This application claims the priority benefit of China application serial no. 202111224076.9, filed on Oct. 21, 2021. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to an electrical connector, and more particularly to an electrical plug connector.
With the development of science and technology, a variety of connectors for different electronic products emerge as the times require, and the connector for cables is one of the most widely used and popular electrical connectors. Currently, the TYPE-C plug connector connected to the cable is widely used as a connector that may realize positive and negative insertion. However, the shielding spring member structure of the current TYPE-C plug connector is closer to the high-speed transmission terminal, which easily affects the high-frequency characteristics of the TYPE-C plug connector. Moreover, when the current TYPE-C plug connector is connected to another connector, the shielding spring member is easily squeezed and deformed, and has the problem of collapse.
The disclosure provides an electrical plug connector which has good high-frequency characteristics.
The electrical plug connector of the disclosure includes an insulating body, multiple terminals, and a shielding spring member. The terminals are disposed on the insulating body and include multiple high-speed terminals. Each of the terminals has a docking end to connect to another electrical receptacle connector along an insertion direction. The shielding spring member is partially stacked on the insulating body. The shielding spring member includes a sheet-like body, a hollow portion, two first shielding spring fingers, and a second shielding spring finger. One of the first shielding spring fingers, the sheet-like body, the other first shielding spring finger, and the second shielding spring finger are connected in sequence and in a ring-like shape to form the hollow portion. The hollow portion covers the docking ends of the terminals. The first shielding spring fingers correspond to the high-speed terminals along the insertion direction. The docking end of each of the high-speed terminals relative to an edge between the first shielding spring finger and the hollow portion has a first distance. The second shielding spring finger corresponds to the remaining terminals along the insertion direction. Each of the docking ends of the remaining terminals relative to an edge between the second shielding spring finger and the hollow portion has a second distance. The first distance is greater than the second distance.
The electrical plug connector of the disclosure includes an insulating body, a plurality of terminals, and a shielding spring member. The terminals disposed on the insulating body include a plurality of high-speed terminals, and each of the plurality of terminals has a docking end to connect to another electrical receptacle connector along an insertion direction. The shielding spring member partially stacked on the insulating body includes a sheet-like body, a hollow portion, two first shielding spring fingers, and a second shielding spring finger, wherein one of the first shielding spring fingers, the sheet-like body, the other first shielding spring finger, and the second shielding spring finger are connected sequentially to form the hollow portion. The hollow portion covers each of the docking ends of each of the plurality of terminals, and a first connecting portion of each of the first shielding spring fingers has a notch facing the hollow portion.
Based on the above, in the electrical plug connector of the disclosure, the distance between the shielding spring member and the high-speed terminals may be adjusted by the structural design of the shielding spring member, so that the high-speed terminals relative to the remaining terminals are farther away from the shielding spring member to prevent the high-speed terminals from being too close to the shielding spring member, thereby affecting the high-frequency characteristics of the electrical plug connector. Thus, compared with the structural relationship between the shielding spring member and the high-speed terminals in a conventional electrical plug connector, the shielding spring member of the electrical plug connector of the disclosure is farther away from the high-speed terminals and has good high-frequency characteristics.
The insulating body 110, the two sets of terminals 120, and the shielding spring members 130 are disposed on the inner shell 142 along the Z axial direction, and an accommodating space 144-1 of the outer shell 144 accommodates the insulating body 110, the terminals 120, the shielding spring members 130, and the inner shell 142.
It should be noted here that the high-speed terminals 122 and the remaining terminals 124 are arranged along an arrangement axial direction (i.e., along the Y axial direction), and the docking ends T1 of the high-speed terminals 122 and the docking ends T2 of the remaining terminals 124 are flush in the arrangement axial direction (i.e., the Y axial direction). In addition, ground terminals shielded by other components in
Referring to
In detail, please refer to
In other words, in the embodiment, the sheet-like body 131 is located on the XY plane, and the hollow portion 132 orthographically projected on the XY plane covers the docking ends T1 and T2 of the terminals 120 orthographically projected on the XY plane. In this way, the first distance D1 between the docking end T1 of each of the high-speed terminals 122 orthographically projected on the XY plane and the edge E1 between the first shielding spring finger 133 orthographically projected on the XY plane and the hollow portion 132 is greater than the second distance D2 between each of the docking ends T2 of the remaining terminals 124 orthographically projected on the XY plane and the edge E2 between the second shielding spring finger 134 orthographically projected on the XY plane and the hollow portion 132.
In more detail, please refer to
That is, as shown in
Therefore, in the embodiment, the electrical plug connector 100 may adjust the distance between the shielding spring member 130 and the high-speed terminal 122 by the structural design of the shielding spring member 130, so as to prevent the high-speed terminal 122 from being too close the shielding spring member 130, thereby affecting the high-frequency characteristics of the electrical plug connector 100. Thus, compared with the structural relationship between the shielding spring member and the high-speed terminals in the conventional electrical plug connector, the shielding spring member 130 of the electrical plug connector 100 of the embodiment is farther away from the high-speed terminals 122 and has good high-frequency characteristics.
In addition, please refer to
The shielding spring member 130 is further described below.
Referring to
In detail, in the embodiment, the sheet-like body 131 has two recesses 131-1 facing the hollow portion 132 and adjacent to the two first connecting portions 133-2, respectively, and the first connecting portion 133-2 of each of the first shielding spring fingers 133 has a notch 133-3 facing the hollow portion 132. The second elastic piece portion 134-1 of the second shielding spring finger 134 has a necking profile 134-3 near the second connecting portion 134-2, and the second shielding spring finger 134 further has two protruding portions 134-4 respectively extending from the second connecting portion 134-2 away from the hollow portion 132 and gradually moving away from the second elastic piece portion 134-1.
As mentioned above, the sheet-like body 131 and the two first shielding spring fingers 133 are designed to have the recesses 131-1 and the notches 133-3, so that the structures of the two first shielding spring fingers 133 are weakened, and the two first shielding spring fingers 133 have better elasticity. In addition, the second elastic piece portion 134-1 and the second connecting portion 134-2 of the second shielding spring finger 134 are designed to have the necking profile 134-3 and the two protruding portions 134-4, respectively, so that the structure of the second elastic piece portion 134-1 of the second shielding spring finger 134 is weakened, and the stress of the second connecting portion 134-2 can be dispersed in the two protruding portions 134-4, thereby enabling the two first shielding spring fingers 133 to have better elasticity and be less susceptible to deformation. In this way, the two first shielding spring fingers 133 and the second shielding spring finger 134 may be prevented from collapse caused by being squeezed and deformed when the electrical plug connector 100 is connected to another electrical receptacle connector (not shown). Therefore, the reliability of the electrical plug connector 100 may be improved, and the service life of the electrical plug connector 100 may be increased.
In summary, in the electrical plug connector of the disclosure, the distance between the shielding spring member and the high-speed terminals may be adjusted by the structural design of the shielding spring member, so that the high-speed terminals relative to the remaining terminals are farther away from the shielding spring member to prevent the high-speed terminals from being too close to the shielding spring member, thereby affecting the high-frequency characteristics of the electrical plug connector. Thus, compared with the structural relationship between the shielding spring member and the high-speed terminals in the conventional electrical plug connector, the shielding spring member of the electrical plug connector of the disclosure is farther away from the high-speed terminals and has good high-frequency characteristics. In addition, the shielding spring member also increases the size of the connection structure of the shielding spring finger relative to the sheet-like body, equivalent to increasing the force arm of the shielding spring finger, so that when the electrical plug connector is connected to another electrical receptacle connector, the collapse of the shielding spring finger may be avoided due to the improvement of the force arm.
Number | Date | Country | Kind |
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202111224076.9 | Oct 2021 | CN | national |