Neodymium-iron-boron magnet multi-wire cutting machine

By designing a multi-wire cutting machine for neodymium iron boron magnets, and employing a fixing mechanism, lifting mechanism, cutting mechanism, spraying mechanism, and collection mechanism, the problem of shaking and offset when cutting neodymium iron boron magnet blocks was solved, achieving efficient and precise magnet cutting, and improving applicability and cutting efficiency.

CN223670909UActive Publication Date: 2025-12-16NINGBO PUYI MAGNETIC IND CO LTD
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Patent Information

Application Number
CN202422903076.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-27
Publication Date
2025-12-16
Estimated Expiration
2034-11-27

AI Technical Summary

Technical Problem

Existing cutting machines are prone to shaking and shifting when cutting neodymium iron boron magnet blocks, resulting in reduced cutting accuracy. Furthermore, fixing various types of magnet blocks is cumbersome, and the machines are not very versatile or efficient.

Method used

A neodymium iron boron magnet multi-wire cutting machine was designed, comprising a placement platform, a fixing mechanism, a lifting mechanism, a cutting mechanism, a spraying mechanism, and a collection mechanism. The magnet tray is fixed by the fixing mechanism on the placement platform, the height is adjusted by the lifting mechanism, the cutting mechanism performs cutting, the spraying mechanism cools down the magnet, and the collection mechanism collects the waste material, ensuring the stability and efficiency of the cutting process.

Benefits of technology

It achieves efficient and precise cutting of magnet blocks, improves cutting accuracy and applicability, simplifies the operation process, and ensures the stability and safety of the cutting process.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a neodymium iron boron magnet multi-wire cutting machine which comprises an operation cabinet, an object placing platform used for placing a magnet tray is arranged in the operation cabinet, a fixing mechanism used for fixing the magnet tray is arranged on the object placing platform, and a lifting mechanism used for driving the object placing platform to ascend and descend is arranged at the bottom of the object placing platform. A cutting mechanism used for cutting a magnet block is arranged above the storage platform, spraying mechanisms used for spraying water to the surface of the magnet block in the cutting process are arranged on the two sides of the cutting mechanism, and a collecting mechanism used for collecting water and metal wires in the cutting process is arranged below the storage platform. A user fixes magnet blocks of different models on magnet trays of different sizes and weights, the magnet trays are fixedly placed through the fixing mechanism on the object placing platform, flexible adjustment can be carried out according to the magnet trays of different sizes and weights, absolute stability of the magnet trays in the cutting process is ensured, and therefore the cutting precision is improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to neodymium iron boron magnet processing equipment technical field, specifically relates to a kind of neodymium iron boron magnet multi-wire cutting machine. BACKGROUND

[0002] Neodymium iron boron, also known as magnetic steel, is the latest achievement of rare earth permanent magnet material development, and is called "magnetic king" due to its excellent magnetic properties, and has been widely used in modern industry and electronic technology. Using wire cutting technology to cut neodymium iron boron material is one of the common processing methods for sintered neodymium iron boron at present, and the multi-wire cutting machine is a processing equipment with high cutting precision, and its working principle is: through the high-speed reciprocating motion of the steel wire rope driven by the wire running mechanism, the neodymium iron boron in contact with it is cut.

[0003] At present, when the existing cutting machine cuts the magnet block, the magnet block is easy to shake and deviate, which reduces the precision of the cut magnet, and seriously may cause damage to the magnet, and the adjustment after fixing is more troublesome, and it is more cumbersome to cut and fix the magnets of various models, and the applicability is relatively low, and the cutting efficiency is low. UTILITY MODEL CONTENTS

[0004] In view of the deficiencies of the prior art, the utility model provides a kind of neodymium iron boron magnet multi-wire cutting machine, user fixes different model magnet block on different size and weight magnet tray, places magnet tray by the fixed mechanism on the article placing platform, can be flexibly adjusted according to different size and weight magnet tray, ensure the absolute stability of magnet tray in cutting process, to solve the problem that it is more cumbersome to cut and fix the magnets of various models, the applicability is relatively low, and the cutting efficiency is low.

[0005] To achieve the above purpose, the utility model is realized by the following technical scheme: a kind of neodymium iron boron magnet multi-wire cutting machine, including operation cabinet, operation cabinet is internally provided with the article placing platform for placing magnet tray, the fixed mechanism for fixing magnet tray is provided on the article placing platform, the lifting mechanism for driving article placing platform to lift is provided on the bottom of article placing platform, the cutting mechanism for cutting magnet block is provided above article placing platform, the spraying mechanism for spraying water on the surface of magnet block during cutting is provided on the both sides of cutting mechanism, the collecting mechanism for collecting water and metal wire during cutting is provided below article placing platform.

[0006] Preferably, the fixing mechanism comprises a fixing plate arranged inside the placing platform, a first movable plate and a second movable plate arranged oppositely on the outside of the placing platform, the bottom of the first movable plate and the second movable plate are provided with sliding blocks, the placing platform is provided with sliding grooves matched with the sliding blocks, the bottom of the first movable plate and the second movable plate are connected with the threaded rod through the sliding blocks, and the fixing plate, the first movable plate and the second movable plate enclose a placing groove for fixing the magnet tray.

[0007] Preferably, one end of the threaded rod is rotationally connected with the inner wall of the sliding groove, and the other end of the threaded rod extends to the outside of the placing platform and is connected with a rotating hand wheel at the terminal end.

[0008] Preferably, the lifting mechanism comprises a first air cylinder arranged at the bottom of the placing platform, and the output end of the first air cylinder is connected with the bottom of the placing platform.

[0009] Preferably, the cutting mechanism comprises a second air cylinder arranged at the top of the operation cabinet, the output end of the second air cylinder is connected with a fixing frame, the fixing frame is provided with a first winding roller, a second winding roller and a third winding roller arranged according to an equilateral triangle, a plurality of equidistant steel wires are wound on the first winding roller, the second winding roller and the third winding roller, and one end of the fixing frame is provided with a driving motor for driving the first winding roller, the second winding roller and the third winding roller.

[0010] Preferably, the spraying mechanism comprises spraying pipelines arranged oppositely on both sides of the inside of the operation cabinet, the top of the operation cabinet is provided with a water storage tank, the spraying pipelines are communicated with the water storage tank, a plurality of equidistant spraying heads are arranged on the spraying pipelines, and all the spraying heads are directly aimed at the magnet blocks placed on the magnet tray.

[0011] Preferably, the collecting mechanism comprises a collecting frame arranged below the placing platform, one end of the collecting frame is communicated with a connecting pipeline, the other end of the connecting pipeline is communicated with the water storage tank, and a filter screen is arranged at the joint of the collecting frame and the connecting pipeline.

[0012] Preferably, the outside of the operation cabinet is provided with a control panel.

[0013] Compared with the prior art, the neodymium iron boron magnet multi-wire cutting machine has the following beneficial effects: different model magnet blocks are fixed on magnet trays of different sizes and weights, the magnet tray is fixed and placed through the fixing mechanism on the placing platform, the magnet tray can be flexibly adjusted according to different sizes and weights, the absolute stability of the magnet tray during cutting is ensured, and the cutting precision is improved.

[0014] Additional aspects and advantages of the present application will be given in the following description, and some will become apparent from the following description. BRIEF DESCRIPTION OF DRAWINGS

[0015] Figure 1 is a schematic view of the three-dimensional structure of a multi-wire cutting machine for neodymium iron boron magnets Figure 1 .

[0016] Figure 2 is a schematic view of the three-dimensional structure of a multi-wire cutting machine for neodymium iron boron magnets Figure 2 .

[0017] Figure 3 is a schematic view of the three-dimensional structure of a multi-wire cutting machine for neodymium iron boron magnets

[0018] Figure 4 is a sectional view of a multi-wire cutting machine for neodymium iron boron magnets

[0019] Figure 5 is a schematic view of the three-dimensional structure of a fixing mechanism of a multi-wire cutting machine for neodymium iron boron magnets

[0020] Figure 6 is a schematic view of the three-dimensional structure of a cutting mechanism of a multi-wire cutting machine for neodymium iron boron magnets

[0021] Figure 7 is a schematic view of the three-dimensional structure of a spraying mechanism of a multi-wire cutting machine for neodymium iron boron magnets

[0022] Figure 8 is a schematic view of the three-dimensional structure of a fixing mechanism of a multi-wire cutting machine for neodymium iron boron magnets

[0023] In the figure: 1, operating cabinet; 2, object placing platform; 3, fixing mechanism; 31, fixing plate; 32, first movable plate; 33, second movable plate; 34, threaded rod; 35, sliding block; 36, sliding groove; 37, rotating hand wheel; 4, lifting mechanism; 41, first air cylinder; 5, cutting mechanism; 51, second air cylinder; 52, fixing frame; 53, first wire winding roller; 54, second wire winding roller; 55, third wire winding roller; 56, steel wire rope; 57, driving motor; 6, spraying mechanism; 61, spraying pipeline; 62, water storage tank; 63, spraying head; 7, collecting mechanism; 71, collecting frame; 72, connecting pipeline; 73, filter screen; 8, control panel; 9, magnet tray; 10, magnet block. DETAILED DESCRIPTION

[0024] The embodiments of the present application will be described in detail below with reference to the drawings and examples. The following examples are used to illustrate the present application, but cannot be used to limit the scope of the present application. All other examples obtained by those skilled in the art without making creative efforts fall within the scope of the present application.

[0025] In combination Figure 1 , Figure 2、 Figure 3 and Figure 4 As shown in the figure, a neodymium iron boron magnet multi-wire cutting machine includes an operation cabinet 1, the inside of the operation cabinet 1 is provided with a placing platform 2 for placing a magnet tray 9, the placing platform 2 is provided with a fixing mechanism 3 for fixing the magnet tray 9, the bottom of the placing platform 2 is provided with a lifting mechanism 4 for driving the placing platform 2 to lift, the upper side of the placing platform 2 is provided with a cutting mechanism 5 for cutting a magnet block 10, the two sides of the cutting mechanism 5 are provided with a spraying mechanism 6 for spraying water on the surface of the magnet block 10 during cutting, and the lower side of the placing platform 2 is provided with a collecting mechanism 7 for collecting water and metal wires during cutting.

[0026] The neodymium iron boron magnet multi-wire cutting machine disclosed by the utility model can efficiently and accurately complete the cutting operation of magnet materials. The machine mainly comprises an operation cabinet 1 which serves as the control center and shell of the whole device. The operation cabinet 1 not only provides an operation interface but also ensures the safe operation and protection of the internal mechanical components. An operation platform 2 for placing a magnet tray 9 is arranged inside the operation cabinet 1. The operation platform 2 is made of high-strength and corrosion-resistant materials to ensure stability and durability when bearing the magnet tray 9 for a long time.

[0027] In order to fix the magnet tray 9, a fixing mechanism 3 is specially arranged on the operation platform 2. The fixing mechanism 3 comprises adjustable clamping devices or magnetic adsorption devices which can be flexibly adjusted according to magnet trays 9 of different sizes and weights to ensure the absolute stability of the magnet tray 9 during cutting and thus improve the cutting accuracy.

[0028] A lifting mechanism 4 is installed at the bottom of the operation platform 2. The lifting mechanism 4 adopts an electric or hydraulic drive mode and can accurately control the up-and-down movement of the operation platform 2 to adapt to cutting requirements of different heights. This not only improves the flexibility of the cutting operation but also helps the operator easily adjust the position of the magnet tray 9 for multi-level cutting.

[0029] The upper side of the operation platform 2 is the location of a cutting mechanism 5. The cutting mechanism 5 adopts advanced multi-wire cutting technology and can quickly and efficiently cut a magnet block 10 through the simultaneous action of multiple thin wires. The material, tension and cutting speed of the cutting wire can be adjusted according to actual requirements to meet the cutting requirements of magnets of different specifications and materials.

[0030] During cutting, a spraying mechanism 6 is specially arranged on the two sides of the cutting mechanism 5 to effectively cool down and reduce the generation of cutting dust. The spraying mechanism 6 can continuously spray an appropriate amount of water mist to the cutting area, which can not only keep the cutting wire moist but also effectively suppress sparks and dust generated during cutting to protect the cutting mechanism and the operator from damage.

[0031] Considering the large amount of water and metal fragments generated during the cutting process, a collection mechanism 7 is specially arranged below the storage platform 2. The collection mechanism 7 adopts a large-capacity and easy-to-clean design, which can effectively collect all waste generated during the cutting process, ensuring the cleanliness and safety of the working environment. At the same time, the collection mechanism 7 also has an automatic drainage function, which can regularly drain the collected moisture to avoid water accumulation from corroding the equipment.

[0032] This Nd-Fe-B magnet multi-wire cutting machine realizes efficient, precise and safe magnet cutting operation through the design of various components, providing strong technical support for the processing of magnet materials.

[0033] As shown in Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 8 , the fixing mechanism 3 includes a fixing plate 31 arranged inside the storage platform 2, a first movable plate 32 arranged outside the storage platform 2, and a second movable plate 33 arranged opposite to the first movable plate 32. The bottom of the first movable plate 32 and the second movable plate 33 is provided with a sliding block 35, and the storage platform 2 is provided with a sliding groove 36 matched with the sliding block 35. The bottom of the first movable plate 32 and the second movable plate 33 is connected with a threaded rod 34 through the sliding block 35. The fixing plate 31, the first movable plate 32 and the second movable plate 33 form a placing groove for fixing and placing the magnet tray 9.

[0034] As shown in Figure 1 , Figure 2 , Figure 5 and Figure 8 , one end of the threaded rod 34 is rotatably connected with the inner wall of the sliding groove 36, and the other end of the threaded rod 34 extends to the outside of the storage platform 2 and is connected with a rotating hand wheel 37 at the end.

[0035] Specifically, the fixing mechanism 3 not only considers the convenience of operation, but also takes into account the firmness of the fixing. The fixing mechanism 3 mainly includes a fixing plate 31, a first movable plate 32, a second movable plate 33, a sliding block 35, a sliding groove 36, a threaded rod 34 and a rotating hand wheel 37. These components work together to form a flexible and reliable fixing system.

[0036] The fixed plate 31 is arranged at the inner side of the storage platform 2 as the base support of the fixing mechanism 3. When the fixed plate 31 cooperates with the first movable plate 32 and the second movable plate 33, a tight and stable placing groove for fixing the magnet tray 9 can be formed. The first movable plate 32 and the second movable plate 33 are respectively arranged at the outer side of the storage platform 2 and oppositely arranged at both sides. The design of the movable plates allows them to be flexibly adjusted according to the size of the magnet tray 9, so as to ensure that the magnet tray 9 can be clamped in the placing groove. In order to realize this function, the bottom of each of the first movable plate 32 and the second movable plate 33 is provided with a sliding block 35.

[0037] The sliding block 35 is matched with a sliding groove 36 arranged on the storage platform 2. The design of the sliding groove 36 not only ensures that the sliding block 35 can move smoothly, but also limits the movement range of the movable plates to prevent them from deviating from the predetermined track. This not only improves the stability of the fixing mechanism 3, but also makes the operation more convenient.

[0038] One end of the threaded rod 34 is rotationally connected with the inner wall of the sliding groove 36, and the other end extends to the outer side of the storage platform 2 and is connected with a rotating handle 37. By rotating the rotating handle 37, the threaded rod 34 can be driven to rotate in the sliding groove 36. Since the threaded rod 34 and the sliding block 35 are connected in a threaded manner, when the threaded rod 34 rotates, the sliding block 35 will move along the axis direction of the threaded rod 34. This allows the first movable plate 32 and the second movable plate 33 to be accurately adjusted according to the size of the magnet tray 9.

[0039] When it is necessary to fix the magnet tray 9, the operator only needs to place the magnet tray 9 in the placing groove, and then rotate the rotating handle 37 to move the first movable plate 32 and the second movable plate 33 towards the fixed plate 31 until they tightly clamp the magnet tray 9. Due to the self-locking property of the threaded rod 34, after adjustment, the fixing mechanism 3 can maintain a stable clamping force to ensure that the magnet tray 9 does not move or shake during the cutting process.

[0040] In combination with the drawings shown in Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 , the lifting mechanism 4 includes a first air cylinder 41 arranged at the bottom of the storage platform 2, and the output end of the first air cylinder 41 is connected with the bottom of the storage platform 2.

[0041] Specifically, the design of the lifting mechanism 4 is directly related to the lifting stability and the convenience of operation of the magnet tray 9. The lifting mechanism 4 mainly includes a first cylinder 41 arranged at the bottom of the storage platform 2. The first cylinder 41 drives the storage platform 2 to move up and down. The output end of the first cylinder 41 is connected to the bottom of the storage platform 2 through a firm connecting piece. This ensures that the driving force of the first cylinder 41 can be directly and stably transmitted to the storage platform 2, avoiding the shaking or deflection that may occur during the lifting process.

[0042] In actual operation, when the height of the magnet tray 9 needs to be adjusted, the operator only needs to input the corresponding instruction through the control panel 8, and the lifting mechanism 4 will start immediately. The first cylinder 41 rapidly and smoothly drives the storage platform 2 to rise or fall under the drive of the gas pressure control system until the preset height position is reached. This not only simplifies the operation process, but also greatly improves the efficiency and safety of the cutting operation.

[0043] In combination with Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 6 , the cutting mechanism 5 includes a second cylinder 51 arranged at the top of the operation cabinet 1. The output end of the second cylinder 51 is connected to a fixed frame 52. The fixed frame 52 is installed with a first winding roller 53, a second winding roller 54, and a third winding roller 55 according to the layout of an equilateral triangle. A plurality of equidistant steel wires 56 are wound on the first winding roller 53, the second winding roller 54, and the third winding roller 55. One end of the fixed frame 52 is installed with a driving motor 57 for driving the first winding roller 53, the second winding roller 54, and the third winding roller 55.

[0044] Specifically, the cutting mechanism 5 is directly related to the efficiency and precision of the cutting operation. The cutting mechanism 5 is arranged at the top of the operation cabinet 1, fully utilizing the space layout, ensuring the stability and safety of the entire cutting process. Its core components include the second cylinder 51, the fixed frame 52, the first winding roller 53, the second winding roller 54, the third winding roller 55, and the driving motor 57 for driving these rollers.

[0045] The output end of the second cylinder 51 is connected to the fixed frame 52. The second cylinder 51 can drive the fixed frame 52 and the winding rollers on it to move up and down, thereby realizing the cutting operation of the magnet block 10. This not only improves the flexibility of cutting, but also ensures that a stable cutting force can be maintained during the cutting process.

[0046] The fixed frame 52 is a support structure of the cutting mechanism 5, which is made of high-strength and corrosion-resistant materials to ensure stability and durability under long-term cutting force and vibration. The design of the fixed frame 52 also fully considers the layout and installation requirements of the winding rollers, ensuring that they can be installed according to the layout of the equilateral triangle.

[0047] The first winding roller 53, the second winding roller 54, and the third winding roller 55 are key components in the cutting mechanism 5. They are installed on the fixed frame 52 according to the layout of the equilateral triangle, not only ensuring the uniform distribution of the cutting wire, but also improving the precision and stability of the cutting operation. Each winding roller is wound with several equidistant steel wires 56, which serve as cutting wires and can act simultaneously under the drive of the drive motor to achieve fast and efficient cutting of the magnet block 10.

[0048] The drive motor 57 is the power source of the cutting mechanism 5, installed at one end of the fixed frame 52, and connected to the first winding roller 53, the second winding roller 54, and the third winding roller 55 through a transmission device. Under the drive of the drive motor 57, the winding roller can rotate, thereby driving the steel wire 56 to perform the cutting operation. The speed and power of the drive motor 57 can be adjusted according to the cutting requirements to ensure the stability and efficiency of the cutting process.

[0049] In actual operation, when the magnet block 10 needs to be cut, the operator only needs to input the corresponding instruction through the control panel, and the cutting mechanism 5 will start immediately. The second cylinder 51 pushes the fixed frame 52 and the winding rollers on it to descend, so that the steel wire 56 comes into contact with the magnet block 10. Then, the drive motor 57 starts to work, driving the winding roller to rotate, and the steel wire 56 performs the cutting operation on the surface of the magnet block 10. After cutting is completed, the second cylinder 51 is started again to push the fixed frame 52 to rise, so that the steel wire 56 is separated from the magnet block 10. Not only simplifies the operation process, but also greatly improves the efficiency and safety of the cutting operation.

[0050] In combination with Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 7 , the spraying mechanism 6 includes spraying pipelines 61 arranged opposite on both sides inside the operation cabinet 1, and a water storage tank 62 is arranged on the top of the operation cabinet 1. The spraying pipelines 61 are in communication with the water storage tank 62, and a plurality of equidistant spraying heads 63 are arranged on the spraying pipelines 61, all of which are directly aimed at the magnet block 10 placed on the magnet tray 9.

[0051] Specifically, the spraying mechanism 6 not only effectively cools the heat generated during cutting, but also reduces dust generated during cutting, protecting the cutting equipment and the working environment. The spraying mechanism 6 is mainly composed of key components such as spraying pipes 61, water storage tanks 62, and spraying heads 63. These components work together to ensure that the appropriate amount of water mist can be sprayed in time and uniformly when cutting the magnet block 10.

[0052] The spraying pipes 61 are arranged on both sides of the operation cabinet 1, which not only ensures that the water mist can fully cover the cutting area of the magnet block 10, but also avoids direct spraying of water mist onto the cutting mechanism 5 or other sensitive components, thereby protecting the normal operation of the equipment. The spraying pipes 61 are made of corrosion-resistant and high-strength materials to ensure good sealing and durability during long-term use.

[0053] The water storage tank 62 is located at the top of the operation cabinet 1 and serves as the water source for the spraying mechanism 6. It has a large capacity design to store enough water to meet the needs of long-time cutting operations. The water storage tank 62 is also equipped with a water level indicator and an automatic water replenishment device. When the water level is below the preset value, the automatic water replenishment device will start to draw water from an external water source to replenish the water storage tank 62, thereby ensuring the continuous operation of the spraying mechanism 6.

[0054] The spraying heads 63 are evenly distributed on the spraying pipes 61 to ensure that the water mist can be uniformly sprayed onto the surface of the magnet block 10 during cutting. The spraying heads 63 are designed with small nozzles that can produce fine water mist particles. These particles can quickly evaporate, taking away the heat generated during cutting and suppressing dust flying. All spraying heads 63 are directly aimed at the magnet block 10 placed on the magnet tray 9, ensuring precise spraying of water mist.

[0055] In actual operation, when the cutting mechanism 5 starts to work, the spraying mechanism 6 will also start simultaneously. The water in the water storage tank 62 is transported through the pipes to the spraying pipes 61, and then sprayed in the form of fine water mist particles onto the surface of the magnet block 10 through the spraying heads 63. These water mist particles not only effectively cool the cutting area, but also reduce dust generated during cutting, protecting the cutting equipment and the working environment. At the same time, due to the spraying of the spraying heads 63, it is ensured that the water mist will not be wasted and will not cause unnecessary damage to the equipment.

[0056] In combination with Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 7As shown, the collection mechanism 7 includes a collection box 71 arranged below the placement platform 2, one end of the collection box 71 is communicated with a connecting pipeline 72, the other end of the connecting pipeline 72 is communicated with the water storage tank 62, and a filter screen 73 is arranged at the interface between the collection box 71 and the connecting pipeline 72.

[0057] Specifically, the collection mechanism 7 is responsible for collecting the waste water, debris and other impurities generated during the cutting process, and through a series of ingeniously designed components, these impurities are filtered and reintroduced into the water storage tank 62, realizing the recycling of resources. The collection mechanism 7 mainly consists of the collection box 71, the connecting pipeline 72 and the filter screen 73 and other key components. These components work together to ensure that the waste water, debris and other impurities generated during the cutting process can be effectively collected, filtered and reused.

[0058] The collection box 71, as the main part of the collection mechanism 7, is arranged below the placement platform 2. Not only does it ensure that the waste water, debris and other impurities generated during the cutting process can fall directly into the collection box 71, but it also avoids the pollution of these impurities to the equipment or working environment. The collection box 71 adopts a large-capacity design, which can store a large amount of waste water, debris and other impurities, thereby reducing the frequency of frequent cleaning and improving work efficiency.

[0059] The connecting pipeline 72, as a bridge between the collection box 71 and the water storage tank 62, realizes the recycling of waste water. One end of the connecting pipeline 72 is communicated with the bottom of the collection box 71, and the other end is connected with the top or side of the water storage tank 62. It ensures that the waste water can flow into the water storage tank 62 naturally under the action of gravity without the need for additional power equipment. At the same time, the connecting pipeline 72 is also made of corrosion-resistant and high-strength materials to ensure that it can maintain good sealing performance and durability during long-term use.

[0060] The filter screen 73 is one of the key components in the collection mechanism 7, which is arranged at the interface between the collection box 71 and the connecting pipeline 72. The main function of the filter screen 73 is to filter out the debris, powder and other impurities in the waste water, preventing these impurities from entering the water storage tank 62 and polluting the water quality. The filter screen 73 is made of high-density materials, which can effectively intercept the impurities in the waste water. At the same time, the filter screen 73 is easy to disassemble and clean, which is convenient for the operator to clean and replace when necessary.

[0061] In actual operation, when the cutting mechanism 5 starts to work, the spraying mechanism 6 will also start simultaneously, and the water mist sprayed out will mix with the heat and dust generated during the cutting process to form waste water falling into the collection box 71. After the waste water is filtered by the filter screen 73, the impurities in it are removed, and then it flows into the water storage tank 62 through the connecting pipeline 72. In the water storage tank 62, the waste water can be mixed with newly added water and then be utilized by the spraying mechanism 6, realizing the recycling of resources.

[0062] In addition, the collection mechanism 7 can also be equipped with water level indicators, automatic drainage devices and other auxiliary components to achieve accurate control and timely discharge of wastewater collection. The addition of these auxiliary components further improves the intelligence and automation level of the collection mechanism 7, making it easier for operators to monitor and manage the wastewater collection process.

[0063] In combination Figure 1 , Figure 2 , Figure 3 and Figure 4 It is shown that the outer side of the operation cabinet 1 is provided with a control panel 8.

[0064] Specifically, the control panel 8 designed on the outer side of the operation cabinet 1 not only provides an intuitive and convenient interface for the operator, but also realizes precise control and monitoring of the entire cutting process. The control panel 8 integrates multiple control buttons and knobs, which are used to start, stop and adjust the key components such as cutting mechanism 5, spraying mechanism 6, collection mechanism 7, etc. These buttons and knobs are designed with eye-catching labels and anti-slip designs, so that the operator can quickly identify and accurately operate. For example, through the buttons on the control panel 8, the operator can easily start or stop the cutting operation of the cutting mechanism 5; through the knob, the spraying amount and spraying speed of the spraying mechanism 6 can be accurately adjusted.

[0065] In addition to the control buttons and knobs, the control panel 8 is also equipped with a high-definition display screen. This display screen can display the progress of the cutting operation, the state of the equipment, alarm information and other key information in real time, so that the operator can always grasp the overall situation of the cutting process.

[0066] In actual operation, the control panel 8 provides an intuitive and convenient interface for the operator. Through simple operation, the operator can easily achieve precise control and monitoring of the entire cutting process. At the same time, the intelligence and automation level of the control panel 8 greatly improves work efficiency and safety, reduces operation difficulty and cost.

[0067] The preferred specific embodiments of the present application, but the scope of protection of the present application is not limited to this, any skilled in the art of the technical personnel in the technical range disclosed by the present application, according to the technical scheme of the present application and the utility model concept of the utility model are equivalent to replace or change, should be covered within the scope of protection of the present application.

Claims

1. A multi-wire saw for neodymium-iron-boron magnets, comprising an operating cabinet (1) inside which a placement platform (2) for placing a magnet tray (9) is arranged, characterized in that, The storage platform (2) is provided with a fixing mechanism (3) for fixing the magnet tray (9), the bottom of the storage platform (2) is provided with a lifting mechanism (4) for driving the storage platform (2) to lift, the top of the storage platform (2) is provided with a cutting mechanism (5) for cutting the magnet block (10), the two sides of the cutting mechanism (5) are provided with a spraying mechanism (6) for spraying water on the surface of the magnet block (10) during cutting, and the bottom of the storage platform (2) is provided with a collecting mechanism (7) for collecting water and metal wires during cutting. The fixing mechanism (3) comprises a fixing plate (31) arranged on the inner side of the storage platform (2), a first movable plate (32) arranged on the outer side of the storage platform (2), and a second movable plate (33) arranged opposite to the first movable plate (32), the bottom of the first movable plate (32) and the bottom of the second movable plate (33) are provided with sliding blocks (35), the storage platform (2) is provided with sliding grooves (36) matched with the sliding blocks (35), the bottom of the first movable plate (32) and the bottom of the second movable plate (33) are connected with the threaded rod (34) through the sliding blocks (35), and the fixing plate (31), the first movable plate (32) and the second movable plate (33) form a placing groove for fixing and placing the magnet tray (9). The cutting mechanism (5) comprises a second air cylinder (51) arranged on the top of the operation cabinet (1), a fixed frame (52) connected with the output end of the second air cylinder (51), a first winding roller (53), a second winding roller (54) and a third winding roller (55) installed on the fixed frame (52) in the layout of an equilateral triangle, a plurality of equidistant steel wires (56) wound on the first winding roller (53), the second winding roller (54) and the third winding roller (55), and a driving motor (57) installed on one end of the fixed frame (52) for driving the first winding roller (53), the second winding roller (54) and the third winding roller (55).

2. The multiple-wire saw for neodymium-iron-boron magnets according to claim 1, characterized in that One end of the threaded rod (34) is rotatably connected with the inner wall of the sliding groove (36), and the other end of the threaded rod (34) extends to the outside of the storage platform (2) and is connected with a rotating hand wheel (37) at the tail end.

3. The multiple-wire saw for neodymium-iron-boron magnets according to claim 1, characterized in that The lifting mechanism (4) comprises a first air cylinder (41) arranged on the bottom of the storage platform (2), and the output end of the first air cylinder (41) is connected with the bottom of the storage platform (2).

4. The multiple-wire saw for neodymium-iron-boron magnets according to claim 1, characterized in that The spraying mechanism (6) comprises spraying pipelines (61) arranged opposite to the two sides of the inside of the operation cabinet (1), a water storage tank (62) arranged on the top of the operation cabinet (1), the spraying pipelines (61) being communicated with the water storage tank (62), a plurality of equidistant spraying heads (63) arranged on the spraying pipelines (61), and all the spraying heads (63) being directly aimed at the magnet blocks (10) placed on the magnet tray (9).

5. The multiple-wire saw for neodymium-iron-boron magnets according to claim 1, wherein The collecting mechanism (7) comprises a collecting frame (71) arranged below the storage platform (2), a connecting pipeline (72) communicated with one end of the collecting frame (71), the other end of the connecting pipeline (72) being communicated with the water storage tank (62), and a filter screen (73) made of high-density material arranged at the interface between the collecting frame (71) and the connecting pipeline (72).

6. The multiple-wire saw for neodymium-iron-boron magnets according to any one of claims 1 to 5, characterized in that The operation cabinet (1) is provided with a control panel (8) on the outer side.