Drag Reducer

The use of a bis-biphenylphenoxy catalyst to polymerize α-olefin monomers addresses the inefficiencies of Ziegler-Natta catalysis, producing DRAs with narrow molecular weight distributions and enhanced friction reduction in hydrocarbon pipelines.

JP7748383B2Active Publication Date: 2025-10-02DOW GLOBAL TECHNOLOGIES LLC
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Patent Information

Application Number
JP2022555659
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-31
Filing Date
2021-03-26
Publication Date
2025-10-02
Estimated Expiration
2041-03-26

AI Technical Summary

Technical Problem

Existing drag reducing agents (DRAs) produced via Ziegler-Natta catalysis suffer from inefficiencies such as low polymerization temperatures, long reaction times, and broad molecular weight distributions, making it difficult to control the final polymer properties effectively.

Method used

A drag reducing agent composed of α-olefin monomers, polymerized using a bis-biphenylphenoxy catalyst, resulting in polymers with a narrow molecular weight distribution and residual zirconium, having a weight average molecular weight greater than 1,300,000 g/mol and a Mw/Mn ratio of 1.3 to 3.0, dispersed in a liquid carrier.

Benefits of technology

The solution provides a drag reducing agent with improved efficiency and control over molecular weight distribution, reducing turbulence-mediated friction in hydrocarbon liquid pipelines, thereby lowering friction losses and pressure drop.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure provides a drag reducing agent. In one embodiment, the drag reducing agent includes a polymer and a liquid carrier. The polymer may include one or more C6-C 14 The polymer is composed of α-olefin monomers. The polymer contains residual amounts of zirconium. The polymer has an absolute weight average molecular weight (Mw) of greater than 1,300,000 g / mol. (Abs) ) and Mw of 1.3 to 3.0 (Abs) / Mn (Abs) It has.
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Description

[Background technology]

[0001] When fluids are transported over long distances, such as in oil pipelines and other hydrocarbon liquid pipelines, substantial turbulence and wall friction occurs. These friction losses result in inefficiencies that increase equipment and operating costs. Drag reducing agents (DRAs) are known to reduce turbulence-mediated friction and vortices in hydrocarbon liquid pipelines, which in turn reduces friction losses and pressure drop. Drag reducing agents are typically ultra-high molecular weight polymers (greater than 5,000,000 g / mol) that have the ability to dissolve in hydrocarbons under turbulent flow.

[0002] Ziegler-Natta catalyst systems are used to produce conventional DRA. However, the production of ultra-high molecular weight polymers through Ziegler-Natta catalysis suffers from several drawbacks. Ziegler-Natta catalysts for ultra-high molecular weight polymers are inefficient because the polymerization temperatures are typically low and the reaction times are long to produce the high molecular weight polymers required for applications. Furthermore, the polymers typically have broad molecular weight distributions, making the final polymer properties difficult to control.

[0003] The art has recognized a need for drag reducers produced by methods other than Ziegler-Natta catalysis. There is a further recognized need for high molecular weight polymers effective for drag reduction with narrow molecular weight distributions. Summary of the Invention

[0004] The present disclosure provides a drag reducing agent. In one embodiment, the drag reducing agent includes a polymer and a liquid carrier. The polymer may include one or more C6-C 14 The polymer is composed of α-olefin monomers. The polymer contains residual amounts of zirconium. The polymer has an absolute weight average molecular weight (Mw) of greater than 1,300,000 g / mol. (Abs) ) and Mw of 1.3 to 3.0 (Abs) / Mn (Abs) It has. [Brief explanation of the drawings]

[0005] [Figure 1] FIG. 1 is a schematic diagram of an experimental setup for evaluating drag reduction according to one embodiment of the present disclosure.

[0006] [Figure 2] FIG. 1 is a schematic diagram of a pressure measurement assembly used to determine the effectiveness of a drag reducing agent, according to one embodiment of the present disclosure.

[0007] [Figure 3] 1 is a graph showing a quantitative comparison of the drag reduction performance of each drag reducer expressed in terms of drag reduction percentage (DR%).

[0008] [Figure 4] 1 is a graph showing a comparison of percent drag reduction between broad molecular weight distribution (MWD) octene homopolymers and narrow MWD octene homopolymers at high molecular weight.

[0009] definition Any reference to the Periodic Table of the Elements is to that published by CRC Press, Inc., 1990-1991. References to element groups in this table are by the new notation for numbering groups.

[0010] For purposes of United States patent practice, the contents of any referenced patent, patent application, or publication are incorporated by reference in their entirety (or the equivalent United States version thereof is so incorporated by reference), particularly with respect to the disclosure of definitions (to the extent not inconsistent with any definitions specifically provided in this disclosure) and general knowledge in the art.

[0011] Numerical ranges disclosed herein include all values, inclusive, between and including the lower and upper limits. Ranges containing explicit values ​​(e.g., 1 or 2, or 3-5, or 6, or 7) also include all subranges between any two explicit values ​​(e.g., the 1-7 range above includes 1-2, 2-6, 5-7, 3-7, 5-6, etc.).

[0012] Unless otherwise stated, implied from the context, or customary in the art, all parts and percentages are by weight and all test methods are current as of the filing date of this disclosure.

[0013] As used herein, the term "blend" or "polymer blend" refers to a blend of two or more polymers. Such blends may or may not be miscible (not phase separated at the molecular level). Such blends may or may not be phase separated. Such blends may or may not contain one or more domain configurations as determined from transmission electron spectroscopy, light scattering, X-ray scattering, and other methods known in the art.

[0014] The term "composition" refers to a mixture of materials that comprise the composition, as well as reaction products and decomposition products formed from the materials of the composition.

[0015] The terms "comprising," "including," "having," and their derivatives are not intended to exclude the presence of any additional component, step, or procedure, whether specifically disclosed or not. For the avoidance of doubt, all compositions claimed through the use of the term "comprising" may include any additional additive, adjuvant, or compound, whether polymeric or not, unless stated to the contrary. In contrast, the term "consisting essentially of" excludes any other component, step, or procedure from the scope of any succeeding description, except those that are not essential to operability. The term "consisting of" excludes any component, step, or procedure not expressly delineated or listed. The term "or," unless otherwise stated, refers to the listed members individually as well as in any combination. The use of the singular includes the use of the plural, and vice versa.

[0016] As used herein, the term "1-hexene" refers to a compound of the molecular formula C6-H 12 1-Hexene is an unsaturated hydrocarbon alpha-olefin having the unsaturation in the alpha position. 1-Hexene has the molecular structure (A) as shown below. [ka]

[0017] A "hexene-based polymer" is a polymer that contains greater than 50 weight percent (wt%) polymerized hexene monomer (based on the total amount of polymerizable monomers), and optionally at least one comonomer different from hexene (C 2~7 α-olefin and / or C 9~12 Hexene-based polymers may contain hexene homopolymers and hexene copolymers (meaning units derived from hexene and one or more comonomers). The terms "hexene-based polymer" and "polyhexene" may be used interchangeably.

[0018] As used herein, the term "1-octene" has the molecular formula CH 16 1-octene is an unsaturated hydrocarbon α-olefin having the unsaturation in the alpha position. 1-octene has the molecular structure (B) as shown below. [ka]

[0019] As used herein, the term "octene isomers" refers to isomers of the molecular formula CH 16 and the unsaturation (double bond) is not in the alpha position. In other words, the term "octene isomer" refers to any octene excluding 1-octene. Non-limiting examples of octene isomers include cis-2-octene, trans-2-octene, cis-3-octene, trans-3-octene, and combinations thereof, as well as cis-4-octene, trans-4-octene, branched octene isomers, and combinations thereof.

[0020] An "octene-based polymer" is a polymer that contains greater than 50 weight percent (wt%) polymerized octene monomers (based on the total amount of polymerizable monomers), and optionally at least one comonomer different from octene (C 2~7 α-olefin and / or C 9~12 The octene-based polymer may contain octene homopolymers and octene copolymers (meaning units derived from octene and one or more comonomers). The terms "octene-based polymer" and "polyoctene" may be used interchangeably.

[0021] A "polymer" is a compound prepared by polymerizing monomers, whether of the same or different types, that provide multiple and / or repeating "units" or "mer units" that, in polymerized form, constitute the polymer. Thus, the general term polymer encompasses the term homopolymer, which is commonly used to refer to a polymer prepared from only one type of monomer, and the term copolymer, which is commonly used to refer to a polymer prepared from at least two types of monomer. Polymer also encompasses all forms of copolymers, e.g., random, block, etc. The terms "ethylene / α-olefin polymer" and "octene / α-olefin polymer" refer to the aforementioned copolymers prepared by polymerizing ethylene or octene with one or more additional polymerizable α-olefin monomers, respectively. While polymers are often referred to as "made of" one or more specific monomers, "based on" a particular monomer or monomer type, "containing" a particular monomer content, etc., it should be noted that in this context, the term "monomer" is understood to refer to the polymerized residue of a particular monomer, and not to the unpolymerized species. Generally, polymers herein are referred to in terms of "units" that are the polymerized form of the corresponding monomers.

[0022] Test Method Gel Permeation Chromatography (GPC) The chromatography system consisted of a PolymerChar GPC-IR (Valencia, Spain) high-temperature GPC chromatograph equipped with an internal IR5 infrared detector (IR5). The autosampler oven compartment was set to 160°C, and the column compartment was set to 150°C. The columns used were four Agilent "Mixed A" 30 cm 20-micron linear mixed-bed columns and a 20-um precolumn. The chromatography solvent used was 1,2,4-trichlorobenzene containing 200 ppm butylated hydroxytoluene (BHT). The solvent source was nitrogen sparged. The injection volume used was 200 microliters, and the flow rate was 1.0 milliliters / minute.

[0023] The GPC column set was calibrated using 21 narrow molecular weight distribution polystyrene standards ranging from 580 to 8,400,000 molecular weights, arranged in six "cocktail" mixtures with at least 10-fold spacing between individual molecular weights. The standards were purchased from Agilent Technologies. Polystyrene standards were prepared at 0.025 grams in 50 milliliters of solvent for molecular weights above 1,000,000 and 0.05 grams in 50 milliliters of solvent for molecular weights below 1,000,000. The polystyrene standards were dissolved at 80°C for 30 minutes with gentle agitation. A third-order polynomial was used to fit each polystyrene-equivalent calibration point.

[0024] Total plate counts for the GPC column set were performed using decane (prepared at 0.04 g in 50 mL of TCB and dissolved for 20 minutes with gentle stirring). Plate counts (Equation 2) and symmetry (Equation 3) were measured with a 200-microliter injection according to the following equations:

number

number

[0025] Samples were prepared in a semi-automated fashion using PolymerChar "Instrument Control" software, with a target sample weight of 2 mg / ml, and solvent (containing 200 ppm BHT) was added via a PolymerChar high-temperature autosampler to a pre-nitrogen-sparged septa-capped vial. Samples were dissolved at 160°C for 2 hours under "slow" shaking.

[0026] Mn (GPC) , Mw (GPC) , and Mz (GPC) The calculation of was based on GPC results using the internal IR5 detector (measurement channel) of a PolymerChar GPC-IR chromatograph, PolymerChar GPCOne™ software, baseline-subtracted IR chromatograms at each equally spaced data collection point (i), and polystyrene-equivalent molecular weights obtained from a narrow standard calibration curve at point (i) of Equation 1, according to Equations 4-6.

number

[0027] To monitor deviations over time, a flow marker (decane) was introduced into each sample via a micropump controlled by the PolymerChar GPC-IR system. This flow marker (FM) was used to linearly calibrate the pump flow rate (Flow (Apparent)) of each sample by RV-matching the respective decane peak in the sample (RV (FM Sample)) with the decane peak in the narrow standard calibration (RV (FM Calibrated)). Any change in the time of the decane marker peak was then assumed to be related to a linear shift in flow rate (Flow (Effective)) throughout the run. To facilitate the highest accuracy in the RV measurement of the flow marker peaks, a least-squares fitting routine was used to fit the peaks in the flow marker concentration chromatogram to a quadratic equation. The first derivative of the quadratic equation was then used to solve for the true peak position. After calibrating the system based on the flow marker peaks, the effective flow rate (relative to the narrow standard calibration) was calculated as shown in Equation 7. Processing of the flow marker peaks was performed via PolymerChar GPCOne™ software. An acceptable flow correction should be that the effective flow is within + / - 1% of the apparent flow.

[0028] Flow rate (effective) = Flow rate (apparent) * (RV(FM calibrated) / RV(FM sample)) (Equation 7)

[0029] Triple Detector GPC (TDGPC) The chromatographic system, running conditions, column set, column calibration and calculation and distribution of conventional molecular weight moments were performed according to the methods described in Gel Permeation Chromatography (GPC).

[0030] For the determination of viscometer and light scattering detector offsets from the IR5 detector, a systematic approach for the determination of multiple detector offsets was performed in a manner consistent with that published by Balke, Mourey et al. (Mourey and Balke, Chromatography Polym. Chpt 12, (1992)) (Balke, Thitiratsakul, Lew, Cheung, Mourey, Chromatography Polym. Chpt 13, (1992)) using PolymerChar GPCOne™ software to optimize triple detector log (MW and IV) results from broad homopolymer polyethylene standards (Mw / Mn>3) against narrow standard column calibration results from a narrow standard calibration curve.

[0031] Absolute molecular weight data were obtained using PolymerChar GPCOne™ software in a manner consistent with that published by Zimm (Zimm, BH, J. Chem. Phys., 16, 1099 (1948)) and Kratochvil (Kratochvil, P., Classical Light Scattering from Polymer Solutions, Elsevier, Oxford, NY (1987)). The total injected concentration used in determining the molecular weight was obtained from the mass detector area and mass detector constant derived from a suitable linear polyethylene homopolymer or one of the polyethylene standards of known weight average molecular weight. Calculated molecular weights (using GPCOne™) were obtained using the light scattering constant and refractive index concentration coefficient, dn / dc, of 0.104, derived from one or more of the polyethylene standards described below. Generally, the mass detector response (IR5) and light scattering constant (determined using GPCOne™) should be determined from a linear polyethylene standard with a molecular weight of approximately 120,000 g / mole. Viscometer calibration (determined using GPCOne™) can be achieved using methods described by the manufacturer, or alternatively, using published values ​​of suitable linear standards. A viscometer constant (obtained using GPCOne™) is calculated that relates the specific viscosity area (DV) and injected mass for the calibration standard to its intrinsic viscosity. The chromatographic concentration is assumed to be low enough to preclude addressing second viral index effects (concentration effects on molecular weight).

[0032] Absolute weight average molecular weight (Mw (Abs) ) is obtained (using GPCOne™) by dividing the Light Scattering (LS) area integrated chromatogram (factored by the light scattering constant) by the mass recovered from the mass constant and the mass detector (IR5) area. The molecular weight and intrinsic viscosity responses are linearly extrapolated (using GPCOne™) at both ends of the chromatography where the signal to noise is low. The other respective moments, Mn (Abs) and Mz (Abs)is calculated according to the following equations 8-9:

number

[0033] Residual Amount of Catalytic Metals. The "residual amount" of catalytic metals (Ti, Hf, Zr, and Ge) was 0 ppm, or greater than 0 ppm and less than 300 ppm, as determined by mass balance based on the catalyst added and by the amount of polymer formed during the reaction. Results are reported in parts per million (ppm).

[0034] Viscosity. Viscosity was measured using an Anton Paar MCR102 equipped with a CC27 cylinder measuring system and a C-ETD300 heating system using the viscosity steady-state method at shear rates of 0.01 to 100 1 / s. Approximately 20 ml of sample was added to the measuring cup and then heated to 100°C. The measuring system was then lowered into the sample until it reached 0.0 mm, which was done over a period of time so that the force did not reach 15 Newtons (N). Once the measuring system reached 0.0 mm, the sample along with the measuring system was held at 100°C for 10 minutes to allow the temperature to equilibrate. Results were reported in millipascal seconds (mPa). · s) are reported. DETAILED DESCRIPTION OF THE INVENTION

[0035] The present disclosure provides a drag reducer. In one embodiment, the drag reducer comprises one or more C6-C 14 The polymer comprises a polymer composed of α-olefin monomers, the polymer containing a residual amount of zirconium, and the polymer having an absolute weight average molecular weight (Mw) of greater than 1,300,000 g / mol. (Abs) ) and Mw of 1.3 to 3.0 (Abs) vs. Mn (Abs) The drag reducer further comprises a liquid carrier.

[0036] As used herein, a "drag reducer" (or "DRA") is a composition that reduces friction losses resulting from turbulent fluid flow. A drag reducer may be one or more C6-C 14A polymer, copolymer, or terpolymer is composed of an α-olefin monomer and the polymer dispersed or otherwise dissolved in a liquid carrier. 14 Non-limiting examples of α-olefin monomers include 1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, 1-dodecene, 1-tetradecene, and combinations thereof.

[0037] 1. One or more C6-C 14 Polymers composed of α-olefin monomers One or more C6-C 14 α-olefin monomers are polymerized in the presence of a bis-biphenylphenoxy catalyst under polymerization conditions to form homopolymers, copolymers, or terpolymers. As used herein, "polymerization conditions" refers to the temperature, pressure, reactant concentration, liquid carrier selection, chain transfer agent (CTA), reactant mixing / addition parameters, as well as the composition of the reagents and the resulting polymer product, i.e., C6-C6. 14 Homopolymers having one monomer selected from α-olefins, C6-C 14 Copolymers having two monomers selected from α-olefins or C6-C 14 Other conditions within the polymerization reactor promote the reaction between the three monomers selected from α-olefins to form a terpolymer polymer product. The polymerization can be carried out in a batch or continuous process, in a tubular reactor, a stirred autoclave reactor, a continuous stirred tank reactor, a gas-phase polymerization reactor, a slurry-phase polymerization reactor, a loop reactor, an isothermal reactor, a fluidized bed gas-phase reactor, or a combination thereof.

[0038] One or more C6-C 14 The α-olefin monomer is contacted under polymerization conditions with a bis-biphenylphenoxy catalyst (also referred to interchangeably as "BBP"), which is a metal-ligand complex having the structure shown in formula (I) below. [ka] During the ceremony, M is a metal selected from zirconium or hafnium, said metal being in the +2, +3, or +4 formal oxidation state; n is an integer of 0 to 3, and when n is 0, X is absent; each X is independently a monodentate ligand which is neutral, monoanionic, or dianionic, or two X together form a bidentate ligand which is neutral, monoanionic, or dianionic, and X and n are selected such that the metal-ligand complex of formula (I) as a whole is neutral; Each Z is independently O, S, N (C1 to C 40 ) hydrocarbyl, or P(C1-C 40 ) hydrocarbyl, O is O (oxygen atom), L is (C1~C 40 ) hydrocarbylene or (C1-C 40 ) heterohydrocarbylene, (C1-C 40 ) Hydrocarbylene has a moiety containing a linker skeleton of 1 to 10 carbon atoms connecting the two Z groups in formula (I) (to which L is attached), or (C1 to C 40 ) Heterohydrocarbylene has a moiety containing a linker skeleton of 1 atom to 10 atoms connecting the two Z groups in formula (I), and (C1-C 40 Each of the 1 to 10 atoms of the 1 to 10 atom linker backbone of the heterohydrocarbylene is independently a carbon atom or a heteroatom, and each heteroatom is independently O, S, S(O), S(O), Si(R C )2, Ge(R C )2, P(R C ), or N(R C ) and each R C are independently (C1~C 30 ) hydrocarbyl or (C1-C 30 ) heterohydrocarbyl, and Each R 1~16 is (C1~C 40 ) hydrocarbyl, (C1-C40 ) heterohydrocarbyl, Si(R C )3, Ge(R C )3, P(R C )2, N(R C )2, OR C , S.R. C , NO2, CN, CF3, R C S(O), R C S(O)2, (R C )2C=N,R C C(O)O, R C OC(O), R C C(O)N(R), (R C )2NC(O), a halogen atom, a hydrogen atom, and combinations thereof.

[0039] The bis-biphenylphenoxy catalyst having the structure of formula (I) can be made catalytically active by contacting the metal-ligand complex with an activating cocatalyst or by combining the metal-ligand complex with an activating cocatalyst.

[0040] Suitable activating cocatalysts for use herein include alkylaluminums; polymeric or oligomeric alumoxanes (also known as aluminoxanes); neutral Lewis acids; and non-polymeric, non-coordinating, ion-forming compounds (including the use of such compounds under oxidizing conditions). Combinations of one or more of the foregoing activating cocatalysts and techniques are also contemplated. The term "alkylaluminum" refers to monoalkylaluminum dihydrides or dihalides, dialkylaluminum hydrides or halides, or trialkylaluminums. Examples of polymeric or oligomeric alumoxanes include methylalumoxane, triisobutylaluminum-modified methylalumoxane, and isobutylalumoxane.

[0041] Non-limiting examples of Lewis acid activators (co-catalysts) include those having one to three (C1-C3) groups as described herein. 20 In one embodiment, the Group 13 metal compound includes a tri((C1-C) hydrocarbyl substituent.20 )hydrocarbyl)-substituted aluminum, tri((C1-C 20 )hydrocarbyl)-boron compounds, tri((C1-C 10 ) alkyl) aluminum, tri((C6-C 18 )aryl)boron compounds and their halogenated (including perhalogenated) derivatives. In further embodiments, the Group 13 metal compound is tris(fluoro-substituted phenyl)borane, tris(pentafluorophenyl)borane. In some embodiments, the activating cocatalyst is tetrakis((C1-C 20 ) hydrocarbyl borate or tri((C1-C 20 )hydrocarbyl)ammonium tetrakis((C1-C 20 )hydrocarbyl)borates (e.g., bis(octadecyl)methylammonium tetrakis(pentafluorophenyl)borate). As used herein, the term "ammonium" refers to a ((C1-C 20 )) Hydrocarbyl N(H)3 + , or N(H)4 + When two or more are present, each (C1 to C 20 ) The hydrocarbyls may be the same or different.

[0042] A non-limiting example of a combination of neutral Lewis acid activators (cocatalysts) is a tri((C1-C4) alkyl)aluminum and a tri((C6-C 18(aryl)boron compounds, particularly tris(pentafluorophenyl)borane. Other embodiments include mixtures of such neutral Lewis acid mixtures with polymeric or oligomeric alumoxanes, and combinations of a single neutral Lewis acid, particularly tris(pentafluorophenyl)borane, with polymeric or oligomeric alumoxanes. The molar ratio of (metal-ligand complex):(tris(pentafluorophenyl)borane):(alumoxane) [e.g., Group 4 metal-ligand complex):(tris(pentafluorophenyl)borane):(alumoxane)] is from 1:1:1 to 1:10:100, and in other embodiments, from 1:1:1.5 to 1:5:30.

[0043] The bis-biphenylphenoxy catalyst having the structure of formula (I) can be activated by combining one or more cocatalysts, such as cation-forming cocatalysts, strong Lewis acids, or combinations thereof, to form an active catalyst composition. Suitable activating cocatalysts include polymeric or oligomeric aluminoxanes, particularly methylaluminoxane, as well as inert, compatible, non-coordinating, ion-forming compounds. Exemplary suitable cocatalysts include modified methyl aluminoxane (MMAO), bis(hydrogenated tallow alkyl)methyl, tetrakis(pentafluorophenyl)borate(1<->)amine (i.e., [HNMe(C 18 H 37 )2][B(C6F5)4] and combinations thereof.

[0044] One or more of the foregoing activating cocatalysts may be used in combination with one another. In one embodiment, the cocatalyst is a mixture of tri((C1-C4)hydrocarbyl)aluminum, tri((C1-C4)hydrocarbyl)borane, or ammonium borate with an oligomeric or polymeric alumoxane compound. The ratio of the total number of moles of the one or more metal-ligand complexes of Formula (I) to the total number of moles of the one or more activating cocatalysts is 1:10,000 to 100:1. In some embodiments, this ratio is at least 1:5000; in other embodiments, it is at least 1:1000 and no more than 10:1; and in other embodiments, it is no more than 1:1. When alumoxane is used alone as the activating cocatalyst, it is preferred that the number of moles of alumoxane used be at least 100 times the number of moles of the metal-ligand complex of Formula (I). When tris(pentafluorophenyl)borane is used alone as the activating cocatalyst, in some other embodiments, the number of moles of tris(pentafluorophenyl)borane used relative to the total number of moles of one or more metal-ligand complexes of Formula (I) is from 0.5:1 to 10:1, from 1:1 to 6:1, or from 1:1 to 5:1. The remaining activating cocatalyst is generally used in a molar amount approximately equal to the total molar amount of one or more metal-ligand complexes of Formula (I).

[0045] In one embodiment, the bis-biphenylphenoxy catalyst having the structure of Formula (I) comprises a metal M that is zirconium.

[0046] The polymerization is carried out by reacting one or more C6-C 14 contacting an α-olefin monomer with a bis-biphenylphenoxy catalyst of formula (I) and one or more C6-C 14 forming a polymer composed of α-olefin monomers. The polymer comprises C6 to C 14 A homopolymer of one monomer selected from α-olefins (hereinafter referred to as "C6-C 14 Homopolymer), C6-C 14 Copolymers having two monomers selected from α-olefins (hereinafter referred to as "C6-C 14α-olefin copolymer), or C6-C 14 Terpolymers having three monomers selected from α-olefins (hereinafter referred to as "C6 to C 14 The polymer (i.e., C6 to C6 α-olefin terpolymer) may be a 14 α-olefin homopolymer, C6-C 14 α-olefin copolymer or C6-C 14 α-olefin terpolymers) containing residual amounts of zirconium or hafnium and having an absolute weight average molecular weight (Mw) of greater than 1,300,000 g / mol. (Abs) ), and Mw of 1.3 to 3.0 (Abs) / Mn (Abs) It has.

[0047] Polymers (i.e., C6-C 14 α-olefin homopolymer, C6-C 14 α-olefin copolymer or C6-C 14 The α-olefin terpolymer) contains residual amounts of hafnium or zirconium, or greater than 0 ppm to 300 ppm of hafnium or zirconium.

[0048] In one embodiment, the bis-biphenylphenoxy catalyst is a metal-ligand complex having the following structural formula (V): [ka] In the formula, Ge is germanium, Me is a methyl group, tBu is a t-butyl group, and iPr is an isopropyl group. The polymerization conditions are such that one or more C6 to C 14 contacting an α-olefin with a bis-biphenylphenoxy catalyst of formula (V) and producing a polymer (i.e., C6-C 14 α-olefin homopolymer, C6-C 14 α-olefin copolymer or C6-C 14 and forming a polymer (i.e., a C6 to C6 α-olefin terpolymer). 14 α-olefin homopolymer, C6-C 14α-olefin copolymer or C6-C 14 The α-olefin terpolymers have one, some, or all of the following properties: (i) Mw of more than 1,300,000 g / mol to 12,000,000 g / mol, or 1,400,000 g / mol to 10,000,000 g / mol, or 1,400,000 g / mol to 9,000,000 g / mol, or 1,500,000 g / mol to 8,000,000 g / mol (Abs) and / or (ii) Mw of 1.3 to 3.0, or 1.4 to 2.9, or 1.5 to 2.8, or 2.1 to 2.7, or 2.2 to 2.6 (Abs) / Mn (Abs) and / or (iii) residual amounts of zirconium, or greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 15 ppm and 180 ppm, or between 20 ppm and 170 ppm, or between 30 ppm and 160 ppm; and / or (iv) Residual amounts of germanium, or greater than 0 ppm, or 1 ppm to less than 300 ppm, or 10 ppm to 200 ppm, or 12 ppm to 150 ppm, or 14 ppm to 130 ppm, or 14 ppm to 125 ppm.

[0049] In one embodiment, the bis-biphenylphenoxy catalyst is a metal-ligand complex having the following structural formula (VI): [ka] In the formula, Me is a methyl group, and tBu is a t-butyl group. The polymerization conditions are such that one or more C6 to C 14 contacting an α-olefin with a bis-biphenylphenoxy catalyst of formula (VI) and producing a polymer (i.e., C6-C 14 α-olefin homopolymer, C6-C 14 α-olefin copolymer or C6-C 14and forming a polymer (i.e., a C6 to C6 α-olefin terpolymer). 14 α-olefin homopolymer, C6-C 14 α-olefin copolymer or C6-C 14 The α-olefin terpolymers have one, some, or all of the following properties: (i) Mw of more than 1,300,000 g / mol to 12,000,000 g / mol, or 1,400,000 g / mol to 10,000,000 g / mol, or 1,400,000 g / mol to 9,000,000 g / mol, or 1,500,000 g / mol to 8,000,000 g / mol (Abs) and / or (ii) Mw of 1.3 to 3.0, or 1.4 to 2.9, or 1.5 to 2.8, or 2.1 to 2.7, or 2.2 to 2.6 (Abs) / Mn (Abs) and / or (iii) Residual amounts of zirconium, or greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 15 ppm and 180 ppm, or between 20 ppm and 170 ppm, or between 30 ppm and 160 ppm (hereinafter Polymer 1).

[0050] In one embodiment, zirconium is one or more C6-C6 14 In a further embodiment, one or more C6-C 14 The polymer composed of α-olefin (polymer 1) contains 0 ppm to less than 10 ppm of titanium.

[0051] In one embodiment, one or more C6-C 14The α-olefin is one or more C6-C8 α-olefins, and the polymer obtained from the polymerization of one or more C6-C8 α-olefins is a hexene homopolymer, heptene homopolymer, octene homopolymer, hexene / heptene copolymer, hexene / octene copolymer, heptene / octene copolymer, or hexene / heptene / octene copolymer. The polymer composed of one or more C6-C8 α-olefin monomers contains residual amounts of zirconium and has one, some, or all of the following properties: (i) Mw of more than 1,300,000 g / mol to 12,000,000 g / mol, or 1,400,000 g / mol to 10,000,000 g / mol, or 1,400,000 g / mol to 9,000,000 g / mol, or 1,500,000 g / mol to 8,000,000 g / mol (Abs) and / or (ii) Mw of 1.3 to 3.0, or 1.4 to 2.9, or 1.5 to 2.8, or 2.1 to 2.7, or 2.2 to 2.6 (Abs) / Mn (Abs) and / or (iii) Residual amounts of zirconium, or greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 15 ppm and 180 ppm, or between 20 ppm and 170 ppm, or between 30 ppm and 160 ppm (hereinafter Polymer 2).

[0052] In one embodiment, zirconium is present in the polymer comprised of one or more C6-C8 α-olefins (polymer 2) to the exclusion of titanium. In a further embodiment, the polymer comprised of one or more C6-C8 α-olefins (polymer 2) contains from 0 ppm to less than 10 ppm of titanium.

[0053] In one embodiment, C to C 14The α-olefin is an octene monomer, and the polymer obtained from the polymerization of the octene monomer with the catalyst of formula (V) is an octene homopolymer. An octene homopolymer has one, some, or all of the following properties: (i) Mw of more than 1,300,000 g / mol to 12,000,000 g / mol, or 1,400,000 g / mol to 10,000,000 g / mol, or 1,400,000 g / mol to 9,000,000 g / mol, or 1,500,000 g / mol to 8,000,000 g / mol (Abs) and / or (ii) Mw of 1.3 to 3.0, or 1.4 to 2.9, or 1.5 to 2.8, or 2.1 to 2.7, or 2.2 to 2.6 (Abs) / Mn (Abs) and / or (iii) residual amounts of zirconium, or greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 15 ppm and 180 ppm, or between 20 ppm and 170 ppm, or between 30 ppm and 160 ppm; and / or (iv) Residual amounts of germanium, or greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 12 ppm and 150 ppm, or between 14 ppm and 130 ppm, or between 14 ppm and 125 ppm (hereinafter Polymer 3).

[0054] In one embodiment, germanium and / or zirconium are present in the octene homopolymer (Polymer 3) to the exclusion of titanium. In a further embodiment, the octene homopolymer (Polymer 3) contains from 0 ppm to less than 10 ppm of titanium.

[0055] In one embodiment, C to C 14 The α-olefin is a hexene monomer, and the polymer resulting from the polymerization of the hexene monomer with the catalyst of formula (V) is a hexene homopolymer. A hexene homopolymer has one, some, or all of the following properties: (i) Mw of more than 1,300,000 g / mol to 12,000,000 g / mol, or 1,400,000 g / mol to 10,000,000 g / mol, or 1,400,000 g / mol to 9,000,000 g / mol, or 1,500,000 g / mol to 8,000,000 g / mol (Abs) and / or (ii) Mw of 1.3 to 3.0, or 1.4 to 2.9, or 1.5 to 2.8, or 2.1 to 2.7, or 2.2 to 2.6 (Abs) / Mn (Abs) and / or (iii) residual amounts of zirconium, or greater than 1 ppm but less than 300 ppm, or 10 ppm to 200 ppm, or 15 ppm to 180 ppm, or 20 ppm to 170 ppm, or 30 ppm to 160 ppm; and / or (iv) residual amounts of germanium, or greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 12 ppm and 150 ppm, or between 14 ppm and 130 ppm, or between 14 ppm and 125 ppm (Polymer 4).

[0056] In one embodiment, germanium and / or zirconium are present in the hexene homopolymer (polymer 4) to the exclusion of titanium. In a further embodiment, the hexene homopolymer (polymer 4) contains from 0 ppm to less than 10 ppm of titanium.

[0057] 2. Liquid Carrier One or more C6-C 14 Polymers composed of α-olefin monomers (Mw > 1,300,000 g / mol) (Abs) , 1.3~3.0 Mw (Abs) / Mn (Abs) In addition to the polymer (and the polymer having a residual amount of zirconium), the drag reducer also includes a liquid carrier in which the polymer is dispersed or otherwise dissolved.

[0058] The liquid carrier is selected to either (i) disperse the polymer as a gel, suspension, or slurry, or (ii) dissolve the polymer.

[0059] In one embodiment, the carrier is a hydrocarbon. Non-limiting examples of suitable hydrocarbons include aromatic hydrocarbons and aliphatic hydrocarbons, and combinations thereof. A non-limiting example of a suitable aromatic hydrocarbon is toluene.

[0060] In one embodiment, the liquid carrier is an aliphatic hydrocarbon. The aliphatic hydrocarbon may be linear, branched, or cyclic C4-C6. 16 , or C6~C 12 Aliphatic hydrocarbons. Non-limiting examples of suitable aliphatic hydrocarbon solvents include butane, pentane, hexane, heptane, octane, nonane, decane, undecane, dodecane, tridecane, tetradecane, pentadecane, hexadecane, and combinations thereof.

[0061] In one embodiment, the liquid carrier is a paraffinic solvent, such as Isopar™ solvents sold by Exxon-Mobil. Non-limiting examples of suitable paraffinic solvents include Isopar™ E and Isopar™ L.

[0062] 3. Drag Reducers In one embodiment, the drag reducer is (A) One or more C6-C 14 α-olefin monomers (Mw > 1,300,000 g / mol) (Abs) , 1.3~3.0 Mw (Abs) / Mn (Abs) 10% to 80% by weight of a polymer consisting of, and a residual amount of zirconium (Polymer 1), and (B) 20% to 90% by weight of a liquid carrier.

[0063] In one embodiment, the drag reducer is (A) 10% by weight to 80% by weight, or 25% by weight to 45% by weight of an octene homopolymer having the following characteristics: (i) Mw of more than 1,300,000 g / mol to 12,000,000 g / mol, or 1,400,000 g / mol to 10,000,000 g / mol, or 1,400,000 g / mol to 9,000,000 g / mol, or 1,500,000 g / mol to 8,000,000 g / mol (Abs) and / or (ii) Mw of 1.3 to 3.0, or 1.4 to 2.9, or 1.5 to 2.8, or 2.1 to 2.7, or 2.2 to 2.6 (Abs) / Mn (Abs) and / or (iii) residual amounts of germanium, or greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 12 ppm and 150 ppm, or between 14 ppm and 130 ppm, or between 14 ppm and 125 ppm; and / or (iv) an octene homopolymer (Polymer 3) having one, some, or all of the following residual amounts of zirconium: greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 15 ppm and 180 ppm, or between 20 ppm and 170 ppm, or between 30 ppm and 160 ppm; (B) 20% by weight to 90% by weight, or 75% by weight to 55% by weight, of a liquid carrier that is an aliphatic hydrocarbon; The drag reducer (i) 2.9014 * 10 +05 mPa · s~3.573 * 10 +07 mPa · It has a viscosity of s.

[0064] In one embodiment, the drag reducer is (A) 10% by weight to 80% by weight, or 25% by weight to 45% by weight, of a hexene homopolymer having the following characteristics: (i) Mw of more than 1,300,000 g / mol to 12,000,000 g / mol, or 1,400,000 g / mol to 10,000,000 g / mol, or 1,400,000 g / mol to 9,000,000 g / mol, or 1,500,000 g / mol to 8,000,000 g / mol (Abs) and / or (ii) Mw of 1.3 to 3.0, or 1.4 to 2.9, or 1.5 to 2.8, or 2.1 to 2.7, or 2.2 to 2.6 (Abs) / Mn (Abs) and / or (iii) residual amounts of germanium, or greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 12 ppm and 150 ppm, or between 14 ppm and 130 ppm, or between 14 ppm and 125 ppm; and / or (iv) a hexene homopolymer (Polymer 4) having one, some, or all of the following residual amounts of zirconium: greater than 0 ppm, or between 1 ppm and less than 300 ppm, or between 10 ppm and 200 ppm, or between 15 ppm and 180 ppm, or between 20 ppm and 170 ppm, or between 30 ppm and 160 ppm; (B) 20% by weight to 90% by weight, 75% by weight to 55% by weight of a liquid carrier which is an aliphatic hydrocarbon; Drag reducer, 2.9014 * 10 +05 mPa · s~3.573 * 10 +07 mPa · It has a viscosity of s.

[0065] By way of example, and not limitation, some embodiments of the present disclosure will now be described in detail in the following examples. [Example]

[0066] The catalysts used in the comparative samples (CS) and inventive examples (IE) are shown in Table 1 below. [Table 1]

[0067] A. Polymerization of 1-hexene and 1-octene For comparative sample 1 (CS1), Ziegler-Natta (ZN)-catalyzed polymerization was carried out in a 40 mL vial charged with 4 mL of 1-octene and 8 mL of solvent (Isopar E) at a temperature of 23–25 °C for 12 h with 4 μmol of ZN catalyst and 5 equivalents of EtAl (as an activator). The solvent was then removed under vacuum.

[0068] CS2 was polymerized in the same manner as CS1, except that the solution temperature was maintained at −35° C. for 48 hours during polymerization.

[0069] For Examples 1-4 (IE1-4) of the present invention, polymerizations with bis-biphenylphenoxy catalyst (BBP1) were carried out in a 40 mL vial charged with 8 mL of 1-octene and 12 mL of Isopar-E (in Isopar E), using 4 μmol of catalyst (BBP1) and 1.2 equivalents of RIBS-2 (RN(H)MeB(CF) where R is hydrogenated tallow alkyl (C 14~18 (alkyl) (CAS number 200644-82-2) for 12 hours at a temperature of 23-25° C. The solvent is then removed under vacuum.

[0070] For Inventive Example 5 (IE5), polymerization with bis-biphenylphenoxy catalyst (BBP2) was carried out in a 40 mL vial charged with 8 mL of 1-octene and 12 mL of Isopar-E (in Isopar E), using 4 μmol of catalyst (BBP2) and 1.2 equivalents of RIBS-2 (RN(H)MeB(CF) where R is hydrogenated tallow alkyl (C 14~18 (alkyl) (CAS number 200644-82-2) for 12 hours at a temperature of 23-25° C. The solvent is then removed under vacuum.

[0071] For Inventive Example 6 (IE6), the polymerization was carried out using 8 mL of 1-hexene and 12 mL of Isopar-E, 1-4 μmol of catalyst (BBP1), and 1.2 equivalents of RIBS-2 (RN(H)MeB(CF) where R is hydrogenated tallow alkyl (C 14~18 The reaction is carried out in a 40 mL vial charged with bis-biphenylphenoxy catalyst (BBP1) (CAS number 200644-82-2) at a temperature of 23-25°C for 12 hours. The solvent and unreacted hexene isomers are then removed under vacuum.

[0072] The properties of the resulting C6-C8 α-homopolymers are shown in Table 2 below. [Table 2] 1 ppm residual catalyst metals present in homopolymer based on total homopolymer weight 2 The polymerization was carried out at -35°C.

[0073] Drag reduction test The drag reduction performance of the drag reducers was evaluated using the experimental setup shown in FIGS.

[0074] The drag reduction of drag reducers is evaluated using a 1 meter long, 0.25 inch diameter stainless steel tube or "test section." The flow rate (Q) through the tube test section is measured using a Coriolis mass flow meter downstream of the test section, and the pressure drop (ΔP) is measured using a differential pressure transducer across the length of the tube test section. A schematic diagram of the test section setup is shown in Figure 1.

[0075] The flow loop directs fluid between two pressure vessels or "paint pots" (PP1 and PP2). Liquid movement is created by a pressure differential applied between the two paint pots, set at approximately 70-80 psig using nitrogen gas. The valve assembly shown in Figure 1 allows fluid to move back and forth between PP1 and PP2 without the need for any lines or equipment openings. Also, in both forward and backward motion, the liquid moves in the same direction (from left to right in Figure 1) through the test section, allowing for consistent ΔP measurements.

[0076] Each paint pot is fitted with a vent valve, pressure gauge, pressure regulator, and relief valve. Nitrogen gas is maintained at a positive gauge pressure in both paint pots to eliminate any concerns related to flammable and combustible materials. The complete setup is placed in a fume hood for added safety. Additionally, PP1 is equipped with a funnel assembly that is utilized to introduce liquids into the setup without the need for opening lines or equipment.

[0077] The pressure drop across the length of the test section is measured using a wet differential pressure transducer (Omega PX459-050DWUI). The transducer is connected to pressure taps at both ends of the test section (1 m apart) using 3 / 8-inch diameter stainless steel tubing; a schematic of the complete assembly is shown in Figure 2. The pressure taps (blue diagonal lines) are specially designed to avoid disrupting the structure of the turbulent boundary layer, which is essential for obtaining accurate measurements of the friction factor, which is key to quantifying drag reduction performance. The 3 / 8-inch connections to the pressure transducers are bent 30 degrees to the horizontal to prevent air bubble accumulation in the lines, and valves 3-P and 4-P facilitate draining the lines. Valves 1-P and 2-P are used to degas the pressure taps after the lines are initially filled (before the first flush).

[0078] The liquid flow rate is measured using a Coriolis mass flow transducer (MicroMotion CMF050) located downstream of the test section. Control valves are used to limit the flow rate of each outlet. Ideally, this setup can be used with LabVIEW to precisely regulate the flow rate to a setpoint. The control valve opening was manually set by the user using the LabVIEW software; no automatic flow control feedback loop was utilized.

[0079] Tests were conducted with an organic liquid carrier (to mimic the hydrophobicity of crude oil). The organic liquid carrier has a lower viscosity than crude oil so that a sufficiently high flow rate (Reynolds number) can be achieved within the test section so that the flow can be fully turbulent. As a result, Isopar L (ExxonMobil ISOPAR™ L FLUID) was selected as the solvent (and also to mimic the hydrophobicity of crude oil). Polyoctene samples synthesized in vials were premixed with Isopar L using heat and agitation to accelerate dissolution and prepare concentrated solutions. Drag reduction measurements were conducted at polymer concentrations ranging from 10 ppm to 400 ppm. These solutions were prepared by first obtaining 2 gallons of Isopar L in the setup and then adding increasing amounts of the concentrated polymer solution to it. Drag reduction measurements were conducted on water, pure Isopar L (test), and four solutions of each polyoctene.

[0080] Results and Discussion Drag reduction measurements were carried out using the homopolymer in Isopar L at concentrations of 10, 20, 50, 100, 200, and 400 ppm.

[0081] Figure 4 shows a comparison of the broad MWD (Comparative Sample 2) with the narrow MWD (Inventive Example 2) at higher MW, where the deviation is visibly large, with the IE2 narrow MWD polyoctene consistently outperforming the CS2 broad MWD polyoctene by large margins of approximately 84% at 10 ppm, 72% at 20 ppm, 79% at 50 ppm, and 42% at 100 ppm.

[0082] Drag Reduction Performance. Table 3 shows the drag reduction percentage (maximum theoretical drag reduction of 65%). [Table 3]

[0083] In all cases, the drag reducers produced using BBP catalysts (BBP1 / BBP2) performed well and consistently outperformed those made with Ziegler-Natta catalysts. At the same molecular weight, polyoctene and / or narrow molecular weight distribution polyhexene (IE1-6) outperformed the broad molecular weight distribution polyoctene comparison samples (CS1-2).

[0084] The present disclosure is not limited to the embodiments and examples contained herein, but is expressly intended to include portions of the embodiments and modified forms of those embodiments, including combinations of elements of different embodiments, to the extent that they fall within the scope of the following claims. It should be noted that the present invention includes the following aspects. [Aspect 1] A drag reducer comprising: One or more C's 6 ~C 14 Polymers composed of α-olefin monomers, containing residual amounts of zirconium, and having an absolute weight average molecular weight (Mw) greater than 1,300,000 g / mol (Abs) ) and Mw of 1.3 to 3.0 (Abs) / Mn (Abs) a polymer having a liquid carrier. [Aspect 2] 2. The drag reducer of aspect 1, wherein the polymer comprises 0 ppm to less than 10 ppm of titanium. [Aspect 3] 3. The drag reducer of claim 1 or 2, wherein the polymer comprises greater than 0 ppm to 300 ppm zirconium. [Aspect 4] Aspect 4. The drag reducer of any one of aspects 1 to 3, wherein the polymer comprises greater than 0 ppm to 300 ppm germanium. [Aspect 5] Aspect 5. The drag reducer of any one of aspects 1 to 4, wherein the polymer is selected from the group consisting of octene homopolymers and hexene homopolymers. [Aspect 6] The liquid carrier is a linear C 4~C 16 Aliphatic hydrocarbons, branched C 4 ~C 14 Aliphatic hydrocarbons, cyclic C 4 ~C 16 Aspect 6. The drag reducer of any one of Aspects 1 to 5, wherein the drag reducer is selected from the group consisting of aliphatic hydrocarbons, and combinations thereof. [Aspect 7] 10% by weight to 80% by weight of the polymer; 7. The drag reducer of any one of Aspects 1 to 6, comprising 20% ​​by weight to 90% by weight of the liquid carrier. [Aspect 8] The drag reducer is 2.9014 * 10 +05 mPa·s~3.573 * 10 +07 Aspect 8. The drag reducer of any one of aspects 1 to 7, having a viscosity of mPa·s.

Claims

1. A drag reducer comprising: (i) one or more C 6 ~C 14 A polymer of 10% to 80% by weight consisting of α-olefin monomers, (ii) zirconium in a residual amount of greater than 0 ppm to 300 ppm, and (iii) boron, having an absolute weight average molecular weight (Mw) greater than 1,300,000 g / mol. (Abs) ) and Mw of 1.3 to 3.0 (Abs) / Mn (Abs) the polymer having 20% to 90% by weight of a liquid carrier; Including, 2.9014 at 100°C * 10+05mPa・s~3.573 * The drag reducing agent has a viscosity of 10+07 mPa·s.

2. 10. The drag reducer of claim 1, wherein the polymer has 0 ppm titanium.

3. 3. The drag reducer of claim 1 or 2, wherein the polymer has greater than 0 ppm to 300 ppm germanium.

4. The drag reducer of any one of claims 1 to 3, wherein the polymer is selected from the group consisting of octene homopolymers and hexene homopolymers.

5. The liquid carrier is a linear C 4 ~C 16 Aliphatic hydrocarbons, branched C 4 ~C 14 Aliphatic hydrocarbons, cyclic C 4 ~C 16 The drag reducer of any one of claims 1 to 4, wherein the drag reducer is selected from the group consisting of aliphatic hydrocarbons, and combinations thereof.

6. The drag reducer of any one of claims 1 to 5, wherein the polymer contains germanium.

Citation Information

Patent Citations

  • Preparation method, product and application of particulate poly-alpha-olefin

    CN102898554A

  • Poly-alpha-olefin drag reduction agent and preparation method thereof

    CN103030740A

  • Preparation method of double-peak MWD poly-alpha-alkene oil product drag reducer

    CN103626892A

  • Pipeline oil drag reducer prepared by suspension polymerization

    CN105440193A

  • Preparation method of ethylene / alpha-olefin copolymer, and application of ethylene / alpha-olefin copolymer in pipeline transmission

    CN106632784A