A kind of continuous clamping knitting needle production and processing groove milling device

By designing a milling device for continuous clamping of knitting needles, the device utilizes an inclined placement plate and an electric baffle to achieve automatic feeding and clamping of knitting needles. This solves the problem of low efficiency and labor-intensive individual placement and fixing in existing technologies, and realizes automated processing and high-efficiency production.

CN116079450BActive Publication Date: 2026-03-31NANTONG GUANGYANG KNITTING NEEDLE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-27
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

In the current knitting needle production process, each needle needs to be placed and fixed in a milling device, which results in labor-intensive and inefficient operation.

Method used

A milling device for continuous clamping of knitting needles was designed. It adopts an inclined placement plate and an electric baffle in conjunction with an automatic feeding system to realize the automatic placement and clamping of knitting needles. The knitting needles are automatically fed to the milling cutter for cutting by a motor-driven threaded column.

Benefits of technology

It has enabled automated processing of knitting needles, saving manpower, improving processing efficiency, simplifying operation procedures, and increasing production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of continuous clamping knitting needle production and processing with groove milling device, belong to knitting needle groove milling device technical field, to solve the processing of knitting needle, then need to place multiple knitting needles in groove milling device one by one, this way not only operate and consume manpower, simultaneously place processing efficiency low problem one by one, invention includes processing base and fixed installation in the upper end of one end of processing base one side, and the bottom surface of the upper end of L type fixed plate is installed with telescopic drive, the output end of telescopic drive is fixedly installed with connecting plate, and the bottom surface of connecting plate is evenly fixedly installed with several milling cutters, the upper end of processing base is installed with threaded drive column in middle part, the top surface of processing base is slidably installed with concave bottom plate, the middle part of concave bottom plate is provided with inclined placement plate, the structure of the present application is cleverly arranged, the staff does not need to place knitting needle one by one, greatly saves manpower, improves processing efficiency, and is convenient to use.
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Description

Technical Field

[0001] This invention relates to the field of knitting needle milling device technology, specifically a milling device for continuous clamping and processing of knitting needles. Background Technology

[0002] Milling involves cutting a groove using a specific tool. Simply put, it uses a tool with a bottom cutting edge to cut a groove. In the manufacturing process of knitting needles, a groove hole needs to be cut at one end to facilitate subsequent threading.

[0003] Document CN210334500U discloses a milling device for knitting needle production, including a machine base. A servo motor is bolted to the center of the front end of the machine base table. A ball screw pair is mounted on the output end of the servo motor via a coupling. Ball screw nut pairs are mounted in pairs on the outer wall of the ball screw pair. A movable seat is welded to the top wall of each of the two ball screw nut pairs. The movable seat is slidably connected to the machine base table. The upper part of the movable seat is also provided with arc-shaped grooves for accommodating knitting needles at equal intervals. First, several knitting needles that need to be slotted are evenly placed on the corresponding arc-shaped grooves on the upper surface of the movable seat, and their tips are inserted into the conical grooves of the baffle. Then, the pressure rod is moved downward by two synchronously running hydraulic cylinders. The cooperation of the arc-shaped grooves and the arc-shaped slots can clamp and fix the upper and lower walls of the several evenly placed knitting needles. When workers need to use a milling device to process knitting needles, multiple knitting needles must be placed one by one in the milling device and fixed with a fastening structure before cutting can be performed. This method is not only labor-intensive to operate, but also inefficient and inconvenient to use because it involves placing the needles one by one.

[0004] To address the above issues, a milling device for continuous clamping and processing of knitting needles is proposed. Summary of the Invention

[0005] The purpose of this invention is to provide a milling device for continuous clamping of knitting needles in production and processing. By using this device, the problem of having to place multiple knitting needles one by one in the milling device and fix them with fastening structures before cutting is solved. This method is not only labor-intensive to operate, but also has low processing efficiency when placing them one by one.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a milling device for continuous clamping of knitting needles, comprising a processing base and an L-shaped fixing plate fixedly installed at the upper end of one side of the processing base, wherein a telescopic drive component is installed on the bottom surface of the upper end of the L-shaped fixing plate, a connecting plate is fixedly installed at the output end of the telescopic drive component, and a plurality of milling cutters are uniformly fixedly installed on the bottom surface of the connecting plate, a threaded drive column is installed at the middle of the upper end of the processing base, a concave bottom plate is slidably installed on the top surface of the processing base, and the concave bottom plate is installed on the output end of the threaded drive column, an inclined placement plate is provided at the middle of the concave bottom plate, and a collection box is fixedly installed on the outer wall of the upper end of one side of the other end of the processing base;

[0007] The inclined placement plate includes an inclined plate and an upper push rod slidably installed on the bottom surface of one side of the inclined plate. A concave protruding baffle is fixedly installed on the outer periphery of the top surface of the other side of the inclined plate. An electric baffle is slidably installed on the top surface of the other side of the inclined plate. The electric baffle is located inside the concave protruding baffle. Both ends of the other side of the inclined plate are respectively movably installed in the inner cavity of the other side of the concave bottom plate.

[0008] Connecting shafts are fixedly installed on the outer walls of both ends of the other side of the inclined plate, and a placement groove is provided on the top surface of the inclined plate. Several placement inner grooves are provided in the placement groove, and the placement inner grooves are respectively located on one side of the electric baffle. The placement inner grooves are respectively arranged in a corresponding manner to the milling cutter.

[0009] Furthermore, a top groove is provided at the center of the top surface of the processing base, and arc-shaped grooves are provided on the inner walls of both sides of the top groove cavity. An upward pushing groove is provided on one side of the top surface of the processing base, and inclined grooves are provided on the inner walls of both sides of the other end of the upward pushing groove cavity. A transverse groove is provided on the inner walls of both sides of one end of the upward pushing groove cavity, and the transverse groove and the inclined groove are connected.

[0010] Furthermore, the milling cutter includes a mounting sleeve and a milling cutter body fixedly mounted on the lower end of the mounting sleeve, and the milling cutter body is respectively positioned directly above the inner groove.

[0011] Furthermore, the threaded drive column includes a drive motor and a threaded column fixedly mounted on the output end of the drive motor. The drive motor is fixedly mounted on the middle outer wall of the other end of the upper end of the machining base, and the threaded column is movably mounted in the top slide groove.

[0012] Furthermore, the concave base plate includes a concave plate and a threaded sleeve block fixedly installed at the middle of the bottom surface of the concave plate, and the threaded sleeve block is slidably disposed in the top groove.

[0013] Furthermore, a through hole is provided on the bottom surface of the middle part of one side of the concave plate, and circular grooves are provided on the inner walls of the two ends of the upper side of the other side of the concave plate. Several push-up grooves are provided on the outer wall of the inner side of the other end of the concave plate, and a triangular push-up block is fixedly installed in the middle of the inner cavity of the push-up groove. The push-up grooves are respectively placed in the inner grooves. Sliding balls are provided at both ends of the threaded sleeve block, and the sliding balls are respectively set in the arc-shaped sliding groove. A threaded hole is provided at the middle of the lower end of the concave plate, and the threaded column is installed in the threaded hole through the thread.

[0014] Furthermore, several abutment blocks are slidably embedded in the outer wall of the other end of the inclined plate, and the abutment blocks are respectively set at the other end of the placement inner groove. Connecting shafts are fixedly installed on the outer walls of both ends of the other side of the inclined plate, and the connecting shafts are movably installed in the circular rotating grooves. A drain hole is provided on the lower outer wall of one side of the inclined plate, and the drain hole is connected to the placement groove. Several square sliding holes are provided on the outer wall of the other side of the inclined plate, and the square sliding holes are respectively connected to the placement inner groove. An elastic double-pass groove is provided on the outer side of the top surface of the inner cavity of the square sliding hole, and a driving sliding groove is provided on the top surface of one end of the inclined plate. A pair of limiting sliding grooves are provided on the inner walls of both sides of the inner cavity of the driving sliding groove. A T-shaped bottom groove is provided in the middle of the bottom surface of one side of the inclined plate.

[0015] Furthermore, the upper push rod includes a T-shaped slider and an upper push rod body movably mounted on the bottom surface of the T-shaped slider. The T-shaped slider is slidably disposed in the T-shaped bottom groove, and connecting balls are respectively provided on the outer walls of both sides of the lower end of the upper push rod body, and the connecting balls are respectively disposed in inclined grooves. The electric baffle includes a baffle body and an insertion slider fixedly mounted at one end of the bottom surface of the baffle body, and a pair of limiting balls are respectively provided on the outer walls of both ends of the insertion slider, and the limiting balls are respectively disposed in limiting grooves. An electric roller is embedded in the bottom of the insertion slider. The pressing block includes a pressing block body and a top protrusion fixedly mounted at the other end of the top surface of the pressing block body, and a return spring is installed on the outer wall of one end of the top protrusion. A pushing protrusion is fixedly mounted on the outer wall of the middle part of the other end of the pressing block body, and an anti-wear roller is movably mounted in the middle part of the other end of the pushing protrusion, and the other end of the pushing protrusion is disposed in the pushing groove.

[0016] Furthermore, the collection box includes an outer box body and an L-shaped feed pipe that is fixedly installed on the other side of the top surface of the outer box body, and a detachable box is embedded in the inner cavity of the outer box body.

[0017] Furthermore, an embedded receiving groove is provided on the outer wall of the middle part of one side of the outer box body, and a top through hole is provided at the middle part of the other side of the top surface of the outer box body. A limiting inner groove is provided on the inner wall of one end of the inner cavity of the embedded receiving groove, and a pair of semi-circular slots are provided on the inner wall of the inner cavity of the limiting inner groove. An L-shaped feeding hole is provided in the middle of the L-shaped feeding pipe, and the bottom surface of the upper end of the inner cavity of the L-shaped feeding hole is inclined. The detachable box includes a box body and a limiting plate fixedly installed on the outer wall of one side of the box body. A concave handle is fixedly installed on the middle outer wall of one side of the limiting plate. A receiving top groove is provided at the middle of the top surface of the box body, and the outer periphery of the top surface of the box body is inclined. A pair of circular receiving grooves are provided on the outer walls of both ends of the limiting plate, and a semi-circular locking block is elastically slidably installed at the inner opening of the circular receiving groove through a connecting spring. The semi-circular locking blocks are movably locked in the semi-circular slots.

[0018] Compared with the prior art, the beneficial effects of the present invention are as follows: When the operator needs to place knitting needles on the inclined placement plate, a portion of the knitting needles can be directly picked up by feel and placed between the concave raised baffle and the electric baffle. At this time, the milling device is activated, and the electric baffle can slide down along the inclined plate. Since the inclined placement plate is placed at an angle, the knitting needles can roll down with the electric baffle under their own weight. Each time the knitting needles pass through the inner placement groove, they will fall into the inner placement groove. The remaining knitting needles will continue to roll down with the electric baffle and fall into the inner placement grooves respectively. This achieves automatic placement and installation of knitting needles. By starting the driving motor, the knitting needles can be sent to the milling cutter for cutting. The structure is ingeniously designed, and the operator does not need to place the knitting needles one by one, which greatly saves manpower, improves processing efficiency, and is convenient to use. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention;

[0020] Figure 2 This is a three-dimensional structural diagram of the processing base of the present invention;

[0021] Figure 3 This is a schematic diagram of the three-dimensional structure of the concave base plate of the present invention;

[0022] Figure 4 This is a schematic diagram of the cross-sectional connection structure of the concave base plate and the inclined placement plate of the present invention;

[0023] Figure 5 This is a schematic diagram of the three-dimensional structure of the concave plate of the present invention;

[0024] Figure 6 This is a schematic cross-sectional view of one side of the concave plate of the present invention;

[0025] Figure 7 This is a schematic cross-sectional view of the concave plate of the present invention on the other side;

[0026] Figure 8 This is a schematic cross-sectional view of the triangular pusher block of the present invention;

[0027] Figure 9 This is a schematic diagram of the inclined placement plate planar structure of the present invention;

[0028] Figure 10 This is a schematic diagram of the three-dimensional structure of the inclined plate of the present invention;

[0029] Figure 11 This is a schematic diagram of the three-dimensional structure of the clamping block of the present invention;

[0030] Figure 12 This is a schematic cross-sectional view of one side of the inclined plate of the present invention;

[0031] Figure 13 This is a schematic diagram of the planar structure of the electric baffle of the present invention;

[0032] Figure 14 This is a schematic cross-sectional view of the collection box of the present invention;

[0033] Figure 15 This is a three-dimensional structural diagram of the outer box of the present invention;

[0034] Figure 16 This is a schematic diagram of the three-dimensional structure of the detachable box of the present invention.

[0035] In the diagram: 1. Machining base; 11. Top slide groove; 12. Arc-shaped slide groove; 13. Upward push groove; 14. Inclined slide groove; 15. Horizontal slide groove; 2. L-shaped fixing plate; 3. Telescopic drive component; 4. Connecting plate; 5. Milling cutter; 51. Mounting sleeve; 52. Milling cutter body; 6. Threaded drive column; 61. Drive motor; 62. Threaded column; 7. Concave base plate; 71. Concave plate; 711. Through hole; 712. 713. Circular groove; 714. Push-up groove; 72. Triangular push-up block; 73. Threaded sleeve block; 74. Sliding ball; 75. Threaded hole; 8. Inclined placement plate; 86. Inclined plate; 87. Connecting shaft; 88. Placement groove; 89. Inner placement groove; 80. Leakage hole; 810. Square sliding hole; 811. Elastic double-through groove; 812. Drive groove; 813. Restricting groove; 814. T-shaped bottom 82. Groove; 821. Upper push rod; 822. T-shaped slider; 823. Upper push rod body; 824. Connecting ball; 83. Concave raised baffle; 84. Electric baffle; 841. Baffle body; 842. Insertion slider; 843. Electric roller; 844. Restricting ball; 85. Anchor block; 851. Anchor block body; 852. Top protrusion; 853. Return spring; 854. Pushing protrusion; 855. Anti-wear roller 9. Wheel; 91. Collection box; 92. Outer box body; 93. Embedded receiving groove; 94. Top through hole; 95. Restricting inner groove; 96. Semi-circular slot; 97. L-shaped feed pipe; 98. L-shaped feed hole; 99. Detachable box; 90. Box body; 91. Top receiving groove; 92. Restricting plate; 93. Circular receiving groove; 94. Semi-circular locking block; 95. Connecting spring; 96. Concave handle. Detailed Implementation

[0036] 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.

[0037] To address the issue of machining knitting needles, which currently requires placing multiple needles individually in a milling device and securing them with fastening mechanisms before cutting, this method is not only labor-intensive but also inefficient due to the individual placement process. Figures 1-13 As shown, the following preferred technical solutions are provided:

[0038] A milling device for continuous clamping of knitting needles includes a processing base 1 and an L-shaped fixing plate 2 fixedly installed on the upper end of one side of the processing base 1. A telescopic drive component 3 is installed on the bottom surface of the upper end of the L-shaped fixing plate 2. A connecting plate 4 is fixedly installed at the output end of the telescopic drive component 3. A plurality of milling cutters 5 are evenly fixedly installed on the bottom surface of the connecting plate 4. A threaded drive column 6 is installed at the middle of the upper end of the processing base 1. A concave bottom plate 7 is slidably installed on the top surface of the processing base 1 and is installed on the output end of the threaded drive column 6. An inclined placement plate 8 is provided in the middle of the concave bottom plate 7. A collection box 9 is fixedly installed on the outer wall of the upper end of one side of the processing base 1.

[0039] A top groove 11 is provided at the center of the top surface of the processing base 1, and arc-shaped grooves 12 are provided on the inner walls of both sides of the inner cavity of the top groove 11. An upward push groove 13 is provided on one side of the top surface of the processing base 1, and inclined grooves 14 are provided on the inner walls of both sides of the other end of the inner cavity of the upward push groove 13. A transverse groove 15 is provided on the inner walls of both sides of one end of the inner cavity of the upward push groove 13, and the transverse groove 15 and the inclined groove 14 are connected.

[0040] The milling cutter 5 includes a mounting sleeve 51 and a milling cutter body 52 fixedly mounted on the lower end of the mounting sleeve 51, and the milling cutter body 52 is respectively positioned directly above the inner groove 813.

[0041] The threaded drive column 6 includes a drive motor 61 and a threaded column 62 fixedly installed on the output end of the drive motor 61. The drive motor 61 is fixedly installed on the middle outer wall of the other end of the upper end of the processing base 1, and the threaded column 62 is movably installed in the top slide groove 11.

[0042] The concave base plate 7 includes a concave plate 71 and a threaded sleeve block 72 fixedly installed at the middle of the bottom surface of the concave plate 71. The threaded sleeve block 72 is slidably disposed in the top slide groove 11. A through hole 711 is provided on the bottom surface of the middle of one side of the concave plate 71. Circular grooves 712 are respectively provided on the inner walls of the two ends of the upper side of the other side of the concave plate 71. Sliding balls 721 are respectively provided at both ends of the threaded sleeve block 72, and the sliding balls 721 are respectively disposed in the arc-shaped slide groove 12. A threaded hole 722 is provided at the middle of the lower end of the concave plate 71, and a threaded post 62 is installed in the threaded hole 722 through the thread.

[0043] Specifically, by starting the motor 61, the threaded post 62 can be rotated. Under the action of the thread between the threaded hole 722 and the threaded post 62, the concave base plate 7 can be moved forward and backward as a whole. This enables the automatic feeding of the knitting needles to the area directly below the milling cutter 5 for cutting, and the automatic reset of the concave base plate 7 and the inclined placement plate 8, thus facilitating material feeding and ensuring feeding safety.

[0044] The inclined placement plate 8 includes an inclined plate 81 and an upper push rod 82 slidably mounted on the bottom surface of one side of the inclined plate 81. A concave protruding baffle 83 is fixedly installed on the outer periphery of the top surface of the other side of the inclined plate 81. The concave protruding baffle 83 ensures that multiple knitting needles will not fall when the operator picks them up and places them on the inclined plate 81. An electric baffle 84 is slidably mounted on the top surface of the other side of the inclined plate 81, and the electric baffle 84 is located inside the concave protruding baffle 83. In the initial state, the inclined plate 81 is tilted as a whole. The inclined plate 81 is movably installed at both ends on the other side of the concave base plate 7. Connecting shafts 811 are fixedly installed on the outer walls of both ends of the inclined plate 81. A placement groove 812 is provided on the top surface of the inclined plate 81, and several placement inner grooves 813 are provided in the placement groove 812. The placement inner grooves 813 are respectively located on one side of the electric baffle 84, and are respectively arranged corresponding to the milling cutter 5. A slidingly installed [device / equipment] is embedded in the outer wall of the other end of the inclined plate 8. Several clamping blocks 85 are respectively disposed at the other end of the inner groove 813. Connecting shafts 811 are fixedly installed on the outer walls of both ends of the other side of the inclined plate 81, and the connecting shafts 811 are movably installed in circular grooves 712. A drain hole 814 is provided on the lower outer wall of one side of the inclined plate 81, and the drain hole 814 communicates with the inner groove 812. Several square sliding holes 815 are provided on the outer wall of the other side of the inclined plate 81, and the square sliding holes 815 are respectively connected to the inner groove 813. The three sections are connected. An elastic double-pass groove 816 is provided on the outer side of the top surface of the inner cavity of the square sliding hole 815. A driving groove 817 is provided on the top surface of one end of the inclined plate 81. A pair of limiting grooves 818 are provided on the inner walls of both sides of the inner cavity of the driving groove 817. A T-shaped bottom groove 819 is provided in the middle of the bottom surface of one side of the inclined plate 81. The length, width and height of the inner cavity of the inner groove 813 are set to be slightly larger than the maximum diameter of the knitting needle. A circular slot for limiting one end of the pointer is provided on the inner wall of one end of the inner groove 813.

[0045] The upper push rod 82 includes a T-shaped slider 821 and an upper push rod body 822 movably mounted on the bottom surface of the T-shaped slider 821. The T-shaped slider 821 is slidably disposed in the T-shaped bottom groove 819. Connecting balls 823 are respectively provided on the outer walls of both sides of the lower end of the upper push rod body 822, and the connecting balls 823 are respectively disposed in the inclined slide groove 14. The electric baffle 84 includes a baffle body 841 and an insertion slider 842 fixedly mounted at one end of the bottom surface of the baffle body 841. A pair of limiting balls 844 are respectively provided on the outer walls of both ends of the insertion slider 842, and the limiting balls 844 are respectively disposed in the limiting slide groove 818. An electric roller 843 is embedded in the bottom of the insertion slider 842, and the electric roller 843 is rotatably disposed on the bottom surface of the inner cavity of the drive slide groove 817.

[0046] Specifically, when the operator needs to place knitting needles on the inclined placement plate 8, they can directly pick up a portion of the knitting needles by feel and place them between the concave raised baffle 83 and the electric baffle 84. At this time, the milling device is activated, and the electric roller 843 in the electric baffle 84 is also activated, so that it can slide down along the drive groove 817 on the top surface of the inclined plate 81. Since the inclined placement plate 8 is placed at an angle, the knitting needles can roll down with the electric baffle 84 under their own weight. Each time the knitting needles pass through the inner placement groove 813, they will fall into the inner placement groove 813. The remaining knitting needles will continue to roll down with the electric baffle 84 and fall into the inner placement groove 813 respectively, thus realizing the automatic placement and installation of knitting needles. By starting the drive motor 61, the knitting needles can be sent to the milling cutter 5 for cutting. The structure is ingeniously designed, and the operator does not need to place the knitting needles one by one, which greatly saves manpower, improves processing efficiency, and is convenient to use.

[0047] Furthermore, when the threaded column 62 moves the concave base plate 7 and the inclined placement plate 8 forward, it simultaneously moves the connecting ball 823 forward in the inclined slide 14. Under the constraint of the inclined slide 14, the upper push rod body 822 moves upward as a whole, thereby lifting one side of the inclined plate 81 upward until the connecting ball 823 moves into the transverse slide 15. The inclined plate 81 will then rotate along the connecting shaft 811 to a horizontal position, thereby cutting the knitting needle. The whole process is automatic and convenient to use.

[0048] To solve the technical problem of how to automatically clamp and fix the knitting needles, such as Figures 7-12 As shown, the following preferred technical solutions are provided:

[0049] A number of push-up grooves 713 are provided on the inner outer wall of the other end of the concave plate 71, and a triangular push-up block 714 is fixedly installed in the middle of the inner cavity of the push-up groove 713. The push-up grooves 713 are respectively placed in the inner grooves 813, and the side section of the triangular push-up block 714 is triangular.

[0050] The clamping block 85 includes a clamping block body 851 and a top protrusion 852 fixedly installed at the other end of the top surface of the clamping block body 851. A return spring 853 is installed on the outer wall of one end of the top protrusion 852. A pushing protrusion 854 is fixedly installed on the outer wall of the middle part of the other end of the clamping block body 851. An anti-wear roller 855 is movably installed at the middle part of the other end of the pushing protrusion 854. The other end of the pushing protrusion 854 is located in the pushing groove 713.

[0051] Specifically, when the inclined plate 81 rotates along the center of the connecting shaft 811, it simultaneously drives the pushing protrusion 854 to move in the pushing groove 713, causing the anti-wear roller 855 to roll on the inclined surface of the triangular pushing block 714. Under the push of the inclined surface of the triangular pushing block 714, the entire pressing block body 851 can be driven to slide into the inner cavity of the pushing groove 713, thereby pressing the knitting needle against the pushing groove 713 and completing the fixation of the knitting needle. The structure is ingeniously designed and fully automatic. By sending the knitting needle to the cutting position below the milling cutter 5, multiple effects can be achieved simultaneously. Not only is it possible to save manpower by eliminating the need for manual operation of the clamping structure to fasten the knitting needle, but it also ensures that the knitting needle can be fixed during the cutting process, thus guaranteeing the cutting effect.

[0052] To address the technical problem of workers needing to retrieve a corresponding number of needles based on the number of needles to be placed on the milling device before placing them on the device, which consumes worker time and effort and reduces processing efficiency, such as... Figures 14-16 As shown, the following preferred technical solutions are provided:

[0053] The collection box 9 includes an outer box body 91 and an L-shaped feed pipe 92 that is fixedly installed on the other side of the top surface of the outer box body 91, and a detachable box 93 is embedded in the inner cavity of the outer box body 91.

[0054] An embedded receiving groove 911 is provided on the outer wall of the middle part of one side of the outer box body 91. A top through hole 912 is provided at the middle part of the other side of the top surface of the outer box body 91. A limiting inner groove 913 is provided on the inner wall of one end of the inner cavity of the embedded receiving groove 911, and a pair of semi-circular slots 914 are provided on the inner wall of the inner cavity of the limiting inner groove 913. An L-shaped feeding hole 921 is provided in the middle of the L-shaped feeding pipe 92, and the bottom surface of the upper end of the inner cavity of the L-shaped feeding hole 921 is inclined. The detachable box 93 includes a box body 931 and a device fixedly installed on one side of the box body 931. The outer wall has a limiting plate 932, and a concave handle 933 is fixedly installed on the middle outer wall of one side of the limiting plate 932. A receiving top groove 9311 is provided in the middle of the top surface of the box body 931, and the outer periphery of the top surface of the box body 931 is respectively inclined. A pair of circular receiving grooves 9321 are respectively provided on the outer walls of both ends of the limiting plate 932. A semi-circular locking block 9322 is elastically slidably installed at the inner opening of the circular receiving groove 9321 through a connecting spring 9323, and the semi-circular locking blocks 9322 are respectively movably locked in the semi-circular locking groove 914.

[0055] Specifically, when the operator places extra knitting needles between the concave raised baffle 83 and the electric baffle 84, the excess knitting needles will roll into the drain hole 814 after the electric baffle 84 moves to the end of the drive chute 817. The excess knitting needles will then enter the L-shaped feed hole 921 through the drain hole 814. Since the bottom surface of the upper end of the inner cavity of the L-shaped feed hole 921 is inclined, the knitting needles will fall from the L-shaped feed hole 921 into the detachable box 93 for collection. This design cleverly solves the problem that when placing knitting needles, the operator also has to take out the knitting needles according to the number placed in the inner groove 813, saving manpower and improving the user experience of the operator.

[0056] Furthermore, the snap-fit ​​design between the semi-circular card block 9322 and the semi-circular card slot 914 facilitates the operator's disassembly and installation of the detachable box 93, thereby facilitating the collection and unloading of knitting needles and improving the user experience for staff.

[0057] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0058] 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 milling device for continuous clamping of knitting needles, comprising a processing base (1) and an L-shaped fixing plate (2) fixedly installed at the upper end of one side of the processing base (1), wherein a telescopic drive member (3) is installed on the bottom surface of the upper end of the L-shaped fixing plate (2), a connecting plate (4) is fixedly installed at the output end of the telescopic drive member (3), and a plurality of milling cutters (5) are uniformly fixedly installed on the bottom surface of the connecting plate (4), characterized in that: The threaded drive column (6) is installed at the middle of the upper end of the processing base (1), the concave bottom plate (7) is slidingly installed on the top surface of the processing base (1), and the concave bottom plate (7) is installed on the output end of the threaded drive column (6); the inclined placement plate (8) is arranged at the middle of the concave bottom plate (7), and the collection box (9) is fixedly installed on the outer wall of the upper end of the other end side of the processing base (1); the upper push groove (13) is arranged at one side of the top surface of the processing base (1), the inclined sliding grooves (14) are arranged on the inner walls of the other ends of the inner cavities of the upper push grooves (13), the horizontal sliding grooves (15) are arranged on the inner walls of the two ends of the inner cavities of the upper push grooves (13), and the horizontal sliding grooves (15) and the inclined sliding grooves (14) are connected in communication. The concave bottom plate (7) comprises a concave plate (71), and the circular rotating grooves (712) are arranged on the inner walls of the two ends of the inner side of the upper end of the other side of the concave plate (71). The inclined placement plate (8) comprises an inclined plate (81) and an upper push rod (82) slidingly installed on the bottom surface of one side of the inclined plate (81); the concave protruding baffle (83) is fixedly installed on the outer periphery of the top surface of the other side of the inclined plate (81); the electric baffle (84) is slidingly installed on the top surface of the other side of the inclined plate (81); the electric baffle (84) is arranged at the inner side of the concave protruding baffle (83); and the two ends of the other side of the inclined plate (81) are movably installed in the inner cavities of the other side of the concave bottom plate (7). The connecting rotating shafts (811) are fixedly installed on the outer walls of the two ends of the other side of the inclined plate (81); the connecting rotating shafts (811) are movably installed in the circular rotating grooves (712); the placement grooves (812) are arranged on the top surface of the inclined plate (81); the placement inner grooves (813) are arranged in the placement grooves (812); the placement inner grooves (813) are arranged on one side of the electric baffle (84); and the placement inner grooves (813) are arranged in corresponding relationship with the milling cutters (5). The driving sliding grooves (817) are arranged on the top surface of one end of the inclined plate (81); and the pair of limiting sliding grooves (818) are arranged on the inner walls of the inner cavities of the driving sliding grooves (817). The upper push rod (82) comprises a T-shaped sliding block (821) and an upper push rod body (822) movably installed on the bottom surface of the T-shaped sliding block (821); the T-shaped sliding block (821) is slidingly arranged in the T-shaped bottom groove (819); the connecting rolling balls (823) are arranged on the outer walls of the two ends of the lower end of the upper push rod body (822); and the connecting rolling balls (823) are arranged in the inclined sliding grooves (14). The electric baffle (84) comprises a baffle body (841) and an insertion sliding block (842) fixedly installed on one end of the bottom surface of the baffle body (841); the pair of limiting rolling balls (844) are arranged on the outer walls of the two ends of the insertion sliding block (842); the limiting rolling balls (844) are arranged in the limiting sliding grooves (818); and the electric rolling wheels (843) are embeddedly installed on the bottom of the insertion sliding block (842).

2. The slot milling device for continuous clamping of knitting needles according to claim 1, characterized in that: The top surface of the processing base (1) is provided with a top chute (11) in the middle part, and the inner walls of the inner cavity of the top chute (11) are respectively provided with arc-shaped chutes (12).

3. The slot milling device for continuous clamping of knitting needles according to claim 2, characterized in that: The milling cutter (5) comprises a mounting sleeve (51) and a milling cutter body (52) fixedly installed at the lower end of the mounting sleeve (51), and the milling cutter body (52) is arranged above the placing inner groove (813) respectively.

4. The slot milling device for continuous clamping of knitting needles according to claim 3, characterized in that: The threaded drive column (6) comprises a driving motor (61) and a threaded column (62) fixedly installed at the output end of the driving motor (61), and the driving motor (61) is fixedly installed on the middle outer wall of the other end of the upper end of the processing base (1), and the threaded column (62) is movably installed in the top chute (11).

5. The slot milling device for continuous clamping of knitting needles according to claim 4, characterized in that: The concave bottom plate (7) further comprises a threaded sleeve block (72) fixedly installed at the middle part of the bottom surface of the concave plate (71), and the threaded sleeve block (72) is slidably arranged in the top chute (11).

6. A grooving device for continuous clamping of knitting needles according to claim 5, characterized in that: The concave plate (71) is provided with a through hole (711) in the middle part of one side of the bottom surface, and a plurality of push-up grooves (713) are arranged on the inner side of the outer wall of the other end of the concave plate (71), and a triangular push-up block (714) is fixedly installed in the inner cavity of the middle part of the push-up groove (713), and the push-up groove (713) is arranged corresponding to the placing inner groove (813) respectively; the two ends of the threaded sleeve block (72) are respectively provided with sliding balls (721), and the sliding balls (721) are arranged in the arc-shaped chutes (12) respectively, and the middle part of the lower end of the concave plate (71) is provided with a threaded hole (722), and the threaded column (62) is installed in the threaded hole (722) through threaded penetration.

7. The slot milling device for continuous clamping of knitting needles according to claim 6, characterized in that: The other end of the inclined placing plate (8) is embedded with a plurality of abutting blocks (85) which are slidably installed, and the abutting blocks (85) are arranged corresponding to the other end of the placing inner groove (813) respectively; The outer walls of the two ends of the other side of the inclined plate (81) are respectively fixedly installed with connecting shafts (811), and the outer wall of the lower end of one side of the inclined plate (81) is provided with a leakage hole (814) which is in communication with the placing groove (812), and a plurality of square sliding holes (815) are arranged on the outer wall of the other side of the inclined plate (81), and the square sliding holes (815) are respectively in communication with the placing inner grooves (813), and the top outer side of the inner cavity of the square sliding hole (815) is provided with an elastic double groove (816), and the middle part of the bottom surface of one side of the inclined plate (81) is provided with a T-shaped bottom groove (819).

8. The slot milling device for continuous clamping of knitting needles according to claim 7, characterized in that: The abutting block (85) comprises an abutting block body (851) and a top protruding block (852) fixedly installed at the other end of the top surface of the abutting block body (851), and a reset spring (853) is installed on the outer wall of one end of the top protruding block (852), a pushing protruding block (854) is fixedly installed on the middle outer wall of the other end of the abutting block body (851), an anti-abrasion roller (855) is movably installed in the middle part of the other end of the pushing protruding block (854), and the other end of the pushing protruding block (854) is arranged in the push-up groove (713).

9. A grooving device for continuous clamping of knitting needles according to claim 8, characterized in that: The collecting box (9) comprises an outer box body (91) and an L-shaped feeding pipe (92) fixedly installed at the other side of the top surface of the outer box body (91), and a detachable box (93) is embeddedly installed in the inner cavity of the outer box body (91).

10. The slot milling device for continuous clamping of knitting needles according to claim 9, characterized in that: An embedded material collecting groove (911) is arranged on the middle part of the outer wall of one side of the outer box body (91), a top through hole (912) is arranged at the middle part of the other side of the top surface of the outer box body (91), a limiting inner groove (913) is respectively arranged on the inner wall of the two ends of the inner cavity of the embedded material collecting groove (911), and a pair of semicircular clamping grooves (914) are respectively arranged on the inner cavity inner wall of the limiting inner groove (913); An L-shaped feeding hole (921) is arranged in the middle part of the L-shaped feeding pipe (92), and the inner cavity upper end bottom surface of the L-shaped feeding hole (921) is arranged in an inclined manner; The detachable box (93) comprises a box body (931) and a limiting plate (932) fixedly installed on the outer wall of one side of the box body (931), and a concave handle (933) is fixedly installed on the middle part of the outer wall of one side of the limiting plate (932); An material collecting top groove (9311) is arranged at the middle part of the top surface of the box body (931), and the top surface outer periphery of the box body (931) is respectively arranged in an inclined manner; A pair of circular material collecting grooves (9321) are respectively arranged on the outer walls of the two ends of the limiting plate (932), semicircular clamping blocks (9322) are elastically slidably installed in the inner cavity openings of the circular material collecting grooves (9321) through connecting springs (9323), and the semicircular clamping blocks (9322) are respectively movably clamped in the semicircular clamping grooves (914).

Citation Information

Patent Citations

  • Groove milling device for knitting needle production and processing

    CN210334500U

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    CN207447440U

  • Metal rod supplying apparatus of screw processing apparatus

    KR1020120012513A