The present invention relates to ratchet tools, and more particularly to powered ratcheting tools.
Powered ratchet tools sometimes allow an operator to drive an output member in a forward direction or an opposite reverse direction to apply torque to a fastener for tightening or loosening the fastener. Powered ratchet tools are typically powered by an electrical source, such as a DC battery, a conventional AC source, or pressurized air. Powered ratchet tools are constructed of components such as a drive mechanism including a motor and an output member for applying torque to the fastener.
The present invention provides, in one aspect, a powered ratchet tool comprising a housing and an output member having an inner opening, an outer toothed surface, and an output member aperture extending through the outer toothed surface to the inner opening. The powered ratchet tool further comprises a drive mechanism for driving the output member. The drive mechanism includes a yoke in which the output member is arranged. The yoke has a yoke aperture. The powered ratchet tool further comprises a first pawl in the yoke that is biased toward the toothed surface of the output member and a second pawl in the yoke that is biased toward the toothed surface of the output member. When the output member is in a home position, the first pawl and the second pawl are engaged with the toothed surface of the output member and the output member aperture is aligned with the yoke aperture.
The present invention provides, in another aspect, a powered ratchet tool comprises a housing and an output member having an inner opening defining a longitudinal axis, an outer toothed surface, and an output member aperture extending through the outer toothed surface to the inner opening. The powered ratchet tool further comprises a drive mechanism for driving the output member. The drive mechanism includes a crank shaft defining a crank axis that is parallel to the longitudinal axis and a yoke in which the output member is arranged. The yoke has a yoke aperture. The powered ratchet tool further comprises a first pawl in the yoke that is biased toward the toothed surface of the output member and a second pawl in the yoke that is biased toward the toothed surface of the output member. When the output member is in a home position, the first pawl and the second pawl are engaged with the toothed surface of the output member and the output member aperture is aligned with the yoke aperture.
The present invention provides, in yet another aspect, a powered ratchet tool comprising a housing having a housing aperture and an output member having an inner opening defining a longitudinal axis, an outer toothed surface, and an output member aperture extending through the outer toothed surface to the inner opening. The powered ratchet tool further comprises a drive mechanism for driving the output member. The drive mechanism includes a drive shaft defining a drive axis that is perpendicular to the longitudinal axis, a drive gear to transmit torque to the output member, and a transmission configured to transmit torque from the crank shaft to the drive gear. When the output member is in a home position, the output member aperture is aligned with the housing aperture.
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.
A shown in
With reference to
With reference to
As shown in
In operation, with the output member 22 in the home position, when an operator wishes to loosen a fastener or nut in a hard to reach location, such as a vertically narrow crevice, the operator moves the tool 14 horizontally into the crevice such that the shank of the fastener to which the nut or fastener head is attached passes through yoke aperture 48 and the output member aperture 86, and into the inner opening 70. Once the shank is received in the inner opening 70 and aligned with the longitudinal axis 74, the operator moves the output member 22 along the longitudinal axis 74 and the shank until the second end section 82 engages the nut or fastener head. The operator then actuates and holds the first actuator 92 and in response, the controller 94 activates the motor 26 of the drive mechanism 18, causing the crankshaft 34 to rotate the drive bushing 36, which causes the yoke 42 to pivot in a reciprocating manner relative to the housing 14.
Initially, as the yoke 42 is undergoing a “driving” pivot motion (pivoting counterclockwise as viewed in
Eventually the output member 22 is rotated to a second position shown in
Subsequently, the output member 22 is rotated to a third position shown in
In some embodiments, after releasing the first actuator 92, the controller 94 recognizes that the output member 22 is not in the home position because the magnet 88 is not detected by the sensor 90. Thus, in response to recognizing the output member 22 is not in the home position, despite the first actuator 92 being released by the operator, the controller 94 maintains the drive mechanism 18 in an activated state to continue rotating the output member 22, as described above, until the output member 22 is in the home position. When the output member 22 reaches the home position, the sensor 90 detects the magnet 88 and in response, the controller 84 deactivates the drive mechanism 18.
In other embodiments, after releasing the first actuator 92, the drive mechanism 18 is deactivated 18. The operator then actuates and holds the second actuator 98. In response to actuation of the second actuator 98, the controller 94 first determines whether the output member 22 is in the home position by determining whether the sensor 90 detects the magnet 88. If the controller 94 determines the output member 22 is not in the home position, the controller 94 activates the drive mechanism 18 to continue rotating the output member 22 until the output member 22 is in the home position. When the output member 22 reaches the home position, the sensor 90 detects the magnet 88 and in response, the controller 84 deactivates the drive mechanism 18, even if the operator continues to hold the second actuator 98. Thereafter, the operator releases the second actuator 98.
In operation, when an operator wishes to tighten a fastener or nut, the operator must vertically flip the tool 10, such that the first end section 78 can engage the fastener or nut. The operator may then actuate and hold the first actuator 92 as described above until the fastener or nut has been tightened.
With reference to
Like the ratchet tool 10, in some embodiments, the output member 112 includes a magnet that is detectable by a sensor on the housing 104 of the ratchet tool 100, such as a Hall-effect sensor, when the output member 112 is in the home position. Like the ratchet tool 10, in some embodiments, the ratchet tool 100 includes a first actuator 184, a second actuator 188, and a controller that have the same functions as the first actuator 92, second actuator 98 and controller 84 of the ratchet tool 10. The magnet, sensor, first actuator 184, second actuator 188, and controller of the ratchet tool 100 can all work together in the same way as described above with the ratchet tool 10.
The ratchet tool 100 is operable in the same manner as the ratchet tool 10, except for the following differences explained below. When the drive mechanism 108 is activated, the crankshaft 124 rotates about the crank axis 128, causing the eccentric 132 to rotate about the crank axis 128 in a manner that eccentrically drives the drive bushing 136 within the recess 144 of the yoke 140. Specifically, in response to the driving motion of the eccentric 132, the drive bushing 136 has two orthogonal components of motion, along a first axis 192 that is parallel to the two arms 142 and intersects the crank axis 128 and longitudinal axis 176, and along a second axis 196 that is perpendicular to the first axis 192. As shown in
Like the ratchet tools 10 and 100, in some embodiments, the output member 212 includes a magnet 246 that is detectable by a sensor 248 on the housing 204 of the ratchet tool 200, such as a Hall-effect sensor, when the output member 212 is in the home position. Like the ratchet tools 10 and 100, in some embodiments, the ratchet tool 200 includes a first actuator 252, a second actuator 256, and a controller 260 that have the same functions as the first actuators 92, 184, second actuator 98, 188 and controllers of the ratchet tools 10, 100. The magnet 246, sensor 248, first actuator 252, second actuator 256, and controller 260 of the ratchet tool 200 can all work together in the same way as described above with the ratchet tools 10, 100.
Various features of the disclosure are set forth in the following claims.
This application claims priority to U.S. Provisional Patent Application No. 62/750,887 filed on Oct. 26, 2018, the entire contents of which are incorporated by reference herein.
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