Servo feeder with double material platforms
By designing a dual-table servo feeder, the problem of traditional feeders only being able to feed to a single station is solved, enabling simultaneous feeding to two stations, improving production efficiency and flexibility, and adapting to multi-station processing needs.
Patent Information
- Application Number
- CN202520391259.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-07
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-03-07
AI Technical Summary
Traditional feeders can only feed materials to a single workstation, resulting in low production line efficiency and an inability to meet the processing needs of multiple workstations simultaneously.
Design a dual-table servo feeder. By setting two processing tables and a feeding component on the operating platform, it can feed materials to two workstations simultaneously. Components such as guide rails, servo motors and lead screws are used to ensure the stability and accuracy of feeding.
It enables simultaneous feeding at two workstations, improving production efficiency, eliminating the bottleneck of single-workstation feeding, adapting to different production needs, and ensuring continuous operation and efficient processing of the production line.
Smart Images

Figure CN223737084U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a feeding equipment technical field, concretely to a double material platform servo feeding machine. BACKGROUND
[0002] In modern industrial production, the feeder is one of the key equipment for realizing automation production, which is responsible for conveying raw materials to processing equipment for subsequent processing operation.
[0003] However, the traditional feeder can usually only feed to a single station, and this single-station feeding mode limits the efficiency of the production line, because once the processing speed of a certain station cannot keep up, it will cause the accumulation of raw materials or the idling of processing equipment, thereby reducing the overall production efficiency. In order to solve this problem, a double material platform servo feeding machine is proposed.
[0004] This new type of feeder can feed to two different stations at the same time through innovative structural design, so that workers at the two stations can process workpieces at the same time. CONTENT OF THE UTILITY MODEL
[0005] The utility model aims at providing a double material platform servo feeding machine, which has the advantage of feeding to two different stations at the same time, and solves the problem that the existing feeder can only feed to a single station, thereby making it difficult to improve work efficiency.
[0006] To achieve the above-mentioned purpose, the utility model provides the following technical scheme: a double material platform servo feeding machine, comprising an operation table and a first processing table and a second processing table constituting the operation table, the first processing table and the second processing table are fixedly connected through a connecting frame on the opposite side, the first processing table and the second processing table above the connecting frame are provided with a material conveying assembly;
[0007] The first processing table and the second processing table are fixedly installed with a feeding assembly on the upper end surface of the rear end through a mounting frame, and two feeding assemblies are movably installed with a distribution frame.
[0008] Preferably, the first processing table and the second processing table are fixedly installed with a guide rail frame on the upper end surface of the front end, and the two distribution frames are respectively slid along the guide rail frame. In the design, the guide rail frame is fixedly installed on the upper end surface of the front end of the first processing table and the second processing table, which provides a stable and accurate sliding path for the distribution frame. This design ensures the stability and accuracy of the distribution frame during movement, thereby improving the accuracy and reliability of feeding. In addition, the design of the guide rail frame reduces friction and wear, prolongs the service life of the distribution frame, and also reduces maintenance cost.
[0009] Preferably, the feeding assembly includes a chassis, a feeding frame is fixedly installed on the top of the chassis, a feeding belt is arranged in the feeding frame, the feeding belt is driven by a driving motor, and the driving motor is fixedly installed on one side of the rear end of the feeding frame. The design of the feeding assembly provides a solid support for the feeding belt through the structure of the chassis and the feeding frame. The feeding belt is driven by the driving motor, which can provide precise speed control and power output, ensuring the stability and consistency of the feeding process. In addition, the fixed installation of the driving motor reduces vibration, improves the stability and durability of the machine.
[0010] Preferably, the upper end surface of the feeding belt is flush with the upper end surface of the feeding frame, and the height of the upper end surface of the feeding frame is higher than the height of the upper end surface of the first and second processing tables. In the design, the upper end surface of the feeding belt is flush with the upper end surface of the feeding frame, and the height of the upper end surface of the feeding frame is higher than the height of the upper end surface of the first and second processing tables. This design helps to achieve smooth transition and accurate placement of materials, improving the accuracy and efficiency of feeding.
[0011] Preferably, the two mounting frames are fixedly connected by a cross plate on opposite sides. In the design, the two mounting frames are fixedly connected by a cross plate, which enhances the structural stability of the entire feeding assembly. This connection provides stronger support, reduces vibration and deformation during high load or high speed operation, thereby improving the reliability and durability of the machine. At the same time, this design also simplifies the assembly and maintenance process, reducing maintenance costs.
[0012] Preferably, the feeding assembly includes a support frame fixedly installed on the top front of the mounting frame, a servo motor fixedly installed on one side of the support frame, a lead screw transmissionally installed on one end of the servo motor, a positioning seat rotationally installed on the end of the lead screw away from the servo motor, the positioning seat is fixedly installed on the front of the cross plate, and a sliding block is threadedly installed on the lead screw. In the design of the feeding assembly, the combination of the servo motor and the lead screw achieves precise position control of the distribution frame. The high precision and fast response characteristics of the servo motor enable the distribution frame to quickly and accurately move to the predetermined position. The use of the lead screw provides linear motion conversion, making the movement of the distribution frame more stable and accurate. This design improves the flexibility and efficiency of the feeding process.
[0013] Preferably, the rear end of the distribution frame is fixedly connected to the front of the sliding block, and the bottom of the distribution frame does not contact the upper end surface of the feeding belt. In the design, the rear end of the distribution frame is fixedly connected to the front of the sliding block, which ensures the stability and consistency of the distribution frame during movement. The design that the bottom of the distribution frame does not contact the upper end surface of the feeding belt reduces friction and wear, improves the efficiency of feeding and the service life of the distribution frame. At the same time, this design also helps to reduce noise and maintenance requirements, improving the overall operation experience and the reliability of the machine.
[0014] Compared with the prior art, the utility model have the advantages that:
[0015] The utility model discloses operating platform is by first processing platform and second processing platform, and two processing platforms opposite side is fixedly connected through the connecting frame.This kind of double position design allows the machine to handle two workpieces simultaneously, instead of handling in turn, thereby improve the processing efficiency, simultaneously, the material feeding subassembly is set up above the connecting frame, and serves two processing platforms.This means that one material feeding subassembly can feed materials to two stations simultaneously, improving the flexibility and efficiency of material feeding.Independent feeding assembly is fixedly installed on the upper end face rear end of each processing platform through the mounting frame.These independent feeding assemblies enable each station to receive and handle materials according to its own rhythm without being affected by the other station.A material distribution frame is movably installed on each feeding assembly, and these material distribution frames can be moved to adapt to different feeding requirements.The design of the material distribution frame allows the machine to accurately distribute materials to two different stations, ensuring the accuracy and flexibility of feeding.As the double material table servo feeder can feed materials to two stations simultaneously, it eliminates the bottleneck of single-station feeders that can only continue feeding after one station finishes processing materials.This design allows two stations to work almost uninterruptedly, significantly improving the overall work efficiency.The design of the machine allows it to adapt to different production requirements and work processes.Whether two stations need the same amount of materials or one station needs more materials, the double material table servo feeder can flexibly respond to ensure the continuous operation of the production line.In summary, this double material table servo feeder realizes simultaneous feeding to two different stations, effectively solving the limitations of traditional single-station feeders in improving work efficiency, and providing a more efficient and flexible solution for industrial automation. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is the front view structure schematic drawing of the utility model;
[0017] Figure 2 It is operating platform structure schematic drawing of the utility model;
[0018] Figure 3 It is feeding assembly structure schematic drawing of the utility model;
[0019] Figure 4 It is material feeding subassembly structure schematic drawing of the utility model.
[0020] In the drawing: 1, operating platform;11, first processing platform;12, second processing platform;13, guide rail frame;14, connecting frame;15, mounting frame;151, horizontal plate;2, feeding assembly;21, servo motor;22, support frame;23, lead screw;24, sliding block;25, positioning seat;3, material distribution frame;4, material feeding subassembly;41, base frame;42, material feeding frame;43, material feeding belt;44, driving motor. DETAILED DESCRIPTION
[0021] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0022] Embodiment one
[0023] As shown in Figure 1 , Figure 2 , Figure 3 and Figure 4 , the present application provides an embodiment: a double-station servo feeder, comprising an operation table 1 and a first machining station 11 and a second machining station 12 constituting the operation table 1, the first machining station 11 and the second machining station 12 are fixedly connected through a connecting frame 14 on one side, and the first machining station 11 and the second machining station 12 above the connecting frame 14 are provided with a material conveying assembly 4.
[0024] The first machining station 11 and the second machining station 12 are respectively fixedly installed with a feeding assembly 2 through a mounting frame 15 on the upper end surface of the rear end, and the two feeding assemblies 2 are movably installed with a material distribution frame 3.
[0025] Specifically, the operation platform 1 is composed of a first processing platform 11 and a second processing platform 12, and the two processing platforms are fixedly connected through the connecting frame 14 on one side. The design of double-station allows the machine to process two workpieces at the same time instead of sequentially, thereby improving the processing efficiency. At the same time, the feeding assembly 4 is erected above the connecting frame 14 and serves two processing platforms. This means that one feeding assembly 4 can simultaneously feed materials to two stations, improving the flexibility and efficiency of feeding. The independent feeding assembly 2 is fixedly installed on the upper end face of each processing platform through the mounting frame 15. These independent feeding assemblies 2 allow each station to receive and process materials according to its own rhythm without being affected by the other station. The distribution frame 3 is movably installed on each feeding assembly 2, and these distribution frames 3 can be moved to adapt to different feeding requirements. The design of the distribution frame 3 allows the machine to accurately distribute materials to two different stations, ensuring the accuracy and flexibility of feeding. Since the double-station servo feeder can simultaneously feed materials to two stations, it eliminates the bottleneck of single-station feeders that can only continue feeding after one station has finished processing materials. This design allows two stations to work almost continuously, significantly improving overall work efficiency. The design of the machine allows it to adapt to different production needs and work processes. Whether two stations need the same amount of material or one station needs more material, the double-station servo feeder can adapt flexibly to ensure continuous operation of the production line. In summary, this double-station servo feeder realizes simultaneous feeding to two different stations, effectively solving the limitations of traditional single-station feeders in improving work efficiency, and providing a more efficient and flexible solution for industrial automation.
[0026] Embodiment Two
[0027] In order to simultaneously and smoothly feed two stations, as shown in Figure 1 and Figure 4 , in this embodiment, the first processing platform 11 and the second processing platform 12 are fixedly installed with guide rail frames 13 on the upper end face of the front end, and the two distribution frames 3 are respectively slid along the guide rail frames 13. In the design, the guide rail frames 13 are fixedly installed on the upper end face of the front end of the first processing platform 11 and the second processing platform 12 to provide a stable and accurate sliding path for the distribution frame 3. This design ensures the stability and accuracy of the distribution frame 3 during movement, thereby improving the accuracy and reliability of feeding. In addition, the design of the guide rail frame 13 reduces friction and wear, prolongs the service life of the distribution frame 3, and also reduces maintenance costs.
[0028] Further, the feeding assembly 4 includes a chassis 41, and a feeding rack 42 is fixedly installed on the top of the chassis 41. The feeding rack 42 is internally provided with a feeding belt 43, and the feeding belt 43 is driven by a driving motor 44 fixedly installed on one side of the rear end of the feeding rack 42. In the design, the feeding assembly 4 provides solid support for the feeding belt 43 through the structure of the chassis 41 and the feeding rack 42. The feeding belt 43 is driven by the driving motor 44, and this electric driving mode can provide precise speed control and power output, ensuring the stability and consistency of the feeding process. In addition, the fixed installation of the driving motor 44 reduces vibration and improves the stability and durability of the machine.
[0029] Further, the upper end surface of the feeding belt 43 is flush with the upper end surface of the feeding rack 42, and the upper end surface of the feeding rack 42 is higher than the upper end surface of the first processing table 11 and the second processing table 12. In the design, the upper end surface of the feeding belt 43 is flush with the upper end surface of the feeding rack 42, and the upper end surface of the feeding rack 42 is higher than the upper end surface of the first processing table 11 and the second processing table 12. This design helps to achieve smooth transition and accurate placement of the material, improving the accuracy and efficiency of feeding.
[0030] Embodiment Three
[0031] In order to stably convey the workpiece on the feeding assembly to the work station, as shown in Figure 1 , Figure 2 and Figure 3 , in this embodiment, the two mounting racks 15 are fixedly connected by a cross plate 151 on one side. In the design, the two mounting racks 15 are fixedly connected by the cross plate 151, which enhances the structural stability of the entire feeding assembly 2. This connection provides stronger support, reduces vibration and deformation under high load or high speed operation, and thus improves the reliability and durability of the machine. At the same time, this design also simplifies the assembly and maintenance process, reducing maintenance costs.
[0032] Further, the feeding assembly 2 includes a support frame 22 fixedly installed on the top front of the mounting rack 15, and a servo motor 21 is fixedly installed on one side of the support frame 22. One end of the servo motor 21 is drivingly installed with a lead screw 23, and the end of the lead screw 23 away from the servo motor 21 is rotatably installed with a positioning seat 25. The positioning seat 25 is fixedly installed on the front middle of the cross plate 151, and the lead screw 23 is threadedly installed with a sliding block 24. In the design, the feeding assembly 2 realizes precise position control of the distribution rack 3 through the combination of the servo motor 21 and the lead screw 23. The high precision and fast response characteristics of the servo motor 21 enable the distribution rack 3 to quickly and accurately move to the predetermined position. The use of the lead screw 23 provides linear motion conversion, making the movement of the distribution rack 3 more stable and accurate. This design improves the flexibility and efficiency of the feeding process.
[0033] Further, the rear end of the distribution rack 3 is fixedly connected with the front surface of the sliding block 24, and the bottom of the distribution rack 3 is not in contact with the upper end surface of the material conveying belt 43. The design of fixedly connecting the rear end of the distribution rack 3 with the front surface of the sliding block 24 ensures the stability and consistency of the distribution rack 3 during movement. The design of not contacting the bottom of the distribution rack 3 with the upper end surface of the material conveying belt 43 reduces friction and wear, improves the efficiency of feeding and the service life of the distribution rack 3. At the same time, this design also helps to reduce noise and maintenance requirements, and improves the overall operation experience and the reliability of the machine.
[0034] When the utility model is used, the material conveying assembly 4 is started, which includes the chassis 41 and the material conveying rack 42 fixed on the top of the chassis 41. The material conveying rack 42 is provided with the material conveying belt 43, and the material conveying belt 43 is driven by the driving motor 44 fixedly installed on one side of the rear end of the material conveying rack 42. When the raw materials are conveyed to the positions of the first processing table 11 and the second processing table 12 through the material conveying belt 43, the feeding assembly 2 starts to work, and the feeding assembly 2 includes the support frame 22 and the servo motor 21 fixed on one side of the support frame 22. The servo motor 21 is driven through the lead screw 23, the sliding block 24 is screw-mounted on the lead screw 23, and the sliding block 24 is fixedly connected with the rear end of the distribution rack 3. The servo motor 21 is started and drives the sliding block 24 to move along the lead screw 23 through the lead screw 23, and then pushes the distribution rack 3 to slide along the guide rail frame 13. With the movement of the distribution rack 3, the two workpieces are conveyed to the first processing table 11 and the second processing table 12 respectively. Since the bottom of the distribution rack 3 is not in contact with the upper end surface of the material conveying belt 43, the stability and accuracy during conveying are ensured. Finally, the two workpieces are accurately placed on the respective processing tables for subsequent processing operation by workers. In the whole process, the distribution rack 3 is movably installed on the two feeding assemblies 2, which means that the two processing tables can simultaneously feed and process, greatly improving the work efficiency. Through the design of the double-material-table servo feeder, simultaneous feeding and processing of two stations can be realized, effectively improving the production efficiency and processing speed.
[0035] It is obvious for those skilled in the art that the utility model is not limited to the details of the above-mentioned exemplary embodiments, and the utility model can be realized in other specific forms without departing from the spirit or basic characteristics of the utility model. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting, the scope of the utility model is defined by the appended claims rather than the above description, and therefore all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the utility model. Any reference signs in the claims should not be regarded as limiting the claims involved.
Claims
1. A double table servo feeder, comprising an operation table (1) and a first processing table (11) and a second processing table (12) constituting the operation table (1), characterized in that: the first processing table (11) and the second processing table (12) are fixedly connected on opposite sides by a connecting frame (14), and the first processing table (11) and the second processing table (12) above the connecting frame (14) are provided with a feeding assembly (4); the first processing table (11) and the second processing table (12) are respectively fixedly installed with a feeding assembly (2) at the upper end face rear end through a mounting frame (15), and two feeding assemblies (2) are movably installed with a distribution frame (3) on each of them.
2. A dual-table servo feeder according to claim 1, wherein The first processing table (11) and the second processing table (12) are fixedly installed with a guide rail frame (13) at the upper end face front end, and the bottoms of the two distribution frames (3) slide along the guide rail frame (13) respectively.
3. A dual station servofeeder according to claim 1 wherein, The feeding assembly (4) comprises a bottom frame (41), and the top of the bottom frame (41) is fixedly installed with a feeding frame (42), and the feeding frame (42) is provided with a feeding belt (43) inside, the feeding belt (43) is driven by a driving motor (44) fixedly installed at the rear end of one side of the feeding frame (42).
4. A dual station servofeeder according to claim 3 wherein, The upper end face of the feeding belt (43) is flush with the upper end face of the feeding frame (42), and the height of the upper end face of the feeding frame (42) is higher than the height of the upper end face of the first processing table (11) and the second processing table (12).
5. A dual-table servo feeder according to claim 1, wherein The opposite sides of the two mounting frames (15) are fixedly connected by a cross plate (151).
6. A dual-table servo feeder according to claim 1, wherein The feeding assembly (2) comprises a support frame (22) fixedly installed on the front top of the mounting frame (15), a servo motor (21) fixedly installed on one side of the support frame (22), a lead screw (23) transmissionally installed at one end of the servo motor (21), a positioning seat (25) rotationally installed at the end of the lead screw (23) away from the servo motor (21), the positioning seat (25) is fixedly installed on the front middle of the cross plate (151), and a sliding block (24) is threadedly installed on the lead screw (23).
7. A dual-table servo feeder according to claim 1 wherein, The rear end of the distribution frame (3) is fixedly connected with the front face of the sliding block (24), and the bottom of the distribution frame (3) is not in contact with the upper end face of the feeding belt (43).