Pocking machine motion structure with small shaking amplitude

By using a movable connection between the gantry and the primary transverse frame, the structural strength is enhanced, solving the problem of reduced accuracy caused by vibration of the moving parts of the pocket machine, and achieving a more stable motion trajectory and processing accuracy.

CN223705943UActive Publication Date: 2025-12-23ZHEJIANG QIAOXIAN TECH CO LTD
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Patent Information

Application Number
CN202520132771.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-21
Publication Date
2025-12-23
Estimated Expiration
2035-01-21

AI Technical Summary

Technical Problem

The structural strength components of existing pocket making machines, which are far from the base, cause large-amplitude mechanical vibrations in the rapidly moving material plate and folding bag assembly. This results in reduced motion accuracy, an inability to maintain a stable motion trajectory, and affects processing precision.

Method used

The gantry frame and the first-level transverse frame are movable to increase structural strength. The sliding block group is driven by the transverse motor and the forward motor to slide within the track, reducing the number of connection layers and bringing it closer to the structural strength components, thus forming a more stable motion structure.

Benefits of technology

It effectively reduces mechanical vibration, improves the precision and stability of moving parts, and ensures the stability of machining accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a pocket machine moving structure with small shaking amplitude, which is characterized in that a primary transverse moving frame is movably connected with a portal frame, a material fixing plate component advancing frame is movably connected with the primary transverse moving frame, and a bag folding component advancing frame is movably connected with the primary transverse moving frame. After the machine frame strength component is moved upwards, the first-stage transverse moving frame is movably connected with the material fixing plate assembly advancing frame and the bag folding assembly advancing frame, and a moving structure which has fewer connecting layers and is closer to the structural strength component is provided. The pocket machine solves the problems that the movement precision of each part is reduced, a stable movement track cannot be kept and the machining precision is difficult to control due to the fact that the movement part of an existing pocket machine is far away from a structural strength part of a base table and a material fixing plate and a bag folding assembly which move rapidly can generate large-amplitude mechanical vibration.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a pocket machine movement structure, especially a pocket machine movement structure with small shaking amplitude. BACKGROUND

[0002] The pocket machine is a kind of machine for opening and edge sewing of clothing pocket, and the existing pocket machine is operated by moving fixed material plate and bag folding assembly, but the mechanism for moving fixed material plate and bag folding assembly is connected with the base of base station, and the moving component in this structure away from the structural strength part of base station can cause the fixed material plate and bag folding assembly of fast movement to produce large amplitude mechanical vibration, thereby causing the movement precision of each component to reduce, cannot keep stable movement track, and causes processing precision to be difficult to control. UTILITY MODEL CONTENT

[0003] The utility model discloses a pocket machine movement structure with small shaking amplitude, first horizontal moving frame is movablely connected with portal frame, fixed material plate assembly forward frame is movablely connected with first horizontal moving frame, bag folding assembly forward frame is movablely connected with first horizontal moving frame, the utility model strengthens structural strength by portal frame, moves up the rack strength component and is movablely connected with fixed material plate assembly forward frame, bag folding assembly forward frame by first horizontal moving frame, provides the movement structure with less connection level and more close to structural strength component, solve the structural strength part of the movement component of existing pocket machine away from base station can cause the fixed material plate and bag folding assembly of fast movement to produce large amplitude mechanical vibration, thereby causing the movement precision of each component to reduce, cannot keep stable movement track, and causes processing precision to be difficult to control problem.

[0004] In order to achieve the above object, the utility model adopts the following technical scheme:

[0005] A pocket machine movement structure with small shaking amplitude, comprising: portal frame, first horizontal moving frame, fixed material plate assembly forward frame, bag folding assembly forward frame;

[0006] The portal frame is connected with the rack;

[0007] First horizontal moving frame is movablely connected with portal frame, and the portal frame is provided with horizontal moving rail group, and first horizontal moving frame is provided with horizontal moving sliding block group, and horizontal moving sliding block group can slide left and right in the track of horizontal moving rail group;

[0008] Fixed material plate assembly forward frame is movablely connected with first horizontal moving frame, and first horizontal moving frame is provided with first forward rail group, and fixed material plate assembly forward frame is provided with first forward sliding block group, and first forward sliding block group can slide forward and backward in the track of first forward rail group;

[0009] The bag folding assembly advancing frame is movably connected with the first horizontal moving frame, the first horizontal moving frame is provided with a second advancing rail group, and the material plate assembly advancing frame is provided with a second advancing sliding block group.

[0010] Further settings, the gantry is provided with a horizontal moving motor and a horizontal moving screw, the horizontal moving motor drives the horizontal moving screw to rotate to drive the first horizontal moving frame to move left and right relative to the gantry.

[0011] Further settings, the first horizontal moving frame is provided with a first advancing motor and a first advancing screw, the first advancing motor drives the first advancing screw to rotate to drive the material plate assembly advancing frame to move back and forth relative to the first horizontal moving frame, and the material plate assembly advancing frame is connected with the material plate assembly.

[0012] Further settings, the first horizontal moving frame is provided with a second advancing motor and a second advancing screw, the second advancing motor drives the second advancing screw to rotate to drive the bag folding assembly advancing frame to move back and forth relative to the first horizontal moving frame.

[0013] Further settings, the bag folding assembly advancing frame is provided with a lifting block group, a lifting motor and a lifting screw, the bag folding assembly advancing frame is movably connected with the bag folding assembly lifting frame, the bag folding assembly lifting frame is provided with a lifting rail group, the lifting block group can slide up and down in the track of the lifting rail group, and the lifting motor drives the lifting screw to rotate to drive the bag folding assembly lifting frame to move up and down relative to the bag folding assembly advancing frame.

[0014] The utility model discloses a gantry to strengthen structural strength, moves the first horizontal moving frame with material plate assembly advancing frame, bag folding assembly advancing frame and carries out movable connection on the rack strength component, provides a motion structure that less connection level is closer to structural strength component, solves the motion part of the existing pocket machine away from the structural strength piece of base station and can cause the mechanical vibration of large amplitude of the material plate and bag folding assembly of quick movement, thereby causes the motion precision of each part to reduce, can not keep stable motion track, causes the problem that the machining precision is difficult to control. BRIEF DESCRIPTION OF DRAWINGS

[0015] Figure 1 For the three-dimensional of the utility model Figure 1 ;

[0016] Figure 2 For the three-dimensional of the utility model Figure 2 ;

[0017] Figure 3 For the three-dimensional of part assembly of the utility model Figure 1 ;

[0018] Figure 4 For the three-dimensional of part assembly of the utility model Figure 2 ;

[0019] Figure 5 A perspective view of part of the assembly of the utility model Figure 3 ;

[0020] Figure 6 A perspective view of part of the assembly of the utility model Figure 4 ;

[0021] Figure 7 A perspective view of part of the assembly of the utility model Figure 5 ;

[0022] Figure 8 A perspective view of part of the assembly of the utility model Figure 6 ;

[0023] Figure 9 A perspective view of part of the assembly of the utility model Figure 7 ;

[0024] Figure 10 A perspective view of part of the assembly of the utility model Figure 8 ;

[0025] Figure 11 A perspective view of part of the assembly of the utility model Figure 9 ;

[0026] Figure 12 A perspective view of part of the assembly of the utility model Figure 10 ;

[0027] Figure 13 A perspective view of part of the assembly of the utility model Figure 10 One;

[0028] In the figure: portal frame 1, first level transverse moving frame 2, transverse moving rail group 31, transverse moving sliding block group 32, transverse moving motor 33, transverse moving screw 34,

[0029] Fixed material plate assembly advancing frame 41, fixed material plate assembly 42, first advancing rail group 51, first advancing sliding block group 52, first advancing motor 53, first advancing screw 54,

[0030] Bag folding assembly advancing frame 61, second advancing rail group 62, second advancing sliding block group 63, second advancing motor 64, second advancing screw 65,

[0031] Bag folding assembly lifting frame 71, lifting rail group 72, lifting block group 73, lifting motor 74, lifting screw 75, bag folding assembly 8. DETAILED DESCRIPTION

[0032] In order to make the above-mentioned purposes, features and advantages of the utility model more obvious and easy to understand, the specific embodiments of the utility model are described in detail below with reference to the drawings.

[0033] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0034] Secondly, this utility model is described in detail with reference to the schematic diagrams. When describing the embodiments of this utility model, for ease of explanation, the cross-sectional views showing the device structure may be partially enlarged, not according to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of this utility model. In addition, in actual manufacturing, the three-dimensional spatial dimensions of length, width, and depth should be included.

[0035] To make the objectives, technical solutions, and advantages of this utility model clearer, the embodiments of this utility model will be described in further detail below with reference to the accompanying drawings.

[0036] like Figures 1-13 As shown: A pocket machine motion structure with small shaking amplitude includes: gantry frame 1, primary transverse frame 2, material plate assembly forward frame 41, and bag folding assembly forward frame 61;

[0037] The gantry frame 1 is connected to the machine frame, which helps to strengthen the overall structural strength.

[0038] The first-level transverse frame 2 is movably connected to the gantry frame 1. The gantry frame 1 is equipped with a transverse rail assembly 31, and the first-level transverse frame 2 is equipped with a transverse sliding block assembly 32. The transverse sliding block assembly 32 can slide left and right within the trajectory of the transverse rail assembly 31.

[0039] The material plate assembly forward frame 41 is movably connected to the first-stage transverse frame 2. The first-stage transverse frame 2 is provided with a first forward rail group 51, and the material plate assembly forward frame 41 is provided with a first forward sliding block group 52. The first forward sliding block group 52 can slide back and forth within the trajectory of the first forward rail group 51.

[0040] The bag folding assembly forward frame 61 is movably connected to the first-level transverse frame 2. The first-level transverse frame 2 is provided with a second forward rail group 62. The material plate assembly forward frame 41 is provided with a second forward sliding block group 63. The second forward sliding block group 63 can slide back and forth within the trajectory of the second forward rail group 62.

[0041] The gantry frame 1 is equipped with a transverse motor 33 and a transverse lead screw 34. The transverse motor 33 drives the transverse lead screw 34 to rotate, thereby causing the first-stage transverse frame 2 to move left and right relative to the gantry frame 1.

[0042] The first-stage transverse frame 2 is equipped with a first forward motor 53 and a first forward lead screw 54. The first forward motor 53 drives the first forward lead screw 54 to rotate, thereby driving the material plate assembly forward frame 41 to move back and forth relative to the first-stage transverse frame 2. The material plate assembly forward frame 41 is connected to the material plate assembly 42 and is used to fix the fabric to be processed.

[0043] The first-stage transverse frame 2 is equipped with a second forward motor 64 and a second forward lead screw 65. The second forward motor 64 drives the second forward lead screw 65 to rotate, thereby driving the bag folding assembly forward frame 61 to move back and forth relative to the first-stage transverse frame 2.

[0044] The bag folding assembly forward frame 61 is equipped with a lifting block assembly 73, a lifting motor 74, and a lifting screw 75. The bag folding assembly forward frame 61 and the bag folding assembly lifting frame 71 are vertically connected. The bag folding assembly lifting frame 71 is equipped with a lifting rail assembly 72. The lifting block assembly 73 can slide up and down within the track of the lifting rail assembly 72. The lifting motor 74 drives the lifting screw 75 to rotate, thereby moving the bag folding assembly lifting frame 71 up and down relative to the bag folding assembly forward frame 61. This adjusts the height of the bag folding assembly 8 to meet different processing requirements.

[0045] The above structure provides structural strength by moving the gantry frame 1 upwards, and then uses a first-level transverse frame 2 to movably connect with the material plate assembly forward frame 41 and the bag folding assembly forward frame 61. This provides a motion structure with fewer connection layers and closer to the structural strength components. It solves the problem that in existing pocket machines, the moving parts are far from the structural strength components of the base, which causes large-amplitude mechanical vibrations in the rapidly moving material plate and bag folding assembly, resulting in reduced motion accuracy of each component, inability to maintain a stable motion trajectory, and difficulty in controlling processing accuracy.

[0046] like Figures 1-2 As shown: A bone saw equipped with a continuous saw blade cleaning device includes: a main unit 1, a first transmission disc 2, a second transmission disc 3, and a saw blade 4. The main unit 1 has an internal power structure that drives the first transmission disc 2 to rotate. One end of the saw blade 4 is fixed to the first transmission disc 2, and the other end is fixed to the second transmission disc 3, thereby achieving continuous operation of the saw blade 4.

[0047] The front cover 6 of the main unit 1 is equipped with a water flushing assembly for continuously rinsing the saw blade 4 during operation. The water flushing assembly includes a diversion interface 71, an inlet water pipe 72, and a outlet water pipe 73. The diversion interface 71 is connected to an external water source, with its upper end connected to the inlet water pipe 72 and its lower end connected to the outlet water pipe 73. The inlet water pipe 72 and the outlet water pipe 73 are respectively arranged in a ring shape, and their outlines are consistent with the outlines of the second transmission disc 3 and the first transmission disc 2. Both the inlet water pipe 72 and the outlet water pipe 73 are equipped with multiple water spray nozzles 74, and the water sprayed from the water spray nozzles 74 can continuously rinse the saw blade 4 during operation.

[0048] In order to further improve the cleaning effect, the main machine 1 is also provided with a cleaning blade 5 which is closely attached to the surface of the saw blade 4 and can scrape off the impurities on the surface of the saw blade 4. Through the flushing effect of the flushing assembly, the dirt on the saw blade 4 is softened and then scraped off by the cleaning blade 5, so as to achieve the purpose of continuous cleaning.

[0049] In actual use, when the bone sawing machine is started, the power structure drives the first transmission disc 2 and the second transmission disc 3 to rotate, and drives the saw blade 4 to perform cutting operation. The shunt interface 71 of the flushing assembly is connected to an external water source, and the upper water pipe 72 and the lower water pipe 73 continuously spray water flow to the saw blade 4 through the water spraying port 74, and the cleaning blade 5 synchronously scrapes off the surface of the saw blade 4, so as to ensure that the surface of the saw blade 4 is always kept clean.

[0050] The technical scheme of the utility model provides two kinds of bone sawing machines which can continuously clean during machine operation, i.e. flushing and scraping, by the technical scheme that the flushing assembly continuously flushes the saw blade 4 in operation and softens the impurities on the saw blade 4 which cannot be flushed away and the cleaning blade 5 which is internally arranged is used to scrape off the impurities which have been softened by flushing, and solves the technical problem that the existing bone sawing machine needs to be stopped for cleaning due to saw blade pollution, which causes production interruption and production efficiency reduction.

[0051] Although the utility model has been described above with reference to the embodiments, various improvements can be made and equivalent parts can be replaced without departing from the scope of the utility model. In particular, as long as there is no structural conflict, each feature in the disclosed embodiments of the utility model can be combined with each other in any way, and the combinations are not exhaustively described in this specification only for the purpose of omitting length and saving resources. Therefore, the utility model is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.

Claims

1. A pocket-sized machine motion structure with minimal shaking amplitude, characterized in that, include: Gantry (1), primary transverse frame (2), material plate assembly forward frame (41), bag folding assembly forward frame (61); The gantry (1) is connected to the machine frame; The first-level transverse frame (2) is movably connected to the gantry frame (1). The gantry frame (1) is equipped with a transverse rail group (31), and the first-level transverse frame (2) is equipped with a transverse sliding block group (32). The transverse sliding block group (32) can slide left and right within the trajectory of the transverse rail group (31). The material plate assembly forward frame (41) is movably connected to the first-level transverse frame (2). The first-level transverse frame (2) is provided with a first forward rail group (51), and the material plate assembly forward frame (41) is provided with a first forward sliding block group (52). The first forward sliding block group (52) can slide back and forth within the trajectory of the first forward rail group (51). The bag folding assembly forward frame (61) is movably connected to the first-level transverse frame (2). The first-level transverse frame (2) is provided with a second forward rail group (62). The material plate assembly forward frame (41) is provided with a second forward sliding block group (63). The second forward sliding block group (63) can slide back and forth within the trajectory of the second forward rail group (62).

2. The pocket machine motion structure with small shaking amplitude according to claim 1, characterized in that: The gantry frame (1) is equipped with a transverse motor (33) and a transverse lead screw (34). The transverse motor (33) drives the transverse lead screw (34) to rotate, thereby driving the first-stage transverse frame (2) to move left and right relative to the gantry frame (1).

3. The pocket machine motion structure with small shaking amplitude according to claim 1, characterized in that: The first-stage transverse frame (2) is equipped with a first forward motor (53) and a first forward lead screw (54). The first forward motor (53) drives the first forward lead screw (54) to rotate, thereby driving the material plate assembly forward frame (41) to move back and forth relative to the first-stage transverse frame (2). The material plate assembly forward frame (41) is connected to the material plate assembly (42).

4. The pocket machine motion structure with small shaking amplitude according to claim 1, characterized in that: The first-stage transverse frame (2) is equipped with a second forward motor (64) and a second forward lead screw (65). The second forward motor (64) drives the second forward lead screw (65) to rotate, thereby causing the bag folding assembly forward frame (61) to move back and forth relative to the first-stage transverse frame (2).

5. The pocket machine motion structure with small shaking amplitude according to claim 4, characterized in that: The bag folding assembly forward frame (61) is equipped with a lifting block assembly (73), a lifting motor (74), and a lifting screw (75). The bag folding assembly forward frame (61) and the bag folding assembly lifting frame (71) can be connected in a lifting manner. The bag folding assembly lifting frame (71) is equipped with a lifting rail assembly (72). The lifting block assembly (73) can slide up and down within the track of the lifting rail assembly (72). The lifting motor (74) drives the lifting screw (75) to rotate, thereby causing the bag folding assembly lifting frame (71) to move up and down relative to the bag folding assembly forward frame (61).