This application is a national stage filing under 35 U.S.C. § 371 of International Application No. PCT/US2021/036707 filed on Jun. 10, 2021, which claims foreign priority to Chinese Patent Application No. 202021094627.5 filed on Jun. 12, 2020, the entire contents of which are incorporated herein by reference.
The present invention relates to power tools driven by an electric motor, and more specifically to oscillating power tools.
Power tools utilize the rotation of a motor to provide torque for operations such as cutting, sanding, grinding, removing material, drilling, driving fasteners, and the like. One exemplary power tool is an oscillating power tool.
Oscillating power tools can be utilized with various accessories, such as blades and sanding or grinding pad attachments, for performing different functions. For example, a plunge cut blade may be attached to the output, or tool/accessory holder, of the oscillating tool to perform a plunge cut. Then, a user may remove the plunge cut blade and attach a sanding pad to the tool holder for performing a sanding operation. Conventionally, the accessories can be interchanged by inserting and removing a fastener, such as a screw, which may be tightened with a tool, such as a hex key, to provide a clamping force to secure the accessory to the tool holder.
In one aspect, the invention provides an oscillating power tool including an outer housing having a head portion and a handle portion extending therefrom, and an inner housing positioned within the outer housing. A motor and a drive mechanism is supported by the inner housing. The drive mechanism includes an output shaft that is rotational in an oscillating manner and that defines an output axis. A damping element is positioned between the inner housing and the outer housing through which the inner housing is mounted to the outer housing, thereby attenuating vibration transmitted to the outer housing from the inner housing. An over-travel limit member is positioned between the inner housing and the outer housing. In response to relative movement between the inner housing and the outer housing while the oscillating power tool is in use, the over-travel limit member is configured to prevent direct contact between the inner housing and the outer housing, inhibiting vibration produced by the motor and/or the drive mechanism from bypassing the damping element.
In one embodiment of the first aspect, the over-travel limit member is positioned in the head portion.
In one embodiment of the first aspect, the over-travel limit member is configured as a single, annular elastic band positioned around an outer circumference of the inner housing.
In one embodiment of the first aspect, the over-travel limit member is one of at least two discrete elements. The at least two discrete elements are spaced from each other about an interior surface of the head portion.
In one embodiment of the first aspect, each discrete element is configured as an elastic pad.
In one embodiment of the first aspect, the over-travel limit member is fixed to the inner housing or the outer housing.
In one embodiment of the first aspect, the over-travel limit member includes a rib received within a corresponding groove in the inner housing for fixing the over-travel limit member to the inner housing.
In one embodiment of the first aspect, an inner surface of the outer housing defines an interior recess. The over-travel limit member is retained in the interior recess for fixing the over-travel limit member to the outer housing.
In one embodiment of the first aspect, the over-travel limit member is configured to limit lateral movement of the inner housing relative to the outer housing in a direction transverse to the output axis.
In one embodiment of the first aspect, the oscillating power tool further comprises a clamping mechanism for releasably coupling a tool element to the output shaft. The clamping mechanism includes a clamping actuator operable by a user to adjust the clamping mechanism between a locking state in which the tool element is secured to the output shaft, and a release state in which the tool element may be removed from the output shaft. The head portion of the outer housing includes an elongated opening in which the clamping actuator is recessed, thereby forming a gap between the clamping actuator and an outer periphery of the head portion.
In a second aspect, the invention provides an oscillating power tool including an outer housing having a head portion and a handle portion extending therefrom, and an inner housing positioned within the outer housing. A motor and a drive mechanism is supported by the inner housing. The drive mechanism includes an output shaft that is rotational in an oscillating manner and that defines an output axis. A damping element is positioned between the inner housing and the outer housing through which the inner housing is mounted to the outer housing, thereby attenuating vibration transmitted to the outer housing from the inner housing. A clamping mechanism is provided for releasably coupling a tool element to the output shaft. The clamping mechanism includes a clamping actuator operable by a user to adjust the clamping mechanism between a locking state in which the tool element is secured to the output shaft, and a release state in which the tool element may be removed from the output shaft. The head portion of the outer housing includes an elongated opening in which the clamping actuator is recessed, thereby forming a gap between the clamping actuator and an outer periphery of the head portion.
In one embodiment of the second aspect, the head portion extends along the output axis between a first end and a second end opposite the first end, the tool element positionable adjacent the first end, the second end having the elongated opening.
In one embodiment of the second aspect, the head portion includes a projection extending outwardly from a surface of the outer housing away from the first end, the projection at least partially defining the elongated opening.
In one embodiment of the second aspect, the elongated opening has a first length measured between a first end and a second end opposite the first end. The clamping actuator has a second length that is less than the first length.
In one embodiment of the second aspect, the second length is selected such that a space is defined between an end of the clamping actuator and the second end of the elongated opening. The space is sized to receive a finger.
In one embodiment of the second aspect, the clamping mechanism includes a biasing member configured to apply a clamping force to the tool element when the clamping mechanism is in the locking state, and the clamping actuator is configured to release the clamping force when the clamping mechanism is in the release state.
In a third aspect, the invention provides an oscillating power tool including an outer housing having a head portion and a handle portion extending therefrom, and an inner housing positioned within the outer housing. A motor and a drive mechanism is supported by the inner housing. The drive mechanism includes an output shaft that is rotational in an oscillating manner and that defines an output axis. A damping element is positioned between the inner housing and the outer housing through which the inner housing is mounted to the outer housing, thereby attenuating vibration transmitted to the outer housing from the inner housing. A clamping mechanism is provided for releasably coupling a tool element to the output shaft. The clamping mechanism includes a clamping actuator operable by a user to adjust the clamping mechanism between a locking state in which the tool element is secured to the output shaft, and a release state in which the tool element may be removed from the output shaft. An over-travel limit member is positioned between the inner housing and the outer housing. In response to relative movement between the inner housing and the outer housing while the oscillating power tool is in use, the over-travel limit member is configured to prevent direct contact between the inner housing and the outer housing, inhibiting vibration produced by the motor and/or the drive mechanism from bypassing the damping element. The head portion of the outer housing includes an elongated opening in which the clamping actuator is recessed, thereby forming a gap between the clamping actuator and an outer periphery of the head portion.
In one embodiment of the third aspect, the over-travel limit member is positioned in the head portion.
In one embodiment of the third aspect, the over-travel limit member is fixed to the inner housing or the outer housing.
In one embodiment of the third aspect, the head portion extends along the output axis between a first end and a second end opposite the first end, the tool element positionable adjacent the first end, the second end having the elongated opening.
Any feature(s) described herein in relation to one aspect or embodiment may be combined with any other feature(s) described herein in relation to any other aspect or embodiment, as appropriate and applicable.
Other features and aspects of the invention will become apparent by consideration of the following detailed description and accompanying drawings.
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. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting.
The outer housing 14 includes a head portion 38 and a handle portion 42 extending therefrom. The outer housing 14 also includes a battery support portion 46 positioned at an end of the handle portion 42 opposite the head portion 38. The head portion 38 is configured to support the drive mechanism 22, the clamping mechanism 30, and the motor 18. The handle portion 42 is configured to be grasped by a user during operation of the power tool 10. Alternatively, or further, a user may grasp the head portion 38 during operation. In the illustrated embodiment, the outer housing 14 is formed by two clamshell halves 48A, 48B that are coupled together to completely enclose the motor 18 and the drive mechanism 22. When connected, the clamshell halves 48A, 48B define the head portion 38, the handle portion 42, and the battery support portion 46. In other embodiments, the outer housing 14 may be formed by one or more pieces or sections that when coupled together completely enclose at least the head portion 38 and the handle portion 42. Accordingly, the drive mechanism 22 is not exposed to the environment.
With reference to
An actuator 62 is coupled with the handle portion 42 of the outer housing 14 proximate the first end 54 for switching the motor 18 between an on (i.e., energized) position and an off position. In addition, the tool 10 includes a separate actuator 66 (
The battery support portion 46 is configured to support the battery pack on the outer housing 14. The battery pack is configured to be connected to the battery support portion 46 of the outer housing 14 and electrically coupled to the motor 18. During operation of the power tool 10, the battery pack supplies power to the motor 18 to energize the motor 18.
With reference to
The motor 18 includes a drive shaft 82. The drive mechanism 22 is coupled to the motor 18 via the drive shaft 82. The drive mechanism 22 converts rotational motion of the drive shaft 82 into oscillating rotational motion of the output element 26 about an output axis 90. In other embodiments, the power tool 10 may have a drive mechanism that rotates, reciprocates, or imparts an orbital motion to the output element 26.
With reference to
With reference to
With particular reference to
With continued reference to
More specifically, the forked yoke 142 includes two arms 150 (only one of which is shown in
With reference to
With reference to
The clamping actuator 126 is positioned within the elongated opening 174 such that the clamping actuator 126 is recessed within the elongated opening 174. In other words, the projections 178 extend farther along the motor axis 50 than the clamping actuator 126. In addition, the elongated opening 174 has a length A (
The power tool 10 further includes a plurality of second damping elements 210 positioned between the gear case 74 (i.e., the first portion 154) and the outer housing 14. The illustrated second damping elements 210 includes two second damping elements. The gear case 74 includes a plurality of mounting elements 222 (e.g., recesses) configured to receive the respective second damping elements 210. The inner surface 214 of the outer housing 14 includes corresponding mounting elements 226 (e.g., recesses;
The inner housing 78 is configured to move (e.g., displace) relative to the outer housing 14 during operation of the power tool 10. More specifically, the inner housing 78, and the motor 18 and the drive mechanism 22 supported therein, “float” within and relative to the outer housing 14 because the inner housing 78 is not rigidly mounted to the outer housing 14. Rather, the inner housing 78 is mounted to the outer housing 14 via the elastic first and second damping elements 206, 210. The first damping elements 206 and the second damping elements 210 are configured to attenuate vibration transmitted to the outer housing 14 that is produced by the motor 18 and the drive mechanism 22 during operation of the power tool 10.
In addition, by enclosing the inner housing 78 within the head portion 38 of the outer housing 14, vibration produced by the motor 18 and the drive mechanism 22 is prevented from being directly transmitted to a user grasping the head portion 38 of the outer housing 14 while using the tool 10. Moreover, by recessing the clamping actuator 126 within the head portion 38 of the outer housing 14 (and more specifically, within the elongated opening 174), vibration produced by the drive mechanism 22 is prevented from being transmitted from the gear case 74, through the clamping actuator 126, to a user grasping the head portion 38 of the outer housing 14 while using the tool 10. For example, the inner housing 78 may vibrate within the outer housing 14 at a magnitude as high as 11.30 m/s2 (measured using hand-arm vibration (HAV) acceleration rate). In the illustrated embodiment of the power tool 10 with the inner housing 78 enclosed within the outer housing 14 and the clamping actuator 126 recessed within the outer housing 14 so that it remains spaced from the user when grasping the head portion 38, the magnitude of vibration measured at the head portion 38 is 5.0 m/s2 (HAV acceleration rate) or less. In other embodiments of the power tool 10, the magnitude of vibration measured at the head portion 38 is 3.0 m/s2 (HAV acceleration rate). Still further, in other embodiments of the power tool 10, the magnitude of vibration measured at the head portion 38 is 1.85 m/s2 (HAV acceleration rate).
With reference to
With reference to
The limit member 230 is configured to limit lateral movement of the inner housing 78 relative to the outer housing 14 in a direction transverse to the output axis 90 (
In particular, in the illustrated embodiment as shown in
Furthermore, with continued reference to
The power tool 1010 includes an outer housing 1014 having a head portion 1038, a handle portion 1042, and a battery support portion 1046. The power tool 1010 also includes an inner housing 1078 formed by a motor case 1070 and a gear case 1074. The motor case 1070 supports a motor 1018 and the gear case 1074 supports a drive mechanism 1022. The gear case 1074 includes a first portion 1154 and a second portion 1158 in connection with the first portion 1154. A mount assembly is provided for supporting the inner housing 1078 within and relative to the outer housing 1014. The illustrated mount assembly includes a plurality of vibration damping elements 1206, 1210 disposed between the inner housing 1078 and the outer housing 1014.
Similar to the power tool 10 of the first embodiment, the first portion 1154 of the gear case 1074 is configured to receive an eccentric shaft 1134, an eccentric bearing 1138, and a portion of a forked yoke 1142 (i.e., arms 1150). The second portion 1158 of the gear case 1074 is configured to support a clamping mechanism 1030 including a spindle 1094, an output element 1026, and the remaining portion of the forked yoke 1142 (i.e., a sleeve portion 1146). The first portion 1154 of the gear case 1074 is in facing relationship with a corresponding first portion 1162 of the head portion 1038 of the outer housing 1014. The second portion 1158 of the gear case 1074 is in facing relationship with a corresponding second portion 1166 of the head portion 1038 of the outer housing 1014.
With particular reference to
With reference to
The limit member 1230 is configured to limit lateral movement between the inner housing 1078 relative to the outer housing 1014 in a direction transverse to the output axis 1090. More specifically, the limit member 1230 is configured to inhibit or prevent direct contact between the inner housing 1078 and the outer housing 1014 when the inner housing 1078 pivots or tilts within the outer housing 1014 by the reaction force, thereby ensuring that vibration can only be transmitted to the outer housing 1014 via the damping elements 1206, 1210.
In particular, like the first embodiment of the power tool 10, an annular gap 1250 (
Various features of the invention are set forth in the claims.
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202021094627.5 | Jun 2020 | CN | national |
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PCT/US2021/036707 | 6/10/2021 | WO |
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WO2021/252701 | 12/16/2021 | WO | A |
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