| (19) |
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(11) |
EP 0 951 744 B2 |
| (12) |
NEW EUROPEAN PATENT SPECIFICATION |
| (45) |
Date of publication and mentionof the opposition decision: |
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05.09.2007 Bulletin 2007/36 |
| (45) |
Mention of the grant of the patent: |
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06.06.2001 Bulletin 2001/23 |
| (22) |
Date of filing: 17.12.1997 |
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| (51) |
International Patent Classification (IPC):
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| (86) |
International application number: |
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PCT/IB1997/001578 |
| (87) |
International publication number: |
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WO 1998/031078 (16.07.1998 Gazette 1998/28) |
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COAXIAL SWITCH CONNECTOR ASSEMBLY
KOAXIALE SCHALTVERBINDUNGANORDNUNG
ENSEMBLE CONNECTEUR COMMUTATEUR COAXIAL
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Designated Contracting States: |
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DE FR GB SE |
| (30) |
Priority: |
13.01.1997 GB 9700531
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| (43) |
Date of publication of application: |
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27.10.1999 Bulletin 1999/43 |
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Proprietor: THE WHITAKER CORPORATION |
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Wilmington, Delaware 19808 (US) |
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Inventors: |
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- BOZZER, Dieter
CH-1800 Bex (CH)
- RITHENER, Blaise
CH-1800 Vevey (CH)
- THOMAS, Lionel
CH-1967 Bramois (CH)
- DUQUERROY, Patrick
D-63500 Froschhausen (DE)
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| (74) |
Representative: Heinz-Schäfer, Marion |
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Tyco Electronics Logistics AG
Ampèrestrasse 3 9323 Steinach 9323 Steinach (CH) |
| (56) |
References cited: :
EP-A- 0 537 883 FR-A- 2 733 348 JP-A- 8 241 651 US-A- 4 580 862 US-A- 5 516 303
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EP-A- 0 685 911 GB-A- 2 128 038 US-A- 4 286 335 US-A- 5 278 570 US-A- 5 652 177
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[0001] This invention relates to a coaxial connector assembly.
[0002] A common application for coaxial connectors with a switching function is found in
cellular phones. Cell phones comprise their own antennas, but when mounted on a support
in an automobile for example, the cell phone connects to an antenna on the automobile.
The connection of the cell phone to the automobile antenna requires a switch during
plugging of the cell phone to the support. The antenna connector is typically a coaxial
type of connector having an inner conductor concentrically surrounded by a ground
conductor.
[0003] US 4286335 describes a coaxial dual antenna connection arrangement for communications apparatus.
The coaxial connector has a switch.
[0004] US 4580862 discloses a floating coaxial connector. The plug connector includes a mounting member
for mounting to a panel. The plug body floats in the mounting member.
[0005] A coaxial connector with an outer shell and a body in which is mounted a center pin
is disclosed in
GB 2128038 A. A tapered spring is provided between body and shell to permit the pin to float.
[0006] Another example of a coaxial switching connector assembly is shown in
European Patent Application 0 685 911-A1. The switch function is accomplished by provision of a spring loaded bush mounted
concentrically around a coaxial centre pin conductor and biased against a conductor
pad. Disconnection between the centre pin and conductor pad occurs during plugging
of the complementary connector which depresses the concentric bush member.
[0007] From next coming
FR-A-2733348 a coaxial connector assembly with a first coaxial connector and a second coaxial connector
matable therewith in an axial direction is known. Each of the connectors comprises
a mating section having an inner contact surrounded by an outer contact and separated
therefrom by a dielectric. The inner contact of the first coaxial connector is resiliently
moveable in the axial direction and substantially pin shaped. The first connector
includes first and second contact legs, the second comprising a resilient supported
contact arm for engagement against the other contact when the connectors are unmated.
The first contact leg is engaged by a non conducting portion of the inner contact
of the first coaxial connector when the connectors are mated and the first inner contact
of the first coaxial connector is axially depressed. The inner contact of the first
coaxial connector is supported by a coil spring that moves it back to its initial
position.
[0008] From
JP-A-08241651 a switched coaxial connector is known that can be surface mounted on a printed circuit
board. The connector comprises a housing with an outer contact and first and second
contact legs, the second comprising a resilient supported contact arm for engagement
against the other contact when the connector is unmated. Further the connector comprises
an opening for receiving a complementary coaxial connector.
[0009] The inner conductor of the complementary coaxial connector interacts with the resilient
contact arm to open the contact between the two contacts of the switched coaxial connector.
[0010] One of the problems of the latter design and other coaxial connectors, is that they
are not adapted to absorb relatively large tolerances in positioning of the mating
parts. This is particularly important in applications such as cell phones, where in
comparison to the connector size, the positioning of the cell phone in its support
(cradle) may vary significantly.
[0011] Another problem arises from the frequent plugging and unplugging and the relatively
large shocks and forces to which contacts are subject in applications such as cell
phones. It would be desirable to provide a coaxial connector interface that supports
high mechanical solicitation and a large number of connection cycles in a compact
and cost-effective manner.
[0012] An object of this invention is to provide a coaxial connector assembly that withstands
a large number of plugging/unplugging cycles in a reliable manner. It would be advantageous
to provide a coaxial connector assembly that can tolerate relatively large tolerances
between mating parts. It would be advantageous to provide a coaxial connector assembly
with switching function that can withstand many connection/disconnection cycles. It
would be further advantageous to provide such connector assemblies in a cost-effective,
compact and robust manner.
[0013] Objects of this invention have been achieved by providing the coaxial connector assembly
according to claim 1. Disclosed herein is a connector assembly comprising a first
coaxial connector and a second coaxial connector matable therewith in an axial direction,
each connector comprising a mating section having an inner contact surrounded by an
outer contact and separated therefrom by a dielectric, the first or second coaxial
connectors having a tapered funnel shaped lead-in portion for guiding and locating
the connector mating sections of the first and second coaxial connectors during plugging
together, wherein the inner contact of the first coaxial connector has a pin shape
and is resiliently movable in the axial direction and the contact legs of the first
coaxial connector have surface mount contact pads and are positioned at opposed ends
of the connector.
[0014] A further preferred feature is provision of the axially movable centre contact of
the fixed connector that abuts the centre contact of the mobile connector. The latter
enhances resistance to shocks and permits reliable connection for many plugging/unplugging
cycles. Face to face abutment of centre contacts enables contacts to project only
by small amounts from mating faces of the dielectric, thereby reducing the risk of
bending or otherwise damaging the centre pin contacts.
[0015] One of the connectors may comprise a spring resilient in a radial direction orthogonal
to the axial direction, the spring positioned intermediate the mating section and
a support for fixed attachment to a device such that the connector is resiliently
floatable in the radial direction with respect to the device. The spring may further
be resilient in the axial direction for axial resilient movement of the connector.
[0016] Advantageously therefore, large tolerances between mating parts may be absorbed for
reliable interconnection over many cycles, and lowering risk of damaging mating components.
[0017] Further preferred aspects of the invention will be apparent from the following description,
drawings or claims.
[0018] An embodiment of this invention will now be described by way of example with reference
to the figures, in which;
Figure 1 is a cross-sectional view through a coaxial connector assembly according
to this invention in a position just prior to mating;
Figure 2 is a view similar to that of Figure 1 of the connector assembly in the fully
mated position;
Figure 3 is a side plan view of a fixed connector of the connector assembly;
Figure 4 is a cross-sectional view through lines 4-4 of Figure 3;
Figure 5 is a view in the direction of arrow 5 of Figure 4;
Figure 6 is a detailed plan view of part of a printed circuit board on which the connector
of Figures 3-5 is received;
Figure 7 is an exploded cross-sectional view through a mobile connector of the connector
assembly of Figures 1 and 2; and
Figure 8 is a plan end view of part of the connector of Figure 7.
[0019] Referring to Figures 1 and 2, a coaxial connector assembly 2 comprises a first connector
4 mounted on a printed circuit board (PCB) 5 within a device such as a portable phone
having an outer housing 6 for reception in a device such as a telephone cradle 8 within
which a second connector 10 is mounted for mating with the first connector 4. Hereinafter
the first connector 4 will also be called the mobile device connector and the second
connector 10 will also be called the fixed device connector.
[0020] Referring mainly to Figures 1,2,7 and 8, the fixed device connector 10 comprises
a mating section 12, a mounting section 14, and a connection section 16. The connection
section 16 comprises a tubular portion 18 having a passage 20 for receiving an inner
conducting wire 22 surrounded by a dielectric 24 of a coaxial (e.g. antenna) cable
26. The outer surface 28 of the tubular portion 18 is for receiving an outer conductor
30 of the cable 26 thereover. The outer conductor 30 is crimped to the tubular portion
by provision of a metallic ring 32 provided therearound, which is plastically deformed
during the crimping process. The latter ensures on the one hand good electrical contact
between the outer conductor 30 and the connection section, and on the other hand serves
as a strain relief for securely holding the cable 26 to the second connector 10. As
shown in Figure 1, a rear portion 33 of the securing ring 32 crimps around the outer
insulation of the cable 26. The connection section 16 further comprises a conductive
casing 34 integral with the tubular portion 18 and having an axially extending passage
36 orthogonal to the tubular portion and in communication with the inner conductor
receiving cavity 20 thereof. The axial passage 36 is provided with an end cap 37 that
closes a rear end of the passage once the cable is assembled to the second connector
10. In particular, the open end of the passage 36 enables the cable inner conductor
22 to be soldered, for example to a connection portion 38 of an inner contact 40 of
the connector. A dielectric cap 42 can be further provided for positioning over the
inner contact connection portion 38 prior to mounting of the cover 37 in order to
separate the inner contact 38 from the outer housing and cover 34,37 which perform
the function of outer conductor.
[0021] The inner contact 40 is mounted within a dielectric 44 which further supports an
outer contact 46 concentrically therearound and extending in an axial direction A.
The outer contact 46 is electrically and mechanically connected to the connection
section outer conductor 34 by means of deformable crimping tabs 48 of the connection
section crimped around a shoulder 50 at a connection end of the outer contact 46.
The dielectric 44 is provided with a shoulder 52 sandwiched between shoulders of the
outer conductor housing 34 and the outer contact 46 for secure attachment thereof.
[0022] The inner contact 40 is securely held to the dielectric 44 by means of retention
barbs 54 provided therealong in an interference fit with the dielectric 44. A mating
end of the substantially cylindrically shaped inner contact 40 is provided with a
recess 56, in this embodiment conically shaped. The recess 56 forms a contact surface
for receiving and locating a complementary pin contact 58 of the mobile device connector
4 in resilient axial abutment thereagainst. The mating end 57 of the inner contact
40 is slightly recessed with respect to a mating face 59 of the connector, although
it is possible to vary the position of the dielectric mating face 59' as best seen
when comparing the slightly different embodiments of figures 2 and 7. The latter provides
additional protection to the inner contact, and particularly the contact surface 56.
[0023] The outer contact 46 is provided with resilient cantilever beam contact arms 60 extending
from the mating end 59, their free ends 62 being resiliently inwardly (i.e. radially
towards the inner contact 40) biasable. The free ends 62 are provided with contact
protrusions 64 for resiliently contacting a concentric outer contact 66 of the mating
mobile device connector 4. The resilient cantilever beams 60 are formed by cutting
axially extending slits out of the generally tubular shaped outer contact 46.
[0024] The mounting section 14 comprises a spring member 68 fixed at one end 70 to the connector
mating section 12, and fixed at the other end 72 to a support member 74 securely attached
to the device 8, which for example could be the housing of a mobile phone receiving
cradle. An axial abutment member 76 is securely attached to the connector mating section
12 proximate the connection end 75 to limit axial displacement of the connector beyond
a mating side 78 of the fixed device 8. The abutment member 76 engages a shoulder
79 of the support 8. The spring member 68 is in this embodiment a coil spring having
a substantially tapered or conical shape where a small diameter end is wound around
and attached to the outer contact 46 at the mating section attachment end 70, and
the large diameter end is at the support attachment end 72 in abutment against the
support ring 74. The conical shape of the spring enables both axial movement in direction
A and radial movement in a plane with a direction R orthogonal to the axial direction
A. The connector abutment 76 is thus slidably mounted against the surface 79 of the
device 8. The axial biasing force of the spring 68 is slightly greater than the mating
force upon full mating of the connectors 4,10, such that the spring is generally only
axially compressed once the connectors have been fully mated depending on tolerances.
If tolerances between the coupled connectors are such that the spring is axially compressed,
the abutment member 76 lifts off the support face 79 of the device 8. The spring may
also act to absorb shocks on the fixed device connector 10, for example if the mobile
device housing 6 or other objects abut the connector such that it resiliently moves
axially or radially, thereby reducing the risk of damage by such shocks.
[0025] As best seen in Figure 2, the conically shaped coil spring 68 enables substantial
radial movement of the fixed device connector 10 with respect to the fixed device
8 in order to absorb tolerances in the radial direction in positioning between the
mating connectors 10,4. A flexible film or membrane 80 may be provided attached to
the outer contact 46 of the mating section 12 in order to cover the cavity 82 of the
device 8 within the mating section 12 is received. The latter serves to prevent ingress
of dust and the like into the device.
[0026] Referring mainly to Figures 1-5, the mobile device connector 4 comprises a dielectric
housing 84 within which is axially slidably mounted the centre contact 58, and mounted
concentrically therearound is an outer contact 66. The connector 4 has a mating section
86 and connection section 88. The connection section 88 comprises a first contact
leg 89 and a second contact leg 90 mounted within recesses 91,92 respectively at a
PCB mounting end 83 of the dielectric 84. The contact legs 89,90 have surface mount
contact portions 93 for surface mount soldering on a PCB 94 for interconnection to
electrical components of a mobile phone, for example. The second contact leg 90 comprises
a resilient contact arm 96 having a contact protrusion 97 for engagement against a
contact surface 98 of the first contact leg 89. The contact arm 96 is prestressed
when mounted in the dielectric 84 such that the contact surfaces 97,98 abut with a
certain force for reliable electrical contact therebetween. The resilient contact
arm 96 extends across and axially below a rounded connection end 99 of the centre
pin contact 58. When the pin contact 58 is depressed towards the PCB 5, the contact
arm 96 is thus depressed and electrical connection between the legs 89,90 is broken.
When the connectors 10,4 are fully mated, abutment of the inner contacts 40,58 thus
breaks contact between the contact legs 89,90 as shown in Figure 2. The latter switch
function for example causes a cell phone antenna to be switched to the antenna of
the fixed device 8 when the cell phone is mounted thereon. The resilient contact arm
also provides the spring force for abutting the slidable inner contact 58 against
the mating inner contact 40, such that few components are needed to provide the switching
and contact functions. The axial face-to-face abutment of the slidable inner contact
58 and inner contact 40 as shown in Figure 2, enables the slidable contact end 85
to project only slightly beyond the mating face 87 of the dielectric 84. The latter
reduces the risk of damage to the contacts during plugging, or with respect to external
objects.
[0027] The outer contact 66 is provided with a large conical lead-in section 94 for guiding
the mating section 12 during plugging. The tapered or conical lead-in section 94 is
quite substantial in order to absorb relatively large tolerances in radial positioning
of the connectors 4, 10.
[0028] The contacts legs 89,90, which may be cost effectively manufactured from stamping
and forming sheet metal, are provided with V-shaped retention members 100 that dig
into opposed walls of a slot 102 in the mounting end 93 of the dielectric 84. The
contact legs can thus be securely attached and positioned with respect to the dielectric
84 by merely depressing the retention portions 100 into the slot 102. The connector
4 maybe robustly supported on the PCB by the solder connection of the contact legs
93 in addition the solder connection of the outer contact 66 which is provided with
opposed solder mount extensions 104 mountable against the PCB 5. As shown in Figure
6, the PCB 5 is provided with arcuate conductive traces 106 for solder connection
to the outer contact solder mount extensions 104. Due to the arcuate shape of the
extensions 104, which are substantially a continuation of the cylindrical shape of
the outer contact 66, a robust attachment to the PCB is provided, in addition to the
possibility of providing a substantial solder area around the connector 4 that enhances
the robustance of the solder connection. The solder connections also provide the electrical
connections to the outer and inner contacts 66,58.
1. A coaxial connector assembly (2) comprising a first coaxial connector (4) and a second
coaxial connector (10) matable therewith in an axial direction (A), each connector
comprising a mating section (86,12) having an inner contact (58,40) surrounded by
an outer contact (66,46) and separated therefrom by a dielectric (84,44),
the inner contact (58) of the first coaxial connector (4) being substantially pin
shaped and resiliently movable in the axial direction (A) with respect to the outer
contact (66) of the first coaxial connector (4),
the first coaxial connector further including first and second contact legs (89, 90),
at least one of which comprising a resiliently supported contact arm (96) for engagement
against the other contact leg when the connectors are unmated, and the contact legs
(89, 90) of the first coaxial connector each having surface mount contact pads (93),
positioned at opposed ends of the connector, for soldering on a PCB (5),
characterized in that the first coaxial connector (4) has a tapered funnel shaped lead-in portion (94)
for guiding and locating the connector mating sections (86,12) of the first and second
coaxial connectors during plugging together,
in that the resiliently supported contact arm (96) is engaged by the inner contact (58) of
the first coaxial connector when the inner contact (58) is axially depressed during
mating of the coaxial connectors,
in that the resiliently supported contact arm (96) alone provides the spring force for abutting
the movable inner contact (58) against the mating inner contact (40) of the second
coaxial connector (10).
2. The connector assembly of claim 1-wherein the inner contact (40) of the second coaxial
connector (10) a concave contact surface (56) fixed in relation to the dielectric
(44).
3. The connector assembly of claim 2 wherein the contact surface (56) is substantially
conical in shape.
4. The connector assembly of any one of claims 1-3 wherein the mating section (12) of
the second coaxial connector is resiliently floatably mounted to a support (72,74)
of a device (8).
5. The connector assembly of any one of claims 1-4 wherein the funnel shaped lead-in
portion (94) on the first coaxial connector (4) extends beyond a mating face (87)
of the first connector dielectric (84), and wherein the pin-shaped centre contact
(58) of the first coaxial connector has a contact end (85) projecting beyond the dielectric
mating face (87) less than the lead-in portion (94).
6. A coaxial connector assembly (2) according to any one of the preceding claims, wherein
at least the second coaxial connector (10) comprises a spring (68) resilient in a
radial direction (R) orthogonal to the axial direction, the spring positioned intermediate
the mating section (12) and a support (74) for fixed attachment to a device (8) within
which the second coaxial connector is mounted, such that the second coaxial connector
(10) is resiliently floatable in the radial direction with respect to the device (8).
7. The connector assembly of claim 6 wherein the spring is also resilient in the axial
direction (A), whereby the spring force is greater than a mating force required for
fully mating the coaxial connector (4,10).
8. The connector assembly of claims 6 or 7 wherein the spring is a substantially conically
shaped coil-spring, engaging at a small diameter end (70) the mating section (12)
of the second coaxial connector (10), and at a large diameter end (72) the support
(74).
9. The connector assembly of any one of the preceding claims wherein the first coaxial
connector outer contact (66) comprises extensions (104) on opposed sides of the dielectric
(84) for mounting on a PCB (5), the extensions having a curved shape in axial continuation
of a substantially cylindrical mating section of the outer contact such that the solder
pads (105) arranged at ends of the extensions (104) have substantially arcuate shapes.
1. Koaxialverbinderanordnung (2), umfassend einen ersten Koaxialverbinder (4) und einen
zweiten Koaxialverbinder (10), der damit in einer axialen Richtung (A) in Eingriff
kommen kann, wobei jeder Verbinder einen Eingriffsabschnitt (86, 12) umfasst, der
einen inneren Kontakt (58, 40) aufweist, der von einem äußeren Kontakt (66, 46) umgeben
ist und davon durch ein Dielektrikum (84, 44) getrennt ist,
wobei der innere Kontakt (58) des ersten Koaxialverbinders (4) im Wesentlichen stiftförmig
ist und in der axialen Richtung (A) in Bezug auf den äußeren Kontakt (66) des ersten
Koaxialverbinders (4) elastisch beweglich ist,
wobei der erste Koaxialverbinder weiterhin erste und zweite Kontaktschenkel (89, 90)
enthält, von denen mindestens einer einen elastisch unterstützten Kontaktarm (96)
zum Eingriff gegen den äußeren Kontaktschenkel umfasst, wenn die Verbinder nicht im
Eingriff sind, und die Kontaktschenkel (89, 90) des ersten Koaxialverbinders jeweils
Oberflächenmontagekontaktanschlussflächen (93) aufweisen, die an gegenüberliegenden
Enden des Verbinders zum Löten auf eine Leiterplatte (5) angeordnet sind,
dadurch gekennzeichnet, dass der erste Koaxialverbinder (4) einen kegelförmigen, trichterförmigen Einführungsabschnitt
(94) zum Führen und Positionieren der Verbindereingriffsabschnitte (86, 12) des ersten
und zweiten Koaxialverbinders während des Zusammensteckens aufweist,
dass der elastisch unterstützte Kontaktarm (96) durch den inneren Kontakt (58) des
ersten Koaxialverbinders in Eingriff kommt, wenn der innere Kontakt (58) während des
Eingriffs der Koaxialverbinder axial heruntergedrückt wird,
dass der elastisch unterstützte Kontaktarm (96) alleine die Federkraft zum Aufeinanderstoßen
des beweglichen inneren Kontakts (58) gegen den inneren Gegenkontakt (40) des zweiten
Koaxialverbinders (10) bereitstellt.
2. Verbinderanordnung nach Anspruch 1, bei der der innere Kontakt (40) des zweiten Koaxialverbinders
(10) eine konkave Kontaktfläche (56) aufweist, die in Beziehung zum Dielektrikum (44)
unbeweglich ist.
3. Verbinderanordnung nach Anspruch 2, bei der die Kontaktfläche (56) im Wesentlichen
eine kegelförmige Form aufweist.
4. Verbinderanordnung nach einem der Ansprüche 1-3, bei der der Eingriffsabschnitt (12)
des zweiten Koaxialverbinders an einer Halterung (72, 74) einer Vorrichtung (8) elastisch
schwimmfähig montiert ist.
5. Verbinderanordnung nach einem der Ansprüche 1-4, bei der sich der trichterförmige
Einführungsabschnitt (94) am ersten Koaxialverbinder (4) über eine Eingriffsfläche
(87) des ersten Verbinderdielektrikums (84) hinaus erstreckt, und bei der der stiftförmige
Mittelkontakt (58) des ersten Koaxialverbinders ein Kontaktende (85) aufweist, das
über die dielektrische Eingriffsfläche (87) weniger vorsteht als der Einführungsabschnitt
(94).
6. Koaxialverbinderanordnung (2) nach einem der vorhergehenden Ansprüche, bei der mindestens
der zweite Koaxialverbinder (10) eine Feder (68) aufweist, die in einer radialen Richtung
(R) orthogonal zur axialen Richtung elastisch ist, wobei die Feder zwischen dem Eingriffsabschnitt
(12) und einer Halterung (74) für eine unbewegliche Befestigung an einer Vorrichtung
(8) positioniert ist, innerhalb der der zweite Koaxialverbinder montiert ist, so daß
der zweite Koaxialverbinder (10) in der radialen Richtung mit Bezugnahme auf die Vorrichtung
(8) elastisch schwimmfähig ist.
7. Verbinderanordnung nach Anspruch 6, bei der die Feder ebenfalls in der axialen Richtung
(A) elastisch ist, wodurch die Federkraft größer ist als eine Eingriffskraft, die
für einen vollständigen Eingriff des Koaxialverbinders (4, 10) erforderlich ist.
8. Verbinderanordnung nach Anspruch 6 oder 7, bei der die Feder eine im wesentlichen
kegelförmig geformte Spiralfeder ist, die am Ende (70) mit kleinem Durchmesser mit
dem Eingriffsabschnitt (12) des zweiten Koaxialverbinders (10) und am Ende (72) mit
großem Durchmesser mit der Halterung (74) in Eingriff ist.
9. Verbinderanordnung nach einem der vorhergehenden Ansprüche, bei der der äußere Kontakt
(66) des ersten Koaxialverbinders Verlängerungen (104) an gegenüberliegenden Seiten
des Dielektrikums (84) für ein Montieren auf eine Leiterplatte (5) aufweist, wobei
die Verlängerungen eine gebogene Form in axialer Fortsetzung eines im wesentlichen
zylindrischen Eingriffsabschnittes des äußeren Kontaktes aufweisen, so daß die Lötflächen
(105), die an Enden der Verlängerungen (104) angeordnet sind, im wesentlichen bogenförmige
Formen aufweisen.
1. Assemblage de connecteur coaxial (2), comprenant un premier connecteur coaxial (4)
et un deuxième connecteur coaxial (10) pouvant être accouplé avec celui-ci dans une
direction axiale (A), chaque connecteur comprenant une section d'accouplement (86,
12), comportant un contact interne (58, 40) entouré par un contact externe (66, 46)
et séparé de celui-ci par un diélectrique (84, 44), le contact interne (58) du premier
connecteur coaxial (4) ayant pratiquement une forme en broche et pouvant être élastiquement
déplacé dans la direction axiale (A) par rapport au contact externe (66) du premier
connecteur coaxial (4),
le premier connecteur coaxial englobant en outre des première et deuxième branches
de contact (89, 90), au moins une de celles-ci comprenant un bras de contact à support
élastique (96) destiné à s'engager contre l'autre branche de contact lorsque les connecteurs
sont désaccouplés, et
les branches de contact (89, 90) du premier connecteur coaxial comportant chacune
des plots de contact montés en surface (93), positionnés au niveau des extrémités
opposées du connecteur, en vue du soudage sur une carte à circuit imprimé (PCB) (5),
caractérisé en ce que le premier connecteur coaxial (4) comporte une partie d'entrée en forme d'entonnoir
effilé (94) pour guider et positionner les sections d'accouplement (86, 12) des premier
et deuxième connecteurs coaxiaux au cours de leur branchement,
en ce que le bras de contact à support élastique (96) est engagé dans le contact interne (58)
du premier connecteur coaxial lorsque le contact interne (58) est soumis à une pression
axiale au cours de l'accouplement des connecteurs coaxiaux,
en ce que le bras de contact à support élastique (96) produit seul la force élastique en vue
de la butée du contact interne mobile (58) contre le contact interne d'accouplement
(40) du deuxième connecteur coaxial (10).
2. Assemblage de connecteur selon la revendication 1, dans lequel le contact interne
(40) du deuxième connecteur coaxial (10) comporte une surface de contact concave (56)
fixée par rapport au diélectrique (44).
3. Assemblage de connecteur selon la revendication 2, dans lequel la surface de contact
(56) a une forme pratiquement conique
4. Assemblage de connecteur selon l'une quelconque des revendications 1 à 3, dans lequel
la section d'accouplement (12) du deuxième connecteur coaxial est montée sur un support
(72, 74) d'un dispositif (8) de sorte à pouvoir y flotter élastiquement.
5. Assemblage de connecteur selon l'une quelconque des revendications 1 à 4, dans lequel
la partie d'entrée en forme d'entonnoir (94) sur le premier connecteur coaxial (4)
s'étend au-delà d'une face d'accouplement (87) du diélectrique (84) du premier connecteur,
le contact central en forme de broche (58) du premier connecteur coaxial comportant
une extrémité de contact (85) débordant au-delà de la face d'accouplement diélectrique
(87) sur une distance inférieure à celle de la partie d'entrée (94).
6. Assemblage de connecteur coaxial (2) selon l'une quelconque des revendications précédentes,
dans lequel au moins le deuxième connecteur coaxial (10) comprend un ressort (68)
présentant une élasticité dans une direction radiale (R) orthogonale à la direction
axiale, le ressort étant agencé entre la section d'accouplement (12) et un support
(74) en vue d'une fixation ferme sur un dispositif (8), dans lequel est monté le deuxième
connecteur coaxial, de sorte que le deuxième connecteur coaxial (10) peut flotter
élastiquement dans la direction radiale par rapport au dispositif (8).
7. Assemblage de connecteur selon la revendication 6, dans lequel le ressort présente
aussi une élasticité dans la direction axiale (A), la force de ressort étant supérieure
à une force d'accouplement nécessaire à l'accouplement complet du connecteur coaxial
(4, 10).
8. Assemblage de connecteur selon les revendications 6 ou 7, dans lequel le ressort est
un ressort à boudin de forme pratiquement conique, s'engageant au niveau d'une extrémité
de petit diamètre (70) dans la section d'accouplement (12) du deuxième connecteur
coaxial (10) et au niveau d'une extrémité de grand diamètre (72) dans le support (74).
9. Assemblage de connecteur selon l'une quelconque des revendications précédentes, dans
lequel le contact externe du premier connecteur coaxial (66) comprend des extensions
(104) sur les côtés opposés du diélectrique (84) en vue du montage sur une PCB (5),
les extensions ayant une forme courbée, constituant une continuation axiale d'une
section d'accouplement pratiquement cylindrique du contact externe, de sorte que les
plots de soudage (105) agencés au niveau des extrémités des extensions (104) ont des
formes pratiquement arquées.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description