1. Field of Invention
The invention relates to a zipper switch for the DC motor of a ceiling fan and, in particular, to a zipper switch that provides an instantaneous electrical current.
2. Related Art
Normally, a DC ceiling fan is provided with continuous electrical power. The AC power is also used to start or change the rotation speed of the ceiling fan.
The lower case 72 has a rotating block 77 and two conductive chips 78 connected with wires. The rotating block 77 is pivotally disposed at the center in the lower case 72. The rotating block 77 has a metal plate 79, both sides of which are formed with conductive contacts 81. The outer side of the rotating block 77 is further formed with four passive parts 83 corresponding to the pushing parts 76. The conductive chips 78 are disposed in the vicinity of the rotating block 77. Therefore, the pushing force produced when the pushing parts 76 rotates forward can push the passive parts 83, rotating the passive parts 83 in a single direction by a quarter circle. Please further refer to
However, the zipper switch is used in an AC motor. Therefore, each time the zipper 74 is pulled and released, the metal plate 77 and the conductive chips become conductive or non-conductive. For a DC motor, its start is triggered by an instantaneous electrical current. The disclosed zipper switch for an AC motor is used to provide continuous electrical power to establish the ON and OFF modes. Consequently, it cannot be directly used as the zipper switch for a DC motor.
Please refer to
Nevertheless, although it can be used in a DC motor, the above-mentioned zipper switch still has the following problems:
1. As shown in
2. Moreover, when a user pulls the zipper 95 to start a DC motor, the contacts 98 on the connecting part 96 of the driving disk 93 rotate simultaneously and touch with the two conductive chips 99. There is no sound or anything that makes the user feel about the ON and OFF of the switch. Therefore, a normal user may think that the DC motor is not started even though it is already turned on.
An objective of the invention is to provide a zipper switch for the DC motor of a ceiling fan in which, with a plurality of conductive contacts formed symmetrically and at equal angles, the conductive contacts on the rotating block can have intermittent electrical contacts with the conductive chips in the lower case as the pushing part rotates the rotating block. This produces instantaneous electrical currents.
Another objective of the invention is to provide a zipper switch for the DC motor of a ceiling fan, which has uniform contacts between the conductive contacts and the conductive chips so that erosions can be reduced. Therefore, the lifetime of the conductive contacts is longer.
Yet another objective of the invention is to provide a zipper switch for the DC motor of a ceiling fan that gives the user a specific feeling about the start or rotation speed change. Therefore, it will not cause any illusion to the user.
To achieve the above-mentioned objectives, the disclosed zipper switch for the DC motor of a ceiling fan includes an upper case, a rotating block, and a lower case.
The upper case is pivotally disposed with a driving disk, an elastic element, a zipper, and a pressure cover. The elastic element urges the driving disk by its one end and the upper case by its other end. The zipper is connected to the driving disk and drives the driving disk to rotate in a single direction. The driving disk is urged by the elastic element to rotate in the opposite direction. The pressure cover covers the driving disk on one side, thereby positioning the elastic element and the driving disk in the upper case. A pushing part with a plurality of slant surfaces extends from the center of the driving disk outward.
The rotating block is formed on its one end by a plurality of passive parts corresponding to the slant surfaces of the pushing part. The slant surface engages with the passive part in one direction. It further drives the rotating block to perform a circular rotation in steps. The side surface of each passive part is protruded outward with a protruding part. The rotating block is mounted with a metal plate. The metal plate is formed with a plurality of conductive contacts of equal heights symmetrically and at equal angles along the edge of the rotating block. The conductive contacts and the protruding parts are disposed alternately.
The lower case has an accommodating space at its center for the rotating block to be disposed pivotally therein. A conductive chip is disposed on each side of the rotating block in the lower case. When the pushing part drives the rotating block to rotate, the conductive contacts on the rotating block can have intermittent electrical contacts with the conductive chips in the lower case.
The disclosed zipper switch is normally in the OFF mode. When the pushing part drives the rotating block to rotate, the two conductive chips during the rotation stroke have temporary electrical contacts with the conductive contacts changing from the original OFF mode (supported by the protruding parts on the side of the passive part) to the ON mode, and then to the OFF mode again. The above-mentioned intermittent electrical contacts can also generate an instantaneous electrical current to start the DC motor.
The invention will become more fully understood from the detailed description given herein below illustration only, and thus is not limitative of the present 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.
Please refer to
The upper case 11 is pivotally disposed with a driving disk 12, an elastic element 13, a zipper 14, and a pressure cover 15. The elastic element 13 is disposed on one side of the driving disk 12. In this embodiment, the elastic element 13 is a torsion spring. The elastic element 13 urges against one side of the driving disk 12 by its one end and the central axis of the upper case 11 by its other end. The zipper 14 is connected to the driving disk 12 to rotate the driving disk 12 in a single direction. The driving disk 12 is pushed by the elastic force provided by the driving disk 12 to perform a rotation in the opposite direction. The pressure cover 15 covers the driving disk 12 on one side, thereby positioning the elastic element 13 and the driving disk 12 in the upper case 11. A pushing part 16 extends from the central portion of the driving disk 12 on the side opposite to the elastic element and goes through the pressure cover 15. The end surface of the pushing part 16 is formed with four slant surfaces 161. When the zipper 14 is pulled, the driving disk 12 rotates with respect to the upper case 11, driving the pushing part 16 to rotate in one direction. On the other hand, when the zipper 14 is released, the elastic restoring force provided by the elastic element 13 drives the pushing part 16 to rotate in the opposite direction.
The rotating block 21 is formed on its one end with fourth passive parts 22 corresponding to the slant surfaces 161 on the pushing part 16. The slant surfaces 161 are engaged with the passive parts 22 in a single direction. The rotating block 21 is allowed to perform a circular motion in steps in a single direction. The side of each passive part 22 is formed with a protruding part 23 outward. The rotating block 21 is mounted with a metal plate 24. The metal plate 24 is formed with four conductive contacts 25 of equal height symmetrically and at equal angles along the edge of the rotating block 21. Each of the conductive contacts 25 and the protruding parts 23 are disposed alternately.
The lower case 31 combines with the upper case 11. The central portion of the lower case 31 is an accommodating space 32 for the rotating block 21 to be disposed pivotally therein. Each side of the rotating block 21 in the lower case 31 is disposed with a conductive chip 33. Each of the conductive chips 33 is connected with a corresponding wire (not shown) so that an electrical current flows through the wire when the corresponding conductive contact 25 and the conductive chip 33 have an electrical contact.
As shown in
When the pushing part 16 drives the rotating block 21 to rotate by a quarter circle, the conductive contacts 25 and the conductive chips 33 in the rotation stroke change form the original ON state (
Please refer to
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.