This application claims priority of Taiwanese Utility Model Application No. 100224258, filed on Dec. 22, 2011, the disclosure of which is herein incorporated by reference.
1. Field of the Invention
This invention relates to a hand tool, more particularly to a telescopic handle for a hand tool.
2. Description of the Related Art
A conventional torque hand tool, such as a ratchet wrench, generally includes a driving head and a handle connected to the driving head. To facilitate storage of the hand tool, the handle includes a main shank fixed to the driving head at one end, and an outer sleeve movably sleeved on the main shank to be extendible relative to the driving head. A retaining ring or a coil spring is sleeved on the main shank to be in resilient contact with the outer sleeve so as to frictionally retain the outer sleeve to the main shank. As the retaining force generated between the retaining ring and the outer sleeve is insufficient, the outer sleeve which a user's hand grips during operation, such as a screw fastening operation, may be inadvertently moved or rotated relative to the main shank, which will adversely affect the torque delivered to a workpiece, such as a screw.
An object of the present invention is to provide a telescopic handle for a hand tool which ensures positioning between a main shank and an outer sleeve for preventing axial and rotational movement therebetween during operation of the hand tool.
According to this invention, the telescopic handle includes an outer sleeve elongated along an axis to terminate at first and second ends, and having an inner peripheral surface which defines an axial bore. A main shank has a distal end for connection to a tool head, a proximate end opposite to the distal end along the axis, and an outer surrounding surface which extends between the distal and proximate ends, and which is configured to be inserted into the axial bore and in fitting engagement with the inner peripheral surface so as to be slidable and rotatable relative to the inner peripheral surface along and about the axis. The outer surrounding surface has a plurality of retained regions axially displaced from each other. A key-and-keyway mechanism includes a keyway which is formed in one of the outer surrounding surface and the inner peripheral surface, and which extends axially, and a key member which is disposed in and extends radially and outwardly of the other one of the outer surrounding surface and the inner peripheral surface, and which is matingly engaged with the keyway to guide movement of the main shank along the axis and to guard against rotation of the main shank about the axis relative to the outer sleeve. The key member is angularly displaced from the retained regions about the axis. A retaining member has retaining and actuated ends opposite to each other radially, and is disposed in and movable radially relative to the inner peripheral surface between an extended position, where the retaining end extends outwardly of the inner peripheral surface to engage a selected one of the retained regions so as to guard against the movement of the main shank along the axis, and a retracted position, where the retaining end is retracted into the outer sleeve to be disengaged from the retained regions so as to permit the movement of the main shank along the axis. An operating member is disposed to be movable axially relative to the outer sleeve, and has an actuating surface moved axially to actuate the actuated end so as to move the retaining member between the extended and retracted positions. The operating member can be moved by a user with the hand gripping the outer sleeve to permit radial movement of the retaining member for adjusting the length of the handle. The key-and-keyway mechanism can guide the axial movement of the outer sleeve while guarding against rotation of the outer sleeve relative to the main shank.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment of the invention, with reference to the accompanying drawings, in which:
Referring to
The outer sleeve 10 is elongated along an axis (L) to terminate at first and second ends 11, 12, and has an inner peripheral surface 14 which defines an axial bore 13. Adjacent to the second end 12, a passage 17 is formed and extends radially through the inner peripheral surface 14. Forward and rearward limits 18, 19 are disposed on the outer sleeve 10. An annular recess 151 is formed in the inner peripheral surface 14. A retaining ring 152 is disposed in the annular recess 151.
The main shank 20 has a distal end 22 for being connected to a tool head 23, a proximate end 21 opposite to the distal end 22 along the axis (L), and an outer surrounding surface 24 which extends between the distal and proximate ends 22, 21, and which is configured to be inserted into the axial bore 13 and in fitting engagement with the inner peripheral surface 14 so as to be slidable and rotatable relative to the inner peripheral surface 14 along and about the axis (L). The outer surrounding surface 24 has a plurality of retained regions 28 which are axially displaced from each other and each of which is in the form of a concavity 28. A through hole 25 is formed adjacent to the proximate end 21 and extends radially through the outer surrounding surface 24. By virtue of the retaining ring 152 which extends radially and outwardly of the inner peripheral surface 14, the main shank 20 is in resilient contact with the inner peripheral surface 14 of the outer sleeve 10.
The key-and-keyway mechanism includes a keyway 16, a key member 27, and a first biasing member 26. In this embodiment, the keyway 16 includes two elongated grooves 161 which are formed in the inner peripheral surface 14 to be diametrically opposite to each other and which extend axially. The key member 27 includes two pins 270 which are slidably inserted in the through hole 25 to be radially spaced apart from each other. Each of the pins 270 extends radially to terminate at an end 271 which projects outwardly of the through hole 25 to be matingly engaged with the respective elongated groove 161 so as to guide axial movement of the main shank 20 along the axis (L) and to guard against rotation of the main shank 20 about the axis (L) relative to the outer sleeve 10. The first biasing member 26 is disposed in the through hole 25 to be interposed between the pins 270 so as to bias the pins 270 towards the corresponding elongated grooves 161. The key member 27 is angularly displaced from the retained regions 28 about the axis (L).
The retaining member 32 is a roller 32 which is disposed and radially movable in the passage 17. The roller 32 has an outer roller surface which has two diametrically opposite areas serving as retaining and actuated ends 321, 322, respectively. Hence, the roller 32 is movable radially relative to the inner peripheral surface 14 between an extended position (as shown in
The operating member 31 is a shell 31 which is disposed on and movable axially relative to the outer sleeve 10 between the forward and rearward limits 18, 19, and which has an inner shell surface confronting the passage 17 to serve as an actuating surface. The inner shell surface has a non-actuating region 312 and an actuating region 311 axially opposite to each other and configured such that, upon an axial displacement of the shell 31 relative to the outer sleeve 10 from a forward position (see
When it is desired to adjust the length of the handle, the user can push the shell 31 rearward with the hand gripping the outer sleeve 10 to move the shell 31 to the rearward position, and then slide the outer sleeve 10 axially relative to the main shank 20, thereby forcing the roller 32 to engage the non-actuating region 312 so as to place the roller 32 in the retracted position. By virtue of the key-and-keyway mechanism, the length adjustment which requires merely an axial movement of the outer sleeve 10 can be smoothly and effortlessly conducted, and undesirable rotation of the outer sleeve 10 relative to the main shank 20 during a torque delivering operation of the hand tool can also be successfully prevented, thereby ensuring delivery of a steady torque from the outer sleeve 10 to the main shank 20 during a screw fastening operation. Moreover, by virtue of the first biasing member 26, the ends 271 of the pins 270 can be kept in resilient contact with the outer sleeve 10 so as to generate an appropriate frictional force for guiding the axial movement of the outer sleeve 10.
Further, as shown in
While the present invention has been described in connection with what is considered the most practical and preferred embodiment, it is understood that this invention is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretations and equivalent arrangements.
Number | Date | Country | Kind |
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100224258 U | Dec 2011 | TW | national |
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Number | Date | Country | |
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