Resin composition, disintegrating cured material, downhole drilling tool, and well drilling method
A resin composition with cyanate ester resin and calcium oxide enables rapid disintegration of downhole drilling tools at low temperatures, addressing decomposition issues in existing technologies and enhancing recovery efficiency.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-31
- Publication Date
- 2026-04-07
AI Technical Summary
Existing biodegradable resin compositions for downhole drilling tools do not effectively decompose at temperatures between 38°C (100°F) and 93°C (200°F), necessitating improvements for quick removal in low-temperature water after use.
A resin composition comprising a thermosetting resin, such as cyanate ester resin, and an alkaline earth metal oxide, particularly calcium oxide, with specific content ratios to facilitate disintegration in water at 100°C (212°F) or lower, forming a disintegrating cured product for downhole tools.
The composition allows for rapid disintegration of downhole drilling tools in low-temperature water, reducing recovery time and costs by maintaining mechanical strength until needed and then breaking into small pieces.
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Abstract
Description
Technical Field
[0001] The present invention relates to a resin composition, a disintegrating cured product, a downhole tool for excavation, and a mine shaft excavation method.
Background Art
[0002] Petroleum, natural gas, etc. collected from underground layers are mined through oil wells or gas wells called mine shafts (hereinafter also referred to as downholes). As a method for efficiently mining these natural gases, etc. from the mine shaft, it is not particularly limited, but for example, in addition to performing acid treatment and crushing methods, in recent years, a hydraulic fracturing method, etc. that uses fluid pressure to form pores such as cracks in the mine shaft is used.
[0003] The hydraulic fracturing method is a method of generating perforations, cracks, etc. in the production layer using the hydraulic pressure of a fluid. In recent years, horizontal mine shaft excavation techniques, etc. that excavate a vertical hole and then excavate a hole in the horizontal direction from each point of the vertical downhole have also been developed.
[0004] Further, the hydraulic fracturing method is a technique of sending a fluid such as a fracturing fluid into the mine shaft at high pressure and causing cracks, etc. in the production layer (a layer that produces petroleum, natural gas, etc.) at high depth underground, and collecting petroleum, natural gas, etc. through the cracks, etc. The hydraulic fracturing method is a technique that has also attracted attention in the development of unconventional resources such as so-called shale gas.
[0005] Here, in the hydraulic pulverization method, in order to efficiently generate cracks, etc. in the mine shaft hole, a part of the mine shaft hole where cracks, etc. are not intended is blocked. By blocking a part of the mine shaft hole, the hydraulic pressure on the desired location increases, and cracks, etc. can be efficiently generated within the blocked section.
[0006] Such wellhead closure is carried out sequentially in predetermined sections when cracks or other defects are to be created. Wellhead closure may also be performed in desired sections of already formed wells to re-stimulate the production layer or to finish the well.
[0007] Tools used for blocking boreholes like these are called drilling downhole tools, and various types have been developed. While there are no particular limitations to such drilling downhole tools, various types have been developed, such as ball-shaped resin hardened materials. Furthermore, drilling downhole tools are placed sequentially within the well until completion, but they need to be removed when forming new blocked sections or before extraction of shale gas or other materials begins.
[0008] Therefore, the recovery of downhole drilling tools involves destroying them through physical means such as crushing or drilling, and then recovering them. However, crushing and drilling require significant expense and time.
[0009] To address these problems, a downhole drilling tool using a biodegradable resin composition has now been developed (see, for example, Patent Documents 1 and 2 below). This technology allows for adjustment of the decomposition rate by adjusting the composition of the biodegradable resin composition, enabling easy removal of the downhole drilling tool under various well environmental conditions. [Prior art documents] [Patent Documents]
[0010] [Patent Document 1] International Publication No. WO2020 / 158956 [Patent Document 2] United States Patent Publication No. US2016 / 0369083 [Overview of the project] [Problems that the invention aims to solve]
[0011] On the other hand, the inventors have diligently researched and found that the temperature differs from well to well, and that there is a need for downhole drilling tools that can decompose in water within the temperature range of each well. In particular, they have found that the temperature of wells in North America and other regions, which are major markets for downhole drilling tools, is between 38°C (100°F) and 93°C (200°F), and that there is a need for downhole drilling tools that can decompose in water within this temperature range.
[0012] The biodegradable resin compositions disclosed in Patent Documents 1 and 2 mentioned above indicate that the decomposition rate can be adjusted by changing the amount of additives in the composition. However, the biodegradable resin composition proposed in Patent Document 1 only discloses decomposition at 149°C (300°F), and when the biodegradability was evaluated using the proposed biodegradable resin composition, it was found that the decomposition rates at 66°C (150°F) and 93°C (200°F) were not sufficiently fast.
[0013] Furthermore, while Patent Document 2 states that the biodegradable resin composition decomposes between 25°C (77°F) and 300°C (572°F), it makes no mention of the decomposition rate.
[0014] For these reasons, there is a need for improvements to downhole drilling tools used to block wellheads, so that they can be removed quickly in low-temperature water after use.
[0015] The present invention has been made in view of the above problems, and aims to provide a resin composition for use in a disintegrating hardened material that can disintegrate in a relatively short time in water at 100°C (212°F) or less, as well as a disintegrating hardened material obtained by curing the resin composition and a downhole drilling tool containing the disintegrating hardened material. [Means for solving the problem]
[0016] In other words, the present invention is as follows. [1] Thermosetting resin and containing an alkaline earth metal oxide and where the content of the alkaline earth metal oxide is 100 to 700 parts by mass with respect to 100 parts by mass of the thermosetting resin, a resin composition. [2] where the thermosetting resin contains a cyanate ester resin, the resin composition according to [1]. [3] where the alkaline earth metal oxide contains calcium oxide, the resin composition according to [1] or [2]. [4] further containing a curing agent, the resin composition according to any one of [1] to [3]. [5] where the content of the curing agent is 1.0 to 10 parts by mass with respect to 100 parts by mass of the thermosetting resin, the resin composition according to any one of [1] to [4]. [6] a disintegrating cured product obtained by curing the resin composition according to any one of [1] to [5], a disintegrating cured product. [7] containing the disintegrating cured product according to [6], a downhole tool for drilling. [8] including a step of contacting a liquid with the disintegrating cured product according to [6] to cause disintegration, a shaft drilling method.
Advantages of the Invention
[0017] According to the present invention, there can be provided a disintegrating resin composition used for a disintegrating cured product that can disintegrate in water at 100°C (212°F) or lower in a relatively short time, a disintegrating cured product obtained by using the resin composition, and a downhole tool for drilling including the disintegrating cured product.
Brief Description of the Drawings
[0019] The embodiments of the present invention (hereinafter referred to as "this embodiment") will be described in detail below, with reference to the drawings as necessary. However, the present invention is not limited thereto, and various modifications are possible without departing from its essence.
[0020] 1.Resin composition The resin composition of this embodiment comprises a thermosetting resin and an alkaline earth metal oxide, wherein the content of the alkaline earth metal oxide is 100 to 700 parts by mass per 100 parts by mass of the thermosetting resin. The resin composition of this embodiment may optionally contain other components.
[0021] The following provides a detailed explanation of each component of the resin composition.
[0022] (thermosetting resin) The resin composition of this embodiment includes a thermosetting resin. The thermosetting resin is not particularly limited, but examples include cyanate ester resins, epoxy resins, phenolic resins, unsaturated polyester resins, acrylic resins, urethane resins, etc. Among these, it is preferable to include a cyanate ester resin. This allows the resin to maintain mechanical strength for a certain period of time in contact with a fluid such as a fracturing fluid, and tends to exhibit excellent resistance to fragmentation due to a decrease in mechanical strength after a desired period of time.
[0023] In this embodiment, the term "resin" is not limited to polymers in which the polymerization reaction has been completed, but also encompasses a prepolymer that has a functional group capable of further polymerization, which is a compound in which the polymerization reaction of a polymerizable monomer has been stopped at an intermediate stage, and polymerizable monomers that can be polymerized by the polymerization reaction described later.
[0024] The types of such polymerization reactions are not particularly limited, but include, for example, stepwise polymerization such as condensation polymerization, addition polymerization, ring-opening polymerization, and addition-condensation; chain polymerization such as radical polymerization, cationic polymerization, and anionic polymerization; and living polymerization such as living radical polymerization, living cationic polymerization, and living anionic polymerization.
[0025] Thermosetting resins can be used individually or in combination of two or more types.
[0026] (Cyanate ester resin) In this embodiment, the cyanate ester resin refers to a resin having an aromatic ring within its molecule, which is substituted with at least two cyanate groups (cyanate ester groups).
[0027] The cyanate ester resin in this embodiment is not particularly limited, but for example, cyanate ester compounds described in International Publication WO2017 / 135168 can be used, such as cyanatobenzene, 1-cyanato-2-,1-cyanato-3-, or 1-cyanato-4-methylbenzene, 1-cyanato-2-,1-cyanato-3-, or 1-cyanato-4-methoxybenzene, 1-cyanato-2,3-,1-cyanato-2,4-,1-cyanato-2,5-,1-cyanato-2,6-,1-cyanato-3,4-, or 1-cyanato-3,5-dimethyl Cyanatoethylbenzene, cyanatobutylbenzene, cyanatooctylbenzene, cyanatononylbenzene, 2-(4-cyanaphenyl)-2-phenylpropane (cyanate of 4-α-cumylphenol), 1-cyanato-4-cyclohexylbenzene, 1-cyanato-4-vinylbenzene, 1-cyanato-2- or 1-cyanato-3-chlorobenzene, 1-cyanato-2,6-dichlorobenzene, 1-cyanato-2-methyl-3-chlorobenzene, cyanatonitrobenzene, 1-cyanato-4-nitro-2-ethylbenzene, 1-cyanato -2-Methoxy-4-allylbenzene (cyanate of eugenol), methyl (4-cyanatophenyl) sulfide, 1-cyanato-3-trifluoromethylbenzene, 4-cyanatobiphenyl, 1-cyanato-2- or 1-cyanato-4-acetylbenzene, 4-cyanatobenzaldehyde, 4-cyanatobenzoate methyl ester, 4-cyanatobenzoate phenyl ester, 1-cyanato-4-acetaminobenzene, 4-cyanatobenzophenone, 1-cyanato-2,6-di-tert-butylbenzene, 1,2-dicyanatobenzene, 1,3-dicyanatobenzene Sodium benzene, 1,4-dicyanatobenzene, 1,4-dicyanato-2-tert-butylbenzene, 1,4-dicyanato-2,4-dimethylbenzene, 1,4-dicyanato-2,3,4-trimethylbenzene, 1,3-dicyanato-2,4,6-trimethylbenzene, 1,3-dicyanato-5-methylbenzene, 1-cyanato or 2-cyanatonaphthalene, 1-cyanato4-methoxynaphthalene, 2-cyanato-6-methylnaphthalene, 2-cyanato-7-methoxynaphthalene, 2,2'-dicyanato-1,1'-binaphthyl, 1,3-, 1,4-, 1,5-,1,6-,1,7-,2,3-,2,6- or 2,7-dicyanatosinaphthalene, 2,2'- or 4,4'-dicyanatobiphenyl, 4,4'-dicyanatooctafluorobiphenyl, 2,4'- or 4,4'-dicyanatodiphenylmethane, bis(4-cyanato-3,5-dimethylphenyl)methane, 1,1-bis(4-cyanatophenyl)ethane, 1,1-bis(4-cyanatophenyl)propane, 2,2-bis(4-cyanatophenyl)propane, 2,2-bis(4-cyanato-3-methylphenyl)propane, 2,2-bis(2-cyanatophenyl) Anato-5-biphenylyl)propane, 2,2-bis(4-cyanatophenyl)hexafluoropropane, 2,2-bis(4-cyanato-3,5-dimethylphenyl)propane, 1,1-bis(4-cyanatophenyl)butane, 1,1-bis(4-cyanatophenyl)isobutane, 1,1-bis(4-cyanatophenyl)pentane, 1,1-bis(4-cyanatophenyl)-3-methylbutane, 1,1-bis(4-cyanatophenyl)-2-methylbutane, 1,1-bis(4-cyanatophenyl)-2,2-dimethylpropane, 2,2-bis(4 -Cyanatophenyl)butane, 2,2-bis(4-cyanatophenyl)pentane, 2,2-bis(4-cyanatophenyl)hexane, 2,2-bis(4-cyanatophenyl)-3-methylbutane, 2,2-bis(4-cyanatophenyl)-4-methylpentane, 2,2-bis(4-cyanatophenyl)-3,3-dimethylbutane, 3,3-bis(4-cyanatophenyl)hexane, 3,3-bis(4-cyanatophenyl)heptane, 3,3-bis(4-cyanatophenyl)octane, 3,3-bis(4-cyanatophenyl)-2-methylpentane, 3,3-bis(4-cyanatophenyl)-2-methylhexane, 3,3-bis(4-cyanatophenyl)-2,2-dimethylpentane, 4,4-bis(4-cyanatophenyl)-3-methylheptane, 3,3-bis(4-cyanatophenyl)-2-methylheptane, 3,3-bis(4-cyanatophenyl)-2,2-dimethylhexane, 3,3-bis(4-cyanatophenyl)-2,4-dimethylhexane, 3,3-bis(4-cyanatophenyl)-2,2,4-trimethylpentane, 2,2-bis(4-cyanatophenyl)-1,1,1,3,3,3-Hexafluoropropane, bis(4-cyanatophenyl)phenylmethane, 1,1-bis(4-cyanatophenyl)-1-phenylethane, bis(4-cyanatophenyl)biphenylmethane, 1,1-bis(4-cyanatophenyl)cyclopentane, 1,1-bis(4-cyanatophenyl)cyclohexane, 2,2-bis(4-cyanato-3-isopropylphenyl)propane, 1,1-bis(3-cyclohexyl-4-cyanatophenyl)cyclohexane, bis(4-cyanatophenyl)diphenylmethane, bis(4-cyanatophenyl)-2 ,2-Dichloroethylene, 1,3-Bis[2-(4-cyanatophenyl)-2-propyl]benzene, 1,4-Bis[2-(4-cyanatophenyl)-2-propyl]benzene, 1,1-Bis(4-cyanatophenyl)-3,3,5-Trimethylcyclohexane, 4-[Bis(4-cyanatophenyl)methyl]biphenyl, 4,4-Dicyanatobenzophenone, 1,3-Bis(4-cyanatophenyl)-2-propen-1-one, Bis(4-cyanatophenyl) ether, Bis(4-cyanatophenyl) sulfide, Bis(4-cyanatophenyl) Lufon, 4-cyanatobenzoic acid-4-cyanatophenyl ester (4-cyanatophenyl-4-cyanatobenzoate), bis-(4-cyanatophenyl) carbonate, 1,3-bis(4-cyanatophenyl) adamantane, 1,3-bis(4-cyanatophenyl)-5,7-dimethyl adamantane, 1,3-bis(3-methyl-4-cyanatophenyl)-5,7-dimethyl adamantane, 3,3-bis(4-cyanatophenyl) isobenzofuran-1(3H)-one (phenolphthalein cyanate), 3,3-bis(4-cyanato-3-methyl Isobenzofuran-1(3H)-one (cyanate of o-cresolphthalein), 9,9'-bis(4-cyanatophenyl)fluorene, 9,9-bis(4-cyanato-3-methylphenyl)fluorene, 9,9-bis(2-cyanato-5-biphenylyl)fluorene, tris(4-cyanatophenyl)methane, 1,1,1-tris(4-cyanatophenyl)ethane, 1,1,3-tris(4-cyanatophenyl)propane, α,α,α'-tris(4-cyanatophenyl)-1-ethyl-4-isopropylbenzene, 1,1,2,2-Tetrakis(4-cyanatophenyl)ethane, Tetrakis(4-cyanatophenyl)methane, 2,4,6-Tris(N-methyl-4-cyanatoanilino)-1,3,5-triazine, 2,4-Bis(N-methyl-4-cyanatoanilino)-6-(N-methylanilino)-1,3,5-triazine, Bis(N-4-cyanato-2-methylphenyl)-4,4'-oxydiphthalimide, Bis(N-3-cyanato-4-methylphenyl)-4,4'-oxydiphthalimide, Bis(N-4-cyanatophenyl)-4,4'-oxydiphthalimide, Bis(N-4-cyanato-2-methylphenyl)- Examples include 4,4'-(hexafluoroisopropylidene)diphthalimide, tris(3,5-dimethyl-4-cyanatobenzyl)isocyanurate, 2-phenyl-3,3-bis(4-cyanatophenyl)phthalimidine, 2-(4-methylphenyl)-3,3-bis(4-cyanatophenyl)phthalimidine, 2-phenyl-3,3-bis(4-cyanato-3-methylphenyl)phthalimidine, 1-methyl-3,3-bis(4-cyanatophenyl)indorin-2-one, and 2-phenyl-3,3-bis(4-cyanatophenyl)indorin-2-one, and their prepolymers.
[0028] Among these, the cyanate ester resin preferably contains a polymerizable monomer and / or its prepolymer having a diphenylmethane skeleton, and more preferably contains one or more polymerizable monomers and / or its prepolymers selected from the group consisting of polymerizable monomers and / or its prepolymer having a bisphenol A type skeleton, polymerizable monomers and / or its prepolymer having a bisphenol B type skeleton, polymerizable monomers and / or its prepolymer having a bisphenol E type skeleton, and polymerizable monomers and / or its prepolymer having a bisphenol F type skeleton.
[0029] More preferably, from the viewpoint of being able to further adjust the viscosity during melting, the cyanate ester resin in this embodiment comprises one or more polymerizable monomers and / or prepolymers selected from the group consisting of 2,2-bis(4-cyanatophenyl)propane and / or its prepolymer, bis(4-cyanatophenyl)methane and / or its prepolymer, 1,1-(4-cyanatophenyl)ethane and / or its prepolymer, 1,1-bis(4-cyanatophenyl)-1-phenylethane and / or its prepolymer, 2,2-bis(4-cyanatophenyl)butane and / or its prepolymer, and 2,2-bis(3-methyl-4-cyanatophenyl)propane and / or its prepolymer.
[0030] When the cyanate ester resin contains a prepolymer, the prepolymer is not particularly limited, but is preferably a polymer with a weight-average molecular weight (Mw) of 160 to 4000, more preferably 160 to 3000, and even more preferably 160 to 2000.
[0031] Furthermore, the weight-average molecular weight (Mw) of the cyanate ester resin is not particularly limited, but from the viewpoint of the strength of the cured product and the viscosity during kneading, it is preferably 160 to 4000, more preferably 160 to 3000, and even more preferably 160 to 2000.
[0032] In this embodiment, commercially available cyanate ester resins can be used as appropriate. Such commercially available cyanate ester resins are not particularly limited, but examples include 2,2-bis(4-cyanatophenyl)propane prepolymers (manufactured by Mitsubishi Gas Chemical Company, such as TA (product name) and TA-1500 (product name)). The cyanate ester resin can be used alone or in combination of two or more types.
[0033] Furthermore, cyanate resins can also be prepared and used in-house. While there are no particular limitations on the method for preparing such cyanate ester resins, conventionally known methods can be used. An example of such a method is to obtain or synthesize a hydroxyl group-containing compound having a desired skeleton, and then modify the hydroxyl group by a known method to cyanate it. While there are no particular limitations on the method for cyanating the hydroxyl group, an example is the method described in Ian Hamerton, “Chemistry and Technology of Cyanate Ester Resins,” Blackie Academic & Professional.
[0034] 1.2. Alkaline Earth Metal Oxides The resin composition of this embodiment contains an alkaline earth metal oxide. The alkaline earth metal oxide is not particularly limited, but examples include calcium oxide and magnesium oxide. Among these, calcium oxide is preferred from the viewpoint of reactivity with water at low temperatures. These alkaline earth metal oxides can be used individually or in combination of two or more.
[0035] Calcium oxide and magnesium oxide, which are alkaline earth metal oxides, expand in volume when they react with water to form calcium hydroxide and magnesium hydroxide, respectively. Therefore, for example, when a disintegrating hardened material, as described later, is brought into contact with water, the alkaline earth metal oxides in the disintegrating hardened material react with the water, causing the volume of the alkaline earth metal oxides to expand. When the volume of the alkaline earth metal oxides in the disintegrating hardened material expands, its shape becomes brittle, and the disintegrating hardened material disintegrates into the main body or small pieces.
[0036] In the biodegradable resin compositions proposed in Patent Documents 1 and 2, the molecular weight of the resin decreases due to hydrolysis. However, according to this embodiment, the breakdown is caused by the physical force of expansion of alkaline earth metal oxides, so it can be easily removed even in water below 100°C (212°F).
[0037] The content of alkaline earth metal oxides in the resin composition is 100 to 700 parts by mass per 100 parts by mass of thermosetting resin, from the viewpoint of disintegration and moldability. The lower limit of the alkaline earth metal oxide content is preferably 150 parts by mass or more, more preferably 200 parts by mass or more, even more preferably 250 parts by mass or more, even more preferably 300 parts by mass or more, even more preferably 350 parts by mass or more, even more preferably 380 parts by mass or more, and even more preferably 410 parts by mass or more. Setting the content above the lower limit tends to result in a cured product with excellent disintegration properties. Furthermore, the upper limit of the alkaline earth metal oxide content is preferably 600 parts by mass or less, more preferably 500 parts by mass or less, even more preferably 450 parts by mass or less, even more preferably 445 parts by mass or less, even more preferably 440 parts by mass or less, even more preferably 435 parts by mass or less, and even more preferably 430 parts by mass or less. By keeping the content below the above upper limit, the dispersibility of the alkaline earth metal oxide in the resin composition and the moldability of the resin composition tend to improve, and the cured product obtained by curing the resin composition tends to have excellent mechanical properties. Also, if two or more types of alkaline earth metal oxides are included, it is preferable that their total amount be within the above range. Note that the above upper and lower limits for the alkaline earth metal oxide content in the resin composition can be used in any combination.
[0038] Furthermore, the content of alkaline earth metal oxides is preferably 150 to 600 parts by mass, more preferably 200 to 500 parts by mass, even more preferably 250 to 450 parts by mass, even more preferably 300 to 445 parts by mass, even more preferably 350 to 440 parts by mass, even more preferably 380 to 435 parts by mass, and even more preferably 410 to 430 parts by mass.
[0039] When the content of alkaline earth metal oxides in the resin composition is 100 parts by mass or more per 100 parts by mass of thermosetting resin, the cured product obtained by curing the resin composition tends to have excellent disintegration properties. On the other hand, when the content of alkaline earth metal oxides in the resin composition is 700 parts by mass or less per 100 parts by mass of thermosetting resin, the dispersibility of the alkaline earth metal oxides in the resin composition and the moldability of the resin composition tend to improve, and the cured product obtained by curing the resin composition tends to have excellent mechanical properties.
[0040] The shape of the alkaline earth metal oxide in this embodiment is not particularly limited, but various shapes such as spherical or amorphous can be used.
[0041] In this embodiment, the particle size of the alkaline earth metal oxide is preferably 20 μm to 200 μm, from the viewpoint of dispersibility and packing properties. Furthermore, the alkali metal oxide may or may not contain a dispersion medium.
[0042] 1.3. Hardener The resin composition of this embodiment preferably contains a curing agent. In particular, the inclusion of a curing agent can shorten the molding time.
[0043] If the thermosetting resin of this embodiment contains the above-mentioned cyanate ester resin, a cyanate ester resin curing agent can be used as the curing agent. While generally known curing agents can be used and are not particularly limited, examples include organometallic salts such as copper, zinc, cobalt, and nickel, imidazoles, amines, and alcohols.
[0044] The curing agent content is 0.1 to 10 parts by mass per 100 parts by mass of thermosetting resin. The lower limit of the curing agent content is preferably 1.0 part by mass or more, more preferably 2.0 parts by mass or more, and even more preferably 4.0 parts by mass or more. The upper limit of the curing agent content is preferably 8.0 parts by mass or less, and more preferably 6.0 parts by mass or less. Furthermore, if two or more types of curing agents are included, it is preferable that the total amount falls within the above ranges. Note that the above upper and lower limits for the curing agent content in the resin composition can be used in any combination.
[0045] Furthermore, the amount is preferably 0.1 to 10 parts by mass, more preferably 1.0 to 10 parts by mass, even more preferably 2.0 to 8.0 parts by mass, and still more preferably 4.0 to 6.0 parts by mass per 100 parts by mass of thermosetting resin.
[0046] 1.4.Filling material The resin composition of this embodiment may contain a filler. The inclusion of a filler in the resin composition tends to improve the mechanical strength and heat resistance of the cured product. The filler may consist of at least one of inorganic fillers and organic fillers, and may contain two or more types of fillers.
[0047] The inorganic filler is not particularly limited, but examples include silicas such as natural silica, fused silica, synthetic silica, amorphous silica, aerosil, and hollow silica; oxides such as white carbon, titanium white, zinc oxide, and zirconium oxide; boron nitride, aggregated boron nitride, silicon nitride, aluminum nitride, barium sulfate, aluminum hydroxide, heat-treated aluminum hydroxide (aluminum hydroxide that has been heat-treated to reduce some of its crystal water); metal hydrates such as boehmite and magnesium hydroxide; and molybdenum oxide. Examples include molybdenum compounds such as zinc molybdate, zinc borate, zinc stinate, alumina, clay, kaolin, talc, calcined clay, calcined kaolin, calcined talc, mica, E-glass, A-glass, NE-glass, C-glass, L-glass, D-glass, S-glass, M-glass G20, glass fibers (including glass powders such as E-glass, T-glass, D-glass, S-glass, and Q-glass), hollow glass, spherical glass, soda glass, and alkali metal salts containing alkali metal ions as constituent ions.
[0048] The organic filler is not particularly limited, but examples include styrene-type, butadiene-type, and acrylic-type rubber powders, core-shell type rubber powders, and silicone resin powders, silicone rubber powders, and silicone composite powders.
[0049] The above-mentioned filler material may be surface-treated with a silane coupling agent or the like.
[0050] The content of the filler is not particularly limited, but for example, the content of the filler relative to 100 parts by mass of the total amount of thermosetting resin, alkaline earth metal oxide, and filler may be 0 to 40 parts by mass, or 5 to 20 parts by mass. Furthermore, it may contain two or more types of fillers.
[0051] The filler material is not particularly limited, but in order to balance the amount of filler with mechanical strength, various shapes such as fibrous, flaky, plate-like, needle-like, spherical, and irregular shapes can be used. Furthermore, fillers of different shapes may be used in appropriate combinations.
[0052] 1.5. Other ingredients The resin composition in this embodiment may contain, to the extent that it does not hinder the purpose of this embodiment, other additives such as chain extenders, stabilizers, reinforcing agents, or colorants such as pigments, plasticizers, nucleating agents, other resin materials such as biodegradable resins, and impact resistance modifiers. Depending on the purpose, it may also contain resin modifiers, mold corrosion inhibitors such as zinc carbonate and nickel carbonate, lubricants, ultraviolet absorbers, nucleating agents such as boron nitride, flame retardants, etc.
[0053] The content of other components can be determined as appropriate according to their type and purpose, and is not particularly limited, but for example, it may be 0 to 10 parts by mass per 100 parts by mass of the total amount of the resin composition.
[0054] 1.6. Preparation of resin composition The resin composition in this embodiment can be prepared using a known method for preparing resin compositions used for well drilling. While not particularly limited, such a method can be used, for example, by mixing the above-mentioned thermosetting resin and alkaline earth metal oxides together or in predetermined amounts at room temperature or under heating. Shear force may be applied during the mixing, or all or part of the compositional components may be heated before melt-mixing. Furthermore, pellets may be prepared for ease of handling, etc.
[0055] 2.Disintegrating cured product The disintegrating cured product of this embodiment is obtained by curing the resin composition described above. The disintegrating cured product of this embodiment is obtained by curing a resin composition containing a thermosetting resin and an alkaline earth metal oxide, and can be used in a drilling downhole tool that can be easily removed after being used for blocking boreholes for a certain period of time.
[0056] Here, "disintegrating cured material" refers to a cured material obtained by curing a thermosetting resin, which becomes brittle when contacted with a liquid such as a fracturing fluid, and disintegrates into small pieces containing powder. The time from contact with the liquid until disintegration is not particularly limited as long as it is 4 hours or more, but it may be, for example, 24 hours or 100 hours. The time until disintegration can be appropriately adjusted as needed by selecting the composition, shape of the cured material, etc.
[0057] In other words, as described above, when a collapsible hardened material is in contact with a liquid such as a fracturing fluid, it can maintain its strength for a certain period of time while fulfilling its role in blocking boreholes, and then disintegrate into powder or small pieces after a desired time has elapsed.
[0058] Here, the decay rate of the disintegrating cured material can be controlled by adjusting the types of thermosetting resin and alkaline earth metal oxide, or by adjusting the content of alkaline earth metal oxide in the thermosetting resin.
[0059] The method for producing the disintegrating cured product is not particularly limited, but for example, a molded product of a desired shape can be produced using injection molding, extrusion molding (including solidification extrusion molding), centrifugal molding, compression molding, or other known molding methods.
[0060] The shape of the disintegrating cured product in this embodiment may be, for example, a sheet (thin film or thin plate), a thick plate, a rod (round rod, prismatic, etc.), a rectangular parallelepiped (including cubic), a lump (fixed shape, irregular shape, etc.), or a molded body having any other predetermined shape.
[0061] Furthermore, when using the disintegrating hardened material in sheet form, or as a sealing or packing material (filler-like), it does not need to be a molded body with a predetermined shape.
[0062] 3. Downhole tools for drilling The downhole drilling tool of this embodiment includes a disintegrating cured material obtained by curing a resin composition containing a thermosetting resin and an alkaline earth metal oxide. As a result, it can be easily removed after being used for blocking a well borehole for a certain period of time. Therefore, the downhole drilling tool of this embodiment can contribute to reducing the cost and shortening the process of well drilling.
[0063] A downhole drilling tool refers to a tool used to extract oil or natural gas through a well. While not particularly limited, examples of downhole drilling tools include flak balls, flak plugs, bridge plugs, ball sealers, sealant plugs, and packers. Among these, the downhole drilling tool of this embodiment is preferably a flak ball, as it can maintain mechanical strength for a certain period of time in contact with a fluid such as a fracturing fluid, and its mechanical strength decreases and it breaks into small pieces after several hours.
[0064] Furthermore, the manufacturing method for the downhole drilling tool involves pre-forming a disintegrating hardened material, then performing machining such as cutting and drilling as necessary, and finally combining known methods. In addition, the disintegrating hardened material and the downhole drilling tool in this embodiment may be coated with a coating agent.
[0065] According to this embodiment, a downhole drilling tool can be provided that, as a disintegrating cured product obtained by curing a resin composition, has excellent mechanical properties and heat resistance, and can be easily removed as needed after the completion of well drilling. The type, shape, and size of the downhole drilling tool are not particularly limited.
[0066] The shape and size of the downhole drilling tool are not particularly limited, but it is preferable that it is intended for use in sealing boreholes, for example. As mentioned above, such shapes include balls (ball sealers) and ball sheets, as well as mandrels, slips, wedges, and rings, which are known as components of bridge plugs. The size of the downhole drilling tool can be appropriately selected according to the borehole and other factors.
[0067] 4. Well drilling method As described above, for example, in the hydraulic pulverization method, a portion of the wellbore is closed in order to efficiently create cracks or other defects in the wellbore. The downhole drilling tool of this embodiment is preferably used to close such wellbores. That is, the well drilling method of this embodiment includes a step of bringing a liquid into contact with the collapsible hardened material of this embodiment to cause it to collapse. Its specific usage will be described in detail below.
[0068] First, the drilling downhole tool (for example, ball-shaped) of this embodiment is placed at a predetermined location in the well. This closes the space between the drilling downhole tool and the well (downhole), blocking the fracturing fluid injected from the surface within the predetermined section. Subsequently, after well treatment such as fracturing in various sections that cause cracks in the well is completed, the drilling downhole tool blocking the well is removed before starting treatment on the next section, or at the latest before starting production of oil or natural gas.
[0069] As described above, the drilling downhole tool of this embodiment is designed to disintegrate after a predetermined time as a hydration reaction proceeds due to the fracturing fluid. Therefore, the drilling downhole tool can be easily disintegrated and removed after the completion of well treatment. As a result, the well drilling method of this embodiment eliminates the need for the many expenses and time that were previously required to remove, recover, or destroy or break into smaller pieces the numerous well drilling downhole tools left in the well after the completion of well treatment or the completion of the well, thereby reducing the cost and shortening the well drilling process.
[0070] Here, the collapse rate of the downhole drilling tool can be controlled by adjusting the type of thermosetting resin and alkaline earth metal oxide, or by adjusting the content of alkaline earth metal oxide in the thermosetting resin.
[0071] Regarding the collapse of the downhole drilling tool in this embodiment, a different liquid may be injected separately for collapse, using a liquid other than the fracturing fluid.
[0072] Furthermore, while it is preferable that the remaining drilling downhole tools after well treatment are completely gone before production begins, even if they are not completely gone, if their strength is reduced and they collapse due to stimuli such as water flow in the downhole, the collapsed decomposable sealing members for the downhole tools can be easily recovered by flowback, etc., and will not cause clogging in the downhole or fracture, thus not hindering the production of oil or natural gas. In addition, in some wells, the water content in the geological formation may be low, and in such cases, the collapse of the drilling downhole tools can be accelerated by leaving the water-based fluid used during fracture in the well without recovering it after fracture. [Examples]
[0073] The present invention will be described in detail below with reference to examples. However, the present invention is not limited in any way to the following examples.
[0074] 1. Preparation of resin composition [Example 1] A clay-like resin composition was prepared by mixing and dispersing the above components in a kneader (manufactured by Irie Shokai Co., Ltd., model number: tabletop kneader PVB-0.1), adding 34.2 g of 2,2-bis(4-cyanatophenyl)propane prepolymer (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name TA-1500) as a thermosetting resin, 8.5 g of 2,2-bis(4-cyanatophenyl)propane (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name TA), 45.0 g of calcium oxide (manufactured by Omi Chemical Industry Co., Ltd., product name CML35) as an alkaline earth metal oxide, and 2.3 g of triisopropanolamine (manufactured by Tokyo Chemical Industry Co., Ltd.) as a curing agent, and kneading at 80°C.
[0075] [Example 2] A clay-like resin composition was prepared by mixing and dispersing the above components in a kneader (manufactured by Irie Shokai Co., Ltd., model number: Tabletop Kneader PVB-0.1), adding 27.4 g of 2,2-bis(4-cyanatophenyl)propane prepolymer (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name TA-1500) as a thermosetting resin, 6.8 g of 2,2-bis(4-cyanatophenyl)propane (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name TA), 54.0 g of calcium oxide (manufactured by Omi Chemical Industry Co., Ltd., product name CML35) as an alkaline earth metal oxide, and 1.8 g of triisopropanolamine (manufactured by Tokyo Chemical Industry Co., Ltd.) as a curing agent, and kneading at 80°C.
[0076] [Example 3] A clay-like resin composition was prepared by mixing and dispersing the above components in a kneader (manufactured by Irie Shokai Co., Ltd., model number: tabletop kneader PVB-0.1), adding 28.5 g of 1,1-bis(4-cyanatophenyl)ethane (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name P-201) as a thermosetting resin, 70.0 g of calcium oxide (manufactured by Adachi Lime Industry Co., Ltd.) as an alkaline earth metal oxide, and 1.5 g of triisopropanolamine (manufactured by Tokyo Chemical Industry Co., Ltd.) as a curing agent, and kneading at room temperature.
[0077] [Example 4] A clay-like resin composition was prepared by mixing and dispersing the above components in a kneader (manufactured by Irie Shokai Co., Ltd., model number: tabletop kneader PVB-0.1), adding 19.0 g of 1,1-bis(4-cyanatophenyl)ethane (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name P-201) as a thermosetting resin, 80.0 g of calcium oxide (manufactured by Omi Chemical Industry Co., Ltd., product name CML35) as an alkaline earth metal oxide, and 1.0 g of triisopropanolamine (manufactured by Tokyo Chemical Industry Co., Ltd.) as a curing agent, and kneading at room temperature.
[0078] [Comparative Example 1] A clay-like resin composition was prepared by mixing and dispersing the above components in a kneader (manufactured by Irie Shokai Co., Ltd., model number: tabletop kneader PVB-0.1), adding 34.2 g of 2,2-bis(4-cyanatophenyl)propane prepolymer (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name TA-1500) and 8.5 g of 2,2-bis(4-cyanatophenyl)propane (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name TA) as thermosetting resins, 45.0 g of sodium silicate (manufactured by Tokuyama Corporation, prefeed powder) as a filler, and 2.3 g of triisopropanolamine (manufactured by Tokyo Chemical Industry Co., Ltd.) as a curing agent, and kneading at 80°C.
[0079] [Comparative Example 2] A resin composition was prepared by adding 9.5 g of 1,1-bis(4-cyanatophenyl)ethane (manufactured by Mitsubishi Gas Chemical Co., Ltd., product name P-201) as a thermosetting resin, 90.0 g of calcium oxide (manufactured by Omi Chemical Industry Co., Ltd., product name CML35) as an alkaline earth metal oxide, and 0.5 g of triisopropanolamine (manufactured by Tokyo Chemical Industry Co., Ltd.) as a curing agent to a kneader (manufactured by Irie Shokai Co., Ltd., model number: tabletop kneader PVB-0.1) and kneading at room temperature. However, it was not possible to create a clay-like mixture in which the above components were mixed and dispersed, and therefore it could not be used for the production and evaluation of the thick plate-like disintegrating cured material described later.
[0080] 2. Preparation of thick, plate-like, collapsible hardened material The resin compositions of Examples 1-4 and Comparative Example 1 were filled into SUS304 molds coated with fluororesin, and cured in a vacuum press molding machine under vacuum conditions at a pressure of 20 MPa and a temperature of 220°C for 90 minutes. After curing, the SUS304 molds coated with fluororesin were removed to obtain thick, plate-shaped, disintegrating cured material. A 10 mm × 10 mm × 3.5 mm sample was cut from the obtained thick, plate-shaped, disintegrating cured material, and various measurements were performed.
[0081] 3. Evaluation Method (Compressive strength measurement) Using the obtained samples, the compressive strength was measured according to the method of JIS K 7181, and the average value of the obtained compressive strength (N=3) was calculated.
[0082] (Assessment of disintegration potential) The obtained samples were placed in a Teflon® inner cylinder sealed container (manufactured by Pressure Glass Industry Co., Ltd. (model TAF-SR)), 13 mL of distilled water was added, and the container was sealed. The samples were then heat-treated in a constant temperature bath at 93°C (200°F) or 66°C (150°F) for 24 hours. After 24 hours, the samples were removed and filtered using a 3 μm pore diameter membrane filter (manufactured by ADVANTEC Corporation). The residue was then vacuum-dried at 100°C for 3 hours to obtain the dried residue. The disintegration properties of the dried residue were evaluated according to the following evaluation criteria. The evaluation results are shown in Table 1. Figures 1 to 5 show the appearance of the dried residue for the evaluation of disintegration properties at 93°C (200°F), and Figures 6 to 10 show the appearance of the dried residue for the evaluation of disintegration properties at 66°C (150°F). [Evaluation Criteria] ◎: It has collapsed, and almost nothing remains except for the powder. ○: Part of it has collapsed, and the parts other than the powder are so brittle that they easily crumble when touched with a finger. △: Partially collapsed, but the parts other than the powder do not easily crumble even when touched with a finger. ×: It has not disintegrated, and very little powder has been produced.
[0083] [Table 1]
[0084] [Example 6] (Preparation of spherically collapsible hardened material) The resin composition of Example 4 was filled into a cylindrical mold with a diameter of 30 mm and a height of 50 mm, and cured in a press molding machine at a pressure of 50 MPa and temperatures of 70°C for 60 minutes, 100°C for 60 minutes, 130°C for 60 minutes, 160°C for 60 minutes, 190°C for 60 minutes, and 220°C for 60 minutes to produce a cylindrical disintegrating cured product. The obtained cylindrical collapsible hardened material was processed using a machining center to produce a spherical collapsible hardened material with a diameter of φ25.4 mm.
[0085] (Assessment of disintegration) The obtained spherically disintegrating hardened material was placed in a beaker, 200 mL of distilled water was added, and the beaker was covered with aluminum foil. The material was then heat-treated in a constant temperature bath at 93°C (200°F) or 66°C (150°F) for 24 hours. After the predetermined time, the material was removed and filtered using a 3 μm pore diameter membrane filter (manufactured by ADVANTEC Corporation). The residue was then vacuum-dried at 100°C for 3 hours to obtain the dried residue. From the dried residue, only the portion that had detached from the spherically disintegrating hardened material was removed, and the weight of the remaining spherically disintegrating hardened material was measured to calculate the weight retention rate. The evaluation results are shown in Table 2. The appearance of the dried residue at each temperature is shown in Figures 11 and 12. Weight retention rate (%) = (Weight of spherically disintegrating hardened material after removal of detached parts / Weight of disintegrating hardened material before heat treatment) × 100
[0086] [Table 2]
Claims
1. A cyanate ester resin and It contains calcium oxide, The calcium oxide content is 100 to 700 parts by mass per 100 parts by mass of the cyanate ester resin. Resin composition.
2. Further containing a hardening agent, The resin composition according to claim 1.
3. The content of the curing agent is 1.0 to 10 parts by mass per 100 parts by mass of the cyanate ester resin. The resin composition according to claim 2.
4. A resin composition obtained by curing according to any one of claims 1 to 3, Disintegrating cured product.
5. A disintegrating cured product according to claim 4, Downhole drilling tool.
6. The process includes bringing a liquid into contact with the disintegrating cured material described in claim 4 to cause it to disintegrate, Well drilling methods.
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