1. Field of the Invention
The invention relates to a flexible flat cable connector fixing structure, and more particularly, to a flexible flat cable connector fixing structure which can raise the pulling force between the flexible flat cable and the connector to raise the usage stability.
2. Description of the Prior Art
A flexible flat cable (FFC) is widely used in the electronic devices because it can be bended. Furthermore, a connector is often set on an end of the FFC to be plugged into the electronic device such that the FFC can be electrically connected to the electronic device. Please refer to
The above-mentioned connector has its disadvantages. For example, the FFC 100 can directly stretch out via the top trench 241 of the back cover 240. However, the FFC 100 is not supported by any components. If the FFC 100 is pulled by a pulling force, the connection portions of the FFC 100 are easily damaged or pulled apart such that the electrical connection or transmission may be ruined. Therefore, how to improve the current design is a new question in this industry.
Therefore, the applicants consider the above-mentioned disadvantages of the current design, and want to develop a FFC connector fixing structure having better fixing and supporting characteristics which can raise the capability of resisting pulling force. In the following disclosure, the present invention will be introduced.
It is therefore one of the primary objectives of the claimed invention to provide a flexible flat cable connector fixing structure, which can raise the connecting force and supporting force of FFC, and also raise the mutual pulling force of the connector and the FFC.
Furthermore, another objective of the claimed invention is to provide a flexible flat cable connector fixing structure, which can prevent the connection portion of the FFC from being damaged or pulled apart. This raises the stability of electrical connection and smoothes the signal transmission such that quality of the electrical connection and the signal transmission can be ensured.
According to an exemplary embodiment of the claimed invention, a flexible flat cable connector fixing structure is disclosed. The flexible flat cable connector fixing structure comprises: a flexible flat cable, a first connector, and a hold-down strip. The first connector is connected to an end of the flexible flat cable, and the first connector comprises a plurality of contacts, a first slot, and a first circuit board. The first slot comprises a plurality of passageways, for placing the contacts, and a back-end seam. The first circuit board is fixed with a back of the first slot, and the first circuit board comprises: a plurality of conducting portions, for being conductively fixed with the contacts, and a plurality of conducting parts, positioned on a front of the first circuit board, for being electrically connected to the flexible flat cable. The hold-down strip is fixed on the first circuit board. The flexible flat cable is conductively fixed with the conducting parts, stretches through the seam, and further stretches through the hold-down strip to be positioned by the hold-down strip.
According to an exemplary embodiment of the claimed invention, a flexible flat cable connector fixing structure is disclosed. The flexible flat cable connector fixing structure comprises: a flexible flat cable, a first connector, and a back cover. The first connector is connected to an end of the flexible flat cable, and the first connector comprises a plurality of contacts, a first slot, and a first circuit board. The first slot comprises a plurality of passageways, for placing the contacts. The first circuit board is fixed with a back of the first slot, and the first circuit board comprises: a plurality of conducting portions, for being conductively fixed with the contacts, and a plurality of conducting parts, positioned on a front of the first circuit board, for being electrically connected to the flexible flat cable. The back cover is fixed on the first slot, and the back cover comprises at least one trench hole, for allowing the flexible flat cable to stretch through such that the flexible flat cable is held down and supported by the back cover to raise a pulling force between the flexible flat cable and the first connector.
According to an exemplary embodiment of the claimed invention, a flexible flat cable connector fixing structure is disclosed. The flexible flat cable connector fixing structure comprises a flexible flat cable, a first connector, and a back cover. The first connector is connected to an end of the flexible flat cable, and the first connector comprises: a plurality of contacts, a first slot, and a first circuit board. The first slot comprises a plurality of passageways, for placing the contacts. The first circuit board is fixed with a back of the first slot, and the first circuit board comprises: a plurality of conducting portions, for being conductively fixed with the contacts, and a plurality of conducting parts, positioned on a front of the first circuit board, for being electrically connected to the flexible flat cable. The back cover is fixed on the first slot, for holding down and supporting flexible flat cable to raise a pulling force between the flexible flat cable and the first connector.
These and other objectives of the claimed invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
The upper insulating layer 12 and the lower insulating layer 13 cover the cables 11. The front ends of the upper insulating layer 12 and the lower insulating layer 13 are also bended as shown as the bended portion 132. In addition, an aluminum foil layer 131 can be positioned on the upper insulating layer 13, and is used to connect to ground.
The first connecting portion 20 is a connector. The connector 20 comprises a first slot 21, a plurality of contacts 22, a first circuit board 23. The first slot 21 comprises a plurality of passageways 211, a top plate 212 positioned on the top of the first slot 21, and a bottom plate 213 positioned on the bottom of the first slot 21. A top-plate seam 214 is formed on a position lower the center of the top plate 212, and is used for hitching a pulling portion 25. A bottom-plate seam 215 is formed on a position above the center of the bottom plate 213. The top-plate seam 214 and the bottom-plate seam 215 can be regarded as a back-end seam of the first slot 21. Besides, fixing blocks 216 are positioned on two sides of the first slot 21.
The contacts 22 are plugged into the passageways 211. Each of the contacts 22 comprises a conductive leg 22A. The first circuit board 23 is fixed with the back of the first slot 21. The first circuit board 23 comprises a plurality of conductive portions 231 for being conductively fixed (such as soldered) with the conductive legs 22A of the contacts 22. In addition, a plurality of conductive parts 232 are formed on the center of the front face of the first circuit board 23 (as shown in
The second connecting portion 30 comprises a second connector 32 and a second circuit board 31. The second connector 32 is positioned on the second circuit board 31 and comprises a plurality of contacts 321.
When they are assembled, the first cable end 111 of the flexible flat cable 10 is conductively fixed on the conductive parts 232 on the front face of the first circuit board 23. And then, the FFC 10 stretches out via the top-plate seam 214 (the upper side of the first circuit board 23) and goes down. In addition, the FFC 10 stretches out via the hold-down strip 24 and fixed by the hold-down strip 24 such that the second cable end 112 is conductively fixed with the contacts 321 of the second connector 32.
Under the above-mentioned configuration, when the FFC 10 is fixed with the first connector 20 (the first circuit board 23), the FFC 10 is fixed and supported by the hold-down strip 24 such that the pulling-force can be raised and the connection portion of the FFC can be prevented from being damaged or pulled apart. Therefore, it ensures the stability of electrical connection and smoothes the signal transmission.
Please refer to
When they are assembled, the first cable end 111 of the FFC 10 is conductively fixed with the first circuit board 23 and stretches out via the bottom-plate seam 215 (the bottom of the first circuit board 23) and then goes up. And then, the FFC 10 is fixed by the hold-down strip 24 and stretches out via the top of the hold-down strip 24, and then the FFC is conductively fixed with the second circuit board 31A.
Under the above-mentioned configuration, when the FFC 10 is fixed with the first connecting portion 20 (the first circuit board 23), the FFC 10 is similarly fixed and supported by the hold-down strip 24 such that the pulling-force can be raised and the connection portion of the FFC can be prevented from being damaged or pulled apart. Therefore, it ensures the stability of electrical connection and smoothes the signal transmission.
Please refer to
When they are assembled, the FFC 10 goes around the top (or the bottom) of the first circuit board 23 and goes down between the first circuit board 23 and the back cover 26B. And then, the FFC 10 stretches out via the first trench hole 263B of the back cover 26B and then conductively fixed with the second connector 32.
Under the above-mentioned configuration, when the FFC 10 is fixed with the first connecting portion 20 (the first circuit board 23), the FFC 10 is similarly fixed and supported by the back cover 26B such that the pulling-force can be raised and the connection portion of the FFC 10 can be prevented from being damaged or pulled apart. Therefore, it ensures the stability of electrical connection and smoothes the signal transmission.
Please refer to
When they are assembled, the FFC 10 goes around the top (or the bottom) of the first circuit board 23 and stretches out via the first trench hole 263B (or the second trench hole 264B) of the back cover 26B and then conductively fixed with the second connector 32.
Please refer to
When they are assembled, the FFC 10 goes around the top of the first circuit board 23 and stretches out via the first trench hole 263B of the back cover 26B and then stretches in via the second trench hole 264B. And then, the FFC 10 goes down and stretches out via the bottom concave trench 262B. And then, the FFC 10 is conductively fixed with the second connecting portion 30 (the second connector 32). That is, the FFC 10D stretches out and in via two trench holes (the first trench hole 263B and the second trench hole 264B) such that the fixing effect and the pulling force are improved.
Please refer to
Please refer to
When they are assembled, the FFC 10E surrounds the first circuit board 23 from the bottom of the first circuit board 23 (that is, the wrapping portion 15E surrounds the first circuit board 23) and then stretches out via the bottom-plate seam 215 (the bottom plate 213) of the first slot 21 and the bottom concave trench 262 of the back cover 26B. And then, the FFC 10E is conductively fixed with the second connecting portion 30A (the second circuit board 31A). This configuration also improves the fixing effect and the pulling force.
Please refer to
Those skilled in the art will readily observe that numerous modifications and alterations of the device may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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101220358 U | Oct 2012 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
3573704 | Tarver | Apr 1971 | A |
4072377 | Van de Loo et al. | Feb 1978 | A |
4871319 | Babow | Oct 1989 | A |
4948379 | Evans | Aug 1990 | A |
5955703 | Daly et al. | Sep 1999 | A |
6083039 | Finona | Jul 2000 | A |
6695641 | Lee | Feb 2004 | B1 |
6746255 | Lee et al. | Jun 2004 | B1 |
7086888 | Wu | Aug 2006 | B2 |
7140909 | Moritake | Nov 2006 | B2 |
7467969 | Liu et al. | Dec 2008 | B2 |
7484994 | Ko | Feb 2009 | B2 |
7497709 | Zhang | Mar 2009 | B1 |
7553191 | Su et al. | Jun 2009 | B2 |
7563108 | Wu | Jul 2009 | B1 |
7682162 | Yuan | Mar 2010 | B2 |
7704089 | Tseng | Apr 2010 | B2 |
7803009 | Su et al. | Sep 2010 | B2 |
7815459 | Chen | Oct 2010 | B2 |
7896688 | Sukegawa et al. | Mar 2011 | B2 |
8052430 | Wu | Nov 2011 | B2 |
8182284 | Kuo | May 2012 | B2 |
8430692 | Peng et al. | Apr 2013 | B2 |
8512071 | Tseng et al. | Aug 2013 | B2 |
8672689 | Tseng | Mar 2014 | B2 |
8696380 | Su et al. | Apr 2014 | B2 |
8740631 | Chen | Jun 2014 | B2 |
8758030 | Chen | Jun 2014 | B2 |
8845341 | Chen et al. | Sep 2014 | B2 |
9033744 | Chen | May 2015 | B2 |
20140113484 | Chen | Apr 2014 | A1 |
20150024633 | Chen | Jan 2015 | A1 |
Number | Date | Country | |
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20140113484 A1 | Apr 2014 | US |