The present invention relates to an embroidery sewing machine with printing function capable of printing a workpiece cloth by an ink-jet printing unit.
A conventional embroidery sewing machine includes a sewing machine body; a cloth holding frame that holds a workpiece cloth in a stretched manner; a frame drive unit that drives the cloth holding frame independently in two mutually perpendicular directions in a horizontal plane. Provided in an arm of the sewing machine body is a needle bar vertically moving mechanism that vertically moves the needle bar. Also, various types of loop takers are provided in a bed of the sewing machine body. Household embroidery sewing machines having the frame drive unit installed in the bed of the sewing machine body have been reduced to practice in the household sewing machine field also.
In recent years, embroidery sewing machines have been suggested that allow both embroidery and print images to be formed on the workpiece cloth. In such embroidery sewing machines, an ink-jet print head is disposed in the proximity of the upper surface of the workpiece cloth which is held by the cloth holding frame linked to the frame drive unit; and the print head prints various patterns and graphics directly on the workpiece cloth by moving the cloth holding frame in the horizontal direction by the frame drive unit.
For example, JP-A-H09-256260 discloses an embroidery sewing machine as described as follows (refer to pages 3 to 4, and FIGS. 2 and 3 in particular). The disclosed embroidery sewing machine is a multi-headed sewing machine incorporating two embroidery sewing machines. A plurality of needle bars and one print head are provided in a color changing mechanism of each embroidery sowing machine. In response to an input of embroidery data upon needle bar selection, the sewing needle is driven and a rectangular embroidery frame is further moved in X-Y direction. Thus, the intended embroidery pattern can be sewn. By selecting a print head, the embroidery frame is moved in X-Y direction based on the inputted print data, thereby allowing the execution of a color printing operation with colors such as cyan, magenta and yellow. More specifically, when executing a printing operation, ink is ejected from the print head in synchronism with the reciprocating movement of the embroidery frame (workpiece cloth) moving in one way at a time in the X-direction; whereupon completion of printing one print line (one way), the embroidery frame is fed by one print line in the Y-direction and the process repeats itself thereafter.
Patent document 1: JP-A-H09-256260
The embroidery sewing machine described in the above JP-A-H09-256260 includes an X-direction drive mechanism that reciprocably drives the embroidery frame in the X-direction (lateral direction) and a Y-direction drive mechanism that reciprocably drives the embroidery frame in the Y-direction (longitudinal direction) respectively. A stepping motor, generally accepted to have simple drive controllability, is employed in the foregoing mechanisms. In the attempt to reciprocably rotate the stepping motor without falling out of step, an acceleration/deceleration state, in which a rotational speed change occurs, needs to be created at the time of altering the drive direction. Thus, the printer employing the above construction provides poor printing quality in the acceleration/deceleration area corresponding to the acceleration/deceleration state. To overcome such problem, the printer needs to be restricted from printing the workpiece cloth in the acceleration/deceleration area of the stepping motor.
However, such restriction in the acceleration/deceleration area of the stepping motor gives rise to a problem of reduced printable area. However, no considerations were given nor ideas were devised to address such problems in the above conventional embroidery sewing machine. Especially in the case of household embroidery sewing machines, there was a limitation in the spacing between the sewing needle and the foot, in other words, the distance in the direction parallel to the lengthwise direction of the bed, which reduces the printable area to a considerable extent.
Therefore, it is an object of the present invention to provide an embroidery sewing machine with printing function capable of securing sufficient printable area.
The embroidery sewing machine with printing function of the present invention includes a sewing machine body having a bed, a foot, and an arm and capable of sewing a workpiece cloth by a sewing unit; a cloth holding frame that holds a workpiece cloth to be sewn, a frame drive unit that moves the cloth holding device independently in two mutually perpendicular directions in a horizontal plane, and an ink-jet printer having a print head that prints the workpiece cloth held by the cloth holding frame, wherein the frame drive unit has a first drive mechanism that moves the cloth holding frame in a first direction parallel to a lengthwise direction of the bed, and a second drive mechanism that drives the cloth holding frame in a second direction perpendicular to the first direction, and wherein the print head of the printer comprises arrays of nozzles having a plurality of ink-jet nozzles aligned parallel to the first direction and the printer prints the workpiece cloth while moving the cloth holding frame in the second direction by the second drive mechanism.
Also, in the above described construction, it is preferable to employ a stepping motor as a drive source, set the acceleration/deceleration area, where rotational speed change of the stepping motor occurs, to be arranged in both ends in the second direction of the cloth holding frame, and arrange the printer to execute a printing operation in the area exclusive of the acceleration/deceleration area.
Under such construction, though the movable distance of the cloth holding frame in the first direction is limited by the presence of the foot, greater movable distance in the second direction can be obtained as compared with the first direction of the cloth holding frame. As for the shape of the cloth holding frame also, greater length in the second direction can be obtained as compared with the first direction. Since the printer prints the workpiece cloth while moving the print head in the second direction, in other words, the lengthwise direction of the cloth holding frame, larger printable area can be obtained in the second direction as compared with the printing operation executed while moving the print head in the first direction, even if a unprintable acceleration/deceleration area were to be set. Moreover, since the printing direction is taken in the longer direction and the cloth feed direction is taken in the shorter direction, switching times of the stepping motor drive direction can be reduced, in which respect also, the overall acceleration/deceleration area can be reduced, in other words, greater printable area can be obtained.
As described above, sufficient printable area can be secured within the cloth holding frame according to the embroidery sewing machine with printing function of the present invention.
Reference symbol 1 designates an embroidery sewing machine with printing function; 2, a sewing machine main body; 3, a cloth holding frame; 4, a frame drive device; 5, a printer; 10, a bed; 11, a foot; 12, an arm; 30, a Y-direction drive mechanism (second drive mechanism); 45, an X-direction drive mechanism (first drive mechanism); 61, a print head; 61b, an ink-jet nozzle; 61c to 61f, nozzle arrays; 63, a purge unit (purge mechanism); 80, a head cap (cap mechanism); 99, a sewing unit; W, a workpiece cloth; and J, a acceleration/deceleration area.
One embodiment of the present invention will be described in detail with reference to the drawings for the purpose of describing the present invention.
Referring to
Next, a description will be given on the sewing machine body 2. As shown in
Provided in the foot 11 and the arm 12 is a drive force transmitting mechanism (not shown) that transmits the drive force of the sewing machine motor 93 (refer to
The bed 10 has a loop taker (not shown) that forms a seam in synchronism with the vertical movement of a sewing needle 15 and a lower shaft, or the like, that transmits the rotational drive force of the sewing machine motor 93 to the loop taker. An attachment portion 25a (refer to
Next, a description will be given on the cloth holding frame 3 holding the workpiece cloth on which embroidery is sewn. As shown in
The connecting portion 20e will be described hereinafter. As shown in
Next, a description will be given on the frame drive unit 4 that moves the cloth holding frame 3 independently in the X-direction and the Y-direction respectively.
Referring to
The main body case 25 is arranged to be detachably attached to the bed 10 (refer to
First, the Y-direction drive mechanism 30, among the X-direction drive mechanism 45 and the Y-direction drive mechanism 30 will be described with reference to
A large-diameter gear 37 is mounted coaxially on the pinion gear 35 in the near side (the lower side in
The carriage 33 has a connecting member 40 having a predetermined length in the longitudinal direction (vertical direction in
Next, a description will be given on the X-direction drive mechanism 45. In the X-direction drive mechanism 45, a guide shaft 46 extending in the lateral direction (lateral direction in
The pinion gear 49 in the right side (right side in
Referring to in
Next, a printer 5 for executing color printing operation with four colors of ink on the workpiece cloth W held by the cloth holding frame 3 is described with reference to
Referring to
A description will be given on the print head 61 hereinafter. Since the print head 61 is a well-known ink-jet color print head being generally used, the description therefor will be kept brief.
Referring to
Provided on the upper side of the print head 61, as shown in
As shown in
Referring to
The head vertically moving mechanism 71 as shown in
When the head vertically moving motor 75 is driven from the state shown in
As shown in
The head cap 80 is composed of a rubber made cap placed in intimate contact with the head surface 61a of the print head 61 from below. The head cap 80 is moved up by a purge unit vertically moving motor 67 when the print head 61 is moved up to the retracted position and the purge unit 63 is moved forward to the purging position (refer to U-position in
The aforementioned purging operation will be described briefly hereinafter. Purging operation is executed when the print head 61 is moved up to the retracted position and the purge unit 63 is moved forward to the purging position. At this time, when the purge unit vertically moving motor 82 is driven, as described earlier, the head cap 80 is moved up to enclose the head surface 61a of the print head 61. In this state, when the interior of the head cap 80 is situated in a negative pressure by the drive of the suction pump, small amount of ink, air bubbles and debris are sucked and removed from the ink-jet nozzle 61b of the print head 61. The wiper 81 is composed of a rubber made blade, and is placed slightly higher than the head surface 61a of the print head 61.
Next, a carrier mechanism 64 that carries the purge mechanism 63 in the longitudinal direction will be described hereinafter. As shown in
After the purge unit 63 is carried to the purging position and the purging operation is performed on the print head 61, the purge unit 63 is carried to the retracted position in the rear side by the purge unit carrier motor 88. At this time, the head surface 61a of the print head 61 is wiped by the upper end of the wiper 81. Thus, the remaining ink in the head surface 61a is neatly cleaned.
Also, even when the workpiece cloth W is in the process of being printed by the print head 61, there are cases where the ink is ejected for only a predetermined time period. In such case, the ink-jet nozzle 61b is flushed (empty ejection of ink) in a predetermined flushing position (refer to
The ink absorbing member 65 is made of a material such as a felt, and is extended so as to fully occupy the length taken in the longitudinal direction (direction perpendicular to
Next, a control system of the embroidery sewing machine with printing function will be described based on
Also, provided in the frame drive device 4 is a Y-direction position detection sensor 95 that detects the Y-direction position of the carriage 33; an X-direction position detection sensor 96 that detects the X-direction position of the movable case 26; a drive circuit 97 that drives the Y-direction drive motor 38; a drive circuit 98 that drives the X-direction drive motor 52; and the like.
Provided in the printer 5 is a control unit 100 having a CPU, ROM and RAM; a drive circuit 101 that drives the print head 61; a drive circuit 102 that drives the head vertically moving motor 82; a drive circuit 104 that drives the purge unit moving motor 88; and the like.
When the frame drive device 4 is attached to the sewing machine main body 2, the male connector 27 provided in the attachment portion 25a of the frame drive device 4 and the female connector 16 provided in the attachment subject portion of the sewing machine main body 2 are connected electrically as described earlier. Then, the frame drive device 4 controls the movement of the carriage 33 based on various types of movement control signals transmitted from the control unit 90. Also, the connection between the printer 5, the sewing machine main body 2, and the control unit 90 is established by the female connector 28 provided on the sewing machine main body 2 and the male connector 67 provided on the printer 5. Thus, the printer 5 performs print control based on various print control signals transmitted by the control unit 90.
The printer 5 executes printing operation on the workpiece cloth W by ejecting ink from the print head 61 in synchronism with the reciprocating movement of the cloth holding frame 3 holding a workpiece cloth, which is moved in one way at a time in the Y-direction by the cloth drive unit 4; whereupon completion of printing one print line (one way), the embroidery frame 3 (workpiece cloth W) is fed by one print line in the X-direction and the process repeats itself thereafter.
Since the Y-direction drive mechanism 30 and the X-direction drive mechanism 45 of the frame drive device 4 employs a stepping motor as a drive source as described earlier, acceleration time taken from the stopped state of each drive motor 38 and 52 until reaching the predetermined rotational speed; and deceleration time taken from the predetermined rotational speed to the stopped state are required to prevent the stepping motor from falling out of step upon switching the rotational direction. However, in such case, each drive motor 38 and 52 are rendered in accelerating/decelerating state, exhibiting instability in speed, at the time of rotation start and rotation stop. Printing operation executed in the accelerating/decelerating state provides poor printing performance. Therefore, the workpiece cloth W is printed in an area (refer to area K in
At this time, as shown in
In the above case, though there is no reduction in the X-directional printable area M (in this case, inclusive of embroiderable area) of the printable area K, the Y-directional area is reduced by the accelerating/decelerating area J on both ends thereof. However, since the Y-directional movable distance of the Y-direction drive mechanism 30 and the Y-directional dimension of the cloth holding frame 3 are increased, there is no actual reduction of Y-directional printable area. Moreover, since the printing direction is taken in the Y-direction (longer direction) and the cloth feed direction is taken in the X-direction, in other words, the shorter direction, the Y-directional drive motor 38 experiences less times of drive direction switching, in which respect, the overall accelerating/decelerating area, in other words, the unprintable area in the embroiderable area can be reduced as compared with the printing direction taken in the X-direction.
As a result, the printable area K relative to the size of the cloth holding frame 3 can be maximized. In
Next, the operation and effect of an embroidery sewing machine 1 with printing function having the aforementioned construction will be described hereinafter.
In embroidering the workpiece cloth w while driving the frame drive device 4, first, a first positioning recess 20h of the cloth holding frame 3 holding the workpiece cloth W is engaged and connected with the positioning projection 41a of the frame drive device 4. At this time, as shown in
On the other hand, in printing the workpiece cloth W with the printer 5, first, a second locating recess 20i of the cloth holding frame 3 holding the workpiece cloth W is engaged and connected with the locating projection 41a of the frame drive device. At this time, as shown in
When executing a printing operation, first, as shown in
As described above, the embroidery sewing machine with printing function in accordance with the present embodiment provides acceleration/deceleration areas of the Y-direction drive motor 38 employing a stepping motor, respectively in both ends in the Y direction of the embroidable area (refer to N in
Also, the print head 61 of the printer 4 has a plurality of nozzle arrays 61c to 61f capable of ejecting ink of plurality colors.
Also, the print head 61 of the printer 5 is arranged to have a cap mechanism used in the form of a head cap 80 to cover the head surface 61a of the print head 61. Therefore, air bubbles and debris inside the ink-jet nozzle 61 can be removed by purging the same by the purge mechanism, and the head cap 80 prevents the ink from drying when printing operation is not executed.
Also, the sewing machine body 2 and the printer 5 are provided integrally. Thus, there is no need to attach/detach the cloth holding device 3 to/from the sewing machine body 2, and both embroidery sewing and printing can be executed with the cloth holding frame 3 connected to the frame drive unit 4. In such case, since the workpiece cloth W is not removed from the cloth holding frame 3 at the time of embroidery sewing and printing, an embroidery seem can be printed with improved positioning precision.
Also, though the cloth holding frame 3 takes on an elongated shape in which the Y-direction is longer than the X-direction, the printer 5 is arranged to print the Y-dimension of the printable area in a non-stop reciprocating manner. Therefore, number of cloth feed times of feed the cloth in the X-direction after tentatively stopping the movement of the print head 61 in the Y-direction is reduced as compared with a printing operation executed in the X-direction, thereby reducing the duration of the overall printing process.
The present invention is not limited to the embodiment described above or shown in the drawings but can be modified or expanded as follows.
First, the printer 5 may be arranged to be detachable from the sewing machine body 2 and be attached thereto as required.
Also, the printer 5 may include, other than the control unit, printing data storage memory that stores printing data and embroidery data storage memory that stores embroidery data. In such case, it is preferable to arrange the printer 5 to be detachable from the frame drive unit 4 and print the workpiece cloth W while transmitting the embroidery data created in advance from the printer 5 to the frame drive unit 4.
Also, the printer 5 may be of a single-color use that prints in a single color such as black, cyan, or the like.
Also, the direction of movement, or the like, of the purge unit 63 may be arranged adjustable within the scope of the invention.
As described above, the embroidery sewing machine with printing function of the present invention is useful for a household embroidery sewing machine provided with printing function.
Number | Date | Country | Kind |
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2004-098112 | Mar 2004 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2005/001109 | 1/27/2005 | WO | 00 | 5/17/2007 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2005/100663 | 10/27/2005 | WO | A |
Number | Name | Date | Kind |
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5144899 | Allen | Sep 1992 | A |
6189989 | Hirabayashi et al. | Feb 2001 | B1 |
6435117 | Codos et al. | Aug 2002 | B2 |
Number | Date | Country |
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A 63-283682 | Nov 1988 | JP |
A 05-208085 | Aug 1993 | JP |
A 05-272046 | Oct 1993 | JP |
U 05-95474 | Dec 1993 | JP |
A 06-299458 | Oct 1994 | JP |
A 09-250068 | Sep 1997 | JP |
A 09-256260 | Sep 1997 | JP |
A 09-279469 | Oct 1997 | JP |
A 2002-200379 | Jul 2002 | JP |
A 2004-034667 | Feb 2004 | JP |
Number | Date | Country | |
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20080011212 A1 | Jan 2008 | US |