acid but also hydrogen peroxide (e.g., 7-25 wt %) and acetic acid (e.g., 6-39 wt %) in a dynamic chemical equilibrium. Any of these commercial formulations of aqueous peracetic acid may be used in the present invention, being diluted to a peracetic acid concentration appropriate for treatment of the acrylamide-containing water body or aqueous fluid body.
- peracetic acid is another peroxygen useful in the present invention, when peracetic acid is used in combination with a peroxide activator, i.e., activated peracetic acid.
- a peroxide activator i.e., activated peracetic acid.
- peracetic acid is generally ineffective for removing acrylamide from an acrylamide-contaminated aqueous solution.
- a peroxygen activator e.g., a catalyst, initiator or its equivalent
- a peroxygen activator may also optionally be used with persulfate or hydrogen peroxide in this invention to provide enhanced peroxygen reactivity in removing the acrylamide in the water or aqueous fluid body being treated.
- Use of a peroxygen activator with a persulfate or hydrogen peroxide may be desirable in situations where the temperature of the aqueous fluid is not elevated, e.g., above about 4O 0 C, or where more rapid reactivity is sought, or where lower concentrations of the peroxygen are employed, or other less-than-optimal peroxygen reaction conditions are present.
- the peroxygen activator that is used with peracetic acid in this invention and that may optionally be used with persulfates and/or hydrogen peroxide is an element or compound or combinations that is conventionally used as a peroxide compound or hydrogen peroxide activator.
- Peroxide activators are also sometimes called peroxide catalysts or peroxide initiators.
- Preferred peroxygen activators are those that are highly active in catalyzing the formation of free radicals.
- the transition metals commonly include the elements in the d-block of the periodic table, including zinc, cadmium and mercury.
- the transition metals thus correspond to groups 3 to 12 in the periodic table.
- the transition metals therefore include the first transition series, comprising the elements Sc, Ti, V, Cr, Mn, Fe, Co, Ni, Cu, the second transition series, comprising the lanthanides, and the third transition series, comprising the actinides.
- the transition metal peroxygen activators may be in the form of elemental metal, complexed metals or metal compounds.
- Preferred peroxygen initiators include iron (Fe), titanium (Ti), manganese, silver and transition metal compounds like manganese dioxide. Combinations of these activators, e.g., iron and copper, are also effective as peroxygen activators. Iron is a preferred peroxygen activator, particularly for use in combination with peracetic acid, i.e. , activated peracetic acid.
- the peroxygen activator may be added to the peracetic acid or other peroxygen treatment solution or may be otherwise combined with the peroxygen to be in proximity of the peroxygen and be effective as activator.
- the peroxygen activator is typically used in amounts well known to those skilled in the art of activating peroxygens.
- the transition metal activator is typically added in an amount of about 0.1 to about 20% of the weight of the peroxide, but this amount can be increased or decreased outside of this range according to the actual circumstances (temperature, specific activator employed, etc.)
- a peroxygen initiator may be already present in the body of acrylamide-contaminated aqueous fluid being treated.
- aqueous well drilling fluids injected or otherwise introduced into a gas- and/or oil producing formation may contain a peroxygen activator, e.g., iron, as a component specifically added to the well fluid for other well production purposes.
- a subterranean body of aqueous fluid may contain one or more transition metals (including transition metal compounds) that are introduced (via solubilization, leaching or the like) into the fluid as result of the body of aqueous fluid's exposure or contact with minerals or mineral-bearing components (e.g., iron-containing components), in a subterranean formation where the fluid body is located.
- peroxygen initiators may also be employed in this invention in conjunction with the peroxygen compound, e.g., initiators such as tetramethylethylenediamine (TEMED) or other like amines or ammonia being particularly useful with persulfates.
- TEMED tetramethylethylenediamine
- other like amines or ammonia being particularly useful with persulfates.
- physical conditions such as temperature or pH can also be employed as an initiating agent in some circumstances.
- the acrylamide treatment method of this invention may be used with a broad range of peroxygen concentrations.
- the peroxygen treatment concentration refers in this specification to the concentration of peroxygen effectively present in the treated acrylamide-containing aqueous fluid body, once the peroxygen compound has been intimately contacted with or dispersed in the fluid being treated. This peroxygen treatment concentration is calculated on the assumption that no reaction has yet occurred between the peroxygen and acrylamide-containing treated fluid.
- the peroxygen concentration is selected and/or adjusted to provide at least about 1 ppm peroxygen compound, and preferably at least about 5 ppm and more preferably at least about 10 ppm peroxygen compound in the treated fluid and most preferably at least about 100 ppm peroxygen compound in the treated fluid (before acrylamide reaction).
- the peroxygen concentrations below 100 ppm are relatively dilute but are still capable of excellent acrylamide removal efficiencies, particularly at elevated treatment temperatures.
- the peroxygen concentration used in the treatment method of this invention is preferably less than about 1 wt % (10,000 ppm) peroxygen compound, more preferably less than about 0.5 wt % (5000 ppm) peroxygen compound, and most preferably less than about 0.1 wt % (1000 ppm) peroxygen compound, all concentrations being the calculated (theoretical) amount of peroxygen in the treated fluid (before reaction of the peroxygen with the acrylamide).
- the contacting of the peroxygen compound treatment composition with the aqueous fluid body being treated may involve direct mixing, where feasible, or introduction of the peroxygen compound treatment composition into the aqueous fluid body with diffusion of the peroxygen compound being allowed to take place.
- Conventional mixing techniques are best suited for treatment of surface-located aqueous fluid bodies.
- Subterranean or other subsurface aqueous bodies are more suitably treated with the peroxy gen-containing treatment composition by well injection or pumping to effect diffusive mixing or by localized mixing and treatment of a portion of the aqueous fluid body, e.g., treatment of that portion of subterranean fluid that is being withdrawn from the subterranean location.
- Another approach is treatment via an injection well at one end or location of the aqueous body and removal of the treated fluid being effected from another well located some distance from the injection well, the treated fluid thus having to travel the distance between the wells. This latter approach facilitates a lengthy contact or residence time in the treatment step.
- the treatment time i.e., the period of time required for the peroxygen to effect removal of acrylamide in the treated fluid body after the peroxygen is introduced into contact with the acrylamide-containing fluid, may range from a few minutes (provided good mixing between the peroxygen compound and aqueous medium is achieved) to less than about one hour. Treatment times (also called residence times or contact times) of several hours or longer are appropriate where mixing of the peroxygen compound throughout the aqueous medium being treated is less than optimum.
- the residence or contact time employed is typically affected by the treatment temperature (with elevated temperatures providing faster reactivity), peroxygen concentration (higher concentrations providing faster reactivity), acrylamide concentration and the efficiency of mixing of the peroxygen compound throughout the acrylamide-containing aqueous medium being treated.
- the treatment time should be at least about five minutes and is preferably at least about one hour, where good or efficient mixing between the peroxygen and the treated aqueous medium is obtained.
- the treatment time should be longer where there is less than optimum mixing or distribution of the peroxygen throughout the aqueous medium being treated, in such cases preferably at least 3 hours, more preferably at least 10 hours.
- even longer treatment times are feasible, e.g., at least one day or longer.
- the acrylamide reactivity of the persulfate or other peroxygen employed in the present invention increases as the temperature of the aqueous medium being treated is increased.
- An elevated treatment temperature is desirable since it is often effective for increasing the reactivity of the peroxide, providing a quicker reaction with the acrylamide in the aqueous medium being treated.
- the temperature of the acrylamide-containing aqueous medium being treated should be at least 10-15 0 C and is preferably in excess of 2O 0 C, with higher (more elevated) temperatures being preferred.
- the temperature of the acrylamide- containing aqueous fluid or medium being treated is preferably at least 3O 0 C, and more preferably at least 4O 0 C and most preferably at least 5O 0 C.
- Higher or elevated treatment temperatures which provide enhanced peroxygen reactivity, are desirable since contact residence times required for significant or complete acrylamide removal may be reduced, even when relatively low peroxygen treatment concentrations are used with the acrylamide-containing aqueous fluid.
- the temperatures of some subterranean bodies of water or other aqueous fluids are at an elevated temperature, e.g., above at least 3O 0 C, because of the depth they are located below the earth's surface.
- the temperature of subterranean water or other aqueous bodies increases because of the geothermal gradient, which is the natural increase in the temperature of the earth as depth increases (ambient earth temperature increase can be I 0 C per 100 feet of depth).
- Such subterranean bodies of water may be natural, e.g., aquifers or geothermal water, but are more likely man-made, e.g. , fracturing or treatment aqueous fluid injected into a subterranean oil or gas formation.
- Such subterranean aqueous bodies, with the aqueous fluid being at an elevated temperature, are particularly suited for treatment in this invention because of the excellent reactivity of the persulfate or other peroxygen, even at low concentration levels, with the acrylamide contaminant in such aqueous bodies.
- the present invention is also directed to aqueous well treatment fluid compositions containing an acrylamide-derived polymer and a peroxygen compound, the peroxygen compound being present in an amount sufficient to remove acrylamide present or formed in a subterranean aqueous fluid body.
- the peroxygen compound in the composition of this invention is capable of generating free radicals and serves as the active agent for controlling and reducing the presence or formation of unwanted acrylamide monomer.
- the peroxygen compound is typically present in an amount of about 1 ppm to about 1 wt %, based on the weight of the aqueous fluid composition, and more preferably, in an amount of about 100 ppm to about 0.1 wt %.
- the peroxygen compound is preferably selected from the group consisting of ammonium persulfate, potassium persulfate, sodium persulfate, activated peracetic acid, hydrogen peroxide and combinations of these.
- the aqueous composition of this invention is particularly suited for slickwater well treatment operations, in which the aqueous composition is a slickwater well treatment fluid that contains an acrylamide-derived polymer as a friction reducer.
- Aqueous well treatment fluid compositions may include compounds such as demulsifiers, corrosion inhibitors, friction reducers, clay stabilizers, scale inhibitors, biocides, breaker aids, mutual solvents, alcohols, surfactants, antifoam agents, defoamers, viscosity stabilizers, iron control agents, diverters, emulsifiers, foamers, oxygen scavengers, pH control agents, buffers, and the like.
- Use of such fluid compositions in oil and gas field operations may result in the subterranean aqueous fluid bodies that result from such operations likewise containing these chemicals.
- the acrylamide removal treatment of this invention has the significant advantage of requiring only dilute concentrations of persulfate or other peroxygen to effect excellent removal of acrylamide in accordance with this invention.
- This advantage is significant since the bodies of acrylami de-contaminated water or other aqueous fluid being treated are typically present in very large volumes, e.g., millions of gallons or liters, a factor that makes any treatment chemical or compound costly if required to be used in large amounts (i.e., at moderate or high concentrations).
- the preferred peroxygens employed in the present invention are noteworthy for being potent oxidizing agents, yet introducing no unwanted residues or chemical compounds into the aqueous medium being treated in this invention.
- Another significant advantage of the present invention for treatment of acrylamide-containing subterranean water bodies or other aqueous fluid bodies is the fact that acrylamide monomer in such subterranean bodies is not susceptible to natural degradation and typically remains persistently present for long periods of time. The present invention thus provides a means for remediation of such subterranean aqueous fluid bodies that would otherwise present a long term risk of environmental contamination.
- Example 1 describes the chromatographic analysis of an acrylamide- and polyacrylamide-containing aqueous solution which was treated with ammonium persulfate, peracetic acid or hydrogen peroxide to evaluate acrylamide removal. Untreated solution was also analyzed to provide a basis for comparison.
- the acrylamide-containing aqueous solution used in this Example 1 contained about 1.1 ppm acrylamide monomer and about 0.4 wt % polyacrylamide polymer.
- the acrylamide- and polyacrylamide-containing solution was treated in separate studies in this Example with (i) ammonium persulfate; (ii) peracetic acid and (iii) hydrogen peroxide, to evaluate each of these peroxygens for their efficacy on acrylamide removal under various conditions.
- the acrylamide- and polyacrylamide-containing solution was prepared in the laboratory according to the following general procedure.
- the polyacrylamide polymer was a nonionic water-soluble polymer powder with a formula weight of about 5,000,000 (Sigma-Aldrich, St. Louis, Missouri), and the acrylamide monomer was likewise a powder (Sigma-Aldrich).
- the polyacrylamide and acrylamide powders were sequentially added to water that had been purified using a Milli-QTM water purification system (Millipore, Billerica, Massachusetts), and were mixed for 30 minutes using a WaringTM 1 L laboratory blender. The temperature of the water during this procedure was maintained at about 2O 0 C, and the pH value of the resulting solution was about 6-7.
- the acrylamide- and polyacrylamide-containing solution prepared according to the general procedure was divided into four aliquots, placed in four beakers.
- the addition of the ammonium persulfate and other peroxygens was carried out by adding an appropriate amount of the peroxygen to the acrylamide- and polyacrylamide-containing solution at ambient temperature, about 2O 0 C, in a designated beaker, with 3 minutes stirring, to prepare the following peroxygen concentrations: (i) 600 ppm ammonium persulfate; (ii) 750 ppm peracetic acid (but no activator); and (iii) 350 ppm hydrogen peroxide.
- the concentration or content of the peroxygens used in these studies was high enough that the dilution of the acrylamide solution by the addition of peroxygen was insignificant and could be ignored.
- HPLC analysis was carried out in an Agilent HPLC column (Zorbax SB-Aq; 4.6 x 210 mm; 5 ⁇ m particles; part no. 883975-914) and a Phenomenex (Torrance, California) guard column with security guard cartridges AQ C18 4 x 3.0mm.
- the DAD wavelength set at 210 nm.
- the mobile phase was water, buffered at pH 7; flow rate was constant, at 1.5 ml/min.
- HPLC chromatogram results of the HPLC analyses are shown in the Figure.
- the top HPLC chromatogram in the Figure is the result for the untreated solution. This chromatogram shows the acrylamide peak (labeled peak, at 16 minutes) that is clearly evident for the untreated solution sample containing 1.1 ppm acrylamide and 0.4 wt % polyacrylamide but containing no added peroxygen.
- the second HPLC chromatogram in the Figure is the result obtained for the solution sample treated with 600 ppm ammonium persulfate. In comparison with the first chromatogram, the absence of an acrylamide peak is noteworthy.
- the chromatogram for the ammonium persulfate-treated solution shows a new peak (when compared with the first chromatogram) at 8 minutes, and this peak is believed to have resulted from polyacrylamide polymer that is degraded or otherwise oxidized by the persulfate treatment.
- the third HPLC chromatogram in the Figure is the result obtained for the solution sample treated with 750 ppm peracetic acid but no peroxygen activator or catalyst.
- the chromatogram result is very similar to the first chromatogram, with its similar-sized polyacrylamide peak at 16 minutes.
- the chromatogram results indicate that without the presence of a peroxygen activator, peracetic acid treatment of the solution sample containing 1.1 ppm acrylamide and 0.4 wt % polyacrylamide is ineffective for removing the acrylamide. Although the peracetic acid treatment without peroxygen activator was ineffective for acrylamide removal, the treatment was nevertheless observed to reduce the solution viscosity.
- the fourth HPLC chromatogram in the Figure is the result obtained for the solution sample treated with 350 ppm hydrogen peroxide.
- the absence of an acrylamide peak can be noted, just as was obtained with the ammonium persulfate-treated solution in the second chromatogram.
- the chromatogram for the hydrogen peroxide-treated solution shows a new peak (as does the ammonium persulfate treatment chromatogram) when compared with the first chromatogram at 8 minutes, and this peak is again believed to have resulted from polyacrylamide polymer that is degraded or otherwise oxidized by the hydrogen peroxide treatment.
- Example 2 describes screening evaluations for determining the acrylamide removal effectiveness of ammonium persulfate, peracetic acid and activated peracetic acid used to treat acrylamide- and polyacrylamide-containing aqueous solutions, at various temperatures and treatment times (post-treatment aging periods).
- Example 2 Screening evaluations were carried out in this Example 2 using an aqueous solution containing 30 ppm acrylamide and 0.1 wt % polyacrylamide that was prepared generally as described in Example 1. Evaluations were carried out at two temperatures, 2O 0 C and 6O 0 C, and for two post-treatment aging periods, 3 hours and 24 hours, and results are reported in Table 1 below.
- a modified version of the peroxygen treatment using 325 ppm ammonium persulfate was also carried out, via the addition of a peroxygen activator, to demonstrate the benefit of the presence of a peroxygen activator.
- Ferrous sulfate iron (II) sulfate
- the activated ammonium persulfate solution treatment evaluations were carried out as before, at 2O 0 C and 6O 0 C and for 3 & 24 hour aging periods.
- Still another modified version of the peroxygen treatment using 325 ppm ammonium persulfate was carried out, via the addition of potassium chloride, to evaluate the effect of the presence of a soluble chloride salt on acrylamide removal.
- Potassium chloride was added in an amount of 2 wt % KCl in conjunction with the 325 ppm ammonium persulfate in this evaluation; no peroxygen activator was added.
- a modified version of the peroxygen treatment using 750 ppm peracetic acid was also carried out, via the addition of a peroxygen activator, to demonstrate the benefit of the presence of a peroxygen activator.
- Ferrous sulfate iron (II) sulfate
- the activated peracetic acid solution treatment evaluations were carried out as before, at 2O 0 C and 6O 0 C and for 3 & 24 hour aging periods.
- the acrylamide concentration was reduced by about 39% after three hours at 6O 0 C, a removal percentage that remained the same after 24 hours at 6O 0 C.
- the KCl- enhanced peracetic acid treatment at 2O 0 C provided measurable reduction in the acrylamide concentration in the treated solution, by about 10% after three hours at 2O 0 C and by about 21% after 24 hours at 20 0 C.
- the acrylamide concentration reduction was similar to that obtained with the iron activator alone.
- the acrylamide concentration was reduced by about 48% after three hours at 6O 0 C, and by about 97% after 24 hours at 6O 0 C.
- the KCl-enhanced and iron activator-enhanced peracetic acid treatment at 2O 0 C provided measurable reduction in the acrylamide concentration in the treated solution, by about 6% after three hours at 2O 0 C and by about 21% after 24 hours at 20 0 C.
- Example 3 Screening evaluations were carried out in this Example 3 to evaluate the effect of treatment temperature in the use of ammonium persulfate for removal of acrylamide from an acrylamide- and polyacrylamide-containing aqueous solution. Evaluations were carried out at treatment temperatures ranging from 2O 0 C to 100 0 C, for post-treatment aging periods of 1 hour, 3 hours and 24 hours. Analyses of acrylamide content were carried out via HPLC, performed generally as described in Example 1. Results are reported in Tables 2 & 3 below.
- the solution preparation procedure was generally similar to that used in Example 1.
- the aqueous solution as initially prepared contained 9.6 ppm acrylamide and 0.1 wt % polyacrylamide (compared to 30 ppm acrylamide and 0.1 wt % polyacrylamide used in Example 2).
- the first set of evaluations in this Example 3, i.e., those reported in Table 2, was carried out using a peroxygen treatment concentration of 300 ppm ammonium persulfate.
- ammonium persulfate treatment data shown in Table 2 demonstrate that increased temperature had a direct and positive effect on the activity of the ammonium persulfate in removing acrylamide.
- the treatment temperature of 2O 0 C was too low to effect any acrylamide removal at the end of 24 hours after treatment.
- the ammonium persulfate treatment was effective in reducing acrylamide concentrations by 22% and 30%, compared to the untreated sample (Blank), after 24 hours at the respective treatment temperatures.
- ammonium persulfate treatment data shown in Table 2 confirm that at the higher temperatures studied, 5O 0 C, 6O 0 C and 7O 0 C, the increase in acrylamide removal activity was even more significant.
- the ammonium persulfate treatment was effective after only 3 hours in reducing acrylamide concentrations by about 15% and 19%, compared to the untreated sample (Blank), and, after 24 hours, was effective in reducing acrylamide concentrations by about 70% and 93%, compared to the untreated sample, at the respective treatment temperatures.
- ammonium persulfate treatment data shown in Table 3 demonstrate that increased temperature had a direct and positive effect on the activity of the ammonium persulfate in removing acrylamide, particularly at the higher temperatures of 6O 0 C to 100 0 C used in this second evaluation.
- the friction reducer additive was Nalco ASP ® -820 Multipurpose Friction Reducer (Nalco Energy Services, Sugar Land, Texas), which contained an acrylamide-based anionic copolymer, AMPS (2-acrylamido-2-methylpropane sulfonic acid), as the active agent.
- the ASP ® -820 formulation is believed to consist of about 20-30 wt % AMPS copolymer but normally contain no free acrylamide. Typical dosage rates are said to be 0.25 to 1.0 gallon of ASP ® -820 per 1000 gallons of (aqueous) fluid (Nalco Product Bulletin PB-ASP-820, 2004).
- the aqueous solution used in this Example 4 was again prepared according to the general procedure described in Example 1 and contained 38 ppm of added acrylamide, about 0.05 wt % of ASP ® -820 friction reducer and 2 wt % of added KCl.
- 0.5 gm of ASP ® -820 was added per 1 liter of water, approximating a concentration of about 0.5 gallon ASP ® -820 per 1000 gallons of solution.
- the resulting aqueous solution was observed to be milky cloudy, suggesting that the aqueous medium contained undissolved or additional liquid phase components and was not a true solution.
- Example 4 The peroxygen treatment used in this Example 4 for acrylamide removal was 300 ppm ammonium persulfate, the same concentration as had been used in Example 3. Evaluations were carried out at treatment temperatures ranging from 2O 0 C to 100 0 C, for post-treatment aging periods of 3 hours and 24 hours. Analyses of acrylamide content were carried out via HPLC, performed generally as described in Example 1. Results are reported in Table 4 below.
- ammonium persulfate treatment data shown in Table 4 confirm that at the highest temperatures studied, 8O 0 C and 100 0 C, the acrylamide removal activity was very high and acrylamide reductions of 99% or more were achieved after 3 hours following treatment. [0111] At 60 0 C and 7O 0 C, the ammonium persulfate treatment was still highly effective in removing acrylamide: after 24 hours at both 6O 0 C and 7O 0 C, over 98% of the initial acrylamide had been removed by the ammonium persulfate treatment.
- Example 5 Screening evaluations were carried out in this Example 5 to study the effect of dosage or concentration of the ammonium persulfate used as the peroxygen treatment for removal of acrylamide from an acrylamide- and polyacrylamide- containing aqueous solution.
- the solution was maintained at a temperature of 6O 0 C for all of the evaluation studies.
- the solution preparation procedure was generally similar to that used in Example 1, and the aqueous solution as initially prepared contained 20 ppm acrylamide and 0.1 wt % polyacrylamide.
- Ammonium persulfate concentration used for the peroxygen treatment was varied in this study from 2.5 ppm to 2500 ppm (0.25 wt %).
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- Environmental & Geological Engineering (AREA)
- Water Supply & Treatment (AREA)
- Chemical & Material Sciences (AREA)
- Organic Chemistry (AREA)
- Addition Polymer Or Copolymer, Post-Treatments, Or Chemical Modifications (AREA)
- Treatment Of Water By Oxidation Or Reduction (AREA)
- Organic Low-Molecular-Weight Compounds And Preparation Thereof (AREA)
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Abstract
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Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| BRPI0923290A BRPI0923290A2 (en) | 2008-12-09 | 2009-12-04 | methods for removing acrylamide in an aqueous fluid mass, and for removing acrylamide in an aqueous well treatment fluid; and, aqueous fluid composition for well treatment. |
| RU2011128428/05A RU2011128428A (en) | 2008-12-09 | 2009-12-04 | REMOVAL OF ACRYLAMIDE FROM WATER FLUID ARRAYS |
| CA2745876A CA2745876A1 (en) | 2008-12-09 | 2009-12-04 | Acrylamide removal from aqueous fluid bodies |
| MX2011006148A MX2011006148A (en) | 2008-12-09 | 2009-12-04 | Acrylamide removal from aqueous fluid bodies. |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US20127608P | 2008-12-09 | 2008-12-09 | |
| US61/201,276 | 2008-12-09 |
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| WO2010077570A2 true WO2010077570A2 (en) | 2010-07-08 |
| WO2010077570A3 WO2010077570A3 (en) | 2010-08-26 |
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| Application Number | Title | Priority Date | Filing Date |
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| PCT/US2009/066729 Ceased WO2010077570A2 (en) | 2008-12-09 | 2009-12-04 | Acrylamide removal from aqueous fluid bodies |
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| Country | Link |
|---|---|
| US (1) | US20100140186A1 (en) |
| BR (1) | BRPI0923290A2 (en) |
| CA (1) | CA2745876A1 (en) |
| MX (1) | MX2011006148A (en) |
| RU (1) | RU2011128428A (en) |
| WO (1) | WO2010077570A2 (en) |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB2477257B (en) * | 2008-12-18 | 2014-06-18 | Fmc Corp | Peracetic acid oil-field biocide and method |
| RU2644861C2 (en) * | 2016-07-05 | 2018-02-14 | Федеральное государственное бюджетное образовательное учреждение высшего образования "Кемеровский технологический институт пищевой промышленности (университет)" | Method of preparing polyacrylamide-based flocculant |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8809392B2 (en) | 2008-03-28 | 2014-08-19 | Ecolab Usa Inc. | Sulfoperoxycarboxylic acids, their preparation and methods of use as bleaching and antimicrobial agents |
| US8871807B2 (en) | 2008-03-28 | 2014-10-28 | Ecolab Usa Inc. | Detergents capable of cleaning, bleaching, sanitizing and/or disinfecting textiles including sulfoperoxycarboxylic acids |
| NZ587218A (en) | 2008-03-28 | 2012-04-27 | Ecolab Inc | Sulfoperoxycarboxylic acids, their preparation and methods of use as bleaching and antimicrobial agents |
| US9321664B2 (en) | 2011-12-20 | 2016-04-26 | Ecolab Usa Inc. | Stable percarboxylic acid compositions and uses thereof |
| US8454840B1 (en) | 2012-02-28 | 2013-06-04 | Fmc Wyoming Corporation | Selective removal of sulfide from aqueous alkali solutions |
| EP2831000A4 (en) | 2012-03-30 | 2016-03-30 | Ecolab Usa Inc | USE OF PERACETIC ACID / HYDROGEN PEROXIDE AND PEROXIDE REDUCING AGENTS FOR THE TREATMENT OF DRILLING FLUIDS, FRAC FLUIDS, REFUGEE WATER AND WASTEWATER |
| US10165774B2 (en) | 2013-03-05 | 2019-01-01 | Ecolab Usa Inc. | Defoamer useful in a peracid composition with anionic surfactants |
| US8822719B1 (en) | 2013-03-05 | 2014-09-02 | Ecolab Usa Inc. | Peroxycarboxylic acid compositions suitable for inline optical or conductivity monitoring |
| US20140256811A1 (en) | 2013-03-05 | 2014-09-11 | Ecolab Usa Inc. | Efficient stabilizer in controlling self accelerated decomposition temperature of peroxycarboxylic acid compositions with mineral acids |
| EP3841059A1 (en) | 2018-08-22 | 2021-06-30 | Ecolab USA Inc. | Hydrogen peroxide and peracid stabilization with molecules based on a pyridine carboxylic acid at c-3, -4 or -5 |
| CN113811762A (en) | 2019-05-31 | 2021-12-17 | 埃科莱布美国股份有限公司 | Method for monitoring peracid concentration by conductivity measurement and peracid composition |
| WO2021026410A1 (en) | 2019-08-07 | 2021-02-11 | Ecolab Usa Inc. | Polymeric and solid-supported chelators for stabilization of peracid-containing compositions |
| AU2020364008A1 (en) * | 2019-10-10 | 2022-04-28 | Flex-Chem Holding Company, Llc | Method for remediation of subterranean-formed metal-polymer complexes using peracetic acid |
| CN112304879B (en) * | 2020-02-26 | 2023-12-22 | 中国石油天然气股份有限公司 | Detection method for polymer microsphere content |
| CN112209489B (en) * | 2020-08-25 | 2022-12-23 | 广西博世科环保科技股份有限公司 | Preparation method of polymer catalytic water purifier for improving Fenton process treatment effect |
| CN121554169B (en) * | 2026-01-26 | 2026-03-31 | 上海明诺环境科技有限公司 | Method for treating hexamethylenediamine in nylon 66 wastewater based on Fenton oxidation coupling biological method |
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| US3254719A (en) * | 1964-08-04 | 1966-06-07 | Dow Chemical Co | Method for decreasing friction loss in a well fracturing process |
| US3442803A (en) * | 1966-01-19 | 1969-05-06 | Calgon Corp | Thickened friction reducer for waterbased oil well treating fluids |
| US3888312A (en) * | 1974-04-29 | 1975-06-10 | Halliburton Co | Method and compositions for fracturing well formations |
| US4144179A (en) * | 1975-07-21 | 1979-03-13 | Halliburton Company | Composition for treating low temperature subterranean well formations |
| US4137182A (en) * | 1977-06-20 | 1979-01-30 | Standard Oil Company (Indiana) | Process for fracturing well formations using aqueous gels |
| US4152274A (en) * | 1978-02-09 | 1979-05-01 | Nalco Chemical Company | Method for reducing friction loss in a well fracturing process |
| US4552674A (en) * | 1983-08-19 | 1985-11-12 | Fmc Corporation | Composition and method for treating a subterranean formation |
| US4552675A (en) * | 1983-08-19 | 1985-11-12 | Fmc Corporation | Composition and method for treating a subterranean formation |
| US4591443A (en) * | 1984-11-08 | 1986-05-27 | Fmc Corporation | Method for decontaminating a permeable subterranean formation |
| US4610795A (en) * | 1985-08-07 | 1986-09-09 | Fmc Corporation | Peroxygen breaker systems for well completion fluids |
| GB8911525D0 (en) * | 1989-05-19 | 1989-07-05 | Allied Colloids Ltd | Polymeric composition |
| US4995461A (en) * | 1989-07-14 | 1991-02-26 | Marathon Oil Company | Well kill treatment for oil field wellbore operations |
| US5268112A (en) * | 1990-12-21 | 1993-12-07 | Union Oil Company Of California | Gel-forming composition |
| CA2432160C (en) * | 2001-01-09 | 2010-04-13 | Bj Services Company | Well treatment fluid compositions and methods for their use |
| US20060054570A1 (en) * | 2002-06-26 | 2006-03-16 | Block Philip A | Oxidation of organic compounds |
| US20050227874A1 (en) * | 2004-04-06 | 2005-10-13 | Berger Paul D | Composition and method for fracturing subterranean reservoirs |
| US7325615B2 (en) * | 2005-05-02 | 2008-02-05 | Halliburton Energy Services, Inc. | Viscosified treatment fluids comprising polycarboxylic acid gelling agents and associated methods |
| US7621335B2 (en) * | 2006-06-08 | 2009-11-24 | Chemplex, Ltd. | Viscosity breaker for polyacrylamide friction reducers |
-
2009
- 2009-12-04 WO PCT/US2009/066729 patent/WO2010077570A2/en not_active Ceased
- 2009-12-04 BR BRPI0923290A patent/BRPI0923290A2/en not_active IP Right Cessation
- 2009-12-04 US US12/631,120 patent/US20100140186A1/en not_active Abandoned
- 2009-12-04 CA CA2745876A patent/CA2745876A1/en not_active Abandoned
- 2009-12-04 MX MX2011006148A patent/MX2011006148A/en not_active Application Discontinuation
- 2009-12-04 RU RU2011128428/05A patent/RU2011128428A/en not_active Application Discontinuation
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB2477257B (en) * | 2008-12-18 | 2014-06-18 | Fmc Corp | Peracetic acid oil-field biocide and method |
| RU2644861C2 (en) * | 2016-07-05 | 2018-02-14 | Федеральное государственное бюджетное образовательное учреждение высшего образования "Кемеровский технологический институт пищевой промышленности (университет)" | Method of preparing polyacrylamide-based flocculant |
Also Published As
| Publication number | Publication date |
|---|---|
| BRPI0923290A2 (en) | 2017-06-06 |
| CA2745876A1 (en) | 2010-07-08 |
| WO2010077570A3 (en) | 2010-08-26 |
| MX2011006148A (en) | 2011-07-28 |
| US20100140186A1 (en) | 2010-06-10 |
| RU2011128428A (en) | 2013-01-20 |
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