Background of the Invention
The present invention relates to a contact device for high-frequency cables, which contact device comprises a front member and a rear member, whereby said rear member is adapted for mounting on the high-frequency cable and whereby said front member is adapted for being brought in contact with an outer conductor and an inner conductor on the high-frequency cable for transmission of high-frequency signals from the outer and inner conductor to the front member.
Contact devices of the abovementioned type have a separate rear member and a separate front member. Initially, the rear member is mounted on the high-frequency cable and the outer collar of the outer conductor of said high-frequency cable is flared out by means of a special tool for fitting to a contact member on the front member when said front member is mounted on the rear member. Then, the front member is screwed onto the rear member until the contact member of the front member is brought in contact with the outer collar of the outer conductor.
There are some drawbacks in connection with said mounting procedure. Thus, a special tool is required for flaring out the outer collar on the outer conductor of the high-frequency cable and professional skill is also required if this flaring out shall be done in a satisfactory manner. Furthermore, several separate members must be handled during mounting, namely a rear member, a front member and a tool, which can be difficult particularly in bad weather conditions at high altitudes.
Summary of the Invention
The object of the present invention is to eliminate these drawbacks and this is done by providing the contact device with the characterizing features of preliminary subsequent claim 1.
By providing the contact device with said characterizing features, said contact device can be mounted as a single connector unit and the additional working moment of flaring out the outer collar of the outer conductor of the high-frequency cable by means of a special tool is no longer required.
The depending claims define modified embodiments of the contact device of FIG. 1.
Brief Description of the Drawing
The invention will be further described below with reference to the accompanying drawings, wherein
FIG. 1 is a longitudinal section through a contact device according to the invention;
FIG. 2 illustrates parts of the contact device of FIG. 1 in an initial first position during its mounting on a high-frequency cable;
FIG. 3 illustrates said parts of the contact device of FIG. 1 in a second position during its mounting on the high-frequency cable;
FIG. 4 illustrates said parts of the contact device of FIG. 1 in a third position during its mounting on the high-frequency cable; and
FIG. 5 illustrates said parts of the contact device of FIG. 1 in a fourth, almost finished mounting position during its mounting on the high-frequency cable.
Detailed Description of the Invention
In FIG. 1 there is illustrated a high-frequency cable 1 including a plastic coating 2, an outer conductor 3 provided within said coating, a plastic foam body 4 located within said outer conductor and an inner conductor 5 within said plastic foam body.
For mounting a contact device 6 on this high-frequency cable 1, the plastic coating 2 is removed from an end portion of said high-frequency cable 1, so that the outer conductor 3 is not covered by said plastic coating 2 along said end portion.
The outer conductor 3 of the high-frequency cable 1 is "corrugated" and includes alternating wave crest portions 7 and wave trough portions 8 and the high-frequency cable 1 is cut such that an outer collar 9 of the outer conductor 3 constitutes about half a wave crest portion 7.
The contact device 6 is adapted to provide high-frequency contact between the outer and inner conductors 3, 5 of the high-frequency cable 1 and members of other equipment (not shown) in a high-frequency system. The contact device 6 comprises a rear member 10 and a front member 11. The rear member 10 has an outer sleeve 12 with a rear hole 13 for the high-frequency cable 1 and with inner threads 14 for the front member 11 at the front. Inside the outer sleeve 12 there is provided a rear inner sleeve 15 and a front inner sleeve 16. Between rear portions of the rear inner sleeve 15 and the outer sleeve 12 there is located a sealing ring 17 for providing a sealing between the plastic coating 2 of the high-frequency cable 1 and the rear member 10. Between the rear and front inner sleeves 15, 16 there is located another sealing ring 18 for providing a sealing between the rear member 10 and the outer conductor 3.
The rear member 10 includes a locking device 19 for locking said rear member 10 to the high-frequency cable 1. The locking device 19 comprises in the embodiment shown a lock member 20 which is located in the rear inner sleeve 15 of the rear member 10 and which is slotted in parallel with a centre line C extending axially through the contact device 6. The lock member 20 has such resilient properties that it can spring in radial direction relative to said centre line C. The lock member 20 also has a front locking portion 21 and a rear locking portion 22. The front locking portion 21 can move into a groove 23a in the rear inner sleeve 15 such that the lock member 20 can spring in radially outwards direction when the rear member 10 takes up a rear position A relative to said lock member 20 (see FIG. 3). The front locking portion 21 can be blocked by a blocking portion 23b located behind the groove 23a on the rear inner sleeve 15, such that the lock member 20 is prevented from springing radially outwards when the rear member 10 is situated in a front position B relative to said lock member 20 (see FIG. 4).
When the rear member 10 is situated in its rear position A, the rear locking portion 22 will be located in front of a support portion 23 of the rear inner sleeve 15 and when said rear member 10 is in its front position B, the rear locking portion 22 is brought in contact with said support portion 23.
The object of the abovementioned construction of the rear inner sleeve 15 and lock member 20 is that said lock member 20 shall permit threading of the rear member 10 onto a high-frequency cable (or insertion of said high-frequency cable 1 into said rear member 10). Hereby, the wave crest portions 7 of the outer conductor 3 will bring the front locking portion 21 of the lock member 20 to spring radially outwards and said locking portion will slide into the groove 23a. When the wave crest portion 7 has passed the front locking portion 21, said locking portion will spring radially inwards into the following wave trough portion 8 and slide out of said groove 23a. When the front locking portion 21 of the lock member 20 is situated in the second wave trough portion 8 counted in backwards direction from the outer collar 9 and the rear member 10 is moved in axial direction S forward from its rear position A to its front position B, the support portion 23 is brought in contact with the rear locking portion 22 of the lock member 20 and the blocking portion 23b will be situated in a blocking position in which it prevents the front locking portion 21 from springing out from the wave trough portion 8. This means that the lock member 20 will lock the rear member 10 when said rear member has been brought to its front portion B such that said rear member can not be pulled further in forward direction relative to the high-frequency cable 1.
The front inner sleeve 16 of the rear member 10 has a guide surface 24 which is conically tapering in backwards direction relative to the rear member 10. The guide surface 24 has a front portion 25 which has a greater diameter than a rear portion 26 thereof.
A retaining means 27 in the shape of a ring of plastic material is situated in a ready position E (see FIG. 2) in the front portion 25 of the guide surface 24, i.e. where said guide surface 24 has its largest diameter. This ring 27 is adapted to be pressed backwards to an operating position F (see FIG. 1) at the rear portion 26 of the guide surface 24. During this movement the ring is loaded such that its diameter is successively decreased so that it has a substantially smaller diameter in the operating position F than in the ready position E.
The front member 11 comprises a cylindrical section 28 having such outer threads 29 which fit into the inner threads 14 of the rear member 10 such that said front member 11 can be screwed into said rear member 10 in a direction K backwards (see FIG. 2) from a ready position P to an operating position T relative to said rear member 10.
The front member 11 comprises a forming and contact section 30 with a contact surface 31 for engagement by the outer collar 9 of the outer conductor 3. The forming and contact section 30 is pointed such that it can be inserted between the plastic foam body 4 and the outer collar 9 and thereby form said outer collar 9 so that said outer collar extends along the contact surface 31. The guide surface 24 as well as the contact surface 31 form acute angles .alpha. and .beta. with the centre line C, whereby the angle .alpha. of the guide surface 24 is larger than the angle .beta. of the contact surface 31. Hereby, a space 32 for the ring 27 which tapers in backwards direction relative to the rear member 10 is defined between the guide surface 24 and the contact surface 31 such that said ring 27 is compressed when it is moved from its ready position E to its operating position F. The angle .alpha. can e.g. be 1-10.degree. larger than the angle .beta..
The front member 11 comprises a displacement section 33 having an outer portion 34 and adapted to move the retaining means 27 from its ready position E to its operating position F. The outer portion 35 of the forming and contact section 30 is located closer to the outer collar 9 than the outer portion 34 of the displacement section 33 such that said forming and contact section 30 has finished forming the outer collar 9 before said displacement section 33 moves the retaining means 27 to its operating position F.
Before mounting on the high-frequency cable 1, the front and rear members 10, 11 are screwed together to a connector unit 42 in which the front member 11 is in operating position P relative to the rear member 10 (see FIG. 2). Then, the connector unit 42 is moved in backwards direction D on the high-frequency cable 1 or said high-frequency cable 1 is inserted into said connector unit 42. Thereafter, the front member 11 is screwed in a backwards direction R relative to the rear member 10, whereby the forming and contact section 30 slides in between the plastic foam body 4 and the outer collar 9 and the outer portion 34 of the displacement section 33 is brought in contact with the retaining means 27 and starts to displace or move said retaining means in backwards direction from its ready position E. Because of the resistance thereby applied to the front member 11, it pulls the rear member 10 in forward direction S until the locking device 19 locks said rear member 10 to the high-frequency cable 1.
When the front member 11 is screwed further in direction R towards the rear member 10, the displacement section 33 will press or push the retaining means 27 in backwards direction along the guide surface 24 and when the front member 11 is in an operating position T relative to the rear member 10, the displacement section 33 will have moved the retaining means 27 to an operating position U. In this position, the displacement section 33 will press the retaining means 27 against the outer collar 9 which in turn is pressed against the contact surface 31 of the forming and contact section 30. When the front member 11 is situated in said operating position U, the displacement section 33 will retain the retaining means 27 in its said operating position U.
In the ready position E, the retaining means 27 has an inner diameter which is larger than an outer diameter of the outer collar 9 and it is subjected to plastic deformation when it is moved from its ready position E to its operating position F, in which said retaining means 27 has an inner diameter which is smaller than an outer diameter of the outer collar 9.
The front member 11 also has an inner conductor 36 which is adapted to protrude into the tubular inner conductor 5 of the rear member 10 when said front member 11 is in its operating position T relative to said rear member 10. The inner conductor 36 has an expandable member 37 which at the front is provided with grip portions 38 which can be brought to grip into a support member 39. Inside the expandable member 37 there is provided a screw means 40 and a spring means 41 which press the expandable member 37 in a direction towards the support member 39 such that the grip portions 38 grip into said support member. By driving the screw means 40 in forward direction, the expandable member 37 is expanded in radial direction relative to the centre line C until said expandable member is contacting the tubular inner conductor 5. Since the spring means 41 thereby brings the grip portions 38 of the expandable member 37 to grip into the support member 39, said expandable member 37 is prevented from rotating when the screw means 40 is driven in forward direction.
The contact device according to the invention is not limited to the embodiment described above, but may vary within the scope of the subsequent claims. Thus, the rear member 10 and the front member 11 may e.g. be attached to each other in other ways than through threads 14 and 29, the rear member 10 may consist of one section instead of three, the locking device 19 may be of another type than the one described, the retaining means 27 can be displaced in another way along the described guide surface 24 from its ready position E to its operating position F, the retaining means 27 may be a ring of copper material or another suitable material and there may be a sealing ring 43 between the front member 11 and the rear member 10.