Capacitive temperature sensing for electrical conductor
US-10458860-B2 · Oct 29, 2019 · US
US2018053603A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2018053603-A1 |
| Application number | US-201615240655-A |
| Country | US |
| Kind code | A1 |
| Filing date | Aug 18, 2016 |
| Priority date | Aug 18, 2016 |
| Publication date | Feb 22, 2018 |
| Grant date | — |
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A variable capacitor device and a method of preparation thereof, wherein the variable capacitor device comprises a shape-memory polymer in its dielectric layer, wherein the shape-memory polymer determines the thickness of the dielectric layer, thereby causing the capacitance of the variable capacitor device to be tuned. Various embodiments of the variable capacitor device and the method of preparing said capacitor have also been provided.
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1 . A variable capacitor device, comprising: a dielectric layer comprising a shape-memory polymer; a first metal plate and a second metal plate, wherein the dielectric layer is sandwiched between the first and the second metal plates; wherein the shape-memory polymer has a first thickness at a first temperature under a first external compressive load, a second thickness at a second temperature under a second external compressive load, and the shape memory polymer having the second thickness is configured to convert to the shape-memory polymer having the first thickness when sequentially subjected to the first external compressive load and the second temperature, and wherein the first thickness is greater than the second thickness, the second temperature is greater than the first temperature, and the second external compressive load is greater than the first external compressive load. 2 . The variable capacitor device of claim 1 , which has a first capacitance at the first thickness and the first temperature, and a second capacitance at the second thickness and the second temperature, wherein a ratio of the second capacitance to the first capacitance is in the range of 2.5:1 to 1.5:1. 3 . The variable capacitor device of claim 1 , wherein the dielectric layer has a thickness in the range of 0.1-2 mm. 4 . The variable capacitor device of claim 1 , wherein the shape memory polymer has a glass transition temperature in the range 50-100° C. 5 . The variable capacitor device of claim I, wherein the shape-memory polymer is at least one selected from the group consisting of polyvinyl alcohol, polyurethane, polyvinylidene difluoride, polylactic acid, polycaprolactone, polyethylene, polyethylene glycol, polyether ether ketone, polyethyl methacrylate, polystyrene, polytetramethylene glycol, polyisoprene, polybutadiene, poly(styrene-butadiene), polynorbornene, poly(norbornene-cyclooctene), poly(tert-butyl acrylate-butyl acrylate), poly(ethyleneterephthalate)-block-poly(ethyleneoxide), polystyrene-block-poly(1,4-butadiene), poly(2-methyl-2-oxazoline)-block-poly(tetrahydrofurart)-block-poly(2-methyl-2-oxazoline), and epoxy. 6 . The variable capacitor device of claim 1 , wherein the dielectric layer further comprises at least one dopant selected from the group consisting of hydroxyapatite, polyhedral oligomeric silsesquioxane, titanium oxide nanoparticles, tin oxide nanoparticles, zinc oxide nanoparticles, zinc sulfide nanoparticles, cadmium oxide nanoparticles, graphene sheets, quantum dots, carbon nanotubes, and fullerenes. 7 . The variable capacitor device of claim 6 , wherein a volume fraction of said dopant is in the range of 0.005-0.1, with the volume fraction being relative to the total volume of the dielectric layer. 8 . The variable capacitor device of claim 6 , wherein a morphology of said dopant is at least one selected from the group consisting of a nanosphere, a nanosheet, a nanotube, a nanofiber, a nanowire, a nanodisk, a nanocube, a nanorod, a nanoring, and a nanostar. 9 . The variable capacitor device of claim 6 , wherein said dopant has an average particle size in the range of 1-100 nm. 10 . The variable capacitor device of claim 1 , wherein the shape memory polymer is a polyvinyl alcohol polymer which is crosslinked with a crosslinking agent having at least two aldehyde groups or at least two carboxyl groups. 11 . The variable capac device of claim 10 , wherein the crosslinking agent is glutaraldehyde. 12 . The variable capacitor device of claim wherein each of the first and the second metal plates comprises one metal selected from the group consisting of gold, platinum, silver, copper, aluminum, and titanium. 13 . A variable capacitor device, comprising: a dielectric layer comprising a triple shape-memory polymer; a first metal plate and a second metal plate, wherein the dielectric layer is sandwiched between the first and the second metal plates; wherein the triple shape-memory polymer has a first thickness at a first temperature under a first external compressive load, a second thickness at a second temperature under the first external compressive load, a third thickness at a third temperature under a second external compressive load, and the triple shape memory polymer having the third thickness is configured to convert to the triple shape-memory polymer having the second thickness when sequentially subjected to the first external compressive load and the second temperature, and the triple shape memory polymer having the second thickness is configured to convert to the triple shape-memory polymer having the first thickness when sequentially subjected to the first external compressive load and the third temperature, and wherein the first thickness is greater than the second thickness and the second thickness is greater than the third thickness, the third temperature is greater than the second temperature and the second temperature is greater than the first temperature, and the second external compressive load is greater than the first external compressive load. 14 . The variable capacitor device of claim 13 , which has a first capacitance at the first thickness and the first temperature, a second capacitance at the second thickness and the second temperature, and a third capacitance at the third thickness and the third temperature, wherein a ratio of the third capacitance to the second capacitance is in the range of 2.5:1 to 1.5:1, and a ratio of the second capacitance to the first capacitance is in the range of 2.5:1 to 1.5:1. 15 . The variable capacitor device of claim 13 , wherein the triple shape-memory polymer is a combination of two shape-memory polymers each is selected from the group consisting of polyvinyl alcohol, polyurethane, polyvinylidene difluoride, polylactic acid, polycaprolactone, polyethylene, polyethylene glycol, polyether ether ketone, polyethyl methacrylate, polystyrene, polytetramethylene glycol, poly-isoprene, polybutadiene, poly(styrene-butadiene), polynorbomene, poly(norbomene-cyclooctene), poly(tert-butyl acrylate-butyl acrylate), poly(ethyleneterephthalate)-block-poly(ethyleneoxide), polystyrene-block-poly(1,4-butadiene), poly(2-methyl-2-oxazolin)-block-poly(tetrahydrofuran)-block-poly(2-methyl-2-oxazoline), and epoxy. 16 . The variable capacitor device of claim 13 , wherein the triple shape-memory polymer is an interpenetrating polymer network of two crosslinked polymers having a glass transition temperature difference within the range of 50-200° C. 17 . A method of manufacturing a variable capacitor device, comprising; mixing polyvinyl alcohol and a crosslinking agent in water to form a polymer solution, wherein a concentration of the polyvinyl alcohol in the polymer solution is in the range of 0.01%-10% by weight, and wherein a concentration of the crosslinking agent in the polymer solution is in the range of 0.001 to 10.0 M; casting the polymer solution in a mold to form a polymer film having a thickness of no more than 2 mm; removing the polymer film from the mold, after a water content of the polymer film is reduced to less than 5wt %; and sandwiching the polymer film between a first and a second metal plate, wherein the first and the second metal plates are substantially similar. 18 . The method of claim 17 , further comprising: coating opposing side surfaces of the polymer film with a metal prior to the sandwiching. 19 . The method of claim 17 , further comprising: adding a dopant to the polymer solution prior to the casting, wherein the dopant is at least one selected from
using variation of distance between electrodes · CPC title
having a dielectric selected for the variation of its permittivity with applied temperature · CPC title
Solid dielectrics · CPC title
having a heterogeneous dielectric · CPC title
inorganic and synthetic material · CPC title
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