Adjustable tilting packaging box for liquid crystal module
10189635 ยท 2019-01-29
Assignee
Inventors
Cpc classification
B65D85/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D85/30
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An adjustable tilting packaging box is provided for holding a liquid crystal module. A supporting rack is arranged in the box for carrying the liquid crystal module thereon and is connected to a support element for being mounted on a bottom of the box. The support element includes an adjustment mechanism connected to a side of the supporting rack and includes a support pillar having a lower end selectively positionable on a plurality of levels provided on an end of the pull rod having an opposite end extending outside the box, such that a movement of the pull rod allows different ones of the levels to support the support pillar thereon so as to change a position of the supporting rack to thus change an angular position of the liquid crystal module.
Claims
1. An adjustable tilting packaging box for liquid crystal module, which comprises: a box; and a support rack, adapted to carry a liquid crystal module thereon, the supporting rack being connected to a bottom of the box through a support element; wherein the support element comprises at least an adjustment mechanism, which is connected to a side of the support rack and is height-adjustable, wherein the adjustment mechanism comprises a support pillar and a pull rod, the pull rod having a first end extending through a hole formed in a sidewall of the box to outside of the box and an opposite, second end disposed with a plurality of levels corresponding to and supporting a lower end of the support pillar positioned thereon, wherein a movement of the pull rod with respect to the sidewall of the box changes the support pillar from a first one of the plurality of levels to a second, different one of the plurality of levels so as to realize multi-level adjustability of height of the support element for changing a position of the supporting rack connected to the support element to selectively set the liquid crystal module at an angular position corresponding to the position of the supporting rack.
2. The packaging box for liquid crystal module as claimed in claim 1, wherein the adjustment mechanism further comprises a support pillar stop element, which comprises a stop hole formed therethrough to receive extension of the support pillar therethrough such that the support pillar of which an upper end is connected to the side of the support rack in a hinged manner is arranged to have the lower end of the support pillar extends through the stop hole to be positioned on the plurality of levels of the pull rod.
3. The packaging box for liquid crystal module as claimed in claim 2, wherein the plurality of levels comprise a first level, which is relatively higher than remaining ones of the plurality of levels and is disposed at the second end of the pull rod, such that the pull rod is moved to a predetermined location where the first level corresponds to and receives the lower end of the support pillar thereon, the first level is in engagement with a wall of the support pillar stop element for maintaining the pull rod at the predetermined location.
4. The packaging box for liquid crystal module as claimed in claim 3, wherein a restoration spring is disposed between the first end of the pull rod and the support pillar stop element to provide a spring force that biases the pull rod in such a direction that the first level is set in engagement with the wall of support pillar stop element.
5. The packaging box for liquid crystal module as claimed in claim 1, wherein the lower end of the support pillar comprises a slope surface and the plurality of levels of the pull rod each comprise a slope surface corresponding to the slope surface of the support pillar.
6. The packaging box for liquid crystal module as claimed in claim 5, wherein the slope surfaces of the plurality of levels of the pull rod are inclined downward in a direction toward the second end of the pull rod.
7. The packaging box for liquid crystal module as claimed in claim 2, wherein the lower end of the support pillar comprises a slope surface and the plurality of levels of the pull rod each comprise a slope surface corresponding to the slope surface of the support pillar.
8. The packaging box for liquid crystal module as claimed in claim 7, wherein the slope surfaces of the plurality of levels of the pull rod are inclined downward in a direction toward the second end of the pull rod.
9. The packaging box for liquid crystal module as claimed in claim 3, wherein the lower end of the support pillar comprises a slope surface and the plurality of levels of the pull rod each comprise a slope surface corresponding to the slope surface of the support pillar.
10. The packaging box for liquid crystal module as claimed in claim 9, wherein the slope surfaces of the plurality of levels of the pull rod are inclined downward in a direction toward the second end of the pull rod.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) To make the technical solution of the embodiments according to the present invention, a brief description of the drawings that are necessary for the illustration of the embodiments will be given as follows. Apparently, the drawings described below show only example embodiments of the present invention and for those having ordinary skills in the art, and other drawings may be easily obtained from these drawings without paying any creative effort. In the drawings:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) The following description refers to the embodiments and drawings of the present invention.
(9) First Embodiment
(10) As shown in
(11) One end of the first support pillar 41 is connected to a side of the support rack 30 in a hinged manner, and the other end is connected to the resilient element 42. In the instant embodiment, the resilient element 42 is a spring, which is to apply an upward force to the first support pillar 41. Also to fix the position of the first support pillar 41, a first support pillar stop element 45 is disposed. The first support pillar stop element 45 is fixed to the bottom 11 of the box 10. The top of the first support pillar stop element 45 is disposed with an opening 451 for inserting the first support pillar 41. The lower end of the first support pillar 41 is disposed with an engaging ring 46. The engaging ring 46 is smaller than the opening 451 and is confined inside the first support pillar stop element 45. As such, the two ends of the first support pillar 41 are correspondingly fixed or stopped, and the first support pillar 41 can only move up and down within a specific range. The resilient buckle 44 comprises a spring 441 and a buckle element 442 fixedly connected to one end of the spring 441; the other end of the spring 441 is fixedly connected to the first support pillar 41 through a via hole 47 disposed on the first support pillar 41. The buckle element 442 extends partially beyond the first support pillar 41. The extending part forms a slope shape, comprising a downward slope and an upward flat. Also referring to the positioning element 43, the positioning element 43 comprises a multi-level positioning board 431. In the instant embodiment, the number of levels is two. The positioning board 431 is disposed with positioning hole 432. The first support pillar 41 passes through the positioning hole 432, wherein the positioning hole 432 has a diameter smaller than the combined size of the first support pillar 41 and the extending part of the buckle element 442. As such, the first support pillar 41 disposed with a buckle element 442 can only move in one direction.
(12) Also referring to
(13) For resetting, a tool can be used to press the buckle element 442 back into the first support pillar 41. As such, the first support pillar 41 can move vertically inside the positioning hole 432.
(14) The Second Embodiment
(15) The instant embodiment is shown in
(16) As shown in the figures, the second adjustment mechanism 50 further comprises a second support pillar stop element 53, wherein the second support pillar stop element 53 is disposed with stop hole 531 corresponding to the second support pillar 51. The lower end of the first support pillar 51 extends into the hole 531 and the upper end of the second support pillar 51 is connected to a side of the support rack 30 in a hinged manner for limiting the second support pillar 51 to move upwards and downwards. The first level 521, which is relatively higher than the remaining levels, is disposed at the outer end of the pull rod 52. When the second support pillar 51 and the first level 521 are attached to support, the inner wall of the lower end of the second support pillar stop element 53 is disposed with a stop position 532 to stop the first level 521. To apply an outward push to the pull rod 52, the instant embodiment further comprises a restoration spring 54, disposed between the side of the first level 521 of the pull rod 52 and the second support pillar stop element 53. The attachment surfaces between the second support pillar 51 and the levels are parallel slope surfaces wherein the slope surface of the level at the outer end is leaning downward towards the end.
(17) Also referring to
(18) Embodiments of the present invention have been described, but not intending to impose any unduly constraint to the appended claims. Any modification of equivalent structure or equivalent process made according to the disclosure and drawings of the present invention, or any application thereof, directly or indirectly, to other related fields of technique, is considered encompassed in the scope of protection defined by the clams of the present invention.