Anti-blocking structure of inductance mold injection molding machine

By designing an anti-clogging structure in the inductive mold injection molding machine, using a spiral plate to push the material output and facilitating the cleaning of the arc plate, the problem of discharge pipe blockage is solved, achieving anti-clogging and convenient cleaning of the discharge port, ensuring the normal operation and maintenance of the injection molding machine.

CN223545634UActive Publication Date: 2025-11-14湖北万泰荣力电子科技有限公司
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Patent Information

Application Number
CN202422465878.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-11
Publication Date
2025-11-14
Estimated Expiration
2034-10-11

AI Technical Summary

Technical Problem

When the plastic raw material inside the discharge tube of the existing inductive mold injection molding machine solidifies, it needs to be disassembled and cleaned, which is inconvenient to use and makes it difficult to effectively prevent blockage.

Method used

An anti-clogging structure was designed, including an output pipe, a connecting plate, an assembly cylinder, an arc plate, a rotating roller, and a spiral plate. The spiral plate rotates to push the material out, and the arc plate can be unfolded and cleaned after the work is completed.

Benefits of technology

It achieves good anti-clogging effect at the discharge port, is easy to clean, has a reasonable structure, and is easy to install and disassemble, ensuring efficient operation and maintenance of the injection molding machine.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an inductance mold injection molding machine anti-blocking structure, and particularly relates to the technical field of injection molding machines, the inductance mold injection molding machine anti-blocking structure comprises an output pipe, a connecting plate, an assembly cylinder, a threaded roller, a push plate, a twisting wheel, a rotating roller, a spiral plate and arc-shaped plates, the pressure of the push plate on the arc-shaped plates is adjusted by screwing the screwing wheel to form discharging, the rotating roller drives the spiral plate to rotate under the action of the driving piece, the materials are pushed to be output from the discharging barrel, after work is completed, the screwing wheel loosens the push plate, the arc-shaped plates are unfolded under connection of the arc-shaped rods, cleaning is convenient, the anti-blocking effect is good, and the rotating spiral plate continuously pushes the materials to be output. And after work is completed, the arc-shaped plate can be unfolded, internal cleaning is facilitated, mounting and dismounting are convenient, the stability and reliability of unfolding and connecting of the arc-shaped plate are guaranteed through an arc-shaped rod, a communicating window, a limiting base and a closing plate, normal work of the discharging barrel is guaranteed, and cleaning and maintaining are convenient.
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Description

Technical Field

[0001] This utility model relates to the field of injection molding machine technology, specifically to an anti-clogging structure for an inductive mold injection molding machine. Background Technology

[0002] An inductor mold injection molding machine is an injection molding machine used to produce inductors. It typically consists of an injection molding system, a mold clamping system, a hydraulic system, and an electrical control system. The injection molding system heats and melts the plastic, then injects the molten plastic into the mold cavity through the rotation and propulsion of the screw. The mold clamping system uses clamping force to tightly close the upper and lower parts of the mold, ensuring the molding quality of the molten plastic within the mold cavity.

[0003] In the prior art, Chinese Patent No. CN217621864U discloses an anti-clogging injection molding machine nozzle, including an extrusion barrel. The inner bottom wall of the extrusion barrel is provided with a connecting pipe extending to its bottom at one end. The outer side of the connecting pipe is provided with a nozzle extending to its bottom at one end. The inner bottom wall of the nozzle is provided with a discharge pipe extending to its bottom at one end. A feeding assembly extending to the top of the extrusion barrel is provided between the left and right sides of the inner wall of the connecting pipe.

[0004] The aforementioned patent incorporates stirring blades inside the discharge pipe to agitate the plastic raw material, thereby preventing blockages. However, when the plastic raw material solidifies on the stirring blades, it is inconvenient to move the stirring blades outside the discharge pipe. Consequently, the entire discharge pipe and stirring blades must be disassembled and cleaned, making the process extremely cumbersome. Therefore, we propose an anti-blocking structure for an inductive mold injection molding machine to solve the aforementioned problems. Utility Model Content

[0005] This utility model aims to solve one of the technical problems existing in the prior art or related technologies.

[0006] Therefore, the technical solution adopted by this utility model is as follows:

[0007] An anti-clogging structure for an inductive mold injection molding machine includes an output pipe. Multiple connecting plates are fixedly connected to one end of the output pipe. An assembly cylinder is fixedly connected to the end of each connecting plate near the output axis. A discharge cylinder is sleeved inside the assembly cylinder. The discharge cylinder is composed of multiple arc-shaped plates surrounding it. Assembly chambers are formed on both sides of the inner cavity of each arc-shaped plate. Multiple communicating windows are formed on the side of each assembly chamber away from the axis of the arc-shaped plate. Arc-shaped rods are embedded in the communicating windows. Limiting seats are fixedly connected to both ends of each arc-shaped plate to prevent it from detaching from the assembly chamber. The limiting seats are placed inside the assembly chamber and are slidably connected to the inner wall of the assembly chamber. A sealing plate for closing the assembly chamber is fixedly connected to the end of each arc-shaped plate away from the output pipe. Rotating rollers are sleeved inside the multiple discharge cylinders. The end of each rotating roller near the output pipe is fixedly connected to an internal driving component of the device. Spiral plates are sleeved around the rotating rollers and are fixedly connected to the rotating rollers.

[0008] Preferably, the multiple connecting plates are evenly distributed around the output pipe axis, and the output cylinder, assembly cylinder and output pipe axis coincide.

[0009] Preferably, the assembly cylinder has multiple threaded holes at the end away from the output pipe, and the multiple threaded holes are evenly distributed around the axis of the output pipe.

[0010] Preferably, the threaded hole houses a threaded roller, which is threadedly connected to the assembly cylinder via the threaded hole, and the assembly chambers on both sides are symmetrically distributed along the axis of the arc-shaped plate.

[0011] Preferably, a push plate is fixedly connected to the end of the threaded roller near the axis of the assembly cylinder, and a screwing wheel is fixedly connected to the end of the threaded roller away from the assembly cylinder.

[0012] Preferably, the plurality of the arc-shaped plates are evenly distributed around the axis of the assembly cylinder, and the end of the arc-shaped plate near the output tube is slidably connected to the connecting plate.

[0013] Preferably, the side of the arc-shaped plate away from the axis of the assembly cylinder contacts the push plate, and the arc of the push plate matches the arc of the arc-shaped plate.

[0014] Preferably, the plurality of connecting windows are evenly distributed along the length of the arc-shaped plate, and the arc-shaped rod is slidably connected to the inner wall of the connecting window.

[0015] By adopting the above technical solution, the beneficial effects achieved by this utility model are as follows:

[0016] This utility model's anti-clogging structure for a medium-sensor mold injection molding machine mainly consists of an output pipe, a connecting plate, an assembly cylinder, a threaded roller, a push plate, a screw wheel, a rotating roller, a spiral plate, and arc-shaped plates. Material enters the assembly cylinder through the output pipe. The discharge cylinder is composed of multiple arc-shaped plates. Twisting the screw wheel adjusts the pressure of the push plate on the arc-shaped plates, forming the discharge cylinder. The rotating roller, driven by a driving component, rotates the spiral plate, pushing the material out of the discharge cylinder to prevent clogging. After operation, twisting the screw wheel releases the push plate, and the multiple arc-shaped plates unfold under the connection of an arc-shaped rod, facilitating cleaning.

[0017] First, it has a good anti-clogging effect; the rotating spiral plate continuously pushes the material output, preventing accumulation and blockage. Second, it is easy to clean; the arc-shaped plate can be unfolded after work, facilitating internal cleaning. Third, the structure is rationally designed, with tight fit among components, making installation and disassembly convenient. The arc-shaped rod, connecting window, limit seat, and closing plate ensure the stability and reliability of the arc-shaped plate's unfolding and connection, guaranteeing both the normal operation of the discharge cylinder and easy cleaning and maintenance. This anti-clogging structure provides strong support for the efficient operation and maintenance of the inductive mold injection molding machine. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0019] Figure 2 This utility model Figure 1 Enlarged structural diagram at point A in the middle.

[0020] Figure 3 This is a schematic diagram of the internal structure of the assembly cylinder of this utility model.

[0021] Figure 4 This is a schematic diagram of the connection structure of multiple arc-shaped plates of this utility model.

[0022] Figure 5 This is a schematic diagram of the internal structure of the arc-shaped plate of this utility model.

[0023] In the diagram: 1. Output pipe; 101. Connecting plate; 2. Assembly cylinder; 201. Threaded hole; 202. Threaded roller; 203. Push plate; 204. Tightening wheel; 3. Discharge cylinder; 301. Arc plate; 302. Assembly chamber; 303. Connecting window; 304. Arc rod; 305. Limit seat; 306. Sealing plate; 307. Rotating roller; 308. Spiral plate. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0025] Example: Figures 1-5 As shown, this utility model provides an anti-clogging structure for an inductor mold injection molding machine, including an output pipe 1. Multiple connecting plates 101 are fixedly connected to one end of the output pipe 1, and the connecting plates 101 are evenly distributed around the axis of the output pipe 1. An assembly cylinder 2 is fixedly connected to the end of the connecting plate 101 near the output end axis. Multiple threaded holes 201 are opened at the end of the assembly cylinder 2 away from the output pipe 1, and the threaded holes 201 are evenly distributed around the axis of the output pipe 1. Threaded rollers 202 are installed inside the threaded holes 201, and the threaded rollers 202 are threadedly connected to the assembly cylinder 2 through the threaded holes 201. A push plate 203 is fixedly connected to the end of the threaded roller 202 near the axis of the assembly cylinder 2, and a turning wheel 204 is fixedly connected to the end of the threaded roller 202 away from the assembly cylinder 2. Rotating rollers 307 are sleeved inside multiple discharge cylinders 3. One end of roller 307 near the output pipe 1 is fixedly connected to the internal drive component of the device. Spiral plates 308 are sleeved around the rotating roller 307. Spiral plates 308 are fixedly connected to the rotating roller 307. The material is output from the output pipe 1 and enters the assembly cylinder 2. The discharge cylinder 3 inside the assembly cylinder 2 is composed of multiple arc plates 301. The end of the arc plate 301 near the output pipe 1 is slidably connected to the connecting plate 101 to ensure the stability of the discharge cylinder 3. The end of the assembly cylinder 2 away from the output pipe 1 is connected to a threaded roller 202 through a threaded hole 201. The end of the threaded roller 202 near the axis of the assembly cylinder 2 is fixedly connected to a push plate 203. The push plate 203 contacts the arc plate 301. The pressure of the push plate 203 on the arc plate 301 can be adjusted by turning the turning wheel 204, so that multiple arc plates 301 form the discharge cylinder 3. A rotating roller 307 is fitted inside the discharge cylinder 3. The end of the rotating roller 307 near the output pipe 1 is fixedly connected to the internal drive component of the device. A spiral plate 308 is fitted around the rotating roller 307 and is fixedly connected to the rotating roller 307. Under the action of the drive component, the rotating roller 307 drives the spiral plate 308 to rotate, pushing the material out of the discharge cylinder 3 and preventing blockage at the discharge port.

[0026] Furthermore, a discharge cylinder 3 is sleeved inside the assembly cylinder 2. The axes of the discharge cylinder 3, the assembly cylinder 2, and the output pipe 1 coincide. The discharge cylinder 3 is surrounded by multiple arc-shaped plates 301. The multiple arc-shaped plates 301 are evenly distributed around the axis of the assembly cylinder 2. The end of the arc-shaped plate 301 near the output pipe 1 is slidably connected to the connecting plate 101. The side of the arc-shaped plate 301 away from the axis of the assembly cylinder 2 contacts the push plate 203. The arc of the push plate 203 matches the arc of the arc-shaped plate 301. Assembly chambers 302 are provided on both sides of the inner cavity, symmetrically distributed along the axis of the arc-shaped plate 301. Multiple connecting windows 303 are provided on the side of the assembly chamber 302 away from the axis of the arc-shaped plate 301, evenly distributed along the length of the arc-shaped plate 301. Arc-shaped rods 304 are built into the connecting windows 303, and are slidably connected to the inner wall of the connecting windows 303. Limiting seats 305 are fixedly connected to both ends of the arc-shaped plate 301 to prevent it from detaching from the assembly chamber 302. The limiting seats 305 are placed inside the assembly chamber 302 and are slidably connected to the inner wall of the assembly chamber 302. A sealing plate 306 for closing the assembly chamber 302 is fixedly connected to the end of the arc-shaped plate 301 away from the output pipe 1. After the work is completed, the spiral plate 308 no longer rotates. To prevent blockage and facilitate subsequent cleaning, the pressing of the push plate 203 on the arc-shaped plate 301 can be loosened by turning the turning wheel 204. Each arc-shaped plate 301 is connected by an arc-shaped rod 304. The arc-shaped rod 304 is slidably connected to the inner wall of the connecting window 303 of the assembly chamber 302 on both sides of the inner cavity of the arc-shaped plate 301. The limiting seats 305 at both ends of the arc-shaped plate 301 are placed in the assembly chamber 302 and slidably connected to the inner wall to prevent the arc-shaped plate 301 from detaching from the assembly chamber 302. After the push plate 203 is released, the multiple arc-shaped plates 301 unfold under the connection of the arc-shaped rod 304, which facilitates the cleaning of the inside of the discharge cylinder 3.

[0027] Working Principle: When using this device, material is output from the output pipe 1 and enters the assembly cylinder 2. The discharge cylinder 3 inside the assembly cylinder 2 is composed of multiple arc-shaped plates 301. The end of the arc-shaped plate 301 near the output pipe 1 is slidably connected to the connecting plate 101 to ensure the stability of the discharge cylinder 3. The end of the assembly cylinder 2 away from the output pipe 1 is connected to a threaded roller 202 through a threaded hole 201. The end of the threaded roller 202 near the axis of the assembly cylinder 2 is fixedly connected to a push plate 203. The push plate 203 contacts the arc-shaped plate 301. The pressure of the push plate 203 on the arc-shaped plate 301 can be adjusted by turning the turning wheel 204, so that the multiple arc-shaped plates 301 form the discharge cylinder 3. A rotating roller 307 is sleeved inside the discharge cylinder 3. The end of the rotating roller 307 near the output pipe 1 is fixedly connected to the internal drive component of the device. A spiral plate 308 is sleeved around the rotating roller 307, and the spiral plate 308 is fixedly connected to the rotating roller 307. Under the action of the driving component, the rotating roller 307 drives the spiral plate 308 to rotate, pushing the material out of the discharge cylinder 3 to prevent blockage at the discharge port. After the work is completed, the spiral plate 308 no longer rotates. In order to prevent blockage and facilitate subsequent cleaning, the pressing of the push plate 203 on the arc plate 301 can be loosened by turning the turning wheel 204. Multiple arc plates 301 are connected by arc rods 304. The arc rods 304 are slidably connected to the inner wall of the connecting window 303 of the assembly chamber 302 on both sides of the inner cavity of the arc plate 301. The limiting seats 305 at both ends of the arc plate 301 are placed in the assembly chamber 302 and slidably connected to the inner wall to prevent the arc plate 301 from detaching from the assembly chamber 302. After the push plate 203 is loosened, multiple arc plates 301 unfold under the connection of the arc rods 304, which facilitates cleaning of the inside of the discharge cylinder 3. The rotating spiral plate 308 continuously pushes the material out, preventing material from accumulating and clogging at the outlet. After the work is completed, the push plate 203 can be released, allowing multiple arc-shaped plates 301 to unfold, facilitating cleaning of the inside of the discharge cylinder 3. The design of the arc-shaped rod 304, the connecting window 303, the limiting seat 305, and the closing plate 306 ensures the stability and reliability of the arc-shaped plates 301 during unfolding and connection, guaranteeing the normal operation of the discharge cylinder 3 while also facilitating cleaning and maintenance.

[0028] Obviously, those skilled in the art can make various modifications and variations to this utility model without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this utility model and their equivalents, this utility model also intends to include these modifications and variations.

Claims

1. A clog-prevention structure for an inductive mold injection molding machine, characterized in that, The assembly includes an output pipe (1), one end of which is fixedly connected to multiple connecting plates (101). An assembly cylinder (2) is fixedly connected to the end of the connecting plate (101) near the output axis. A discharge cylinder (3) is sleeved inside the assembly cylinder (2). The discharge cylinder (3) is surrounded by multiple arc-shaped plates (301). Assembly chambers (302) are opened on both sides of the inner cavity of the arc-shaped plates (301). Multiple connecting windows (303) are opened on the side of the assembly chamber (302) away from the axis of the arc-shaped plates (301). Arc-shaped rods (304) are built into the connecting windows (303). Anti-detachment devices are fixedly connected to both ends of the arc-shaped plates (301). A limiting seat (305) is placed inside the assembly chamber (302) and is slidably connected to the inner wall of the assembly chamber (302). A sealing plate (306) for closing the assembly chamber (302) is fixedly connected to one end of the arc plate (301) away from the output pipe (1). A rotating roller (307) is sleeved inside one of the multiple discharge cylinders (3). The end of the rotating roller (307) near the output pipe (1) is fixedly connected to the internal drive component of the device. A spiral plate (308) is sleeved around the rotating roller (307) and is fixedly connected to the rotating roller (307).

2. The anti-clogging structure for an inductive mold injection molding machine according to claim 1, characterized in that, Multiple connecting plates (101) are evenly distributed around the axis of the output pipe (1), and the axes of the discharge cylinder (3), the assembly cylinder (2) and the output pipe (1) coincide.

3. The anti-clogging structure for an inductive mold injection molding machine according to claim 1, characterized in that, The assembly cylinder (2) has multiple threaded holes (201) at the end away from the output pipe (1), and the multiple threaded holes (201) are evenly distributed around the axis of the output pipe (1).

4. The anti-clogging structure for an inductive mold injection molding machine according to claim 3, characterized in that, The threaded hole (201) houses a threaded roller (202), which is threadedly connected to the assembly cylinder (2) through the threaded hole (201). The assembly chambers (302) on both sides are symmetrically distributed along the axis of the arc plate (301).

5. The anti-clogging structure for an inductive mold injection molding machine according to claim 4, characterized in that, A push plate (203) is fixedly connected to one end of the threaded roller (202) near the axis of the assembly cylinder (2), and a screw wheel (204) is fixedly connected to the other end of the threaded roller (202) away from the assembly cylinder (2).

6. The anti-clogging structure for an inductive mold injection molding machine according to claim 1, characterized in that, Multiple arc-shaped plates (301) are evenly distributed around the axis of the assembly cylinder (2), and the end of the arc-shaped plate (301) near the output pipe (1) is slidably connected to the connecting plate (101).

7. The anti-clogging structure for an inductive mold injection molding machine according to claim 1, characterized in that, The side of the arc plate (301) away from the axis of the assembly cylinder (2) contacts the push plate (203), and the arc of the push plate (203) matches the arc of the arc plate (301).

8. The anti-clogging structure for an inductive mold injection molding machine according to claim 1, characterized in that, The multiple connecting windows (303) are evenly distributed along the length of the arc plate (301), and the arc rod (304) is slidably connected to the inner wall of the connecting window (303).

Citation Information

Patent Citations

  • Anti-blocking injection molding machine nozzle

    CN217621864U