Water-proof iron core cutting machine
By designing misaligned and separated slide rail components and cooling components in the iron core cutting machine, the damage caused by coolant entering the slide rail components is solved, and the water-inlet function of the cutting machine is anti-water and efficient cutting is realized.
Patent Information
- Application Number
- CN202421682041.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-16
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-07-16
AI Technical Summary
During cutting processing, traditional iron core cutting machines cause damage or affect cutting quality due to coolant entering the slide rail assembly.
A water-proof iron core cutting machine is designed to ensure that the cooling assembly and the slide rail assembly are misaligned and separated by dislocation and separation on the base to prevent coolant from entering the slide rail assembly.
Effectively prevent coolant from entering the slide rail assembly, avoid damage and ensure cutting quality, and achieve flexible and accurate cutting processing.
Smart Images

Figure CN223172555U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of cutting machines, and more specifically, to a core cutting machine that prevents water ingress. Background Art
[0002] As one of the commonly used industrial equipment, cutting machines play an irreplaceable role in many sub - fields. Among them, in the traditional core cutting machine for cutting cores, during the cutting process, the cutting machine needs to move repeatedly to complete the cutting work. Since coolant is used to assist the processing at the same time, it is very easy for the liquid of the coolant to enter the structure of the cutting machine for moving positions, causing damage or affecting the cutting quality of the cores.
[0003] In view of the above problems, improvement is urgently needed. Summary of the Utility Model
[0004] The purpose of the present application is to provide a core cutting machine that prevents water ingress, which has the advantage of preventing damage caused by coolant entering the slide rail assembly due to the slide rail assembly and the cooling assembly being in a vertically adjacent position.
[0005] In a first aspect, the present application provides a core cutting machine that prevents water ingress, and the technical solution is as follows:
[0006] It includes a base, on the upper surface of the base, a first working area and a second working area are arranged horizontally. A slide rail assembly is arranged in the first working area, and a positioning assembly is arranged in the second working area;
[0007] On one side of the slide rail assembly close to the second working area, a cutting assembly and a cooling assembly extend towards the second working area, and both the cutting assembly and the cooling assembly are located above the positioning assembly.
[0008] The anti-water-inlet iron core cutting machine provided by the present application includes a base. The base serves as a support structure for other components and enables other components to play their respective roles. Specifically, in order to reasonably arrange the cutting function and the moving function, a first working area and a second working area are horizontally arranged on the upper surface of the base. A slide rail assembly is arranged in the first working area, which is used to drive the cutting assembly to move in position to meet the requirements of cutting position adjustment. A positioning assembly is arranged in the second working area, which is used to position and place the iron core for the cutting assembly to perform precise cutting processing. On the side of the slide rail assembly close to the second working area, a cutting assembly and a cooling assembly extend towards the second working area. Both the cutting assembly and the cooling assembly are located above the positioning assembly. Through the setting of the above structure, the cutting assembly, the cooling assembly and the slide rail assembly form a misaligned and separated position state. The cutting assembly and the cooling assembly perform precise cutting and cooling on the iron core placed on the positioning assembly in the second working area. The slide rail assembly drives the cutting assembly and the cooling assembly to move in position in the first working area. While cooperating with each other, interference is also avoided, and the liquid of the cooling assembly is prevented from entering the slide rail assembly, thereby preventing damage caused by the coolant entering the slide rail assembly.
[0009] Further, in the present application, the slide rail assembly includes a first slide rail arranged parallel to the second working area and a second slide rail arranged perpendicular to the second working area. On one side of the second slide rail, a cutting assembly and a cooling assembly extend towards the second working area.
[0010] The anti-water-inlet iron core cutting machine provided by the present application, the slide rail assembly includes a first slide rail arranged parallel to the second working area and a second slide rail arranged perpendicular to the second working area. On one side of the second slide rail, a cutting assembly and a cooling assembly extend towards the second working area. Among them, the first slide rail is used to provide the position adjustment function in the horizontal direction, and the second slide rail is used to provide the position adjustment function in the vertical direction, so that the cutting assembly and the cooling assembly can perform flexible mobile cutting processing according to the specific position of the iron core. While realizing flexible processing, damage caused by the coolant entering the slide rail assembly is prevented.
[0011] Further, in the present application, the cooling assembly is misaligned with the second slide rail and there is a gap.
[0012] The anti-water-inlet iron core cutting machine provided by the present application, the cooling assembly is misaligned with the second slide rail and there is a gap, which is used to ensure that there is sufficient distance between the cooling assembly and the second slide rail to prevent the liquid of the cooling assembly from splashing into the second slide rail. On this basis, the cooling assembly is farther away from the first slide rail, so that the liquid of the cooling assembly is also prevented from splashing into the first slide rail at the same time. Thus, the stable and safe functions of the slide rail assembly and the cooling assembly are realized, and damage caused by the coolant entering the slide rail assembly is prevented.
[0013] Further, in the present application, the cutting assembly includes a motor disposed on the second slide rail and a blade connected to the output end of the motor. A cooling assembly is disposed on one side of the blade. Both the blade and the cooling assembly are disposed away from the first working area and above the positioning assembly.
[0014] The provided iron core cutting machine with water-proof function, the cutting assembly includes a motor disposed on the second slide rail and a blade connected to the output end of the motor. A cooling assembly is disposed on one side of the blade. Both the blade and the cooling assembly are disposed away from the first working area and above the positioning assembly. Among them, the blade is used for cutting the iron core, and the cooling assembly is used to cool and protect the blade during cutting. Therefore, the distance between the cooling assembly and the blade will be very close, and the distance between the blade and the slide rail assembly determines the distance between the cooling assembly and the slide rail assembly. Through the above structure setting, the blade is disposed away from the first working area and above the positioning assembly, and the cooling assembly is also disposed away from the first working area and above the positioning assembly. Thus, it is ensured that the blade for cutting and the cooling assembly for cooling are both away from the slide rail assembly in the first working area, and at the same time, it is convenient to accurately process the iron core placed on the positioning assembly.
[0015] Further, in the present application, a tray is slidably disposed on the second slide rail, and the tray is connected to the motor.
[0016] Further, in the present application, a plurality of mounting grooves are formed in the tray in the thickness direction, and the motor is connected to the corresponding mounting groove by bolts.
[0017] Further, in the present application, a baffle extends from the tray toward the blade, and the baffle is located obliquely above the blade.
[0018] Further, in the present application, the structure of the baffle is in the shape of an arc-shaped trough plate.
[0019] Further, in the present application, a collection box with an open upper end is provided in the second working area, the positioning assembly is located in the collection box, and a leakage hole is provided at the bottom of the collection box.
[0020] Further, in the present application, a collector is provided at the bottom of the base in the second working area, and the collector is located below the leakage hole.
[0021] As can be seen from the above, a core cutting machine that prevents water ingress provided by the present application includes a base. The base serves as a support structure for other components and enables other components to play their respective roles. Specifically, in order to reasonably arrange and match the cutting function and the moving function, a first working area and a second working area are horizontally arranged on the upper surface of the base. A slide rail assembly is arranged in the first working area, which is used to drive the cutting assembly to move in position to meet the cutting position adjustment requirements. A positioning assembly is arranged in the second working area, which is used to position and place the core for the cutting assembly to perform precise cutting processing. On one side of the slide rail assembly close to the second working area, a cutting assembly and a cooling assembly extend towards the second working area. Both the cutting assembly and the cooling assembly are located above the positioning assembly. Through the arrangement of the above structure, the cutting assembly, the cooling assembly and the slide rail assembly form a misaligned and separated position state. The cutting assembly and the cooling assembly perform precise cutting and cooling on the core placed on the positioning assembly in the second working area. The slide rail assembly drives the cutting assembly and the cooling assembly to move in position in the first working area. While cooperating with each other, interference is also avoided, and the liquid of the cooling assembly is prevented from entering the slide rail assembly, thereby preventing damage caused by the coolant entering the slide rail assembly. The slide rail assembly includes a first slide rail arranged parallel to the second working area and a second slide rail arranged perpendicular to the second working area. On one side of the second slide rail, a cutting assembly and a cooling assembly extend towards the second working area. Among them, the first slide rail is used to provide the position adjustment function in the horizontal direction, and the second slide rail is used to provide the position adjustment function in the vertical direction, so that the cutting assembly and the cooling assembly can perform flexible mobile cutting processing according to the specific position of the core. While realizing flexible processing, damage caused by the coolant entering the slide rail assembly is prevented. The cooling assembly is misaligned with the second slide rail and has a gap, which is used to ensure that there is sufficient distance between the cooling assembly and the second slide rail to prevent the liquid of the cooling assembly from splashing into the second slide rail. On this basis, the cooling assembly is farther away from the first slide rail, thereby also preventing the liquid of the cooling assembly from splashing into the first slide rail. Thus, the stable and safe functions of the slide rail assembly and the cooling assembly are realized, and damage caused by the coolant entering the slide rail assembly is prevented. The cutting assembly includes a motor arranged on the second slide rail and a blade connected to the output end of the motor. A cooling assembly is arranged on one side of the blade. Both the blade and the cooling assembly are arranged away from the first working area and are located above the positioning assembly. Among them, the blade is used to cut the core, and the cooling assembly is used to cool and protect the blade during cutting processing. Therefore, the distance between the cooling assembly and the blade is very close, and the distance between the blade and the slide rail assembly determines the distance between the cooling assembly and the slide rail assembly. Through the arrangement of the above structure, the blade is arranged away from the first working area and is located above the positioning assembly, and the cooling assembly is also arranged away from the first working area and is located above the positioning assembly. Thus, it is ensured that the blade for cutting processing and the cooling assembly for cooling and temperature reduction are both away from the slide rail assembly in the first working area, and at the same time, it is convenient to perform precise processing on the core placed on the positioning assembly.
[0022] Other features and advantages of the present application will be described in the subsequent specification, and in part will be obvious from the specification, or will be understood by implementing the embodiments of the present application. The objectives and other advantages of the present application can be achieved and obtained through the structures specifically pointed out in the written specification and the accompanying drawings. Description of the Drawings
[0023] Figure 1 One of the structural schematic diagrams of an iron core cutting machine with water prevention provided for the present application.
[0024] Figure 2 Another structural schematic diagram of an iron core cutting machine with water prevention provided for the present application.
[0025] In the figure: 1, base; 101, first working area; 102, second working area; 2, slide rail assembly; 21, first slide rail; 22, second slide rail; 3, positioning assembly; 4, cutting assembly; 41, motor; 42, blade; 5, cooling assembly; 6, pallet; 61, installation groove; 7, baffle; 8, collection box; 81, leakage hole. Detailed Embodiments
[0026] Next, the technical solutions in the present application will be clearly and completely described in conjunction with the accompanying drawings in the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all of the embodiments. The components of the present application usually described and illustrated in the accompanying drawings here can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present application provided in the accompanying drawings is not intended to limit the scope of the present application to be protected, but only represents the selected embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative efforts fall within the scope of protection of the present application.
[0027] It should be noted that: similar reference numerals and letters denote similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings. At the same time, in the description of the present application, the terms "first", "second", etc. are only used for distinguishing descriptions and cannot be understood as indicating or implying relative importance.
[0028] Please refer to Figures 1 to 2As shown in the figure, the present application provides a core cutting machine that prevents water ingress, including a base 1. The upper surface of the base 1 is horizontally provided with a first working area 101 and a second working area 102. The first working area 101 is provided with a slide rail assembly 2, and the second working area 102 is provided with a positioning assembly 3. On the side of the slide rail assembly 2 close to the second working area 102, a cutting assembly 4 and a cooling assembly 5 are extended towards the second working area 102. Both the cutting assembly 4 and the cooling assembly 5 are located above the positioning assembly 3.
[0029] Specifically, as one of the commonly used industrial equipment, the cutting machine plays an irreplaceable role in many sub - fields. Among them, in the traditional core cutting machine for cutting cores, during the cutting process, the cutting machine needs to move repeatedly to complete the cutting work. Since coolant is used to assist the processing at the same time, it is very easy for the liquid of the coolant to enter the structure of the cutting machine for moving positions, causing damage or affecting the cutting quality of the core. Therefore, to solve the above problems, the core cutting machine that prevents water ingress provided by the present application includes a base 1. The base 1 serves as a support structure for other components and enables other components to play their respective roles. Specifically, in order to reasonably arrange and cooperate the cutting function and the moving function, the upper surface of the base 1 is horizontally provided with a first working area 101 and a second working area 102. The first working area 101 is provided with a slide rail assembly 2 for driving the cutting assembly 4 to move its position to meet the requirements of cutting position adjustment. The second working area 102 is provided with a positioning assembly 3 for positioning and placing the core for the cutting assembly 4 to perform precise cutting processing. On the side of the slide rail assembly 2 close to the second working area 102, a cutting assembly 4 and a cooling assembly 5 are extended towards the second working area 102. Both the cutting assembly 4 and the cooling assembly 5 are located above the positioning assembly 3. Through the setting of the above - mentioned structure, the cutting assembly 4, the cooling assembly 5 and the slide rail assembly 2 form a position state of dislocation and separation. With the structure of horizontal left - right dislocation separation, it is different from the conventional up - and - down close structure, preventing the coolant from entering the slide rail assembly 2. The cutting assembly 4 and the cooling assembly 5 perform precise cutting and cooling on the core placed on the positioning assembly 3 in the second working area 102. The slide rail assembly 2 drives the cutting assembly 4 and the cooling assembly 5 to move their positions in the first working area 101. While cooperating with each other, interference is also avoided, preventing the liquid of the cooling assembly 5 from entering the slide rail assembly 2, thereby preventing damage caused by the coolant entering the slide rail assembly 2 due to the up - and - down close position of the slide rail assembly 2 and the cooling assembly 5.
[0030] In some preferred embodiments, the slide rail assembly 2 includes a first slide rail 21 parallel to the second working area 102 and a second slide rail 22 perpendicular to the second working area 102. On one side of the second slide rail 22, a cutting assembly 4 and a cooling assembly 5 are extended towards the second working area 102.
[0031] Specifically, the slide rail assembly 2 includes a first slide rail 21 arranged parallel to the second working area 102 and a second slide rail 22 arranged perpendicular to the second working area 102. On one side of the second slide rail 22, a cutting assembly 4 and a cooling assembly 5 extend towards the second working area 102. Among them, the first slide rail 21 is used to provide a position adjustment function in the horizontal direction, and the second slide rail 22 is used to provide a position adjustment function in the vertical direction, enabling the cutting assembly 4 and the cooling assembly 5 to perform flexible mobile cutting processing according to the specific position of the iron core. While achieving flexible processing, it prevents damage caused by coolant entering the slide rail assembly 2.
[0032] In some preferred embodiments, the cooling assembly 5 is arranged offset from the second slide rail 22 with a gap therebetween.
[0033] Specifically, the cooling assembly 5 is arranged offset from the second slide rail 22 with a gap therebetween, which is used to ensure that there is sufficient distance between the cooling assembly 5 and the second slide rail 22, preventing the liquid of the cooling assembly 5 from splashing into the second slide rail 22. On this basis, the cooling assembly 5 is even farther away from the first slide rail 21, thereby also preventing the liquid of the cooling assembly 5 from splashing into the first slide rail 21. Thus, the respective functions of the slide rail assembly 2 and the cooling assembly 5 are stably and safely exerted, preventing damage caused by coolant entering the slide rail assembly 2.
[0034] In some preferred embodiments, the cutting assembly 4 includes a motor 41 arranged on the second slide rail 22 and a blade 42 connected to the output end of the motor 41. On one side of the blade 42, there is a cooling assembly 5. Both the blade 42 and the cooling assembly 5 are arranged away from the first working area 101 and are located above the positioning assembly 3.
[0035] Specifically, the cutting assembly 4 includes a motor 41 arranged on the second slide rail 22 and a blade 42 connected to the output end of the motor 41. On one side of the blade 42, there is a cooling assembly 5. Both the blade 42 and the cooling assembly 5 are arranged away from the first working area 101 and are located above the positioning assembly 3. Among them, the blade 42 is used to cut the iron core, and the cooling assembly 5 is used to cool and protect the blade 42 during cutting processing. Therefore, the distance between the cooling assembly 5 and the blade 42 is very close, and the distance between the blade 42 and the slide rail assembly 2 determines the distance between the cooling assembly 5 and the slide rail assembly 2. Through the above structural arrangement, the blade 42 is arranged away from the first working area 101 and is located above the positioning assembly 3, and the cooling assembly 5 is also arranged away from the first working area 101 and is located above the positioning assembly 3. Thus, it is ensured that the blade 42 for cutting processing and the cooling assembly 5 for cooling are both away from the slide rail assembly 2 of the first working area 101, and at the same time, it is convenient to precisely process the iron core placed on the positioning assembly 3.
[0036] In some preferred embodiments, a support plate 6 is slidably arranged on the second slide rail 22, and the support plate 6 is connected to the motor 41.
[0037] Specifically, in order to ensure that the cutting assembly 4 has sufficient stability during cutting, and to avoid excessive vibration caused by the movement of the slide rail assembly 2, in this embodiment, a support plate 6 is slidably arranged on the second slide rail 22, and the support plate 6 is connected to the motor 41. By arranging the support plate 6, during the movement of the slide rail assembly 2, the vibration brought by the overall structure is weakened, so that the motor 41 and the blade 42 can perform stable and accurate cutting on the iron core while moving.
[0038] In some preferred embodiments, the support plate 6 is provided with a plurality of mounting grooves 61 along the thickness direction, and the motor 41 is connected to the corresponding mounting grooves 61 by bolts.
[0039] Specifically, in order to facilitate the position adjustment of the motor 41, so that the cutting assembly 4 is located at a reasonable and accurate installation position, and to facilitate the cutting assembly 4 to accurately cut the iron core, in this embodiment, the support plate 6 is provided with a plurality of mounting grooves 61 along the thickness direction, and the motor 41 is connected to the corresponding mounting grooves 61 by bolts. Through the setting of the above structure, after the motor 41 is placed in the corresponding mounting groove 61, the bolts provided on the motor 41 are used to connect with the mounting groove 61, thus realizing the convenient and accurate installation of the motor 41, and facilitating the accurate cutting of the cutting assembly 4.
[0040] In some preferred embodiments, the support plate 6 extends towards the blade 42 to be provided with a baffle 7, and the baffle 7 is located obliquely above the blade 42.
[0041] Specifically, when the blade 42 cuts the iron core, the coolant reaching the blade 42 is easily splashed due to the rotation of the blade 42. In order to prevent the splashed coolant from entering the slide rail assembly 2, in this embodiment, the support plate 6 extends towards the blade 42 to be provided with a baffle 7, and the baffle 7 is located obliquely above the blade 42. Through the setting of the above structure, when the coolant reaching the blade 42 is splashed due to the rotation of the blade 42, the baffle 7 plays a role in blocking the splashed coolant, preventing the coolant from splashing to the slide rail assembly 2 and preventing damage caused by the coolant entering the slide rail assembly 2.
[0042] In some preferred embodiments, the structure of the baffle 7 is in the shape of an arc-shaped groove plate.
[0043] Specifically, in order to further block the coolant lifted by the blade 42 and prevent the coolant from entering the slide rail assembly 2, in this embodiment, the structure of the baffle 7 is in the shape of an arc-shaped groove plate. With the above structure, the arc-shaped groove plate-shaped baffle 7 can block the coolant on the outer side of the blade 42 in the axial direction and the outer side in the radial direction, thereby preventing the coolant splashed by the rotation of the blade 42 from entering the slide rail assembly 2 from multiple directions. This not only ensures the high-quality cutting and processing of the iron core by the cutting assembly 4, but also ensures the cooling and protection effect of the cooling assembly 5 on the cutting assembly 4, as well as the driving and moving effect of the slide rail assembly 2 on the cutting assembly 4.
[0044] In some preferred embodiments, a collection box 8 with an open upper end is provided in the second working area 102, the positioning assembly 3 is located inside the collection box 8, and a leakage hole 81 is provided at the bottom of the collection box 8.
[0045] Specifically, during the cutting process, the cooling assembly 5 will generate a lot of coolant, which will accumulate after reaching the cutting assembly 4. In order to timely discharge the used coolant and prevent it from affecting the normal operation of the cutting assembly 4, in this embodiment, a collection box 8 with an open upper end is provided in the second working area 102, the positioning assembly 3 is located inside the collection box 8, and a leakage hole 81 is provided at the bottom of the collection box 8. With the above structure, the collection box 8 can timely collect the used coolant, and the leakage hole 81 at the bottom of the collection box 8 can timely discharge the used coolant, reducing the chance of the used coolant contacting the blade 42 and preventing the phenomenon of affecting the cutting process due to the accumulation of coolant.
[0046] In some preferred embodiments, a collector is provided at the bottom of the base 1 in the second working area 102, and the collector is located below the leakage hole 81.
[0047] Specifically, in order to effectively collect the coolant discharged from the collection box 8 for easy cleaning, in this embodiment, a collector is provided at the bottom of the base 1 in the second working area 102, and the collector is located below the leakage hole 81. Thus, the coolant discharged from the leakage hole 81 of the collection box 8 can enter the collector, achieving convenient collection, and thus timely treating the used coolant to ensure the efficient and safe progress of the cutting process.
[0048] Through the above technical solutions, the water-proof core cutting machine provided by the present application includes a base 1. The base 1 serves as a support structure for other components and enables other components to play their respective roles. Specifically, in order to reasonably arrange and cooperate the cutting function and the moving function, a first working area 101 and a second working area 102 are arranged horizontally on the upper surface of the base 1. A slide rail assembly 2 is arranged in the first working area 101, which is used to drive the cutting assembly 4 to move in position to meet the requirements of cutting position adjustment. A positioning assembly 3 is arranged in the second working area 102, which is used to position and place the core for the cutting assembly 4 to perform precise cutting processing. On the side of the slide rail assembly 2 close to the second working area 102, a cutting assembly 4 and a cooling assembly 5 extend towards the second working area 102. Both the cutting assembly 4 and the cooling assembly 5 are located above the positioning assembly 3.With the above structure, the cutting component 4, the cooling component 5 and the slide rail component 2 form a misaligned and separated position state. The cutting component 4 and the cooling component 5 perform precise cutting and cooling on the iron core placed on the positioning component 3 in the second working area 102. The slide rail component 2 drives the cutting component 4 and the cooling component 5 to move in the first working area 101. While cooperating with each other, it also avoids interference and prevents the liquid of the cooling component 5 from entering the slide rail component 2, thereby preventing damage caused by the coolant entering the slide rail component 2. The slide rail component 2 includes a first slide rail 21 arranged parallel to the second working area 102 and a second slide rail 22 arranged perpendicular to the second working area 102. On one side of the second slide rail 22, the cutting component 4 and the cooling component 5 extend towards the second working area 102. Among them, the first slide rail 21 is used to provide the position adjustment function in the horizontal direction, and the second slide rail 22 is used to provide the position adjustment function in the vertical direction, so that the cutting component 4 and the cooling component 5 can perform flexible mobile cutting processing according to the specific position of the iron core. While realizing flexible processing, it prevents damage caused by the coolant entering the slide rail component 2. The cooling component 5 is misaligned with the second slide rail 22 and has a gap, which is used to ensure that there is sufficient distance between the cooling component 5 and the second slide rail 22 to prevent the liquid of the cooling component 5 from splashing into the second slide rail 22. On this basis, the cooling component 5 is farther away from the first slide rail 21, thereby also preventing the liquid of the cooling component 5 from splashing into the first slide rail 21. Thus, the respective functions of the slide rail component 2 and the cooling component 5 are stably and safely exerted, thereby preventing damage caused by the coolant entering the slide rail component 2. The cutting component 4 includes a motor 41 arranged on the second slide rail 22 and a blade 42 connected to the output end of the motor 41. A cooling component 5 is arranged on one side of the blade 42. Both the blade 42 and the cooling component 5 are arranged away from the first working area 101 and above the positioning component 3. Among them, the blade 42 is used to cut the iron core, and the cooling component 5 is used to cool and protect the blade 42 during cutting processing. Therefore, the distance between the cooling component 5 and the blade 42 is very close, and the distance between the blade 42 and the slide rail component 2 determines the distance between the cooling component 5 and the slide rail component 2. With the above structure, the blade 42 is arranged away from the first working area 101 and above the positioning component 3, and the cooling component 5 is also away from the first working area 101 and above the positioning component 3. Thus, it is ensured that the blade 42 for cutting processing and the cooling component 5 for cooling are both away from the slide rail component 2 in the first working area 101, and at the same time, it is convenient to perform precise processing on the iron core placed on the positioning component 3.
[0049] The above are only the embodiments of the present application and are not used to limit the protection scope of the present application. For those skilled in the art, various changes and modifications can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A core cutting machine that prevents water ingress, characterized in that, It includes a base (1). On the upper surface of the base (1), a first working area (101) and a second working area (102) are arranged horizontally. A slide rail assembly (2) is arranged in the first working area (101), and a positioning assembly (3) is arranged in the second working area (102). On one side of the slide rail assembly (2) close to the second working area (102), a cutting assembly (4) and a cooling assembly (5) extend towards the second working area (102). Both the cutting assembly (4) and the cooling assembly (5) are located above the positioning assembly (3).
2. The water-proof iron core cutting machine according to claim 1, wherein The slide rail assembly (2) includes a first slide rail (21) arranged parallel to the second working area (102) and a second slide rail (22) arranged perpendicular to the second working area (102). On one side of the second slide rail (22), a cutting assembly (4) and a cooling assembly (5) extend towards the second working area (102).
3. The water-proof iron core cutting machine according to claim 2, wherein The cooling assembly (5) is arranged in a staggered manner with the second slide rail (22) and there is a gap therebetween.
4. The water-proof iron core cutting machine according to claim 2, characterized in that The cutting assembly (4) includes a motor (41) arranged on the second slide rail (22) and a blade (42) connected to the output end of the motor (41). On one side of the blade (42), the cooling assembly (5) is arranged. Both the blade (42) and the cooling assembly (5) are arranged away from the first working area (101) and are located above the positioning assembly (3).
5. The water-proof iron core cutting machine according to claim 4, characterized in that, A support plate (6) is slidably arranged on the second slide rail (22), and the support plate (6) is connected to the motor (41).
6. The anti-water-inflow iron core cutting machine according to claim 5, characterized in that, A plurality of mounting grooves (61) are formed in the support plate (6) in the thickness direction, and the motor (41) is connected to the corresponding mounting groove (61) by bolts.
7. The water-proof iron core cutting machine according to claim 5, characterized in that, The support plate (6) extends towards the blade (42) to be provided with a baffle (7), and the baffle (7) is located obliquely above the blade (42).
8. The water-inlet-proof iron core cutting machine according to claim 7, characterized in that, The structure of the baffle (7) is in the shape of an arc-shaped groove plate.
9. The water-proof iron core cutting machine according to claim 1, characterized in that An upper-end open collection box (8) is arranged in the second working area (102). The positioning assembly (3) is located in the collection box (8), and leakage holes (81) are arranged at the bottom of the collection box (8).
10. The water-proof iron core cutting machine according to claim 9, wherein, A collector is arranged at the bottom of the base (1) in the second working area (102), and the collector is located below the leakage holes (81).