A method for preparing magnesium powder with a narrow particle size
By screening and oxidizing layer treatment of magnesium powder, the problem of poor particle size uniformity in mechanical powder making is solved, the yield and particle size distribution uniformity of magnesium powder are improved, and the efficient preparation of narrow-particle magnesium powder is achieved.
Patent Information
- Application Number
- CN202510629466.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2045-05-16
AI Technical Summary
When the existing mechanical powder making method produces magnesium powder with narrow particle size, the particle size uniformity is poor, resulting in low yield and small particle size magnesium powder cannot be processed into qualified products, affecting the final yield.
By screening and sorting the first grinding products, the first and second products are formed, and the second products are mixed with the second product after forming an oxide layer on the surface of the first product for a second grinding. The oxide layer is used to improve the grinding accuracy and reduce the defective product rate.
It effectively improves the uniformity of particle size distribution of magnesium powder, reduces the unreworkable yield rate, improves the yield rate, and makes the particle size distribution closer to the target particle size.
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Figure CN120133529B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of magnesium powder manufacturing, and particularly to a method for preparing narrow particle size magnesium powder. Background Art
[0002] Magnesium metal, with its excellent physical properties such as high specific strength and specific stiffness, excellent processing and forming ability, excellent damping and shock absorption effect, and strong electromagnetic shielding ability, has occupied a pivotal position in many fields such as automobile manufacturing, aerospace, rail transit, electronic communication, and national defense industry, and is known as the "green engineering material of the 21st century". Its application in the biomedical field is even more remarkable. With excellent biocompatibility and biodegradability, it is known as the "revolutionary medical metal material". In addition to the above applications, the active chemical properties of magnesium also bring more possibilities. Magnesium plays a key role in steel desulfurization and strategic metal reduction. Especially spherical magnesium and magnesium powder, due to their large specific surface area and strong surface activity, are not only widely used in the production of chemical products, the manufacture of explosives, and the fireworks industry, but also become efficient reducing agents, desulfurizing agents, and high-quality raw materials for 3D printing. In addition, magnesium powder has also found its application in high-tech fields such as advanced magnesium powder pigments and conductive pastes for the backplane of solar photovoltaic cells. Especially in the automotive and building materials industries, magnesium powder pigments have demonstrated their unique value.
[0003] China's magnesium resource reserves are extremely rich, and it has maintained the world's leading position in primary magnesium production for many years. With decades of unremitting efforts and continuous research, significant progress and achievements have been made in the applied research of magnesium metal in many fields such as alloy production, hydrogen storage materials, and medical materials. However, in the field of magnesium powder preparation, China's research started relatively late and the development speed is relatively slow. Currently, the processing of magnesium powder mainly includes high-temperature atomization method and mechanical powder making method. The former is suitable for making ultrafine magnesium powder, with high precision and good particle uniformity, but the production efficiency is low. The latter has relatively low precision, but low production cost and high efficiency. Currently, the mechanical powder making method is generally used in general scenarios. However, when using the existing mechanical powder making method to produce magnesium powder with a smaller particle size, the final yield of good products is low.
[0004] The information disclosed in the background art part of this application is only intended to deepen the understanding of the general background art of this application, and should not be regarded as an admission or any form of implication that this information constitutes the prior art known to those skilled in the art. Summary of the Invention
[0005] The applicant has found that when using the mechanical powder-making method to produce magnesium powder with a narrow particle size, since the particle size of the ground magnesium powder approximately follows a normal distribution, taking the production of magnesium powder with a particle size of 0.15 mm as an example, a certain error is generally allowed, that is, magnesium powder with a particle size of 0.12 mm - 0.18 mm is considered a qualified product. Among the products finally ground by the existing mechanical powder-making method, the proportion of products with a particle size less than 0.12 mm is about 5%, and the proportion of magnesium powder with a particle size greater than 0.18 mm is about 3%. Moreover, within the range of 0.12 mm - 0.18 mm, the proportion of particles close to 0.12 mm or 0.18 mm is also relatively high. The magnesium powder with a larger particle size can be processed into qualified products through secondary grinding, but the magnesium powder with a smaller particle size can only be remelted into magnesium ingots as unqualified products or sold as by-products, which affects the final yield rate.
[0006] Based on this, it is necessary to provide a method for preparing narrow-particle-size magnesium powder to address the problem of poor particle size uniformity existing in the current production of narrow-particle-size magnesium powder.
[0007] The above object is achieved by the following technical solutions:
[0008] A method for preparing narrow-particle-size magnesium powder, which includes:
[0009] Prepare magnesium ingot raw materials;
[0010] Pickle the magnesium ingot to remove the oxide layer on the surface of the magnesium ingot;
[0011] Transfer the pickled magnesium ingot into a milling machine or a cutting machine and process it into long chips;
[0012] Transfer the processed long chips into a chip breaker and process them into short chips;
[0013] Put the short chips into a grinding machine for the first grinding to obtain the first grinding product;
[0014] Screen and classify the first grinding product according to the particle size. The grinding products larger than the first size and smaller than the second size are the first type of products; the grinding products larger than the second size and smaller than the third size are the second type of products;
[0015] Form an oxide layer on the surface of the first type of products, and mix the first type of products with the oxide layer formed thereon with the second type of products for the second grinding;
[0016] Collect the ground magnesium powder and pack and store it.
[0017] In one embodiment, the thickness of the oxide layer on the surface of the first type of products is 1% - 8% of the target particle size.
[0018] In one embodiment, the first dimension is 50%-90% of the target particle size, and the second dimension is 110%-150% of the target particle size.
[0019] In one embodiment, an oxide layer is formed on the surface of the first type of product. After mixing the first type of product with the oxide layer formed thereon with the second type of product, secondary grinding is performed, and it further includes:
[0020] The grinding products larger than the fourth dimension are products to be reworked. The products to be reworked are mixed with the first type of product and ground for a preset time, and then the second type of product is mixed in and grinding continues.
[0021] In one embodiment, an oxide layer is formed on the surface of the first type of product. After mixing the first type of product with the oxide layer formed thereon with the second type of product, secondary grinding is performed, and it further includes:
[0022] The first type of product is heated to form an oxide layer on the surface of the first type of product.
[0023] In one embodiment, after screening and classifying the first grinding products according to the particle size, the grinding products larger than the first dimension and smaller than the second dimension are the first type of product; the grinding products larger than the second dimension and smaller than the third dimension are the second type of product, and it further includes:
[0024] The grinding products larger than the fourth dimension are products to be reworked, and the products to be reworked are ground again once.
[0025] In one embodiment, short chips are put into a grinding machine for first grinding. When the first grinding products are obtained, an inert protective gas is introduced into the grinding machine.
[0026] In one embodiment, when the first type of product with the oxide layer formed thereon is mixed with the second type of product for secondary grinding, an inert protective gas is introduced into the grinding machine.
[0027] In one embodiment, the inert protective gas is a gas that does not react with magnesium, and at least includes one or any combination of helium, neon, argon, krypton, xenon, and radon.
[0028] In one embodiment, after screening and classifying the first grinding products according to the particle size, the grinding products larger than the first dimension and smaller than the second dimension are the first type of product; the grinding products larger than the second dimension and smaller than the third dimension are the second type of product, and it further includes:
[0029] The grinding products smaller than the first dimension are by-products, and the by-products are collected and stored in packages.
[0030] The beneficial effects of the present invention are:
[0031] The method for preparing narrow-sized magnesium powder provided by the embodiment of the present invention screens and classifies the products of the first grinding. The grinding products larger than the first size and smaller than the second size are the first type of products, and the grinding products larger than the second size and smaller than the third size are the second type of products. An oxide layer is formed on the surface of the first type of products. After mixing the first type of products with the oxide layer formed thereon and the second type of products, the second grinding is carried out, which can effectively reduce the defective product rate that cannot be reworked, improve the qualified product rate, and the particle size distribution of the magnesium powder in the qualified products is closer to the target particle size, and the particle size distribution of the magnesium powder is more ideal. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 FIG. is a schematic structural diagram of a method for preparing narrow-sized magnesium powder provided by an embodiment of the present invention;
[0033] Figure 2 Table of particle size distribution of magnesium powder prepared by mechanical powder making method through one-time grinding in the prior art;
[0034] Figure 3 Table of particle size distribution of magnesium powder after the first grinding in the method for preparing narrow-sized magnesium powder provided by an embodiment of the present invention;
[0035] Figure 4 Table of particle size distribution of magnesium powder after the second grinding in the method for preparing narrow-sized magnesium powder provided by an embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0036] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below through embodiments and in conjunction with the accompanying drawings. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0037] The block diagrams shown in the drawings are only functional entities and do not necessarily correspond to physically independent entities. That is, these functional entities can be implemented in software form, or implemented in one or more hardware modules or integrated circuits, or implemented in different networks and / or processor devices and / or microcontroller devices.
[0038] In several embodiments provided by the present application, it should be understood that the disclosed systems, devices, and methods can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of the units is only a logical function division. In actual implementation, there may be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the displayed or discussed couplings or direct couplings or communication connections to each other can be indirect couplings or communication connections through some interfaces, devices, or units, or can also be electrical, mechanical, or other forms of connection.
[0039] An embodiment of the present invention provides a method for preparing narrow-sized magnesium powder, which is mainly used to improve the yield of final good products when preparing narrow-sized magnesium powder. It can be understood that it can also be applied to the preparation of magnesium powder with a wider particle size, or the preparation of metal powders with the same or similar properties as magnesium.
[0040] Specifically, as Figure 1 shown, the method for preparing narrow-sized magnesium powder provided by the embodiment of the present invention includes:
[0041] S100, Prepare magnesium ingot raw materials;
[0042] S200, Pickle the magnesium ingot to remove the oxide layer on the surface of the magnesium ingot;
[0043] S300, Transfer the pickled magnesium ingot into a milling machine or a cutting machine and process it into long chips;
[0044] S400, Transfer the processed long chips into a chip breaker and process them into short chips;
[0045] S500, Put the short chips into a grinding machine and perform the first grinding to obtain the first grinding product;
[0046] S600, Screen and classify the first grinding product according to the particle size. The grinding products larger than the first size and smaller than the second size are the first type of products; the grinding products larger than the second size and smaller than the third size are the second type of products;
[0047] S700, Form an oxide layer on the surface of the first type of products, and mix the first type of products with the oxide layer formed thereon with the second type of products and then perform the second grinding;
[0048] S800, Collect the ground magnesium powder and pack and store it.
[0049] Among them, in step S100, the raw material for making magnesium powder is magnesium ingot. At present, in the industry, magnesium raw materials are mostly stored in the form of magnesium ingots. It can be understood that any other form of magnesium that can be cut and ground can be applied to the present invention, such as larger-sized magnesium balls, etc.
[0050] In step S200, an oxide layer easily forms on the surface of the magnesium ingot during storage and transportation. This oxide layer is easily mixed into the magnesium chips when the magnesium ingot is cut into magnesium chips. Due to the significant differences in the various physical and chemical properties of the oxide layer and the magnesium element, it not only easily reduces the purity of the final magnesium powder but also causes processing defects during the magnesium powder processing. In particular, during the cutting and grinding processes, impurity particles in the oxide layer can cause large processing defects during cutting and grinding. Therefore, it is necessary to pickle the magnesium ingot before cutting to remove the oxide layer. In addition, during storage and transportation, the surface of the magnesium ingot may be adhered to dust and other contaminants. To avoid contamination of the pickling tank, the magnesium ingot is cleaned and dried before entering the pickling tank to remove contaminants attached to the surface of the magnesium ingot. Cleaning can be done with water, a cleaning solution, or the same liquid as the liquid in the pickling tank. After cleaning, to prevent the cleaning solution from entering the pickling tank, the cleaned magnesium ingot can be dried until the surface of the magnesium ingot is no longer adhered to the liquid.
[0051] In steps S300 to S500, the magnesium ingot is sequentially cut, chip-broken, and ground to produce magnesium powder of a predetermined size, 1.5 times the target particle size. For ease of description, this embodiment and the following embodiments will be described using the production of magnesium powder with a target particle size of 0.2 mm as an example.
[0052] In the prior art, the cutting, chip breaking and grinding process similar to the step S300 to step S500 of the present application is directly carried out according to the target particle size of 0.2 mm, and the particle size distribution of the magnesium powder finally produced is as follows: Figure 2 As shown in the table. It can be seen from the table that among every 10,000 magnesium powder particles, the number of magnesium powder with a particle size of less than 0.15mm is 350 particles, accounting for 3.5%; the number of magnesium powder with a particle size greater than 0.15mm and less than 0.17mm is 1,200 particles, accounting for 12%; the number of magnesium powder with a particle size greater than 0.17mm and less than 0.19mm is 1,600 particles, accounting for 16%; the number of magnesium powder with a particle size greater than 0.19mm and less than 0.21mm is 2,700 particles, accounting for 27%; the number of magnesium powder with a particle size greater than 0.21mm and less than 0.23mm is 1,800 particles, accounting for 18%; the number of magnesium powder with a particle size greater than 0.23mm and less than 0.25mm is 1,400 particles, accounting for 14%; the number of magnesium powder with a particle size greater than 0.25mm is 950 particles, accounting for 9.5%. Among them, magnesium powder with a particle size less than 0.15mm cannot be processed into a good product with a particle size within the range of 0.15mm-0.25mm by reworking or other methods, while magnesium powder with a particle size greater than 0.25mm can be processed into a good product with a particle size within the range of 0.15mm-0.25mm by reworking or other methods.
[0053] In this application, after the cutting and chip breaking process, the first grinding is performed according to 1.5 times the target particle size (i.e. 0.3 mm). The particle size distribution of the magnesium powder produced by the first grinding is as follows: Figure 3 As shown in the table. It can be seen from the table that among every 10,000 magnesium powder particles, the number of magnesium powder with a particle size of less than 0.15mm is 50 particles, accounting for 0.5%; the number of magnesium powder with a particle size greater than 0.15mm and less than 0.17mm is 250 particles, accounting for 2.5%; the number of magnesium powder with a particle size greater than 0.17mm and less than 0.19mm is 400 particles, accounting for 4%; the number of magnesium powder with a particle size greater than 0.19mm and less than 0.21mm is 600 particles, accounting for 6%; the number of magnesium powder with a particle size greater than 0.21mm and less than 0.23mm is 750 particles, accounting for 7.5%; the number of magnesium powder with a particle size greater than 0.23mm and less than 0.25mm is 1,200 particles, accounting for 12%; the number of magnesium powder with a particle size greater than 0.25mm is 6,750 particles, accounting for 67.5%. It can be seen that after the first grinding, the particle size of most magnesium powders is larger than the acceptable range of the target particle size, so a subsequent second grinding is required.
[0054] In step S600, the ground products from the first grinding are screened and classified according to particle size. Grinded products larger than a first size and smaller than a second size are classified as first-class products, while those larger than the second size and smaller than a third size are classified as second-class products. The first size is the acceptable lower limit of the target particle size, i.e., 0.15 mm; the second size is the upper limit of the target particle size, i.e., 0.25 mm; and the third size is the upper limit of the target particle size for the first grinding, i.e., 0.4 mm.
[0055] In step S700, an oxide layer is formed on the surface of the first type of product, and the first type of product after the oxide layer is formed is mixed with the second type of product and then ground for the second time. Since magnesium is relatively active in nature, it can react with oxygen to form a dense oxide layer on its surface. After the oxide is formed, it can isolate the magnesium inside the oxide from continuing to react with oxygen. The oxide is generally magnesium oxide, and its Mohs hardness is about 6, while the Mohs hardness of magnesium element is about 2.5. Therefore, after the oxide layer is formed on the surface of the first type of product with a smaller particle size but meeting the requirements of the target particle size, it is mixed with the second type of product and ground for the second time. During grinding, since the hardness of the oxide layer on the surface of the first type of product is higher, the size reduction caused by grinding is smaller, while the hardness of the oxide layer on the surface of the second type of product is lower, the size reduction caused by grinding is larger. The particle size distribution of the magnesium powder finally produced by grinding is as follows: Figure 4As shown in the table. It can be seen from the table that among every ten thousand magnesium powder particles, the number of magnesium powder particles with a particle size less than 0.15 mm is 100, accounting for 1% of the total number; the number of magnesium powder particles with a particle size greater than 0.15 mm and less than 0.17 mm is 450, accounting for 4.5% of the total number; the number of magnesium powder particles with a particle size greater than 0.17 mm and less than 0.19 mm is 1,600, accounting for 16% of the total number; the number of magnesium powder particles with a particle size greater than 0.19 mm and less than 0.21 mm is 4,000, accounting for 40% of the total number; the number of magnesium powder particles with a particle size greater than 0.21 mm and less than 0.23 mm is 2,100, accounting for 21% of the total number; the number of magnesium powder particles with a particle size greater than 0.23 mm and less than 0.25 mm is 1,050, accounting for 10.5% of the total number; the number of magnesium powder particles with a particle size greater than 0.25 mm is 700, accounting for 7% of the total number. Compared with grinding in the prior art, among the products after two grinding processes, the proportion of non-reworkable magnesium powder is only 1%, which is much lower than 3.5% when only one grinding process is carried out; and within the acceptable range of good products, 40% of the magnesium powder particles are between 0.19 mm and 0.21 mm, which is much higher than 27% when only one grinding process is carried out. Therefore, the method for preparing narrow particle size magnesium powder provided by the invention embodiment can effectively reduce the defective rate of non-reworkable products, improve the yield rate, and the particle size distribution of magnesium powder in good products is closer to the target particle size, and the particle size distribution of magnesium powder is more ideal.
[0056] In step S800, the ground products that meet the target particle size requirements are packed and stored.
[0057] In one of the embodiments, the thickness of the surface oxide layer of the first type of product is 1% - 8% of the target particle size. The thickness of the oxide layer is adjusted according to actual production requirements. For example, the larger the target particle size, the thicker the oxide layer should be; or the larger the acceptable range of the target particle size, the thicker the oxide layer should be.
[0058] In one of the embodiments, the first size is 50% - 90% of the target particle size, and the second size is 110% - 150% of the target particle size. As described above, the first size is the lower limit value of the acceptable range of the target particle size, and the second size is the upper limit value of the target particle size. Generally, the acceptable range of the target particle size is between 50% and 150% of the target particle size. It can be understood that when the acceptable range of the target particle size changes according to actual production requirements, the first size and the second size should also change accordingly.
[0059] In one embodiment, an oxide layer is formed on the surface of the first type of product. After mixing the first type of product with the oxide layer formed thereon with the second type of product, a second grinding is performed. It further includes: grinding products larger than a fourth dimension are products to be reworked. The products to be reworked are mixed with the first type of product and ground for a preset time, and then the second type of product is mixed in and grinding continues. Herein, the fourth dimension is twice the target dimension, i.e., 0.4 mm. Since this dimension has a large difference from the target particle size, it is first mixed and ground with the first type of product. After grinding for a period of time, the size of the products to be reworked has been reduced to a suitable range, and then the second type of product is added and ground together. It should be noted that since the first type of product is first mixed and ground with the products to be reworked and then mixed and ground with the products to be reworked and the second type of product, compared with the process in which the first type of product is only mixed and ground with the second type of product, the oxide layer on the surface of the first type of product should be thicker.
[0060] In other embodiments, for the products to be reworked, they can also be ground again and then screened and classified, and after classification, continue according to step S600 and step S700.
[0061] In one of the embodiments, an oxide layer is formed on the surface of the first type of product. After mixing the first type of product with the oxide layer formed thereon with the second type of product, a second grinding is performed. It further includes: heating the first type of product to form an oxide layer on the surface of the first type of product. Of course, other methods capable of forming an oxide layer on the surface of magnesium powder can also be applied to the present invention.
[0062] In one embodiment, short chips are put into a grinding machine for the first grinding. When the first grinding products are obtained, an inert protective gas is introduced into the grinding machine. Since the presence of magnesium oxide will affect normal grinding and the purity of the final product, except for step S700, the formation of magnesium oxide needs to be avoided as much as possible.
[0063] Similarly, in one embodiment, when the first type of product with the oxide layer formed thereon is mixed with the second type of product for the second grinding, an inert protective gas is introduced into the grinding machine.
[0064] In the above embodiments, the inert protective gas is a gas that does not react with magnesium, and at least includes one or any combination of helium, neon, argon, krypton, xenon, and radon.
[0065] It should be noted that although magnesium oxide will affect the purity of the final product, on the one hand, the amount of magnesium oxide powder deliberately produced on the first type of product is small, and a considerable part of the magnesium oxide is ground off and sieved during the grinding process; on the other hand, magnesium powder often inevitably reacts with air in the subsequent process to form a certain amount of magnesium oxide. Therefore, although the oxide layer generated in step S700 affects the purity of the final product to a certain extent, the amount of its influence is relatively small.
[0066] In one of the embodiments, after screening and classifying the first grinding product according to the particle size, the grinding product with a particle size greater than the first size and less than the second size is the first type of product; the grinding product with a particle size greater than the second size and less than the third size is the second type of product, and it further includes: the grinding product with a particle size less than the first size is a by-product, and the by-product is collected and stored in packages.
[0067] It should be noted that the user information (including but not limited to user device information, user personal information, etc.) and data (including but not limited to data for analysis, stored data, displayed data, etc.) involved in this application are all information and data authorized by the user or fully authorized by all parties, and the collection, use, and processing of relevant data need to comply with the relevant laws, regulations, and standards of relevant countries and regions.
[0068] Those of ordinary skill in the art can understand that all or part of the processes in the methods of the above embodiments can be completed by instructing relevant hardware through a computer program. The computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the embodiments of the above methods. Among them, any reference to a memory, database, or other medium used in the embodiments provided in the present application can include at least one of non-volatile and volatile memories. Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory, optical memory, high-density embedded non-volatile memory, resistive random access memory (ReRAM), magnetoresistive random access memory (MRAM), ferroelectric random access memory (FRAM), phase change memory (PCM), graphene memory, etc. Volatile memory can include random access memory (RAM) or external cache memory, etc. By way of illustration and not limitation, RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM), etc. The databases involved in the embodiments provided in the present application can include at least one of relational databases and non-relational databases. Non-relational databases can include distributed databases based on blockchain, etc., without limitation. The processors involved in the embodiments provided in the present application can be general-purpose processors, central processors, graphics processors, digital signal processors, programmable logic devices, data processing logics based on quantum computing, etc., without limitation.
[0069] The technical features of the above embodiments can be combined arbitrarily. For the sake of brevity of description, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered as the scope described in this specification.
[0070] The above-described embodiments only represent several implementation manners of the present application. Their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of the present application. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present application, several modifications and improvements can still be made, and these all belong to the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the appended claims.
Claims
1. A method for preparing narrow particle size magnesium powder, characterized in that, Including: Preparing magnesium ingot raw materials; Pickling the magnesium ingot to remove the oxide layer on the surface of the magnesium ingot; Moving the pickled magnesium ingot into a milling machine or a cutting machine to process it into long chips; Moving the processed long chips into a chip breaker to process them into short chips; Putting the short chips into a grinding machine for the first grinding to obtain the first grinding product; Screening and classifying the first grinding products according to particle size. The grinding products larger than the first size and smaller than the second size are the first type of products; the grinding products larger than the second size and smaller than the third size are the second type of products; Forming an oxide layer on the surface of the first type of products, and mixing the first type of products with the oxide layer formed thereon with the second type of products for the second grinding; Collecting the ground magnesium powder and packing and storing it; The thickness of the oxide layer on the surface of the first type of products is 1%-8% of the target particle size; The first size is 50%-90% of the target particle size, the second size is 110%-150% of the target particle size, and the third size is the upper limit value of the target particle size during the first grinding.
2. The method for preparing narrow particle size magnesium powder according to any one of claims 1, characterized in that, Forming an oxide layer on the surface of the first type of products, and mixing the first type of products with the oxide layer formed thereon with the second type of products for the second grinding, further including: The grinding products larger than the fourth size are products to be reworked. Mixing the products to be reworked with the first type of products and grinding for a preset time, and then mixing in the second type of products and continuing to grind. The fourth size is 2 times the target particle size.
3. The method for preparing narrow particle size magnesium powder according to any one of claims 1, characterized in that, Forming an oxide layer on the surface of the first type of products, and mixing the first type of products with the oxide layer formed thereon with the second type of products for the second grinding, further including: Heating the first type of products to form an oxide layer on the surface of the first type of products.
4. The method for preparing narrow particle size magnesium powder according to claim 1, characterized in that, Screening and classifying the first grinding products according to particle size. The grinding products larger than the first size and smaller than the second size are the first type of products; After the grinding products larger than the second size and smaller than the third size are the second type of products, further including: The grinding products larger than the fourth size are products to be reworked. Grinding the products to be reworked one more time. The fourth size is 2 times the target particle size.
5. The method for preparing narrow particle size magnesium powder according to claim 1, wherein When putting the short chips into a grinding machine for the first grinding to obtain the first grinding product, introducing an inert protective gas into the grinding machine.
6. The method for preparing narrow particle size magnesium powder according to claim 1, characterized in that When mixing the first type of products with the oxide layer formed thereon with the second type of products for the second grinding, introducing an inert protective gas into the grinding machine.
7. The method for preparing narrow particle size magnesium powder according to claim 5 or 6, characterized in that, The inert protective gas is a gas that does not react with magnesium, and at least includes one or any combination of helium, neon, argon, krypton, xenon, and radon.
8. The method for preparing narrow particle size magnesium powder according to any one of claims 1, 5 - 6, characterized in that, Screening and classifying the first grinding products according to particle size. The grinding products larger than the first size and smaller than the second size are the first type of products; After the grinding products larger than the second size and smaller than the third size are the second type of products, further including: The grinding products smaller than the first size are by-products. Collecting the by-products and packing and storing them.
Citation Information
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Gas protection type metal ingot cutting, granulating and powdering process
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