Double-condition-triggered autolysis protective film in wading environment and preparation method of double-condition-triggered autolysis protective film
By introducing a dynamic cross-linking network and mechanically sensitive microcapsules into the underwater protective membrane, combined with mechanical vibration and water contact triggering, the self-dissolving protective membrane achieves precise dissolution and zero residue, solving the problems of inaccurate dissolution and contamination of traditional protective membranes. It is suitable for long-term underwater storage and protection of precision equipment.
Patent Information
- Application Number
- CN202610037932.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-13
- Publication Date
- 2026-05-01
AI Technical Summary
Existing underwater protective membranes do not dissolve precisely in aquatic environments, failing to meet the requirements for long-term storage or precise control of dissolution time. Furthermore, traditional membranes require manual peeling, which is inefficient and prone to causing secondary pollution.
The self-dissolving protective membrane, which is triggered by two conditions, consists of an inner membrane layer and a composite hydrophobic barrier layer. The inner membrane layer is composed of a dynamic cross-linked network and mechanically sensitive microcapsules, which can achieve rapid dissolution through specific mechanical vibration and water contact. The hydrophobic barrier layer provides initial hydrostatic barrier.
It achieves manual stripping and precise, controllable dissolution, reduces accidental triggering, lowers the risk of environmental pollution, and is suitable for long-term underwater storage and protection of precision equipment.
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Abstract
Description
A self-dissolving protective membrane triggered under dual conditions in water-related environments and its preparation method Technical Field
[0001] This application relates to the field of self-dissolving protective membrane technology, and in particular to a self-dissolving protective membrane triggered under dual conditions in a water-related environment and its preparation method. Background Technology
[0002] In underwater engineering, industrial manufacturing, and other fields, protective films or release papers are often used to temporarily protect underwater components, precision parts, and equipment to isolate them from impurities, corrosive media, and harmful microorganisms in the water, ensuring the performance stability and operational reliability of the protected objects. However, traditional underwater protective films or release papers require manual peeling, which is risky and inefficient for divers or robotic arms, and the peeling debris can easily cause secondary pollution.
[0003] Existing water-soluble membranes typically dissolve upon contact with water, or dissolve within a short period after contact, failing to meet the application requirements for long-term underwater storage or precise control of dissolution triggering time. Furthermore, while underwater membranes based on pH, temperature, or light signals have been reported, the complex and variable aquatic environment often renders these triggering membranes unstable and unreliable in environments with temperature fluctuations, pH fluctuations, or saline conditions, making it impossible to accurately match the protection and dissolution timing requirements of actual operations.
[0004] Therefore, developing an underwater protective membrane material that can solve the above-mentioned technical problems and has the characteristics of safe, manual-free peeling, precise and controllable dissolution, and wide environmental adaptability has become an urgent technical challenge to be solved in this field. Summary of the Invention
[0005] The purpose of this application is to provide a self-dissolving protective membrane triggered under dual conditions in a water-related environment and its preparation method, which can achieve specific mechanical triggering, rapid dissolution and zero residue removal, so as to solve or alleviate the problems existing in the prior art.
[0006] To achieve the above objectives, this application provides the following technical solution: a self-dissolving protective membrane triggered under dual conditions in a water-contaminated environment, comprising an inner membrane layer and a composite hydrophobic barrier layer disposed on the inner membrane layer; the inner membrane layer comprises a dynamic cross-linking network and mechanosensitive microcapsules dispersed in the dynamic cross-linking network; the dynamic cross-linking network is a ternary reversible cross-linking system composed of polyvinyl alcohol, borax, and boric acid, wherein borax accounts for 0.6-1.2 wt% of the dry weight of polyvinyl alcohol, and boric acid accounts for 0.3-1.0 wt% of the dry weight of polyvinyl alcohol; the mechanosensitive microcapsules are embedded in the dynamic cross-linking network as discrete phases and are the response units for mechanical vibration; the capsule wall thickness of the mechanosensitive microcapsules is 50-200 nm, and the glass transition temperature T0 is [missing information]. gThe temperature range is between -10℃ and 10℃, ensuring brittle fracture under set vibration conditions; the amount of the mechanically sensitive microcapsules added accounts for 3-8 wt% of the dry weight of polyvinyl alcohol; the swelling rate of the inner membrane layer in still water at 15-35℃ and salinity 0-35‰ is <5%, and it can maintain structural integrity for more than 10 minutes in still water; the composite hydrophobic barrier layer is composed of a hydrophobic agent sprayed or impregnated on the membrane surface, providing initial static water barrier; the hydrophobic agent is selected from paraffin wax, silane-modified acrylic resin, or fluorocarbon surfactant; the static water contact angle of the composite hydrophobic barrier layer is ≥110°, which can effectively block environmental water vapor and short-term immersion; the thickness of the composite hydrophobic barrier layer is 0.5-5μm, which is easy to prepare industrially and has better water blocking effect; the composite hydrophobic barrier layer can generate microcracks under mechanical vibration with a frequency of 50-200Hz and an amplitude of ≥0.2mm, forming water molecule permeation channels.
[0007] Furthermore, the dynamic crosslinking network is based on polyvinyl alcohol with a degree of polymerization of 1700-2000 and a degree of hydrolysis of 88-99%, and is formulated into an 8-12 wt% aqueous solution, which forms a ternary reversible crosslinking system with borax and boric acid.
[0008] Furthermore, the density of the borate ester bond is 0.8-1.5 mmol / g; the molar ratio of borax to boric acid is 1:(0.5-2).
[0009] Furthermore, the microcapsules showed no rupture after immersion in still water at 25°C for 60 minutes, exhibiting extremely low leakage of the core material. The mechanosensitive microcapsules have a particle size of 1-10 μm and a D50 controlled at 3-6 μm to ensure uniform dispersion. The core of the mechanosensitive microcapsules accounts for 70-80 wt% of the total microcapsule mass and is a citric acid-sodium citrate buffered decrosslinking agent with a pH of 4.5-6.5. This decrosslinking agent contains an aqueous solution of citric acid and sodium citrate in a mass ratio of 1:(1.2-1.5). When the microcapsules rupture upon stimulation to release the core, the buffer solution acidifies the local environment, promoting the release of tetrahydroxyborate ions (B(OH)4) in the gel network. — The protons are converted into boric acid molecules (B(OH)3), thereby disrupting the dynamic equilibrium of boric acid ester bonds and causing membrane disintegration in physiological saline or freshwater environments.
[0010] The mechanosensitive microcapsules were prepared using an in-situ polymerization method. First, an aqueous solution containing citric acid and sodium citrate was prepared, with the pH adjusted to the range of 4.5-6.5, and a trace amount (<0.5 wt%) of polyvinyl alcohol was added to adjust the viscosity. Second, using cyclohexane as the continuous phase, an oil phase was prepared by adding the emulsifier Span-80 and wall-forming monomers (isophorone diisocyanate IPDI, styrene, divinylbenzene DVB, and azobisisobutyronitrile AIBN). The aqueous phase was dispersed in the oil phase under shear at 1000-1500 rpm to form a water-in-oil emulsion (W / O), followed by a reaction at 65-70°C for 4-6 hours. During this process, the isocyanate at the interface reacts with water to form polyurea, and styrene undergoes free radical polymerization to form polystyrene. The two components form a polyurea / polystyrene interpenetrating network (PU / PS IPN) capsule wall in situ, with a polyurea to polystyrene mass ratio of 1:1 in the capsule wall.
[0011] Furthermore, the total thickness of the self-dissolving protective film is 40-120μm with a tolerance of ±3μm, possessing both good mechanical strength and flexibility.
[0012] Furthermore, the mechanically sensitive microcapsules are prepared by in-situ polymerization; the composite hydrophobic barrier layer is subjected to thermosetting at 80-100℃ or UV curing treatment.
[0013] This application also proposes a method for preparing a self-dissolving protective membrane triggered under dual conditions in a water-related environment, comprising the following steps: dissolving polyvinyl alcohol in water at 80-90℃ to prepare a solution with a concentration of 8-12wt%; adding borax and boric acid to the polyvinyl alcohol solution at 55-65℃ and stirring for 30-40 minutes to form a ternary reversible crosslinking system; adding mechanically sensitive microcapsules to the ternary reversible crosslinking system, dispersing by ultrasound and degassing under vacuum to obtain a mixture; coating the mixture into a film and drying it at 78-82℃ for 10-20 minutes to obtain an inner film layer; subjecting the dried inner film layer to a hydrophobic barrier treatment; after curing, the self-dissolving protective membrane has a tensile strength ≥25MPa and an elongation at break ≥150%, which can meet the processing requirements of winding, bending, etc.
[0014] Furthermore, a composite hydrophobic barrier layer is formed by spraying or impregnating a 5-10 wt% hydrophobic agent solution and drying it at 50-60℃ for 5-10 minutes. Finally, it is cured by heat curing or ultraviolet light curing. For ease of subsequent storage and transportation, the self-dissolving protective film is rolled up and stored.
[0015] The self-dissolving protective membrane is a disposable consumable. The self-dissolving trigger of the membrane simultaneously satisfies two conditions: "membrane surface in contact with water" and "mechanical vibration at 50-200Hz with an amplitude ≥0.2mm," achieving a precise match with dissolution requirements. When these two conditions are met, the mechanically sensitive microcapsules rupture, releasing a citrate-sodium citrate buffered decrosslinking agent, hydrolyzing the borate ester crosslinking bonds, causing the dynamic crosslinking network of the inner membrane layer to dissociate. Simultaneously, microcracks are generated in the hydrophobic barrier layer, introducing water and causing the membrane to completely dissociate and dissolve within 30 seconds. The dissolution product of the self-dissolving protective membrane is a polyvinyl alcohol (PVA) oligomer and borate complex, free of heavy metals or halogenated flame retardants.
[0016] In use, the self-dissolving protective film is pre-attached to the surface of the substrate to be protected, and then the vibration output end of the triggering device is brought into contact with the self-dissolving protective film to trigger it. The triggering device for the self-dissolving protective film can be an electromagnetic vibrator or a vibrating rod, and the wave frequency emitted by the triggering device is 50-200Hz and the amplitude is 0.2-1mm. The self-dissolving protective film can also be remotely triggered to dissolve using a remote triggering device. For example, a pulse square wave with a duty cycle of 30-50% and a single pulse width of 0.1-0.5s can be used for driving.
[0017] Tests showed that the self-dissolving protective membrane, when activated in a water environment with a temperature of 0-35℃, a salinity of 0-35‰, and a pH of 6-9, exhibited a dissolution rate fluctuation of no more than 10%; and the biodegradation rate of the dissolved products was ≥90% within 28 days.
[0018] The technical solution of this application has the following beneficial effects: The self-dissolving protective membrane of this application adopts a dual-condition triggering self-dissolving method of "water environment + specific mechanical vibration". The specific mechanical vibration (frequency of 50-200Hz, amplitude ≥0.2mm) does not exist in the natural water environment, avoiding false triggering caused by water flow disturbance, waves, etc., reducing the probability of false triggering of the protective membrane, and greatly improving the targeting and reliability of the protection. After self-dissolving is triggered, the mechanically sensitive microcapsules dispersed in the dynamic cross-linking network break down and release the citric acid-sodium citrate buffered de-crosslinking agent, which efficiently destroys the borate ester bonds of the ternary cross-linking system, promoting the rapid dissolution of the inner membrane layer. This avoids the problems of traditional protective membranes requiring manual cleaning, residual pollution, or incomplete self-dissolving hindering subsequent operations. It is especially suitable for scenarios that require automatic removal, such as temporary underwater protection and temporary protective layers on the surface of precision equipment. The outermost composite hydrophobic barrier layer has safe components, low dosage, and is easily degradable, avoiding the problems of traditional protective membrane materials being difficult to degrade and leaving residues that pollute the environment.
[0019] The preparation method of this application is simple and easy to operate, which is conducive to realizing continuous industrial production, improving production efficiency and reducing production costs.
[0020] The technical specifications of the self-dissolving protective membrane of this application are: tensile strength ≥25MPa, elongation at break ≥150%, swelling rate <5% after immersion in still water at 25℃ for 10 minutes with structural integrity, and trigger dissolution time ≤30s. The self-dissolving protective membrane of this application can be prefabricated as rolls or sheets and can be attached to the surface of water-related equipment such as deep-sea robots and offshore wind power foundations for underwater in-situ maintenance. Detailed Implementation
[0021] The present application will now be described in detail with reference to the embodiments.
[0022] Example 1: A method for preparing a self-dissolving protective membrane triggered under dual conditions in a water-contaminated environment, comprising the following steps: dissolving polyvinyl alcohol with a degree of polymerization of 1800 and a degree of hydrolysis of 95% in water at 85°C to prepare a 10wt% solution; adding borax and boric acid to the polyvinyl alcohol solution at 60°C and stirring for 30-40 min to form a ternary reversible crosslinking system; the boronic acid ester bond density in the ternary reversible crosslinking system is approximately 1.15 mmol / g; borax accounts for 0.9wt% of the dry weight of polyvinyl alcohol, and boric acid accounts for 0.65wt% of the dry weight of polyvinyl alcohol; the molar ratio of borax to boric acid is approximately 1:1; adding mechanosensitive microcapsules to the ternary reversible crosslinking system, followed by ultrasonic dispersion and vacuum degassing to obtain a mixture; the mechanosensitive... The microcapsules comprise 5.5 wt% of the dry weight of polyvinyl alcohol (PVA). The microcapsules are prepared via in-situ polymerization, with the capsule wall consisting of a polyurea / polystyrene interpenetrating polymer network. The core is a citric acid-sodium citrate buffered decrosslinking agent with a pH of 4.5-6.5, where the mass ratio of citric acid to sodium citrate is 1:1.5. The mixture is coated into a film and dried at 80°C for 10-20 min to obtain the inner film layer. The dried inner film layer undergoes a hydrophobic barrier treatment to obtain a self-dissolving protective film. Specifically, the hydrophobic barrier treatment is achieved by spraying a 5 wt% silane-modified acrylic resin ethanol solution, followed by heat curing at 100°C for 10 min. The thickness of the composite hydrophobic barrier layer after drying is approximately 2.0 μm.
[0023] The prepared self-dissolving protective membrane was tested for stability and trigger dissolution time under static water / salt water / cold water / simulated wave conditions in an environment of pH 6-9 to evaluate its biodegradability. The tensile strength and elongation at break of the self-dissolving protective membrane were measured using an electronic universal testing machine. The swelling rate was determined by gravimetric method: the weight of a dried membrane sheet was recorded as... After immersing in the test medium for a specified time, remove the sample, absorb the surface moisture, weigh it, and record the weight. The calculation formula is: The test results are as follows: Mechanical properties: tensile strength 28MPa, elongation at break 170%, good flexibility, easy to fit complex curved surfaces.
[0024] Static water stability: When the prepared self-dissolving protective membrane was placed in still water at 25°C, there was no significant swelling (swelling rate <2%) after 15 min, and the structure remained intact; there were no signs of dissolution within 1 hour, and the mechanically sensitive microcapsules did not rupture.
[0025] Cold water / salt water stability: When the prepared self-dissolving protective membrane was placed in 24℃ cold water / 35‰ saline, there was no significant swelling (swelling rate <2%) after 15 minutes, and the structure remained intact; there were no signs of dissolution within 1 hour, and the mechanically sensitive microcapsules did not rupture.
[0026] Simulated wave dynamics disturbance: To verify the anti-false triggering performance, the membrane material was placed in a wave-generating tank and subjected to continuous scouring at a flow velocity of 0.5 m / s and reciprocating oscillation at a frequency of 0.5-2.0 Hz and an amplitude of 50 mm (simulating ocean wave conditions). After 2 hours of continuous disturbance, the hydrophobic barrier layer effectively resisted water flow shear, no cracks appeared on the membrane surface, and no false triggering occurred in the microcapsules, proving that low-frequency hydrodynamics cannot activate the high-frequency response system designed in this application.
[0027] Dissolution triggering time: Directly applying a 110Hz vibration with an amplitude of 0.3mm to the self-dissolving protective membrane resulted in no significant change. However, after immersing the self-dissolving protective membrane in still water with a salinity of 35‰ at 25℃ for 24 hours (simulating long-term storage), applying a 110Hz vibration with an amplitude of 0.3mm effectively generated microcracks in the hydrophobic barrier layer, leading to complete dissolution within 10 seconds. The vibration was applied by contacting the vibration output end with the wall of the container holding the water (utilizing the water medium to conduct mechanical waves).
[0028] Biodegradability: Based on theoretical evaluation and raw material characteristic analysis, the dissolution products of this self-dissolving protective membrane are mainly polyvinyl alcohol (PVA) oligomers, borates and citrates. All components meet the OECD 301B standard for easy biodegradability. The biodegradability rate in aquatic environments is ≥90% after 28 days, with no risk of persistent microplastic residues.
[0029] The self-dissolving protective film in this embodiment balances stability, trigger sensitivity, and mechanical strength.
[0030] Example 2: A method for preparing a self-dissolving protective membrane triggered under dual conditions in a water-contaminated environment, comprising the following steps: dissolving polyvinyl alcohol with a degree of polymerization of 2000 and a degree of alcoholysis of 99% in water at 85°C to prepare a 12wt% solution; adding borax and boric acid to the polyvinyl alcohol solution at 60°C and stirring for 30-40 min to form a ternary reversible crosslinking system; the borate ester bond density in the ternary reversible crosslinking system is approximately 1.4 mmol / g; borax accounts for 1.1wt% of the dry weight of polyvinyl alcohol, and boric acid accounts for 0.9wt% of the dry weight of polyvinyl alcohol; the molar ratio of borax to boric acid is approximately 1:1.2; adding mechanosensitive microcapsules to the ternary reversible crosslinking system, followed by ultrasonic dispersion and vacuum degassing to obtain a mixture; the mechanosensitive... The microcapsules comprise 7.5 wt% of the dry weight of polyvinyl alcohol (PVA). The microcapsules are prepared via in-situ polymerization, with the capsule wall consisting of a polyurea / polystyrene interpenetrating polymer network. The core is a citric acid-sodium citrate buffered decrosslinking agent with a pH of 4.5-6.5; the mass ratio of citric acid to sodium citrate in this decrosslinking agent is 1:1.5. The mixture is coated into a film and dried at 80°C for 10-20 min to obtain the inner film layer. The dried inner film layer undergoes hydrophobic barrier treatment to obtain a self-dissolving protective film. Specifically, the hydrophobic barrier treatment is achieved by impregnating an 8 wt% paraffin-toluene solution containing 3 wt% photoinitiator Irgacure2959, with a curing dose of 800 mJ / cm³. 2 After impregnation, it was placed in a light source with a main wavelength of 365nm and a light intensity of 80mW / cm². 2 The composite hydrophobic barrier layer is cured by irradiation under an LED ultraviolet light source for 10 seconds; the thickness of the dried layer is approximately 1.0 μm.
[0031] The performance was tested in accordance with the method of Example 1, and the results are as follows: Mechanical properties: tensile strength 32MPa, elongation at break 160%.
[0032] Static water stability: When the prepared self-dissolving protective membrane was placed in still water at 25°C, there was no significant swelling after 12 minutes, with a swelling rate of 2% and the structure remained intact; there were no signs of dissolution within 1 hour, and the mechanically sensitive microcapsules did not rupture.
[0033] Cold water / salt water stability: When the prepared self-dissolving protective membrane was placed in 24℃ cold water / 35‰ saline, there was no significant swelling (swelling rate <2%) after 15 minutes, and the structure remained intact; there were no signs of dissolution within 1 hour, and the mechanically sensitive microcapsules did not rupture.
[0034] Dissolution trigger time: Directly applying vibration at 110 Hz and 0.3 mm amplitude to the self-dissolving protective film resulted in no significant change. However, when the self-dissolving protective film was immersed in still water with a salinity of 35‰ and a temperature of 25℃ for 24 hours, it completely dissolved within 5 seconds under the influence of vibration at 110 Hz and 0.3 mm amplitude.
[0035] The simulated wave dynamics disturbance and biodegradability test results are consistent with those of Example 1.
[0036] The self-dissolving protective membrane formulation of this embodiment sacrifices a small amount of hydrostatic stability time in exchange for excellent mechanical strength and extremely fast trigger response, making it suitable for components that need to withstand water flow impact or require rapid maintenance.
[0037] Example 3: A method for preparing a self-dissolving protective membrane triggered under dual conditions in a water-contaminated environment, comprising the following steps: dissolving polyvinyl alcohol with a degree of polymerization of 1700 and a degree of hydrolysis of 88% in water at 85°C to prepare a solution with a concentration of 8.5 wt%; adding borax and boric acid to the polyvinyl alcohol solution at 60°C and stirring for 30-40 min to form a ternary reversible crosslinking system; the borax ester bond density in the ternary reversible crosslinking system is approximately 0.9 mmol / g; borax accounts for 0.7 wt% of the dry weight of polyvinyl alcohol, and boric acid accounts for 0.4 wt% of the dry weight of polyvinyl alcohol; the molar ratio of borax to boric acid is approximately 1:0.8; adding mechanosensitive microcapsules to the ternary reversible crosslinking system, followed by ultrasonic dispersion and vacuum degassing to obtain a mixture; the mechanosensitive microcapsules account for 0.7 wt% of the dry weight of polyvinyl alcohol (PVA)... The weight is 4 wt%; the microcapsules are prepared by in-situ polymerization, and the capsule wall is a polyurea / polystyrene interpenetrating polymer network; the core is a citric acid-sodium citrate buffered decrosslinking agent with a pH of 4.5-6.5; the mass ratio of citric acid to sodium citrate in the decrosslinking agent is 1:1.5; the mixture is coated into a film and dried at 80°C for 10-20 min to obtain the inner film layer; the dried inner film layer is treated with a hydrophobic barrier to obtain a self-dissolving protective film; the hydrophobic barrier treatment is specifically formed by spraying a 3 wt% aqueous solution of fluorocarbon surfactant; after spraying, it is heat-cured at 80°C for 15 min; the performance is tested according to the method of Example 1, and the results are as follows: mechanical properties: tensile strength 26 MPa, elongation at break 210%, extremely flexible, and with good adhesion.
[0038] Static water stability: When the prepared self-dissolving protective membrane was placed in still water at 25°C, there was no significant swelling after 10 minutes, and slight swelling after 60 minutes of immersion, with a swelling rate of about 4.5%; there were no signs of dissolution within 1 hour, and the mechanically sensitive microcapsules did not rupture.
[0039] Dissolution trigger time: Direct application of 110Hz vibration with an amplitude of 0.3mm to the self-dissolving protective membrane resulted in no significant change. When the self-dissolving protective membrane, after being immersed in still water with a salinity of 35‰ at 25℃ for 24 hours, was subjected to 110Hz vibration with an amplitude of 0.3mm, it completely dissolved within 16 seconds. Under extreme vibration testing (200Hz), there was a <3% probability of slight localized response, but it remained reliable within the specified frequency range.
[0040] The simulated wave dynamics disturbance and biodegradability test results are consistent with those of Example 1.
[0041] The self-dissolving protective film formulation in this embodiment reduces raw material costs while meeting basic technical requirements.
[0042] Comparative Example 1 This comparative example demonstrates the problems caused by excessively low crosslinking density by significantly reducing the amount of crosslinking agent used.
[0043] Compared with Example 1, the only difference is that in the ternary reversible crosslinking system, borax accounts for 0.5 wt% of the dry weight of polyvinyl alcohol and boric acid accounts for 0.2 wt% of the dry weight of polyvinyl alcohol. The performance was tested in the manner of Example 1, and the results are as follows: Mechanical properties: The film is sticky, has poor strength, and the tensile strength is only 8 MPa, making it impossible to wind and construct normally.
[0044] Static water stability: When the prepared self-dissolving protective membrane is placed in still water at 25°C, it begins to soften, expand and rupture within 2 minutes, failing to meet the basic requirement of 10 minutes.
[0045] In this comparative example, the protective film prepared in this example was too fragile to form effective structural support, leading to premature product failure. This comparative example demonstrates that even using the same low-cost process, insufficient crosslinking agent dosage cannot achieve the purpose of this application.
[0046] Comparative Example 2: This comparative example demonstrates the problems caused by excessively high crosslinking density by significantly increasing the amount of crosslinking agent.
[0047] Compared with Example 1, the only difference is that in the ternary reversible crosslinking system, borax accounts for 1.3 wt% of the dry weight of polyvinyl alcohol and boric acid accounts for 1.1 wt% of the dry weight of polyvinyl alcohol. The performance test was carried out in the manner of Example 1, and the results are as follows: Mechanical properties: The film is hard and brittle, with an elongation at break of only 50%. It is prone to cracking when bent and cannot be wound up.
[0048] Static water stability: The prepared self-dissolving protective membrane was placed in still water at 25°C and showed no change after 30 minutes.
[0049] Triggering dissolution time: Directly applying vibration at 110 Hz and 0.3 mm amplitude to the self-dissolving protective membrane resulted in no significant change. Applying vibration at 110 Hz and 0.3 mm amplitude to the self-dissolving protective membrane after it had been immersed in still water with a salinity of 35‰ at 25℃ for 24 hours only caused the membrane to swell and disintegrate into gel-like fragments, failing to completely dissolve within 30 seconds. In this comparative example, excessive cross-linking resulted in excessively high network stability, indicating that the de-crosslinking agent released by the microcapsules was insufficient to completely destroy the overly dense cross-linked network, hindering rapid dissociation after triggering.
[0050] Comparative Example 3: In this comparative example, the mechanically sensitive microcapsules were excessively added.
[0051] Compared with Example 1, the only difference is that in the inner membrane layer, the mechanically sensitive microcapsules account for 9 wt% of the dry weight of polyvinyl alcohol (PVA).
[0052] The performance was tested according to the method of Example 1, and the results are as follows: Mechanical properties: Due to the excessive foreign phases inside the material, the properties are uneven, and the strength decreases to 15 MPa.
[0053] Static water stability: The large number of microcapsules, acting as defect points, disrupted the continuity of the cross-linked network, and the stability of the membrane in static water at 25°C decreased to about 6 minutes.
[0054] Dissolution triggering time: Directly applying vibration at 200 Hz and 0.3 mm amplitude to the self-dissolving protective membrane caused some microcapsules to rupture due to stress concentration, resulting in localized swelling points on the protective membrane, posing a significant risk of false triggering. Applying vibration at 110 Hz and 0.3 mm amplitude to the self-dissolving protective membrane, which had been immersed in still water with a salinity of 35‰ at 25℃ for 24 hours, resulted in complete dissolution of the membrane within 18 seconds.
[0055] This comparative example aims to illustrate that excessive addition of mechanosensitive microcapsules can sacrifice the integrity of the self-dissolving protective membrane and trigger reliability.
[0056] The test data of Examples 1-3 and Comparative Examples 1-3 are summarized in Table 1.
[0057] Table 1 Test data of Examples 1-3 and Comparative Examples 1-3
[0058] The above results show that Examples 1-3 all meet the expected technical indicators of this application, namely, tensile strength ≥25MPa, elongation at break ≥150%, swelling rate <5% after immersion in still water at 25℃ for 10min and structural integrity, and trigger dissolution time ≤30s.
[0059] Comparative Examples 1 and 2 show that the amount of crosslinking agent needs to be precisely controlled; too much or too little will lead to performance degradation. Comparative Example 3 shows that, since the mechanically sensitive capsule has a certain volume, it should be added in an appropriate amount; excessive addition will affect the mechanical properties and stability of the inner membrane layer.
[0060] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A self-dissolving protective membrane triggered under dual conditions in a water-contaminated environment, characterized in that: The device includes an inner membrane layer and a composite hydrophobic barrier layer disposed on the inner membrane layer; the inner membrane layer comprises a dynamic cross-linking network and mechanosensitive microcapsules dispersed within the dynamic cross-linking network; the dynamic cross-linking network is a ternary reversible cross-linking system composed of polyvinyl alcohol, borax, and boric acid, wherein borax accounts for 0.6-1.2 wt% of the dry weight of polyvinyl alcohol, and boric acid accounts for 0.3-1.0 wt% of the dry weight of polyvinyl alcohol; the glass transition temperature T of the capsule wall of the mechanosensitive microcapsules is... g Between -10℃ and 10℃, the core of the mechanosensitive microcapsule is a citrate-sodium citrate buffered decrosslinking agent with a pH of 4.5-6.5; the amount of the mechanosensitive microcapsule added accounts for 3-8 wt% of the dry weight of polyvinyl alcohol; the inner membrane layer has a swelling rate of <5% in still water at 15-35℃ and can maintain structural integrity for more than 10 minutes in still water; the composite hydrophobic barrier layer is composed of a hydrophobic agent sprayed or impregnated on the membrane surface, and the hydrophobic agent is selected from paraffin, silane-modified acrylic resin or fluorocarbon surfactant; the composite hydrophobic barrier layer has a static water contact angle ≥110° and a thickness of 0.5-5μm, and can generate microcracks under mechanical vibration with a frequency of 50-200Hz and an amplitude ≥0.2mm to form water molecule permeation channels.
2. The self-dissolving protective membrane triggered under dual conditions in a water-related environment according to claim 1, characterized in that: The dynamic crosslinking network is based on polyvinyl alcohol with a degree of polymerization of 1700-2000 and a degree of hydrolysis of 88-99%, which is prepared into an 8-12 wt% aqueous solution and forms a ternary reversible crosslinking system with borax and boric acid.
3. The self-dissolving protective membrane triggered under dual conditions in a water-related environment according to claim 1, characterized in that: The density of the borate ester bond is 0.8-1.5 mmol / g; the molar ratio of borax to boric acid is 1:(0.5-2).
4. The self-dissolving protective membrane triggered under dual conditions in a water-related environment according to claim 1, characterized in that: The mechanically sensitive microcapsules have a particle size of 1-10 μm and a wall thickness of 50-200 nm.
5. The self-dissolving protective membrane triggered under dual conditions in a water-related environment according to claim 1, characterized in that: The citric acid-sodium citrate buffered decrosslinking agent used as the core comprises an aqueous solution of citric acid and sodium citrate in a mass ratio of 1:(1.2-1.5).
6. The self-dissolving protective membrane with dual-condition triggering in water-related environments according to claim 1, characterized in that: The capsule wall of the mechanosensitive microcapsule is a polyurea / polystyrene interpenetrating polymer network structure, with a polyurea to polystyrene mass ratio of 1:
1.
7. The self-dissolving protective membrane triggered under dual conditions in a water-related environment according to claim 1, characterized in that: The total thickness of the self-dissolving protective film is 40-120 μm.
8. The self-dissolving protective membrane triggered under dual conditions in a water-related environment according to claim 1, characterized in that: The mechanically sensitive microcapsules are prepared by in-situ polymerization; the composite hydrophobic barrier layer is subjected to thermosetting or ultraviolet curing treatment.
9. A method for preparing a self-dissolving protective membrane under dual-condition triggering in a water-related environment as described in any one of claims 1 to 8, characterized in that, Includes the following steps: Polyvinyl alcohol is dissolved in water at 80-90℃ to prepare a solution with a concentration of 8-12wt%. At 55-65℃, borax and boric acid are added to a polyvinyl alcohol solution and stirred for 30-40 minutes to form a ternary reversible crosslinking system. Mechanically sensitive microcapsules were added to the ternary reversible crosslinking system, and the mixture was ultrasonically dispersed and vacuum degassed to obtain a mixture. The mixture was coated into a film and dried at 78-82℃ for 10-20 min to obtain an inner film layer. The dried inner film layer was subjected to hydrophobic barrier treatment.
10. The method for preparing a self-dissolving protective membrane triggered under dual conditions in a water-related environment according to claim 9, characterized in that: The hydrophobic barrier treatment steps are as follows: a composite hydrophobic barrier layer is formed by spraying or impregnating a 5-10 wt% hydrophobic agent solution and drying it at 50-60℃ for 5-10 minutes, and finally cured by thermosetting or UV curing.