Warping machine for oxford fabric production
By using the matching method of auxiliary limit frame and clamping mechanism in the warping machine for Oxford fabric production, the problem of difficulty in disassembly and assembly of the warping shaft is solved, reducing the working strength and improving the fabric production efficiency.
Patent Information
- Application Number
- CN202510225226.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-27
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing warping machines for Oxford fabric production, the disassembly and assembly operation of warping shafts is difficult, resulting in an increase in labor intensity for staff and affecting fabric production efficiency.
A warping machine for Oxford fabric production is designed, using the auxiliary limit frame and clamping mechanism to cooperate with each other, so that the warping shaft and the rotating body are kept coaxial, reducing the need for manual lifting and reducing working strength.
By simplifying the installation process of the whole warp shaft, the labor intensity of the staff is reduced, the installation efficiency of the whole warp shaft is improved, and the production efficiency of the fabric is improved.
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Figure CN119932781A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of warping machines, and in particular to a warping machine for producing Oxford fabrics. Background Art
[0002] Oxford fabric, also known as Oxford cloth, is a versatile and widely used fabric that can be made of different types of fibers, including cotton, polyester and blended materials, giving it different properties. Fabric warping is a key process in the production of Oxford fabric. Its main purpose is to draw a certain number and length of warp yarns from the bobbin, wind them in parallel on the warping beam with uniform tension, and replace the warping beam according to the winding condition of the fiber yarns on the warping beam, so as to store and collect the fiber yarns and prepare for subsequent processing steps such as sizing and drawing.
[0003] A Chinese patent with announcement number CN210711891U discloses a warping machine, which realizes the installation of the warping shaft and ensures that the warping shaft can rotate normally by cooperating with the telescopic shaft on the second electric push rod and the rotating shaft on the warping machine body through the mutual cooperation of the second electric push rod, the limit shell and the rotating block. However, this installation method requires the staff to manually lift the warping shaft to keep it coaxial with the rotating shaft, which is difficult to operate and easily increases the labor intensity of the staff, affecting the fabric production efficiency. Summary of the invention
[0004] The invention provides a warping machine for Oxford fabric production, which solves the problem in the related art that the warping beam is difficult to disassemble and assemble, thus affecting the fabric production efficiency.
[0005] The technical solution of the present invention is as follows: A warping machine for Oxford fabric production comprises a machine body and a warping shaft, wherein the warping shaft is detachably connected to the machine body, the machine body is provided with a plurality of rotating bodies for driving the warping shaft to rotate, the machine body is provided with a plurality of auxiliary limit frames for keeping the warping shaft and the rotating body coaxial, and the machine body is provided with a clamping mechanism for controlling the rotating body to clamp the warping shaft.
[0006] Furthermore, auxiliary limiting rings are provided at both ends of the warping shaft, the inner ring diameter of each auxiliary limiting ring is larger than the diameter of the rotating body, each auxiliary limiting ring corresponds one by one to each auxiliary limiting frame, and the auxiliary limiting frame has a plurality of first balls for contacting the auxiliary limiting rings.
[0007] Furthermore, each of the rotating bodies includes a rotating shaft and a rotating seat for driving the rotating shaft to rotate. The rotating seat is rotatably connected to the inside of the machine body, and the rotating shaft passes through the rotating seat and is slidably connected to the rotating seat.
[0008] Furthermore, both ends of the warping shaft have positioning holes, and one end of each rotating shaft close to the warping shaft has a conical structure, and each positioning hole has a contact inclined surface for cooperating with the rotating shaft.
[0009] Furthermore, the clamping mechanism includes a transmission screw, a driving motor, and a plurality of pushing frames. The transmission screw is a double-headed screw, and the transmission screw is linked with the output shaft of the driving motor. Each pushing frame is transmission-connected to the transmission screw, and the rotating shaft is linked with the pushing frame.
[0010] Furthermore, there is a linkage body between each of the rotating shafts and the pushing frame, and the longitudinal section of each of the linkage bodies is a horizontal "I"-shaped structure. The rotating shaft and the pushing frame are respectively provided with a first slot and a second slot for installing the linkage body.
[0011] Furthermore, each of the rotating seats has an annular structure on the projection surface of the vertical horizontal plane, and the inner ring of each rotating seat is provided with a plurality of linkage key slots, and each of the rotating shafts is provided with a plurality of linkage keys, and each of the linkage keys corresponds to each linkage key slot one by one.
[0012] Furthermore, the first slot is opened on the rotating shaft, and there is a gap between each radial surface of the linkage body and the first slot. The linkage body includes a linkage plate, and the linkage plate is located in the first slot. There are a plurality of second balls between both ends of the linkage plate and the rotating shaft.
[0013] Furthermore, the machine body is provided with a plurality of control components for controlling the movement of the auxiliary limiting frame, and the machine body is provided with a hidden groove for hiding the auxiliary limiting frame.
[0014] Furthermore, the transmission screw includes a rotating rod body and a plurality of threaded rod bodies. A plurality of supporting rotating frames are provided in the machine body. Each of the supporting rotating frames is located between adjacent threaded rod bodies. The rotating rod body is rotatably connected to each supporting rotating frame.
[0015] The working principle and beneficial effects of the present invention are: An auxiliary limit frame is provided on the machine body in the present invention, and the auxiliary limit frame corresponds to the rotating body in the machine body for controlling the rotation of the warping shaft, so that when the clamping mechanism in the machine body controls the rotating body to fix the warping shaft, the central axis of the warping shaft and the rotation axis of the rotating body remain coaxially arranged, thereby avoiding eccentric rotation of the warping shaft and affecting the warping efficiency; that is, during the installation process of the warping shaft, the staff only needs to lift the shaft to the auxiliary limit frame so that it can remain coaxial with the rotating body, without having to keep lifting the warping shaft for a long time, thereby reducing the work intensity of the staff installing the warping shaft, thereby improving the installation efficiency of the warping shaft, and indirectly improving the production efficiency of the fabric. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific embodiments.
[0017] Figure 1 It is a schematic diagram of the structure of Example 1 or Example 2; Figure 2 A half-section view of Example 1 when the motors are not assembled; Figure 3 for Figure 2 A partial enlarged view of the middle part; Figure 4 for Figure 2 A partial enlarged view of point B in the middle; Figure 5 It is an exploded view of the cooperation between the rotating body and the warping beam in Example 1 or Example 2; Figure 6 for Figure 5 A half-section view of Figure 7 It is a structural schematic diagram of the auxiliary limiting frame in Example 1 or Example 2; Figure 8 A schematic diagram of the cooperation between the clamping mechanism and the rotating shaft in Example 1 or Example 2; Fig. 9 is a half-section view of embodiment 2 when each motor is assembled; Fig.10 for Fig. 9 Schematic diagram of the structure.
[0018] In the figure: 1. Machine body; 11. Hidden slot; 12. Supporting rotating frame; 2. Warping beam; 21. Auxiliary limiting ring; 22. Positioning hole; 23. Contact inclined surface; 3. Rotating body; 31. Rotating shaft; 311. First slot; 312. Linkage key; 32. Rotating seat; 321. Linkage key slot; 4. Auxiliary limiting frame; 5. Clamping mechanism; 51. Transmission screw; 511. Rotating rod body; 512. Threaded rod body; 52. Pushing frame; 521. Second slot; 6. First ball; 7. Linkage body; 71. Linkage plate; 8. Second ball; 9. Control component. DETAILED DESCRIPTION
[0019] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0020] Example 1 like Figure 1~Figure 2As shown, this embodiment proposes a warping machine for Oxford fabric production, which mainly includes a machine body 1 and a warping shaft 2. The warping shaft 2 is rotatably connected to the machine body 1 in a detachable connection manner, so that the staff can dismantle the warping shaft 2 according to the winding situation of the fabric on the warping shaft 2, and transport it to the warehouse together with the wound warping shaft 2 to complete the storage of the fabric.
[0021] The machine body 1 is provided with a plurality of rotating bodies 3 for driving the warping shaft 2 to rotate, and the machine body 1 is provided with a clamping mechanism 5 for controlling the rotating body 3 to clamp the warping shaft 2. That is, in this embodiment, the warping shaft 2 is fixed to the machine body 1 through the mutual cooperation between the rotating body 3 and the clamping mechanism 5, and the warping shaft 2 can rotate with the rotation of the rotating body 3 to complete the warping work.
[0022] like Figure 2 , Figure 5~Figure 6 As shown, each rotating body 3 in this embodiment is symmetrically and evenly distributed on the machine body 1 with the warping shaft 2 as the center, so that each rotating body 3 can clamp the warping shaft 2 under the action of the clamping mechanism 5. Each rotating body 3 includes a rotating shaft 31 and a rotating seat 32 for driving the rotating shaft 31 to rotate. The rotating seat 32 is rotatably connected to the inside of the machine body 1, and the rotating shaft 31 passes through the rotating seat 32 and is slidably connected with the rotating seat 32; at the same time, the end of the rotating shaft 31 away from the warping shaft 2 is linked with the clamping mechanism 5, so that the rotating shaft 31 can slide in the rotating seat 32 under the action of the clamping mechanism 5, thereby abutting against the warping shaft 2 to complete the clamping of the warping shaft 2; and because the clamping mechanism 5 only applies a force to the rotating shaft 31, it will not cause the rotating seat 32 to move, thereby avoiding the conflict between the clamping work of the rotating body 3 on the warping shaft 2 and the work of the rotating body 3 driving the warping shaft 2 to rotate, and fully ensuring the stability of the operation of this embodiment.
[0023] Specifically, each rotating seat 32 has an annular structure on the projection surface of the vertical horizontal plane, and the inner ring of each rotating seat 32 is provided with a plurality of linkage key grooves 321, and each rotating shaft 31 is provided with a plurality of linkage keys 312, and each linkage key 312 corresponds to each linkage key groove 321 one by one; that is, the rotating shaft 31 realizes the linkage with the rotating seat 32 through the mutual cooperation of the key block and the key groove (the linkage key 312 and the linkage key groove 321), because the key block cooperation can not only effectively transmit torque and power, but also has high durability and stability; at the same time, each linkage key groove 321 is evenly distributed around the rotating seat 32 in a circumference, and cooperates with each corresponding linkage key 312, which can effectively ensure the connection strength between the rotating shaft 31 and the rotating seat 32; and in order to ensure the sliding of the rotating shaft 31 in the rotating seat 32, each linkage key groove 321 should pass through the rotating seat 32.
[0024] At the same time, considering that after each rotating body 3 completes the clamping of the warping shaft 2 under the action of the clamping mechanism 5, a linkage relationship is generated among the three by virtue of the abutting relationship among the three, therefore, in this embodiment, preferably only one driving structure is set at one of the rotating bodies 3, so as to achieve the effect of saving the driving source, reduce the energy output of this embodiment, and play an energy-saving role; the driving structure mainly includes a rotating motor, a driving gear, and a driven gear, the driven gear is fixedly connected to the rotating seat 32, the driving gear and the driven gear are meshed with each other, and the output shaft of the rotating motor is fixedly connected to the driving gear (the driving gear is linked to the output shaft of the rotating motor), that is, in this embodiment, a gear transmission structure is adopted to enable each rotating body 3 to rotate, and with the transmission effect of the gear transmission structure, the rotating motor does not need to be at the rotation center of the rotating body 3 to enable the rotating body 3 to rotate normally, effectively preventing the rotating motor and the clamping mechanism 5 from interfering with each other, and ensuring the stability of the operation of this embodiment; The transmission efficiency of the gear transmission structure is usually very high, usually between 95% and 98%, which means that the input power can be almost completely converted into output power with less energy loss. At the same time, the gears of the gear transmission are precisely matched and the transmission process is smooth, without looseness or slippage like in chain or belt transmission, so the operation is stable and reliable.
[0025] like Figure 2 , Figure 8 As shown, the clamping mechanism 5 in this embodiment includes a transmission screw 51, a driving motor, and a plurality of pushing frames 52. The transmission screw 51 is linked with the output shaft of the driving motor, and each pushing frame 52 is connected to the transmission screw 51. The rotating shaft 31 is linked with the pushing frame 52. In order to ensure that each pushing frame 52 can move in opposite directions at the same time, the transmission screw 51 should be a double-headed screw, that is, the pushing frame 52 will drive the corresponding rotating shaft 31 to move under the action of the transmission screw 51, and the clamping of the warping shaft 2 or the cancellation of the clamping effect on the warping shaft 2 can be achieved according to its movement mode. Moreover, since the movement of each rotating shaft 31 is carried out synchronously, after each rotating shaft 31 completes the clamping and fixing of the warping shaft 2, the warping shaft 2 can be in the center position of this embodiment, and the calibration and positioning of the warping shaft 2 and other textile structures in this embodiment can be completed by itself, thereby improving the installation efficiency of the warping shaft 2 and being able to start the warping work directly.
[0026] At the same time, the pushing frame 52 has a pushing body for abutting against the rotating shaft 31, and the diameter of the pushing body is smaller than the diameter of the rotating shaft 31, ensuring that the pushing frame 52 will not contact the rotating seat 32 during the process of pushing the rotating shaft 31, thereby ensuring the stability of the rotation of the rotating body 3.
[0027] Specifically, the transmission screw 51 includes a rotating rod body 511 and a plurality of threaded rod bodies 512. The rotating rod body 511 and each threaded rod body 512 are integrally formed. Each threaded rod body 512 corresponds to each pushing frame 52 one by one. The thread features on adjacent threaded rod bodies 512 are opposite. A plurality of supporting rotating frames 12 are provided in the body 1. Each supporting rotating frame 12 is located between adjacent threaded rod bodies 512. The rotating rod body 511 is rotatably connected to each supporting rotating frame 12, that is, the rotating rod body 511 is located between adjacent threaded rod bodies 512. With the support effect brought by the rotatable connection between the rotating rod body 511 and each supporting rotating frame 12, the stability of the transmission screw 51 body in the body 1 is ensured.
[0028] The driving motor and the rotating motor in this embodiment are preferably synchronous motors or other stable motors, and the machine body 1 is provided with a motor accommodating cavity for installing the driving motor and the rotating motor.
[0029] like Figure 2~Figure 3 As shown, in this embodiment, there is a linkage body 7 between each rotating shaft 31 and the pushing frame 52, and the longitudinal section of each linkage body 7 is a horizontal "I" shape structure. The rotating shaft 31 and the pushing frame 52 are respectively provided with a first card slot 311 and a second card slot 521 for installing the linkage body 7, and the longitudinal sections of the first card slot 311 and the second card slot 521 are a horizontal "T" shape structure, so that the first card slot 311 and the second card slot 521 can be matched with the linkage body 7 of the "I" shape structure after cooperation with each other. With the help of the mutual cooperation among the linkage body 7, the first card slot 311 and the second card slot 521, the rotating shaft 31 can be linked to the pushing frame 52 to move in the linear direction.
[0030] At the same time, the first slot 311 is opened on the rotating shaft 31, and there is a gap between each radial surface of the linkage body 7 and the first slot 311, so that the rotational force of the rotating shaft 31 cannot be transmitted to the pushing frame 52 along the linkage body 7, thereby avoiding the linkage in the rotation direction between the pushing frame 52 and the rotating shaft 31, preventing the pushing frame 52 and the transmission screw 51 from interfering with each other, and ensuring the stability of the operation of this embodiment; the linkage body 7 includes a linkage plate 71, the linkage plate 71 is located in the first slot 311, and there are a plurality of second balls 8 between the two ends of the linkage plate 71 and the rotating shaft 31, that is, the linkage body 7 contacts the rotating shaft 31 through the plurality of second balls 8, while ensuring the timeliness of the linkage between the linkage body 7 and the rotating shaft 31 along the axial direction of the transmission screw 51, the second balls 8 are rotated under force to avoid the rotational force of the rotating shaft 31 from being transmitted to the pushing frame 52, thereby fully ensuring the practicality of this embodiment.
[0031] like Figure 2 , Figure 4 , Figure 7As shown, the machine body 1 in this embodiment is provided with a plurality of auxiliary limit frames 4 for keeping the warping shaft 2 and the rotating body 3 coaxial, and each auxiliary limit frame 4 corresponds to each rotating body 3 one by one, so that when the staff installs the warping shaft 2, they can make use of the supporting effect of each auxiliary limit frame 4 to make the central axis of the warping shaft 2 and the rotation axis of each rotating shaft 31 coaxially arranged, thereby effectively avoiding the eccentric rotation of the warping shaft 2 in the process of linkage with the rotating body 3 after the clamping mechanism 5 controls the rotating shaft 31 to fix and clamp the warping shaft 2, thereby ensuring the warping efficiency; therefore, in order to maintain the coaxial relationship between the warping shaft 2 and the rotating shaft 31, there is no need for the staff to keep lifting the warping shaft 2 until the warping shaft 2 is fixed, thereby reducing the work intensity of the staff in installing the warping shaft 2, improving the installation efficiency of the warping shaft 2, and indirectly improving the production efficiency of the fabric.
[0032] At the same time, considering that the longitudinal section of the traditional warping shaft 2 is generally a horizontal "I"-shaped structure, that is, the traditional warping shaft 2 is an axial structure with limit plates at both ends. When the auxiliary limit frame 4 is matched with its axial body (optical axis), it will affect the subsequent warping work; and when matching with the limit plates at both ends of the optical axis, there is a requirement for the size of the auxiliary limit frame 4 in the length direction (axial direction of the warping shaft 2), otherwise it will cause the staff to deliberately find the position of the auxiliary limit frame 4 when installing the warping shaft 2, so that the limit plate and the auxiliary limit frame 4 are matched, resulting in defects in the installation of the warping shaft 2 in the quick positioning direction.
[0033] Therefore, both ends of the warping shaft 2 are provided with auxiliary limiting rings 21, and each auxiliary limiting ring 21 should be integrally formed with the warping shaft 2 to ensure the connection strength between the two, and each auxiliary limiting ring 21 corresponds to each auxiliary limiting frame 4 one by one, and each auxiliary limiting ring 21 is correspondingly opened at the end of the limiting disk away from the optical axis, so that in the process of installing the warping shaft 2, the limiting disk structure of the warping shaft 2 itself can be used to cooperate with the side of the auxiliary limiting frame 4 to complete the matching of each auxiliary limiting ring 21 and the auxiliary limiting frame 4, so as to achieve a rapid positioning effect for the installation of the warping shaft 2 and improve the installation efficiency of the warping shaft 2; The inner ring diameter of each auxiliary limiting ring 21 is larger than the diameter of the rotating body 3, so that the rotating shaft 31 passes through the auxiliary limiting ring 21 and contacts the warping shaft 2 to complete the clamping of the warping shaft 2; and the annular structure of the auxiliary limiting ring 21 can effectively reduce the material requirements for making the warping shaft 2 and reduce the cost of use while meeting the coordination requirements with the auxiliary limiting frame 4; the auxiliary limiting ring 21 should be a circular ring structure so that it can rotate on the auxiliary limiting frame 4 as the rotating body 3 rotates.
[0034] The auxiliary limit frame 4 has a plurality of first balls 6 for contacting the auxiliary limit ring 21, so that the contact between the auxiliary limit ring 21 and the auxiliary limit frame 4 is surface and point contact, which effectively controls the contact area between the two, reduces the wear between the auxiliary limit ring 21 and the auxiliary limit frame 4 when the warping shaft 2 rotates on the auxiliary limit frame 4, and improves the service life of the overall structure of the warping shaft 2.
[0035] like Figure 2 , Figure 5~Figure 6 As shown, both ends of the warping shaft 2 in this embodiment have positioning holes 22, and the positioning holes 22 cooperate with the hole-axis of the rotating shaft 31 to ensure that the rotating shaft 31 can transmit the torque to the warping shaft 2, so that the warping shaft 2 rotates; each rotating shaft 31 has a conical structure at one end close to the warping shaft 2, which can not only use the guiding effect brought by the inclined surface characteristics of the conical structure to enable the rotating shaft 31 to be more accurately inserted into the positioning hole 22, ensuring that the warping shaft 2 is coaxial with the rotation axis of the rotating shaft 31 during the rotation process; but also use the physically stable characteristics of the conical structure to enable the rotating shaft 31 to withstand greater force or pressure during use, effectively reducing the possibility of deformation or breakage of the rotating shaft 31 during use. Each positioning hole 22 has a contact inclined surface 23 for cooperating with the rotating shaft 31, so that after the rotating shaft 31 completes the hole-axis cooperation with the positioning hole 22, the two adopt a surface contact method, so that the rotating shaft 31 can better transmit the force to the warping shaft 2, ensuring the normal rotation of the warping shaft 2.
[0036] Example 2 On the basis of Example 1, Figure 9~Figure 10 As shown, this embodiment proposes: The machine body 1 is provided with a plurality of control components 9 for controlling the movement of the auxiliary limit frame 4. The control components 9 in this embodiment are preferably pressure cylinders such as hydraulic cylinders, because the pressure cylinders can provide strong pushing and pulling forces, thereby controlling the movement of the auxiliary limit frame 4 and realizing the control of the position of the auxiliary limit frame 4; and the machine body 1 is provided with a hidden groove 11 for hiding the auxiliary limit frame 4, that is, after each rotating shaft 31 completes the fixation of the warping shaft 2, the auxiliary limit frame 4 can be moved into the hidden groove 11 through the control component 9, directly avoiding contact with the warping shaft 2, thereby preventing the auxiliary limit frame 4 from generating unnecessary wear during the operation of the present embodiment, and further improving the service life of the warping shaft 2 and the auxiliary limit frame 4 in the present embodiment.
[0037] At the same time, the width of the hidden groove 11 should be consistent with the width of the auxiliary limit frame 4 and the maximum moving distance of the pressure cylinder, so that the operation of the control component 9 only needs to maintain the normal input and output of the pressure fluid, and the auxiliary limit frame 4 can reach the specified position without the need to accurately control the output and input of the pressure fluid, thereby effectively reducing the workload of the control component 9 and thus reducing energy consumption.
[0038] A slide rail structure should be provided between the auxiliary limit frame 4 and the body 1, and the slide rail structure can be used to implement limit constraints on the auxiliary limit frame 4 to prevent the auxiliary limit frame 4 from accidentally deviating under the action of the control component 9, thereby ensuring the operating stability of this embodiment.
[0039] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A warping machine for producing Oxford fabrics, comprising a machine body (1) and a warping beam (2), wherein the warping beam (2) is detachably connected to the machine body (1), and characterized in that: The machine body (1) is provided with a plurality of rotating bodies (3) for driving the warping shaft (2) to rotate, the machine body (1) is provided with a plurality of auxiliary limit frames (4) for keeping the warping shaft (2) and the rotating body (3) coaxial, and the machine body (1) is provided with a clamping mechanism (5) for controlling the rotating body (3) to clamp the warping shaft (2).
2. The warping machine for Oxford fabric production according to claim 1, characterized in that: Auxiliary limiting rings (21) are provided at both ends of the warping beam (2), the inner ring diameter of each auxiliary limiting ring (21) is larger than the diameter of the rotating body (3), each auxiliary limiting ring (21) corresponds to each auxiliary limiting frame (4) one by one, and the auxiliary limiting frame (4) has a plurality of first balls (6) for contacting the auxiliary limiting rings (21).
3. The warping machine for Oxford fabric production according to claim 1, characterized in that: Each of the rotating bodies (3) comprises a rotating shaft (31) and a rotating seat (32) for driving the rotating shaft (31) to rotate; the rotating seat (32) is rotatably connected to the inside of the machine body (1); the rotating shaft (31) passes through the rotating seat (32) and is slidably connected to the rotating seat (32).
4. The warping machine for Oxford fabric production according to claim 3, characterized in that: Both ends of the warping shaft (2) are provided with positioning holes (22), one end of each rotating shaft (31) close to the warping shaft (2) is a conical structure, and each positioning hole (22) has a contact inclined surface (23) for cooperating with the rotating shaft (31).
5. The warping machine for Oxford fabric production according to claim 3, characterized in that: The clamping mechanism (5) comprises a transmission screw (51), a drive motor, and a plurality of push racks (52); the transmission screw (51) is a double-headed screw and is linked to an output shaft of the drive motor; each of the push racks (52) is transmission-connected to the transmission screw (51); and the rotating shaft (31) is linked to the push racks (52).
6. The warping machine for producing Oxford fabric according to claim 5, characterized in that: A linkage body (7) is provided between each of the rotating shafts (31) and the pushing frame (52); the longitudinal section of each of the linkage bodies (7) is a horizontal "I"-shaped structure; and a first card slot (311) and a second card slot (521) for mounting the linkage body (7) are respectively provided on the rotating shaft (31) and the pushing frame (52).
7. The warping machine for Oxford fabric production according to claim 3, characterized in that: Each of the rotating seats (32) has an annular structure on a projection plane of a vertical horizontal plane, and the inner ring of each rotating seat (32) is provided with a plurality of linkage key slots (321), and each of the rotating shafts (31) is provided with a plurality of linkage keys (312), and each of the linkage keys (312) corresponds one-to-one to each of the linkage key slots (321).
8. The warping machine for producing Oxford fabrics according to claim 6, characterized in that: The first clamping groove (311) is formed on the rotating shaft (31), and a gap is left between each radial surface of the linkage body (7) and the first clamping groove (311). The linkage body (7) comprises a linkage plate (71), and the linkage plate (71) is located in the first clamping groove (311). A plurality of second balls (8) are provided between both ends of the linkage plate (71) and the rotating shaft (31).
9. The warping machine for producing Oxford fabric according to claim 1, characterized in that: The machine body (1) is provided with a plurality of control components (9) for controlling the movement of the auxiliary limiting frame (4), and the machine body (1) is provided with a hidden groove (11) for hiding the auxiliary limiting frame (4).
10. The warping machine for producing Oxford fabrics according to claim 5, characterized in that: The transmission screw (51) comprises a rotating rod body (511) and a plurality of threaded rod bodies (512). A plurality of supporting rotating frames (12) are provided in the machine body (1). Each of the supporting rotating frames (12) is located between adjacent threaded rod bodies (512). The rotating rod body (511) is rotatably connected to each of the supporting rotating frames (12).
Citation Information
Patent Citations
Warping machine for jacquard fabric production
CN210711891U