Integrated injection molding machine for faucet base
By designing an integrated injection molding machine for faucet bases and employing lifting components and linked core-pulling molds, the automatic removal and collection of the molded bases is achieved, solving the problem of cumbersome manual operation in existing technologies and improving production efficiency and equipment utilization.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- YUYAO FLUSHING LE SANITARY WARE CO LTD
- Filing Date
- 2026-05-29
- Publication Date
- 2026-07-31
AI Technical Summary
Existing faucet base integrated injection molding machines cannot achieve automatic detachment and collection after molding, resulting in cumbersome operation, long time consumption, reduced production efficiency and increased labor costs.
An integrated injection molding machine for faucet bases was designed. It consists of a base, an extruder body, a fixed template, a moving template, and a linked core-pulling mold. Through the linkage of lifting components, material picking components, and material receiving components, the molded base can be automatically removed and collected, reducing manual operation.
It has achieved automated material handling and collection for the molding base, simplified the operation steps, improved production efficiency, reduced manual labor intensity and costs, and ensured the continuous and stable operation of the equipment.
Smart Images

Figure CN122275227B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of injection molding technology, and more particularly to an integrated injection molding machine for faucet bases. Background Technology
[0002] The integrated injection molding machine for faucet bases is a specialized injection molding equipment for integral molding of plastic faucet bases. Through mold closing, injection molding, pressure holding, and cooling processes, the main structure, internal flow channels, valve core mounting cavity, connecting threads, and mounting fixing positions of the faucet base are integrally injection molded in the same mold in one go, eliminating the need for subsequent splicing and assembly of multiple parts. This specialized injection molding equipment achieves integrated structure and sealing of the faucet base.
[0003] Currently, in the injection molding process using an integrated faucet base injection molding machine, after the equipment completes the base molding and opens the mold, the molded base cannot be automatically detached and collected. It usually requires manual removal of the molded base from the mold. This manual removal method is not only cumbersome and time-consuming, but also prone to delays due to human operation, which can extend the molding cycle. It also increases the labor intensity and labor costs, making it difficult to achieve continuous automated production and restricting the overall injection molding efficiency and production capacity of faucet bases.
[0004] Therefore, it is necessary to design an integrated injection molding machine for faucet bases to solve the above problems. Summary of the Invention
[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing an integrated injection molding machine for faucet bases.
[0006] To achieve the above objectives, the present invention adopts the following technical solution: An integrated injection molding machine for faucet bases includes a base and an extruder body disposed on one side of the top surface of the base. A fixed template is fixedly installed on the other side of the top surface of the base. Guide pillars are fixedly installed at the four corners of the side of the fixed template. A movable template is slidably installed on the outer wall of the four guide pillars. A linkage core-pulling mold is disposed between the fixed template and the movable template. A lifting assembly is disposed on the top surface of the fixed template. A linkage structure for driving the lifting assembly is disposed between the fixed template and the movable template. A material-receiving cylinder is disposed at the top of the lifting assembly. A material-receiving component for removing the molded base is disposed on the material-receiving cylinder. A material-receiving component for catching the removed base is disposed below the linkage core-pulling mold between the fixed template and the movable template. The material handling assembly includes two shafts symmetrically and rotatably mounted on the inner wall of the bottom end of the material handling cylinder. A clamp is fixedly fitted on the outer wall of the shaft, and a torsion spring is fitted on the end of the shaft. The two ends of the torsion spring are fixedly connected to the material handling cylinder and the shaft, respectively.
[0007] As a preferred embodiment of the present invention, the lifting assembly includes a slot formed on the top surface of the fixed template, a lifting rod provided on the inner wall of the slot, a support spring fixedly installed on the inner bottom surface of the slot, a guide ring fitted on the outer wall of the lifting rod, two threaded arc plates symmetrically fixedly installed on the bottom surface of the guide ring, and the opening end of the slot having a thread for screwing into the threaded arc plates, a spring telescopic rod fixedly installed at the top end of the lifting rod, and the material picking cylinder fixedly installed on the telescopic end of the spring telescopic rod through a mounting plate.
[0008] As a preferred embodiment of the present invention, two guide bars are symmetrically fixedly installed on the outer wall of the lifting rod, and two guide openings adapted to the guide bars are symmetrically opened on the inner wall of the guide ring.
[0009] As a preferred embodiment of the present invention, the linkage structure includes a connecting plate fixedly installed at the top of the lifting rod, a guide wheel rotatably installed on the top surface of the fixed template, a fixing plate fixedly installed on the top surface of the moving template, and a steel rope fixedly installed on the bottom surface of the connecting plate.
[0010] As a preferred embodiment of the present invention, the bottom end of the steel rope passes through the outer wall of the guide wheel and is connected to the fixing plate via a hook.
[0011] As a preferred embodiment of the present invention, the material handling assembly further includes a sliding plate slidably mounted on the inner wall of the material handling cylinder. Two push blocks adapted to the top of the clamping plate are symmetrically and fixedly mounted on the bottom surface of the sliding plate. A linkage rod is fixedly mounted on the top surface of the sliding plate. The top of the linkage rod passes through the top surface of the material handling cylinder and is fixedly mounted with a transmission wedge. A return spring is fitted on the outer wall of the linkage rod, and both ends of the return spring are fixedly connected to the linkage rod and the material handling cylinder, respectively. A drive wedge adapted to the transmission wedge is slidably mounted on the side of the mounting plate. A magnetic sheet is fixedly mounted on the side of the drive wedge via a support rod. A bracket is provided on the side of the fixed template, and two magnetic plates corresponding to the magnetic sheets are fixedly mounted on the side of the bracket.
[0012] As a preferred embodiment of the present invention, both the magnetic sheet and the magnetic plate are set to be inclined at 45 degrees in the horizontal direction, and the magnetic poles of the magnetic sheet and the magnetic plate are the same.
[0013] As a preferred embodiment of the present invention, the receiving assembly includes a rotating shaft rotatably mounted on the side of a fixed template, a receiving hopper fixedly mounted at the end of the rotating shaft, a torsion spring II fitted at the end of the rotating shaft, and the two ends of the torsion spring II being fixedly connected to the fixed template and the rotating shaft respectively. A push rod is fixedly mounted on the side of the moving template, and a bent rod corresponding to the end of the receiving hopper is fixedly mounted at the end of the push rod.
[0014] As a preferred embodiment of the present invention, the bending rod and the push rod are set at a 45-degree angle, and the end of the bending rod is chamfered.
[0015] As a preferred embodiment of the present invention, the top surface of the base is provided with a driving structure for driving the moving template.
[0016] The present invention has the following beneficial effects: 1. In the initial state of the equipment of the present invention, the drive structure drives the linkage core-pulling mold to close tightly, avoiding leakage of injection molding raw materials and ensuring the molding accuracy of the cavity; the molten raw material enters the cavity smoothly through the preset feeding channel, and cools and forms under the limiting action of the mold. The formed faucet base meets the specifications. At the same time, during the material picking process, the material picking component accurately fits the base, avoiding damage or deformation of the base, further improving the product qualification rate and reducing material waste and rework costs caused by molding defects. 2. This invention realizes the linkage of the entire process of injection molding, molding, material picking and receiving, eliminating the need for operators to frequently approach the mold. They only need to stand by the equipment and periodically remove the molding base from the receiving component, simplifying manual operation steps. When changing the mold, the material picking mechanism can be quickly disassembled and reset to avoid interference and shorten the mold change time. The receiving hopper automatically flips and resets to avoid obstacles without manual adjustment, improving overall processing efficiency and reducing manual labor intensity and labor costs. 3. The material handling mechanism of this invention is synchronously linked with the moving template through components such as fixed plate, steel rope, and connecting plate to achieve precise lifting and lowering of the material handling cylinder, ensuring accurate material handling position. The material handling component uses magnetic repulsion and spring force to realize automatic opening and closing of the clamping plate, completing the clamping and release of the base. The operation is smooth and without jamming. The receiving hopper is linked with the moving template, automatically avoiding interference when the mold is closed and automatically positioning itself when the mold is opened, avoiding interference with the mold operation, ensuring continuous and stable operation of the equipment, reducing downtime due to failure, and improving production continuity and equipment utilization. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of the integrated injection molding machine for faucet base proposed in this invention; Figure 2 This is a schematic diagram of the fixed template, guide column, and moving template structure of the integrated injection molding machine for faucet base proposed in this invention. Figure 3 This is a schematic diagram of the structure between the fixed template and the moving template of the integrated injection molding machine for faucet base proposed in this invention; Figure 4 This is an exploded structural diagram of the fixed template and lifting rod of the integrated injection molding machine for faucet base proposed in this invention. Figure 5 This is a schematic diagram of the lifting rod and material handling cylinder structure of the integrated injection molding machine for faucet base proposed in this invention. Figure 6 This is a front sectional view of the material handling cylinder of the integrated injection molding machine for faucet base proposed in this invention. Figure 7 This is a schematic diagram of the bottom structure between the fixed template and the moving template of the integrated injection molding machine for faucet base proposed in this invention.
[0018] In the diagram: 1. Machine base; 2. Extruder body; 3. Fixed die platen; 4. Guide pillar; 5. Moving die platen; 6. Linkage core-pulling mold; 7. Lifting assembly; 71. Slot; 72. Lifting rod; 73. Support spring; 74. Guide ring; 75. Threaded arc plate; 76. Guide bar; 77. Guide opening; 78. Spring telescopic rod; 8. Linkage structure; 81. Connecting plate; 82. Guide wheel; 83. Fixing plate; 84. Steel rope; 9. Feeding cylinder; 10. Material handling assembly; 101. Shaft; 102. Clamping plate; 103. Torsion spring 1; 104. Slide plate; 105. Push block; 106. Linkage rod; 107. Return spring; 108. Transmission wedge; 109. Drive wedge; 1010. Magnetic sheet; 1011. Bracket; 1012. Magnetic plate; 11. Receiving assembly; 111. Rotating shaft; 112. Receiving hopper; 113. Torsion spring II; 114. Push rod; 115. Bending rod; 12. Driving structure. Detailed Implementation
[0019] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0020] Example 1: The faucet base integrated injection molding machine disclosed in this example is described below. Figure 1-7 The machine includes a base 1 and an extruder body 2 disposed on one side of the top surface of the base 1. A fixed template 3 is fixedly installed on the other side of the top surface of the base 1. Guide pillars 4 are fixedly installed at the four corners of the side of the fixed template 3. A movable template 5 is slidably installed on the outer wall of the four guide pillars 4. A linkage core-pulling mold 6 is provided between the fixed template 3 and the movable template 5. A drive structure 12 for driving the movable template 5 is provided on the top surface of the base 1. A lifting assembly 7 is provided on the top surface of the fixed template 3. A linkage structure 8 for driving the lifting assembly 7 is provided between the fixed template 3 and the movable template 5. A material-receiving cylinder 9 is provided at the top of the lifting assembly 7. A material-receiving assembly 10 for removing the forming base is provided on the material-receiving cylinder 9. A receiving assembly 11 for catching the removed base is provided at the position below the linkage core-pulling mold 6 between the fixed template 3 and the movable template 5.
[0021] The implementation principle of this embodiment is as follows: In use, the equipment is in its initial working state. Under the stabilizing effect of the drive structure 12, the linkage core-pulling mold 6 maintains a tight mold-closing state, ensuring that the raw material will not leak during injection molding and that the molding structure is accurate. The extruder 2 starts and continuously extrudes the molten raw material. This raw material smoothly enters the cavity of the linkage core-pulling mold 6 through the preset feeding channel. Under the limiting and molding action of the mold, it gradually cools and solidifies, forming a faucet base that meets the specifications. After the base is completely formed, the drive structure 12 receives a signal and starts working, driving the moving platen 5 to move backward along the preset trajectory, thereby driving the linkage core-pulling mold 6 to simultaneously complete the mold opening action, exposing the formed faucet base. During the movement of the moving platen 5... The system uses a pre-set linkage structure 8 to synchronously drive the lifting component 7 to move downwards smoothly. The material picking cylinder 9 on the lifting component 7 moves downwards in sync. When the material picking cylinder 9 moves to the corresponding position, the material picking component 10 on the material picking cylinder 9 precisely fits into the molding base, quickly and stably removing the molding base from the cavity of the linkage core-pulling mold 6, avoiding damage or deformation of the base. After being removed, the molding base loses the restriction of the material picking component 10 and falls smoothly into the pre-set receiving component 11 below the equipment under its own gravity. There is no need for staff to frequently approach the mold to operate. Staff only need to stand by the equipment and remove the molding base from the receiving component 11, reducing manual operation steps and improving overall processing efficiency.
[0022] Example 2: Based on Example 1, this example discloses an integrated injection molding machine for faucet bases, such as... Figure 2-5 As shown, the lifting assembly 7 includes a slot 71 on the top surface of the fixed template 3. A lifting rod 72 is provided on the inner wall of the slot 71. A support spring 73 is fixedly installed on the inner bottom surface of the slot 71. A guide ring 74 is fitted on the outer wall of the lifting rod 72. Two threaded arc plates 75 are symmetrically fixedly installed on the bottom surface of the guide ring 74. The opening end of the slot 71 is provided with a thread that is screwed to the threaded arc plate 75. Two guide bars 76 are symmetrically fixedly installed on the outer wall of the lifting rod 72. Two guide openings 77 that are adapted to the guide bars 76 are symmetrically opened on the inner wall of the guide ring 74. A spring telescopic rod 78 is fixedly installed on the top end of the lifting rod 72. The material picking cylinder 9 is fixedly installed on the telescopic end of the spring telescopic rod 78 through a mounting plate. The linkage structure 8 includes a connecting plate 81 fixedly installed at the top of the lifting rod 72, a guide wheel 82 rotatably installed on the top surface of the fixed template 3, a fixing plate 83 fixedly installed on the top surface of the moving template 5, and a steel rope 84 fixedly installed on the bottom surface of the connecting plate 81. The bottom end of the steel rope 84 passes through the outer wall of the guide wheel 82 and is connected to the fixing plate 83 through a hook.
[0023] The implementation principle of this embodiment is as follows: During the operation of the linkage core-pulling mold 6, when the moving template 5 moves smoothly backward under the driving action of the drive structure 12, it will synchronously pull the steel rope 84 through the fixed plate 83 fixedly connected to it. Under the action of continuous tension, the steel rope 84 will further exert a traction effect on the connecting plate 81 connected to it. The connecting plate 81 and the lifting rod 72 are integrated connection structures, which in turn drive the lifting rod 72 to slide downward through the guide bar 76 and the guide port 77. Through this series of linkage actions, the downward precise drive of the picking cylinder 9 is finally achieved, ensuring that the picking cylinder 9 can smoothly reach the designated picking position to complete the picking operation. When the picking operation is completed, when the moving template 5 moves forward and resets under the reverse drive of the drive structure 12, the support spring 73, which was originally in a compressed state, will release elastic potential energy. Under the elastic force of the support spring 73, The lifting rod 72 will slide upward along the guide port 77 until it returns to its initial position, preparing for the next material picking operation. To address potential interference from the material picking mechanism during the replacement of the linked core-pulling mold 6, the operator can rotate the guide ring 74 to drive the threaded arc plate 75 connected to the guide ring 74 to rotate synchronously, so that the threaded arc plate 75 is completely separated from the slot 71. At this time, the lifting rod 72 and the material picking cylinder 9 can be easily removed as a whole. Then, the hook at the end of the steel rope 84 can be separated from the fixing plate 83, thus avoiding the material picking mechanism from hindering the disassembly and replacement of the linked core-pulling mold 6. After the linked core-pulling mold 6 is replaced, simply rotate the guide ring 74 in the opposite direction to reset it, so that the threaded arc plate 75 is re-threadedly connected to the slot 71, thus completing the reset of the material picking mechanism and ensuring that the equipment can continue to carry out normal production operations.
[0024] Example 3: Based on Example 1, this example discloses an integrated injection molding machine for faucet bases, such as... Figure 3-6As shown, the material handling assembly 10 includes two shafts 101 symmetrically rotatably mounted on the inner wall of the bottom end of the material handling cylinder 9. A clamping plate 102 is fixedly fitted onto the outer wall of each shaft 101. A torsion spring 103 is fitted onto the end of each shaft 101, and both ends of the torsion spring 103 are fixedly connected to the material handling cylinder 9 and the shafts 101, respectively. The material handling assembly 10 also includes a sliding plate 104 slidably mounted on the inner wall of the material handling cylinder 9. Two push blocks 105 adapted to the top of the clamping plate 102 are symmetrically fixedly mounted on the bottom surface of the sliding plate 104. A linkage rod 106 is fixedly mounted on the top surface of the sliding plate 104. The top end of the linkage rod 106 passes through the top surface of the material handling cylinder 9 and is fixedly mounted with a transmission wedge. 108. A return spring 107 is fitted on the outer wall of the linkage rod 106, and the two ends of the return spring 107 are fixedly connected to the linkage rod 106 and the material picking cylinder 9 respectively. A drive wedge 109 adapted to the transmission wedge 108 is slidably installed on the side of the mounting plate. A magnetic sheet 1010 is fixedly installed on the side of the drive wedge 109 by a support rod. A bracket 1011 is provided on the side of the fixed template 3. Two magnetic plates 1012 corresponding to the magnetic sheet 1010 are fixedly installed on the side of the bracket 1011. Both the magnetic sheet 1010 and the magnetic plate 1012 are set to be inclined at 45 degrees in the horizontal direction, and the magnetic poles of the magnetic sheet 1010 and the magnetic plate 1012 are the same.
[0025] The implementation principle of this embodiment is as follows: During the opening process of the linked core-pulling mold 6, the material-taking cylinder 9 moves downward synchronously with the lifting rod 72, allowing it to smoothly enter the inner side of the linked core-pulling mold 6 in the open state. As the material-taking cylinder 9 continues to move downward, when the magnetic plate 1010 mounted on the side of the drive wedge 109 corresponds to a magnetic plate 1012 on the upper part, since their opposing magnetic poles are the same, according to the principle of repulsion between like magnetic poles, the drive wedge 109 can slide horizontally along its mounting plate under the action of the repulsive magnetic force. During the sliding process, the drive wedge 109 generates a squeezing force on the transmission wedge 108 through its own inclined surface. Under the transmission of this squeezing force, the transmission wedge 108 drives the linkage rod 106 fixedly connected to it to move downward synchronously. As the magnetic sheet 1010 and magnetic plate 1012 slide downwards, the repulsive magnetic force also exerts a longitudinal force on the spring telescopic rod 78, causing the spring telescopic rod 78 to contract and deform. When the linkage rod 106 slides downwards, it drives the connected slide plate 104 and the push block 105 on the slide plate 104 to move downwards synchronously. During the downward sliding process, the push block 105 will squeeze the tops of the two symmetrically arranged clamping plates 102. Under the action of the squeezing force, the tops of the two clamping plates 102 move towards each other, while the bottoms of the clamping plates 102 are in an open state, preparing for the subsequent clamping of the forming base. As the material picking cylinder 9 continues to move downwards, the bottoms of the two clamping plates 102 gradually move to the position of the forming base. The material is positioned precisely outside the round rod formed by the material channel of the linkage core-pulling mold 6; then, the material-taking cylinder 9 continues to move downward, causing the magnetic sheet 1010 on the side of the drive wedge block 109 to be misaligned with the upper magnetic plate 1012, and the repulsive magnetic force between them disappears. At this time, under the elastic reset action of the reset spring 107, the linkage rod 106, the slide plate 104, and the push block 105 move upward synchronously to reset. The squeezing force of the push block 105 on the top of the clamping plate 102 is released, and under the elastic action of its own torsion spring 103, the bottom end of the clamping plate 102 closes in the direction of mutual approach, thereby firmly clamping the forming base. At the same time, the spring telescopic rod 78 extends under its own elastic action, thereby driving the forming base firmly clamped by the clamping plate 102 to move out of the linkage core-pulling mold. The molded base is initially removed from the cavity of the core-pulling mold 6. As the material-pulling cylinder 9 continues to move downward, the magnetic sheet 1010 on the side of the drive wedge 109 moves downward to correspond with the magnetic plate 1012 at the bottom. The repulsive magnetic force generated by the same magnetic poles acts on the drive wedge 109 again. The drive wedge 109 slides along the mounting plate again and squeezes the transmission wedge 108, causing the linkage rod 106, the slide plate 104, and the push block 105 to move downward again. The push block 105 squeezes the top of the clamping plate 102, causing the bottom of the two clamping plates 102 to open again. At this time, the molded base loses the clamping force and falls onto the preset receiving component 11 under its own gravity. Finally, the entire material-pulling process of completely removing the molded base from the cavity of the core-pulling mold 6 is realized.The bracket 1011 and the fixed template 3 can be connected by screws to facilitate disassembly and replacement of the linkage core-pulling mold 6.
[0026] Example 4: Based on Example 1, this example discloses an integrated injection molding machine for faucet bases, such as... Figure 7 As shown, the receiving assembly 11 includes a rotating shaft 111 rotatably mounted on the side of the fixed template 3. A receiving hopper 112 is fixedly mounted on the end of the rotating shaft 111. A torsion spring 113 is fitted on the end of the rotating shaft 111, and the two ends of the torsion spring 113 are fixedly connected to the fixed template 3 and the rotating shaft 111, respectively. A push rod 114 is fixedly mounted on the side of the moving template 5. A bent rod 115 corresponding to the end of the receiving hopper 112 is fixedly mounted on the end of the push rod 114. The bent rod 115 is set at a 45-degree angle to the push rod 114, and the end of the bent rod 115 is chamfered.
[0027] The implementation principle of this embodiment is as follows: During the opening process of the linked core-pulling mold 6, the moving platen 5 will synchronously drive the push rod 114 and the bending rod 115 to move. As the moving platen 5 continues to move, the push rod 114 and the bending rod 115 will gradually move away from the receiving hopper 112. When the bending rod 115 is completely separated from the receiving hopper 112 and no longer has a limiting effect on it, the torsion spring 113 will release its elastic potential energy instantly, thereby driving the rotating shaft 111 to rotate. The receiving hopper 112 is fixedly connected to the rotating shaft 111 and will rotate with the rotating shaft 111. Finally, the end of the receiving hopper 112 away from the rotating shaft 111 will flip upward and rotate precisely to the bottom of the forming base. At this time, the forming base taken out by the picking cylinder 9 can fall smoothly into the receiving hopper 112 and slide smoothly along its inner wall with the help of the tilt angle of the receiving hopper 112. Workers do not need to go deep into the mold to operate; they can simply remove the molding base collected in the receiving hopper 112 at once, effectively improving material handling efficiency and ensuring operational safety. When the moving template 5 drives the linked core-pulling mold 6 to perform the mold closing operation, the bending rod 115 will first contact the receiving hopper 112 and apply a continuous pushing force to its end. Under the action of the pushing force, the rotating shaft 111 will drive the receiving hopper 112 to rotate in the opposite direction, gradually rotating out of the mold closing area of the linked core-pulling mold 6. When the moving template 5 continues to move and the push rod 114 contacts the receiving hopper 112, the receiving hopper 112 will be adjusted to a horizontal state and stop smoothly in the designated position, thereby avoiding interference of the receiving hopper 112 with the mold closing action of the linked core-pulling mold 6, ensuring that the mold can close normally and carry out subsequent molding operations smoothly.
[0028] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. An integrated injection molding machine for a faucet base, comprising a base (1) and an extruder body (2) disposed on one side of the top surface of the base (1), wherein a fixed template (3) is fixedly installed on the other side of the top surface of the base (1), and guide pillars (4) are fixedly installed at the four corners of the side of the fixed template (3), and movable templates (5) are slidably installed on the outer walls of the four guide pillars (4), and a linkage core-pulling mold (6) is provided between the fixed template (3) and the movable template (5), characterized in that, The top surface of the fixed template (3) is provided with a lifting component (7), and a linkage structure (8) for driving the lifting component (7) is provided between the fixed template (3) and the moving template (5). The top of the lifting component (7) is provided with a material picking cylinder (9), and a material picking component (10) for removing the forming base is provided on the material picking cylinder (9). A material receiving component (11) for catching the removed base is provided at the position below the linkage core pulling mold (6) between the fixed template (3) and the moving template (5). The material taking component (10) includes two shafts (101) symmetrically rotated and installed on the inner wall of the bottom end of the material taking cylinder (9). The outer wall of the shaft (101) is fixedly fitted with a clamp (102). The end of the shaft (101) is fitted with a torsion spring (103), and the two ends of the torsion spring (103) are fixedly connected to the material taking cylinder (9) and the shaft (101) respectively. The lifting assembly (7) includes a slot (71) opened on the top surface of the fixed template (3). A lifting rod (72) is provided on the inner wall of the slot (71). A support spring (73) is fixedly installed on the inner bottom surface of the slot (71). A guide ring (74) is fitted on the outer wall of the lifting rod (72). Two threaded arc plates (75) are symmetrically fixedly installed on the bottom surface of the guide ring (74). The opening end of the slot (71) is provided with a thread that is screwed to the threaded arc plate (75). A spring telescopic rod (78) is fixedly installed at the top end of the lifting rod (72). The material picking cylinder (9) is fixedly installed on the telescopic end of the spring telescopic rod (78) through the mounting plate. The linkage structure (8) includes a connecting plate (81) fixedly installed at the top of the lifting rod (72), a guide wheel (82) rotatably installed on the top surface of the fixed template (3), a fixing plate (83) fixedly installed on the top surface of the moving template (5), and a steel rope (84) fixedly installed on the bottom surface of the connecting plate (81). The material handling assembly (10) further includes a sliding plate (104) slidably mounted on the inner wall of the material handling cylinder (9). Two push blocks (105) adapted to the top of the clamping plate (102) are symmetrically fixedly mounted on the bottom surface of the sliding plate (104). A linkage rod (106) is fixedly mounted on the top surface of the sliding plate (104). The top of the linkage rod (106) passes through the top surface of the material handling cylinder (9) and is fixedly mounted with a transmission wedge (108). A return spring (107) is fitted onto the outer wall of the linkage rod (106), and both ends of the return spring (107) are respectively connected to the linkage rod (106) and the material handling cylinder (9). 9) Fixed connection: A drive wedge (109) adapted to the transmission wedge (108) is slidably installed on the side of the mounting plate. A magnetic sheet (1010) is fixedly installed on the side of the drive wedge (109) by a support rod. A bracket (1011) is provided on the side of the fixed template (3). Two magnetic plates (1012) corresponding to the magnetic sheet (1010) are fixedly installed on the side of the bracket (1011). The magnetic sheet (1010) and the magnetic plate (1012) are both set to be inclined at 45 degrees in the horizontal direction, and the magnetic poles of the magnetic sheet (1010) and the magnetic plate (1012) are the same.
2. The integrated injection molding machine for faucet bases according to claim 1, characterized in that, Two guide bars (76) are symmetrically fixedly installed on the outer wall of the lifting rod (72), and two guide openings (77) adapted to the guide bars (76) are symmetrically opened on the inner wall of the guide ring (74).
3. The integrated injection molding machine for faucet bases according to claim 1, characterized in that, The bottom end of the steel rope (84) passes through the outer wall of the guide wheel (82) and is connected to the fixing plate (83) by a hook.
4. The integrated injection molding machine for faucet bases according to claim 1, characterized in that, The receiving assembly (11) includes a rotating shaft (111) rotatably mounted on the side of the fixed template (3). A receiving hopper (112) is fixedly mounted on the end of the rotating shaft (111). A torsion spring (113) is fitted on the end of the rotating shaft (111), and the two ends of the torsion spring (113) are fixedly connected to the fixed template (3) and the rotating shaft (111) respectively. A push rod (114) is fixedly mounted on the side of the moving template (5). A bent rod (115) corresponding to the end of the receiving hopper (112) is fixedly mounted on the end of the push rod (114).
5. The integrated injection molding machine for faucet base according to claim 4, characterized in that, The bent rod (115) is set at a 45-degree angle to the push rod (114), and the end of the bent rod (115) is chamfered.
6. The integrated injection molding machine for faucet base according to claim 1, characterized in that, The top surface of the base (1) is provided with a drive structure (12) for driving the moving template (5).