The present invention relates to a wrench, and more particularly, to a wrench with rotatable driving head which is rotatable 360 degrees relative to the handle.
A conventional wrench with rotatable driving head is disclosed in U.S. Pat. No. 2,977,824 and generally includes a body with a groove defined axially therein so as to form two parts and a positioning pin is connected between the two parts to prevent the two parts from overly separated from each other. A driving head is pivotably connected between the two parts. The wrench has at least two disadvantages, one of which is that when the driving head is rotated, the driving head cannot be rotated 360 degrees especially when a socket is connected to the driving head. The other disadvantage is that the driving head is not well positioned so that it is not stable when operation.
The present invention intends to provide a wrench having a driving head that is rotatable 360 degrees relative to the handle.
The present invention relates to a wrench with a driving head that is able to rotate 360 degrees and has three different operation modes. The wrench comprises a body and a driving head connected to the body. The body includes a push rod, two first push pieces, two second push pieces and a push unit so as to control the position and angle that the driving head rotates relative to the body. The driving head includes multiple positioning holes, an engaging protrusion, a through hole in the engaging protrusion, a bead and a control rod to control the engagement or disengagement between the engaging protrusion and the socket.
The present invention will become more obvious from the following description when taken in connection with the accompanying drawings which show, for purposes of illustration only, a preferred embodiment in accordance with the present invention.
Referring to
A push member 20 is located in the recess 13 and has a guide hole 21 defined in the mediate portion thereof 20. The push member 20 has an axial hole 23 defined in the first end thereof and a radial hole 22 is defined in the outer surface of the push member 20 and located close to the first end. The guide hole 21 is located corresponding to the locking hole 15 and the radial hole 22 is located corresponding to the slit 141. The guide hole 21 does not communicate with the radial hole 22. The axial hole 23 communicates with the radial hole 22 and the guide hole 21. The axial hole 23 and the recess 13 open in the same direction. The second end of the push member 20 is inserted into the axial hole 23. The push member 20 has two first push pieces 24 and each push piece 24 having an extension inserted into the slit 141 and a distal portion extends out from the slit 141.
At least one second piece 30, in this embodiment, there are two second push pieces 30 located corresponding to the two first push pieces 24. Each second piece 30 has a connection ring 31 inserted into the radial hole 22 and contacts the inside of the radial hole 22.
A push unit 40 is located in the radial hole 22 and the axial hole 23 of the push member 20.
A push rod 41 is located in the axial hole 23 and the an end of the push rod 41 extends out from the axial hole 23 and through the two respective connection rings 31 to position the second push pieces 30 in the radial hole 22. An annular groove 411 is defined in the outer surface of the push rod 41.
A clip 42 is engaged with the annular groove 411. An outer diameter of the clip 42 is larger than a diameter of the axial hole 23 of the push member 20 to restrict the push rod 41 from dropping from the axial hole 23. The clip 42 contacts the second push pieces 30. A first spring 43 is mounted the push rod 41 and biased between the clip 42 and an inside of the radial hole 22.
The second push pieces 30, the push rod 41, the clip 42 and the first spring 43 are connected to the push member 20. The first spring 43 pushes the second push pieces 30 to contact against the inside of the radial hole 22 and push the second push pieces 30 to overcome the force of the first spring 43. The two second push pieces 30 push the push rod 41 which further extends out from the axial hole 23.
A spring member 50 is located in the recess 13 and biased between the inside of the recess 13 and the push member 20, so that the push member 20 is resiliently movable in the body 10. The push member 20, the second push pieces 30 and the push unit 40 are biased by the spring member 50, the push member 20, the second push pieces 30 and the push unit 40 seal the recessed area 12.
A positioning pin 18 has outer threads and extends through the locking hole 15 and the guide hole 21 to restrict the push member 20 to be only moved within a range in the recess 13 and to prevent the base portion of the Y-shaped arm 11 from splitting apart.
A sleeve 19 is mounted to the handle 100 to seal the slot 14.
A driving head 60 includes a cylindrical body 61 which is pivotably connected to the Y-shaped arm 11 by two pivots 611 and can be operated in both clock and counter clockwise directions. Multiple positioning holes 612 are defined in the outer surface of the driving head 60. Each positioning hole 612 has an axis that perpendicularly extends the axes of the pivots 611. The push rod 41 is engaged with one of the positioning holes 612.
An engaging protrusion 613 extends from one end of driving head 60 and the engaging protrusion 613 is a rectangular protrusion so as to be connected with a socket. When the driving head 60 is rotated relative to the Y-shaped arm 11, the engaging protrusion 613 passes through the recessed area 12. The engaging protrusion 613 has a through hole 614 defined axially therethrough and a reception hole 615 defined radially in the driving engaging protrusion 613 and communicating with the through hole 614. A bead 64 is engaged with the reception hole 615. A control rod 62 is located in the through hole 614 and has a stepped recess 622 defined radially in the first end thereof. The stepped recess 622 is located corresponding to the reception hole 615 of the engaging protrusion 613. A notch 621 is defined in the second end of the control rod 62 and the push rod 41 is engaged with the notch 621. Two open ends of the through hole 614 are larger than a mediate portion of the through hole 614.
A second spring 63 is mounted to the control rod 62 to provide a force to move the control rod 62 in the through hole 614. The bead 64 is engaged with the stepped recess 622 and movable within the reception hole 615 along with a movement of the control rod 62.
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The driving head 20 is rotated 360 degrees by pushing the push member 20 toward the handle of the body for a significant distance. When the push unit 40 is moved toward the Y-shaped arm 11, the driving head 60 can be separated from the socket. When the push member 20 is pushed toward the handle for a small distance, the push rod 41 is disengaged from the notch 621 and the driving head 60 can be rotated to a desired position and secured, so that the driving head has multiple operational positions. The push member 20 can be adjusted to three different operation modes. The push member 20, the second push pieces 30, the push unit 40 and the spring member 50 are connected to each other, and then installed to the body 10 to conveniently assemble the wrench. When the push member 20 and the second push pieces 30 are stationary, the recessed area 12 is sealed. The sleeve 19 is mounted to the handle to have aesthetic outer appearance.
While we have shown and described the embodiment in accordance with the present invention, it should be clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.
Number | Name | Date | Kind |
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7987746 | Chiang | Aug 2011 | B2 |
8375829 | Lin | Feb 2013 | B2 |
Number | Date | Country | |
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20120247280 A1 | Oct 2012 | US |