VARISTOR HAVING MULTILAYER COATING AND FABRICATION METHOD
20170221612 ยท 2017-08-03
Inventors
Cpc classification
H01C17/02
ELECTRICITY
International classification
Abstract
In one embodiment a varistor may include a ceramic body. The varistor may further comprise a multilayer coating disposed around the ceramic body. The multilayer coating may include an outer layer comprising an epoxy material. The multilayer coating may also include an inner layer that is adjacent the ceramic body and is disposed between the outer layer and the ceramic body. The inner layer may comprise a polymeric material that is composed of an acrylic component.
Claims
1. A varistor, comprising: a ceramic body; and a multilayer coating disposed around the ceramic body, the multilayer coating comprising: an outer layer comprising an epoxy material; and an inner layer being adjacent the ceramic body and disposed between the outer layer and the ceramic body, the inner layer comprising a polymeric material that is composed of an acrylic component.
2. The varistor of claim 1, wherein the ceramic body comprises a ZnO ceramic.
3. The varistor of claim 1, wherein the inner layer comprises a thickness of 3 m to 100 m.
4. The varistor of claim 1, wherein the inner layer is derived from an acrylic resin and amino resin.
5. The varistor of claim 4 wherein a ratio of acrylic resin to amino resin is 3:1 to 19:1.
6. The varistor of claim 5, wherein a ratio of acrylic resin to amino resin is 6:1.
7. The varistor of claim 1, wherein a thickness of the outer layer is 0.3 mm to 3 mm.
8. The varistor of claim 1, wherein the outer layer does not contact the ceramic body.
9. A method of forming a varistor, comprising: providing a ceramic body; applying a first layer on the ceramic body, the first layer comprising an acrylic component; and applying a second layer to the first layer, the second layer comprising an epoxy material.
10. The method of claim 9, wherein the ceramic body comprises a ZnO ceramic.
11. The method of claim 9, wherein the first layer comprises a thickness of 5 mm to 100 mm.
12. The method of claim 9, wherein the applying the first layer comprises: providing a mixture comprising mixing an acrylic resin, amino resin, xylol solvent, and curing agent; applying the mixture to the ceramic body; and curing the mixture to form a solid layer.
13. The method of claim 12, wherein a ratio of acrylic resin to amino resin is 3:1 to 19:1.
14. The method of claim 13, wherein a ratio of acrylic component to amino component is 6:1.
15. The method of claim 9, wherein the second layer does not contact the ceramic body.
16. The method of claim 9, wherein the applying the first layer comprises applying the first layer by brush coating, spray coating, dip coating, or curtain coating.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0022] The present invention will now be described more fully hereinafter with reference to the accompanying drawings, in which preferred embodiments of the invention are shown. This invention, however, may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. In the drawings, like numbers refer to like elements throughout.
[0023] In the following description and/or claims, the terms on, overlying, disposed on and over may be used in the following description and claims. On, overlying, disposed on and over may be used to indicate that two or more elements are in direct physical contact with each other. However, on,, overlying, disposed on, and over, may also mean that two or more elements are not in direct contact with each other. For example, over may mean that one element is above another element but not contact each other and may have another element or elements in between the two elements. Furthermore, the term and/or may mean and, it may mean or, it may mean exclusive-or, it may mean one, it may mean some, but not all, it may mean neither, and/or it may mean both, although the scope of claimed subject matter is not limited in this respect.
[0024] The present embodiments are generally related to metal oxide varistors (MOV) based upon zinc oxide materials. As is known, a varistor of this type comprises a ceramic body whose microstructure includes zinc oxide grains and may include various other components such as other metal oxides that are disposed within the ceramic microstructure. By the way of background, MOVs are primarily comprised of zinc oxide granules that are sintered together to form a disc where the zinc oxide granule, as a solid, is a highly conductive material, while the intergranular boundary formed of other oxides is highly resistive. Only at those points where zinc oxide granules meet does sintering produce a microvaristor which is comparable to symmetrical Zener diodes. The electrical behavior of a metal oxide varistor results from the number of microvaristors connected in series or in parallel. The sintered body of a MOV also explains its high electrical load capacity which permits high absorption of energy and thus, exceptionally high surge current handling capability.
[0025] The aforementioned materials that are employed to contact or encapsulate a ceramic body of the varistor are potential sources of device degradation, especially when operated at high temperature, high humidity, and/or high voltage conditions. In various embodiments, an improved varistor is provided that is resistant to degradation under conditions such as high temperature, high humidity or high voltage. In various embodiments, a MOV is provided that has a coating composed of a multilayer structure, and in particular a two layer structure that is composed of an outer layer that is composed of epoxy, and an inner layer that is composed of a lacquer. This multilayer coating may improve resistance to leakage and other electrical degradation as compared to conventional MOVs in which the ceramic is in direct contact with an epoxy coating.
[0026] Examples of a suitable lacquer layer to serve as an inner layer in a two-layer coating include a layer composed of a mixture of acrylic resin with other resin, such as amino resin. In particular embodiments, the lacquer layer may be composed of a so-called three-proofing lacquer that is moisture-proof, corrosion-proof, and mould-proof. One exemplary formulation for a lacquer to be used as an inner layer of a two-layer coating is: 40% acrylic resin, 7% amino resin, 35% xylol, 16% additional solvent, and 2% curing agent. After curing, solvents such as xylol and other solvents may be removed from the resulting lacquer layer. The acrylic resin and amino resin may react to form a lacquer layer that is composed of a polymeric material such as a thermoset polymer, where the polymer is composed of an acrylic component and an amino component. The ratio of acrylic component to amino component may be similar to or the same as the ratio of acrylic resin to amino resin used to form the lacquer. Accordingly, the ratio of acrylic component to amino component in the cured lacquer layer may be 40:7 or approximately 6:1. In other embodiments, the ratio of acrylic component to amino component may vary between 3:1 and 19:1. The embodiments are not limited in this context. For example, the present embodiments cover other ratios of acrylic:amine components in which the amine component is sufficient to provide a cross-linked thermoset polymeric material after curing.
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[0028] In one embodiment, in order to form a MOV, a lacquer layer is applied on a ceramic varistor body, which lacquer layer may be a three-proofing lacquer based upon acrylic resin and amine resin as described above. In some embodiments, the lacquer formulation may be a prepared commercial formulation that is applied at the time of coating of the varistor ceramic body, while in other embodiments, the lacquer formulation may be prepared at the time of coating of the varistor. In one example, the lacquer layer may be applied in a manner to coat exposed surfaces of the ceramic body so that subsequent layer(s) do not come into contact with the ceramic body. An advantage of a lacquer formulation such as the exemplary formulation disclosed above, is that the lacquer formulation has a low viscosity that can be applied by brush coating, spray coating, dip coating, curtain coating, or other method. Moreover, such a formulation may exhibit good adhesion. In addition, solidification into a solid lacquer layer may take place at a relatively rapid rate.
[0029] Subsequently, an epoxy layer may be applied to cover the lacquer layer. Examples of suitable epoxy for the epoxy layer include known epoxy materials that are used to form conventional MOV devices. The epoxy layer may encapsulate the lacquer-coated ceramic body so as to protect the ceramic body, such as by providing high dielectric strength.
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[0031] The inner layer 106 may be composed of a lacquer, such as a lacquer formed from an acrylic resin and amine resin as described above. In some embodiments, the thickness of the inner layer 106 may be in the range of 3 m 100 m, and in particular may be 5-50 m. The embodiments are not limited in this context. Accordingly, it may be apparent that the application of the inner layer does not substantially alter the overall thickness of a two-layer coating according to the present embodiments in comparison to a single layer conventional epoxy coating. In other words, in some instances, the inner layer 106 has a thickness which may range from about 0.4% to 10% of the thickness of the outer layer 108.
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[0034] An advantage provided by the MOV devices according to the present embodiments is the improved performance under various conditions, including improved performance under high temperature loading tests (150 C. with 1500 V DC applied, 125 C. with 970 V DC applied), bias humidity loading test (85 C., 85% RH, with applied voltage up to 1500 V DC), and a hi-pot test (>2500 V AC applied).
[0035] In
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[0037] In addition to the above advantages shown in the electrical property measurements of
[0038] It is to be noted that the above results of
[0039] In further embodiments, a two layer coating may be applied to protect other electronic components from degradation under high voltage, high temperature, or high humidity conditions. Such electronic components include Positive Coefficient Temperature Thermistors (PTC Thermistor), Negative Coefficient Temperature Thermistors (NTC Thermistor), Resistors, Capacitors, Filters, Ferroelectric and piezoelectric components, and so forth.
[0040] While the present invention has been disclosed with reference to certain embodiments, numerous modifications, alterations and changes to the described embodiments are possible without departing from the sphere and scope of the present invention, as defined in the appended claims. Accordingly, it is intended that the present invention not be limited to the described embodiments, but that it has the full scope defined by the language of the following claims, and equivalents thereof.