Cleaning agent for silica gel interface treating agent

Through the combination of natural pectin, acacia saponin extract, edible baking soda, white vinegar and sodium benzoate, the prepared cleaning agent solves the problems of poor cleaning effect and high cost of traditional cleaning agents, achieving efficient cleaning and stability, extending service life, and reducing cleaning frequency.

CN120365987APending Publication Date: 2025-07-25SUZHOU BAIYUE NEW MATERIALS TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510509640.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2025-07-25

AI Technical Summary

Technical Problem

When cleaning silicone interface treatment agents, traditional cleaning agents have problems such as poor cleaning effect, easy damage to materials, and residues affecting the cleaning effect and increasing costs.

Method used

The cleaning agent is prepared through a specific stirring process using the combination of natural pectin, acacia saponin extract, edible baking soda, white vinegar and sodium benzoate, and the synergistic effect of each component is used to enhance the cleaning effect and stability.

Benefits of technology

It improves the cleaning effect of the cleaning agent, extends the service life, reduces the cleaning cost and frequency, and enhances the practicality and economicality of the cleaning agent.

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Abstract

The invention relates to the technical field of cleaning agents, in particular to a cleaning agent for a silica gel interface treating agent. The invention relates to natural pectin which comprises 6-9 g of natural pectin; 10 g to 14 g of a gleditsia sinensis saponin extract; the volume of the distilled water is 600 ml to 800 ml; 0.8 g to 1.2 g of edible baking soda; white vinegar: 24 ml to 36 ml; 1.2 g to 1.8 g of sodium benzoate; according to the cleaning agent for the silica gel interface treating agent, the formula combination and the preparation process supplement each other, and all the components have a synergistic effect; natural pectin is combined with distilled water, the thickening and impurity adsorption capacity is effectively improved, the system stability is enhanced, gleditsia sinensis saponin extract strengthens the detergency, edible baking soda efficiently neutralizes acidity and removes oil stains, white vinegar generates carbon dioxide to assist dirt loosening, and sodium benzoate prevents microorganism breeding; due to the high synergistic effect, the cleaning effect on the silica gel interface treating agent is enhanced, the service life of the cleaning agent is prolonged, the efficiency of cleaning operation is improved, the cleaning cost and frequency are reduced, and therefore the practicability and economical efficiency of the cleaning agent are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of cleaning agents, and more specifically, to a cleaning agent for a silicone interface treatment agent. Background Art

[0002] With the wide application of silicone in industrial production and daily life, the use of silicone interface treatment agents has become increasingly common. However, after the use of silicone interface treatment agents, they often remain on the treated surface. These residues not only affect the subsequent processing performance of silicone products, such as adhesion and surface flatness, but may also cause some potential quality problems during long-term use.

[0003] Traditional cleaning agents have some deficiencies when cleaning silicone interface treatment agents. For example, some cleaning agents have a single formulation component and lack an effective component combination for the characteristics of silicone interface treatment agents, resulting in poor cleaning effects and difficulty in completely removing the residues of silicone interface treatment agents. Moreover, the components and properties of different types of silicone interface treatment agents vary. The properties such as the pH value of some cleaning agents are relatively extreme, and it is easy to damage the materials to be cleaned during the cleaning process, such as causing corrosion, discoloration or deformation of the silicone surface, affecting the appearance and performance of silicone products. In addition, traditional cleaning agents are prone to residue after cleaning, and these residues may contaminate the surface to be cleaned again, not only reducing the cleaning effect, but also reducing the cleaning work efficiency, increasing the cleaning cost and frequency, thereby reducing the practicability and economy of the cleaning agent.

[0004] In view of this, there is an urgent need for a cleaning agent for a silicone interface treatment agent. Summary of the Invention

[0005] The purpose of the present invention is to provide a cleaning agent for a silicone interface treatment agent to solve the problems raised in the above background art.

[0006] To achieve the above purpose, the present invention provides a cleaning agent for a silicone interface treatment agent, including the following material dosages:

[0007] Natural pectin: 6 g - 9 g;

[0008] Gleditsia saponin extract: 10 g - 14 g;

[0009] Distilled water: 600 ml - 800 ml;

[0010] Edible baking soda: 0.8 g - 1.2 g;

[0011] White vinegar: 24 ml - 36 ml;

[0012] Sodium benzoate: 1.2 g - 1.8 g.

[0013] As a further improvement of the technical solution, the edible baking soda is sodium bicarbonate and is weakly alkaline.

[0014] As a further improvement of the technical solution, the preparation method of the cleaning agent includes the following steps:

[0015] S1. Dissolve natural pectin: Pour distilled water into a stirrer, then add natural pectin, turn on the stirrer to stir, and make it form a uniform pectin solution;

[0016] S2. Add the extract of Gleditsia saponin: Add the extract of Gleditsia saponin to the pectin solution, and then use a stirrer to stir to make the extract of Gleditsia saponin fully mixed with the pectin solution to form a mixed solution;

[0017] S3. Add edible baking soda: Add edible baking soda to the mixed solution. At the same time, the stirrer stirs the mixed solution. After the addition of edible baking soda is completed, the stirrer continues to stir until the baking soda is completely dissolved and the solution becomes more uniform;

[0018] S4. Dropwise add white vinegar: Dropwise add white vinegar to the above solution. After the addition is completed, use a stirrer to stir to allow the gas generated by the reaction to fully escape. At the same time, make the solution further mixed evenly;

[0019] S5. Dissolve sodium benzoate: Add sodium benzoate to the above solution and use a stirrer to stir and mix to obtain the cleaning agent for the silica gel interface treatment agent.

[0020] As a further improvement of the technical solution, in S1, the stirring speed of the stirrer is 30 r / min - 50 r / min, and the stirring time is 10 min - 15 min.

[0021] As a further improvement of the technical solution, in S2, the stirring speed of the stirrer is 60 r / min - 80 r / min, and the stirring time is 15 min - 20 min.

[0022] As a further improvement of the technical solution, in S3, the addition speed of the edible baking soda is 0.32 g / min - 0.21 g / min. At this time, the stirring speed of the stirrer is 30 r / min - 50 r / min.

[0023] As a further improvement of the technical solution, in S3, the continuous stirring speed of the stirrer is 40 r / min - 60 r / min, and the continuous stirring time is 25 min - 30 min.

[0024] As a further improvement of the technical solution, in S4, the dropping speed of the white vinegar is 3 ml / min - 5 ml / min.

[0025] As a further improvement of this technical solution, in S4, the stirring speed of the stirrer is 30 r / min - 40 r / min, and the stirring time is 5 min - 10 min.

[0026] As a further improvement of this technical solution, in S5, the stirring speed of the stirrer is 30 r / min - 50 r / min, and the stirring time is 10 min - 15 min.

[0027] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0028] 1. In the cleaning agent for the silicone interface treatment agent, the formula combination and the preparation process complement each other, and each component acts synergistically; the combination of natural pectin and distilled water effectively improves the thickening and impurity adsorption capabilities, enhances the system stability, the extract of sophora saponin strengthens the detergency, edible baking soda efficiently neutralizes acids and removes oil stains, white vinegar generates carbon dioxide to assist in loosening dirt, and sodium benzoate prevents the growth of microorganisms and improves the storage quality of the cleaning agent; this highly synergistic effect not only enhances the cleaning effect on the silicone interface treatment agent, but also greatly extends the service life of the cleaning agent. Moreover, it also improves the efficiency of the cleaning operation, reduces the cleaning cost and frequency, thereby improving the practicality and economy of the cleaning agent. Description of the Drawings

[0029] Figure 1 It is a flowchart of the preparation process of the cleaning agent for the silicone interface treatment agent of the present invention;

[0030] Figure 2 It is the cleaning performance of the cleaning agent of the present invention;

[0031] Figure 3 It is a bar chart of the stability of the cleaning agent of the present invention;

[0032] Figure 4 It is a bar chart of the neutralization of the cleaning agent of the present invention;

[0033] Figure 5 It is a bar chart of the anti-corrosion property of the cleaning agent of the present invention. Detailed Embodiments

[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the drawings in the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative efforts belong to the scope of protection of the present invention.

[0035] The embodiment of the present invention provides a cleaning agent for a silicone interface treatment agent, including the following material dosages:

[0036] Natural pectin: 6g - 9g. Natural pectin is a polysaccharide substance that can play a role in thickening and adsorbing impurities;

[0037] Gleditsia saponin extract: 10g - 14g. Gleditsia saponin extract has good surface activity and can enhance the detergency of the cleaning agent;

[0038] Distilled water: 600ml - 800ml. Distilled water is used as a solvent to dissolve other components and ensure the uniformity of the cleaning agent;

[0039] Edible baking soda: 0.8g - 1.2g. Edible baking soda uses sodium bicarbonate, which is weakly alkaline. It can neutralize the acidic components in the silica gel interface treatment agent and can also remove some dirt such as oil stains;

[0040] White vinegar: 24ml - 36ml. The main component of white vinegar is acetic acid. Although the whole cleaning agent is mainly alkaline, an appropriate amount of white vinegar can react with baking soda to produce carbon dioxide gas, which helps to loosen dirt during the cleaning process;

[0041] Sodium benzoate: 1.2g - 1.8g. Sodium benzoate is a preservative that can prevent the cleaning agent from growing microorganisms and deteriorating during storage.

[0042] Among them, through the above materials, and according to Figure 1 as shown, the preparation method of the cleaning agent includes the following steps:

[0043] Step 1. Dissolve natural pectin: Pour distilled water into a stirrer, then add natural pectin, turn on the stirrer to stir, the stirring speed of the stirrer is 30r / min - 50r / min, and the stirring time is 10min - 15min to form a uniform pectin solution;

[0044] Step 2. Add Gleditsia saponin extract: Add Gleditsia saponin extract to the pectin solution, and then use the stirrer to stir. The stirring speed of the stirrer is 60r / min - 80r / min, and the stirring time is 15min - 20min to make the Gleditsia saponin extract fully mixed with the pectin solution to form a mixed solution;

[0045] Step 3. Add edible baking soda: Add edible baking soda to the mixed solution. At the same time, the stirrer stirs the mixed solution. The adding speed of edible baking soda is 0.32g / min - 0.21g / min. At this time, the stirring speed of the stirrer is 30r / min - 50r / min. After the addition of edible baking soda is completed, the stirrer continues to stir. The continuous stirring speed of the stirrer is 40r / min - 60r / min, and the continuous stirring time is 25min - 30min until the baking soda is completely dissolved and the solution becomes more uniform;

[0046] Step 4: Adding white vinegar: Add white vinegar to the above solution at a dropping rate of 3 ml / min - 5 ml / min. After the addition is complete, use a stirrer to stir. The stirring speed of the stirrer is 30 r / min - 40 r / min, and the stirring time is 5 min - 10 min to allow the gas generated by the reaction to escape fully and, at the same time, make the solution mix more evenly.

[0047] Step 5: Dissolving sodium benzoate: Add sodium benzoate to the above solution and use a stirrer to stir and mix. The stirring speed of the stirrer is 30 r / min - 50 r / min, and the stirring time is 10 min - 15 min until the sodium benzoate is completely dissolved, and the resulting solution is the cleaning agent for the silica gel interface treatment agent.

[0048] In the invention, first pour distilled water into the stirrer, and then add natural pectin and stir to dissolve it. This can not only improve the thickening and impurity adsorption efficiency of natural pectin, but also facilitate the full fusion of subsequent components, increase the stability of the cleaning agent base system. At the same time, during the subsequent addition of saponin extract, edible baking soda, white vinegar, and sodium benzoate, operate precisely according to their respective specified stirring speeds and addition speeds. For example, control the addition speed of edible baking soda and white vinegar and cooperate with the corresponding stirring rhythm, which can enable the components to be efficiently fused, improve the cleaning, neutralizing, and anti-corrosion effects of the cleaning agent, effectively enhance the comprehensive performance of the entire cleaning agent, strengthen the cleaning effect on the silica gel interface treatment agent, and also improve the quality stability of the cleaning agent during storage, thereby extending the service life of the cleaning agent.

[0049] In the preparation process of this cleaning agent, natural pectin first combines with distilled water, improving the thickening and impurity adsorption efficiency of natural pectin. Then, the saponin extract is mixed with the pectin solution, enhancing the detergency of the cleaning agent through good surface activity. After adding edible baking soda, its weak alkalinity is used to neutralize the acidic components in the silica gel interface treatment agent and remove oil stains. After that, the acetic acid in white vinegar reacts with edible baking soda (sodium bicarbonate) to produce carbon dioxide gas, and the reaction formula is NaHCO3 + CH3COOH = CH3COONa + H2O + CO2↑, which helps to loosen dirt. Finally, the added sodium benzoate acts as a preservative and combines with the whole system to prevent the cleaning agent from growing microorganisms and deteriorating during storage, thereby improving the quality stability of the cleaning agent during storage and extending its service life. Moreover, through these orderly combinations and reactions among the components, the comprehensive performance of the cleaning agent for cleaning, neutralizing, and anti-corrosion of the silica gel interface treatment agent is synergistically improved, enabling it to better exert the cleaning effect.

[0050] Through the complementary combination of the formula and the preparation process, each component acts synergistically; the combination of natural pectin and distilled water effectively enhances the thickening and impurity adsorption capabilities, strengthens the system stability, the extract of Gleditsia saponins enhances the detergency, edible baking soda efficiently neutralizes acidity and removes oil stains, white vinegar generates carbon dioxide to assist in loosening dirt, and sodium benzoate prevents the growth of microorganisms, improving the storage quality of the cleaning agent; this highly synergistic effect not only enhances the cleaning effect on the silicone interface treatment agent, but also greatly extends the service life of the cleaning agent. Moreover, it also improves the efficiency of the cleaning operation, reduces the cleaning cost and frequency, thereby enhancing the practicality and economy of the cleaning agent.

[0051] According to different raw material dosages, the cleaning agent provided by the present invention will be further described through the following specific embodiments.

[0052] Example 1

[0053] Dosage of raw materials:

[0054] Natural pectin: 6 g; extract of Gleditsia saponins: 13 g; distilled water: 700 ml; edible baking soda: 1.2 g; white vinegar: 24 ml; sodium benzoate: 1.2 g.

[0055] Preparation process:

[0056] Pour 700 ml of distilled water into a stirrer, add 6 g of natural pectin, and stir at a speed of 30 r / min for 15 min to form a uniform pectin solution; then add 13 g of the extract of Gleditsia saponins to the pectin solution and stir at a speed of 60 r / min for 20 min to form a mixture; afterwards, add 1.2 g of edible baking soda to the mixture at a speed of 0.32 g / min while the stirrer stirs at a speed of 30 r / min. After the addition is completed, continue to stir at a speed of 40 r / min for 30 min until the baking soda is completely dissolved; then, dropwise add 24 ml of white vinegar at a speed of 3 ml / min. After the dropping is completed, stir at a speed of 30 r / min for 10 min; then, add 1.2 g of sodium benzoate and stir at a speed of 30 r / min for 15 min until completely dissolved to obtain the cleaning agent.

[0057] Example 2

[0058] Dosage of raw materials:

[0059] Natural pectin: 7.5 g; extract of Gleditsia saponins: 10 g; distilled water: 600 ml; edible baking soda: 0.8 g; white vinegar: 30 ml; sodium benzoate: 1.8 g;

[0060] Preparation process:

[0061] Pour 600 ml of distilled water into a blender, add 7.5 g of natural pectin, and stir at a speed of 40 r / min for 12 min to form a uniform pectin solution; then add 10 g of Gleditsia saponin extract to the pectin solution and stir at a speed of 70 r / min for 17 min to form a mixture; thereafter, add 0.8 g of edible baking soda to the mixture at a speed of 0.25 g / min while the blender stirs at a speed of 40 r / min. After the addition is complete, continue to stir at a speed of 50 r / min for 27 min until the baking soda is completely dissolved; then, add 30 ml of white vinegar dropwise at a speed of 4 ml / min. After the addition is complete, stir at a speed of 35 r / min for 7 min; then, add 1.8 g of sodium benzoate and stir at a speed of 40 r / min for 12 min until completely dissolved to obtain a cleaning agent.

[0062] Example 3

[0063] Dosage of raw materials:

[0064] Natural pectin: 9 g; Gleditsia saponin extract: 12 g; Distilled water: 800 ml; Edible baking soda: 1.2 g; White vinegar: 36 ml; Sodium benzoate: 1.5 g;

[0065] Preparation process:

[0066] Pour 800 ml of distilled water into a blender, add 9 g of natural pectin, and stir at a speed of 50 r / min for 10 min to form a uniform pectin solution; then add 12 g of Gleditsia saponin extract to the pectin solution and stir at a speed of 80 r / min for 15 min to form a mixture; thereafter, add 1.2 g of edible baking soda to the mixture at a speed of 0.21 g / min while the blender stirs at a speed of 50 r / min. After the addition is complete, continue to stir at a speed of 60 r / min for 25 min until the baking soda is completely dissolved; then, add 36 ml of white vinegar dropwise at a speed of 5 ml / min. After the addition is complete, stir at a speed of 40 r / min for 5 min; then, add 1.5 g of sodium benzoate and stir at a speed of 50 r / min for 10 min until completely dissolved to obtain a cleaning agent.

[0067] Table 1 Dosage of each raw material in Examples 1 - 3

[0068] Example 1 Example 2 Example 3 Natural pectin g 6 7.5 9 Gleditsia saponin extract g 13 10 12 Distilled water ml 700 600 800 Edible baking soda g 1.2 0.8 1.2 White vinegar ml 24 30 36 Sodium benzoate g 1.2 1.8 1.5

[0069] In order to verify that the cleaning agent prepared in the examples of the present invention has good cleaning performance and stability, the cleaning agent provided in the examples of the present invention will be described through the following test examples.

[0070] Test example

[0071] The purpose of this test group is to explore the effects of different component ratios on the cleaning agent, and to detect the cleaning performance, stability, neutralization property and anti-corrosion property of the cleaning agent of the present invention.

[0072] Test objectives: The test groups A, B, and C respectively adopt the component ratios of the cleaning agents provided in Examples 1-3; the control examples adopt control groups A, B, C, and D, where:

[0073] Control group A

[0074] Ordinary surfactant cleaners are used, with relatively simple components, containing only a small amount of non-ionic surfactants.

[0075] Control group B

[0076] Common single-component alkaline cleaners on the market are used, and the main component is sodium hydroxide.

[0077] Control group C

[0078] The raw materials and preparation process in Example 1 are adopted, but the extract of Gleditsia saponin is not added.

[0079] Control group D

[0080] The raw materials and preparation process in Example 2 are adopted, but natural pectin is not added, and the composition of edible baking soda is not limited.

[0081] Test methods: According to the cleaning performance, stability, neutralization property and anti-corrosion property of the cleaning agent of the present invention, tests are carried out respectively. The specific test methods are as follows:

[0082] Cleaning performance test:

[0083] First, prepare silica gel test pieces of the same material, size and similar degree of contamination by silicone interface treatment agent, and divide them into test groups A, B, C and control groups A, B, C, D, with at least 5 test pieces in each group. By evenly applying 0.1-0.2 g of silicone interface treatment agent per square centimeter on the silica gel test pieces and placing them at room temperature for 24-48 h to simulate actual contamination; during the cleaning operation, test groups A, B, C, according to the cleaning agent usage instructions, use 0.5-1 ml of cleaning agent per square centimeter of silica gel test piece and clean at 30-40 °C for 10-15 minutes, and soaking, stirring or wiping can be used. Control groups A and B operate according to their respective product instructions, and control groups C and D clean under similar conditions as the test groups but with changed components; the cleaning effect can be evaluated visually, and it can be judged in four levels of no residue, slight residue, obvious residue and a large amount of residue according to the residual trace area and color depth; it can also be measured by the gravimetric method, accurately weighing before and after cleaning, and quantitatively evaluating with the cleaning rate formula (weight before cleaning - weight after cleaning) / weight before cleaning × 100%.

[0084] Stability test:

[0085] The long-term storage observation method is adopted, that is, the cleaning agents of experimental groups A, B, C and control groups A, B, C, D are sealed and placed in an indoor environment with a temperature of 20 - 30 °C and a relative humidity of 40 - 60%. Check their appearance regularly (weekly or monthly) for precipitation, stratification, color change, etc., and record the time when obvious changes occur, so as to evaluate the stability;

[0086] Neutralization test:

[0087] It is carried out by acid-base titration. Accurately measure a certain volume of the cleaning agents of the experimental group and the control group by acid-base titration, and use a standard acid solution (such as hydrochloric acid) or a standard base solution (such as sodium hydroxide) with a known concentration for titration. According to the amount of acid or base consumed at the titration end point, calculate the number of moles of acid that an alkaline cleaning agent can neutralize, and then compare the neutralization performance of different cleaning agents, so as to comprehensively and accurately measure the neutralization performance of each cleaning agent;

[0088] Anticorrosion test:

[0089] The method of combining microbial culture test and preservative content detection is adopted. First, carry out the microbial culture test. Prepare multiple sterile petri dishes containing an appropriate amount of nutrient agar medium, and drop a small amount of the cleaning agents of experimental groups A, B, C and control groups A, B, C, D respectively. Then inoculate a mixed bacterial solution containing specific concentrations of bacteria (Escherichia coli, Staphylococcus aureus) and molds (Aspergillus niger, Penicillium). After culturing the petri dishes at an appropriate temperature for a certain period of time, observe the growth of microorganisms and record the number of colonies, so as to compare the anticorrosion performance of the cleaning agents in different groups.

[0090] The specific detection indexes are shown in Table 2.

[0091] Table 2 Detection indexes of each sample

[0092]

[0093] According to Figures 2 - 5 and Table 2, the summary of the above comparison data is as follows:

[0094] Cleanliness: The cleaning rates of experimental groups A, B, C all reach over 80%, and the highest can reach 85%, while that of control group A is only 50%, that of control group B is 42%, and those of control groups C and D are 65% and 55% respectively. This shows that the cleaning agent of the present invention can more effectively remove the residue of the silica gel interface treatment agent through the synergistic effect of various components, such as the thickening and adsorption of natural pectin, the dirt removal of the extract of Gleditsia saponin, the alkaline neutralization of edible baking soda, and the loosening of dirt by white vinegar. The cleaning effect is significantly higher than that of the control group.

[0095] Stability: The cleaning agents of experimental groups A, B, and C can maintain their properties for 7 - 9 months without significant changes under the environment of 20 - 30°C and relative humidity of 40 - 60%. In contrast, those of control groups A, B, C, and D can maintain their properties for 4.5 months, 3 months, 6 months, and 5 months respectively. This is mainly due to the combination of the formula, including the preservative effect of sodium benzoate and the stable interaction between components, which makes the cleaning agent less likely to precipitate, layer, or change color during storage, thus having higher stability.

[0096] Neutralization: The number of moles of acid neutralized by the cleaning agents of experimental groups A, B, and C ranges from 0.03 to 0.04, while that of control group A is 0.015, control group B is 0.06, and control groups C and D are 0.025 and 0.03 respectively. In the present invention, sodium bicarbonate for food use acts synergistically with other components, enabling it to better neutralize the acidic components in the silicone interface treatment agent and achieve an appropriate acid-base balance in the entire cleaning agent system, avoiding problems such as excessive or insufficient neutralization caused by the single component in control group B. Therefore, it can more effectively deal with residues of silicone interface treatment agents with different properties.

[0097] Antiseptic property: The reduction rate of the number of colonies of experimental groups A, B, and C all reaches over 90%, while that of control group A is 50%, control group B is 40%, and control groups C and D are 75% and 65% respectively. This is because sodium benzoate in the present invention effectively prevents the growth of microorganisms during the storage of the cleaning agent, ensuring the quality of the cleaning agent, avoiding deterioration of the cleaning agent and decline in cleaning effect caused by microbial growth, and further improving the practicality and economy of the cleaning agent.

[0098] In summary, the cleaning agent of the present invention has good effects in terms of cleaning performance, stability, neutralization, and antiseptic property. The formula and synergistic effect of each component make its comprehensive performance higher than that of traditional cleaning agents and control groups, enabling it to better meet the cleaning requirements of silicone interface treatment agents, improve production and use efficiency, extend the service life of the cleaning agent, and thus reduce the cleaning cost and frequency.

[0099] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and descriptions in the specification are only preferred examples of the present invention and do not limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. A cleaning agent for a silicone interface treatment agent, characterized in that Including the following amounts of materials: Natural pectin: 6 g - 9 g; Gleditsia saponin extract: 10 g - 14 g; Distilled water: 600 ml - 800 ml; Edible baking soda: 0.8 g - 1.2 g; White vinegar: 24 ml - 36 ml; Sodium benzoate: 1.2 g - 1.8 g.

2. The cleaning agent for the silicone interface treatment agent according to claim 1, wherein, The edible baking soda uses sodium bicarbonate and is weakly alkaline.

3. The cleaning agent for the silicone interface treatment agent according to claim 1, characterized in that, The preparation method of the cleaning agent includes the following steps: S1. Dissolve natural pectin: Pour distilled water into a stirrer, then add natural pectin, turn on the stirrer to stir, and make it form a uniform pectin solution; S2. Add gleditsia saponin extract: Add the gleditsia saponin extract to the pectin solution, and then use the stirrer to stir to make the gleditsia saponin extract fully mixed with the pectin solution evenly to form a mixed solution; S3. Add edible baking soda: Add the edible baking soda to the mixed solution. At the same time, the stirrer stirs the mixed solution. After the addition of the edible baking soda is completed, the stirrer continues to stir until the baking soda is completely dissolved and the solution becomes more uniform; S4. Dropwise add white vinegar: Dropwise add white vinegar to the above solution. After the addition is completed, use the stirrer to stir to allow the gas generated by the reaction to escape fully. At the same time, make the solution further mixed evenly; S5. Dissolve sodium benzoate: Add sodium benzoate to the above solution, use the stirrer to stir and mix, and the obtained solution is the cleaning agent for the silica gel interface treatment agent.

4. The cleaning agent for the silicone interface treatment agent according to claim 3, characterized in that, In S1, the stirring speed of the stirrer is 30 r / min - 50 r / min, and the stirring time is 10 min - 15 min.

5. The cleaning agent for the silicone interface treatment agent according to claim 3, wherein, In S2, the stirring speed of the stirrer is 60 r / min - 80 r / min, and the stirring time is 15 min - 20 min.

6. The cleaning agent for the silicone interface treatment agent according to claim 3, characterized in that, In S3, the adding speed of the edible baking soda is 0.32 g / min - 0.21 g / min. At this time, the stirring speed of the stirrer is 30 r / min - 50 r / min.

7. The cleaning agent for the silicone interface treatment agent according to claim 3, characterized in that, In S3, the continuous stirring speed of the stirrer is 40 r / min - 60 r / min, and the continuous stirring time is 25 min - 30 min.

8. The cleaning agent for the silicone interface treatment agent according to claim 3, wherein In S4, the dropping speed of the white vinegar is 3 ml / min - 5 ml / min.

9. The cleaning agent for the silicone interface treatment agent according to claim 3, wherein In S4, the stirring speed of the stirrer is 30 r / min - 40 r / min, and the stirring time is 5 min - 10 min.

10. The cleaning agent for the silicone interface treatment agent according to claim 3, characterized in that, In S5, the stirring speed of the stirrer is 30 r / min - 50 r / min, and the stirring time is 10 min - 15 min.