Switch-containing cable
10211009 ยท 2019-02-19
Assignee
Inventors
Cpc classification
H01H13/703
ELECTRICITY
H01H13/705
ELECTRICITY
H01H2003/143
ELECTRICITY
International classification
H01H13/705
ELECTRICITY
H01H3/14
ELECTRICITY
Abstract
A switch-containing cable when bended does not conduct electricity, but conducts electricity when pressurized with fingers. The cable has belt-like first and second oppositely disposed conductor films including respective first and second belt-like base materials on inner surfaces of which respective first and conductors are disposed; an insulating spacer arranged to maintain a gap therebetween; and a belt-like sheath configured with the first and second conductor films sandwiching the spacer and containing a belt-like conductor film functioning as a switch member in a hollow cavity. The first conductor film constituting the belt-like conductor film is movably overlaid on the insulating spacer, and the hollow cavity of the sheath includes a gap allowing for lengthwise relative displacement of at least the first belt-like base material caused by bending the sheath with respect to the belt-like conductor film housed in the hollow cavity, thereby preventing the cable from conducting electricity when bended.
Claims
1. A switch-containing cable for earphones comprising: a belt-like first conductor film including a first belt-like base material on an inner surface of which a first conductor is disposed; a belt-like second conductor film disposed oppositely to the first conductor film through a gap and including a second belt-like base material on an inner surface of which a second conductor is likewise disposed; an insulating spacer arranged between the second conductor film and the first conductor film to maintain a gap therebetween; and a belt-like sheath having a hollow cavity extending in a length direction to a greater extent than either width or height directions, the belt-like first and second conductor films and the insulating spacer being held in the hollow cavity extending in the length direction, and the belt-like first and second conductor films function as a switch member in the hollow cavity when pressed together in the height direction; wherein lead wires for carrying audio signals are provided in lead wire insertion holes formed in widthwise two ends of the sheath extending in the length direction in parallel with the hollow cavity; wherein the belt-like first conductor film is not fixed to either the insulating spacer or the belt-like second conductor film in the hollow cavity where the belt-like first and second conductor films function as the switch member; and wherein the belt-like first conductor film is movably overlaid on the insulating spacer, and the hollow cavity of the sheath includes adequate margins, such that when the sheath is bended in the length direction, relative displacement of at least the belt-like first conductor film over the belt-like second conductor film is allowed within the hollow cavity in the length direction, avoiding inadvertent function of the switch member when the switch-containing cable for earphones is bended.
2. The switch-containing cable according to claim 1, wherein a gap between an inner wall of the hollow cavity of the sheath and an outer surface of one of the belt-like first and second conductor films is formed so as to be larger in a vicinity of a widthwise center of the belt-like conductor film than at widthwise ends of the belt-like conductor film.
3. The switch-containing cable according to claim 2, wherein swelled parts are formed in widthwise two ends of the sheath, a pair of grooves are formed between the swelled parts, a movable horizontally-long ring-shaped switching pressure member is disposed on an outer periphery of the sheath, and pressurizing protrusions for pressurizing the bottoms of the grooves by an external force are disposed in the switching pressure member.
4. The switch-containing cable according to claim 1, wherein swelled parts are formed in widthwise two ends of the sheath, a pair of grooves are formed between the swelled parts, a movable horizontally-long ring-shaped switching pressure member is disposed on an outer periphery of the sheath, and pressurizing protrusions for pressurizing bottoms of the grooves by an external force are disposed in the switching pressure member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
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(33) This switch-containing cable 1 is provided with a belt-like conductor film 2 functioning as a switch; and a flat, tubular sheath 3 covering the outer periphery of this conductor film.
(34) Under the illustrated condition, the belt-like conductor film 2 is composed of a first conductor film 4 located on the upper side of the cable, a second conductor film 5 disposed oppositely to this first conductor film 4 at a distance therefrom and located on the lower side of the cable, and an insulating spacer 6 arranged between these first and second conductor films 4 and 5.
(35) The first conductor film 4 is composed of a first belt-like base material 4a made of an insulating member, and a first conductor 4b disposed on an inner surface (corresponding to the lower surface under the illustrated condition) of this first belt-like base material 4a in a belt-like manner.
(36) The second conductor film 5 is composed of a second belt-like base material 5a also made of an insulating member, and a second conductor 5b disposed on an inner surface (corresponding to the upper surface under the illustrated condition) of this second belt-like base material 5a in a belt-like manner.
(37) The insulating spacer 6 arranged between these first and second conductor films 4 and 5 serves to retain a gap between the conductor films, so that the belt-like base materials 4a and 5a of the conductor films do not come into contact with each other.
(38) The flat, belt-like bendable sheath 3 is made from TPE (thermoplastic elastomer). This sheath 3 includes therein a substantially rectangular hollow cavity 3a through which the belt-like conductor film 2 composed of the first and second conductor films 4 and 5 and the insulating spacer 6 can be inserted. Note that the cross-sectional shape of the hollow cavity 3a is not limited to a rectangular shape. In addition, lead wire insertion holes 3b are preferably formed on both outer sides of the hollow cavity 3a, i.e., in the widthwise two ends of the sheath 3. This is because a signal transfer cable with a built-in switch can be easily obtained by inserting lead wires through these holes.
(39) The hollow cavity 3a is formed so as to be larger than the external shape of the belt-like conductor film 2, so that the belt-like conductor film 2 can be housed in the cavity with adequate margins. Note that the width of the hollow cavity 3a has to be kept to a minimum to the extent that the insulating spacer 6 can maintain a gap between the first and second belt-like base materials 4a and 5a.
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(41) The insulating spacer 6 has a predetermined thickness, and windows 6a having, for example, a rectangular shape are formed into a ladder-like shape at predetermined intervals along the length direction of the spacer.
(42) By way of example in the foregoing discussion, PET (polyethylene terephthalate) is used as the material of the first and second belt-like base materials 4a and 5a, and the film thickness and width of the base materials are preferably set to 100 m and 3 mm, respectively. Alternatively, a heretofore-known substrate material for FPCs, such as PI (polyimide), may be used.
(43) In the first and second conductors 4b and 5b, silver paste is printed on the inner surfaces of the first and second conductor films to form conductors across the entire lengthwise and widthwise ranges of intended portions, in order to provide switch functions. In addition, the connecting electrodes 4d and 5d are printed on ends of the inner surfaces of the first and second belt-like base materials 4a and 5a. Yet additionally, leads 4c and 5c are formed between these connecting electrodes 4d and 5d and the printed first and second conductors 4b and 5b to electrically connect the electrodes and the conductors.
(44) As the insulating spacer 6, a 50 m-thick polyester film is used. Alternatively, an insulator such as PI or paper, may be used. It is also possible to adopt solder resist or a coverlay used in commonly-known FPCs, in place of the insulating spacer 6 of this embodiment. An example of this alternative will be shown in Embodiment 3 to be discussed later.
(45) In addition, the belt-like conductor film 2 is provided with 1 mm-wide sash bar-like insulators 6c for connecting insulators 6b formed on both lengthwise sides of the conductor 5b at 3.5 mm intervals. As a result, substantially rectangular windows 6a are formed at 3.5 mm intervals. This process is intended to arrange windows capable of stably holding the insulators 6b between and on both widthwise sides of the first and second conductors 4b and 5b, and causing the conductors of the conductor films 4 and 5 to come into contact with each other when the belt-like conductor film 2 is pressed with fingers. The shape of the windows is not limited, as long as the same effects are available.
(46) Note that the insulating spacer 6 and the first and second conductor films 4 and 5 are set to the same width, so that the insulating spacer 6 is stably positioned between and on both widthwise sides of the first and second conductor films 4 and 5 under the condition that the insulating spacer and the conductor films are housed in the sheath 3.
(47) The hollow cavity 3a inside the sheath 3 is set to 3.5 mm in cross-sectional width0.8 mm in height, so as to have adequate margins in both width and height with respect to cross-sectional dimensions with the built-in insulating spacer 6 overlaid. Needless to say, respective members are set to optimum dimensions as appropriate, according to the size of the switch-containing cable 1.
(48) When the belt-like conductor film 2 is assembled, the insulating spacer 6 may be overlaid on the second conductor 5b of the second belt-like base material 5a as illustrated in
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(50) The assembled belt-like conductor film 2 is housed in the hollow cavity 3a of the sheath 3, as illustrated in
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(53) That is, in the belt-like conductor film 2 contained in the sheath 3 to function as a cable switch, at least two materials, i.e., the first and second belt-like base materials 4a and 5a including the conductors 4b and 5b on the inner surfaces are used and stacked oppositely to each other, with the insulating spacer 6 held therebetween, at such an space interval as not to come into contact with each other. At that time, the insulating spacer 6 for maintaining a specific space interval is disposed on both widthwise sides of a portion where the first and second conductors 4b and 5b of the belt-like conductor film 2 face each other. In addition, the conductor films 4 and 5 and the insulating spacer 6 are not fixed so as to be able to allow for a lengthwise relative displacement between the first conductor film 4 and the second conductor film 5 in at least a portion which functions as a cable switch, i.e., the portion where the first and second conductors 4b and 5b of the belt-like conductor film 2 face each other. If the cable is configured as described above, the first and second conductor films 4 and 5 take cylindrical lateral side shapes high in shape rigidity in the portion where the first and second conductors 4b and 5b of the belt-like conductor film 2 face each other, even if the cable is bended. Accordingly, a gap as large as the thickness of the insulating spacer 6 is secured between the respective conductors by the insulating spacer 6 present in portions corresponding to the upper and lower parts of each cylindrical lateral side. Thus, the conductors do not come into contact with each other to conduct electricity, and therefore, it is possible to prevent false operation due to bending.
(54) In addition, in order to prevent the first and second conductors 4b and 5b from coming into contact with each other when the cable is bended with the belt-like conductor film 2 contained in the sheath 3, the belt-like conductor film 2 is housed in the sheath 3 with adequate margins, so as to be able to allow for a lengthwise displacement in the vicinity of the portion where the conductors 4b and 5b face each other.
(55) When the switch-containing cable is bended by an external force under this condition, both the first conductor film 4 and the second conductor film 5 take a cylindrical lateral side shape in the bent portion, as described above. The gap between the conductor films 4 and 5 is secured, however, by the insulating spacer 6 present in portions located in the upper and lower parts of each cylindrical lateral side. In addition, the bend radius of the conductor film 4 on the inner side of bending is shorter than the bend radius of the conductor film 5 on the outer side of bending in the bent portion. Consequently, a lengthwise displacement as large as the radius difference arises between the first and second conductor films 4 and 5. That is, the first conductor film 4 positioned on the inner side of bending is displaced farther in a direction away from the bent portion than the second conductor film 5 positioned on the outer side of bending. Accordingly, the first conductor 4b and the second conductor 5b do not come into contact with each other to conduct electricity.
(56) Note that if the first and second conductor films 4 and 5 are fixed to the insulating spacer 6, as illustrated in
(57) In addition, under the condition that the side edges of the first and second conductor films 4 and 5 are fixed to the inner wall of the sheath between the two lateral portions of the belt-like conductor film 2 and the inner wall of the hollow cavity 3a opposed to the lateral portions, as illustrated in
(58) Accordingly, in the present invention, the inside dimensions of the hollow cavity 3a of the sheath 3 in the thickness direction thereof are set to large values with respect to the thickness of the belt-like conductor film 2 contained in the sheath 3, as described above, so that at least the occurrence of displacement in assumed bending is tolerated. That is, such a gap as being capable of stress-freely tolerating any wavy sections arising in portions other than the bent portion in case of displacement is provided in the thickness direction of the cable, in order to tolerate displacement within the sheath 3 under the condition that the conductor films 4 and 5 are fixed at ends thereof as in the present embodiment.
(59) More specifically, if ends of the conductor films 4 and 5 are not fixed as illustrated in
(60) If ends of the conductor films 4 and 5 are fixed as illustrated in
(61) Note that when the cable is bended, the sheath 3 itself always deforms toward a direction of switching operation even if the internal first and second conductor films 4 and 5 have high rigidity and a cylindrical shape and the conductors 4b and 5b can be kept in a non-contact state. This means that if the sheath 3 is high in the degree of deformation or thick and high in deformation pressure, the rigidity of the cylindrical lateral side shape of the first and second conductor films 4 and 5 may be exceeded, thus possibly making it no longer possible to maintain the gap between the conductors 4b and 5b. Accordingly, in order to prevent false operation, the rigidity of the cylindrical portion needs to be set so as not to underrun the deformation pressure of the sheath even if actual (or assumed) deformation occurs. As a method for doing so, the sheath 3 may be made soft and thin and the conductor base materials may be made thick and stiff. The abovementioned degree depends on a tradeoff among respective constituent elements, however. Accordingly, solutions to this part of discussion may be obtained by experiment and/or simulation using a finite element method or the like.
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(63) As one specific example, the height of the hollow cavity 3a of the sheath 3 is set to 0.8 mm at the ends of the first and second conductor films 4 and 5 and to 1.3 mm at the central portions thereof. According to these settings, a stroke for the first conductor 4b of the first conductor film 4 and the second conductor 5b of the second conductor film 5 to come into contact with each other increases at the time of pressurization. Thus, it is possible to configure a switch in which when the cable is pressed by a user with fingers, the user can readily recognize the feelings of switching.
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(68) The present embodiment is the same in the structure of the insulating spacer 6 as the first embodiment. When the insulating spacer 6 is overlaid on the second conductor film 5, the slit 5e is positioned in the central portion of a window 6a, and the second conductors 5b become exposed on both sides of the slit 5e. Thus, the first conductor 4b can be brought into contact with the second conductors 5b by press.
(69) As a matter of course, the first conductor 4b may alternatively be formed into a dual-partitioning structure having + and polarities.
(70) The present embodiment is the same in the rest of configuration and working effect as the first embodiment.
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(73) The present embodiment is the same in the rest of configuration as the second embodiment. Such a switch-containing cable 1 as described above, even if bended, does not cause the first conductor 4b overlaid on the insulating spacer 6A to come into contact with the second conductors 5b, as in the first and second embodiments. Note that
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(76) That is, in this embodiment, outward-swelled parts 3B are disposed at both ends of a sheath 3A constituting a switch-containing cable 1A, and a groove 3C is formed between the swelled parts. These swelled parts 3B and grooves 3C are disposed across the entire sheath 3A in the length direction. These swelled parts 3B function as conduction-preventing members for preventing a pressurizing force from being applied to the first and second conductor films 4 and 5 of a belt-like conductor film and thereby maintaining a non-conducting state, when the sheath 3A is pressurized with a pressurizing object, such as fingers. On the other hand, the grooves 3C have the function of bringing the first and second conductor films 4 and 5 into contact with each other to conduct electricity as the result of pressurizing parts 3D in the bottoms of the grooves being pressurized by later-described pressurizing protrusions 7B inserted through the grooves 3C. Each groove 3C also functions as a groove for guiding a pressurizing protrusion 7B slidable within the groove. In the illustrated example, each swelled part 3B is formed into a cross-sectionally bombshell-like shape projecting in the width direction. Alternatively, each swelled part 3B may have a rectangular shape the corners of which are rounded, or other shapes. These alternatives will be shown in
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(79) As the material of the switching pressure member 7, a soft, easy-to-deform material such as TPE may be used. Alternatively, a hard material such as rigid plastic or metal may be used. The hard material may be applied as long as the material is thin-walled and pressure-deformable except portions thereof near the pressurizing protrusions 7B. The sheath 3A is inserted into the spatial part 7C of the switching pressure member 7, and the switching pressure member 7 is fitted on the outer periphery of the sheath 3A, as illustrated in
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(82) Note that in the present invention, lead wires (not illustrated) can be wired through the lead wire insertion holes 3b formed in the sheaths 3 and 3A, so that the cables may be used as signal transfer cables with built-in switch functions. When this switch-containing cable 1 is used as, for example, a cable for headphones, lead wires for audio signals can be threaded through the holes. If a rechargeable battery is housed in a headphone body, lead wires for electrical charge, for example, can be threaded through the holes. Note that these lead wires may be threaded through later, or may be previously threaded through at the time of fabricating a sheath before the belt-like conductor film 2 is inserted.
(83) The cable switch of the present invention does not turn on at the time of bending. Consequently, the cable switch can be installed on a curved surface to use the switch also as a touch sensor.
DESCRIPTION OF SYMBOLS
(84) 1, 1A: Switch-containing cable
(85) 2, 2A: Belt-like conductor film
(86) 3, 3A: Sheath
(87) 3a: Hollow cavity
(88) 3b: Lead wire insertion hole
(89) 3B: Swelled part
(90) 3C: Groove
(91) 3D: Pressurizing part
(92) 4: First conductor film
(93) 4a: First belt-like base material
(94) 4b: First conductor
(95) 4c: Lead
(96) 4d: Connecting electrode
(97) 5: Second conductor film
(98) 5a: Second belt-like base material
(99) 5b: Second conductor
(100) 5c: Lead
(101) 5d: Connecting electrode
(102) 6, 6A: Insulating spacer
(103) 6a: Window
(104) 6b: Insulator
(105) 6c: Sash bar-like insulator
(106) 7: Switching pressure member
(107) 7A: Ring-shaped pressurizing part
(108) 7B: Pressurizing protrusion