STONE SLAB WITH LIGHT SOURCE AND MANUFACTURING PROCESS THEREOF
20180252860 ยท 2018-09-06
Inventors
Cpc classification
G02B6/0083
PHYSICS
F21Y2103/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V33/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04F15/082
FIXED CONSTRUCTIONS
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04F13/144
FIXED CONSTRUCTIONS
E04F13/074
FIXED CONSTRUCTIONS
E04F13/077
FIXED CONSTRUCTIONS
G02B6/0088
PHYSICS
B32B9/002
PERFORMING OPERATIONS; TRANSPORTING
B32B3/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
F21S9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04F13/14
FIXED CONSTRUCTIONS
E04F15/08
FIXED CONSTRUCTIONS
E04F13/074
FIXED CONSTRUCTIONS
Abstract
A stone slab with a light source and a manufacturing process thereof are disclosed. The stone slab includes a transparent composite plate. The composite plate includes a stone panel, a light guide plate, and a honeycomb plate laminated from top to bottom. A water-molecule-activated protective film is provided on an upper surface and a lower surface of the light guide plate respectively. The water-molecule-activated protective film on the upper surface of the light guide plate is bonded to the stone panel. The water-molecule-activated protective film on the lower surface of the light guide plate is bonded to the honeycomb plate by using an adhesive. The water-molecule-activated protective film can be used to bond the light guide plate. Moreover, the adhesive on another side of the water-molecule-activated protective film does not directly contact the light guide plate and avoids a problem that a lighting effect is impaired.
Claims
1. A stone slab with a light source, comprising a transparent composite plate; wherein the composite plate comprises a stone panel, a light guide plate, and a honeycomb plate that are laminated from top to bottom; a water-molecule-activated protective film is provided on an upper surface and a lower surface of the light guide plate respectively, the water-molecule-activated protective film on the upper surface of the light guide plate is bonded to the stone panel by using an adhesive, and the water-molecule-activated protective film on the lower surface of the light guide plate is bonded to the honeycomb plate by using an adhesive; the water-molecule-activated protective film comprises a PET film and a water-molecule-activated adhesive, and the PET film is bonded to the light guide plate by using the water-molecule-activated adhesive.
2. The stone slab with a light source according to claim 1, wherein a concave installation housing is clamped to each lateral side of the composite plate, and every two adjacent concave installation housings are fixed by using a connecting assembly.
3. The stone slab with a light source according to claim 2, wherein the connecting assembly comprises two integrated fixing plates, a bending angle exists between the two fixing plates, and the two fixing plates are respectively locked to two adjacent concave installation housings by using bolts.
4. The stone slab with a light source according to claim 3, wherein two ears disposed opposite to each other are provided on one side of the concave installation housing away from the composite plate, and the fixing plate is slidably embedded between the concave installation housing and the ears.
5. The stone slab with a light source according to claim 1, wherein the light guide plate is a 1.8 m3.0 m special fiberglass light guide plate.
6. The stone slab with a light source according to claim 1, wherein a strip slot is provided on an internal surface of one side of the concave installation housing facing the composite plate, an LED strip capable of emitting light into the light guide plate is installed in the strip slot, and the LED strip is electrically connected to a 12V or 24V rechargeable lithium battery.
7. The stone slab with a light source according to claim 1, wherein the stone panel is a mosaic combination of more than one or two of natural granite, marble, sandstone, semi-precious stone, and quartzite.
8. The stone slab with a light source according to claim 1, wherein the honeycomb plate is an aluminum product, a PVC product, or an acrylic product.
9. A process for manufacturing a stone slab with a light source, comprising the following steps: (1) synthesis of a composite plate: fetching a light guide plate, and bonding a water-molecule-activated protective film to an upper surface and a lower surface of the light guide plate in a water-molecule-activated manner respectively; fetching a stone panel, and bonding the stone panel to the water-molecule-activated protective film on the upper surface of the light guide plate by using an adhesive; and fetching a honeycomb plate, and bonding the honeycomb plate to the water-molecule-activated protective film on the lower surface of the light guide plate by using an adhesive; (2) polishing a surface of the stone panel in the composite plate by using a stone mill with automatic pneumatic pressure control; (3) polishing edges of the light guide plate in the composite plate by using a dedicated polishing machine, until the edges are transparent; (4) clamping a concave installation housing to each lateral side of the composite plate, and installing an LED strip and a rechargeable lithium battery electrically connected to the LED strip in a strip slot that is provided on an internal surface of one side of the concave installation housing facing the composite plate; (5) fixedly connecting every two adjacent concave installation housings by using a connecting assembly; and (6) performing drilling from a lower surface of the composite plate by using an alloy bit, penetrating the honeycomb plate and the water-molecule-activated protective film in sequence, and reaching the light guide plate to form an embedded hole; and then embedding a back-bolt expansion screw in the embedded hole, and mounting an ear assembly onto the back-bolt expansion screw.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0027]
[0028]
[0029]
[0030]
[0031]
DESCRIPTION OF EMBODIMENTS
[0032] The following describes specific embodiments of the present invention with reference to accompanying drawings.
[0033] Referring to
[0034] Specifically, in the present invention, the adhesives for bonding the stone panel and the honeycomb plate are both highly transparent epoxy resin glues. The epoxy resin glues have low toxicity and low volatility. Featuring wide proportioning and easy operations, the epoxy resin glues can be cured at a normal temperature, and have high adhesive strength, high transparency, and good tenacity, and are obviously superior to general monomer amine curing agents.
[0035] Referring to
[0036] Referring to
[0037] Referring to
[0038] Referring to
[0039] In addition, the stone panel is a mosaic combination of more than one or two of natural granite, marble, sandstone, semi-precious stone, and quartzite. The honeycomb plate is an aluminum product, a PVC product, or an acrylic product. The stone slab in the present invention may be applied to a scenario in which a light transmission effect of a stone material needs to be demonstrated, for example, a natural furniture panel, a background wall, a suspended ceiling, and ground. It is extensively applied, and has great market prospects. If the stone slab is installed on the background wall, a socket may be disposed during installation, and this does not impair an ambient lighting effect.
[0040] Referring to
[0041] Step 1
[0042] Synthesis of a composite plate 1: Fetch a light guide plate 12, and bond a water-molecule-activated protective film 2 to an upper surface and a lower surface of the light guide plate 12 in a water-molecule-activated manner respectively; fetch a stone panel 11, and bond the stone panel 11 to the water-molecule-activated protective film on the upper surface of the light guide plate 12 by using an adhesive 3; and fetch a honeycomb plate 13, and bond the honeycomb plate 13 to the water-molecule-activated protective film on the lower surface of the light guide plate 12 by using an adhesive 3.
[0043] Step 2
[0044] Polish a surface of the stone panel 11 in the composite plate 1 by using a stone mill with automatic pneumatic pressure control.
[0045] Step 3
[0046] Polish edges of the light guide plate 12 in the composite plate 1 by using a dedicated polishing machine, until the edges are transparent, so that light emitted by an LED strip 6 can be transparently transmitted.
[0047] Step 4
[0048] Clamp a concave installation housing 4 to each lateral side of the composite plate 1, and install an LED strip 6 and a rechargeable lithium battery electrically connected to the LED strip 6 in a strip slot 42 that is provided on an internal surface of one side of the concave installation housing 4 facing the composite plate 1.
[0049] Step 5
[0050] Fixedly connect every two adjacent concave installation housings 4 by using a connecting assembly 5, which includes inserting one fixing plate 51 of the connecting assembly 5 between one concave installation housing 4 and ears 41, then sleeving the other fixing plate 51 of the connecting assembly 5 with another adjacent concave installation housing, and finally locking the fixing plates by using bolts.
[0051] Step 6
[0052] Perform drilling from a lower surface of the composite plate 1 by using an alloy bit, penetrate the honeycomb plate 13 and the water-molecule-activated protective film 2 in sequence, and reach the light guide plate 12 to form an embedded hole 14; and then embed a back-bolt expansion screw in the embedded hole, and mount an ear assembly onto the back-bolt expansion screw.
[0053] In the manufacturing process, operations are simple, the finished stone slab has a stable structure and has strong durability. In addition, in comparison with the prior art, a light guide effect is greatly improved.
[0054] Only specific embodiments of the present invention are described above. However, the design conception of the present invention is not limited thereto. All non-substantive modifications made to the present invention by using the conception shall be deemed as actions that infringe the protection scope of the present invention.