The present invention relates to a coupling pin extracting apparatus, and a working machine provided with same.
For example, Japanese Laid-Open Patent Publication No. 2009-13730 recites a jig for removing a coupling pin which couples coupling bodies from a pin hole (hole portion). According to the technique recited in the literature (see
According to the technique recited in the literature, when a coupling pin is pushed out from a pin hole, components of the jig are arranged inside the pin hole. On this occasion, for example, moving of a coupling body or the like might cause the components of the jig arranged inside the pin hole and the pin hole to come into contact with each other. As a result, the jig might be damaged.
Additionally, since the jig is used for removing a coupling pin from a pin hole, a length of the jig in an axial direction of the coupling .pin (a coupling pin axial direction) is expected to matter. For this reason, it is demanded to reduce a length of the jig in the coupling pin axial direction.
An object of the present invention is to prevent, in a coupling pin extracting apparatus which extracts a coupling pin from a pin hole and in a working machine provided therewith, a component of a jig from coining into contact with an inner circumference surface of the pin hole when the coupling pin is removed from the pin hole, while reducing a length of the jig in an axial direction of the coupling pin.
A coupling pin extracting apparatus according to the present invention is provided in a working machine. The working machine includes a first coupling body, a second coupling body, and a coupling pin. The first coupling body has a pin hole opened. The second coupling body is arranged adjacent to the first coupling body and has a pin hole opened. The coupling pin is inserted into the pin holes to couple the first coupling body and the second coupling body. The coupling pin extracting apparatus extracts the coupling pin from the pin hole in an axial direction. The coupling pin extracting apparatus includes a frame, at least one cylinder, and a connection member. The frame is attached to the first coupling body to be opposed to the pin hole on a side opposite to the second coupling body in the axial direction of the coupling pin. The frame defines a space portion which accepts the coupling pin extracted from the pin hole. At least one cylinder is arranged to be opposed to the space portion in a direction orthogonal to the axial direction. The cylinder has a cylinder fixed portion which is fixed to the frame, and a cylinder movable portion which is fit on the cylinder fixed portion and is movable relative to the cylinder fixed portion. The connection member connects the coupling pin and the cylinder movable portion with each other such that the coupling pin is extracted from the pin hole in the axial direction and is also guided to the space portion in association with extension operation of the cylinder caused by relative movement of the cylinder movable portion.
Additionally, the working machine according to the present invention includes a main body portion including a slowing frame, a boom attached to the slewing frame in a raisable and lowerable manner, a boom foot pin which couples the slewing frame and the boom to allow the boom to be raised and lowered, and the above coupling pin extracting apparatus. The first coupling body includes the slewing frame, the second coupling body includes the boom, and the coupling pin includes the boom foot pin. The boom foot pin is designed to be inserted into the pin holes opened in the slewing frame and a base end portion of the boom. The coupling pin extracting apparatus extracts the boom foot pin from the pin hole.
With reference to
The working machine 1 is a machine which conducts work. The working machine 1 conducts, for example, construction work. The working machine 1 may be a machine which conducts work other than construction work. The working machine 1 is, for example, a crane, or a movable crane. The working machine 1 includes a lower travelling body 5 (see
The lower travelling body 5 causes the working machine 1 to travel (
The upper slewing body 10 (the main body portion) is attached to the lower travelling body 5 so as to be turnable with respect to the lower travelling body 5. The upper slewing body 10 includes a slewing frame 11 (a first coupling body), a counter weight 13, a cab 15, and a guard 17.
The slewing frame 11 (the first coupling body) is a structure to which the counter weight 13, the cab 15 and the like are attached and has a shape elongating along a front-back direction in
The direction in which the slewing frame center line 11a extends is defined as a front-back direction (X) of the working machine 1. In the front-hack direction, a direction heading from the counter weight 13 to the cab 15 is defined as a forward direction (X1) and a reverse direction thereof is defined as a backward direction (X2). A horizontal direction orthogonal to the front-back direction is defined as a lateral direction (Y). In the lateral direction, a direction heading to the slewing frame center line 11a is defined as a lateral inward direction (Y1), and a direction going away from the slewing frame center line 11a is defined as a lateral outward direction (Y2). As shown in
The pair of boom attaching portions 11b is a part to which the boom 20 is attached. The pair of boom attaching portions 11b protrudes upward from a base plate of the slewing frame 11. An upper surface of each of the boom attaching portions 11b has a part slanting in the front-back direction so as to be located lower to the forward direction. As shown in
The counter weight 13 is a weight fixed to a back side part of the slewing frame 11. The cab 15 is a driver's cab in which an operator of the working machine 1 operates the working machine 1. The guard 17 covers an equipment mounted on the slewing frame 11 and includes, for example, an engine guard covering an engine. An end portion of the guard 17 in the lateral outward direction (Y2) is defined as a “vehicle width outermost part 17s”.
The boom 20 (the second coupling body) is a member which lifts up a hung load via a rope (not shown) and is capable of going up and down with respect to the upper slewing body 10. The boom 20 is attached to the slewing frame 11 via the coupling pin 30 in a raisable and lowerable manner. The boom 20 in a down state extends along the front-back direction. The boom 20 has, for example, a box-shaped structure and is designed to be extensible (a telescopic boom). The boom 20 has the pin hole H20 (a second hole portion, a hole portion) formed (opened). The pin hole H20 is located on the same axis as that of the pin hole H11. The pin hole H20 is arranged in a back side end portion (base end portion) of the boom 20. The back side end portion of the boom 20 is arranged between the pair of boom attaching portions 11b so as to be adjacent to the pair of boom attaching portions 11b. The pin hole H20 and the pin holes H11 configure a pin hole H.
The coupling pin 30 is a pin to be attached or detached by the coupling pin attaching/detaching apparatus 40. The coupling pin 30 is put into (attached to, inserted into) the pin hole H (the pin hole H20 and the pin holes H11). The coupling pin 30 couples the slewing frame 11 and the boom 20 so as to allow the boom 20 to be raised and lowered with respect to the slewing frame 11. The coupling pin 30 is referred to also as a boom foot pin. As shown in
(Direction of Coupling Pin)
A direction in which the coupling pin central axis 30a extends is defined as a coupling pin axial direction (A) (
The coupling pin side bracket 33 is a member for connecting a connection member 80 (to be noted below) and the coupling pin 30. The coupling pin side bracket 33 is fixed to the coupling pin main body portion 31, and protrudes from an end portion (a right end portion) on a coupling pin extraction direction downstream side of the coupling pin main body portion 31 toward the coupling pin extraction direction (A2) (a right direction).
As shown in
A position of the fixing portion 41 with respect to the pin hole H is fixed. The fixing portion 41 is a member (bracket) for supporting and fixing the attaching/detaching apparatus 50. The fixing portion 41 is arranged in the vicinity of the pin hole H without blocking the pin hole H. The fixing portion 41 is fixed to a side surface (a right side surface) of the boom attaching portion 11b on the downstream side in the coupling pin extraction direction, and protrudes from the boom attaching portion 11b in the coupling pin extraction direction. As shown in
As shown in
The attaching/detaching apparatus 50 (extraction apparatus) is an apparatus which attaches and detaches the coupling pin 30 as shown in
The frame 60 supports the cylinder 70 and the connection member 80. The frame 60 is attached to the slewing frame 11 so as to be opposed to the pin hole H11 on the side opposite to the boom 20 in the axial direction of the coupling pin 30. Additionally, the frame 60 defines a space portion which accepts the coupling pin 30 extracted from the pin hole H11. As shown in
The frame main body portion 61 includes, for example, a generally box-shaped structure and includes, for example, a plurality of plate-shaped members. As shown in
The tubular portion 62 guides a guide portion 85 to be described later at the time of attaching or detaching the coupling pin 30 as shown in
The connecting pin attaching/detaching opening portion 63 is opened for attaching and detaching a connecting pin P5 as shown in
The grip 64 is a part held by a worker at the time of work for rotating the attaching/detaching apparatus 50 with respect to the fixing portion 41. As shown in
The cylinder tube fixing portion 65 is fixed to the frame main body portion 61 as shown in
The cylinder tube supporting portion 66 is fixed to the frame main body portion 61 to support, for example, a front end side part of the cylinder tube 71 in the coupling pin insertion direction with respect to the frame main body portion 61.
The movable side storage portion 67 is a part connected to the fixing side storage portion 45 and is fixed to the fixing side storage portion 45 when the frame 60 is in the stored state as shown in
The cylinder 70 is arranged opposed to the space portion in the frame 60 in a direction orthogonal to the axial direction of the coupling pin 30 and is extensible. Extension of the cylinder 70 is controlled by a hydraulic system not shown of the working machine 1. The cylinder 70 is a driving mechanism which attaches and detaches the coupling pin 30. The cylinder 70 is attached to the frame 60. A central axis of the cylinder 70, which is a central axis extending in a longitudinal direction of the cylinder 70, is defined as a cylinder central axis 70a. The cylinder 70 is extensible along a direction in which the cylinder central axis 70a extends. In the present embodiment, a plurality of, for example, two cylinders 70 are provided. Each of the plurality of cylinders 70 includes the cylinder tube 71 (the cylinder fixed portion) and a cylinder rod 73 (the cylinder movable portion). The cylinder tube 71 is fixed to the frame main body portion 61, and is fixed to each of the cylinder tube fixing portion 65 and the cylinder tube supporting portion 66. The cylinder rod 73 is fit on the cylinder tube 71 so as to be movable with respect to the cylinder tube 71 along the cylinder central axis 70a direction.
The cylinder 70 is arranged outside the coupling pin 30 in the coupling pin radial direction. The cylinder central axis 70a is arranged outside the coupling pin central axis 30a in the coupling pin radial direction. Additionally, the cylinder 70 (at least a part thereof) is arranged outside a locus of the coupling pin 30 in the coupling pin radial direction at the time of attaching or detaching of the coupling pin 30.
Additionally, the cylinder 70 may be arranged only outside the locus of the coupling pin 30 in the coupling pin radial direction at the time of attaching or detaching of the coupling pin 30. For example, the cylinder 70 may be only arranged outside the tubular portion 62 in the coupling pin radial direction.
Additionally, an extension and contraction direction of the cylinder 70 may be parallel to the coupling pin axial direction (may be parallel to the coupling pin central axis 30a).
Hereinafter, as shown in
The plural cylinders 70 are arranged so as to sandwich the coupling pin 30 from the outer side in the coupling pin radial direction. More specifically, in a case where two cylinders 70 are provided, two (a pair of) cylinders 70 are arranged at both sides in the radial direction with the coupling pin 30 sandwiched therebetween when viewed from the axial direction of the coupling pin 30, and at least a part of the coupling pin 30 is arranged on the line segment L as shown in
When two cylinders 70 are provided, at least a part of the coupling pin 30 may be arranged at a middle point of the line segment L as shown in
The plural cylinders 70 are arranged to be rotationally symmetric with respect to the coupling pin central axis 30a when viewed along the axial direction of the coupling pin. More specifically, when two cylinders 70 are provided, the cylinder central axes 70a in the front end portions of the cylinders 70 (both ends of the line segment L) are arranged to be point symmetric with respect to the coupling pin central axis 30a as shown in
In the following, description will be made of a case where as shown in
The connection member 80 connects the coupling pin 30 and the cylinder 70 with each other such that in association with extension operation of the cylinder 70 due to relative movement of the cylinder rod 73, the coupling pin 30 is extracted at least from the pin hole H20 along the axial direction and is also guided into the space portion in the frame 60 (
The first rod 81 is a rod (a generally linear member, a bar-shaped member) connected to each cylinder rod 73 of the plurality of cylinders 70. The first rod 81 is connected to a front end portion of the cylinder rod 73. The first rod 81 extends in the front-back direction.
The second rod 82 is a rod which connects the first rod 81 and the coupling pin 30 with each other. The second rod 82 is connected to the first rod 81 between the front end portions of the plurality of (two) cylinder rods 73. The second rod 82 is connected to the first rod 81 at a center part of the first rod 81 in a longitudinal direction. The second rod 82 is connected to the coupling pin 30 via the connection member side bracket 87. The second rod 82 extends along the coupling pin axial direction and extends in the lateral direction. The second rod 82 (at least a part thereof) is arranged inside the tubular portion 62. Shapes of the first rod 81 (the first member) and the second rod 82 (the second member) are not limited to the above.
The guide portion 85 guides movement of the connection member 80 with respect to the frame 60. The guide portion 85 causes the connection member 80 to move with respect to the frame 60 along the coupling pin axial direction and regulates movement of the connection member 80 with respect to the frame 60 in the coupling pin radial direction. The guide portion 85 is fixed to the second rod 82, for example, to a downstream side part of the second rod 82 in the coupling pin insertion direction (e.g., an end portion). The guide portion 85 is arranged inside the tubular portion 62 and is in contact with an inner surface of the tubular portion 62. The guide portion 85 is slidable with respect to the tubular portion 62. The guide portion 85 includes a pair of slide members 85S arranged at a part in contact with the inner surface of the tubular portion 62 (see
The connection member side bracket 87 is a member (bracket) for connecting the connection member 80 and the coupling pin 30. The connection member side bracket 87 is connected (fixed) to the coupling pin side bracket 33 via the connecting pin P5. The connection member side bracket 87 is fixed to the end portion of the second rod 82 on the downstream side in the coupling pin insertion direction.
(Shape of Frame Main Body Portion 61)
A structure of the frame main body portion 61 is set according to arrangement of the cylinder 70 shown in
In the frame main body portion 61, a width, in the front-back direction, of an end portion on the downstream side in the coupling pin insertion direction, is larger than the width, in the front-back direction, of the generally center part of the frame main body portion 61 in the coupling pin axial direction. This ensures an interval between the support pin P1 and a fixing pin P3 in the front-back direction.
In the frame main body portion 61, compared with a width, in the front-back direction, of each of a downstream side part in the coupling pin insertion direction and a downstream side part in the coupling pin extraction direction, the width, in the front-back direction, of the generally center part of the frame main body portion 61 in the coupling pin axial direction, is small. This configuration enables the frame main body portion 61 to be light-weighted more than the frame main body portion 61 having a rectangular solid shape, for example.
(Details of Each Pin)
The support pin P1 is a pin which connects the fixing portion 41 and the frame 60 so as to allow the frame 60 to be rotatable with respect to the fixing portion 41. The support pin P1 is put into a hole portion not shown which is opened, for example, in a front side part of each of the fixing portion 41 and the frame 60. In particular, the support pin P1 is put into a hole portion opened in an end portion of the frame 60 on the downstream side in the coupling pin insertion direction. A direction of a central axis of the support pin P1 is parallel to the up-down direction. That the direction of the central axis is parallel to the up-down direction is also the case with the fixing pin P3, the connecting pin P5, a connection member fixing pin P7, and a storage pin P9 (in another embodiment, a central axis of each pin may not necessarily be parallel to the up-down direction).
The fixing pin P3 is a pin for fixing the frame 60 to the fixing portion 41. The fixing pin P3 is detachably attached with respect to the fixing portion 41 and the frame 60. The fixing pin P3 is put into a hole portion not shown which is opened, for example, in a back side part of each of the fixing portion 41 and the frame 60. In particular, the fixing pin P3 is put into the end portion of the frame 60 on the downstream side in the coupling pin insertion direction. The frame 60 is fixed to the slewing frame 11 via the fixing portion 41 by the fixing pin P3.
As shown in
As shown in
The storage pin P9 is a pin for fixing the frame 60 in the stored state as shown in
(Operation of Coupling Pin Attaching/Detaching Apparatus 40)
The coupling pin attaching/detaching apparatus 40 operates in a manner below. The frame 60 is designed to have a state changeable (position changeable) between the projected state (see
(Projected State)
As shown in
(Coupling Pin Extraction Operation)
When the coupling pin 30 is extracted (at the time of extraction) in the state shown in
When the cylinder 70 is in the extended state, at least a part of the coupling pin 30 is arranged on the side more downstream in the coupling pin extraction direction than an end portion of the cylinder 70 on the downstream side in the coupling pin insertion direction. At this time, at least a part of the coupling pin 30 is sandwiched between the two cylinders 70 in the front-back direction. At this time, a large part of the coupling pin 30 is arranged inside the tubular portion 62.
(Coupling Pin Insertion Operation)
When the coupling pin 30 is put into the hole in the state shown in
(Stored State)
As shown in
Operation of the coupling pin attaching/detaching apparatus 40 is as follows when the state of the frame 60 changes from the projected state (see
The fixing pin P3 is removed from the fixing portion 41 and the frame 60. Next, as shown in
As described in the foregoing, in the present embodiment, the frame 60 is attached to the slewing frame 11 to be rotatable around the rotation axis extending in a direction orthogonal to the axial direction of the coupling pin 30, so that the frame 60 is allowed to change a posture thereof along with rotation around the rotation axis between a projected posture of projecting from the slewing frame 11 in the axial direction by a predetermined amount of projection, the projected posture being a posture where the space portion in the frame 60 accepts the coupling pin 30, and a stored posture of projecting from the slewing frame 11 in the axial direction by an amount of projection smaller than that of the projected posture.
(Problem of Structure for Pushing out Coupling Pin)
Consideration will be given to another jig having a structure in which with the cylinder 70 and the coupling pin 30 coaxially arranged, extension of the cylinder 70 causes the cylinder 70 to push out the coupling pin 30 from the pin hole H (as Comparative Example 1). In this jig of the Comparative Example 1, when the coupling pin 30 is pushed out from the pin hole H, the cylinder rod 73 remains in the pin hole H (boss). Therefore, for example, when the upper slewing body 10 or the boom 20 moves, the cylinder rod 73 might come into contact with the pin hole H to damage the cylinder rod 73.
(Problem of Structure with Coaxially Arranged Cylinder and Coupling Pin)
Additionally, consideration will be given to another jig having a structure in which with the cylinder 70 and the coupling pin 30 coaxially arranged, contraction of the cylinder 70 causes the cylinder 70 to extract the coupling pin 30 from the pin hole H (as Comparative Example 2). The structure of this Comparative Example 2 mitigates the above problem of Comparative Example 1. However, there remains a need of ensuring a “draught” of the coupling pin 30. More specifically, since in Comparative Example 2, the cylinder 70 is coaxially arranged with the coupling pin 30, the cylinder 70 in the contracted state should be arranged on the side more downstream in the coupling pin extraction direction than the extracted coupling pin 30. Therefore, as compared with the present embodiment, a length of a jig (a length of a configuration, an entire length) in the coupling pin axial direction might be increased.
(Problem of Protrusion from Vehicle Width Outermost Part 17s)
When the jig is long in the lateral direction as in Comparative Example 2, the jig might largely protrude from the vehicle width outermost part 17s (see
Effects obtained by the coupling pin attaching/detaching apparatus 40 shown in
The cylinder 70 is arranged outside the coupling pin 30 in the radial direction of the coupling pin and is extensible. The connection member 80 is connected to the coupling pin 30 and the cylinder 70. Extension of the cylinder 70 causes the coupling pin 30 to be extracted from the pin hole H via the connection member 80.
In such a configuration, when the coupling pin 30 is extracted, it is unnecessary to arrange (leave) the components of the coupling pin attaching/detaching apparatus 40 (e.g., the cylinder rod 73, the second rod 82 and the like shown in
Additionally, as shown in
The “length of the coupling pin attaching/detaching apparatus 40 in the coupling pin axial direction” is a length in the coupling pin axial direction from the pin hole H to an end portion of the coupling pin attaching/detaching apparatus 40 on the downstream side in the coupling pin extraction direction. Additionally, this length is a length when the cylinder 70 is in the contracted state. Additionally, this length is a length when the frame 60 is in the projected state in the present embodiment.
Additionally, in the present embodiment, a plurality of cylinders 70 is provided. Therefore, compared with a case where only one cylinder 70 is provided, each cylinder 70 can be reduced in size.
Additionally, in the present embodiment, as shown in
The plurality of cylinders 70 is arranged to be rotationally symmetric with respect to the coupling pin central axis 30a when viewed along the coupling pin axial direction. This enables further suppression of the bending force generated in the connection member 80. As a result, the connection member 80 can be further reduced in size and weight to realize a simple configuration.
Additionally, in the present embodiment, the connection member 80 includes the first rod 81 connected to each of the plurality of cylinders 70, and the second rod 82 connected to the first rod 81 and the coupling pin 30 as shown in
Further, in the present embodiment, a direction of extension and contraction of the cylinder 70 is a direction parallel to the coupling pin central axis 30a. Thus, it is not necessary to provide a mechanism for converting operation of the cylinder 70 in the extension and contraction direction to operation in the coupling pin axial direction. Thus, the connection member 80 can be reduced in size and weight to realize a simple configuration.
Further, in the present embodiment, a direction in which the coupling pin central axis 30a extends (the coupling pin axial direction) is a direction orthogonal to a longitudinal direction of the upper slewing body 10 of the working machine 1 and a direction extending in the horizontal direction (the lateral direction) as shown in
Additionally, in the present embodiment, the coupling pin attaching/detaching apparatus 40 includes the fixing portion 41 and the frame 60 as shown in
Further, in the present embodiment, the coupling pin attaching/detaching apparatus 40 includes the fixing pin P3 as shown in
Further, in the present embodiment, the direction in which the coupling pin central axis 30a extends is parallel to the horizontal direction (the lateral direction) orthogonal to the longitudinal direction of the upper slewing body 10 of the working machine 1 as shown in
Specifically, for example, there is a case where when the frame 60 is in the projected state, the coupling pin attaching/detaching apparatus 40 protrudes from the vehicle width outermost part 17s in the lateral outward direction as shown in
Further, in the present embodiment, the first coupling body is the slewing frame 11 configuring the main body portion (the upper slewing body 10) of the working machine 1. The second coupling body is the boom 20 attached to the slewing frame 11 via the coupling pin 30 in a raisable and lowerable manner. The coupling pin 30 is a boom foot pin inserted into the pin hole H20 formed at the base end portion (the end portion on the back side) of the boom 20.
In this case, the coupling pin attaching/detaching apparatus 40 is used for extracting the boom foot pin of a crane. The boom foot pin is larger than another pin (e.g., the support pin P1 in
As described in the foregoing, in the present embodiment, the working machine 1 includes the upper slewing body 10 including the stewing frame 11, the boom 20 attached to the slewing frame 11 to be able to be raised and lowered, the boom foot pin which couples the slewing frame 11 and the boom 20 so as to enable the boom 20 to be raised and lowered, and the coupling pin attaching/detaching apparatus 40. The first coupling body according to the present invention includes the slewing frame 11, the second coupling body includes the boom 20, and the coupling pin includes the boom foot pin. The boom foot pin is designed to be inserted into the pin hole H11 opened in the slewing frame 11 and into the pin hole H20 opened in the base end portion of the boom 20. The coupling pin attaching/detaching apparatus 40 extracts the boom foot pin at least from the pin hole H20.
Although the members (the first coupling body and the second coupling body) coupled by the coupling pin 30 in the above embodiment are the slewing frame 11 and the boom 20, either one or both of these may be changed. The coupling pin 30, which is the boom foot pin in the above embodiment, may be another pin. The coupling pin 30, which is arranged in a back side part of the boom attaching portion 11b in the above embodiment, may be arranged in, for example, an end portion on the front side of the slewing frame 11. The boom 20, which is an extensible boom in the above embodiment, may be a latticed boom.
The coupling pin attaching/detaching apparatus 40 is used for extracting the coupling pin 30, and may not necessarily be used for putting the coupling pin 30 into the pin hole H.
The arrangement and the operation directions in the above embodiment may be changed. For example, the coupling pin axial direction, which is the lateral direction in the above embodiment, may be the front-back direction or the up-down direction, or a direction slanting to these directions. For example, although when the working machine 1 is viewed from the back side toward the front side, the coupling pin attaching/detaching apparatus 40 is arranged further on the right side than the boom attaching portion 11b in
A part of the components of the above embodiment may not necessarily be provided. For example, such a configuration as shown in
Fixing or connection may be made directly or indirectly. For example, the frame 60, which is fixed to the slewing frame 11 via the fixing portion 41 in the above embodiment, may be directly fixed to the slewing frame 11. For example, the fixing portion 41, which is separate from the slewing frame 11 in the example shown in
The number of components in the above embodiment may be changed. For example, although two cylinders 70 are provided in the present embodiment and four cylinders 70 are provided in
The shapes of the components in the above embodiment may be changed. For example, the connection member 80 may not necessarily be provided with such rods as the first rod 81 and the second rod 82.
A detachable pin such as the fixing pin P3 may not necessarily be attached or detached manually, but may be attached or detached using a tool or a jig.
This application is based on Japanese Patent application No. 2016-121131 filed in Japan Patent Office on Jun. 17, 2016, the contents of which are hereby incorporated by reference.
Although the present invention has been fully described by way of example with reference to the accompanying drawings, it is to be understood that various changes and modifications will be apparent to those skilled in the art. Therefore, unless otherwise such changes and modifications depart from the scope of the present invention hereinafter defined, they should be construed as being included therein.
Number | Date | Country | Kind |
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2016-121131 | Jun 2016 | JP | national |