Patent
US 10,841,982Patent
Atlas literature
Patent
US 10,841,982Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 2 is a sche m ati c vie w of another heating apparatus 200, according to another example embodiment. The heating apparatus 200 includes many of the same …
FIG. 3 is a flowchart of a method 300 for making a GNP heater on a substrate, according to an example embodiment. The method 300 can a lso b e tho ugh t o f as …
FIG. 4 is a top view of a GNP heater 400 formed over a glass substrate 410 with copper electrodes 430, 432, according to an example embodiment. The paint or …
FIG. 5 is a top view of a GNP heater 500 formed on glass without copper electrodes, according to an example embodiment. The paint or ink is formed with GNP …
FIG. 6 is a top view of GNP heater 600 of two channels on Pyrex substrate 610, according to an example embodiment. The paint or ink is formed with GNP therein. …
FIG. 7, according to an example embodiment. The description set out herein illustrates the various embodiments of the invention and such description is not …
FIG. 8). In all examples, the sa me ra pi d r ise i n s ample 's t empe rat ure followe d by lat e ral s preading of he at on the surface was observe d. The …
FIG. 9 is a top view of a Ceramic t ile with painted GNP heater 900, according to an example embodiment. The GNP heater 900 is formed on a substrate 910 with …
FIG. 10 is a graph of a temperature profile of the GNP heater on a wood substrate of
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A heating device comprising; a substrate; a liquid including graphene nanomaterials applied to the substrate and allowed to dry to form at least one heating layer on the substrate; and a power supply electrically connected to the at least one heating layer on the substrate, the heating layer producing heat in the presence of power, the graphene nanoparticles in the heating layer dissipating the electricity in the heating layer in response to the application of power to the heating layer. Original
The heating device of claim 1 wherein the heating layer is comprised of a plurality of layers Original
The heating device of claim 1 further comprising; a first electrode coupled to the at least one heating layer on the substrate; and a second electrode coupled to the at least one heating layer on the substrate at a location remote from the first electrode. Original
The heating device of claim 1 wherein the power source is a DC (direct current) power source. Original
The heating device of claim 1 wherein the power source is an AC (alternating current) power source. Original
The heating device of claim 1 wherein the liquid including the graphene particles is a paint. Original
The heating device of claim 1 wherein the liquid including the graphene particles is an ink capable of being printed onto the substrate. Original
The heating device of claim 1 wherein the graphene nanomaterials include graphene nanoplatelets. Original
The heating device of claim 1 wherein the graphene nanomaterials include graphene Oxide nano-platelets. Original
The heating device of claim 1 wherein the graphene nanomaterials include edge-functionalized graphene nano-platelets. Original
The heating device of claim 1 wherein the substrate is made of glass. Original
The heating device of claim 1 wherein the substrate is made of a dielectric material. Original
The heating device of claim 1 wherein the substrate is made of an electrically isolated material. Original
The heating device of claim 1 wherein the substrate is made of a polymer material. Original
The heating device of claim 1 further comprising a cover layer covering the heating layer. Original
A method of forming a heating device comprising: suspending an amount of graphene nanoplatelets in a liquid; sonicating the liquid; spreading the liquid and graphene nano-platelet mixture on a substrate as a film, the substrate including a first electrode and a second electrode spaced away from the first; and drying the liquid and graphene nano-platelet mixture; repeating the spreading and drying, until reaching predetermined final resistance between the first electrode and the second electrode. Original
Embodiments described in the patent, grouped by the materials and process steps they use.
4 materials1 process step
A GNP heater formed over a glass substrate with copper electrodes. Paint or ink containing GNP in a solvent or surfactant with a binder is sprayed or printed onto the glass substrate to form a thin film heating layer. Electrodes are added to the ends of the material and a power supply is connected.
3 materials1 process step
A GNP heater formed on glass substrate without separate copper electrodes. Paint or ink containing GNP in a solvent or surfactant with a binder is sprayed or printed onto the glass substrate. Power supply is connected at two remote locations on the heater material.
3 materials1 process step
A GNP heater formed on a wood substrate with copper electrodes, with a temperature profile shown in FIG. 10.
3 materials1 process step
A GNP heater formed on a cement block substrate with copper electrodes.
3 materials1 process step
A GNP heater with two channels formed on a Pyrex substrate.
2 materials1 process step
A ceramic tile with painted GNP heater.
Layer stacks claimed or described, ordered top of device to substrate.
graphene nanoplatelet surface heater
Materials described outside the worked examples.
graphene nanomaterials
liquid including graphene nanomaterials
Measurements and analyses referenced in the patent, with their drawing references.
FIG. 8). In all examples, the sa me ra pi d r ise i n s ample 's t empe rat ure followe d by lat e ral s preading of he at on the surface was observe d. The …
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
final resistance between electrodes (process endpoint criterion) | — | — |
Related documents with shared materials, methods, properties, or citations.
Patent
Atlas literature
Patent
US 10,841,982Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 2 is a sche m ati c vie w of another heating apparatus 200, according to another example embodiment. The heating apparatus 200 includes many of the same …
FIG. 3 is a flowchart of a method 300 for making a GNP heater on a substrate, according to an example embodiment. The method 300 can a lso b e tho ugh t o f as …
FIG. 4 is a top view of a GNP heater 400 formed over a glass substrate 410 with copper electrodes 430, 432, according to an example embodiment. The paint or …
FIG. 5 is a top view of a GNP heater 500 formed on glass without copper electrodes, according to an example embodiment. The paint or ink is formed with GNP …
FIG. 6 is a top view of GNP heater 600 of two channels on Pyrex substrate 610, according to an example embodiment. The paint or ink is formed with GNP therein. …
FIG. 7, according to an example embodiment. The description set out herein illustrates the various embodiments of the invention and such description is not …
FIG. 8). In all examples, the sa me ra pi d r ise i n s ample 's t empe rat ure followe d by lat e ral s preading of he at on the surface was observe d. The …
FIG. 9 is a top view of a Ceramic t ile with painted GNP heater 900, according to an example embodiment. The GNP heater 900 is formed on a substrate 910 with …
FIG. 10 is a graph of a temperature profile of the GNP heater on a wood substrate of
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A heating device comprising; a substrate; a liquid including graphene nanomaterials applied to the substrate and allowed to dry to form at least one heating layer on the substrate; and a power supply electrically connected to the at least one heating layer on the substrate, the heating layer producing heat in the presence of power, the graphene nanoparticles in the heating layer dissipating the electricity in the heating layer in response to the application of power to the heating layer. Original
The heating device of claim 1 wherein the heating layer is comprised of a plurality of layers Original
The heating device of claim 1 further comprising; a first electrode coupled to the at least one heating layer on the substrate; and a second electrode coupled to the at least one heating layer on the substrate at a location remote from the first electrode. Original
The heating device of claim 1 wherein the power source is a DC (direct current) power source. Original
The heating device of claim 1 wherein the power source is an AC (alternating current) power source. Original
The heating device of claim 1 wherein the liquid including the graphene particles is a paint. Original
The heating device of claim 1 wherein the liquid including the graphene particles is an ink capable of being printed onto the substrate. Original
The heating device of claim 1 wherein the graphene nanomaterials include graphene nanoplatelets. Original
The heating device of claim 1 wherein the graphene nanomaterials include graphene Oxide nano-platelets. Original
The heating device of claim 1 wherein the graphene nanomaterials include edge-functionalized graphene nano-platelets. Original
The heating device of claim 1 wherein the substrate is made of glass. Original
The heating device of claim 1 wherein the substrate is made of a dielectric material. Original
The heating device of claim 1 wherein the substrate is made of an electrically isolated material. Original
The heating device of claim 1 wherein the substrate is made of a polymer material. Original
The heating device of claim 1 further comprising a cover layer covering the heating layer. Original
A method of forming a heating device comprising: suspending an amount of graphene nanoplatelets in a liquid; sonicating the liquid; spreading the liquid and graphene nano-platelet mixture on a substrate as a film, the substrate including a first electrode and a second electrode spaced away from the first; and drying the liquid and graphene nano-platelet mixture; repeating the spreading and drying, until reaching predetermined final resistance between the first electrode and the second electrode. Original
Embodiments described in the patent, grouped by the materials and process steps they use.
4 materials1 process step
A GNP heater formed over a glass substrate with copper electrodes. Paint or ink containing GNP in a solvent or surfactant with a binder is sprayed or printed onto the glass substrate to form a thin film heating layer. Electrodes are added to the ends of the material and a power supply is connected.
3 materials1 process step
A GNP heater formed on glass substrate without separate copper electrodes. Paint or ink containing GNP in a solvent or surfactant with a binder is sprayed or printed onto the glass substrate. Power supply is connected at two remote locations on the heater material.
3 materials1 process step
A GNP heater formed on a wood substrate with copper electrodes, with a temperature profile shown in FIG. 10.
3 materials1 process step
A GNP heater formed on a cement block substrate with copper electrodes.
3 materials1 process step
A GNP heater with two channels formed on a Pyrex substrate.
2 materials1 process step
A ceramic tile with painted GNP heater.
Layer stacks claimed or described, ordered top of device to substrate.
graphene nanoplatelet surface heater
Materials described outside the worked examples.
graphene nanomaterials
liquid including graphene nanomaterials
Measurements and analyses referenced in the patent, with their drawing references.
FIG. 8). In all examples, the sa me ra pi d r ise i n s ample 's t empe rat ure followe d by lat e ral s preading of he at on the surface was observe d. The …
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
final resistance between electrodes (process endpoint criterion) | — | — |
Related documents with shared materials, methods, properties, or citations.
Patent
Atlas literature
Patent
US 10,841,982Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 2 is a sche m ati c vie w of another heating apparatus 200, according to another example embodiment. The heating apparatus 200 includes many of the same …
FIG. 3 is a flowchart of a method 300 for making a GNP heater on a substrate, according to an example embodiment. The method 300 can a lso b e tho ugh t o f as …
FIG. 4 is a top view of a GNP heater 400 formed over a glass substrate 410 with copper electrodes 430, 432, according to an example embodiment. The paint or …
FIG. 5 is a top view of a GNP heater 500 formed on glass without copper electrodes, according to an example embodiment. The paint or ink is formed with GNP …
FIG. 6 is a top view of GNP heater 600 of two channels on Pyrex substrate 610, according to an example embodiment. The paint or ink is formed with GNP therein. …
FIG. 7, according to an example embodiment. The description set out herein illustrates the various embodiments of the invention and such description is not …
FIG. 8). In all examples, the sa me ra pi d r ise i n s ample 's t empe rat ure followe d by lat e ral s preading of he at on the surface was observe d. The …
FIG. 9 is a top view of a Ceramic t ile with painted GNP heater 900, according to an example embodiment. The GNP heater 900 is formed on a substrate 910 with …
FIG. 10 is a graph of a temperature profile of the GNP heater on a wood substrate of
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A heating device comprising; a substrate; a liquid including graphene nanomaterials applied to the substrate and allowed to dry to form at least one heating layer on the substrate; and a power supply electrically connected to the at least one heating layer on the substrate, the heating layer producing heat in the presence of power, the graphene nanoparticles in the heating layer dissipating the electricity in the heating layer in response to the application of power to the heating layer. Original
The heating device of claim 1 wherein the heating layer is comprised of a plurality of layers Original
The heating device of claim 1 further comprising; a first electrode coupled to the at least one heating layer on the substrate; and a second electrode coupled to the at least one heating layer on the substrate at a location remote from the first electrode. Original
The heating device of claim 1 wherein the power source is a DC (direct current) power source. Original
The heating device of claim 1 wherein the power source is an AC (alternating current) power source. Original
The heating device of claim 1 wherein the liquid including the graphene particles is a paint. Original
The heating device of claim 1 wherein the liquid including the graphene particles is an ink capable of being printed onto the substrate. Original
The heating device of claim 1 wherein the graphene nanomaterials include graphene nanoplatelets. Original
The heating device of claim 1 wherein the graphene nanomaterials include graphene Oxide nano-platelets. Original
The heating device of claim 1 wherein the graphene nanomaterials include edge-functionalized graphene nano-platelets. Original
The heating device of claim 1 wherein the substrate is made of glass. Original
The heating device of claim 1 wherein the substrate is made of a dielectric material. Original
The heating device of claim 1 wherein the substrate is made of an electrically isolated material. Original
The heating device of claim 1 wherein the substrate is made of a polymer material. Original
The heating device of claim 1 further comprising a cover layer covering the heating layer. Original
A method of forming a heating device comprising: suspending an amount of graphene nanoplatelets in a liquid; sonicating the liquid; spreading the liquid and graphene nano-platelet mixture on a substrate as a film, the substrate including a first electrode and a second electrode spaced away from the first; and drying the liquid and graphene nano-platelet mixture; repeating the spreading and drying, until reaching predetermined final resistance between the first electrode and the second electrode. Original
Embodiments described in the patent, grouped by the materials and process steps they use.
4 materials1 process step
A GNP heater formed over a glass substrate with copper electrodes. Paint or ink containing GNP in a solvent or surfactant with a binder is sprayed or printed onto the glass substrate to form a thin film heating layer. Electrodes are added to the ends of the material and a power supply is connected.
3 materials1 process step
A GNP heater formed on glass substrate without separate copper electrodes. Paint or ink containing GNP in a solvent or surfactant with a binder is sprayed or printed onto the glass substrate. Power supply is connected at two remote locations on the heater material.
3 materials1 process step
A GNP heater formed on a wood substrate with copper electrodes, with a temperature profile shown in FIG. 10.
3 materials1 process step
A GNP heater formed on a cement block substrate with copper electrodes.
3 materials1 process step
A GNP heater with two channels formed on a Pyrex substrate.
2 materials1 process step
A ceramic tile with painted GNP heater.
Layer stacks claimed or described, ordered top of device to substrate.
graphene nanoplatelet surface heater
Materials described outside the worked examples.
graphene nanomaterials
liquid including graphene nanomaterials
Measurements and analyses referenced in the patent, with their drawing references.
FIG. 8). In all examples, the sa me ra pi d r ise i n s ample 's t empe rat ure followe d by lat e ral s preading of he at on the surface was observe d. The …
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
final resistance between electrodes (process endpoint criterion) | — | — |
Related documents with shared materials, methods, properties, or citations.
Patent
Atlas literature
Patent
US 10,841,982Patent drawings and their descriptions. Click a drawing to enlarge it.
FIG. 2 is a sche m ati c vie w of another heating apparatus 200, according to another example embodiment. The heating apparatus 200 includes many of the same …
FIG. 3 is a flowchart of a method 300 for making a GNP heater on a substrate, according to an example embodiment. The method 300 can a lso b e tho ugh t o f as …
FIG. 4 is a top view of a GNP heater 400 formed over a glass substrate 410 with copper electrodes 430, 432, according to an example embodiment. The paint or …
FIG. 5 is a top view of a GNP heater 500 formed on glass without copper electrodes, according to an example embodiment. The paint or ink is formed with GNP …
FIG. 6 is a top view of GNP heater 600 of two channels on Pyrex substrate 610, according to an example embodiment. The paint or ink is formed with GNP therein. …
FIG. 7, according to an example embodiment. The description set out herein illustrates the various embodiments of the invention and such description is not …
FIG. 8). In all examples, the sa me ra pi d r ise i n s ample 's t empe rat ure followe d by lat e ral s preading of he at on the surface was observe d. The …
FIG. 9 is a top view of a Ceramic t ile with painted GNP heater 900, according to an example embodiment. The GNP heater 900 is formed on a substrate 910 with …
FIG. 10 is a graph of a temperature profile of the GNP heater on a wood substrate of
Claims define the patent's legal scope. Independent claims stand alone; dependent claims (nested) narrow them. Click a claim to expand its dependents.
A heating device comprising; a substrate; a liquid including graphene nanomaterials applied to the substrate and allowed to dry to form at least one heating layer on the substrate; and a power supply electrically connected to the at least one heating layer on the substrate, the heating layer producing heat in the presence of power, the graphene nanoparticles in the heating layer dissipating the electricity in the heating layer in response to the application of power to the heating layer. Original
The heating device of claim 1 wherein the heating layer is comprised of a plurality of layers Original
The heating device of claim 1 further comprising; a first electrode coupled to the at least one heating layer on the substrate; and a second electrode coupled to the at least one heating layer on the substrate at a location remote from the first electrode. Original
The heating device of claim 1 wherein the power source is a DC (direct current) power source. Original
The heating device of claim 1 wherein the power source is an AC (alternating current) power source. Original
The heating device of claim 1 wherein the liquid including the graphene particles is a paint. Original
The heating device of claim 1 wherein the liquid including the graphene particles is an ink capable of being printed onto the substrate. Original
The heating device of claim 1 wherein the graphene nanomaterials include graphene nanoplatelets. Original
The heating device of claim 1 wherein the graphene nanomaterials include graphene Oxide nano-platelets. Original
The heating device of claim 1 wherein the graphene nanomaterials include edge-functionalized graphene nano-platelets. Original
The heating device of claim 1 wherein the substrate is made of glass. Original
The heating device of claim 1 wherein the substrate is made of a dielectric material. Original
The heating device of claim 1 wherein the substrate is made of an electrically isolated material. Original
The heating device of claim 1 wherein the substrate is made of a polymer material. Original
The heating device of claim 1 further comprising a cover layer covering the heating layer. Original
A method of forming a heating device comprising: suspending an amount of graphene nanoplatelets in a liquid; sonicating the liquid; spreading the liquid and graphene nano-platelet mixture on a substrate as a film, the substrate including a first electrode and a second electrode spaced away from the first; and drying the liquid and graphene nano-platelet mixture; repeating the spreading and drying, until reaching predetermined final resistance between the first electrode and the second electrode. Original
Embodiments described in the patent, grouped by the materials and process steps they use.
4 materials1 process step
A GNP heater formed over a glass substrate with copper electrodes. Paint or ink containing GNP in a solvent or surfactant with a binder is sprayed or printed onto the glass substrate to form a thin film heating layer. Electrodes are added to the ends of the material and a power supply is connected.
3 materials1 process step
A GNP heater formed on glass substrate without separate copper electrodes. Paint or ink containing GNP in a solvent or surfactant with a binder is sprayed or printed onto the glass substrate. Power supply is connected at two remote locations on the heater material.
3 materials1 process step
A GNP heater formed on a wood substrate with copper electrodes, with a temperature profile shown in FIG. 10.
3 materials1 process step
A GNP heater formed on a cement block substrate with copper electrodes.
3 materials1 process step
A GNP heater with two channels formed on a Pyrex substrate.
2 materials1 process step
A ceramic tile with painted GNP heater.
Layer stacks claimed or described, ordered top of device to substrate.
graphene nanoplatelet surface heater
Materials described outside the worked examples.
graphene nanomaterials
liquid including graphene nanomaterials
Measurements and analyses referenced in the patent, with their drawing references.
FIG. 8). In all examples, the sa me ra pi d r ise i n s ample 's t empe rat ure followe d by lat e ral s preading of he at on the surface was observe d. The …
Performance values and ranges asserted in the specification or claims.
| Property | Value | Material |
|---|---|---|
final resistance between electrodes (process endpoint criterion) | — | — |
Related documents with shared materials, methods, properties, or citations.
graphene nanoplatelet ink
graphene oxide nano-platelets
edge-functionalized graphene nano-platelets
binder
solvent/surfactant
FIG. 10 is a graph of a temperature profile of the GNP heater on a wood substrate of
graphene nanoplatelet ink
graphene oxide nano-platelets
edge-functionalized graphene nano-platelets
binder
solvent/surfactant
FIG. 10 is a graph of a temperature profile of the GNP heater on a wood substrate of
graphene nanoplatelet ink
graphene oxide nano-platelets
edge-functionalized graphene nano-platelets
binder
solvent/surfactant
FIG. 10 is a graph of a temperature profile of the GNP heater on a wood substrate of
graphene nanoplatelet ink
graphene oxide nano-platelets
edge-functionalized graphene nano-platelets
binder
solvent/surfactant
FIG. 10 is a graph of a temperature profile of the GNP heater on a wood substrate of
