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EP 2 954 536 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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23.11.2016 Bulletin 2016/47 |
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Date of filing: 03.02.2014 |
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International Patent Classification (IPC):
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International application number: |
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PCT/EP2014/052061 |
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International publication number: |
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WO 2014/122096 (14.08.2014 Gazette 2014/33) |
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CABLE HAVING CONDUCTORS WITH ELECTRICALLY CONDUCTIVE PARTICLES
KABEL MIT LEITERN MIT ELEKTRISCH LEITENDEN TEILCHEN
CÂBLE MUNI DE CONDUCTEURS À PARTICULES ÉLECTROCONDUCTRICES
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Priority: |
06.02.2013 DE 102013201944
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Date of publication of application: |
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16.12.2015 Bulletin 2015/51 |
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Proprietor: TE Connectivity Germany GmbH |
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64625 Bensheim (DE) |
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Inventors: |
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- SEIPEL, Volker
64625 Bensheim (DE)
- GREGOR, Christian
64673 Zwingenberg (DE)
- VAN DE BURGT, Guido
64625 Bensheim (DE)
- SCHMIDT, Helge
67346 Speyer (DE)
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Representative: Patentanwaltskanzlei WILHELM & BECK |
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Prinzenstraße 13 80639 München 80639 München (DE) |
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References cited: :
DE-A1- 10 358 686
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JP-A- H08 321 332
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] The invention relates to a cable having at least two electrical conductors according
to patent claim 1 and a method for producing a cable having at least two electrical
conductors according to patent claim 10.
[0002] Electrical cables which have a plurality of conductors are known in the prior art.
In this instance, the conductors are wound around each other and surrounded by an
electrically insulating cable sheath. There is the risk that, owing to surface reactions,
an insulating layer is formed between the conductors and the conductivity between
the individual conductors is reduced.
[0003] DE 103 58 686 A1 discloses a cable having two electric conductors which are directly in abutment with
each other, wherein the two conductors are surrounded by an electrically insulating
cable sheet.
[0004] JP 08321332 A discloses a method of joining electric wires. Metallic powder consisting of tin,
lead or solder softer than soft copper and metallic powder of any one of copper, nickel,
tungsten, and molybdenum being hard conductive powder harder than soft copper are
applied on the pressure bonding part of a cable in advance, before pressure bonding
the pressure bonding part of the cable consisting of a plurality of element wires
consisting of soft copper by means of a crimp-style terminal. By the application of
the metallic powder harder than the element wire material, the metallic powder bites
in the element wire at the time of pressure bonding, and the polluted film on the
surface of the cable is broken, so stable polluted film removal effect and excellent
performance reproducibility at mass production can be obtained.
[0005] An object of the invention is to provide an improved cable and an improved method
for producing a cable.
[0006] The object is achieved by the cable according to patent claim 1. Other advantageous
embodiments of the invention are set out in the dependent claims.
[0007] An advantage of the cable is that electrically conductive particles are arranged
between the individual conductors of the cable. Consequently, owing to the particles,
an electrically conductive transverse connection is produced between the conductors.
In this instance, oxidation layers may in particular be interrupted by the conductive
particles. The electrical conductivity in a transverse direction between the conductors
is further improved.
[0008] In an embodiment, the conductors have aluminium or comprise in particular aluminium.
In particular with aluminium conductors, it is advantageous to improve the electrical
conductivity in the transverse direction. In particular with conductors of aluminium,
there may be formed on the surface of the conductors oxidation layers which impair
conductivity in the transverse direction.
[0009] In another embodiment, the conductors are wound around each other. During the winding
operation of the conductors, a transverse force is thereby applied to the particles,
which are located between the conductors. The particles are thereby pressed into the
surface of the conductors. Consequently, a non-positive and/or positive-locking mechanical
connection and electrically conductive connection is produced between the particles
and the conductors. Consequently, it is possible for the electrical conductivity in
the transverse direction between the conductors also not to be made more difficult
by subsequent formation of an oxidation layer.
[0010] In another embodiment, the electrically conductive particles are constructed with
sharp edges. In particular the particles are constructed in the form of a mechanically
crushed powder. Owing to the sharp-edged formation of the particles, it is ensured
that the particles are embedded in the surface of the conductors and consequently
produce a good electrically conductive connection between the conductors in the transverse
direction. The conductivity in the transverse direction also cannot be interrupted
by subsequent oxidation of the surfaces of the conductors.
[0011] Depending on the selected embodiment, the particles have a size in the range between
1 µm and 100 µm. For example, the particles may have a size in the range between 10
µm and 60 µm. Owing to these orders of magnitude of the particles, on the one hand,
good electrical conductivity is achieved in the transverse direction of the conductors.
In addition, the arrangement of the conductors beside each other is not impaired by
the presence of the particles. In particular, the conductors can be wound around each
other without the particles which are arranged between the conductors disrupting the
winding operation. Furthermore, owing to this size of the particles, no larger hollow
spaces or free spaces are formed between the conductors.
[0012] The electrically conductive particles may, for example, have a metal as an electrically
conductive material, in particular, for example, copper or a copper alloy. Copper
or a copper alloy is particularly suitable for increasing the electrical conductivity
in the transverse direction for electrical conductors, in particular for electrical
conductors of aluminium.
[0013] In another embodiment, the particles may have a material of a ternary compound of
copper and zinc with at least one other element from the following group: tin, aluminium,
iron, nickel, gold, titanium, magnesium or chromium. In another embodiment, the particles
have brass, the zinc content being able to be in particular between 10% and 70%.
[0014] A production of the cable described is achieved in a simple manner by the electrically
conductive particles being introduced between the conductors and the electrically
insulating cable sheath subsequently being applied around the conductors.
[0015] Depending on the embodiment selected, the at least two conductors may be wound around
each other before the cable sheath is constructed, that is to say, are constructed
in the form of a strand. Furthermore, the individual conductors may also already comprise
wound conductor wires.
[0016] Another advantage of the cable described is that a crimp element can be crimped in
a simple manner with a good electrical contact to conductors of the cable from which
the cable sheath has been removed. Owing to the presence of the electrically conductive
particles already in the cable, it is not necessary to additionally provide electrically
conductive particles during the crimping operation. As a result, the crimping process
is simplified per se. A good electrically conductive contact between the crimp element
and the conductors is further ensured.
[0017] Depending on the embodiment selected, the electrically conducive particles can be
applied to the conductors in the form of a powder, or with a carrier agent in which
the electrical particles are mixed. Suitable carrier agents include, for example,
organic solvents, in particular petroleum, alcohol, acetone, oils, but also fats.
For example, the electrically conductive particles may be applied to the conductors
in the form of a paste.
[0018] The invention is explained in greater detail with reference to the Figures, in which:
Figure 1 is a schematic illustration of a cross-section through a cable,
Figure 2 is a schematic illustration of a cross-section through a cable in the longitudinal
direction, and
Figure 3 is a schematic illustration of a crimp element which is crimped to conductors
of a cable.
[0019] Figure 1 is a schematic illustration of a cable 1 which has two electrical conductors
3, 4. Electrically conductive particles 5 are arranged between the conductors 3, 4.
The electrical conductors 3, 4 are in abutment with each other, the electrical particles
5 being clamped between the conductors 3, 4 and being connected to the conductors
in a non-positive and/or positive-locking manner. Depending on the embodiment selected,
the electrically conductive particles 5 are partially pressed into the surfaces of
the electrical conductors 3, 4. In this manner, an improved electrical conductivity
between the respective conductor 3, 4 and the electrically conductive particles is
achieved. The conductors and the particles are surrounded by a cable sheath 2, which
is produced from an electrically insulating material. Depending on the embodiment
selected, a different construction of the cable may also be selected. For example,
more than two conductors 3, 4 may be provided. In addition, each conductor 3, 4 may
comprise a plurality of conductor wires. In particular, the conductors 3, 4 may comprise
conductor wires which are wound about themselves, so-called strands. In addition,
the conductors 3, 4 may also be wound around each other.
[0020] The conductors 3, 4 may comprise an electrically conductive material, in particular
a metal material. For example, the conductors 3, 4 may have aluminium or comprise
aluminium.
[0021] The electrically conductive particles 5 may have an electrically conductive material,
in particular have a metal. For example, the particles may also have an electrically
conductive layer. In this instance, hollow particles or particles having an electrically
insulating core and an electrically conductive layer can be used.
[0022] For example, a particle may have copper. In particular, a particle may have at least
partially one of the following copper alloys: CuSn, CuZn
xSn
y, CuFe, CuNiSi, CuAl
xy.
[0023] Furthermore, a particle may have a ternary connection of copper and zinc having an
additional element from the following group: Sn, Al, Fe, Ni, Au, Ti, Mg or Cr.
[0024] In addition, a particle may have brass or comprise brass, the zinc content preferably
being between 10% and 70%.
[0025] Figure 2 is a schematic cross-section in the longitudinal direction of the cable
1, the arrangement of the particles 5 between the conductors 3, 4 being clearly visible.
In addition, in the embodiment illustrated, the conductors 3, 4 are wound around each
other. Preferably, each conductor 3, 4 is constructed in the form of an aluminium
strand, that is to say, each conductor 3, 4 comprises a plurality of wound aluminium
wires.
[0026] The electrically conductive particles preferably have a size which is in the range
between 1 µm and 100 µm, in particular between 10 µm and 60 µm.
[0027] The cable 1 is produced, for example, by electrically conductive particles 5 being
applied to at least a first conductor 3. The particles may be in the form of a powder,
or in the form of a paste, or in the form of a binding agent which is mixed with particles.
After the particles 5 have been applied to the first conductor 3, the second conductor
4 is placed on the first conductor 3. In this instance, a pressure can be applied
to the first conductor. A pressure is thereby applied to the conductive particles
by the conductors. Subsequently, an electrically insulating cable sheath is applied
to the conductors.
[0028] Depending on the embodiment selected, the at least two conductors can be rotated,
that is to say, wound, around each other before the cable sheath is constructed and
a strand conductor can be produced. Owing to the winding, a close contact is produced
between the conductors 3, 4 and the electrically conductive particles 5. In particular,
the electrically conductive particles 5 are pressed into the surfaces of the conductors
3, 4.
[0029] The electrically conductive particles 5 preferably have sharp edges. This is achieved,
for example, by the particles 5 being constructed in the form of a mechanically crushed
powder. When the electrically conductive material is crushed into particles, sharp
edges are formed. For example, the electrically conductive material is processed into
powder from a raw material by means of a crushing operation.
[0030] Figure 3 shows a cable 1 in which the cable sheath 2 has been removed from the conductors
3, 4 at one end. In addition, a crimp element 6 has been crimped to the exposed ends
of the conductors 3, 4. The crimp element 6 has, for example, a flap which has been
clamped to the exposed ends of the conductors 3, 4. Owing to the presence of the electrically
conductive particles 5, the electrically conductive particles 5 are also crushed between
the crimp element 6, in particular the flap, and the conductors 3, 4 during the crimping
operation. Consequently, owing to the presence of the electrically conductive particles
5, an improved electrical contact between the conductors 3, 4 and the crimp element
6 is enabled.
[0031] The crimp element 6 may be constructed in the form of an electrical contact or in
the form of a contact connector.
1. Cable (1) having at least two electrical conductors (3, 4) which are directly in abutment
with each other, wherein the two conductors are surrounded by an electrically insulating
cable sheath (2), characterised in that there are provided between the conductors (3, 4) electrically conductive particles
(5) which produce an electrically conductive connection between the conductors (3,
4).
2. Cable according to claim 1, wherein the conductors (3, 4) have aluminium, in particular
are formed from aluminium.
3. Cable according to either of the preceding claims, wherein the conductors (3, 4) are
wound around each other, and wherein the electrically conductive particles (5) are
arranged between the conductors (3, 4).
4. Cable according to any one of the preceding claims, wherein the electrically conductive
particles (5) are constructed with sharp edges, and wherein the particles (7) are
preferably constructed in the form of a mechanically crushed powder.
5. Cable according to any one of the preceding claims, wherein the particles have a size
in the range between 1 µm and 100 µm, in particular between 10 µm and 60 µm.
6. Cable according to any one of the preceding claims, wherein the particles (5) have
copper.
7. Cable according to claim 6, wherein the particles (5) are constructed at least partially
from one of the following copper alloys: CuSn, CuZnxSny, CuFe, CuNiSi, CuAlxy.
8. Cable according to claim 6, wherein the particles (5) are constructed at least partially
from a ternary compound of copper and zinc with another element from the following
group: Sn, Al, Fe, Ni, Au, Ti, Mg or Cr.
9. Cable according to claim 6, wherein the particles (7) comprise brass, wherein the
zinc content is preferably between 10% and 70%.
10. Cable according to any one of the preceding claims, wherein a crimp element (6) is
crimped to conductors (3, 4) from which the insulation is removed.
11. Method for producing a cable having a plurality of electrical conductors according
to claim 1, wherein electrically conductive particles are applied to at least one
conductor, wherein the second conductor is placed on the first conductor, and wherein
an electrically insulating cable sheath is subsequently applied to the conductors.
12. Method according to claim 11, wherein the two conductors are wound around each other
before the cable sheath is applied and particles are clamped between the conductors.
13. Method according to either claim 11 or claim 12, wherein conductors of aluminium are
used.
14. Method according to any one of claims 11 to 13, wherein the electrical particles have
at least copper, in particular brass.
1. Kabel (1) mit mindestens zwei elektrischen Leitern (3, 4), die direkt aneinanderstoßen,
wobei die beiden Leiter von einem elektrisch isolierenden Kabelmantel (2) umgeben
sind, dadurch gekennzeichnet, dass zwischen den Leitern (3, 4) elektrisch leitende Teilchen (5) vorgesehen sind, die
eine elektrisch leitende Verbindung zwischen den Leitern (3, 4) herstellen.
2. Kabel nach Anspruch 1, wobei die Leiter (3, 4) Aluminium besitzen, insbesondere aus
Aluminium ausgebildet sind.
3. Kabel nach einem der vorhergehenden Ansprüche, wobei die Leiter (3, 4) umeinander
herum gewickelt sind und wobei die elektrisch leitenden Teilchen (5) zwischen den
Leitern (3, 4) angeordnet sind.
4. Kabel nach einem der vorhergehenden Ansprüche, wobei die elektrisch leitenden Teilchen
(5) mit scharfen Kanten konstruiert sind und wobei die Teilchen (7) bevorzugt in der
Form eines mechanisch zerkleinerten Pulvers konstruiert sind.
5. Kabel nach einem der vorhergehenden Ansprüche, wobei die Teilchen eine Größe im Bereich
zwischen 1 µm und 100 µm besitzen, insbesondere zwischen 10 µm und 60 µm.
6. Kabel nach einem der vorhergehenden Ansprüche, wobei die Teilchen (5) Kupfer besitzen.
7. Kabel nach Anspruch 6, wobei die Teilchen (5) mindestens teilweise aus einer der folgenden
Kupferlegierungen konstruiert sind: CuSn, CuZnxSny, CuFe, CuNiSi, CuAlxy.
8. Kabel nach Anspruch 6, wobei die Teilchen (5) mindestens teilweise aus einer ternären
Verbindung aus Kupfer und Zink mit einem anderen Element aus der folgenden Gruppe
konstruiert sind: Sn, Al, Fe, Ni, Au, Ti, Mg oder Cr.
9. Kabel nach Anspruch 6, wobei die Teilchen (7) Messing umfassen, wobei der Zinkgehalt
bevorzugt zwischen 10% und 70% liegt.
10. Kabel nach einem der vorhergehenden Ansprüche, wobei ein Crimpelement (6) an Leiter
(3, 4) gecrimpt ist, von denen die Isolierung entfernt ist.
11. Verfahren zum Herstellen eines Kabels mit mehreren elektrischen Leitern nach Anspruch
1, wobei elektrisch leitende Teilchen an mindestens einem Leiter angebracht werden,
wobei der zweite Leiter auf den ersten Leiter platziert wird, und wobei ein elektrisch
isolierender Kabelmantel danach auf den Leitern aufgebracht wird.
12. Verfahren nach Anspruch 11, wobei die zwei Leiter umeinander herum gewickelt werden,
bevor der Kabelmantel aufgebracht wird und Teilchen zwischen die Leiter geklemmt werden.
13. Verfahren entweder nach Anspruch 11 oder 12, wobei Leiter aus Aluminium verwendet
werden.
14. Verfahren nach einem der Ansprüche 11 bis 13, wobei die elektrischen Teilchen mindestens
Kupfer, insbesondere Messing, besitzen.
1. Câble (1) ayant au moins deux conducteurs électriques (3, 4) qui sont directement
en butée l'un contre l'autre, dans lequel les deux conducteurs sont entourés par une
gaine de câble électriquement isolante (2), caractérisé en ce que des particules électriquement conductrices (5), qui produisent une connexion électriquement
conductrice entre les conducteurs (3, 4), sont disposées entre les conducteurs (3,
4).
2. Câble selon la revendication 1, dans lequel les conducteurs (3, 4) contiennent de
l'aluminium, en particulier sont formés à partir d'aluminium.
3. Câble selon l'une ou l'autre des revendications précédentes, dans lequel les conducteurs
(3, 4) sont enroulés l'un autour de l'autre, et dans lequel les particules électriquement
conductrices (5) sont agencées entre les conducteurs (3, 4).
4. Câble selon l'une quelconque des revendications précédentes, dans lequel les particules
électriquement conductrices (5) sont construites avec des arêtes vives, et dans lequel
les particules (7) sont de préférence construites sous la forme d'une poudre broyée
mécaniquement.
5. Câble selon l'une quelconque des revendications précédentes, dans lequel les particules
ont une taille située dans la plage comprise entre 1 µm et 100 µm, en particulier
entre 10 µm et 60 µm.
6. Câble selon l'une quelconque des revendications précédentes, dans lequel les particules
(5) contiennent du cuivre.
7. Câble selon la revendication 6, dans lequel les particules (5) sont construites au
moins partiellement à partir de l'un des alliages de cuivre suivants : CuSn, CuZnxSny, CuFe, CuNiSi, CuAlxy.
8. Câble selon la revendication 6, dans lequel les particules (5) sont construites au
moins partiellement à partir d'un composé ternaire de cuivre et de zinc avec un autre
élément choisi dans l'ensemble suivant : Sn, Al, Fe, Ni, Au, Ti, Mg et Cr.
9. Câble selon la revendication 6, dans lequel les particules (7) comprennent du laiton,
et dans lequel la teneur en zinc est de préférence comprise entre 10 % et 70 %.
10. Câble selon l'une quelconque des revendications précédentes, dans lequel un élément
de sertissage (6) est serti sur les conducteurs (3, 4) dont l'isolation a été retirée.
11. Procédé pour produire un câble ayant une pluralité de conducteurs électriques selon
la revendication 1, dans lequel des particules électriquement conductrices sont appliquées
à au moins un conducteur, dans lequel le deuxième conducteur est placé sur le premier
conducteur, et dans lequel une gaine de câble électriquement isolante est ensuite
appliquée aux conducteurs.
12. Procédé selon la revendication 11, dans lequel les deux conducteurs sont enroulés
l'un autour de l'autre avant que la gaine de câble soit appliquée et que les particules
soient fixées entre les conducteurs.
13. Procédé selon l'une ou l'autre parmi la revendication 11 et la revendication 12, dans
lequel des conducteurs en aluminium sont utilisés.
14. Procédé selon l'une quelconque des revendications 11 à 13, dans lequel les particules
électriques contiennent au moins du cuivre, en particulier du laiton.

REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description