A method of weaving a terry fabric, a terry fabric and a weaving device
By using a movable reed tooth assembly and a drive motor in the beating-up mechanism to control the weft yarn interweaving, the problems of insufficient and highly consistent terry loop formation in the looped fabric are solved, the fabric strength and visual effect are improved, and flexible fabric preparation is achieved.
Patent Information
- Application Number
- CN202311278697.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-28
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2043-09-28
AI Technical Summary
In the existing loop fabric weaving method, the insufficient friction between the warp and weft yarns results in the inability to form some loops, the warp loops cannot be changed, and the high consistency of the loops is difficult to control, resulting in insufficient fabric strength and complex preparation with limited visual effects.
By using a movable reed tooth assembly in the beating-up mechanism to move the weft yarn and the warp yarn to interweave, combined with the preset proportion of weft yarn alternating circulation, pile loops and consolidated tissue structures are formed, and the drive motor is used to control the movement of the reed tooth assembly to adjust the pile loop height and distribution.
It achieves flexible control of the pile height in different areas, improves the warp strength and visual effect of the fabric, avoids interruptions in the weaving process, and simplifies the product change process.
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Figure CN117306072B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of textiles, in particular to a method for weaving terry fabric, terry fabric and weaving device. BACKGROUND
[0002] At present, the weaving of terry fabric adopts the method of terry warp, which is to prepare the wool warp and ground warp into separate weaving shafts, and to realize the effect of wool warp terry by towel organization. This scheme has the following disadvantages: first, when the friction coefficient of the warp and weft yarns is low, the partial terry layer cannot be normally formed due to the weak friction force between the warp and weft yarns; second, when the weaving shaft is prepared and assembled to the loom, the terry warp cannot be changed, that is, all the wool warps on the wool warp shaft must be terry or not terry at the same time, and it is impossible to achieve terry of partial warp on the shaft; third, when the terry of the wool terry on one shaft is terry, the height of the same row of terry along the weft direction must be consistent, and it is impossible to achieve terry of different heights, so that it is difficult to achieve more complex visual effects of the prepared products. In addition, the terry fabric prepared by this method contains a large number of wool warps, and the terry fabric, especially the terry fabric, reduces the terry fabric, especially the terry fabric, and thus cannot bear the products with high strength requirements; when the friction between the warp and weft yarns is weak and the partial terry cannot be normally formed, the length of the warp yarn on the wool warp shaft is inconsistent, which interrupts the entire weaving process; and the terry warp cannot be changed, which makes it difficult to change the product, and the weaving shaft must be replaced when different products are prepared.
[0003] Therefore, how to provide a method for weaving terry fabric, terry fabric and weaving device to facilitate terry of terry fabric and control the height of terry formed in different areas is a technical problem to be solved by the present application. SUMMARY
[0004] In view of the above-mentioned shortcomings or deficiencies of the prior art, the technical problem to be solved by the present application is how to provide a method for weaving terry fabric, terry fabric and weaving device to facilitate terry of terry fabric and control the height of terry formed in different areas.
[0005] To solve the above technical problems, the present application provides a method for weaving terry fabric, comprising:
[0006] After the first weft yarn is introduced into the weaving port, the first weft yarn is moved upward or downward by the multiple movable comb tooth components in the reed of the beating-up mechanism, so that the first weft yarn and the warp yarn are interlaced and form a terry organization structure;
[0007] The second weft yarn is introduced into the cloth fell in turn in an alternating cycle with the first weft yarn according to a preset ratio, so as to be interwoven with the warp yarn and form a consolidated structure, thereby forming the loop fabric.
[0008] Further preferably, the preset ratio is 1:20 to 1:2.
[0009] Further preferably, the consolidated tissue structure is any one of plain weave, twill weave and satin weave or a combination thereof.
[0010] Further preferably, the warp tightness of the loop fabric is 55-70%, and the weft tightness is 55-70%.
[0011] Further preferably, the moving speed of the reed tooth component is 2 to 10 cm / s.
[0012] Further preferably, the reed tooth assembly includes: a reed tooth component movably connected to the steel reed and having a shifting portion, a driving component for driving the corresponding reed tooth component to slide up and down, and a reset assembly connected to the steel reed and the reed tooth component at opposite ends; the shifting portion is used to follow the movement of the reed tooth component and shift the first weft yarn introduced from the weaving opening, so that the first weft yarn and the warp yarn of the loop fabric are interwoven with each other, and under the action of the reset assembly, loops are formed between two adjacent warp yarns during the process of resetting to the initial position, so that a loop fabric with weft yarn loops is formed after the reed tooth assembly performs the beating-up process on the first weft yarn.
[0013] Further preferably, the shifting portion is a protrusion formed axially outward of the reed tooth component; wherein, the protrusions in each reed tooth component are located in the same horizontal plane; the reed at least includes: a first reed beam connected to the reset assembly, a second reed beam, and a limiting hole opened on the second reed beam and used for passing the corresponding reed tooth component, wherein the limiting holes correspond one to one to the number of the reed tooth components.
[0014] Further preferably, the cross-sectional shape of the limiting hole is consistent with the cross-sectional shape of the reed tooth component.
[0015] Further preferably, the protrusion is an arc-shaped protrusion.
[0016] Further preferably, the upper and lower sides of the protrusion have symmetrically arranged and inwardly concave concave parts.
[0017] Further preferably, the height of any one of the pile loops is greater than the circumferential length of the outer region of the shifting portion exposed to the reed dent component.
[0018] Further preferably, the reset assembly includes: a spring having one end connected to the first reed beam of the reed and the other end connected to the second reed beam.
[0019] Further preferably, the driving component includes: a driving wheel, a driving motor for driving the driving wheel to rotate, and a driving rope with one end wound around the driving wheel and the other end connected to the reed tooth component; wherein, the driving rope causes the reed tooth component to slide downward under the drive of the driving wheel, and rebounds to its initial position under the action of the reset assembly after losing the drive of the driving wheel.
[0020] Further preferably, the driving component also includes: a limiting plate arranged between the driving wheel and the reed and located below the reed, wherein the limiting plate is provided with a plurality of limiting through holes for passing the corresponding driving ropes respectively; the center of the limiting through hole is coaxially arranged with the central axis of the corresponding reed tooth component.
[0021] Further preferably, the first weft yarn used for loop formation is a wool weft, and the second weft yarn not used for loop formation is a ground weft.
[0022] The present application also provides a loop fabric for weaving using the aforementioned loop fabric weaving method, wherein the consolidated weave structure is any one of plain, twill, and satin, or a combination thereof; the warp tightness of the loop fabric is 55-70%, and the weft tightness is 55-70%.
[0023] The present application also provides a weaving device for weaving a loop fabric using the weaving method described above, comprising: a weft insertion device for introducing the first weft yarn and the second weft yarn; a weft storage device for storing the first weft yarn and the second weft yarn; and a beating mechanism for controlling the beating of the first weft yarn and the second weft yarn.
[0024] The present application provides a loop fabric weaving method, a loop fabric, and a weaving device, which can facilitate the looping of the loop fabric and control the height of the loops formed in different areas. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Other features, objects and advantages of the present application will become more apparent upon reading the detailed description of non-limiting embodiments made with reference to the following drawings:
[0026] Figure 1 : Schematic diagram of the cross-sectional structure of the looped fabric in the first embodiment of the present invention Figure 1 ;
[0027] Figure 2 : Schematic diagram of the cross-sectional structure of the looped fabric in the first embodiment of the present invention Figure 2 ;
[0028] Figure 3 : Schematic diagram of the cross-sectional structure of the looped fabric in the first embodiment of the present invention Figure 3 ;
[0029] Figure 4 : A schematic structural diagram of a weaving device for loop fabric in a first embodiment of the present invention;
[0030] Figure 5 : A schematic structural diagram of a reed tooth component in a first embodiment of the present invention;
[0031] Figure 6 : A schematic structural diagram of a reed tooth component in a second embodiment of the present invention;
[0032] Figure 7 : A schematic structural diagram of a looped fabric according to a fourth embodiment of the present invention;
[0033] Figure numerals: reed tooth component 1, reset assembly 2, first reed beam 3, second reed beam 4, toggle portion 5, recessed portion 51, drive wheel 6, drive rope 7, limit plate 8, first weft yarn 9, interweaving area 91, loop area 92, interweaving area 93, interweaving area 91a, loop area 92a, interweaving area 93a, second weft yarn 10, engaging portion 15, warp yarn 20. DETAILED DESCRIPTION
[0034] The concept, specific structure and technical effects of the present invention will be further described below in conjunction with the accompanying drawings to fully understand the purpose, characteristics and effects of the present invention.
[0035] Example 1
[0036] like Figures 1 to 5 As shown, a first embodiment of the present invention provides a weaving method of a loop fabric, comprising:
[0037] Step 1: After the first weft yarn 9 is introduced into the weaving fell, the first weft yarn 9 is moved upward or downward by a plurality of movable reed tooth assemblies in the reed of the beating-up mechanism, so that the first weft yarn 9 and the warp yarn 20 are interwoven with each other to form a terry weave structure;
[0038] Step 2: The second weft yarn 10 is introduced into the cloth fell in turn in a preset ratio and alternately cyclically with the first weft yarn 9 to interweave with the warp yarn and form a consolidated structure, thereby forming a looped fabric.
[0039] As can be seen from the foregoing, the weaving method of the looped fabric provided in this embodiment allows for arbitrary control of the height of any loop formed by the first weft yarn 9 in the looped fabric by controlling the multiple reed dent assemblies in the beating-up mechanism to move the first weft yarn 9 upward or downward. Furthermore, the second weft yarn 10 constituting the ground weft effectively consolidates the warp yarns when interwoven with the warp yarns, thereby achieving independent looping of the first weft yarn 9 in different regions and forming weft loops of the same height or / and different heights, thereby creating a complex visual effect. For example, a single weft can contain a single loop or multiple loops.
[0040] More preferably, the preset ratio is 1:20 to 1:2. By weaving in an alternating cycle in which the first weft yarn 9 is smaller than the second weft yarn 10, that is, in the same cycle unit, the number of ground wefts is greater than the hair wefts, it is ensured that the looped fabric has sufficient strength in both the weft and warp directions.
[0041] Further preferably, in the above-mentioned units constituting the alternating cycle, the terry weave structure comprises: a terry area and an interwoven area; wherein the interwoven area at least comprises sequentially adjacent warp weave points and weft weave points.
[0042] Further preferably, the consolidated tissue structure is any one of plain weave, twill weave and satin weave or a combination thereof.
[0043] Further preferably, the warp tightness of the loop fabric is 55-70%, and the weft tightness is 55-70%.
[0044] Furthermore, preferably, the moving speed of the reed tooth component 1 is 2 cm to 10 cm / s. This moving speed ensures that the weft yarn looping process is slow and gentle, thereby avoiding discontinuity due to weft yarn breakage during the weaving process.
[0045] Further preferably, the above-mentioned reed tooth assembly includes: a reed tooth component 1 having a shifting portion 5, a driving component for driving the corresponding reed tooth component 1 to slide up and down, and a reset component 2 respectively connected to the reed and the reed tooth component 1 at opposite ends; the shifting portion 5 is used to follow the movement of the reed tooth component 1 and shift the first weft yarn 9 introduced from the weaving opening, so that the first weft yarn 9 is interwoven with the warp yarn of the loop fabric, and under the action of the reset component 2, in the process of resetting to the initial position, loops are formed between two adjacent warp yarns, so that after the reed tooth component performs the beating-up process on the first weft yarn 9, a loop fabric with weft yarn loops is formed.
[0046] From the above, it can be seen that by driving the reed dent assembly, the shifting portion 5 of the reed dent component 1 in the reed dent assembly can move up and down independently. After the first weft yarn 9 used to form the wool weft is shifted to a preset height, the reed dent assembly's beating action interweaves it with two adjacent warp yarns, conveniently forming a looped fabric with weft loops. Furthermore, because the reed dent component 1 in the reed dent assembly operates independently, independent looping of the first weft yarn 9 is achieved in different areas, and weft loops of the same height and / or different heights can be formed, creating a complex visual effect. For example, a wool weft can contain one loop or multiple loops.
[0047] Moreover, after the first weft yarn 9 is introduced into the cloth fell, its free and weak external force can be used to drive the active movement of the paddle part 5 through the reed tooth component 1, and cooperate with the beating action of the reed on the first weft yarn 9, so as to quickly realize the displacement and deformation of all areas of the weft yarn located in the cloth fell, thereby accurately controlling the looping of the weft yarn in different areas to ensure that all warp yarns can contribute sufficient strength, thereby improving the tensile strength of the formed looped fabric in the warp direction.
[0048] In addition, it controls the weft yarn looping by moving the shifting portion 5 on the reed tooth component 1 movably connected to the reed. For example, the driving rope 7 is driven by the rotation of the driving motor to realize the downward movement of the shifting portion 5 on the reed tooth component 1, thereby realizing the downward looping of the first weft yarn 9. By the reverse rotation of the driving motor, the driving rope 7 is released, so that the shifting portion 5 on the reed tooth component 1 moves upward under the resetting action of the resetting component 2, thereby realizing the upward looping of the first weft yarn 9, and the height of the corresponding pile loop is controlled according to the number of revolutions of the driving motor in the forward or reverse direction, so that the reed tooth component 1 covering the entire width of the looped fabric can form weft yarn loops in any area, and the height of any pile loop is adjustable.
[0049] Furthermore, the looped fabric with terry loops prepared through the above steps can also be made to reflect different light in different areas of the looped fabric by controlling the height and distribution of the loops within the fabric. This allows for a textured fabric with features that extend across the width of the fabric, particularly across the entire width of the fabric, without the need for a large jacquard pattern. Furthermore, the looped fabric in this embodiment can preferably be a woven fabric.
[0050] In detail, the above step 1 specifically includes the following steps:
[0051] First, the warp yarn is lifted according to the designed fabric structure diagram, and then the first weft yarn 9 is introduced into the fell between the upper and lower warp yarns. The upper warp yarn returns to the heddle flat position and stops moving when the warp yarn touches the first weft yarn 9.
[0052] Secondly, the reed dent component 1 located between two adjacent warp yarns in the loop forming area on the upper surface of the looped fabric is driven downward by the corresponding drive motor, while the other reed dent components 1 remain stationary.
[0053] Then, the reed in the beating-up mechanism is slowly driven into the cloth-fell. When the activating portion 5 of the reed tooth component 1 touches the first weft yarn 9, the beating-up movement stops. If the activating portion 5 of the reed tooth component 1 that has already moved down is located below the first weft yarn 9 and the remaining activating portions 5 are located above the weft yarns, the reed tooth component 1 that has already moved down is driven upward by the reset assembly 2 after the driving motor rotates in the reverse direction. The activating portion 5 connected to the reed tooth component 1 lifts the first weft yarn 9 upward to form a pile loop. The number of reverse rotations of the driving motor determines the height of the pile loop formed by the first weft yarn 9 at this point.
[0054] and / or, such as Figure 1 As shown, if the first weft yarn 9 is looped in a partial area of the lower surface of the looped fabric finally formed, the reed tooth component 1 located between the two adjacent warp yarns corresponding to the partial area is moved downward by the corresponding driving motor, that is, when the shifting portion 5 of the corresponding reed tooth component 1 is located above the partial area, the shifting portion 5 of the reed tooth component 1 drives the corresponding first weft yarn 9 to move downward and form a loop downward under the action of the corresponding driving motor, thereby forming a loop in which the number of rotations of the driving motor determines the height of the loop formed by the first weft yarn 9 here.
[0055] Next, the reed continues to move toward the fell and beats the first weft yarn 9 into the fell. Then, the reed tooth component 1 of the shifting part 5 in the terry loop above the looped fabric moves down slightly, and the reed tooth component 1 of the shifting part 5 in the terry loop on the upper layer of the looped fabric moves up slightly. The reed then moves to separate the shifting part 5 from the terry loop to form a terry loop structure. Then, step two is entered, and the warp yarn is lifted and woven into the next second weft yarn 10 according to the designed fabric structure diagram, and they are interwoven with each other to form a consolidated structure.
[0056] For example, for the same weft, the order of looping is set to be looped in order of distance from the weft storage device, that is, the loops farther away from the weft storage device are looped first. This operation ensures that the first weft yarn 9 can be smoothly pulled out by the weft insertion device and reduces the friction between the first weft yarn 9 and the moving part 5.
[0057] Because the weft yarn at the weft loop is higher and lower than the loop fabric surface and cannot contact the warp yarn here, the two consecutive weave points at either end of any loop along the direction of the first weft yarn 9 are not warp weave points or weft weave points at the same time.
[0058] like Figure 2As shown, when the terry weave structure is looped from the upper surface of the loop fabric, at the first end thereof along the first weft direction and constituting the interwoven area 91, the first weave point adjacent to the terry area 92 is a warp weave point, while the second weave point adjacent to the terry area 92 is a weft weave point. At the second end of the terry weave structure along the first weft direction and constituting the interwoven area 93, the first weave point adjacent to the terry area 92 is a warp weave point, while the second weave point adjacent to the terry area 92 is a weft weave point.
[0059] like Figure 3 As shown, when the terry structure is looped from the lower surface of the looped fabric, the terry area 92a formed thereby has the first adjacent tissue point along the first weft direction and in the first end of the interwoven area 91a as a weft tissue point and the second adjacent tissue point as a warp tissue point, the first adjacent tissue point along the first weft direction and in the second end of the interwoven area 94b as a weft tissue point and the second adjacent tissue point as a warp tissue point, and the first adjacent tissue point in the second interwoven area along the first weft direction as a weft tissue point and the second adjacent tissue point as a warp tissue point.
[0060] The regular pattern of warp and weft points creates loops, ensuring good bonding at both ends and making them less susceptible to deformation under external forces. Furthermore, along the warp direction of the looped fabric, the two adjacent weft yarns of any wool weft are both ground wefts. The interweaving of the ground wefts with the warp yarns further ensures excellent bonding of the wool wefts.
[0061] Further preferably, the above-mentioned toggle portion 5 is a protrusion formed axially outward of the reed tooth component 1; wherein, the protrusions in each reed tooth component are located in the same horizontal plane; the reed at least includes: a first reed beam 3 connected to the reset component 2, a second reed beam 4, and a limiting hole opened on the second reed beam 4 and used for passing the corresponding reed tooth component 1, wherein the limiting holes correspond to the number of reed tooth components 1.
[0062] Further preferably, in order to meet the design and activation requirements in actual applications, the raised portion is an arc-shaped raised portion.
[0063] Further preferably, as Figure 4 As shown, in order to facilitate the moving portion 5 to reliably move the first weft yarn 9 from two different directions to prevent the first weft yarn 9 from falling off, the upper and lower sides of the protrusion in this embodiment have symmetrically arranged and concave concave portions 51.
[0064] Further preferably, the reset component 2 is a spring having one end connected to the first reed beam 3 of the reed and the other end connected to the second reed beam 4 .
[0065] Further preferably, the driving component includes: a driving wheel 6, a driving motor for driving the driving wheel 6 to rotate, and a driving rope 7 having one end wound around the driving wheel 6 and the other end connected to the reed component 1; wherein, the driving rope 7, driven by the driving wheel 6, causes the reed component 1 to slide downward, and after losing the drive of the driving wheel 6, the reed component 1 rebounds to its initial position under the action of the reset assembly 2. It should be noted that the number of driving motors in this embodiment corresponds one-to-one to the number of driving wheels 6, and the motors can be installed in the driving wheel 6 in the form of built-in motors.
[0066] In addition, this embodiment uses wool weft as the weft yarn for looping, which can overcome the defects of some loops not being able to form normally due to the weak friction between the warp and weft yarns, the warp yarn used to form the loops not being able to achieve partial looping, the height of the loops formed by the same warp yarn must be kept consistent, and if the wool weft constituting the loops on the same weaving axis cannot be looped smoothly, the length will be inconsistent with other warp yarns, which may easily lead to interruption of the weaving process and low strength.
[0067] Further preferably, the above-mentioned driving component also includes: a limiting plate 8 arranged between the driving wheel 6 and the reed and located below the reed, wherein the limiting plate 8 is provided with a plurality of limiting through holes (not shown in the figure) for passing the corresponding driving ropes 7 respectively; the center of the limiting through hole is coaxially arranged with the central axis of the corresponding reed tooth component 1.
[0068] Example 2
[0069] like Figure 6 As shown, the second embodiment of the present invention provides a weaving method for looped fabrics. This embodiment is a further improvement of the above-mentioned embodiment 1. The improvement is that a flexible snap-fitting portion 15 is provided on the reed tooth component 1 in this embodiment for snapping into the limiting through hole so as to disengage from the limiting through hole under the action of the driving component or the resetting action of the resetting component.
[0070] By the mutual cooperation of the engaging portion 15 and the limiting through hole, it can be ensured that the driving portions of each reed tooth component are located at the same height as much as possible in the initial state, so as to avoid the unevenness of the driving portion due to the difference in the spring coefficient, thereby better controlling the formation and height of the pile loop.
[0071] Specifically, the engaging portion 15 in this embodiment is preferably made of rubber or an elastic telescopic key.
[0072] Example 3
[0073] This embodiment also provides a weaving device for weaving a loop fabric according to the weaving method of the above-mentioned embodiment 1, which includes: a weft insertion device for introducing a first weft yarn and a second weft yarn; a weft storage device for storing the first weft yarn and the second weft yarn; and a weft beating mechanism for controlling the beating of the first weft yarn and the second weft yarn according to the above-mentioned embodiment 1.
[0074] Example 4
[0075] This embodiment further provides a loop fabric, which is woven by the loop fabric weaving method of the first embodiment or the weaving device of the second embodiment.
[0076] Further preferably, the loop fabric in this embodiment is preferably a woven belt, which can better improve the strength value of the woven belt, especially the warp strength value, so as to withstand products with higher strength requirements.
[0077] The loop fabric in this embodiment can be a single-layer loop fabric, a double-layer loop fabric, or a loop fabric with three or more layers. Figure 7 As shown, this embodiment is only described by taking the loop fabric as a double-layer fabric as an example, and the upper and lower surfaces are respectively formed with terry loops.
[0078] Further preferably, the looped fabric in this embodiment further includes knot yarns for connecting the double-layer fabric, for example, part of the warp yarns or the second weft yarns shuttle between the upper and lower layers of fabric to connect the double-layer fabric into a whole.
[0079] Example 5
[0080] This embodiment also provides a loop fabric, which is a further improvement of the loop fabric involved in the above-mentioned embodiment 1. The improvement is that the loop fabric in this embodiment also includes a hydrophobic coating for coating on the upper and lower sides of the loop fabric, so that the loop fabric can be breathable while also having a good waterproof effect.
[0081] The above embodiments are intended to illustrate the technical solutions of the present invention and are not intended to limit the present invention. The present invention is described in detail with reference to the preferred embodiments only. It should be understood by those skilled in the art that the technical solutions of the present invention may be modified or replaced with equivalents without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or equivalents shall be included in the scope of the claims of the present invention.
Claims
1. A method for weaving a loop fabric, characterized in that: include: After the first weft yarn is introduced into the cloth fell, the first weft yarn is moved upward or downward by a plurality of movable reed tooth assemblies in the reed of the beating-up mechanism, so that the first weft yarn is interwoven with the warp yarn to form a terry weave structure; introducing the second weft yarn into the fell in alternating cycles with the first weft yarn according to a preset ratio, so as to interweave with the warp yarn and form a consolidated structure, thereby forming the loop fabric; In the unit constituting the alternating cycle, the terry weave structure includes: a terry area and an interwoven area; wherein the interwoven area at least includes sequentially adjacent warp weave points and weft weave points; The reed tooth assembly includes: a reed tooth component movably connected to the steel reed and having a toggle portion, a driving component for driving the corresponding reed tooth component to slide up and down, and a reset component with opposite ends respectively connected to the steel reed and the reed tooth component; The shifting portion is used to move with the reed tooth component and shift the first weft yarn introduced from the cloth fell, so that the first weft yarn is interwoven with the warp yarns of the loop fabric, and under the action of the resetting component, in the process of returning to the initial position, loops are formed between two adjacent warp yarns, so that after the reed tooth component beats up the first weft yarn, a loop fabric with weft yarn loops is formed; The shifting portion is a protrusion formed axially outward of the reed tooth component; The raised portion is an arc-shaped raised portion.
2. The weaving method of a loop fabric according to claim 1, characterized in that: The preset ratio is 1:20 to 1:
2.
3. The weaving method of a loop fabric according to claim 1, characterized in that: The consolidated tissue structure is any one of plain, twill and satin or a combination thereof; the warp tightness of the looped fabric is 55-70%, and the weft tightness is 55-70%.
4. The weaving method of a loop fabric according to claim 1, characterized in that: The raised portions in each reed tooth component are located in the same horizontal plane; the steel reed at least includes: a first reed beam connected to the reset assembly, a second reed beam, and a limiting hole opened on the second reed beam and used for passing the corresponding reed tooth component, wherein the limiting holes correspond to the number of the reed tooth components one by one; the upper and lower sides of the raised portion have symmetrically arranged and inwardly concave concave portions; the reset assembly includes: a spring connected to the first reed beam of the steel reed at one end and to the reed tooth component at the other end.
5. The weaving method of a loop fabric according to claim 4, characterized in that: The driving component includes: a driving wheel, a driving motor for driving the driving wheel to rotate, and a driving rope with one end wound around the driving wheel and the other end connected to the reed tooth component; wherein, the driving rope causes the reed tooth component to slide downward under the drive of the driving wheel, and rebounds to its initial position under the action of the reset assembly after losing the drive of the driving wheel.
6. The weaving method of a loop fabric according to claim 5, characterized in that: The driving component also includes: a limiting plate arranged between the driving wheel and the reed and located below the reed, wherein the limiting plate is provided with a plurality of limiting through holes for passing the corresponding driving ropes respectively; the center of the limiting through hole is coaxially arranged with the central axis of the corresponding reed tooth component.
7. The weaving method of a loop fabric according to claim 1, characterized in that: The moving speed of the reed tooth component is 2 to 10 cm / s.
8. A loop fabric, characterized in that: Used for weaving by the loop fabric weaving method according to any one of claims 1 to 7.
9. A weaving device, characterized in that: A weaving method for a loop fabric according to any one of claims 1 to 7 is used for weaving, comprising: a weft insertion device for introducing the first weft yarn and the second weft yarn; a weft storage device for storing the first weft yarn and the second weft yarn; and the beating mechanism for controlling the beating of the first weft yarn and the second weft yarn.
Citation Information
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