The present application is based on, and claims priority from, Taiwan Application Serial Number 94201025, filed Jan. 19, 2005, the disclosure of which is hereby incorporated by reference herein in its entirety.
1. Field of the Invention
The invention relates to a torque adjusting mechanism and, in particular, to an elastic torque adjusting mechanism.
2. Description of the Related Art
To adjust the torque between two devices rotating with respect to each other and coupled by a shaft, a torque adjusting mechanism is often provided between the shaft and the pivoting devices. The conventional torque adjusting mechanism usually is a fixing device penetrating through the pivoting devices. The fixing device, for example, has a set of nut and bolt or a rivet. The method of adjusting the torque is to adjust the tightness between the nut and bolt or the depth of the rivet. This kind of torque adjusting method is very hard to provide a stable torque, for the contact area between the two pivoting devices and the head of bolt and the nut or the deformed rivet head.
When using the nut and bolt as the fixing device, they may become more loose or tight as the pivoting devices rotate because of the friction between them. Therefore, it is hard to maintain a stable torque.
When using the rivet as the fixing device, one hit the rivet to determine its connection. Once a predetermined torque is reached, it is hard to be loosened. The connection part is worn as the two pivoting devices rotate. Little by little, a gap is formed between them to weaken the torque. One then has to hit the rivet again to regain the torque. If one wants to separate the two pivoting devices, the rivet has to be destroyed. The destroyed rivet can no longer be used in the torque adjusting mechanism. That is, a new rivet has to be used in order to re-couple the two pivoting devices.
Moreover, if the two pivoting devices have a different hole size than the fixing device, they cannot rotate about the same center. It is then very difficult to adjust the orientations of the devices with high precision.
Accordingly, an objective of the invention is to provide a torque adjusting mechanism to control the torque using the coupling interface between the shaft and the main body of the torque adjusting mechanism.
Another objective of the invention is to provide a torque adjusting mechanism assembled from components that can easily be taken apart.
A further objective of the invention is to provide an adjusting base that has a torque adjusting mechanism with good coaxiality to accurately adjust the orientation of a supported apparatus.
To achieve the above objectives, the disclosed torque adjusting mechanism of the present invention includes a shaft, a main body, and an adjusting device. The main body has a circular wall and a circular through hole, whose diameter is slightly larger than that of the shaft, disposed therein for coupling to the shaft. The adjusting device disposed on the main body includes an adjusting hole, an adjusting button, and an elastic body. The adjusting hole is perpendicular to the through hole and penetrates the circular wall. The adjusting button coupled to the adjusting hole can be adjusted along the adjusting hole when an external force acts upon. The adjusting button is fixed inside the adjusting hole when no external force is imposed thereon. The elastic body is disposed inside the adjusting hole. One end of the elastic body contacts with the adjusting button, and the other end presses on the shaft.
Before adjusting the adjusting button, the elastic body provides a predetermined torque between the shaft and the main body. The adjusting button presses on the elastic body to in turn press on the shaft for increasing the torque between the shaft and the main body when the adjusting button is moved toward the shaft.
These and other features, aspects and advantages of the invention become apparent by reference to the following description and accompanying drawings which are given by way of illustration only, and thus are not limitative of the invention, and wherein:
The present invention is apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
As shown in
The main body 200 has a circular wall, and the central portion of the circular wall is a circular through hole 210, the diameter of the circular through hole 210 is slightly larger than that of the shaft 100, for coupling to the shaft 100.
The adjusting device 400 disposed on the main body 200 is used to adjust the torque between the main body 200 and the shaft 100. The adjusting device 400 includes an adjusting hole 410, an adjusting button 420, and an elastic body 430.
The adjusting hole 410 is perpendicular to the through hole 210 and penetrates the circular wall of the main body 200. The adjusting button 420 coupled to the adjusting hole 410 can be adjusted to move along the adjusting hole 410 when an external force acts upon. The adjusting button 420 is fixed inside the adjusting hole 410 when no external force is imposed thereon. The adjusting hole 410 and the adjusting button 420 have coupled threads.
The elastic body 430 is disposed inside the adjusting hole 410. One end of the elastic body 430 contacts with the adjusting button 420, and the other end presses on the shaft 100.
The above embodiment is a torque adjusting mechanism with only one adjusting device 400. The adjusting device 400 presses in only one direction on the shaft 100, making both the shaft 100 and the main body 200 separate from the center.
Therefore, as shown in
As shown in
As shown in
The disclosed torque adjusting mechanism of the present invention further includes a pad 300 between the shaft 100 and the main body 200. The elastic body 430 presses on the pad 300, indirectly pressing the shaft 100 to distribute the pressing force. The pad 300 is an unclosed circular structure made of an erosion-resistant material to reduce the possible erosion due to the friction among the shaft 100, the main body 200, and the elastic body 430 during rotation.
As shown in
Moreover, the shaft 100 contains a blocking portion 150 located on one of its end. The blocking portion 150 protrudes from the wall of the shaft 100 and has a shape that forbids it from penetrating through the through hole 210. This prevents the main body 200 from sliding out of the shaft 100 from the end with the blocking portion 150.
Within the scope of the invention, the shapes of various components are not limited to those shown in the drawings. As long as the disclosed functions can be achieved, the components can have any desired shapes.
The present invention can be applied to various apparatuses. For example, the invention is used in an adjusting base, as shown in
The first torque adjusting mechanism 810 has a perpendicularly coupled shaft 101. One end of the first arm 820 is coupled to the main body 201 of the first torque adjusting mechanism 810. The second torque adjusting mechanism 830 is the extended line of the axis of the shaft 102. The first torque adjusting mechanism 810 is the extended line of the axis of the shaft 101. The extended lines meet perpendicularly and couple at the other end of the first arm 820. One end of the second arm 840 is coupled to the main body 202 of the second torque adjusting mechanism 830. The third torque adjusting mechanism 850 is coupled to the other end of the second arm 840 by the main body 203. The extended line of the axis of the shaft 103 of the third torque adjusting mechanism 850, and the extended line of the axis of the shaft 102 of the second torque adjusting mechanism 830, are coupled perpendicularly. The support apparatus 902, such as a thin display device, is coupled perpendicularly to the shaft 103 of the third torque adjusting mechanism 850. Pads 903 are provided among the torque adjusting mechanisms 810, 830, 850, the arms 820, 840, and between the base 901 and the apparatus 902. The end surfaces of the shafts 101, 102 are fixed by a fixing device 904 with the pads 903, so that each torque adjusting mechanism has smooth motions and all the elements are prevented from separation. One end surface of the shaft 103 is further provided with a blocking portion 905 to limit the rotating angle of the shaft 103. Accordingly, the first torque adjusting mechanism 810 is used to adjust the rotating angle of the apparatus 902 in the left and right directions. The second torque adjusting mechanism 830 is used to adjust the tilting angle of the apparatus 902 in the up and down directions. The third torque adjusting mechanism 850 is used to adjust the horizontal angle of the apparatus 902. The arms are used to extend the distances between the torque adjusting mechanisms or between the apparatus and the torque adjusting mechanisms.
As shown in
In the preferred embodiment, we use three torque adjusting mechanisms to constitute a multi-joint movable arm. In accord with practical situations, the number of torque adjusting mechanisms and multi-joint movable arms can be increased or decreased. For example, if there is only one torque adjusting mechanism, the arm can be eliminated and the apparatus is directly coupled to the torque adjusting mechanism. Alternatively, one may also use other types of torque adjusting mechanisms. Such variations should be construed in the scope of the invention.
From the preferred embodiment, the invention has the following advantages:
While the invention has been described by way of example and in terms of the preferred embodiment, it is to be understood that the invention is not limited to the disclosed embodiments. To the contrary, it is intended to cover various modifications and similar arrangements as would be apparent to those skilled in the art. Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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94201025 | Jan 2005 | TW | national |