Preparation process by inverse radical emulsion polymerization
The RAFT-based radical polymerization in inverse emulsion addresses the challenges of incorporating a hydrophilic phase in block polymers, achieving high molecular weight and concentration polymers with reduced energy use and emissions.
Patent Information
- Application Number
- FR2023015433
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-12-28
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2043-12-28
AI Technical Summary
Conventional methods for preparing high molecular weight block polymers in inverse emulsion face challenges such as poor incorporation of a hydrophilic phase, leading to compositional drifts and limited molecular weight, and high viscosity issues that hinder homogeneous mixing.
A radical polymerization process using reversible addition-fragmentation chain transfer (RAFT) in inverse emulsion, combining a control agent, controlled polymer chain size, and viscosity management, allows for the integration of a second hydrophilic phase, resulting in high molecular weight and concentration block polymers.
This process achieves high molecular weight and concentration block polymers with improved yield and reduced energy consumption, minimizing greenhouse gas emissions.
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Abstract
Description
Title of the invention: Preparation process by inverse radical emulsion polymerization Technical field of the invention
[0001] The present invention relates to a process for the preparation by radical polymerization of a water-soluble block polymer by chain transfer by reversible addition-fragmentation in inverse emulsion. Prior art
[0002] Block polymers are polymers composed of at least two blocks of different monomers. To obtain them, it is customary to polymerize a first phase of monomers and then add a second phase of different monomer. There are different techniques for obtaining these polymers such as controlled radical polymerization, polymerization in the presence of a template, polymerization on a macromonomer, functionalization of prepolymers allowing the formation of a covalent bond between said prepolymers, or the use of two monomers having a reactivity ratio largely in favor of one of the two.
[0003] High molecular weight block polymers are impossible to prepare in solution or at very low concentration. Indeed, the high viscosity resulting from the formation of the polymer prevents the homogeneous incorporation of a second hydrophilic phase, leading to compositional drifts of the final polymer and a limited molecular weight.
[0004] Inverse emulsion polymerization (water-in-oil) is known to overcome problems related to the viscosity of the polymerized solution. It consists of dissolving the monomers in an aqueous solvent, emulsifying the monomer solution in an oil to obtain a water-in-oil emulsion, and carrying out the polymerization of the monomers in the dispersed phase of the emulsion.
[0005] Documents US4152200, US4191645, US4217262 and US5171783 disclose the preparation of a polymer by means of an inverse emulsion process comprising the progressive addition, during the polymerization, of a hydrophilic phase comprising monomers. This results in poor incorporation of the hydrophilic phase into the inverse emulsion, and a plurality of droplets having different monomeric compositions are then obtained, which leads to drifts in the compositions of the desired polymer.
[0006] The Applicant has developed a radical polymerization process making it possible to obtain inverse emulsions with good incorporation of the hydrophilic phase, which thus allows access to high molecular weight and high concentration block polymers.
[0007] Without wishing to be bound by any theory, the Applicant puts forward the possibility that the combination of (1) a control agent used for reversible addition-fragmentation chain transfer polymerization, (2) the size of the polymer chains of the prepolymer formed in a first step and (3) the control of the viscosity of the hydrophilic phase of the inverse emulsion, allows for better integration of a second hydrophilic phase into the first hydrophilic phase of the inverse emulsion already formed.
[0008] The process of the invention is part of a principle of environmental awareness and the impact of industries and humans on the planet. This process allows the production of high molecular weight block polymers at high concentration, thus improving the yield compared to conventional polymerization and the use of an inverse emulsion makes it possible to reduce the amount of energy associated with the homogenization of the less viscous media, making it possible to reduce the amount of greenhouse gas emissions such as CO2 associated with the production of these polymers. Statement of the invention
[0009] The invention relates to a process for the preparation by radical polymerization of a water-soluble block polymer by chain transfer by reversible addition-fragmentation in inverse emulsion comprising the following steps: a) Mixing a hydrophilic phase PHI and a lipophilic phase PLI with stirring in order to form an inverse emulsion EMU, the hydrophilic phase PHI comprising at least one hydrophilic solvent SH1, at least one monomer A and at least one water-soluble control agent of formula (I):
[0010] [Chem.l]
[0011] in which - Z represents O, S or NR3; - Ri and R2 and R3, identical or different, represent: * an optionally substituted alkyl, acyl, alkenyl or alkynyl group (i), or * a carbon cycle (ii), saturated or not, possibly substituted or aromatic, or * a heterocycle (iii), saturated or unsaturated, optionally substituted or aromatic, these groups and rings (i), (ii) and (iii) may be substituted by substituted aromatic groups or by alkoxycarbonyl or aryloxycarbonyl (-COOR), carboxy (-COOH), acyloxy (-O2CR), carbamoyl (-CON(R)2), cyano (-CN), alkylcarbonyl, alkylarylcarbonyl, arylcarbonyl, arylalkylcarbonyl, phthalimido, maleimido, succinimido, amidino, guanidimo, hydroxy (-OH), amino (-N(R)2), halogen, allyl, epoxy, alkoxy (-OR), S-alkyl, S-aryl, groups having a hydrophilic or ionic character such as alkali salts of carboxylic acids, alkali salts of sulfonic acid, polyalkylene oxide chains (POE, POP), cationic substituents (quaternary ammonium salts); - R representing a CrC2o alkyl or aryl group; - R3 may further represent a hydrogen atom; - Q is a linear or structured polymer chain comprising n identical or different hydrophilic monomers comprising at least one ethylenic function; - n is an integer between 0 and 500, advantageously between 1 and 500, more advantageously between 1 and 100, Q being a single bond between the sulfur atom and the R2 group when n is equal to 0.1a lipophilic phase PLI comprising at least one lipophilic solvent and at least one water-in-oil emulsifying agent; b) PI polymerization, in the presence of at least one initiator, of at least the monomer A of the EMU inverse emulsion to form a PP1 prepolymer having a molecular weight of between 10,000 and 3,000,000 g / mol and having a viscosity of between 400 and 100,000 cps; c) Adding and mixing to the inverse emulsion EMU, a hydrophilic phase PH2 comprising at least one hydrophilic solvent SH2, at least one monomer B to form an inverse emulsion EMI2; the hydrophilic phase PH2 and the hydrophilic phase PHI having distinct compositions, d) Polymerization P2, in the presence of at least one initiator, of at least the monomer B on the prepolymer PP1 in order to form a water-soluble block polymer.
[0012] The present invention also relates to a water-soluble block polymer obtained according to this process.
[0013] The present invention also relates to the use of this water-soluble block polymer in: the recovery of hydrocarbons (oil or gas); well drilling; well cementing; stimulation of hydrocarbon (oil or gas) wells, for example hydraulic fracturing, conforming, diversion; open, closed or semi-closed circuit water treatment; treatment of fermentation musts; sludge treatment; construction; paper or cardboard manufacturing; the battery field; wood treatment; treatment of hydraulic composition (concrete, cement, mortar and aggregates); in the mining industry; formulation of cosmetic products; detergent formulation; textile manufacturing; geothermal energy; sanitary diaper manufacturing; or agriculture.
[0014] Finally, the present invention also relates to the use of this water-soluble block polymer as a flocculant, coagulant, binding agent, fixing agent, viscosity reducing agent, thickening agent, absorbent agent, friction reducing agent, drainage agent, charge retention agent, dehydration agent, conditioning agent, stabilizing agent, film-forming agent, sizing agent, superplasticizing agent, clay inhibitor or dispersant. Description of the invention
[0015] By "polymer" is meant a polymer obtained from at least two different monomers; it may be a copolymer, a terpolymer or a polymer prepared from more than three different monomers.
[0016] By “block polymer” we mean di-blocks, tri-blocks or multi-blocks.
[0017] By "hydrophilic monomer" is meant a monomer which has a coefficient octanol / water partition coefficient, Kow, less than or equal to 1, wherein the partition coefficient Kow is determined at 25°C in an octanol / water mixture having a volume ratio of 1 / 1, at a pH between 6 and 8.
[0018] By "hydrophobic monomer" is meant a monomer which has an octanol / water partition coefficient, Kow, greater than 1, in which the partition coefficient Kow is determined at 25°C in an octanol / water mixture having a volume ratio of 1 / 1, at a pH between 6 and 8.
[0019] The octanol / water partition coefficient, Kow, represents the ratio of concentrations (g / L) of a monomer between the octanol phase and the aqueous phase. It is defined as follows:
[0020] [Math.l] \monomer\ . , rr __ L ■■vctanm — [nwn&nère]^
[0021] By "water-soluble polymer" or "water-soluble control agent" is meant a polymer or a control agent which gives an aqueous solution without insoluble particles when dissolved under stirring at 25°C and with a concentration of 10 gL 1 in deionized water.
[0022] By “X and / or Y” is meant “X”, or “Y”, or “X and Y”.
[0023] Also part of the invention are all possible combinations between the different embodiments disclosed, whether preferred embodiments or given as examples. Furthermore, when ranges of values are indicated, the limits are part of these ranges. The disclosure also includes all combinations between the limits of these ranges of values. For example, the ranges of values “1-20, preferably 5-15”, imply the disclosure of the ranges “1-5”, “1-15”, “5-20” and “15-20” and the values 1, 5, 15 and 20.
[0024] By "water-in-oil emulsifying agent" is meant a compound capable of emulsifying water in an oil and an "oil-in-water emulsifying agent" is meant a compound capable of emulsifying an oil in water. Generally, a water-in-oil emulsifying agent is considered to be a surfactant having an HLB strictly less than 8, and an oil-in-water emulsifying agent is considered to be a surfactant having an HLB greater than or equal to 10. A surfactant having an HLB between 8 and 10 is considered to be a wetting agent. Those skilled in the art may refer to the document "Handbook of Applied Surface and Colloid Chemistry" by K. Holmberg, Chapter 11, if necessary.
[0025] The hydrophilic-lipophilic balance (HLB) of a chemical compound is a measure of its hydrophilic and / or lipophilic properties, determined by calculating the values for different regions of the molecule, as described by Griffin in 1949.
[0026] In the present invention, we have adopted Griffin's method based on calculating a value based on the chemical groups of the molecule. Griffin assigned a dimensionless number between 0 and 20 to give information on the solubility of water and oil.
[0027] The HLB value of a substance having a total molecular mass M and a hydrophilic part of a molecular mass Mh is given by: HLB = 20 (Mh / M).
[0028] The molecular weight is advantageously determined from the intrinsic viscosity of the polymer. The intrinsic viscosity can be measured by methods known to those skilled in the art and can be calculated from the reduced viscosity values for different polymer concentrations by a graphical method consisting of plotting the reduced viscosity values (y-axis) on the concentration (x-axis) and extrapolating the curve to zero concentration. The intrinsic viscosity value is plotted on the y-axis or by using the least squares method. The molecular weight can then be determined by the Mark-Houwink equation: [î]] = KM “ [r|]represents the intrinsic viscosity of the polymer determined by the solution viscosity measurement method. K represents an empirical constant. M represents the molecular weight of the polymer, a represents the Mark-Houwink coefficient. K and a depend on the particular polymer-solvent system.
[0029] The apparent viscosity of the prepolymer PP1 of the hydrophilic phase of the inverse emulsion EMU is measured according to the following method: - precipitation in acetone of the PP1 prepolymer, with stirring (1000 rpm (rotations per minute)); - recovery by filtration of the PP1 prepolymer in solid form; - drying of the PP1 prepolymer in solid form in an oven at 30°C for 24 hours; - redissolving the dried PP1 prepolymer in a 7% by weight sodium chloride solution in water; - measurement of the apparent viscosity of the PP1 prepolymer solution using a Brookfield LVT or LVD viscometer at a temperature of 25 °C. Process for preparing the polymer
[0030] The polymerization is a radical polymerization. Radical polymerization includes polymerization using UV, azo, thermal, or redox salt initiators.
[0031] Polymerization is carried out by reversible addition-fragmentation chain transfer (“Reversible Addition Fragmentation chain Transfer Polymerization” in English (RAFT)).
[0032] RAFT is a reversible deactivation radical polymerization (RDRP) technique combining both the ease of implementation of conventional radical polymerization and the living character of ionic polymerization.
[0033] RAFT is based on a reversible activation-deactivation balance between a dormant species and an active species (growing macro-radical). This activation-deactivation process allows the chains to grow at the same speed until the total consumption of the monomer, making it possible to control the molecular weights of the polymers and obtain narrow molecular weight distributions. This will also minimize the heterogeneity of the composition. The reversible deactivation of the growing chains is at the origin of the minimization of irreversible termination reactions. The vast majority of polymer chains remain in dormant form and are therefore reactivatable. It is then possible to functionalize the chain ends in order to initiate other polymerization modes or to make chain extensions. This mechanism allows access to high molecular weights, controlled compositions and architectures.
[0034] Controlled radical polymerization therefore has the following distinctive aspects: 1. the number of polymer chains is fixed throughout the duration of the reaction, 2. the polymer chains all grow at the same speed, which results in: * a linear increase in molecular weights, * a tight molecular weight distribution, 3. the average molecular weight is controlled by the monomer / control agent molar ratio
[0035] The controlled character is all the more marked as the rate of reactivation of the radical chains is very high compared to the rate of growth of the chains (propagation). However, in certain cases, the rate of reactivation of the radical chains is greater than or equal to the rate of propagation. In these cases, conditions 1 and 2 are not observed and, consequently, the control of the molecular weights is not possible.
[0036] Reversible addition-fragmentation chain transfer polymerization requires the use of a control agent.
[0037] The control agent according to the invention is typically a thiocarbonate derivative such as a dithiocarbonate (or xanthate) or trithiocarbonate or a dithiocarbamate derivative described by formula (I).
[0038] In the context of the invention, the water-soluble control agent is of formula (I):
[0039] [Chem.l] (I)
[0040] in which - Z represents O, S or NR3; - Ri and R2 and R3, identical or different, represent: * an optionally substituted alkyl, acyl, alkenyl or alkynyl group (i), or * a saturated or unsaturated, optionally substituted or aromatic carbon ring (ii), or * a saturated or unsaturated, optionally substituted or aromatic heterocycle (iii), these groups and rings (i), (ii) and (iii) being able to be substituted by substituted aromatic groups or by alkoxycarbonyl or aryloxycarbonyl (-COOR), carboxy (-COOH), acyloxy (-O2CR), carbamoyl (-CON(R)2), cyano (-CN), alkylcarbonyl, alkylarylcarbonyl, arylcarbonyl, arylalkylcarbonyl, phthalimido, maleimido, succinimido, amidino, guanidimo, hydroxy (-OH), amino (-N(R)2), halogen, allyl, epoxy, alkoxy (-OR), S-alkyl, S-aryl, groups having a hydrophilic or ionic character such as alkali salts of carboxylic acids, alkali salts of sulfonic acid, polyalkylene oxide chains (POE, POP), cationic substituents (quaternary ammonium salts); - R representing a C1-C20 alkyl or aryl group; - R3 may further represent a hydrogen atom; - Q is a linear or structured polymer chain comprising n identical or different hydrophilic monomers comprising at least one ethylenic function; - n is an integer between 0 and 500, advantageously between 1 and 500, more advantageously between 1 and 100. When n is equal to 0, Q is a single bond between the sulfur atom and the R2 group. The monomer(s) used to form Q are advantageously chosen from the same hydrophilic monomers used to form the water-soluble block polymer and described in the remainder of the description.
[0041] Q is typically a linear or structured polymer chain, preferably linear.
[0042] In the N(R)2 functions, the two R groups can be identical or different from each other.
[0043] According to a preferred embodiment, the water-soluble control agent is of formula (I) is a dithiocarbonate or xanthate derivative in which Z = O.
[0044] According to another preferred embodiment, the water-soluble control agent is of formula (I) in which: -Z = O ; - Q is a linear or structured polymer chain obtained from 0 to 100 monomers comprising at least one non-ionic hydrophilic monomer and / or at least one anionic hydrophilic monomer and / or at least one cationic hydrophilic monomer.
[0045] According to another preferred embodiment, the water-soluble control agent is of formula (I) in which: -Z = O ; - Q is a linear or structured polymer chain obtained from 0 to 100 monomers comprising at least one non-ionic hydrophilic monomer and / or at least one anionic hydrophilic monomer and / or at least one monomer comprising an LCST group.
[0046] According to another preferred embodiment, the water-soluble control agent is of formula (I) in which Z = O, Q is a polymer chain of an acrylamide monomer, n is an integer between 1 and 100, preferably between 2 and 50 represented by formula (II):
[0048] In another preferred embodiment, the control agent is a trithiocarbonate of formula (I) in which Z = S.
[0049] In another preferred embodiment, the control agent of formula (I) is a trithiocarbonate in which Z = S represented by the formula (III):
[0050] [Chem.3] (III)
[0051] in which Q is a single bond between the sulfur atom and the group R2= -CH(CH3)2-CO2R3 and: - the R3 are identical or different, independently representing an H or a CH3 or a monovalent or divalent cation, advantageously chosen from cations of alkali metals (Li, Na, K...), alkaline earth metals (Ca, Mg...) or ammonium ions (for example the ammonium ion or a tertiary ammonium). Preferably it is sodium.
[0052] In another preferred embodiment, the control agent is a trithiocarbonate of the following formula (IV):
[0053] [Chem.4]
[0054] in which Z=S, Q is a polymer chain of an acrylamide monomer and: - the R3 are identical or different, independently represent an H or a CH3 or a monovalent or divalent cation, advantageously chosen from metal cations alkali metals (Li, Na, K...), alkaline earth metals (Ca, Mg...) or ammonium ion (for example the ammonium ion or a tertiary ammonium), preferably sodium; - n and n' are whole numbers independent of each other, between 1 and 100, preferably between 1 and 50.
[0055] In another preferred embodiment, the control agent of formula (I) is a trithiocarbonate in which Z = S, n = 0, R2 = -CH(CH3)COOR3 and Ri= -(CH2)2CO2R3 represented by the following formula (V):
[0056] [Chem.5]
[0057] and in which Q is a single bond between the sulfur atom and the R2 group: - the R3 are identical or different, independently represent an H, a CH3 or a monovalent or divalent cation, advantageously chosen from cations of alkali metals (Li, Na, K...), alkaline earth metals (Ca, Mg...) or ammonium ions (for example the ammonium ion or a tertiary ammonium). Preferably it is sodium.
[0058] In another preferred embodiment, the control agent is of formula (I) in which Z = S, and Q is a polymer chain of an acrylamide monomer represented by formula (VI):
[0059] [Chem.6]
[0060] and the R3, identical or different, independently represent an H, a CH3 or a monovalent or divalent cation, advantageously chosen from cations of alkali metals (Li, Na, K...), alkaline earth metals (Ca, Mg...) or ammonium ion (for example the ammonium ion or a tertiary ammonium), preferably it is sodium; and - n is an integer, between 1 and 100, preferably between 1 and 50. Inverse emulsion polymerization
[0061] The polymerization is carried out in inverse emulsion. The expression "inverse emulsion" refers to both inverse emulsions and inverse microemulsions. These are water-in-oil emulsions in which the hydrophilic phase is dispersed in the lipophilic phase in the form of drops or droplets.
[0062] An inverse emulsion consists of a two-phase medium. It can be unstable in the absence of a surfactant (surfactants include water-in-oil emulsifying agents and oil-in-water emulsifying agents). Under stirring, hydrophilic phase particles are observed dispersed in a lipophilic phase, exhibiting a broad size distribution around an average that can be of the order of a micrometer. During inverse emulsion polymerization, the monomer is dispersed in the large droplets of the emulsion (diameter: approximately 1 pm to 10 pm) as well as in the small emulsifier micelles (diameter approximately 5 to 10 nm).
[0063] This polymerization technique is well known to those skilled in the art. It consists of emulsifying a hydrophilic phase comprising one or more monomers in a lipophilic phase. This emulsification is carried out using a water-in-oil emulsifying agent.
[0064] Step a)
[0065] Step a) comprises mixing a hydrophilic phase and a lipophilic phase PLI.
[0066] The hydrophilic solvent SH1 of the hydrophilic phase can be any solvent capable of solubilizing a hydrophilic monomer. Advantageously, it is water.
[0067] The amount of monomer A in the hydrophilic phase PHI is advantageously between 10 and 50% by weight relative to the total weight of the hydrophilic phase PHI, preferably between 15 and 45% by weight, more preferably between 20 and 40% by weight.
[0068] The amount of monomer A in the hydrophilic phase PHI is advantageously between 0.1 and 99.9 mol% relative to the total amount of monomer of the water-soluble block polymer, preferably between 1 and 99 mol%, more preferably between 5 and 95 mol%, more preferably between 10 and 90 mol%, more preferably between 15 and 80 mol%, more preferably between 20 and 50 mol%.
[0069] The amount of water-soluble control agent in the hydrophilic phase PHI is advantageously between 5x107% and 10% by weight relative to the total weight of the hydrophilic phase PHI, preferably between 5x10 4 and 5% by weight.
[0070] The mass ratio between the monomer(s) A and the water-soluble control agent in the hydrophilic phase PHI is advantageously between 150:1 and 500,000:1, preferably between 100:1 and 300,000:1, more preferably between 50:1 and 150,000:1, more preferably between 10:1 and 100,000:1.
[0071] The lipophilic solvent of the lipophilic phase PLI may be a mineral oil, a vegetable oil, a synthetic oil or a mixture of these oils.
[0072] Examples of mineral oils are mineral oils containing saturated or unsaturated hydrocarbons of aliphatic, naphthenic, paraffinic, isoparaffinic, cycloparaffinic or naphthyl type, examples of which are Exxsol™ D100, Exxsol™ D80, Isopar™ J, Isopar™ K, Isopar™ L, Isopar™ M, Isopar™ N marketed by ExxonMobil, white oils.
[0073] Examples of vegetable oils are squalene, an ester or triglyceride type oil, such as coco caprylate / caprate, octyldodecyl myristate, ethoxylated vegetable oils, jojoba oil, macadamia oil.
[0074] Examples of synthetic oils are hydrogenated polydecene or hydrogenated polyisobutene, esters such as octyl stearate or butyl oleate.
[0075] The water-in-oil emulsifying agent is advantageously chosen from the following list: polyesters having a molecular weight of between 1000 and 3000 g / mol, condensation products between a poly(isobutenyl) succinic acid or its anhydride and a polyethylene glycol, water-soluble block polymers having a molecular weight of between 2500 and 3500 g / mol, such as for example those sold under the names Hypermer®, sorbitan extracts, such as sorbitan monooleate or polyoleates, sorbitan isostearate or sorbitan sesquioleate, polyethoxylated sorbitan esters, or diethoxylated oleocetyl alcohol or tetraethoxylated laurylacrylate, condensation products of fatty alcohols higher than ethylene, such as the reaction product of oleyl alcohol with 2 oxide units of ethylene;condensation products of alkylphenols and ethylene oxide, such as the reaction product of nonyl phenol with 4 ethylene oxide units. Ethoxylated fatty amines such as Witcamide® 511, betaine products, and ethoxylated amine are also good candidates as water-in-oil emulsifying agents. ;
[0076] The amount of water-in-oil emulsifying agent in the lipophilic phase PLI is advantageously between 5 and 30% by weight relative to the total weight of the inverse emulsion, preferably between 10 and 25% by weight, more preferably between 15 and 20% by weight.
[0077] The mixing of the hydrophilic phase PHI and the lipophilic phase PLI is carried out with stirring, advantageously at a speed of between 10 and 10,000 rpm (rotations per minute), preferably between 100 and 1,000 rpm.
[0078] Agitation can be done by any system allowing a homogeneous mixture, for example we can cite a mixer foot, a homogenizer. Preferably, the mixing is done with a mixer foot.
[0079] Agitation is advantageously maintained during step b).
[0080] The weight ratio between the hydrophilic phase PHI and the lipophilic phase PLI in the inverse emulsion EMU is advantageously between 50 / 50 and 90 / 10, preferably between 60 / 40 and 85 / 15, more preferably between 70 / 30 and 80 / 20.
[0081] The quantity of monomer(s) in the EMU inverse emulsion is advantageously between 5 and 50% by weight relative to the total weight of the EMU inverse emulsion, preferably between 15 and 40% by weight.
[0082] Step bj
[0083] PI polymerization is carried out in the presence of at least one initiator.
[0084] The initiator can be added to the hydrophilic phase PHI before or after the formation of the inverse emulsion EMU. Preferably, the initiator is added before the formation of the inverse emulsion EMI1.
[0085] In the case of redox catalyst, it is possible to put the oxidant in PHI and to pour the reducer or vice versa.
[0086] The polymerization initiators advantageously used may be chosen from compounds which dissociate into radicals under the polymerization conditions, for example: organic peroxides, hydroperoxides, hydrogen peroxide, persulfates, azo compounds and redox catalysts. The use of water-soluble initiators is preferred. In some cases, it is advantageous to use mixtures of various polymerization initiators, for example mixtures of redox salts and azo compounds.
[0087] Advantageously, the quantity of initiator is between 5 and 1,000 ppm relative to the total weight of monomer A of the hydrophilic phase PHI, preferably between 10 and 500 ppm, more preferably between 20 and 100 ppm.
[0088] Prior to polymerization, the atmosphere of the polymerization tank may be replaced by an inert gas such as, for example, nitrogen or argon.
[0089] The polymerization is advantageously carried out at a temperature between 1 and 70°C, preferably between 5 and 60°C, more preferably between 20 and 40°C.
[0090] The duration of the polymerization is advantageously between 60 minutes and 300 minutes, preferably between 90 minutes and 240 minutes.
[0091] Once polymerization has started, the prepolymer PP1 begins to form.
[0092] The prepolymer PP1 obtained at the end of the polymerization PI has a molecular weight advantageously between 15,000 and 2,500,000 g / mol, preferably between 20,000 and 2,000,000 g / mol, more preferably between 25,000 and 1,500,000 g / mol. This is the weight-average molecular weight.
[0093] The hydrophilic phase PHI of the inverse emulsion EMU has a viscosity of between 400 and 100,000 cps after the formation of the prepolymer PP1, preferably between 1,000 and 90,000 cps.
[0094] Step c)
[0095] Step c) can begin before the end of step b) of polymerization (but after the end of the addition of the initiator). In other words, it is not necessary to wait until all the monomers included in the EMU emulsion have polymerized to begin adding the hydrophilic phase PH2. Preferably, step c) begins at the end of step b).
[0096] The hydrophilic phase PH2 has a distinct composition from the hydrophilic phase PHI.
[0097] By distinct composition, we mean a different monomer composition (ratio and / or nature of the monomers).
[0098] In a preferred embodiment, the hydrophilic phase PH2 is free of control agent.
[0099] The combination of reversible addition-fragmentation chain transfer polymerization, from the start of step c) to the end of step b) and the use of different monomers A and B, makes it possible to obtain polymers having a block structure, which is not possible using a conventional inverse emulsion polymerization process.
[0100] The hydrophilic solvent SH2 of the hydrophilic phase PH2 may be different or identical to the hydrophilic solvent SH1 of the hydrophilic phase PHI.
[0101] The hydrophilic solvent SH2 is as defined for SH1. Preferably, it is the same hydrophilic solvent, advantageously it is water.
[0102] The amount of monomer B in the hydrophilic phase PH2 is advantageously between 10 and 40% by weight relative to the total weight of the hydrophilic phase PH2, preferably between 15 and 35% by weight, more preferably between 20 and 30% by weight.
[0103] The amount of monomer B in the hydrophilic phase PH2 is advantageously between 0.1 and 99.9 mol% relative to the total amount of monomer of the water-soluble block polymer, preferably between 1 and 99 mol%, more preferably between 5 and 95 mol%, more preferably between 10 and 90 mol%, more preferably between 15 and 80 mol%, more preferably between 20 and 50 mol%.
[0104] The incorporation of the hydrophilic phase PH2 into the inverse emulsion EMI1 can be done continuously or discontinuously and / or in one go or in several goes. Preferably the addition is done in one go.
[0105] In a particular embodiment, the hydrophilic phase PH2 comprises at least one water-in-oil emulsifying agent, advantageously chosen from the list described above.
[0106] In a particular embodiment, it is possible in addition to the hydrophilic phase PH2 to incorporate a lipophilic phase PL2 in order to adjust the phase weight ratio between the sum of the hydrophilic phases (PHI + PH2) and the sum of the lipophilic phases (PLI + PL2) of the inverse emulsion.
[0107] In the inverse emulsion EMI2, the weight ratio between (hydrophilic phase PHI + hydrophilic phase PH2) and (lipophilic phase PLI + optionally lipophilic phase PL2) is advantageously between 50 / 50 and 90 / 10, preferably between 60 / 40 and 85 / 15, more preferably between 70 / 30 and 80 / 20.
[0108] The polymerization initiator P2 can be added directly into the hydrophilic phase PH2 or cast all at once into the formed PEMI2.
[0109] The mixing of the hydrophilic phase PH2 and the inverse emulsion EMI1 is carried out with stirring, advantageously at a speed of between 50 and 1,000 rpm (rotations per minute), preferably between 100 and 500 rpm.
[0110] The duration of the mixing of the hydrophilic phase PH2 and the inverse emulsion EMU is advantageously between 30 minutes and 480 minutes, preferably between 40 minutes and 240 minutes, more preferably between 60 minutes and 120 minutes.
[0111] Agitation can be carried out by any system allowing homogeneous mixing, for example, a mixer foot, a homogenizer, a mixer arm, an agitation ink. Preferably, the mixing is carried out with an agitation ink.
[0112] Step d)
[0113] Polymerization P2 is carried out in the presence of at least one initiator.
[0114] The initiator can be added to the hydrophilic phase PH2 before or after the formation of the inverse emulsion EMI2. Preferably, the initiator is added before the formation of the inverse emulsion EMI2.
[0115] In the case of a redox catalyst, it is possible to put the oxidant in PH2 and pour the reducer or vice versa.
[0116] The initiator is advantageously chosen from the initiators described above. Preferably, it is the same initiator as that used to initiate the polymerization of step b).
[0117] Advantageously, the quantity of initiator present in the hydrophilic phase PH2 is between 5 and 1,000 ppm relative to the total weight of active material (PP1 + monomer B) used for the polymerization P2, preferably between 10 and 500 ppm, more preferably between 20 and 100 ppm.
[0118] The polymerization is advantageously carried out at a temperature between 5 and 70°C, preferably between 10 and 50°C, more preferably between 20 and 40°C.
[0119] The duration of the polymerization is advantageously between 60 minutes and 300 minutes, preferably between 90 minutes and 240 minutes.
[0120] Once the addition of the hydrophilic phase PH2 has begun, the water-soluble block polymer is formed.
[0121] In a preferred embodiment, the polymerization P2 is carried out in the continuity of the polymerization PI, in other words the conditions applying to the polymerization P2 are the same as the conditions of the polymerization PI.
[0122] The polymerization is considered to be complete when a conversion rate of at least 70 mol% of the monomers (A+B) is reached relative to the total quantity of monomers present in the reaction medium, preferably at least 75 mol%, more preferably at least 80 mol%, even more preferably at least 85 mol%, even more preferably at least 90 mol%, and even more preferably at least 95 mol%. A person skilled in the art will be able to determine the conversion rate of the monomers, which remains a common practice and is part of his general knowledge.
[0123] The amount of water-soluble block polymer in the inverse emulsion EMI2 is advantageously between 5 and 50% by weight relative to the total weight of the inverse emulsion EMI2, preferably between 15 and 40% by weight.
[0124] Particular and optional embodiment(s)
[0125] The method of the invention is not limited to the steps previously described and may understand others.
[0126] The method of the invention may comprise the addition of at least one oil-in-water emulsifying agent.
[0127] The addition of at least one oil-in-water emulsifying agent is generally done at the end of step d).
[0128] The oil-in-water emulsifying agent(s) are advantageously chosen from ethoxylated nonylphenols, preferably having 4 to 10 ethoxylations (i.e. preferably having a degree of ethoxylation ranging from 4 to 10); ethoxylated and / or propoxylated alcohols preferably having an ethoxylation and / or propoxylation comprising 12 to 25 carbon atoms; ethoxylated tridecyl alcohols; ethoxylated and / or propoxylated fatty alcohols; ethoxylated sorbitan esters (advantageously having 20 molar equivalents of ethylene oxide); polyethoxylated sorbitan laurate (advantageously having 20 molar equivalents of ethylene oxide); polyethoxylated castor oil (advantageously having 40 molar equivalents of ethylene oxide); decaethoxylated oleodecyl alcohol; heptaoxyethylated lauryl alcohol; polyethoxylated sorbitan monostearate (advantageously having 20 molar equivalents of ethylene oxide);polyethoxylated alkyl phenols (advantageously having 10 molar equivalents of ethylene oxide) cetyl ether; polyethylene oxide alkyl aryl ether; N-cetyl-N-ethyl morpholinium ethosulfate; sodium lauryl sulfate; condensation products of fatty alcohols; with ethylene oxide (advantageously having 10 molar equivalents of ethylene oxide); condensation products of alkylphenols and ethylene oxide (advantageously having 12 molar equivalents of ethylene oxide); condensation products of fatty amines with 5 molar equivalents or more of ethylene oxide (advantageously 5 to 50 equivalents); ethoxylated tristyryl phenols; condensates of ethylene oxide with polyhydric alcohols partially esterified with fatty chains as well as their anhydrous forms; amine oxides advantageously having alkyl polyglucosides; glucamide; phosphate esters; alkylbenzene sulfonic acids and their salts; and surfactant block polymers and mixtures thereof. The alkyl groups of these oil-in-water emulsifying agents denote linear or branched groups and advantageously having 1 to 20 carbon atoms, more advantageously 3 to 15 carbon atoms.Further, the aryls of these oil-in-water emulsifying agents advantageously comprise 6 to 20 carbon atoms, more preferably 6 to 12 carbon atoms.
[0129] Generally, the inverse emulsion EMI2 comprises between 0.01 and 10% by weight of oil-in-water emulsifying agent relative to the total mass of the inverse emulsion.
[0130] The process of the invention can be carried out in batch, semi-batch or continuously. It is advantageously carried out in batch.
[0131] In a particular embodiment, steps b) and d) are carried out at a pressure lower than atmospheric pressure, preferably at a pressure of between 20 and 800 mbar, more preferably of between 30 and 500 mbar, more preferably of between 40 and 400 mbar.
[0132] In a particular embodiment, the process of the invention comprises, following the polymerization PI and / or following the polymerization P2, a step of removing the residual monomers. The removal of the residual monomers can be done, for example, by adding an excess of initiator.
[0133] The invention is not limited to the addition of a second hydrophilic phase PH2, it can comprise the addition of n hydrophilic phases (with n an integer greater than or equal to 2, n>2). In this case, the monomers of the hydrophilic phase PHn react on the prepolymer PPn-1 and it is then possible to obtain so-called multiblock polymers. The monomers present in these n hydrophilic phases can be identical or different in order to obtain multiblock polymers consisting of different blocks (WXYZ) or multiblock polymers having an alternating structure (XYXY).
[0134] It is possible to add as many hydrophilic phases as desired as long as the molecular weight of the prepolymer PP1 is between 10,000 g / mol and 3,000,000 g / mol, preferably between 15,000 g / mol and 2,500,000 g / mol, more preferably between 20,000 g / mol and 2,000,000 g / mol, and more preferably between 25,000 g / mol and 1,500,000 g / mol, than the molecular weight of the prepolymer PPn-1 obtained before the addition of the last hydrophilic phase PHn has a molecular weight of less than 3,000,000 g / mol, preferably less than 2,500,000 g / mol, more preferably less than 2,000,000 g / mol, and even more preferably less than 1,500,000 g / mol, and that the viscosity of the hydrophilic phase PHI of the inverse emulsion EMU is between 400 and 100,000 cps after the formation of the prepolymer PP1, preferably between 1,000 and 90,000 cps, and that the viscosity of the hydrophilic phase PH(nl) is less than 100,000 cps, preferably less than 90,000 cps.
[0135] Similarly, it is possible to add other lipophilic phases PLq (with q an integer greater than or equal to 1, n>1) in order to adjust the phase weight ratio between the sum of the hydrophilic phases (PHI + PH2 + PHn) and the sum of the lipophilic phases (PLI + PLq) of the inverse emulsion.
[0136] In a particular embodiment, the method of the invention comprises an optional step e) of concentrating the inverse emulsion EMI2, advantageously by distillation, to form an inverse emulsion EMI2'. This concentration step consists of eliminating at least part of the hydrophilic phase and / or the lipophilic phase from the emulsion EMI2.
[0137] In the case of addition of n hydrophilic phases and / or q lipophilic phases, the inverse emulsion EMIn is advantageously distilled to form the inverse emulsion EMIn' (with n an integer greater than or equal to 3, n> 3).
[0138] The distillation can be continuous or discontinuous, with azeotropic entrainment. Preferably, the distillation is continuous and a light oil (boiling point below 200°C) is advantageously used as a lipophilic solvent to facilitate the entrainment of water.
[0139] The inverse emulsion EMI2' advantageously comprises between 20 and 80% by weight of water-soluble block polymer relative to the total weight of the inverse emulsion EMI2', preferably between 30 and 70% by weight, more preferably between 35 and 60% by weight. Composition of the water-soluble block polymer
[0140] The process for preparation by radical polymerization according to the invention can be applied for the preparation of all types of water-soluble block polymers. The monomers A and B are advantageously chosen from monomers comprising at least one ethylenic function chosen from non-ionic hydrophilic monomers, anionic hydrophilic monomers, cationic hydrophilic monomers, zwitterionic hydrophilic monomers, hydrophobic monomers, and mixtures thereof.
[0141] The invention is applicable to any monomeric composition of the water-soluble block polymer. Thus, the invention cannot be limited to a specific and preferred monomeric composition.
[0142] The monomers A and B may be identical or different. Preferably they are different.
[0143] When the monomers A and B are identical, a water-soluble homopolymer is obtained.
[0144] When the monomers A and B are different, a water-soluble block copolymer is obtained.
[0145] Advantageously, the non-ionic hydrophilic monomer(s) that can be used in the context of the invention are chosen, in particular, from acrylamide, methacrylamide, N-alkylacrylamides, N-alkylmethacrylamides, N,N-dialkyl acrylamides (for example N,N-dimethylacrylamide or N,N-diethylacrylamide), N,N-dialkylmethacrylamides, alkoxylated esters of acrylic acid, alkoxylated esters of methacrylic acid, N-vinylpyrrolidone, N-methylol(meth)acrylamide, N-vinyl caprolactam, N-vinylformamide (NVF), N-vinyl acetamide, N-vinyl imidazole, N-vinyl succinimide, acryloyl morpholine (ACMO), glycidyl methacrylate, vinyl acetate, glyceryl methacrylate, diacetone acrylamide, methacrylic anhydride, acrylonitrile, maleic anhydride, itaconic anhydride, itaconamide, hydroxyalkyl (meth)acrylate, thioalkyl (meth)acrylate, isoprenol and its alkoxylated derivatives,hydroxyethyl(meth)acrylates and their alkoxylated derivatives, hydroxypropyl(meth)acrylate and its alkoxylated derivatives, and mixtures thereof. Among these non-ionic monomers, the alkyl groups are advantageously C1-C5, more advantageously C1-C3. Preferably the non-ionic hydrophilic monomer is acrylamide.
[0146] Advantageously, the anionic hydrophilic monomer(s) that can be used in the context of the invention can be chosen from a broad group. These monomers can have a vinyl function, in particular acrylic, maleic, fumaric, itaconic, or allyl. They can also contain a carboxylate, phosphonate, phosphate, sulfonate, sulfate group, or another group with anionic charge.Preferred monomers belonging to this class are, for example, acrylic acid; methacrylic acid; dimethylacrylic acid; acryloyl chloride; crotonic acid; maleic acid; fumaric acid; 3-acrylamido 3-methylbutanoic acid; strong acid monomers having, for example, a sulfonic acid or phosphonic acid function such as vinylsulfonic acid, vinylphosphonic acid, allylsulfonic acid, methallylsulfonic acid, 2-methylidenepropane-1,3-disulfonic acid, 2-sulfoethylmethacrylate, sulfopropylmethacrylate, sulfopropylacrylate, acid. allylphosphonic acid, ethylene glycol methacrylate phosphate, styrene sulfonic acid, 2-acrylamido-2-methylpropane sulfonic acid (ATBS), 2-acrylamido-2-methylpropane disulfonic acid, 3-allyloxy-2-hydroxypropane sulfonic acid, diethylallylphosphonate, carboxyethyl acrylate; water-soluble salts of these monomers such as their alkali metal, alkaline earth metal, or ammonium salts; and mixtures thereof. Preferably, the anionic hydrophilic monomer is acrylic acid.
[0147] In a particular embodiment of the invention, the anionic monomer(s) may be salified. It may also be a mixture of acid form and salified form, for example a mixture of acrylic acid and acrylate.
[0148] By salified is meant the substitution of a proton of at least one acid function of the type - Ra(=O)-OH (with Ra representing P, S or C) of the anionic monomer by a metal cation or organic cation to form a salt of the type -R(=O)-OX (X being a metal cation or an organic cation). In other words, the non-salified form corresponds to the acid form of the monomer, for example Rb-C(=O)-OH in the case of the carboxylic acid function, whereas the salified form of the monomer corresponds to the form Rb-C(=O)-0 X+, X+ corresponding to a metal cation or an organic cation. The salification of the acid functions can be partial or total.
[0149] The metal cation is advantageously an alkali metal salt (Li, Na, K...) or an alkaline earth metal salt (Ca, Mg...), and the organic cation is advantageously the ammonium ion or a tertiary ammonium. The preferred salts are sodium salts.
[0150] Salification can be done before or after polymerization, preferably before.
[0151] In a particular embodiment, the polymer advantageously comprises between 1 and 100 mol% of water-soluble anionic monomer(s) in salified form, preferably between 50 and 100 mol%.
[0152] Advantageously, the cationic hydrophilic monomer(s) that can be used in the context of the invention are chosen, in particular, from monomers of the vinyl type, in particular acrylamide, acrylic, allylic or maleic having a protonatable amine or ammonium function, advantageously quaternary ammonium. Mention may be made, in particular and in a non-limiting manner, of diallyldialkyl ammonium salts such as dimethyldiallylammonium chloride (DADMAC); acidified or quaternized salts of dialkylaminoalkyl(meth)acrylamides, such as for example (3-methacrylamidopropyl)trimethylammonium chloride (MAPTAC), (3-acrylamidopropyl)trimethylammonium chloride (APTAC); acidified or quaternized salts of dialkylaminoalkyl acrylate such as quaternized or salified dimethylaminoethyl acrylate (ADAME); acidified or quaternized salts of methacrylate of dialkyl aminoalkyl such as quaternized or salified dimethylaminoethyl methacrylate (MADAME); acidified or quaternized salts of N,N-dimethylallylamine; acidified or quaternized salts of diallylmethylamine; acidified or quaternized salts of diallylamine; vinylamine obtained by the hydrolysis (basic or acidic) of an amide group -N(R2)-CO-R' with R1 and R2 being, independently, a hydrogen atom or an alkylated chain of 1 to 6 carbons, for example vinylamine resulting from the hydrolysis of N-vinylformamide; vinylamine obtained by Hofmann degradation; and mixtures thereof. Advantageously, the alkyl groups are C1-C7, preferably C1-C3 and may be linear, cyclic, saturated or unsaturated chains. Preferably, the cationic hydrophilic monomer is quaternized or salified dimethylaminoethyl acrylate (ADAME).
[0153] A person skilled in the art will know how to prepare the quaternized monomers, for example using a quaternizing agent of type RX, R being an alkyl group and X being a halogen or a sulfate. The quaternizing agent may be chosen from dialkyl sulfates comprising from 1 to 6 carbon atoms or alkyl halides comprising from 1 to 6 carbon atoms. Preferably, the quaternizing agent is chosen from methyl chloride, benzyl chloride, dimethyl sulfate or diethyl sulfate. In addition, the present invention also covers monomers of type DADMAC, APTAC and MAPTAC whose counterion is a sulfate, a fluoride, a bromide or an iodide instead of the chloride.
[0154] By “quaternizing agent” we mean a molecule capable of alkylating a tertiary amine.
[0155] Advantageously, the zwitterionic hydrophilic monomer(s) which can be used in the context of the invention are chosen, in particular, from derivatives of a vinyl-type unit (advantageously acrylamide, acrylic, allyl or maleic), this monomer having an amine or quaternary ammonium function and an acid function of carboxylic (or carboxylate), sulfonic (or sulfonate) or phosphoric (or phosphate) type.
[0156] Preferably, this monomer comprises an amine or quaternary ammonium function and an acid function of carboxylic (or carboxylate), sulfonic (or sulfonate) or phosphoric (or phosphate) type.
[0157] Mention may be made in particular and in a non-limiting manner of dimethylaminoethyl acrylate derivatives, such as 2 - ((2-9 (acryloyloxy) ethyl) dimethylammonio) ethane-1-sulfonate, 3 - ((2- (acryloyloxy) ethyl) dimethylammonio) propane-1-sulfonate, 4 - ((2- (acryloyloxy) ethyl) dimethylammonio) butane-1-sulfonate, [2- (acryloyloxy) ethyl] (dimethylammonio) acetate, dimethylaminoethyl methacrylate derivatives such as 2 - ((2- (methacryloyloxy) ethyl) dimethylammonio) ethane-1-sulfonate, 3 - ((2- (methacryloyloxy) ethyl) dimethylammonio) propane-1-sulfonate, 4 - ((2 - (methacryloyloxy) ethyl) dimethylammonio) butane-1-sulfonate, [2- (methacryloyloxy) ethyl] (dimethylammonio) acetate, dimethylamino propylacrylamide derivatives such as 2 - ((3-acrylamidopropyl) dimethylammonio) ethane-1-sulfonate, 3 - ((3-acrylamidopropyl) dimethylammonio) propane-1-sulfonate, 4 - ((3-acrylamidopropyl) dimethylammonio) butane-1-sulfonate, [3- (acryloyl) oxy) propyl] (dimethylammonio) acetate, dimethylamino propyl methylacrylamide, or derivatives such as 2 - ((3-methacrylamidopropyl) dimethylammonio) ethane-1-sulfonate, 3-(dimethylammonio)propane-1-sulfonate 4-((3-methacrylamidopropyl)dimethylammonio)butane-1-sulfonate and propyl[3-(methacryloyloxy)](dimethylammonio)acetate and mixtures thereof.
[0158] Other zwitterionic hydrophilic monomers may be used, in particular those described by the Applicant in document WO2021 / 123599.
[0159] In a particular embodiment, the polymer may comprise at least one LCST group.
[0160] According to the general knowledge of a person skilled in the art, an LCST group corresponds to a group whose solubility in water for a given concentration is modified beyond a certain temperature and as a function of the salinity. This is a group having a heating transition temperature defining its lack of affinity with the solvent medium. The lack of affinity with the solvent results in opacification or a loss of transparency which may be due to precipitation, aggregation, gelation or viscosification of the medium. The minimum transition temperature is called “LCST” (lower critical solubility temperature). For each concentration of LCST group, a heating transition temperature is observed. It is higher than the LCST which is the minimum point of the curve.Below this temperature the polymer is soluble in water, above this temperature the polymer loses its solubility in water.
[0161] In a particular embodiment, the polymer may comprise at least one UCST group.
[0162] According to the general knowledge of a person skilled in the art, a UCST group corresponds to a group whose solubility in water for a given concentration is modified below a certain temperature and as a function of the salinity. This is a group having a cooling transition temperature defining its lack of affinity with the solvent medium. The lack of affinity with the solvent results in opacification or loss of transparency which may be due to precipitation, aggregation, gelation or viscosification of the medium. The maximum transition temperature is called " UCST (Upper Critical Solution Temperature). For each group concentration at UCST, a cooling transition temperature is observed. It is lower than the UCST, which is the maximum point of the curve. Above this temperature, the polymer is soluble in water; below this temperature, the polymer loses its solubility in water.
[0163] Advantageously, the monomer(s) having a hydrophobic character which can be used in the context of the invention can be chosen, in particular, from (meth)acrylic acid esters having a (i) C4-C30 alkyl, or (ii) arylalkyl (C4-C30 alkyl, C4-C30 aryl), or (iii) propoxylated, or (iv) ethoxylated, or (v) ethoxylated and propoxylated chain; alkyl aryl sulfonates (C4-C30 alkyl, C4-C30 aryl); mono- or di-substituted amides of (meth)acrylamide having a (i) C4-C30 alkyl, or (ii) arylalkyl (C4-C30 alkyl, C4-C30 aryl), or (iii) propoxylated, or (iv) ethoxylated, or (v) ethoxylated and propoxylated chain; anionic or cationic monomeric derivatives of (meth)acrylamide or (meth)acrylic acid bearing a hydrophobic chain; and mixtures thereof. The hydrophobic monomers may comprise halogen atoms, for example chlorine.
[0164] Among these hydrophobic monomers: - the alkyl groups are preferably C4-C2o, more preferably C4-C8. The C6-C2o alkyls are preferably linear alkyls while the C4-C5 alkyls are preferably branched, - the arylalkyl groups are preferably C7-C25, more preferably C7-C 15, - the ethoxylated chains advantageously comprise between 1 and 200 -CH2-CH 2-O- groups, preferably between 6 and 100, more preferably between 10 and 40, - the propoxylated chains advantageously comprise between 1 and 50 -CH2-CH2-CH2-O- groups, more preferably between 1 and 20.
[0165] Preferred hydrophobic monomers belonging to these classes are, for example: - n-hexyl (meth)acrylate, n-octyl (meth)acrylate, octyl (meth)acrylamide, lauryl (meth)acrylate, lauryl (meth)acrylamide, myristyl (meth)acrylate, myristyl (meth)acrylamide, pentadecyl (meth)acrylate, pentadecyl (meth)acrylamide, cetyl (meth)acrylate, cetyl (meth)acrylamide, oleyl (meth)acrylate, oleyl (meth)acrylamide, erucyl (meth)acrylate, erucyl (meth)acrylamide, N-tert-Butyl(meth)acrylamide, vinylpyridine, 2-ethylhexyl acrylate, hemi-esters of C4-C22 itaconic acid, acidified or quaternized salts of C4-C22 dialkylaminoalkyl (meth)acrylate 22, acidified or quaternized salts of C4-C22 dialkylaminoalkyl(meth)acrylamides, acrylamidoundecanoic acid, and mixtures thereof, - cationic allyl derivatives of formula (VII) or (VIII):
[0166] [Chem.7] (VII) (VIII)
[0167] in which: R: independently an alkyl chain containing 1 to 4 carbons; Ri: an alkyl or arylalkyl chain comprising 8 to 30 carbons; X: a halide selected from the group consisting of bromides, chlorides, iodides, fluorides and any negatively charged counterion; and, preferably, hydrophobic cationic derivatives of the (meth)acryloyl type corresponding to formula (IX):
[0168] [Chem. 8] (IX)
[0169] in which: - A represents O or N-R5 (preferably A represents N-R5), - R2, R3, R4, R5, R6, R?: independently a hydrogen atom or an alkyl chain containing 1 to 4 carbons, - E: an alkyl chain comprising 1 to 20 carbons, - R8: an alkyl or arylalkyl chain comprising 8 to 30 carbons, - X: a halide chosen from the group consisting of bromides, chlorides, iodides, fluorides, and any negatively charged counterion.
[0170] The water-soluble block polymer advantageously comprises less than 3 mol% of hydrophobic monomers.
[0171] When the water-soluble block polymer comprises at least one hydrophobic monomer, its quantity is adjusted so that the polymer remains soluble in water.
[0172] The hydrophobic monomer(s) may be added in step a) or c), preferably in step c).
[0173] The quantities of the different monomer(s) will be adjusted by a person skilled in the art so as not to exceed 100 mol% during the preparation of the water-soluble block polymer according to the invention.
[0174] The water-soluble block polymer may have a linear, branched, crosslinked, star-shaped or comb-shaped structure. This structure may be obtained, according to the general knowledge of a person skilled in the art, for example by selection of the initiator, the transfer agent, the water-soluble control agent, the incorporation of structural monomers, or the concentration.
[0175] The water-soluble block polymer may further be structured by a branching agent. By structured is meant a non-linear polymer which has side chains.
[0176] The branching agent is advantageously chosen from: - structural agents, which may be chosen from the group comprising monomers with polyethylene unsaturation (having at least two unsaturated functions), such as for example vinyl functions, in particular allylic or acrylic, and examples which may be mentioned are methylene bis acrylamide (MBA), triallyamine, or tetraallylammonium chloride or 1,2 dihydroxyethylene bis-(N-acrylamide), - monomers having at least two epoxy functions, - monomers having at least one unsaturated function and one epoxy function, - macroinitiators such as polyperoxides, polyazos and polytransfer agents such as polymercaptant polymers and polyols, - functionalized polysaccharides, - water-soluble metal complexes composed of: * of a metal with a valence greater than 3 such as, by way of example and without limitation, aluminum, boron, zirconium or titanium, and * of a ligand carrying a hydroxyl function.
[0177] The branching agent may be added in step a) or c).
[0178] When the water-soluble block polymer comprises a branching agent, it remains soluble in water. Those skilled in the art will know how to adjust the amount of branching agent, and possibly the amount of transfer agent, in order to achieve this result.
[0179] In a particular embodiment, the water-soluble block polymer does not comprise a branching agent.
[0180] In a particular embodiment, the water-soluble block polymer may comprise a transfer agent.
[0181] The transfer agent is advantageously chosen from methanol; isopropyl alcohol; sodium hypophosphite; calcium hypophosphite; magnesium hypophosphite; potassium hypophosphite; ammonium hypophosphite; formic acid; sodium formate; calcium formate; magnesium formate; potassium formate; ammonium formate; 2-mercaptoethanol; 3-mercaptopropanol; dithiopropylene glycol; thioglycerol; thioglycolic acid; thiohydracrylic acid; thiolactic acid; thiomalic acid; cysteine; aminoethanethiol; thioglycolates; allyl phosphites; allyl mercaptans, such as n-dodecyl mercaptan; sodium methallysulfonate; calcium methallysulfonate; magnesium methallysulfonate; potassium methallysulfonate; ammonium methallysulfonate;alkyl phosphites such as trialkyl (C12-C15) phosphites, di-oleyl-hydrogen phosphites, dibutyl phosphite; dialkyldithiophosphates such as dioctyl phosphonate; tertiary nonyl mercaptan; 2-ethylhexyl thioglycolate; n-octyl mercaptan; n-dodecyl mercaptan; tert-dodecyl mercaptan; isooctylthioglycolate; 2-ethylhexyl thioglycolate; 2-ethylhexyl mercaptoacetate; polythiols; and mixtures thereof. Preferably, these are sodium hypophosphite or sodium formate.
[0182] The transfer agent may be added in step a) or c).
[0183] In a particular embodiment, the water-soluble block polymer does not comprise a transfer agent.
[0184] The water-soluble block polymer according to the invention may have a molecular weight covering all applications in which high molecular weight polymers can be used. Thus, the water-soluble block polymer advantageously has a molecular weight of at least 100,000 g / mol, preferably at least 1,000,000 g / mol, more preferably at least 1,500,000 g / mol, more preferably at least 2,000,000 g / mol, more preferably at least 3,000,000 g / mol, more preferably at least 5,000,000 g / mol, more preferably at least 7,000,000 g / mol, more preferably at least 10,000,000 g / mol. This is the weight average molecular weight. Advantageously, the molecular weight of the water-soluble block polymer is less than 30,000,000 g / mol, preferably less than 20,000,000 g / mol, and more preferably less than 15,000,000 g / mol.
[0185] The polydispersity index (Ip) of the polymer obtained according to the invention is advantageously less than or equal to 5 (<5), preferably less than or equal to 4 (<4), preferably less than or equal to 3 (<3), more preferably less than or equal to 2 (<2) and even more preferably less than or equal to 1.5 (<1.5). It is advantageously between 1 and 2. The polydispersity index is determined according to the following formula: Ip = Mw / Mn Mw is the weight average molecular weight Mn is the number average molecular weight.
[0186] The present invention also relates to a water-soluble block polymer obtained according to the process of the invention.
[0187] The present invention also relates to the use of this water-soluble block polymer in: the recovery of hydrocarbons (oil or gas); well drilling; well cementing; stimulation of hydrocarbon (oil or gas) wells, for example hydraulic fracturing, conforming, diversion; open, closed or semi-closed circuit water treatment; treatment of fermentation musts; sludge treatment; construction; paper or cardboard manufacturing; the battery field; wood treatment; hydraulic composition treatment (concrete, cement, mortar and aggregates); in the mining industry; formulation of cosmetic products; formulation of detergents; textile manufacturing; geothermal energy; hygienic diaper manufacturing; or agriculture.
[0188] Finally, the present invention also relates to the use of this water-soluble block polymer as a flocculant, coagulant, binding agent, fixing agent, viscosity reducing agent, thickening agent, absorbent agent, friction reducing agent, drainage agent, charge retention agent, dehydration agent, conditioning agent, stabilizing agent, film-forming agent, sizing agent, superplasticizing agent, clay inhibitor or dispersant.
[0189] The invention and the advantages resulting therefrom will emerge more clearly from the following figures and examples given in order to illustrate the invention and not in a limiting manner. Description of the figures
[0190] [Fig.l] [Fig.l] illustrates the measurement of the molecular weight of example PP1-CE3 Counterexample) by size exclusion chromatography (CES).
[0191] [Fig.2] [Fig.2] illustrates the measurement of the molecular weight of example PP1-6 (Invention) by size exclusion chromatography (SEC). Examples
[0192] List of abbreviations: AM: Acrylamide; AA: Acrylic acid; ADC: [2-(Acryloyloxy)ethyl]trimethylammonium chloride; ATBS: 2-Acrylamido-2-methylpropanesulfonic acid. Characterization of polymers
[0193] Characterization of the number-average molar masses (Mn), weight-average molar masses (Mw) and polydispersity index
[0194] The polymers were analyzed by size exclusion chromatography (SEC) to determine the average molar masses (Mn, Mw). The analytical conditions are as follows: - 1 “Shodex” pre-column referenced SB807-G; - 2 “Shodex OHpak” columns mounted in series, referenced SB-807 HQ / SB-805 HQ); - The columns are coupled with a refractive index detector referenced “Optilab T-rEX” and “Dawn Heleos II” 18 angles marketed by the company Wyatt Technology. Characterizations of apparent viscosities
[0195] The apparent viscosities of the hydrophilic phase of the EMU inverse emulsion are measured according to the following method: - precipitation in acetone of the prepolymer PP1, with stirring (1000 rpm (rotations per minute)); - recovery by filtration of the PP1 prepolymer in solid form; - drying of the PP1 prepolymer in solid form in an oven at 30°C for 24 hours; - redissolving the dried PP1 prepolymer in a 7% by weight sodium chloride solution; - measurement of apparent viscosity using a Brookfield LVT or LVD viscometer at a temperature between 23 and 25°C.
[0196] Characterization of particle sizes and particle size distributions of polymer inverse emulsions
[0197] The polymers were analyzed by laser diffraction. The device used is the MASTERSIZER MS3000 marketed by the company Malvem. This device is used to measure particle sizes in a range of 0.5 to 2000 pm. It is also used to measure the particle size distribution. This device has an organic liquid channel for the analysis of aqueous polymer particles emulsified in oil.
[0198] The device is equipped with three main elements which allow the system to consistently and reliably provide precise granulometry data: - an optical bench: equipped with a laser beam (1 single optical measurement path) - a sample dispersion unit - Mastersizer 3000 software that controls the system during measurement and analyzes the diffusion data.
[0199] Example 1: Synthesis of a water-soluble control agent Xa
[0200] In a synthesis reactor, the following are introduced at room temperature: - 4.53 g of o-ethyl-S-(l-methoxycarbonyl)ethyl dithiocarbonate; - 22.66 g of acrylamide; - 27.19 g of deionized water; - 45.31 g of acetic acid; - 0.32 g of azo initiator (“VA 044”).
[0201] The reaction mixture is degassed and then heated to 60°C. The reaction is stirred for 3 h.
[0202] Control agents Xb to Xh are prepared according to the protocol described in the example 1. The nature of the groups composing these control agents Xa to Xh is presented in Table 1 below:
[0203] [Tables 1] Water-soluble control agent Ri ZC(S) SQ R2 Ri Ri ZQ Composition Mil (g / moi) Xa c>h5 CH(CH3)-COOCH3 O AM 700 Xh c2h; CH(CH3)-COOCH3 O AM 1400 Xc (ML CH(CH3)-COOCH3 O - - HOOC-C2H5 CHtCH3LCOOH s - - Table 1#: Control agents Xa to Xh
[0204] Example 2: Preparation of inverse emulsions EMU (step a)) and prepolymers PP1-1 to PP1-23 (step b))
[0205] Example 2a: Preparation of an EMIlet emulsion of a PPl-l prepolymer according to the invention
[0206] Preparation of the hydrophilic phase PHI: In a reactor equipped with a stirring system, the following are mixed at room temperature: - 276.7 g of acrylamide (50% by weight in water); - 60.1 g of acrylic acid; - 170.3 g of deionized water; - 60.1 g of soda (50% by weight in water) - 50 ppm of tertiary butyl hydroperoxide; - 5,000 ppm of the water-soluble control agent Xc relative to the weight of the monomers.
[0207] Preparation of the lipophilic phase PLI: Water-in-oil emulsifiers (2.5% by weight relative to the weight of the inverse emulsion), and a mixture of alkanolamide and sorbitan monooleate, are mixed in 250 g of “Exxsol D100” oil.
[0208] Emulsification (step a)) and polymerization (step b)): The hydrophilic phase PHI is mixed and emulsified in the lipophilic phase PLI. The resulting inverse emulsion EMI1-1 is then degassed for 60 minutes before the polymerization Pl-1 is initiated at room temperature by pouring 8 mL of a 1 g / L aqueous solution of sodium metabisulfite to form the prepolymer PP1-1.
[0209] Example 2b: Preparation of inverse emulsions EMI1-2 to EMI1-23 and prepolymers PP1-2 to PP1-23
[0210] The inverse emulsions EMI1-2 to EMI1-23 and prepolymers PP1-2 to PP1-23 are prepared according to the experimental protocol described in example 2a.
[0211] Counterexamples of emulsions and prepolymers are also prepared, without adding a control agent, by a protocol identical to that described in example 2a.
[0212] The compositions and properties of EMI1-2 to EMI1-23 and prepolymers PP1-2 to PP 1-23 are presented in Tables 2 and 3 below.
[0213] [Tables2] Inverse emulsion Apparent viscosity (cP, 30 rpm) Polydispersity of polymer particles in the inverse emulsion of PP1 EMU 1 1,380 Monodisperse EMU 2 1,210 Monodisperse EMU -3 1,320 Monodisperse EM114 1,750 Monodisperse EMU 5 1,420 Monodisperse EMU-6 1,380 Monodisperse EMU 7 1,950 Monodisperse EMUS 5 980 Monodisperse EMU-9 21,200 Monodisperse EMU40 12,400 Monodisperse EMU 11 9,990 Monodisperse EMU 12 220 Monodisperse EMU 13 102,000 Monodisperse EMU 14 1,350 Monodisperse EMU -15 1,920 Monodisperse EMH16 1,300 Monodisperse EMU 17 1,750 Monodisperse EMU 18 1,430 Monodisperse EMU 19 1,380 Monodisperse EMU 20 1,360 Monodisperse EMU 21 1,450 Monodisperse EMU 22 1,690 Monodisperse EMU 23 1,400 Monodisperse
[0214] Table 2 - Properties of inverse emulsions EMI1-1 to EMI1-23
[0215] [Tables3] Prépolymer Composition (mol%) Control Agent Mn (g / mol) Polymer in PPI AM AA A DC ATBS PPI 1 70 30 X3 355 000 PP1-2 100 - - XI 347 900 PPI 3 50 30 20 X4 348 500 PP1-4 40 60 X5 1 150 000 PP1-5 10 90 - X7 415 000 PPI 6 - 50 50 - XI 373 250 PPI 7 20 10 50 20 X2 450 000 PP1 S s - 95 - X2 452 000 PPI 9 5 95 - - X6 561 000 PPI 10 - 100 - - X3 1 457 000 PP1 11 - - 100 - X5 167 450 PP1 12 70 30 - - 30 - - 300 PP1-21 •" 50 50 - - 350 900 PPI 22 40 - 60 - - 1 066 100 PPI 23 50 20 30 - - 347 200
[0216] Tableau 3 : Composition and properties of the polymers according to the invention and examples
[0217] Example 3: Preparation of EMI2 inverse emulsions and block hydrosoluble polymers
[0218] The EMI2 emulsions are obtained by mixing with stirring at 200 rpm for 240 minutes and at room temperature: - EMIl comprising the PP1 prepolymer; - a hydrophilic phase PH2 comprising the monomers entering into the composition of the water-soluble block polymer and 50 ppm of tert-butyl hydroperoxide; - a lipophilic phase PL2, in order to adjust the quantities of final active ingredients and the hydrophilic phase / lipophilic phase ratios, comprising water-in-oil emulsifiers (2.5% by weight relative to the weight of the inverse emulsion), and a mixture of alkanolamide and sorbitan mono oleate, mixed with “Exxsol D100” oil.
[0219] The EMI2 is then degassed for 60 minutes before the polymerization is initiated by pouring in 8 mL of a 1 g / L aqueous solution of sodium metabisulfite.
[0220] The particle size, particle size distributions and number average molar masses of the water-soluble block polymers of EMI2 are characterized. To characterize the molar masses, the polymers were pre-precipitated in acetone.
[0221] The compositions of the different hydrophilic phases PH2 and the characteristics of the water-soluble block polymers obtained after polymerization are summarized in Table 4.
[0222] [Tables4] Reference Assay PP1 Composition (moi%) of PH2 Final Active Matter P2(%) Measured Mb of P2 Polymers (g / mol) Polydispersity of Polymer Particles in Reverse Femnlsion of P2 AM AA ADC ATBS El PP1-1 70 30 30 - 10 04 04 056 Monopopulation E2 PP1-2 100 - - - 21 1 687 000 Monopopulation E3 PP1-3 50 30 - 20 21 3 123 600 Monopopulation E4 PP1-4 40 - 60 - 21 4 876 000 PP Mono popula tion E5 - 01 - 193 612 000 Monopopulation E6 PP1 6 - 50 50 - 21 1 184 000 Monopopulation E7 PP1-7 20 10 50 20 21 2 150 000 Monopopulation ES PP 18 5 - 95 - 21 PP 807 - 95 95 - - 21 2 894 500 Monopopulation E10 PP1-10 - 100 - - 21 6 454 000 Monopopulation Eli PP1-11 - - 100 21 913 000 Monopopulation E-CE1 PP 1-12 70 32 20 - NM.- LP NM - LP E-CE2 PP1-13 70 30 - 21 NM - LP NM - LP E-CE3 PP1-14 70 30 - 21 NM - LP NM -LP E-CE4 PP1-15 70 30 - - 21 NM - LP NM - LP E-CE5 PP 1-16 100 - - 21 NM - LP NM - LP E-CE6 PP 1-17 70 30 - - 21 NM - LP NM-LP E-CE7 PP1-18 70 30 - 21 NM - LP NM - LP E-CE8 PPL19 60 40 21 NM - LP NM - LP E-CE9 PP 1-20 40 - 60 - 21 NM - LP NM-LP E-CE10 PP1-21 - 50 50 - 21 NM - LP NM - LP E-CE11 PP 1-22 40 - 60 21 NM - LP NM-LP E-CE12 PP 1-23 50 20 30 - 21 NM - LP NM - LP .
[0223] Table 4 - Composition of PH2 and characteristics of water-soluble block polymers (NM: Non-measurable; LP: Large Polypopulation)
[0224] These results demonstrate that the presence of a control agent for the formation of a PP1 prepolymer having a well-defined molecular weight combined with a viscosity of the inverse emulsion is necessary to result in high molecular weight block water-soluble polymers of the invention.
[0225] Figures 1 and 2 show the result of size exclusion chromatography for tests E1 and E-CE1. For [Fig.l], monodispersity of the molecular weights for PP1-12 and when used to form the water-soluble block polymer, a final polydisperse population is observed, corresponding to the formation of a multitude of droplets of different sizes including water-soluble block polymers having variable molecular weights which corresponds to poor integration of PH2.
[0226] On the contrary, for [Fig.2], we observe a monodispersity for PP1-1 and also for the water-soluble block polymer resulting from its polymerization, which corresponds to a good integration of PH2 and which makes it possible to obtain water-soluble block polymers of high molecular weight having a monopopulation.
Claims
Claims
1. Process for the preparation by radical polymerization of a water-soluble block polymer, by reversible addition-fragmentation chain transfer in inverse emulsion, comprising the following steps: a) Mixing a hydrophilic phase PHI and a lipophilic phase PLI with stirring in order to form an inverse emulsion EMU, the hydrophilic phase PHI comprising at least one hydrophilic solvent SH1, at least one monomer A and at least one water-soluble control agent of formula (I): [Chem.l] (I) in which - Z represents O, S or NR3; - Ri and R2 and R3, identical or different, represent: * an optionally substituted alkyl, acyl, alkenyl or alkynyl group (i), or * a carbon cycle (ii), saturated or not, possibly substituted or aromatic, or * a heterocycle (iii), saturated or unsaturated, optionally substituted or aromatic, these groups and rings (i), (ii) and (iii) may be substituted by substituted aromatic groups or by alkoxycarbonyl or aryloxycarbonyl (-COOR), carboxy (-COOH), acyloxy (-O2CR), carbamoyl (-CON(R)2), cyano (-CN), alkylcarbonyl, alkylarylcarbonyl, arylcarbonyl, arylalkylcarbonyl, phthalimido, maleimido, succinimido, amidino, guanidimo, hydroxy (-OH), amino (-N(R)2), halogen, allyl, epoxy, alkoxy (-OR), S-alkyl, S-aryl, groups having a hydrophilic or ionic character such as alkali salts of carboxylic acids, alkali salts of sulfonic acid, polyalkylene oxide chains (POE, POP), cationic substituents (quaternary ammonium salts); - R representing a C1-C20 alkyl or aryl group; - R3 may further represent a hydrogen atom; - Q is a linear or structured polymer chain comprising n identical or different hydrophilic monomers comprising at least one ethylenic function; - n is an integer between 0 and 500, advantageously between 1 and 500, more advantageously between 1 and 100, Q being a single bond between the sulfur atom and the R2 group when n is equal to 0; the lipophilic phase PLI comprising at least one lipophilic solvent and at least one water-in-oil emulsifying agent; b) Polymerization PI, in the presence of at least one initiator, of at least the monomer A of the inverse emulsion EMU to form a prepolymer PP1 having a molecular weight between 10,000 and 3,000,000 g / mol and having a viscosity between 400 and 100,000 cps; c) Addition and mixing, to the EMIl, of a hydrophilic phase PH2 comprising at least one hydrophilic solvent SH2 and at least one monomer B to form an inverse emulsion EMI2;the hydrophilic phase PH2 and the hydrophilic phase PHI having distinct compositions, d) Polymerization P2, in the presence of at least one initiator, of at least the monomer B on the prepolymer PP1 in order to form a water-soluble block polymer.;
2. Method according to claim 1, characterized in that the hydrophilic phase PHI comprises an amount of monomer A of between 10 and 50%, by weight relative to the total weight of the hydrophilic phase PHI.
3. Method according to claim 1 or 2, characterized in that the hydrophilic phase PHI comprises an amount of water-soluble control agent of between 5x10 7% and 10%, by weight relative to the total weight of the hydrophilic phase PHI.
4. Method according to one of claims 1 to 3, characterized in that the lipophilic phase PLI comprises a quantity of water-in-oil emulsifying agent of between 5 and 30%, by weight relative to the total weight of the inverse emulsion.
5. Method according to one of claims 1 to 4, characterized in that, in step c), the addition of the hydrophilic phase PH2 to the inverse emulsion EMI1 is done in one go.
6. Method according to one of claims 1 to 5, characterized in that, in step c), the mixing of the hydrophilic phase PH2 and the inverse emulsion EMU is carried out with stirring at a speed of between 50 and 1,000 rpm.
7. Method according to one of claims 1 to 6, characterized in that, in step c), the duration of the mixing of the hydrophilic phase PH2 and the inverse emulsion EMU is between 30 minutes and 480 minutes.
8. Method according to one of claims 1 to 7, characterized in that the monomers A and B are chosen from non-ionic hydrophilic monomers, anionic hydrophilic monomers, cationic hydrophilic monomers, zwitterionic hydrophilic monomers and hydrophobic monomers.
9. Process according to one of claims 1 to 8, characterized in that the monomers A and B are different.
10. Water-soluble block polymer obtained according to one of claims 1 to Q
11. 1 d 7. Use of the water-soluble block polymer obtained according to one of claims 1 to 9, in the recovery of hydrocarbons; well drilling; well cementing; stimulation of hydrocarbon wells; treatment of water in an open, closed or semi-closed circuit; treatment of fermentation musts; treatment of sludge; construction; manufacture of paper or cardboard; the field of batteries; wood treatment; treatment of hydraulic composition; in the mining industry; formulation of cosmetic products; formulation of detergents; textile manufacture; geothermal energy; manufacture of hygienic diapers; or agriculture.
12. Use of the water-soluble block polymer obtained according to one of claims 1 to 9, as flocculant, coagulant, binding agent, fixing agent, viscosity reducing agent, thickening agent, absorbent agent, friction reducing agent, drainage agent, charge retention agent, dehydrating agent, conditioning agent, stabilizing agent, film-forming agent, sizing agent, superplasticizing agent, clay inhibitor or dispersant.
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