NZ785849A - Fastening tool - Google Patents
Fastening toolInfo
- Publication number
- NZ785849A NZ785849A NZ785849A NZ78584922A NZ785849A NZ 785849 A NZ785849 A NZ 785849A NZ 785849 A NZ785849 A NZ 785849A NZ 78584922 A NZ78584922 A NZ 78584922A NZ 785849 A NZ785849 A NZ 785849A
- Authority
- NZ
- New Zealand
- Prior art keywords
- rotation
- guide member
- rotation guide
- fastening tool
- screw
- Prior art date
Links
- 230000005540 biological transmission Effects 0.000 claims abstract 8
- 239000000758 substrate Substances 0.000 claims 5
- 150000002500 ions Chemical class 0.000 claims 1
Abstract
fastening tool includes: a cylindrical rotation guide member extending in one direction and rotatably supported; a holding member having an opening in which a driver bit is detachably inserted, and configured to move in an axis direction along the extension direction of the rotation guide member inside the rotation guide member and to rotate together with the rotation guide member; and a moving member configured to move the holding member in a front and rear direction along the rotation guide member; a rotation member; and a transmission member connected to the moving member and having flexibility to be wound along an outer periphery of the rotation member. The rotation member is rotated by the motor, so that the moving member is moved with the transmission member in one direction in which a screw engaged with the driver bit is pressed against a fastening target. nside the rotation guide member and to rotate together with the rotation guide member; and a moving member configured to move the holding member in a front and rear direction along the rotation guide member; a rotation member; and a transmission member connected to the moving member and having flexibility to be wound along an outer periphery of the rotation member. The rotation member is rotated by the motor, so that the moving member is moved with the transmission member in one direction in which a screw engaged with the driver bit is pressed against a fastening target.
Description
FASTENING TOOL
This ation claims ty from Japanese patent application 2021-034722, filed
4 March -DSDQHVH SDWHQW DSSOLFDWLRQ -034723, filed 4 March -DSDQHVH SDWHQW
application 2021-034724, filed 4 March -DSDQHVH SDWHQW DSSOLFDWLRQ -034725, filed
4 March -DSDQHVH SDWHQW DSSOLFDWLRQ -149653, filed 14 September DQG -DSDQHVH SDWHQW
application 2021-149654, filed 14 September 2021, the entire contents of which are incorporated by
reference.
TECHNICAL FIELD
[0001a] The present invention s to a fastening tool configured to engage a driver bit with a screw,
to push and press the screw against a fastening target with the driver bit, and to rotate the driver bit for
screwing.
OUND ART
Known is a tool called a portable striking machine configured to strike out connected stoppers
loaded in a ne sequentially from a tip end of a driver guide by using an air pressure of a
compressed air supplied from an air compressor or a combustion re of a gas.
In a tool configured to fasten a screw by rotating a bit and to move the bit in a direction in
which the screw is ed, in the related art, suggested is an air pressure-type screw striking machine
configured to rotate a bit by an air motor and to move the bit by an air pressure in a direction in which
a screw is fastened (for example, refer to PTL 1).
Since the tool configured to use an air pressure is not provided with a motor and the like, a
substrate on which electronic components constituting a control circuit and the like are mounted is not
required. On the other hand, it is necessary to connect and use an air hose, which deteriorates a
handling property.
In contrast, suggested is a screw ng machine configured to compress a spring by a drive
force of a motor configured to rotate a screw, and to strike the screw by urging of the spring (for example,
refer to PTL 2).
CITATION LIST
PATENT LITERATURE
PTL 1: Japanese Patent No.5,262,461
PTL 2: Japanese Patent No.6,197,547
In any of the screw striking machine configured to use the air pressure and the screw striking
machine configured to strike a screw by urging of the spring, it is difficult to control an amount of
movement of the driver bit in the ion in which the screw is fastened.
In addition, as for an electric screw striking machine used with holding a handle by a
hand, a configuration is suggested in which a battery is attached to a lower part of the handle
and a substrate is provided between the handle and the battery. However, with such a
configuration, a dimension of the tool along an extension direction of the handle is increased.
The present invention has been made to solve such problems, and an object of the
present invention is to provide a fastening tool e of easily controlling an amount of
movement of a driver bit in a direction in which a screw is fastened.
[0010] Another object of the t invention is to provide a fastening tool configured to
suppress an increase in dimension of the tool along an extension direction of a .
In order to solve the above-described problems, the present invention provides a
fastening tool including a cylindrical on guide member ing in one direction and
rotatably supported by a bearing; a holding member having an opening in which a driver bit is
detachably inserted, and configured to move in an axis direction along the extension direction
of the rotation guide member inside the on guide member and to rotate together with the
rotation guide ; a moving member configured to move the holding member in a front
and rear direction along the rotation guide member; a rotation member configured to be driven
and to rotate by a motor; and a transmission member connected to the moving member and
having flexibility to be wound along an outer periphery of the rotation member, wherein the
rotation member is rotated by the motor, so that the moving member is moved with the
transmission member in one direction in which a screw engaged with the driver bit is pressed
against a fastening .
In addition, the present invention provided a fastening tool including a tool body
extending in one direction; a handle extending in another direction intersecting with the
extension direction of the tool body; an odating unit provided on one side of the handle
along the ion direction of the tool body and configured to accommodate therein
consumables; and a substrate accommodating part provided on a surface of a side, which faces
the handle, of the accommodating unit and configured to accommodate therein a substrate.
BRIEF DESCRIPTION OF DRAWINGS
is a side cross-sectional view showing an example of an internal ure of
a fastening tool according to the present embodiment.
is a top cross-sectional view showing the e of the internal structure of
the fastening tool according to the present embodiment.
is a front cross-sectional view showing the example of the internal structure
of the fastening tool according to the present embodiment.
is an ed perspective view showing the example of the internal structure
of the fastening tool according to the present embodiment.
is an outer perspective view showing an example of the fastening tool
according to the present embodiment.
is a ctive view showing an example of a main part configuration of the
fastening tool according to the present embodiment.
is a perspective view showing the example of the main part configuration of
the fastening tool according to the present embodiment.
is a sectional perspective view showing the example of the main part
configuration of the fastening tool according to the present embodiment.
is a sectional perspective view showing the example of the main part
configuration of the fastening tool according to the t embodiment.
is a sectional perspective view showing the example of the main part
configuration of the fastening tool according to the present embodiment.
is a top sectional view showing the example of the main part configuration
of the fastening tool according to the t embodiment.
is a top cross-sectional view showing the example of the internal structure of
the fastening tool according to the present embodiment.
is a top cross-sectional view g the e of the internal structure of
the fastening tool according to the present embodiment.
is a cross-sectional view showing an example of an attaching/detaching
holding ism.
is a cross-sectional view showing the example of the attaching/detaching
holding mechanism.
is a perspective view showing the example of the ing/detaching holding
ism.
is a ctive view showing the example of the attaching/detaching holding
mechanism.
is a perspective view showing an example of a screw feeding unit and a nose
unit according to present embodiment.
A is a perspective view showing the example of the fastening tool according to
the present embodiment, as seen from the rear.
B is a perspective view g the example of the fastening tool according to
the present embodiment, as seen from the rear.
C is a perspective view showing the example of the fastening tool according to
the present embodiment, as seen from the rear.
is a perspective view showing an example of a setting unit.
A is a side cross-sectional view showing an example of an operation of the
fastening tool according to the present embodiment.
B is a top sectional view showing the example of the operation of the
fastening tool according to the present embodiment.
A is a cross-sectional view showing a fastened state of a screw.
B is a cross-sectional view showing a fastened state of the screw.
C is a cross-sectional view showing a fastened state of the screw.
DESCRIPTION OF EMBODIMENTS
Hereinafter, an embodiment of the fastening tool of the present invention will be
bed with reference to the gs.
<Configuration Example of Fastening Tool of t Embodiment>
is a side sectional view showing an example of an internal structure of
a fastening tool according to the present embodiment, is a top cross-sectional view
showing the example of the internal structure of the fastening tool according to the present
embodiment, and is a front cross-sectional view showing the e of the internal
structure of the fastening tool according to the present embodiment. In addition, is
an ed perspective view showing the example of the internal structure of the fastening
tool according to the t embodiment, and is an outer perspective view showing
an e of the fastening tool according to the present embodiment.
[0016] A fastening tool 1 of the present ment includes a bit holding unit 3 configured
to hold a driver bit 2 so as to be rotatable and to be movable in an axis direction, a first drive
unit 4 configured to rotate the driver bit 2 held by the bit holding unit 3, and a second drive unit
configured to move the driver bit 2 held by the bit holding unit 3 in the axis direction.
In addition, the fastening tool 1 includes a screw accommodating unit 6 in which a
screw 200 is accommodated, a screw g unit 7 ured to feed the screw accommodated
in the screw accommodating unit 6, and a nose unit 8 configured to be pressed against a
fastening target to which the screw 200 is to be fastened, and to eject the screw.
[0018] In addition, the ing tool 1 includes a tool body 10 and a handle 11. Further, the
fastening tool 1 includes a battery attaching part 13 to which a battery 12 is detachably ed,
at an end portion of the handle 11.
In the fastening tool 1, the tool body 10 extends in one direction along an axis direction
of the driver bit 2 denoted with arrows A1 and A2, and the handle 11 extends in another direction
intersecting with the extension direction of the tool body 10. In the fastening tool 1, the
extension direction of the tool body 10, i.e., the axis direction of the driver bit 2 denoted with
arrows A1 and A2 is ed to as 'front and rear direction'. In addition, in the ing tool
1, the extension direction of the handle 11 is referred to as 'upper and lower ion'. r,
in the fastening tool 1, a direction orthogonal to the extension direction of the tool body 10 and
the extension direction of the handle 11 is referred to as 'right and left direction'.
The first drive unit 4 is provided at the rear, which is one side of the tool body 10, with
the handle 11 interposed therebetween. In addition, the second drive unit 5 is provided at the
front, which is the other side of the tool body 10, with the handle 11 interposed therebetween.
In the screw accommodating unit 6, a plurality of screws 200 are connected by a
connecting band and a spirally wound connected screw is odated.
FIGS. 3A and 3B are perspective views showing an example of a main part
configuration of the fastening tool according to the present embodiment, FIGS. 4A to 4C are
sectional perspective views showing the example of the main part configuration of the fastening
tool according to the present embodiment, and is a top cross-sectional view showing the
example of the main part configuration of the fastening tool according to the present
embodiment, showing details of the bit holding unit 3 and the first drive unit 4. Next, the bit
holding unit 3 and the first drive unit 4 are described with reference to the respective drawings.
The bit holding unit 3 includes a holding member 30 configured to detachably hold the
driver bit 2, a on guide member 31 configured to support the holding member 30 so as to
be movable in the front and rear direction denoted with the arrows A1 and A2 along the axis
direction of the driver bit 2, and to rotate together with the g member 30, a moving
member 32 configured to move the holding member 30 in the front and rear direction along the
rotation guide member 31, and an urging member 33 configured to urge the moving member
32 in a rearward ion d with the arrow A2.
The holding member 30 is constituted by, for example, a circular cylinder-shaped
member having an outer diameter ly smaller than an inner diameter of the rotation guide
member 31, and configured to be ed inside the rotation guide member 31. The holding
member 30 is provided at an end portion on a front side along the axis direction of the driver
bit 2 with an opening 30a having a shape that matches a cross-sectional shape of the driver bit
2. The holding member 30 has an ing/detaching holding mechanism 30c configured to
detachably hold the driver bit 2 and provided in the opening 30a. In the g member 30,
the opening 30a is exposed inside the rotation guide member 31, and the driver bit 2 is
detachably inserted in the opening 30a.
The rotation guide member 31 extends along the extension direction of the tool body
, i.e., the front and rear direction denoted with the arrows A1 and A2 along the axis ion
of the driver bit 2. The rotation guide member 31 has a cylindrical shape in which the g
member 30 is inserted, and an end portion on a front side is rotatably supported via a bearing
34a, which is an example of the bearing, by a metal front frame 10b provided on a front side of
a resin case 10a constituting an exterior of the tool body 10. In addition, an end portion on a
rear side of the rotation guide member 31 is connected to the first drive unit 4.
In the on guide member 31, groove portions 31a extending in the front and rear
direction denoted with the arrows A1 and A2 along the axis direction of the driver bit 2 are
formed at two locations on side parts facing in a radial direction. The rotation guide member
31 is connected to the g member 30 via connecting members 30b configured to penetrate
the holding member 30 in the radial direction and to protrude from both sides of the holding
member 30 as the connecting members 30b enter the groove portions 31a.
[0027] The g member 30 is provided with hole portions penetrating in a direction
perpendicular to a rotation direction of the driver bit 2, and the connecting members 30b are
inserted into the hole portions and fixed by pins 30f. The connecting member 30b is
constituted by a cylindrical member having an oval cross section.
In the connecting member 30b, a long-side direction of the oval shape is a direction
along the extension direction of the groove portion 31a parallel to the axis direction of the driver
bit 2 denoted with the arrows A1 and A2, and a short-side direction of the oval shape is a
direction (denoted with arrows B1 and B2) orthogonal to the extension direction of the groove
portion 31a, i.e., a ion along the rotation direction of the rotation guide member 31. The
connecting member 30b is configured such that a width of the oval shape in the short-side
direction, i.e., a width along the rotation direction of the on guide member 31 is slightly
r than a width of the groove portion 31a along the same direction.
y, the connecting member 30b inserted in the groove portion 31a is supported
by the groove portion 31a so as to be movable along the axis ion of the rotation guide
member 31. Further, the movement of the connecting member 30b along the rotation direction
of the rotation guide member 31 is cted between one side surface and the other side surface
of the groove portion 31a along the extension direction of the groove n 31a. Therefore,
a rotation operation of the rotation guide member 31 causes the connecting member 30b to be
pushed by one side surface or the other side surface of the groove portion 31a according to the
rotation direction of the rotation guide member 31 and to be applied with a force in a
circumferential force, which is the rotation ion, from the rotation guide member 31.
Therefore, when the rotation guide member 31 rotates, the connecting members 30b
are pushed by the groove portions 31a of the rotation guide member 31, so that the holding
member 30 s together with the rotation guide member 31. Further, the connecting
members 30b are guided by the groove portions 31a of the rotation guide member 31, so that
the holding member 30 moves in the front and rear direction along the axis direction of the
driver bit 2.
The moving member 32 is an example of a transmission member, and includes a first
moving member 32a configured to rotate together with the holding member 30 and to move the
holding member 30 in the front and rear ion along the rotation guide member 31, a second
moving member 32c configured to be supported via a bearing 32b by the first moving member
32a and to push the first moving member 32a via the bearing 32b, and a cushioning member
32d attached to a rear side of the second moving member 32c.
[0032] The first moving member 32a is constituted by, for example, a circular cylinder-shaped
member having an inner diameter slightly greater than an outer diameter of the on guide
member 31, and configured to be inserted to an outer side of the rotation guide member 31.
The first moving member 32a is connected to the holding member 30 via the connecting
members 30b ding from the groove portions 31a of the rotation guide member 31, and
therefore, is supported to be movable along the axis direction of the rotation guide member 31.
The bearing 32b is an e of a bearing and is inserted between an outer periphery
of the first moving member 32a and an inner periphery of the second moving member 32c.
The first moving member 32a constitutes a bearing inner ring holding member configured to
hold an inner ring of the bearing 32b, and the second moving member 32c constitutes a bearing
outer ring holding member configured to hold an outer ring of the bearing 32b. In the bearing
32b, the inner ring is supported by the outer periphery of the first moving member 32a so as not
to be movable in the rotation ion and the axis direction, and the outer ring is supported by
the inner periphery of the second moving member 32c so as not to be movable in the rotation
direction and the axis direction.
Thereby, the second moving member 32c is connected to the first moving member 32a
via the bearing 32b in a state where nt in the front and rear direction along the axis
direction is restricted. In addition, the second moving member 32c is configured to rotatably
support the first moving member 32a via the bearing 32b.
Therefore, as the second moving member 32c moves in the front and rear direction
along the axis direction, the first moving member 32a is pushed by the second moving member
32c via the bearing 32b, and moves in the front and rear direction along the axis ion
together with the second moving member 32c. In on, the first moving member 32a is
configured to be rotatable with respect to the second moving member 32c that is not rotatable
with respect to the rotation guide member 31.
The urging member 33 is constituted by a coil , in the present example, is
inserted between the front frame 10b ed on the front side of the case 10a of the tool body
and the second moving member 32c of the moving member 32, outside the rotation guide
member 31, and is in contact with a spring seat 32f arranged to contact an end face of the outer
ring of the bearing 32b. The urging member 33 is compressed as the moving member 32
moves in the forward direction d with the arrow A1, and urges the moving member 32
in the rearward direction denoted with the arrow A2.
The first drive unit 4 includes a bit rotating motor 40 configured to be driven by
electricity supplied from the battery 12, and a speed reducer 41. The bit rotating motor 40 is
an example of the first motor, in which a shaft 40a of the bit rotating motor 40 is connected to
the speed reducer 41, and a shaft 41a of the speed reducer 41 is connected to the rotation guide
member 31. In the first drive unit 4, the speed reducer 41 is configured to use a planetary gear,
and the bit ng motor 40 is ed coaxially with the rotation guide member 31, the
holding member 30 and the driver bit 2 held by the holding member 30.
In the first drive unit 4, the bit rotating motor 40 and the speed reducer 41 are attached
to a metal rear frame 10c provided on a rear side of the case 10a of the tool body 10, and the
shaft 41a of the speed reducer 41 is supported by the rear frame 10c via a bearing 42. The
rotation guide member 31 is rotatably supported via the bearing 42, which is an example of a
bearing, by connecting a rear end portion to the shaft 41a of the speed reducer 41 and ting
the shaft 41a to the rear frame 10c via the bearing 42.
The bit holding unit 3 and the first drive unit 4 are integrally assembled by connecting
the front frame 10b and the rear frame 10c with a coupling member 10d extending in the front
and rear direction, and the front frame 10b is fixed to the case 10a of the tool body 10 by a
screw 10e.
Further, in the bit holding unit 3, an end portion on the front side of the rotation guide
member 31 is supported via the bearing 34a by the front frame 10b fixed to the front side of the
case 10a of the tool body 10, and an end n on the rear side of the rotation guide member
31 is supported via the shaft 41a of the speed reducer 41 and the g 42 by the rear frame
10c fixed to the rear side of the case 10a. Therefore, in the bit holding unit 3, the rotation
guide member 31 is rotatably supported by the tool body 10.
Thereby, the first drive unit 4 is configured to rotate the rotation guide member 31 by
the bit rotating motor 40. When the rotation guide member 31 rotates, the connecting
members 30b are pushed by the groove portions 31a of the rotation guide member 31, so that
the holding member 30 configured to hold the driver bit 2 rotates together with the rotation
guide member 31.
The bit holding unit 3 is provided with a guide member 32g on the second moving
member 32c. The coupling member 10d is provided with a pair of guide wall portions 10g at
an interval slightly larger than a diameter of the guide member 32g, and the guide member 32g
is inserted between the pair of guide wall portions 10g, so that the pair of guide wall portions
10g faces a peripheral e of the guide member 32g.
Thereby, the guide member 32g is guided to the ng member 10d, so that the
second moving member 32c can move in the front and rear ion denoted with the arrows
A1 and A2 along the axis direction of the driver bit 2 and the rotation following the rotation
guide member 31 is restricted.
FIGS. 6A and 6B are top cross-sectional views showing the example of the internal
structure of the fastening tool according to the present embodiment, showing details of the
second drive unit 5. Next, the second drive unit 5 is bed with reference to the tive
drawings.
The second drive unit 5 includes a bit moving motor 50 ured to be driven by
electricity supplied from the battery 12, and a speed reducer 51. The bit moving motor 50 is
an example of the motor and the second motor, in which a shaft 50a of the bit moving motor 50
is connected to the speed reducer 51, and a shaft 51a of the speed reducer 51 is connected to a
pulley 52, which is an e of the rotation member. In the second drive unit 5, the pulley
52 is ted by the tool body 10 via a bearing 53. In the second drive unit 5, the shaft 50a
of the bit moving motor 50 is arranged along the extension direction of the handle 11.
In the second drive unit 5, one end of a string-like wire 54, which is an example of the
transmission member, is connected to the pulley 52, and the pulley 52 rotates, so that the wire
54 is wound along an outer periphery 52a of the pulley 52. In addition, the other end of the
wire 54 is connected to a wire connecting portion 32h provided on the second moving member
32c of the moving member 32. The transmission member may also be a string made of fibers
or the like, a belt made of rubber or the like, or a chain made of a metal or the like, as long as
it has flexibility to be wound along the outer periphery of the rotation member such as the pulley
52. When the transmission member is constituted by a chain, the rotation member may be a
sprocket having teeth.
[0047] Thereby, the second drive unit 5 is configured to move the second moving member
32c in the forward direction denoted with the arrow A1 by rotating the pulley 52 by the bit
moving motor 50 to wind up the wire 54. In the bit g unit 3, when the second moving
member 32c moves forward, the first moving member 32a is pushed via the bearing 32b, and
the first moving member 32a moves forward along the axis direction, together with the second
moving member 32c. The first moving member 32a moves forward, so that the holding
member 30 connected to the first moving member 32a via the ting members 30b moves
forward and the driver bit 2 held by the holding member 30 moves in the forward direction
denoted with the arrow A1.
The second drive unit 5 is arranged offset to one side with t to a ntial
center in a right and left direction of the fastening tool 1 so that a tangential direction of a
portion of the pulley 52 where the wire 54 is wound follows the extension direction of the
rotation guide member 31. That is, the arrangement is such that a center of the pulley 52, in
the present example, the shaft 50a of the bit moving motor 50 is offset to one side with respect
to the rotation guide member 31 and the outer periphery 52a of the pulley 52 on which the wire
54 is to be wound ps the rotation guide member 31, when seen in the axis direction of the
pulley 52.
In addition, the pulley 52 and the like are arranged so that the wire 54 between the
pulley 52 and the second moving member 32c is parallel to the axis direction of the rotation
guide member 31 in the radial direction of the pulley 52, as shown in FIGS. 6A and 6B and is
parallel to the axis direction of the rotation guide member 31 also in the axis ion of the bit
moving motor 50 orthogonal to the radial direction of the pulley 52, as shown in .
Further, if the wire 54 is overlapped and wound on the pulley 52, a distance from the
center of the pulley 52 to the wire 54 changes according to the number of turns. Therefore,
the amount of movement of the driver bit 2 when the pulley 52 makes one rotation changes.
Further, an angle between a ion, in which the wire 54 is stretched between the pulley 52
and the second moving member 32c, and a moving direction of the driver bit 2 along the axis
direction of the rotation guide member 31 changes.
[0051] Therefore, a diameter of the pulley 52 and the like are set so that an amount of rotation
α of the pulley 52, which is required to move the driver bit 2 by a predetermined amount by
moving the moving member 32 from one end portion to the other end portion within a movable
range along one direction, is less than 360°.
Thereby, in an operation where the pulley 52 winds up the wire 54 so as to move the
driver bit 2 by the predetermined amount, the wire 54 is not overlapped and wound on the pulley
52, as shown in , and the amount of movement of the driver bit 2 is suppressed from
being inaccurate. Further, a change in elism between the direction in which the wire 54
is stretched between the pulley 52 and the second moving member 32c and the moving direction
of the driver bit 2 along the axis direction of the rotation guide member 31 is suppressed.
[0053] Therefore, a relationship n the amount of rotation of the bit moving motor 50
and the amount of movement of the holding member 30 becomes a one-to-one relationship over
the entire movable range of the g member 30, so that the amount of movement of the
holding member 30 along the axis direction of the rotation guide member 31 can be controlled
by controlling the amount of rotation of the bit moving motor 50. That is, the amount of
movement of the driver bit 2 attached to the holding member 30 can be lled by controlling
the amount of rotation of the bit moving motor 50.
Further, regardless of the winding amount of the wire 54, the tension that is applied to
the wire 54 is always parallel to the moving direction of the driver bit 2 along the axis direction
of the rotation guide member 31, so that the nt of the driver bit 2 and the decrease in
transmission ency of the force for pushing the screw 200 via the driver bit 2 can be
ssed.
Thereby, the wire 54 between the pulley 52 and the second moving member 32c is
stretched linearly along the moving direction of the moving member 32, and increases in load
at a time of g up the wire 54 by the pulley 52 and load at a time of pulling out the wire
54 from the pulley 52 are suppressed.
Note that, since the wire 54 has flexibility that enables the winding on the pulley 52,
the wire cannot move the moving member 32 rearward by pushing the second moving member
32c. Therefore, provided is the urging member 33 that is compressed as the moving member
32 moves in the forward direction d with the arrow A1 and applies a force, which pushes
the moving member 32 in the rearward direction denoted with the arrow A2, to the moving
member 32. Thereby, in the configuration where the wire 54 is wound by the pulley 52 and
the driver bit 2 is advanced, the driver bit 2 after the advance can be moved rearward.
[0057] In on, the holding member 30 configured to hold the driver bit 2 is supported to
be movable in the front and rear direction with respect to the on guide member 31 and is
configured to rotate together with the rotation guide member 31 by the engagement between
the connecting members 30b provided to the holding member 30 and the groove portions 31a
provided to the rotation guide member 31.
[0058] Therefore, in the configuration where the bit rotating motor 40 is arranged coaxially
with the rotation guide member 31, the holding member 30, and the driver bit 2 held by the
holding member 30, it is possible to implement a configuration where the driver bit 2 is rotated
and the driver bit 2 is moved in the front and rear direction without moving the bit rotating
motor 40 in the front and rear ion.
[0059] Note that, in the configuration where the bit ng motor 40 is arranged coaxially
with the driver bit 2, a configuration is ered in which the rotation operation of the bit
rotating motor 40 is converted into the nt of the driver bit 2 in the front and rear
direction by using a feed screw.
However, in the configuration where the feed screw is used, an amount of advance of
the driver bit 2 per rotation of the motor cannot be increased, so that it is difficult to increase
the moving speed of the driver bit 2 even when the rotation speed of the motor is increased.
In the fastening tool 1, it is necessary to increase the moving speed of the driver bit 2
so as to n a time required to press the screw 200 against the fastening target with the
driver bit 2. However, in the configuration where the feed screw is used, it is difficult to
shorten the time required to press the screw 200 against the fastening target with the driver bit
In contrast, in the configuration where the holding member 30 configured to hold the
driver bit 2 is ted so as to be movable in the front and rear direction with respect to the
on guide member 31, the pulley 52 is rotated by the second drive unit 5 to wind up the
wire 54, and to move the holding member 30 forward, the moving speed of the driver bit 2 can
be increased according to the rotation speed of the bit moving motor 50. Therefore, it is
possible to shorten the time required to press the screw 200 against the fastening target with the
driver bit 2.
FIGS. 7A and 7B are cross-sectional views showing an example of an
attaching/detaching holding ism, and FIGS. 8A and 8B are perspective views showing
the example of the attaching/detaching holding mechanism, showing details of the
attaching/detaching holding mechanism 30c. Next, the attaching/detaching holding
mechanism 30c is described with reference to the respective drawings.
The attaching/detaching holding mechanism 30c includes a ball 30d exposed in the
g 30a and a spring 30e for pressing the ball 30d in a ion in which the ball is exposed
in the opening 30a. The spring 30e is an example of the pressing member, and is constituted
by a leaf spring, an urging member such as a coil, or an elastic member such as rubber, and in
the present example, is tuted by an annular leaf spring and is fitted on the outer periphery
of the holding member 30.
When the ion portion 20 of the driver bit 2 is inserted into the opening 30a of the
holding member 30, the attaching/detaching holding mechanism 30c causes the ball 30d pushed
by the insertion portion 20 to retreat in the outer periphery direction of the holding member 30
while deforming the spring 30e in a direction in which a diameter of the annular spring 30e
increases.
When the insertion portion 20 of the driver bit 2 is inserted into the opening 30a of the
holding member 30 up to a on where a groove portion 20a formed on the outer periphery
of the insertion portion 20 faces the ball 30d, the ball 30d urged by the spring 30e is fitted into
the groove portion 20a. This prevents the driver bit 2 from being carelessly separated from
the holding member 30.
Further, when a predetermined force or more is d in a ion in which the
driver bit 2 is pulled out from the holding member 30, the ball 30d retreats while deforming the
spring 30e in the direction in which the diameter of the annular spring 30e increases, so that the
driver bit 2 can be pulled out from the g member 30.
In the operation of ing and pulling out the insertion portion 20 of the driver bit 2
with respect to the opening 30a of the holding member 30, the ball 30d retreats in the outer
periphery direction of the holding member 30. For this reason, a space for retreating the ball
30d is required on the outer periphery of the holding member 30. On the other hand, the
holding member 30 is inserted in the cylindrical rotation guide member 31, so that it is not
possible to secure a space for ting the ball 30d between the outer periphery of the holding
member 30 and the inner periphery of the rotation guide member 31.
[0069] r, when a diameter ence between the holding member 30 and the rotation
guide member 31 is set so as to secure a space for retreating the ball 30d between the outer
periphery of the g member 30 and the inner periphery of the rotation guide member 31,
it is necessary to increase an outer diameter of the rotation guide member 31 because a radial
dimension of the driver bit 2 is determined and therefore the outer diameter of the holding
member 30 cannot be reduced. For this reason, the size of the device becomes large.
In contrast, the rotation guide member 31 is provided with the groove portions 31a
configured to guide the connecting members 30b. The groove portion 31a penetrates from the
inner peripheral side to the outer peripheral side of the on guide member 31, and extends
in the axis direction of the rotation guide member 31.
[0071] ore, the ball 30d of the attaching/detaching holding mechanism 30c is provided
aligned with the position of the groove portion 31a of the rotation guide member 31. That is,
in the holding member 30, the connecting member 30b and the ball 30d of the
attaching/detaching holding mechanism 30c are ed coaxially along the axis direction of
the rotation guide member 31. Thereby, the ball 30d of the attaching/detaching g
mechanism 30c is exposed to the groove portion 31a of the rotation guide member 31 in any of
the operation in which the rotation guide member 31 and the holding member 30 rotate and the
operation in which the holding member 30 moves in the axis direction with respect to the
rotation guide member 31.
Therefore, the operation in which the insertion portion 20 of the driver bit 2 is inserted
and pulled out with respect to the g 30a of the holding member 30 causes the ball 30d
retreating in the outer periphery ion of the holding member 30 to enter the groove portion
31a of the rotation guide member 31.
Therefore, with the configuration where the holding member 30 is inserted in the
cylindrical rotation guide member 31, it is possible to secure a space for retreating the ball 30d
of the attaching/detaching holding mechanism 30c. In on, by using the groove portion
31a into which the connecting member 30b is inserted as a space for retreating the ball 30d, an
area of the g provided to the rotation guide member 31 is suppressed, and the strength
can be secured.
Further, it is not necessary to secure a space for retreating the ball 30d between the
outer periphery of the holding member 30 and the inner periphery of the rotation guide member
31 by increasing the diameter difference n the g member 30 and the rotation guide
member 31, so that it is possible to suppress the increase in size of the device.
[0075] is a perspective view showing an example of a screw feeding unit and a nose
unit according to present embodiment, showing details of the screw feeding unit 7 and the nose
unit 8. Next, the screw feeding unit 7 and the nose unit 8 are described with reference to each
drawing.
The screw g unit 7 includes a screw feeding motor 70, a pinion gear 71 attached
to a shaft of the screw feeding motor 70 via a speed r, a rack gear 72 in mesh with the
pinion gear 71, and an engaging part 73 connected to the rack gear 72 and engaged with the
connected screw fed from the screw odating unit 6.
The rack gear 72 of the screw feeding unit 7 is supported to be movable in the upper
and lower direction along a feeding direction of the connected screw. In the screw feeding
unit 7, the screw feeding motor 70 rotates forward and reversely, so that the ng part 73
engaged with the ted screw moves in the upper and lower direction and the ted
screw is fed.
The nose unit 8 includes an ejection passage 80 to which the screw 200 is supplied by
the screw feeding unit 7 and through which the driver bit 2 passes, a contact member 81 having
an ejection port 81a formed to icate with the ejection passage 80 and configured to
come into contact with a fastening target, a contact arm 82 configured to move in the front and
rear direction in conjunction with the contact member 81, and an adjusting part 83 configured
to restrict an amount of movement of the contact arm 82. In addition, the nose unit 8 includes
a cover member 88 ured to cover a path, through which the screw 200 is to pass, from
the screw accommodating unit 6 to the ejection passage 80 in an openable and closable manner.
In the fastening tool 1, each component constituting the on passage 80, the
contact member 81 and the contact arm 82 is assembled to constitute the nose unit 8, and is
fixed to the front frame 10b and the nose body part 10f constituting the tool body 10. In
addition, the fastening tool 1 includes a contact switch part 84 configured to be pushed and
actuated by the contact arm 82.
In the nose unit 8, the contact member 81 is supported to be movable in the front and
rear direction d with the arrows A1 and A2, and the contact arm 82 is configured to move
in the front and rear direction in conjunction with the contact member 81. In the nose unit 8,
the contact member 81 is urged forward by an urging member (not shown), and the contact
member 81 pressed t the fastening target and moved rearward is urged and moved
forward by the urging .
In the nose unit 8, an amount of movement of the contact arm 82 until the contact arm
82 is moved rearward due to the pressing of the t arm 81 against the fastening target and
the contact switch part 84 is actuated is adjusted by the ing part 83. The contact switch
part 84 is switched between ion and non-actuation by being pushed by the contact arm
82. In the present example, a state where the contact switch part 84 is not pressed by the
t arm 82 and is not actuated is referred to as 'off of the contact switch part 84', and a state
where the contact switch part 84 is pushed by the contact arm 82 and is thus actuated is ed
to as 'on of the contact switch part 84'.
Next, configurations relating to control and operation of the fastening tool 1 are
described with reference to the respective drawings. The fastening tool 1 includes a trigger 9
configured to receive an operation and a r switch part 90 ured to be actuated by an
operation of the trigger 9. The trigger 9 is provided on a front side of the handle 11 and is
configured to be operable by a finger of a hand gripping the handle 11. The trigger switch
part 90 is configured to be pushed and actuated by the trigger 9.
The trigger switch part 90 is switched between actuation and non-actuation by being
pushed by the trigger 9. In the present example, a state where the trigger 9 is not operated, the
trigger switch part 90 is not pushed by the trigger 9 and the trigger switch part 90 is not actuated
is ed to as 'off of the trigger switch part 90', and a state where the trigger 9 is operated and
the trigger switch part 90 is pushed and actuated by the trigger 9 is referred to as 'on of the
trigger switch part 90'.
The fastening tool 1 includes a control unit 100 configured to control the first drive
unit 4, the second drive unit 5 and the screw feeding unit 7, based on outputs of the r
switch part 90 configured to be ed by the operation of the trigger 9 and the contact switch
part 84 configured to be pushed and actuated by the contact member 81.
The control unit 100 is constituted by a substrate on which various electronic
components are mounted, and is provided to a substrate accommodating part 111 provided on
a back surface-side of the screw accommodating unit 6 between the screw accommodating unit
6 and the handle 11.
In a case of an electric tool used with holding the handle by a hand, an accommodating
unit for accommodating consumables such as screws is provided in front of the handle. In
order to be able to grip the handle by a hand, a space for a finger is required n the handle
and the accommodating unit.
Therefore, the ing tool 1 is ed with the substrate odating part 111
on the back surface-side of the screw accommodating unit 6 by using a space between the screw
accommodating unit 6 and the handle 11.
In a case of an ic tool used with holding the handle by a hand, a configuration is
suggested in which a battery is attached to a lower part of the handle and a substrate is provided
between the handle and the battery. With such a configuration, a ion of the electric tool
in the upper and lower direction along the extension direction of the handle is increased.
[0089] In contrast, the substrate accommodating part 111 is provided on the back surface-side
of the screw accommodating unit 6, so that the increase in dimension of the ing tool 1 in
the upper and lower direction along the extension direction of the handle 11 is suppressed.
Further, since the spirally wound connected screw is accommodated in the screw
accommodating unit 6, a surface of the screw accommodating unit 6 facing the handle 11 is
substantially circular. Thereby, it is possible to secure a volume of the substrate
accommodating part 111 while suppressing the increase in size of the fastening tool 1.
FIGS. 10A to 10C are perspective views showing the example of the fastening tool
according to the present embodiment, as seen from the rear, and is a perspective view
showing an example of a setting unit, showing a detail of a setting unit 110. Next, the setting
unit 110 is described with reference to the tive drawings.
The fastening tool 1 includes the second drive unit 5 configured to move the driver bit
2 in the front and rear direction along the axis direction, and the second drive unit 5 is configured
to be driven by the bit moving motor 50, and the moving member 32 connected, by the wire 54,
to the pulley 52 configured to be driven and to rotate by the bit moving motor 50 and the holding
member 30 connected to the moving member 32 are configured to move d along the axis
direction of the driver bit 2, along the rotation guide member 31.
Thereby, an amount of movement (amount of advance) of the driver bit 2 can be
controlled by controlling an amount of on of the bit moving motor 50. That is, by
rotating the bit moving motor 50 in conjunction with the rotation of the bit rotating motor 40
configured to rotate the driver bit 2 in a direction in which the screw 200 is fastened, the amount
of advance of the driver bit 2 configured to e following the screw 200 is controlled by
an amount of rotation of the bit moving motor 50, as the screw 200 is fastened. As a result, a
stop position of the driver bit 2 along the axis direction can be controlled.
Therefore, the fastening tool 1 includes a setting unit 110 configured to set an amount
of e of the driver bit 2. The setting unit 110 is an example of the g means, and is
configured so that any g value can be selected from a plurality of setting values or any
g value can be selected steplessly.
[0094] In the present example, the setting unit 110 is ured so that a setting value is
selected by an operation unit 110a constituted by a button. In addition, the operation unit 110a
may be configured such that a setting value is selected by a rotary dial. r, the setting
unit 110 may have a configuration of displaying a selected setting value by a method of
indicating a current value with a label, a stamp or the like, a method of indicating a current
value with a display unit 110b such as an LED or the like, or the like so that an operator can
easily perceive the current setting value.
The setting unit 110 is provided on each of both left and right sides of a surface of a
side, which faces the handle 11, of the substrate accommodating part 111 provided on the back
surface-side of the screw accommodating unit 6.
[0096] This makes it possible to visually ize the setting unit 110 from both the left and
right sides of the handle 11, when seeing the fastening tool 1 from the rear.
In a use aspect in which the handle 11 is held by a hand, the e of the side of the
screw accommodating unit 6, which faces the handle 11, faces toward the operator holding the
fastening tool 1. y, the setting unit 110 is provided on the surface of the side, which
faces the handle 11, of the substrate accommodating part 111 provided on the back surface-side
of the screw accommodating unit 6, so that the display unit 110b provided on the setting unit
110 can be easily seen. Therefore, it is possible to reduce a possibility that the operator will
miss the display. Note that, the content that is displayed on the display unit 110b includes an
ON/OFF state of a power supply, an operation mode selected from a variety of selectable
ion modes, presence or absence of a screw, a remaining amount of screws, presence or
e of an abnormality, and the like, in addition to a setting value of a screw depth prescribed
by an amount of advance of the driver bit 2.
In addition, in the use aspect in which the handle 11 is held by a hand, the operation
unit 110a such as a button provided on the setting unit 110 can also be easily seen. Therefore,
in a state of holding the handle 11 with one hand, the operation unit 110a can be operated with
the other hand while visually recognizing the operation unit 110a, so that the operation can be
reliably performed. Further, the display unit 110b can be seen without changing a posture or
largely changing the line of sight during a work, so that it is le to prevent an alarm or the
like from not being noticed during a uous work. Further, it is possible to prevent the
ejection port 81a from being unconsciously directed toward the operator when the operator tries
to gaze at the display unit 110b or the operation unit 110a.
In addition, the substrate constituting the control unit 100 is accommodated in the
ate accommodating part 111. A surface of a side, which faces the handle 11, of the
substrate is mounted with switches and the like constituting the operation unit 110a and lamps
and the like constituting the display unit 110b, so that a substrate for the setting unit 110 separate
from the control unit 100 can be omitted.
<Operation Example of Fastening Tool of Present Embodiment>
A is a side cross-sectional view g an e of an operation of the
fastening tool according to the present ment, and B is a top cross-sectional view
showing the e of the operation of the ing tool according to the present
embodiment. Next, a fastening operation of the fastening tool ing to the present
embodiment is described with reference to the respective drawings.
[0101] In a standby state, as shown in , a tip end of the driver bit 2 is located at a
standby position P1 behind the ejection passage 80, and the fastening tool 1 can supply the
screw 200 to the ejection passage 80.
When the contact member 81 is pressed against the fastening target, the contact switch
part 84 is pushed by the contact arm 82, the t switch part 84 becomes on, the trigger 9 is
operated and the trigger switch part 90 becomes on, the control unit 100 drives the bit moving
motor 50 of the second drive unit 5 and also drives the bit rotating motor 40 of the first drive
unit 4 at a predetermined timing.
When the bit moving motor 50 is driven and rotates in a positive direction, which is
one direction, the pulley 52 rotates in the ve ion, so that the wire 54 is wound on the
pulley 52. The wire 54 is wound on the pulley 52, so that the second moving member 32c
connected to the wire 54 is guided to the rotation guide member 31 and moves forward along
the axis direction. When the second moving member 32c moves forward, the first moving
member 32a is pushed by the second moving member 32c via the bearing 32b, and moves
forward along the axis direction while compressing the urging member 33, together with the
second moving member 32c.
When the first moving member 32a moves forward, the connecting members 30b are
guided to the groove portions 31a of the rotation guide member 31, so that the holding member
connected to the first moving member 32a by the connecting members 30b moves forward
along the axis ion of the driver bit 2.
Thereby, the driver bit 2 held by the g member 30 moves in the forward direction
denoted with the arrow A1, engages with the screw 200 supplied to the ejection port 81a of the
nose unit 8, moves the screw 200 forward and presses the same against the fastening target.
When the bit rotating motor 40 is driven and rotates in the ve direction, which is
one direction, the rotation guide member 31 rotates in the positive direction. When the
on guide member 31 rotates in the positive direction, the connecting members 30b
connected to the holding member 30 is pushed by the groove portions 31a of the rotation guide
member 31, so that the holding member 30 rotates together with the rotation guide member 31.
y, the driver bit 2 held by the holding member 30 rotates the screw 200 in the
positive direction (clockwise direction) and screws the same into the fastening . The
control unit 100 moves forward the driver bit 2 by the second drive unit 5 to make the driver
bit 2 to follow the screw to be screwed into the fastening target, based on a load applied to the
bit rotating motor 40, the number of rotations of the bit rotating motor 40, a load applied to the
bit moving motor 50, the number of rotations of the bit moving motor 50, and the like, in
conjunction with the operation of rotating the driver bit 2 by the first drive unit 4 to screw the
screw into the fastening .
As shown in FIGS. 12A and 12B, the control unit 100 stops the driving of the bit
rotating motor 40 and moves reversely the bit moving motor 50 when the tip end of the driver
bit 2 protrudes from the ejection port 81a of the contact member 81 and reaches a predetermined
actuation end position P2. The control unit 100 determines that the tip end of the driver bit 2
has reached the actuation end position P2, based on the number of rotations of the bit moving
motor 50.
[0109] When the bit moving motor 50 rotates in an opposite direction, which is the other
direction, the pulley 52 rotates in the opposite ion, so that the wire 54 is pulled out from
the pulley 52. The wire 54 is pulled out from the pulley 52, so that the urging member 33
compressed by the second moving member 32c moving forward is hed to push the second
moving member 32c rearward.
[0110] The second moving member 32c is pushed rearward by the urging member 33, so that
it is guided to the rotation guide member 31 and moves rearward along the axis direction.
When the second moving member 32c moves rearward, the first moving member 32a is pushed
by the second moving member 32c via the bearing 32b, and moves rearward along the axis
direction, together with the second moving member 32c.
When the first moving member 32a moves rearward, the connecting s 30b are
guided to the groove portions 31a of the rotation guide member 31, so that the holding member
30 connected to the first moving member 32a by the ting members 30b moves rearward
along the axis direction of the driver bit 2.
Thereby, the driver bit 2 held by the holding member 30 moves rearward, and the tip
end of the driver bit 2 returns to the standby position P1. Note that, the moving member 32 is
provided with the cushioning member 32d made of rubber or the like on a rear side of the second
moving member 32c, so that while the second moving member 32c moves rearward, the second
moving member 32c is suppressed from directly ing with the rear frame 10c, and
therefore, sound generation and damage can be suppressed. When the second moving member
32c is pushed rearward by the urging member 33 and the tip end of the driver bit 2 returns to
the standby position P1, the control unit 100 stops the rotation of the bit moving motor 50.
When the trigger switch part 90 becomes off, the control unit 100 rotates the screw feeding
motor 70 in one direction to lower the engaging part 73. When the ng part 73 descends
to a on where it engages with a next screw 200, the control unit 100 raises the engaging
part 73 by rotating reversely the screw feeding motor 70, and supplies the next screw 200 to the
ejection e 80.
[0113] FIGS. 13A to 13C are cross-sectional views showing fastened states of the screw, in
which A shows a state where a head portion 201 of the screw 200 does not float or is
not buried with respect to a surface of a fastening target 202, i.e., is so-called flush with the
surface, B shows a state where the head portion 201 of the screw 200 floats from the
fastening target 202, and C shows a state where the head portion 201 of the screw 200
is buried in the fastening target 202.
In the fastening tool 1, in a case where the screw 200 is a countersunk screw, the
amount of advance of the driver bit 2 is preferably set so that a surface of the head portion 201
of the screw 200 becomes the same as, so-called flush with the surface of the ing target
202 when the tip end of the driver bit 2 reaches the actuation end position P2, as shown in 13A. Note that, the screw 200 is not limited to the countersunk screw, and in a case of a pan,
a bind, a truss, or the like, the amount of advance of the driver bit 2 is preferably set so that the
seat e of the head portion 201 of the screw 200 is in contact with the surface of the
fastening target 202 and the head portion 201 of the screw 200 does not float from the fastening
target 202.
In a case where the head n 201 of the screw 200 floats from the ing target
202 at the time when the tip end of the driver bit 2 reaches the actuation end position P2, as
shown in B, the amount of advance of the driver bit 2 may be increased to e the
ion end on P2. On the other hand, in a case where the head portion 201 of the
screw 200 is buried in the fastening target 202, as shown in C, the amount of advance
of the driver bit 2 may be reduced to retreat the actuation end position P2.
ore, the amount of movement (amount of advance) of the driver bit 2 can be set
by the setting unit 110. The amount of movement (amount of advance) of the driver bit 2 is
prescribed by the number of rotations (amount of rotation) of the bit moving motor 50. The
bit moving motor 50 is rotated by a set amount of rotation with the standby position P1, which
is an initial position of the driver bit 2, as a starting point, and is then stopped or reversely
rotated to control the actuation end position P2. Therefore, the fastening target can be
adjusted.
<Additional Notes>
This application discloses at least the following inventions (1) to (13).
(1) A fastening tool includes: a cylindrical rotation guide member extending in one
direction and rotatably supported by a bearing; a holding member having an opening in which
a driver bit is detachably inserted, and configured to move in an axis ion along the
extension direction of the rotation guide member inside the rotation guide member and to rotate
together with the rotation guide member; a moving member configured to move the holding
member in a front and rear direction along the rotation guide member; a rotation member
configured to be driven and to rotate by a motor; and a transmission member connected to the
moving member and having flexibility to be wound along an outer periphery of the rotation
member. The rotation member is rotated by the motor, so that the moving member is moved
with the transmission member in one direction in which a screw engaged with the driver bit is
pressed against a fastening target.
In the present invention, an amount of nt of the driver bit in one ion in
which the screw engaged with the driver bit is pressed against the fastening target and is
fastened is controlled by controlling an amount of rotation of the motor.
(2) The fastening tool according to (1), where the transmission member is stretched in
a direction parallel to the ion direction of the rotation guide member.
(3) The fastening tool according to (1) or (2), where arrangement is made such that a
center of the rotation member is offset to one side with respect to the rotation guide member
and the outer periphery of the rotation member on which the transmission member is wound
overlaps the rotation guide , when seen in an axis direction of the rotation member.
[0122] (4) The fastening tool according to any one of (1) to (3), where a shaft of the motor is
offset to one side with respect to the rotation guide member.
(5) The fastening tool according to any one of (1) to (4), where an amount of on
of the rotation member, which is required to move the moving member from one end portion to
the other end portion within a movable range along one direction, is less than 360°.
[0124] (6) The fastening tool ing to (1) to (5), includes an urging member that is
compressed as the moving member moves in one direction, in which the screw engaged with
the driver bit is d against the ing target, and urges the moving member in another
direction opposite to the one direction.
(7) A fastening target includes: a tool body extending in one direction; a handle
extending in another direction intersecting with the extension direction of the tool body; an
accommodating unit provided on one side of the handle along the extension direction of the
tool body and ured to accommodate therein consumables; and a substrate odating
part provided on a surface of a side, which faces the handle, of the accommodating unit and
configured to accommodate therein a substrate.
[0126] In the present invention, the substrate accommodating part is provided on a back
surface-side of the accommodating unit by using a space between the accommodating unit and
the .
(8) The fastening tool according to (7), where the substrate odating part
comprises a display unit provided on the surface of the side that faces the handle.
[0128] (9) The ing tool according to (8), where the substrate is provided with the display
unit.
(10) The fastening tool according to any one of (7) to (9), where the substrate
accommodating part has an operation unit provided on the surface of the side that faces the
handle.
[0130] (11) The fastening tool according to (10), where the substrate is provided with the
operation unit.
(12) The fastening tool according to (10), where the operation unit is provided on each
of both left and right sides of the surface of the side which faces the handle.
(13) The fastening tool according to (8), where a content that is displayed on the
y unit is at least one of a setting value of a screw depth prescribed by an amount of
advance of the driver bit, an ON/OFF state of a power supply, a selected operation mode,
presence or absence of a screw, a remaining amount of screws, and presence or absence of an
abnormality.
Claims (13)
1. A fastening tool comprising: a rical rotation guide member extending in one direction and rotatably supported by a bearing; 5 a holding member having an opening in which a driver bit is detachably inserted, and configured to move in an axis direction along the extension direction of the rotation guide member inside the rotation guide member and to rotate together with the rotation guide member; a moving member configured to move the holding member in a front and rear direction along the rotation guide member; 10 a rotation member configured to be driven and to rotate by a motor; and a transmission member connected to the moving member and having ility to be wound along an outer periphery of the rotation member, wherein the rotation member is rotated by the motor, so that the moving member is moved with the transmission member in one direction in which a screw engaged with the driver 15 bit is d against a fastening target.
2. The fastening tool according to claim 1, n the transmission member is stretched in a direction parallel to the extension direction of the rotation guide member. 20
3. The fastening tool according to claim 1 or 2, wherein arrangement is made such that a center of the rotation member is offset to one side with respect to the rotation guide member and the outer periphery of the rotation member on which the transmission member is wound overlaps the on guide member, when seen in an axis ion of the on
4. The fastening tool according to any one of claims 1 to 3, wherein a shaft of the motor is offset to one side with respect to the rotation guide member.
5. The fastening tool according to any one of claims 1 to 4, wherein an amount 30 of rotation of the rotation member, which is required to move the moving member from one end portion to the other end portion within a movable range along one direction, is less than 360°.
6. The fastening tool according to any one of claims 1 to 5, sing an urging member that is compressed as the moving member moves in one direction, in which the screw engaged with the driver bit is pressed against the fastening target, and urges the moving member in another direction te to the one direction.
7. A fastening target comprising: a tool body extending in one direction; a handle extending in another direction intersecting with the extension direction of the tool body; 10 an accommodating unit provided on one side of the handle along the extension direction of the tool body and configured to accommodate therein consumables; and a ate accommodating part provided on a surface of a side, which faces the , of the accommodating unit and configured to accommodate therein a substrate. 15
8. The fastening tool according to claim 7, wherein the substrate accommodating part comprises a y unit provided on the surface of the side that faces the handle.
9. The fastening tool according to claim 8, wherein the substrate is provided with the display unit.
10. The fastening tool according to any one of claims 7 to 9, n the substrate accommodating part has an operation unit provided on the surface of the side that faces the handle. 25
11. The fastening tool according to claim 10, wherein the substrate is provided with the operation unit.
12. The fastening tool according to claim 10, wherein the operation unit is provided on each of both left and right sides of the e of the side which faces the handle.
13. The fastening tool ing to claim 8, wherein a content that is yed on the display unit is at least one of a setting value of a screw depth prescribed by an amount of advance of the driver bit, an ON/OFF state of a power supply, a selected operation mode, presence or absence of a screw, a remaining amount of screws, and presence or e of an abnormality.
Applications Claiming Priority (6)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2021-034723 | 2021-03-04 | ||
JP2021-034722 | 2021-03-04 | ||
JP2021-034724 | 2021-03-04 | ||
JP2021-034725 | 2021-03-04 | ||
JP2021-149654 | 2021-09-14 | ||
JP2021-149653 | 2021-09-14 |
Publications (1)
Publication Number | Publication Date |
---|---|
NZ785849A true NZ785849A (en) | 2022-03-25 |
Family
ID=
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