1. Field of the Invention
The present invention relates to a flexible circuit board, especially to a flexible circuit board being able to avoid scratching of overlay objects on a flexible substrate.
2. Description of the Related Art
Owing to the coming of digital times, the dependency of people on the electronic products increases. To meet demands of current electronic products such as high speed, high performance and lightweight, flexible circuit boards have gradually been applied in various electronic products, such as notebook computer, mobile phone, digital camera, personal digital assistant, printer and CD-ROM, etc.
The flexible circuit board may be a FPC (Flexible Printed Circuit), a FFC (Flexible Flat Cable) or a thin film switch, which is not only used for electrical connection, but also for carrying chips or other electronic devices. For enabling the cooperation and communication between the chips and other electronic devices, as well as effectively protecting the fragile chips, various package technologies for chips are developed. For example, common wafer bonding technologies include wire bonding, flip-chip and tape automated bonding (TAB), etc. The tape automated bonding is used to bond a chip on a flexible circuit board. Since the flexible circuit board itself is bendable, making the subsequent assembly processes more flexible, and the application becomes more widespread.
It is a primary objective of the present invention to provide a flexible circuit board with a plurality of electrically conductive pads overlaid on a flexible substrate, in which front ends of the electrically conductive pads do not reach a front edge of the flexible substrate and are separated from a front edge of the flexible substrate by a distance, thus when an operator pushes the flexible circuit board into a connector terminal for assembly, the connector terminal may not scratch (or abrade) the electrically conductive pads.
For achieving the above objective, the present invention provides a flexible circuit board comprising a flexible substrate having an upper surface and a lower surface and a plurality of electrically conductive pads overlaid on the upper surface of the flexible substrate. Front ends of the electrically conductive pads do not reach a front edge of the flexible substrate and are separated from the front edge of the flexible substrate by a distance.
Preferably, the front end of the electrically conductive pad has an arc surface.
Preferably, the front end of the electrically conductive pad has a trapezoid surface.
Preferably, the front end of the electrically conductive pad is separated from the front edge of the flexible substrate by a distance ranging from 0.1˜0.5 mm.
Preferably, the electrically conductive pads are made of carbon ink or metal material.
Preferably, the flexible circuit board is a flexible printed circuit board, a flexible flat cable, or a thin film switch.
Although the present invention will be described in considerable detail with reference to certain preferred embodiments thereof, however prior to this description, it is should be understood that those skilled in the art can easily make changes to the present invention described herein and the same performance as the present invention is obtained. Therefore, it is to be understood that the following description is a general disclosure to those skilled in the art and is not restrictive of the present invention.
Referring to
In the preferred embodiment of the present flexible circuit board, the plurality of electrically conductive pads 2 are parallel aligned and overlaid on the upper surface of the flexible substrate 1. The front end 4 of the electrically conductive pad 2 has a trapezoid surface and is separated from the front edge 3 of the flexible substrate 1 by a distance indicated by a double arrow “a” in
Referring to
The plurality of electrically conductive pads 12 are parallel aligned and overlaid on the upper surface of the flexible substrate 1. The front end 14 of the electrically conductive pad 12 has an arc surface and is separated from the front edge 3 of the flexible substrate 1 by a distance indicated by a double arrow “a” in
Referring to
The plurality of electrically conductive pads 2, 12 are parallel aligned and overlaid on the upper surface of the flexible substrate 1, and the front end 4 of the electrically conductive pad 2 and the front end 14 of the electrically conductive pad 12 are respectively separated from the front edge 3 of the flexible substrate 1 by a distance indicated by a double arrow “a” in
Referring to
The advantages of the present invention are that the front end of the electrically conductive pad is separated from the front edge of the flexible substrate by a distance which provides the function of buffer for the connector terminal; additionally, the trapezoid or arc surfaces of the front end of the electrically conductive pad provides the function of guiding for the connector terminal. The connector terminal may not only be smoothly positioned on the electrically conductive pads, but also the scratching (or abrasion) of the electrically conductive solder pads is reduced.
Although the preferred embodiments of the present invention have been described in considerable detail, all kinds of alterations and changes can be made within the spirit and scope of the appended claims and the present invention is also not limited to the implementations of the preferred embodiments contained herein, such as the flexible circuit board may be a FPC (Flexible Printed Circuit), a FFC (Flexible Flat Cable), or a thin film switch.
Number | Date | Country | Kind |
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94218672 U | Oct 2005 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
2961629 | Kamm | Nov 1960 | A |
3723635 | Smith | Mar 1973 | A |
3876964 | Balaster et al. | Apr 1975 | A |
5037315 | Collier et al. | Aug 1991 | A |
5205738 | Anderson et al. | Apr 1993 | A |
5590465 | Santo | Jan 1997 | A |
6454573 | Hayashi et al. | Sep 2002 | B2 |
20050048810 | Howie et al. | Mar 2005 | A1 |
20060042816 | Sakurai et al. | Mar 2006 | A1 |
Number | Date | Country | |
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20070099483 A1 | May 2007 | US |