Laminated glass
US-2020154528-A1 · May 14, 2020 · US
US11322325B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11322325-B2 |
| Application number | US-201716467598-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 14, 2017 |
| Priority date | Dec 15, 2016 |
| Publication date | May 3, 2022 |
| Grant date | May 3, 2022 |
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Official abstract text for this publication.
A power relay assembly is provided. A power relay assembly according to an exemplary embodiment of the present invention comprises: a support plate having at least one electric element mounted on one surface thereof and including a plastic material having heat dissipation and insulation properties; and at least one bus bar electrically connected to the electric element and partially embedded in the support plate. Due to these features, since heat generated from the bus bar and the electric element is dissipated to the outside through the support plate, it is possible to prevent performance deterioration due to heat and breakage of electronic components.
Opening claim text (preview).
The invention claimed is: 1. A power relay assembly comprising: a supporting plate having at least one electric element mounted on one surface thereof and formed entirely of a plastic material having a high heat dissipation property and a high electrical insulation property; and at least one bus bar electrically connected to the at least one electric element and including a portion thereof buried in the supporting plate, wherein the at least one bus bar includes a first portion buried in and fixed by the supporting plate, a second portion configured to extend a predetermined length from an end portion of the first portion along a thickness direction of the supporting plate and buried in and fixed by the supporting plate, and a third portion configured to extend from the second portion to protrude toward an outer side of the supporting plate and fastened to the at least one electric element, wherein the first portion and the second portion of the at least one bus bar are not exposed to an outside of the supporting plate and are buried inside the supporting plate so that the at least one bus bar is fixed by the supporting plate, wherein heat transferred from the at least one electric element to the at least one bus bar is transferred to an inner side of the supporting plate in which the first and second portions of the at least one bus bar are buried, and then is discharged to the outside through the entire supporting plate, wherein the supporting plate further includes a plate-shaped metal member disposed to be spaced apart from a lower side of the portion of the at least one bus bar buried in the supporting plate at an interval, wherein the metal member is disposed to be completely buried inside the supporting plate, wherein the supporting plate is integrated with the first portion and the second portion of the at least one bus bar and the metal member buried therein through a resin-forming composition having a high heat dissipation property and a high electrical insulation property and formed by insert-molding, and wherein the first portion and the second portion of the at least one bus bar, and the metal member, are each, respectively, integrated with the supporting plate in a shape buried in the resin forming composition in a process of molding the supporting plate through insert-molding using the resin-forming composition. 2. The power relay assembly of claim 1 , wherein the at least one bus bar is disposed so that at least a portion of the portion buried in the supporting plate comes into contact with a portion of the supporting plate formed of the plastic material having a high heat dissipation property and a high electrical insulation property. 3. The power relay assembly of claim 1 , wherein the metal member is disposed on the supporting plate to have an interval of greater than or equal to 1 mm from the portion of the at least one bus bar buried in the supporting plate. 4. The power relay assembly of claim 1 , wherein a coating layer having a high electrical insulation property and a high heat dissipation property is formed on an exposed surface thereof. 5. The power relay assembly of claim 1 , wherein the at least one bus bar is formed of an aluminum material and includes a coating layer having a high electrical insulation property and a high heat dissipation property formed on a surface thereof. 6. The power relay assembly of claim 1 , comprising at least one cover configured to prevent exposure of the at least one bus bar to the outside, wherein the cover is formed of a plastic material having a high heat dissipation property and a high electrical insulation property.
Permanent coating compositions · CPC title
Thermoplastic polymer, e.g. auto-adhesive layer; Shaping of thermoplastic polymer · CPC title
High current adaptations, e.g. printed high current conductors or using auxiliary non-printed means; Fine and coarse circuit patterns on one circuit board (H05K1/0293 takes precedence) · CPC title
Busbars, i.e. thick metal bars mounted on the printed circuit board [PCB] as high-current conductors · CPC title
Ventilating; Cooling; Heating (for operating electrothermal relays H01H61/013) · CPC title
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