This application is a national stage filing of International Patent Application No. PCT/GR2014/000040 filed 17 Jul. 2014, which claims priority to Greek Patent Application No. 20130100423 filed 18 Jul. 2013, each of which is hereby incorporated by reference in its entirety.
The present invention pertains generally to textile processing and more particularly to an apparatus for stabilizing spirality of stitched seams.
The invention relates to an apparatus for processing tubular fabric, in its final stage of processing (textile finishing) before going to garment manufacturing units to become a ready to use product (t-shirts, trousers, dresses, etc.). The invention is used in the final line processing (finishing) of fabric, where it goes after the dye on dyeing machines and before cutting into pieces that go on to be sewed according to the garment design.
Until recently the reduction of spirality effect on the fabric, which leads to displacement of the seams on finished fabrics (such as t-shirts, trousers, etc.) that is observed after washing and drying, was achieved by using various types of machinery that perform under the principle of “rollers move fabric”. However, the anticipated result of minimizing the spirality of the knitting was not achieved because the circular cross-section of the fabric produced by the circular knitting machine does not allow any additional management or accurate control of fabric spirality.
The problems that occurred by the erroneous management of fabric were mainly failures in the final result, with the final levels of remaining spirality being above the generally acceptable level of 4-6%. As an example, it was a frequent phenomenon during the wash of a t-shirt to have displacement of seams (B) from their initial place (A) (see
The application of the present invention is to decrease and accurately stabilize, within generally acceptable levels, the spirality of tubular knitted fabric. Spirality errors occur mainly because of the working way of knitting in circular knitting machines, but also because of the spirality of fabric during its processing at dyeing and finishing stages. The present invention solves the problem of fabric management in such a way that the spirality of knitting returns to within the desirable limits of 4-6%.
The advantage of this invention is the external transmission of rotation, with the use of a removable internal mechanism (removable capsule), which is placed in the interior of an external mechanism, and concentric with an exterior ring. The internal mechanism is retained in its place by the magnetic field created by the opposite polarities of permanent magnets located both on the external mechanism and on the internal mechanism. These magnets create the traction power that retains the internal mechanism in its place. After the internal mechanism is placed, fabric passes between the internal and external mechanisms, in such a way that the internal mechanism is found in the internal diameter of the fabric. Henceforth the fabric is retained between the internal mechanism and the external mechanism, and therefore can be turned depending on the movement of a movable ring of the external mechanism. The direction and speed of motion is suitable to achieve fabric passage without wears and rebound of fabric spirality to within the desirable limits.
The fabric management with the use of this invention is particularly simple. First the operator has to calculate spirality with a simple test. In order to calculate the initial fabric spirality, the operator uses a piece of fabric. He creates on the piece of fabric, with a marker pen, a rectangular geometric drawing or a cross. Afterwards, he does the wash and the dry of the piece of fabric. By measuring the vertical divergence of geometric drawing or cross and with reduction in one hundred meters length of fabric, he calculates the knitting spirality as a percentage. Then the fabric, according to its internal diameter, is placed in the machine. Before that the mechanism regulation with the required diameter must be performed. Then the operator passes the fabric between the external and the internal mechanism (between the rollers that each mechanism allocates for this reason). After the fabric placement, operator by using a touch screen, inputs the essential data (fabric width, direction of rotation and percent rate of spirality that resulted from the previous test). The whole machine operation is fully automated with the use of a Programmable Logic Controller (PLC) based on the data that have been inputted by the use of a touch screen. Rotational motion of the external mechanism is driven via a belt drive through a system of an electric motor with a reduction gear controlled by an inverter. The rotation of the movable ring of the external mechanism transmits the motion in a magnetic way to the internal mechanism (capsule) that is found in the inner side of the tubular knitted fabric and which moves the tubular knitted fabric in such a way as to minimize the spirality effect. The removable capsule is turned together with the movable ring because of the opposing magnetic fields between the two mechanisms, which forces the capsule to turn without slipping. Simultaneously, the fabric is moving longitudinally because of the operation of a finishing machine that follows the spirality stabilizer (such as a compactor, calendar, or tubular heat setting). The finishing machine delivers the fabric in order to give its final form (e.g., the suitable weight and the appropriate surface finish of the fabric). The finishing machine also stabilizes the spirality correction made by the spirality stabilizer, for example by using steam, heat, pressure, or other means necessary to have permanent effects on the fabric.
The knitting spirality stabilizer according to the present invention is constituted of a) the main body of the machine that drives the rotational motion and b) the internal mechanism, or capsule, which is removable for fabric placement.
The invention is presented in the following drawings. In
The main body of the spirality stabilizer is constituted of the frame (1) in which is placed a circle pattern constituted of two rings, one fixed ring (2) and one movable ring (3). Circumferentially and symmetrically about the movable ring (3) has been placed a layout that regulates the operation diameter according to the fabric. The layout is constituted of independent external rests (4), which can be height regulated (5) and can be stabilized in the desirable location by using external pins (6). The number of rests is even and rests are always placed in diametrically opposing locations. External magnets (7) are located along the innermost surface of external rests (4). External magnets (7) are covered with polytetrafluoroethylene (PTFE). The PTFE covering is used to avoid fabric friction due to longitudinal movement of the fabric because of the operation of the finishing machine that follows the spirality stabilizer. These external magnets (7) in combination with the internal magnets (8) that exist on the internal mechanism (or removable capsule) (9) create a magnetic field by having opposite polarities. The resulting traction force transmits the rotary motion (14) of movable ring (3) to internal mechanism (9). Turn wheels (10) exist both on the internal mechanism (9) and on external rests (4). The internally and externally located turn wheels (10) are in contact and are aligned because of the force and the appropriate placement of magnets(7) and (8). The uniform passage of fabric without contacting the mechanisms simultaneously with the rotation of movable ring (3) is made possible by the opposite polarity magnets and turn wheels, and enables the correction of spirality within the desirable limits.
The turn wheels (10) are manufactured from suitable material so that smooth fabric rolling can be performed without leaving any marks on the fabric and without creating wears on the fabric. The internal mechanism (9) is constituted of a foldable frame (11) giving the possibility to regulate the desirable diameter of operation. The stabilization of internal mechanism (9) is achieved by the magnetic field that is created, which ensures the alignment of turn wheels (10) that roll the fabric during the rotation. Internal pins (16) are used only at the initial placement of internal mechanism (9) for its concentric placement within movable ring (3). In operation, the external mechanism is opened to its widest position, then the internal mechanism is placed into the external mechanism so that is concentric with movable ring (3), and after that internal pins (16) are removed.
On the ends of the foldable frame (11), internal rests (12) have been placed in locations that correspond to those of the external rests (4) when the stabilizer is assembled. Internal rests (12) have their own respective turn wheels (10) with coating made from soft material so that smooth fabric rolling is performed without wear. At the same time internal magnets (8) have been placed which have been covered with PTFE in order to avoid fabric wear. In combination with the external magnets (7) that are placed on the external movable ring (3), they create a magnetic field, so that the turn wheels being aligned and creates the essential gap (15) for the smooth fabric passage. Finally, on the internal mechanism (removable capsule) (9) flexible metal bands (13) have been placed that are used as drivers during the fabric passage and simultaneously facilitate the passage of holes that regularly exist on the fabric, avoiding in this way the danger of fabric being hooked in the mechanism. Metal bands (13) have PTFE coating to avoid fabric wears.
From all those mentioned before as well as from the drawings it is turned out that is a simple, innovative and pioneering manufacture that comes to cover the need for the regulation of knitting spirality, improving the final product, minimizing defective products and save financial resources and time.
| Number | Date | Country | Kind |
|---|---|---|---|
| 20130100423 | Jul 2013 | GR | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/GR2014/000040 | 7/17/2014 | WO | 00 |
| Publishing Document | Publishing Date | Country | Kind |
|---|---|---|---|
| WO2015/008098 | 1/22/2015 | WO | A |
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