The invention relates to a connection assembly with a first connector and a second connector which, by being adjusted along a longitudinal axis, can be connected to one another or disconnected from one another in the opposite direction. The first connector comprises a first housing which is provided with an elastically deformable locking arm comprising a first stop. The second connector of said connection comprises a second housing which is provided with a second stop. The first stop and the second stop are designed in such a way that, when the two connectors are being connected to one another, the first stop and the second stop cooperate in such a way that the elastic locking arm temporarily experiences an elastic deformation and, when the final connected position has been achieved, it experiences an elastic return movement.
Such a connection is described in US 2003/0096527 A1 wherein there is additionally provided a slide which is used in order to determine whether the two connectors have been properly connected to one another. When said slide is moved, it is possible, through contact with the locking arm, to generate a signal which can be heard or sensed to indicate the correct connecting position.
It is the object of the present invention to propose a connection wherein, when the final connected position of the two connectors has been reached, there is generated a clearly audible sound which indicates that the correct connected position has been reached.
In accordance with the invention, the objective is achieved by proposing a connection assembly having a first connector and a second connector which can be connected to or disconnected from one another by being adjusted along a longitudinal axis, wherein
However, said objective is also achieved by proposing a connection assembly having a first connector and a second connector which can be connected to or disconnected from one another by being adjusted along a longitudinal axis, wherein
Because there is provided a tunnel portion at the second connector, which tunnel portion is entered by the locking arm during the connecting process there is effectively produced a sound chamber, so that as a result of the excitation of the tongue and, respectively, of the ceiling portion of the first tunnel portion of the second housing, the exit of the airborne sound can be heard. In addition, the oscillation as generated can be clearly sensed by the engineer carrying out the connecting operation. The important aspect is that there is generated a sound which is above the sound level of the environment, more particularly during the assembly of vehicles, because in the production hall there exists a certain basic sound level which has to be exceeded.
This objective is achieved by the invention.
According to an embodiment of the first solution, the first tunnel portion is delimited by two side walls connected to a second base portion of the second housing and by a ceiling portion which is arranged opposite the second base portion and connects the two side walls. In a preferred embodiment, the at least one tongue is positioned between the ceiling portion and the second base portion. The sound chamber produced by the first tunnel portion can advantageously be used for generating a noise. Preferably, the freely oscillating tongue, by means of its connected end, is attached to the ceiling portion and is positioned in the first tunnel portion. It is possible for the ceiling portion, too, to be designed for oscillating purposes.
According to a preferred embodiment, the first stop is positioned in an opening of the locking arm, i.e. it is formed by the opening in the locking arm. The associated second stop is formed by a projection with a ramp face. The first stop extends substantially at a right angle relative to the longitudinal axis. It is advantageous for the locking arm to comprise an inclined abutment face which cooperates with the ramp face of the projection provided with the second stop, as a result of which the locking arm is gradually elastically pre-tensioned while the two connectors are being connected, i.e. by means of its free end, it approaches the longitudinal axis for example and can then snap back into its untensioned starting position as soon as the first stop pas passed the second stop, with the two stops being able to mutually support one another in such a way that disconnection against the connecting direction along the longitudinal axis is no longer possible, i.e. the first connector and the second connector are in the final and proper connected position.
It is advantageous for the second stop to be associated with the ceiling portion of the first tunnel portion. This means that the ceiling portion is loaded by the returning locking arm directly after the first stop has passed the second stop and thus has been made to oscillate, and in case there has been provided a freely oscillatory tongue, this, too, is incited. However, it is also possible for the second stop to be associated with the second base portion of the second housing.
The sound generated can be modulated, more particularly for the purpose of designing the tunnel portion and first ceiling portion as well as the side walls delimiting the first tunnel portion, and for dimensioning and shaping the tongue.
A further alternative for designing the freely oscillating tongue consists in providing the ceiling portion with cuts so that the connected end of the tongue is integral with the ceiling portion.
It is advantageous if the setting movement and the elastic deformation of the locking arm are such that when the second stop is associated with the ceiling portion of the first tunnel portion, the return movement of the locking arm leads to an abrupt application of load on the ceiling portion.
It is also advantageous if the first tunnel portion and/or the tongue are designed in such a way that the airborne sound is generated with a frequency of 1 kHz to 4 kHz.
An airborne sound with a frequency range of 2 kHz is particularly easily heard by a human ear.
According to a further embodiment, more particularly of the solution according to which the ceiling of the first tunnel portion is used to generate the airborne sound, it is advantageous if the first housing is associated with a second tunnel portion which, in the connected condition of the connector, at least partially covers the first tunnel portion. This makes it possible to design the first tunnel portion in the region of its cover portion in such a way that an airborne sound can be advantageously generated. For example, it is possible to provide recesses and slots. Such a measure can also be applied in connection with an embodiment wherein the freely oscillating tongue is formed by cuts in the ceiling portion of the first tunnel portion, because this allows a clearly audible sound to be generated.
According to a preferred embodiment, it is proposed that, in the connected position of the connectors, the second tunnel portion encloses the first tunnel portion in such a way that a ceiling of the second tunnel portion is positioned at a distance from the first ceiling portion of the first tunnel portion.
Preferred embodiments of the invention are schematically illustrated in the drawing wherein
First, there will follow a description of the first embodiment of the two connectors 1, 2 with reference to
In
The first connector 1 is provided with a first housing 4 which comprises a first base portion 5 which is followed by a locking arm 6. The locking arm 6 comprises an end 7 which is connected to the base portion 5 from which it initially extends away from the longitudinal axis 3. Subsequently, the locking arm 6 extends substantially parallel to the longitudinal axis 3 and ends at the free end 8 which, as a result of elastic deformation, is freely movable on the longitudinal axis 3 towards same and away from same.
Towards its free end 8, the locking arm 6 comprises a through-aperture 9 which forms a first stop 10, with the stop 10 being provided in the form of a surface which extends substantially at a right angle relative to the longitudinal axis 3. The locking arm 6 extends substantially parallel to the longitudinal axis 3, with the longitudinal axis 3 also constituting the axis along which the first connector 1 is connected to the second connector 2 and along which these are disconnected from one another.
Towards its free end 8, the locking arm 6 comprises an abutment face 11 which approaches the longitudinal axis from the connected end 8 to the free end 7.
The connector 2 which is also shown so as to be aligned on the longitudinal axis 3 comprises a second housing 14 which comprises a first tunnel portion 16 as well as a receiving chamber 13. The first connector 1 can be introduced with part of the first housing 4 into the receiving chamber 13 for the purpose of conductingly connecting the contact pins arranged therein to contact bushes in the first housing 4. The first tunnel portion 16 is delimited by two side walls, i.e. the first side wall 20 and the second side wall 21 which are formed on to the base portion 15 and extend away from the longitudinal axis 3, and by a ceiling portion 22 which is arranged at a distance from the second base portion 15 and which connects the two side walls 20, 21. The two side walls 20, 21 extend substantially parallel relative to the longitudinal axis 3 and relative to one another. The first tunnel portion 16 forms a tunnel axis 17 which extends parallel to the longitudinal axis 3. The first tunnel portion 16 comprises a first end 18 which faces the first connector 1 and a second end 19 which is removed from same. The first tunnel portion 16 is open at both ends. Towards the first end 18, the ceiling portion 22 is provided with a projection 24 which points towards the second base portion 15 which forms a second stop 23 in the form of a surface which extends approximately perpendicularly relative to the longitudinal axis 3. The projection 24 comprises a ramp face 25 which starts from the first end 18, which approaches the longitudinal axis 3 and ends at the second stop 23. Said projection 24 and the associated stop 23 as well as their cooperation with the locking arm 6 will be described in greater detail with reference to
In the first tunnel portion 16 there is provided at least one freely oscillatory tongue 26 which is offset from the first end 18 towards the second end 19, which is arranged at a distance from the projection 24 and which comprises an end 27 connected to the ceiling portion 22 of the first tunnel portion 16 and a second end 28 which is freely oscillatory towards the second end 19 of the first tunnel portion 16. The tongue 26 extends from its end 27 connected to the ceiling portion 22 initially towards the longitudinal axis 3 and then, at a distance from the ceiling portion 22, it extends approximately parallel to the tunnel axis 17 and to the longitudinal axis 3 towards the second end 19.
In addition, as illustrated in the above-referred to embodiment, the connector 1 can also be associated with a tunnel portion in the form of the second tunnel portion 30 which also extends parallel to the longitudinal axis 3 and follows the first base portion 5 of the first housing 4. It comprises side walls 32 which are connected to the first base portion 5 and a ceiling 31 connecting said side walls 32 with each other, wherein the ceiling 31 extends at a distance from the first base portion 13. Said second tunnel portion 30 is arranged in such a way that the free end 8 of the locking arm 6 is positioned in the second tunnel portion 30, i.e. the locking arm 6, by part of its length, projects into the second tunnel portion 30. The arrangement is such that an actuating portion 12 is positioned outside the second tunnel portion 30. Said actuating portion 12 serves to load the locking arm 6 manually in order to move same from the position shown in
The second tunnel portion 30 also serves to prevent the locking arm 6 from being caught up in cables or other connectors during the transport of bundles of cable.
It is possible to provide only one oscillatory tongue 26. However as is shown in greater detail in
The two connectors 1, 2, starting from the position shown in
The projection 24 can, alternatively, also be associated with the base portion.
The embodiment according to
The second connector 202, too, is substantially similar to the connector 2 of
The airborne sound is generated in that, when, as shown in
Otherwise, as far as the connecting process is concerned, reference is made to the description of
Number | Date | Country | Kind |
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10 2006 036 370 | Aug 2006 | DE | national |
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Number | Date | Country | |
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20080032545 A1 | Feb 2008 | US |