The present invention refers to a HV apparatus and a method of manufacturing a HV apparatus, in particular a HV dry instrument transformer, which has a form of a current transformer, a voltage transformer or combined transformer with a gel insulation.
From U.S. Pat. No. 6,235,992 patent description there is known an electric device for medium and high voltage transmission and/or distribution lines, having a free volume V undergoing electrical stress and including an insulating filler that fills the free volume, wherein the insulating filler includes a compressible silicone-based composition, having a volume under normal condition ranging from 1.01 to 1.2 V at a temperature of 25° C. The silicone-base composition may include hollow compressible plastic microspheres. The silicone-base composition may also include a crosslinkable polyorganosiloxane and an organosilicon crosslinker.
Silicones are generally expensive materials, and for this reason the dimensions of the instrument transformer and the volume of the insulation material required for filling must be kept as small as possible. The dielectric strength of the silicone gel determines the insulation distances between the elements in the insulation system and hence the dimensions of the entire apparatus. During operation of a high voltage instrument transformer electrons are ejected from the cathodes into the gel by either field emission or by the field enhanced thermionic effect, leading potentially to avalanche ionization of the atoms in the gel, caused by electron collision in the applied field. For that reason application of insulating gel in direct contact with bare metal electrodes is likely to lead to dimensions of the insulation system that are too big to make it cost efficient.
From JP patent description JPH05315155 a HV stationary induction apparatus is known, which apparatus has a main body placed in a circular case filled with gel insulator. The inner surface of the case is covered with a Teflon coating, in order to prevent adhesion of the gel to the metal surface of the cover, which prevents crack generation in the gel insulator due to the displacement of the apparatus case. This invention does not solve the problem of increasing the dielectric withstand of the apparatus insulation system, and therefore does not render possible reduction of the overall apparatus dimensions.
There is known from EP patent application EP2800112 a HV instrument transformer based on a new type of combined dry insulation system. High voltage instrument transformer has a form of current transformer or a voltage transformer. The current transformer has a head insulating body having a form of a bushing for electrical insulation of the secondary winding assembly from the primary winding conductor, the head insulating body being placed within a conductive encapsulation and being in contact with the insulating member. The insulating member is made of an elastic compressible material or an elastic conformable material which tightly adheres to matching outer surfaces of the head insulating body, the column insulating body, a winding shield and to the inner surface of the conductive encapsulation of the current transformer. A voltage transformer has the insulating member which is made of the same material as for the current transformer and the insulating member tightly adheres to matching outer surfaces of the primary winding, column insulating body and to the inner surface of the conductive encapsulation. This invention solves the problem of the large size of dry instrument transformers, by introduction of field grading, which allows for efficient exploitation of the field strength of the dry insulating material. The apparatus is capable of operation in a broad temperature range, as the insulating member is capable of accommodation of the thermal shrinkage and expansion of the adjacent elements of the instrument transformer. This invention does not introduce any direct means of increasing the dielectric withstand of the insulation system.
The essence of a high voltage apparatus having an electrically conductive head transformer cover, an electrically conductive head housing base, an electrically conductive core casing, primary conductor, and an electric insulation material comprising insulating gel, filling enclosed space between at least two of the electrically conductive elements, is that at least one of the electrically conductive elements has a coating made of a solid insulating material, separating the surface of the conductive element from the insulating gel. The coating is adapted for limiting the electron emission from the conductive elements into the insulating gel.
Preferably the coating is placed on an internal surface of the head transformer cover and on an internal surface of the head housing base.
Preferably the coating is placed on an external surface of the core casing.
Preferably the core casing is filled with a light filler material placed between the core and a part of a lead tube, which is sealed by means of the secondary lead plug.
Preferably the coating is placed on an external surface of the primary conductor.
Preferably the head transformer housing is equipped with an inlet channel placed in the head housing base and with an outlet channel placed in the top of the head transformer housing.
Preferably the length of the both channels is bigger than their diameters with a ratio between 2:1 and 20:1.
The essence of a high voltage apparatus having, an electrically conductive bottom external housing, an electrically conductive bottom support flange, an electrically conductive core and an electric insulation material comprising insulating gel, filling an enclosed space between at least two of the electrically conductive elements, is that at least one of the electrically conductive elements has a coating made of a solid insulating material, separating the surface of the conductive element from the insulating gel. The coating is adapted for limiting the electron emission from the conductive elements into the insulating gel.
Preferably the coating is placed on an internal surface of a bottom external housing and on an internal surface of bottom a support flange.
Preferably the coating is placed on an external surface of the core.
The essence of a method of manufacturing a HV apparatus, having a step of preparing elements of a dry HV current transformer, a step of mounting such elements, a step of filling the head transformer housing with an insulation gel, is that the method comprises a step of covering at least one of the chosen elements of the HV dry current transformer with a solid insulation material coating, which is performed after preparing a core set for the current transformer and before filing the head transformer housing, having a head housing cover and a head housing base with an insulation gel.
Preferably the coating is placed on an internal surface of the head transformer cover, on an internal surface of a head housing base, on an external surface of a core casing, on an external surface of a primary conductor.
The essence of a method of manufacturing a HV apparatus, having a step of preparing elements of a dry HV voltage transformer, a step of mounting such elements, a step of filling a bottom external housing with an insulation gel, is that the method comprises a step of covering at least one of the chosen elements of the dry HV voltage transformer with a solid insulation material coating, which is performed after preparing a core for a voltage transformer and before filing the bottom external housing with the insulation gel.
Preferably the coating is placed on an internal surface of the bottom external housing, on an internal surface of the bottom support flange or on an external surface of the core.
Coating the surface of the metal elements that are in contact with the insulating gel, with a solid insulation material coating, renders it possible to limit the electron emission from the surface of the metal. The coating traps the emitted electrons, preventing ionization of the gel, and in consequence it significantly improves the dielectric withstand of the insulation system. This makes it possible to decrease the distances between the electrodes and hence to reduce the volume of the insulating gel required for filling. This way the cost of the entire instrument transformer apparatus can also be reduced.
The present invention is depicted in an exemplary embodiment on the drawing, where
The instrument transformer having a form of a current transformer 1 according to the invention presented on
The method of manufacturing process of the current transformer comprises the following steps:
During step f) the design of the filling inlet channel 23 and the filling outlet channel 25 is prepared in such a way that the length of the channels to their diameters has a ratio between 2:1 and 20:1. Such ratio allows for electrical screening any air voids remaining after filling with the current transformer insulating gel 22 inside the filling inlet channel 23 or the filling outlet channel 25, because the electric field intensity in the channel area is low and cannot give rise to partial discharge during the operation of the current transformer 1.
The instrument transformer having a form of a voltage transformer 31 according to the invention presented on
The method of manufacturing process of the voltage transformer comprises the following steps:
The HV combined transformer is manufactured in a manner presented for both HV instrument transformer and a HV voltage transformer.
1—current transformer
1a—head transformer housing
2—head housing cover
2a—coating of head housing cover
3—head housing base
3a—coating of head housing base
4—core casing
4a—coating of core casing
5—primary conductor
5a—coating of primary conductor
6—core set
6a—light filler material
7—secondary winding leads
8—current transformer column
9—primary conductor insulators
10—primary conductor insulator gaskets
11—primary conductor gaskets
12—top cover gasket
13a—top support flange
13b—bottom support flange
14—head housing base gasket
15—current transformer base
16—current transformer base gasket
17—secondary terminal box
18—secondary winding lead connector
19—mounting screws
20—primary conductor terminals
21—primary conductor nuts
22—insulating gel for the head transformer housing
23—filing inlet channel
24—filling inlet plug
25—filing outlet channel
26—filling outlet plug
27—current transformer lead tube
28—column insulating bushing
29—field-grading layers of bushing
30—external insulator of current transformer
30a—secondary lead plug
31—voltage transformer
31a—base of the voltage transformer
32—bottom external housing
32a—coating of external housing
33—core
33a—coating of core
34—primary winding
35—layers of primary winding
36—primary winding tube
37—secondary winding
38—column of the voltage transformer
39a—bottom support flange
39b—top support flange
39c—coating of bottom support flange
40—mounting screws
41—external housing gasket
42—HV electrode
43—HV lead
44—lead tube of the voltage transformer
45—column insulating bushing
46—field grading layers of the bushing
47—external insulator of the voltage transformer
48—insulating gel of the voltage transformer
49—filling inlet channel
50—filling inlet plug
51—filling outlet channel
52—filling outlet plug
Number | Date | Country | Kind |
---|---|---|---|
16460025.6 | Apr 2016 | EP | regional |
Number | Date | Country | |
---|---|---|---|
Parent | PCT/EP2017/000305 | Mar 2017 | US |
Child | 16170211 | US |