ELECTRICAL TRANSIENT MATERIAL AND METHOD FOR MAKING SAME
20200185133 ยท 2020-06-11
Assignee
Inventors
Cpc classification
International classification
Abstract
Electrical transient materials are disclosed. Furthermore, methods to provide electrical transient materials are disclosed. In one implementation, an apparatus includes an electrical transient material; and conductive particles disposed in the electrical transient material, at least one or more of the conductive particles have an irregular shape.
Claims
1. An apparatus, comprising: an electrical transient material; and conductive particles disposed in the electrical transient material, at least one or more of the conductive particles have an irregular shape.
2. The apparatus according to claim 1, wherein the at least one or more of the conductive particles has an exterior surface that is flat or straight.
3. The apparatus according to claim 1, further comprising nonconductive particles disposed in the electrical transient material.
4. The apparatus according to claim 3, wherein at least one of the nonconductive particles is formed as a sphere or an oval shape.
5. The apparatus according to claim 1, wherein the electrical transient material comprises first and second opposite surfaces, and comprising an electrically conductive layer disposed over at least one of the first and second opposite surfaces.
6. The apparatus according to claim 1, wherein the electrical transient material is a voltage variable material (VVM).
7. A method, comprising: providing an electrical transient material; and disposing conductive particles in the electrical transient material, at least one or more of the conductive particles have an irregular shape.
8. The method according to claim 7, wherein the at least one or more of the conductive particles has an exterior surface that is flat or straight.
9. The method according to claim 7, further comprising disposing nonconductive particles in the electrical transient material.
10. The apparatus method to claim 9, wherein at least one of the nonconductive particles is formed as a sphere or an oval shape.
11. The apparatus method to claim 7, wherein the electrical transient material comprises first and second opposite surfaces, and forming an electrically conductive layer over at least one of the first and second opposite surfaces.
12. The apparatus method to claim 7, wherein the electrical transient material is a voltage variable material (VVM).
13. An apparatus, comprising: an electrical transient material; and conductive particles disposed in the electrical transient material, at least one or more of the conductive particles having an irregular shape, wherein a width of the electrical transient material is between 0.6-1 mil or 15.2-24.4 m, and the electrical transient material has a voltage trigger voltage density of 8.2-4.9, defined as voltage trigger/width in m, and wherein the voltage trigger is 125-130 V and the width is 15.2-24.4 m.
14. The apparatus according claim 13, wherein the electrical transient material has a clamping voltage density of 4.6-2.8, defined as clamping voltage/width in m, and wherein the clamping voltage is 70-90 V and the width is 15.2-24.4 m.
15. The apparatus according to claim 13, wherein the at least one or more of the conductive particles has an exterior surface that is flat or straight.
16. The apparatus according to claim 13, further comprising nonconductive particles disposed in the electrical transient material.
17. The apparatus according to claim 16, wherein at least one of the nonconductive particles is formed as a sphere or an oval, or at least one of the nonconductive particles has an irregular shape.
18. The apparatus according to claim 13, wherein the electrical transient material comprises first and second opposite surfaces, and comprising an electrically conductive layer disposed over at least one of the first and second opposite surfaces.
19. The apparatus according to claim 13, wherein the electrical transient material is a voltage variable material (VVM).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
[0012]
[0013]
DETAILED DESCRIPTION
[0014] Circuit protection devices and apparatuses may employ electrical transient material (e.g., voltage variable material (VVM)). In some implementations, the electrical transient material includes a binder material. The binder material may include therein a mixture of conductive and semi conductive particles. Furthermore, the binder material may include therein a mixture of insulative particles or nonconductive particles. In another example, the electrical transient material includes a binder material that comprises conductive and semi conductive particles. At least some of the conductive and semi conductive particles may be coated with an insulative oxide film, nitride, silicon, or another one or more inorganic insulating coating.
[0015] At least one implementation of the electrical transient material includes conductive particles that have an irregular shape. In one implementation, the electrical transient material includes conductive particles that have an irregular shape and nonconductive particles that have a shape with a boundary that is generally rounded. For example, the nonconductive particles may be circular, oval, or the like. In one implementation, the conductive particles that have an irregular shape have at least one boundary surface or outer surface that is not rounded. For example, the conductive particles that have an irregular shape may have at least one boundary surface, outer surface, or side that is a straight line. In another example, the conductive particles that have an irregular shape may have at least a plurality of boundary surfaces, outer surfaces, or sides that are a straight line.
[0016]
[0017] In
[0018]
[0019] The use of conductive particles 204 that have an irregular shape provides several advantages. Specifically, the conductive particles 204 having irregular shapes enhance conduction between the conductive particles 204, compared to conventional conductive particles that are spherical and/or ovalized. In particular, the flat or straight surface(s) of the conductive particles 204 enhance the tunneling effect through the base material 202. For example, in one implementation, the flat or straight surface(s) of the conductive particles 204 may allow the conductive particles 204 to be disposed in close proximity to one another within the base material 202. This close proximity arrangement of the conductive particles 204 may enhance the tunneling effect through the base material 202. The enhanced tunneling effect achieved by the conductive particles 204 having irregular shapes provides lower V.sub.T and V.sub.C, compared to V.sub.T and V.sub.C associated with conventional electrical transient materials. Electrical transient materials and VVM's trigger or change from a high impedance state to a low impedance state at the V.sub.T, which is less than a maximum surge voltage. At some time duration (e.g, in ns) after the V.sub.T, the electrical transient materials or VVM's reach a steady V.sub.C. In one implementation, a steady V.sub.C reached at 25 ns or around 25 ns. Eventually, the voltage due to an electrostatic discharge event will taper from the V.sub.C to zero.
[0020] In various implementations, the electrical transient material 102 exhibits a V.sub.T in the range of 125-130 V. Furthermore, in various implementations, the electrical transient material 102 exhibits a V.sub.C in the range of 70-90 V. In one implementation, the electrical transient material 102 has a width of between 0.6-1 mil or 15.2-24.4 m, and the electrical transient material has a voltage trigger voltage density of 8.2-4.9, defined as V.sub.T/width in m, and wherein the V.sub.T is 125-130 V and the width is 15.2-24.4 m. Correspondingly, the electrical transient material 102 has a clamping voltage density of 4.6-2.8, defined as V.sub.C/width in m, and wherein the V.sub.C is 70-90 V and the width is 15.2-24.4 m.
[0021]
[0022] At block 304, the electrical transient material is formed to a desired shape and thickness. In one embodiment, the electrical transient material is applied to a rigid surface, such as a conductive substrate or a plate. For example, the electrical transient material in paste form may be applied to the rigid surface. In another example, the electrical transient material in ink form may be sprayed, printed, spin coated or casted onto the rigid surface. In one example, electrical transient material in ink form may be applied to the rigid surface using an application blade. In one implementation, the electrical may be structured by way of compression using a press or roll press to achieve a desired thickness of the electrical transient material. In another implementation, the electrical transient material in ink form may be structured using an application blade (e.g., Doctor Blade) to achieve a desired thickness of the electrical transient material. In one or more embodiments, the process of forming the electrical transient material may include providing one or more electrically conductive surface over a surface or surfaces of the electrical transient material.
[0023] At block 306, the formed electrical transient material is allowed to harden by drying, if necessary as part of the process of forming the electrical transient material. In one implementation, the formed electrical transient material is hardened in an oven.
[0024] While electrical transient material and a method for manufacturing electrical transient material have been described with reference to certain embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted without departing from the spirit and scope of the claims of the application. Other modifications may be made to adapt a particular situation or material to the teachings disclosed above without departing from the scope of the claims. Therefore, the claims should not be construed as being limited to any one of the particular embodiments disclosed, but to any embodiments that fall within the scope of the claims.