This application claims the priority benefit of Taiwan application serial no. 111116272, filed on Apr. 28, 2022. The entirety of each of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to an electrical connector.
Currently, it is very common for electronic devices to use USB cables for charging or data transmission. However, in the process of plugging and unplugging, the USB electrical connector is often collided, squeezed and damaged due to improper operation, such as improper force application or wrong docking angle.
Portable electronic devices are used in existing educational settings, such as allowing students to use tablet computers or laptops to conduct lessons. Therefore, a charging device having a plurality of fixed charging slots is correspondingly provided in a classroom or a specific location, so that these portable electronic devices can be centrally stored for charging when not in use.
However, due to the centralized arrangement of these fixed slots, each parallel charging slot does not have enough space for the user to operate, so that the portable electronic device does not have enough space for the user to hold. Therefore, when the portable electronic device is inserted into and pulled out of the fixed charging slots, the outer metal shell of the plug is likely to impact the plastic part of the slot, causing the above-mentioned damage.
The application provides an electrical connector, which improves the structural strength and impact resistance of an insulating body by means of a metal shielding member.
The electrical connector including an insulating body, a metal shielding member disposed in the insulating body, a plurality of terminals disposed in the insulating body, and an outer shell sheathed on the insulating body is provided. The metal shielding member has a leading edge, a pair of side edges bordered at two opposite sides of the leading edge, a protrusion located at the leading edge, and a plurality of openings. The leading and the side edges are protruded out of the insulating body. The openings are located between the leading and the side edges, and are concentrated at positions near the leading edge. Portions of the insulating body penetrate the openings.
Based on the above, the electrical connector enhances the structural strength of the metal shielding member disposed in the insulating body. In addition to protruding from the insulating body with the leading edge (and the protrusion) and the side edge of the metal shielding member, part of the insulating body is also made to penetrate the opening of the metal shielding member. In this way, the former is used to improve the impact resistance of the insulating body during the plugging and unplugging process of the electrical connector, and the latter can also improve the bonding strength between the insulating body, the metal shielding member and the terminal. Accordingly, the plug-and-pull strength of the relevant part when the electrical connector is used for docking with another electrical connector is improved, thereby improving the durability and service life of the electrical connector.
Referring to
Further, as shown in
As mentioned above, the insulating body 110 is divided into the tongue portion 112 and the base portion 111 along the Y-axis and the leading edge FE and the side edges S1 and S2 of the metal shielding member 130 are exposed from the tongue portion 112. As shown in
In the embodiment, the aforementioned portion 131a is the portion where the protrusion 131 protrudes from the insulating body 110, wherein the preferred size of the protrusion 131 along the leading edge FE (that is, the size of the protrusion 131 along the X-axis) is 1.0±0.1 mm. At the same time, the metal shielding member 130 further has a pair of notches 132 at the leading edge FE, abutting on opposite sides of the protrusion 131. Here, the notch 132 is used to facilitate the metal shielding member 130 to be cut off from the material strip during the stamping process of the plate. In other words, during the manufacturing process of the metal shielding member 130, the protrusion 131 is used as the connection point with the material tape, so the notches 132 provide the operating space required for punching and cutting the metal shielding member 130 from the material tape.
As shown in the aforementioned manufacturing process shown in
It is worth mentioning that, in addition to the above-mentioned requirements for combining the components P1 and P2, the metal shielding member 130 also has the following features to improve its structural strength. Details are as follows: the openings of the embodiment includes a pair of first openings 133, a pair of second openings 134 and a lateral opening 135. The pair of first openings 133 are located on opposite sides of the protrusion 131 along the X-axis. The pair of second openings 134 are located on opposite sides of the protrusion 134 along the X-axis. The distance of each of the first openings 133 relative to the protrusion 131 is smaller than the distance of each of the second openings 134 relative to the protrusion 131. And the pair of first openings 133 are located between the leading edge FE and the lateral opening 135. In the embodiment, each of the first openings 133 is a circular hole with a diameter of 0.35 mm. Each of the second openings 134 is a reaming hole with an area of 0.22 mm2, and the expansion direction of reaming hole is consistent with part of the side edges S1, S2.
In other words, the above-mentioned features about the openings (the first opening 133, the second opening 134, and the lateral opening 135) are to satisfy both the structural strength of the metal shielding member 130 and its bonding strength with the part A4. Therefore, except for the necessary (combined) openings, the metal shielding member 130 essentially excludes other unnecessary openings. Furthermore, in order to optimize the structural strength of the metal shielding member 130, the physical structure size of the metal shielding member 130 between the leading edge FE and the lateral opening 135 is further consistent with the physical structure size of the metal shielding member 130 between the side edges S1, S2 and the lateral opening 135 (equivalent to the minimum relative distance from the edge of the lateral opening 135 to the leading edge FE along the Y axis, and the minimum relative distance from the edge of the lateral opening 135 to the side edge S1 or side edge S2 along the X-axis), and is consistent with the physical structure size around the second opening 134. In particular, the metal shielding member 130 is formed by bending and punching metal plates of equal thickness. Here, the size of the physical structure around the second opening 134 is greater than or equal to twice the thickness of the metal shielding member 130. The size of the physical structure around the first opening 133 is greater than or equal to twice the thickness of the metal shielding member 130, so as to ensure that the structural strength of the metal shielding member 130 is not weakened by these openings. As shown in
On the other hand, referring to
To sum up, in the above-described embodiments of the application, the electrical connector enhances the structural strength of the metal shielding member disposed in the insulating body. In addition to protruding from the insulating body with the leading edge (and the protrusion) and the side edge of the metal shielding member, part of the insulating body is also made to penetrate the opening of the metal shielding member. In this way, the former is used to improve the impact resistance of the insulating body during the plugging and unplugging process of the electrical connector, and the latter can also improve the bonding strength between the insulating body, the metal shielding member and the terminal. Accordingly, the plug-and-pull strength of the relevant part when the electrical connector is used for docking with another electrical connector is improved, thereby improving the durability and service life of the electrical connector.
Number | Date | Country | Kind |
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111116272 | Apr 2022 | TW | national |