Spring loading feeding wear-resistant conveying equipment for plastic pipe production
By designing an automated wear-resistant conveying system for spring feeding in plastic pipe production, the problems of low efficiency and insufficient flexibility of existing equipment have been solved. This system achieves efficient and stable raw material conveying and feeding, adapts to the needs of different specifications and materials, and improves production efficiency and product quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ANHUI TONGHUI PLASTIC PIPE PRODUCTS CO LTD
- Filing Date
- 2026-04-29
- Publication Date
- 2026-06-05
AI Technical Summary
In existing plastic pipe production, raw material conveying and feeding devices are inefficient, lack flexibility and precision, and are difficult to adapt to the needs of different specifications and materials. Furthermore, they are prone to product quality degradation due to friction and collision. The height and angle adjustment of traditional devices are inconvenient and difficult to adapt to the layout of different production lines.
An automated device comprising a base support, a feeding mechanism, a spring feeding structure, a conveying mechanism, and a transmission mechanism was designed. It adopts highly wear-resistant materials and a special structure, combined with vibration and actuation devices to ensure the stability and accuracy of the feeding process, and achieves flexible adjustment of the device through telescopic uprights and adjustable motors.
It significantly reduces labor costs, improves production efficiency and product quality. The equipment has a simple structure and is easy to maintain. It has good wear resistance and adaptability, and can adapt to the layout requirements of different production lines. It reduces wear and manual intervention, and ensures the continuity and stability of production.
Smart Images

Figure CN122144404A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of plastic pipe manufacturing technology, and more specifically, to a wear-resistant conveying device for spring feeding in plastic pipe manufacturing. Background Technology
[0002] In the plastic pipe manufacturing industry, raw material transportation and feeding are crucial links in the production process. On traditional plastic pipe production lines, raw material feeding and transportation often rely on manual operation or simple mechanical devices. These methods have many drawbacks and are difficult to meet the needs of modern large-scale production.
[0003] First, manual material feeding is inefficient, labor-intensive, and susceptible to human error, leading to uneven feeding speeds and impacting the stability of subsequent production processes and product quality. Second, while simple mechanical devices improve feeding efficiency to some extent, they often lack flexibility and precision, making them unsuitable for producing plastic pipes of different specifications and materials. For example, raw materials are easily damaged by friction and collision during transport, resulting in decreased product quality; furthermore, the height and angle adjustments of traditional conveying devices are inconvenient, making it difficult to adapt to the layout requirements of different production lines. Furthermore, with the continuous development of plastic pipe production technology, the requirements for raw material conveying and feeding devices are becoming increasingly stringent. They not only need efficient, stable, and reliable conveying performance but also good wear resistance, corrosion resistance, and ease of maintenance to adapt to various harsh production environments. However, existing raw material conveying and feeding devices still have many shortcomings in these aspects, failing to meet the needs of modern plastic pipe production. Summary of the Invention
[0004] The purpose of this invention is to address the problems of low efficiency, high labor intensity, and susceptibility to human factors in manual material feeding, leading to uneven feeding speeds and consequently affecting the stability of subsequent production processes and product quality. Secondly, while simple mechanical devices improve feeding efficiency to some extent, they often lack flexibility and precision, making it difficult to adapt to the production needs of plastic pipes of different specifications and materials. For example, during the conveying process, raw materials are easily damaged by friction and collision, resulting in a decline in product quality; simultaneously, the height and angle adjustment of traditional conveying devices is inconvenient, making it difficult to adapt to the layout requirements of different production lines. Furthermore, with the continuous development of plastic pipe production technology, the requirements for raw material conveying and feeding devices are becoming increasingly stringent. They not only need to possess efficient, stable, and reliable conveying performance, but also good wear resistance, corrosion resistance, and ease of maintenance to adapt to various harsh production environments. However, existing raw material conveying and feeding devices still have many shortcomings in these aspects, making it difficult to meet the needs of modern plastic pipe production. Therefore, this invention proposes a wear-resistant conveying device for plastic pipe production using a spring-loaded mechanism.
[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solution: It is applied to plastic pipe production equipment to improve the above-mentioned problems.
[0006] The present invention is as follows: The device includes a base support body, on the top surface of which a feeding mechanism is fixedly installed. A spring feeding structure is obliquely inserted into the side of the feeding mechanism. A conveying mechanism is provided on the bottom surface of the spring feeding structure. A transmission mechanism is horizontally fixedly connected to the bottom end of the conveying mechanism. The base support includes a support base plate, and telescopic uprights are vertically and symmetrically fixedly connected to the top surface of the support base plate. A movable bracket is horizontally fixedly connected to the top end of the telescopic uprights. The feeding mechanism includes a support base block, the bottom end of which is fixedly installed on the top surface of the support base plate, the top end of which is fixedly connected to a receiving hopper, and the side of which is obliquely provided with a side through hole. The spring feeding structure includes a feeding tube, a support ring sleeved on the outer side of the feeding tube, an end box fixedly connected to the top of the feeding tube, a feeding motor fixedly connected to one end of the end box, a discharge tube snapped onto the bottom surface of the end box, an inner spring inserted into the inner side of the feeding tube, and a vibrator fixedly connected to the side of the discharge tube. The conveying mechanism includes a mounting base block, a bottom docking block at the bottom end of the mounting base block, a feeding hopper fixedly connected to the top end of the mounting base block, a rotating connecting block engaged at the top end of the feeding hopper, a bottom through groove at the top end of the mounting base block, a positioner fixedly connected to the side of the bottom docking block, a mating hole at the edge of the top opening of the feeding hopper, a top stabilizing hole at the top end of the bottom docking block, and an adjusting motor fixedly installed on the inner side of the top stabilizing hole. The transmission mechanism includes an extension plate, a top isolation plate is horizontally and symmetrically fixedly connected to the top surface of the extension plate, a mating wedge is fixedly provided on one side of the extension plate, a transmission motor is fixedly connected to the side of the mating wedge, a mating groove is horizontally and through the side of the extension plate, a transmission belt is horizontally inserted into the inner side of the mating groove, a bottom clamping turntable is fixedly connected to one end of the bottom surface of the extension plate, a power roller is symmetrically clamped to one end of the top surface of the extension plate, a top groove is evenly provided on the top surface of the extension plate, and a mating roller is clamped to the inner side of the top groove.
[0007] As a preferred technical solution of the present invention, the bottom surface of the supporting base plate is symmetrically and uniformly fixedly connected with moving wheels, the top edge of the supporting base plate is vertically fixedly installed with a supporting column, the top of the supporting column is connected to a control box, the side of the control box is fixedly installed with a control panel, the top surface of the supporting base plate is fixedly installed with a backup power supply, the control box, the control panel and the backup power supply are electrically connected to each other, the side of the telescopic pole is vertically fixedly connected with a cylinder body, and the top of the supporting column is rotatably connected to the bottom surface of the control box through a top clamp.
[0008] As a preferred technical solution of the present invention, mounting side strips are symmetrically welded on both sides of the supporting base block, and limiting grooves are horizontally and symmetrically opened on the inner side of the receiving hopper. The limiting grooves are horizontally opened at the inner top opening end of the receiving hopper. A storage box is horizontally fixed on one side of the receiving hopper, and a sealing roll plate is horizontally snapped into the inner side of the limiting groove. A winding shaft is horizontally inserted into the inner side of the storage box, and one end of the sealing roll plate extends and is wound around the outer side of the winding shaft.
[0009] As a preferred technical solution of the present invention, a flipping connecting block is fixedly welded to the bottom surface of the support ring body. The flipping connecting block is connected to the inner side of the top groove of the rotating connecting block through a shaft. A side plate is symmetrically fixedly connected to the bottom surface of the end box body. A connecting rubber tube is fixedly connected to the top of the discharge pipe. A power shaft is inserted into the inner side of the end box body. A bottom opening is opened on the bottom surface of the end box body. The open end of the connecting rubber tube is fixedly connected to the open end of the bottom opening to maintain communication. The discharge pipe is located at the top of the feeding hopper.
[0010] As a preferred technical solution of the present invention, mounting strips are symmetrically welded to both sides of the bottom connecting block. The bottom connecting block is fixedly installed on the top surface of the movable bracket by the mounting strips. A through side groove is horizontally opened at the bottom end of the mounting block. A support frame is vertically fixedly installed at the top of the feeding hopper. A vibrator is connected to the top surface of the support frame. A vertical column is connected to the output end of the vibrator. An inner rod is horizontally fixedly connected to the bottom end of the vertical column. Actuating columns are uniformly fixedly inserted into the bottom surface of the inner rod. The actuating columns are parallel to each other and inserted into the inner side of the bottom through groove.
[0011] As a preferred technical solution of the present invention, the feeding mechanism is fixedly installed at one end of the center line of the top surface of the bottom support body by means of the installation side strip, one end of the spring feeding structure extends obliquely downward and is inserted into the inside of the side through hole to maintain connection, and the conveying mechanism is fixedly installed at the top surface of the movable bracket by means of the transmission mechanism and the bottom mounting block.
[0012] As a preferred technical solution of the present invention, there are multiple telescopic uprights, and the multiple telescopic uprights are fixedly connected in parallel to each other at the end of the top surface centerline of the support base plate away from the feeding mechanism. The material is fed into the internal groove of the support base block after being placed in the receiving hopper, and the side through hole extends into the interior of the support base block to maintain communication.
[0013] As a preferred technical solution of the present invention, the bottom end of the feeding pipe is inserted into the inside of the side through hole, and the feeding pipe is in communication with the internal groove of the support base block. The feeding pipe is inclinedly arranged between the support base block and the feeding hopper through the support ring body. The end box body is in communication with the inside of the feeding pipe. The feeding motor is fixedly connected to the top of the inner spring through the power shaft. The discharge pipe is connected to the opening end of the bottom opening through the connecting rubber tube.
[0014] As a preferred technical solution of the present invention, the mounting base is fixedly installed on the outer side of one end of the extension plate by wrapping the side strip at the bottom end. The top of the bottom connecting block is connected to the top surface of the extension plate near one end. The rotating connecting block is rotated and snapped into the inner side of the mating hole. The bottom through groove and the through side groove are kept in communication. The bottom end of the bottom clamping turntable is snapped into the inner side of the top stabilizing hole. The output end of the adjusting motor is fixedly connected to the center of the bottom end of the bottom clamping turntable. One end of the extension plate is horizontally inserted into the inner side of the through side groove. The conveyor belt is horizontally sleeved on the top surface of the extension plate. The top surfaces of multiple mating rollers are all connected to the inner top surface of the conveyor belt.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: In the solution of the present invention: 1. The automated feeding equipment of this invention replaces manual operation, significantly reducing labor costs. Simultaneously, the equipment is simple to operate and easy to maintain, further reducing the company's operating costs. Addressing the wear problem during the spring feeding process in plastic pipe production, this invention employs wear-resistant materials and a special structural design in key components. For example, components such as the feeding pipe and conveyor belt are made of highly wear-resistant materials, effectively extending the equipment's service life. Furthermore, during operation, the equipment reduces friction and collision between the material and the equipment through vibration and agitation, further minimizing wear.
[0016] 2. The automated feeding equipment of this invention, through its precise mechanical structure and control system, ensures the stability and accuracy of springs during the feeding and conveying process, effectively avoiding material damage and inaccurate feeding, thereby guaranteeing product quality. This invention, through the design of adjustable motors and telescopic uprights, allows for flexible adjustment of the equipment's height and angle. This flexibility enables the equipment to adapt to the feeding needs of springs of different specifications and shapes, as well as the configuration requirements of production lines at different heights. Simultaneously, the equipment also possesses the ability to quickly switch production specifications, further improving production efficiency and flexibility.
[0017] 3. The equipment of this invention has a simple structure and is easy to operate. Key components are modularly designed for easy disassembly and replacement. This design makes maintenance more convenient and efficient, reducing maintenance costs and time. Simultaneously, the equipment is equipped with safety devices such as backup power supplies to ensure normal operation and safety in emergencies. This invention achieves automatic spring feeding and conveying, greatly reducing manual intervention and improving production efficiency. The automated feeding process ensures the continuity and stability of materials, allowing subsequent production processes to proceed smoothly, thereby improving the overall operating efficiency of the production line. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall three-dimensional front view structure provided by the present invention; Figure 2 This is a schematic diagram of the overall three-dimensional bottom-view connection structure provided by the present invention; Figure 3 This is a schematic diagram of the overall three-dimensional top view connection structure provided by the present invention; Figure 4 This is a schematic diagram of the overall three-dimensional side view connection structure provided by the present invention; Figure 5 This is a schematic diagram of the overall three-dimensional back-view structure provided by the present invention; Figure 6 This is a schematic diagram of the overall three-dimensional back side view structure provided by the present invention; Figure 7 This is a schematic diagram of the overall three-dimensional back top structure provided by the present invention; Figure 8 This is a schematic diagram of the overall separate top-view connection structure provided by the present invention; Figure 9 A schematic diagram of the overall separate bottom-view connection structure provided by the present invention; Figure 10 A schematic diagram of the separate bottom-view connection structure of the extension plate body provided by the present invention; Figure 11 This is a top view schematic diagram of the bottom docking block connection structure provided by the present invention.
[0019] The image shows: 1. Base support body; 101. Support base plate; 102. Casters; 103. Support column; 104. Control box; 105. Control panel; 106. Backup power supply; 107. Telescopic pole; 108. Cylinder body; 109. Movable bracket; 110. Top clamp; 2. Feeding mechanism; 201. Support base block; 202. Mounting side strip; 203. Receiving hopper; 204. Limiting groove; 205. Storage box; 206. Sealing roll plate; 207. Side through hole; 208. Rewinding shaft; 3. Spring feeding structure; 301. Feeding pipe; 302. Support ring; 303. End box; 304. Feeding motor; 305. Tilting connecting block; 306. Side plate; 307. Connecting hose; 308. Discharge pipe; 309. Inner spring; 310. Power shaft; 311. Bottom opening; 312. Vibrator; 4. Conveying mechanism; 401. Mounting base block; 402. Bottom connecting block; 403. Mounting strip; 404. Through side groove; 405. Feed hopper; 406. Support frame; 407. Vibrator; 408. Vertical column; 409. Inner rod; 410. Actuating column; 411. Rotating connecting block; 412. Bottom through groove; 413. Positioner; 414. Mating hole; 415. Top stabilizing hole; 416. Adjusting motor; 5. Transmission mechanism; 501. Extension plate; 502. Top isolation plate; 503. Mating inclined block; 504. Transmission motor; 505. Mating groove; 506. Conveyor belt; 507. Bottom clamp turntable; 508. Power roller; 509. Top groove; 510. Mating roller. Detailed Implementation
[0020] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0021] Example 1: like Figures 1-11 As shown, the present invention provides a technical solution: a wear-resistant conveying device for spring feeding in plastic pipe production, comprising a base support body 1, a feeding mechanism 2 fixedly installed on the top surface of the base support body 1, a spring feeding structure 3 obliquely inserted into the side of the feeding mechanism 2, a conveying mechanism 4 provided on the bottom surface of the spring feeding structure 3, a transmission mechanism 5 horizontally fixedly connected to the bottom end of the conveying mechanism 4, the feeding mechanism 2 being fixedly installed at one end of the centerline of the top surface of the base support body 1 via a mounting side strip 202, one end of the spring feeding structure 3 extending obliquely downward and inserted into the inside of the side through hole 207 to maintain communication, and the conveying mechanism 4 being fixedly installed on the top surface of the movable bracket 109 via the transmission mechanism 5 and the mounting block 401 at the bottom; The base support 1 includes a support base plate 101. Telescopic uprights 107 are vertically and symmetrically fixedly connected to the top surface of the support base plate 101. Multiple telescopic uprights 107 are arranged parallel to each other at the end of the top surface of the support base plate 101 furthest from the feeding mechanism 2. Movable brackets 109 are horizontally fixedly connected to the top of each telescopic upright 107. Moving wheels 102 are symmetrically and evenly fixedly connected to the bottom surface of the support base plate 101. Vertically fixed edges of the top surface of the support base plate 101 are... The support column 103 is equipped with a control box 104 connected to the top of the support column 103. A control panel 105 is fixedly installed on the side of the control box 104. A backup power supply 106 is fixedly installed on the top surface of the support base plate 101. The control box 104, control panel 105 and backup power supply 106 are electrically connected to each other. A cylinder body 108 is vertically fixedly connected to the side of the telescopic pole 107. The top of the support column 103 is rotatably connected to the bottom surface of the control box 104 through a top clip 110.
[0022] By adopting automated feeding and conveying methods, the time and labor intensity of manual operation are greatly reduced, and production efficiency is improved. At the same time, the design of the spring feeding structure ensures a continuous and uniform feeding process, avoiding production interruptions and product quality problems caused by uneven feeding.
[0023] Example 2: like Figures 1-11 As shown, the present invention provides a technical solution: a wear-resistant conveying device for spring feeding in plastic pipe production, comprising a base support body 1, a feeding mechanism 2 fixedly installed on the top surface of the base support body 1, a spring feeding structure 3 obliquely inserted into the side of the feeding mechanism 2, a conveying mechanism 4 provided on the bottom surface of the spring feeding structure 3, a transmission mechanism 5 horizontally fixedly connected to the bottom end of the conveying mechanism 4, the feeding mechanism 2 being fixedly installed at one end of the centerline of the top surface of the base support body 1 via a mounting side strip 202, one end of the spring feeding structure 3 extending obliquely downward and inserted into the inside of the side through hole 207 to maintain communication, and the conveying mechanism 4 being fixedly installed on the top surface of the movable bracket 109 via the transmission mechanism 5 and the mounting block 401 at the bottom; The base support 1 includes a support base plate 101. Telescopic uprights 107 are vertically and symmetrically fixedly connected to the top surface of the support base plate 101. Multiple telescopic uprights 107 are arranged parallel to each other at the end of the top surface of the support base plate 101 furthest from the feeding mechanism 2. Movable brackets 109 are horizontally fixedly connected to the top of each telescopic upright 107. Moving wheels 102 are symmetrically and evenly fixedly connected to the bottom surface of the support base plate 101. Vertically fixed edges of the top surface of the support base plate 101 are... The system includes a support column 103, a control box 104 connected to the top of the support column 103, a control panel 105 fixedly mounted on the side of the control box 104, a backup power supply 106 fixedly mounted on the top surface of the support base plate 101, and the control box 104, control panel 105, and backup power supply 106 electrically connected to each other. A cylinder body 108 is vertically fixedly connected to the side of the telescopic pole 107, and the top of the support column 103 is rotatably connected to the bottom surface of the control box 104 via a top clip 110. The feeding mechanism 2 includes a support base block 201, the bottom of which is fixedly installed on the top surface of the support base plate 101. A receiving hopper 203 is fixedly connected to the top of the support base block 201. A side through hole 207 is obliquely opened on the side of the support base block 201. After the material is fed into the receiving hopper 203, it enters the internal groove of the support base block 201. The side through hole 207 extends into the interior of the support base block 201 to maintain communication. Symmetrically welded to both sides of the support base block 201 are... Side strips 202 are installed. Limiting grooves 204 are horizontally and symmetrically opened on the inner side of the receiving hopper 203. The limiting grooves 204 are horizontally opened at the inner top opening end of the receiving hopper 203. A storage box 205 is horizontally fixed on one side of the receiving hopper 203. A sealing roll plate 206 is horizontally snapped into the inner side of the limiting groove 204. A winding shaft 208 is horizontally inserted into the inner side of the storage box 205. One end of the sealing roll plate 206 extends and is wrapped around the outer side of the winding shaft 208.
[0024] By employing a robust structural design, coupled with the adjustable functions of telescopic uprights and movable brackets, the equipment can adapt to the layout requirements of different production lines, enhancing its stability and adaptability. Simultaneously, the optimized design of the transmission mechanism reduces friction and vibration during transmission, improving the smoothness and reliability of equipment operation.
[0025] Example 3: like Figures 1-11As shown, the present invention provides a technical solution: a wear-resistant conveying device for spring feeding in plastic pipe production, comprising a base support body 1, a feeding mechanism 2 fixedly installed on the top surface of the base support body 1, a spring feeding structure 3 obliquely inserted into the side of the feeding mechanism 2, a conveying mechanism 4 provided on the bottom surface of the spring feeding structure 3, a transmission mechanism 5 horizontally fixedly connected to the bottom end of the conveying mechanism 4, the feeding mechanism 2 being fixedly installed at one end of the centerline of the top surface of the base support body 1 via a mounting side strip 202, one end of the spring feeding structure 3 extending obliquely downward and inserted into the inside of the side through hole 207 to maintain communication, and the conveying mechanism 4 being fixedly installed on the top surface of the movable bracket 109 via the transmission mechanism 5 and the mounting block 401 at the bottom; The base support 1 includes a support base plate 101. Telescopic uprights 107 are vertically and symmetrically fixedly connected to the top surface of the support base plate 101. Multiple telescopic uprights 107 are arranged parallel to each other at the end of the top surface of the support base plate 101 furthest from the feeding mechanism 2. Movable brackets 109 are horizontally fixedly connected to the top of each telescopic upright 107. Moving wheels 102 are symmetrically and evenly fixedly connected to the bottom surface of the support base plate 101. Vertically fixed edges of the top surface of the support base plate 101 are... The support column 103 is equipped with a control box 104 connected to the top of the support column 103. A control panel 105 is fixedly installed on the side of the control box 104. A backup power supply 106 is fixedly installed on the top surface of the support base plate 101. The control box 104, control panel 105 and backup power supply 106 are electrically connected to each other. A cylinder body 108 is vertically fixedly connected to the side of the telescopic pole 107. The top of the support column 103 is rotatably connected to the bottom surface of the control box 104 through a top clip 110. The feeding mechanism 2 includes a support base block 201, the bottom of which is fixedly installed on the top surface of the support base plate 101. A receiving hopper 203 is fixedly connected to the top of the support base block 201. A side through hole 207 is obliquely opened on the side of the support base block 201. After the material is fed into the receiving hopper 203, it enters the internal groove of the support base block 201. The side through hole 207 extends into the interior of the support base block 201 to maintain communication. Symmetrically welded to both sides of the support base block 201 are... Side strips 202 are installed. Limiting grooves 204 are horizontally and symmetrically opened on the inner side of the receiving hopper 203. The limiting grooves 204 are horizontally opened at the inner top opening end of the receiving hopper 203. A storage box 205 is horizontally fixed on one side of the receiving hopper 203. A sealing roll plate 206 is horizontally snapped into the inner side of the limiting groove 204. A winding shaft 208 is horizontally inserted into the inner side of the storage box 205. One end of the sealing roll plate 206 extends and is wrapped around the outer side of the winding shaft 208. The spring-loaded structure 3 includes a loading pipe 301, a support ring 302 sleeved on the outer side of the loading pipe 301, an end box 303 fixedly connected to the top of the loading pipe 301, a loading motor 304 fixedly connected to one end of the end box 303, a discharge pipe 308 snapped onto the bottom surface of the end box 303, an inner spring 309 inserted into the inner side of the loading pipe 301, a vibrator 312 fixedly connected to the side of the discharge pipe 308, and the bottom end of the loading pipe 301 inserted into the side through hole 207, maintaining communication with the internal groove of the support base block 201. The loading pipe 301 is inclinedly positioned between the support base block 201 and the feeding hopper 405 via the support ring 302, and the end box 303 maintains communication with the interior of the loading pipe 301. The loading motor 304... 04. The discharge pipe 308 is fixedly connected to the top of the inner spring 309 via the power shaft 310. The discharge pipe 308 is connected to the opening end of the bottom opening 311 via the connecting hose 307. The bottom surface of the support ring 302 is fixedly welded with a flipping block 305. The flipping block 305 is connected to the inner side of the top groove of the rotating block 411 via a shaft. The bottom surface of the end box 303 is symmetrically fixedly connected with a side plate 306. The top of the discharge pipe 308 is fixedly connected with a connecting hose 307. The power shaft 310 is inserted into the inner side of the end box 303. The bottom surface of the end box 303 has a bottom opening 311. The opening end of the connecting hose 307 is fixedly connected to the opening end of the bottom opening 311 to maintain communication. The discharge pipe 308 is located at the top of the feeding hopper 405.
[0026] The equipment employs vibration and agitation devices during the conveying process, effectively preventing the raw materials from clumping and piling up, ensuring uniform delivery. Simultaneously, the spring-loaded feeding structure design avoids collisions and friction damage to the raw materials during transport.
[0027] Example 4: like Figures 1-11 As shown, the present invention provides a technical solution: a wear-resistant conveying device for spring feeding in plastic pipe production, comprising a base support body 1, a feeding mechanism 2 fixedly installed on the top surface of the base support body 1, a spring feeding structure 3 obliquely inserted into the side of the feeding mechanism 2, a conveying mechanism 4 provided on the bottom surface of the spring feeding structure 3, a transmission mechanism 5 horizontally fixedly connected to the bottom end of the conveying mechanism 4, the feeding mechanism 2 being fixedly installed at one end of the centerline of the top surface of the base support body 1 via a mounting side strip 202, one end of the spring feeding structure 3 extending obliquely downward and inserted into the inside of the side through hole 207 to maintain communication, and the conveying mechanism 4 being fixedly installed on the top surface of the movable bracket 109 via the transmission mechanism 5 and the mounting block 401 at the bottom; The base support 1 includes a support base plate 101. Telescopic uprights 107 are vertically and symmetrically fixedly connected to the top surface of the support base plate 101. Multiple telescopic uprights 107 are arranged parallel to each other at the end of the top surface of the support base plate 101 furthest from the feeding mechanism 2. Movable brackets 109 are horizontally fixedly connected to the top of each telescopic upright 107. Moving wheels 102 are symmetrically and evenly fixedly connected to the bottom surface of the support base plate 101. Vertically fixed edges of the top surface of the support base plate 101 are... The support column 103 is equipped with a control box 104 connected to the top of the support column 103. A control panel 105 is fixedly installed on the side of the control box 104. A backup power supply 106 is fixedly installed on the top surface of the support base plate 101. The control box 104, control panel 105 and backup power supply 106 are electrically connected to each other. A cylinder body 108 is vertically fixedly connected to the side of the telescopic pole 107. The top of the support column 103 is rotatably connected to the bottom surface of the control box 104 through a top clip 110. The feeding mechanism 2 includes a support base block 201, the bottom of which is fixedly installed on the top surface of the support base plate 101. A receiving hopper 203 is fixedly connected to the top of the support base block 201. A side through hole 207 is obliquely opened on the side of the support base block 201. After the material is fed into the receiving hopper 203, it enters the internal groove of the support base block 201. The side through hole 207 extends into the interior of the support base block 201 to maintain communication. Symmetrically welded to both sides of the support base block 201 are... Side strips 202 are installed. Limiting grooves 204 are horizontally and symmetrically opened on the inner side of the receiving hopper 203. The limiting grooves 204 are horizontally opened at the inner top opening end of the receiving hopper 203. A storage box 205 is horizontally fixed on one side of the receiving hopper 203. A sealing roll plate 206 is horizontally snapped into the inner side of the limiting groove 204. A winding shaft 208 is horizontally inserted into the inner side of the storage box 205. One end of the sealing roll plate 206 extends and is wrapped around the outer side of the winding shaft 208. The spring-loaded structure 3 includes a loading pipe 301, a support ring 302 sleeved on the outer side of the loading pipe 301, an end box 303 fixedly connected to the top of the loading pipe 301, a loading motor 304 fixedly connected to one end of the end box 303, a discharge pipe 308 snapped onto the bottom surface of the end box 303, an inner spring 309 inserted into the inner side of the loading pipe 301, a vibrator 312 fixedly connected to the side of the discharge pipe 308, a flipping block 305 fixedly welded to the bottom surface of the support ring 302, the flipping block 305 being connected to the inner side of the top groove of the rotating block 411 via a shaft, side plates 306 symmetrically fixedly connected to the bottom surface of the end box 303, a connecting hose 307 fixedly connected to the top of the discharge pipe 308, and a drive shaft inserted into the inner side of the end box 303. 310, the bottom end of the feeding pipe 301 is inserted into the side through hole 207, and the feeding pipe 301 is connected to the internal groove of the support base block 201. The feeding pipe 301 is inclinedly set between the support base block 201 and the feeding hopper 405 through the support ring body 302. The end box body 303 is connected to the inside of the feeding pipe 301. The feeding motor 304 is fixedly connected to the top of the inner spring 309 through the power shaft 310. The discharge pipe 308 is connected to the opening end of the bottom opening 311 through the connecting rubber tube 307. The bottom surface of the end box body 303 has a bottom opening 311. The opening end of the connecting rubber tube 307 is fixedly connected to the opening end of the bottom opening 311 and is connected. The discharge pipe 308 is set at the top of the feeding hopper 405. The conveying mechanism 4 includes a mounting base block 401, a bottom connecting block 402 at the bottom end of the mounting base block 401, a feeding hopper 405 fixedly connected to the top end of the mounting base block 401, a rotating connecting block 411 engaged at the top end of the feeding hopper 405, a bottom through groove 412 at the top end of the mounting base block 401, a locator 413 fixedly connected to the side of the bottom connecting block 402, and a mating hole 414 at the edge of the top opening of the feeding hopper 405. The mounting base block 401 is fixedly mounted on the outer side of one end of the extension plate 501 by a side strip at the bottom end. The top end of the bottom connecting block 402 is mated to the top surface of the extension plate 501 near one end. The rotating connecting block 411 is rotatably engaged with the inner side of the mating hole 414. The bottom through groove 412 and the through side groove 404 are in communication. The top of the connecting block 402 is provided with a top stabilizing hole 415, and an adjusting motor 416 is fixedly installed on the inner side of the top stabilizing hole 415. The bottom connecting block 402 is symmetrically welded with mounting strips 403 on both sides. The bottom connecting block 402 is fixedly installed on the top surface of the movable bracket 109 by the mounting strips 403. The bottom end of the mounting block 401 is horizontally provided with a through side groove 404. The top of the feeding hopper 405 is vertically fixedly installed with a support frame 406. The top surface of the support frame 406 is connected to a vibrator 407. The output end of the vibrator 407 is connected to a vertical column 408. The bottom end of the vertical column 408 is horizontally fixedly connected to an inner rod 409. The bottom surface of the inner rod 409 is uniformly fixedly inserted with actuating columns 410. The actuating columns 410 are parallel to each other and are installed on the inner side of the bottom through groove 412. The transmission mechanism 5 includes an extension plate 501. A top isolation plate 502 is horizontally and symmetrically fixedly connected to the top surface of the extension plate 501. A mating wedge 503 is fixedly installed on one side of the extension plate 501. A transmission motor 504 is fixedly connected to the side of the mating wedge 503. A mating groove 505 is horizontally and through-cut on the side of the extension plate 501. A transmission belt 506 is horizontally inserted into the inner side of the mating groove 505. A bottom clamping turntable 507 is fixedly connected to one end of the bottom surface of the extension plate 501. Power rollers 508 are symmetrically clamped to one end of the top surface of the extension plate 501. The top surface of the extension plate 501 is evenly provided with top grooves 509. The inner side of the top groove 509 is engaged with a mating roller 510. The bottom end of the bottom clamping turntable 507 is engaged with the inner side of the top stabilizing hole 415. The output end of the adjusting motor 416 is fixedly connected to the center of the bottom end of the bottom clamping turntable 507. One end of the extension plate 501 is horizontally inserted into the inner side of the through side groove 404. The conveyor belt 506 is horizontally sleeved on the top surface of the extension plate 501. The top surfaces of multiple mating rollers 510 are all mated to the inner top surface of the conveyor belt 506.
[0028] pass Working Principle: Based on the layout requirements of the production line, the height of the telescopic upright 107 is adjusted, thereby adjusting the vertical position of the movable bracket 109 to accommodate conveying needs at different heights. The adjustment of the telescopic upright 107 is achieved through the cylinder body 108, ensuring a smooth and accurate adjustment process. The feeding mechanism 2 is fixedly installed at one end of the centerline of the top surface of the base support body 1 via the mounting side strip 202. During installation, it is necessary to ensure that the support base block 201 is tightly fitted with the support base plate 101, and the opening of the receiving hopper 203 faces upwards for easy receipt of raw materials. Before feeding, depending on the properties of the raw materials and production requirements, it is optional to use the sealing roll plate 206 to seal the receiving hopper 203. If sealing is required, the sealing roll plate 206 is pulled out from the storage box 205 and inserted into the limiting groove 204 to ensure a tight seal. During feeding, the raw materials are poured into the receiving hopper 203, and the raw materials enter the internal groove of the support base block 201 through the side through hole 207, awaiting subsequent feeding. One end of the spring-loaded structure 3 extends obliquely downwards and is inserted into the side through hole 207 to maintain connection. Before starting, ensure that the loading pipe 301 is tightly connected to the internal groove of the support base block 201 to prevent material leakage. Start the loading motor 304, which drives the inner spring 309 to rotate via the power shaft 310. The rotation of the inner spring 309 generates an upward thrust, pushing the material upwards along the loading pipe 301 into the end box 303. After entering the end box 303, the material enters the discharge pipe 308 through the bottom opening 311 and the connecting hose 307. At this time, the vibrator 312 can be activated to slightly vibrate the discharge pipe 308 to prevent material blockage and ensure smooth loading. The conveying mechanism 4 is fixedly installed on the top surface of the movable bracket 109 through the transmission mechanism 5 and the bottom mounting block 401. Before receiving the material, ensure that the opening of the feeding hopper 405 faces upwards and corresponds to the position of the discharge pipe 308. After the raw material falls from the discharge pipe 308 into the feeding hopper 405, the vibrator 407 is activated. The vertical column 408 and inner rod 409 drive the agitator 410 to reciprocate in the bottom groove 412, vibrating and agitating the raw material to prevent clumping or accumulation and ensure smooth entry into the conveying mechanism 4. The conveying mechanism 4 transports the raw material to the next process via the conveyor belt 506. The conveyor belt 506 is driven by the transmission motor 504, achieving smooth transmission through the cooperation of the inclined block 503 and the groove 505. The transmission mechanism 5, as the power source and transmission component of the conveying mechanism 4, is crucial for stability and flexibility. During use, the angle of the extension plate 501 can be adjusted by adjusting the motor 416 according to the layout requirements of the production line, thereby adjusting the conveying direction of the conveying mechanism 4. During adjustment, the adjusting motor 416 is activated, driving the extension plate 501 to rotate around the top stabilizing hole 415 via the bottom turntable 507 until the desired angle is reached. During the adjustment process, it is necessary to ensure that the extension plate 501 and the mounting base 401 fit tightly to prevent loosening or misalignment.During the operation of the transmission mechanism 5, the power roller 508 and the cooperating roller 510 jointly support the operation of the conveyor belt 506, reducing friction and improving transmission efficiency. At the same time, the top isolation plate 502 effectively prevents the raw materials from scattering and being wasted during the conveying process.
[0029] All technical features in this embodiment can be freely combined according to actual needs.
[0030] The above embodiments are preferred implementations of the present invention. In addition, the present invention can be implemented in other ways. Any obvious substitutions without departing from the concept of the present technical solution are within the protection scope of the present invention.
[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0032] 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 wear-resistant conveying device for spring feeding in plastic pipe production, comprising a base support body (1), characterized in that, The top surface of the bottom support body (1) is fixedly installed with a feeding mechanism (2), the side of the feeding mechanism (2) is obliquely inserted with a spring feeding structure (3), the bottom surface of the spring feeding structure (3) is provided with a conveying mechanism (4), and the bottom end of the conveying mechanism (4) is horizontally fixedly connected with a transmission mechanism (5). The base support body (1) includes a support base plate (101), and a telescopic upright (107) is vertically and symmetrically fixedly connected to the top surface of the support base plate (101). A movable bracket (109) is horizontally fixedly connected to the top end of the telescopic upright (107). The feeding mechanism (2) includes a support base block (201), the bottom end of which is fixedly installed on the top surface of the support base plate (101), the top end of which is fixedly connected to a receiving hopper (203), and the side of which is obliquely opened with a side through hole (207). The spring feeding structure (3) includes a feeding tube (301), a support ring (302) sleeved on the outer side of the feeding tube (301), an end box (303) fixedly connected to the top of the feeding tube (301), a feeding motor (304) fixedly connected to one end of the end box (303), a discharge tube (308) snapped onto the bottom surface of the end box (303), an inner spring (309) inserted into the inner side of the feeding tube (301), and a vibrator (312) fixedly connected to the side of the discharge tube (308). The conveying mechanism (4) includes a mounting base block (401), a bottom docking block (402) is provided at the bottom end of the mounting base block (401), a feeding hopper (405) is fixedly connected to the top end of the mounting base block (401), a rotating connecting block (411) is snapped into the top end of the feeding hopper (405), a bottom through groove (412) is opened at the top end of the mounting base block (410), a positioner (413) is fixedly connected to the side of the bottom docking block (402), a mating hole (414) is opened at the edge of the top opening of the feeding hopper (405), a top stabilizing hole (415) is opened at the top end of the bottom docking block (402), and an adjusting motor (416) is fixedly provided on the inner side of the top stabilizing hole (415). The transmission mechanism (5) includes an extension plate (501), a top isolation plate (502) is horizontally and symmetrically fixedly connected to the top surface of the extension plate (501), a mating inclined block (503) is fixedly provided on one side of the extension plate (501), a transmission motor (504) is fixedly connected to the side of the mating inclined block (503), a mating groove (505) is horizontally and through the side of the extension plate (501), a transmission belt (506) is horizontally inserted into the inner side of the mating groove (505), a bottom card turntable (507) is fixedly connected to one end of the bottom surface of the extension plate (501), a power roller (508) is symmetrically clamped to one end of the top surface of the extension plate (501), a top groove (509) is uniformly opened on the top surface of the extension plate (501), and a mating roller (510) is clamped to the inner side of the top groove (509).
2. The wear-resistant conveying equipment for spring feeding in plastic pipe production according to claim 1, characterized in that, The bottom surface of the support base plate (101) is symmetrically and uniformly fixedly connected with moving wheels (102). The top edge of the support base plate (101) is vertically fixedly installed with a support column (103). The top of the support column (103) is connected to a control box (104). The side of the control box (104) is fixedly installed with a control panel (105). The top surface of the support base plate (101) is fixedly installed with a backup power supply (106). The control box (104), control panel (105) and backup power supply (106) are electrically connected to each other. The side of the telescopic pole (107) is vertically fixedly connected with a cylinder body (108). The top of the support column (103) is rotatably connected to the bottom surface of the control box (104) through a top clip (110).
3. The wear-resistant conveying equipment for spring feeding in plastic pipe production according to claim 1, characterized in that, The support base block (201) has symmetrically welded mounting side strips (202) on both sides. The receiving hopper (203) has horizontally symmetrically opened limiting grooves (204) on its inner side. The limiting grooves (204) are horizontally opened at the inner top opening of the receiving hopper (203). A storage box (205) is horizontally fixed on one side of the receiving hopper (203). A sealing roll plate (206) is horizontally snapped into the inner side of the limiting groove (204). A winding shaft rod (208) is horizontally inserted into the inner side of the storage box (205). One end of the sealing roll plate (206) extends and is wrapped around the outer side of the winding shaft rod (208).
4. The wear-resistant conveying equipment for spring feeding in plastic pipe production according to claim 1, characterized in that, The bottom surface of the support ring (302) is fixedly welded with a flipping block (305). The flipping block (305) is connected to the inner side of the top channel of the rotating block (411) by a shaft. The bottom surface of the end box (303) is symmetrically fixedly connected with a side plate (306). The top end of the discharge pipe (308) is fixedly connected with a connecting hose (307). The inner side of the end box (303) is inserted with a power shaft (310). The bottom surface of the end box (303) is provided with a bottom opening (311). The opening end of the connecting hose (307) is fixedly connected to the opening end of the bottom opening (311) to maintain communication. The discharge pipe (308) is located at the top of the feeding hopper (405).
5. The wear-resistant conveying equipment for spring feeding in plastic pipe production according to claim 1, characterized in that, The bottom connecting block (402) has symmetrically welded mounting strips (403) on both sides. The bottom connecting block (402) is fixedly installed on the top surface of the movable bracket (109) by the mounting strips (403). The bottom end of the mounting block (401) has a horizontal through side groove (404). The top of the feeding hopper (405) is vertically fixedly installed with a support frame (406). The top surface of the support frame (406) is connected to a vibrator (407). The output end of the vibrator (407) is connected to a vertical column (408). The bottom end of the vertical column (408) is horizontally fixedly connected to an inner rod (409). The bottom surface of the inner rod (409) is uniformly fixedly inserted with actuating columns (410). The actuating columns (410) are inserted parallel to each other on the inner side of the bottom through groove (412).
6. The wear-resistant conveying equipment for spring feeding in plastic pipe production according to claim 1, characterized in that, The feeding mechanism (2) is fixedly installed at one end of the center line of the top surface of the bottom support body (1) by the installation side strip (202). One end of the spring feeding structure (3) extends obliquely downward and is inserted into the inside of the side through hole (207) to maintain communication. The conveying mechanism (4) is fixedly installed at the top surface of the movable bracket (109) by the cooperation of the transmission mechanism (5) and the bottom mounting block (401).
7. The wear-resistant conveying equipment for spring feeding in plastic pipe production according to claim 1, characterized in that, The telescopic poles (107) are multiple, and the multiple telescopic poles (107) are fixedly connected in parallel to each other at one end of the top surface centerline of the support base plate (101) away from the feeding mechanism (2). The material enters the internal groove of the support base block (201) after being fed into the receiving hopper (203). The side through hole (207) extends into the interior of the support base block (201) to maintain communication.
8. The wear-resistant conveying equipment for spring feeding in plastic pipe production according to claim 1, characterized in that, The bottom end of the feeding pipe (301) is inserted into the inside of the side through hole (207), and the feeding pipe (301) is connected to the internal groove of the support base block (201). The feeding pipe (301) is inclinedly set between the support base block (201) and the feeding hopper (405) through the support ring body (302). The end box body (303) is connected to the inside of the feeding pipe (301). The feeding motor (304) is fixedly connected to the top of the inner spring (309) through the power shaft (310). The discharge pipe (308) is connected to the opening end of the bottom opening (311) through the connecting rubber tube (307).
9. The wear-resistant conveying equipment for spring feeding in plastic pipe production according to claim 1, characterized in that, The mounting base block (401) is fixedly installed on the outer side of one end of the extension plate (501) by wrapping the side strip at the bottom end. The top of the bottom connecting block (402) is connected to the top surface of the extension plate (501) near one end. The rotating connecting block (411) is rotated and snapped into the inner side of the mating hole (414). The bottom through groove (412) is connected to the through side groove (404). The bottom end of the bottom clamping turntable (507) is snapped into the inner side of the top stabilizing hole (415). The output end of the adjusting motor (416) is fixedly connected to the center of the bottom end of the bottom clamping turntable (507). One end of the extension plate (501) is horizontally inserted into the inner side of the through side groove (404). The conveyor belt (506) is horizontally sleeved on the top surface of the extension plate (501). The top surfaces of multiple mating rollers (510) are all connected to the inner top surface of the conveyor belt (506).