Processed slabs, and systems and methods related thereto
147 claims: 62 independent, 85 dependent
- 1CA 2,974,959 CPST Ref:201754/00093 What is claimed is: 1. A processed slab, comprising: a major surface defined by a set of particulate mineral mixes and having a rectangular shape that is at least 2 feet wide by at least 6 feet long and having a slab thickness, the major surface comprising a first particulate mineral mix and a second particulate mineral mix, wherein the first particulate mineral mix occupies the entire slab thickness at a set of first regions that collectively provide a first predetermined stencil pattern, the set of first regions including a first vein in a generally widthwise direction along the major surface and a second vein in a generally lengthwise direction along the major surface, wherein the second particulate mineral mix occupies the entire slab thickness at a set of second regions that collectively provide a second predetermined stencil pattern, wherein the first predetermined stencil pattern and the second predetermined stencil pattern do not overlap, the first and second particulate mineral mixes being different and each comprising quartz and one or more binders, and the first particulate mineral mix being absent from the set of second regions and the second particulate mineral mix being absent from the set of first regions.
- 12A processed slab, comprising:a major surface defined by a set of particulate mineral mixes and having a rectangular shape that is at least 2 feet wide by at least 6 feet long and having a slab thickness, the major surface comprising a first particulate mineral mix and a second particulate mineral mix, the first and second particulate mineral mixes being different and each comprising quartz and one or more binders, wherein the first particulate mineral mix occupies the entire slab thickness at a set of first regions that collectively provide a first predetermined stencil pattern, and wherein the second particulate mineral mix occupies the entire slab thickness at a set of second regions that collectively provide a second predetermined stencil pattern, the first predetermined stencil pattern and the second predetermined stencil pattern do not overlap, the first particulate mineral mix being absent from the set of second regions and the second particulate mineral mix being absent from the set of first regions.
- 20A processed slab, comprising:a major surface defined by a set of particulate mineral mixes and having a rectangular shape that is at least 2 feet wide by at least 6 feet long and having a slab thickness, the major surface comprising a first particulate mineral mix and a second particulate mineral mix, wherein the first particulate mineral mix occupies the entire slab thickness at a set of first regions that collectively provide a first predetermined stencil pattern, the set of first regions including a first vein in a generally widthwise direction along the major surface and a second vein in a generally lengthwise direction along the major surface, wherein the second particulate mineral mix occupies the entire slab thickness at a set of second regions that collectively provide a second predetermined stencil pattern, wherein the first predetermined stencil pattern and the second predetermined stencil pattern do not overlap, the first and second particulate mineral mixes CPST Doc: 332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 being different, and wherein the first particulate mineral mix is absent from the set of second regions and the second particulate mineral mix is absent from the set of first regions.
- 28A process of forming a processed slab from different particulate mineral mixes, comprising, dispensing a first pigmented particulate mineral mix comprising predominantly quartz through a first stencil into a first set of regions on a planar surface of a slab mold using a first distributor, wherein the first stencil comprises open regions and occluded regions, wherein the occluded regions extend substantially through the thickness of the mold so that the occluded regions of the stencil are configured to prevent a mix from accessing selected areas; CPST Doc:332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 dispensing a second pigmented particulate mineral mix comprising predominantly quartz through a second stencil into a second set of regions on the planar surface of the slab mold using a second distributor, the second set of regions different than the first set of regions, vibrating and compacting the pigmented particulate mineral mixes arranged on the planar surface in the slab mold to form a processed slab that is generally rectangular and has major surface with a width of at least 3 feet and a length of at least 6 feet and a slab thickness.
- 35The process of any one of claims 28 to 34, wherein the first pigmented particulate mineral mix occupies an entire slab thickness extending perpendicularly to the major surface at the first set of regions that collectively provide a first pigmented vein pattern and the second CPST Doc:332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 pigmented particulate mineral mix occupies the entire slab thickness at the second set of regions that collectively provide a second pigmented vein pattern.
- 41A process of forming a processed slab comprising, sequentially dispensing at least first and second pigmented particulate mineral mixes into a slab mold that has first and second set of regions, the first pigmented particulate mineral mix different than the second pigmented particulate mineral mix, wherein the first pigmented particulate mineral mix is dispensed into the first set of regions on a planar surface of the slab mold, wherein the first stencil comprises open regions and occluded regions, wherein the CPST Doc:332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 occluded regions extend substantially through the thickness of the mold so that the occluded regions of the stencil are configured to prevent a mix from accessing selected areas;dispensing the second pigmented particulate mineral mix into the second set of regions of the slab mold, the second set of regions on the planar surface different than the first set of regions;and vibrating and compacting the pigmented particulate mineral mixes arranged on the planar surface in the slab mold to form a processed slab that is generally rectangular and has a major surface with a width of at least 3 feet and a length of at least 6 feet.
- 48A system for forming a processed slab using a combination of different particulate mineral mixes, comprising:a slab mold defining a mold space that is at least 6 feet long by at least 3 feet wide;two or more reusable stencils including one or more top walls, the top walls defining complementary patterns of open spaces and occluded spaces, each stencil configured to prevent a particulate mineral mix from entering a respective occluded space when a respective stencil is in the slab mold, the cumulative areas of the open spaces of the stencils substantially corresponding to the mold space, wherein the occluded spaces are horizontally oriented occluded regions that extend vertically substantially through the thickness of the slab mold providing a vein pattern;and two or more mineral aggregate distributors that are each configured to dispense a corresponding particulate mineral mix through the open spaces of a corresponding one of the stencils into the slab mold.
- 52The system of any one of claims 48 to 51, wherein the two or more mineral aggregate distributors comprise at least a first mineral aggregate distributor configured to dispense a first particulate mineral mix and a second mineral aggregate distributor configured to dispense a CPST Doc:332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 second particulate mineral mix, wherein the first particulate mineral mix and the second particulate mineral mix comprise two differently colored mineral mixes that each include a quartz material, one or more pigments, and at least one binder.
- 60The system of any one of claims 48 to 59, wherein the two or more stencils and the two or more mineral aggregate distributors are configured to sequentially dispense at least two of the same differently colored particulate mineral mixes into each mold in a series of molds according to a predefined and repeated pattern for each mold in the series of molds so as to define complementary regions of multiple different particulate mixes having generally the same appearance in each mold in the series of molds.
- 61A system for forming a processed slab using a combination of different particulate mineral mixes, comprising:a slab mold defining a mold space that is at least 6 feet long by at least 3 feet wide;two or more reusable stencils defining complementary patterns of open spaces and occluded spaces, the cumulative areas of the open spaces of the stencils substantially corresponding to the mold space, wherein the occluded spaces are horizontally oriented occluded regions that extend vertically substantially through the thickness of the slab mold providing a vein pattern;a first mineral aggregate distributor configured to dispense a first particulate mineral mix through the open spaces of a first stencil into the slab mold;and a second mineral aggregate distributor configured to dispense a second particulate mineral mix that is differently colored than the first particulate mineral mix through the open spaces of a second stencil into the slab mold;wherein the first and second mineral aggregate distributors are configured to dispense the first and second particulate mineral mixes into each mold in a series of molds according to a predefined and repeated pattern for each mold in the series of molds so as to define complementary regions of first and second particulate mineral mixes having generally the same appearance in each mold of the series of molds.
- 69A processed slab formed from a plurality of particulate mineral mixes deposited into a mold, comprising:a slab width that is at least 2 feet, a slab length that extends perpendicular to the slab width and that is at least 6 feet, and a slab thickness that extends perpendicular to the slab width and the slab length, the slab length greater than the slab width, the slab width greater than the slab thickness;a first predetermined pattern defined by a first particulate mineral mix and comprising a set of slab veins exposed along a major surface of the slab, the set of slab veins comprising: CPST Doc: 332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 a first vein in a generally lengthwise direction along the major surface, the first vein having a first vein thickness defined by the first particulate mineral mix that is equal and parallel to the slab thickness, a second vein in a generally widthwise direction along the major surface, the second vein having a second vein thickness defined by the first particulate mineral mix that is equal and parallel to the slab thickness, wherein the first vein in the generally lengthwise direction intersects the second vein in the generally widthwise direction;and a second predetermined pattern defined by a second particulate mineral mix that occupies the entire slab thickness;wherein the first and second mineral mixes are different and each comprise quartz and one or more binders, the first particulate mineral mix absent from the second predetermined pattern and the second particulate mineral mix absent from the first predetermined pattern.
- 83A processed slab formed from a plurality of particulate mineral mixes deposited into a mold, comprising:a slab width that is at least 2 feet, a slab length that extends perpendicular to the slab width and that is at least 6 feet, and a slab thickness that extends perpendicular to the slab width and the slab length, the slab length greater than the slab width, the slab width greater than the slab thickness;CPST Doc: 332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 a first predetermined pattern defined by a first particulate mineral mix and comprising a set of slab veins exposed along a major surface of the slab, the set of slab veins comprising: a first vein having a generally lengthwise segment along the major surface, the first vein having a first vein thickness defined by the first particulate mineral mix that is equal and parallel to the slab thickness, a second vein having a generally widthwise segment along the major surface, the second vein having a second vein thickness defined by the first particulate mineral mix that is equal and parallel to the slab thickness;and a second predetermined pattern defined by a second particulate mineral mix that occupies the entire slab thickness adjacent to opposite sides of each of the first vein and the second vein;wherein the first and second mineral mixes are different and each comprise quartz and one or more binders, the first particulate mineral mix absent from the second predetermined pattern and the second particulate mineral mix absent from the first predetermined pattern;wherein the first vein having the generally lengthwise segment intersects the second vein having the generally widthwise segment;wherein the set of slab veins further comprises a third vein in a generally lengthwise direction along the major surface, the third vein having a third vein thickness that is equal and parallel to the slab thickness, the third vein thickness defined by the first particulate mineral mix;and, wherein the third vein in the generally lengthwise direction intersects the second vein having the generally widthwise segment.
- 89A process of forming a processed slab having a width of at least 3 feet and a length of at least 6 feet and a slab thickness that defines a vertical orientation, the process comprising:dispensing a first pigmented particulate mineral mix comprising predominantly quartz onto a planar surface through a stencil into a first set of regions using a first distributor while horizontally oriented occluded regions and vertically oriented walls of the stencil prevent dispensation of the first pigmented particulate mineral mix into a second set of regions, wherein the occluded regions of the stencil define a vein pattern;after dispensing the first pigmented particulate mineral mix, dispensing a second pigmented particulate mineral mix comprising predominantly quartz onto the planar surface into the second set of regions, the second set of regions different than the first set of regions;vibrating and compacting the pigmented particulate mineral mixes on the planar surface to form the processed slab having a slab thickness and a major surface that is generally rectangular with the width of at least 3 feet and the length of at least 6 feet.
- 97The process of any one of claims 89 to 96, wherein dispensing a second pigmented particulate mineral mix comprises dispensing the second pigmented particulate mineral mix using a second distributor, the second distributor comprising a dispensing head having a width that is less than a width of the second set of regions.
- 98The process of any one of claims 90 to 96, wherein dispensing a second pigmented particulate mineral mix comprises dispensing the second pigmented particulate mineral mix using a second distributor, the second distributor comprising a means for controllably releasing the second pigmented particulate mineral mix into the second set of regions.
- 101The process of any one of claims 90 to 96, wherein the first pigmented particulate mineral mix occupies an entire slab thickness extending perpendicularly to the major surface at the first set of regions, and the second pigmented particulate mineral mix occupies the entire slab thickness at the second set of regions that collectively provide a second vein pattern. CPST Doc:332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093
- 104The process of any one of claims 89 to 103, wherein vibrating and compacting the pigmented particulate mineral mixes comprises compressing the pigmented particulate mineral mixes so that a ratio of the width of the processed slab to the slab thickness is between 36:1 and 72:1, and a ratio of the length of the processed slab to the slab thickness is between 72:1 and 144:1.
- 107A process of forming a processed slab from different particulate mineral mixes, comprising:dispensing a first pigmented particulate mineral mix comprising predominantly quartz onto a planar surface through a stencil into a first set of regions using a first distributor while the stencil prevents dispensation of the first pigmented particulate mineral mix into a second set of regions, the stencil including a plurality of occluded regions and a frame that surrounds the occluded regions;dispensing a second pigmented particulate mineral mix comprising predominantly quartz onto the planar surface into the second set of regions using a second distributor, the second pigmented particulate mineral mix dispensed according to a predefined pattern that defines a pigmented vein pattern, the pigmented vein pattern including a widthwise vein that extends CPST Doc: 332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 across an entire width of the slab, and the second set of regions being different than the first set of regions;vibrating and compacting the pigmented particulate mineral mixes on the planar surface to form a processed slab that is generally rectangular and has a major surface with a width of at least 3 feet and a length of at least 6 feet and a slab thickness.
- 109A processed slab formed from a plurality of particulate mineral mixes deposited into a mold, comprising:a slab width that is at least 2 feet, a slab length that extends perpendicular to the slab width and that is at least 6 feet, and a slab thickness that extends perpendicular to the slab width and the slab length, the slab length greater than the slab width, the slab width greater than the slab thickness;a first predetermined pattern defined by a first particulate mineral mix and comprising a set of slab veins exposed along a major surface of the slab, the set of slab veins comprising: a first vein in a generally first direction along the major surface, the first vein having a first vein thickness defined by the first particulate mineral mix, a first overall length along the first direction, and a first maximum width on the major surface, a second vein in a generally second direction along the major surface, the second vein having a second vein thickness defined by the first particulate mineral mix, a second overall length along the second direction, wherein the second overall length is less than the first overall length;wherein the first vein in the generally first direction intersects the second vein in the generally second direction;and a second predetermined pattern defined by a second particulate mineral mix that occupies the entire slab thickness;wherein the first and second mineral mixes are different and each comprise quartz, a pigment, and one or more binders, the first particulate mineral mix absent from the second CPST Doc: 332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 predetermined pattern and the second particulate mineral mix absent from the first predetermined pattern.
- 117The processed slab of any one of claims 113 to 116, wherein the second particulate mineral mix occupies the entire slab thickness adjacent to the first vein and the second vein on opposite sides of each of the first vein and the second vein. CPST Doc:332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093
- 126A processed slab formed from a plurality of particulate mineral mixes deposited into a mold, comprising:a slab width that is at least 2 feet, a slab length that extends perpendicular to the slab width and that is at least 6 feet, and a slab thickness that extends perpendicular to the slab width and the slab length, the slab length greater than the slab width, the slab width greater than the slab thickness;CPST Doc: 332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 a first predetermined pattern defined by a first particulate mineral mix and comprising a set of slab veins exposed along a major surface of the slab, the set of slab veins comprising: a first vein in a generally first direction along the major surface, the first vein having a first vein thickness defined by the first particulate mineral mix, a first overall length along the first direction, and a first maximum width on the major surface that is less than the slab thickness, a second vein in a generally second direction along the major surface, the second vein having a second vein thickness defined by the first particulate mineral mix, a second overall length along the second direction, wherein the second overall length is less than the first overall length;a third vein in a generally third direction along the major surface, the third vein having a third thickness defined by the first particulate mineral mix. wherein the first vein in the generally first direction is transverse to and intersects the second vein in the generally second direction, and the third vein in the generally third direction is transverse to and intersects the first vein;and a second predetermined pattern defined by a second particulate mineral mix that occupies the entire slab thickness;wherein the first and second mineral mixes are different and each comprise quartz, a pigment, and one or more binders, the first particulate mineral mix absent from the second predetermined pattern and the second particulate mineral mix absent from the first predetermined pattern.
- 128129. A processed slab formed from a plurality of particulate mineral mixes deposited into a mold, comprising:a slab width that is at least 2 feet, a slab length that extends perpendicular to the slab width and that is at least 6 feet, and a slab thickness that extends perpendicular to the slab CPST Doc: 332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 width and the slab length, the slab length greater than the slab width, the slab width greater than the slab thickness;a first particulate mineral mix comprising predominately quartz positioned according to a first predetermined stencil pattern, the first particulate mineral mix occupying the entire slab thickness in a set of first regions;a second particulate mineral mix positioned according to a second predetermined pattern that occupies the entire slab thickness in a set of second regions, the set of second regions comprising a set of slab veins exposed along a major surface of the slab, the set of slab veins comprising;a first vein in a generally first direction along the major surface, the first vein having a first vein thickness defined by the first particulate mineral mix;a second vein in a generally second direction along the major surface, the second vein having a second vein thickness defined by the first particulate mineral mix;wherein the first vein in the generally first direction intersects the second vein in the generally second direction;and wherein second particulate mineral mix comprises quartz, and wherein the first and second particulate mineral mixes are different and each comprises a pigment, and one or more binders, the first particulate mineral mix being absent from the second predetermined pattern and the second particulate mineral mix being absent from the first predetermined pattern.
- 129130. The processed slab of claim 129, wherein the second predetermined pattern is a second predetermined stencil pattern.
- 131132. The processed slab of any one of claims 129 to 131, wherein the first vein extends across the entire slab length. CPST Doc:332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093
- 134135. The processed slab of claim 134, wherein the third vein in the generally third direction intersects the first vein.
- 135136. The processed slab of claim 135, wherein the third vein has a third overall length along the third direction and a third maximum width, wherein the third overall length is less than the first overall length, and the third maximum width is less than the slab thickness.
- 138139. The processed slab of claim 138, wherein the first particulate mineral mix occupies the slab thickness adjacent to on opposite sides of the third vein.
- 141142. The processed slab of any one of claims 129 to 141, wherein the first predetermined pattern is an inverse of the second predetermined pattern.
- 143144. The processed slab of claim 143, wherein the third particulate mineral mix is differently pigmented than the first and second particulate mineral mixes.
- 145146. A processed slab formed from a plurality of particulate mineral mixes deposited into a mold, comprising:a slab width that is at least 2 feet, a slab length that extends perpendicular to the slab width and that is at least 6 feet, and a slab thickness that extends perpendicular to the slab width and the slab length, the slab length greater than the slab width, the slab width greater than the slab thickness;a first particulate mineral mix comprising predominately quartz positioned according to a first predetermined stencil pattern, the first particulate mineral mix occupying the entire slab thickness in a set of first regions;a second particulate mineral mix positioned according to a second predetermined pattern in a set of second regions, the set of second regions comprising a set of slab veins exposed along a major surface of the slab, the set of slab veins comprising: a first vein in a generally first direction along the major surface, the first vein having a first vein thickness defined by the first particulate mineral mix, a first overall length along the first direction, and a first maximum width on the major surface, a second vein in a generally second direction along the major surface, the second vein having a second vein thickness defined by the first particulate mineral mix, a second overall length along the second direction, wherein the second overall length is less than the first overall length;CPST Doc: 332675.6 Date Reçue/Date Received 2022-06-02 CA 2,974,959 CPST Ref: 201754/00093 a third vein in a generally third direction along the major surface, the third vein having a third thickness defined by the first particulate mineral mix;wherein the first vein in the generally first direction intersects the second vein in the generally second direction, and the third vein in the generally third direction intersects the first vein;and wherein the first and second particulate mineral mixes are different and each comprises quartz, a pigment, and one or more binders, the first particulate mineral mix being absent from the second predetermined pattern and the second particulate mineral mix being absent from the first predetermined pattern.
- 146147. The processed slab of claim 146, wherein the second vein has a second maximum width on the major surface.
- 147148. The processed slab of claim 147, wherein the first vein extends across the entire slab length and the second vein extends across the entire slab width. CPST Doc:332675.6 Date Reçue/Date Received 2022-06-02
Independent claims69
104 paragraphs in 54 sections, as filed
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PROCESSED SLABS, AND SYSTEMS AND METHODS RELATED THERETO
TECHNICAL FIELD
[0001] This document describes systems and processes for forming synthetic mold slab products, for example, a synthetic mold slab that is thermoformed or otheiwise compacted to a selected slab shape from a mixture including particulate mineral material, resin binder, and pigments so that the synthetic molded slab is suitable for use in living or working spaces (e g., along a countertop, table, floor, or the like).
BACKGROUND
[0002] Quarried stone slabs are a commonly used building material. Granite, marble, soapstone, and other quarried stones are often selected for use as countertops due to their aesthetic properties. Despite the visual appeal of quarried stone, quarried stones can be quite expensive to obtain and are generally limited to naturally occurring color schemes.
[0003] Engineered stone slabs may be formed from a man-made combination of materials that can provide improved stain-resistant or heat-resistant properties compared to quarried stone. Engineered stone is typically a combination of particulate mineral material and binder, such as a polymer resin or cement. Some engineered stones partly emulate some aesthetic properties of quarried stone, but still fall noticeably short of the complicated look and texture of quarried stone.
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SUMMARY
[0004] Some embodiments described herein include systems and processes for forming synthetic molded slabs suitable for use in living or working spaces (e.g., along a countertop, table, floor, or the like). In particular embodiments, the synthetic molded slabs can be manufactured using, for example, a set of stencils that separate differently pigmented particulate mineral mixes into predetermined regions of a series of molds, thereby providing molded slabs having a similar appearance to one another (which, unlike quarried stone slabs taken from a quarry, can be generally repeatable and predefined as part of the manufacturing process). As used herein, “differently pigmented’ means having different pigment combinations or otherwise having a different visual apparent in color tone or visual texture. In such embodiments, however, the appearance of each synthetic molded slab can provide the complex striations and veining patterns that emulate a quarried stone slab. For example, each slab can be formed from a combination of differently pigmented particulate mineral mixes that are separately dispensed into two or more partial molds which combine to facilitate the selected striations and veining patterns. The slabs may be subsequently processed by compression molding and curing operations.
[0005] Particular embodiments described herein include a process of forming a synthetic molded slab from different particulate mineral mixes. The process may include sequentially dispensing at least first and second pigmented particulate mineral mixes comprising predominantly a quartz material into a single slab mold using at least first and second distributors. The first distributor may output the first pigmented particulate mineral mix through a first stencil positioned over the slab mold and into the slab mold according to a first stencil pattern, and the second distributor may subsequently output the second pigmented particulate mineral mix through a second stencil positioned over the slab mold and into the slab mold
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[0006] Some embodiments described herein include a process of forming a synthetic molded slab from a set of different particulate mineral mixes that each include a quartz material, one or more pigments, and one or more resin binders. The process may include outputting a first particulate mineral mix of the set of different particulate mineral mixes from a first distributor and through a first stencil that is positioned over a slab mold and that defines a first pattern of first design apertures surrounded by first occluded regions. The process may further include depositing the first particulate mineral mix passing through the first design apertures into the slab mold so as to partly fill a mold space of the slab mold that is at least 6 feet long by at least 3 feet wide. The process may also include moving the partly filled slab mold relative to the first stencil so that a second stencil is positioned over the partly filled slab mold, and the second stencil may define a second pattern of second design apertures surrounded by second occluded regions. The process may further include outputting a second particulate mineral mix of the set of different particulate mineral mixes from a second distributor and through the second design apertures of the second stencil. Also, the process may include depositing the second particulate mineral mix passing through the second design apertures into the slab mold and into
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[0007] In one aspect of this process, the first particulate mineral mix and the second particulate mineral mix may comprise at least two differently colored mineral mixes that each include the quartz material, one or more pigments, and at least one binder. In second aspect of this process, the depositing of the first particulate mineral mix may include distributing the first particulate mineral mix according to a first predefined pattern, and the depositing the second particulate mineral mix may include distributing the second particulate mineral mix according to a second predefined pattern. In a third aspect of this process, the first predefined pattern may define a first pigmented vein, and the second predefined pattern may define a second pigmented vein of the slab. In a fourth aspect of this process, at least a portion of the first pigmented vein may surround at least a portion of the second pigmented vein. In a fifth aspect, the process may further include polishing the major surface of the slab. In a sixth aspect, the process provides the slab in a manner that emulates the appearance of a quarried stone slab due at least in part to the two differently colored mineral mixes distributed according to the first predefined pattern and the second predefined pattern. In a seventh aspect of this process, the depositing the first particulate mineral mix may include depositing the first particulate mineral mix into the slab mold according to a first predefined and repeatable pattern, and the depositing the second particulate mineral mix may include depositing the second particulate mineral mix
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[0008] Further embodiments described herein include a system for forming a synthetic molded slab using a combination of different particulate mineral mixes. The system may include at least one slab mold defining a mold space that is at least 6 feet long by at least 3 feet wide. Also, the system may include two or more stencils defining complementary patterns of open spaces and occluded spaces, and the cumulative areas of the open spaces of the stencils corresponding to substantially the mold space of the particular slab mold. The system may further include two or more mineral aggregate distributors that are each configured to dispense a corresponding particulate mineral mix into the slab mold through a corresponding one of the stencils. Each stencil may be configured to prevent a mix in the distributor from accessing selected areas of each mold in the series of molds.
[0009] Some embodiments described herein include a set of separately molded synthetic slabs having a substantially repeated rectangular major surface appearance defined by a set of particulate mineral mixes. Each respective slab of the set may include at least two different particulate mineral mixes distributed according to at least two predefined stencil patterns for each of the synthetic slabs in the set of separately molded synthetic slabs. A first mix of the at least two different particulate mineral mixes occupies a full thickness each respective slab at first regions in which a second mix of the at least two different particulate mineral mixes is absent, and the second mix of the at least two different particulate mineral mixes occupies the full thickness of each respective slab at second regions in which the first mix of the at least two different particulate mineral mixes is absent. Optionally, the at least two different particulate mineral mixes may each comprise a quartz material, one or more pigments, and one or more
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[0010] Particular embodiments described herein include a synthetic molded slab that optionally comprises at least a quartz material. The synthetic molded slab may include a major surface defined by a set of particulate mineral mixes and having a rectangular shape that is at least 2 feet wide by at least 6 feet long and extending perpendicularly to a slab thickness. The major surface may have at least a first pigmented vein pattern defined by a first stencil pattern and a second pigmented vein pattern defined by a second stencil pattern that is a negative of the first stencil pattern. The first pigmented vein pattern may include a first particulate mineral mix that occupies the slab thickness at a set of first regions that collectively provide the first pigmented vein pattern, and the second pigmented vein pattern may include a second particulate mineral mixes that occupies the slab thickness at a set of second regions that collectively provide the second pigmented vein pattern. The first particulate mineral mix may be absent from the set of second regions, and the second particulate mineral mix may be absent from the set of first regions. The first and second particulate mineral mixes may be differently pigmented, and each of the particulate mineral mixes may optionally comprise the quartz material, one or more pigments, and one or more binders.
[0011] Some embodiments described herein include a process of forming a processed slab from different particulate mineral mixes. The process may include sequentially dispensing at least first and second pigmented particulate mineral mixes comprising predominantly a quartz material into a single slab mold using at least first and second distributors. The first distributor may output the first pigmented particulate mineral mix through a first stencil positioned over the slab mold and into the slab mold according to a first stencil pattern, and the second distributor subsequently outputs the second pigmented particulate mineral mix through a second stencil
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Blakes Ret 201754/00093 positioned over the slab mold and into the slab mold according to a second stencil pattern such that the second pigmented particulate mineral mix is deposited in regions of the slab mold that are unoccupied by the first pigmented particulate mineral mix. The process may include contemporaneously vibrating and compacting the pigmented particulate mineral mixes arranged in the slab mold so as to form a processed slab that is generally rectangular and has major surface. The major surface may have a width or at least 3 feet and a length of at least 6 feet. Some embodiments described herein include a processed slab formed according to this particular process.
(0012] Some embodiments described herein include a system for forming a processed slab using a combination of different particulate mineral mixes. The system may include a slab mold defining a mold space that is at least 6 feet long by at least 3 feet wide. The system may include two or more stencils defining complementary patterns of open spaces and occluded spaces, and the cumulative areas of the open spaces of the stencils corresponding to substantially the mold space. The system may include two or more mineral aggregate distributors that are each configured to dispense a corresponding particulate mineral mix into the slab mold through a corresponding one of the stencils. Each stencil may be configured to prevent a mix in the distributor from accessing selected areas of each mold in the series of molds.
[0013] Some embodiments described herein include a set of separately molded slabs having a substantially repeated rectangular major surface appearance defined by a set of particulate mineral mixes. Each respective slab of the set may include at least two different particulate mineral mixes distributed according to at least two predefined stencil patterns for each of the slabs in the set of separately molded slabs. A first mix of the at least two different particulate mineral mixes occupies a full thickness each respective slab at first regions in which 7 23200228.1
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Blakes Ref. 201754/00093 a second mix of the at least two different particulate mineral mixes is absent, and the second mix of the at least two different particulate mineral mixes occupies the full thickness of each respective slab at second regions in which the first mix of the at least two different particulate mineral mixes is absent. The at least two different particulate mineral mixes may each comprise a quartz material, one or more pigments, and one or more resin binders. Each respective slab is rectangular and has major surface with a width or at least 3 feet and a length of at least 6 feet.
[0014] Some embodiments described herein include a processed slab comprising a quartz material. The processed slab may include a major surface defined by a set of particulate mineral mixes and having a rectangular shape that is at least 2 feet wide by at least 6 feet long and extending perpendicularly to a slab thickness. The major surface may have at least a first pigmented vein pattern defined by a first stencil pattern and a second pigmented vein pattern defined by a second stencil pattern that is a negative of the first stencil pattern. The first pigmented vein pattern may include a first particulate mineral mix that occupies the slab thickness at a set of first regions that collectively provide the first pigmented vein pattern. The second pigmented vein pattern may comprise a second particulate mineral mixes that occupies the slab thickness at a set of second regions that collectively provide the second pigmented vein pattern. The first particulate mineral mix may be absent from the set of second regions, and the second particulate mineral mix may be absent from the set of first regions. The first and second particulate mineral mixes may be differently pigmented and each including the quartz material, one or more pigments, and one or more binders.
[0015] The systems and techniques described here may provide one or more of the following advantages. First, a system can be used to produce a plurality of synthetic molded slabs that each have similar striations and veining patterns and that are suitable for use in living 8 23200228.1
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Blakes Ref; 201754/00093 or working spaces (e.g., along a countertop, table, floor, or the like). Such slabs can be formed from a combination of differently pigmented particulate mineral mixes that are vertically distributed into designated regions of each mold according to predefined and complementary dispensation patterns (e.g., two or more horizontally oriented templates that can be positioned over each mold), which provide the selected striations and veining patterns that are generally repeatable for each separately molded slab.
[0016] Second, each slab in the system can be formed from a compression molding operation in which the molds containing the particulate mineral mixes are maintained in a horizontal orientation after the mold is filled. For example, the differently pigmented particulate mineral mixes are vertically poured through a series of complementary, horizontally oriented templates, the filled mold is shifted horizontally for a subsequent compression molding operation (e.g., vibro-compaction molding, curing, etc.). From there, some or all of the mold is removed from the hardened slab so that at least a major surface of the slab is polished to provide an appearance of the complex striations and veining patterns that emulate a quarried stone slab. In such circumstances, the polished major surface of each of the synthetic molded slabs provides an outer appearance that is remarkably similar to the other slabs in the set of separately molded slabs, unlike quarried stone slabs taken from a quarry. Moreover, the pigments and particulate mineral mixes can be selected to provide color combinations and visual effects that improved upon and offer a variety of color combination options far beyond what is available from quarried stone slabs taken from a quarry.
[0017] The details of one or more implementations are set forth in the accompanying drawings and the description below. Other features and advantages will be apparent from the description and drawings, and from the claims.
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DESCRIPTION OF DRAWINGS
[0018] FIG. 1 is a perspective view of a synthetic molded slab after formation, in accordance with some embodiments.
[0010] FIGs. 2A and 2B are exploded and assembled views of an example of a first partial slab stencil aligned with a slab mold, in accordance with some embodiments.
[0020] FIGs. 3A and 3B are exploded and assembled views of an example of a second partial slab stencil that is complementary to the first partial slab stencil of FIGs. 2A and 2B, the second partial slab stencil being aligned with the slab mold of FIGs. 2A and 2B.
[0021] FIG. 4 is a diagram of an example system for forming a synthetic molded slab product.
[0022] FIGs. 5A-5D are diagrams of a synthetic molded slab during and after filling of two partial slab stencils.
[0023] FIG. 6 is a perspective view of an example synthetic molded slab product formed by the system of FIG. 4.
[0024] FIG. 7 is a flow diagram of an example process for forming a synthetic molded slab product.
DETAILED DESCRIPTION
[0025] Referring to FIG. 1, a system can be used to produce one or more synthetic molded slabs 50 having a number of striations or veins according to a predefined pattern. Each slab 50 can comprise a quartz material and/or other particulate mineral material that, when mixed with pigments and a resin binder and compressed, provides a hardened slab product suitable for use
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Blakes Ref: 201754/00093 in living or working spaces (e.g., along a countertop, table, floor, or the like). As shown in FIG. 1, each slab 50 can be formed from a combination of differently pigmented particulate mineral mixes that are vertically poured into different, designated regions of a respective mold (while the mold is horizontally oriented in this embodiment). These designated regions are repeated for each mold in a series of molds (described in more detail below) due to, for example, a set of stencil structures that can be positioned over each mold and that provide a predefined complementary and repeatable dispensation pattern for the differently pigmented particulate mineral mixes in each mold. In some embodiments described herein, the predefined complementary and repeatable dispensation pattern for the differently pigmented particulate mineral mixes provides the selected striations and veining patterns that are generally repeatable for each separately molded slab. As will be discussed in farther detail in the descriptions of FIGs. 2A-7, some embodiments described herein employ a first partial stencil is arranged above a horizontal slab mold, and a first pigmented particulate mix is dispensed though open portions of the stencil into the mold. One or more successive stencils (e.g., at least a second partial stencil) are positioned over the same mold that is partially filled with the first pigmented particulate mix in predefined regions, and one or more differently pigmented particulate mixes (e.g., at least a second pigmented particulate mix) are sequentially dispensed through open portions of the successive stencils into the mold until all regions of the mold are filled. The mold may be subsequently transported in the horizontal orientation for compaction, curing, and other operations.
[0026] As shown in FIG. 1, depending upon the predefined dispensation pattern of the complementary partial stencils, the dispensation process can provide an aesthetic effect that emulates the veined appearance of natural quarried stone slabs such as granite or marble, including some veins 51 and 52 that extend partly or fally across a complete length L of the
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Blakes Ref: 201754/00093 hardened slab 50 (e.g., at least 3 feet wide by at least 6 feet long, and between about 3 feet and 6 feet wide and between about 6 feet and 12 feet long, between about 4.5 feet and 5.5 feet wide and between about 10 feet and 11 feet long, and preferably a size selected from one of about 4.5 feet wide by about 10 feet long or about 5.5 feet wide by about 11 feet long). Not only can such differently pigmented veins 51 and 52 extend across the full length of the slab product, but such veins 51 and 52 can also extend through the thickness of the slab 50 (thereby providing a natural vein appearance even when the slab is cut and edged to specific shapes in living or working spaces (e.g., along a countertop, table, floor, or the like). Because each slab 50 in the set of separately molded slabs can include the layers of different particulate mineral mixes dispensed into the mold according to the predefined and repeatable dispensation patterns of complementary stencils, multiple slabs 50 in the set of separately molded slabs can have substantially the same appearance to one another.
[0027] In this embodiment depicted in FIG. 1, the slab 50 comprises two different particulate mineral mixes that are separately dispensed into the mold 130 through two complementary stencils (e.g., a first stencil that is essentially a negative of a second stencil). However, in some embodiments, three or more stencils may be used to repeatably pattern the distribution of three or more different particulate mineral mixes that are separately dispensed into the mold 130.
The different mixes dispensed into each mold according to the repeatable pattern can be compaction molded and cured in the mold (described in more detail below) so as to provide the hardened slab 50 of composite stone material. One or more of the mixes that are used to form the composite stone material can include organic polymer(s) and inorganic (mineral) particulate component. The inorganic (mineral) particulate component may include such components as silicon, basalt, glass, diamond, rocks, pebbles, shells, a variety of quartz containing materials, such as, for example, but not limited to: crushed quartz, sand, quartz particles, and the like, or
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Blakes Ref: 201754/00093 any combination thereof. In this embodiment, all of the different particulate mineral mixes each comprise a quartz material as a predominant component, which may include sand of various particle sizes and of different combinations. In the hardened slab 50, the organic and inorganic materials can be linked using a binder, which may include for example, mono-functional or multifunctional silane molecules, dendrimeric molecules, and the like, that may have the ability to bind the organic and inorganic components of the composite stone mix. The binders may further include a mixture of various components, such as initiators, hardeners, catalysators, binding molecules and bridges, or any combination thereof. Some or all of the mixes dispensed in the mold may include components that are combined in a mixing apparatus (not shown) prior to being conveyed to the mold. The mixing apparatus can be used to blend raw material (such as the quartz material, organic polymers, unsaturated polymers, and the like) at various ratios. For example, some or all of the mixes dispensed in the mold may include about 8-95% quartz aggregates to about 5-15% polymer resins. In addition, various additives, may be added to the raw materials in the mixing apparatus, such additives may include, metallic pieces (e.g., copper flecks or the like), colorants, dyes, pigments, chemical reagents, antimicrobial substances, fungicidal agents, and the like, or any combination thereof.
[0028] Preferably, the mold at least partially defines a length L and a width W of the hardened slab 50 (because the mold retains the particulate mineral mixes therein throughout the subsequent compaction and curing processes). In some embodiments, the width W of the slab 50 formed in the mold is at least 3 feet, between about 3 feet and 6 feet, and preferably about either 4.5 feet, and the length L of the slab 50 formed in the mold is at least 6 feet, and between about 6 feet and 12 feet, preferably about 10 feet. In some implementations, the mold may be sized to form larger (e.g., “jumbo”) slabs, where the width W of the slab 50 formed in the mold is about 5 feet to about 6 feet (e.g., preferably about 5.5 feet) and the length L of the slab
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Blakes Ref: 201754/00093 formed in the mold is about 10.5 feet to about 12 feet (e.g., preferably about 11 feet). As such, even though each slab 50 can be relatively large in length L, some or all of the veins 51, 52 can nevertheless extend across the full length of the slab 50. In some embodiments, the thickness T of the slab 50 formed is at least 1 inch, between about 1 inch and 5 inches, and preferably about 3 inches.
[0029] Referring now to FIGs. 2A and 2B, exploded and assembled views of an example of a first partial slab stencil 200. Referring to FIG. 2A, a slab mold 130 and the partial slab stencil 200 are shown in an exploded and inverted view. The slab mold 130 includes a planar mold floor 132 bounded by a collection of mold walls 131 extending perpendicular from the planar mold floor, defining a generally tray-like shape.
[0030] The partial slab stencil 200 includes an outer frame 202 having a length and width that approximates that of the slab mold 130. In some embodiments, the slab mold 130 can be at least 3 feet, between about 3 feet and 5 feet, and preferably about 4 feet, and the length L of the slab 50 formed in the mold is at least 6 feet, and between about 6 feet and 10 feet, preferably about 3 feet. In some implementations, the slab mold may be sized to form larger (e.g., “jumbo”) slabs, where the width W of the slab 50 formed in the mold is at least 5 feet (e.g., about 5.5ft) and the length L of the slab 50 formed in the mold is at least 10 feet (e.g., about 11ft). In some embodiments, the slab mold 130 can have a thickness T of at least 1 inch, between about 1 inch and 5 inches, and preferably about 3 inches.
[0031] The outer frame 202 that supports a collection of occluded regions 204 and defines a collection of design apertures 206. The outer frame 202 and/or the occluded regions 204 can be formed from metal (e.g., steel, aluminum), plastic, wood, composite (e.g., fiberglass, carbon fiber), rubber, or combinations of these and/or any other appropriate material. In some
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Blakes Ref: 201754/00093 embodiments, the outer frame 202 and/or the occluded regions 204 can include non-stick materials or coatings that can resist adhesion with the ingredients of particulate mineral mixes.
[0032] The occluded regions 204 extend beyond the outer frame 202 a distance approximately equal to the thickness T of the slab mold 103. When the partial slab stencil 200 is assembled with the slab mold 130, as shown in FIG. 2B, the outer frame 202 rests upon the mold walls 131 of the slab mold 130, and the occluded regions 204 extend substantially through the thickness T of the slab mold 130 to contact the planar mold floor 132. As will be discussed further in the descriptions of FIGs. 4-7, when the partial slab stencil 200 is assembled with the slab mold 130, the design apertures 206 define spaces within the slab mold into which a particulate mineral mix can be dispensed, while the occluded regions 204 prevent the mix from entering.
[0033] Referring now to FIGs. 3A and 3B, exploded and assembled views of an example of a second partial slab stencil 300. Referring to FIG. 3A, the same slab mold 130 (previously depicted in FIGs. 2A and 2B) and the second partial slab stencil 300 are shown in an exploded and inverted view. Generally speaking, in this embodiment, the second partial slab stencil 300 is complementary to the first partial slab stencil 200 (FIGs. 2A and 2B). For example, areas that are occluded in the first partial slab stencil 200 are generally open in the second partial slab stencil 300, and areas that are open in the first partial slab stencil 200 are generally occluded in the second partial slab stencil 300. In some embodiments, the first partial slab mold 200 may define a “positive pattern while the second partial slab stencil 300 defines a “negative” pattern that corresponds inversely to the “positive” pattern.
[0034] The second partial slab stencil 300 includes an outer frame 302 having a length and width that approximates that of the slab mold 130. The outer frame 302 that supports a
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Blakes Ref: 201754/00093 collection of occluded regions 304 and defines a collection of design apertures 306. The outer frame 302 and/or the occluded regions 304 can be formed from metal (e.g., steel, aluminum), plastic, wood, composite (e.g., fiberglass, carbonfiber), rubber, or combinations of these and/or any other appropriate material. In some embodiments, the outer frame 302 and/or the occluded regions 304 can include non-stick materials or coatings that can resist adhesion with the ingredients of particulate mineral mixes.
[0035] The occluded regions 304 extend beyond the outer frame 302 a distance approximately equal to the thickness T of the slab mold 103. When the second partial slab stencil 300 is assembled with the slab mold 130, as shown in FIG. 3B, the outer frame 302 rests upon the mold walls 131 of the slab mold 130, and the occluded regions 304 extend substantially through the thickness T of the slab mold 130 to contact the planar mold floor 132. As will be discussed further in the descriptions of FIGs. 4-7, when the second partial slab stencil 300 is assembled with the slab mold 130, the design apertures 306 define spaces within the slab mold 130 into which a particulate mineral mix can be dispensed, while the occluded regions 304 prevent the mix from entering. In some embodiments, three or more partial slab stencils with design apertures that cumulatively correspond substantially to the length and width of the slab mold can be used (for sequentially dispensing a corresponding number of differently pigmented particulate mixes).
[0036] Referring now to FIG. 4, in some embodiments, a system 400 for forming a set of synthetic molded slab products (e.g., the slab 50 in FIG. 1) is configured to sequenitally dispense differently pigmented particulate mineral mixes through two or more complementary partial slab stencils and into the same horizontally oriented mold, which is then processed using a subsequent compression molding operation (e.g., vibro-compaction molding, curing, etc.). The system 400 in the depicted embodiment includes an input conveyor 410 and an output
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Blakes Ref: 201754/Û0Û93 conveyor 420. A collection of slab molds 130 are transported on the input conveyor 410. The slab molds 130 provide a form for synthetic molded slab products that are at least three feet wide and at least six feet long. The input conveyor 410 transports the slab molds 130 to an air table 440. The air table 440 includes a collection of outlets formed on a top surface. Air pumped through the outlets forms a cushion of air between the top surface and the slab molds 130, to help operators move and/or orient the slab molds 130.
[0037] Still referring to FIG. 4, the system 400 also includes a collection of mineral aggregate distributors 460a, 460b. In this embodiment, each of the distributors 460a, 406b is dedicated to dispensing a corresponding particulate mineral mix (refer to FIG. 1). In this embodiment, the partial slab stencil 200 is temporarily assembled to the slab mold 130. The slab mold 130 is moved horizontally (e.g., relative to gravity) beneath the distributor 460a, partly filling the slab mold 130 with a first particulate mineral mix. The partial slab stencil 200 is disassembled from the slab mold 130, and the partial slab stencil 300 is temporarily assembled to the partly filled slab mold 130. The slab mold 130 is moved horizontally (e.g., relative to gravity) beneath the distributor 460b, partly filling the slab mold 130 (e.g., the complementary areas left unfilled by the partial slab stencil 200) with a second particulate mineral mix.
Additional details of this particular embodiment of the partial slab stencils 200,300 are described further in connection with FIGs. 5A-7.
[0038] For example, in this embodiment, the first and second partial slab stencils 200, 300 are configured to receive two differently pigmented mineral mixes (comprising mostly a quartz material as described above), so there are two corresponding distributors 460a, 406b. In this embodiment, each of the mineral aggregate distributors 460a, 460b includes a dispensing head 462. In use, the dispensing heads 462 each receive a corresponding particulate mineral mix from a different mixer line (not shown), such that each dispenser head 462 is configured to 17 23200228.1
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Blakes Ret 201754/00093 release a different particulate mineral mix (e.g., different pigments, different mineral compositions, different additives, or a combination thereof) compared to the other dispenser heads 462. Each dispenser head 462 is configured to controllably dispense its supply of corresponding particulate mineral mix through the apertures 206,306 of a corresponding one of the partial slab stencils 200,300. For example, the dispensing heads 462 are each configured with a shutter or valve apparatus (not shown) that is controllable to regulate the flow of particulate mineral mix from the dispensing head 462 to the slab mold 130. The dispensing heads 462 are controllable dispense fillers into the slab molds 130 at a substantially repeatable rate. Additional details of this particular embodiment of the dispensing head 462 are described further in connection with FIGs. 5A-6B.
[0039] In the illustrated example, two mineral aggregate distributors 460a, 406b and two partial slab stencils 200,300 are used, although in other examples, the slab may be formed from between 2 and 20 different particulate mineral mixes, and more preferably between 3 and 8 different particulate mineral mixes (thereby providing a system that would include a corresponding number of distributors and partial slab stencils). In some examples, the number of mineral aggregate distributors and partial slab stencils can correspond equally to the number of differently pigmented particulate mineral mixes used to create the hardened slab product.
[0040] After the slab mold 130 has been sufficiently filled, the partial slab stencil 300 is disassembled from the slab mold 130. The slab mold 130 (now a filled mold 480) is moved on a cushion of air provided by an air table 470, to an output conveyor 120. As shown in FIG. 1, the successive complementary patterns of different particulate mineral mixes that were dispensed into the mold 130 are generally noticeable in the filled molds 480 and are arranged in the horizontal orientation on the output conveyer 420. Some or all of these successive
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Blakes Ref; 201754/00093 complementary patterns of different particulate mineral mixes can form the repeatably patterned veins of the hardened slab (e.g., the slab 50 in FIG. 1, the slab 600 in FIG. 6, or the like).
[0041] Optionally, the system 400 may include a secondary dispenser (not shown), which may be positioned so that each filled mold 480 passes under the secondary dispenser. The secondary dispenser can be configured to dispense a material that is used to define one more generally “widthwise” veins. Optionally, these widthwise veins may be thinner and spread further apart than the veins defined by the successive complementary patterns of different particulate mineral mixes. Also, these widthwise veins may be formed from a material having a different pigmentation than the particulate mineral mixes dispensed from the distributors 460a, 460b. In some embodiments, the secondary dispenser may be configured with a shutter or valve apparatus (not shown) that is controllable to regulate the flow of pigmented material, thereby providing a predetermined pattern of the widthwise veins that is repeatable for each of the filled molds 480 pass under the secondary dispenser. In some embodiments, the secondary dispenser can be configured to dispense a pigment powder material (e.g., not mixed with quartz material). In other embodiments, the secondary dispenser can be configured to dispense a particulate mineral mix (including a quartz material) having pigments that are different from the mixes dispensed from the distributors 460a, 460b. In some embodiments, the pigment powder material (or other material) dispensed from the secondary dispenser can be deposited along a major (exposed) side of the filled mold 480 so that at least a portion of the material penetrates at least slightly into the thickness of the mineral mix material previously poured into the mold 480 (thereby permitting the widthwise veins to remain viewable even after compaction and polishing of the slab). In such circumstances, the widthwise veins may not extend through the full thickness of the hardened slab (which is different from some or all of the veins defined by the
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Blakes Ref: 201754/00093 successive complementary patterns of different particulate mineral mixes poured into the mold 130 by the distributors 460a, 460b).
[0042] Still referring to FIG. 4, the output conveyor 420 can be configured to transport each of the filled molds 480 to one or more sequent stations in the system 400 for forming the hardened slab. For example, each of the filled molds 480 can continue to a subsequent station in which a top mold attachment 494 is positioned over the filled mold 480 so as to encase the layers of particular mineral mixes between the mold 130 and a top cover mold piece (not shown in FIG. 4). From there, the filled mold 480 (now including the top cover mold piece continues to a subsequent station in which a vibro-compaction press 495 applies compaction pressure, vibration, and vacuum to the contents inside the filled mold 480, thereby converting the particulate mixes into a rigid slab. After the vibro-compaction operation, the filled mold 480 (with the compacted and hardened slab therein) proceeds to a curing station 496 in which the material used to form the slab (including any resin binder material) are cured via a heating process, thereby further strengthening the slab inside the filled mold 480. After the slab is fully cured (and cooled), the primary mold 130 and the top mold cover piece are removed from the hardened and cured slab at a mold removal station 497. The primary mold 130 is then returned to the input conveyor 410. Then, the hardened and cured slab is moved to a polisher station 498, in which a major surface of the slab is polished to a smooth finish, thereby an appearance of the complex striations and veining patterns that emulate a quarried stone slab. In such circumstances, the polished major surface of each of the synthetic molded slabs provides an outer appearance that is generally repeatable for to the other slabs (from the other filled molds 480 in FIG. 4).
[0043] Now referring to FIG. 5A, the slab mold 130 is shown with the partial slab stencil 200. The slab mold 130 is partly filled by drawing the distributor 460a laterally across the partial slab 20 23200228.1
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Blakes Ref: 201754/00093 stencil 200, or by passing the partial slab stencil and the slab mold 130 laterally beneath the distributor 460a. The distributor 460a holds a first particulate mineral mix, which is controllably released though the dispensing head 462 into the slab mold 130. The collection of occluded regions 204 block the dispensation of the mix into predetermined areas of the slab mold 130, while the collection of apertures 206 allow the mix to fill predetermined areas of the slab mold 130, shown as a collection of filled regions 502.
[0044] Referring now to FIG. 5B, the slab mold 130 is shown with the partial slab stencil 200 removed after being partly filled according to the pattern provided by the partial slab stencil 200. As a result, the slab mold 130 is partly filled with the first particulate mineral mix in the filled regions 502, and is partly unfilled in a collection of unfilled areas 504.
[0045] Now referring to FIG. 5C, the slab mold 130 is shown with the partial slab stencil 300. The collection of occluded regions 304 substantially correspond to the collection of filled regions 502 (not visible in this view) and substantially prevent the second mix from being dispensed as a second layer upon the first mix already in the filled regions 502. Conversely, the collection of apertures 302 substantially correspond to the collection of unfilled areas 504 left by the partial slab stencil 200. For example the partial slab stencil 300 has a pattern that is the negative of the pattern of the partial slab stencil 200, and the collective combination of the apertures 202 and 302 substantially correspond to the area (e g., length L and width W) of the slab mold 130.
[0046] The slab mold 130 is partly filled by drawing the distributor 460b laterally across the partial slab stencil 300, or by passing the partial slab stencil and the slab mold 130 laterally beneath the distributor 460b. The distributor 460b holds a second particulate mineral mix, which is controllably released though the dispensing head 462 into the slab mold 130. The
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Blakes Ret 201754/00093 collection of occluded regions 304 block the dispensation of the mix into predetermined areas of the slab mold 130, while the collection of apertures 306 allow the mix to fill the unfilled areas 504 of the slab mold 130, shown as a collection of filled regions 506.
[0047] Referring now to FIG. 5D, the slab mold 130 is shown with the partial slab stencil 300 removed after being partly filled according to the pattern provided by the partial slab stencil 300. As a result, the slab mold 130 is partly filled with the first particulate mineral mix in the filled regions 502, and is partly filled with the second particulate mineral mix in the filled regions 506.
[0048] In some embodiments, three or more partial slab stencils, distributors, and particulate mineral mixes can be used. For example, four partial slab stencils can be used in which each partial slab stencil has a predetermined pattern of apertures that do not overlap those of the other stencils, and collectively combine to substantially correspond to the area of the slab mold 130. Four different particulate mineral mixes (e.g., with different aesthetic qualities) can be dispensed into the four collections of apertures to create a four-color composite slab with a pattern that can be substantially repeated for multiple slabs.
[0049] Referring now to FIG. 6, an example synthetic molded slab product 600 can be formed by the system of FIG. 4 using a combination of differently pigmented particulate mineral mixes that are distributed according to predefined patterns of the two (or more) complementary partial slab templates 200 and 300 into the mold 130. In some embodiments, the synthetic molded slab product 600 can provide a veined appearance that emulates quarried stone slabs such as granite or marble, depending upon the predefined dispensation pattern of the different particular mixes. For example, the major surface 612 of the slab 600 can be polished and provide at least some veins 602,606 that extend partly or fully across a length and/or width of the hardened slab 600. Not only can such differently pigmented veins (602 and 606, for
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Blakes Ref: 201754/00093 example) extend across the slab product, but such veins can also extend through the thickness 610 of the slab 600 from the first major face 612 to the opposing major face 614 (thereby providing a natural vein appearance even when the slab is cut and edged to specific shapes in living or working spaces (e.g., along a countertop, table, floor, or the like). Optionally, at least the major surface 612 of the slab 600 may include a plurality of secondary veins (not shown) defined, for example, by a secondary dispenser. Some of these secondary veins can extend fully across a complete width of the hardened slab 600. Because each slab 600 in the set of separately molded slabs (refer, for example, to the system in FIG. 4) can include the regions of different particulate mineral mixes dispensed into the mold 130 according to the predefined and repeatable dispensation patterns of the partial slab stencils, multiple slabs 600 in the set can have similarly positioned veins in the major surface and can provide substantially the same appearance to one another.
[0050] The synthetic molded slab 600 can be cut, milled, machined, or otherwise processed to various shapes and sized (e.g., to provide custom-fit countertop surfaces with optional holes for sinks, faucets, or other amenities). For example, a section 630 is cut away from the synthetic molded slab product 600. With the veins 602 and 606 extending into the interior 606 and/or across the thickness 610, cutting and/or processing of the synthetic molded slab product 600 shows the veins 602 and 606in a manner that emulates the aesthetics of cut quarried stone slabs.
[0051] FIG. 7 is a flow diagram of an example process 700 for forming a synthetic molded slab product (such as slab 50 or 600 described above). In some implementations, the system 400 of FIG. 4 can be used to perform the process 700. The process 700 may include the operation 702 of positioning a positive partial slab stencil in a slab mold. In such an operation, a partial slab stencil, such as the partial slab stencil 200 may be temporarily assembled to the
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Blakes Ref: 201754/00093 slab mold 130. The process 700 may also include the operation 704 of dispensing a first particulate mineral mix through the positive stencil into the slab mold. For example, as previously described, a first pigmented mix comprising predominantly a quartz material (e.g., a mix including the particulate quartz material, one or more pigments, and one or more resin binders) can be fed into the slab mold 130 using the distributor 460a (FIG. 4). Next, the process 700 may include the operation 706 of removing the positive partial slab stencil, and may include the operation 708 of positioning a negative partial slab stencil in a slab mold. In such operations, the partial slab stencil 200 may be removed, and the partial slab stencil 300 may be temporarily assembled to the slab mold 130.
[0052] The process 700 may also include the operation 710 of dispensing a second particulate mineral mix through the negative stencil into the slab mold. For example, as previously described, a second pigmented mix comprising predominantly a quartz material (e.g., a mix including the particulate quartz material, one or more pigments, and one or more resin binders) can be fed into the slab mold 130 using the distributor 460b (FIG. 4). Next, the process 700 may include the operation 712 of removing the positive partial slab stencil. For example, the partial slab stencil 300 can be removed from the slab mold 130.
[0053] The process 700 may further include the operation 714 of contemporaneously vibrating and compacting the particulate mineral mixes arranged in the mold while the mold is in the horizontal orientation. In such circumstances, the operation 714 may provide a compacted slab of composite stone material. Also, in some embodiments, the process 700 may further include the operation 716 of curing the compacted slab. The process 700 may also include the operation 718 of polishing a major surface of the slab to provide a veined appearance on the polished surface of the slab, including but not limited to the examples described above.
232002281
CA 2974959 2017-09-13
CA 2 974 969
Blakes Ref: 201754/00093
[0054] Although a number of implementations have been described in detail above, other modifications are possible. For example, the logic flows depicted in the figures do not require the particular order shown, or sequential order, to achieve desirable results. In addition, other steps may be provided, or steps may be eliminated, from the described flows, and other components may be added to, or removed from, the described systems. Accordingly, other implementations are within the scope of the following claims.
23200228.1
CA 2974959 2017-09-13
Contents54
8 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8
42 members in 10 offices
Priority claims3
| Document | Office | Kind | Date |
|---|---|---|---|
| 14610172 | United States of America | – | |
| 201514610172 | United States of America | A | |
| 2016015536 | United States of America | W |
Members42
| Document | Office | Kind | |
|---|---|---|---|
| US9289923B1 | United States of America | B1 | |
| CA2974959A1 | Canada | A1 | |
| US2016221215A1 | United States of America | A1 | |
| US2016221227A1 | United States of America | A1 | |
| US2016221384A1 | United States of America | A1 | |
| WO2016123433A1 | World Intellectual Property Organization (WIPO) | A1 | |
| AU2016211357A1 | Australia | A1 | |
| CN107206835A | China | A | |
| IL253555A0 | Israel | A0 | |
| IL253555D0 | Israel | D0 | |
| EP3250395A1 | European Patent Office (EPO) | A1 | |
| KR20170140158A | Republic of Korea | A | |
| MX2017009875A | Mexico | A | |
| HK1244756A | Hong Kong, China | A | |
| HK1244756A1 | Hong Kong, China | A1 | |
| US10105868B2 | United States of America | B2 | |
| EP3250395A4 | European Patent Office (EPO) | A4 | |
| US10195762B2 | United States of America | B2 | |
| US10252440B2 | United States of America | B2 | |
| US2019283270A1 | United States of America | A1 | |
| AU2016211357B2 | Australia | B2 | |
| US10773418B2 | United States of America | B2 | |
| US2020406495A1 | United States of America | A1 | |
| CN107206835B | China | B | |
| US10981293B2 | United States of America | B2 | |
| CN113043616A | China | A | |
| US2022024070A1 | United States of America | A1 | |
| IL253555B | Israel | B | |
| IL293442A | Israel | A | |
| KR102419923B1 | Republic of Korea | B1 | |
| KR20220103811A | Republic of Korea | A | |
| US11529752B2 | United States of America | B2 | |
| CA2974959CThis record | Canada | C | |
| MX2023000195A | Mexico | A | |
| IL293442B1 | Israel | B1 | |
| US2023133639A1 | United States of America | A1 | |
| IL293442B2 | Israel | B2 | |
| US11845198B2 | United States of America | B2 | |
| US2024181674A1 | United States of America | A1 | |
| US12370718B2 | United States of America | B2 | |
| KR102843086B1 | Republic of Korea | B1 | |
| US2025387946A1 | United States of America | A1 |
12 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Maintenance fee for patent paidMPN | MPN | |
| Fee paidST27 STATUS EVENT CODE: A-4-4-U10-U00-U101 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: MAINTENANCE REQUEST RECEIVEDU00 | U00 | |
| Full renewal or maintenance fee paidST27 STATUS EVENT CODE: A-4-4-U10-U11-U102 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: MAINTENANCE FEE PAYMENT PAID IN FULLU11 | U11 | |
| Maintenance fee for patent paidMPN | MPN | |
| Fee paidST27 STATUS EVENT CODE: A-4-4-U10-U00-U101 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: MAINTENANCE REQUEST RECEIVEDU00 | U00 | |
| Full renewal or maintenance fee paidST27 STATUS EVENT CODE: A-4-4-U10-U11-U102 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: MAINTENANCE FEE PAYMENT DETERMINED COMPLIANTU11 | U11 | |
| Full renewal or maintenance fee paidST27 STATUS EVENT CODE: A-4-4-U10-U11-U102 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: MAINTENANCE FEE PAYMENT PAID IN FULLU11 | U11 | |
| Examination requestEEER | EEER | |
| Examination requestEEER | EEER | |
| Examination requestEEER | EEER | |
| Examination requestEEER | EEER | |
| Examination requestEEER | EEER |
Numbers
- Publication
- 2974959
- Application
- 2974959
Titles2
- English
- PROCESSED SLABS, AND SYSTEMS AND METHODS RELATED THERETO
- French
- DALLES TRAITES, ET SYSTEMES ET PROCEDES CONNEXES
Classification
- CPC, 38
- B29C67/244
- B28B13/022
- B28B1/008
- B29C67/242
- B29D7/01
- C04B26/32
- C04B2111/54
- B44C5/0453
- B44C5/06
- B44F9/04
- C04B26/02
- B28B1/005
- B28B13/0225
- B28B5/022
- B29C67/243
- B29L2031/441
- B29C39/12
- B29K2105/16
- B29L2031/722
- C04B32/00
- B29C39/24
- B29L2031/10
- B29K2995/0021
- B29L2007/00
- B28B3/022
- C04B2103/54
- B29K2509/00
- B29L2031/732
- C04B41/60
- B29C39/26
- C04B14/06
- C04B14/34
- B28B1/14
- C04B40/02
- B28B7/007
- C04B2103/67
- C04B20/1092
- C04B2111/545
- IPC, 3
- B28B13 02
- B44C3 00
- B44F9 04
