Gabion net weaving equipment
By using a motor drive in the gabion mesh weaving equipment to eliminate rotational differences, the problems of poor precision and frequent maintenance of mechanical adjustment components are solved, resulting in a more efficient and stable weaving process.
Patent Information
- Application Number
- CN202520318231.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-26
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2035-02-26
AI Technical Summary
In existing gabion mesh weaving equipment, mechanical slip adjustment components suffer from poor precision and require regular maintenance, which affects production efficiency and cost.
By using a motor-driven method, the rotational difference is eliminated by reducing the number of physical components and increasing the number of drive motors, and the stable power output of the motor is used for control.
It improved the operational stability of the equipment and the quality of the products, reduced the frequency and cost of maintenance, and increased production efficiency.
Smart Images

Figure CN223847999U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] Embodiments of the present disclosure relate to the technical field of gabion net weaving, and in particular, to a gabion net weaving device. BACKGROUND
[0002] As a common civil engineering material, gabion nets have a wide range of applications in river protection, mountain slope protection and other fields. Efficient and stable weaving equipment plays a key role in the production quality and efficiency of gabion nets.
[0003] In the existing gabion net weaving equipment, the weaving work is mainly completed by two weaving members in cooperation. One of the weaving members cooperates with the taker-in to undertake the steel wire weaving task, and the other weaving member moves synchronously with the former and mainly prevents the steel wires from being entangled with each other.
[0004] However, in the actual weaving process, the steel wire generates a large pulling force on the weaving member participating in weaving when it is pulled. The existence of this pulling force inevitably causes the two weaving members to have a rotational difference during rotation. In order to eliminate this rotational difference, the existing equipment usually uses a mechanical rotational difference adjusting member for adjustment.
[0005] However, the mechanical rotational difference adjusting member has obvious limitations. On the one hand, due to the precision limitation of the mechanical structure itself, the adjustment process is difficult to achieve absolute accuracy. On the other hand, the mechanical rotational difference adjusting member is prone to wear, looseness and other problems after long-term use, and needs to be regularly maintained and calibrated, which not only increases the maintenance cost of the equipment, but also reduces the production efficiency due to the downtime of the equipment during maintenance. CONTENT OF THE INVENTION
[0006] To overcome the above-mentioned defects, embodiments of the present disclosure provide a gabion net weaving device, which solves the technical problem that the physical mechanism has poor adjustment precision and needs regular maintenance when adjusting the rotational difference between the first weaving member and the second weaving member in the prior art.
[0007] According to one aspect, at least one embodiment of the present disclosure provides a gabion net weaving device, comprising:
[0008] a first half wheel and a second half wheel, the first half wheel and the second half wheel are movably and rotatably arranged, and after moving, the first half wheel and the second half wheel are separated from each other or combined to form a first wheel;
[0009] a first transmission member for driving the first wheel to rotate;
[0010] a second transmission member for driving the first half wheel and the second half wheel to move away from or close to each other;
[0011] a third half-wheel and a fourth half-wheel, the third half-wheel and the fourth half-wheel are movably and rotatably arranged, and after moving, the third half-wheel and the fourth half-wheel are separated from each other or combined into the second wheel, the second wheel and the first wheel are sequentially penetrated by the thread;
[0012] a third transmission member for driving the second wheel to rotate;
[0013] a fourth transmission member for driving the third half-wheel and the fourth half-wheel to move away from or close to each other;
[0014] a first driving member and a second driving member, the first driving member includes two first motors and / or the second driving member includes two second motors, the two first motors are used to drive the first transmission member and the second transmission member to act, respectively, and the second motors are used to drive the third transmission member and the fourth transmission member to act.
[0015] For example, the first wheel has a first tooth part, and the stone cage mesh weaving device further comprises:
[0016] a frame;
[0017] the first transmission member comprises:
[0018] a first rack slidably arranged on the frame, the first rack and the first tooth part are engaged;
[0019] a second rack slidably arranged on the frame, the second rack and the first tooth part are engaged, the sliding directions of the first rack and the second rack are opposite, and the first rack and the second rack are reversely slid to drive the first wheel to rotate;
[0020] a first gear rotatably arranged on the frame, the first gear is used to drive the first rack and the second rack to slide, and the first motor is used to drive the first gear to rotate.
[0021] For example, the second wheel has a second tooth part, and the third transmission member comprises:
[0022] a third rack slidably arranged on the frame, the third rack and the second tooth part are engaged;
[0023] a fourth rack slidably arranged on the frame, the fourth rack and the second tooth part are engaged, the sliding directions of the third rack and the fourth rack are opposite, and the third rack and the fourth rack are reversely slid to drive the second wheel to rotate;
[0024] A second gear is rotatably arranged on the frame, and the second gear is configured to drive the third rack and the fourth rack to slide.
[0025] For example, in the gabion weaving device, the second transmission member comprises:
[0026] A first sliding plate is transversely arranged on the frame, and the first sliding plate has a first mounting position, and the first half wheel is movably arranged on the first mounting position.
[0027] A second sliding plate is transversely arranged on the frame, and the first sliding plate and the second sliding plate are arranged in opposite sliding directions, the second sliding plate has a second mounting position, and the second half wheel is movably arranged on the second mounting position. After the first sliding plate and the second sliding plate slide in opposite directions, the first mounting position and the second mounting position are separated from each other or combined to form a first circular rotating space, and the first wheel is rotatably arranged in the first circular rotating space.
[0028] For example, in the gabion weaving device, the second transmission member further comprises:
[0029] A first rotating shaft is rotatably arranged on the frame, and the second motor is configured to drive the first rotating shaft to rotate.
[0030] A first swinging plate is swingably arranged on the first rotating shaft.
[0031] A first connecting rod is hingedly arranged at one end on the first swinging plate and at the other end on the first sliding plate.
[0032] A second connecting rod is hingedly arranged at one end on the first swinging plate and at the other end on the second sliding plate, and the first rotating shaft is located between the first connecting rod and the second connecting rod.
[0033] For example, in the gabion weaving device, the fourth transmission member comprises:
[0034] A third sliding plate is transversely arranged on the frame, and the third sliding plate has a third mounting position, and the third half wheel is movably arranged on the third mounting position.
[0035] A fourth sliding plate is horizontally slidably arranged on the frame, the third sliding plate and the fourth sliding plate are opposite in sliding direction, the fourth sliding plate has a fourth mounting position, the fourth half wheel is movably arranged on the fourth mounting position, and the third mounting position and the fourth mounting position are separated from each other or combined into a second circular rotating space after the third sliding plate and the fourth sliding plate slide in opposite directions.
[0036] For example, in the gabion net weaving device provided in at least one embodiment of the present disclosure, the fourth transmission member further comprises:
[0037] A second rotating shaft is rotatably arranged on the frame, and the second motor is configured to drive the second rotating shaft to rotate.
[0038] A second swing plate is swingably arranged on the second rotating shaft.
[0039] A third connecting rod is hingedly arranged at one end on the second swing plate and at the other end on the third sliding plate.
[0040] A fourth connecting rod is hingedly arranged at one end on the second swing plate and at the other end on the fourth sliding plate, and the second rotating shaft is located between the third connecting rod and the fourth connecting rod.
[0041] For example, in the gabion net weaving device provided in at least one embodiment of the present disclosure, the first sliding plate, the second sliding plate, the third sliding plate and the fourth sliding plate are of the same structure, the first sliding plate has a first guide channel, and the first rack is slidably arranged in the first guide channel.
[0042] For example, in the gabion net weaving device provided in at least one embodiment of the present disclosure, the gabion net weaving device further comprises:
[0043] A licker-in is rotatably arranged on the frame, one end of the wire is arranged on the licker-in, and the first half wheel and the second half wheel are moved and rotated to weave the wire through the licker-in.
[0044] For example, in the gabion net weaving device provided in at least one embodiment of the present disclosure, the gabion net weaving device further comprises:
[0045] A thread passing drum is movably arranged on the frame, the thread passing drum is located between the first wheel and the second wheel, and the thread passing drum is configured to feed the wire.
[0046] The embodiments of the present disclosure have the following beneficial effects:
[0047] In this disclosure, the number of physical components is reduced, and instead, a drive motor is added to eliminate the rotational error of the equipment. The drive motor can control the rotation of the equipment with stable power output. Compared with the mechanical errors present in traditional physical component adjustment methods, motor drive can adjust the rotational error more quickly and accurately, while also ensuring adjustment precision, thereby improving the overall operational stability of the equipment and product quality.
[0048] The maintenance frequency of motors is significantly lower than that of physical components. Physical components, because they directly participate in mechanical motion, are subjected to more forces such as friction and impact, requiring regular inspection, repair, and replacement, increasing equipment maintenance costs and downtime. In contrast, drive motors have a relatively simple structure. Under normal operating conditions, only regular, simple maintenance, such as checking the motor's electrical connections and heat dissipation, is needed to ensure stable operation, greatly reducing equipment maintenance costs and downtime caused by maintenance, and improving equipment efficiency and economic benefits. Attached Figure Description
[0049] To more clearly illustrate the technical solutions in the embodiments of this disclosure, the accompanying drawings used in the description of the embodiments of this disclosure will be briefly introduced below. Obviously, the drawings described below are merely some exemplary embodiments of this disclosure. For those skilled in the art, other drawings can be obtained based on the content of the exemplary embodiments of this disclosure and these drawings without any creative effort.
[0050] Figure 1 This is a schematic diagram of the structure of a gabion mesh weaving device according to one embodiment of the present disclosure;
[0051] Figure 2 for Figure 1 Enlarged view of point A;
[0052] Figure 3 for Figure 1 Enlarged view of point B;
[0053] Figure 4 for Figure 1 A schematic diagram of the structure of the first transmission component in the embodiment;
[0054] Figure 5 for Figure 1 A schematic diagram of the structure of the third transmission component in the embodiment;
[0055] Figure 6 for Figure 1 A partially enlarged structural diagram from one of the embodiments;
[0056] Figure 7 for Figure 1 A schematic diagram of the second half-wheel structure in the embodiment;
[0057] Figure 8 Fig. 1 is a schematic view of a gabion weaving device according to an embodiment of the present disclosure. Figure 1
[0058] In the figure: 1, first half wheel, 2, second half wheel, 21, first wheel, 3, first transmission member, 4, second transmission member, 5, third half wheel, 6, fourth half wheel, 61, second wheel, 7, third transmission member, 8, fourth transmission member, 9, first driving member, 10, second driving member, 11, frame, 12, first rack, 13, second rack, 14, first gear, 15, third rack, 16, fourth rack, 17, second gear, 18, first sliding plate, 181, first mounting position, 19, second sliding plate, 191, second mounting position, 192, first circular rotating space, 20, first rotating shaft, 200, first swinging plate, 22, first connecting rod, 23, second connecting rod, 24, third sliding plate, 241, third mounting position, 25, fourth sliding plate, 251, fourth mounting position, 252, second circular rotating space, 26, second rotating shaft, 27, second swinging plate, 28, third connecting rod, 29, fourth connecting rod, 182, first guide channel, 30, licker-in, 31, thread passing cylinder. DETAILED DESCRIPTION
[0059] The present disclosure will be further described in conjunction with the drawings and embodiments. It can be understood that the specific embodiments described herein are only used to explain the present disclosure, but not to limit the present disclosure.
[0060] In order to make the drawing simple, only the parts related to the disclosure are shown in each drawing, which does not represent the actual structure of the product. In addition, in order to make the drawing simple and easy to understand, in some drawings, only one of the parts with the same structure or function is shown, or only one of them is marked. In this text, "one" not only means "only one", but also means "more than one", and "several" includes "two" and "more than two".
[0061] In this text, it is necessary to point out that, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", and "connecting" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium, or it can be connected inside two elements. For ordinary skilled in the art, the specific meaning of the above terms in the present disclosure can be understood according to the specific circumstances.
[0062] In this disclosure, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0063] In the description of this embodiment, terms such as "upper," "lower," "left," and "right" are based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of description and simplification of operation, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this disclosure.
[0064] Furthermore, in the description of this application, the terms "first," "second," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0065] like Figures 1-3 The diagram illustrates a gabion mesh weaving device according to an embodiment of the present disclosure, comprising a first half-wheel 1 and a second half-wheel 2, both of which are movable and rotatable, and after movement, they either separate or move closer together to form a first wheel 21; a first transmission member 3 drives the first wheel 21 to rotate; a second transmission member 4 drives the first half-wheel 1 and the second half-wheel 2 to move away from or move closer together; a third half-wheel 5 and a fourth half-wheel 6 are both movable and rotatable, and after movement, they either separate or move closer together to form a second wheel 61, the second wheel 61 and the first wheel 21 being passed through sequentially by thread; a third transmission member 7 drives the second wheel 61 to rotate; a fourth transmission member 8 drives the third half-wheel 5 and the fourth half-wheel 6 to move away from or move closer together; a first drive member 9 includes two first motors and / or a second drive member 10 includes two second motors, the two first motors driving the first transmission member 3 and the second transmission member 4 respectively, and the second motors driving the third transmission member 7 and the fourth transmission member 8.
[0066] For example, such as Figure 2 , Figure 3 , Figure 8As shown, the first half wheel 1 and the second half wheel 2 in the present disclosure each have several, and each of the first half wheel 1 and the second half wheel 2 is threaded with a wire. When weaving the stone cage net, the corresponding first motor of the first transmission member 3 and the corresponding second motor of the second transmission member 4 are started, the first motor drives the first transmission member 3 to act, the first transmission member 3 drives the first wheel 21 to rotate after acting, the first half wheel 1 and the second half wheel 2 on the first wheel 21 exchange positions after the first wheel 21 rotates, the first wheel 21 rotates several turns, and the two wires on the first wheel 21 are wound several turns. After winding several turns, the second motor drives the second transmission member 4 to act, the second transmission member 4 drives the first half wheel 1 and the second half wheel 2 to slide out of position, and different first half wheels 1 and second half wheels 2 form a new first wheel 21. After the new first wheel 21 rotates, the weaving and twisting of the wires are realized. The third half wheel 5 and the fourth half wheel 6 have the same action as the first half wheel 1 and the second half wheel 2, and the functions of the third half wheel 5 and the fourth half wheel 6 are to feed the wires and prevent the wires from being entangled with each other. Because the first half wheel 1 and the second half wheel 2 will be pulled by the wires when twisting the wires, the actions of the first half wheel 1 and the second half wheel 2 and the third half wheel 5 and the fourth half wheel 6 will be out of sync, which will further affect the twisting efficiency. The first driving member 9 in the prior art is a first motor, the first motor drives the first transmission member 3 and the second transmission member 4 to act synchronously through a connecting shaft, the second driving member 10 is a second motor, and the second motor drives the second transmission member 4 and the fourth transmission member 8 to act synchronously through a connecting shaft. In order to eliminate the rotation difference between the first transmission member 3 and the third transmission member 7 and between the second transmission member 4 and the fourth transmission member 8, the first connecting shaft is designed as two split shafts, and a physical member is designed between the two split shafts. The physical member can not only eliminate the rotation difference, but also drive the first transmission member 3 and the third transmission member 7 to act synchronously through the two split shafts. The present disclosure adopts two first motors to drive the first transmission member 3 and the second transmission member 4 to act, respectively, and two second motors to drive the second transmission member 4 and the third transmission member 7 to act, respectively, or adopts two first motors to drive the first transmission member 3 and the second transmission member 4 to act, respectively, and the driving mode of the second transmission member 4 and the fourth transmission member 8 is the same as the driving mode of the above-mentioned prior art, or adopts two second motors to drive the second transmission member 4 and the third transmission member 7 to act, respectively, and the driving mode of the first transmission member 3 and the third transmission member 7 is the same as the driving mode of the above-mentioned prior art. In order to realize the rotation coordination between the device components, physical members are often relied on for adjustment. However, these physical members will inevitably have problems such as wear and tear and looseness after long-term operation, which will gradually reduce the adjustment accuracy. In sharp contrast, the technical solution adopted by the present disclosure is extremely innovative.
[0067] The present disclosure eliminates the rotation difference of the device by reducing the number of physical parts and increasing the driving motor. The driving motor can control the rotation of the device with stable power output. Compared with the mechanical error in the traditional physical part adjustment mode, the motor drive can more quickly and accurately adjust the rotation difference, ensure the adjustment accuracy, and improve the overall operation stability of the device and the product quality.
[0068] The maintenance frequency of the motor is significantly lower than that of the physical part. The physical part directly participates in mechanical movement and is subjected to more friction, impact and other forces, so it needs to be regularly inspected, repaired and replaced, increasing the maintenance cost and downtime of the device. The driving motor has a relatively simple structure, and under normal operating conditions, only simple maintenance such as checking the electrical connection and heat dissipation of the motor is required to ensure its stable operation, greatly reducing the maintenance cost and downtime of the device due to maintenance, and improving the use efficiency and economic benefit of the device.
[0069] In some examples, the first wheel 21 has a first tooth portion, the first rack 12 is transversely slidably arranged on the rack 11, and the first rack 12 and the first tooth portion are engaged; the second rack 13 is transversely slidably arranged on the rack 11, and the second rack 13 and the first tooth portion are engaged, the sliding directions of the first rack 12 and the second rack 13 are opposite, and the first rack 12 and the second rack 13 are reversely slid to drive the first wheel 21 to rotate; the first gear 14 is rotatably arranged on the rack 11, the first gear 14 is used to drive the first rack 12 and the second rack 13 to slide, and the first motor is used to drive the first gear 14 to rotate.
[0070] For example, as shown in Figure 6 The first motor is started, and the first motor drives the first gear 14 to rotate. The rotation of the first gear 14 drives the first rack 12 and the second rack 13 to slide reversely. The first rack 12 and the second rack 13 drive the first half gear and the second half gear engaged therewith to rotate, thereby driving the first wheel 21 to rotate.
[0071] The engagement transmission mode of the first rack 12 and the second rack 13 with the first half gear and the second half gear respectively can control the rotation angle and speed of the first wheel 21 to realize the weaving and twisting of the wire. The engagement structure of the first gear 14 with the first rack 12 and the second rack 13 makes the transmission more stable, reduces the probability of failure, and the transmission structure is relatively simple, facilitating maintenance and replacement of parts, and reducing maintenance cost.
[0072] In some examples, the second wheel 61 has a second tooth portion, the third rack 15 is transversely slidably arranged on the frame 11, the third rack 15 is engaged with the third half gear, the fourth rack 16 is transversely slidably arranged on the frame 11, the fourth rack 16 is engaged with the fourth half gear, the sliding directions of the third rack 15 and the fourth rack 16 are opposite, and the third rack 15 and the fourth rack 16 are reversely slid to drive the second wheel 61 to rotate; the second gear 17 is rotatably arranged on the frame 11, the second gear 17 is used to drive the third rack 15 and the fourth rack 16 to slide, and the first motor is used to drive the second gear 17 to rotate.
[0073] For example, as shown in Figure 6 , the first motor drives the second gear 17 to rotate, the second gear 17 drives the third rack 15 and the fourth rack 16 to reversely slide. The third rack 15 and the fourth rack 16 drive the third half gear and the fourth half gear engaged therewith to rotate, thereby driving the second wheel 61 to rotate.
[0074] The first motor drives the second gear 17 to realize the reverse sliding of the third rack 15 and the fourth rack 16, thereby synchronously driving the second wheel 61 to rotate, and ensuring the coordination of the weaving process.
[0075] In some examples, the first sliding plate 18 is transversely slidably arranged on the frame 11, the first sliding plate 18 has a first mounting position 181, and the first half wheel 1 is movably arranged on the first mounting position 181; the second sliding plate 19 is transversely slidably arranged on the frame 11, the sliding directions of the first sliding plate 18 and the second sliding plate 19 are opposite, the second sliding plate 19 has a second mounting position 191, the second half wheel 2 is movably arranged on the second mounting position 191, and the first mounting position 181 and the second mounting position 191 are separated from each other or combined into a first circular rotating space 192 after the first sliding plate 18 and the second sliding plate 19 reversely slide, and the first wheel 21 is rotatably arranged in the first circular rotating space 192.
[0076] For example, as shown in Figure 4 , when it is needed to combine the first half wheel 1 and the second half wheel 2 into the first wheel 21, the first sliding plate 18 and the second sliding plate 19 are reversely slid to make the first mounting position 181 and the second mounting position 191 approach each other and combine into the first circular rotating space 192, and at this time, the first wheel 21 can rotate in the space. When it is needed to separate the first half wheel 1 and the second half wheel 2, the first sliding plate 18 and the second sliding plate 19 are reversely slid to make the first mounting position 181 and the second mounting position 191 separate from each other and drive the first half wheel 1 and the second half wheel 2 to separate.
[0077] Through the reverse sliding of the first sliding plate 18 and the second sliding plate 19, the combination and separation of the first half wheel 1 and the second half wheel 2 can be conveniently realized. The formation of the first circular rotating space 192 provides a stable rotating space for the rotation of the first wheel 21.
[0078] In some examples, the first rotating shaft 20 is rotationally arranged on the frame 11, and a second motor is configured to drive the rotation of the first rotating shaft 20; the first swing plate 200 is swingingly arranged on the first rotating shaft 20; the first connecting rod 22 is hingedly arranged at one end on the first swing plate 200 and at the other end on the first sliding plate 18; the second connecting rod 23 is hingedly arranged at one end on the first swing plate 200 and at the other end on the second sliding plate 19, and the first rotating shaft 20 is located between the first connecting rod 22 and the second connecting rod 23.
[0079] For example, as shown in Figure 4 、 Figure 7 , the second motor drives the rotation of the first rotating shaft 20, and the first rotating shaft 20 drives the swing of the first swing plate 200. The first swing plate 200 drives the first sliding plate 18 and the second sliding plate 19 to slide in opposite directions through the first connecting rod 22 and the second connecting rod 23, respectively, so as to realize the mutual approach or separation of the first half wheel 1 and the second half wheel 2.
[0080] Through the cooperation of the first rotating shaft 20, the first swing plate 200, the first connecting rod 22 and the second connecting rod 23, the power of the motor can be stably transmitted to the first sliding plate 18 and the second sliding plate 19. This transmission structure is simple, easy to manufacture and maintain, reduces the production cost and maintenance difficulty of the equipment and can ensure that the reverse sliding of the first sliding plate 18 and the second sliding plate 19 is synchronized, so that the combination and separation of the first half wheel 1 and the second half wheel 2 is more accurate.
[0081] In some examples, the third sliding plate 24 is transversely slidably arranged on the frame 11, the third sliding plate 24 has a third mounting position 241, the third half wheel 5 is movably arranged on the third mounting position 241; the fourth sliding plate 25 is transversely slidably arranged on the frame 11, the sliding directions of the third sliding plate 24 and the fourth sliding plate 25 are opposite, the fourth sliding plate 25 has a fourth mounting position 251, the fourth half wheel 6 is movably arranged on the fourth mounting position 251, after the third sliding plate 24 and the fourth sliding plate 25 slide reversely, the third mounting position 241 and the fourth mounting position 251 are separated from each other or combined to form a second circular rotating space 252, and the second wheel 61 is rotatably arranged in the second circular rotating space 252. The second rotating shaft 26 is rotatably arranged on the frame 11, the second motor is used to drive the second rotating shaft 26 to rotate; the second swing plate 27 is swingably arranged on the second rotating shaft 26; one end of the third connecting rod 28 is hingedly arranged on the second swing plate 27, and the other end is hingedly arranged on the third sliding plate 24; one end of the fourth connecting rod 29 is hingedly arranged on the second swing plate 27, and the other end is hingedly arranged on the fourth sliding plate 25, and the second rotating shaft 26 is located between the third connecting rod 28 and the fourth connecting rod 29. The first sliding plate 18, the second sliding plate 19, the third sliding plate 24 and the fourth sliding plate 25 have the same structure, the first sliding plate 18 has a first guide channel 182, the first rack 12 is slidably arranged in the first guide channel 182, and the first rack 12 is slidably arranged on the frame 11 through the first sliding plate 18.
[0082] For example, as shown in FIG. 18, when the first sliding plate 18 slides, the first guide channel 182 guides the first rack 12 to slide together, so as to ensure that the first rack 12 and the first half gear mesh and drive normally. At the same time, the second sliding plate 19, the third sliding plate 24 and the fourth sliding plate 25 also ensure the sliding and driving of the corresponding racks in the same way. Figure 5
[0083] The sliding plates with the same structure reduce the types of equipment parts, improve the universality of the parts, and reduce the manufacturing and maintenance costs of the equipment. The first guide channel 182 provides stable guidance for the sliding of the first rack 12. The sliding plates with the same structure facilitate installation and maintenance, and improve work efficiency.
[0084] In some examples, the roller 30 is rotatably arranged on the frame 11, one end of the silk thread is arranged on the roller 30, and after the first half wheel 1 and the second half wheel 2 move and rotate, the silk thread is woven through the roller 30. The thread guide cylinder 31 is movably arranged on the frame 11, the thread guide cylinder 31 is located between the first wheel 21 and the second wheel 61, and the thread guide cylinder 31 is used for silk feeding.
[0085] It should be noted that the above examples are only used to illustrate the technical solutions of the present disclosure rather than limit the present disclosure. Although the present disclosure is described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present disclosure can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present disclosure, and all should be covered in the scope of the claims of the present disclosure.
Claims
1. A gabion net weaving apparatus, characterized by, The utility model relates to a kind of silk thread weaving machine, including: First half wheel (1) and second half wheel (2), the first half wheel (1) and the second half wheel (2) are moved and rotationally arranged, and after moving, mutually far away separation or mutually close and combine as first wheel (21); First transmission member (3), the first transmission member (3) is used to drive the first wheel (21) rotation; Second transmission member (4), the second transmission member (4) is used to drive first half wheel (1) and the second half wheel (2) mutually far away or close; Third half wheel (5) and fourth half wheel (6), the third half wheel (5) and the fourth half wheel (6) are moved and rotationally arranged, and after moving, mutually far away separation or mutually close and combine as second wheel (61), the second wheel (61) and the first wheel (21) are sequentially crossed by silk thread; Third transmission member (7), the third transmission member (7) is used to drive the second wheel (61) rotation; Fourth transmission member (8), the fourth transmission member (8) is used to drive the third half wheel (5) and the fourth half wheel (6) mutually far away or close; First drive member (9) and second drive member (10), the first drive member (9) includes two first motor and / or the second drive member (10) includes two second motor, two the first motor is used to drive the first transmission member (3) and the second transmission member (4) action respectively, the second motor is used to drive the third transmission member (7) and the fourth transmission member (8) action.
2. A gabion net weaving apparatus according to claim 1, wherein The first wheel (21) has a first tooth part, further comprising: Frame (11); The first transmission member (3) includes: First rack (12), transversely slidingly arranged on the frame (11), the first rack (12) and the first tooth part are engaged; Second rack (13), transversely slidingly arranged on the frame (11), the second rack (13) and the first tooth part are engaged, the first rack (12) and the second rack (13) are opposite in sliding direction, the first rack (12) and the second rack (13) are reversed after sliding, for driving the first wheel (21) rotation; First gear (14), rotationally arranged on the frame (11), the first gear (14) is used to drive the first rack (12) and the second rack (13) sliding, the first motor is used to drive the first gear (14) rotation.
3. A gabion net weaving apparatus according to claim 2, wherein The second wheel (61) has a second tooth part, and the third transmission member (7) includes: Third rack (15), transversely slidingly arranged on the frame (11), the third rack (15) and the second tooth part are engaged; Fourth rack (16), transversely slidingly arranged on the frame (11), the fourth rack (16) and the second tooth part are engaged, the third rack (15) and the fourth rack (16) are opposite in sliding direction, the third rack (15) and the fourth rack (16) are reversed after sliding, for driving the second wheel (61) rotation; A second gear (17) is rotationally arranged on the frame (11), and the second gear (17) is used to drive the third rack (15) and the fourth rack (16) to slide, and the first motor is used to drive the second gear (17) to rotate.
4. A gabion net weaving apparatus according to claim 2, wherein The second transmission member (4) comprises: A first sliding plate (18) is transversely arranged on the frame (11) to slide, and the first sliding plate (18) has a first mounting position (181), and the first half wheel (1) is movably arranged on the first mounting position (181); A second sliding plate (19) is transversely arranged on the frame (11) to slide, and the sliding direction of the first sliding plate (18) and the second sliding plate (19) is opposite, the second sliding plate (19) has a second mounting position (191), and the second half wheel (2) is movably arranged on the second mounting position (191), after the first sliding plate (18) and the second sliding plate (19) slide reversely, the first mounting position (181) and the second mounting position (191) are separated away from each other or close to each other to be combined into a first circular rotating space (192), and the first wheel (21) is rotationally arranged in the first circular rotating space (192).
5. A gabion net weaving apparatus according to claim 4, wherein The second transmission member (4) further comprises: A first rotating shaft (20) is rotationally arranged on the frame (11), and the second motor is used to drive the first rotating shaft (20) to rotate; A first swing plate (200) is swingingly arranged on the first rotating shaft (20); A first connecting rod (22) is hingedly arranged at one end on the first swing plate (200) and at the other end on the first sliding plate (18); A second connecting rod (23) is hingedly arranged at one end on the first swing plate (200) and at the other end on the second sliding plate (19), and the first rotating shaft (20) is located between the first connecting rod (22) and the second connecting rod (23).
6. A gabion net weaving apparatus according to claim 4, wherein The fourth transmission member (8) comprises: A third sliding plate (24) is transversely arranged on the frame (11) to slide, and the third sliding plate (24) has a third mounting position (241), and the third half wheel (5) is movably arranged on the third mounting position (241); A fourth sliding plate (25) is transversely arranged on the frame (11) to slide, and the sliding direction of the third sliding plate (24) and the fourth sliding plate (25) is opposite, the fourth sliding plate (25) has a fourth mounting position (251), and the fourth half wheel (6) is movably arranged on the fourth mounting position (251), after the third sliding plate (24) and the fourth sliding plate (25) slide reversely, the third mounting position (241) and the fourth mounting position (251) are separated away from each other or close to each other to be combined into a second circular rotating space (252), and the second wheel (61) is rotationally arranged in the second circular rotating space (252).
7. A gabion net weaving apparatus according to claim 6, wherein The fourth transmission member (8) further comprises: A second rotating shaft (26) is rotationally arranged on the frame (11), and the second motor is used to drive the second rotating shaft (26) to rotate; A second swing plate (27) is swingingly arranged on the second rotating shaft (26); A third connecting rod (28) is hingedly arranged at one end on the second swing plate (27) and at the other end on the third sliding plate (24); A fourth connecting rod (29) is hingedly arranged at one end on the second swing plate (27) and at the other end on the fourth sliding plate (25), and the second rotating shaft (26) is located between the third connecting rod (28) and the fourth connecting rod (29).
8. A gabion net weaving apparatus according to claim 6, wherein The first sliding plate (18), the second sliding plate (19), the third sliding plate (24) and the fourth sliding plate (25) are of the same structure, the first sliding plate (18) has a first guide channel (182), and the first rack (12) is slidingly arranged in the first guide channel (182), and the first rack (12) is slidingly arranged on the rack (11) through the first sliding plate (18).
9. A gabion net weaving apparatus according to claim 2, wherein The stone cage net weaving equipment further comprises: A licker-in roller (30) is rotatably arranged on the rack (11), one end of the wire is arranged on the licker-in roller (30), and the wire is woven through the licker-in roller (30) after the first half wheel (1) and the second half wheel (2) are moved and rotated.
10. A gabion net weaving apparatus according to claim 2, wherein The stone cage net weaving equipment further comprises: A thread passing drum (31) is movably arranged on the rack (11), the thread passing drum (31) is located between the first wheel (21) and the second wheel (61), and the thread passing drum (31) is used for feeding the wire.