BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is an assembly diagram of a display module according to a first embodiment of the present invention.
FIG. 2 is an exploded diagram of the first angle control mechanism in FIG. 1.
FIG. 3 is an assembly diagram of a display module according to a second embodiment of the present invention.
FIG. 4 is an assembly diagram of a display module according to a third embodiment of the present invention.
DETAILED DESCRIPTION
Please refer to FIG. 1. FIG. 1 is an assembly diagram of a display module 10 according to a first embodiment of the present invention. The display module 10 comprises a display screen 12 and a support structure 14. The display screen 12 has at least one tenon hole 16. The support structure 14 comprises a foot piece 18, a first angle control mechanism 100, and a second angle control mechanism 200. The foot piece 18 has a first endpoint P1 and a second endpoint P2. The first angle control mechanism 100 is disposed between the first endpoint P1 and the display screen 12. The second angle control mechanism 200 is disposed between the second endpoint P2 and the display screen 12. The foot piece 18 comprises flexible parts 24 and 26, and a pedestal base 28. The flexible part 24 connects the pedestal base 28 and the first angle control mechanism 100. The flexible part 26 connects the pedestal base 28 and the second angle mechanism 200. The pedestal base 28 comprises a flexible tubular structure 30 and a non-slip sleeve 32. The non-slip sleeve 32 covers the flexible tubular structure 30. When exerting force greater than the weight of the display device 12 upon the flexible tubular structure 30, the contact area between the flexible tubular structure 30 and a plane 34 can be changed. The flexible parts 24 and 26 have ring structures 36 and 38 respectively for increasing the flexibility of the flexible parts 24 and 26. When exerting force greater than the weight of the display device 12 to enlarge the distance between the first endpoint P1 and the second endpoint P2, the display screen 12 can be released from the first endpoint P1 and the second endpoint P2.
Please refer to FIG. 1 and FIG. 2. FIG. 2 is an exploded diagram of the first angle control mechanism 100 according to a first embodiment of the present invention. The first angle control mechanism 100 is disposed between the first endpoint P1 and the display screen 12 as shown in FIG. 1 for rotating the display screen 12 relative to the first endpoint P1. The first angle control mechanism 100 comprises an angle-locating plate 102, a base 104, a C-shaped ring 106, and an angle-locating component 108. The angle-locating plate 102 connects to the display screen 12. The angle-locating plate 102 comprises a bore 110, at least one locating tenon 112, and a chute 114. The locating tenon 112 is used for inserting into the tenon hole 16 of the display screen 12 as shown in FIG. 1 to fix the connection of the first angle control mechanism 100 and the display screen 12. The base 104 connects to the first endpoint P1. The base 104 comprises at least one angle-locating pillar 116 and a spindle 118. The spindle 118 pivotally connects to the bore 110 so that the angle-locating plate 102 can pivotally connects to the base 104 in a rotatable manner. The spindle 118 has a C-shaped groove 120 thereon. The C-shaped ring 106 is wedged with the C-shaped groove 120 for fixing the connection of the angle-locating plate 102 and the base 104. The angle-locating component 108 is installed between the base 104 and the angle-locating plate 102 for providing friction force to fix the display screen 12 and the foot piece 18 in a specific angle while the angle-locating plate 102 is rotating relative to the base 104. The angle-locating component 108 has at least one hole 112. The angle-locating pillar 116 is disposed inside the chute 114 of the angle-locating plate 102 through the hole 112 for constraining the rotating range of the angle-locating plate 102 relative to the base 104. The angle-locating component 108 can be a friction pad.
The inner structures of the second angle control mechanism 200 and the first angle control mechanism 100 as shown in FIG. 2 are the same. A difference between the first angle control mechanism 100 and the second angle control mechanism 200 is an installed location. The first angle control mechanism 100 is disposed between the first endpoint P1 as shown in FIG. 1 and the display screen 12. The second angle control mechanism 200 is disposed between the second endpoint P2 as shown in FIG. 1 and the display screen 12. The combination of the first angle control mechanism 100, the second angle control mechanism 200, and the display screen 12 allows a user to change the tilt angle of the display screen 12.
Please refer to FIG. 3. FIG. 3 is an assembly diagram of a display module 50 according to a second embodiment of the present invention. A difference between the display module 50 and the display module 10 in the first embodiment is designs of parts on the support structure. Components mentioned in both the first and the second embodiments represent components with similar functions or similar positions. The foot piece 18 comprises telescopic parts 52 and 54, and a pedestal base 28. The telescopic part 52 connects the pedestal base 28 and the first control mechanism 100. The telescopic part 54 connects the pedestal base 28 and the second control mechanism 200. A user can adjust the distance between the display screen 12 and pedestal base 28 by stretching the telescopic parts 52 and 54.
Please refer to FIG. 4. FIG. 4 is an assembly diagram of a display module 150 according to a third embodiment of the present invention. A difference between the display module 150 and the display module 10 in the first embodiment is an assembly angle of the display screen 12 and the support structure 14. Components mentioned in both the first and the third embodiments represent components with similar functions or similar positions. When the display screen 12 and the support structure 14 are combined in an angle as shown in FIG. 1 so that the pedestal base 28 can contact the plane 34, the pedestal base 28 is disposed under the display screen 12 and can support the display screen 12 on the plane 34. And when the first endpoint P1 and the second endpoint P2 is served as a rotational axis to allow the support structure 14 to rotate an angle to be combined with the display screen 12, the pedestal base 28 is disposed above the display screen 12 and can hang the display screen 12 on a hanging plane 152.
The assembly of the first angle control mechanism 100 and the second angle control mechanism 200 is not limited to the embodiments mentioned above. It can also be reversed. For the first angle mechanism 100, the angle-locating plate 102 can connect to the first endpoint P1, and the base 104 can connect to the display screen 12. The locations of the other components in the first angle control mechanism 100 can be changed correspondingly according to the changed locations of the angle-locating plate 102 and the base 104 and the relative positions of the components mentioned in the first embodiment.
The objective of the support structure according to the present invention is that the display screen and the foot piece are detachable. Therefore, compared with a traditional display screen, it is more portable. Furthermore, the foot piece assembles with the display screen through its flexibility. In such a manner, the support structure is easier and quicker to manufacture and assemble.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.