1. Field of the Invention
The present invention relates to a plug connector assembly, and more particularly to a plug connector assembly having a thinner structure.
2. Description of Related Arts
U.S. Publication No. 2014/0335729, published on Nov. 13, 2014 to Little et al., discloses a plug connector assembly comprising a mating member, a cable connected with the mating member, and an outer shell enclosing a portion of the mating member and a portion of the cable. The outer shell has a constant thickness along a front end of the outer shell to a rear end of the outer shell. If the cable has a larger diameter, the thickness of the outer shell is increased accordingly.
Hence, an improved plug connector assembly is desired to offer advantages over the related art.
An object of the present invention is to provide a plug connector assembly having a thinner structure.
To achieve the above-mentioned object, a plug connector assembly adapted to plug into a receptacle in two reversed directions, comprises: a mating member; a cable electrically connected with the mating member; and an outer shell comprising a main body and a strain relief member disposed at a rear end of the main body and enclosing the cable, the main body comprising a front portion enclosing a rear end of the mating member, and a rear portion opposite to the front portion and connected with the strain relief member; wherein a thickness of the front portion is smaller than a thickness of the rear portion measured along a vertical direction and a thickness of the outer shell measured along the vertical direction is gradually increased in a constant slope along a front to rear direction.
According to the present invention, the outer shell of the plug connector assembly has a wedge shape. Therefore, if the cable has a larger diameter, the outer shell could have a thicker size in rear end to enclose the cable and have a thinner size in front end to enclose the mating member that make the outer shell a thinner structure.
Reference will now be made in detail to a preferred embodiment of the present invention.
Referring to
The mating member 10 comprises front mating end 101 for being inserted into the receptacle, and a rear mating end (port) 102 disposed at a rear end of the front mating end 101. The rear mating end 102 is thicker than the front mating end 101.
Referring to
The cable 30 comprises a plurality of wires 31. In this embodiment, the cable has an outer diameter of 5.6 mm. The plug connector assembly further comprises one or more spacers 80 to arrange the wires into first wires 310 for being soldered on the one side of the rear end 22 of the printed circuit board 20, and second wires 320 for being soldered on the other side of the rear end 22 of the printed circuit board 20. All of the first wires 310 are coaxial wires. Each of the first wires 310 comprises a center conductor 311, an inner insulative layer 312 enclosing the center conductor 311, a shielding layer 313 enclosing the inner insulative layer 312, and an outer insulative layer 314 enclosing the shielding layer 313. There are ten first wires 310. Two of first wires 310 have a diameter larger than the other eight first wires 310. The number of the first conductive pads 221 is equal to the number of the first wires 310. The two larger first wires 310 are used to transmit low speed signal, such as USB 2.0 signal. The other eight smaller first wires 310 are used to transmit high speed signal, such as USB 3.0 signal or USB 3.1 signal. Each of the center conductors 311 of the first wires 310 is soldered with corresponding one of the first conductive pads 221. All of the shielding layers 313 of the first wires 310 are soldered with the second conductive pad 222. The eight coaxial wires 310 are divided into four pairs, two pairs of them used for transmitting signal, the other two pairs of them used for receiving signal, The two pairs are arranged in a side of the two first wires 310 used to transmit low speed signal, and the other two pairs are arranged in an opposite side of the two first wires 310 used to transmit low speed signal. There is no need to design a grounding conductive pad disposed between the two pairs of the first conductive pads 221 which are soldered with the two pair of first wires used for transmitting signal or between the other two pairs of the first conductive pads 221 which are soldered with the other two pair of first wires used for receiving signal to reduce cross talk. Therefore, the printed circuit board could designed smaller. All of the central conductors 311 of the first wires 310 are soldered with the first conductive pads 221 at a same time, and all of the shielding layers 313 of the first wires 310 are soldered with the second conductive pad 222 at a same time.
The second wires 320 comprise one pair of coaxial wires and ten single core wires. Each of the coaxial wires comprises a center conductor 321, an inner insulative layer 322 enclosing the center conductor 321, a shielding layer 323 enclosing the inner insulative layer 322, and an outer insulative layer 324 enclosing the shielding layer 323. The pair of coaxial wires is used to transmit high speed signal, such as Display Port signal. Each of the single core wires comprises a conductor 325 and an insulative layer 326 enclosing the conductor 325. Two pairs of the single core wires 320 have larger outer diameters than the others and are used to transmit power signal. All of the conductors 325 of the second wires 320 are soldered on the third conductive pads 223, respectively. Both of the shielding layers 323 of the pair of coaxial wires are soldered on the fourth conductive pad 224. The number of the third conductive pads 223 is less than the number of the second wires 320. Two of the third conductive pads 223 have a width larger than the others. Conductors 325 of one pair of the two pairs of the single core wires having larger outer diameters are soldered on one of the two larger third conductive pads 223, and conductors 325 of the other pair thereof are soldered on the other larger third conductive pads 223,
Referring to
Referring to
The light emitting members 60 could be an LED or other suitable optical light source. Each of the light guide members 70 comprises body portion 71 for being mounted on the printed circuit board 20 and extending portion 72 extending outwardly. The body portion 71 defines a recess for receiving the light emitting member 60. The extending portion 72 has a free end surface 720 exposed to outer side and forming a display face or outer end face 721 for user to observe. The display face 721 has a slope equal to the outer shell 50 so that the display face 721 is generally flush with the outer shell. The two light emitting members 60 are arranged symmetrically along an imaginary horizontal middle plane of the outer shell 50. The two light guide members 70 are arranged symmetrically along the imaginary horizontal middle plane of the outer shell 50. It is noted that the light guiding member 70 further defines an inner abutment face 722 abutting against an inner face 512 of the outer shell 50 and angled with the outer end face 721.
It is to be understood, however, that even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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2015 1 0231809 | May 2015 | CN | national |
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20130210273 | Wu | Aug 2013 | A1 |
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20160172791 | Fan | Jun 2016 | A1 |
Number | Date | Country | |
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20160329664 A1 | Nov 2016 | US |