Anode output insulation support production die with cooling structure
By designing a production mold for insulating brackets with a cooling structure, and combining it with injection molding and sealing mechanisms, rapid cooling and automatic separation of the insulating brackets were achieved, solving the problem of low production efficiency in existing technologies and improving production efficiency.
Patent Information
- Application Number
- CN202423148423.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2034-12-20
AI Technical Summary
Existing insulating bracket molds cannot be cooled down quickly after molding, and manual separation is required after molding, resulting in low production efficiency.
A production mold for a positive output insulation bracket with a cooling structure was designed. The production and cooling of the insulation bracket are achieved through the cooperation of the injection molding mechanism and the sealing mechanism, and the automatic separation of the insulation bracket is achieved through the cooperation of the electric telescopic rod and the sealing plate.
This technology enables rapid cooling and automatic separation of the insulating support, improving production efficiency and reducing manpower waste.
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Figure CN223777719U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to insulating support production mould technical field, concretely relates to a positive output insulating support production mould with cooling structure. BACKGROUND
[0002] The main role of the positive output insulating support is to ensure the insulation and safety of electrical equipment, and in electrical engineering, the insulating support is widely used in multiple scenes, such as power transmission and distribution systems, transformer substations and distribution rooms, cable bridge and cable support systems, electrical equipment installation and fixation, etc. The positive output insulating support plays an important role in electrical engineering and pipeline construction, ensuring the electrical isolation and safe operation of the equipment.
[0003] The insulating support has insulation and long-term chemical corrosion resistance, excellent wear resistance and good impact resistance, as well as mechanical, thermal shock and stress resistance. It is generally formed by composite material forming process, such as laying fiber cloth and mixing resin, and then forming by specific process. In addition, the insulating support with specific shape can also be made by compression molding process. Therefore, a specific production mold needs to be used in the production process of the insulating support.
[0004] The existing insulating support mold cannot quickly cool the molded insulating support after molding, and the molded insulating support needs to be separated from the bottom mold manually after molding, which wastes a lot of manpower and time, and reduces the production efficiency of the insulating support mold.
[0005] Therefore, it is necessary to provide a positive output insulating support production mold with a cooling structure to solve the above problems. UTILITY MODEL CONTENTS
[0006] The utility model discloses a positive output insulating support production mold with a cooling structure, which can produce and cool the insulating support by the mutual cooperation of the internal parts of the injection molding mechanism. The sealing mechanism can seal and isolate the internal parts of the injection molding mechanism, and the produced insulating support can be raised from the lower mold. The utility model solves the problem that the existing insulating support mold cannot quickly cool the molded insulating support after molding, and the molded insulating support needs to be separated from the bottom mold manually after molding, which wastes a lot of manpower and time, and reduces the production efficiency of the insulating support mold.
[0007] In order to achieve the above object, the utility model provides the following technical scheme: A positive electrode output insulation support production mould with cooling structure, including mould main part, the top and bottom of mould main part are provided with injection mechanism, the outer wall of injection mechanism is provided with sealing mechanism, and it is through to the inside of injection mechanism.
[0008] Preferably, the injection mechanism includes a lower mold, the lower mold is fixedly installed at the bottom end of the mold main body, an upper mold is arranged above the lower mold and is sleeved and slidably connected with the outer wall of the mold main body, an electric telescopic rod is arranged between the top end of the upper mold and the mold main body, a power unit is fixedly installed at the top end of the mold main body, a water inlet pipe is connected to one side of the outer wall of the lower mold and penetrates into the inside of the lower mold, a water outlet pipe is connected to the side of the lower mold away from the water inlet pipe, a circulation pipe is connected to the inside of the lower mold and the upper mold and is located between the water inlet pipe and the water outlet pipe, injection pipes are connected to both ends of the outer wall of the lower mold and the upper mold, and a circulation groove matching the circulation pipe is formed in the top end of the lower mold.
[0009] Preferably, the sealing mechanism includes a lifting block, the lifting block is slidably connected to the top end of the lower mold and penetrates into the inside of the lower mold and is located on one side of the water inlet pipe and the water outlet pipe, a support plate is fixedly connected to one side of the outer wall of the lifting block and is located in the inside of the lower mold, a pushing block is arranged at the top end of the side of the support plate away from the lifting block and penetrates through the lower mold to the top end of the lower mold, an extension spring is fixedly connected to the bottom end of the support plate, sealing plates are arranged on the inner walls of the water inlet pipe and the water outlet pipe, support shafts are rotatably connected to the outer walls of the sealing plates and are located on the side of the lifting block away from the support plate, and fixed racks are arranged at the connection positions of the lifting block and the support shafts.
[0010] Preferably, recesses matching the insulation support are arranged at the top end of the lower mold and the bottom end of the upper mold, the circulation pipe is completely sealed and matched with the circulation groove, and injection ports matching the injection pipes are arranged at both ends of the recesses.
[0011] Preferably, lifting grooves matching the lifting blocks are formed in the inside of the lower mold, sealing grooves matching the sealing plates are formed in the inner walls of the water inlet pipe and the water outlet pipe, and tooth blocks matching the fixed racks are arranged on the outer walls of the support shafts.
[0012] Preferably, support grooves matching the support plates are formed in the inside of the lower mold, connection grooves matching the support shafts are formed between the lifting blocks, and pushing holes matching the pushing blocks are formed in the top end of the lower mold.
[0013] In the above technical scheme, the utility model provides the following technical effects and advantages:
[0014] 1. By fitting the upper and lower molds together, the lower mold contacts the lifting block and squeezes it. The lifting block, under pressure, causes the support plate to compress the telescopic spring, which in turn moves the lifting block and drives the fixed rack. The fixed rack, through the toothed block, drives the support shaft to rotate. The rotation of the support shaft drives the sealing plate to rotate, thus releasing the seal between the inlet and outlet pipes. By separating the upper and lower molds, the telescopic spring returns to its original position, pushing the support plate to move the lifting block back to its original position. The movement of the support plate then moves the pusher protrusion, which pushes the insulating bracket out of the lower mold, making it easier for workers to remove the insulating bracket from the lower mold and improving the production efficiency of the mold.
[0015] 2. By activating the power unit, the electric telescopic rod is controlled to extend and retract, causing it to slide the lower mold against the outer wall of the mold body. This allows the upper and lower molds to fit together, enabling die casting production through the injection pipe. This completes the production of the insulating bracket. Simultaneously, the upper and lower molds fit together, allowing the bottom of the circulation pipe to penetrate into the circulation groove at the top of the upper mold. This completes the sealing connection between the circulation pipe and the inlet and outlet pipes inside the upper mold. Rotating the sealing plate releases the seal between the inlet and outlet pipes, allowing water to flow from the inlet pipe into the circulation pipe. After cooling the insulating bracket, the water is discharged from the outlet pipe, thus completing the production and cooling of the insulating bracket. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0018] Figure 2 This is a cross-sectional structural diagram of the upper mold of this utility model;
[0019] Figure 3 This is a cross-sectional structural diagram of the lower mold of this utility model;
[0020] Figure 4 For the present utility model Figure 3 Enlarged structural diagram at point A in the middle.
[0021] Explanation of reference numerals in the attached figures:
[0022] 1. Mold body; 2. Injection molding mechanism; 201. Lower mold; 202. Upper mold; 203. Electric telescopic rod; 204. Power unit; 205. Water inlet pipe; 206. Water outlet pipe; 207. Injection pipe; 208. Circulation pipe; 209. Circulation groove; 3. Sealing mechanism; 301. Lifting block; 302. Support plate; 303. Pushing protrusion; 304. Telescopic spring; 305. Sealing plate; 306. Support shaft; 307. Fixed rack. Detailed Implementation
[0023] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.
[0024] This utility model provides, for example Figures 1-4 The diagram shows a positive output insulation bracket production mold with a cooling structure, including a mold body 1. The top and bottom ends of the mold body 1 are provided with injection molding mechanisms 2. The outer wall of the injection molding mechanism 2 is provided with a sealing mechanism 3, which extends into the interior of the injection molding mechanism 2. Through the mutual cooperation between the internal parts of the injection molding mechanism 2, the production of the insulation bracket can be completed and the produced insulation bracket can be cooled. Through the mutual cooperation between the internal parts of the sealing mechanism 3, the internal parts of the injection molding mechanism 2 can be sealed and isolated, and the produced insulation bracket can be protruded from the lower mold 201.
[0025] Refer to the instruction manual appendix Figures 1-4 The injection molding mechanism 2 includes a lower mold 201, which is fixedly mounted on the bottom of the mold body 1. An upper mold 202 is mounted above the lower mold 201 and slides against the outer wall of the mold body 1. An electric telescopic rod 203 is provided between the top of the upper mold 202 and the mold body 1. A power unit 204 is fixedly mounted on the top of the mold body 1. A water inlet pipe 205 is connected to one side of the outer wall of the lower mold 201 and extends into the interior of the lower mold 201. The lower mold 201 is located away from the water inlet pipe 205. A water outlet pipe 206 is connected to one side of the injection molding mechanism 2. A circulation pipe 208 is connected inside both the lower mold 201 and the upper mold 202, and is located between the water inlet pipe 205 and the water outlet pipe 206. An injection molding pipe 207 is connected to both ends of the outer wall of the lower mold 201 and the upper mold 202. A circulation groove 209 matching the circulation pipe 208 is opened at the top of the lower mold 201. Through the mutual cooperation between the internal parts of the injection molding mechanism 2, the production of the insulating bracket can be completed and the produced insulating bracket can be cooled.
[0026] Refer to the instruction manual appendix Figures 1-4The sealing mechanism 3 includes a lifting block 301, which is slidably connected to the top of the lower mold 201 and extends into the interior of the lower mold 201. It is located on one side of the water inlet pipe 205 and the water outlet pipe 206. A support plate 302 is fixedly connected to one side of the outer wall of the lifting block 301 and is located inside the lower mold 201. A pusher protrusion 303 is provided at the top of the support plate 302 on the side away from the lifting block 301, extending through the lower mold 201 to its top. The bottom end of the support plate 302 is connected to... A telescopic spring 304 is fixed. The inner walls of the water inlet pipe 205 and the water outlet pipe 206 are both equipped with sealing plates 305. The outer wall of the sealing plate 305 is rotatably connected to the support shaft 306, which is located on the side of the lifting block 301 away from the support plate 302. A fixed rack 307 is provided at the connection between the lifting block 301 and the support shaft 306. Through the mutual cooperation between the internal parts of the sealing mechanism 3, the internal parts of the injection molding mechanism 2 can be sealed and isolated, and the production insulation bracket can be protruded from the lower mold 201.
[0027] Refer to the instruction manual appendix Figures 1-4 The top of the lower mold 201 and the bottom of the upper mold 202 are both provided with grooves that match the insulating bracket. The circulation pipe 208 and the circulation groove 209 are completely sealed and fitted together. The two ends of the groove are provided with injection ports that match the injection pipe 207. The complete sealing and fitting of the circulation pipe 208 and the circulation groove 209 makes it easy for the water in the inlet pipe 205 to flow into the circulation pipe 208 through the circulation groove 209 and flow out from the other circulation groove 209 to the outlet pipe 206.
[0028] Refer to the instruction manual appendix Figures 1-4 The lower mold 201 has a lifting groove inside that matches the lifting block 301. The inner walls of the water inlet pipe 205 and the water outlet pipe 206 have sealing grooves that match the sealing plate 305. The outer wall of the support shaft 306 is provided with toothed blocks that match the fixed rack 307. The toothed blocks on the outer wall of the support shaft 306 that match the fixed rack 307 facilitate the movement of the lifting block 301 and drive the support shaft 306 to rotate through the fixed rack 307.
[0029] Refer to the instruction manual appendix Figures 1-4 The lower mold 201 has a support groove inside that matches the support plate 302. The lifting blocks 301 have a connecting groove that matches the support shaft 306. The top of the lower mold 201 has a push hole that matches the push protrusion 303. The push hole at the top of the lower mold 201 makes it easy for the push protrusion 303 to push the insulating bracket out of the lower mold 201, so that the workers can easily remove the insulating bracket from the lower mold 201.
[0030] The working principle of this practical application is as follows:
[0031] Refer to the instruction manual appendixFigures 1-4 The upper mold 201 and the lower mold 202 are fitted together, so that the lower mold 202 contacts the lifting block 301 and squeezes the lifting block 301. The lifting block 301 is forced to move the support plate 302 to compress the telescopic spring 304. The movement of the lifting block 301 causes the fixed rack 307 to move. The movement of the fixed rack 307 drives the support shaft 306 to rotate through the rack. The rotation of the support shaft 306 causes the sealing plate 305 to rotate, which releases the sealing isolation between the water inlet pipe 205 and the water outlet pipe 206. The upper mold 201 and the lower mold 202 are separated, so that the telescopic spring 304 returns to its original position and pushes the support plate 302 to move the lifting block 301 back to its original position. The movement of the support plate 302 causes the pusher protrusion 303 to move, which pushes the insulating bracket out of the lower mold 201. This makes it easier for the workers to remove the insulating bracket from the lower mold 201, thus improving the production efficiency of the mold.
[0032] Refer to the instruction manual appendix Figures 1-4 By activating the power unit 204, the electric telescopic rod 203 is controlled to extend and retract, causing the lower mold 202 to slide on the outer wall of the mold body 1. This allows the upper mold 201 and the lower mold 202 to fit together, enabling die casting production between the upper mold 201 and the lower mold 202 through the injection pipe 207. This completes the production of the insulating bracket. Simultaneously, the fit between the upper mold 201 and the lower mold 202 allows the bottom end of the circulation pipe 208 to penetrate through the upper mold. In the circulation groove 209 at the top of the 201, the circulation pipe 208 is sealed to the water inlet pipe 205 and water outlet pipe 206 inside the upper mold 201. The sealing plate 305 rotates to release the seal between the water inlet pipe 205 and the water outlet pipe 206, allowing the water in the water inlet pipe 205 to flow into the circulation pipe 208. After cooling the insulating bracket, the water can be discharged from the water outlet pipe 206, thus completing the production of the insulating bracket and cooling the produced insulating bracket.
[0033] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A mold for producing a positive output insulation bracket with a cooling structure, comprising a mold body (1), characterized in that: The top and bottom of the mold body (1) are provided with injection molding mechanism (2), and the outer wall of the injection molding mechanism (2) is provided with sealing mechanism (3), which extends into the interior of the injection molding mechanism (2).
2. The production mold for a positive output insulating bracket with a cooling structure according to claim 1, characterized in that: The injection molding mechanism (2) includes a lower mold (201), which is fixedly mounted on the bottom of the mold body (1). An upper mold (202) is provided above the lower mold (201) and slides in contact with the outer wall of the mold body (1). An electric telescopic rod (203) is provided between the top of the upper mold (202) and the mold body (1). A power unit (204) is fixedly mounted on the top of the mold body (1). A water inlet pipe (205) is connected to one side of the outer wall of the lower mold (201) and passes through it. The lower mold (201) is connected to the interior of the upper mold (202). The lower mold (201) is connected to the outlet pipe (206) on the side away from the inlet pipe (205). The lower mold (201) and the upper mold (202) are both connected to the circulation pipe (208), which is located between the inlet pipe (205) and the outlet pipe (206). The two ends of the outer walls of the lower mold (201) and the upper mold (202) are connected to the injection pipe (207). The top of the lower mold (201) is provided with a circulation groove (209) that matches the circulation pipe (208).
3. The production mold for a positive output insulating bracket with a cooling structure according to claim 2, characterized in that: The sealing mechanism (3) includes a lifting block (301), which is slidably connected to the top of the lower mold (201) and extends into the interior of the lower mold (201), located on one side of the water inlet pipe (205) and water outlet pipe (206). A support plate (302) is fixedly connected to one side of the outer wall of the lifting block (301) and is located inside the lower mold (201). A pusher protrusion (303) is provided at the top of the support plate (302) on the side away from the lifting block (301), and extends through... The lower mold (201) is inserted to the top of the lower mold (201). The bottom end of the support plate (302) is connected and fixed with a telescopic spring (304). The inner walls of the water inlet pipe (205) and the water outlet pipe (206) are both provided with sealing plates (305). The outer wall of the sealing plate (305) is rotatably connected with a support shaft (306) and is located on the side of the lifting block (301) away from the support plate (302). A fixed rack (307) is provided at the connection between the lifting block (301) and the support shaft (306).
4. A production mold for a positive output insulating bracket with a cooling structure according to claim 2, characterized in that: The top of the lower mold (201) and the bottom of the upper mold (202) are both provided with grooves that match the insulating bracket. The circulation pipe (208) and the circulation groove (209) are completely sealed and fitted together. The two ends of the groove are provided with injection ports that match the injection pipe (207).
5. A production mold for a positive output insulating bracket with a cooling structure according to claim 3, characterized in that: The lower mold (201) has a lifting groove inside that matches the lifting block (301), the inner walls of the water inlet pipe (205) and the water outlet pipe (206) have sealing grooves that match the sealing plate (305), and the outer wall of the support shaft (306) has tooth blocks that match the fixed rack (307).
6. A production mold for a positive output insulating bracket with a cooling structure according to claim 3, characterized in that: The lower mold (201) has a support groove inside that matches the support plate (302), the lifting blocks (301) have a connecting groove that matches the support shaft (306), and the top of the lower mold (201) has a push hole that matches the push protrusion (303).