This invention relates to cable accessories used in the power cable work, and in particular, to a connector sheath and a cable connector assembly having the same. More particularly, the present invention relates to a detachable T-shaped power cable connector.
With the development and further expansion of electric power grids and the increasing desire to locate portions of the electric cable system underground, demand for power cables used under medium voltage (i.e., in the range of about 6 to about 24 kV) is rapidly increasing. At the same time, the demand for power cable accessories associated with medium voltage power cables is accordingly also increasing.
A detachable T-shaped cable connector assembly (hereinafter simply referred to as T-shaped cable connector assembly) is one such power cable accessory. A T-shaped cable connector assembly includes a T-shaped connector sheath. The T-shaped connector sheath generally comprises: a T-shaped main insulation bushing; an inner semi-conductive shield layer disposed in the T-shaped main insulation bushing and integrally formed with the T-shaped main insulation bushing; and an outer, semi-conductive shield layer disposed on an outer surface of the T-shaped main insulation bushing and integrally formed with the T-shaped main insulation bushing. To control the electric field distribution at the shield end of the cable, an adapter in which an electric stress control layer is imbedded needs to be connected during usage of the cable connector. The manufacturing process of the connector sheath with the adapter is complicated and has a high cost. Moreover, a unique type of connector sheath has to be used with the cable to correspond to a particular cable cross section. The connector sheath therefore has generally poor versatility, and it can be difficult to mount the cable.
For example, a European Patent Application Publication No. EP911936(A1) discloses a T-shaped cable connector assembly. According to the publication, a stress control cone is imbedded in the main insulation bushing of the T-shaped connector sheath for controlling the electric field distribution at the shielding end of the cable. The connector sheath must correspond, or match, the cable cross section. The versatility of the connector sheath is poor, and the cable is difficult to mount in the connector sheath.
In U.S. Patent Application Publication No. US20050227522(A1), a T-shaped “cold-shrink” cable connector assembly is disclosed. The publication employs a “cold-shrink” process and solves the difficulty of mounting the cable into the cable connector sheath. However, the patent uses the outer shield layer as the stress control layer for the shielding end of the cable. For that reason, the outer shield layer must be designed into a tapered or flaring shape and, the manufacturing process is complicated and the waste product rate is high. Thus, although the above patent has to at least some degree solved the difficulty attendant with mounting the cable, it suffers from other defects.
It is desirable to design a novel T-shaped cable connector that can solve the difficulty associated with mounting, enjoys a simpler manufacturing process, and can be used with a range of cable cross sectional dimensions.
According to one aspect of the present invention, a connector sheath is provided, which is adapted to be used in a cable connector assembly, comprising: a T-shaped main insulation bushing, an inner semi-conductive shield layer disposed in the T-shaped main insulation bushing and attached to the T-shaped main insulation bushing; and an outer semi-conductive shield layer disposed on an outer surface of the T-shaped main insulation bushing and attached to the T-shaped main insulation bushing, wherein the T-shaped main insulation bushing is made of an elastic insulation material, and the dielectric constant value of the elastic insulation material is in the range from about 5 to about 15.
With the connector sheath according to the present invention, because the T-shaped main insulation bushing in the connector sheath is made of an elastic insulation material, a “cold-shrink” process can be used to mount the cable. At the same time, because the T-shaped main insulation bushing in the connector sheath has elasticity, it can be adapted to cables with cross sections of different and varied dimensions.
Another aspect of the invention provides a cable connector assembly adapted to connect a cable bonded to an end of a cable lug to an external electrical apparatus. The assembly generally comprises the connector sheath according to the above-described embodiment of the invention wherein the connector sheath is a T-shaped bushing comprising: (a) an electrical apparatus connecting chamber disposed at a first end of the T-shaped bushing, where the electrical apparatus connecting chamber is adapted to accommodate an external electrical apparatus connection part; (b) a cable lug chamber and a cable connecting chamber successively disposed at a second end of the T-shaped bushing, where the cable lug chamber is adapted to accommodate the cable lug and the cable connecting chamber is adapted to accommodate a cable; and (c) a connecting assembly for electrically connecting the other end of the cable lug to the external electrical apparatus connection part.
Preferred embodiments of the present invention will be described hereinafter in detail with reference to the attached drawings, wherein the like reference numerals refer to the like elements throughout the specification. The present invention may, however, be embodied in many different forms and should not be construed as being limited to the illustrative embodiments set forth herein.
In particular, as shown in
The T-shaped connector sheath 1 may, for example, be manufactured by injection molding or press molding. Specifically, the T-shaped connector sheath 1 of the present invention may be manufactured by the following process: firstly, the inner semi-conductive shied layer 105 is manufactured by injection molding or press molding; then the main insulation bushing is manufactured by injection molding or press molding the main insulation bushing material on the inner semi-conductive shied layer 105; finally, the outer semi-conductive shield layer 101 is manufactured by injection molding or press molding the outer semi-conductive shield layer material on the main insulation bushing. In the above process, the outer semi-conductive shield layer 101 may alternatively be manufactured by coating the outer semi-conductive shield layer material on the main insulation bushing.
Alternatively, the T-shaped connector sheath of the present invention may also be manufactured as follows: firstly, the inner semi-conductive shield layer 105 and the outer semi-conductive shield layer 101 are manufactures respectively by injection molding or press molding; then the main insulation bushing is formed by injection molding or press molding the main insulation bushing material between the inner and outer semi-conductive shield layers.
In the process for manufacturing the T-shaped connector sheath according to the present invention, the outer semi-conductive shield layer 101 may be formed by coating the outer semi-conductive shield layer material on the main insulation bushing. In contrast, the design of the T-shaped connector sheath according to U.S. Patent Application Publication No. US20050227522 (A1), employs the outer semi-conductive shield layer as a stress control layer. This layer must be joined to the shield end of the cable, and the tail portion of the outer semi-conductive shield layer must be extended beyond the main insulation bushing. For this reason, the outer semi-conductive shield layer must be manufactured by injection molding or press molding rather than by coating. Instead, the T-shaped connector sheath of the present invention can use simple coating processes. The number of molds can therefore be reduced, the process for manufacturing the T-shaped connector sheath can be simplified, and the manufactured yield can be increased.
As shown in
The T-shaped main insulation bushing 102 is preferably made of an elastic insulation material having a dielectric constant value in the range of about 5 to about 15. According to one embodiment of the present invention, the elastic insulation material comprises silicon rubber or ethylene propylene terpolymer (EPT). The invention, however, is not limited to use of these particular materials. The elastic insulation material used for the main insulation bushing may be any material that meets a desired set of physical properties for its intended application, including preferably the above dielectric constant value range. For example, by using an elastic insulation material having the above dielectric constant value for the T-shaped main insulation bushing, the T-shaped main insulation bushing can meet the relevant requirements for power frequency voltage resistance as well as for partial discharge properties. It can also address the problem of electric field concentration at the shield end of the cable and exhibit good stress control effects while ensuring the insulation property of the T-shaped connector sheath. It is therefore not necessary to additionally provide a separate adapter or stress control layer for the connector sheath of the present invention. In one embodiment of the invention, the dielectric constant of the T-shaped main insulation bushing 102 is in the range of about 5 to about 10 for obtaining better stress control and insulation properties. More preferably, the dielectric constant of the T-shaped main insulation bushing 102 is set to be approximately 7.
According to the present invention, since it is not necessary to provide a separate stress control layer or an adaptor, the manufacture process of the T-shaped connector sheath and the assembly of the T-shaped connector sheath and the other parts of the cable connector assembly can be simplified. The manufacture cost and production efficiency can also be improved.
Where the connector sheath 1 of the present invention is manufactured by elastic material, such as silicon rubber or ethylene propylene terpolymer (EPT), a “cold-shrink” process can be used for connecting the connector sheath 1 and the cable. Briefly, such a “cold-shrink” process may be employed essentially as follows: a T-shaped connector sheath may be expanded on a core reel in advance before being connected to a cable; then, when mounting a cable, the cable can be inserted into the cable inserting chamber of the core reel; then the core reel can be drawn out from the connector sheath leaving the cable clamped in the connector sheath. Because the connector sheath contracts automatically due to its elasticity after the core reel is drawn out, it clamps on the cable with a sustaining radial pressing force, so that the connection of the cable and the connector sheath can be completed.
The process for connecting the connector sheath 1 and the cable may be explained by referring to
As shown in
As shown in
The process for connecting the cable connector assembly with the external electrical apparatus may be explained by reference to
When connecting the assembly 3 of the T-shaped cable connector assembly 1 and the cable with the electrical apparatus, firstly, the cable lug 301 is fixed to the electrical apparatus connecting part 406 by the thread connecting assembly constituted by the connecting bolt 401 and the connecting screw 403. Specifically, the connecting bolt 401 is firstly passed through an end of the cable lug 301 which is opposite to the end connected to the cable. Next, the end of the connecting bolt 401 passing through the cable lug 301 is connected (by threading) with the electrical apparatus connecting part 406. Then, the other end of the connecting bolt 401 is connected with the connecting nut 403 to fasten the cable lug 301 on the external electrical apparatus connecting part 406.
After fastening the cable lug 301 to the external electrical apparatus connecting part 406 by the thread connecting assembly, the insulation plug 404 and the connecting bolt 401 are connected by the first embedded member 407. The second embedded member 408 is embedded in the first end (left end in the
After the insulation plug 404 is fitted, a semi-conductive shield tail plug 405 is mounted on the second embedded member 408 of the insulation plug 404 so that the second imbedded member 408 of the insulation plug 404 is connected to the outer semi-conductive shield layer 101 of the T-shaped connector sheath 1. Thus, the assembly of the cable connector assembly of the present invention and the electrical apparatus are completed.
The T-shaped connector sheath of the T-shaped cable connector assembly according to the present invention may employ a “cold-shrink” process. The main insulation bushing of the T-shaped connector sheath may be made of elastic material by injection molding or press molding on the inner semi-conductive shield layer. In particular, the dielectric constant value of the insulation elastic material can be in the range of about 5 to about 15, which can effectively address the problem relating to the electric field concentration at the end of a 6-24 kV cable, and the problem that the existing T-shaped connector sheath requires a stress control layer inside the main insulation bushing. Also, the T-shaped cable connector assembly of the invention can solve the problem that the outer shield layer of the T-shaped connector sheath has to be made into a complicated tapered or flaring shape.
The following tables list the results of power frequency voltage resistance tests and partial discharge property tests for a T-shaped main insulation bushing having different dielectric constant values according to several embodiments of the present invention.
A T-shaped connector sheath in which silicon rubber with dielectric constant value of approximately 5 was used for a T-shaped main insulation bushing with a thickness of about 12 mm. The T-shaped connector sheath was mounted to a cable with a cross sectional area of about 185 mm2, made of cross-linked polyethylene and with a voltage class of 8.7/15 kV. The test background (environment interference) was <1 pC. The test results for the samples follow in Table 1.
A T-shaped connector sheath in which silicon rubber with a dielectric constant value of about 7 was used for the T-shaped main insulation bushing with a thickness of about 12 mm. The T-shaped connector sheath was mounted to a cable with a cross sectional area of about 185 mm2, made of cross-linked polyethylene and with a voltage class of 8.7/15 kV. The test background (environment interference) was <1 pC. The test results for the samples follow in Table 2.
A T-shaped connector sheath in which silicon rubber with a dielectric constant value of about 15 was used for the T-shaped main insulation bushing with a thickness of about 12 mm. The T-shaped connector sheath was mounted to a cable with a cross sectional area of about 185 mm2, made of cross-linked polyethylene and with a voltage class of 12/20 kV. The test background (environment interference) was <1 pC. The test results for the samples follow in Table 3.
From the above examples, it can be seen that all exemplified T-shaped connector sheathes met relevant requirements in power frequency voltage resistance and partial discharge properties.
Although several preferred embodiments have been shown and described, it would be appreciated by those skilled in the art that changes may be made in these embodiments without departing from the principles and spirit of the invention, the scope of the which is defined in the claims and their equivalents.
Number | Date | Country | Kind |
---|---|---|---|
200710148783.8 | Sep 2007 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/US08/74599 | 8/28/2008 | WO | 00 | 3/11/2010 |