Molten attachment removing method for neodymium iron boron laser cutting and protective agent

By forming a dense protective film on the surface of NdFeB material, the problem of difficult cleaning of melt adhesion during laser cutting is solved, and the material does not rust and its magnetic properties are not affected, achieving efficient and environmentally friendly protective effects.

CN119956440APending Publication Date: 2025-05-09BAOTOU INST MAGNETIC NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202510210428.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2024-12-03
Filing Date
2025-02-25
Publication Date
2025-05-09

AI Technical Summary

Technical Problem

During the laser cutting process of neodymium iron boron materials, the melt adheres to the adhesion, affecting the product appearance quality. In addition, the special nature of neodymium iron boron materials is insufficiently considered by the market, which may lead to rust or magnetic properties of the material.

Method used

A method of removing molten attachments for laser cutting of neodymium iron boron is adopted to form a dense protective film to prevent the adhesion of the melt by plating the protective agent solution, including deionized water, white mineral oil, anti-splash agent, water-soluble anti-rust agent, penetrating agent, aqueous polyurethane emulsion resin, talc powder and water-based full-synthetic agent, to form a dense protective film to prevent the adhesion of the melt, and remove the protective film in the electroplating process.

Benefits of technology

It effectively solves the problem that the melt is difficult to clean up during laser cutting, ensuring that the surface of neodymium iron boron products is not corroded, the magnetic properties are not affected, and the protective agent is environmentally friendly and non-toxic, has low cost and high cost performance.

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Abstract

The invention discloses a method for removing molten attachments for neodymium iron boron laser cutting and a protective agent.The method comprises the following steps that raw materials including, by weight, 50%-65% of deionized water, 5%-7% of white mineral oil, 13%-15% of an anti-splashing agent, 2%-5% of an anti-rust agent, 2%-3% of a penetrating agent, 5%-7% of waterborne polyurethane emulsion resin, 5%-8% of talcum powder and 3%-5% of a water-based total synthesis agent are weighed; stirring and mixing the raw materials in deionized water to form a protective agent solution; then cleaning, protective agent soaking and drying treatment are carried out on the product to form a solid protective film, laser cutting is carried out, finally, electroplating protection treatment is carried out on the product, and nitric acid pickling and pure water cleaning in the electroplating process can remove the protective film and molten substances on the surface of the product. The method can effectively solve the problem that melt adheres and is not easy to clean in the neodymium iron boron laser cutting process, and it can be guaranteed that the surface of the neodymium iron boron product is not corroded, and the magnetic performance is not affected.
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Description

[0001] This case claims Chinese priority, priority number: 2024117591483, priority date: 2024-12-03. Technical Field

[0002] The invention relates to the technical field of NdFeB product processing, and in particular to a method for removing molten deposits for NdFeB laser cutting and a protective agent. Background Art

[0003] As a high-performance permanent magnet material, NdFeB has the characteristics of high remanence density, high coercivity and high magnetic energy product and is widely used in many fields. However, it is easy to rust and oxidize in humid, acidic or alkaline environments, which reduces its magnetic properties.

[0004] As an efficient and precise processing method, laser cutting plays an important role in the processing of NdFeB materials. Laser cutting uses a high-power density laser beam to scan the surface of the material, heats the material to several thousand degrees Celsius in a very short time, melts or vaporizes the material, and then uses high-pressure gas to blow the molten or vaporized material away from the cutting seam to achieve the purpose of cutting the material. However, the high-temperature molten metal splashes generated during the laser cutting process are easy to adhere to the surface of the material, affecting the appearance quality of the final product.

[0005] Existing solutions to the problem of melt adhesion during laser cutting, such as adjusting laser cutting parameters, adding external mechanical devices for dust extraction or vacuum adsorption, are effective to a certain extent, but these methods are not applicable to thin, small, and high-precision NdFeB magnetic products. In addition, the use of protective agents is also a common practice, but most of the protective agents on the market are designed for metal welding, and the particularity of NdFeB materials is not considered enough. Improper use may cause rust on the surface of the material or affect the magnetism. Summary of the invention

[0006] The purpose of the present invention is to provide a method for removing molten deposits during NdFeB laser cutting, which can effectively solve the problem that the molten deposits are difficult to clean during laser cutting of NdFeB, and can also ensure that the surface of the NdFeB product is not corroded and the magnetic properties are not affected.

[0007] To achieve the above object, the solution of the present invention is: a method for removing molten deposits for NdFeB laser cutting, comprising the following steps:

[0008] Step 1: Prepare protective agent: weigh the raw materials according to the following weight percentages:

[0009] Deionized water 50-65%, white mineral oil 5-7%, anti-splash agent 13-15%, water-soluble rust inhibitor 2-5%, penetrant 2-3%, water-based polyurethane emulsion resin 5-7%, talcum powder 5-8%, water-based full synthetic agent 3-5%, all raw materials are stirred and mixed in deionized water to form a protective agent solution;

[0010] The water-soluble rust inhibitor comprises, by weight percentage, 10-15% triethanolamine borate, 10-15% methyl isopropyl ketone, 10-20% xylene, 5-10% calcium oxide, 5-10% epoxy resin, and 30-60% deionized water;

[0011] Step 2: Clean the NdFeB product to be cut to remove surface impurities;

[0012] Step 3: Soak the cleaned NdFeB product in the prepared protective agent solution for 1 to 2 minutes to ensure that the surface of the NdFeB product is fully in contact with the protective agent solution;

[0013] Step 4: Dry the soaked NdFeB product at a temperature of 65-75°C to solidify the protective agent on the surface to form a dense and uniform solid protective film;

[0014] Step 5: Laser cutting the dried NdFeB product;

[0015] Step 6: Electroplating the NdFeB product after laser cutting. During the electroplating pretreatment process, the NdFeB product is first pickled with 2-4% nitric acid for 5-8 seconds to dissolve the protective film on its surface. Then, the NdFeB product is ultrasonically rinsed with pure water to remove the nitric acid on its surface, the dissolved protective film and the molten material.

[0016] Furthermore, the water-based full synthetic agent is prepared by mixing ethylene glycol and polyacrylamide in a mass ratio of 2 to 3:1;

[0017] Furthermore, the anti-splash agent is formed by mixing a polymer and an activator in a mass ratio of 2 to 3:1, the polymer is one of polyvinyl alcohol, polyacrylamide and polyvinyl pyrrolidone, and the activator is one of acrylic acid, acetic acid, stearic acid, citric acid and oxalic acid.

[0018] Furthermore, the main components of the penetrant include higher fatty alcohols, polyoxyethylene and polyoxypropylene.

[0019] Furthermore, in step 4, the soaked NdFeB product is driven by a conveyor belt and dried in a tunnel furnace. The conveyor belt runs at a speed of 0.5 m / min and the drying time is 4 min.

[0020] Furthermore, the protective agent comprises the following components by weight percentage: 55% deionized water, 7% white mineral oil, 14% anti-splash agent, 3% water-soluble rust inhibitor, 2% penetrant, 7% water-based polyurethane emulsion resin, 8% talcum powder, and 4% water-based full synthetic agent.

[0021] The present invention also provides a protective agent for removing molten deposits for NdFeB laser cutting, which comprises the following components by weight percentage: 50-65% deionized water, 5-7% white mineral oil, 13-15% anti-splash agent, 2-5% water-soluble rust inhibitor, 2-3% penetrant, 5-7% water-based polyurethane emulsion resin, 5-8% talcum powder, and 3-5% water-based full synthetic agent. The raw materials are stirred and mixed in deionized water to form a protective agent solution;

[0022] The water-soluble rust inhibitor comprises, by weight percentage, 10-15% of triethanolamine borate, 10-15% of methyl isopropyl ketone, 10-20% of xylene, 5-10% of calcium oxide, 5-10% of epoxy resin, and 30-60% of deionized water.

[0023] Furthermore, the water-based full synthetic agent is prepared by mixing ethylene glycol and polyacrylamide in a mass ratio of 2 to 3:1;

[0024] The anti-splash agent is prepared by mixing a high molecular polymer and an activator in a mass ratio of 2 to 3:1, wherein the high molecular polymer is one of polyvinyl alcohol, polyacrylamide and polyvinyl pyrrolidone, and the activator is one of acrylic acid, acetic acid, stearic acid, citric acid and oxalic acid;

[0025] The main components of the penetrant include higher fatty alcohols, polyoxyethylene and polyoxypropylene.

[0026] After adopting the above scheme, the beneficial effects of the present invention are:

[0027] 1. The protective agent provided by the present invention can form a dense protective film on the surface of NdFeB products, which can effectively isolate the molten spatter generated during laser cutting, prevent the spatter from directly contacting the surface of NdFeB products and affecting the appearance quality of the products, and fundamentally solve the problem of molten material adhesion and difficulty in cleaning during laser cutting of NdFeB.

[0028] 2. Compared with the existing protective agents on the market that contain high concentrations of hydrochloric acid, nitric acid, and phosphoric acid, the protective agent of the present invention uses triethanolamine borate as an anti-rust component, uses methyl isopropyl ketone and xylene to adjust the solvent properties, adds calcium oxide to enhance stability, and incorporates epoxy resin to improve the toughness and adhesion of the protective film. Through this series of ratios, a protective agent that does not contain high-concentration acid-type substances is obtained, so it will not cause additional corrosion risks to the NdFeB material during use, and effectively avoids the phenomenon of reducing the magnetic moment of the NdFeB material due to rust.

[0029] 3. After the protective agent is applied to the surface of the NdFeB product, it is dried at 65-75°C to form a protective film. The drying temperature is appropriate and will not cause demagnetization of the product.

[0030] 4. The protective film formed by the protective agent can be removed by pickling and cleaning with 2% to 4% nitric acid in the subsequent electroplating process pretreatment, thus ensuring the cleanliness of the product surface.

[0031] In addition, the protective agent solution of the present invention is environmentally friendly and non-toxic, and its use will not cause harm to the environment and human body. At the same time, the cost of the protective agent is relatively low, and 1L of the solution can be applied to about 800 to 1000 NdFeB magnetic sheets that have not been laser cut, which is cost-effective. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] Figure 1 Flow chart of the method for removing molten deposits for NdFeB laser cutting of the present invention;

[0033] Figure 2 This is a schematic diagram of the molten material attached to the surface of the NdFeB product without protective agent after laser cutting;

[0034] Figure 3 This is a schematic diagram showing that the surface of the NdFeB product without protective agent is still attached with molten material after electroplating;

[0035] Figure 4 This is a schematic diagram of the corrosion on the surface of NdFeB magnets after applying the protective agent available on the market;

[0036] Figure 5 It is a schematic diagram of the surface of a NdFeB magnet after being coated with the protective agent of the present invention and subjected to laser cutting and electroplating treatment. DETAILED DESCRIPTION

[0037] The present invention is described in detail below with reference to the accompanying drawings and specific embodiments.

[0038] The present invention provides a method for removing molten deposits for NdFeB laser cutting, comprising the following steps (refer to the process Figure 1 ):

[0039] Step 1: Prepare protective agent: weigh the raw materials according to the following weight percentages:

[0040] Deionized water 50-65%, white mineral oil 5-7%, anti-splash agent 13-15%, water-soluble rust inhibitor 2-5%, penetrant 2-3%, water-based polyurethane emulsion resin 5-7%, talcum powder 5-8%, water-based full synthetic agent 3-5%, all raw materials are stirred and mixed in deionized water to form a protective agent solution. Among them, deionized water is used as a solvent to dilute and dissolve each component. The molecular structure of white mineral oil has lipophilicity and hydrophobicity, which can quickly migrate the moisture on the surface of the NdFeB magnetic sheet to the gas-liquid interface, reduce the surface tension of the liquid, and prevent the NdFeB magnetic sheet from laminating due to water tension in the solution. The water-based polyurethane emulsion resin has good stability and dispersibility, and can form a tough and wear-resistant film. Talc can adsorb some substances around its particles to make them evenly dispersed, increase the contact surface with deionized water, and accelerate the dissolution of substances in the solution. At the same time, talc has good adsorption capacity, which can adsorb the moisture and grease of the NdFeB magnetic sheet after soaking and accelerate surface drying.

[0041] The protective agents currently available on the market usually contain high concentrations of hydrochloric acid, nitric acid, and phosphoric acid. High concentrations of acid will react with the rare earth elements and iron elements in the NdFeB material, which will not only corrode the surface of the product and affect its finish, but also affect its magnetic properties. Figure 4 As shown in the figure, after applying the protective agent available on the market, the surface of the NdFeB magnet showed obvious corrosion and rust.

[0042] In this case, in order to address the shortcoming of NdFeB materials being very easy to corrode and rust, a water-soluble rust inhibitor was first configured. The water-soluble rust inhibitor, by weight percentage, includes 10-15% triethanolamine borate, 10-15% methyl isopropyl ketone, 10-20% xylene, 5-10% calcium oxide, 5-10% epoxy resin, and 30-60% deionized water. Among them, a water-soluble rust inhibitor containing triethanolamine borate is used. The main component of the triethanolamine borate rust inhibitor is triethanolamine borate, which does not contain high concentrations of acid-type substances. It can form a dense protective film on the metal surface and has the characteristics of high temperature resistance, high humidity, and high salt resistance. Methyl isopropyl ketone helps to improve the fluidity and permeability of the rust inhibitor, so that the rust inhibitor can be more evenly covered on the surface of the material. Xylene helps the active components in the rust inhibitor to dissolve and disperse better. It can also increase the volatility and drying speed of the rust inhibitor, thereby shortening the processing time. Calcium oxide, as an alkaline substance, can neutralize possible trace acidic substances to prevent them from corroding the material. Epoxy resin can form a tough and dense protective film on the surface of the material. By rationally matching the above components, a water-soluble rust inhibitor specifically for special materials such as NdFeB is prepared.

[0043] The water-based full-synthetic agent in the protective agent of the present invention is prepared by mixing ethylene glycol and polyacrylamide in a mass ratio of (2-3): 1. The water-based full-synthetic agent is used as a solvent for the organic synthesis and catalysis of the solution.

[0044] The anti-splash agent is a mixture of a polymer and an activator in a mass ratio of 2 to 3:1. The anti-splash agent can form an isolation film on the surface of the NdFeB magnetic sheet before laser processing, so that the molten metal particles generated during laser cutting cannot directly contact the product surface. Among them, the polymer is one of polyvinyl alcohol, polyacrylamide and polyvinyl pyrrolidone. These polymers can increase the viscosity of the solution, so that the anti-splash agent can better adhere to the cutting surface. The polymer can also form a film after drying, which can further block the splash of the molten material. The activator is preferably an organic acid, which can be one of acrylic acid, acetic acid, stearic acid, citric acid, and oxalic acid. The activator can reduce the interaction force between polymers, reduce the pH value of the solution, and make it weakly acidic. The weakly acidic environment helps to inhibit the oxidation reaction on the surface of the NdFeB material. Secondly, it can reduce the surface tension of the liquid, so that the anti-splash agent can be more evenly covered on the metal surface and reduce the adhesion of splashes. In addition, when laser cutting NdFeB magnetic materials, alkaline oxides (such as ferrous oxide and ferric oxide) may be generated on the metal surface. Organic acids can react with these oxides to generate soluble salts, thereby reducing the adhesion of spatter. The reaction process is as follows:

[0045] FeO+2CH3COOH→Fe(CH3COO)2+H2O

[0046] The main components of the penetrant include higher fatty alcohols, polyoxyethylene and polyoxypropylene. The penetrant used in this solution is purchased from Tongxiang Henglong Chemical Co., Ltd. The penetrant can improve the wettability of the solution, reduce its surface tension, and make it easier to contact and mix with the NdFeB magnetic sheet that needs to be immersed in the solution.

[0047] Step 2: Clean the NdFeB product to be cut to remove the oil stains and magnetic powder on the surface during the processing. This case takes the NdFeB magnetic sheet with a size of 50.2mm×48.5mm and a thickness of 0.4mm as an example to illustrate the processing of the product, but it is not limited to this size;

[0048] Step 3: Soak the cleaned NdFeB magnetic sheets in the prepared protective agent solution for 1 to 2 minutes, so that both sides of the product are in full contact with the protective agent solution to ensure that the protective film finally formed on the product can protect the product without omissions. Here, too long an immersion time will lead to excessive penetration of the protective agent, which may cause the protective film on the surface of the product to be too thick, brittle, or produce unnecessary internal stress, affecting the physical properties and magnetic properties of the product; while too short an immersion time may cause the protective agent to fail to fully cover the surface of the product, resulting in poor protection effect, and some areas may not form an effective protective film, thereby increasing the risk of rust and reduced magnetic moment of the product.

[0049] Step 4: Dry the soaked NdFeB magnetic sheets, specifically by using a conveyor belt to drive the product through a tunnel furnace, with a drying temperature of 65-75°C (preferably 70°C). This drying temperature is suitable for ensuring the effective curing of the protective film and ensuring that it forms a stable and dense protective layer on the surface of the product, while avoiding the adverse effects of excessive temperature on the product, such as causing product demagnetization and other unfavorable conditions. This embodiment takes a tunnel furnace with a length of 2m as an example, the conveyor belt runs at a speed of 0.5m / min, and the heating time is about 4min. The protective agent is heated to quickly form a dense protective film on the surface of the product.

[0050] Step 5: Place the dried NdFeB magnetic sheets neatly in the silo of the laser cutting equipment for laser cutting into rectangular blocks with a size of 8.2mm×7.5mm. The cut products fall into the receiving box through the unloading device.

[0051] Step 6. Electroplating process is performed on the NdFeB magnetic sheets after laser cutting. During the electroplating pretreatment process, 3% nitric acid is first used as a pickling agent to ultrasonically pickle the NdFeB magnetic sheets. The pickling time is 5 to 8 seconds. The pickling time should not be too long, as it may cause the size of the NdFeB product to decrease. Proper pickling can dissolve the protective film on the surface of the NdFeB magnetic sheets. This is because some substances in the solution, such as white mineral oil, talcum powder, calcium oxide and xylene in the rust inhibitor, polyethylene in the anti-splash agent, and polyacrylamide in the water-based full synthetic agent, can react with nitric acid to dissolve the protective film. At the same time, the molten material attached to the surface of the protective film is detached as the protective film detaches from the surface of the NdFeB magnetic sheet. Then, the NdFeB magnetic sheet is ultrasonically rinsed with pure water to remove the nitric acid, dissolved protective film and molten material on its surface, so as to purify the surface of the product. The final cleaning result is as follows: Figure 5 As shown, there is no molten material attached to the surface of the product and there is almost no rust or corrosion.

[0052] Experimental Example 1:

[0053] This experiment explores the effect of the ratio of each protective agent on the yield of NdFeB magnetic sheets after laser cutting and electroplating. By comparing the following examples with the comparative examples, the effects of protective agents with different ratios are analyzed.

[0054] Protective agents with different proportions were applied to the surface of the NdFeB magnetic sheet, where Comparative Example 4 was a blank group, that is, no protective agent was applied to the surface of the NdFeB magnetic sheet. Then, the NdFeB magnetic sheet after application was laser cut and electroplated.

[0055] Observe, test and record the protective film formation on the product surface, the molten material adhesion and the defective rate of molten material adhesion of the finished product. The results are shown in Table 1:

[0056] Table 1 Distribution ratio of each group of protective agent and its protective effect

[0057]

[0058] It can be seen from Table 1 that the protective agent in Examples 1-3 can form a dense protective film on the surface of the product. The protective agent has almost no corrosion to the surface of the product, and after laser cutting and electroplating, there is almost no molten material attached to the surface of the product. Figure 5 The defect rate of molten deposits in finished products is kept at a low level. This shows that the protective agent prepared by the present invention can effectively solve the problem of difficult cleaning of molten deposits during laser cutting of NdFeB, and can also ensure that the surface of NdFeB products is not corroded and the magnetic properties are not affected.

[0059] Although the protective film formed by the protective agent in Comparative Example 1-2 still maintains a certain density, the rust corrosion rate of the product and the defective rate of the finished product molten attachment are increased due to the improper proportion of the components such as the rust inhibitor and the water-based polyurethane emulsion resin.

[0060] In Comparative Example 3, since the proportion of rust inhibitor, penetrant and aqueous polyurethane emulsion resin is too low, the solution concentration required to form a protective film is reduced, and the protective effect of the solution is reduced, resulting in reduced density of the protective film and poor protection effect. During the laser cutting process of the dried product, the high-temperature melt will melt the thinner protective film and adhere to the surface of the material, and the defective rate of the finished product molten attachment is significantly increased.

[0061] In Comparative Example 4, since no protective agent was used, the product surface was not protected by a protective film, and a large amount of molten material was attached to the product surface. Figure 3 As shown, the defective rate of finished products is high.

[0062] Experimental Example 2:

[0063] This experimental example studies the effect of the ratio of each component in the rust inhibitor on the surface morphology of NdFeB magnetic sheets.

[0064] According to the overall ratio of the protective agent in Example 2, the ratios of other components are fixed unchanged (55% deionized water, 7% white mineral oil, 14% anti-splashing agent, 3% water-soluble rust inhibitor, 2% penetrant, 7% water-based polyurethane emulsion resin, 8% talcum powder, 4% water-based full synthetic agent). The ratios of the components in the rust inhibitor (triethanolamine borate, calcium oxide, epoxy resin, etc.) are adjusted to prepare rust inhibitors with different ratios. The rust inhibitors with different ratios are mixed with other fixed components to prepare protective agents.

[0065] Apply the protective agent to the surface of the NdFeB magnetic sheet, observe and record the morphological changes on the surface of the product, the results are shown in Table 2:

[0066] Table 2 The proportion of each component of the rust inhibitor and the protective effect of the corresponding protective agent

[0067]

[0068] It can be seen from Table 2 that the protective agent prepared from the rust inhibitors of Examples 4-6 hardly corrodes the surface of the NdFeB product. Therefore, it is shown that the protective agent prepared by the present invention can effectively protect and prevent the molten material from adhering to the surface of the NdFeB while ensuring that the surface of the NdFeB product is not corroded.

[0069] The protective agent prepared from the rust inhibitor of Comparative Example 4 has insufficient rust prevention effect due to the low content of triethanolamine borate, calcium oxide and epoxy resin, resulting in corrosion and rust on the surface of the NdFeB product.

[0070] The protective agent prepared from the rust inhibitor of Comparative Example 5 has too high content of triethanolamine borate, calcium oxide and epoxy resin; the protective agent prepared from the rust inhibitor of Comparative Example 6 has too high content of triethanolamine borate and calcium oxide. The protective agents finally prepared from the rust inhibitors of these two comparative examples have inadequate addition of some components, resulting in insufficient dissolution, solute precipitation to form precipitates attached to the surface of the NdFeB magnetic sheet, and ultimately reducing the density of the protective film and slowing the film formation speed.

[0071] To further illustrate various embodiments, the present invention provides drawings. These drawings are part of the disclosure of the present invention, which are mainly used to illustrate the embodiments and can be used in conjunction with the relevant descriptions in the specification to explain the operating principles of the embodiments.

[0072] The above description is only a preferred embodiment of the present invention and is not a limitation on the design of this case. Any equivalent changes made based on the design key of this case shall fall within the protection scope of this case.

Claims

1. A method for removing molten deposits for NdFeB laser cutting, characterized in that: The steps include: Step 1: Prepare protective agent: weigh the raw materials according to the following weight percentages: Deionized water 50-65%, white mineral oil 5-7%, anti-splash agent 13-15%, rust inhibitor 2-5%, penetrant 2-3%, water-based polyurethane emulsion resin 5-7%, talcum powder 5-8%, water-based full synthetic agent 3-5%, all raw materials are stirred and mixed in deionized water to form a protective agent solution; The water-soluble rust inhibitor comprises, by weight percentage, 10-15% triethanolamine borate, 10-15% methyl isopropyl ketone, 10-20% xylene, 5-10% calcium oxide, 5-10% epoxy resin, and 30-60% deionized water; Step 2: Clean the NdFeB product to be cut to remove surface impurities; Step 3: Soak the cleaned NdFeB product in the prepared protective agent solution for 1 to 2 minutes to ensure that the surface of the NdFeB product is fully in contact with the protective agent solution; Step 4: Dry the soaked NdFeB product at a temperature of 65-75°C to solidify the protective agent on the surface to form a dense and uniform solid protective film; Step 5: Laser cutting the dried NdFeB product; Step 6: Electroplating the NdFeB product after laser cutting. During the electroplating pretreatment process, the NdFeB product is first pickled with 2-4% nitric acid for 5-8 seconds to dissolve the protective film on its surface. Then, the NdFeB product is ultrasonically rinsed with pure water to remove the nitric acid on its surface, the dissolved protective film and the molten material.

2. A method for removing molten deposits for NdFeB laser cutting as claimed in claim 1, characterized in that: The water-based full synthetic agent is prepared by mixing ethylene glycol and polyacrylamide in a mass ratio of 2 to 3:

1.

3. A method for removing molten deposits for NdFeB laser cutting as claimed in claim 1, characterized in that: The anti-splash agent is prepared by mixing a high molecular polymer and an activator in a mass ratio of 2 to 3:

1. The high molecular polymer is one of polyvinyl alcohol, polyacrylamide and polyvinyl pyrrolidone, and the activator is one of acrylic acid, acetic acid, stearic acid, citric acid and oxalic acid.

4. A method for removing molten deposits for NdFeB laser cutting as claimed in claim 1, characterized in that: The main components of the penetrant include higher fatty alcohols, polyoxyethylene and polyoxypropylene.

5. The method for removing molten deposits for NdFeB laser cutting according to claim 1, characterized in that: In step 4, the soaked NdFeB product is driven by a conveyor belt and dried in a tunnel furnace. The conveyor belt runs at a speed of 0.5 m / min and the drying time is 4 min.

6. A method for removing molten deposits for NdFeB laser cutting as claimed in claim 1, characterized in that: The protective agent comprises the following components by weight percentage: 55% deionized water, 7% white mineral oil, 14% anti-splashing agent, 3% anti-rust agent, 2% penetrant, 7% water-based polyurethane emulsion resin, 8% talcum powder, and 4% water-based full synthetic agent.

7. A protective agent for removing molten deposits for NdFeB laser cutting, characterized in that: The invention comprises the following components by weight percentage: 50-65% of deionized water, 5-7% of white mineral oil, 13-15% of anti-splashing agent, 2-5% of rust inhibitor, 2-3% of penetrant, 5-7% of waterborne polyurethane emulsion resin, 5-8% of talcum powder, 3-5% of water-based full synthetic agent, and all raw materials are stirred and mixed in deionized water to form a protective agent solution; wherein, the water-soluble rust inhibitor comprises by weight percentage 10-15% of triethanolamine borate, 10-15% of methyl isopropyl ketone, 10-20% of xylene, 5-10% of calcium oxide, 5-10% of epoxy resin, and 30-60% of deionized water.

8. The protective agent for removing molten deposits for NdFeB laser cutting according to claim 7, characterized in that: The water-based full synthetic agent is prepared by mixing ethylene glycol and polyacrylamide in a mass ratio of 2 to 3:1; The anti-splash agent is prepared by mixing a high molecular polymer and an activator in a mass ratio of 2 to 3:1, wherein the high molecular polymer is one of polyvinyl alcohol, polyacrylamide and polyvinyl pyrrolidone, and the activator is one of acrylic acid, acetic acid, stearic acid, citric acid and oxalic acid; The main components of the penetrant include higher fatty alcohol, polyoxyethylene and polyoxypropylene.