High-potential magnesium anode producing and casting device
By designing casting components and shock-absorbing components for the high-potential magnesium anode production casting device, the problems of large mold weight and high temperature were solved, achieving efficient cooling and safe ejection of the magnesium anode, thus improving production efficiency and device life.
Patent Information
- Application Number
- CN202520238298.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-14
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2035-02-14
AI Technical Summary
In existing technologies, magnesium anode casting involves heavy molds and high temperatures, resulting in high labor costs and the risk of burns, making it difficult to process efficiently and safely.
A high-potential magnesium anode production casting apparatus was designed, which includes casting components and damping components. The magnesium anode is pushed out using a fan for cooling and an electric push rod, and combined with dampers for shock absorption, thereby improving production efficiency and apparatus life.
This technology enables efficient cooling and safe ejection of magnesium anodes, reduces manpower waste, extends the service life of molds, and improves production efficiency and safety.
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Figure CN223902870U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to high potential magnesium anode production technical field, concretely is a kind of high potential magnesium anode production casting device. BACKGROUND
[0002] Magnesium is a kind of commonly used sacrificial anode material in electrochemical cathodic protection engineering, has higher chemical activity, its electrode potential is relatively negative, driving voltage is high, magnesium alloy sacrificial anode is mainly used for anticorrosion protection, is widely used in the anticorrosion of various steel structures and electrical appliances etc., and its principle is to protect cathode by sacrificial anode, when magnesium anode is produced, it needs to use casting mold to cast magnesium anode into specified shape.
[0003] At present, in prior art, when magnesium anode needs to be cast and processed, magnesium anode raw material is poured into mold after melting, magnesium anode in mold is poured out by worker after cooling, but due to the weight of mold, it needs to consume large manpower, and the high temperature on the surface of mold is easy to cause worker scalded, therefore, a kind of high potential magnesium anode production casting device is proposed. UTILITY MODEL CONTENT
[0004] The utility model aims at providing a kind of high potential magnesium anode production casting device to solve the problems in the above background.
[0005] To achieve the above object, the utility model provides the following technical scheme: a kind of high potential magnesium anode production casting device, including support table;
[0006] Fixedly connected in the support frame of support table top surface;
[0007] And the bottom plate located below support table, shock-absorbing component is arranged between the bottom plate and support table;
[0008] The casting assembly is arranged in the inner side of support frame.
[0009] Preferably, the casting assembly comprises a lower mold inside the support frame, the bottom surface of the lower mold is in contact with the top surface of the support table, a first cavity is arranged in the lower mold, a second electric push rod is fixedly connected to the bottom surface of the lower mold, a through slot is arranged in the bottom surface of the lower mold, a push plate is arranged in the through slot, the side surface of the push plate is slidably connected with the inner side surface of the through slot, the output rod top end surface of the second electric push rod extends through the bottom surface of the lower mold and the inner wall of the first cavity and reaches the inside of the through slot, a through hole is arranged in the top surface of the support table, the bottom end surface of the second electric push rod extends through the top surface of the support table and the inner wall of the through hole and reaches below the support table, the output rod top end surface of the second electric push rod is fixedly connected with the bottom surface of the push plate, a sliding groove is arranged in the top surface of the support table, a sliding block is arranged in the sliding groove, an L-shaped plate is fixedly connected to the top surface of the sliding block, the inner wall of the L-shaped plate is threadedly connected with the inner wall of the support table through a first bearing seat, a first electric push rod is fixedly connected to the top surface of the support frame, the output rod bottom end surface of the first electric push rod extends through the top surface of the support frame and reaches the inside of the support frame, a support plate is fixedly connected to the output rod bottom end surface of the first electric push rod, an upper mold is arranged below the support plate, the inner wall of the upper mold is threadedly connected with the inner wall of the support plate through a second bolt, and the first bolt and the second bolt facilitate disassembly and replacement of the lower mold and the upper mold.
[0010] Preferably, the damping assembly comprises a damper between the bottom plate and the support table, the bottom end surface of the damper is fixedly connected with the top surface of the bottom plate, the output rod top end surface of the damper is fixedly connected with the bottom surface of the support table, a through slot is arranged in the top surface of the bottom plate, a second sliding rod and two first connecting blocks are arranged in the through slot, the two first connecting blocks are symmetrically arranged, the left end surface of the second sliding rod slidably extends through the right side surfaces of the two first connecting blocks and reaches the left side of the first connecting block, the left and right end surfaces of the second sliding rod are fixedly connected with the left and right inner side surfaces of the through slot, springs are arranged on the surface of the second sliding rod, and the left and right end surfaces of the springs are fixedly connected with the inner wall of the through slot and the left side surface of the first connecting block, two second connecting blocks are fixedly connected with the bottom surface of the support table, the left side surface of the second connecting block and the right side surface of the first connecting block are both arranged as inclined surfaces and are adapted to each other, a connecting rod is fixedly connected with the left side surface of the second connecting block, a second cavity is arranged in the first connecting block, a moving block is slidably arranged in the second cavity, a connecting groove is arranged in the right side surface of the first connecting block, and the left end surface of the connecting rod slidably extends through the right side surface of the first connecting block and the inner wall of the connecting groove and reaches the inside of the second cavity, and the left end surface of the connecting rod is fixedly connected with the right side surface of the moving block, so as to facilitate the damping effect on the lower mold.
[0011] Preferably, four positioning rods are fixedly connected with the bottom surface of the push plate, the bottom end surfaces of the positioning rods are in contact with the bottom surface of the through slot, and the positioning rods facilitate the push plate top surface to be flush with the bottom surface of the lower mold.
[0012] Preferably, the left side of the L-shaped plate is fixedly connected with a rubber plate, the side of the rubber plate is in extrusion connection with the right side of the lower mold, and the surface of the rubber plate causes damage to the side of the lower mold.
[0013] Preferably, the right side of the sliding block is provided with a first sliding rod, the left end surface of the first sliding rod is in sliding penetration through the right side of the sliding block and extends to the left side of the sliding block, the left and right end surfaces of the first sliding rod are fixedly connected with the inner side surfaces of the sliding grooves respectively, and the first sliding rod improves the stability during movement of the sliding block.
[0014] Preferably, the inner side surface of the L-shaped plate and the right side surface of the rubber pad are both provided with through holes, the inner side surface of the left side of the L-shaped plate is fixedly connected with a ventilation frame, the inner side surface of the ventilation frame is fixedly connected with a fan, and the left side surface and the right side through hole inner wall of the ventilation frame are both fixedly connected with filter screens; air circulation in the first cavity is increased by the fan, so that the magnesium anode in the lower mold is conveniently cooled, and the filter screens block dust from entering the ventilation frame and the first cavity.
[0015] Preferably, the damper is provided with four, and the damping property of the damper itself plays a damping effect on the support table, thereby reducing vibration of the lower mold.
[0016] Compared with the prior art, the high potential magnesium anode production casting device has the beneficial effects that:
[0017] 1. The high potential magnesium anode production casting device, through the casting assembly, increases the cavity circulation in the first cavity by the fan, thereby cooling the lower mold and the magnesium anode in the lower mold, and the magnesium anode produced in the lower mold is pushed out by the second electric push rod and the push plate, thereby avoiding human waste caused by workers moving the mold, improving the high potential magnesium anode production casting efficiency of the device, and improving the service life of the high potential magnesium anode production casting device.
[0018] 2. The high potential magnesium anode production casting device, through the damping assembly, uses the damping property of the damper itself and the spring force to play a damping effect on the support table, thereby reducing vibration of the lower mold, avoiding that the service life of the lower mold is reduced due to vibration, and improving the service life of the high potential magnesium anode production casting device. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 It is a front sectional view of the utility model;
[0020] Figure 2 It is a whole front perspective view of the utility model;
[0021] Figure 3 It is a whole left perspective view of the utility model;
[0022] Figure 4 It is a push plate front perspective view of the utility model;
[0023] Figure 5 It is the second slide rod left view perspective drawing of the utility model.
[0024] In the figure: support table 1, bottom plate 2, support frame 3, casting assembly 40, first electric push rod 401, support plate 402, upper die 403, lower die 404, L-shaped plate 405, rubber plate 406, sliding block 407, first slide rod 408, ventilation frame 409, fan 4010, filter screen 4011, second electric push rod 4012, push plate 4013, positioning rod 4014, damping assembly 41, damper 411, second slide rod 412, first connecting block 413, spring 414, connecting rod 415, moving block 416, second connecting block 417. DETAILED DESCRIPTION
[0025] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0026] Embodiment one: please refer to Figure 1 - Figure 5 The utility model provides a technical scheme: a high potential magnesium anode production casting device, including support table 1;
[0027] The support frame 3 is fixedly connected to the top surface of the support table 1.
[0028] And the bottom plate 2 located below the support table 1, the damping assembly 41 is arranged between the bottom plate 2 and the support table 1.
[0029] The casting assembly 40 is arranged in the inner side of the support frame 3.
[0030] The casting assembly 40 comprises a lower mold 404 located inside the support frame 3, the bottom surface of the lower mold 404 is in contact with the top surface of the support table 1, a first cavity is formed in the inside of the lower mold 404, the bottom surface of the lower mold 404 is fixedly connected with a second electric push rod 4012, a hollow groove is formed through the inside bottom surface of the lower mold 404, a push plate 4013 is arranged in the hollow groove, the side surface of the push plate 4013 is slidably connected with the inside side surface of the hollow groove, the top end surface of the output rod of the second electric push rod 4012 extends through the bottom surface of the lower mold 404 and the inner wall of the first cavity to the inside of the hollow groove, a through hole is formed through the top surface of the support table 1, the bottom end surface of the second electric push rod 4012 extends through the top surface of the support table 1 and the inner wall of the through hole to the below of the support table 1, the top end surface of the output rod of the second electric push rod 4012 is fixedly connected with the bottom surface of the push plate 4013, a sliding groove is formed through the top surface of the support table 1, a sliding block 407 is arranged in the sliding groove, an L-shaped plate 405 is fixedly connected with the top surface of the sliding block 407, the inner wall of the L-shaped plate 405 is threadedly connected with the inner wall of the support table 1 through a first bearing seat, a first electric push rod 401 is fixedly connected with the top surface of the support frame 3, the bottom end surface of the output rod of the first electric push rod 401 extends through the top surface of the support frame 3 to the inside of the support frame 3, the bottom end surface of the output rod of the first electric push rod 401 is fixedly connected with a supporting plate 402, an upper mold 403 is arranged below the supporting plate 402, the inner wall of the upper mold 403 is threadedly connected with the inner wall of the supporting plate 402 through a second bolt, by the casting assembly 40, the cavity flow in the first cavity is increased by the fan 4010, so as to cool the lower mold 404 and the magnesium anode in the lower mold 404, at the same time, the magnesium anode produced in the lower mold 404 is pushed out by the push plate 4013 driven by the second electric push rod 4012, so as to avoid the waste of manpower caused by the staff moving the mold, and the casting efficiency of the device for producing high-potential magnesium anode is improved.
[0031] The bottom surface of the push plate 4013 is fixedly connected with four positioning rods 4014, and the bottom end surface of the positioning rod 4014 is in contact with the inside bottom surface of the hollow groove.
[0032] The left side surface of the L-shaped plate 405 is fixedly connected with a rubber plate 406, and the side surface of the rubber plate 406 is extrudedly connected with the right side surface of the lower mold 404.
[0033] A first sliding rod 408 is arranged on the right side of the sliding block 407, the left end surface of the first sliding rod 408 slidably extends through the right side surface of the sliding block 407 to the left side of the sliding block 407, and the left and right end surfaces of the first sliding rod 408 are fixedly connected with the inside side surfaces of the sliding groove, respectively.
[0034] The inside surface of the L-shaped plate 405 and the right side surface of the rubber pad 406 are both throughly formed with through holes, the inside surface of the left L-shaped plate 405 is fixedly connected with a ventilation frame 409, the inside surface of the ventilation frame 409 is fixedly connected with a fan 4010, and the left side surface and the right side through hole inner wall of the ventilation frame 409 are both fixedly connected with a filter screen 4011.
[0035] Embodiment two: on the basis of embodiment one, the preferred embodiment of the high potential magnesium anode production casting device provided by the utility model is as follows Figure 1 And Figure 5 As shown: the damping assembly 41 comprises a damper 411 between the bottom plate 2 and the support table 1, the bottom end surface of the damper 411 is fixedly connected with the top surface of the bottom plate 2, the top end surface of the output rod of the damper 411 is fixedly connected with the bottom surface of the support table 1, the top surface of the bottom plate 2 is provided with a through slot, the inside of the through slot is provided with a second sliding rod 412 and two first connecting blocks 413, the two first connecting blocks 413 are symmetrically arranged, the left end surface of the second sliding rod 412 is slidably extended to the left side of the first connecting block 413 from the right side of the first connecting block 413, the left and right end surfaces of the second sliding rod 412 are fixedly connected with the left and right inner surfaces of the through slot, the surface of the second sliding rod 412 is provided with a spring 414, the left and right end surfaces of the spring 414 are fixedly connected with the inner wall of the through slot and the left surface of the first connecting block 413, the bottom surface of the support table 1 is fixedly connected with two second connecting blocks 417, the left surface of the second connecting block 417 and the right surface of the first connecting block 413 are both provided with inclined surfaces and are adapted to each other; the left surface of the second connecting block 417 is fixedly connected with a connecting rod 415, the inside of the first connecting block 413 is provided with a second cavity, the inside of the second cavity is slidably provided with a moving block 416, the right surface of the moving block 416 is fixedly connected with the left end surface of the connecting rod 415, the right surface of the first connecting block 413 is provided with a connecting slot, the left end surface of the connecting rod 415 is slidably extended to the inside of the second cavity from the right surface of the first connecting block 413 and the inner wall of the connecting slot, the left end surface of the connecting rod 415 is fixedly connected with the right surface of the moving block 416, through the damping assembly 41, the damping property of the damper 411 and the force of the spring 414 are used to damp the support table 1, so as to reduce the vibration of the lower mold 404, avoid the vibration of the lower mold 404 from reducing the service life, and improve the service life of the high potential magnesium anode production casting device.
[0036] The damper 411 is provided with four.
[0037] In use, the lower mold 404 is placed on the support table 1, the second electric push rod 4012 passes through the through hole, the L-shaped plate 405 is pushed, the sliding block 407 is slid on the first sliding rod 408 and drives the rubber plate 406 to move to the lower mold 404, and the L-shaped plate 405 is fixed by using the first bolt, so that the L-shaped plate 405 drives the rubber plate 406 to clamp and fix the lower mold 404, the upper mold 403 is moved upward to below the support plate 402, and the upper mold 403 is installed on the support plate 402 by using the second bolt;
[0038] The raw material of the molten magnesium anode is added into the lower mold 404, and the first electric push rod 401 is turned on, so that the support plate 402 drives the upper mold 403 to move downwards, so that the upper mold 403 and the lower mold 404 are matched, the fan 4010 is turned on, the fan 4010 increases the air circulation inside the ventilation frame 409, thereby increasing the air circulation inside the first cavity, and then reducing the cooling of the magnesium anode inside the lower mold 404, when the cooled magnesium anode is taken out, the upper mold 403 is controlled to move upwards and the second electric push rod 4012 is turned on, so that the push plate 4013 moves upwards and pushes the magnesium anode in the lower mold 404 out;
[0039] When the upper mold 403 and the lower mold 404 are in contact, the lower mold 404 will vibrate, so that the support table 1 extrudes the second connecting block 417 and the damper 411, the second connecting block 417 pushes the connecting rod 415, so that the connecting rod 415 drives the moving block 416 to move downwards inside the second cavity, so that the first connecting block 413 slides on the second slide rod 412, the first connecting block 413 extrudes the spring 414, and the damping effect of the spring 414 and the damping of the damper 411 on the support table 1 reduces the vibration of the lower mold 404.
[0040] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to the embodiments without departing from the principles and spirits of the utility model, the scope of the utility model is defined by the appended claims and their equivalents.
Claims
1. A high potential magnesium anode production casting device, comprising a support table (1); a support frame (3) fixedly connected to the top surface of the support table (1); and a bottom plate (2) located below the support table (1), characterized in that a damping assembly (41) is arranged between the bottom plate (2) and the support table (1); an inside of the support frame (3) is provided with a casting assembly (40).
2. The high potential magnesium anode production casting device according to claim 1, characterized in that: The casting assembly (40) comprises a lower mold (404) arranged inside the support frame (3), the bottom surface of the lower mold (404) is in contact with the top surface of the support table (1), a first cavity is formed in the inside of the lower mold (404), the bottom surface of the lower mold (404) is fixedly connected with a second electric push rod (4012), a through slot is formed in the inside bottom surface of the lower mold (404), a push plate (4013) is arranged in the through slot, the side surface of the push plate (4013) is in sliding connection with the inside side surface of the through slot, the top end surface of the output rod of the second electric push rod (4012) extends to the inside of the through slot through the bottom surface of the lower mold (404) and the inner wall of the first cavity, a through hole is formed in the top surface of the support table (1), the bottom end surface of the second electric push rod (4012) extends to below the support table (1) through the top surface of the support table (1) and the inner wall of the through hole, the top end surface of the output rod of the second electric push rod (4012) is fixedly connected with the bottom surface of the push plate (4013), a sliding groove is formed in the top surface of the support table (1), a sliding block (407) is arranged in the sliding groove, an L-shaped plate (405) is fixedly connected with the top surface of the sliding block (407), the inner wall of the L-shaped plate (405) is in threaded connection with the inner wall of the support table (1) through a first bearing seat, a first electric push rod (401) is fixedly connected with the top surface of the support frame (3), the bottom end surface of the output rod of the first electric push rod (401) extends to the inside of the support frame (3) through the top surface of the support frame (3), a support plate (402) is fixedly connected with the bottom end surface of the output rod of the first electric push rod (401), an upper mold (403) is arranged below the support plate (402), the inner wall of the upper mold (403) is in threaded connection with the inner wall of the support plate (402) through a second bolt.
3. The high potential magnesium anode production casting device according to claim 1, characterized in that: The damping assembly (41) comprises a damper (411) between the bottom plate (2) and the support table (1), the bottom end surface of the damper (411) is fixedly connected with the top surface of the bottom plate (2), the output rod top end surface of the damper (411) is fixedly connected with the bottom surface of the support table (1), the top surface of the bottom plate (2) is provided with a through slot, a second sliding rod (412) and two first connecting blocks (413) are arranged in the through slot, the two first connecting blocks (413) are symmetrically arranged, the left end surface of the second sliding rod (412) extends to the left side of the first connecting block (413) by sliding through the right side surface of the two first connecting blocks (413), the left and right end surfaces of the second sliding rod (412) are fixedly connected with the left and right side surfaces in the through slot, a spring (414) is arranged on the surface of the second sliding rod (412), the left and right end surfaces of the spring (414) are fixedly connected with the inner wall of the through slot and the left side surface of the first connecting block (413), the bottom surface of the support table (1) is fixedly connected with two second connecting blocks (417), the left side surface of the second connecting block (417) and the right side surface of the first connecting block (413) are both provided with inclined surfaces and are matched with each other, the left side surface of the second connecting block (417) is fixedly connected with a connecting rod (415), the first connecting block (413) is provided with a second cavity, a moving block (416) is slidably arranged in the second cavity, the right side surface of the first connecting block (413) is provided with a connecting groove, the left end surface of the connecting rod (415) extends to the inside of the second cavity by sliding through the right side surface of the first connecting block (413) and the inner wall of the connecting groove, and the left end surface of the connecting rod (415) is fixedly connected with the right side surface of the moving block (416).
4. The high-potential magnesium anode production casting device according to claim 2, characterized by: The bottom surface of the push plate (4013) is fixedly connected with four positioning rods (4014), and the bottom end surface of the positioning rod (4014) is in contact with the inner bottom surface of the hollow groove.
5. The high-potential magnesium anode production casting device according to claim 2, characterized by: The left side surface of the L-shaped plate (405) is fixedly connected with a rubber plate (406), and the side surface of the rubber plate (406) is in extrusion connection with the right side surface of the lower mold (404).
6. The high-potential magnesium anode production casting device according to claim 2, characterized by: The right side of the sliding block (407) is provided with a first sliding rod (408), the left end surface of the first sliding rod (408) extends to the left side of the sliding block (407) by sliding through the right side surface of the sliding block (407), and the left and right end surfaces of the first sliding rod (408) are fixedly connected with the side surfaces in the sliding groove.
7. The high-potential magnesium anode production casting device according to claim 5, characterized by: The inner side surface of the L-shaped plate (405) and the right side surface of the rubber pad (406) are both provided with through holes, the inner side surface of the left L-shaped plate (405) is fixedly connected with a ventilation frame (409), the inner side surface of the ventilation frame (409) is fixedly connected with a fan (4010), and the left side surface and the right side through hole inner wall of the ventilation frame (409) are both fixedly connected with a filter screen (4011).
8. The high-potential magnesium anode production casting device according to claim 3, characterized by: The damper (411) is provided with four.