Wet clay sand static pressure die-casting machine for glass mold casting
The design of replaceable connecting plates and locking components solves the problem of poor fixation of the lower pressure plate in traditional clay sand static pressure die casting machines, enabling quick replacement and precise position adjustment of the lower pressure plate, thus improving the production flexibility and molding quality of glass molds.
Patent Information
- Application Number
- CN202423230827.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-12-26
AI Technical Summary
Traditional clay sand static pressure die casting machines suffer from poor adaptability due to the single, fixed, and non-adjustable lower pressure plate. This makes it impossible to quickly replace the appropriate lower pressure plate to adapt to glass molds of different sizes and shapes, affecting production flexibility and mold forming quality.
The design employs replaceable connecting plates and locking components, and utilizes the cooperation of top posts, locking inner and outer posts, and ball bearings to achieve quick unlocking and locking of the lower pressure plate. Combined with the design of threaded posts and slide rails, it enables precise position adjustment of the lower pressure plate.
It enables quick replacement and precise position adjustment of the lower pressure plate, improving the production flexibility and equipment versatility of the die-casting machine, and enhancing the molding quality and production efficiency of glass molds.
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Figure CN223589671U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to die casting machine technical field especially relates to a glass mould foundry is with wet type clay sand static pressure die casting machine. BACKGROUND
[0002] In the field of glass mould foundry, wet type clay sand static pressure die casting machine plays a vital role. With the continuous development of glass product industry, the requirements for the precision, quality and production efficiency of glass mould are increasingly improved. Different glass moulds have significant differences in shape, size and complexity, which puts forward higher challenges to the adaptability and universality of the die casting machine. The clay sand static pressure die casting machine needs to accurately shape various complex mould cavities, and under the premise of ensuring quality, improves the production efficiency as much as possible to meet the market demand for diversified glass moulds, so it has important practical significance to develop a high-efficiency, flexible and universal wet type clay sand static pressure die casting machine for glass mould foundry.
[0003] The traditional clay sand static pressure die casting machine is relatively fixed in mechanical structure and technical principle. Its lower pressing plate usually adopts a single fixed structure and is tightly connected with the base of the die casting machine, lacking adjustability. In the aspect of mould installation, the mould is usually fixed on the lower pressing plate through a simple bolt and nut fixing method. Once the installation is completed, the position of the lower pressing plate and the adaptability of the mould are basically fixed and cannot be changed. Moreover, on the sand compaction mechanism, a simple fixed pressure and stroke compaction device is generally used, which cannot be flexibly adjusted according to the specific needs of the sand type.
[0004] However, the traditional clay sand static pressure die casting machine has the problems of single fixation and non-adjustability of the lower pressing plate. When facing different sizes and shapes of glass moulds, it cannot quickly replace the appropriate lower pressing plate to achieve the best adaptive effect, which greatly limits the production flexibility of the die casting machine. Moreover, the fixed position of the lower pressing plate makes it difficult to accurately adjust the position of the mould during the mould installation process, resulting in an unsatisfactory cooperation between the mould and other parts of the die casting machine, which affects the compaction effect of the sand type and the final forming quality of the mould. Therefore, a wet type clay sand static pressure die casting machine for glass mould foundry is proposed to solve the above problems. UTILITY MODEL CONTENTS
[0005] In order to make up for the above shortcomings, the utility model provides a wet type clay sand static pressure die casting machine for glass mould foundry, which aims to improve the poor adaptability caused by the single pressing plate in the prior art.
[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme:
[0007] The utility model provides a kind of glass mould casting wet type clay sand static pressure die casting machine, including support platform, the support platform top is provided with die casting assembly, the die casting assembly is used to carry out pressure operation to clay sand, the die casting assembly inside equipment has replacement component, the replacement component is used to quickly replace different types of moulds;
[0008] The replacement component includes a connecting plate having a lower pressing plate provided at a bottom thereof, a plurality of locking outer columns fixedly connected inside the connecting plate, the locking outer columns being circumferentially distributed, the locking outer columns being slidably connected to inner walls of the lower pressing plate, a plurality of locking grooves being formed inside the lower pressing plate and located at bottoms of the locking outer columns, locking inner columns being slidably connected to inner walls of the locking outer columns, a plurality of balls being slidably connected to bottoms of the locking outer columns, top columns being fixedly connected to tops of the locking inner columns, a plurality of protruding columns being fixedly connected to side walls of the top columns, the protruding columns being circumferentially distributed, limiting plates being fixedly connected to tops of the locking outer columns, limiting springs being provided in inner walls of the top columns, one ends of the limiting springs being fixedly connected to tops of the inner walls of the top columns, and the other ends of the limiting springs being fixedly connected to the locking outer columns;
[0009] As a further description of the above technical solution:
[0010] The die casting assembly includes a base, and the base is fixedly connected to a hydraulic machine at a bottom thereof, and an output end of the hydraulic machine is fixedly connected to a top of the connecting plate;
[0011] As a further description of the above technical solution:
[0012] The hydraulic machine is fixedly connected to a plurality of telescopic rods at a bottom thereof, the telescopic rods are circumferentially distributed, one ends of the telescopic rods are fixedly connected to the top of the connecting plate, and the telescopic rods are located outside the connecting plate;
[0013] As a further description of the above technical solution:
[0014] The support platform is fixedly connected to support plates at left and right sides of a top thereof, and the support plates are fixedly connected to front and back symmetrical slide rails between side walls thereof;
[0015] As a further description of the above technical solution:
[0016] The support platform is fixedly connected to a plurality of support legs at a bottom thereof, the support legs are arrayed, the support platform is fixedly connected to a die pressing mold at a top thereof, and the die pressing mold is located between the support plates;
[0017] As a further description of the above technical solution:
[0018] The base is fixedly connected to a sliding block at a top thereof, and the sliding block is slidably connected to an inner wall of the slide rail;
[0019] As a further description of the above technical solutions:
[0020] The interior is provided with a sliding hole, and the inner wall of the sliding hole is slidably connected with left-right symmetrical movable columns, and the side wall of each movable column is fixedly connected with a push plate;
[0021] As a further description of the above technical solutions:
[0022] The sliding block is slidably connected with a threaded column, the threaded column is located above the sliding hole, and the top of the threaded column is fixedly connected with a handle.
[0023] The utility model has the following beneficial effects:
[0024] 1、 in the utility model, the top column is rotated by using a screwdriver, the protruding column on the side wall of the top column is matched with the hole position of the limiting plate, the limiting spring in the top column rebounds, the locking inner column is driven to move upwards, the bottom ball of the locking outer column is loosened, the unlocking of the lower pressing plate is completed, different types of lower pressing plates are quickly replaced, the problem of poor adaptability caused by single pressing plate is solved, and the production flexibility is improved.
[0025] 2、 in the utility model, the handle is rotated to drive the threaded column to rotate, upward displacement is generated through the thread effect, the extrusion on the two movable columns is released, and the sliding block can slide in the sliding rail. After moving to the corresponding position, the handle is reversely rotated, the threaded column presses the movable column and the push plate, the movable column is tightly pressed against the inner wall of the sliding rail, the position of the lower pressing plate is fixed, the problem of difficult mold adaptation caused by fixed pressing plate position is solved, and the universality of the equipment is improved. BRIEF DESCRIPTION OF DRAWINGS
[0026] Figure 1 A three-dimensional schematic view of a wet clay sand static pressure die casting machine for glass mold casting is provided for the utility model;
[0027] Figure 2 A sliding rail structure schematic view of a wet clay sand static pressure die casting machine for glass mold casting is provided for the utility model;
[0028] Figure 3 For Figure 2 An enlarged view of position A in the middle;
[0029] Figure 4 A connecting plate structure schematic view of a wet clay sand static pressure die casting machine for glass mold casting is provided for the utility model;
[0030] Figure 5 For Figure 4 An enlarged view of position B in the middle.
[0031] LEGEND:
[0032] 1, support platform; 2, support leg; 3, support plate; 4, press mold; 5, slide rail; 6, base; 7, hydraulic machine; 8, telescopic rod; 9, connecting plate; 10, lower pressing plate; 11, sliding block; 12, movable column; 13, push plate; 14, threaded column; 15, handle; 16, sliding hole; 17, locking outer column; 18, locking inner column; 19, ball; 20, top column; 21, protruding column; 22, limiting plate; 23, limiting spring; 24, locking groove. DETAILED DESCRIPTION
[0033] 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.
[0034] Referring to Figure 1 and Figure 4 、 Figure 5 An embodiment provided by the utility model: a kind of wet clay sand static pressure die casting machine for glass mold casting, including support platform 1, support platform 1 is casted by high-strength cast iron material, with good stability and bearing capacity, can provide solid foundation support for the whole die casting machine, support platform 1 top is provided with die casting assembly, die casting assembly is used to carry out pressing operation to clay sand, there is replacement assembly in the equipment of die casting assembly, replacement assembly is used to quickly replace different types of mold;
[0035] The replacement assembly comprises a connecting plate 9 made of alloy steel and subjected to fine machining and heat treatment, having high strength and toughness and being able to withstand large pressure and impact force in the pressure casting process, and a lower pressing plate 10 provided at the bottom of the connecting plate 9 and made of wear-resistant steel with moderate hardness, the surface of the lower pressing plate 10 being subjected to special treatment to ensure uniform pressure distribution when in contact with the clay sand and reduce adhesion and wear of the surface of the lower pressing plate 10 by the clay sand, a plurality of locking outer columns 17 fixedly connected inside the connecting plate 9, the locking outer columns 17 being made of alloy steel and circumferentially distributed, the locking outer columns 17 being slidably connected to the inner wall of the lower pressing plate 10, a plurality of locking grooves 24 being formed in the lower pressing plate 10 and located at the bottom of the locking outer columns 17 and matching the shape and size of the balls 19 to fix the position of the balls 19 in the locked state, thereby achieving stable connection of the lower pressing plate 10 and the connecting plate 9, the locking grooves 24 being located at the bottom of the locking outer columns 17, locking inner columns 18 being slidably connected to the inner wall of the locking outer columns 17, the locking inner columns 18 also being made of alloy steel and having high cooperation precision with the inner wall of the locking outer columns 17 to be able to slide flexibly in the vertical direction and achieve the pressing and releasing actions of the balls 19, thereby controlling the locking and unlocking states of the lower pressing plate 10, a plurality of balls 19 being slidably connected to the inner bottom of the locking outer columns 17, the balls 19 being smooth and wear-resistant, in the locking process, the balls 19 can be embedded in the locking grooves 24 under the pressing of the locking inner columns 18 to reduce the friction between the lower pressing plate 10 and the locking outer columns 17 by rolling friction and ensure the firmness and stability of the connection, top columns 20 being fixedly connected to the top of the locking inner columns 18, a plurality of protruding columns 21 being fixedly connected to the side wall of the top columns 20 and circumferentially distributed to cooperate with the hole positions on the limiting plates 22 to achieve the rotary positioning and limiting functions of the top columns 20, limiting plates 22 being fixedly connected to the top inner wall of the locking outer columns 17, the limiting plates 22 being able to accurately cooperate with the protruding columns 21 to limit the rotation angle and displacement range of the top columns 20 and ensure the operation safety and reliability of the entire replacement assembly, limiting springs 23 being provided in the inner wall of the top columns 20 and being in the compressed state in the normal state, when the protruding columns 21 are aligned with the hole positions on the limiting plates 22, the limiting springs 23 can rebound rapidly to push the top columns 20 to displace upward, thereby driving the locking inner columns 18 to achieve the unlocking action, one end of each limiting spring 23 being fixedly connected to the top inner wall of the top column 20 and the other end of each limiting spring 23 being fixedly connected to the inner wall of the locking outer column 17,The telescopic rods 8 mainly play the role of auxiliary support and guide, when the hydraulic machine 7 drives the connecting plate 9 to move up and down, the movement track of the connecting plate 9 can be ensured to be stable and vertical, and the inclination or deviation can be prevented, so that the precision and stability of the die casting process are ensured, the telescopic rods 8 are distributed in a circular manner, one end of the bottom of the telescopic rods 8 is fixedly connected to the top of the connecting plate 9, the telescopic rods 8 are located outside the connecting plate 9, a plurality of supporting legs 2 are fixedly connected to the bottom of the supporting table 1, which are made of solid steel, and are provided with rubber shock pads at the bottom, so that the vibration and noise of the equipment during operation can be effectively reduced, the supporting legs 2 are distributed in an array manner, the die press 4 is fixedly connected to the top of the supporting table 1, the die press 4 is located between the supporting plates 3, the die press 4 is customized according to different shapes and sizes of glass molds, is made of high-temperature-resistant and high-strength alloy material, and the surface is treated by special coating, so that the demolding performance and service life of the mold can be improved, in the die casting process, the die press 4 cooperates with the lower pressing plate 10 to shape and compact the clay sand, so that the glass mold cavity meeting the requirements is formed,
[0036] Specifically, when using the clay sand static pressure casting machine, if the staff needs to replace the lower pressing plate 10 of different sizes, first, the staff will hold the cross screwdriver and accurately align it with the corresponding hole position pre-set on the top of the top column 20, then apply a certain torque to rotate the top column 20, and the top column 20 will rotate around the central axis in the locking outer column 17. When the protruding column 21 on the side wall of the top column 20 gradually moves to be completely consistent with the hole position on the limiting plate 22 as the top column 20 rotates, the limiting spring 23 originally compressed between the inner wall of the top column 20 and the inner wall of the locking outer column 17 will quickly recover to the natural extension state due to the loss of extrusion restriction between the protruding column 21 and the limiting plate 22, thereby generating an upward elastic force to push the top column 20 to move linearly upward along the inner wall of the locking outer column 17. The upward displacement of the top column 20 will simultaneously drive the locking inner column 18 fixedly connected thereto to also move linearly upward along the inner wall of the locking outer column 17. In this process, the extrusion force of the locking inner column 18 on the plurality of balls 19 inside the bottom of the locking outer column 17 gradually disappears, and the balls 19 originally extruded and embedded in the inner wall of the locking groove 24 will become loose due to the loss of external force constraint, and will slide from the inner wall of the locking groove 24 to the slope or guide surface inside the locking outer column 17 under the action of its own gravity and slight vibration. At this time, the locking connection between the lower pressing plate 10 and the connecting plate 9 is released, and the unlocking operation of the lower pressing plate 10 is completed, and the staff can remove the original lower pressing plate 10. After replacing the new lower pressing plate 10, the staff again uses the cross screwdriver to place it in the hole position on the top of the top column 20 and applies downward pressure to make the top column 20 overcome the elastic force of the limiting spring 23 to move linearly downward. In this process, the protruding column 21 on the side wall of the top column 20 will continue to move downward through the hole position on the limiting plate 22. When the protruding column 21 moves to the appropriate position, the staff rotates the top column 20 again to make the protruding column 21 rotate to the corresponding position clamped at the bottom of the limiting plate 22. At this time, the downward displacement of the top column 20 will drive the locking inner column 18 to move downward synchronously, and the locking inner column 18 will extrude the balls 19 again to make the balls 19 roll along the guide surface inside the locking outer column 17 and finally embed in the locking groove 24 of the lower pressing plate 10, realizing the relocking connection of the lower pressing plate 10 and the connecting plate 9. In this way, the locking operation of the new lower pressing plate 10 is completed, thereby achieving the effect of quickly and conveniently replacing the lower pressing plate 10 of different types, greatly improving the flexibility and adaptability of the equipment, and being able to meet the diversified needs of the lower pressing plate 10 in the production process of different glass molds, effectively improving the production efficiency and product quality.
[0037] Reference Figure 2 and Figure 3The top of the support table 1 is fixedly connected with support plates 3 on both sides, which support and fix the slide rails 5, provide stable guiding framework for the sliding of the sliding blocks 11, ensure the accuracy and stability of the movement track, and are fixedly connected with front and rear symmetrical slide rails 5 between the side walls. The slide rails 5 are made of high-hardness and wear-resistant alloy steel, have high smoothness of the inner wall surface and low friction coefficient, so that the sliding blocks 11 can smoothly slide left and right on the inner wall, thereby realizing the adjustment function of the horizontal position of the lower pressing plate 10, and providing flexible adjustment means for molds of different sizes and shapes. The top of the base 6 is fixedly connected with a sliding block 11 made of wear-resistant and high-strength alloy steel, which is fixedly connected with the base 6 through high-precision bolts to ensure firm fixation and prevent loosening or displacement during work. The sliding block 11 is slidingly connected to the inner wall of the slide rail 5 and has a sliding hole 16 in the inside. The hole diameter of the sliding hole 16 ensures that the movable column 12 can flexibly slide left and right, while maintaining good concentricity and perpendicularity. The inner wall of the sliding hole 16 is slidingly connected with left and right symmetrical movable columns 12, and the side walls of the movable columns 12 are fixedly connected with push plates 13. The main function of the push plates 13 is to tightly fit on the inner wall of the slide rail 5 under the extrusion of the threaded column 14, to realize the fixation of the sliding block 11 by increasing the friction force, prevent accidental sliding of the sliding block 11 during die casting, and ensure the stability and accuracy of the position of the lower pressing plate 10. The sliding block 11 is slidingly connected with a threaded column 14 made of alloy steel and having high-precision threads on the surface. The threaded column 14 is in high-precision cooperation with the threaded hole in the sliding block 11, can realize accurate up and down displacement movement, is located above the sliding hole 16, and is fixedly connected with a handle 15 on the top. The handle 15 is made of rubber material wrapped around a metal rod and is convenient for manual operation by workers to apply torque to rotate the threaded column 14, thereby realizing the control of the entire position adjustment mechanism.
[0038] Specifically, when the position of the lower pressing plate 10 needs to be adjusted to adapt to different molds or process requirements, the worker will first stand at the appropriate operating position of the device, hold the handle 15 above the base 6 with his hand, and then manually rotate the handle 15 in a clockwise direction by applying a certain torque. The rotation of the handle 15 is transmitted to the threaded column 14 through the rigid connection between them, causing the threaded column 14 to perform a rotational motion in the threaded hole inside the slider 11 around its own central axis. Due to the threaded cooperation between the threaded column 14 and the slider 11, the rotational motion of the threaded column 14 is converted into a straight upward displacement motion along its axis. During the upward displacement of the threaded column 14, its bottom gradually moves away from the left and right movable columns 12 that were in close contact with it, so that the movable columns 12 lose the extrusion force from the threaded column 14. After losing the extrusion, the movable columns 12, together with the push plate 13 fixedly connected thereto, become loose under the action of their own gravity and the small gap between the inner wall of the sliding hole 16, at which time the friction between the push plate 13 and the inner wall of the sliding rail 5 is greatly reduced, thereby enabling the slider 11 to freely slide left and right on the inner wall of the sliding rail 5. The worker can push the base 6 or directly push the slider 11 to make the slider 11 slide with the lower pressing plate 10 to the corresponding precise position according to actual needs. When the slider 11 slides to the predetermined position, the worker will hold the handle 15 again and rotate it in the opposite direction by applying a counterclockwise torque. This rotating action causes the threaded column 14 to rotate in the opposite direction around its central axis, so that under the action of the thread, the threaded column 14 performs a straight downward displacement motion along the axis. As the threaded column 14 moves downward, its bottom gradually approaches and eventually contacts the left and right movable columns 12. When it continues to move downward, the threaded column 14 will exert an increasingly greater extrusion force on the movable columns 12. After being extruded, the movable columns 12 will slide horizontally along the inner wall of the sliding hole 16 to both sides and transmit this extrusion force to the push plate 13, causing the push plate 13 to tightly press against the inner wall of the sliding rail 5. Through the friction between the push plate 13 and the inner wall of the sliding rail 5 and the support force of the movable columns 12 on the push plate 13, the slider 11 is firmly fixed, thereby completing the precise fixing of the position of the lower pressing plate 10, achieving efficient and precise adjustment of the position of the lower pressing plate 10, greatly improving the adaptability of the device to different molds and the flexibility of the production process, and providing strong support for ensuring the precision and quality of glass mold casting.
[0039] Working principle: when using the clay sand static pressure die casting machine, the worker can replace the different size of the lower plate 10 according to the actual demand, first the worker uses the cross screwdriver to aim at the corresponding hole position of the top column 20, rotates the top column 20, when the protruding column 21 on the side wall of the top column 20 is rotated to be consistent with the hole position on the limiting plate 22, at this time, the limiting spring 23 in the inner wall of the top column 20 which is in a compressed state loses extrusion and rebounds to push the top column 20 upward, at the same time, the locking inner column 18 is also displaced upward, so that the plurality of balls 19 on the bottom of the inner wall of the locking outer column 17 lose the extrusion from the outer wall of the locking inner column 18, so as to become loose and slide from the inner wall of the locking groove 24 to the inside of the locking outer column 17, so as to complete the unlocking of the lower plate 10, after replacing the new lower plate 10, continue to use the cross screwdriver to press down the top column 20, so that the protruding column 21 passes through the limiting plate 22, and then rotates the top column 20, so that the protruding column 21 is clamped at the bottom of the limiting plate 22, at the same time, the locking inner column 18 extrudes the ball 19 downward to the locking groove 24, so as to complete the locking of the lower plate 10, so as to achieve the effect of quickly replacing different types of lower plate 10, when the position of the lower plate 10 needs to be adjusted, the worker can manually rotate the handle 15 above the base 6, the rotation of the handle 15 drives the threaded column 14 to rotate, the rotation of the threaded column 14 is converted into upward displacement under the action of the thread, the displacement of the threaded column 14 makes the bottom no longer extrude the movable column 12 on the left and right sides, the movable column 12 loses extrusion, and then the push plate 13 becomes loose, so that the sliding block 11 can slide in the inner wall of the slide rail 5, when sliding to the corresponding position, the worker reversely rotates the handle 15, so that the threaded column 14 extrudes the movable column 12 and the push plate 13 downward, so that the push plate 13 tightly extrudes the inner wall of the slide rail 5, so as to complete the fixation of the position of the lower plate 10, so as to achieve the effect of efficiently adjusting the position of the lower plate 10.
[0040] Finally, it should be pointed out that: the above only for preferred embodiments of the present application, and not for limiting the present application, although the present application has been described in detail with reference to the foregoing embodiments, for those skilled in the art, it still can modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part of the technical features, any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application, should be included in the protection scope of the present application.
Claims
1. A wet sand static casting machine for glass mold casting, comprising a support table (1), characterized in that: The support table (1) top is provided with a die-casting assembly for pressing operation of clay sand, and the die-casting assembly is internally provided with a replacement assembly for quick replacement of different types of molds. The replacement assembly comprises a connecting plate (9) provided with a lower pressing plate (10) at the bottom, a plurality of locking outer columns (17) fixedly connected inside the connecting plate (9), the locking outer columns (17) being circumferentially distributed, the locking outer columns (17) being slidably connected to the inner wall of the lower pressing plate (10), a plurality of locking grooves (24) being formed in the lower pressing plate (10), the locking grooves (24) being located at the bottom of the locking outer columns (17), locking inner columns (18) being slidably connected to the inner wall of the locking outer columns (17), a plurality of rolling balls (19) being slidably connected to the inner bottom of the locking outer columns (17), top columns (20) being fixedly connected to the top of the locking inner columns (18), a plurality of protruding columns (21) being fixedly connected to the side wall of the top columns (20), the protruding columns (21) being circumferentially distributed, limiting plates (22) being fixedly connected to the top inner wall of the locking outer columns (17), limiting springs (23) being arranged in the inner wall of the top columns (20), one end of the limiting springs (23) being fixedly connected to the top inner wall of the top columns (20), the other end of the limiting springs (23) being fixedly connected to the inner wall of the locking outer columns (17).
2. A wet type clay sand static casting press for glass mold casting according to claim 1, characterized in that: The die-casting assembly comprises a base (6) fixedly connected with a hydraulic machine (7) at the bottom, and the output end of the hydraulic machine (7) is fixedly connected to the top of the connecting plate (9).
3. A wet sand static casting machine for glass mold casting according to claim 2, characterized in that: The hydraulic machine (7) is fixedly connected with a plurality of telescopic rods (8) at the bottom, the telescopic rods (8) being circumferentially distributed, one end of the telescopic rods (8) being fixedly connected to the top of the connecting plate (9), and the telescopic rods (8) being located outside the connecting plate (9).
4. The wet sand static casting press for glass mold casting according to claim 1, wherein: The support table (1) is fixedly connected with support plates (3) on the left and right sides at the top, and the support plates (3) are fixedly connected with front and rear symmetrical slide rails (5) between the side walls.
5. A wet type clay sand static casting press for glass mold casting according to claim 4, characterized in that: The support table (1) is fixedly connected with a plurality of support legs (2) at the bottom, the support legs (2) being arrayed, the support table (1) is fixedly connected with a die mold (4) at the top, and the die mold (4) is located between the support plates (3).
6. A wet type clay sand static casting press for glass mold casting according to claim 2, characterized in that: The base (6) is fixedly connected with a sliding block (11) at the top, and the sliding block (11) is slidably connected to the inner wall of the slide rail (5).
7. A wet type clay sand static casting press for glass mold casting according to claim 6, characterized in that: The inner wall of the sliding hole (16) is slidably connected with left and right symmetrical movable columns (12), and the side walls of the movable columns (12) are fixedly connected with push plates (13).
8. A wet type clay sand static casting press for glass mold casting according to claim 7, characterized in that: The sliding block (11) is slidably connected with a threaded column (14) inside, the threaded column (14) is located above the sliding hole (16), and the top of the threaded column (14) is fixedly connected with a handle (15).