1. Field of the Invention
The present invention relates to a water resistant structure of a bundled flexible cable, and in particular to a cluster section included in the flexible circuit cable that comprises at least a lap section, to which a water resistant component is coupled.
2. The Related Arts
A flexible cable has been widely used in various electronic devices, such as a mobile phone, a notebook computer, a digital camera, a camcorder, and a translation device. The conventional structure of a flexible circuit cable arranges a plurality of electrical conductors covered with insulating jackets in a juxtaposing manner to form a flexible circuit cable, which is combined with electrical connectors or circuit soldering to realize transmission of electronic signals. A flexible circuit cable may also be coupled with other components, such as a resistor, a capacitor, an integrated circuit (IC), and an electromagnetic switch.
When a flexible circuit cable is used in an electronic device, no special concern about water resistance must be taken into account. However, for a portable electronic device designed for outdoor use, such as a mobile phone and a digital camera, water resistance or humidity protection becomes a concern. Particularly, in the field of mobile phones, a flexible cable is used to connect between a host device and a display screen of a mobile phone through for example connectors or soldering. If there is no effective water resistant structure between the flexible circuit cable and the host device or the display screen of the mobile phone, water or other liquids, or even contaminants, may flow or move along the flexible circuit cable into the interior of the host device or the display screen of the mobile phone. In the worst condition, shorting may be caused, leading to undesired damage.
Further, when an electronic device is made more and more compact with more and more functions integrated therein, it is getting more and more difficult to extend a flat cable that connects between two electronic components through a structure such as a hinge or a narrow passage. To overcome such a problem, a circuit cable in the form of flexible board, is folded or cut into multiple cable components in a cluster form to thereby form a bundled flexible cable in order to readily extend through a hinge or a narrow passage.
provide proper water resistance for general conventional flexible cable products, most common method in such conventional designs is arranging silicon gel, resin, or a rubber pad as a water resistant component between a shell of an electronic device and a flat cable, whereby water resistance can be effected through a packing relationship between the water resistant component and the shell of the electronic device and the flat cable. However, with respect to a bundled flexible circuit cable that comprises multiple clustered cable components, if a conventional packing rubber pad used as water resistant, water may be still allowed to flow through gaps among the clustered cable components of the bundled flexible circuit cable, and eventually entering the interiors of the host device or display screen of the mobile phone.
Thus, an objective of the present invention is to provide a water resistant for a bundled flexible circuit cable, whereby water, liquids, or contaminants are not allowed to move through gaps among clustered cable components of the bundled flexible circuit cable to enter a shell of an electronic device and resistance against water, liquids, and dust can be realized.
Another objective of the present invention is to provide a bundled flexible circuit cable that shows excellent properties of water resistance and flexing/bending resistance. Being enclosed by a tubular member or a wrapping member, the present invention is made easy in extending through a holed mechanism device, such as a hinge, and improving the resistance against flexing/bending.
To achieve the above objectives, the present invention provides a flexible circuit cable that comprises a flexible substrate forming a cluster section, which comprises a lap section, in which a plurality of flexible cable components that collectively form the cluster section substantially paralleling each other and stacking correspondingly up and down and then bonded and positioned by being applied with an adhesive material. The flexible cable components are enclosed by a water resistant component at the lap section, whereby water, liquids, and contaminants are prevented from moving through gaps present in the bundled flexible substrate to get into the shell or enclosure of an electronic device so as to realize protection against water, humidity, and dust.
A tubular member or a wrapping member is further provided to fit over a section of the cluster section other than the lap section in order to facilitate extension through a holed mechanism device, such as a hinge, and to improve resistance against flexing and bending. The adhesive material can be a material containing conductive particles therein. Further, the substrate of the flexible circuit cable can be of such a design that a shielding layer is included and in electrical connection with a grounding line of the flexible substrate or a main board of the shell, whereby the shielding layer enclosing each of the lapped flexible cable components in the water resistant structure is electrically connected to the water resistant component containing a conductive substance or the device enclosure to realize protection against electromagnetic interference.
In a preferred embodiment of the present invention, the water resistant component is made of a material that comprises an insulation material, or a material having electrical conductivity. In different applications, through selection of the materials, effects of insulating, electrical conductivity, or magnetism resistance may achieve. When the water resistant component is made of a material having electrical conductivity, the water resistant component may connect the metal shielding layer of the flexible circuit cable with a potentially used metal enclosure to realize improved protection against electromagnetic interference.
The present invention will be apparent to those skilled in the art by reading the following description of preferred embodiments of the present invention, with reference to the attached drawings, in which:
With reference to the drawings and in particular to
The flexible substrate 1 has a middle section or a selected section that is constructed to comprise at least one cluster section 13. The cluster section 13 is composed of a plurality of clustered flexible cable components 14 that is formed by slitting the flexible substrate 1 in the extension direction I. And, the flexible cable components 14 are bundled to form a bundled arrangement. A lap section 15 is formed at a selected location of the cluster section 13 or at a section that covers at least a portion of the cluster section 13. A water resistant component 21, 22 is mounted to the lap section 15. For example, in the embodiment illustrated, a water resistant component 21, 22 is mounted to each of two end portions of the cluster section 13 that are adjacent to the first end 11 and the second end 12.
In a practical application, the flexible substrate 1 can be used as an independent component to be mounted in an electronic device or can be set through a hinge structure 3 to connect two electronic components. An example is shown in
The water resistant component (taking the first water resistant component 21 as an example for description) can be structured to mate an opening 411 formed in the first component 41 of the electronic device 4 (see
The water resistant component can be made of an insulation material, such as silicon rubber, rubber, silicon gel, plastic, or resin. The water resistant component may alternatively be made of a conductive material, such as silicon rubber, rubber, silicon gel, plastic, and resin containing conductive particles (such as graphite, silver, and nickel) therein. Through selection made among these materials, conductivity and magnetism resistance can be selectively realized.
The adhesive material 5 can be an insulation material, such as hot pressure adhesive, pressure sensitive adhesive, silicon rubber, rubber, silicon gel, plastic, or resin. Alternatively, the adhesive material 5 can be a conductive material, such as silicon rubber, rubber, silicon gel, plastic, and resin containing conductive particles (such as graphite, silver, and nickel) therein. Through selection made among these materials, conductivity and magnetism resistance can be selectively realized.
The flexible cable components 14 of the flexible substrate can be simply of a form of substrate 141 (see
The bundled flexible circuit cable having the above descried structure comprises water resistant components 21, 22 and an adhesive material 5 and filled portions 61 are formed among the flexible cable components 14, whereby a closed water resistant structure is formed, which provides effective water protection.
After being combined with the water resistant components, the bundled flexible cable according to the present invention can be further provided with a helical wrapping member 7a (see
Alternatively, after being combined with the water resistant components, the bundled flexible cable according to the present invention can be further provided with a tubular member 8a (see
The arrangement of the wrapping member or the tubular member is aimed to improve flexing/bending resistance of the bundled flexible cable in the extension of the bundled flexible cable through a holed mechanism device, such as hinge.
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.
Number | Date | Country | Kind |
---|---|---|---|
99128681 A | Aug 2010 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
5641942 | Iriyama et al. | Jun 1997 | A |
6930252 | Ootsuki | Aug 2005 | B2 |
8053674 | Ooyabu et al. | Nov 2011 | B2 |
20020062975 | Matsunaga | May 2002 | A1 |
20030006523 | Suzuki | Jan 2003 | A1 |
20060042820 | Lin et al. | Mar 2006 | A1 |
20090126993 | Nishimura et al. | May 2009 | A1 |
20130126232 | Sakuma | May 2013 | A1 |
Number | Date | Country |
---|---|---|
1744382 | Mar 2006 | CN |
101681694 | Mar 2010 | CN |
10-2010-0007960 | Jan 2010 | KR |
Entry |
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Communication From Chinese Patent Office Dated Sep. 14, 2012. |
Communication From Korean Patent Office Dated Sep. 12, 2012. |
Number | Date | Country | |
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20120048597 A1 | Mar 2012 | US |