Power tool
09764486 · 2017-09-19
Assignee
Inventors
- Scott D. Bublitz (Hartland, WI, US)
- Scott D. Eisenhardt (Milwaukee, WI, US)
- HongPing Hui (Dongguan, CN)
- Andrew M. Plowman (Wauwatosa, WI, US)
- Michael S. Steele (Waukesha, WI, US)
- Guojian Yang (Dongguan, CN)
Cpc classification
B26B15/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B26B15/00
PERFORMING OPERATIONS; TRANSPORTING
B23D29/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A power tool includes a housing, a motor positioned within the housing, a drive mechanism coupled to the motor and positioned within the housing, and a shear head rotatably mounted to the housing and coupled to the drive mechanism. The power tool also includes a manually-operable actuator supported by the housing. The actuator is movable between a first position, in which the shear head is held stationary relative to the housing, and a second position, in which the shear head is rotatable relative to the housing.
Claims
1. A power tool comprising: a housing; a motor positioned within the housing; a drive mechanism coupled to the motor and positioned within the housing; a shear head rotatably mounted to the housing and coupled to the drive mechanism; and a manually-operable actuator supported by the housing, the actuator being movable between a first position, in which the actuator engages the shear head and the shear head is held stationary relative to the housing, and a second position, in which the actuator is spaced apart from the shear head and the shear head is rotatable relative to the housing, wherein the drive mechanism includes an output shaft coupled to the shear head, wherein the output shaft has a longitudinal axis, and wherein the shear head is rotatable relative to the housing about the longitudinal axis.
2. The power tool of claim 1, wherein the manually-operable actuator is slidable relative to the housing between the first position and the second position.
3. The power tool of claim 1, wherein a portion of the actuator extends outwardly from the housing.
4. The power tool of claim 1, wherein one of the actuator and the shear head includes a projection and the other of the actuator and the shear head defines at least one recess, wherein the projection fits within the at least one recess when the actuator is in the first position, and wherein the projection is spaced apart from the at least one recess when the actuator is in the second position.
5. The power tool of claim 4, wherein the actuator includes the projection and the shear head defines the at least one recess as a plurality of recesses, and wherein each recess defines a discrete position of the shear head relative to the housing.
6. The power tool of claim 5, wherein the shear head includes a body and a support collar that defines the plurality of recesses, and wherein a portion of the support collar is received in the body of the shear head.
7. The power tool of claim 6, wherein the drive mechanism extends through the support collar so that the support collar surrounds a portion of the drive mechanism.
8. The power tool of claim 6, wherein the support collar is generally cylindrical, and wherein the plurality of recesses is formed in and equally spaced around the support collar.
9. The power tool of claim 1, further comprising a biasing member positioned between the housing and the actuator, wherein the biasing member biases the actuator toward the first position.
10. The power tool of claim 1, wherein the actuator is movable relative to the housing between the first position and the second position in a direction generally parallel to the longitudinal axis.
11. The power tool of claim 1, wherein the shear head is rotatable 360 degrees relative to the housing.
12. The power tool of claim 1, wherein the shear head includes a fixed blade and a movable blade, and wherein the movable blade is coupled to and driven by the drive mechanism.
13. The power tool of claim 1, further comprising a battery pack supported by the housing, wherein the battery pack is electrically coupled to the motor.
14. A power tool comprising: a housing; a motor positioned within the housing; a drive mechanism coupled to the motor and positioned within the housing; a shear head rotatably mounted to the housing and coupled to the drive mechanism; and a manually-operable actuator supported by the housing, the actuator being movable between a first position, in which the actuator engages the shear head and the shear head is held stationary relative to the housing, and a second position, in which the actuator is spaced apart from the shear head and the shear head is rotatable relative to the housing, wherein one of the actuator and the shear head includes a projection and the other of the actuator and the shear head defines at least one recess, wherein the projection fits within the at least one recess when the actuator is in the first position, and wherein the projection is spaced apart from the at least one recess when the actuator is in the second position, wherein the actuator includes the projection and the shear head defines the at least one recess as a plurality of recesses, and wherein each recess defines a discrete position of the shear head relative to the housing, wherein the shear head includes a body and a support collar that defines the plurality of recesses, and wherein a portion of the support collar is received in the body of the shear head, and wherein the drive mechanism extends through the support collar so that the support collar surrounds a portion of the drive mechanism.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(11) Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways.
DETAILED DESCRIPTION
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(13) The power tool 10 includes a housing 14, a motor 18 (
(14) In some embodiments, such as the illustrated embodiment, the power tool 10 also includes a battery pack 30 to power the motor 18 and, thereby, drive the drive mechanism 22 and the shear head 26. The illustrated battery pack 30 is a slide-on style, 18-volt Li-ion power tool battery pack. In other embodiments, the battery pack 30 may be a tower style battery pack that is insertable at least partially into the housing 14. Additionally or alternatively, the battery pack 30 may have other suitable voltages (e.g., 12 volts, 14.4 volts, 28 volts, etc.) and/or chemistries (e.g., NiMH, NiCd, etc.). In still further embodiments, the power tool 10 may be a corded power tool.
(15) As shown in
(16) The grip, or handle, portion 42 of the housing 14 extends from an end of the gear case portion 34 opposite from the forward end 46 of the housing 14. The grip portion 42 is configured to be grasped by a user when operating the power tool 10. The grip portion 42 has a second longitudinal axis 58 that extends generally through a center of the grip portion 42. The second longitudinal axis 58 is oriented at an oblique angle A relative to the first longitudinal axis 50 of the gear case portion 34. In some embodiments, the oblique angle A may be between about 45 degrees and about 70 degrees. In the illustrated embodiment, the oblique angle A is about 65 degrees. As shown in
(17) Referring back to
(18) The illustrated battery support portion 38 is configured to receive a slide-on style battery pack, such as the battery pack 30 shown in the figures. The insertion axis 66 is oriented at an oblique angle B relative to the second longitudinal axis 58 of the grip portion 42 so that the battery pack 30 is slidable onto the battery support portion 38 in a direction from the rearward end 62 of the housing 14 toward the forward end 46 of the housing 14. In the illustrated embodiment, the oblique angle B is about 55 degrees so that the insertion axis 66 is also oriented at a relatively small acute angle relative to the first longitudinal axis 50 of the gear case portion 34. In other embodiments, the oblique angle B between the insertion axis 66 and the second longitudinal axis 58 may be the same as the oblique angle A between the first longitudinal axis 50 and the second longitudinal axis 58 so that the insertion axis 66 and the first longitudinal axis 50 are parallel.
(19) In some embodiments, the battery support portion 38 may be configured to receive an insertable, tower style battery pack. In such embodiments, at least a portion of the battery pack may extend into the grip portion 42 when the battery pack is connected to the housing 14. In addition, the insertion axis 66 may be generally parallel to, or even coaxial with, the second longitudinal axis 58 of the grip portion 42.
(20) The power tool 10 also includes an actuator 74 extending from the grip portion 42 of the housing 14. The actuator 74 extends outwardly from a forward edge 78 of the grip portion 42 (i.e., the edge of the grip portion 42 that is closest to the forward end 46 of the housing 14). In the illustrated embodiment, the actuator 74 is a trigger that is actuatable (e.g., depressible) by a user. In other embodiments, other suitable actuators may alternatively be employed. The actuator 74 is coupled to a switch 82 (
(21) The actuator 74 is supported by the grip portion 42 of the housing 14 forward of (to the left of in
(22) As shown in
(23) The arrangement of the grip portion 42 and the actuator 74 on the grip portion 42 increases the ergonomics of the power tool 10. In particular, the grip portion 42 allows a user to grasp and operate the power tool 10 while maintaining a neutral wrist angle. Furthermore, the position of the battery pack 30 relative to the output element 26, the drive mechanism 22, and the motor 18 helps balance the power tool 10 while being held by a user at the grip portion 42. A center of gravity 94 of the power tool 10 (when the battery pack 30 is connected to the housing 14) is located at or near the actuator 74 to reduce torque on a user's wrist during operation. Such a configuration reduces hand fatigue of the user.
(24) As shown in
(25) As shown in
(26) The drive mechanism 22 is coupled to the motor 18 to be driven by the motor 18. The components of the drive mechanism 22 are located within a gear box 110 of the housing 14. The illustrated drive mechanism 22 includes a planetary gear arrangement 114, an output shaft 118, and two bearings 122, 126. The planetary gear arrangement 114 engages the motor pinion 106 and the output shaft 118. The planetary gear arrangement 114 reduces the rotational output speed of the motor 18 to a desired rotational speed of the output shaft 118. Similar to the motor shaft 102, the output shaft 118 is coaxial with the first longitudinal axis 50 such that the motor 18 and the drive mechanism 22 are arranged in line within the gear case portion 34. The bearings 122, 126 are spaced apart from each other and support the output shaft 118 within the gear box 110.
(27) The shear head 26 is mounted to the forward end 46 of the housing 14 and coupled to the drive mechanism 22. As shown in
(28) Referring back to
(29) As shown in
(30) The illustrated rotation mechanism 166 includes a support collar 170 and a manually-operable actuator 174. The support collar 170 is a generally cylindrical member having a nose portion 178 and an engagement portion 182. The support collar 170 also defines a central opening 186 extending through the nose and engagement portions 178, 182. The nose portion 178 extends into and is received in the body 130 of the shear head 26 to connect the support collar 170 to the shear head 26. The nose portion 178 is fixed to the body 130 of the shear head 26 such that the shear head 26 and the support collar 170 rotate together relative to the housing 14. A gasket 188, such as an O-ring, is positioned between the nose portion 178 and the shear head body 130.
(31) As shown in
(32) Referring back to
(33) The manually-operable actuator 174, or swivel key, is supported by the housing 14 (and, more particularly, the gear box 110) and by the support collar 170. As shown in
(34) The actuator 174 is movable relative to the housing 14 and the support collar 170 between a first, engaged position (
(35) In the illustrated embodiment, the manually-operable actuator 174 is slidable relative to the housing 14 between the first and second positions. The actuator 174 is slidable in a direction that is generally parallel to the longitudinal axis about which the shear head rotates (i.e., the first longitudinal axis 50 of the gear case portion 34). In other embodiments, the actuator 174 may be moved relative to the housing 14 using different motions. By “manually-operable,” the actuator 174 may be moved (e.g., slid) by a user between the first position and the second position without the use of tools (e.g., a screwdriver, hex wrench or key, etc.).
(36) As shown in
(37) In operation, the projections 194 of the actuator 174 fit within two adjacent recesses 190 of the support collar 170, as shown in
(38) In some embodiments, the support collar 170 may include projections formed on the engagement portion 182, and the actuator 174 may define one or more recesses configured to receive each of the projections. In such embodiments, the shear head 26 may be held stationary relative to the housing 14 when one of the projections of the support collar 170 fits within the recess in the actuator 174, and may be rotatable relative to the housing 14 when the actuator 174 is moved so that the recess disengages the projection.
(39) Although the invention has been described with reference to certain preferred embodiments, variations and modifications exist within the scope and spirit of one or more independent aspects of the invention. Various features and advantages of the invention are set forth in the following claims.