Passive rhombic steel wire mesh surface knitting machine
By designing a passive diamond wire mesh weaving machine, and utilizing the staggered movement of sleeves and synchronous drive, the problems of cumbersome processes and limited weaving width in existing weaving machines are solved, achieving efficient and flexible metal wire mesh weaving.
Patent Information
- Application Number
- CN202520592635.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2035-03-31
AI Technical Summary
Existing winding wire mesh braiding machines have a cumbersome workflow, require the assistance of other equipment, have complex mechanical structures, and are difficult to maintain; double-twisted braiding machines require the entire worktable to be moved, which limits the braiding width.
A passive diamond wire mesh weaving machine is adopted. By moving multiple sleeves in an interlaced manner in the annular mounting groove, and by using the coaxial design of the turntable and the mounting groove and the connecting rod connection, the material supply barrel and the sleeves are ensured to move synchronously to avoid wire interference. Furthermore, the arc plate and claw groove design are used to avoid motion interference and realize the collaborative work of multiple drive units.
It simplifies the weaving process, improves weaving flexibility and consistency, expands the weaving range, avoids idle parts running around, and reduces mechanical complexity and maintenance difficulty.
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Figure CN223902838U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to metal wire screen weaving mechanical technical field, specifically, relate to a passive diamond steel wire screen surface weaving machine. BACKGROUND
[0002] A kind of winding type metal wire screen weaving machine, metal wire needs to be bent into specific shape first, then it is rotated and is wound and is woven into wire screen one end, and each weaving can only weave to form a row, its work flow is more cumbersome, efficiency is lower, and it needs to be bent instrument cooperation work, its mechanical structure is more complex, maintenance is difficult;And existing double-twisted metal wire screen weaving machine, by the displacement and rotation of the port of multiple outgoing lines, realize the twisting of metal wire and weave into net, but it needs the overall displacement of entire workbench, when needing to weave wider metal net, excessive workbench is difficult to displace, resulting in its weaving width is limited. UTILITY MODEL CONTENTS
[0003] The utility model aims at providing a passive diamond steel wire screen surface weaving machine, solve the problem that winding type weaving machine work flow is cumbersome, needs other instrument cooperation, and mechanical structure is complex, maintenance is difficult, and existing double-twisted weaving machine needs workbench overall displacement, so that weaving width is limited.
[0004] The embodiment of the utility model realizes by the following technical scheme:
[0005] A passive diamond steel wire screen surface weaving machine, comprising:
[0006] Mounting frame, including bottom plate and parallelly arranged work plate on one side of bottom plate;The bottom plate and work plate are respectively provided with a plurality of annular mounting grooves connected with each other, and a plurality of material supply barrels and sleeves are respectively arranged in the mounting grooves on the bottom plate and work plate;
[0007] Drive part, respectively arranged in the mounting groove on the bottom plate and work plate, for driving corresponding material supply barrel and sleeve to move synchronously.
[0008] The drive part includes a rotating disc and a rotating arm arranged on one side of the rotating disc;The rotating disc is driven by a motor to rotate in the mounting groove, and the rotating disc shaft and the mounting groove shaft are coincident;The shafts of the rotating disc on the bottom plate and work plate are connected by a connecting rod;When the rotating disc rotates, the two ends of the rotating arm on the bottom plate and work plate respectively contact and drive the material supply barrel and the sleeve to move along the mounting groove.
[0009] The gap is arranged between the side wall of the rotating disc and the side wall of the mounting groove;The material supply barrel is provided with a connecting column at one end;The connecting column and the sleeve are respectively arranged in the gap.
[0010] The mounting groove and the side wall of the rotating disc on both sides of the gap are respectively provided with a limiting groove; the connecting column and the sleeve are respectively provided with a limiting ring on the side wall, and the limiting ring is slidably matched with the limiting groove on both sides of the gap.
[0011] The two ends of the rotating arm are respectively provided with an arc-shaped plate and located above the gap, so that the connecting column or the sleeve is attached to the concave surface of the arc-shaped plate; the arc-shaped plates on the adjacent driving parts are staggered, and the concave surfaces of the adjacent arc-shaped plates face the same direction when they are staggered.
[0012] The arc-shaped plate is provided with a claw-shaped groove, and the claw-shaped grooves of the arc-shaped plates on the adjacent driving parts are staggered.
[0013] The two ends of the rotating arm are also magnetic.
[0014] The technical scheme of the utility model has at least the following advantages and beneficial effects:
[0015] 1. The passive diamond-shaped steel wire mesh weaving machine uses a plurality of sleeves to move in the annular mounting groove, so as to weave the steel wire mesh, and the structure and operation are simple, a plurality of sleeves can be selected according to requirements to realize the weaving of a wider mesh, and when a narrower mesh is woven, the driving parts outside the weaving range can be stopped, so that idle parts can be avoided to rotate, the weaving range of the device is wide, the operation is flexible and controllable, and different numbers of driving parts can be operated according to different requirements.
[0016] 2. The passive diamond-shaped steel wire mesh weaving machine is coaxially designed through the rotating disc and the mounting groove, the bottom plate and the working plate are connected through the connecting rod, the synchronous movement of the material supply barrel and the sleeve is ensured, the mutual interference of the wires is avoided, and the consistency of the diamond-shaped mesh is improved.
[0017] 3. The passive diamond-shaped steel wire mesh weaving machine is attached to the connecting column or the sleeve through the concave surface of the arc-shaped plate, and is provided with magnetism on the arc-shaped plates at both ends of the rotating arm, so that the contact between the arc-shaped plates and the connecting column or the sleeve is more stable, and the arc-shaped plates are prevented from being separated during rotation; the claw-shaped grooves are staggered with each other when the arc-shaped plates are rotated and overlapped, the claw-shaped grooves are prevented from interfering with each other, and the multiple driving units are cooperatively moved without interference. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 is the overall structure schematic view of the utility model;
[0019] Figure 2 is the structure schematic view of the weaving table;
[0020] Figure 3 is the attached Figure 2 enlarged view of A;
[0021] Figure 4 is the bottom Figure 2 is the sectional view of A in the middle;
[0022] Figure 5 is the partial sectional view of one side of the base;
[0023] Figure 6 is the bottom Figure 5 is the enlarged view of B in the middle.
[0024] In the figure, 101 - bottom plate, 102 - work plate, 103 - support rod, 104 - first installation slot, 105 - second installation slot, 106 - first limiting slot, 2 - driving part, 201 - rotating disc, 202 - second limiting slot, 203 - mounting seat, 204 - rotating arm, 205 - sleeve, 206 - first limiting ring, 207 - connecting rod, 3 - material supply barrel, 301 - connecting column, 302 - second limiting ring, 303 - wire outlet, 4 - metal wire, 5 - metal mesh. DETAILED DESCRIPTION
[0025] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the technical scheme in the embodiments of the utility model will be described clearly and completely in combination with the drawings in the embodiments of the utility model. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all the embodiments. The components of the embodiments of the utility model described and shown in the drawings can be arranged and designed in various different configurations.
[0026] Therefore, the following detailed description of the embodiments of the utility model provided in the drawings is not intended to limit the scope of the claimed utility model, but only represents selected embodiments of the utility model. Based on the embodiments in the utility model, all other embodiments obtained by those of ordinary skill in the art without creative labor are within the scope of protection of the utility model.
[0027] As Figure 1As shown, a passive diamond steel wire surface knitting machine, comprising a mounting frame and a plurality of driving parts 2 provided on the mounting frame; the mounting frame comprises a bottom plate 101 and a working plate 102 provided in parallel on one side of the bottom plate 101, when the bottom plate 101 is provided on the ground, the working plate 102 is connected to the top of the bottom plate 101 through a plurality of supporting rods 103; a plurality of annular mounting grooves connected to each other are respectively provided on the bottom plate 101 and the working plate 102, the former is a first mounting groove 104, and the latter is a second mounting groove 105; a plurality of material supply barrels 3 and sleeves 205 are respectively provided in the mounting grooves, so that the material supply barrels 3 can move along the first mounting groove 104, and the sleeves 205 can move along the second mounting groove 105; and the material supply barrels 3 and the sleeves 205 are correspondingly arranged above and below to avoid interference of the metal wires 4 during movement; the metal wires 4 are loaded in the material supply barrels 3 and extend from the top of the material supply barrels 3, then one end of the metal wires 4 penetrates from the bottom end of the sleeve 205 and penetrates out from the top end of the sleeve 205, and is fixed by other workpieces, and then through the synchronous movement of the corresponding material supply barrels 3 and sleeves 205, the metal wires 4 penetrating out from the top end of the sleeve 205 are knitted into a metal mesh 5;
[0028] The driving parts 2 are respectively provided in the first mounting groove 104 and the second mounting groove 105 in contact with the corresponding material supply barrels 3 and sleeves 205 above and below, and drive the synchronous movement for knitting work; as Figure 1 As shown in the figure, the second mounting grooves 105 on the working plate 102 from left to right are No. 1 groove, No. 2 groove, No. 3 groove, No. 4 groove and No. 5 groove; when the device works, the driving part 2 located in No. 1 groove can drive the sleeves 205 on both sides to rotate around the axis of No. 1 groove for several turns, so that the metal wires 4 above No. 1 groove are wound; then the driving part 2 of the adjacent No. 2 groove is in contact with the sleeves 205 on both sides and drives them to rotate around the axis of No. 2 groove for several turns, so that the metal wires 4 above No. 2 groove are wound, and the above process is repeated, so that the knitting of the metal mesh 5 is completed; further, the movement path of the sleeve 205 in the second mounting groove 105 is ∞ shape.
[0029] As Figures 2-6 As shown in an embodiment, the driving part 2 comprises a rotating disc 201 and a rotating arm 204 provided on the top side of the rotating disc 201; the rotating disc 201 is disc-shaped and is provided at the center of the mounting groove, so that the axes of the two coincide, and an annular gap is provided between the side wall of the rotating disc 201 and the side wall of the mounting groove, the annular gaps in the adjacent two mounting grooves coincide on one side, and the side wall of the rotating disc 201 is tangent to the circle formed by the extension of the side wall of the adjacent mounting groove, so that the material supply barrels 3 and the sleeves 205 can smoothly move from the annular gap in the mounting groove to the annular gap in the adjacent mounting groove, thereby completing the winding process of the metal wires 4;
[0030] The top center of the rotating disc 201 is provided with a mounting seat 203, and rotating arms 204 are arranged on both sides of the mounting seat 203, one end of each of the rotating arms 204 is located above the annular gap, and the rotating arms 204 are used for respectively controlling the material supply barrels 3 or the sleeves 205 on both sides of the rotating disc 201, and when the rotating arms 204 on the adjacent driving parts 2 are located above the same side gap, the rotating arms 204 on the adjacent driving parts 2 are arranged in an up-down staggered mode, so that interference is avoided when the rotating arms 204 rotate;
[0031] The bottom end of the material supply barrel 3 is provided with a connecting column 301, so that the connecting column 301 and the sleeve 205 are in contact with the rotating arms 204 on the driving parts 2 and are controlled by the rotating arms 204; the connecting column 301 and the sleeve 205 are arranged in the annular gap in the corresponding mounting slot; and the mounting slots on both sides of the gap and the side walls of the rotating disc 201 are respectively provided with limit grooves corresponding to the annular gap, the first limit groove 106 is arranged on the side wall of the mounting slot, and the second limit groove 202 is arranged on the side wall of the rotating disc 201; and the second limit ring 302 and the first limit ring 206 are respectively arranged around the side walls of the connecting column 301 and the sleeve 205, so that the two sides of the second limit ring 302 and the first limit ring 206 are respectively matched with the limit grooves arranged on both sides of the gap; the connecting column 301 and the sleeve 205 are respectively limited, so that the connecting column 301 and the sleeve 205 can only rotate around the axis in the mounting slot along the limit groove;
[0032] A motor is arranged in the bottom plate 101 and is connected with the rotating disc 201 in the first mounting slot 104, so as to control the rotation of the rotating disc 201; and the rotating discs 201 in the first mounting slot 104 and the second mounting slot 105 are connected through the connecting rod 207, so that when the rotating disc 201 in the first mounting slot 104 rotates, the rotating disc 201 in the second mounting slot 105 is driven to rotate synchronously, so that the material supply barrels 3 or the sleeves 205 move synchronously, and interference between the metal wires 4 is avoided when the material supply barrels 3 or the sleeves 205 move.
[0033] As shown in Figure 3 Preferably, the end of each of the rotating arms 204 on both sides of the rotating disc 201 is provided with an arc-shaped plate; and the arc-shaped plate is located above the annular gap, so that the connecting column 301 or the sleeve 205 is matched with the concave surface of the arc-shaped plate, and when the rotating arm 204 rotates with the rotating disc 201, the connecting column 301 or the sleeve 205 can be driven to move, the arc-shaped concave surface is arranged, so that the connecting column 301 or the sleeve 205 can be better matched with the surface of the connecting column 301 or the sleeve 205, and the risk that the connecting column 301 or the sleeve 205 is separated from the surface of the connecting column 301 or the sleeve 205 is reduced when the connecting column 301 or the sleeve 205 moves; and when the arc-shaped plates on the adjacent driving parts 2 move to be staggered, the concave surfaces of the adjacent arc-shaped plates face the same direction;
[0034] More preferably, the arc-shaped plate is provided with a claw-shaped groove, and the claw-shaped grooves of the arc-shaped plates on the adjacent driving parts 2 are arranged in a staggered mode; when the arc-shaped plates on the adjacent driving parts 2 move to be staggered, the claw-shaped grooves on the arc-shaped plates are staggered, so that interference is avoided.
[0035] The working principle of the embodiment is as follows:
[0036] The passive rhombic steel wire mesh surface braiding machine comprises a working plate 102, a plurality of driving parts 2, a plurality of sleeves 205, a plurality of metal wires 4 and a metal mesh 5. Figure 1 As shown in the figure, the second installation grooves 105 on the working plate 102 from left to right are No. 1 groove, No. 2 groove, No. 3 groove, No. 4 groove and No. 5 groove; when the device works, the driving part 2 located in the No. 1 groove can drive the sleeves 205 on both sides thereof to rotate around the axis of the No. 1 groove for several turns, so that the metal wire 4 above the No. 1 groove is wound; then the driving part 2 of the adjacent No. 2 groove contacts the sleeves 205 on both sides thereof and drives the sleeves 205 to rotate around the axis of the No. 2 groove for several turns, so that the metal wire 4 above the No. 2 groove is wound; the above process is repeated, and the braiding of the metal mesh 5 is completed.
[0037] The above is only the preferred embodiment of the utility model, and is not used for limiting the utility model. For those skilled in the art, the utility model can have various changes and changes. Any modification, equivalent replacement, improvement, etc. within the spirit and principle of the utility model should be included in the protection scope of the utility model.
Claims
1. A passive diamond wire mesh surface weaving machine, characterized in that, The utility model relates to a material feeding device, including: a mounting frame, including a bottom plate and a work plate parallel to one side of the bottom plate; a plurality of annular mounting grooves are respectively arranged on the bottom plate and the work plate and connected with each other, and a plurality of material barrels and sleeves are respectively arranged in the mounting grooves on the bottom plate and the work plate; a driving part is arranged in the mounting grooves on the bottom plate and the work plate respectively, and is used for driving the corresponding material barrels and sleeves to move synchronously.
2. A passive diamond wire mesh face weaving machine according to claim 1, characterized in that, The driving part includes a rotating disc and a rotating arm arranged on one side of the rotating disc; the rotating disc is driven to rotate by a motor and arranged in the mounting groove, and the rotating disc shaft and the mounting groove shaft are coincident; the shafts of the rotating discs on the bottom plate and the work plate are connected through a connecting rod; when the rotating disc rotates, the two ends of the rotating arm on the bottom plate and the work plate are in contact with the material barrels and the sleeves respectively and drive the material barrels and the sleeves to move along the mounting groove.
3. A passive diamond wire mesh face weaving machine according to claim 2, characterized in that, A gap is arranged between the side wall of the rotating disc and the side wall of the mounting groove; one end of the material barrel is provided with a connecting column; the connecting column and the sleeve are arranged in the gap respectively.
4. A passive diamond wire mesh face weaving machine according to claim 3, characterized in that, Limiting grooves are respectively arranged on the side walls of the mounting grooves and the rotating disc on both sides of the gap; limiting rings are respectively arranged on the side walls of the connecting column and the sleeve and surround the limiting rings; the limiting rings are respectively arranged in the limiting grooves on both sides of the gap in a sliding mode.
5. A passive diamond wire mesh face weaving machine according to claim 3, characterized in that, The two ends of the rotating arm are respectively provided with arc-shaped plates and located above the gap, so that the connecting column or the sleeve is attached to the concave surface of the arc-shaped plate; the arc-shaped plates on adjacent driving parts are staggered, and the concave surfaces of the adjacent arc-shaped plates face the same direction when they are staggered.
6. A passive diamond wire mesh face weaving machine according to claim 5, characterized in that, Claw-shaped grooves are arranged on the arc-shaped plates, and the claw-shaped grooves of the arc-shaped plates on adjacent driving parts are staggered.
7. A passive diamond wire mesh face weaving machine according to claim 2, characterized in that, The two ends of the rotating arm are also provided with magnetism.