This patent application is based on and claims priority pursuant to 35 U.S.C. § 119(a) to Japanese Patent Application No. 2015-245725, filed on Dec. 16, 2015, in the Japan Patent Office, the entire disclosure of which is hereby incorporated by reference herein.
Technical Field
Aspects of the present disclosure relate to a sheet-material supply device.
Related Art
There has been conventionally known a sheet-material supply device that supplies a sheet material by attracting and retaining an uppermost sheet material of a sheet-material bundle in a stacked state that is obtained by stacking a plurality of sheet materials on a table (stacker) that can elevate, and conveying the sheet material toward an external device.
In one aspect of the present disclosure, there is provided a sheet-material supply device that includes a lift, a sheet-material detector, and a sheet-material retaining conveyor. The lift elevates sheet materials in a stacked state. The sheet-material detector detects that an uppermost sheet material of the sheet materials in the stacked state has reached a predetermined height. The sheet-material retaining conveyor retains and conveys the uppermost sheet material that has reached the predetermined height. The sheet-material supply device stops elevation of the sheet materials in the stacked state when the sheet-material detector detects that the uppermost sheet material has reached the predetermined height. The sheet-material retaining conveyor is disposed to be movable in a direction in which the sheet materials in the stacked state elevate.
The aforementioned and other aspects, features, and advantages of the present disclosure would be better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
The accompanying drawings are intended to depict embodiments of the present disclosure and should not be interpreted to limit the scope thereof. The accompanying drawings are not to be considered as drawn to scale unless explicitly noted.
In describing embodiments illustrated in the drawings, specific terminology is employed for the sake of clarity. However, the disclosure of this patent specification is not intended to be limited to the specific terminology so selected and it is to be understood that each specific element includes all technical equivalents that operate in a similar manner and achieve similar results.
Although the embodiments are described with technical limitations with reference to the attached drawings, such description is not intended to limit the scope of the disclosure and all of the components or elements described in the embodiments of this disclosure are not necessarily indispensable.
Referring now to the drawings, embodiments of the present disclosure are described below. In the drawings for explaining the following embodiments, the same reference codes are allocated to elements (members or components) having the same function or shape and redundant descriptions thereof are omitted below.
Embodiments of the present disclosure will be described below referring to the drawings. In addition, a sheet-material supply device illustrated in the description of the following embodiment is not limited to that illustrated in the drawings, and various types of devices having a sorting function, an inspection function, and the like are targeted.
In addition, a supply target sheet material to be supplied by a sheet-material supply device according to the present embodiment includes a thin plate-shaped or sheet member that can be supplied by the sheet-material supply device according to the present embodiment, and can include resin, protector paper on front and rear surfaces, metallic foil such as beaten copper, electronic circuit board material having been subjected to plate processing, paper, a special film, a plastic film, an electronic circuit board sheet such as prepreg, and the like. Examples of the prepreg include plate-shaped reinforced plastic molding compound obtained by impregnating fibriform reinforcement material such as carbon fiber and glass cloth, with thermoset resin or the like that has been mixed with an additive substance such as curing agent and colorant, and semi-curing the material through heating or drying. In addition, a supply target sheet material includes a metal sheet and paper.
As an example, a sheet material having a width size of about 100 mm to 700 mm is used. In addition, a sheet material having a thickness of about 0.02 mm to 0.2 mm is used. In addition, the thickness of the sheet material is merely an example. As a matter of course, a sheet material having a thickness outside the range may be used.
In addition, in the following description, a conveyance direction X corresponds to a conveyance direction of a sheet material. A vertical direction Z corresponds to a stacking direction of the sheet material. A width direction Y corresponds to a direction perpendicular to the conveyance direction X of the sheet material and the vertical direction Z being the stacking direction of the sheet material.
First, a floating-and-retaining conveyance device forming the sheet-material supply device will be described using
As illustrated in
The stacking table 136 functions as a preparation unit that prepares sheet materials in the stacked state. The stacking table 136 can move in the vertical direction Z using a lift assembly being a sheet-material-stacker driving device. In addition, the sheet-material supply device 130 includes a detection sensor 20 as a sheet-material detector that detects a top face position of the sheet-material bundle 1, and a sheet-material position controller that controls the top face position of the sheet-material bundle 1 by controlling the drive of the lift assembly. With this configuration, if the top face of the sheet-material bundle 1 on the stacking table 136 reaches a predetermined height position detected by the detection sensor 20, an uppermost sheet material 1A is separated and conveyed through an operation described later.
The sheet-material supply device 130 is provided with side fences 137 and 137 being a pair of sheet-material position regulators, a front end guide plate 138, and an end fence 139. The side fences 137 and 137 are disposed on the lateral sides in the sheet material width direction Y of the stacking table 136, to perform positioning in the sheet material width direction Y intersecting with (perpendicular to) the conveyance direction X of the disposed sheet-material bundle 1. The front end guide plate 138 performs positioning of a front end in a length direction corresponding to the conveyance direction X of the sheet-material bundle 1. Furthermore, the end fence 139 similarly performs positioning of a rear end in the length direction.
A side air nozzle 370 indicated by a broken line that is provided on one (left rear side in
The sheet-material supply device 130 in
As described above, the conveyance belt 161 of the floating-and-retaining conveyance device 160 functions as a retaining member that retains and separates a floated sheet material by attracting the sheet material using the negative pressure caused by air suction, and a conveyor that conveys the retained sheet material.
The floating-and-retaining conveyance device 160 may increase the size of the floating-and-retaining conveyance device 160 according to the size of the sheet material. In addition, a plurality of the floating-and-retaining conveyance devices 160 may be used. In addition, conveyance may be started after the completion of retainment and separation of the sheet material that are performed by the floating-and-retaining conveyance device 160, or conveyance may be started before the completion of the retainment and separation. Here, the “retainment” refers to a state in which at least a part of the floated sheet material is retained by the floating-and-retaining conveyance device 160.
An air ejection nozzle device 300 that also serves as an air blower is disposed at a position opposing the front end of the stacked sheet-material bundle 1. In the air ejection nozzle device 300, an air chamber 320 is disposed. From the outside, air being pressurized gas (hereinafter, also referred to as air) is sent to the air chamber 320, and stored therein. In addition, as illustrated in
As described above, the air ejection nozzle device 300 functions as a floating unit that floats a sheet material stacked and prepared on the stacking table 136. Furthermore, the air ejection nozzle device 300 functions as an air ejector that ejects air onto the stacked sheet material and floats the sheet material, and a first air ejection member that ejects air in a direction opposite to the conveyance direction X.
In addition, an air ejecting direction is only required to be a direction opposite to the conveyance direction X. Thus, the air ejecting direction does not have to be parallel to the conveyance direction X, and may be an oblique direction. In addition, the air being gas includes electrically-discharged air, gas used for floating other sheet materials, and separating the sheet materials one by one, and the like. It is especially effective for sheet materials containing carbon fiber to blow electrically-discharged air onto the sheet-material bundle 1 in the stacked state because the sheet materials in the stacked state adhere each other by an electrostatic action, and are difficult to be separated.
As illustrated in
Then, by the operation of the suction blower 390, one sheet material on the uppermost face of the sheet-material bundle 1 is retained by the conveyance belt 161. The uppermost sheet material 1A retained by the conveyance belt 161 is not always a single sheet material. In some cases, sheet materials may be retained in the state of adhering each other. Thus, the side air nozzles 370 as a distribution blower that are provided on the side fences 137 and 137 blow side air, and distribute the sheet materials 1A retained by the conveyance belt 161 so as to be a single sheet material. The distribution refers to assisting the separation by decreasing the adhesion between the sheet materials by ejecting air from side air. After that, the sheet material 1A is conveyed by the conveyance belt 161 to a target conveyance destination (for example, next step). Then, necessary processing is performed.
A sheet-material stopper 177 is disposed between the air chamber 320 and the sheet-material bundle 1 stacked on the uppermost part, and the sheet-material stopper 177 prevents sheet materials other than the uppermost sheet material 1A from being conveyed. In addition, the detection sensor 20 that detects the height of the sheet material is provided for always keeping a distance h constant. The distance h is a distance between the uppermost face position of the sheet materials that declines according to fed sheet materials, and the conveyance belt 161. The detection sensor 20 is a reflective photosensor. The stacking table 136 is adjusted by being elevated using a sheet-material-stacker driving device (lift assembly), based on a signal of the detection sensor 20.
On the stacking table 136, the sheet-material bundle 1 is aligned in accordance with a sheet material size, using the front-end face as a reference face. In addition, a sheet feeding sensor 179 that detects that the sheet material has reached is provided on a downstream in the conveyance direction X of the floating-and-retaining conveyance device 160.
Next, the operations and steps of the sheet-material supply device 130 will be sequentially described. (1) A preparation step (step S1) of preparing sheet materials in the stacked state is performed in the following manner, for example. Specifically, the sheet-material bundle 1 is stacked by an operator on the stacking table 136. Then, for setting the sheet-material bundle 1 in accordance with the sheet material size, the front-end face of the sheet-material bundle 1 is brought into contact with the front end guide plate 138, to be aligned as the reference face. In addition, by operating the side fences 137 and 137 and the end fence 139, lateral end faces and a rear end face of the sheet-material bundle 1 are aligned. In addition, in the preparation step, in place of manpower of the operator or the like, for example, a robot or a dedicated device may perform a stacking operation and sheet material size alignment of the sheet-material bundle 1 as described above.
If a sheet material feeding command is issued from a control unit of the sheet-material supply device 130 in
At the same time, a retaining step (step S3 in
In addition, in
A “distribution step” in step S4 in
(3) Subsequently, as illustrated in
In the above-described sheet-material feeding operation, an air amount of air from the air chamber 320, the distribution blower, and the suction blower 390 is not described. If an air amount of air is fixed to a certain value, a floating amount and a distribution state of sheet materials vary depending on the thickness, the weight, and the size of the stacked sheet materials.
For example, if a floating amount of a sheet material is small, the sheet material is not supplied (not fed). In contrast, if sheet materials are in the state of floating too much, the sheet materials adhere to each other, leading to multifeed. In addition, if the power of the suction blower 390 is small, sheet materials cannot be successfully conveyed. Also in this case, the sheet materials are not supplied, either.
Thus, for appropriately performing sheet material feeding, an air amount suitable for a stacked sheet material is predetermined, and if a user or an operator selects a sheet material desired to be fed, an air amount is automatically set to the predetermined air amount. In addition, an air amount is adjusted according to the value of a duty of a blower.
In addition, a circuit board manufactured using a damaged sheet material may cause a failure in an electrical property (resistance value). Thus, there is such an issue that the separation of sheet materials must be performed so as not to cause a failure in an electrical property (resistance value) of a separated sheet material. To solve the issue, a sheet material separation method of the sheet-material supply device 130 according to the present embodiment includes the following steps: the preparation step including step S1, the first step (floating step) including step S2, and the second step (retaining step) including step S3. In the preparation step including step S1, sheet materials such as the sheet-material bundle 1 are prepared in the stacked state. In the first step (floating step) including step S2, the stacked sheet materials are floated by ejecting air from an air ejector and an air ejection member including the air ejection nozzle device 300. In the second step (retaining step) including step S3, the floated sheet materials are retained by a retaining member including the conveyance belt 161, and separated. By executing such steps, the sheet materials can be easily separated without impairing the quality of the sheet materials (without damaging the sheet materials).
In the sheet-material supply device 130 according to the above-described embodiment, in some cases, a small-sized foreign substance or sheet material smaller than a large-sized (large-format) supply target sheet material may be placed at a position opposing a sheet attraction position of the floating-and-retaining conveyance device on the uppermost face of the sheet-material bundle 1 in the stacked state. If the stacking table 136 on which sheet materials are stacked is elevated in this case, the small-sized sheet material or foreign substance contacts a lower end of the floating-and-retaining conveyance device before the detection sensor 20 as a sheet-material detector detects that the sheet material 1A is positioned at the predetermined height. If the floating-and-retaining conveyance device continues elevating in such a contact state, the floating-and-retaining conveyance device may be damaged, or the small-sized sheet material or foreign substance placed on the uppermost face of the sheet-material bundle 1 may be damaged.
Thus, in the following embodiment, a plurality of floating-and-retaining conveyance devices (sheet-material retaining conveyors) that retains and conveys the sheet material 1A is disposed to be movable in a direction in which the sheet-material bundle 1 in the stacked state that is stacked on the stacking table 136 elevates. In addition, the elevating drive of the stacking table 136 is controlled to stop when the elevation of at least one of the plurality of floating-and-retaining conveyance devices is detected in the elevating drive of the stacking table 136.
The sheet-material supply device 130 according to the present embodiment includes a plurality of (6 in the example illustrated in the drawings) floating-and-retaining conveyance devices 160 similar to that in the above-described sheet-material supply device illustrated in
On the side of the plurality of floating-and-retaining conveyance devices 160 in an X direction in the drawings, there is included a plurality of (3 in the example illustrated in the drawings) conveyance belt units 175 as a sheet-material conveyor to further convey sheet materials retained and conveyed by the floating-and-retaining conveyance devices 160, toward an external device. The conveyance belt units 175 can be formed by, for example, units obtained by vertically inverting the above-described floating-and-retaining conveyance device 160 described using
The lift device 120 includes a drive motor 121 as a drive source, a lift support table 122 inserted into the lower frame 112 of the main body 130′ so as to be vertically movable, and a drive transmitter 123 that drives the lift support table 122 in the vertical direction by transmitting rotational drive force of the drive motor 121. The drive transmitter 123 can be formed by, for example, a gear, a driving belt, and the like.
A stacking table 136 on which sheet materials are to be stacked is installed on the lift support table 122 that is moved in the vertical direction by the lift device 120. The stacking table 136 is provided with a handle 140. By operating the handle 140, a user (operator) can move the stacking table 136 onto the lift support table 122 lowered to a predetermined stacking table attachment position in
In addition, as illustrated in
In the normal state in which only large-sized (large-format) sheet materials are stacked on the stacking table 136 of the sheet-material supply device 130 illustrated in
In the abnormal state of the sheet-material supply device 130 illustrated in
In addition, in the sheet-material supply device 130 according to the present embodiment, the elevation of the stacking table 136 is controlled to stop when the elevation detector 180 detects the elevation of at least one of the plurality of floating-and-retaining conveyance devices 160. This can prevent the damages to the floating-and-retaining conveyance device 160 and the sheet-material bundle 1 more reliably. In addition, because each of the plurality of floating-and-retaining conveyance devices 160 is provided with the elevation detector 180, various positions of the small-sized sheet-material bundle 2 on the stacking table 136 can be handled. In other words, even if the small-sized sheet-material bundle 2 positions below any of the plurality of floating-and-retaining conveyance devices 160, the damages to the floating-and-retaining conveyance device 160 and the sheet-material bundle 1 that are caused by the elevation of the sheet-material bundle 2 can be prevented more reliably.
According to the sheet-material supply device 130 according to the present embodiment, sheet materials can be supplied without impairing the quality of the sheet materials. A circuit board manufactured using a damaged sheet material as a circuit board sheet may cause a failure in the property of a resistance value or the like. Nevertheless, according to the sheet-material supply device 130 according to the present embodiment, there can be provided a sheet-material supply device that can supply sheet materials without impairing the quality of the sheet materials (without damaging the sheet materials). Thus, the failure of the above-described circuit board can be prevented. This effect is for solving a technical issue specific to circuit board sheets among sheet materials.
In addition, in
The control unit 500 includes a central processing unit (CPU) 501. In addition, the control unit 500 includes a read only memory (ROM) 503 and a random access memory (RAM) 504 that serve as a storage device and are connected to the CPU 501 via a bus line 502, and an input/output (I/O) interface 505. The CPU 501 executes various types of calculation and drive control of each unit by executing control programs being preinstalled computer programs. The ROM 503 prestores computer programs and fixed data such as control data. The RAM 504 functions as a work area or the like that stores various types of data in a rewritable manner. In addition, the control unit 500 may be formed by using, for example, an integrated circuit (IC) or the like that serves as a semiconductor circuit element manufactured for the control in the sheet-material supply device 130, instead of a computer device such as a microcomputer.
Various types of sensors including the detection sensor 20 such as a reflective optical sensor and the elevation detector 180 of the floating-and-retaining conveyance device 160 are connected to the control unit 500 via the I/O interface 505. Here, various types of sensors including the detection sensor 20 and the elevation detector 180 transmit information detected by the sensors to the control unit 500. In addition, a stacking-table elevation driver 200, the above-described nozzle shutter assembly (solenoid) 350, a conveyance belt driver 185, a suction blower driver 190, and the like are connected to the control unit 500 via the I/O interface 505. The control unit 500 controls each unit at a predetermined timing.
Numerous additional modifications and variations are possible in light of the above teachings. It is therefore to be understood that, within the scope of the above teachings, the present disclosure may be practiced otherwise than as specifically described herein. With some embodiments having thus been described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the scope of the present disclosure and appended claims, and all such modifications are intended to be included within the scope of the present disclosure and appended claims.
The effect described in the embodiments of the present disclosure is an example of effects. The effect of the embodiments is not limited to the above-described example.
The above-described embodiments and examples are limited examples, and the present disclosure includes, for example, the following aspects having advantages.
Aspect A
A sheet-material supply device, such as the sheet supply device 130, includes a lift, such as a lift device 120, to elevate sheet materials in a stacked state; a sheet-material detector, such as the conveyed-material sensor 20, to detect that an uppermost sheet material of the sheet materials in the stacked state has reached a predetermined height; and a sheet-material retaining conveyor, such as the floating-and-retaining conveyance device 160, to retain and convey the uppermost sheet material that has reached the predetermined height. The sheet-material supply device stops elevation of the sheet materials in the stacked state when the sheet-material detector detects that the uppermost sheet material has reached the predetermined height. The sheet-material retaining conveyor is disposed to be movable in a direction in which the sheet materials in the stacked state elevate. As described in the above-described embodiments, for such a configuration, sheet materials in a stacked state may be elevated upward in a state in which a small-seized sheet material or foreign substance is placed on the uppermost face of the sheet materials in the stacked state. In the elevation of the sheet materials in the stacked state, even if the small-seized sheet material or foreign substance contacts sheet-material retaining conveyor before detection of the sheet materials to stop the elevation, the sheet-material retaining conveyor elevates together the small-seized sheet material or foreign substance in contact with the sheet-material retaining conveyor. As described above, the elevation of the sheet-material retaining conveyor together the small-seized sheet material or foreign substance prevents a strong force from the small-seized sheet material or foreign substance from acting on the sheet-material retaining conveyor. Such a configuration can prevent damage to the sheet-material retaining conveyor in the elevation of the small-seized sheet material or foreign substance.
Aspect B
The sheet-material supply device according to aspect A further includes an elevation detector, such as the elevation detector 180, to detect elevation of the sheet-material retaining conveyor from a retaining position at which the sheet-material retaining conveyor retains the uppermost sheet material that has reached the predetermined height; and a controller, such as the controller 500, to control elevation of the sheet materials in the stacked state to stop when the elevation detector detects elevation of the sheet-material retaining conveyor. According to aspect B, as described in the above-described embodiments, elevation of the sheet materials in the stacked state is stopped when elevation of sheet-material retaining conveyor is detected, thus more reliably preventing damage to the sheet-material retaining conveyor.
Aspect C
The sheet-material supply device according to aspect B, the sheet-material supply device includes a plurality of sheet-material retaining conveyors, such as the floating-and-retaining conveyance devices 160, to retain a plurality of portions of the uppermost sheet material different from each other in a plane direction of the uppermost sheet material; and a plurality of elevation detectors, such as the elevation detectors 180, to detect elevation of the plurality of sheet-material retaining conveyors. The controller controls elevation of the sheet materials in the stacked state to stop when at least one of the plurality of elevation detectors detects elevation of at least one of the plurality of sheet-material retaining conveyors. As described in the above-described embodiments, such a configuration can stably and reliably retain large-sized sheet materials with the plurality of sheet-material retaining conveyors. In addition, when the elevation of at least one of the sheet-material retaining conveyor is detected, the elevation of the sheet materials in the stacked state is stopped, thus reliably preventing damage to the plurality of sheet-material retaining conveyors.
Aspect D
The sheet-material supply device according to aspect B or C, the sheet-material retaining conveyor(s) is (are) attachable to and detachable from a device body, such as the device body 130′, of the sheet-material supply device. The elevation detector(s), such as the elevation detector(s) 180, is (are) also an attachment and detachment detector(s) to detect attachment and detachment of the sheet-material retaining conveyor(s). As described in the above-described embodiments, such a configuration obviates the necessity of additional attachment and detachment detector(s), thus allowing cost reduction and downsizing of the sheet supply device.
Aspect E
The sheet-material supply device according to any one of aspects A to D further includes a sheet-material floating unit, such as the air jetting nozzle device 300, to float a sheet material near a top of the sheet materials in the stacked state. As described in the above-described embodiments, such a configuration can more reliably separate and retain the uppermost sheet of the sheet materials in the stacked state.
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