This application claims priority to Taiwan Application Serial Number 111137417, filed Sep. 30, 2022, which is herein incorporated by reference.
The present disclosure relates to an electrical connection assembly. More particularly, the present disclosure relates to an electrical connection assembly having a bridge connector.
To achieve electrical connection between different electronic devices, various types of electrical connectors have existed. The electrical connectors may include the type of a wire end connector and the type of a board end connector according to disposed positions, in which the wire end connector is located at one end of a cable and is used to adapt and couple to the board end connector, while the board end connector is disposed on a printed circuit board. With the continuous advancement and innovation of the technology of various electronic products, the performance of new electronic products has been greatly improved, and the types of electrical signals tend to be more diverse and require more bandwidth. Therefore, the demand for high-speed connectors is also increasing to apply to high-speed and high-frequency connections.
However, in order to meet the transmission of a large amount of data, the transmission bandwidth of the electrical connector needs to be increased, and when the transmission bandwidth is increased, the frequency of a transmitted electronic signal must be increased. The higher the combined height of mating electrical connectors, the longer the length of transmitted signal terminals, which results in crosstalk phenomenon when using high-frequency signals, thereby affecting the transmission of signals. In addition, for the installation environment of electrical connectors, two traditional mating connectors have the restriction of mating height.
One aspect of the present disclosure provides an electrical connection assembly.
According to some embodiments of the present disclosure, an electrical connection assembly includes two electrical connectors and a bridge connector. Each of the two electrical connectors includes a plurality of terminals and an insulation housing that accommodates the terminals. The bridge connector is located between the two electrical connectors and includes an insulation body, a conductive plastic, a plurality of signal terminals, and a plurality of ground terminals. The conductive plastic is covered by the insulation body, the ground terminals and the signal terminals of the bridge connector are arranged at intervals, and the ground terminals of the bridge connector are in electrical contact with the conductive plastic.
In some embodiments, the conductive plastic is I-shaped or -shaped.
In some embodiments, when two opposite sides of the insulation body are respectively coupled to the two electrical connectors so as to be surrounded by the two electrical connectors, the ground terminals of the bridge connector are located between the conductive plastic and the terminals of the two electrical connectors.
In some embodiments, the conductive plastic has a main portion and a plurality of finger portions protruding from the main portion, and the ground terminals of the bridge connector are respectively located on the finger portions.
In some embodiments, the finger portions are symmetrically disposed along two opposite sides of the main portion.
In some embodiments, there is a distance between the main portion and a side of each of the finger portions that is distal to the main portion.
In some embodiments, a lengthwise direction of the finger portions of the conductive plastic is the same as a lengthwise direction of the ground terminals of the bridge connector.
In some embodiments, a distance between two adjacent ones of the finger portions of the conductive plastic is greater than a distance between two adjacent ones of the signal terminals.
In some embodiments, each of the terminals of the two electrical connectors comprises a contact portion, a fixed portion, and a welding portion that are connected in sequence, and the contact portion extends outward from a surface facing away from the bridge connector. When two opposite sides of the insulation body are respectively coupled to the two electrical connectors so as to be surrounded by the two electrical connectors, the contact portion is in electrical contact with one of the ground terminals of the bridge connector.
In some embodiments, each of the two electrical connectors has an accommodating recess, the insulation body of the bridge connector has two protruding portions facing away from each other, the two protruding portions are respectively inserted into the two accommodating recesses of the two electrical connectors, and the ground terminals of the bridge connector extend from one of the two protruding portions to the other.
In some embodiments, the insulation body of the bridge connector has a block portion surrounding the two protruding portions. When the two protruding portions are configured to be respectively inserted into the two accommodating recesses, two opposite sides of the block portion respectively abut against the two electrical connectors.
In some embodiments, the signal terminals of the bridge connector are spaced apart from the conductive plastic.
Another aspect of the present disclosure provides an electrical connection assembly.
According to some embodiments of the present disclosure, an electrical connection assembly includes two electrical connectors and a bridge connector. Each of the two electrical connectors includes a plurality of terminals and an insulation housing that accommodates the terminals. The bridge connector is located between the two electrical connectors and includes an insulation body, a conductive plastic, a plurality of signal terminals, and a plurality of ground terminals. The conductive plastic is covered by the insulation body, the ground terminals and the signal terminals of the bridge connector are arranged at intervals. When two opposite sides of the insulation body are respectively coupled to the two electrical connectors so as to be surrounded by the two electrical connectors, the ground terminals of the bridge connector are located between the conductive plastic and the terminals of the two electrical connectors.
In some embodiments, the conductive plastic has a main portion and a plurality of finger portions protruding from the main portion, and the ground terminals of the bridge connector are respectively located on the finger portions.
In some embodiments, the signal terminals of the bridge connector are spaced apart from the conductive plastic.
In the aforementioned embodiments of the present disclosure, since the bridge connector of the electrical connection assembly has the conductive plastic, the signal terminals and the ground terminals, and the ground terminals of the bridge connector are in electrical contact with the conductive plastic, when two opposite sides of the insulation body of the bridge connector are respectively coupled to the two electrical connectors so as to be surrounded by the two electrical connectors, the ground terminals of the bridge connector can be respectively in electrical contact with the terminals of the two electrical connectors. Through such a configuration, when the bridge connector is coupled to the two electrical connectors, the ground terminals of the bridge connector can enable the terminals of the two electrical connectors to electrically conduct with the conductive plastic, thereby preventing the problem of crosstalk between differential signals caused by high-speed signal transmission. Therefore, the electrical connection assembly can meet the transmission of high-frequency signals and is beneficial to improve transmission bandwidth and increase electronic signal frequency, and is suitable for a large amount of data transmission requirements. In addition, the electrical connection assembly can change (i.e., increase) a mating height between two electrical connectors of different devices by changing (i.e., increasing) the height of the bridge connector, which not only benefits design flexibility but also improves transmission rate.
Aspects of the present disclosure are best understood from the following detailed description when read with the accompanying figures. It is noted that, in accordance with the standard practice in the industry, various features are not drawn to scale. In fact, the dimensions of the various features may be arbitrarily increased or reduced for clarity of discussion.
The following disclosure provides many different embodiments, or examples, for implementing different features of the provided subject matter. Specific examples of components and arrangements are described below to simplify the present disclosure. These are, of course, merely examples and are not intended to be limiting. In addition, the present disclosure may repeat reference numerals and/or letters in the various examples. This repetition is for the purpose of simplicity and clarity and does not in itself dictate a relationship between the various embodiments and/or configurations discussed.
Further, spatially relative terms, such as “beneath,” “below,” “lower,” “above,” “upper” and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. The spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. The apparatus may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein may likewise be interpreted accordingly.
After the two electrical connectors 200 are assembled to the bridge connector 100, the bridge connector 100 is located between the two electrical connectors 200. In this embodiment, the insulation housing 210 of the electrical connector 200 has the accommodating recess S configured to be inserted by the bridge connector 100. An insulation body 110 of the bridge connector 100 has two opposite protruding portions 112a and 112b and a block portion surrounding the two protruding portions 112a and 112b. For example, the two protruding portions 112a and 112b extend upward and downward respectively. The two protruding portions 112a and 112b are configured to be respectively inserted into the two accommodating recesses S of the two electrical connectors 200. In such a design, when the two protruding portions 112a and 112b of the insulation body 110 of the bridge connector 100 are respectively inserted into the two accommodating recesses S of the two electrical connectors 200, two opposite sides (e.g., top and bottom surfaces) of the block portion 114 may respectively abut against the two insulation housings 210 of the two electrical connectors 200.
In this embodiment, the conductive plastic 140 may be I-shaped or -shaped. The conductive plastic 140 has a main portion 142 and plural finger portions 144 protruding from the main portion 142. The ground terminals 130 of the bridge connector 100 are respectively located on the finger portions 144. The lengthwise direction of the finger portions 144 of the conductive plastic 140 is the same as the lengthwise direction of the ground terminals 130, such as a direction D.
In some embodiments, the insulation body 110 of
In the following description, the state about the ground terminals 130 and 230 and the signal terminals 120 and 220 after the electrical connectors 200 are coupled to the bridge connector 100 will be described.
The ground terminal 230 of the electrical connector 200 includes a contact portion 232, a fixed portion 234, and a welding portion 236 that are connected in sequence. The welding portion 236 extends outward from the surface of the insulation housing 210 facing away from the bridge connector 100. When two opposite sides of the insulation body 110 of the bridge connector 100 are respectively coupled to the two electrical connectors 200 so as to be surrounded by the two electrical connectors 200, the contact portion 232 of the ground terminal 230 of the electrical connector 200 is in electrical contact with the ground terminal 130 of the bridge connector 100. In this state, the ground terminals 130 of the bridge connector 100 are located between the finger portions 144 (may also see
When the bridge connector 100 is inserted into the accommodating recess S (see
It is to be noted that the connection relationships, the materials, and the advantages of the elements described above will not be repeated in the following description. In the following description, the ground terminals 130 and the conductive plastic 140 of the bridge connector 100 will be explained in detail.
-shaped. The ground terminals 130 on the finger portions 144 may be in electrical contact with the ground terminals 230 (may also see
Moreover, a distance between two adjacent finger portions 144 of the conductive plastic 140 is greater than a distance between two adjacent signal terminals 120. Such a configuration can ensure that the signal terminals 120 are not in contact with the finger portions 144 of the conductive plastic 140 or the ground terminals 130 in the X-axis direction to cause abnormal signals and structural interference.
The foregoing outlines features of several embodiments so that those skilled in the art may better understand the aspects of the present disclosure. Those skilled in the art should appreciate that they may readily use the present disclosure as a basis for designing or modifying other processes and structures for carrying out the same purposes and/or achieving the same advantages of the embodiments introduced herein. Those skilled in the art should also realize that such equivalent constructions do not depart from the spirit and scope of the present disclosure, and that they may make various changes, substitutions, and alterations herein without departing from the spirit and scope of the present disclosure.
Number | Date | Country | Kind |
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111137417 | Sep 2022 | TW | national |