Reference to Related Application
Field of the Invention
[0002] This invention relates to multiple wire cables, and more particularly to small gauge
coaxial wiring.
Background and Summary of the Invention
[0003] Certain demanding applications require miniaturized multi-wire cable assemblies.
To avoid undesirably bulky cables when substantial numbers of conductors are required,
very fine conductors are used. To limit electrical noise and interference, coaxial
wires having shielding are used for the conductors. A dielectric sheath surrounds
a central conductor, and electrically separates it from the conductive shielding.
A bundle of such wires is surrounded by a conductive braided shield, and an outer
protective sheath.
[0004] Some applications requiring many different conductors prefer that a cable be very
flexible, supple, or "floppy." In an application such as a cable for connection to
a medical ultrasound transducer, a stiff cable with even moderate resistance to flexing
can make ultrasound imaging difficult. However, with conventional approaches to protectively
sheathing cables, the bundle of wires may be undesirably rigid.
[0005] In addition, cable assemblies having a multitude of conductors may be time-consuming
and expensive to assemble with other components. When individual wires are used in
a bundle, one can not readily identify which wire end corresponds to a selected wire
at the other end of the bundle, requiring tedious continuity testing. Normally, the
wire ends at one end of the cable are connected to a component such as a connector
or printed circuit board, and the connector or board is connected to a test facility
that energizes each wire, one-at-a-time, so that an assembler can connect the identified
wire end to the appropriate connection on a second connector or board.
[0006] A ribbon cable in which the wires are in a sequence that is preserved from one end
of the cable to the other may address this particular problem. However, with all the
wires of the ribbon welded together, they resist bending, creating an undesirably
stiff cable. Moreover, a ribbon folded along multiple longitudinal fold lines may
tend not to generate a compact cross section, undesirably increasing bulk, and may
not provide a circular cross section desired in many applications.
EP 0 136 040 A2 describes an arrangement in which a ribbon cable is folded and surrounded by an insulating
jacket.
EP 0 734 096 A2 discloses a heat-shrinkable shielded tube in which an electromagnetic wave shielding
material is inserted into a heat-shrinkable tube. Electrical wires to be shielded
are inserted into the tube and upon heating, the tube tightly engages the wires and
provides electrical shielding.
WO 02/080198 A1 published after the present priority date describes a flexible interconnect cable
with ribbonized ends as shown in Figure 1
[0007] The present invention provides a method of manufacturing a cable assembly according
to claim 1. Preferred aspects of the invention are provided according to the dependent
claims.
Brief Description of the Drawings
[0008]
Figure 1 is a perspective view of a cable assembly.
Figure 2 is a perspective view of wiring components according to the assembly of Figure
1.
Figure 3 is an enlarged sectional view of an end portion of a wiring component according
to the assembly of Figure 1.
Figure 4 is an enlarged sectional view of the cable assembly according to the assembly
of Figure 1.
Figure 5 is an enlarged sectional view of the cable assembly in a flexed condition
according to the assembly of Figure 1.
Figure 6 is a simplified side view of a first process in a method of manufacturing
a cable assembly.
Figures 7A and 7B are cross sectional views of a cable sheath component.
Figure 8 is a side view of a cable assembly in a selected stage of manufacturing.
Figure 9 is a side view of a cable assembly in a selected stage of manufacturing.
Figure 10 is a side view of a cable assembly in a selected stage of manufacturing.
Figure 11 is a side view of a cable assembly after manufacturing.
Detailed Description of a Preferred Embodiment
[0009] Figure 1 shows a cable assembly 10 having a connector end 12, a transducer end 14,
and a connecting flexible cable 16. The connector end and transducer ends are shown
as examples of components that can be connected to the cable 16. In this example,
the connector end includes a circuit board 20 with a connector 22 for connection to
an electronic instrument such as an ultrasound imaging machine. The connector end
includes a connector housing 24, and strain relief 26 that surrounds the end of the
cable. On the opposite end, an ultrasound transducer 30 is connected to the cable.
[0010] The cable 16 includes a multitude of fine coaxially shielded wires 32. As also shown
in Figure 2, the wires are arranged into groups 33, with each group having a ribbonized
ribbon portion 34 at each end, and an elongated loose portion 36 between the ribbon
portions and extending almost the entire length of the cable. Each ribbon portion
includes a single layer of wires arranged side-by-side, adhered to each other, and
trimmed to expose a shielding layer and center conductor for each wire. In the loose
portion, the wires are unconnected to each other except at their ends.
[0011] The shielding and conductor of each wire are connected to the circuit board, or to
any electronic component or connector by any conventional means, as dictated by the
needs of the application for which the cable is used. The loose portions 36 of the
wires extend the entire length of the cable between the strain reliefs, through the
strain reliefs, and into the housing where the ribbon portions are laid out and connected.
[0012] The ribbon portions 34 are each marked with unique indicia to enable assemblers to
correlate the opposite ribbon portions of a given group, and to correlate the ends
of particular wires in each group. A group identifier 40 is imprinted on the ribbon
portion, and a first wire identifier 42 on each ribbon portion assures that the first
wire in the sequence of each ribbon is identified on each end. It is important that
each group have a one-to-one correspondence in the sequence of wires in each ribbon
portion. Consequently, an assembler can identify the nth wire from the identified
first end wire of a given group "A" as corresponding to the nth wire at the opposite
end ribbon portion, without the need for trial-and-error continuity testing to find
the proper wire. This correspondence is ensured, even if the loose intermediate portions
36 of each group are allowed to move with respect to each other, or with the intermediate
portions of other groups in the cable.
[0013] Figure 3 shows a cross section of a representative end portion, with the wires connected
together at their outer sheathing layers 44 at weld joints 46, while the conductive
shielding 50 of each of the wires remains electrically isolated from the others, and
the inner dielectric 52 and central conductors 54 remain intact and isolated. In alternative
embodiments, the ribbon portions may be secured by the use of adhesive between abutting
sheathing layers 44, by adhesion of each sheathing layer to a common strip or sheet,
or by a mechanical clip.
[0014] Figure 4 shows the cable cross section throughout most of the length of the cable,
away from the ribbon portions, reflecting the intermediate portion. The wires are
loosely contained within a flexible cylindrical cable sheath 60. As also shown in
Figure 1, a conductive braided shield 62 surrounds all the wires, and resides at the
interior surface of the sheath to define a bore 64. Returning to Figure 4, the bore
diameter is selected to be somewhat larger than required to closely accommodate all
the wires. This provides the ability for the cable to flex with minimal resistance
to a tight bend, as shown in Figure 5, as the wires are free to slide to a flattened
configuration in which the bore cross section is reduced from the circular cross section
it has when held straight, as in Figure 4.
[0015] In the preferred embodiment, there are 8 groups of 16 wires each, although either
of these numbers may vary substantially, and some embodiments may use all the wires
in a single group. The wires preferably have an exterior diameter of .016 inch, although
this and other dimensions may range to any size, depending on the application. The
cable has an overall exterior diameter of the jacket portion 60 of .330 inch and the
sheath has a bore diameter of .270 inch. As the loose wires tend to pack to a cross-sectional
area only slightly greater than the sum of their areas, there is significant extra
space in the bore in normal conditions. This allows the wires to slide about each
other for flexibility, and minimizes wire-to-wire surface friction that would occur
if the wires were tightly wrapped together, such as by conventional practices in which
a wire shield is wrapped about a wire bundle. In the preferred embodiment, a bend
radius of .75 inch , or about 2 times the cable diameter, is provided with minimal
bending force, such as if the cable is folded between two fingers and allowed to bend
to a natural radius. Essentially, the bend radius, and the supple lack of resistance
to bending is limited by little more than the total bending resistance of each of
the components. Because each wire is so thin, and has minimal resistance to bending
at the radiuses on the scale of the cable diameter, the sum of the wire's resistances
adds little to the bending resistance of the sheath and shield, which thus establish
the total bending resistance.
METHOD OF MANUFACTURING
[0016] Figure 6 shows a sheath manufacturing facility 70 including a shield braiding or
weaving machine 72 and an extruder 74. A nylon core tube 76 with a smooth exterior
surface with a diameter of 0.250 inch has a bore diameter of 0.200 inch. The core
tube may be of any of a wide range of alternative materials, and may have a solid
core. The tube is fed into the braiding machine, which wraps fine conductive metal
strands 80 about the tube to form the shield 62. Thus wrapped, the shielded core is
fed into the extruder 74, which extrudes the sheath 60 about the shielded core tube
to form a resulting sheath component 82, which is shown in cross section in Figures
7A and 7B. In the preferred embodiment, the sheath material is flexible PVC, with
alternative materials including thermoplastic elastomer, or polyurethane. The shield
is extruded at a limited low temperature so that the sheath material maintains viscosity,
does not excessively penetrate the pores or gaps between shield wires, and does not
appreciably contact the core, except as minimally shown in Figure 7B. This avoids
adhesion that would make core tube extraction difficult. The sheath material partly
encapsulates some of the shield wires, by at least partly encompassing them, and in
selected embodiments, penetrating through interstices between the wires to contact
or approach the surface of the core.
[0017] Nonetheless, the sheath material at least partly encapsulates the shield wires, generating
adhesion that helps to maintain the shield and sheath interior in contact with each
other throughout the length, without detaching during manufacture, assembly, or use
of the cable. Consequently, the shield wires do not fall away from the sheath, but
remain adhered along the entire length. This provides elastic resistance to tension,
and facilitates restoration of its original length when tension is removed. The shield
wires provide an elongation limit as they fully compress about the wires within to
resist increasing tension, after which the elasticity of the sheath returns the shield
to its original length and diameter about the wires within to provide the desired
flexibility as discussed above. In some applications, these functions and benefits
may be achieved if the shield detaches from the sheath, as long as the sheath is loose
with respect to the cable wires, and remains attached to the sheath at each end.
[0018] Figure 8 shows the sheath segment 82 (which includes the core, shield, and sheath)
cut to provide an end 86. An opposed end (not shown) is similarly cut. The sheath
layer is cut on lines 90 for removal of an end portion 92 comprising about 6 inches
of the segment on each end, while leaving the shield wires and core intact. As shown
in Figure 9, the end portion is removed, and the shield wires 62 are folded back into
a cylindrical shape against the exterior of the sheath 60, and secured at the end
by a band of adhesive tape 94. At this stage, the ends of the shield may optionally
be secured to the sheath by attachment of a strain relief element 96. The strain relief
element may be an over-molded elastomer that covers the folded back portion of the
shield wires, or may be a rigid clamping type device that pinches the shield and sheath
end in an annular gap or nip. Even without the strain relief element, the folded-back
shield end resists dislodgment from the sheath by axial tension forces from the opposite
end.
[0019] As shown in Figure 10, the cable ribbons 33 are connected at their ends to an end
of the core 76 by a woven sheath 100 that collapses about its contents as tension
is applied. Alternative embodiment such as clips, tape, or other hooks may be employed,
as long as they are slim enough to readily pass through the bore of the sheath, and
to protect the ribbonized ends of the wires as the pass through the sheath, all without
damaging the shielding in the sheath. The core 76 is pulled from the end opposite
the connected ribbons 33, until an approximately equal length of cable is exposed
at each end of the sheath, and the core is detached from the ribbons, as shown in
Figure 11, which shows the resulting cable component. The cable component has ribbonized
ends exposed at each end, and indicia identifying each group at each end, and the
first wire in each group for subsequent operations. The wires are laser stripped to
expose the central conductors and shielding in each wire, enabling connection to connectors
of circuit elements as discussed above.
[0020] In alternative embodiments, the strain reliefs may be added after ribbon insertion,
and the folded back shield wires may be trimmed. In some embodiments, the shield wires
may be effectively adhered to the sheath interior during the sheath extrusion, so
that folding back and end taping is not needed to prevent the shield from slipping
out or necking down during ribbon insertion. In other embodiments, the shield may
be loose or readily separable from the sheath interior, necessitating the illustrated
folding back of the shield ends.
1. A method of manufacturing a cable assembly comprising:
providing a core (76);
wrapping a conductive shield element (80) about the core;
forming a sheath (60) by applying an insulating sheath layer to encompass the shield
element;
removing the core from the sheath;
and inserting a multi-wire cable component (33) into the sheath, characterized in that said cable component comprises a plurality of wires having intermediate portions
between first and second ends unconnected to each other except at their ends and said
shield loosely encompasses all the wires.
2. The method of claim 1 wherein the core is a smooth plastic cylinder.
3. The method of claim 1 wherein wrapping a conductive shield includes wrapping a plurality
of wires about the core.
4. The method of claim 1 wherein forming the sheath includes extruding the sheath layer
about the shield.
5. The method of claim 1 including the step of attaching the cable component to the core
before removing the core from the sheath.
6. The method of claim 1 including removing an end portion of the sheath layer and folding
an exposed end portion of the shield back upon the remaining sheath layer before removing
the core.
7. The method of claim 1 including attaching a strain relief element to an end portion
of the sheath before removing the core.
8. The method of claim 1 wherein the plurality of wires of the cable component are ribbonized
at their ends.
1. Verfahren zur Herstellung einer Kabelzusammenstellung, umfassend:
Bereitstellen eines Kerns (76);
Wickeln eines leitenden Abschirmelements (80) um den Kern;
Ausbilden einer Ummantelung (60) durch Aufbringen einer isolierenden Mantelschicht
zum Einschließen des Abschirmelements;
Entfernen des Kerns aus der Ummantelung;
und Einsetzen einer Mehrdraht-Kabelkomponente (33) in die Ummantelung, dadurch gekennzeichnet, dass die Kabelkomponente eine Vielzahl von Drähten umfasst, die zwischen ersten und zweiten
Enden Zwischenabschnitte aufweisen, die außer an deren Enden nicht miteinander verbunden
sind, und die Abschirmung alle Drähte locker einschließt.
2. Verfahren nach Anspruch 1, wobei der Kern ein glatter Kunststoffzylinder ist.
3. Verfahren nach Anspruch 1, wobei Umwickeln einer leitenden Abschirmung Wickeln einer
Vielzahl von Drähten um den Kern beinhaltet.
4. Verfahren nach Anspruch 1, wobei Ausbilden der Ummantelung Extrudieren der Mantelschicht
um die Abschirmung herum beinhaltet.
5. Verfahren nach Anspruch 1, aufweisend den Schritt des Anbringens der Kabelkomponente
an dem Kern vor dem Entfernen des Kerns aus der Ummantelung.
6. Verfahren nach Anspruch 1, aufweisend das Entfernen eines Endabschnitts der Mantelschicht
und Rückfalten eines freiliegenden Endabschnitts der Abschirmung auf die verbleibende
Mantelschicht vor dem Entfernen des Kerns.
7. Verfahren nach Anspruch 1, aufweisend das Anbringen eines Zugentlastungselements an
einem Endabschnitt der Ummantelung vor dem Entfernen des Kerns.
8. Verfahren nach Anspruch 1, wobei die Vielzahl von Drähten der Kabelkomponente an deren
Enden in eine Flachbandkabelanordnung gebracht wird.
1. Procédé de fabrication d'un ensemble de câble, comprenant :
fournir une âme (76) ;
envelopper un élément de blindage conducteur (80) autour de l'âme ;
former une gaine (60) en appliquant une couche de gaine isolante pour envelopper l'élément
de blindage ;
enlever l'âme de la gaine ;
et insérer un composant de câble multifilaire (33) dans la gaine,
caractérisé en ce que ledit composant de câble comprend une pluralité de câbles ayant des portions intermédiaires
entre des premières et deuxièmes extrémités, qui ne sont pas connectées les unes aux
autres sauf au niveau de leurs extrémités et ledit blindage entoure lâchement tous
les fils.
2. Procédé selon la revendication 1, dans lequel l'âme est un cylindre en plastique lisse.
3. Procédé selon la revendication 1, dans lequel l'enveloppement d'un blindage conducteur
inclut l'enveloppement d'une pluralité de fils autour de l'âme.
4. Procédé selon la revendication 1, dans lequel la formation de la gaine inclut l'extrusion
de la couche de gaine autour du blindage.
5. Procédé selon la revendication 1, comprenant l'étape de fixation du composant de câble
à l'âme avant d'enlever l'âme de la gaine.
6. Procédé selon la revendication 1, comprenant l'enlèvement d'une portion d'extrémité
de la couche de gaine et le repliement d'une portion d'extrémité exposée du blindage
par-dessus le reste de la couche de gaine avant d'enlever l'âme.
7. Procédé selon la revendication 1, comprenant la fixation d'un élément de détente des
contraintes à une portion d'extrémité de la gaine avant d'enlever l'âme.
8. Procédé selon la revendication 1, dans lequel la pluralité de fils du composant de
câble sont rubanisés au niveau de leurs extrémités.