Sliding block transverse demolding mold
Through the combination of self-lubricating and heat dissipation components, the wear and thermal expansion of the slider lateral mold release mold is solved, automatic lubrication and heat dissipation is achieved, and mold life is extended, and production efficiency and accuracy are improved.
Patent Information
- Application Number
- CN202422103037.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-08-29
AI Technical Summary
The wear, dimensional deviation and lubrication unevenness of traditional slider transverse mold release molds caused by friction and heat, resulting in reduced mold accuracy and shortened service life, and low manual lubrication efficiency and safety risks.
It adopts a self-lubricating structure and heat dissipation components, including heat-concentrating copper plates, heat-dissipating fins, heat exchange fans and dry humidity sensors, to achieve self-lubricating and rapid heat dissipation, and automatically add lubricant through dry humidity detection to reduce friction and heat accumulation.
Effectively reduce the wear of sliders and slide rails, extend the mold life, improve production efficiency, reduce labor costs, ensure mold accuracy and stability, and avoid dimensional deviations caused by thermal expansion.
Smart Images

Figure CN223071769U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of molds, in particular to a slider lateral demolding mold. Background Art
[0002] In modern manufacturing, molds, as important process equipment for producing various industrial products, their performance and quality directly affect the accuracy, production efficiency and cost of products. As a common type of mold, the slider lateral demolding mold is widely used in many fields such as automotive parts, electronic device casings, plastic products, etc.
[0003] In traditional slider lateral demolding molds, the relative movement between the slider and the track is a key step in product demolding. However, due to the friction generated by this relative movement, a series of problems will inevitably arise. First of all, friction will cause wear on the surfaces of the slider and the track. As the use time increases, the wear gradually intensifies. This will not only affect the accuracy and service life of the mold, but also may lead to product size deviation and reduce product quality. For example, when producing the casing of precision electronic devices, a tiny size deviation may cause the components to be unable to be assembled accurately.
[0004] Secondly, the heat generated by friction is also a problem that cannot be ignored. Continuous high temperature will cause thermal expansion of the slider and the track, and then change the fitting accuracy between them. When working in a high-temperature environment, the mechanical properties of the mold material may also decline, further accelerating wear and deformation. It is common for the mold to malfunction due to overheating, resulting in production interruption and increasing production costs.
[0005] Furthermore, lubrication is crucial for reducing friction and wear. However, the currently commonly used method of manually adding lubricant regularly has many deficiencies. On the one hand, it is difficult to ensure the timeliness and uniformity of lubrication during manual lubricant addition, and it is easy to have a situation where some areas are under-lubricated while some areas are over-lubricated. On the other hand, this method is inefficient, increasing labor costs, and there are certain safety risks during the addition operation when the mold is running.
[0006] Therefore, we propose a slider lateral demolding mold. Content of the Utility Model
[0007] To solve the above technical problems, the utility model provides a slider lateral demolding mold.
[0008] The present utility model adopts the following technical solution to realize a slider lateral demoulding die, which includes a fixed seat. A plurality of slide rails are provided on the top of the fixed seat, and slider bodies are arranged inside each of the plurality of slide rails. Heat dissipation components are provided inside the fixed seat and at the bottoms of the plurality of slider bodies. The plurality of heat dissipation components can quickly dissipate the heat generated by the plurality of slider bodies, thereby achieving a fast heat dissipation effect. A self-lubricating structure is also provided at the connection of the slider bodies. The self-lubricating structure can self-lubricate the slider bodies to ensure the normal use of the slide rails and the slider bodies.
[0009] As a further improvement of the above solution, the heat dissipation component includes a heat collecting copper plate. A plurality of first heat dissipation fins are provided at the bottom of the heat collecting copper plate. An air flow cavity is arranged between each of the plurality of first heat dissipation fins. The plurality of first heat dissipation fins and the heat collecting copper plate are integrally designed. A plurality of second heat dissipation fins are fixedly connected to both side walls of the heat collecting copper plate.
[0010] As a further improvement of the above solution, the materials of the plurality of air flow cavities, the second heat dissipation fins and the heat collecting copper plate are all copper, and the plurality of air flow cavities and the second heat dissipation fins connect the slide rail and the heat collecting copper plate.
[0011] As a further improvement of the above solution, the heat dissipation component further includes two communication grooves, which are respectively opened on both side walls of the fixed seat, and heat exchange fan bodies are respectively arranged outside the two communication grooves. Filter nets are provided on both of the two heat exchange fan bodies.
[0012] As a further improvement of the above solution, the self-lubricating structure includes an oil storage chamber. An oil pump is arranged inside the oil storage chamber. The output end of the oil pump is provided with a communication pipe. A flow dividing seat is arranged at the connection of the communication pipe. The flow dividing seat is communicated with the communication pipe. The oil pump can send the lubricating liquid inside the oil storage chamber to the oil pump through the communication pipe.
[0013] As a further improvement of the above solution, the self-lubricating structure further includes a first lubricating pipe, which is fixedly connected to the front of the flow dividing seat. A second lubricating pipe is arranged below the first lubricating pipe. Both the second lubricating pipe and the first lubricating pipe are communicated with the flow dividing seat, and the output ends of the first lubricating pipe and the second lubricating pipe are both communicated with the inside of the slide rail.
[0014] As a further improvement of the above solution, the self-lubricating structure further includes two dry and wet sensors, which are fixed inside the slide rail and connected to a control panel. A sealing plate is also fixedly connected to the top of the oil storage chamber. The sealing plate and the oil storage chamber are connected by bolts.
[0015] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0016] In the present utility model, through the self-lubricating structure, the wear between the slider body and the slide rail is effectively reduced, the service life is extended, and a humidity detector is provided inside, so that the humidity of the slide rail can be detected to meet the standard of whether lubricant needs to be added, without frequent manual lubricant addition and maintenance, significantly improving production efficiency and reducing labor costs and maintenance time.
[0017] Finally, the heat dissipation method of the heat dissipation fins by air cooling can timely take away the heat generated by friction, maintain the normal working temperature of the slide rail and the slider body, ensure the precision of the slider lateral demoulding die, and reduce the dimensional deviation caused by thermal expansion and thermal deformation. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0019] Figure 2 is a schematic diagram of the partial top view structure of the present utility model;
[0020] Figure 3 is a schematic diagram of a partial cross-section of the present utility model;
[0021] Figure 4 is an unfolded schematic diagram of the communication groove and the heat exchange fan body of the present utility model;
[0022] Figure 5 is the present utility model Figure 3 is an enlarged schematic diagram of the structure at A in the present utility model.
[0023] MAIN SYMBOL DESCRIPTION:
[0024] 1. Fixed seat; 2. Slide rail; 3. Slider body; 4. Heat dissipation component; 401. Heat collecting copper plate; 402. First heat dissipation fin; 403. Air flow cavity; 404. Second heat dissipation fin; 405. Communication groove; 406. Heat exchange fan body; 407. Filter screen; 5. Self-lubricating structure; 501. Oil storage chamber; 502. Oil pump; 503. Communication pipe; 504. Shunt seat; 505. First lubricating pipe; 506. Second lubricating pipe; 507. Humidity sensor; 508. Sealing plate. SPECIFIC EMBODIMENTS
[0025] Next, in combination with the drawings and specific embodiments, the present utility model will be further described. It should be noted that on the premise of no conflict, any combination of the following described embodiments or technical features can form a new embodiment.
[0026] Embodiment:
[0027] Please combineFigures 1-5 A laterally demolding mold for a slider, a laterally demolding mold for a slider, includes a fixed seat 1. A plurality of slide rails 2 are provided on the top of the fixed seat 1. A slider body 3 is provided inside each of the plurality of slide rails 2. A heat dissipation component 4 is provided inside the fixed seat 1 and at the bottom of each of the plurality of slider bodies 3. The plurality of heat dissipation components 4 can quickly dissipate the heat generated by the plurality of slider bodies 3, thereby achieving a fast heat dissipation effect. A self-lubricating structure 5 is also provided at the connection of the slider body 3. The self-lubricating structure 5 can self-lubricate the slider body 3 to ensure the normal use of the slide rail 2 and the slider body 3.
[0028] Through the self-lubricating structure 5, the wear between the slider body 3 and the slide rail 2 is effectively reduced, and the service life is extended. And a humidity detector is provided inside, so that the humidity of the slide rail 2 can be detected to meet the standard of whether lubricant needs to be added, without the need for frequent manual lubricant addition and maintenance, significantly improving the production efficiency and reducing the labor cost and maintenance time.
[0029] Finally, the heat dissipation method of air cooling by the heat dissipation fins can timely take away the heat generated by friction, maintain the normal working temperature of the slide rail 2 and the slider body 3, ensure the accuracy of the laterally demolding mold for the slider, and reduce the dimensional deviation caused by thermal expansion and thermal deformation.
[0030] The heat dissipation component 4 includes a heat collecting copper plate 401. A plurality of first heat dissipation fins 402 are provided at the bottom of the heat collecting copper plate 401. An air flow cavity 403 is provided between each of the plurality of first heat dissipation fins 402. The plurality of first heat dissipation fins 402 and the heat collecting copper plate 401 are integrally designed. A plurality of second heat dissipation fins 404 are fixedly connected to both side walls of the heat collecting copper plate 401.
[0031] The materials of the plurality of air flow cavities 403, the second heat dissipation fins 404 and the heat collecting copper plate 401 are all copper, and the plurality of air flow cavities 403 and the second heat dissipation fins 404 connect the slide rail 2 and the heat collecting copper plate 401.
[0032] The heat dissipation component 4 further includes two communication grooves 405 which are respectively opened on both side walls of the fixed seat 1. And heat exchange fan bodies 406 are respectively provided outside the two communication grooves 405. Filter nets 407 are provided on both of the two heat exchange fan bodies 406.
[0033] The self-lubricating structure 5 includes an oil storage chamber 501. An oil pump 502 is provided inside the oil storage chamber 501. The output end of the oil pump 502 is provided with a communication pipe 503. A flow dividing seat 504 is provided at the connection of the communication pipe 503. The flow dividing seat 504 is communicated with the communication pipe 503. The oil pump 502 can send the lubricating liquid inside the oil storage chamber 501 to the oil pump 502 through the communication pipe 503.
[0034] The self-lubricating structure 5 further includes a first lubricating pipe 505. The first lubricating pipe 505 is fixedly connected to the front surface of the flow dividing seat 504. A second lubricating pipe 506 is provided below the first lubricating pipe 505. Both the second lubricating pipe 506 and the first lubricating pipe 505 are in communication with the flow dividing seat 504, and the output ends of the first lubricating pipe 505 and the second lubricating pipe 506 are both in communication with the inside of the slide rail 2.
[0035] The self-lubricating structure 5 further includes two humidity sensors 507. The two humidity sensors 507 are fixed inside the slide rail 2 and are connected to the control panel. A sealing plate 508 is further fixedly connected to the top of the oil storage chamber 501. The sealing plate 508 and the oil storage chamber 501 are connected by bolts.
[0036] In the embodiment of the present application, the implementation principle of a slider lateral demoulding die is as follows: When slider demoulding is required, the work can start. The slider body 3 moves horizontally on the slide rail 2. Due to the relative movement between the slider body 3 and the slide rail 2, friction will be generated and heat will be generated.
[0037] At this time, the heat collecting copper plate 401 quickly absorbs the heat generated by friction and transfers the heat to the first heat dissipation fin 402 and the second heat dissipation fin 404. At the same time, the heat exchange fan body 406 starts. After the outside air is filtered by the filter screen 407, it enters the inside of the fixed seat 1 through the communication groove 405. The air flows through the air flow cavity 403, taking away the heat on the first heat dissipation fin 402 and the second heat dissipation fin 404, thereby realizing rapid heat dissipation and maintaining the normal working temperature of the slide rail 2 and the slider body 3.
[0038] During the movement of the slider body 3, the humidity sensors 507 detect the humidity inside the slide rail 2 in real time and transmit the data to the control panel. If the humidity does not meet the standard, the control panel will control the oil pump 502 to start. The oil pump 502 sends the lubricating liquid in the oil storage chamber 501 to the flow dividing seat 504 through the connecting pipe 503, and then transports it to the inside of the slide rail 2 through the first lubricating pipe 505 and the second lubricating pipe 506 to lubricate the slider body 3 and ensure the normal use of the slide rail 2 and the slider body 3.
[0039] Through the above work process, the heat dissipation, self-lubrication of the die, and the detection and corresponding treatment of the humidity of the working environment are realized, improving the performance and service life of the die and reducing the need for manual maintenance.
[0040] The above implementation manners are only the preferred implementation manners of the present utility model and cannot be used to limit the scope of protection of the present utility model. Any non-substantial changes and substitutions made by those skilled in the art based on the present utility model belong to the scope of protection required by the present utility model.
Claims
1. A slider lateral demolding die, comprising a fixed seat (1), characterized in that, The top of the fixed seat (1) is provided with a plurality of sliding rails (2). The inside of each of the plurality of sliding rails (2) is provided with a slider body (3). Inside the fixed seat (1) and at the bottom of each of the plurality of slider bodies (3), there is a heat dissipation component (4). The plurality of heat dissipation components (4) can quickly dissipate the heat generated by the plurality of slider bodies (3), thereby achieving a fast heat dissipation effect. A self-lubricating structure (5) is also provided at the connection of the slider bodies (3). The self-lubricating structure (5) can self-lubricate the slider bodies (3) to ensure the normal use of the sliding rails (2) and the slider bodies (3).
2. The slider lateral demoulding die according to claim 1, characterized in that The heat dissipation component (4) includes a heat collecting copper plate (401). The bottom of the heat collecting copper plate (401) is provided with a plurality of first heat dissipation fins (402). An air flow cavity (403) is provided between each of the plurality of first heat dissipation fins (402). The plurality of first heat dissipation fins (402) and the heat collecting copper plate (401) are integrally designed. A plurality of second heat dissipation fins (404) are fixedly connected to both side walls of the heat collecting copper plate (401).
3. A lateral demolding die for a slider according to claim 2, characterized in that: The materials of the plurality of air flow cavities (403), the second heat dissipation fins (404), and the heat collecting copper plate (401) are all copper, and the plurality of air flow cavities (403) and the second heat dissipation fins (404) connect the sliding rails (2) and the heat collecting copper plate (401).
4. A lateral demolding die for a slider according to claim 3, characterized in that: The heat dissipation component (4) further includes two communication grooves (405). The two communication grooves (405) are respectively opened on both side walls of the fixed seat (1). Heat exchange fan bodies (406) are respectively provided outside the two communication grooves (405). Filter nets (407) are provided on both of the two heat exchange fan bodies (406).
5. The laterally demolding mold for a slider according to claim 4, characterized in that: The self-lubricating structure (5) includes an oil storage chamber (501). An oil pump (502) is provided inside the oil storage chamber (501). The output end of the oil pump (502) is provided with a communication pipe (503). A flow dividing seat (504) is provided at the connection of the communication pipe (503). The flow dividing seat (504) is communicated with the communication pipe (503). The oil pump (502) can send the lubricating liquid inside the oil storage chamber (501) to the oil pump (502) through the communication pipe (503).
6. The laterally demolding die for a slider according to claim 5, wherein: The self-lubricating structure (5) further includes a first lubricating pipe (505). The first lubricating pipe (505) is fixedly connected to the front of the flow dividing seat (504). A second lubricating pipe (506) is provided below the first lubricating pipe (505). Both the second lubricating pipe (506) and the first lubricating pipe (505) are communicated with the flow dividing seat (504), and the output ends of the first lubricating pipe (505) and the second lubricating pipe (506) are communicated with the inside of the sliding rail (2).
7. The laterally demolding mold for a slider according to claim 6, characterized in that: The self-lubricating structure (5) further includes two humidity sensors (507). The two humidity sensors (507) are fixed inside the slide rail (2) and are connected to the control panel. A sealing plate (508) is further fixedly connected to the top of the oil storage chamber (501). The sealing plate (508) and the oil storage chamber (501) are connected by bolts.