This application claims the benefit of priority to Japanese Patent Application No. 2018-167909, filed on Sep. 7, 2018, and Japanese Patent Application No. 2019-084160, filed on Apr. 25, 2019, the entire contents of which are hereby incorporated by reference.
The present invention relates to a portable cutting machine powered by a rechargeable battery pack.
Japanese Unexamined Patent Application Publication Nos. 2010-201598 and 2014-79812 each describe a portable cutting machine to which a battery pack as a power source is attachable. A known cutting machine, also referred to as a portable circular saw, is gripped on its handle and is moved forward, with its rectangular base in contact with the upper surface of a workpiece to be cut. A circular cutting blade protruding from the lower surface of the base then cuts into the workpiece to perform cutting.
A known cutting machine has an area for receiving a battery pack in a bottom space at the rear of a handle unit. The bottom space of the handle unit is used efficiently to save space for attaching the battery pack.
However, larger battery packs have become common recently. A larger battery pack cannot fit in a bottom space at the rear of a handle unit. A large battery pack can easily interfere with a base, whereas a handle unit designed to have a larger height to avoid interference between the battery pack and a base can be gripped at a higher position more away from a cutting target, thus lowering the operability during cutting.
One or more aspects of the present invention are directed to a structure that allows a large battery pack to be attached on the rear of a handle unit without largely increasing the height of the handle unit.
An aspect of the present invention provides a portable cutting machine to which a battery pack having a connecting surface is attachable, the portable cutting machine comprising:
This structure allows a large battery pack to be attached on the rear of the handle unit without largely increasing the height of the handle unit.
A portable cutting machine according to one or more embodiments will now be described with reference to
As shown in
The cutting machine body 10 includes a circular cutting blade 13 called a tipped saw, which rotates using an electric motor 12 as a power source. The cutting blade 13 has an upper portion covered with a stationary cover 14. The cutting blade 13 has a lower portion protruding from the lower surface of the base 2. The lower portion protruding from the lower surface of the base 2 cuts into the workpiece W to perform cutting.
The cutting blade 13 has a lower edge (cutting edge) protruding from the lower surface of the base 2. The lower edge of the cutting blade 13 is covered with a movable cover 15. The movable cover 15 is supported in a manner rotatable substantially about a rotation center 13a of the cutting blade 13 with respect to the stationary cover 14. The movable cover 15 is open to uncover the edge of the cutting blade 13 when rotated clockwise in
The stationary cover 14 has a reduction gear unit 16 on its left. The reduction gear unit 16 receives, on its left, a cylindrical motor housing 12a protruding leftward. The motor housing 12a accommodates the electric motor 12. The electric motor 12 is mounted to have a motor axis M in the right-left direction. As shown in
A battery attachment base 17 extends rearward from the rear of the motor housing 12a. The battery attachment base 17, which is a substantially flat plate, is placed to have the thickness direction being the right-left direction. A loop handle unit 20 extends across an area around the joint between the motor housing 12a and the reduction gear unit 16 and an area around the rear upper surface of the battery attachment base 17.
The handle unit 20 includes a standing portion 21 and a handle 22. The standing portion 21 extends upward from near the joint between the motor housing 12a and the reduction gear unit 16. The handle 22 extends rearward and downward from an upper portion of the standing portion 21. The handle 22 has a rear portion joined to near the rear upper surface of the battery attachment base 17. A trigger switch lever 23 is placed on the lower surface near the joint between the standing portion 21 and the handle 22. The user grips the handle 22 and moves the portable cutting machine 1, and pulls the switch lever 23 to start the electric motor 12.
The cutting machine body 10 is supported by a vertical swing support shaft 18 in a vertically swingable manner with respect to the base 2. In
The vertical swing position of the cutting machine body 10 with respect to the base 2 is locked by rotating a lock lever 19 on the rear to the lock position. The lock lever 19 including a flat plate is located parallel to the cutting blade 13. The lock lever 19 protrudes rearward. The base 2 has, on its rear upper surface, an arc-shaped depth guide 25 standing upward. The depth guide 25 guides the vertical swing of the cutting machine body 10 at the rear.
The cutting machine body 10 is supported to be laterally tiltable with respect to the base 2 with lateral tilt support shafts 26 and 27 at the front and the rear.
The battery attachment base 17 is located behind the motor housing 12a. As shown in
The battery pack 31 is a lithium-ion battery with an output of 18 V. The battery pack 31 detached from the battery attachment portion 30 may be charged with a separately prepared charger to allow repeated use.
The battery pack 31 has six surfaces, the front, rear, right, left, upper, and lower surfaces. The upper surface in the figure is the connecting surface 31b that connects to the battery attachment portion 30. The connecting surface 31b has a larger area than any other side surfaces. The connecting surface 31b receives a pair of right and left rails 31d extending in the front-rear direction. The connecting surface 31b has positive and negative terminal slots 31e and 31f between the right and left rails 31d. The connecting surface 31b has a signal terminal slot 31g between the positive and negative terminal slots 31e and 31f.
The connecting surface 31b has a lock tab 31c at its rear. The lock tab 31c is urged toward its protruding end (lock position) by a spring. An unlock button 31a is located behind the lock tab 31c. The unlock button 31a is not shown in
Positive and negative power terminals 30b and 30c are located between the upper and lower rail receivers 30a. A single signal terminal 30d is located between the positive and negative power terminals 30b and 30c. The battery attachment portion 30 has a tab engaging portion 30e that is engageable with the lock tab 31c of the battery pack 31. When the battery pack 31 is slid forward and then attached to the battery attachment portion 30, the lock tab 31c is engaged with the tab engaging portion 30e, thus locking the attachment of the battery pack 31 to the battery attachment portion 30. The battery pack 31 has the unlock button 31a on its rear as shown in
The battery pack 31 is slid forward in a posture with the connecting surface 31b facing rightward (in a sideways posture) to be attached to the battery attachment portion 30. Thus, when the battery pack 31 is attached, the width D is in the vertical direction as shown in
As shown in
In
As shown in
Further, the battery pack 31 is appropriately positioned in the vertical direction of the battery attachment portion 30 to be sufficiently below the handle unit 20, or more specifically, below the handle 22. The battery pack 31 is not obstructive when the handle 22 is to be gripped or is being gripped. This improves the operability of the portable cutting machine 1. As shown in
Further, the battery pack 31 is appropriately positioned in the front-rear direction of the battery attachment portion 30 to have its rear end protruding rearward from the rear end of the handle unit 20. This structure efficiently uses a space available behind the handle unit 20 for attaching a larger battery pack 31.
The portable cutting machine 1 according to the present embodiment can receive the battery pack 31 attached in a posture with the connecting surface 31b (upper surface) facing sideward. In other words, the battery pack 31 is attached to have the height H protruding leftward. This structure allows a battery pack 31 with a large height H to be attached without increasing the height of the handle unit 20.
When the battery pack 31 is attached, the height H is the dimension protruding sideward from the handle unit 20. Thus, the height position of the handle unit 20 can be determined independently of the height H of the battery pack 31. This allows a large battery pack 31 to be attachable without providing a large attachment space immediately below the handle unit, and increases the flexibility in the position of the handle unit 20 in the vertical direction.
The battery pack 31 attached in the sideways posture is positioned without extending from the left end of the motor housing 12a. This downsizes the portable cutting machine 1 in the lateral direction (right-left direction).
The battery pack 31 is attached within the height H14 of the upper end of the stationary cover 14 covering the cutting blade 13. This downsizes the portable cutting machine 1 in the vertical direction, thus maintaining the operability of the portable cutting machine 1.
The battery pack 31 is attached below the handle unit 20, or more specifically, below the handle 22. In other words, the handle 22 is located above the battery pack 31. The battery pack 31 is thus not obstructive when the handle 22 is to be gripped or is being gripped, enabling the handle unit 20 to be gripped easily.
The battery pack 31 is attached to protrude rearward from the handle unit 20. In other words, the battery attachment portion 30 receives the battery pack 31 attached to have its rear end protruding rearward from the handle unit 20. A space available behind the handle unit 20 can be used efficiently.
A portable cutting machine 40 according to a second embodiment will now be described with reference to
The sliding direction for attachment to and detachment from the battery attachment portion 30 in the first embodiment is parallel to the lower surface of the base 2 when the cutting machine body 10 is placed at the lowest position to maximize the cutting depth as shown in
The sliding direction for attaching and detaching the battery pack 31 forms an angle tilting forward with the lower surface of the base 2. This allows the battery pack 31 to be slid in the attaching direction or the detaching direction by the wrist of a hand gripping the battery pack 31 with a smaller effort as well as in a more comfortable posture with reduced twisting. This improves the operability for the attachment and detachment.
In the present embodiment as well, the battery pack 31 is attached in the sideways posture to the battery attachment portion 41 located on the left of the handle unit 20. In the same manner as in the first embodiment, the battery pack 31 with a larger height H can be attached while allowing the handle unit to be gripped easily.
A portable cutting machine 50 according to a third embodiment will now be described with reference to
A portable cutting machine 50 according to the present embodiment includes a brushless motor as the electric motor 60. The electric motor 60 is accommodated in a cylindrical motor housing 61. The motor housing 61 is joined to the reduction gear unit 16 located on the left of the stationary cover 14 in the same manner as in the first embodiment. In other words, the electric motor 60 is located along the motor axis M extending in the right-left direction.
The stator 60a has a disc-shaped sensor board 60f mounted along its left end. The sensor board 60f detects the rotational position of the rotor 60b. The motor shaft 60c has a cooling fan 60g mounted between the rotor 60b and the right bearing 60d. The cooling fan 60g and the motor shaft 60c rotate integrally.
The motor housing 61 has an inlet 61a in its left end face for drawing in motor cooling air. When the electric motor 60 starts rotating the cooling fan 60g, the outside air is drawn in through the inlet 61a. The outside air drawn in through the inlet 61a cools the electric motor 60. The thick bold arrows in
The portable cutting machine 50 according to the present embodiment includes the controller housing 51 in front of the motor housing 61. The controller housing 51 accommodates the controller 52. As shown in
The control board 52b receives a control circuit, a drive circuit, an automatic stop circuit, and other circuits. The control circuit includes a microcomputer, and transmits a control signal based on information about the rotational position of the rotor 60b detected by the sensor board 60f. The drive circuit includes a field-effect transistor (FET), and switches a current flowing through the electric motor 60 in response to the control signal received from the control circuit. The automatic stop circuit and other circuits cut power supply to the electric motor 60 to prevent overdischarge or overcharge based on the detection result of the status of the battery pack 31.
The controller 52 is in a forward-tilt posture having its lower portion positioned forward inside the controller housing 51 as shown in the figure. Thus, the controller housing 51 also tilts to have its lower portion positioned forward and its upper portion joined to the front of the motor housing 61 as shown in
The motor cooling air drawn by the cooling fan 60g into the motor housing 61 flows into the controller housing 51 through the air vent 62 to cool the controller 52, as indicated by the thick bold arrows in
The reduction gear unit 16, which is a gear housing 16a accommodating a gear train 63, reduces the rotational output from the electric motor 60 in two steps, and then transmits the resultant output to an output shaft 68.
The second driven gear 66 is meshed with an output gear 67. The output gear 67 is integral with the output shaft 68. The output shaft 68 is supported on the lower portion of the gear housing 16a with a right bearing 68a and a left bearing 68b in a rotatable manner. The output shaft 68 has its right end protruding into the stationary cover 14. The cutting blade 13 is attached to the right end of the output shaft 68. The cutting blade 13 held between an outer flange 69a and an inner flange 69b is attached to an axial end of the output shaft 68 with a cutting blade mounting screw 69 being screwed.
The countershaft 65 shifts rearward by a distance d from a line connecting the rotational axis of the motor shaft 60c (motor axis M) and the rotational axis of the output shaft 68 (rotation center of the cutting blade 13) as shown in
The controller housing 51 has an electric component compartment 53 located in its front portion as shown in
The controller housing 51 has a ground contact face 51a on an upper surface of its left portion for three-point inverted placement. The ground contact face 51a is a hatched area enclosed with a bold line in
As shown in
In the inverted posture, the handle 22 is appropriately upward away from the placement surface F. This allows the operator to, for example, place the portable cutting machine 50 upside down on the placement surface F to temporarily stop cutting while gripping the handle 22.
In the inverted posture, the cutting blade 13 faces upward and thus is prevented from damaging the placement surface F. Additionally, the handle 22 remains easily gripped, and thus allows the work to be easily stopped or resumed. As described above, for example, the controller housing 51 has the ground contact face 51a for three-point inverted placement to allow the portable cutting machine 50 to be stably placed upside down in the inverted posture. This improves the operability of the portable cutting machine 50.
The portable cutting machine 50 according to the present embodiment can receive the battery pack 31 attached in a posture with the upper surface (connecting surface 31b) facing sideward, and thus has the same advantageous effects as in the first embodiment.
The portable cutting machine 50 according to the present embodiment includes the controller 52 for controlling the electric motor 60 placed efficiently in an unused space in front of the motor housing 61.
More specifically, the controller 52 is in a forward-tilt posture tilting downward toward the front inside the controller housing 51, and the controller housing 51 has an upper portion joined to the motor housing 61. This structure places the controller 52 in a small space in the height direction, and allows the controller housing 51 to have a small height and thus an increased rigidity.
The portable cutting machine 50 according to the present embodiment includes the electric component compartment 53 placed in front of the controller housing 51. The electric component compartment 53 includes its upper end lower than an upper end of the controller housing 51. The electric component compartment for a capacitor and wiring may thus fit in a small space in front of the controller housing 51.
The portable cutting machine 50 according to the present embodiment includes an end of the controller housing 51 opposite to the cutting blade 13 (left end) flush with an end of the motor housing 61 opposite to the cutting blade 13. The ends of the controller housing 51 and the motor housing 61 may both come in contact with the ground. The portable cutting machine 50 can thus be more stably placed with the cutting blade 13 located upward and parallel to the placement surface F. This facilitates maintenance such as replacing the cutting blade.
The portable cutting machine 50 according to the present embodiment has the ground contact face 51a for three-point inverted placement on the front surface of the controller housing 51. The ground contact face 51a, the left front corner 2a of the base 2, and the front end 21a of the handle unit 20 may together stably place the portable cutting machine 50 substantially upside down in the three-point inverted posture. The portable cutting machine 50 may be stably placed in the inverted postured as described, and thus is prevented from damaging the placement surface and other components in, for example, a temporary stop of the work. The portable cutting machine 50 can thus temporarily wait on the placement surface. Further, the handle 22 may be easily gripped when the work is to be resumed. This improves the operability of the portable cutting machine 50.
The ground contact face 51a for three-point inverted placement is a flat surface that slopes between two straight lines (edge lines) substantially parallel to the extending direction of the controller 52 in the present embodiment. However, any surface that slopes between different lines may be used as the ground contact face for three-point inverted placement. In other words, a corner or another portion of the controller housing may be partially cut to form a ground contact face, thus allowing three-point inverted placement without the use of, for example, legs separately provided. Although the left front corner 2a of the base 2 and the front end 21a of the handle unit 20 are in contact with the ground to achieve three-point inverted placement in the above example, other two portions may be in contact with the ground together with the ground contact face 51a.
Additional modifications may be added to the portable cutting machines 1, 40, and 50 according to the first to third embodiments described above. The structure for attaching the battery pack 31 and the placement of the controller 52 in the above embodiments may be used for a cutting machine including a rotary blade such as a saw blade and a diamond wheel or a reciprocating saw or a jigsaw that reciprocates a cutting blade, in addition to a portable cutting machine including a tipped saw as a cutting blade.
Number | Date | Country | Kind |
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2018-167909 | Sep 2018 | JP | national |
2019-084160 | Apr 2019 | JP | national |