The present invention relates to an electrical connector, and particularly to the electrical connector equipped with the EMI (Electromagnetic Interference/RFI (Radio-Frequency Interference) absorber.
As shown in US Patent Application Publication No. 2020/0036122, the electrical connector includes a body enclosing a plurality of terminals wherein the body (1) is made of a high-magnet conductive wave absorbing material to link all grounding contacts (22) while the signal modules (S) with the corresponding signal/differential pair contacts (23) insert-molded within the plastic blocks (3) are inserted into the corresponding installation holes (14). Even though such an arrangement may provide circumferential EMI shielding with regard to each differential pair contacts (23) for improving electrical performance advantageously, the required relatively more expensive material of the so-called high-magnet conductive wave absorbing and a relatively more complicated manufacturing process disadvantageously.
Therefore, an improvement to the electrical connector with the desired electrical performance of EMI/RFI shielding while using less relatively expensive EMI absorbing material in an economic way.
To achieve the above object, an electrical connector includes an elongate insulative housing defining a central slot extending along a longitudinal direction, and two rows of contacts disposed by two sides of the central slot. The housing forms a front receiving cavity to receive the corresponding mating tongue of the complementary connector, and a rear receiving cavity to receive the corresponding insulators wherein each insulator is integrally formed with each row of contacts via insert-molding for completing the whole contact module. Each grounding contact is equipped with the corresponding EMI absorber before being insert-molded within the insulator so as to have the corresponding EMI absorber also integrally formed with the insulator. Each contact includes a front resilient contacting section and a rear soldering section with a horizontal connecting section therebetween wherein the corresponding EMI absorber is attached upon the connecting section for lowering the resonance and the radiation of the corresponding grounding contact.
Other advantages and novel features of the invention will become more apparent from the following detailed description of the present embodiment when taken in conjunction with the accompanying drawings.
The invention is to lower the resonance during high frequency transmission by equipping the grounding contacts with the EMI absorbers, respectively.
Referring to
The absorber 30 is adhered to the connecting section 22 of the grounding contact 20G via insert-molding initially, and all the contacts 20 in the same row are integrally formed with the insulator 40 via another insert-molding successively to form the contact subunit. The contact module includes the upper contact subunit 41 and a lower contact subunit 42 stacked with each other and commonly received within the rear receiving cavity 14 of the housing 10. The front end of the insulator 40 abuts against the stopper 15 between the mating slot 11 and the rear receiving cavity 14.
The connecting section 22 includes a retaining section 221 embedded within the insulator 40, and an oblique section 222. The retaining section 221 includes a horizontal portion 2211 and a bending portion 2212. The oblique section 222 is located between the contacting section 21 and the horizontal portion 2211. The absorber 30 is secured to the horizontal portion 2211. The contact 20 defines opposite faces 211 and 212. Notably, the absorber 30 is attached to one of the opposite side surface 211, 212. In this embodiment, the absorber 30 is attached to the upper side of the horizontal portion 2211 of the upper contact 20, and the absorber 30 is attached to the upper side of the horizontal portion 2211 of the lower contact 20, too. Corresponding, the insulator 40 forms an opening 42 opposite to the absorber 30 for heat dissipation. Understandably, in an alternate manufacturing way the insulator 40 may be integrally formed with the contacts 20 to form the basic structure of the corresponding contact subunit, and the absorbers 30 are successively applied thereto, either by assembling the preformed one or molding the one from the melted material.
The absorber 30 includes an enlarged head 301 to enhance retention between the absorber 30 and the insulator 40. The insulator 40 of the upper contact subunit 41 includes a vertical wall 401, and the lower contact subunit 42 includes a pair of positioning posts 402 for assembling. A pair of reinforcement tabs 51 are located by two sides of the mating slot 11. Each reinforcement tab 51 faces toward the mating slot 11 in the longitudinal direction, and forms an outwardly obliquely extending guiding regions 512 at a front end. A pair of board locks 52 are located beside the corresponding reinforcement tabs 51, respectively.
Referring to
Referring to
Notably, only the grounding contacts are associated with the corresponding EMI absorber 30a, 30b, 30c and 30d while the differential-pair signal contacts are not.
As shown in
Although the present invention has been described with reference to particular embodiments, it is not to be construed as being limited thereto. Various alterations and modifications can be made to the embodiments without in any way departing from the scope or spirit of the present invention as defined in the appended claims.
Number | Date | Country | Kind |
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201911346013.3 | Dec 2019 | CN | national |
Number | Name | Date | Kind |
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9391407 | Bucher | Jul 2016 | B1 |
10659857 | Hu | May 2020 | B1 |
11101611 | Winey | Aug 2021 | B2 |
Number | Date | Country |
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109659726 | Apr 2019 | CN |
109830820 | May 2019 | CN |
110459920 | Nov 2019 | CN |
Number | Date | Country | |
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20210194180 A1 | Jun 2021 | US |