This application is based upon and claims the benefit of priority from prior Japanese Patent Application No. 2007-147107, filed Jun. 1, 2007, the entire contents of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to a sheet takeout device which sucks and contacts a sheet resting at a takeout position and which then rotates to take out the sheet in a surface direction.
2. Description of the Related Art
A sheet takeout device is conventionally known which exerts a negative pressure on one of a plurality of sheets located at a takeout position, via a belt hole in an endless takeout belt to suck and contact the sheet and which then allows the takeout belt to travel intermittently in a takeout direction to take out the sheet onto a conveying path (see, for example, Japanese patent No. 3735565).
In addition to the takeout chamber, this device has a negative pressure chamber located opposite the takeout position across the takeout belt and a chamber mask located between the negative pressure chamber and the takeout belt. Two mask holes separated from each other in a belt traveling direction are formed in the chamber mask. The mask holes allow a negative pressure to be exerted twice on the sheet located at the takeout position, via the belt hole passing intermittently by the takeout position.
That is, the mask hole located downstream in the takeout direction has a smaller aperture area than the mask hole located upstream in the takeout direction. When an operation of taking out the sheet is started, a relatively high negative pressure is exerted on the sheet. After the taken-out sheet is delivered to a downstream conveying mechanism, the suction force applied to the sheet by the takeout belt is weakened. Thus, a relatively strong conveying force can be applied to the sheet at the beginning of the takeout operation. After the sheet is delivered to the downstream conveying mechanism, the conveyance of the sheet can be prevented from being obstructed.
However, this conventional device exerts a negative pressure on the sheet resting at the takeout position, via the belt hole in the intermittently driven takeout belt. Thus, when the takeout belt sucks and contacts the sheet, a relatively high negative pressure is rapidly exerted on the sheet. Consequently, the sheet may be skewed or a suction timing may vary. For example, a deviation in sheet suction timing may vary a sheet takeout pitch.
Furthermore, this device applies a suction force to the sheet with a difference in speed remaining between the sheet resting at the takeout position and the takeout belt. Consequently, friction occurs between the belt and the sheet, which may disadvantageously stain or damage the sheet.
An object of the present invention is to provide a sheet takeout device which can stabilize an operation of taking out a sheet and which prevents the sheet from being stained or damaged during the takeout operation.
To accomplish the object, a sheet taking-out device according to an embodiment of the present invention includes a rotating member having a suction surface which travels along a sheet fed to a takeout position and a suction port formed on the suction surface, a rotating mechanism which intermittently rotates the rotating member so as to minimize a rotation speed at a timing when the suction port passes by a suction position where the suction port sucks the sheet located at the takeout position, a suction mechanism which allows the suction surface to generate a negative pressure via the suction port so that the sheet located at the takeout position is sucked by and contacted with the suction surface when the suction port passes by the suction position, and suction force adjusting means which adjusts a suction force applied to the sheet located at the takeout position via the suction port so as to prevent the sheet from being sucked and moved by the suction surface while the suction port is approaching the suction position with the rotation speed of the rotating member reduced.
According to the present invention, while the suction port is approaching the sheet located at the takeout position with the rotation speed of the rotating member reduced and when there is a relatively significant difference in speed between the suction port and the sheet, the suction force applied to the sheet via the suction port is adjusted so as to prevent the sheet from being sucked and moved by the suction surface. This makes it possible to prevent a suction force strong enough to move the sheet located at the takeout position from being applied to the sheet before the suction port stands opposite the sheet. Furthermore, a sheet suction timing can be fixed to allow a sheet takeout timing to be stabilized.
Additionally, according to the present invention, the suction force is adjusted so as to prevent a strong suction force from being applied to the sheet via the suction port while a difference in speed remains between the suction port and the sheet. The sheet is thus prevented from being sucked by and contacted with the suction surface of the rotating member being decelerated. This makes it possible to prevent a possible slip between the suction surface and the sheet, which come into contact with each other, and to prevent the sheet from being disadvantageously stained or damaged by friction during the takeout operation.
Additional objects and advantages of the invention will be set forth in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. The objects and advantages of the invention may be realized and obtained by means of the instrumentalities and combinations particularly pointed out hereinafter.
The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate embodiments of the invention, and together with the general description given above and the detailed description of the embodiments given below, serve to explain the principles of the invention.
Embodiments of the present invention will be described below in detail with reference to the drawings.
As shown in
The takeout mechanism 10 has a substantially cylindrical takeout roller 2 (rotating member) formed of a rigid body such as metal and which rotates in the direction of arrow R in
The takeout roller 2 is annularly and rotatably installed around an outer periphery of a generally cylindrical core member 6 containing a negative pressure chamber 6a connected to a pump 4. The core member 6 is fixedly located such that an opening in the chamber 6a lies opposite the sheet P1 located at the takeout position. As shown by a dashed line in
The takeout roller 2 is intermittently rotated in accordance with the velocity diagram in
In the present embodiment, the one suction port 3 is formed on the suction surface 2a of the takeout roller 2 to allow one sheet P to be taken out every time the takeout roller 2 makes one rotation. However, a plurality of the suction port 3 may be formed in a traveling direction of the suction surface 2a to allow a plurality of the sheets P to be taken out while the takeout roller 2 is making one rotation. In this case, the takeout roller 2 needs to be intermittently rotated so as to temporarily stop the takeout roller 2 every time one of the suction ports 3 stands opposite the sheet P located at the takeout position.
Furthermore, the velocity diagram in
As shown in
The opening 6b in the chamber 6a in the core member 6, which overlaps the suction port 3, is formed to be a rectangle having a rotating-direction width that is at least larger than the height of the isosceles triangle of the suction port 3 and an axial length that is at least larger than the length of the base of the isosceles triangle. Ideally, the opening 6b desirably has a width that is slightly larger than the height of the isosceles triangle and a length that is slightly larger than the length of the base of the isosceles triangle. This prevents the possible loss of the negative pressure and allows the suction hole 3 to efficiently generate a negative pressure. Negative pressure control can thus be performed depending on the shape of the suction hole 3 not relate to the rotating position of the suction hole 3.
In the present embodiment, the suction port 3 is shaped as described above. Thus, while the suction port 3 is approaching the suction position with the rotation speed of the takeout roller 2 gradually reduced, that is, when the suction port 3 starts to overlap the opening 6b in the negative pressure chamber 6a and it is too early to suck the sheet P, an undesired force applied to the sheet P1 located at the takeout position is weakened via the suction port 3. That is, the shape of the suction port 3 functions as suction force adjusting means according to the present invention.
Before describing the characteristic configuration (suction port 3) of the present embodiment in detail, description will be given of problems with a conventional takeout roller with a rectangular suction port with reference to
In this case, when the suction port 21 approaching the suction position with the takeout roller 2 decelerated starts to overlap the opening in the negative pressure chamber 6a, a relatively strong suction force starts to act on the sheet P with a significant difference in speed remaining between the suction port 21 and the sheet P. That is, with the rectangular suction port 21, when the starts to overlap the opening in the negative pressure chamber 6a, a negative pressure acts all over a relatively long area in the axial direction of the takeout roller 2.
Thus, as shown in the left of
That is, for example, it is assumed that during the deceleration of the takeout roller 2, the sheet P is sucked by and contacted with the suction surface 2a of the takeout roller 2 with a difference in speed remaining between the suction port 21 and the sheet P located at the takeout position, as shown in the left of
Moreover, as described above, when an attempt is made to allow the suction surface 2a of the takeout roller 2 to suck the sheet P located at the takeout position with a difference in speed remaining between the suction port 21 and the sheet P, slippage may occur between the sheet P and the suction surface 2a to disadvantageously cause the surface of the sheet P to be stained or damaged.
Thus, in the present embodiment, the suction port 3 is triangular, as shown in
Specifically, in the vicinity of the end of deceleration of the takeout roller 2 corresponding to each of the shaded portions in the velocity diagram in
This makes it possible to prevent a strong suction force from being applied via the suction port 3 to the sheet P located at the takeout position, during the deceleration of the takeout roller 2 before stoppage. The suction timing for the sheet P can thus stabilized. That is, all the sheets P can be taken out using a fixed timing, allowing the sheets P to be taken out at a fixed pitch. Furthermore, the present embodiment can minimize the difference in speed between the suction port 3 and the sheet P (according to the present embodiment, the difference is almost zero) when the sheet P located at the takeout position is sucked by the suction surface 2a of the takeout roller 2. This prevents a possible slip between the suction port 3 and the sheet P and thus prevents the sheet from being stained or damaged during the takeout operation.
Furthermore, the suction port 3 according to the present embodiment makes it possible to inhibit the possible skew of the sheet P during the takeout operation.
With the conventional rectangular suction port 21, described with reference to
In contrast, with the suction port 3 according to the present embodiment, a weak suction force is first applied through the vertex of the triangle. Thus, even if the sheet is skewed before the takeout operation, the skew is unlikely to be become more significant. Thus, the skew of the taken-out sheet can be easily corrected.
When a plurality of sheets P in a fixed regular form are to be taken out, the triangle of the suction port 3 is designed such that the vertex of the triangle lies on a line in the takeout direction which passes through the centroid of the sheets P loaded via the loading section 12. This makes it possible to eliminate the skew of the sheet P during the takeout operation. That is, by exerting a negative pressure on an area on a line in the takeout direction which passes through the centroid of the sheet P, it is possible to take out the sheet P with the posture assumed by the sheet P before the takeout operation maintained. Thus, if the sheet P is not skewed before the takeout operation, the sheet P can be taken out in a non-skewed posture.
In contrast, with the conventional rectangular suction port 21, even if the sheet P is not skewed before the takeout operation, the sheet P may be skewed during the takeout operation. That is, the conventional suction port 21 exerts a negative pressure over a relatively wide range in the axial direction of the takeout roller 2. Consequently, a negative pressure may start to be exerted earlier on areas other than the one on the line in the takeout direction which passes through the centroid of the sheet P. When the negative pressure acts on a position located away from the line of the sheet P, a moment is generated to rotate and skew the sheet P.
Moreover, the present embodiment allows the pump 4 to be always operated to always draw a vacuum from the negative pressure chamber 6a. The above-described effects inherent in the present invention can be exerted simply by modifying the shape of the suction port 3. That is, the present embodiment allows the suction force to be controlled simply by changing the device configuration and without the need to precisely control the negative pressure.
A suction port 22 in the takeout roller 2′ has circular holes having a relatively small aperture area and arranged downstream in the rotation direction R of the takeout roller 2′ and circular holes having a relatively large aperture area and arranged upstream in the rotation direction R. When the suction port 22 is composed of the circular holes with the plurality of different aperture areas, the downstream aperture area can be set smaller than the upstream area as is the case with the first embodiment, described above. This enables a reduction in the aperture area of the part of the suction port 2 which approaches the sheet P earlier during the deceleration of the takeout roller 2′. As a result, effects similar to those of the first embodiment, described above, can be exerted.
Furthermore, according to the first variation, the suction port 22 is composed of the combination of the plurality of holes. Thus, compared to the first embodiment, described above, the first variation is expected to exert an appropriate edge effect between the sheet P sucked by and contacted with the suction surface 2a and the suction port 22. That is, the increased length of the edge of the suction port, which sucks the sheet P, correspondingly increases the length of the edge contacting the sheet P. This allows a stronger conveying force to be applied to the sheet P via the suction surface 2a, making it possible to inhibit a possible slip between the suction surface 2a and the sheet P.
However, in view of the peel property of the sheet P released from the suction surface 2a after the sheet P has been taken out, the elasticity of the sheet P, and the like, it is necessary to appropriately select the aperture area and shape of the suction port according to the surface condition of the sheets to be processed and the elasticity of the sheets.
The suction ports 23 in the takeout roller 2″ are arranged such that the downstream arrangement density is lower (sparser) than the upstream arrangement density in the rotation direction R of the takeout roller 2″. When the arrangement density of the large number of suction ports 23 is thus varied, it is possible to reduce the aperture area of the part of the suction port 2 which approaches the sheet P earlier during the deceleration of the takeout roller 2″, as is the case with the first embodiment, described above. As a result, effects similar to those of the first embodiment, described above, can be exerted.
In the embodiment described above, the suction force applied to the sheet P located at the takeout position is adjusted by modifying the shape of the suction port 3, 22, or 23 or the hole arrangement pattern. However, similar effects can be exerted by modifying the shape of the opening in the negative pressure chamber 6a in the core member 6, around which the takeout roller 2 is annularly installed, as described above. For example, similar effects can be exerted by forming the conventional rectangular suction port 21, described with reference to
Now, a takeout mechanism 20 according to a second embodiment will be described with reference to
As shown in
The takeout roller 2 according to the present embodiment is also rotationally driven in accordance with the velocity diagram in
Continuous generation of a negative pressure via the rectangular suction port 21 may result in various problems as in the case of the conventional example, described with reference to
Specifically, in the present embodiment, the controller 27 turns off the solenoid valve at timings shown by shaded portions in
Thus, switching the solenoid valve 25 at a timing immediately before the stoppage, shown in
With the solenoid valve 25, the sheet can be reliably sucked by and contacted with the suction surface 2 by stopping the takeout roller 2 with the suction port 21 lying opposite the sheet P located at the takeout position and then turning on the solenoid valve 25. However, to take out the sheets P at a high speed and a short pitch, it is necessary to minimize the time for which the takeout roller 2 is stopped. This requires valve control as performed in the present embodiment.
Thus, the third embodiment combines the triangular suction port 3 with the solenoid valve 25 to enable an increase in the takeout speed for the sheet P compared to the first and second embodiments. That is, a reduction in the takeout pitch of the sheets P in the takeout mechanism 20 according to the second embodiment, described with reference to
In contrast, when the suction port 3 is triangular, as is the case with the present embodiment, even if the takeout speed for the sheet P is increased enough to start the next suction before the negative pressure in the negative pressure chamber 6a returns to atmospheric pressure, a strong suction force can be prevented from being applied to the sheet P during the deceleration of the takeout roller 2. This makes it possible to prevent the sheet P from being misaligned, stained, or damaged. Thus, the takeout mechanism 30 according to the present embodiment can increase the takeout speed for the sheet P compared to the takeout mechanisms 10 and 20 according to the first and second embodiments, described above.
When the suction port is formed of the plurality of small holes 32 or 34 as in the case of the first and second variations, an inelastic sheet P can be prevented from being excessively drawn into the holes. In contrast, with the triangular suction port 3, described with reference to
Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and representative embodiments shown and described herein.
Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.
For example, in the description of the first to third embodiments, the takeout roller 2 is used as a rotating member rotating in contact with the sheet P located at the takeout position. However, the present invention is not limited to this. An endless takeout belt may be used as a rotating member as shown in
For example,
A suction port 48 is formed in the takeout belt 42 and passes by the opening 46 in the negative pressure chamber 44 when the speed is minimized during traveling. The suction port 48 in the takeout belt 42 according to the present embodiment is triangular, as is the case with the first embodiment, described above.
That is, the present embodiment can control the suction force applied to the sheet P located at the takeout position, when the deceleration of the takeout belt 42 is about to end. This makes it possible to prevent the sheet P from being misaligned, stained, or damaged.
Likewise,
a) is a plan view of a takeout mechanism 50 according to a fifth embodiment of the present invention which functions similarly to the takeout mechanism 20 according to the second embodiment, described above.
As described above, even if the takeout belt is used as a rotating member that contacts the sheet P located at the takeout position, effects can be exerted which are similar to those exerted when the takeout roller is used. The takeout timing for the sheet P can be prevented from deviating, enabling the pitches or gaps between the sheets P to be stabilized. The sheet P can also be prevented from being stained or damaged as a result of a difference in speed between the belt and the sheet P.
Number | Date | Country | Kind |
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2007-147107 | Jun 2007 | JP | national |