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EP 0 709 926 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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13.01.1999 Bulletin 1999/02 |
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Date of filing: 27.10.1995 |
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International Patent Classification (IPC)6: H01R 13/621 |
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A center jackscrew type connector system
Verbindersystem vom Typ zentrale Steckbuchseschraube
Système de connecteur de type centre jack vis
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Designated Contracting States: |
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DE FR GB IT |
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Priority: |
28.10.1994 US 331258
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Date of publication of application: |
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01.05.1996 Bulletin 1996/18 |
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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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- Myer, John Mark
Millersville, Pennsylvania 17551 (US)
- Anderson, Mark Dwayne
Kernersville, North Carolina 27284 (US)
- Denlinger, Keith Robert
Lancaster, Pennsylvania 17601 (US)
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| (74) |
Representative: Warren, Keith Stanley et al |
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BARON & WARREN
18 South End
Kensington London W8 5BU London W8 5BU (GB) |
| (56) |
References cited: :
EP-A- 0 550 334 US-A- 5 165 834
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GB-A- 2 272 335 US-A- 5 271 689
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] The present invention relates to the field of electrical connectors, and more particularly,
to center jackscrew type connectors with over torque protection and with enhanced
locking performance.
[0002] Center jackscrew type connectors, such as described in GB-A-2272335 typically include
a pair of mating plastic housings (a module housing and a receptacle housing) which
are connected to each other and fastened by means of a steel bolt which has a threaded
portion and a flange spaced apart from the threaded portion. The threaded portion
of the bolt is threaded into a tapped metal insert installed longitudinally within
the module housing until both the module housing and the receptacle housing bottom.
As the bolt is over torqued, the plastic housings are placed in greater and greater
compression. Referring to FIGS. 1 and 2, of the accompanying drawings, which Figures
illustrate a prior art centre jackscrew connector, a module housing 10 mates with
a receptacle housing 11 by means of a bolt 12. A metal insert 13 is installed within
the module housing 10 to receive the threaded portion 14 of the bolt 12. The bolt
12 is threaded into the metal insert 13 until mating surface 16 of the module housing
10 and mating surface 17 of the receptacle housing 11 bottom (or engage each other).
As the bolt 12 is over torqued, the module housing 10 and the receptacle housing 11
are placed in continually increasing compression until the plastic breaks. For example,
a particular application in the automotive field requires a torque of 70 cm-kg (60
inch-pounds) which translates into a compressive force of 575 kg (1,270 pounds) on
the plastic housings. The excessive torque is applied by a flange 21 on the bolt 12
(FIG. 1) which engages a tower 18 on the plastic housing 11 (FIG. 2) causing the tower
18 to mushroom out, shear off or crack.
[0003] A typical remedy for overcoming this problem is to employ additional strengthening
components or else use very high compressive strength plastics as a material for the
housings, all of which is burdensome and costly.
[0004] Another problem associated with center jackscrew type connectors is that after exposure
to time and high temperature, the plastic will creep. A preload on the bolt 12, which
was generated by the plastic in compression and which prevented the bolt 12 from coming
loose initially, would therefore diminish sufficiently so that the bolt 12 will come
loose. As the bolt 12 vibrates, the housings 10 and 11 of the connector assembly may
come apart, and thus the connector assembly will result in loss of electrical engagement.
Typically, an extra metal spring washer (or "dry lock") is used in the connector assembly
to prevent the bolt 12 from coming loose. Any extra elements in the connector assembly
are a distinct disadvantage and require additional assembly procedures.
[0005] Therefore, it would be highly desirable to have a more cost effective and simple
method for making center jackscrew type connector systems more reliable and free from
quality assurance problems.
[0006] It is, therefore, an object of the present invention to provide a cost effective
center jackscrew type connector assembly, wherein the plastic parts of the connector
assembly are not subject to damage under excessive torque loads, thereby eliminating
plastic creep problems.
[0007] It is another object of the present invention to provide a center jackscrew type
connector assembly with enhanced locking performance, thereby providing a permanent
mechanical connection of the parts of the connector assembly and reliable electrical
engagement of electrical contacts.
[0008] It is yet another object of the present invention to provide a simple and cost-effective
method for maintaining a locking force between the threads of the bolt and the internal
threads of the metal insert.
[0009] According to one aspect of the present invention as defined in claim 1, in a central
jackscrew type connector system, a plastic receptacle housing has an engagement surface
and a crush rib on the engagement surface, and a module connector includes a metal
insert having an internally-threaded blind axial bore having a bottom at a predetermined
depth. When the blind axial bore receives the threaded portion of the bolt, the tip
of the threaded portion engages the bottom of the blind axial bore prior to a flange
on the bolt engaging the engagement surface of the receptacle housing. The flange
engages the crush rib, thereby applying a required compressive load to the crush rib,
which serves as sacrificial plastic.
[0010] The metal-to-metal contact between the tip of the bolt and the bottom of the blind
axial bore keeps the flange on the bolt at a certain distance from the engagement
surface of the receptacle housing, even if a sufficient over-torque is applied to
the bolt, thereby avoiding an excessive compressive load to be applied to the receptacle
housing.
[0011] The threaded portion of the bolt is received into the blind axial bore by turning
the bolt until the tip on the threaded portion engages the bottom of the blind axial
bore. Then, the bolt is turned further to a predetermined torque. This stretches the
insert axially relative to the bolt and deforms the internal threads, thereby removably
locking the bolt to the insert.
[0012] The method of providing additional lock force holding the threaded portion of the
bolt within the module connector forms the subject of claim 6.
[0013] An embodiment of the present invention will now be described by way of example with
reference to the accompanying drawings in which:
[0014] FIG. 1 is a lonqitudinal cross-sectional view of a module connector of the prior
art.
[0015] FIG. 2 is a longitudinal cross-sectional view of a complementary receptacle housing
of the prior art.
[0016] FIG. 3 is a perspective exploded view of a connector assembly of the present invention.
[0017] FIG. 4 is a perspective view of the module connector.
[0018] FIG. 5 is a longitudinal sectional view of the module connector taken along lines
5-5 of FIG. 4.
[0019] FIG. 6 is a perspective view of the receptacle housing.
[0020] FIG. 7 is a longitudinal sectional view of the receptacle housing taken along lines
7-7 of FIG. 6.
[0021] FIGS. 8-11 are longitudinal sectional views showing the connector assembly mating
sequence.
[0022] FIGS. 12-15 show respective longitudinal enlarged sectional views of the bolt within
the metal insert during the over torquing procedure.
[0023] Referring to FIGS. 3-12, the connector assembly 22 of the present invention includes
a module connector 23, an upper connector subassembly 24, sealing O-rings 25, a bolt
12, and a rubber bolt grommet 26. The module connector 23 and the upper connector
subassembly 24 are removably secured to each other by the bolt 12. O-rings 25 provide
a sealing function where the module connector and the upper connector subassembly
24 are received in a casting 27 (for example, an automotive transmission casing) as
shown more clearly in FIG. 5.
[0024] The module connector 23 includes a plastic module housing 28 and a metal insert 29
(preferably made of brass) secured within the module housing 28 along its longitudinal
axis 30. As best shown in Fig. 5, the metal insert 29 has an internally threaded blind
axial bore 31 having a bottom 32 and a plurality of internal threads 33. The bottom
32 is located a predetermined depth 34 within the blind axial bore 31. On its external
surface, the metal insert 29 has three rings 35, 36 and 37 with external threads,
thereby securing the metal insert 29 within the module housing 28. While the internal
surface of the blind axial bore 31 is shaped as a right cylinder, the external surface
has a gradually changing cross-section diameter, increasing in the direction from
an opening 38 of the blind axial bore 31 towards the head 39 of the metal insert 29.
[0025] In the center of the module housing 28, a tower-like element 40 is provided to receive
and secure a portion of the metal insert 29. A step-like element 41 is extended above
a bottom 42 of the module housing 28 and extends longitudinally from the bottom 42
until the tower-like element 40. The step-like element 41 has walls 43, which form
recesses 44 between an external surface of the walls 43 and an internal surface 45
of walls 46 of the module housing 28. The internal surface 45 of the walls 46 forms
a box-like receptacle cavity 47, while an external surface 48 of the walls 46 is formed
as a cylinder. The external surface 48 has a recess 49 for receiving one of the sealing
O-rings 25 for sealing contact between the casting 27 and the module housing 28.
[0026] As shown more clearly in FIG. 7, the upper connector subassembly 24 includes a plastic
receptacle housing 50 and a plurality of conductive wires (not shown) received in
respective slots 51. The receptacle housing 50 includes a module side 52 and a wire
side 53 connected by a main body 54. The module side 52 has walls 55 which, being
of rectangular box-like shape, fit into the box-like receptacle cavity 47 of the module
housing 28. On their external surface, the walls 55 have tabs 56 (FIGS. 8, 9) which
are received in respective keyways 57 (FIG. 4) on internal surface 45 of the walls
46 of the module housing 28. The walls 55 extend from the main body 54 the full internal
length of the module housing 28.
[0027] The main body 54 of the receptacle housing 50, being of cylindrical shape outwardly,
has the same diameter as the cylindrical external surface 48 of the walls 46. This
diameter is identified as a major diameter. The main body provides two recesses 61
for sealing O-rings 25.
[0028] The wire side 53 of the receptacle housing 50 has an axial tower-like element 62
having a cylindrical shape. The tower-like element 62 extends a predetermined length
63 (for example, 24.50 mm) from the mating surface 59 and has an engagement surface
64. In cross-sectional view (FIG. 7), the engagement surface 64 has a ring shape of
a certain width 66. Crush rib 65 is integrally molded on the engagement surface 64.
Crush rib 65 also has a cylindrical shape; however, a width 67 of the crush rib 65
is smaller than the width 66 of the engagement surface 64. The crush rib 65 extends
axially from the engagement surface 64 by a certain length 68, such that an edge 69
of the crush rib 68 is spaced apart from the mating surface 59 by a predetermining
length 70, for example, 25.50 mm.
[0029] Referring to FIG. 3, the bolt 12 has a threaded portion 71, having a plurality of
external threads 72, the flange 21 at the head 19, and a tip 73. The tip 73 is spaced
apart from the flange 21 by a predetermined distance 74.
[0030] As the module connector 23 and the upper connector subassembly 24 are being mated,
the preassembled bolt 12 (inserted by its threaded portion first through a central
through opening 75 and turned into the blind axial bore 31) is turned until the tip
73 hits the bottom 32 of the blind axial bore 31. Since the blind axial bore 31 has
the predetermined depth 34 and the flange 21 is spaced apart from the tip 73 by the
predetermined distance 74, the flange 21 is kept continuously a certain distance 76
from the mating surface 58 of the module housing 28, for example, 25.00 mm. When the
tip 73 of the bolt 12 bottoms in the blind axial bore 31, the 25.00 mm distance 76
will not change regardless of torque applied to the bolt 12, due to metal-to-metal
engagement of the steel tip 73 and brass bottom 32 of the blind axial bore 31. Due
to chosen combination of the predetermining length 63, the predetermined length 70,
the predetermined depth 34, and the predetermined distance 74, the tip 73 engages
the bottom 32 simultaneously with the engagement between the mating surfaces 58, 59
and prior to the flange 21 of the bolt 12 engaging the engagement surface 64 of the
tower-like element 62 on the receptacle housing 50. It will be appreciated by those
skilled in the art, that due to the combination of the aforesaid predetermined dimensions,
if the bolt 12 is over torqued by any required value, it will not crush or deform
the plastic. The engagement surface 64 itself does not bear a torque force applied
by flange 21. Rather, it is the crush rib 65, which bears the torque load applied
by the flange 21, which creates compressive force on plastic module housing 28 and
the receptacle housing 50. The crush rib 65 serves as sacrificial plastic material
which is easily compressed and sheared off by the flange 21 of the bolt 12 in order
that the module housing 28 and the receptacle housing could be held snugly together
but not under the excessive compressive load.
[0031] Referring to FIGS. 8-11, showing the module housing 28 and the receptacle housing
50 in their mating sequence, tabs 56 on external surface of the walls 54 of the receptacle
housing 50 engage respective keyways on the module housing 28. The major diameter
of the main body 54 of the receptacle housing 50 engages the casting 27. The threads
72 of the bolt 12 engage the internal threads 33 of the blind axial bore 31, and the
bolt is torqued down (O-rings 25 enter the casting 27) as the bolt 12 is turned until
the tip 73 engages the bottom 32 and the mating surfaces 58 and 59 are engaged. Simultaneously,
the crush rib 65 is sheared off and deformed by the flange 21 of the bolt 12. Since
the receptacle housing 50 does not support the torque load generated by the bolt 12,
the plastic creep problems are eliminated. This design can provide protection for
plastic housings practically for any desired over torque. For example, an over torque
of 70 cm-kg (60 inch-pounds), which is translated into a compressible force of above
575 kg (1,270 pounds) on the plastic housings 28, 50 has been achieved.
[0032] Referring to FIGS. 12-15, after the bolt 12 is turned into the blind axial bore 31
in the metal insert 29 (FIG. 12), and after the tip 73 of the bolt 12 engages the
bottom 32 (FIG. 13), the mating surfaces 58 and 59 engage (FIG. 11), the bolt 12 is
turned further (additional force is applied) to a predetermined torque value. This
step causes a stretching of the metal insert 29 axially relative to the bolt 12 (FIGS.
14, 15). While the internal threads 33 are being deformed, the strain energy is being
stored in the deformed system. A portion of the stored strain energy remains in the
deformed system even after thermal cycling. This stored strain energy provides a frictional
locking force between the internal threads 33 of the blind axial bore 31 and the external
threads 72 of the bolt 12 and does not appreciably diminish during thermal cycling
and vibration. Metal-to-metal interference of the steel bolt 12 and the brass threaded
insert 29 keeps the bolt 12 from vibrating loose. The bolt 12 will not loosen and
allow loss of electrical engagement between wires (not shown) and respective contact
members (not shown). The steel bolt 12 may be employed in combination with the brass
metal insert 29. It would also work if materials of the bolt and the metal insert
were reversed, and/or the metal insert 29 would be made as the compressed member.
For example, if the bolt 12 had a shoulder which bottomed on the mating face of the
metal insert 29, the metal insert 29 would be compressed as the bolt 12 was turned.
[0033] Accordingly, the present invention provides a superior central jackscrew connector
having a robust design, over torque protection for plastic components, reduced plastic
creep problems and enhanced locking performance, thereby assuring proper mechanical
and electrical engagement of all components of the connector system.
1. A central jackscrew type connector system (22) comprising a module connector (23)
and a connector subassembly (24) removably secured to the module connector (23) by
means of a bolt (12) which has a threaded portion (71), a flange (21) and a tip (73),
the module connector (23) having a module housing (28) and a metal insert (29) which
is secured within the module housing (28) and which has an internally-threaded blind
axial bore (31) engaging the threaded portion (71) of the bolt (12) and a bottom (32)
spaced a predetermined depth within the blind axial bore, characterised in that a
receptacle housing (50) of the connector subassembly (24) has a crush rib (65) on
an engagement surface (64), and the tip (73) of the bolt (12) is in engagement with
the bottom (32) of the blind axial bore (31) and engages said bottom prior to the
flange (21) of the bolt (12) engaging the engagement surface (64) of the receptacle
housing (50), whereby the flange (21) is retained a certain distance from the engagement
surface (64) and the flange (21) engages the crush rib (65) and applies a required
load to the crush rib (65).
2. The connector system of claim 1, wherein the module (28) housing has a first mating
surface (58), the receptacle housing (50) has a second mating surface (59), and the
first and the second mating surfaces engage each other when the tip (73) of the threaded
portion (71) of the bolt (12) engages the bottom (32) of the blind axial bore (31).
3. The connector system of claim 2, wherein the crush rib (65) has an edge (69), and
said edge (69) and the engagement surface (64) are axially spaced apart from the second
mating surface (59) by a first and a second predetermined length, respectively, the
first predetermined length being larger than the second predetermined length, and
wherein a distance between the flange (21) of the bolt (12) and the first and the
second mating surfaces (58,59), respectively, is larger than the second predetermined
length and smaller than the first predetermined length.
4. The connector system of claim 1, 2 or 3, wherein the receptacle housing (50) includes
a module side (52) and a wire side (53) integrally connected by a main body (54),
and the module side (52) includes walls (55) having an external surface including
a plurality of tabs (56), and wherein the module housing (28) provides a receptacle
cavity (47), and an internal surface (45) of the receptacle cavity (47) has a plurality
of keyways (57), the respective walls (55) on the module side (52) of the receptacle
housing (50) being received in the receptacle cavity (47) in the module housing (28)
with each of said plurality of tabs (56) being received into a respective one of said
plurality of keyways (57).
5. The connector system of claim 1, 2, 3 or 4, wherein the crush rib (65), deformed by
the flange (21) on the bolt (12), creates in conjunction with a preload on a threaded
portion (71) of the bolt (12) a required compressive force for holding the module
housing (28) and the receptacle housing (50) in an engagement.
6. The connector system of any preceding claim, wherein the bolt (12) is made of steel
and the metal (29) insert is made of a lower strength metal.
7. The connector system of any preceding claim 1 to 5, wherein the metal insert (29)
is made of steel and the bolt (12) is made of a lower strength metal.
8. The connector system of any preceding claim, wherein the metal insert (29) comprises
a compressed member.
9. A method of providing additional lock force holding the threaded portion (71) of a
bolt (12) within a first plastic subassembly (23) of a connector system comprising
first and second plastic sub-assemblies (23, 24) removably secured to each other by
means of the bolt (12), the bolt having a flange (21) axially spaced from the threaded
portion and bearing on the second plastic subassembly (24), and the threaded portion
of the bolt having a tip (73), said method comprising securing a metal insert (29)
within the first plastic subassembly (23) along a longitudinal axis thereof, said
metal insert having a blind axial bore (31) of a predetermined depth and the blind
axial bore having a bottom (32) and internal threads (33), engaging the threaded portion
of the bolt (12) into the blind axial bore (31), and turning the bolt to secure the
subassemblies together, characterised by providing a crush rib (65) on an engagement
surface (64) of the second subassembly, turning the bolt (12) until the tip (73) on
the threaded portion (71) thereof engages the bottom (32) of the blind axial bore
(31), the tip engaging the bottom of the blind axial bore prior to the flange (21)
of the bolt engaging the engagement surface (64) of the second subassembly so as to
retain the flange (21) a certain distance from the engagement surface (64), and the
flange engaging the crush rib (65) thereby applying a required load to the crush rib,
and turning the bolt (12) further to a predetermined torque, thereby stretching the
insert (29) axially relative to the bolt (12), deforming the internal threads (33)
and removably locking the bolt to the insert (29).
1. Verbindersystem (22) mit zentraler Spindelverriegelung, das folgendes umfaßt: ein
Verbindermodul (23) und eine Verbinderbaugruppe (24), die an dem Verbindermodul (23)
mit Hilfe einer Schraube (12) entfernbar befestigt ist, die einen Gewindeteil (71),
einen Flansch (21) und eine Spitze (73) aufweist, wobei das Verbindermodul (23) ein
Modulgehäuse (28) und einen innerhalb des Modulgehäuses (28) befestigten Metalleinsatz
(29) aufweist, der eine mit einem Innengewinde versehene axiale Sackbohrung (31),
die den Gewindeteil (71) der Schraube (12) in Eingriff nimmt, und einen Boden (32),
der innerhalb der axialen Sackbohrung um eine vorbestimmte Tiefe beabstandet ist,
aufweist, dadurch gekennzeichnet, daß ein Aufnahmegehäuse (50) der Verbinderbaugruppe
(24) an einer Eingriffsfläche (64) eine Quetschrippe (65) aufweist und die Spitze
(73) der Schraube (12) mit dem Boden (32) der axialen Sackbohrung (31) in Eingriff
steht und den Boden in Eingriff nimmt, bevor der Flansch (21) der Schraube (12) die
Eingriffsfläche (64) des Aufnahmegehäuses (50) in Eingriff nimmt, wodurch der Flansch
(21) in einer gewissen Entfernung von der Eingriffsfläche (64) festgehalten wird und
der Flansch (21) die Quetschrippe (65) in Eingriff nimmt und an die Quetschrippe (65)
eine erforderliche Last anlegt.
2. Verbindersystem nach Anspruch 1, bei dem das Modulgehäuse (28) eine erste Steckfläche
(58) aufweist, das Aufnahmegehäuse (50) eine zweite Steckfläche (59) aufweist und
die erste und die zweite Steckfläche einander in Eingriff nehmen, wenn die Spitze
(73) des Gewindeteils (71) der Schraube (12) den Boden (32) der axialen Sackbohrung
(31) in Eingriff nimmt.
3. Verbindersystem nach Anspruch 2, bei dem die Quetschrippe (65) eine Kante (69) aufweist
und die Kante (69) und die Eingriffsfläche (64) von der zweiten Steckfläche (59) um
eine erste bzw. eine zweite vorbestimmte Länge axial beabstandet sind, wobei die erste
vorbestimmte Länge größer ist als die zweite vorbestimmte Länge und wobei ein Abstand
zwischen dem Flansch (21) der Schraube (12) und der ersten bzw. zweiten Steckfläche
(58, 59) größer ist als die zweite vorbestimmte Länge und kleiner ist als die erste
vorbestimmte Länge.
4. Verbinder system nach Anspruch 1, 2 oder 3, wobei das Aufnahmegehäuse (50) eine Modulseite
(52) und eine Aderseite (53) enthält, die durch einen Hauptkörper (54) einstückig
verbunden sind, und wobei die Modulseite (52) Wände (55) aufweist mit einer Außenfläche
mit mehreren Fahnen (56), und wobei das Modulgehäuse (28) einen Aufnahmehohlraum (47)
bildet und eine Innenfläche (45) des Aufnahmehohlraums (47) mehrere Schlüsselnuten
(57) aufweist, wobei die jeweiligen Wände (55) auf der Modulseite (52) des Aufnahmegehäuses
(50) in dem Aufnahmehohlraum (47) im Modulgehäuse (28) aufgenommen werden, wobei jede
der mehreren Fahnen (56) in einer jeweiligen der mehreren Schlüsselnuten (57) aufgenommen
wird.
5. Verbinder system nach Anspruch 1, 2, 3 oder 4, bei dem die von dem Flansch (21) an
der Schraube (12) verformte Quetschrippe (65) zusammen mit einer Vorbelastung eines
Gewindeteils (71) der Schraube (12) eine erforderliche Druckkraft zum Halten des Modulgehäuses
(28) und des Aufnahmegehäuses (50) in einem Eingriff erzeugt.
6. Verbindersystem nach einem der vorhergehenden Ansprüche, bei dem die Schraube (12)
aus Stahl hergestellt ist und der Metalleinsatz (29) aus einem Metall geringerer Festigkeit
hergestellt ist.
7. Verbindersystem nach einem der vorhergehenden Ansprüche 1 bis 5, bei dem der Metalleinsatz
(29) aus Stahl hergestellt ist und die Schraube (12) aus einem Metall geringerer Festigkeit
hergestellt ist.
8. Verbindersystem nach einem der vorhergehenden Ansprüche, bei dem der Metalleinsatz
(29) ein zusammengedrücktes Element umfaßt.
9. Verfahren zum Bereitstellen zusätzlicher Verriegelungskraft, die den Gewindeteil (71)
einer Schraube (12) innerhalb einer ersten Kunststoffbaugruppe (23) eines Verbindersystems
hält, das folgendes umfaßt: eine erste und eine zweite Kunststoffbaugruppe (23, 24),
die mit Hilfe der Schraube (12) entfernbar aneinander befestigt sind, wobei die Schraube
einen axial von dem Gewindeteil beabstandeten und an der zweiten Kunststoffbaugruppe
(24) anliegenden Flansch (21) aufweist und der Gewindeteil der Schraube eine Spitze
(73) aufweist, wobei das Verfahren das Befestigen eines Metalleinsatzes (29) innerhalb
der ersten Kunststoffbaugruppe (23) entlang einer Längsachse davon umfaßt, wobei der
Metalleinsatz eine axiale Sackbohrung (31) vorbestimmter Tiefe aufweist und die axiale
Sackbohrung einen Boden (32) und Innengewinde (33) aufweist, die den Gewindeteil der
Schraube (12) in die axiale Sackbohrung (31) in Eingriff nehmen, und Drehen der Schraube,
um die Baugruppen aneinander zu befestigen, gekennzeichnet durch Vorsehen einer Quetschrippe
(65) an einer Eingriffsfläche (64) der zweiten Baugruppe, Drehen der Schraube (12),
bis die Spitze (73) an ihrem Gewindeteil (71) den Boden (32) der axialen Sackbohrung
(31) in Eingriff nimmt, wobei die Spitze den Boden der axialen Sackbohrung in Eingriff
nimmt, bevor der Flansch (21) der Schraube die Eingriffsfläche (64) der zweiten Baugruppe
in Eingriff nimmt, um den Flansch (21) in einer gewissen Entfernung von der Eingriffsfläche
(64) festzuhalten, und der Flansch die Quetschrippe (65) in Eingriff nimmt, wodurch
an die Quetschrippe eine erforderliche Last angelegt wird, und weiteres Drehen der
Schraube (12) bis zu einem vorbestimmten Drehmoment, wodurch der Einsatz (29) bezüglich
der Schraube (12) axial gedehnt wird, was die Innengewinde (33) verformt und die Schraube
entfernbar an dem Einsatz (29) verriegelt.
1. Système connecteur (22) du type à vis de calage centrale, comprenant un connecteur
en module (23) et un sous-ensemble connecteur (24) fixé de manière détachable au connecteur
en module (23) au moyen d'un boulon (12) possédant une partie filetée (71), un collet
(21) et un bout (73), le connecteur en module (23) possédant un logement en module
(28) et un insert métallique (29) fixé à l'intérieur du logement en module (28) et
présentant un alésage axial borgne (31) à filetage intérieur engageant une partie
filetée (71) du boulon (12) et un fond (32) espacé d'une profondeur prédéterminée
à l'intérieur de l'alésage axial borgne, caractérisé en ce qu'un logement femelle
(50) du sous-ensemble connecteur (24) présente une nervure d'écrasement (65) sur une
surface d'engagement (64), et le bout (73) du boulon (12) se trouve en engagement
avec le fond (32) de l'alésage axial borgne (31) et engage ledit fond avant que le
collet (21) du boulon (12) n'engage la surface d'engagement (64) du logement femelle
(50), le collet (21) étant ainsi retenu à une certaine distance de la surface d'engagement
(64) et le collet (21) engageant la nervure d'écrasement (65) et appliquant une charge
requise sur la nervure d'écrasement (65) .
2. Connecteur selon la revendication 1, dans lequel le logement en module (28) possède
une première surface d'accouplement (58), le logement femelle (50) possède une deuxième
surface d'accouplement (59), et les première et deuxième surfaces d'accouplement s'engagent
mutuellement lorsque le bout (73) de la partie filetée (71) du boulon (12) engage
le fond (32) de l'alésage axial borgne (31).
3. Système connecteur selon la revendication 2, dans lequel la nervure d'écrasement (65)
présente un bord (69), et ledit bord (69) et la surface d'engagement (64) sont espacés
axialement de la deuxième surface d'accouplement (59) d'une première et d'une deuxième
longueur prédéterminée, respectivement, la première longueur prédéterminée étant supérieure
à la deuxième longueur prédéterminée, et dans lequel une distance entre le collet
(21) du boulon (12) et les première et deuxième surfaces d'accouplement (58,59), respectivement,
est supérieure à la deuxième longueur prédéterminée et inférieure à la première longueur
prédéterminée.
4. Système connecteur selon la revendication 1, 2 ou 3, dans lequel le logement femelle
(50) comprend un côté module (52) et un côté fil (53) connectés, de manière solidaire,
par un corps principal (54), et le côté module (52) comporte des parois (55) présentant
une surface externe comportant une pluralité d'ailerons (56), et dans lequel le logement
en module (28) fournit une cavité femelle (47), et une surface interne (45) de la
cavité femelle (47) présente une pluralité de rainures de clavetage (57), les parois
(55) respectives sur le côté module (52) du logement femelle (50) étant reçues dans
la cavité femelle (47) dans le logement en module (28), chacun de ladite puralité
d'ailerons (56) étant reçu dans une rainure respective de ladite pluralité de rainures
de clavetage (57).
5. Système connecteur selon la revendication 1, 2, 3 ou 4, dans lequel la nervure d'écrasement
(65), déformée par le collet (21) sur le boulon (12), crée, conjointement avec une
charge préliminaire sur une partie filetée (71) du boulon (12), une force de compression
requise pour maintenir en engagement le logement en module (28) et le logement femelle
(50).
6. Système connecteur selon l'une quelconque des revendications précédentes, dans lequel
le boulon (12) est en acier et l'insert métallique (29) est en métal de moindre résistance.
7. Système connecteur selon l'une quelconque des revendications précédentes 1 à 5, dans
lequel l'insert métallique (29) est en métal et le boulon (12) est en métal de moindre
résistance.
8. Système connecteur selon l'une quelconque des revendications précédentes, dans lequel
l'insert métallique (29) comprend un élément comprimé.
9. Méthode consistant à fournir une force de verrouillage supplémentaire maintenant la
partie filetée (71) d'un boulon (12) à l'intérieur d'un premier sous-ensemble (23)
en plastique d'un système connecteur comprenant des premier et deuxième sous-ensembles
(23, 24) en plastique fixés l'un à l'autre de manière détachable au moyen d'un boulon
(12), le boulon possédant un collet (21) espacé axialement de la partie filetée et
s'appuyant sur le deuxième sous-ensemble (24) en plastique, et la partie filetée du
boulon possédant un bout (73), ladite méthode comprenant la fixation d'un insert métallique
(29) à l'intérieur du premier sous-ensemble (23) en plastique, le long d'un axe longitudinal
de ce dernier, ledit insert métallique présentant un alésage axial borgne (31) d'une
profondeur prédéterminee et l'alésage axial borgne présentant un fona (32) et des
filets internes (33), l'engagement de la partie filetée du boulon (12) dans l'alésage
axial borgne (31) et la rotation du boulon pour fixer ensemble les sous-ensembles,
caractérisée par la fourniture d'une nervure d'écrasement (65) sur une surface d'engagement
(64) du deuxième sous-ensemble, la rotation du boulon (12) jusqu'à ce que le bout
(73) sur sa partie filetée (71) engage le fond (32) de l'alésage axial borgne (31),
le bout engageant le fond de l'alésage axial borgne avant que le collet (21) du boulon
n'engage la surface d'engagement (64) du deuxième sous-ensemble de manière à retenir
le collet (21) à une certaine distance de la surface d'engagement (64), et le collet
engageant la nervure d'écrasement (65) en appliquant ainsi une charge requise à la
nervure d'écrasement, et la rotation supplémentaire du boulon (12) selon un couple
prédéterminé, en étirant l'insert (29) axialement par rapport au boulon (12), en déformant
les filets internes (33) et en verrouillant ainsi de manière détachable le boulon
vis-à-vis de l'insert (29).