1. Field of the Invention
The present invention relates to a bias fabric manufacturing apparatus, and more particularly to a seamless bias fabric manufacturing apparatus using cylindrical fabric by which bias fabric can be manufactured by cutting fabric woven to have a tubular shape.
2. Description of the Prior Art
General fabric C (see
Meanwhile, bias fabric V (see
Methods of manufacturing bias fabric according to the related art will be described briefly. The methods include a first method of weaving plane weave fabric, and manufacturing bias fabric by pulling opposite sides of the woven plain weave fabric in opposite directions to obliquely change the weaving angle, a second method of manufacturing bias fabric by obliquely cutting plain wave fabric, and a final method of manufacturing bias fabric by obliquely disposing wefts with respect to warps directly by a weaving machine.
However, according to the first method, since bias fabric is manufactured by weaving plain weave fabric by using a weaving machine and providing an additional angle, productivity is lowered severely and manufacturing costs increase.
According to the second method, since the length of the biased fabric is limited and the cut bias fabric need to be connected to each other to obtain a desired length, connecting portions are formed and are apt to be broken.
Further, according to the first and second methods, since the plain weave fabric is biased by a physical force, physical characteristics such as tensile strength lower and high tensions and high durability cannot be sufficiently achieved, quality of the bias fabric lowers.
Finally, the third method has an advantage of solving the problems of the first and second methods, but since a new weaving machine should be manufactured to obtain bias fabric, costs for the weaving machine are generated.
Thus, development of an apparatus for providing lower costs, high productivity, and manufacturing bias fabric having no connecting portions is urgently required.
Accordingly, the present invention has been made to solve the above-mentioned problems occurring in the prior art, and an aspect of the present invention is to provide a seamless bias fabric manufacturing apparatus using tubular fabric which includes a guide means for guiding tubular fabric at a biasing angle, a cutting means for cutting the tubular fabric in an inclined direction with respect to a progress direction of the tubular fabric guided by the guide means, and a winding means for continuously supplying the tubular fabric through the guide means while rotating the tubular fabric and winding the bias fabric cut by the cutting means, so that low costs and high productivity can be provided without causing connecting portions, and bias fabric having various biasing angles can be produced.
In order to accomplish this object, there is provided a seamless bias fabric manufacturing apparatus using tubular fabric, the apparatus including: a guide means having a pair of guide bars for guiding tubular fabric woven such that an angle between a warp and a weft is 90 degrees; a cutting means having a disk-shaped cutting blade for cutting one radial side of the tubular fabric in an inclined direction with respect to a progress direction of the tubular fabric guide by the guide means; and a winding means having a winding roller for continuously guiding the tubular fabric through the guide means while rotating the tubular fabric and winding the bias fabric cut by the cutting means.
As described above, the seamless bias fabric manufacturing apparatus using tubular fabric includes a guide means for guiding tubular fabric at a biasing angle, a cutting means for cutting the tubular fabric in an inclined direction with respect to a progress direction of the tubular fabric guided by the guide means, and a winding means for continuously supplying the tubular fabric through the guide means while rotating the tubular fabric and winding the bias fabric cut by the cutting means, so that low costs and high productivity can be provided without causing connecting portions, and bias fabric having various biasing angles can be continuously produced.
The above and other objects, features and advantages of the present invention will be more apparent from the following detailed description taken in conjunction with the accompanying drawings, in which:
Hereinafter, a bias fabric manufacturing apparatus using tubular fabric according to an exemplary embodiment of the present invention will be described with reference to the accompanying drawings.
Referring to
First, the winding means 110 includes a winding roller 112 disposed horizontally. As shown, the winding roller 112 is rotatably disposed on a frame F, and is driven by a winding roller driving motor 114. Preferably, guide rollers 116 spaced apart from each other vertically may be provided on a front surface of the winding roller 114.
The bias fabric V cut by the cutting means 160 is wound on the winding roller 114. The winding roller 114 continuously supplies the tubular fabric C toward the guide means 120. A guide means 120 and the cutting means 160 are disposed on a front side of the winding means 110 having the winding roller 112.
Referring to
The tubular fabric C is mounted on the pair of guide bars 122, and the tubular fabric C mounted on the pair of guide bars 122 are spread out by the guide bars 122 to have a substantially elliptical cross-section shape. The tubular fabric C guided along the guide bars 122 are guided while being rotated to one side, in which case since the bias fabric V cut by the cutting means 160 are wound on the winding roller 112 forming an oblique angle with the guide bars 122 along a rotating direction of the winding roller 112 and the tubular fabric C is guided obliquely with respect to the winding roller 112, the tubular fabric C is rotated to one side while being guided along the guide bars 122.
Meanwhile, the guide means 120 further includes a first angle adjusting unit 124 for rotating the guide bars 122, and a width adjusting unit 142 for adjusting a width between the guide bars 122. Here, the first angle adjusting unit 124 rotates the guide bars 122 to obtain a desired biasing angle and the width adjusting unit 142 adjusts a width between the guide bars 122 to guide the tubular fabric C while the tubular fabric C is easily spread out, and the first angle adjusting unit 124 and the width adjusting unit 142 are disposed at ends of the guide bars 122 disposed adjacent to the winding means 110.
As shown, the first angle adjusting unit 124 includes a first fixing plate 126 having a flat plate shape and disposed at ends of the guide bars 122, and a first rotary plate 128 having a flat plate shape. Then, ends of the guide bars 122 are rotatably supported on an upper surface of the first rotary plate 128, and bearings 130 for rotatably supporting the guide bars 122 are mounted onto an upper surface of the first rotary plate 128.
Meanwhile, the first rotary plate 128 is rotatably mounted to the first fixing plate 126. Thereto, a rotation boss 132 protrudes from the center of a lower surface of the first rotary plate 128, and a rotation hole 134 into which the rotation boss 132 is inserted passes through the first fixing plate 126. A first angle adjusting slot 136 and a first fixing hole 138 are formed in the first rotary plate 128 and the first fixing plate 126 to control a rotation angle of the first rotary plate 128. The first angle adjusting slot 136 provides a curvature having an arc shape, the center of which is the rotation boss 132 so as not to interfere with the rotation boss 132, and the first fixing hole 138 is formed to face the first angle adjusting slot 136 so as not to interfere with the rotation hole 134. A first fixing bolt 140 for fixing the first rotary plate 128 to the first fixing plate 126 is engaged with the first angle adjusting slot 136 and the first fixing hole 138. That is, after an angle of the first rotary plate 128 is adjusted by unfastening the first fixing bolt 140, the first fixing bolt 140 is engaged first, in which case the first fixing bolt 140 passes through the first angle adjusting slot 136 to press and fix the first rotary plate 128 toward the first fixing plate 126 while being engaged with the first fixing hole 126. Then, a female screw engaged with a male screw formed in the first fixing bolt 140 is formed on an inner peripheral surface of the first fixing hole 126.
Although the first fixing bolt 140 is used to fix the first rotary plate 128 in the specification, it will be appreciated that fixing of the first rotary plate 128 is not limited to the first fixing bolt 140.
Meanwhile, the width adjusting unit 142 includes a screw shaft 144 disposed at a lower portion of the first fixing plate 126 and extending along a lengthwise direction of the rotary center axis of the winding roller 112. The screw shafts 144 are rotatably disposed on a frame F like the winding roller 112. A sliding block 146 with which a screw shaft 144 is engaged is mounted at a lower portion of the first fixing plate 126, and it is apparent that a female screw engaged with a male screw formed in the screw shaft 144 is formed in the sliding block 146 such that the screw 144 is guided along a lengthwise direction of the screw shaft 144 as the screw 144 is rotated. Operation handles 148 for rotating the screw shafts 144 are mounted to the screw shafts 144, respectively.
Meanwhile, width adjusting guide rails 150 opposite ends of each of which are fixed onto the frame F are disposed on front surfaces and rear surfaces of the screw shafts 144. The width adjusting guide rails 150 extend from one end of one of the screw shafts 144 to an opposite end of the other screw shaft 144 along a lengthwise direction of the screw shaft 144, and a width adjusting guide block 152 slidably fitted with the width adjusting guide rails 150 while not interfering with the sliding block 146 is mounted to a lower portion of the first fixing plate 126.
Referring back to
Meanwhile, the disk-shaped cutting blade 162 is surrounded by a housing 164 located below the disk-shaped cutting blade 162 and from which the disk-shaped cutting blade 162 is exposed, and a cutting blade driving motor 166 connected to the disk-shaped cutting blade 162 to rotate the disk-shaped cutting blade 162 is mounted to one side of the housing 164.
The cutting means 160 further includes a cutting location adjusting unit 168 for adjusting a cutting location of the disk-shaped cutting blade 162. The cutting location adjusting unit 168 includes a pair of cutting location adjusting guide rails 170 disposed above the housing 164 to be spaced apart from each other and horizontally extending along a rotary center axis direction of the disk-shaped cutting blade 162 such that opposite ends thereof are fixed to the frame F, and a cutting location adjusting guide block 172 slidably fitted with the cutting location adjusting guide rail 170. The cutting location adjusting guide block 172 is integrally formed with an upper portion of the housing 164, and a stop bolt 174 engaged with the cutting location guide block 172 to press and fix the cutting location adjusting guide rail 170 is engaged with an upper portion of the cutting location guide block 172.
Meanwhile, the bias fabric manufacturing apparatus 100 according to the present invention further includes a blowing means 180 for supplying air between sheets of the tubular fabric C such that the supplied tubular fabric C is easily cut and the cut bias fabric V is easily wound.
Referring to
The second angle adjusting unit 187 includes a second fixing plate 188 fixedly mounted to the frame F disposed so as not to interfere with the screw shaft 144 and the width adjusting guide rail 150 between the pair of guide bars 122, and a second rotary plate 190 rotatably mounted to the second fixing plate 188 while the blowing nozzle 184 is mounted to an upper portion thereof. A second angle adjusting slot 192 and a second fixing hole 194 are formed in the second rotary plate 190 and the second fixing plate 188 to control a rotation angle of the second rotary plate 190. The second angle adjusting slot 192 is provided with a curvature having an arc shape, and the second fixing hole 194 is formed to face the second angle adjusting slot 192. A second fixing bolt 196 for fixing the second rotary plate 190 to the second fixing plate 188 is engaged with the second angle adjusting slot 192 and the second fixing hole 194. That is, after an angle of the second rotary plate 190 is adjusted by unfastening the second fixing bolt 196, the second fixing bolt 196 is engaged first, in which case the second fixing bolt 196 passes through the second angle adjusting slot 192 to press and fix the second rotary plate 190 toward the second fixing plate 194 while being engaged with the second fixing hole 188. Then, a female screw engaged with a male screw formed in the second fixing bolt 196 is formed on an inner peripheral surface of the second fixing hole 194.
The blowing nozzle 184 disposed in this way is disposed between ends of the pair of guide bars 122 to supply air through pieces of the tubular fabric C guided by the guide bars 122.
Hereinafter, an in-use state of the seamless bias fabric manufacturing apparatus 100 using the tubular fabric formed as described above will be briefly described.
In order to manufacture the bias fabric V by using the bias fabric manufacturing apparatus 100 according to the present invention, the tubular fabric C woven such that an angle between a warp and a weft is 90 degrees as in
If the above-described tubular fabric C is mounted, the bias fabric V is manufactured by operating the winding roller 112, in which case the tubular fabric C is rotated while being guided toward the disk-shaped cutting blade 162 along the guide bars 122 if the winding roller 112 is rotated, the bias fabric V is manufactured by cutting one radial side of the tubular fabric C guided while the disk-shaped cutting blade 162 is rotated, and the manufactured bias fabric V is wounded around the winding roller 112.
That is, as shown in
Although the exemplary embodiment of the present invention has been described, it will be appreciated by those skilled in the art that the present invention may be variously modified and changed without departing from the spirit of the present invention claimed in the claims.
Number | Date | Country | Kind |
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10-2011-0090503 | Sep 2011 | KR | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/KR2011/006602 | 9/7/2011 | WO | 00 | 3/6/2014 |