The present invention relates in general to a rotational joint, and more particularly, to a stepless rotational joint.
The rotational joint is popularly utilized within products that have either a single or bi-directional rotating mechanism, such as a ratchet wrench, a desk lamp adjusting lever, or an orienting axle connecting a chair back to a chair seat. The conventional art utilizes a ratchet and pawl mechanism, or a concave and convex element, or a spring and steel ball combination to complete a single or bi-directional rotation and orientation. But, those mechanisms are unable to acquire a precise orientation because of their structures' limitations.
Further, there was a stepless rotational joint disclosed in a Taiwan utility patent, publishing number 122187. The patent disclosed a stepless ratchet wrench structure which comprises a slot opening formed in the main body, and an engaging element with an axial tooth portion which is installed together with a spring element inside the slot opening. In one rotational direction the axial tooth portion of the engaging element is engaged with the teeth of a pawl block while the other rotational direction is not engaged because this rotational direction is in the same direction as the direction of the force of the spring element. Thus, the stepless ratchet wrench is able to perform its function. This stepless ratchet wrench can attain a more precise rotational operation than other conventional ratchet wrenches. However, this stepless ratchet wrench is still unable to achieve a truly stepless operation because of the limitation imposed by their tooth structure.
The present invention provides a stepless rotational joint that is able to perform a stepless single directional or bi-directional rotation. The present invention thereby attains a more precise and smooth operation than a conventional art does.
The stepless rotational joint of the present invention includes a shell body, a lower mount, a driving element with two driving planes, a rotational disk, an upper mount, and a switch device. In a rotational operation, one driving plane of the driving element will be engaged with the rotational disk and the upper mount. The switch device is utilized to select the driving plane to be engaged. Further, because the rotational disk is assembled with the lower mount, the rotation of the rotational disk will drive the lower mount to rotate. When a consumer applies a torque along a selected rotational direction, the rotational disk will be driven to rotate along the selected direction because the top and the bottom end surfaces of the rotational disk are respectively engaged with an oblique plane of the upper mount and one of the driving plane. The rotation of the rotational disk will further drive the lower mount to rotate synchronously along the selected direction. When a torque opposite to the selected rotational direction is applied, the rotational disk will be pushed downward and against a transition area of the driving element. The upper mount is thereby oriented because the transition area, the rotational disk, and the upper mount are interlocked together. The present invention is thereby able to prevent reverse slippage. Furthermore, the present invention utilizes the driving plane to engage with the rotational disk and the upper mount. In other word, the present invention is stepless so that it is more precise than conventional arts are.
These and other objectives of the present invention will become obvious to those of ordinary skill in the art after reading the following detailed description of preferred embodiments.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
These as well as other features of the present invention will become more apparent upon reference to the drawings therein:
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
Referring to
The lower mount 2 is installed inside the shell body 1, as shown in
The driving element 3 is movably sleeved over the assemble shaft 21 of the lower mount 2, as shown in
The rotational disk 4 comprises an assemble block 41 and two semi cylindrical openings which correspond to the semi cylindrical plates 22, 23 of the lower mount 2. The semi cylindrical plates 22, 23 of the lower mount 2 are inserted into the semi cylindrical openings of the rotational disk 4. Thus, the rotational disk 4 is rotated simultaneously with the lower mount 2. One end surface of the rotational disk 4 is engaged with the upper mount 5 while the other end surface is engaged with either the driving plane 31 or the driving plane 32. Thereby, the present invention is capable of driving a rotation.
The upper mount 5, which is opposite the lower mount 2, is installed inside the shell body 1. The upper mount 5 includes a connecting head 55, which is able to connect to a product or a tool utilizing the present invention; and an oblique plane 51. The oblique plane 51 has a slope which is the inverse of the slope of the driving planes 31, 32. Because the slopes of the oblique plane 51 and the driving planes 31, 32 are inverse, the upper mount 5 is capable of engaging with either of the driving slopes surfaces 31, 32.
The switch device 6 is utilized to enable either the driving plane 31 or the driving plane 32 to engage with the rotational disk 4 for controlling and selecting the rotational direction. As illustrated in
The operation of a stepless rotational joint in accordance with the present invention is illustrated in
When the upper mount 5 applies a torque opposite to the selected rotational direction, the driving plane 31 is disengaged with the rotational disk 4 and the oblique plane 51 of the upper mount 5. The rotational disk 4 is further pushed downward and against the transition area 33 of the driving element 3. The upper mount 5 is thereby oriented because the transition area 33, the rotational disk 4, and the oblique plane 51 are interlocked together, as shown in
The consumer can also select the other rotational direction by pushing the switch device 6 toward the other side to set the stepless rotational joint under the second rotational direction, as shown in
The present invention utilizes either of the driving planes 31, 32 to engage with the rotational disk 4 and the oblique plane 51 of the upper mount 5. The present invention is stepless so that it is more precise than conventional arts are. As shown in
Referring to
The driving element 3 of the present embodiment is different from that of the aforementioned embodiment. The driving element 3 of the present embodiment has only one driving plane 31 formed on one end thereof. The driving plane 31 is able to engage with the rotational disk 4 and the upper mount 5. This engagement enables the stepless rotational joint to perform a single direction operation, as shown in
As shown in
While an illustrative and presently preferred embodiment of the invention has been described in detail herein, it is to be understood that the inventive concepts may be otherwise variously embodied and employed and that the appended claims are intended to be construed to include such variations except insofar as limited by the prior art.