Method and apparatus for manufacturing quartz slab
10106467 ยท 2018-10-23
Inventors
Cpc classification
B28B7/0038
PERFORMING OPERATIONS; TRANSPORTING
B28B1/005
PERFORMING OPERATIONS; TRANSPORTING
B29C39/44
PERFORMING OPERATIONS; TRANSPORTING
B65G47/18
PERFORMING OPERATIONS; TRANSPORTING
C04B40/0032
CHEMISTRY; METALLURGY
B28B13/022
PERFORMING OPERATIONS; TRANSPORTING
B65G2812/12
PERFORMING OPERATIONS; TRANSPORTING
B29C67/243
PERFORMING OPERATIONS; TRANSPORTING
B29C39/24
PERFORMING OPERATIONS; TRANSPORTING
B65G41/003
PERFORMING OPERATIONS; TRANSPORTING
B28B7/08
PERFORMING OPERATIONS; TRANSPORTING
B28B13/027
PERFORMING OPERATIONS; TRANSPORTING
B29C39/023
PERFORMING OPERATIONS; TRANSPORTING
C04B35/622
CHEMISTRY; METALLURGY
C04B40/0032
CHEMISTRY; METALLURGY
International classification
C04B35/622
CHEMISTRY; METALLURGY
B65G47/18
PERFORMING OPERATIONS; TRANSPORTING
C04B40/00
CHEMISTRY; METALLURGY
B29C39/02
PERFORMING OPERATIONS; TRANSPORTING
B29C39/24
PERFORMING OPERATIONS; TRANSPORTING
B29C39/44
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An apparatus including a first conveyor device including a first conveyor belt; a second conveyor device including a second conveyor belt; a movement device; and a mold device including a mold; wherein the first conveyor device is connected to the second conveyor device so that when the movement device moves the first conveyor device, the second conveyor device also moves with respect to the mold device; wherein the first conveyor belt moves independent of the second conveyor belt; and wherein the first conveyor belt and the second conveyor belt move independent from the movement device. The apparatus may further include a first and second dispensing devices configured to dispense first and second materials, first and second gate devices to control height, and a computer processor to control the various components and the resulting ratio of first material to second material in a processed slab.
Claims
1. A method comprising supplying a first material to a first conveyor device; supplying a second material, which is different from the first material, to a second conveyor device; supplying the second material from the second conveyor device to the first conveyor device to cause mixing of the first material and the second material; and wherein the first conveyor device is connected to the second conveyor device; and further comprising moving a combination of the first conveyor device and the second conveyor device to cause a combination of the first material and the second material to be supplied to different locations of a mold.
2. The method of claim 1 wherein the first conveyor device includes a first conveyor belt; wherein the second conveyor device includes a second conveyor belt; wherein the first conveyor belt moves independent of the second conveyor belt; and wherein the combination of the first conveyor device and the second conveyor device is moved independent of movement of the first conveyor belt and independent of movement of the second conveyor belt.
3. The method of claim 1 wherein the first material is supplied to the first conveyor device by being dropped onto a first conveyor belt of the first conveyor device; wherein the second material is supplied to the second conveyor device by being dropped onto a second conveyor belt of the second conveyor device; and wherein the combination of the first material and the second material is supplied to different locations of the mold by being dropped into the mold.
4. The method of claim 1 further comprising controlling a speed of the first conveyor belt; controlling a speed of the second conveyor belt; and controlling a speed of movement of the combination of the first conveyor device and the second conveyor device.
5. The method of claim 4 further comprising using a computer processor to control the speed of the first conveyor belt, the speed of the second conveyor belt, and the speed of movement of the combination of the first conveyor device and the second conveyor device.
6. The method of claim 1 further comprising using a first gate device, which is connected to the first conveyor device, to control a height of the first material prior to the first material mixing with the second material; and using a second gate device, which is connected to the second conveyor device, to control a height of the second material prior to the first material mixing with the second material.
7. The method of claim 1 wherein the combination of the first material and the second material are supplied to different locations of the mold to form a processed slab; wherein the processed slab comprises a major surface at least two feet wide by at least six feet long and extending perpendicularly to a slab thickness; wherein the processed slab includes at least one vein of a combination of materials; wherein the at least one vein extends generally lengthwise from a first edge of the processed slab to an opposing second edge; wherein the at least one vein has a thickness equal to and parallel to the slab thickness; and wherein the at least one vein has a combination of materials which includes at least the first material and the second material; and wherein a ratio of the first material to the second material continuously varies over a height of the at least one vein.
8. The method of claim 1 wherein the first material is supplied, the second material is supplied, the first material and the second material are mixed to form the combination of the first material and the second material, and the combination of the first material and the second material are supplied to different locations of the mold using a computer processor, so that the combination of the first material and the second material has a predetermined ratio of the first material to the second material as the combination of the first material and the second material is dropped into the mold.
9. The method of claim 6 further comprising using a computer processor to control the first conveyor device, the second conveyor device, the first gate device, and the second gate device.
10. The method of claim 9 wherein the computer processor controls a speed of a first conveyor belt of the first conveyor device, a speed of a second conveyor belt of the second conveyor device, a height of the first gate device, and a height of the second gate device.
11. The method of claim 1 wherein using a computer processor to control contents of the combination of the first material the the second material, so that the combination of the first material and the second material has a continuously varying ratio of the first material to the second material as the combination of materials is dropped into the mold.
12. The method of claim 2 wherein the first conveyor belt is configured to move in substantially the same direction as the second conveyor belt.
13. The method of claim 12 wherein the combination of the first conveyor device and the second conveyor device is configured to move in a direction which is substantially perpendicular to the direction of movement of the first conveyor belt and the conveyor belt.
14. A method comprising supplying a first material to a first conveyor device; supplying a second material, which is different from the first material, to a second conveyor device; mixing the first material from the first conveyor device with the second material from the second conveyor device to form a first mixture; and moving the first mixture along a length of the opening of the mold, before supplying the first mixture to the mold through the opening of the mold; and wherein the opening of the mold has a width, with the length of the mold being substantially greater than the width of the mold.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE DRAWINGS
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(13) Referring to
(14) The first conveyor device 9 includes belt 10, and servo motor 12. The second conveyor device 19 includes belt 20, and servo motor 21.
(15) The dispensing device or hopper 6 may have located therein a base quartz material 6a. The dispensing device or hopper 8 may have located therein a first color quartz material which is different from the base quartz material 6a. The material 6a and the material 8a may differ in color and in other aspects. The mold structure 28 may have a mold cover 28a, a mold gate 28b, mold cover raise/drop piston devices 28c, 28d, 28e, 28f, and mold back plate 28c.
(16) Referring to
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(18) Referring to
(19) In operation, the computer processor 102 is programmed by computer software stored in the computer memory 104, and/or controlled by the computer interactive device 108 to control the components 3, 12, 21, 14, and 18. In one or more embodiments, the height of the gate devices 14 and 18 may also be adjusted by hand. In one or more embodiments, the base quartz material 6a and first color quartz material 8a may be dropped into the vertically positioned mold 28 by hand in order to simulate the computer controlled actions.
(20) The crushed base quartz material 6a is delivered into the dispensing device or hopper 6 and then is dropped through the bottom of the hopper 6 onto the belt 10 of the first conveyor device 9. The crushed first color quartz material 8a is delivered into the dispensing device or hopper 8 and then is dropped through the bottom of the hopper 8 onto the belt 20 of the second conveyor device 19. The belt 10, of the first conveyor device 9, moves in response to servo motor 12, which moves in response to the computer processor 102 to move the base quartz material 6a towards the opening of the mold 28, and then drops it into the vertically positioned mold 28. The belt 20, of the second conveyor device 19, moves in response to servo motor 21, which moves in response to the computer processor 102 to move the first color quartz material 8a towards the belt 10 of the first conveyor device 9.
(21) The second conveyor device 19, in at least one embodiment, is fixed to the movement and support device 16, so that the second conveyor device 19 is above a portion of the first conveyor device 9. The first conveyor device 9, the movement structure device 16, and the second conveyor device 19 are fixed to each other and when the movement structure device 16 moves in the directions D1 and D2 along the tracks 2 and 4, driven by servo motor 3, controlled by computer processor 102, the first conveyor device 9 and the second conveyor device 19, also move, but remain fixed with respect to each other and with respect to the movement and support device 16. In this manner, the devices 9, 16, and 19 can be moved in the directions D1 and D2, to allow a mixture of material 6a and 8a to be delivered to different locations into the opening of the vertically positioned mold 28, along the lengths of the mold 28.
(22) In operation, the material 8a is moved by belt 20 and dropped and mixed in with material 6a on the belt 10, in order to provide a mixture of material 6a and 8a on the belt 10. This mixture of material 6a and 8a is then dropped into the vertically positioned mold 28 through the top opening of the mold 28.
(23) The percentage of the base quartz material 6a and the percentage of the first color quartz material 8a to form a mixture, is controlled by the computer processor 102, control the moving speed of the belt 10 and the belt 20, through servo motors 12 and 21. The specific combination of base quartz material 6a and first color quartz material 8a can be dropped at a certain position along the length of the top opening of mold 28, while the structure 16 is moved along the directions D1 and D2. For example, if a mixture with a composition of 95% base quartz material 6a and 5% color quartz material 8a mixture is desired at a specific location in mold 28, 5% of the first color quartz 8a can be placed on top of 95% quartz material 6a through control of the computer 102, and dropped into the mold 28. The base quartz material 6a and the first color quartz 8a will be further randomly mixed during the free fall from the drop.
(24) In addition, the computer processor 102 may be programmed to gradually change the percentage of each color between each layer of dropped mixture in the mold, and a non-distinct, gradient of color between layers in the mold can be achieved. If the servo motor 12 and the servo motor 21 maintain a fixed speed during the distribution of certain layer of the mixture 6a and 8a into the mold 28, by raising the speed of the servo motor 3 while moving in D1/D2 direction, a thinner layer of the mixture in the mold 28 will be obtained. In addition, by increasing the speed of servo motor 12 and/or increasing the speed of the servo motor 21 while serve motor 3 is maintained at a fixed speed, a thicker layer of the quartz mixture 6a and 8a in the mold 28 will be obtained.
(25) If servo motors 12 and 21 maintain a fixed speed, by varying the speed of servo motor 3 as structure device 16 moves along the top opening of the mold 28, in directions D1/D2, in the
(26) By programming the computer processor 102 to adjust the speeds of server motor 3, server motor 12 and server motor 21, at any given time point, a desired pattern of layers of a quartz slab can be obtained.
(27) After depositing the mixed material 6a and 8a into the mold 28, the mold gate 28b can be closed and then the mold 28 can be rotated from its vertical position to a horizontal one, driven by the hydraulic device 30. Once the mold 28 is in the horizontal position the mold cover 28a can be raised by piston 28e, 28f, 28g, 28h, and the processed quartz mixture can by pulled by grabbing the backing paper 36 onto the main conveyor belt 34 and then sent for further processed such as disclosed in U.S. Pat. No. 9,511,516, to Xie, which is incorporated by reference herein.
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(29) The apparatus 200 includes dispensing devices 202, 204, and 206. The dispensing devices 202 and 204 may be identical to the devices 6 and 8 shown in
(30) The servo motor 212 may be similar or identical to the servo motor 3 in
(31) Except for the addition of the extra color component, the apparatus 200 may substantially or identically function as the apparatus 1 in other respect.
(32) In at least one embodiment of the present invention, a method is provided which includes orienting the mold structure 28 in the vertical position shown in
(33) In at least one embodiment, the computer processor 102 may be programmed to control the contents of a combination of materials which includes a first material provided by the first conveyor device 9 and a second material provided by the second conveyor device 19, so that the combination of materials has a continuously varying ratio of the first material to the second material as the combination of materials is dropped into the mold 28 of the mold device. Thereby, the computer processor 102 can form a processed slab, such as a processed slab having a major surface at least two feet wide by at least six feet long and extending perpendicularly to a slab thickness; wherein the processed slab includes at least one vein of a combination of materials; wherein the at least one vein extends generally lengthwise from a first edge of the processed slab to an opposing second edge; wherein the at least one vein has a thickness equal to and parallel to the slab thickness; and wherein the at least one vein has a combination of materials which includes at least a first material and a second material; and wherein a ratio of the first material to the second material continuously varies over a height of the at least one vein.
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(35) Although the invention has been described by reference to particular illustrative embodiments thereof, many changes and modifications of the invention may become apparent to those skilled in the art without departing from the spirit and scope of the invention. It is therefore intended to include within this patent all such changes and modifications as may reasonably and properly be included within the scope of the present invention's contribution to the art.