Multi-station shaft core milling machine feeding device

By designing a storage frame and moving plate structure in the loading device of the spindle milling machine, combined with a hydraulic telescopic rod and a clamping block assembly, the problem of misaligned spindle positions was solved, and the efficiency and adaptability of spindle machining were improved.

CN224295355UActive Publication Date: 2026-05-29CHONGQING XINGHENGDA PRECISION ELECTRONICS CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHONGQING XINGHENGDA PRECISION ELECTRONICS CO LTD
Filing Date
2025-08-05
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

During the machining of the shaft core, the shaking of the storage box caused the shaft core to become misaligned, reducing the processing efficiency of the workers at the next workstation.

Method used

A multi-station spindle milling machine loading device was designed, including an outer frame, a storage frame, and an installation assembly. By setting storage holes and a moving plate on the storage frame, the spindles are arranged in the required specifications using a hydraulic telescopic rod and a spring structure. Adaptive installation of spindles of different diameters is achieved through the cooperation of locking blocks and springs.

Benefits of technology

This effectively prevents the shaft core from being misplaced in the storage box, improves the efficiency of workers in retrieving it at the next workstation, enhances the adaptability of the device, and improves production progress.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of feeding device, and disclose multi -station's axle core milling machine feeding device, including outer frame, still include the storage frame and installation component, the inside of outer frame is provided with the storage frame, the outside of outer frame is provided with the installation component that stores the frame and installs, the storage hole that stores the axle core is seted up on the storage frame, the sliding connection with moving plate is driven in the inside of outer frame, the groove that corresponds is seted up in the corresponding position of storage frame of outer frame, the storage frame sets up in the groove of outer frame, the storage hole is provided with several, several storage holes are symmetrically distributed on the storage frame. Through in the axle core after completing a processing procedure, place the axle core in the storage hole inside of storage frame in proper order, make its the bottom of axle core and moving plate contact, thereby the specification of axle core is placed, prevent the staff to take outer frame, the position of axle core in the inside of outer frame is in disorder, improve the staff to take efficiency when processing in next station, improve the practicality of device.
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Description

Technical Field

[0001] This utility model relates to the field of feeding device technology, and in particular to a feeding device for a multi-station spindle milling machine. Background Technology

[0002] Shaft cores are extremely critical components in the mechanical field, playing an important role in various mechanical devices and systems for support, transmission, and positioning. Their performance and quality directly affect the operational stability, accuracy, and lifespan of the entire mechanical equipment. Shaft cores are cylindrical or near-cylindrical parts used in machinery to support rotating parts and transmit motion and torque. They are like the "backbone" of a mechanical system, connecting different components together so that they can work together to achieve various complex mechanical movements. Shaft cores require milling machines for processing, and are processed using corresponding milling machines through corresponding procedures.

[0003] In the existing technology, during the processing of the shaft core, after the shaft core completes one processing step, it is placed in a storage box. The storage box is then taken by the worker to the next workstation for subsequent processing. When the worker takes the storage box, it inevitably shakes, and the shaft core inside the storage box also shakes, causing the shaft core to be out of position in the storage box. This reduces the worker's retrieval efficiency when processing at the next workstation and slows down the overall production progress. Utility Model Content

[0004] To overcome the problem that when workers pick up the storage box, it is inevitable that the storage box will shake, causing the shaft core to be misplaced inside the storage box, which reduces the efficiency of workers picking it up at the next workstation.

[0005] The technical solution of this utility model is as follows: a multi-station spindle milling machine loading device, including an outer frame, a storage frame and an installation component. The storage frame is provided inside the outer frame, and the installation component for installing the storage frame is provided on the outside of the outer frame. The storage frame has a storage hole for storing spindles, and the outer frame drives the internal sliding plate to slide.

[0006] Preferably, the outer frame has a matching slot at the corresponding position of the storage frame, and the storage frame is set in the slot of the outer frame.

[0007] Preferably, there are several storage holes, which are symmetrically distributed on the storage frame.

[0008] Preferably, a fixed plate is fixedly connected inside the outer frame, a sliding shaft is slidably connected inside the fixed plate, a movable plate is fixedly connected to the top of the sliding shaft, a trapezoidal block is slidably connected inside the outer frame, a base is fixedly connected to the bottom of the sliding shaft, a rotating roller is rotatably connected inside the base, the rotating roller contacts the surface of the trapezoidal block, a first spring is fixedly connected between the base and the fixed plate, a hydraulic telescopic rod is fixedly connected to the bottom of the outer frame, and the trapezoidal block is fixedly connected to the telescopic end of the hydraulic telescopic rod.

[0009] Preferably, the outer frame has a matching groove at the corresponding position of the trapezoidal block, and the trapezoidal block slides within the groove of the outer frame.

[0010] Preferably, the mounting assembly includes a fixed frame, which is fixedly connected to the outside of the outer frame. A locking block is provided inside the fixed frame, which penetrates through the outer frame. A light rod is fixedly connected to the locking block and slidably connected inside the fixed frame. A second spring is fixedly connected between the locking block and the fixed frame. A toggle block is fixedly connected to the light rod.

[0011] Preferably, the outer frame has a matching through slot at the corresponding position of the card block, and the card block passes through the inside of the through slot of the outer frame.

[0012] The beneficial effects of this utility model are:

[0013] 1. After the shaft core completes one processing step, it is placed sequentially inside the storage hole of the storage frame, so that the bottom of the shaft core contacts the moving plate. This arranges the shaft cores in a standardized manner, preventing the shaft cores inside the outer frame from being misplaced when the workers take the outer frame. This improves the retrieval efficiency of the workers when processing at the next workstation and enhances the practicality of the device.

[0014] 2. The installation component replaces the storage frame with the corresponding hole diameter storage frame according to the diameter of the shaft core. By aligning the storage frame and inserting it into the groove of the outer frame, the storage frame is limited by the locking block passing through the through groove of the outer frame, thereby improving the adaptability to the placement of shaft cores of different diameters. Attached Figure Description

[0015] Figure 1 A schematic diagram of one embodiment of the multi-station spindle milling machine loading device of this utility model;

[0016] Figure 2 This is a schematic diagram of the storage frame structure of this utility model;

[0017] Figure 3 This is a schematic diagram of the movable plate structure of this utility model;

[0018] Figure 4 This is a schematic diagram of the sliding shaft structure of this utility model;

[0019] Figure 5 This is a schematic diagram of the installation component structure of this utility model.

[0020] Explanation of reference numerals in the attached drawings: 1. Outer frame; 21. Storage frame; 22. Storage hole; 23. Fixing plate; 24. Hydraulic telescopic rod; 25. Trapezoidal block; 26. Sliding shaft; 27. Moving plate; 28. Base; 29. ​​First spring; 210. Rotating roller; 31. Fixing frame; 32. Locking block; 33. Smooth rod; 34. Second spring; 35. Pulley block. Detailed Implementation

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Please see Figure 1 - Figure 5 This utility model provides an embodiment of a multi-station spindle milling machine loading device, including an outer frame 1, a storage frame 21, and an installation component. The storage frame 21 is disposed inside the outer frame 1, and the installation component for mounting the storage frame 21 is disposed outside the outer frame 1. The storage frame 21 has storage holes 22 for storing spindles. The outer frame 1 is slidably connected to a moving plate 27. After the spindle completes one processing step, the spindle is placed sequentially inside the storage holes 22 of the storage frame 21, so that the bottom of the spindle contacts the moving plate 27, thereby arranging the spindles in a standardized manner. This prevents the spindles inside the outer frame 1 from being misplaced when the operator picks up the outer frame 1, improves the retrieval efficiency of the operator when processing at the next station, and improves the practicality of the device. The installation component changes the storage frame 21 with the corresponding diameter storage hole 22 according to the diameter of the spindle, thereby improving the adaptability to the placement of spindles with different diameters.

[0023] Please see Figure 2 - Figure 4In this embodiment, the outer frame 1 has a corresponding groove at the corresponding position of the storage frame 21. The storage frame 21 is set in the groove of the outer frame 1, which facilitates the installation of storage frames 21 with storage holes 22 of different diameters, and facilitates the placement of shaft cores of different diameters, thereby improving the processing efficiency of the shaft cores. Several storage holes 22 are provided, and the several storage holes 22 are symmetrically distributed on the storage frame 21, which facilitates the placement of shaft cores and prevents the placement of shaft cores from being disordered, thereby improving the practicality of the device. A fixing plate 23 is fixedly connected inside the outer frame 1, and a sliding shaft 26 is slidably connected inside the fixing plate 23. A moving plate 27 is fixedly connected to the top of the sliding shaft 26. A trapezoidal block 25 is slidably connected inside the outer frame 1, and a base 28 is fixedly connected to the bottom of the sliding shaft 26. A rotating roller 210 is rotatably connected inside the base 28, and the rotating roller 210 contacts the trapezoidal block 25. A first spring 29 is fixedly connected between the base 28 and the fixed plate 23. A hydraulic telescopic rod 24 is fixedly connected to the bottom of the outer frame 1. A trapezoidal block 25 is fixedly connected to the telescopic end of the hydraulic telescopic rod 24. After the shaft core completes a processing step, the shaft core is placed in the storage hole 22 of the storage frame 21 in sequence, so that the bottom of the shaft core contacts the moving plate 27, thereby arranging the shaft core in a standardized manner. This prevents the shaft core inside the outer frame 1 from being misplaced when the staff takes it out, improves the retrieval efficiency of the staff when processing at the next work station, and improves the practicality of the device. The outer frame 1 has a matching groove at the corresponding position of the trapezoidal block 25. The trapezoidal block 25 slides in the groove of the outer frame 1, so that the trapezoidal block 25 is limited and moves linearly, thereby lifting the shaft core placed inside the storage hole 22, which improves the convenience of taking out the shaft core.

[0024] Please see Figure 5 In this embodiment, the installation assembly includes a fixed frame 31, which is fixedly connected to the outside of the outer frame 1. A locking block 32 is provided inside the fixed frame 31, which penetrates the outer frame 1. A smooth rod 33 is fixedly connected to the locking block 32 and slidably connected inside the fixed frame 31. A second spring 34 is fixedly connected between the locking block 32 and the fixed frame 31. A lever 35 is fixedly connected to the smooth rod 33. The installation assembly replaces the storage frame 21 with the corresponding diameter storage hole 22 according to the diameter of the shaft core. By aligning and inserting the storage frame 21 into the groove of the outer frame 1, the locking block 32 penetrates the through groove of the outer frame 1 to limit the storage frame 21, thereby improving the adaptability to the placement of shaft cores with different diameters. The outer frame 1 has a matching through groove at the corresponding position of the locking block 32, and the locking block 32 penetrates the through groove of the outer frame 1 to facilitate the installation of the storage frame 21, thereby improving the usability of the device.

[0025] During operation, after completing one machining step, the shaft cores are placed sequentially into the storage holes 22 of the storage frame 21, ensuring the bottom of the shaft cores contacts the moving plate 27 for proper arrangement. When the outer frame 1 is moved to the next workstation, the hydraulic telescopic rod 24 is activated, causing the trapezoidal block 25 to slide inside the outer frame 1. The rotating roller 210 contacts the surface of the trapezoidal block 25, causing the sliding shaft 26 to slide inside the fixed plate 23, which in turn causes the moving plate 27 to slide inside the outer frame 1. This lifts the shaft cores placed in the storage holes 22, facilitating easy retrieval and multi-station machining. The elasticity of the first spring 29 ensures that the rotating roller 210 remains in contact with the surface of the trapezoidal block 25, allowing for lifting. The system improves the ease of placing and retrieving shaft cores placed inside the storage hole 22. By moving the lever 35 outward, the locking block 32 moves outward, compressing the second spring 34 and releasing the restriction on the storage frame 21. This allows the storage frame 21 to be removed from the inside of the outer frame 1. The system allows for the replacement of the storage frame 21 with the corresponding diameter storage hole 22 according to the diameter of the shaft core. The storage frame 21 is then aligned and inserted into the groove of the outer frame 1, making contact with it through the arc end of the locking block 32. Moving the locking block 32 outward compresses the second spring 34. When the storage frame 21 contacts the bottom of the groove in the outer frame 1, the compressed second spring 34 causes the locking block 32 to reset, passing through the through groove of the outer frame 1 and limiting the storage frame 21. This improves the adaptability to placing shaft cores of different diameters.

[0026] Through the above steps, after the shaft core completes one processing operation, it is placed sequentially inside the storage hole 22 of the storage frame 21, so that the bottom of the shaft core contacts the moving plate 27, thereby arranging the shaft cores in a standardized manner. This prevents the shaft cores inside the outer frame 1 from being misplaced when the worker takes them out, and improves the retrieval efficiency of the worker when processing at the next workstation. This solves the problem that when the worker takes out the storage box, the storage box will inevitably shake, causing the shaft cores to be misplaced in the storage box, which reduces the retrieval efficiency of the worker when processing at the next workstation.

Claims

1. A multi-station spindle milling machine loading device, comprising an outer frame (1), characterized in that: It also includes a storage frame (21) and an installation component. The storage frame (21) is provided inside the outer frame (1), and an installation component for installing the storage frame (21) is provided on the outside of the outer frame (1). The storage frame (21) has a storage hole (22) for storing the shaft core, and the outer frame (1) drives the sliding connection of the moving plate (27).

2. The multi-station spindle milling machine loading device according to claim 1, characterized in that: The outer frame (1) has a matching slot at the corresponding position of the storage box (21), and the storage box (21) is set in the slot of the outer frame (1).

3. The multi-station spindle milling machine loading device according to claim 1, characterized in that: There are several storage holes (22), and several storage holes (22) are symmetrically distributed on the storage frame (21).

4. The multi-station spindle milling machine loading device according to claim 1, characterized in that: A fixed plate (23) is fixedly connected inside the outer frame (1). A sliding shaft (26) is slidably connected inside the fixed plate (23). A movable plate (27) is fixedly connected to the top of the sliding shaft (26). A trapezoidal block (25) is slidably connected inside the outer frame (1). A base (28) is fixedly connected to the bottom of the sliding shaft (26). A rotating roller (210) is rotatably connected inside the base (28). The rotating roller (210) contacts the surface of the trapezoidal block (25). A first spring (29) is fixedly connected between the base (28) and the fixed plate (23). A hydraulic telescopic rod (24) is fixedly connected to the bottom of the outer frame (1). The trapezoidal block (25) is fixedly connected to the telescopic end of the hydraulic telescopic rod (24).

5. The multi-station spindle milling machine loading device according to claim 4, characterized in that: The outer frame (1) has a matching groove at the corresponding position of the trapezoidal block (25), and the trapezoidal block (25) slides in the groove of the outer frame (1).

6. The multi-station spindle milling machine loading device according to claim 1, characterized in that: The mounting components include a fixed frame (31), which is fixedly connected to the outside of the outer frame (1). A locking block (32) is provided inside the fixed frame (31), which passes through the outer frame (1). A light rod (33) is fixedly connected to the locking block (32), which is slidably connected inside the fixed frame (31). A second spring (34) is fixedly connected between the locking block (32) and the fixed frame (31). A toggle block (35) is fixedly connected to the light rod (33).

7. The multi-station spindle milling machine loading device according to claim 6, characterized in that: The outer frame (1) has a corresponding through slot at the corresponding position of the card block (32), and the card block (32) passes through the inside of the through slot of the outer frame (1).