1. Field of the Invention
The present invention relates to a cable, and more particularly to a Universal Serial Bus (USB) Type-C cable.
2. Description of Related Arts
USB Type-C Cable and Connector Specification Revision 1.0, published on Aug. 11, 2014, illustrates a high speed cable comprising a plurality of first wires (for USB 2.0 signaling, SBU1, SBU2, CC, power return, and Vconn), an inner shielding layer enclosing the first wires, a plurality of coaxial wires (differential pairs) for high speed signaling arranged at an outer side of the inner shielding, and a power wire disposed between the coaxial wires.
U.S. Patent Application Publication No. 2016/0079714, published to Wu et al. on Mar. 17, 2016, discloses a cable comprising a plurality of coaxial wires having a similar structure as the high speed cable of the USB Type-C Cable Specification Revision 1.0. Low frequency cross talk between the first wires for SBU1, SBU2 and first wire for CC, and between the first wires for SBU1, SBU2 and the first wire for USB 2.0 need be reduced.
An improved USB Type-C cable is desired to offer advantages over the related art.
An object of the present invention is to provide a cable having improved wires arrangement.
To achieve the above-mentioned object, a Universal Serial Bus (USB) Type-C cable includes: a plurality of wires including a plurality of first wires and a plurality of second wires, the plurality of first wires including a power wire for transmitting a power signal and a plurality of coaxial wires for transmitting high speed signal, the plurality of second wires including at least one detective wire for transmitting detective signal, at least one power return wire for grounding, at least one twisted pair of wires for transmitting USB 2.0 signal, and at least one subsidiary wire for transmitting subsidiary signal; a hollow jacket made of insulative material and receiving the plurality of first wires and the plurality of second wires; and a metal shield layer coating around the twisted pair of wires; wherein the plurality of first wires are arranged along an inner wall of the hollow jacket in a circle and forms a cavity without a metal shield layer to receive the plurality of second wires, and the detective wire and the subsidiary wire are separated by the power return wire.
and
Reference will now be made in detail to a preferred embodiment of the present invention. Referring to
The wires 3 comprises a plurality of first wires 31 and second wires 32 which may be deemed as located in the outer ring zone (not labeled) and the inner center zone (not labeled) in the hollow jacket 2, respectively. The first wires 31 arranged along an inner wall of the jacket 2 in a circle and then these first wires 31 forming a cavity to receive the second wires 32. The diameter of the first wires 31 is greater than the second wires 32. In accord with cantilever beam theory, when bending the USB Type-C cable 100, the stress was concentrated on a surface of the USB Type-C cable 100. More specifically, one surface of the USB Type-C cable 100 is pressurized and opposite surface is tensile. In other words, the smaller the cable is, the less pressure the cable will be bear. The second wires 32 defining a small size and disposed at a central portion of the jacket 2, the first wires 31 defining a big size and disposed around the inner surface of the jacket 2. Thus, the USB Type-C cable 100 has high strength and flexural capacity.
The first wires 31 comprise a power wire 311 for transmitting a power signal and a plurality of coaxial wires 312 for transmitting high speed signal. The coaxial wires 312 comprise four pairs of differential signals. Each of the coaxial wire 312 comprises a third inner conductor 3121, an inner insulative layer 3122 coating around the third inner conductor 3121, an metal layer 3123 coating around the inner insulative layer 3122, a metal braid layer 3124 coating around the metal layer 3123, and a outer insulative layer 3125 coating around the metal braid layer 3124.
The second wires 32 includes two detective wires 321, two power return wires 322 for grounding, two twisted pair wires 323 for transmitting USB 2.0 signal, and two subsidiary wires 324 for transmitting the subsidiary signal. The two power return wires 322 setting distant to each other, one of the power return wire 322 includes a first/unexposed inner conductor 3221 and a first insulative layer 3222 coating around the first inner conductor 3221, the other power return wire 322 includes only one second/bare(exposed) inner conductor 3223. As existing techniques, the USB Type-C cable 100 used for connecting with a connector (not shown), said connector (not shown) includes a printed circuit board (not shown) and a metal shell (not shown) for receiving the printed circuit board (not shown). The first inner conductor 3221 is electrically connected to the printed circuit board (not shown), the second inner conductor 3223 is connected to the metal shell (not shown). One of the power return wire 322 is a bare wire and other is a conductor coating around an insulative layer. This project overcomes existing processing complexity of soldering two power return wire together to the printed circuit board (not shown). In this embodiment, the first inner conductor 3221 is regarded as an inner grounding piece while the second inner conductor 3223 is regarded as an outer grounding piece.
The USB Type-C cable 100 further includes a metal shield layer 325 coating around the two twisted pair wires 323 and a bare grounding wire 326, the two twisted pair wires 323 is electrically connected to the metal shield layer 325. The metal shield layer 325 can be made of aluminum material, the bare grounding wire 326 defines a flanging connected to the metal shield layer 325. That can reduce the crosstalk between the two twisted pair wires 323 and the two detective wires 321, the two twisted pair wires 323 and the two subsidiary wires 324.
The twisted pair wires 323 located opposite to one of the detective wire 321 in a radial direction. Said detective wire 321 is located between the two power return wires 322. The two subsidiary wires 324 are located at opposite sides of the metal shield layer 325 respectively. Each power return wire 322 is located between one subsidiary wire 324 and one detective wire 321 for separating the subsidiary wire 324 and the detective wire 321 to reduce the crosstalk between subsidiary wire 324 and the detective wire 321. Further, the two detective wires 321 are all set between the two power return wires 322, one of the detective wires 321 as an detective wire and the other as a power wire for driving a chip (not shown) of the USB Type-C cable 100. Of course, when the USB Type-C cable 100 has no chip in it, the detective wire 321 could be only one. The power wire 311, the detective wire 321, the subsidiary wire 324 and the twisted pair wire 323 are all single core wire, and all include a middle conductor and a insulative layer coating around said middle conductor. The conductor is made of copper.
Besides that, the present invention removes the aluminum foil layer between the first wires 31 and the second wires 32 which is shown in the standard specification cited in the submitted IDS (Information Disclosure Statement). Thus, said first wires 31 and the second wires 32 can directly contact to each other for reducing the volume of the USB Type-C cable 100, and also can let the cable become more flexible for operation. Differently, in another embodiment as shown in
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.
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Universal Serial Bus Type-C Cable and Connector Specification Revision 1.0 Aug. 11, 2014. |