[0001] The present invention relates to a multi-channel electrical connector such as is
usable for, inter alia, data signal transmission between connected components.
[0002] Multi-channel or multi-track electrical connectors exist in a wide variety of forms,
including plug-and-socket connectors making and breaking electrical connection by
insertion of a plug into and removal of the plug from a socket. In general, the electrical
connection within the plug and socket is produced by interengaging electrically conductive
pins and sleeves or by frictionally interengaging surface areas. Problems commonly
associated with conventional forms of such electrical connection are insecure interengagement,
for example as a consequence of wear, and build-up of insulating oxide coatings at
points of interengagement, leading to intermittent or permanent disruption of the
electrical path produced by the interengagement. In addition, many such connectors
are limited to specific relative rotational relationships of the plug and socket.
[0003] A further issue with conventional connectors is complexity of manufacture, such as
precision production and positional fixing of pins and sleeves or other mating components
which require specific alignments in the plug and socket.
[0004] In a prior art multi-track plug and socket connector disclosed in specification
US 2008/255631 A1 multiple annular springs housed in socket grooves produce electrical contact between
mutually isolated conductive rings in the grooves and mutually isolated conductive
rings of a hollow plug. The plug and socket are complicated multi-component assemblies
made up of separately constructed conductive parts and insulating parts. A connector
described in
US 2014/0179170 A1 is based on a quite different concept with conductive tracks contacted by individual
cantilever spring arms or spring-loaded pins, whereas a connector disclosed in
US 2007/0117433 A1 employs annular springs housed in a socket body and electrically connected with separately
constructed embedded conductor strips: both connectors have relatively expensive constructions
due to individual manufacture of conductive contact or conductor components. Similar
considerations apply to a jack socket which is described in
US Patent 5809136 and which employs a separately constructed self-supporting flexible substrate sheet
with discrete conductor tracks, the substrate being fitted to a socket body as a separate
component. Specific plug constructions, both suitable for use only with conforming
socket constructions, are described in
US 2011/0047789 A1 and
WO 2010/141147 A1: the plug of the former again includes a separately constructed substrate sheet attachable
to a plug body, whereas the plug of the latter has non-annular contact pads metal-coated
on a plug body or annular contact tracks coated on an insulating layer separate from
the plug body. These plugs have complicated constructions and/or require sockets of
complicated construction.
[0005] It is therefore an object of the present invention to provide an electrical connector,
particularly a connector suitable for, inter alia, low-voltage applications and providing
multiple channels or paths, which while utilising the proven plug-and-socket concept
enables creation of a secure electrical connection resistant to unintended interruption
of the electrical path and offers an effective and simple means of realising electrically
conductive regions of the connector.
[0006] A further object of the invention is to provide a connector of the kind mentioned
which is of simple and compact construction and which, in particular, allows discrete
make-and-break connection of multiple conductor tracks with a minimum of complexity
and by an easy action. A subsidiary object of the invention is provision of such a
connector based on a plug-and-socket principle in which it may be possible to produce
electrical connection in any desired relative angular relationship of plug-and-socket
components.
[0007] Other objects and advantages of the invention will be apparent from the following
description.
[0008] According to the present invention there is provided a multi-channel electrical connector,
as defined in claim 1.
[0009] In such a connector the contact-making between socket and plug is achieved with a
high level of maintained security by the resilient contact elements, which in the
presence of the pin in the bore of the socket body are subjected to loading under
compression in the annular grooves of the socket body and loading under expansion
by the annular contact zones of the pin, thus are squeezed between the electrically
conductive surfaces of the grooves and the electrically conductive contact zones of
the pin. The outer diameter of the resilient annular contact element in the relaxed
state of the element can be greater, preferably only slightly greater, for example
5 to 10%, than the outer diameter of the annular groove so that the contact element
is constantly under light compression in the groove even in the absence of the pin.
On the other hand, the inner diameter of the contact element as seated in the groove
is dimensioned to be less, preferably only slightly less, for example 5 to 10%, than
the diameter of the associated contact zone of the pin, so that the contact element
is expanded when the pin is inserted into the bore and the annular contact zone is
aligned with the element. These two sources of spring loading, provided by initial
location of the contact element in the groove at the time of manufacture of the connector
and by engagement of the pin in the bore during use of the connector, can be exploited
to achieve contact of the contact elements under pressure with the relevant surfaces
of the socket and pin bodies through the simple expedient of predetermination of appropriate
diameters of the co-operating elements of groove, contact element and annular contact
zone. Although the contact elements are preferably subject to compression in the grooves
even in the absence of the pin, thus seated under permanent compression in the grooves,
it is equally possible for tolerances to be selected so that the contact elements
are retained in the grooves otherwise than under compression and are expanded to such
an extent on insertion of the pin into the bore of the socket body that the contact
elements are then and only then urged into contact under pressure with the electrically
conductive surfaces of the grooves. In conjunction with the specific form of electrical
contact-making embodied in the connector construction a particularly important feature
is the formation of at least some of the electrically conductive regions of the socket
body and/or plug body by discrete areas of electrically conductive material coated
on the electrically insulating material of the relevant body. This means that the
electrically conductive regions concerned can be provided in particularly simple and
economic manner by, for example, areas or tracks of electrically conductive material
bonded to - in particular plated on, such as by metallisation - a substrate of electrically
insulating material constituting the relevant body. Instead of providing electrical
conductivity by way of, for example, separately formed and individually attached components
such as wires, the formation of some or all the electrically conductive regions from
discrete areas of coated metal, carbon-based composites or other electrically conductive
material may significantly reduce production cost and eliminates welded, soldered
or other connections liable to fault or failure.
[0010] Since all of the annular groove surfaces and the conductors of the socket body are
formed by discrete areas of electrically conductive material coated on the electrically
insulating material of the socket body, the entire socket body can be provided with
a coating of electrically conductive material so that all of the electrically conductive
regions on that body are provided in the same fashion with the same material and,
advantageously, by one and the same coating process.
[0011] For preference, the areas of coated electrically conductive material forming the
conductors of the socket body are provided on walls of passages in the socket body,
so that conductor tracks can be conveniently led in and through the body from the
terminals of the conductors to the electrically conductive surfaces. The passages
can follow any desired route along and/or across the body in accordance with the geometric
shape of the body. In one convenient embodiment, the passages in the socket body can
comprise channels open at the outer circumference of the socket body and vias, i.e.
tunnels, each extending between and communicating with a respective one of the channels
and a respective one of the annular grooves. If the socket body is an injection-moulded
plastics material component such channels can be easily formed at the time of moulding,
whilst the tunnels, if not formed at that time, can be produced subsequently by drilling.
[0012] With respect to the required electrical isolation it can be advantageous if the electrically
insulating material of the socket body has a general coating of the electrically conductive
material and if the electrical isolation of the electrically conductive groove surfaces
and the electrical conductors is provided by areas which separate those groove surfaces
and conductors and are without the coating of electrically conductive material. In
that case, the discrete areas of coated electrically conductive material can, if desired,
be provided by selective application of electrically conductive coating material in
just those areas or by selective masking of regions between those areas and applying
electrically conductive material in the unmasked regions. However, in a particularly
advantageous procedure for achieving the discrete areas of electrically conductive
material, parts of the coating of electrically conductive material are simply removed,
for example by grinding or laser ablation, in the separation areas. Thus, for example,
in the case of the grooves in the wall of the bore in the socket body the coated bore
can be machined, in particular reamed, to return the wall surface to the uncoated
electrically insulating material, but to leave in place the electrically conductive
material still lining the recessed grooves and thus forming the electrically conductive
surfaces thereof, these groove surfaces being electrically isolated by the intervening
sections of the now-uncoated bore wall of the socket body. Similarly, in the case
of the passages defining the electrical conductors the channels can be electrically
isolated by removing electrically conductive material either side of each channel
so that the electrically conductive material on the walls of the channels is isolated.
If vias, i.e. tunnels, are provided and, in particular, formed in the socket body
before application of the overall coating, the tunnels will be lined or even filled
with the electrically conductive coating material and this will be electrically isolated
by the enclosure of each tunnel within the electrically insulating material of the
socket body. If, for example, the terminals terminating the conductors are located
at an end face of the socket body the coated electrically conductive material can
be removed entirely from that face or at least to such an extent as to isolate the
individual terminals. If the terminals are provided at the perimeter of such an end
face the channels can run to the perimeter. However, if the terminals are provided
inwardly of the perimeter, tunnels can be formed, prior to application of the coating,
to run from each channel to an individual point on the end face and will be lined
with the coating material in the same way as the tunnels connecting the channels with
the groove surfaces. Creation of the required electrical isolation by removal of applied
coating material as distinct from selective application of the material or masking
represents a simple and economic way of achieving the desired electrically conductive
and mutually insulated tracks and contact areas in the socket body. A combination
of procedures is, however, possible if this should be advantageous.
[0013] In analogous manner, the electrically conductive regions represented by the annular
contact zones and the conductors of the plug body can be formed by discrete areas
of electrically conductive material coated on the electrically insulating material
of the plug body. In similar manner to the socket body the entire plug body can thus
be provided with a coating of electrically conductive material so that all of the
electrically conductive regions on that body are provided in the same fashion with
the same material and, advantageously, by one of the same coating process. Again,
the areas of coated electrically conductive material forming the conductors of the
plug body can be provided on walls of passages in the plug body. In this case, the
passages in the plug body can comprise vias, i.e. tunnels, extending through the plug
body and each communicating with a respective one of the annular contact zones. Provision
of such tunnels can be conveniently achieved if the plug body is composed of a plurality
of body members of the electrically insulating material permanently joined together
at mating faces thereof, the tunnels in the plug body being formed by channels in
at least one of the mating faces. These channels are formed before the body members
are joined together and conjunctively form the tunnels when the bodies are so joined.
The advantages and merits of a plug body furnished in such a way with the electrically
conductive annular contact zones and the electrical conductors correspond with those
recited above for the socket body.
[0014] Also analogously to the socket body, the electrically insulating material of the
plug body can have a general coating of the electrically conductive material and the
electrical isolation of the electrically conductive annular contact zones and the
electrical conductors can then be provided by areas which separate those zones and
conductors and are without the coating of electrically conductive material. The electrically
isolating areas can be formed by the same described procedures, thus selective application
of the electrically conductive coating material, masking of areas not to be coated
and/or removal of material to create the electrically isolating areas by exposure
of the electrically insulating material of the plug body. The advantages connected
with provision of the electrically insulating areas by omission or removal of the
electrically conductive coating material again correspond with those stated for the
socket body.
[0015] For preference the contact elements are annular coil springs, in which case contact-making
in each of the electrical paths by the respective spring is produced by multiple contact
points, in particular each individual coil of the spring makes contact with the electrically
conductive surface of the associated annular groove of the socket body at the outer
circumference of the spring and with the electrically conductive contact zone of the
pin of the plug body at the inner circumference of the spring. In the case of, for
example, a spring with 50 coils, there can thus be up to 50 points or zones of electrical
contact at each of the inner and outer circumferences of the spring. Even if contact-making
is or becomes insufficient at isolated ones of these points or zones for any reason,
overall contact is not and cannot be lost.
[0016] The annular coil springs, in effect endless garter springs, are preferably canted
coil springs, in which the coils are canted by comparison with the coils of a conventional
coil spring. The canting of the coils assists radial compression and expansion of
each spring, since compression and expansion is accommodated not only by change in
stress in the spring, but also by change in the angle or lay of the individual coils.
Canted coil springs are readily available as proprietary products, in which case choice
of groove diameter and annular contact zone diameter can if desired be selected in
accordance with a suitable commercially available size of spring.
[0017] The electrically conductive annular surface of each of the grooves can be concave
and substantially complementary to a convexity of the annular contact element, for
example coils of a coil spring, arranged therein. This has the result, in the case
of a coil spring, that each coil of each spring has substantially linear, rather than
merely punctiform, contact with the contacted groove surface and thus an optimised
contact area.
[0018] The contact elements can also be, for example, annular bodies of electrically conductive
resilient material, for example elastomer with embedded conductive material such as
carbon or graphite. However, in an advantageous embodiment each of the contact elements
comprises an endless body composed of a series of interconnected alternatively inwardly
and outwardly directed canted spring arms. In this spring construction the spring
arms are preferably curved and have radiused ends so as to facilitate compression/expansion
of the body and sliding contact with the co-operating surfaces of the socket body
and plug body, thus the associated electrically conductive groove surface of the former
and the associated electrically conductive contact zone of the latter. Such a body
can be conveniently produced by, for example, three-dimensional printing to form a
resilient structure of plastics material, which is then metallised.
[0019] Preferably, the socket body defines an axis and the bore is rotationally symmetrical
with respect to the socket body axis. Similarly, for preference the plug body defines
an axis and the pin is symmetrical with respect to the plug body axis. This significantly
enhances handling, since the electrical paths may then be producible in any rotational
setting of the pin in the bore and a requirement to produce interconnection of the
socket and plug by observing a specific relative rotational relationship of the socket
and plug bodies, such as is necessary with multi-pin connectors, is eliminated. The
same quality of electrical connection is achieved by the co-operation of the annular
contact elements with the electrically conductive annular surfaces of the grooves
and with the electrically conductive annular contact zones of the pin circumferential
surface regardless of the rotational settings of the socket and plug bodies. In addition,
any torque exerted on either one of the bodies during use can be accommodated by relative
rotation of the bodies without disrupting the electrical connection or damaging the
socket. However, if so desired the bore and pin could also be, for example, polygonal
so that interconnection is producible only in a defined number of relatively angular
settings, depending on the number of sides of the polygon.
[0020] With advantage, the bore and the pin are substantially cylindrical. Formation of
the bore and pin to be substantially cylindrical simplifies manufacture, since the
grooves in the socket body can then all be of the same diameter with respect to one
another, allowing use of contact elements of the same diameter as one another, and
the annular contact zones of the pin of the plug body can also be of the same diameter
with respect to one another. However, the bore and pin could, if desired, be of mutually
complementary tapered form so as to ensure firm seating of the socket and plug bodies
one in the other, in particular to resist tilting of the bodies relative to one another.
For preference, however, this is achieved by providing the socket body and pin body
with seating surfaces of mutually complementary tapering form interengageable to seat
the bodies one on the other when the pin is inserted into the bore. In that way, the
two bodies can be firmly seated while retaining the advantages of cylindrical shaping
of the bore and pin.
[0021] The terminals of the conductors of the socket body can be disposed at an end face
of the socket body and similarly the terminals of the conductors of the plug body
can be disposed at an end face of the plug body. These terminal locations make it
possible to provide external connections to the bodies generally in axial continuation
of the bore and pin, which assists handling of the connector and overall compactness
in the transverse dimension of the connector.
[0022] The invention also embraces a method of forming the discrete areas of coated electrically
conductive material in a socket of the connector according to the invention, wherein
firstly the socket body is coated in its entirety with the electrically conductive
material and then the discrete areas are defined by selective removal of the electrically
conductive material around those areas, the selective removal preferably being is
carried out by at least one of abrading and reaming. This represents a particularly
simple and effective process for achieving electrical isolation of electrically conductive
regions, especially if those regions possibly have complicated shapes, but the surrounding
regions have shapes which are relatively straightforward to abrade, ream or otherwise
mechanically process.
[0023] A preferred embodiment of the present invention will now be more particularly described
by way of example with reference to the accompanying drawings, in which:
- Fig. 1A
- is a section, along the line I - I of Fig. 1E, of a socket of a connector embodying
the invention;
- Fig. 1B
- is a side view, in the direction of the arrow 18 of Fig. 1A, of the socket;
- Fig. 1C
- is a side view, in the direction of the arrow 1C of Fig. 1A, of the socket;
- Fig. 1D
- is a plan view of the socket;
- Fig. 1E
- is an inverted plan view of the socket;
- Fig. 2A
- is a side view of a plug of the connector;
- Fig. 2B
- is an axial section, along the line II - II of Fig. 2A, of the plug;
- Fig. 2C
- is an axial section, along the line III - III of Fig. 2A, of the plug;
- Fig. 2D
- is a plan view of the plug;
- Fig. 2E
- is an inverted plan view of the plug; and
- Fig. 3
- is a composite sectional (socket) and side (plug) view, to enlarged scale, of the
socket and plug similarly to the views of Figs. 1A and 2A, showing the socket and
plug in states of partial (lefthand side) and full (righthand side) interengagement.
[0024] Referring now to the drawings there is shown a multi-channel electrical connector
10 which is suitable for, but not limited to, low-voltage applications in the field
of data transmission. The connector of the preferred embodiment is capable of handling
higher voltages up to about 50 Volts, but is scalable to conduct voltages even above
that level.
[0025] The connector 10 comprises a socket 20 and a plug 30 which can be plugged together
and unplugged, as described in the following, to make and break an electrical connection
between multiple conductors (not shown), particularly multiple insulated wires, coupled
to the plug and socket. Each wire coupled to the plug and respectively associated
wire coupled to the socket represents an individual channel.
[0026] The socket 20 comprises a cylindrical socket body 21 of electrically insulating material
able to bond with a metallic coating material, preferably a body integrally injection-moulded
from a plastics material, such as polyurethane or nylon. The socket body 21 has an
axial cylindrical bore 22 closed at one end and open at the other end to provide a
socket entrance. The bore 22 is flared at the entrance to provide a conical centring
surface 23. The circumferential wall of the bore 22 is formed with a plurality - here
four - of identical equidistantly and axially spaced apart annular grooves 24 each
having a concave profile in axial section of the body 21. The grooves 24 can be formed
by a rotary milling tool acting on the wall of the bore 22 in a circular direction
to undercut the wall at appropriately preselected spaced-apart axial locations.
[0027] The surfaces of the grooves 24 are electrically conductive and are electrically isolated
from one another. This is achieved in this embodiment by metal-coating the entire
socket body 21 and then abrading or reaming the bore wall to remove the coating from
the segments of the wall between the grooves 24 and segments of the wall outwardly
of the end grooves, thereby creating discrete areas of the electrically conductive
coating material within the grooves; removal of coating material from the latter wall
segments eliminates possible leakage paths to other areas of the socket body 21. The
coating is optionally also removed, by abrading, from the centring surface 23. The
coating process is preferably carried out by firstly copper-plating the body and then
electroplating the copper layer with nickel.
[0028] In Figs. 1A to 1E the areas retaining a coating of the electrically conductive material
are dotted so as to facilitate recognition of electrically conductive areas.
[0029] The socket body 21 also has a plurality of electrical conductors 25 each electrically
connected with the electrically conductive surface of a respective one of the annular
grooves and each terminating in a respective electrical terminal 26 at the end face,
from which the coating of electrically conductive material has also been removed,
of the socket body 21 remote from the socket entrance. Each such conductor 25 is provided
by a coating of the electrically conductive material on the wall of a respective passage
in the socket body 21, in particular on the wall of a respective open channel 25a
extending in the outer circumference of the socket body parallel to the axis of the
bore 22 and on the wall of a tunnel 25b extending between that channel 25a and a respective
one of the annular grooves 24. Each channel 25a extends from the vicinity of the mentioned
end face of the socket body 21 to the vicinity of the associated annular groove 24
and consequently has a length dictated by the spacing of that groove from the end
face. The channel 25a can extend to and open at that end face if the terminal 26 is
located at the perimeter of the end face, but if it is located at a position disposed
inwardly of the perimeter as shown in Fig. 1E the channel can be linked with that
position by a linking tunnel 25c, which also has a coating of the electrically conductive
material on its wall. Such a configuration of the conductor 25 is evident in Figs.
1A to 1E. The channels 25a and tunnels 25b, 25c are formed in the socket body 21,
such as by moulding or drilling, prior to coating the body with the electrically conductive
material and this material in the coating process thus flows into and provides electrically
conductive paths between the grooves 24, channels 25a and tunnels 25b, 25c.
[0030] The coated surfaces of the grooves 24 are electrically isolated by, as previously
stated, removing the coating from the bore wall segments between and outside the grooves.
The coated channels 25a are electrically isolated from one another by removing (abrading)
coating material from areas of the outer circumference of the socket body 21 surrounding
the channels as evident in Figs. 1B and 1C; these areas can be formed by outermost
faces of longitudinally extending and radially outwardly projecting steps at the outer
circumference so as to facilitate the abrading process. The coated tunnels 25b connecting
the channels 25a with the grooves 24 are electrically isolated from one another since
they are entirely enclosed within the constituent electrically insulating material
of the socket body 21. The coated linking tunnels 25c connecting the channels 25a
with the terminals 26 at the end face of the socket body 21 are similarly enclosed
by the electrically insulating material of the socket body and are isolated at its
end face by removal of the coating material therefrom as mentioned beforehand. The
terminals 26 can be, in the simplest form, the open ends of the linking tunnels 25c,
into which bared ends of conductor wires can be inserted and electrically connected
with the coating on the tunnel walls by, for example, soldering or any other suitable
permanent or releasable form of connection, for example by mechanical clamping elements.
[0031] Although production of the socket body 21 by moulding in one piece is preferred,
it is also possible to mould the body in two axial halves which are joined together
by bonding at mating faces lying in a plane containing the bore axis. In that case
the grooves 24 can be formed during the moulding rather than subsequently by milling
or another material removal process. Each groove in each body half is semi-circular.
If the body halves are coated with the electrically conductive material prior to joining,
the mating faces then have to be cleaned of the coating to enable bonding. Other methods
of producing the socket body 21 are conceivable, including machining from a blank
and layer fabrication, thus 3D printing. The electrically conductive material can
also be selectively applied just to the intended electrically conductive areas, for
example by masking the intended electrically isolating areas.
[0032] The socket 20 comprises, additionally to the socket body 21, a respective resilient
electrically conductive annular contact element 27 arranged in each of the grooves
24 and protruding radially inwardly of the wall of the bore 22. In Fig. 1A, for the
sake of clarity with respect to the form of the socket body 21, only one of the grooves
25 is shown with such an element 27, whereas in Fig. 3 the contact elements are shown
in all of the grooves. In the embodiment, each contact element 27 is a circularly
annular stainless-steel coil spring 27a, specifically a canted coil spring in which
the individual coils have a slanted lay, such springs being known for applications
such as seal expanders and as electrical conductors. By comparison with non-canted
coils of a conventional annular coil spring, the cant of the coils imparts to the
spring 27a a greater capability of deflection for a given coil-wire thickness, particularly
in the sense of radial compression and radial expansion. Each annular coil spring
27a has an outer diameter slightly greater than that of the groove 24 in which it
is arranged, so that the spring 27a is seated under compression in the groove. Fitting
of each spring 27a in its groove 24 requires sufficient distortion of the spring to
enable insertion into the bore 24 of the socket body 21 and easing into position in
the groove 24, where the spring can seek to regain its annular form, but - due to
the diametral difference of the spring and groove - cannot not fully relax and accordingly
remains under compression in the groove. This ensures firm seating in the groove 24
and, in particular, contact of the radially outer extremities of the coils of the
spring 27a with the electrically conductive surface of the groove 24, i.e. the nickel
coating in the groove, under pressure and thus secures electrical contact-making with
that surface. This contact-making is effective at multiple locations depending on
the number of coils, for example 50 coils and consequently 50 contact locations. The
convexity of the outer circumference of each coil spring 27a as conjunctively defined
by its coils is substantially complementary to the convexity of the electrically conductive
surface of the associated annular groove 24 so that the spring is a snug fit in the
groove and the contact of each coil with the groove surface is linear, specifically
curvilinear, rather than punctiform.
[0033] However, as already indicated, seating of the springs 27a under compression in the
grooves 24 is preferred, but not essential. As long as the springs are not overly
loose in the grooves, urging of the springs into firm contact with the groove surfaces
can be produced during use of the connector, as described further below.
[0034] The plug 30 can be constructed analogously to the socket 20 and accordingly comprises
a plug body 31 again of electrically insulating material able to bond with a metallic
coating material, preferably a body injection-moulded from a plastics material, such
as polyurethane or nylon. The plug body 31 comprises a generally cylindrical grip
member 32 of approximately the same diameter as the socket body 21 and a coaxial cylindrical
pin 33 of smaller diameter extending from the grip member. The diameter of the pin
33 is smaller than the diameter of the axial bore 22 of the socket body 21 and the
length of the pin slightly less than the length of the bore, so that the pin is insertable
by its free end into the bore and can be entirely received in the bore. The end of
the pin 33 adjoining the grip member 32 has a flared transition to the member so as
to form a centring surface 34 substantially complementary to and co-operable with
the conical centring surface 23 at the entrance of the bore 22 of the socket body
21.
[0035] The circumferential surface of the pin 33 is provided with a plurality - here four
in correspondence with the number of grooves 24 in the socket body - of electrically
conductive annular contact zones 35 equidistantly spaced apart axially of the pin
33, specifically at the same spacings as the grooves 24 in the socket body 21 and
hence as the annular coil springs 27a seated in the grooves. The contact zones 35
are electrically isolated from one another. Similarly to the socket body 21, the electrical
conductivity of the contact zones 35 and mutual electrical isolation is achieved in
this embodiment by metal-coating the entire plug body 31 and then selectively grinding
the pin circumferential surface to remove the coating between the intended contact
zones and also outwardly of the end zone closest to the grip member 32, thereby creating
discrete areas of the electrically conductive coating material. To facilitate grinding,
the circumference of the pin 33 can be slightly stepped in departure from a pure cylindrical
form, specifically so that the contact zones 35 are very slightly recessed; coating
material can then be ground off the proud regions of the pin between and outlying
the contact zones by a tool which can operate with a clearance in relation to the
recessed contact zones. The slight recessing of the contact zones 35, which may remain
even after removal of the coating from the proud regions, may offer the advantage
of a degree of protection of the edges of the coating in the contact zones from abrasion
during movement of the pin 33 in the socket bore 22.
[0036] As with the socket body 21, the coating process is preferably carried out by firstly
copper-plating the plug body 31 and then electroplating the copper layer with nickel.
Similarly to Figs. 1A to 1E, in Figs. 2A to 2E the areas retaining the coating of
electrically conductive material are dotted.
[0037] As a consequence of the described arrangement of the grooves 24 and contact zones
35, each contact zone is disposed in alignment with a respective one of the grooves
- and thus with the coil spring 27a arranged in that groove - when the pin 33 is fully
received in the bore 22 of the socket body 21, as defined by the interengagement of
the flared centring surfaces 23 and 34 respectively of the socket body and plug body.
[0038] Similarly to the socket body 21, the plug body 31 has a plurality of electrical conductors
36 each electrically connected with a respective one of the electrically conductive
annular contact zones 35 and each terminating in a respective electrical terminal
37 at the end face, from which the coating of electrically conductive material has
also been removed, of the grip member 32 remote from the pin 33. Each of these conductors
36 is provided by a coating of the electrically conductive material on the wall of
a respective passage in the plug body 31, in particular on the wall of a respective
tunnel 36a extending longitudinally in both the grip member 32 and the pin 33 parallel
to the cylinder axis thereof and then radially to communicate with a respective one
of the contact zones 35. The longitudinally extending part of each tunnel 36a thus
runs from the mentioned end face of the grip member 32 to the vicinity of the associated
contact zone 35 and consequently has a length dictated by the spacing of that contact
zone from the end face. The configuration of the conductors 36 is evident in Figs.
2A to 2E. The tunnels 36a are formed in the plug body 31, such as by drilling, prior
to coating the body with the electrically conductive material and this material during
the coating process thus flows into and provides electrically conductive paths between
the contact zones 35 and the tunnels 36a.
[0039] The coated tunnels 36a connected with the contact zones 35 are electrically isolated
from one another since they are entirely enclosed within the constituent electrically
insulating material of the plug body 31. The tunnels 36a are similarly isolated at
the free end face of the grip member 32 by removal of the coating material therefrom,
as mentioned beforehand, so as to expose the insulating material of the plug body.
Again analogously to the socket body 21, the terminals 37 of the plug body 31 can
be, in the simplest form, the open ends of the tunnels 36a, into which bared ends
of conductor wires can be inserted and electrically connected with the coating on
the tunnel walls by, for example, soldering or any other suitable non-detachable or
detachable form of connection.
[0040] The plug body 31 can be produced by moulding in one piece, in which case penetration
of the electrically conductive coating material into the tunnels 36a to the extent
necessary to achieve sufficient covering of the tunnel walls can be ensured by various
methods including oversizing the tunnels and/or use of slave feed tunnels from which
any coating can be subsequently removed at least in part. It also possible to produce
the plug body 31 by moulding in two axial halves which are joined together by bonding
at mating faces lying in a plane containing the common axis of the pin and grip member.
In that case the tunnels can be easily formed, during the moulding, as channels open
at the mating faces. If the plug body halves are coated with the electrically conductive
material prior to joining, the mating faces then have to be cleaned of the coating
to enable bonding. Other methods of producing the plug body are conceivable, including
machining from a blank and layer fabrication, thus 3D printing. The electrically conductive
material can also be selectively applied just to the intended electrically conductive
areas, for example by masking the intended electrically isolating areas.
[0041] Each of the coil springs 27a forming one of the resilient electrically conductive
annular contact elements 27 has an inner diameter slightly smaller than the respectively
associated contact zone 35, i.e. the zone with which it is aligned when the pin 33
is fully received in the bore 22 of the socket body 21 as described further above.
As a consequence of this diametral difference, each coil spring 27a is, on insertion
of the pin 33 into the bore 22, expanded by the pin and, in the fully inserted state
of the pin, disposed in contact with the respective contact zone 35 under pressure.
The spring 27a is thereby resiliently urged into contact with both the electrically
conductive surface of the groove 24 and the electrically conductive zone 35. As in
the case of the groove 24, the coils of the coil spring 27a provide multiple points
of electrical contact with the contact zone 35 and thus produce a highly positive
and secure electrical connection between groove and zone. The connections produced
by way of all pairings of groove 24 and contact zone 35 create a plurality of mutually
discrete continuous electrical paths between the terminals 26 of the socket body 21
and the terminals 37 of the plug body 31 via the electrical conductors 25, 36, that
is to say the channels 25a and tunnels 25b, 25c, 36a, of the socket and plug bodies
21, 31, the electrically conductive surfaces of the grooves 24 of the socket body
21, the annular coil springs 27a and the electrically conductive contact zones 35
of the pin 33 of the plug body 31.
[0042] Use of the connector 10 is largely self-evident from the preceding description of
its construction. When the connector is an operationally ready state, that is to say
when external conductors such as sets of wires have been coupled to the terminals
26, 37 of both the socket body 21 and the plug body 31, production of continuous electrical
paths along the sets of wires is achieved by insertion of the pin 33 of the plug 30
into the bore 22 of the socket body 21 in the direction of the arrow in Fig. 3, and
thus through the coil springs 27a seated in the grooves 24 in the wall of the bore
22, until the centring surfaces 23, 34 come into mutual contact, which denotes full
receipt of the pin 33 in the bore 22. Partial insertion of the pin 33 is shown in
the lefthand half of Fig. 3 and full insertion in the righthand half. Insertion of
the pin 33 through the coil springs 27a is accompanied by light expansion of the springs,
which are thereby resiliently urged into contact with the electrically conductive
contact zones 35 of the pin and the electrically conductive surfaces of the grooves
24. If the springs were already seated under compression in the grooves, the degree
of that compression is increased. If the springs were not already seated under compression
in the grooves, compression is then achieved by the expansion of the springs, assuming
a relatively snug fit of the springs in the grooves.
[0043] The resilient contact-making by the coil springs 27a provides a secure electrical
coupling of the socket 20 and plug 30 and establishes individual and mutually electrically
isolated electrical paths through the plug and socket by way of the participating
conductive components described in the foregoing. In addition, the resilient contact
of the springs with the contact zones of the plug provides frictional self-locking
of the interengaged plug and socket and resists separation. The rotationally symmetrical
construction of the socket body 21 and the pin 33 of the plug body 31 allows production
of an electrical connection by the connector 10 in any relative rotational setting
of the socket 20 and plug 30.
1. A multi-channel electrical connector (10) comprising:
a socket (20), which comprises
- a socket body (21) of electrically insulating material defining a bore (22) which
is circumferentially bounded by a wall and which has an open end forming an entrance
of the socket,
the socket body (21) being provided in the wall of the bore (22) with a plurality
of annular grooves (24) spaced apart axially of the bore and each having an electrically
conductive groove surface and
the socket body (21) being further provided with a plurality of electrical conductors
(25) each electrically connected with the electrically conductive surface of a respective
one of the annular grooves (24) and each terminating in a respective electrical terminal
(26) in a region of the socket body remote from the socket entrance,
each electrically conductive groove surface and respective electrical conductor (25)
being electrically isolated from each other electrically conductive groove surface
and electrical conductor (25) of the socket body (21), and
- a plurality of resilient electrically conductive annular contact elements (27) each
arranged in a respective one of the annular grooves (24) to protrude into the bore,
and
a plug (30), which comprises
- a plug body (31) of electrically insulating material defining a pin (33) which is
circumferentially bounded by a circumferential surface and has a free end and which
is insertable by the free end into the bore (22) of the socket body (21) to be received
within the annular contact elements (27) of the socket (20),
the plug body (31) being provided on the circumferential surface of the pin (33) with
a plurality of electrically conductive annular contact zones (35) spaced apart axially
of the pin (33) and
the plug body (31) being further provided with a plurality of electrical conductors
(36) each electrically connected with a respective one of the electrically conductive
annular contact zones (35) of the pin circumferential surface and each terminating
in a respective electrical terminal (37) in a region of the plug body (31) remote
from the free end of the pin (33),
each electrically conductive annular contact zone (35) of the pin circumferential
surface and the respective electrical conductor (36) being electrically isolated from
other electrically conductive annular contact zones (35) of the pin circumferential
surface and the respective electrical conductors (36) of the plug body (31),
wherein the annular grooves (24) correspond in number and axial spacing with the annular
contact zones (35) so that each of the annular grooves (24) and the respective annular
contact element (27) arranged therein are alignable with a respective one of the annular
contact zones (35) when the pin (33) is inserted into the bore (22) and received within
the annular contact elements (27),
wherein the inner diameter of each annular contact element (27) arranged in its annular
groove (24) is dimensioned to be smaller than the diameter of the electrically conductive
annular contact zone (35) with which it is alignable whereby when the pin (33) is
inserted in the bore (22) and the annular contact elements (27) are in alignment with
the annular contact zones (35) the annular contact elements (27) will be disposed
in resilient contact with the electrically conductive surfaces of the respectively
aligned annular grooves (24) and with the respectively aligned annular contact zones
(35) so as to produce a plurality of mutually discrete continuous electrical paths
between the terminals (26) of the electric conductors (25) of the socket body (21)
and the terminals (37) of the electrical conductors (36) of the plug body (31) via
the electrical conductors (25, 36) of both the socket body (21) and plug body (31),
the electrically conductive surfaces of the grooves (24) of the socket body (21),
the annular contact elements (27) and the electrically conductive annular contact
zones (35) of the pin of the plug body (31),
characterized in that electrically conductive regions represented by all the electrically conductive groove
surfaces and all the conductors (25) of the socket body (21) are formed by discrete
areas of electrically conductive material coated on the electrically insulating material
of the socket body (21).
2. A multi-channel electrical connector (10) according to claim 1, wherein the areas
of coated electrically conductive material forming the conductors (25) of the socket
body (21) are provided on walls of passages in the socket body (21).
3. A multi-channel electrical connector (10) according to claim 2, wherein the passages
in the socket body (21) comprise channels (25a) open at the outer circumference of
the socket body (21) and tunnels (25b) each extending between and communicating with
a respective one of the channels (25a) and a respective one of the annular grooves
(24).
4. A multi-channel electrical connector (10) according to any one of the preceding claims,
wherein the electrically insulating material of the socket body (21) has a coating
of the electrically conductive material and wherein the electrical isolation of the
electrically conductive groove surfaces and the electrical conductors (25) is provided
by areas which separate those groove surfaces and conductors (25) and are without
the coating of electrically conductive material.
5. A multi-channel electrical connector (10) according to any one of the preceding claims,
wherein second electrically conductive regions represented by the annular contact
zones (35) and the conductors (36) of the plug body (31) are formed by discrete areas
of electrically conductive material coated on the electrically insulating material
of the plug body (31).
6. A multi-channel electrical connector (10) according to claim 5, wherein the areas
of coated electrically conductive material forming the conductors (36) of the plug
body (31) are provided on walls of passages in the plug body (31).
7. A multi-channel electrical connector (10) according to claim 6, wherein the passages
in the plug body (31) comprise tunnels (36a) extending through the plug body (31)
and each communicating with a respective one of the annular contact zones (35).
8. A multi-channel electrical connector (10) according to claim 7, wherein the plug body
(31) is composed of a plurality of body members of the electrically insulating material
permanently joined together at respective mating faces thereof, the tunnels (36a)
in the plug body (31) being formed by channels in at least one of the mating faces.
9. A multi-channel electrical connector (10) according to any one of the claims 5 to
8, wherein the electrically insulating material of the plug body (31) has a coating
of the electrically conductive material and wherein the electrical isolation of the
electrically conductive annular contact zones (35) and the electrical conductors (36)
is provided by areas which separate those zones and conductors and are without the
coating of electrically conductive material.
10. A multi-channel electrical connector (10) according to any one of the preceding claims,
wherein the annular contact elements (27) are seated under permanent compression in
the grooves (24) of the socket body (21), each of the annular contact elements (27)
preferably being a coil spring (27a), such as a canted coil spring.
11. A multi-channel electrical connector (10) according to any one of the preceding claims,
wherein the electrically conductive annular surface of each of the grooves is concave
and substantially complementary to a convexity of the annular contact element arranged
therein.
12. A multi-channel electrical connector (10) according to any one of the preceding claims,
wherein the terminals (26 or 37) of the conductors (25 or 36) of either or each of
the socket body (21) and the plug body (31) are disposed at an end face of the respective
body (21 or 31).
13. A method of forming the connector (10) according to any one of the preceding claims,
wherein firstly the socket body (21) is coated in its entirety with the electrically
conductive material and then the discrete areas are defined by selective removal of
the electrically conductive material around those areas.
14. A method of forming the connector (10) according to any one of claims 5 to 9, wherein
firstly the plug body (31) is coated in its entirety with the electrically conductive
material and then the discrete areas are defined by selective removal of the electrically
conductive material around those areas
15. A method according to claim 13 or 14, wherein the selective removal is carried out
by at least one of abrading and reaming.
1. Mehrkanaliger elektrischer Steckverbinder (10), umfassend:
eine Buchse (20), die Folgendes umfasst:
- einen Buchsenkörper (21) aus einem elektrisch isolierenden Material, der eine Bohrung
(22) definiert, die in Umfangsrichtung von einer Wand begrenzt wird und die ein offenes
Ende, das einen Eingang der Buchse bildet, aufweist,
wobei der Buchsenkörper (21) in der Wand der Bohrung (22) mit einer Vielzahl von Ringnuten
(24), die längs der Achse der Bohrung beabstandet sind und je eine elektrisch leitende
Nutfläche aufweisen, versehen ist und
wobei der Buchsenkörper (21) ferner mit einer Vielzahl elektrischer Leiter (25), die
je mit der elektrisch leitenden Fläche einer jeweiligen der Ringnuten (24) elektrisch
verbunden sind und je in einem jeweiligen elektrischen Anschluss (26) in einer vom
Buchseneingang entfernten Region des Buchsenkörpers enden, versehen ist,
wobei jede elektrisch leitende Nutfläche und jeder jeweilige elektrische Leiter (25)
von jeder anderen elektrisch leitenden Nutfläche bzw. jedem anderen elektrischen Leiter
(25) des Buchsenkörpers (21) elektrisch getrennt sind, und
- eine Vielzahl elastischer, elektrisch leitender Ringkontaktelemente (27), die je
in einer jeweiligen der Ringnuten (24) so angeordnet sind, dass sie in die Bohrung
vorstehen, und
einen Stecker (30), der Folgendes umfasst:
- einen Steckerkörper (31) aus einem elektrisch isolierenden Material, der einen Stift
(33) definiert, der in Umfangsrichtung von einer Umfangsfläche begrenzt wird und ein
freies Ende aufweist und der durch das freie Ende in die Bohrung (22) des Buchsenkörpers
(21) so einführbar ist, dass er innerhalb der Ringkontaktelemente (27) der Buchse
(20) aufgenommen wird,
wobei der Steckerkörper (31) auf der Umfangsfläche des Stifts (33) mit einer Vielzahl
von elektrisch leitenden Ringkontaktzonen (35), die längs der Achse des Stifts (33)
beabstandet sind, versehen ist und
wobei der Steckerkörper (31) ferner mit einer Vielzahl elektrischer Leiter (36), die
je mit einer jeweiligen der elektrisch leitenden Ringkontaktzonen (35) der Stiftumfangsfläche
elektrisch verbunden sind und je in einem jeweiligen elektrischen Anschluss (37) in
einer vom freien Ende des Stifts (33) entfernten Region des Steckerkörpers (31) enden,
versehen ist,
wobei jede elektrisch leitende Ringkontaktzone (35) der Stiftumfangsfläche und der
jeweilige elektrische Leiter (36) von anderen elektrisch leitenden Ringkontaktzonen
(35) der Stiftumfangsfläche bzw. den jeweiligen elektrischen Leitern (36) des Steckerkörpers
(31) elektrisch getrennt sind,
wobei die Ringnuten (24) in ihrer Anzahl und ihrer Beabstandung längs der Achse mit
den Ringkontaktzonen (35) korrespondieren, sodass jede der Ringnuten (24) und das
jeweilige darin angeordnete Ringkontaktelement (27) nach einer jeweiligen der Ringkontaktzonen
(35) ausrichtbar sind, wenn der Stift (33) in die Bohrung (22) eingeführt und innerhalb
der Ringkontaktelemente (27) aufgenommen wird,
wobei der Innendurchmesser jedes Ringkontaktelements (27), das in seiner Ringnut (24)
angeordnet ist, so bemessen ist, dass er kleiner ist als der Durchmesser der elektrisch
leitenden Ringkontaktzone (35), nach der es ausrichtbar ist, wodurch die Ringkontaktelemente
(27), wenn der Stift (33) in die Bohrung (22) eingeführt wird und die Ringkontaktelemente
(27) nach den Ringkontaktzonen (35) ausgerichtet sind, in einem elastischen Kontakt
mit den elektrisch leitenden Flächen der jeweils ausgerichteten Ringnuten (24) und
mit den jeweils ausgerichteten Ringkontaktzonen (35) positioniert werden, um eine
Vielzahl von zueinander diskreten, durchgängigen Strompfaden zwischen den Anschlüssen
(26) der elektrischen Leiter (25) des Buchsenkörpers (21) und den Anschlüssen (37)
der elektrischen Leiter (36) des Steckerkörpers (31) über die elektrischen Leiter
(25, 36) sowohl des Buchsenkörpers (21) als auch des Steckerkörpers (31), die elektrisch
leitenden Flächen der Nuten (24) des Buchsenkörpers (21), die Ringkontaktelemente
(27) und die elektrisch leitenden Ringkontaktzonen (35) des Stifts des Steckerkörpers
(31) herzustellen,
dadurch gekennzeichnet, dass elektrisch leitende Regionen, die durch alle elektrisch leitenden Nutflächen und
alle Leiter (25) des Buchsenkörpers (21) dargestellt werden, durch diskrete Bereiche
von auf das elektrisch isolierende Material des Buchsenkörpers (21) aufgetragenem
elektrisch leitendem Material gebildet werden.
2. Mehrkanaliger elektrischer Steckverbinder (10) nach Anspruch 1, wobei die Bereiche
von aufgetragenem elektrisch leitendem Material, die die Leiter (25) des Buchsenkörpers
(21) bilden, auf Wänden von Durchgängen im Buchsenkörper (21) bereitgestellt sind.
3. Mehrkanaliger elektrischer Steckverbinder (10) nach Anspruch 2, wobei die Durchgänge
im Buchsenkörper (21) Kanäle (25a), die am Außenumfang des Buchsenkörpers (21) offen
sind, und Tunnel (25b), die sich je zwischen einem jeweiligen der Kanäle (25a) und
einer jeweiligen der Ringnuten (24) erstrecken und je mit dem jeweiligen der Kanäle
und der jeweiligen der Ringnuten in Verbindung stehen, umfassen.
4. Mehrkanaliger elektrischer Steckverbinder (10) nach einem der vorhergehenden Ansprüche,
wobei das elektrisch isolierende Material des Buchsenkörpers (21) eine Beschichtung
aus dem elektrisch leitenden Material aufweist und wobei die elektrische Trennung
der elektrisch leitenden Nutflächen und der elektrischen Leiter (25) durch Bereiche,
die diese Nutflächen und Leiter (25) trennen und nicht mit dem elektrisch leitenden
Material beschichtet sind, bereitgestellt wird.
5. Mehrkanaliger elektrischer Steckverbinder (10) nach einem der vorhergehenden Ansprüche,
wobei zweite elektrisch leitende Regionen, die durch die Ringkontaktzonen (35) und
die Leiter (36) des Steckerkörpers (31) dargestellt werden, durch diskrete Bereiche
von auf das elektrisch isolierende Material des Steckerkörpers (31) aufgetragenem
elektrisch leitendem Material gebildet werden.
6. Mehrkanaliger elektrischer Steckverbinder (10) nach Anspruch 5, wobei die Bereiche
von aufgetragenem elektrisch leitendem Material, die die Leiter (36) des Steckerkörpers
(31) bilden, auf Wänden von Durchgängen im Steckerkörper (31) bereitgestellt sind.
7. Mehrkanaliger elektrischer Steckverbinder (10) nach Anspruch 6, wobei die Durchgänge
im Steckerkörper (31) Tunnel (36a), die sich durch den Steckerkörper (31) erstrecken
und je mit einer jeweiligen der Ringkontaktzonen (35) in Verbindung stehen, umfassen.
8. Mehrkanaliger elektrischer Steckverbinder (10) nach Anspruch 7, wobei sich der Steckerkörper
(31) aus einer Vielzahl von Körperbauteilen aus dem elektrisch isolierenden Material,
die an jeweiligen Passflächen davon unlösbar zusammengefügt sind, zusammensetzt, wobei
die Tunnel (36a) im Steckerkörper (31) durch Kanäle in mindestens einer der Passflächen
gebildet werden.
9. Mehrkanaliger elektrischer Steckverbinder (10) nach einem der Ansprüche 5 bis 8, wobei
das elektrisch isolierende Material des Steckerkörpers (31) eine Beschichtung aus
dem elektrisch leitenden Material aufweist und wobei die elektrische Trennung der
elektrisch leitenden Ringkontaktzonen (35) und der elektrischen Leiter (36) durch
Bereiche, die diese Zonen und Leiter trennen und nicht mit dem elektrisch leitenden
Material beschichtet sind, bereitgestellt wird.
10. Mehrkanaliger elektrischer Steckverbinder (10) nach einem der vorhergehenden Ansprüche,
wobei die Ringkontaktelemente (27) unter ständiger Zusammenpressung in den Nuten (24)
des Buchsenkörpers (21) sitzen, wobei jedes der Ringkontaktelemente (27) vorzugsweise
eine Schraubenfeder (27a), etwa eine Schraubenfeder mit schräger Wicklung, ist.
11. Mehrkanaliger elektrischer Steckverbinder (10) nach einem der vorhergehenden Ansprüche,
wobei die elektrisch leitende Ringfläche jeder der Nuten konkav und im Wesentlichen
komplementär zu einer Konvexität des darin angeordneten Ringkontaktelements ist.
12. Mehrkanaliger elektrischer Steckverbinder (10) nach einem der vorhergehenden Ansprüche,
wobei die Anschlüsse (26 oder 37) der Leiter (25 oder 36) des Buchsenkörpers (21)
und/oder des Steckerkörpers (31) an einer Stirnfläche des jeweiligen Körpers (21 oder
31) positioniert sind.
13. Verfahren zum Bilden des Steckverbinders (10) nach einem der vorhergehenden Ansprüche,
wobei zunächst der Buchsenkörper (21) ganz mit dem elektrisch leitenden Material beschichtet
wird und danach die diskreten Bereiche durch eine selektive Abtragung des elektrisch
leitenden Materials um diese Bereiche herum definiert werden.
14. Verfahren zum Bilden des Steckverbinders (10) nach einem der Ansprüche 5 bis 9, wobei
zunächst der Steckerkörper (31) ganz mit dem elektrisch leitenden Material beschichtet
wird und danach die diskreten Bereiche durch eine selektive Abtragung des elektrisch
leitenden Materials um diese Bereiche herum definiert werden.
15. Verfahren nach Anspruch 13 oder 14, wobei die selektive Abtragung durch Abschleifen
und/oder Abreiben ausgeführt wird.
1. Connecteur électrique multicanaux (10) comportant :
une prise (20), qui comporte
- un corps (21) de prise en matériau électriquement isolant définissant un alésage
(22) qui est délimité circonférentiellement par une paroi et qui présente une extrémité
ouverte formant une entrée de la prise,
le corps (21) de prise étant muni, dans la paroi de l'alésage (22), d'une pluralité
de rainures annulaires (24) espacées suivant l'axe de l'alésage et présentant chacune
une surface de rainure électriquement conductrice et
le corps (21) de prise étant en outre muni d'une pluralité de conducteurs électriques
(25) dont chacun est relié électriquement à la surface électriquement conductrice
d'une rainure respective parmi les rainures annulaires (24) et chacun se termine dans
une borne électrique (26) respective dans une région du corps de prise éloignée de
l'entrée de la prise,
chaque surface de rainure électriquement conductrice et chaque conducteur électrique
(25) respectif étant isolés électriquement de chaque autre surface de rainure électriquement
conductrice et de chaque autre conducteur électrique (25) du corps (21) de prise,
et
- une pluralité d'éléments élastiques électriquement conducteurs (27) de contact annulaire
placés chacun dans une rainure respective parmi les rainures annulaires (24) de façon
à faire saillie dans l'alésage, et
une fiche (30), qui comporte
- un corps (31) de fiche en matériau électriquement isolant définissant une broche
(33) qui est délimitée circonférentiellement par une surface circonférentielle et
présente une extrémité libre et qui peut être insérée par l'extrémité libre dans l'alésage
(22) du corps (21) de prise pour être reçue à l'intérieur des éléments (27) de contact
annulaire de la prise (20),
le corps (31) de fiche étant muni, sur la surface circonférentielle de la broche (33),
d'une pluralité de zones électriquement conductrices (35) de contact annulaire espacées
suivant l'axe de la broche (33) et
le corps (31) de fiche étant en outre muni d'une pluralité de conducteurs électriques
(36) dont chacun est relié électriquement à une zone respective parmi les zones électriquement
conductrices (35) de contact annulaire de la surface circonférentielle de la broche
et chacun se termine dans une borne électrique respective (37) dans une région du
corps (31) de fiche éloignée de l'extrémité libre de la broche (33),
chaque zone électriquement conductrice (35) de contact annulaire de la surface circonférentielle
de la broche et le conducteur électrique (36) respectif étant isolés électriquement
d'autres zones électriquement conductrices (35) de contact annulaire de la surface
circonférentielle de la broche et des conducteurs électriques (36) respectifs du corps
(31) de fiche,
les rainures annulaires (24) correspondant en nombre et en espacement axial aux zones
(35) de contact annulaire, de telle sorte que chacune des rainures annulaires (24)
et l'élément (27) respectif de contact annulaire placé dans celle-ci puissent être
alignés avec une zone respective parmi les zones (35) de contact annulaire lorsque
la broche (33) est insérée dans l'alésage (22) et reçue à l'intérieur des éléments
(27) de contact annulaire,
le diamètre intérieur de chaque élément (27) de contact annulaire placé dans sa rainure
annulaire (24) étant dimensionné pour être plus petit que le diamètre de la zone électriquement
conductrice (35) de contact annulaire avec laquelle il peut être aligné, ce qui fait
que, lorsque la broche (33) est insérée dans l'alésage (22) et que les éléments (27)
de contact annulaire sont en alignement avec les zones (35) de contact annulaire,
les éléments (27) de contact annulaire sont disposés en contact élastique avec les
surfaces électriquement conductrices des rainures annulaires (24) respectivement alignées
et avec les zones (35) de contact annulaire respectivement alignées de façon à produire
une pluralité de trajets électriques continus mutuellement distincts entre les bornes
(26) des conducteurs électriques (25) du corps (21) de prise et les bornes (37) des
conducteurs électriques (36) du corps (31) de fiche via les conducteurs électriques
(25, 36) du corps (21) de prise ainsi que du corps (31) de fiche, les surfaces électriquement
conductrices des rainures (24) du corps (21) de prise, les éléments (27) de contact
annulaire et les zones électriquement conductrices (35) de contact annulaire de la
broche du corps (31) de fiche,
caractérisé en ce que des régions électriquement conductrices représentées par toutes les surfaces de rainures
électriquement conductrices et tous les conducteurs (25) du corps (21) de prise sont
formées par des zones distinctes de matériau électriquement conducteur dont est revêtu
le matériau électriquement isolant du corps (21) de prise.
2. Connecteur électrique multicanaux (10) selon la revendication 1, les zones revêtues
de matériau électriquement conducteur qui forment les conducteurs (25) du corps (21)
de prise étant réalisées sur les parois de passages dans le corps (21) de prise.
3. Connecteur électrique multicanaux (10) selon la revendication 2, les passages dans
le corps (21) de prise comportant des canaux (25a) ouverts sur la circonférence extérieure
du corps (21) de prise et des tunnels (25b) dont chacun s'étend entre et communique
avec un canal respectif parmi les canaux (25a) et une rainure respective parmi les
rainures annulaires (24).
4. Connecteur électrique multicanaux (10) selon l'une quelconque des revendications précédentes,
le matériau électriquement isolant du corps (21) de prise étant doté d'un revêtement
du matériau électriquement conducteur et l'isolation électrique des surfaces de rainures
électriquement conductrices et des conducteurs électriques (25) étant assurée par
des zones qui séparent ces surfaces de rainures et ces conducteurs (25) et qui sont
dépourvues du revêtement de matériau électriquement conducteur.
5. Connecteur électrique multicanaux (10) selon l'une quelconque des revendications précédentes,
des secondes régions électriquement conductrices représentées par les zones (35) de
contact annulaire et les conducteurs (36) du corps (31) de fiche étant formées par
des zones distinctes de matériau électriquement conducteur dont est revêtu le matériau
électriquement isolant du corps (31) de fiche.
6. Connecteur électrique multicanaux (10) selon la revendication 5, les zones revêtues
de matériau électriquement conducteur qui forment les conducteurs (36) du corps (31)
de fiche étant réalisées sur des parois de passages dans le corps (31) de fiche.
7. Connecteur électrique multicanaux (10) selon la revendication 6, les passages dans
le corps (31) de fiche comportant des tunnels (36a) s'étendant à travers le corps
(31) de fiche et communiquant chacun avec une zone respective parmi les zones (35)
de contact annulaire.
8. Connecteur électrique multicanaux (10) selon la revendication 7, le corps (31) de
fiche étant composé d'une pluralité de pièces de corps du matériau électriquement
isolant jointes ensemble de manière permanente au niveau de leurs faces d'accouplement
respectives, les tunnels (36a) dans le corps (31) de fiche étant formés par des canaux
dans au moins une des faces d'accouplement.
9. Connecteur électrique multicanaux (10) selon l'une quelconque des revendications 5
à 8, le matériau électriquement isolant du corps (31) de fiche étant doté d'un revêtement
du matériau électriquement conducteur et l'isolation électrique des zones électriquement
conductrices (35) de contact annulaire et des conducteurs électriques (36) étant assurée
par des zones qui séparent ces zones et ces conducteurs et qui sont dépourvues du
revêtement de matériau électriquement conducteur.
10. Connecteur électrique multicanaux (10) selon l'une quelconque des revendications précédentes,
les éléments (27) de contact annulaire reposant sous compression permanente dans les
rainures (24) du corps (21) de prise, chacun des éléments (27) de contact annulaire
étant de préférence un ressort hélicoïdal (27a), tel qu'un ressort hélicoïdal incliné.
11. Connecteur électrique multicanaux (10) selon l'une quelconque des revendications précédentes,
la surface annulaire électriquement conductrice de chacune des rainures étant concave
et sensiblement complémentaire à une convexité de l'élément de contact annulaire placé
dans celle-ci.
12. Connecteur électrique multicanaux (10) selon l'une quelconque des revendications précédentes,
les bornes (26 ou 37) des conducteurs (25 ou 36) du corps (21) de prise et/ou du corps
(31) de fiche étant disposés au niveau d'une face d'extrémité du corps respectif (21
ou 31).
13. Procédé de formation du connecteur (10) selon l'une quelconque des revendications
précédentes, le corps (21) de prise étant d'abord revêtu en totalité du matériau électriquement
conducteur, puis les zones distinctes étant définies par enlèvement sélectif du matériau
électriquement conducteur autour des zones en question.
14. Procédé de formation du connecteur (10) selon l'une quelconque des revendications
5 à 9, le corps (31) de fiche étant d'abord revêtu en totalité du matériau électriquement
conducteur, puis les zones distinctes étant définies par enlèvement sélectif du matériau
électriquement conducteur autour des zones en question.
15. Procédé selon la revendication 13 ou 14, l'enlèvement sélectif étant réalisé par abrasion
et/ou par alésage.