The present invention relates to a chain-stitch sewing machine capable of multi-color, chain-stitch sewing by a single looper selectively using a plurality of sewing threads of different colors and characteristics. More particularly, the present invention relates to a chain-stitch sewing machine suited to perform chain-stitch sewing on a cylindrical sewing workpiece.
Chain-stitch sewing machines have been known, in which chain-stitch sewing is performed on a sewing workpiece by cooperation between a reciprocatively-driven hook needle and a looper positioned under a needle plate to feed a sewing thread and by rotation of the looper being controlled in synchronism with sewing operation of the hook needle. Also known today are chain-stitch sewing machines of a type which has a single looper per machine head (also called “sewing head”) and in which a plurality of sewing threads of different colors and characteristics are prepared for the single looper; in these chain-stitch sewing machines, chain-stitch sewing with multiple color threads (i.e., multi-color chain-stitch sewing) is performed on a sewing workpiece by selectively inserting any one of the sewing threads through the looper. One example of such chain-stitch sewing machines, capable of multi-color chain-stitch sewing by a single looper selectively using a plurality of sewing threads, is disclosed in Japanese Patent No. 3457040 (hereinafter “Patent Literature 1”) or Japanese Patent Application Laid-open Publication No. 2002-317374 (hereinafter “Patent Literature 2”). In the conventional chain-stitch sewing machine disclosed in Patent Literature 1 or Patent Literature 2, a thread feed mechanism slidable in a horizontal direction is disposed under the looper for selectively supplying any one of a plurality of sewing threads. The plurality of sewing threads are set on the thread feed mechanism in parallel with one another along a sliding direction of the thread feed mechanism. Sewing thread color change (i.e., color thread selection) is effected by sliding the array of the plurality of sewing threads, by means of the thread feed mechanism, so that any desired one of the threads is positioned directly beneath the looper and then passing the sewing thread, positioned directly beneath the looper, through the looper by injection of air.
As noted above, the conventional chain-stitch sewing machines are constructed to effect a sewing thread color change by sliding the array of the plurality of sewing threads by means of the thread feed mechanism that has the plurality of sewing threads set thereon in parallel with one another. Thus, it is difficult to reduce the size of the machines, and there is a need to secure a sliding space (i.e., leeway space for horizontal movement) of a width that is about twice as great as the horizontal width of the array of the plurality of sewing threads. Therefore, the conventional chain-stitch sewing machines of the type, capable of effecting color thread selection, can be applied only to planar-shaped sewing workpieces, although sewing workpieces to be processed by the sewing machines also include cylindrically-shaped sewing workpieces, such as T-shirts and hats. As well known, in order to perform ordinary sewing or embroidering on a cylindrically-shaped sewing workpiece, it is necessary to position a cylindrical rotary hook bead, having a rotary bed provided therein, inside the cylindrically-shaped sewing workpiece. Similarly, in order to perform chain-stitch sewing on a cylindrically-shaped sewing workpiece, it is necessary to position a looper inside the cylindrically-shaped sewing workpiece. However, in the conventional chain-stitch sewing machines, which are capable of effecting a sewing thread color change by passing a desired one of the plurality of loopers through the single looper, it is difficult to reduce the size of the machines and necessary to secure a wide sliding space (leeway space for horizontal movement) because the array of the plurality of sewing threads itself is slid horizontally along the sliding direction of the thread feed mechanism. Therefore, cylindrically-shaped sewing workpieces, on which the conventional chain-stitch sewing machines can perform chain-stitch sewing, are limited to those of relatively great sizes, but also, even for cylindrically-shaped sewing workpieces of great sizes on which the conventional chain-stitch sewing machines can perform chain-stitch sewing, sewable ranges of the workpieces would be extremely limited; consequently, the conventional chain-stitch sewing machines would lack practical utility. Thus, in effect, there has heretofore been no chain-stitch sewing machine suitable for performing multi-color chain-stitch sewing on cylindrically-shaped sewing workpieces.
In view of the foregoing, it is an object of the present invention to provide a chain-stitch sewing machine, of a type having one looper per machine head, which has a compact thread feed mechanism for selectively feeding a desired one of a plurality of sewing threads to the looper to permit sewing with the desired thread. It is another object of the present invention to provide a chain-stitch sewing machine suited for performing chain-stitch sewing on a cylindrically-shaped sewing workpiece using threads of multiple colors.
According to a first aspect of the present invention, there is provided a chain-stitch sewing machine, which comprises: a reciprocatively-driven hook needle; a looper disposed under a needle plate and having a thread lead-in port and thread lead-out port, the looper being rotationally driven in synchronism with a sewing operation; a plurality of thread feed ports connecting to different thread supply sources: a connecting member having a thread passage, the connecting member selectively connecting any one of the plurality of thread feed ports to the thread insertion port of the looper via the thread passage; and a threading mechanism for passing the sewing thread, fed via the thread feed port connected via the connecting member to the thread insertion port of the looper, into the thread insertion port and causing the inserted sewing thread to be taken out via the thread lead-out port of the looper.
According to the first aspect of the present invention, the provision, between the plurality of thread feed ports and the looper, of the connecting member that selectively connects any one of the plurality of thread feed ports to the thread insertion port of the looper via the thread passage can make compact mechanisms for selecting and feeding a thread to the looper. As a consequence, the looper and all of such mechanisms for selectively feeding any one of threads, having different colors and characteristics, to the single looper can be accommodated compactly within a looper base having a cantilevered shape with its one end portion projecting outwardly. Thus, a cylindrically-shaped sewing workpiece can be taken in and out via the one end portion of the looper base, and therefore, there can be provided a chain-stitch sewing machine suited for chain-stitch sewing on cylindrically-shaped sewing workpieces. Further, the construction of the mechanisms for selecting and feeding a thread to the looper can be made compact as compared to the conventional counterparts, and thus, the present invention can advantageously be applied to a sewing machine which performs chain-stitch sewing on planar-shaped sewing workpieces as well as cylindrically-shaped sewing workpieces.
In a preferred embodiment, the connecting member, provided between the plurality of thread feed ports and the looper, is selectively movable to align the inlet of the thread passage with any one of said plurality of thread feed ports. With such a construction that the connecting member is moved without the arrangement or array of the plurality of thread feed ports being moved, it is possible to simplify the construction of the slide mechanism and reduce the size of a movement mechanism; besides, it is possible to eliminate a need for an extra space to secure a movable (e.g., slidable) range of the movement mechanism (because the plurality of thread feed ports themselves are not moved horizontally).
In another preferred embodiment, the plurality of thread feed ports are arranged in a circular configuration, and any one of the plurality of thread feed ports is aligned with the inlet of the thread passage by pivoting movement of the connecting member along the circular configuration. Thus, the mechanism for feeding a sewing thread to the thread insertion port of the looper can be reduced in size. Further, because color thread selection can be effected by the connecting member being moved along the circular configuration instead of being slid horizontally, it is possible to eliminate a need for an extra space to secure a movable (e.g., slidable) range of the movement mechanism. As a result, the present invention can be applied even more advantageously to a sewing machine which performs chain-stitch sewing on cylindrically-shaped sewing workpieces.
According to another aspect of the present invention, there is provided a chain-stitch sewing machine, which comprises: a reciprocatively-driven hook needle; a looper disposed under a needle plate and having a thread lead-in port and thread lead-out port, the looper being rotationally driven in synchronism with a sewing operation; a plurality of thread feed ports arranged in a circular configuration; a selection device for selectively connecting any one of the plurality of thread feed ports to the thread insertion port of the looper; and a threading mechanism for passing a sewing thread, fed via the thread feed port connected via the selection device to the thread insertion port of the looper, into the thread insertion port and causing the inserted sewing thread to be taken out via the thread lead-out port of the looper. Here, the sewing thread taken out via the thread lead-out port is rotated in response to rotation of the looper so that chain-stitch sewing is performed through cooperation between the looper and the hook needle. Because the plurality of thread feed ports are arranged in a circular configuration, even where the arrangement or array of the thread feed ports is to be moved for color thread selection, the array of the thread feed ports can be moved along the circular configuration instead of being slid horizontally, and thus, it is possible to eliminate a need for an extra space to secure a movable (e.g., slidable) range. As a result, the present invention can be applied even more advantageously to a sewing machine which performs chain-stitch sewing on cylindrically-shaped sewing workpieces.
Embodiments of the present invention will be described in detail with reference to the accompanying drawings.
Internal construction of the looper base 5 will be described in detail.
As shown primarily in
As shown in
Connecting member 27 is fixed to the distal end of the shaft 18 rotatably supported on the underside of the base body member 8 as noted above. As clearly seen in
Air supply block 28 is secured to the underside of the support member 10. As apparent from
As shown in
Beneath the rear ends of the guide tubes 24, a thread-pulling device is provided for pulling the thread end portion of the sewing thread T, having so far been inserted in the looper R (i.e., having so far been involved in a sewing operation), so that the thread end portion is positioned within the guide tube 24. As such a thread-pulling device, there may be employed a pulling-down member, increase means for increasing a pulled-down amount of a thread, etc. as disclosed in the above-discussed No. 2002-317374 publication of the application assigned to the same assignee as the instant application. Because the pulling-down member, increase means, etc. are known, they will not be described here. Of course, the present invention is not limited to the aforementioned.
The following lines describe behavior of the chain-stitch sewing machine of the present invention, constructed in the aforementioned manner, when performing chain-stitch sewing on a cylindrically-shaped sewing workpiece. Sewing threads T of different colors and characteristics, paid out from the plurality of thread spools positioned on the not-shown thread stand are set in advance in the individual guide tubes 24. To start the chain-stitch sewing, first the shaft 18 is caused to pivot so that the communicating hole 27a of the connecting member 27 is connected with, i.e., brought into communication with, any one of the guide tubes 24 which has a desired sewing thread T set therein. Once air is supplied from the air supply source to the air supply block 28, the desired sewing thread T set in the one guide tube 24 is inserted, by the supplied air, into the thread-passing hole 11 of the looper R and led out through the thread lead-out port 11b. Then, the movable cutter blade 33 is caused to pivot, just as in cutting of the thread, so as to retain an end portion of the sewing thread T led out through the thread lead-out port 11b by way of the communicating hole 27a of the connecting member 27, connecting tube 30 of the air supply block 28 and thread-passing hole 11 of the looper R.
Once the end portion of the sewing thread T is retained in the aforementioned manner, not only the motor 14 is activated to rotate the looper R but also the hook needle 4 of the machine head 3 is moved up and down, in synchronism with which the embroider frame 7 having a cylindrically-shaped sewing workpiece H set thereon is moved in the X/Y direction. In this manner, chain-stitch sewing of a pattern, embroidery and/or the like is performed on the sewing workpiece H.
When the sewing thread T used for the chain-stitch sewing is to be changed to another one, the rotation of the looper R and up-and-down movement of the hook needle 4 is halted, and then the movable cutter blade 33 is caused to pivot first in the clockwise direction and then in the counterclockwise direction to cut the sewing thread T. After cutting of the sewing thread T, the movable cutter blade 33 is caused to pivot a predetermined amount in the clockwise direction to cancel the retention of the looper-side end portion of the sewing thread T. After that, the sewing thread T inserted through the looper R is pulled by the not-shown thread pulling device to position the looper-side end portion of the sewing thread T, having been released from the retention, within the guide tube 24. Then, the shaft 18 is caused to pivot so that the communicating hole 27a of the connecting member 27, is connected with, i.e. brought into communication with, another one of the guide tubes 24 which has a next, desired sewing thread T set therein, air is supplied to the air supply block 28 to cause the sewing thread T to be passed through the looper R, and then the movable cutter blade 33 is caused to pivot so as to retain an end portion of the sewing thread T inserted through the looper R. Then, in a similar manner to the above-described, not only the looper R is rotated but also the hook needle 4 is moved up and down so that chain-stitch sewing with the desired sewing thread T is performed on the sewing workpiece H. As known in the art, examples of the chain-stitch sewing include chain sewing, loop sewing, etc., and switching can be made among these chain sewing, loop sewing, etc. in response to setting of a desired sewing operation.
As set forth above, the embodiment of the chain-stitch sewing machine of the present invention is constructed to guide a plurality of threads to the neighborhood of the looper R by means of the guide tubes 24 and allow any one of the guide tubes 24 and the thread-passing hole 11 of the looper R to communicate with each other. Thus, the embodiment of the chain-stitch sewing machine can significantly reduce the sizes of component parts located beneath the looper R and thereby construct the looper base 5 into a cylindrical shape of a reduced width. In this way, the looper base 5 can be positioned inside any one of a variety of cylindrically-shaped sewing workpieces H. Further, because it is only necessary to rotate the small-size connecting member 27 when the sewing thread T is to be switched to another, not only the drive source can be reduced in size, but also desired thread color change can be effected at high speed.
The embodiment has been described above in relation to the case where air from the air supply source is supplied only to the air supply block 28 so that a sewing thread T set in the guide tube 24, brought into communication with the thread-passing hole 11 of the looper R, can be inserted through the thread-passing hole 11; however, the present invention is not so limited, and air may also be supplied to the neighborhood of the rear end portion of the guide tube 24 so as to assist movement of the sewing thread T in the guide tube 24.
Note that the aforementioned structure for guiding sewing threads T to the neighborhood of the looper R and allowing any desired one of the sewing threads to be inserted through the single looper R by selectively connecting or communicating the thread insertion port 11a of the looper R with the end of the guide tube 24 via the connecting member 27 need not necessarily be capable of being positioned inside a cylindrically-shaped sewing workpiece H. Namely, the present invention may also be applied to sewing machines which perform chain-stitch sewing on planar-shaped sewing workpieces.
Further, the guide tubes 24 for guiding sewing threads T to the neighborhood of the looper R and the thread feed ports of the bracket 20 may be arranged, for example, in a linear horizontal configuration or array, rather than in a circular configuration or array about the axis of the shaft 18. Of course, in such a case, the connecting member 27 is driven to linearly move, instead of being driven to rotate, so that the communicating hole 27a communicates with any one of the guide tubes 24. In such a case too, the present invention can significantly simplify the construction of the slide mechanism and reduce the size of the slide mechanism by moving the connecting member 27 without moving the array of the plurality of thread feed ports; besides, the present invention can eliminate a need for an extra space in order to secure a slidable range of the slide mechanism.
Further, as a modification of the present invention, there may be provided opening/closing-controllable shutters in corresponding relation to the individual thread feed ports of the bracket 20, in both of the cases where the plurality of thread feed ports are arranged in a circular configuration and where the plurality of thread feed ports are arranged in a horizontal configuration; in this case, the connecting member 27 may have a plurality of thread passages provided at its inlet in corresponding relation to the individual thread feed ports, and the plurality of thread passages may be connected to one passage at the outlet of the connecting member 27. With such modified arrangements, the present invention permits color thread selection by opening only the shutter corresponding to a desired color thread without moving the connecting member 27. The shutters corresponding to the thread feed ports may be provided either on the bracket 20 or on the connecting member 27.
As another modification of the present invention, the bracket 20, having the plurality of thread feed ports arranged in a circular configuration, may be caused to pivot along the circular configuration. In such a case too, it is possible to eliminate a need for an extra space to secure the slidable range of the slide mechanism, and thus, the looper base 5 can be significantly reduced in size as a whole so that it can be suited for being positioned inside a cylindrically-shaped sewing workpiece set on the embroidery frame 7.
Further, the guide tubes 24 may be of any desired shape other than a tubular shape, as along as they can guide sewing threads T to the bracket 20.
The embroider frame 7, which is driven in the X/Y direction in accordance with sewing pattern data, may be rotationally driven as known in the field of embroidery sewing on hats etc., instead of being driven in the planar X/Y direction alone. Further, the machine head 3 and looper base 5 may be moved in accordance with a sewing pattern.
Number | Date | Country | Kind |
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2005-119736 | Apr 2005 | JP | national |
This application is a U.S. National Phase Application of PCT International Application PCT/JP2006/308148 filed on Apr. 18, 2006.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2006/308148 | 4/18/2006 | WO | 00 | 10/17/2007 |