Method for shielding and grounding a connector assembly from electromagnetic interference (EMI) using a male/female joint stamped shield and conductive seal

11450990 · 2022-09-20

Assignee

Inventors

Cpc classification

International classification

Abstract

A method for shielding and grounding a connector assembly from electromagnetic interference (EMI) including at least one of a step of directing the EMI to at least an electrically conducting seal, and a step of directing the EMI to at least a male/female joint stamped shield. The EMI, generated by, e.g., at least a battery cable assembly or the like, housed within at least a male connector assembly or a female connector assembly of the connector assembly, has a flow path that is conducted through at least the electrically conductive seal and the male/female joint stamped shield of the connector assembly.

Claims

1. A method for shielding and grounding a connector assembly from electromagnetic interference (EMI), comprising: (a) a step of providing at least a male terminal and a female terminal joined together and housed within a male/female joint stamped shield, said male/female joint stamped shield having a male end portion and a female end portion, said male/female joint stamped shield being larger in size compared to the size of each of said male end portion and said female end portion; (b) a step of directing said EMI to at least an electrically conducting seal; and (c) a step of directing said EMI from at least said electrically conducting seal to at least a male/female joint stamped shield for protecting at least said male terminal and said female terminal of said connector assembly that are joined together and housed within said male/female joint stamped shield from said EMI, said electrically conducting seal being in direct physical contact with said male/female joint stamped shield, wherein the step of directing said EMI to said male/female joint stamped shield includes the step of flaring outward the flow path of said EMI and thereafter traversing said EMI along said male/female joint stamped shield.

2. The method for shielding and grounding said connector assembly from said EMI according to claim 1, wherein said step of directing said EMI to said at least said male/female joint stamped shield comprises at least one of: (i) a step of directing said EMI to a male portion of said male/female joint stamped shield, and (ii) a step of directing said EMI to a female portion of said male/female joint stamped shield.

3. The method for shielding and grounding said connector assembly from said EMI according to claim 1, wherein said electrically conducting seal is a metal-infused or metal-filled material, and wherein said material is material selected from the group consisting of silicone and the like.

4. The method for shielding and grounding said connector assembly from said EMI according to claim 3, wherein said metal-infused or metal-filled material of said electrically conducting seal in comprised of a metal, and wherein said metal is a conductive metal selected from the group consisting of stainless steel and the like.

5. The method for shielding and grounding said connector assembly from said EMI according to claim 1, wherein said male/female joint stamped shield is made of metal.

6. A method for shielding and grounding a connector assembly from electromagnetic interference (EMI) using at least a conductive seal and a male/female joint stamped shield, comprising the steps of: providing at least a male terminal and a female terminal joined together and housed within said male/female joint stamped shield, said male/female joint stamped shield having a male end portion and a female end portion, said male/female joint stamped shield being larger in size compared to the size of each of said male end portion and said female end portion; directing said EMI, generated by at least a battery cable assembly within a male connector assembly of said connector assembly, into a male wire shielding; directing said EMI to a male electrically conducting seal; directing said EMI from said male electrically conducting seal to a male/female joint stamped shield for protecting at least said male terminal and said female terminal of said connector assembly that are joined together and housed within said male/female joint stamped shield from said EMI, said male electrically conducting seal being in direct physical contact with said male/female joint stamped shield, wherein the step of directing said EMI to said male/female joint stamped shield includes the step of flaring outward the flow path of said EMI and thereafter traversing said EMI along said male/female joint stamped shield; directing said EMI from said male/female joint stamped shield to a female electrically conducting seal for further protecting said connector assembly from said EMI, said female electrically conducting seal being in direct physical contact with said male/female joint stamped shield; and thereafter directing said EMI to a female wire shielding.

7. The method for shielding and grounding said connector assembly from said EMI according to claim 6, further comprising: directing said EMI, generated by at least said battery cable assembly within a female connector assembly of said connector assembly, into said female wire shielding; directing said EMI to said female electrically conducting seal; directing said EMI to said male/female joint stamped shield; directing said EMI to said male electrically conducting seal; and thereafter directing said EMI to said male wire shielding.

8. The method for shielding and grounding said connector assembly from said EMI according to claim 6, wherein said step of directing said EMI to said male electrically conducting seal includes the step of directing said EMI to a male wire shielding/ferrule interface; and wherein said step of directing said EMI to said female electrically conducting seal includes the step of directing said EMI to a female wire shielding/ferrule interface.

9. The method for shielding and grounding said connector assembly from said EMI according to claim 7, wherein said step of directing said EMI to said female electrically conducting seal includes the step of directing said EMI to a female wire shielding/ferrule interface; and wherein said step of directing said EMI to said male electrically conducting seal includes the step of directing said EMI to a male wire shielding/ferrule interface.

10. The method for shielding and grounding said connector assembly from said EMI according to claim 6, wherein at least one of said male electrically conducting seal and said female electrically conducting seal is a metal-infused or metal-filled material, and wherein said material is material selected from the group consisting of silicone and the like.

11. The method for shielding and grounding said connector assembly from said EMI according to claim 10, wherein said metal-infused or metal-filled material of at least one of said male electrically conducting seal, and said female electrically conducting seal is comprised of metal, and wherein said metal is a conductive metal selected from the group consisting of stainless steel and the like.

12. The method for shielding and grounding said connector assembly from said EMI according to claim 6, wherein said male/female joint stamped shield is made of metal.

13. A method for shielding and grounding a connector assembly from electromagnetic interference (EMI), comprising: (a) a step of providing at least a male terminal and a female terminal joined together and housed within a male/female joint stamped shield, said male/female joint stamped shield being larger in size compared to the size of each of said male end portion and said female end portion, (b) a step of directing said EMI to at least a male/female joint stamped shield for protecting at least said male terminal and said female terminal of said connector assembly that are joined together and housed within said male/female joint stamped shield from said EMI, wherein said step of directing said EMI to said male/female joint stamped shield includes the step of flaring outward the flow path of said EMI and thereafter traversing said EMI along said male/female joint stamped shield; and (c) a step of directing said EMI from at least said male/female joint stamped shield to at least an electrically conducting seal for further protecting said connector assembly from said EMI, said electrically conducting seal being in direct physical contact with said male/female joint stamped shield.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) FIG. 1 is a conventional connector assembly having a male connector assembly and a female connector assembly, which uses a stamped shield.

(2) FIG. 2 shows an EMI path in the conventional connector assembly, which uses the stamped shield for EMI containment.

(3) FIG. 3 is a flowchart of at least a flow path of the EMI flowing through the conventional connector assembly.

(4) FIG. 4 is a perspective view of the male/female joint stamped shield showing the male portion and the female portion thereof.

(5) FIG. 5 is a structural arrangement of a connector assembly having a male connector and a female connector, which illustrates the shielding and grounding of a connector assembly from the EMI using at least the male conductive seal, the male/female joint stamped shield, and the female conductive seal.

(6) FIG. 6 shows a shielding and grounding EMI path of this invention in the connector assembly of FIG. 4, which uses at least the male conductive seal, the male/female joint stamped shield, and the female conductive seal.

(7) FIG. 7 is a flowchart of at least a flow path of the EMI of this invention flowing through the connector assembly, with the use of at least the male conductive seal, the male/female joint stamped shied, and the female conductive seal, shown in FIGS. 5 and 6, for EMI shielding and grounding.

DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

(8) Illustrated in FIG. 4 and utilized in this invention is a male/female joint stamped shield 90, which includes a male portion 92 and a female portion 94. The male portion 92 and the female portion 94 have openings 96, 98, respectively.

(9) Illustrated in FIG. 5 is a first embodiment of the connector assembly of this invention, and is generally referred to as reference number 100. The connector assembly 100 of this invention is preferably a high voltage connector assembly having a male connector assembly 103 and a female connector assembly 105. The male connector assembly 103 houses a battery cable assembly 108; and on an opposite side of the connector assembly 100, the female connector assembly 105 houses another battery cable assembly 110. Surrounding the battery cable assembly 108 is an inner wire insulation 115, while the another battery cable assembly 110 is surrounded by another wire insulation 117.

(10) In the male connector assembly 103, a wire shielding 120 surrounds the inner wire insulation 115; and while in the female connector assembly 105, a wire shielding 123 surrounds the another inner wire insulation 117. Outside the wire shielding 120, near an end portion of the male connector assembly 103, is an outer wire insulation 130. Outside the wire shielding 123, near an end portion of the female connector assembly 105, is an outer wire insulation 132. The wire shielding 120 in the male connector assembly 103, in another portion thereof, may contact a ferrule 150 (i.e., a wire shielding 120/ferrule 150 interface). At the other end of the connector assembly 100, in the female connector assembly 105, the wire shielding 123, in another portion thereof, may contact a ferrule 155 (i.e., a wire shielding 123/ferrule 155 interface). The ferrules 150, 155 are preferably metallic, conductive material, or the like.

(11) As further illustrated in FIG. 5, an electrically conductive seal 160 surrounds the wire shielding 120 and the ferrule 150 (i.e., surrounds the wire shielding 120/ferrule 150 interface) of the male connector assembly 103. As also shown in FIG. 5, an electrically conductive seal 165 surrounds the wire shielding 123 and the ferrule 155 (i.e., surrounds the wire shielding 123 and the ferrule 155 (i.e., surround the wire shielding 123/ferrule 155 interface) of the female connector assembly 105. In the male connector assembly 103, the electrically conductive seal 160 is positioned between the wire shielding 120/ferrule 150 interface and a male/female joint stamped shield 170. In the female connector assembly 105, the electrically conductive seal 165 is positioned between the wire shielding 123/ferrule 155 interface and the male/female joint stamped shield 170.

(12) At an end portion of the male connector assembly 103, a plastic back cover 180 shields the electrically conductive seal 160, a male end portion 92 of the stamped shield 170, and an opening 96 thereof. At an end portion of the female connector assembly 105, a plastic back cover 185 shields the electrically conductive seal 165, a female end portion 94 of the stamped shield 170, and an opening 98 thereof.

(13) The interface between the male electrically conductive seal 160 and the female electrically conductive seal 165 is the male/female joint stamped shield 170 having the male end portion 92 and female end portion 94.

(14) Each of the electrically conductive seal 160 of the male connector assembly 103, and the electrically conductive seal 165 of the female connector assembly 105 is made of an electrically conductive metal-infused silicone, a conductive metal-filled silicone or the like, the metal being, e.g., stainless steel or the like.

(15) Generally contained within the male outer housing 170 and the female outer housing 175 are a male terminal position assurance (TPA) device 190, a female terminal position assurance (TPA) device 195, and a male terminal 200/female terminal 210 interface respectively extending from the battery cable assembly 108 of the male connector assembly 103 and the battery cable assembly 110 of the female connector assembly 105.

(16) The method for shielding and grounding the connector assembly 100 of this invention from electromagnetic interference (EMI) is hereinafter described and illustrated in FIGS. 6 and 7. The EMI flow paths 300, 320 (or 300′, 320′), although each shown as a single multiple dashed lines in FIG. 6 for illustration purposes only, travel all throughout the connector assembly 100 through the various elements of the connector assembly 100, including through at least the male electrically conducting seal 160, the male/female joint stamped shield 170, and the female electrically conducting seal 165, although not limited thereto.

(17) As illustrated in FIGS. 6 and 7, the EMI generated from, for example, the high voltage battery cable assembly 108 of the male connector assembly 103, has a flow path 300 that is conducted to the male wire shielding 120 and to the adjoining ferrule 150 (made of metal) through the male electrically conducting seal 160 (made of, e.g., stainless steel or the like fiber-filled or fiber-infused silicone or the like). The EMI is then further conducted through the male/female joint stamped shield 170, through the female electrically conducting seal 165, and through the adjoining ferrule 155 (made of metal), and then through the female wire shielding 123.

(18) In the another embodiment of the above-described invention, the ferrule 150 in the male wire shielding 120/ferrule 150 interface of the male connector assembly 103 and the ferrule 155 of the female wire shielding 123/ferrule 155 interface of the female connector assembly 105 may be deleted and are optional components. In such a case, the EMI flow path 300′ passes through the male wire shielding 120 and directly to the male electrically conducting seal 160. Also in such a case, the EMI flow path 300′ passes through the female electrically conducting seal 165 and directly to the female wire shielding 123.

(19) The method for shielding and grounding the connector assembly 100 of this invention from EMI is further described in relation to FIGS. 6 and 7. Here, the EMI generated from, for example, the high voltage battery cable assembly 110 or the like of the female connector assembly 105 has a flow path 320 that is conducted to the female wire shielding 123 and to the adjoining ferrule 155 (made of metal) through the female electrically conducting seal 165 (made of, e.g., stainless steel or the like fiber-filled or fiber-infused silicone or the like). The EMI is then further conducted through the male/female joint stamped shield 170. After the EMI passes through the male/female joint stamped shield 170, the EMI is further conducted through the male electrically conducting seal 160 of the male connector assembly 103, and through the adjoining ferrule 150, and ultimately to the male wire shielding 120.

(20) In another embodiment of the invention, the ferrule 155 of the female wire shielding 123/ferrule 155 interface of the female connector assembly 105, and the ferrule 150 of the male wire shielding 120/ferrule 150 interface of the male connector assembly 103 may be deleted and are optional components. In such a case, the EMI flow path 320 passes through the female wire shielding 123 and directly to the female electrically conducting seal 165 (see, EMI flow path 320′ in FIG. 7). Also in such a case, the EMI flow path 320 passes through the male electrically conducting seal 160 and directly to the male wire shielding 120 (see, EMI flow path 320′ in FIG. 7).

(21) Although the foregoing descriptions are directed to the preferred embodiments of the invention, it is noted that other variations and modifications will be apparent to those skilled in the art, and may be made without departing from the spirit or scope of the invention. Moreover, structures, structural arrangements, or features described in connection with one embodiment of the invention may be used in conjunction with other embodiments, even if not explicitly stated above.