The present application is based on, and claims priority from, Taiwan Application Serial Number 94107335, filed Mar. 10, 2005, the disclosure of which is hereby incorporated by reference herein in its entirety.
1. Field of Invention
The invention relates to a pivot and, in particular, to a torque changeable pivot used in computer manufacturing processes.
2. Related Art
The pivot used in a normal laptop computer or thin display has to provide an appropriate torque to support the weight of the screen. Insufficient torque will result in a loose support for the display screen. If the torque is too large, it will be difficult to adjust the angle of the screen. Take the laptop computers as an example, manufacturers may provide display devices of different sizes and weights in a certain series of laptop computers for selection. During the computer manufacturing process, manufacturers usually have to provide different pivots that are similar in appearance and size but different in torques for display devices of different weights. However, the conventional pivots always provide unchangeable torques and cannot meet these requirements. Moreover, they are similar in appearance and size. It is thus a trouble for material management. Sometimes, wrong pivots will be used and result in a low yield. This inevitably increases the production cost.
Therefore, the invention provides a torque changeable pivot that, during a manufacturing process, provides different torques by simply inserting a pin or not.
Another object of the invention is to provide a torque changeable pivot that helps simplify the management of materials using standardized elements.
A further object of the invention is to provide a torque changeable pivot whose torque value is switched according to whether a pin is inserted during the production. It is less likely to put a wrong pivot due to mixed materials.
According to the above-mentioned objects, the disclosed torque changeable pivot includes a cylinder, a spindle, and a pin. The cylinder further includes a cylinder shell and the spindle further includes a first rotational portion and a second rotational portion. A peripheral surface of the first rotational portion couples to an inner surface of the cylinder shell and the first rotational portion further includes a first coupling member eccentrically disposed on the first rotational portion. A peripheral surface of the second rotational portion couples to the inner surface of the cylinder shell and the second rotational portion further includes a second coupling member eccentrically disposed on the second rotational portion. When the first coupling member is aligned with the second coupling member and the pin is inserted into the first coupling member and the second coupling member, the first rotational portion and the second rotational portion are combined together. Therefore, the torque of the torque changeable pivot is increased.
These and other features, aspects and advantages of the invention will 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 will be 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 cylinder 100 includes a cylinder shell 110 and a rotational axis 120. The cylinder shell 110 is an axially symmetric cylinder. The bottom of the cylinder shell is perpendicular to the axis of the pivot in a preferred embodiment of the invention. The rotational axis 120 is coupled to the bottom of the cylindrical structure of the cylinder shell 110, extending outward from the pivot. As the rotational axis 120 rotates, the cylinder shell 110 rotates along the rotational axis 120. For different pivots, the invention can eccentrically couple the rotational axis 120 to the cylinder shell 110. The rotational axis 120 is used to couple to the device that is to be installed with a pivot. Alternatively, the invention can be coupled to the device directly with the cylinder shell 110 (not shown).
The spindle 200 includes a first rotational portion 211, a second rotational portion 212, and a rotational axis 220. The first rotational portion 211 has an axially symmetric short axis structure. A peripheral surface of the first rotational portion 211 couples to an inner surface of the cylinder shell 110 when the first rotational portion 211 is disposed in the cylinder shell 110. The first rotational portion 211 further includes a first coupling member 231 eccentrically disposed on a surface of the first rotational portion 211 corresponding to the second rotational portion 212. The first rotational portion 211 includes an opening passing through the first rotational portion 211.
In the preferred embodiment, when the first rotational portion 211 is disposed in the cylinder shell 110, the contact surfaces between the first rotational portion 211 and the bottom of the cylindrical structure of the cylinder shell 110 are planes perpendicular to the axis of the pivot. Accordingly, when the first rotational portion 211 rotates inside the cylinder shell 110, the bottom surface of the cylindrical structure does not interfere with the contact surface of the first rotational portion 211.
The second rotational portion 212 is an axially symmetric short axis. A peripheral surface of the second rotational portion 212 couples to an inner surface of the cylinder shell 110 when the second rotational portion 212 is disposed in the cylinder shell 110. The second rotational portion 212 further includes a second coupling member 232 eccentrically disposed on a surface of the second rotational portion 212. The second coupling member 232 of the second rotational portion 212 is aligned with the first coupling member 231 of the first rotational portion 211. The second rotational portion 212 includes an opening passing through the second rotational portion 212.
The rotational axis 220 is coupled to the second rotational portion 212 with the same axis and extends outward from the pivot. When the rotational axis 220 rotates, the second rotational portion 212 rotates along the rotational axis 220. For different pivots, the invention can also provide eccentric coupling between the rotational axis 220 and the second rotational portion 212. The rotational axis 220 is used to couple to the device that is designed to be installed with a pivot. Alternatively, the invention can be coupled to the device directly with the second rotational portion 212 (not shown).
When both the first rotational portion 211 and the second rotational portion 212 are coupled to the cylinder shell 110, the rotational axis 220 only brings the second rotational portion 212 into motion because the first rotational portion 211 and the second rotational portion 212 do not interfere. The first coupling member 231 and the second coupling member 232 are aligned. In this case, the pin 300 is inserted into the first coupling member 231 and the second coupling member 232 through the openings formed on the first rotational portion 211 and the second rotational portion 212.
In the preferred embodiment, the contact surfaces between the first rotational portion 211 and the second rotational portion 212 are planes perpendicular to the axis of the pivot. That is, the surfaces of the first rotational portion 211 and the second rotational portion 212 are parallel to each other. When the pin 300 is not inserted, the two contact surfaces do not interfere with each other as the second rotational portion 212 rotates inside the cylinder shell 110.
As shown in
When the pin 300 is not inserted, the first rotational portion 211 and the second rotational portion 212 are not coupled. When there is a relative motion between the cylinder 100 and the spindle 200, only the second rotational portion 212 is brought into motion. Therefore, only the friction between the peripheral surface of the second rotational portion 212 and the inner surface of the cylinder shell 110 provides the torque between the cylinder 100 and the spindle 200. The torque is smaller in this case. On the contrary, when the pin 300 is inserted, the first rotational portion 211 and the second rotational portion 212 are coupled. When there is a relative motion between the cylinder 100 and the spindle 200, both the first rotational portion 211 and the second rotational portion 212 are brought into motion. Therefore, the friction between the peripheral surface of the first rotational portion 211 and the inner surface of the cylinder shell 110, and the friction between the peripheral surface of the second rotational portion 212 and the inner surface of the cylinder shell 110 provide the torque between the cylinder 100 and the spindle 200. The torque is larger in this case. Therefore, the invention can control the magnitude of the pivot torque by whether the pin 300 is inserted into the first and second coupling members 231, 232 or not, i.e. whether the first rotational portion 211 and the second rotational portion 212 are coupled.
Various modifications can be made within the scope of the invention. For example, the opening of the cylinder shell 110 can have a constraining structure (not shown) so that the spindle 200 in the cylinder shell 110 is prevented from falling out.
According to the need of adjusting the torque for different devices, as shown in
As shown in
As shown in
For obtaining different torques, the first and second rotational portions 211, 212 can be made of the same material or different ones. The frictional coefficients (smoothness) of the peripheral surfaces of the first and second rotational portions 211, 212 can be the same or different. Likewise, the frictional coefficient (smoothness) of the inner surface of the cylinder shell 110 and the contact surfaces of the first and second rotational portions 211, 212 can be the same or different. Moreover, we use the first and second rotational portions 211, 212 of the same length in the axes in the above embodiments. However, as shown in
In the above embodiments, the coupling portion of the spindle 200 and the cylinder shell 110 are divided into two portions, the first rotational portion and the second rotational portion. To obtain more possible torques, one may also divide the coupling portion of the spindle 200 and the cylinder shell 110 into several same or different first rotational portion 211, second rotational portion 212, . . . , and nth rotational portion 21n and use pins 300, 301, . . . , 30n of different lengths to adjust the coupling between the spindle 200 and the cylinder shell 110. Therefore, several possible frictional forces can be produced to change the torques, as shown in
In the above embodiments, the coupling surfaces of the bottom of the cylinder shell 110, the first rotational portion 211, and the second rotational portion 212 are perpendicular to the axis of the pivot. However, these surfaces may have axially symmetric shapes that do not interfere with one another during rotation. For example, they can be the convex and concave cones shown in
As illustrated in
It is therefore see that the invention has the following advantages:
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
Number | Date | Country | Kind |
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94107335 | Mar 2005 | TW | national |