The present invention relates to a multipole electrical plug-in connector part having a connector housing, a protective cap lockable to the connector housing and having an inlet opening, and a fixing device having a clamping body for mechanically fixing electrical connecting lines.
A plug-in connector part as set forth in the Technical Field is provided for establishing an electrical plug-in connection with another connector. The plug-in connector part is connected to one or more electrical connecting lines or cables. The connecting lines have to be securely connected to the connector housing of the plug-in connector part for reliable functioning when the plug-in connector part is not arranged stationary. It is customary to provide strain relief devices which prevent tensile forces acting on supply leads from being transmitted via the connecting lines to electrical plug contacts of the connector part or even interrupting electrical connections to the plug contacts.
For plug-in connector parts used under harsh environmental conditions, such as in the engine compartment of a motor vehicle, it is necessary to protect the electrical connection of the plug contacts from heavy vibration loads. This is difficult or achievable only with a relatively high level of effort for multipole electrical plug-in connector parts having a correspondingly large number of connecting lines.
German Utility Model DE 298 02 470 U1 describes a strain relief device. A clamp fixes a connecting line in a receiving slot. The clamp and the receiving slot together form a wedge pair. An inclined surface of the clamp is pushed beneath an edge of the receiving slot to form the wedge pair. In one refinement, teeth on the inclined surface cooperate with a detent mechanism at the edge of the receiving slot. The strain relief device allows fixing of multiple connecting lines. The connecting lines may have the same or different cross sections. A clamp and a receiving slot are provided for each individual connecting line. The clamp and the receiving slot individually interconnect into each other.
German Patent Application DE 10 2008 055 841 A1 describes a plug-in connector part having a housing part and a housing body. The housing body includes receiving chambers for electrical plug contact elements. Each contact element is connected to a respective electrical connecting line. The housing part is lockable to the housing body. In an end locking position, the housing part and housing body in cooperation enclose sections of the connecting lines in a form-fit manner.
Such a design is well suited for plug-in connector parts having a relatively small amount of connecting lines. The plug-in connector part described as an exemplary embodiment in DE 10 2008 055 841 A1 has two connecting lines. For a larger number of connecting lines, however, the design of such a plug-in connector part would be much more complicated and be relatively large in construction since each connecting line is individually enclosed by housing parts. In addition, the cross sections of the connecting lines cannot be freely chosen since they are to adapt to the shape of the housing parts.
An object includes a plug-in connector part characterized by a high level of vibration resistance and with which a fairly large amount of individual electrical connecting lines, which may have different cross sections, can be securely fastened by clamping.
In carrying out at least one of the above and/or other objects, a multipole electrical plug-in connector part is provided. The connector part includes a connector housing, a protective cap, and a clamping body. The protective cap is lockable to the connector housing and has an inlet opening. The protective cap further has a fixing section. The fixing section and the connector housing are connected together. The clamping body has elastically resilient clamping surfaces and is connected to the fixing section. Electrical connecting lines extending through the inlet opening toward the fixing section are mechanically fixed in a force-fit manner between the clamping surfaces of the clamping body and inner wall sections of the connector housing.
Further, in carrying out at least one of the above and/or other objects, another multipole electrical plug-in connector part is provided. This connector part includes a connector housing, a protective cap, and a fixing device. The protective cap is locked to the connector housing and has an inlet opening. The fixing device includes a fixing section and a clamping body. The fixing section is connected to the protective cap. The clamping body is fastened to the fixing section and has elastically resilient clamping surfaces. Electrical connecting lines extending through the inlet opening toward the fixing section are mechanically fixed in a force-fit manner between the clamping surfaces of the clamping body and inner wall sections of the connector housing when the connector housing is joined to the fixing section.
An embodiment provides a multipole electrical plug-in connector part having a connector housing and a protective cap. The protective cap is lockable to the connector housing. The protective cap has an inlet opening. The plug-in connector part further has a fixing device for electrical connecting lines, wires or cables (“connecting lines”). The fixing device includes a clamping body. The clamping body has at least two clamping surfaces or faces (“clamping surfaces”). The clamping surfaces are elastically springy or resilient. The connecting lines can be mechanically fixed by a force fit between the clamping surfaces and inner wall sections of the connector housing. The clamping body can be formed as a resilient body or by clamping surfaces integrally molded in a sprung manner on the protective cap.
In embodiments, the clamping body is connected to the protective cap, the clamping surfaces of the clamping body are situated or formed on the clamping body in an elastically resilient or elastically flexible manner, and the connecting lines are mechanically fixable in a force-fit manner between the clamping surfaces and housing sections of the connector housing.
The elastically resilient or elastically flexible design of the clamping surfaces of the clamping body allows multiple individual connecting lines having the same or different cross sections to be mechanically fixed against the clamping body between the clamping surfaces and inner wall sections of the connector housing. In addition, any dimensional tolerances of the protective cap and of the connector housing are automatically compensated.
An elastically flexible design of the clamping surfaces enables the clamping surfaces of the clamping body to develop only relatively small restoring forces during a deflection. As such, when the clamping surfaces have an elastically flexible design, an option for positioning the connector housing and the protective cap relative to one another at stepped or staged intervals may be advantageously provided. Positioning the connector housing and the protective cap relative to one another at stepped or staged intervals builds up clamping forces due to the connector housing and the clamping surfaces being brought closer together. The clamping forces act on the connecting lines to sandwich the connecting lines between inner wall sections of the connector housing and the clamping surfaces of the clamping body.
Elastically resilient clamping surfaces may be designed in such a way that the multi-step positioning option between the connector housing and the protective cap is not necessary.
In an embodiment, the clamping body has an essentially V-shaped, rubber-elastic body. In this case, the clamping body is connected in a form-fit manner to a fixing section of the protective cap. The clamping body may have multiple integrally molded detent elements for connection to the protective cap.
In an embodiment, the protective cap and the clamping body is produced as a one-part component in a two-component injection molding process. The clamping body forms an elastomeric component on a protective cap made of a thermoplastic plastic.
In an embodiment, the clamping body is formed by multiple strip-like clamping arms. The clamping arms are integrally molded onto a fixing section of the protective cap in one piece. Outer surfaces of the clamping arms form clamping surfaces for mechanically fixing the connecting lines.
In embodiments, the mechanical fixing of the connecting lines takes place inside the plug-in connector part and not in the entry region of the protective cap. Circumferential ribs may thus be integrally molded on the inlet opening of the protective cap. The ribs may fix a plastic corrugated pipe or tube extending through the inlet opening to the plug-in connector part. The connecting lines are laid in bundles through the pipe or tube with splash-proof protection.
Detailed embodiments of the present invention are disclosed herein; however, it is to be understood that the disclosed embodiments are merely exemplary of the invention that may be embodied in various and alternative forms. The figures are not necessarily to scale; some features may be exaggerated or minimized to show details of particular components. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the present invention.
Referring now to
Protective cap 1 is illustrated in
Housing parts 1a and 1b are joined together for protective cap 1 to be in the closed position. Housing part 1a includes connecting elements 8 and housing part 1b includes connecting elements 7. Connecting elements 7 and 8 interlock to join housing parts 1a and 1b together. In particular, connecting elements 7 include detent hooks 21 integrally molded thereon and connecting elements 8 include detent openings 22 integrally molded thereon. Connecting elements 7 and 8 interlock with one another by detent hooks 21 engaging detent openings 22. Detent hooks 21 engaged with detent openings 22 fasten the upper sections of housing parts 1a and 1b to one another in a form-fit manner.
Housing part 1b further has a molded-on locking arm 9 with a detent projection 10. Detent projection 10, due to the elastic force of locking arm 9, is pushed into a detent recess 11 in first housing part 1a when housing parts 1a and 1b are joined together.
Joining housing parts 1a and 1b together results in the assembled protective cap 1 illustrated in
In
Protective cap 1 protects connector housing 2 from penetration of dust and moisture. Protective cap 1 additionally guides and mechanically fixes electrical connecting lines 6, 6a, 6b, 6c (illustrated in
The plug-in connector part further includes a fixing device 5 for mechanically fixing connecting lines 6, 6a, 6b, 6c. Fixing device 5 includes a fixing section 14 of protective cap 1, a clamping body 3, and inner wall sections of connector housing 2. In this version of the plug-in connector part, clamping body 3 is rubber-elastic. Clamping body 3 rests against at least two side sections of protective cap 1 and is mounted to the protective cap.
The one-piece clamping body 3 shown in
Outer wall 15 surrounds a connecting wall 18 having a pair of main faces 13. Main faces 13 are oriented at right angles to the faces of outer wall 15. Connecting wall 18 on both main faces 13 has multiple detent studs 19 molded on in one piece. The two free end sections of outer wall 15 have a rounded shape, thus forming two clip hooks 17.
Clip hooks 17 and detent studs 19 are used for fastening clamping body 3 to fixing section 14 of protective cap 1, as illustrated in
A portion of connector housing 2 is also shown in
As is apparent from
The principle of mechanically fixing connector lines is illustrated in
Due to its rubber-elastic properties, clamping body 3 may also be attached close to multiple connecting lines lying next to one another. It is largely irrelevant whether the connecting lines have the same or different cross sections, as shown by three examples in
In the embodiment in
Of course, these designs are understood to be strictly examples. In particular, it is possible to mechanically fix more than two connecting lines for each clamping surface. The amount of connecting lines that are fastenable by a clamping surface is determined by the cross sections of the connecting lines, the width and thickness of the clamping surfaces, and the material properties of the clamping body, or may be influenced by a suitable selection of these parameters.
Furthermore, the described clamping mechanism may be kinematically reversed. For example, a fixing section with a rubber-elastic clamping element is an integral part of connector housing 2 and cooperates with housing parts 1a and 1b of protective cap 1 when protective cap 1 is attached to connector housing 2.
Connecting webs 31′ also form a fixing section 14′ of protective cap P. A total of four clamping arms 29a′, 29b′, 29c′, 29d′ are integrally molded in one piece on fixing section 14′. Clamping arms 29a′, 29b′, 29c′, 29d are situated opposite from one another in pairs in a non-parallel arrangement. As shown in
Clamping body 3′ illustrated in
The mechanical fixing of connecting lines takes place in basically the same way as illustrated in
In contrast to the exemplary embodiment described above, clamping surfaces 16a′ and 16b′ do not have a rubber-elastic design here. Thus, each connecting line is mechanically fixed to a separate clamping surface 16a′ and 16b′, whereby clamping arm 29a′, 29b′, 29c′, 29d′ supporting the particular clamping surface 16a′ and 16b′ is deflected sufficiently, depending on the cross section of the attached connecting line, so that each connecting line is individually mechanically fixed with a precise fit.
It may also be provided that individual clamping surfaces 16a′ and 16b′ each mechanically fix more than one connecting line. In this case, these connecting lines should have identical cross sections. Therefore, at least as many clamping arms 29a′, 29b′, 29c′ and 29d′ should be provided as the amount of different line cross sections that are used.
As shown in
Connecting lines with a large diameter have greater mass and must be mechanically fixed correspondingly more firmly than connecting lines having a small diameter. This is achieved by the elastic connection of clamping arms 29a″ and 29b″ to connecting web 31″, since the deflection of clamping arms 29a″ and 29b″ increases with increasing line cross section, in turn resulting in an increasing clamping force.
In contrast to the embodiments described above, in this case no multi-step detent positioning between protective cap 1″ and connector housing 2″ is necessary due to the relatively large elastic forces which may be applied by clamping arms 29a″ and 29b″. Instead, protective cap 1″ is clipped to connector housing 2″ via detent hooks 32″. This simplifies assembly compared to establishing a multi-step detent connection and contributes significantly to minimization of errors. Due to the lock between protective cap 1″ and connector housing 2″ inside protective cap 1″, the lock is also protected from access from the surroundings so that inadvertent release of the lock is precluded.
This design is also advantageous compared to the subject matter in Utility Model DE 298 02 470 U1 cited above. Threading connecting lines through openings is not necessary here. Connecting lines 6″, 6a″, 6b″ may be pushed aside on both sides of connector housing 2, after which protective cap 1 may be locked on and its housing parts 1a“, 1b” joined together. In addition, manual placement of a plurality of clamping pieces is not necessary here.
1, 1′, 1″ Protective cap
1
a, 1b, 1a′, 1b′ 1a″, 1b″ Housing parts of protective cap
2, 2″ Connector housing
3, 3′, 3″ Clamping body
4 Inlet opening
5 Fixing device
6, 6a, 6b, 6c, 6″, 6a″, 6b″ Connecting lines
7, 8 Connecting elements
9 Locking arm
10 Detent projection
11 Detent recess
12 Film hinge
13 Main faces
14, 14′ Fixing section
15 Outer wall
16
a,
16
b,
16
a′, 16b′, 16a″, 16b″ Clamping surfaces of clamping body
17 Clip hook
18 Connecting wall
19 Detent studs
20
a,
20
b,
20
a″, 20b″ Inner wall sections
21 Detent hook
22 Detent openings
23 Ribs
24, 25 Detent elements
26 Housing sections
27 Detent recesses
28 Receiving slot
29
a′, 29b′, 29c′, 29d′, 29a″, 29b″ Clamping arms
30′ Flexible sections
31′, 31″ Connecting web(s)
32″ Detent hook
While exemplary embodiments are described above, it is not intended that these embodiments describe all possible forms of the present invention. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the present invention. Additionally, the features of various implementing embodiments may be combined to form further embodiments of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
10 2014 004 832.2 | Apr 2014 | DE | national |
10 2014 015 715.6 | Oct 2014 | DE | national |
This application is a continuation of International Application No. PCT/EP2015/057248, published in German, with an International filing date of Apr. 1, 2015, which claims priority to DE 10 2014 004 832.2, filed Apr. 2, 2014, and DE 10 2014 015 715.6, filed Oct. 23, 2014; the disclosures of which are hereby incorporated in their entirety by reference herein.
Number | Date | Country | |
---|---|---|---|
Parent | PCT/EP2015/057248 | Apr 2015 | US |
Child | 15231065 | US |