1. Field of Invention
The present invention relates to a flexible flat cable, and more particularly to a flexible flat cable with a laminated construction including stacked first insulation layer, first shielding layer and second insulation layer sequentially wherein a first contact section and a second contact section are formed in one end portion of the flexible flat cable, and the flexible flat cable, the first contact section and the second contact section thereof are arranged in a dual-row manner.
2. Description of Prior Art
Conventionally, Taiwan Patent No. M413241 entitled “Electrical connector assembly having a printed circuit board with soldering holes interconnected to a plurality of contacts” (also published as China Patent No. CN202503124U and U.S. Pat. No. 8,512,071) disclosed a connector assembly. The connector assembly is provided with an insulating housing, a plurality of data and power terminals, a printed circuit board (PCB) and a flexible flat cable (FFC), wherein the data and power terminals inserted in the insulating housing, the PCB secured to the insulating housing, the FFC soldered on the PCB, the data and power terminals are electrically interconnected the FFC by the PCB. The provision of the unitary construction feature of FFC can save the production cost due to its eliminating cable management equipment and the step of cable managing processes. However, the conventional FFC is constructed by a single-row arrangement to form a larger width and there is a need to enhance the structural strength of FFC.
To solve the aforementioned problems, one objective of the present invention is to provide a flexible flat cable. The flexible flat cable is formed by sequentially stacking a first insulation layer, a first shielding layer and a second insulation layer. The first insulation layer covers a plurality of first conductors and the second insulation layer covers a plurality of second conductors. The first contact surface region of the first conductors is upwardly exposed from the first contact section and the second contact surface region of the second conductors is downwardly exposed from the second contact section.
Another objective of the present invention is to provide a flexible flat cable. A first insulation layer and a second insulation layer are formed by bending an insulation layer. A first shielding layer disposed between the first insulation layer and the second insulation layer so that the first insulation layer, the first shielding layer and the second insulation layer are sequentially stacked to form the flexible flat cable. The first insulation layer covers a plurality of first conductors and a second insulation layer covers a plurality of second conductors wherein the first contact surface region of the first conductors is upwardly exposed from the first contact section, and the second contact surface region of the second conductors is downwardly exposed from the second contact section.
In the present invention, the flexible flat cable comprises a first insulation layer, covering a plurality of first conductors and comprising a first contact section in a front end of the first insulation layer wherein the first contact section exposes a first contact surface region of the first conductors; a second insulation layer, covering a plurality of second conductors and comprising a second contact section in the front end of the second insulation layer wherein the second contact section exposes a second contact surface region of the second conductors; and a first shielding layer disposed between the first insulation layer and the second insulation layer, wherein the first contact surface region of the first conductors is upwardly exposed from the first contact section and the second contact surface region of the second conductors is downwardly exposed from the second contact section.
In one embodiment, the first insulation layer comprises another first contact section in a rear end of the first insulation layer, another first contact surface region of the first conductors is upwardly exposed from the first contact section in the rear end of the first insulation layer, the second insulation layer comprises another second contact section in the rear end of the second insulation layer, and a second contact surface region of the second conductors is downwardly exposed from the second contact section in the rear end of the second insulation layer.
In one embodiment, the first shielding layer extends to an in-between position of the first contact section and the second contact section to improve construction strength and shielding effect of the flexible flat cable.
In one embodiment, a first insulation supporting plate is disposed in an in-between position of the first contact section and the second contact section to improve the construction strength and shielding effect of the flexible flat cable.
In one embodiment, a second insulation supporting plate is disposed in the in-between position of the first contact section and the second contact section to improve the construction strength and shielding effect of the flexible flat cable.
In one embodiment, a second shielding layer is disposed between the first shielding layer and the second insulation layer, and material of the first shielding layer and the second shielding layer is selected from one group consisting of aluminum foil, polytetrafluoroethylene (Teflon), acetate cloth insulating tape and material with electromagnetic shielding effect.
In one embodiment, a third shielding layer further covers an outer surface of a main body section of the flexible flat cable and is material selecting from one group consisting of aluminum foil, polytetrafluoroethylene (Teflon), acetate cloth insulating tape and the material with electromagnetic shielding effect.
In one embodiment, either the first conductors and the second conductors are interlaced upward and downward or the first conductors and the second conductors are disposed correspondingly upward and downward.
In the present invention, the flexible flat cable comprises an insulation layer, for being bent to form a first insulation layer and a second insulation layer; a plurality of first conductors, for covering the first insulation layer wherein a first contact surface region of the first conductors is exposed from a first contact section of the first insulation layer; a plurality of second conductors, for covering the second insulation layer wherein a second contact surface region of the second conductors is exposed from the second contact section; and a first shielding layer disposed between the first insulation layer and the second insulation layer, wherein the first contact surface region of the first conductors is upwardly exposed from the first contact section and the second contact surface region of the second conductors is downwardly exposed from the second contact section.
In one embodiment, the first insulation layer comprises another first contact section in a rear end of the first insulation layer, another first contact surface region of the first conductors is upwardly exposed from the first contact section in the rear end of the first insulation layer, the second insulation layer comprises another second contact section in the rear end of the second insulation layer, and a second contact surface region of the second conductors is downwardly exposed from the second contact section in the rear end of the second insulation layer.
In one embodiment, the first shielding layer extends to an in-between position of the first contact section and the second contact section to improve a construction strength and shielding effect of the flexible flat cable.
In one embodiment, a first insulation supporting plate is disposed in an in-between position of the first contact section and the second contact section to improve the construction strength and shielding effect of the flexible flat cable.
In one embodiment, a second insulation supporting plate is disposed in the in-between position of the first contact section and the second contact section, and the first insulation supporting plate and the second insulation supporting plate are formed by bending an identical insulation supporting plate.
In one embodiment, a second shielding layer is disposed between the first shielding layer and the second insulation layer, the first shielding layer and the second shielding layer are formed by bending an identical shielding layer, and material of the first shielding layer and the second shielding layer is selected from one group consisting of aluminum foil, polytetrafluoroethylene (Teflon), acetate cloth insulating tape and material with electromagnetic shielding effect.
In one embodiment, a third shielding layer further covers an outer surface of a main body section of the flexible flat cable and is material selecting from one group consisting of aluminum foil, polytetrafluoroethylene (Teflon), acetate cloth insulating tape and the material with electromagnetic shielding effect.
In one embodiment, either the first conductors and the second conductors are interlaced upward and downward or the first conductors and the second conductors are disposed correspondingly upward and downward.
In the present invention, the flexible flat cable comprises a first insulation layer, covering a plurality of first conductors and comprising a first contact section in a front end of the first insulation layer wherein the first contact section exposes a first contact surface region of the first conductors; and a second insulation layer, covering a plurality of second conductors and comprising a second contact section in the front end of the second insulation layer, wherein the second contact section exposes a second contact surface region of the second conductors; wherein the first contact surface region of the first conductors is upwardly exposed from the first contact section, and the second contact surface region of the second conductors is downwardly exposed from the second contact section; and wherein a vertical distance between the first conductors and the second conductors is greater than twice a thickness of either the first conductor or the second conductor.
In one embodiment, the first insulation layer comprises another first contact section in a rear end of the first insulation layer, another first contact surface region of the first conductors is upwardly exposed from the first contact section in the rear end of the first insulation layer, the second insulation layer comprises another second contact section in the rear end of the second insulation layer, and a second contact surface region of the second conductors is downwardly exposed from the second contact section in the rear end of the second insulation layer.
In one embodiment, the first insulation layer is glued to the second insulation layer, and the first insulation layer and the second insulation layer are an individual insulation layer respectively.
In one embodiment, the first conductors and the second conductors are interlaced upward and downward or the first conductors and the second conductors are disposed correspondingly upward and downward.
The advantage of the present invention is that the flexible flat cable employs laminated construction in a dual-row manner to reduce the width of flexible flat cable as a whole. Furthermore, the first insulation layer, the first shielding layer and the second shielding layer are sequentially stacked to enhance the whole strength of the flexible flat cable. In addition, since the first contact surface region of the first conductors is upwardly exposed from the first contact section and the second contact surface region of the second conductors is downwardly exposed from the second contact section, it is beneficial that the flexible flat cable electrically connects to a connector.
The foregoing aspects and many of the attendant advantages of this invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description but rather than limiting of the present invention.
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Furthermore, the first insulation layer 10 includes another first contact section 11 in the rear end of the first insulation layer 10 wherein another first contact surface region 51 of the first conductors 50 is upwardly exposed from the first contact section 11 in the rear end of the first insulation layer 10. The second insulation layer 20 includes another second contact section 22 in the rear end of the second insulation layer 20 wherein a second contact surface region 62 of the second conductors 60 is downwardly exposed from the second contact section 22 in the rear end of the second insulation layer 20. In one embodiment, first shielding layer 31 and the second shielding layer 32 extend to the in-between position of the first contact section 11 and second contact section 22 to improve the construction strength and shielding effect of the flexible flat cable 1. In another embodiment, a first insulation supporting plate 41 and a second insulation supporting plate 42 are disposed in the in-between position of the first contact section 11 and second contact section 22 to improve the construction strength and shielding effect of the flexible flat cable 1. The material of first shielding layer 31 and second shielding layer 32 is selected from one group consisting of aluminum foil, polytetrafluoroethylene (Teflon), acetate cloth insulating tape and the material with electromagnetic shielding effect. A third shielding layer 33 further covers the outer surface of a main body section 12 and is the material selecting from one group consisting of aluminum foil, polytetrafluoroethylene (Teflon), acetate cloth insulating tape and the material with electromagnetic shielding effect.
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As is understood by a person skilled in the art, the foregoing preferred embodiments of the present invention are illustrative rather than limiting of the present invention. It is intended that they cover various modifications and similar arrangements be included within the spirit and scope of the appended claims, the scope of which should be accorded the broadest interpretation so as to encompass all such modifications and similar structure.
Number | Date | Country | Kind |
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103201813 | Jan 2014 | TW | national |