TECHNICAL FIELD OF INVENTION
[0001] This disclosure generally relates to an electrical connector, and more particularly
relates to an electrical connector that is capable of transferring electrical current
in excess of 200 Amperes.
BACKGROUND OF INVENTION
[0002] It is known to use electrical connectors capable of transferring electrical current
in excess of 100 Amperes (100 A) in electric vehicles (EVs) and hybrid-electric vehicles
(HEVs). As non-EVs and non-HEVs become increasingly electrified to reduce greenhouse
gasses, electrical connectors require increasingly robust, reliable, and safe designs.
[0003] High current connectors have used torsional contact beams to increase the contact
force between male and female electrical terminals. These contact beams have typically
only had two contact points on each beam. Increasing electrical current carrying capacity
of these connector designs is typically accomplished by increasing the number of beams
to increase the number of contact points which will cause an undesirable increase
in the size of the terminal components, making the resulting connector systems more
difficult to package within a vehicle. Therefore, the present invention aims at providing
a high current electrical connector that has increased current capacity without increased
size.
[0004] Publication
US 2012/156947 A1 discloses a receptacle terminal including a terminal body with a cable end configured
to be terminated to a cable and a mating end configured to be mated with a blade terminal.
The terminal body includes a receptacle at the mating end. The receptacle has a first
wall and a second wall generally parallel to, and spaced apart from, the first wall.
The receptacle has a receiving space between the first and second walls configured
to receive the blade terminal. A contact spring is separately provided from, and coupled
to, the terminal body and has a spring wall received in the receiving space that is
positioned between the first wall and the blade terminal. The spring wall has an inner
surface and an outer surface. The inner surface is spring biased against the first
wall. The outer surface is configured to be spring biased against the blade terminal.
Publication
US 2003/0194919 A discloses another high current terminal blade connection system with a male connector,
a female connector, and a contact insert including dimples.
SUMMARY OF THE INVENTION
[0005] In order to solve the problem mentioned above, the invention provides a high-current
electrical connector according to claim 1. The high-current electrical connector includes
a female electrical-terminal, a male electrical terminal, and a contact-spring. The
female electrical-terminal is configured to receive a male electrical-terminal and
is formed of a single piece of electrically conductive material. The female electrical-terminal
has a first-sidewall and a second-sidewall. The second-sidewall defines a first-end,
a second-end, and a medial-zone disposed therebetween. The first-sidewall is opposite
and parallel at the first-end to the second-sidewall. The contact-spring is formed
of a single piece of electrically conductive material disposed intermediate to the
first-sidewall and the second-sidewall. The contact-spring defines a plurality of
opposed-pair contact-beams. Each of the plurality of opposed-pair contact-beams have
a plurality of outer-contact-points in electrical and physical contact with the female
electrical-terminal, and have a plurality of inner-contact-points. The plurality of
inner-contact-points are in electrical and physical contact with opposed sides of
the male electrical-terminal. Electrical and physical contact is formed between the
contact beam, the female electrical-terminal, and the male electrical-terminal in
at least four separate locations. The male electrical-terminal includes a planar blade-shaped
portion formed of an electrically conductive material and has two exposed-edges of
the planar blade-shaped portion formed of a dielectric material. The dielectric material
is integrally formed with a header-wall and a base of a male-connector.
[0006] In other advantageous embodiments according to the dependent claims, the plurality
of opposed-pair contact-beams are characterized as having a sinusoidally shaped cross-section.
The plurality of inner-contact-points and the plurality of outer-contact-points are
characterized as having a rounded shape. The contact-spring includes a pair of opposing
guide-ribs formed in leading-edges of the contact-spring. The guide-ribs are configured
to engage and align the male electrical-terminal upon insertion into the female electrical-terminal.
The guide-ribs reduce a transverse-movement of the male electrical-terminal when the
male electrical-terminal is in a seated-position. The contact-spring is characterized
as having a U-shape.
[0007] The female electrical-terminal further includes a third-sidewall that extends from
a medial-edge of the first-sidewall to the medial-zone of the second-sidewall. The
third-sidewall is in electrical and physical communication with the medial-zone of
the first-sidewall. The third-sidewall is joined to the medial-zone by a single clinch-rivet.
[0008] In another embodiment, a female terminal assembly, is provided. The female terminal
assembly includes a female electrical-terminal and a contact-spring. The female electrical-terminal
is formed of a single piece of electrically conductive material. The female electrical-terminal
has a first-sidewall and a second-sidewall. The second-sidewall defines a distal-end,
a proximal-end, and a medial-zone disposed therebetween. The first-sidewall is opposite
and parallel to the distal-end of the second-sidewall. The contact-spring is formed
of a single piece of electrically conductive material disposed intermediate to the
first-sidewall and the second-sidewall. The contact-spring defines a plurality of
opposed-pair contact-beams. Each of the plurality of opposed-pair contact-beams have
a plurality of outer-contact-points in electrical and physical contact with the female
electrical-terminal, and have a plurality of inner-contact-points. The plurality of
inner-contact-points are in electrical and physical contact with opposed sides of
the male electrical-terminal. Electrical and physical contact is formed between the
contact beam, the female electrical-terminal, and the male electrical-terminal in
at least four separate locations.
[0009] The plurality of opposed-pair contact-beams are characterized as having a sinusoidally
shaped cross-section. The plurality of inner-contact-points and the plurality of outer-contact-points
are characterized as having a rounded shape. The contact-spring includes a pair of
opposing guide-ribs formed in leading-edges of the contact-spring. The guide-ribs
are configured to engage and align the male electrical-terminal upon insertion into
the female electrical-terminal. The guide-ribs reduce a transverse-movement of the
male electrical-terminal when the male electrical-terminal is in a seated-position.
The contact-spring is characterized as having a U-shape.
[0010] The female electrical-terminal further includes a third-sidewall that extends from
a medial-edge of the first-sidewall to the medial-zone of the second-sidewall. The
third-sidewall is in electrical and physical communication with the medial-zone of
the first-sidewall. The third-sidewall is joined to the medial-zone by a single clinch-rivet.
[0011] In yet another embodiment, a contact-spring is provided. The contact-spring is formed
of a single piece of electrically conductive material configured to be disposed within
a female electrical-terminal. The contact-spring defines a plurality of opposed-pair
contact-beams. Each of the plurality of opposed-pair contact-beams have a plurality
of outer-contact-points and a plurality of inner-contact-points. The plurality of
outer-contact points are configured to be in electrical and physical contact with
the female electrical-terminal. The plurality of inner-contact-points are configured
to be in electrical and physical contact with opposed sides of a male electrical-terminal.
Electrical and physical contact is formed between the contact beam, the female electrical-terminal,
and the male electrical-terminal in at least four separate locations.
[0012] The plurality of opposed-pair contact-beams are characterized as having a sinusoidally
shaped cross-section. The plurality of inner-contact-points and the plurality of outer-contact-points
are characterized as having a rounded shape. The contact-spring includes a pair of
opposing guide-ribs formed in leading-edges of the contact-spring. The guide-ribs
are configured to engage and align the male electrical-terminal upon insertion into
the female electrical-terminal. The guide-ribs reduce a transverse-movement of the
male electrical-terminal when the male electrical-terminal is in a seated-position.
The contact-spring is characterized as having a U-shape.
[0013] In yet another embodiment, a female terminal assembly includes a female electrical-terminal
and a contact-spring. The female electrical-terminal is formed of a single piece of
electrically conductive material. The female electrical-terminal has a first-sidewall,
a second-sidewall, and a third-sidewall. The second-sidewall defines a distal-end,
a proximal-end, and a medial-zone disposed between the distal-end and the proximal-end.
The first-sidewall is opposite and parallel at the distal-end to the second-sidewall.
The third-sidewall extends from a medial-edge of the first-sidewall and contacts the
second-sidewall from the medial-zone to the proximal-end. The third-sidewall is in
electrical and physical communication with the first-sidewall.
[0014] The contact-spring is formed of a single piece of electrically conductive material
disposed intermediate to the first-sidewall and the second-sidewall. The contact-spring
defines a plurality of opposed-pair contact-beams. Each of the plurality of opposed-pair
contact-beams have a plurality of outer-contact-points and have a plurality of inner-contact-points.
The plurality of outer-contact-points are in electrical and physical contact with
the female electrical-terminal. The plurality of inner-contact-points are in electrical
and physical contact with opposed sides of the male electrical-terminal. Electrical
and physical contact is formed between the contact beam, the female electrical-terminal,
and the male electrical-terminal in at least four separate locations.
[0015] The third-sidewall defines a plurality of weld-slots longitudinally extending from
the medial-zone to the proximal-end. The weld-slots are configured to interface with
an electrical-cable sonically welded to the female terminal.
[0016] The plurality of opposed-pair contact-beams are characterized as having a sinusoidally
shaped cross-section. The plurality of inner-contact-points and the plurality of outer-contact-points
are characterized as having a rounded shape. The contact-spring includes a pair of
opposing guide-ribs formed in leading-edges of the contact-spring. The guide-ribs
are configured to engage and align the male electrical-terminal upon insertion into
the female electrical-terminal. The guide-ribs reduce a transverse-movement of the
male electrical-terminal when the male electrical-terminal is in a seated-position.
The contact-spring is characterized as having a U-shape.
[0017] Further features and advantages will appear more clearly on a reading of the following
detailed description of the preferred embodiment, which is given by way of non-limiting
example only and with reference to the accompanying drawings.
BRIEF DESCRIPTION OF DRAWINGS
[0018] The present invention will now be described, by way of example with reference to
the accompanying drawings, in which:
Fig. 1 is an illustration of a high-current electrical connector with a female-connector
separated from a male-connector in accordance with one embodiment;
Fig. 2 is an exploded view of an illustration of a female electrical-terminal and
a male electrical-terminal of Fig. 1 in accordance with one embodiment;
Fig. 3 is an illustration of the female electrical-terminal of Fig. 2 in accordance
with one embodiment;
Fig. 4A is an illustration of a contact-spring in accordance with one embodiment;
Fig. 4B is an illustration of a cross-section view of the contact-spring of Fig. 4A
in accordance with one embodiment;
Fig. 4C is an enlarged view of the cross-section of the contact-spring of Fig. 4B
in accordance with one embodiment;
Fig. 5A is an illustration of the female electrical-terminal with a male electrical-terminal
in a seated position in accordance with one embodiment;
Fig. 5B is a cross-section view of the female electrical-terminal and the male electrical-terminal
of Fig. 5A in accordance with one embodiment;
Fig. 6 is an illustration of the male-connector in accordance with one embodiment;
Fig. 7 is an illustration of the female electrical-terminal with a third-sidewall
in accordance with another embodiment; and
Fig. 8 is an illustration of the female electrical-terminal with the third-sidewall
in accordance with yet another embodiment.
[0019] The reference numbers of similar elements in the embodiments shown in the various
figures share the last two digits.
DETAILED DESCRIPTION
[0020] An electrical connector capable of carrying currents in excess of 200 Amperes, and
in some cases in excess of 400 Amperes, is presented herein. This invention uses a
contact insert with quadruple contact points on each contact beam for increasing the
electrical current carrying capability of the connector. This electrical connector
may also include a clinching joint to increasing the rigidity of the terminal box
without affecting the cable welding area.
[0021] Fig. 1 illustrates a non-limiting example of a high-current electrical connector
10, hereafter referred to as the connector 10. The connector 10 is shown in the un-mated
condition to illustrate the internal components, as will be described in more detail
below. The connector 10 includes female-connector 12 having a female electrical-terminal
14 configured to receive a male electrical-terminal 16 disposed within a male-connector
18. The male electrical-terminal 16 may be a planar-type terminal with two exposed
sides, and is formed of an electrically conductive material, such as a copper-based
alloy that may also include a coating of another conductive material (e.g. tin-based,
silver-based coating). The male electrical-terminal 16 may include a non-conductive
material covering edges of the electrically conductive material.
[0022] Fig. 2 illustrates one female electrical-terminal 14 isolated from the female-connector
12 that is shown positioned above the mating male-connector 18. The female electrical-terminal
14 may include a housing (not shown) composed of a dielectric material 58 that is
configured to engage retention devices (not shown) within the female-connector 12.
The female electrical-terminal 14 is shown attached to an electrical-cable that may
connect to electrical-circuits elsewhere in an electrical-system of a vehicle. The
electrical-cable is attached to the female electrical-terminal 14 by a sonic welding
process. Alternate embodiments may be envisioned in which other known welding processes
are used to attach the electrical-cable to the female electrical-terminal 14.
[0023] Fig. 3 illustrates the female electrical-terminal 14 of Fig. 2 in a sideview to expose
internal components. The female electrical-terminal 14 is formed of a single piece
of electrically conductive material, such as a copper-based alloy and may include
a coating of another conductive material (e.g. tin-based, silver-based coating). The
female electrical-terminal 14 has a first-sidewall 20 and a second-sidewall 22 that
are connected by a web 24 of material created during a forming operation. The second-sidewall
22 defines a distal-end 26, a proximal-end 28, and a medial-zone 30 disposed between
the distal-end 26 and the proximal-end 28. The first-sidewall 20 is opposite and parallel
at the distal-end 26 to the second-sidewall 22 creating a channel configured to receive
the two exposed sides of the male electrical-terminal 16 (not shown).
[0024] The female electrical-terminal 14 also includes a contact-spring 32 formed of a single
piece of electrically conductive material disposed intermediate to the first-sidewall
20 and the second-sidewall 22. The contact-spring 32 is formed of a copper-based alloy
and is characterized as having a U-shape 34. The contact-spring 32 may include a conductive
coating, such as a tin-based alloy and/or a silver-based alloy. The contact-spring
32 may include retention features (not specifically shown) that engage the female
electrical-terminal 14 and inhibit a removal of the contact-spring 32. Alternative
embodiments may be envisioned using a different conductive material, such as a steel
or aluminum alloy to form the contact-spring 32 which may or not be coated with a
conductive coating.
[0025] Figs. 4A-4C illustrate the contact-spring 32 separated from the female electrical-terminal
14. The contact-spring 32 defines a plurality of opposed-pair contact-beams 36, wherein
each of the opposed-pair contact-beams 36 have a plurality of outer-contact-points
38 in electrical and physical contact with the female electrical-terminal 14. That
is, the outer-contact-points 38 of the contact-spring 32 are in electrical and physical
contact with the inner face of the first-sidewall 20 and the inner face of the second-sidewall
22, and each individual contact-beam 36 has at least two contact-points 40 in connection
with their respective sidewall (see Fig. 6B). Additionally, each of the opposed-pair
contact-beams 36 have a plurality of inner-contact-points 42 that are in electrical
and physical contact with opposed sides of the male electrical-terminal 16, and each
individual contact-beam 36 has at least two contact-points 40 in connection with each
face of the male electrical-terminal 16. As a result, electrical and physical contact
is formed between each contact beam 36, the female electrical-terminal 14, and the
male electrical-terminal 16 in at least four separate locations, as illustrated in
Figs. 6A-6B.
[0026] Returning to Fig. 4C, the plurality of opposed-pair contact-beams 36 may be characterized
as having a sinusoidally shaped cross-section 44, and the plurality of inner-contact-points
42 and the plurality of outer-contact-points 38 may be characterized as having a rounded
shape 46. Preferably, the contact-beams 36 are formed such that a normal contact-force
of between about 2.5 Newtons (2.5 N) to about 8 N is imparted on the male electrical-terminal
16 at each of the contact-points 40 of each individual contact-beam 36. The inventors
have discovered that this range of contact-force provides sufficient normal-force
to minimize a contact resistance between the male electrical-terminal 16 and the female
electrical-terminal 14, while meeting the ergonomic requirements for assemblers.
[0027] Fig. 5 illustrates the contact-spring 32 spread open to more clearly reveal the geometry
of the contact-beams 36, and denotes a bottom-half and top-half for illustration purposes
only. The opposed-pair contact-beams 36 are formed such that the inner-contact-points
42 of the contact-beam 36 in the bottom-half lay in a same-plane as the inner-contact-points
42 of the corresponding paired contact-beam 36 in the top-half. This same-plane is
illustrated by a dashed-line shown passing through the inner-contact-points 42. While
not specifically shown, the outer-contact-points 38 also lay in a same-plane.
[0028] Returning to Fig. 4A, the contact-spring 32 may further include a pair of opposing
guide-ribs 48 formed in leading-edges of the contact-spring 32. The guide-ribs 48
are configured to engage and align the male electrical-terminal 16 upon insertion
into the female electrical-terminal 14 and thereby reduce a transverse-movement of
the male electrical-terminal 16 when the male electrical-terminal 16 is in a seated-position
52 (see Fig. 6A). Figs. 6A-6B illustrate the male electrical-terminal 16 as having
a planar blade-shaped portion 54 disposed within the female electrical-terminal 14.
The guide-ribs 48 are preferably rounded to reduce the potential for gouging any conductive
coating on the male electrical-terminal 16. The guide-ribs 48 are preferably a continuous
feature to maximize a contact-area between the contact-spring 32 and the male electrical-terminal
16 for both electrical and structural purposes.
[0029] Fig. 7 illustrates a perspective-view of the male-connector 18 from Fig. 1. The male
electrical-terminal 16 includes the planar blade-shaped portion 54 that is formed
of an electrically conductive material (e.g. copper-based alloy) and has two exposed-edges
56 of the planar blade-shaped portion 54 formed of a dielectric material 58. The dielectric
material 58 is configured prevent an electrical-shock if a human finger were to contact
the exposed-edge 56. Additionally, the dielectric material 58 formed into the male-connector
18, being integrally formed with a header-wall 60 and a base 62 of the male-connector
18 to increase a strength and a structural rigidity of the dielectric material 58,
with the added benefit of increasing a surface area of electrical connection surfaces
without increasing a package-size of the male-connector 18. The integration of the
dielectric material 58 to the header-wall 60 is possible due to an open-distal-end
64 of the female electrical-terminal 14 (see Fig. 3).
[0030] Figure 8 illustrates an alternative embodiment of a female electrical-terminal 114.
The female electrical-terminal 114 further includes a third-sidewall 166 that extends
from a medial-edge 168 of the first-sidewall 120 to the medial-zone 130 of the second-sidewall
122 such that the third-sidewall 166 is in electrical and physical communication with
the medial-zone 130 of the first-sidewall 120. The third-sidewall 166 provides a more
rigid structure to the female electrical-terminal 114 and further provides an additional
conductive path, both of which may enable the use of thinner material stock than needed
for the female electrical-terminal 14 of Fig. 3 to carry an equivalent electrical
current. The third-sidewall 166 may be joined to the medial-zone 130 by a single clinch-rivet
170. Alternative embodiments of the female electrical-terminal 114 may be formed using
any of the other known joining methods. The location of the single clinch-rivet 170
in the medial-zone 130 is advantageous because the placement reduces a distortion
of the proximal-end 128 of the second-sidewall 122. Experimentation by the inventors
has discovered that by not extending the third-sidewall 166 to the edge of the proximal-end
128 of the second-sidewall 122, together with the placement of the single clinch-rivet
170, the quality of a weld-joint between the electrical-cable and the female electrical-terminal
114 is greatly improved.
[0031] Fig. 9 illustrates yet another embodiment of a female electrical-terminal 214. The
female electrical-terminal 214 is formed of a single piece of electrically conductive
material and has a first-sidewall 220, a second-sidewall 222, and a third-sidewall
266. The second-sidewall 222 defines a distal-end 226, a proximal-end 228, and a medial-zone
230 disposed between the distal-end 226 and the proximal-end 228. The first-sidewall
220 is opposite and parallel at the distal-end 226 to the second-sidewall 222. The
third-sidewall 266 extends from a medial-edge 268 of the first-sidewall 220 and contacts
the second-sidewall 222 from the medial-zone 230 to the proximal-end 228. The third-sidewall
266 is in electrical and physical communication with the first-sidewall 220.
[0032] The third-sidewall 266 defines a plurality of weld-slots 272 longitudinally extending
from the medial-zone 230 to the proximal-end 228. The weld-slots 272 are configured
to interface with an electrical-cable (not shown) sonically welded to the female electrical-terminal
214. The weld-slots 272 expose a surface of the second-sidewall 222 and enable the
electrical-cable to be sonically welded to both the third-sidewall 266 and the second-sidewall
222. The quantity of the plurality of weld-slots 272 and a dimension of the weld-slots
272 may be varied based on a diameter of the electrical-cable and the material thickness
of the female electrical-terminal 214.
[0033] Accordingly, a high-current electrical connector 10 is provided. The connector 10
is beneficial because the connector 10 increases the number of contact-points 40 between
the female electrical-terminal 14 and the male electrical-terminal 16, which may enable
a reduction in resistive-heating of the connector 10 during high-current operation.
[0034] While this invention has been described in terms of the preferred embodiments thereof,
it is not intended to be so limited, but rather only to the extent set forth in the
claims that follow. Moreover, the use of the terms first, second, etc. does not denote
any order of importance, but rather the terms first, second, etc. are used to distinguish
one element from another. Furthermore, the use of the terms a, an, etc. do not denote
a limitation of quantity, but rather denote the presence of at least one of the referenced
items. Additionally, directional terms such as upper, lower, etc. do not denote any
particular orientation, but rather the terms upper, lower, etc. are used to distinguish
one element from another and locational establish a relationship between the various
elements.
1. A high-current electrical connector (10), including a female connector (12) and a
male connector (18), the connector (10) comprising:
a female electrical terminal (14, 114) in the female connector (12) configured to
receive a male electrical terminal (16) of the male connector (18), said female electrical
terminal (14, 114) formed of a single piece of electrically conductive material, said
female electrical terminal (14, 114) having a first sidewall (20, 120) and a second
sidewall (22, 122), said second sidewall (22, 122) defining a distal end (26, 126),
a proximal end (28, 128), and a medial zone (30, 130) disposed therebetween, wherein
the first sidewall (20, 120) is opposite and parallel at the distal end (26, 126)
to the second sidewall (22, 122);
the male electrical terminal (16) including a planar blade shaped portion (54) formed
of an electrically conductive material; and
a contact spring (32) formed of a single piece of electrically conductive material
disposed in the female electrical terminal (14, 114) intermediate to the first sidewall
(20, 120) and the second sidewall (22, 122), said contact spring (32) defines a plurality
of opposed pair contact beams (36), wherein each of the plurality of opposed pair
contact beams (36) have a plurality of outer contact points (38) and have a plurality
of inner contact points (42), wherein the plurality of outer contact points (38) are
in electrical and physical contact with the female electrical terminal (14, 114),
and wherein the plurality of inner contact points (42) are in electrical and physical
contact with opposed sides of the male electrical terminal (16) such that electrical
and physical contact is formed between the contact beam (36), the female electrical
terminal (14, 114), and the male electrical terminal (16) in at least four separate
locations;
characterized in that the male electrical terminal (16) has two exposed edges (56) of the planar blade
shaped portion (54) formed of a dielectric material (58), wherein the dielectric material
(58) is integrally formed with a header wall (60) and a base (62) of the male connector
(18).
2. The high-current electrical connector (10) in accordance with claim 1, wherein the
plurality of opposed pair contact beams (36) are characterized as having a sinusoidally
shaped cross section (44).
3. The high-current electrical connector (10) in accordance with claim 1 or 2, wherein
the plurality of inner contact points (42) and the plurality of outer contact points
(38) are characterized as having a rounded shape (46).
4. The high-current electrical connector (10) in accordance with any one of claims 1
to 3, wherein the contact spring (32) further includes a pair of opposing guide ribs
(48) formed in leading edges of the contact spring (32), said pair of opposing guide
ribs (48) configured to engage and align the male electrical terminal (16) upon insertion
into the female electrical terminal (14) and thereby reduce a transverse movement
of the male electrical terminal (16) when the male electrical terminal (16) is in
a seated position (52).
5. The high-current electrical connector (10) in accordance with any one of claims 1
to 4, wherein the contact spring (32) is characterized as having a U shape (34).
6. The high-current electrical connector (10) in accordance with any one of claims 1
to 5, wherein the female electrical terminal (114) further includes a third sidewall
(166) that extends from a medial edge (168) of the first sidewall (120) to the medial
zone (130) of the second sidewall (122), wherein the third sidewall (166) is in electrical
and physical communication with the medial zone (130) of the first sidewall (120).
7. The high-current electrical connector (10) in accordance with claim 6, wherein the
third sidewall (166) is joined to the medial zone (130) of the second sidewall (122)
by a single clinch rivet (170).
1. Ein elektrischer Hochstromverbinder (10), welcher eine Buchse (12) und einen Steckverbinder
(18) umfasst, wobei der Verbinder (10) umfasst:
einen Buchsenanschluss (14, 114) in der Buchse (12), der dazu ausgebildet ist, einen
Steckverbinderanschluss (16) des Steckverbinders (18) aufzunehmen, wobei der Buchsenanschluss
(14, 114) aus einem Einzelstück aus einem elektrisch leitenden Material gebildet ist,
wobei der Buchsenanschluss (14, 114) eine erste Seitenwand (20, 120) und eine zweite
Seitenwand (22, 122) aufweist, wobei die zweite Seitenwand (22, 122) ein distales
Ende (26, 126), ein proximales Ende (28, 128) und einen medialen Bereich (30, 130),
welcher dazwischen angeordnet ist, definiert, wobei die erste Seitenwand (20, 120)
am distalen Ende (26, 126) gegenüber der zweiten Seitenwand (22, 122) und parallel
dazu angeordnet ist;
der Steckverbinderanschluss (16) ein planares blattförmiges Teil (54) umfasst, das
aus einem elektrisch leitenden Material gebildet ist; und
eine Kontaktfeder (32), die aus einem Einzelstück aus einem elektrisch leitenden Material
gebildet ist und im Buchsenanschluss (14, 114) zwischen der ersten Seitenwand (20,
120) und der zweiten Seitenwand (22, 122) angeordnet ist, wobei die Kontaktfeder (32)
eine Vielzahl von paarweise gegenüberliegenden Kontaktträgern (36) definiert, wobei
jeder Kontaktträger aus der Vielzahl von paarweise gegenüberliegenden Kontaktträgern
(36) eine Vielzahl von Außenkontaktpunkten (38) und eine Vielzahl von Innenkontaktpunkten
(42) aufweist, wobei die Vielzahl von Außenkontaktpunkten (38) im elektrischen und
physischen Kontakt mit dem Buchsenanschluss (14, 114) ist, und wobei die Vielzahl
von Innenkontaktpunkten (42) im elektrischen und physischen Kontakt mit gegenüberliegenden
Seiten des Steckverbinderanschlusses (16) ist, so dass ein elektrischer und physischer
Kontakt zwischen dem Kontaktträger (36), dem Buchsenanschluss (14, 114) und dem Steckverbinderanschluss
(16) an mindestens vier verschiedenen Stellen gebildet ist;
dadurch gekennzeichnet, dass der Steckverbinderanschluss (16) zwei sichtbare Kanten (56) des planaren blattförmigen
Teils (54) aufweist, die aus einem dielektrischen Material gebildet sind, wobei das
dielektrische Material (58) mit einer Kopfwand (60) und einem Boden (62) des Steckverbinders
(18) einstückig gebildet ist.
2. Der elektrische Hochstromverbinder (10) gemäß Anspruch 1, wobei die Vielzahl von paarweise
gegenüberliegenden Kontaktträgern (36) dadurch gekennzeichnet ist, dass sie einen sinusförmigen Querschnitt aufweist.
3. Der elektrische Hochstromverbinder (10) gemäß einem der Ansprüche 1 oder 2, wobei
die Vielzahl von Innenkontaktpunkten (42) und die Vielzahl von Außenkontaktpunkten
(38) dadurch gekennzeichnet sind, dass sie eine gerundete Form (46) aufweisen.
4. Der elektrische Hochstromverbinder (10) gemäß einem der Ansprüche 1 bis 3, wobei die
Kontaktfeder (32) weiter ein Paar von gegenüberliegenden Führungsrippen (48) umfasst,
welche in Vorderkanten der Kontaktfeder (32) gebildet sind, wobei das Paar von gegenüberliegenden
Führungsrippen (48) dazu ausgebildet ist, beim Einführen in den Buchsenanschluss (14)
in den Steckverbinderanschluss (16) einzugreifen und diesen auszurichten, und dadurch
eine Querbewegung des Steckverbinderanschlusses (16) zu reduzieren, wenn der Steckverbinderanschluss
(16) in einer Sitzposition (52) ist.
5. Der elektrische Hochstromverbinder (10) gemäß einem der Ansprüche 1 bis 4, wobei die
Kontaktfeder (32) dadurch gekennzeichnet ist, dass sie eine U-Form (34) aufweist.
6. Der elektrische Hochstromverbinder (10) gemäß einem der Ansprüche 1 bis 5, wobei der
Buchsenanschluss (14) weiter eine dritte Seitenwand (166) umfasst, welche sich von
einer medialen Kante (168) der ersten Seitenwand (120) bis zum medialen Bereich (168)
der zweiten Seitenwand (122) erstreckt, wobei die dritte Seitenwand (166) in elektrischer
und physischer Verbindung mit dem medialen Bereich (130) der ersten Seitenwand (120)
ist.
7. Der elektrische Hochstromverbinder (10) gemäß Anspruch 6, wobei die dritte Seitenwand
(166) durch einen einzelnen Pressniet (170) mit dem medialen Bereich (130) der zweiten
Seitenwand (122) verbunden ist.
1. Un connecteur électrique à courant élevé (10), comprenant un connecteur femelle (12)
et un connecteur mâle (18), le connecteur (10) comprenant :
une borne électrique femelle (14, 114) dans le connecteur femelle (12) conçue de manière
à recevoir une borne électrique mâle (16) du connecteur mâle (18), la borne électrique
femelle (14, 114) étant formée d'une seule pièce d'un matériau électriquement conducteur,
la borne électrique femelle (14, 114) comprenant une première paroi latérale (20,
120) et une deuxième paroi latérale (22, 122), la deuxième paroi latérale (22, 122)
définissant une extrémité distale (26, 126), une extrémité proximale (28, 128) et
une zone médiale (30, 130) disposée entre les deux, selon lequel la première paroi
latérale (20, 120) est disposée de manière opposée et parallèle à la deuxième paroi
latérale (22, 122) au niveau de la première extrémité (26, 126) ;
la borne électrique mâle (16) comprenant une partie plane en forme de lame (54) formée
d'un matériau électriquement conducteur ; et
un ressort de contact (32) formé d'une seule pièce d'un matériau électriquement conducteur
et disposé dans la borne électrique femelle (14, 114) entre la première paroi latérale
(20, 120) et la deuxième paroi latérale (22, 122), le ressort de contact (32) définissant
une pluralité de bras de contact disposés en paires opposées (36), selon lequel chacun
des bras de la pluralité de bras de contact disposés en paires opposées (36) comprend
une pluralité de points de contact extérieurs (38) et une pluralité de points de contact
intérieurs (42), selon lequel la pluralité de points de contact extérieurs (38) est
en contact électrique et physique avec la borne électrique femelle (14, 114), et selon
lequel la pluralité de points de contact intérieur (42) est en contact électrique
et physique avec des côtés opposés de la borne électrique mâle (16) de manière à ce
qu'un contact électrique et physique soit formé entre le bras de contact (36), la
borne électrique femelle (14, 114) et la borne électrique mâle (16) à au moins quatre
emplacements différents ;
caractérisé en ce que la borne électrique mâle (16) comprend deux bords exposés (56) de la partie plane
en forme de lame (54) formés d'un matériau diélectrique (58), selon lequel le matériau
diélectrique (58) est formé d'une seule pièce avec une paroi frontale (60) et une
base (62) du connecteur mâle (18).
2. Le connecteur électrique à courant élevé (10) selon la revendication 1, selon lequel
la pluralité de bras de contact disposés en paires opposées (36) est caractérisée
comme ayant une section transversale (44) en forme de sinusoïde.
3. Le connecteur électrique à courant élevé (10) selon l'une des revendications 1 ou
2, selon lequel la pluralité de points de contact intérieurs (42) et la pluralité
de points de contact extérieurs (38) sont caractérisées comme ayant une forme arrondie
(46).
4. Le connecteur électrique à courant élevé (10) selon l'une des revendications 1 à 3,
selon lequel le ressort de contact (32) comprend en outre une paire de nervures de
guidage opposées (48) formées dans des bords d'attaque du ressort de contact (32),
la paire de nervures de guidage opposées (48) étant conçue de manière à engager et
à aligner la borne électrique mâle (16) au moment de l'insertion dans la borne électrique
femelle (14) et ainsi de réduire un mouvement transversal de la borne électrique mâle
(16) quand la borne électrique mâle (16) est dans une position assise (52).
5. Le connecteur électrique à courant élevé (10) selon l'une des revendications 1 à 3,
selon lequel le ressort de contact (32) est caractérisé comme ayant une forme de U
(34).
6. Le connecteur électrique à courant élevé (10) selon l'une des revendications 1 à 5,
selon lequel la borne électrique femelle (114) comprend en outre une troisième paroi
latérale (166) qui s'étend depuis un bord médial (168) de la première paroi latérale
(120) jusqu'à la zone médiale (130) de la deuxième paroi latérale (122), selon lequel
la troisième paroi latérale (166) est en communication électrique et physique avec
la zone médiale (130) de la première paroi latérale (120).
7. Le connecteur électrique à courant élevé (10) selon la revendication 6, selon lequel
la troisième paroi latérale (166) est reliée à la zone médiale (130) de la deuxième
paroi latérale (122) par un rivet d'étreinte (170).