Energy harvesting system based on reverse electro wetting on dielectric
10910960 ยท 2021-02-02
Assignee
- Hyundai Motor Company (Seoul, KR)
- Kia Motors Corporation (Seoul, KR)
- Inha University Research and Business Foundation (Incheon, KR)
Inventors
- Gee Young SHIN (Suwon-si, KR)
- Hyun Il Ryu (Suwon-si, KR)
- Fuwad Ahmed (Incheon, KR)
- Tae Joon Jeon (Suwon-si, KR)
- Sun Min KIM (Seoul, KR)
Cpc classification
International classification
Abstract
An energy harvesting system based on reverse electro wetting on a dielectric includes: a dielectric material layer molded with a dielectric material in a panel shape and including an upper end and a lower end; and an electrode layer including a plurality of electrodes coupled to a lower surface of the dielectric material layer. In particular, the upper end of the dielectric material layer is located higher than the lower end and allows a liquid drop to flow from the upper end to the lower end, and the dielectric material layer generates dielectric polarization in the dielectric material layer and continuously varies a flow rate of the liquid drop between the upper end and the lower end of the dielectric material layer. The plurality of electrodes are disposed to be spaced apart from one another in a direction from the upper end to the lower end.
Claims
1. An energy harvesting system based on reverse electro wetting on a dielectric, the energy harvesting system comprising: a dielectric material layer molded with a dielectric material in a panel shape and including an upper end and a lower end, wherein the upper end is located higher than the lower end in a gravity direction and configured to allow a liquid drop to flow from the upper end to the lower end along an upper surface of the dielectric material layer, and the upper surface of the dielectric material layer is configured to generate dielectric polarization in the dielectric material layer by a flow of the liquid drop, and configured to continuously vary a flow rate of the liquid drop between the upper end and the lower end of the dielectric material layer; and an electrode layer including a plurality of electrodes coupled to a lower surface of the dielectric material layer, wherein electrodes of the plurality of electrodes are disposed to be spaced apart from one another in a direction from the upper end of the dielectric material layer to the lower end thereof and are polarized by the dielectric polarization of the dielectric material layer, wherein: the dielectric material layer includes a first portion inclined with a predetermined inclination angle and a second portion inclined with an inclination angle that is greater than the predetermined inclination angle of the first portion; and the first portion and the second portion are alternately disposed such that the dielectric material layer is continuously bent between the upper end and the lower end of the dielectric material layer.
2. The energy harvesting system of claim 1, further comprising: a cover layer formed of a hydrophobic substance in a panel shape and coupled to the upper surface of the dielectric material layer, wherein the liquid drop flows along an upper surface of the cover layer.
3. The energy harvesting system of claim 1, further comprising: a base substrate coupled to the lower surface of the dielectric material layer and the plurality of electrodes coupled to the lower surface of the dielectric material layer.
4. The energy harvesting system of claim 1, wherein the dielectric material layer includes bent portions disposed between the upper end and the lower end of the dielectric material layer so as to continuously vary the flow rate of the liquid drop.
5. The energy harvesting system of claim 1, wherein electrodes of the plurality of electrodes are coupled to a lower surface of the first portion and a lower surface of the second portion of the dielectric material layer.
6. The energy harvesting system of claim 5, wherein: an upper end and a lower end of a first electrode of the plurality of electrodes which is coupled to the first portion are disposed at positions aligned with an upper end and a lower end of the first portion; an upper end and a lower end of a second electrode of the plurality of electrodes which is coupled to the second portion are disposed at positions aligned with an upper end and a lower end of the second portion; and the upper ends and the lower ends of the first and second electrodes coupled to the first portion and the second portion are spaced apart from one another.
7. The energy harvesting system of claim 1, wherein electrodes of the plurality electrodes are coupled to be across a lower surface of the first portion and a lower surface of the second portion at bent points of the first portion and the second portion.
8. The energy harvesting system of claim 1, wherein bent points of the first and second portions are formed in a curved line shape.
9. The energy harvesting system of claim 8, wherein electrodes of the plurality of electrodes are coupled to a lower surface of the first portion and a lower surface of the second portion of the dielectric material layer.
10. The energy harvesting system of claim 8, wherein electrodes of the plurality electrodes are coupled to be across a lower surface of the first portion and a lower surface of the second portion at bent points of the first portion and the second portion.
11. The energy harvesting system of claim 1, wherein: each of the plurality of electrodes is configured with first electrodes and second electrodes; and the first electrodes and the second electrodes are alternately disposed on the lower surface of the dielectric material layer.
12. The energy harvesting system of claim 11, further comprising: a pair of suppliers provided at both ends of the electrode layer to allow a current to flow, wherein the first electrodes are connected to one supplier of the pair of suppliers provided at one side of the electrode layer, and the second electrodes are connected to the other supplier of the pair of suppliers provided at other side of the electrode layer.
Description
DRAWINGS
(1) In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
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(9) The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
(10) The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
(11)
(12) As shown in
(13) Even in the related art, an energy harvesting system based on reverse electro wetting on a dielectric converts mechanical energy into electric energy using liquid drop flow, but as shown in
(14) That is, as shown in
(15) The dielectric material layer 100 may be formed of at least one material among polymethyl methacrylate (PMMA), polyethylene (PE), polystyrene (PS), polyvinylpyrrolidone (PVP), poly(4-vinylpenol, PVP) or polyethersulfone (PES), poly (4-methoxyphenylacrylate) (PMPA), poly(phenylacrylate) (PPA), poly(2,2,2-triluoroethyl methacrylate) (PTFMA), cyanoethylpullulan (CYEPL), polyvinyl chloride (PVC), poly(parabanic acid) resin (PPA), poly(t-butylstyrene) (PTBS), polythienylenevinylene (PTV), polyvinylacetate (PVA), poly(vinyl alcohol) (PVA), poly(rmethylstyrene) (PAMS), poly(vinyl alcohol)-co-poly(vinyl acetate)-co-poly(itaconic acid) (PVAIA), polyolefin, polyacrylate, parylene-C, polyimide, octadecyltrichlorosilane (OTS), poly(triarylamine) (PITA), poly-3-hexylthiophene (P3HT), cross-linked poly-4-vinylphenol or cross-linked PVP, poly(perfluoroalkenylvinyl ether), nylon-6, n-octadecylphosphonic acid (ODPA), polytetrafluoroethylene (PTFE), silicone, polyurethane, latex, cellulose acetate, poly(hydroxy ethyl methacrylate) (PHEMA), polylactide (PLA), polyglycolide (PGA), and polyglycolide-co-lactide (PGLA).
(16) Further, the electrode 200 may be made of an inorganic electrode containing at least one among indium tin oxide (ITO), indium gallium oxide (IGO), chromium, aluminum, indium zinc oxide (IZO), indium gallium zinc oxide (IGZO), ZnO, ZnO.sub.2, and TiO.sub.2, or a metal electrode containing at least one among platinum, gold, silver, aluminum, iron, and copper, or an organic electrode containing at least one among polyethylenedioxythiophene (PEDOT), a carbon nanotube (CNT), graphene, polyacetylene, polythiophene (PT), Polypyrrole, polyparaphenylene (PPV), polyaniline, poly sulfur nitride, a stainless steel, an iron alloy containing chromium of 10% or more, a steel use stainless (SUS) 304, a SUS 316, a SUS 316L, a CoCr alloy, a Ti alloy, NiTi, and polyparaphenylenevinylene.
(17) Meanwhile, as shown in
(18) Thus, the cover layer 300 inhibits or prevents wetting of the energy harvesting system based on reverse electro wetting on a dielectric by the liquid drop W and allows the liquid drop W to pass smoothly along the upper surface of the energy harvesting system based on reverse electro wetting on a dielectric.
(19) In addition, the energy harvesting system based on reverse electro wetting on a dielectric further includes a base substrate 400 coupled to the lower surface of the dielectric material layer 100 and the plurality of electrodes 200. The dielectric material layer 100 and the plurality of electrodes 200 are supported by the base substrate 400, thereby becoming parts for securing stiffness of the energy harvesting system based on reverse electro wetting on a dielectric.
(20) As shown in
(21) Meanwhile, as shown in
(22) According to another form, as shown in
(23) Alternatively, as shown in
(24) Meanwhile, as shown in
(25) According to the present disclosure, there is provided an energy harvesting system based on reverse electro wetting on a dielectric, which converts mechanical energy into electric energy using a movement of a liquid drop, which is easily seen from the surroundings, without a separate power supply.
(26) In particular, there is an economic advantage in that energy can be supplied without extra cost by harvesting energy using a liquid drop, which can be easily seen from anywhere, such as a raindrop in contact with a building glass.
(27) Although specific forms of the present disclosure has been described and illustrated, those skilled in the art will appreciate that various alternations and modifications are possible without departing from the technical spirit of the present disclosure.