1. Field of the Invention
The present invention relates a method for manufacturing a coaxial cable for use in transmitting high speed signals, and more particular to a method for manufacturing a flat coaxial cable.
2. The Prior Arts
A conventional coaxial cable includes a signal wire at a center thereof. The signal wire is enclosed by an insulation layer having a signal isolation layer at the outer periphery, and the outer periphery of the signal isolation layer is provided with an outer cover layer. The method for manufacturing the coaxial cable includes the steps of: stacking the layers, utilizing an extruding machine for extrusion and forming a coaxial cable with a round end surface, and manually peeling to expose the signal wire, the insulation layer and the signal isolation layer. This conventional manufacturing method is labor consuming.
However, the structure of the coaxial cable has a round end surface because of being extruded by the extruding machine. Thus, it is harder to be flatly installed on a board of an electronic product. Moreover, the coaxial cable has a predetermined diameter (thickness), so the housing of the electronic product has to be enlarged. Therefore, it is hard to minimize the size of the electronic product. Furthermore, it is hard to fasten the conventional coaxial cable on a board due to its round end surface.
After diligent research, the inventor of the present invention realizes that the structure of the coaxial cable can be altered by changing the method for manufacturing the coaxial cable.
A primary objective of the present invention is to provide a method for manufacturing a flat coaxial cable that solves the shortcoming of the conventional method needing a peeling operation. The flat coaxial cable manufactured by the method according to the present invention includes a signal wire, an insulation layer, a signal isolation layer having pre-reserved lengths exposed at two ends, thereby saving the labor for the peeling operation in order to expose the signal wire and insulation layer.
Another objective of the present invention is to provide a method for manufacturing a flat coaxial cable. The flat coaxial cable manufactured by the method according to the present invention is provided with a membrane-like thin shape thereby solving the problem of the housing of an electronic product being enlarged due to the round end surface of a conventional coaxial cable, and solving the problem of the cable having round end surface being hard to be fastened on a board.
In order to achieve the above-mentioned objectives, a method for manufacturing a flat coaxial cable according to the present invention includes the steps of:
(S1): providing two composite layers having a first A aperture and a second A aperture, a first B aperture and a second B aperture;
(S2): providing a signal wire, symmetrically adhering the two composite layers on a top and a bottom of the signal wire, and exposing the signal wire through the first A apertures, the second A apertures, the first B apertures, and the second B apertures;
(S3): forming two fill apertures, which penetrate through the two composite layers and are respectively disposed at two sides of the signal wire, and filling a silver paste within the fill apertures;
(S4): providing two outer cover layers having a first C aperture and a second C aperture, aligning the first C apertures with the first A apertures and the first B apertures, aligning the second C apertures with the second A apertures and the second B apertures, and respectively adhering the two outer cover layers on the two composite layers; and
(S5): cutting the adhered signal wire, composite layers and outer cover layers along a direction perpendicular to the signal wire; wherein the cutting lines passes through the first A apertures, the second A apertures, the first B apertures and the second B apertures of the composite layers, and the first C apertures and the second C apertures of the outer cover layers.
Each of the above-mentioned composite layers has an insulation layer and a signal isolation layer. The first A aperture and the second A aperture are formed on the insulation layer, and the first B aperture and the second B aperture are formed on the signal isolation layer. The first C aperture and a second C aperture are formed on the outer cover layer. The dimension of the apertures of the outer cover layer is larger than that of the apertures of the signal isolation layer, and the dimension of the apertures of the signal isolation layer is larger than that of the apertures of the insulation layer, so a step-like structure is formed in the apertures by the signal wire, the insulation layer, the signal isolation layer and the outer cover layer. Therefore, after being cut, a flat coaxial cable having the signal wire, the insulation layers and the signal isolation layers with pre-reserved lengths exposed at two ends is formed, and can be directly connected with terminals at the two ends for saving the labor required by the peeling operation.
The insulation layer, the signal isolation layer and the outer cover layer are made to a membrane-like shape, and mutually adhered for forming a cable which is light and thin, occupies less space and allows the design of the housing of an electronic product to be thinner. In addition, the flat coaxial cable provided by the present invention can be flatly installed on a board inside the electronic product. Thus, it is easier to be fastened compared to the conventional coaxial cable having the round end surface.
The present invention will be apparent to those skilled in the art by reading the following detailed description of a preferred embodiment thereof, with reference to the attached drawings, in which:
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
(S1): providing two composite layers 1 having a first A aperture 111, a second A aperture 112, a first B aperture 121 and a second B aperture 122;
(S2): providing a signal wire 2, symmetrically adhering the two composite layers 1 on a top and a bottom of the signal wire 2, and exposing the signal wire 2 through the first A apertures 111, the second A apertures 112, the first B apertures 121, and the second B apertures 122;
(S3): forming two fill apertures 13, which penetrate through the two composite layers 1 and are respectively disposed at two sides of the signal wire 2, and filling a silver paste within the fill apertures 13;
(S4): providing two outer cover layers 4 having a first C aperture 41 and a second C aperture 42, aligning the first C apertures 41 of the two outer cover layers 4 with the first A apertures 111 and the first B apertures 121 of the two composite layers 1, aligning the second C apertures 42 of the two composite layers 1 with the second A apertures 112 and the second B apertures 122 of the two composite layers 1, and respectively adhering the two outer cover layers 4 on the two composite layers 1; and
(S5): cutting the adhered signal wire 2, composite layers 1 and outer cover layers 4 along a direction perpendicular to the signal wire 2, wherein one of cutting lines passes through the first A apertures 111, the first B apertures 121 and the first C apertures 41, and another cutting line passes through the second A apertures 112, the second B apertures 122 and the second C apertures 42.
Referring to
The feature of the flat coaxial cable according to the present invention is that both ends of the flat coaxial cable have exposed step-like structures. Thus, the signal wire 2, the insulation layer 11, the signal isolation layer 12 can be directly connected to the terminal 5, thereby saving the conventional process of peeling a coaxial cable for the purpose of exposing each layer. Moreover, the materials for the insulation layer 11, the signal isolation layer 12 and the outer cover layer 4 are made to membranes, and the signal wire may have an oval end surface, so the finished product of flat coaxial cable according to the present invention is thinner than the conventional coaxial cable having a round end surface made through extrusion. Therefore, the flat coaxial cable according to the present invention occupies less space, and the housing of an electronic product can be designed to be thinner. In addition, the flat coaxial cable according to the present invention can be flatly installed on a board inside the electronic product, and therefore it is easier to be fastened compared to the conventional coaxial cable having the round end surface.
Although the present invention has been described with reference to the preferred embodiments thereof, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present invention which is intended to be defined by the appended claims.