Novel tire taking equipment for compression molding of ultrathin high-temperature solid material
By employing a bidirectional collaborative demolding mechanism for the heat dissipation and tire removal components, and by implementing parallel operations of molding and tire removal, the problems of finished product breakage and low production efficiency in the molding of ultra-thin high-temperature solid materials have been solved, achieving efficient continuous production and improved finished product quality.
Patent Information
- Application Number
- CN202511177779.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-21
- Publication Date
- 2025-11-07
AI Technical Summary
During the molding process of ultra-thin high-temperature solid materials, the adhesion between the finished product and the mold is strong. Traditional demolding methods can easily lead to damage to the finished product, and the production process cannot be made continuous, which affects production efficiency.
The heat dissipation and tire removal assembly is adopted. Air pump one and air pump three are used to achieve bidirectional collaborative demolding. Air pump three blows air to the bottom of the ultra-thin part through the lower mold vent to form a thrust, while air pump one forms a negative pressure suction force from the top. With the help of support rods and nozzles for cooling, the molding and tire removal operations can be carried out in parallel.
It reduces demolding resistance, avoids finished product breakage, enables continuous production, and improves production efficiency and the dimensional accuracy and mechanical properties of finished products.
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Figure CN120902258A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of mold pressing, in particular to a novel tire taking equipment for ultra-thin high-temperature solid material mold pressing. BACKGROUND
[0002] Ultra-thin high-temperature solid material is one of plastic products, and part of the ultra-thin high-temperature solid material is made by recycling plastic waste, which aims to resource recycling and environmental benefits. However, the following problems exist in the current tire taking after ultra-thin high-temperature solid material mold pressing.
[0003] In the existing mold pressing process, there are two outstanding problems: on the one hand, the high-temperature molten plastic waste will closely adhere to the surface of the mold cavity, resulting in strong adsorption force between the finished product and the mold. Especially for ultra-thin parts, because the surface area to volume ratio is relatively high, the contact area with the mold is larger, and this adsorption force is more difficult to break. The traditional demolding method (such as mechanical ejection, manual tire taking, etc.) is extremely easy to cause the edge of the finished product to be damaged and torn due to stress concentration, and even the taking of the material fails to completely separate, so it will further increase the increase of defective products, and also cause the problem of plastic waste.
[0004] On the other hand, the production process of the traditional mold pressing equipment has obvious limitations: after completing a mold pressing, the finished product must be cooled (the material in a high-temperature state needs to be solidified from a softened state to a state that can be safely taken, which requires a certain time) and the tire taking operation is completed, and the next mold pressing can be started. This directly leads to the idle state of the core processing components such as the upper mold and the heating system during the cooling and tire taking stage, which cannot realize continuous production and seriously restricts the production efficiency.
[0005] Therefore, a novel tire taking equipment for ultra-thin high-temperature solid material mold pressing is proposed. SUMMARY
[0006] The purpose of the present application is to provide a novel tire taking equipment for ultra-thin high-temperature solid material mold pressing to solve the problems raised in the background art.
[0007] In order to achieve the above object, the present application provides the following technical scheme: A new type of tire taking equipment for ultra-thin high-temperature solid material die forming, comprising a base table and a top table, the top table is fixedly connected to the base table, the top of the top table is provided with an upper die, a servo motor one is installed on the base table, the servo motor one is divided into a fixed end and an output shaft, the output shaft end of the servo motor one is fixedly connected with a reciprocating screw rod one, a moving table is slidably connected to the base table, the top of the moving table is symmetrically provided with two lower dies, one of the lower dies is provided with a super element, a heat dissipation and tire taking assembly is arranged on the moving table, the heat dissipation and tire taking assembly comprises a servo motor two, the servo motor two is installed on the moving table, the servo motor two is divided into a fixed end and an output shaft, the output shaft end of the servo motor two is fixedly connected with a reciprocating screw rod two, the reciprocating screw rod two is threadedly connected with a connecting block, the connecting block is fixedly connected with a supporting rod, and the top of the supporting rod is provided with a gas pump one.
[0008] Further, the bottom end of the supporting rod is fixedly connected with a support air pipe, the bottom end of the support air pipe is fixedly connected with a bottom air pipe, the inner surface of the bottom air pipe is fixedly connected with a nozzle, the bottom end of the supporting rod is fixedly connected with an electric telescopic rod two, the bottom end of the electric telescopic rod two is provided with a support plate, and the top of the end of the support plate away from the electric telescopic rod two is provided with a gas pump three.
[0009] Further, the reciprocating screw rod one is threadedly connected with the moving table, and the bottom of each of the two lower dies is provided with a vent hole.
[0010] Further, the supporting rod is slidably connected with the moving table, the suction and blowing end of the gas pump one faces downward, the suction and blowing end of the gas pump one is in communication with the inside of the bellows, the taking piece plate is provided with a cavity, and a plurality of air suction holes are uniformly formed in the bottom of the taking piece plate.
[0011] Further, the telescopic shaft end of the electric telescopic rod one is fixedly connected with the taking piece plate, the taking piece plate is detachably connected with the bottom end of the bellows and the telescopic shaft end of the electric telescopic rod one through bolts, and the rubber gaskets are arranged around the bottom of the air suction holes of the taking piece plate.
[0012] Further, the suction and blowing end of the gas pump two faces downward, and the suction and blowing end of the gas pump two is in communication with the inside of the support air pipe.
[0013] Further, the nozzle is provided with a plurality of air injection holes on the inner ring surface, and the side of the nozzle away from the bottom air pipe is inclined to the bottom.
[0014] Further, the telescopic shaft end of the electric telescopic rod two faces downward, and the telescopic shaft end of the electric telescopic rod two is fixedly connected with the support plate.
[0015] Further, the support plate is detachably connected with the telescopic shaft end of the second electric telescopic rod through bolts, and the air pumping end of the third air pump faces upward.
[0016] Further, the control panel is arranged on the base, and the first servo motor, the second servo motor, the first air pump, the first electric telescopic rod, the second air pump, the second electric telescopic rod and the third air pump are in an electrically connected relationship with the control panel.
[0017] Compared with the prior art, the present application has the following advantages: Firstly, in the prior art, the contact area between the overmold and the lower mold is large, and the adsorption force is strong, and the traditional demolding method (mechanical ejection, manual taking of the mold) aggravates the risk of damage to the finished product due to concentrated stress, further increases the defective products, and increases the waste recovery rate of plastic.
[0018] And through the operation of the heat dissipation and mold taking assembly, the first air pump and the third air pump realize a bidirectional collaborative demolding mechanism, the third air pump blows air to the bottom of the overmold through the air vent of the lower mold, an upward thrust is formed inside the cavity, the adsorption between the overmold and the lower mold is directly destroyed, and the two are physically separated, thereby reducing the demolding resistance from the root, the first air pump forms a uniform negative pressure adsorption force on the overmold from the top, cooperates with the thrust air flow at the bottom of the overmold, forms a collaborative force of "pushing down and pulling up", and takes out the overmold finished product, thereby avoiding the concentrated stress caused by the "point contact" of the traditional mechanical ejection, and greatly reducing the risk of edge damage and tearing of the overmold finished product.
[0019] Secondly, in the prior art, the core components such as the upper mold and the heating system are idle during the cooling and mold taking stage of the overmold.
[0020] And through the operation of the heat dissipation and mold taking assembly, when one lower mold enters the upper mold processing position for high-temperature melting and high-pressure molding, another lower mold synchronously completes the cooling and mold taking operation of the overmold in the non-processing position, realizes "molding and mold taking in parallel", the cooling and mold taking auxiliary processes overlap with the molding process, and the production time of a single overmold finished product no longer includes the additional time consumption of cooling and mold taking, so that the overall production rhythm is more compact, and the switching continuous processing purpose is realized through the movable mold.
[0021] Thirdly, the second air pump blows air to the overmold through the nozzle, accelerates the transformation of the overmold finished product from the high-temperature softening state to the normal-temperature solidification state, not only provides sufficient rigidity for subsequent overmold taking (to avoid deformation of the material), but also reduces the internal stress (such as warping and cracking) caused by uneven cooling, and improves the dimensional accuracy and mechanical properties of the overmold finished product. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 It is a three-dimensional schematic view of the overall device of the present application; Figure 2It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 3 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 2 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 4 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 3 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 5 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 3 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 6 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 7 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 5 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 8 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 9 It is the cutout schematic view of the base, top, upper die and other structures of the present application. Figure 7 It is the cutout schematic view of the base, top, upper die and other structures of the present application.
[0023] In the figure: 11, base; 12, top; 13, upper die; 14, servo motor one; 15, reciprocating screw one; 16, moving table; 17, lower die; 18, super member; 21, servo motor two; 22, reciprocating screw two; 23, connecting block; 24, support rod; 25, air pump one; 26, corrugated pipe; 27, taking piece plate; 28, rubber ring; 29, electric telescopic rod one; 210, air pump two; 211, support air pipe; 212, bottom air pipe; 213, nozzle; 214, electric telescopic rod two; 215, support plate; 216, air pump three. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the present application.
[0025] The embodiments provided by the present application include: It needs to be noted that: the top table 12 is integrated with the power clamping system, the heating temperature control system, the feeding system and the control system. In the prior art, the ultra-thin thermosetting molding is a process in which the control system controls the thermosetting plastic raw material coil to be put into the mold through the feeding system, the power clamping system is used to close the upper mold 13 and the lower mold 17, and the heating temperature control system is used for heating and pressurizing. Since the thermosetting plastic can soften and flow when heated for the first time, it will harden after being heated to a certain temperature and undergoing a chemical reaction, i.e., cross-linking reaction. This change is irreversible. When heated again, it cannot soften and flow again. By virtue of this characteristic, the molding process is carried out. The plastic flow during the first heating is used to fill the cavity under pressure, and then the ultra-thin part 18 is solidified to a certain shape and size, and finally the ultra-thin part 18 is solidified and molded.
[0026] The above content of the prior art will not be repeated.
[0027] It needs to be noted that: the raw material is based on plastic waste recycling.
[0028] Please refer to Figures 1 to 9 As shown in FIG. 1, a new tire taking equipment for ultra-thin high-temperature solid material molding includes a bottom table 11 and a top table 12. The top table 12 is fixedly connected to the bottom table 11. The top of the top table 12 is provided with an upper mold 13. A servo motor one 14 is installed on the bottom table 11. The servo motor one 14 is divided into a fixed end and an output shaft. The output shaft end of the servo motor one 14 is fixedly connected with a reciprocating screw rod one 15. A moving table 16 is slidably connected to the bottom table 11. The top of the moving table 16 is symmetrically provided with two lower molds 17. One of the lower molds 17 is provided with an ultra-thin part 18.
[0029] Among them: the reciprocating screw rod one 15 is threadedly connected with the moving table 16. Specifically, the servo motor one 14, the reciprocating screw rod one 15, the moving table 16 and the bottom table 11 constitute an existing reciprocating moving mechanism. That is, under the rotation of the output shaft of the servo motor one 14, the reciprocating movement of the moving table 16 on the bottom table 11 can be controlled.
[0030] Among them: as an existing known technology, the bottom of each of the two lower molds 17 is provided with an air vent. The air vent is used to exhaust the gas in the cavity to solve the molding defects caused by gas retention during the molding process.
[0031] In summary: in actual use, the user can control the reciprocating movement of the moving table 16 on the bottom table 11, so that the two lower molds 17 can be switched in position at the bottom of the upper mold 13. In this way, one of the lower molds 17 can always perform the molding work, and the other lower mold 17 can perform the heat dissipation and tire taking work of the ultra-thin part 18.
[0032] A heat dissipation tire removal assembly is installed on the moving platform 16. This assembly includes a second servo motor 21, which is mounted on the moving platform 16. The second servo motor 21 has a fixed end and an output shaft. A reciprocating lead screw 22 is fixedly connected to the output shaft end of the second servo motor 21. A connecting block 23 is threaded onto the reciprocating lead screw 22. A support rod 24 is fixedly connected to the connecting block 23. An air pump 25 is installed on the top of the support rod 24. A bellows 26 is fixedly connected to the lower surface of the top end of the support rod 24. A removal plate 27 is fixedly connected to the bottom end of the bellows 26. The bottom of the outer wall of the removal plate 27 is uniformly connected with… Multiple rubber gaskets 28 are provided. An electric telescopic rod 29 is fixedly connected to the lower surface of the top of the support rod 24. An air pump 210 is fixedly connected to the top of the support rod 24. A support air pipe 211 is fixedly connected to the lower surface of the top of the support rod 24. A bottom air pipe 212 is fixedly connected to the bottom end of the support air pipe 211. A nozzle 213 is fixedly connected to the inner surface of the bottom air pipe 212. An electric telescopic rod 214 is fixedly connected to the bottom end of the support rod 24. A support plate 215 is provided at the bottom end of the electric telescopic rod 214. An air pump 216 is provided at the top of the end of the support plate 215 away from the electric telescopic rod 214.
[0033] Where: Reference Figure 7 As shown, the support rod 24 is slidably connected to the sliding platform 16.
[0034] Among them, the servo motor 21, the reciprocating lead screw 22, the connecting block 23, and the support rod 24 constitute the existing reciprocating movement mechanism, that is, under the rotation of the output shaft of the servo motor 21, the reciprocating movement of the support rod 24 on the moving table 16 can be controlled.
[0035] As a supplement to the previous one: the reciprocating movement of the support rod 24 on the shift table 16 is to ensure that the support rod 24 can always be aligned with the lower mold 17, which needs to be cooled and removed.
[0036] Where: Reference Figure 5 , Figure 7 As shown, the air pump 25 has its suction end facing downwards and is connected to the inside of the bellows 26. The part-taking plate 27 has a through groove that connects to the bellows 26. The part-taking plate 27 has a cavity inside and multiple suction holes are evenly distributed at the bottom of the part-taking plate 27. Each suction hole corresponds to a rubber gasket 28 at its bottom.
[0037] Where: Reference Figure 7 As shown, the telescopic shaft end of the electric telescopic rod 29 is fixedly connected to the picking plate 27, specifically: the electric telescopic rod 29 controls the up and down movement of the picking plate 27.
[0038] Where: Reference Figure 3 , Figure 7As shown, the pickup plate 27 is detachably connected to the bottom end of the corrugated pipe 26 and the telescopic shaft end of the electric telescopic rod 1 by bolts, that is, the user can disassemble and replace the pickup plate 27 according to the shape, size and other characteristics of the superpart 18, so that the pickup plate 27 is always matched with the superpart 18.
[0039] Referring to Figure 5 As shown, the rubber gasket 28 is enclosed in the outer circle of the air inlet hole of the pickup plate 27, that is, the rubber gasket 28 plays a sealing role between the pickup plate 27 and the superpart 18.
[0040] Referring to Figure 6 As shown, the air pumping end of the air pump 2 is downward, and the air pumping end of the air pump 2 is connected with the inside of the supporting air pipe 211.
[0041] Referring to Figure 7 As shown, the supporting air pipe 211 is used to connect the air pumping end of the air pump 2 and the bottom air pipe 212, and plays a supporting role for the bottom air pipe 212.
[0042] Referring to Figure 3 , Figure 4 As shown, the inner ring surface of the nozzle 213 is uniformly provided with air injection holes, and the side of the nozzle 213 away from the bottom air pipe 212 is inclined to the bottom, which functions to uniformly spray air to the superpart 18 for cooling, and to continuously blow for a period of time after the superpart 18 is taken out to remove impurities in the lower mold 17.
[0043] Referring to Figure 6 As shown, the supporting plate 215 is detachably connected to the telescopic shaft end of the electric telescopic rod 2 by bolts, which functions to freely replace the supporting plate 215 by the user, so that the user can replace the supporting plate 215 according to the position of the air hole at the bottom of the lower mold 17, so that the end of the supporting plate 215 away from the electric telescopic rod 2 is aligned with the air hole, and the user further adjusts the position of the supporting plate 215 by bolts, so that the end of the supporting plate 215 away from the electric telescopic rod 2 is aligned with the air hole.
[0044] As a supplement to the above, since the position of the air hole of the lower mold 17 is usually determined by factors such as the characteristics of the mold cavity and the material characteristics, and the position of the air hole usually changes with the change of the lower mold 17 in producing the superpart 18, the detachable replacement and position adjustment of the supporting plate 215 play a role in adapting to the change of the position of the air hole, ensuring that the air pumping end of the air pump 3 is aligned with the position of the air hole of the lower mold 17.
[0045] Referring to
[0046] It should be noted that when the moving table 16 moves to the left and right on the base table 11, the lower mold 17 at the leftmost or rightmost side is completely misaligned with the upper mold 13, and the other lower mold 17 is accurately aligned with the upper mold 13, that is, the accurate alignment of the lower mold 17 and the upper mold 13 can be achieved through the path of the sliding groove on the base table 11.
[0047] It should be noted that the base table 11 is provided with a control panel, and the servo motor one 14, the servo motor two 21, the air pump one 25, the electric telescopic rod one 29, the air pump two 210, the electric telescopic rod two 214, and the air pump three 216 are electrically connected with the control panel.
[0048] In summary, when the overmolding 18 needs to be removed, the operation of the heat dissipation and tire removal assembly is divided into six steps: The first step: before the overmolding 18 is molded, the user disassembles and replaces the pickup plate 27 according to the shape and size of the cavity of the overmolding 18, so that the pickup plate 27 is always adapted to the overmolding 18, and the user disassembles and replaces the support plate 215 according to the position of the air hole of the lower mold 17 and adjusts the position to ensure that the air blowing end of the air pump three 216 is aligned with the air hole position of the lower mold 17.
[0049] The second step: when the overmolding 18 is molded, the user controls the output shaft of the servo motor one 14 to rotate through the control panel, so that the moving table 16 moves horizontally to the most side on the base table 11, and the lower mold 17 of the overmolding 18 to be removed is misaligned with the upper mold 13, and the other lower mold 17 is aligned with the upper mold 13, so that the two lower molds 17 can simultaneously remove the overmolding 18 and continue to mold the overmolding 18.
[0050] The third step: the user controls the rotation of the output shaft of the servo motor two 21 through the control panel, so that the support rod 24 drives the structure above it to move horizontally on the moving table 16, and ensures that the support rod 24 moves to the position of the lower mold 17 of the overmolding 18 to be removed, at this time the pickup plate 27 and the bottom air pipe 212 are located directly above the overmolding 18, and the air blowing end of the air pump three 216 is aligned with the air hole position of the lower mold 17.
[0051] The fourth step: the user controls the air blowing of the air pump two 210 through the control panel, and the air pump two 210 blows air into the inside of the bottom air pipe 212 through the support air pipe 211, and the bottom air pipe 212 blows air to cool the overmolding 18 through the nozzle 213, and the overmolding 18 is cooled by the downwardly inclined air blowing of the nozzle 213.
[0052] Fifth step: when the super member 18 is cooled, the user stops the air pump 2 210 through the control panel, and then the user controls the telescopic shaft of the electric telescopic rod 1 29 to expand, and controls the telescopic shaft of the electric telescopic rod 2 214 to contract, so that the bottom ends of the plurality of rubber gaskets 28 are attached to the upper surface of the super member 18, and the air pump 3 216 is connected to the air hole of the lower mold 17. At this time, the taking plate 27, the super member 18, and the plurality of rubber gaskets 28 form a cavity with an open top. At this time, the user controls the air pump 1 25 to suck air and controls the air pump 3 216 to blow air upward through the control panel. The cavity formed by the taking plate 27, the super member 18, and the plurality of rubber gaskets 28 is gradually sucked into a negative pressure state, so that the taking plate 27 and the plurality of rubber gaskets 28 are adsorbed to the super member 18. Since the plurality of rubber gaskets 28 are uniformly distributed at the bottom of the taking plate 27, the super member 18 is uniformly stressed at the top.
[0053] At the same time, the air pump 3 216 blows air upward, so that the gas acts on the bottom of the super member 18 through the air hole of the lower mold 17. At this time, the super member 18 is in a state of being adsorbed by negative pressure at the top and being loosened by gas at the bottom. After completion, the user controls the telescopic shaft of the electric telescopic rod 1 29 to contract through the control panel. The telescopic shaft of the electric telescopic rod 1 29 drives the taking plate 27 and the adsorbed super member 18 to move upward synchronously, thereby completing the tire taking work of the super member 18 from the lower mold 17.
[0054] Sixth step: after the tire taking is completed, the user controls the telescopic shaft of the electric telescopic rod 2 214 to expand through the control panel, so that the suction and blowing end of the air pump 3 216 no longer touches the lower mold 17. The user controls the air pump 1 25 and the air pump 3 216 to stop working through the control panel, and removes the super member 18 at the bottom of the plurality of rubber gaskets 28. When another lower mold 17 is completed for molding the super member 18 under the cooperation of the upper mold 13, the user controls the output shaft of the servo motor 2 21 to rotate through the control panel, that is, the second to fifth steps are repeated, so that the tire taking and molding of the super member 18 are performed at the same time.
[0055] It should be noted that, since the two lower molds 17 alternately perform the molding and tire taking of the super member 18 on the left and right sides of the base table 11, and then the super member 18 is removed from the bottom of the plurality of rubber gaskets 28, the user can set a collection device for the super member 18 on the left and right sides of the base table 11 in advance. After the tire taking is completed, the super member 18 can be directly placed into the collection device.
[0056] In summary, through the operation of the heat dissipation tire taking assembly, the following beneficial effects can be achieved: Firstly, in the prior art, the super-member 18 has a large contact area with the lower mold 17 and strong adsorption force, and the traditional demolding method is mechanical ejection and manual taking of the product, which intensifies the risk of product damage due to concentrated stress, further increases the rate of defective products, and increases the waste recovery rate of plastic.
[0057] Through the operation of the heat dissipation and product taking assembly, the air pump one 25 and the air pump three 216 realize a bidirectional collaborative demolding mechanism. The air pump three 216 blows air to the bottom of the super-member 18 through the air hole of the lower mold 17 to form an upward thrust from the inside of the cavity, directly destroying the adsorption between the super-member 18 and the lower mold 17, and physically separating the two, thereby reducing the demolding resistance from the root. The air pump one 25 forms a uniform negative pressure adsorption force on the super-member 18 from the top, in cooperation with the thrust air flow at the bottom of the super-member 18, to form a collaborative force of "pushing down and pulling up" to take out the super-member 18 product, avoiding the concentrated stress caused by the traditional mechanical ejection "point contact", and greatly reducing the risk of edge damage and tearing of the super-member 18 product.
[0058] Secondly, in the prior art, the core components such as the upper mold 13 and the heating system are idle during the cooling and product taking stage of the super-member 18.
[0059] Through the operation of the heat dissipation and product taking assembly, when one lower mold 17 enters the processing position of the upper mold 13 for high-temperature melting and high-pressure molding, another lower mold 17 simultaneously completes the cooling and product taking operation of the super-member 18 in the non-processing position, realizing "molding and product taking in parallel". The cooling and product taking auxiliary processes overlap with the molding process, and the production time of a single super-member 18 product no longer includes the additional time consumption of cooling and product taking, making the overall production rhythm more compact, and achieving the purpose of continuous processing through switchable molds.
[0060] Thirdly, the air pump two 210 blows air to the super-member 18 through the nozzle 213 for directional air blowing, accelerating the transformation of the super-member 18 product from a high-temperature softened state to a normal-temperature solidified state, providing sufficient rigidity for subsequent product taking to avoid deformation, reducing internal stress such as warping and cracking caused by uneven cooling, and improving the dimensional accuracy and mechanical properties of the super-member 18 product.
[0061] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0062] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A new type of tire removing equipment for ultra-thin high-temperature solid material die forming, characterized in that: The utility model provides a kind of moulding machine, including bottom platform (11), top platform (12), top platform (12) fixedly connected on bottom platform (11), the top of top platform (12) is provided with upper die (13), servo motor one (14) is installed on bottom platform (11), servo motor one (14) is divided into fixed end and output shaft, the output shaft end of servo motor one (14) is fixedly connected with reciprocating screw one (15), slidingly connected with moving platform (16) on bottom platform (11), the top of moving platform (16) is symmetrically installed with two lower dies (17), one of lower dies (17) is provided with super element (18), moving platform (16) is provided with heat dissipation and take tire assembly, heat dissipation and take tire assembly includes servo motor two (21), servo motor two (21) is installed on moving platform (16), servo motor two (21) is divided into fixed end and output shaft, the output shaft end of servo motor two (21) is fixedly connected with reciprocating screw two (22), reciprocating screw two (22) is screw-connected with connecting block (23), connecting block (23) is fixedly connected with support rod (24), the top of support rod (24) is installed with air pump one (25).
2. A new type of tire removing device for ultra-thin high-temperature solid material die forming according to claim 1, characterized in that: The bottom end of the lower surface of the top end of support rod (24) is fixedly connected with bellows (26), the bottom end of bellows (26) is fixedly connected with piece taking plate (27), the outer wall bottom of piece taking plate (27) is uniformly fixedly connected with a plurality of rubber gaskets (28), the bottom surface of the top end of support rod (24) is fixedly connected with electric telescopic rod one (29), the top of support rod (24) is fixedly connected with air pump two (210), the bottom surface of the top end of support rod (24) is fixedly connected with support air pipe (211), the bottom end of support air pipe (211) is fixedly connected with bottom air pipe (212), the inner surface of bottom air pipe (212) is fixedly connected with nozzle (213), the bottom end of support rod (24) is fixedly connected with electric telescopic rod two (214), the bottom end of electric telescopic rod two (214) is provided with support plate (215), the top of the end, away from electric telescopic rod two (214), of support plate (215) is provided with air pump three (216).
3. A new type of tire removing device for ultra-thin high-temperature solid material die forming according to claim 1, characterized in that: Reciprocating screw one (15) is screw-connected with moving platform (16), and the bottom of the two lower dies (17) is provided with a vent hole.
4. A new type of tire removing device for ultra-thin high-temperature solid material die forming according to claim 2, characterized in that: Support rod (24) is slidingly connected with moving platform (16), the air suction end of air pump one (25) faces downward, the air suction end of air pump one (25) is connected with the inside of bellows (26), a through slot, connected with bellows (26), is formed in piece taking plate (27), a cavity is arranged in piece taking plate (27), a plurality of air suction holes are uniformly formed in the bottom of piece taking plate (27), and each air suction hole corresponds to one rubber gasket (28).
5. A new type of tire removing device for super-thin high-temperature solid material die forming according to claim 2, characterized in that: The telescopic shaft end of electric telescopic rod one (29) is fixedly connected with piece taking plate (27), piece taking plate (27) and the bottom end of bellows (26) and the telescopic shaft end of electric telescopic rod one (29) are detachably connected through bolts, and the rubber gaskets (28) are enclosed outside the bottom of the air suction hole of piece taking plate (27).
6. A new type of tire removing device for super-thin high-temperature solid material die forming according to claim 2, characterized in that: The air suction end of air pump two (210) faces downward, and the air suction end of air pump two (210) is connected with the inside of support air pipe (211).
7. A new type of tire removing device for super-thin high-temperature solid material die forming according to claim 2, characterized in that: The nozzle (213) is uniformly provided with a jet hole on the inner ring surface, and the side of the nozzle (213) away from the bottom air pipe (212) is inclined to the bottom.
8. A new type of tire removing device for ultra-thin high-temperature solid material die forming according to claim 2, characterized in that: The telescopic shaft end of the second electric telescopic rod (214) faces downward, and the telescopic shaft end of the second electric telescopic rod (214) is fixedly connected with the supporting plate (215).
9. A new type of tire removing device for super-thin high-temperature solid material die forming according to claim 2, characterized in that: The telescopic shaft end of the second electric telescopic rod (214) is detachably connected with the supporting plate (215) through bolts, and the air pumping end of the third air pump (216) faces upward.
10. A new type of tire removing device for super-thin high-temperature solid material die forming according to claim 2, characterized in that: The bottom table (11) is provided with a control panel, and the servo motor (14), the servo motor (21), the air pump (25), the electric telescopic rod (29), the air pump (210), the electric telescopic rod (214), and the air pump (216) are in an electrically connected relationship with the control panel.