[0001] The present invention relates to arrestor units for power transmission lines. More
particularly, the invention relates to an arrestor unit container structure that is
arranged to discharge residual electrostatic charges that accumulate in the non-linear
resistors. The container structure is capable of discharging the resistors during
the surge intervals that occur in multiple surge lightning currents.
[0002] JP-A-2/170385 discloses an arrestor unit having a series gap as illustrated in Figs.
4 to 6. Fig. 5 shows the equivalent circuit diagram of the arrestor unit illustrated
in Fig. 4. Fig. 6 shows an arrestor unit embodied in accordance with the block diagram
illustrated in Fig. 5.
[0003] As shown in these figures, the arrestor unit of the prior art has a series gap 51
of an electrostatic capacity C
1 and a non-linear resistor 52(R) in an insulating housing 50. A resistor 53(r) for
discharging residual electric charge is electrically connected in parallel with the
non-linear resistor 52 respectively through seals 54.
[0004] The discharge time constant of the arrestor unit depends on the electrostatic capacitance
C2 of the resistor 53 and the non-linear resistor 52, and is set to be less than the
time interval between voltage surges of a normal multiple surge lightning current.
With this arrangement, the residual voltage of a first surge can be discharged before
the appearance of the next surge even when the arrestor unit interrupts the follow
current during the low voltage period between surges. Additionally, the flashover
voltage of the series gap 51 can be maintained at a constant level.
[0005] The arrestor unit includes an internal series gap 51, inside its insulating housing
50. Thus, the operational line voltage is applied to the arrestor unit; in particular
it is inevitable that the insulator housing 50 will be subject to the operational
line voltage. For this reason, the insulating housing 50 needs sufficient insulating
strength to withstand the continuous use of the arrestor unit, without current leakage.
[0006] With the resistor 53 housed in parallel with the non-linear resistor 52 inside the
insulating housing 50, the resultant arrestor unit is too large in diameter and weight
to be easily installed on power transmission lines.
[0007] It is therefore a main object of the present invention to provide a new and useful
arrestor unit construction that includes a series gap, enabling a smaller and lighter
unit and also good insulating characteristics during multiple surge lightning currents,
even when the exterior of the insulator is soiled by dirt and/or pollution.
[0008] By the invention, an arrestor arrangement according to claim 1 is provided for protecting
a power transmission line against lightening surges.
[0009] The invention, together with the objects and advantages thereof, may best be understood
by reference to the following description of the presently preferred embodiments together
with the accompanying drawings in which:
[0010] Fig. 1 is a cross sectional view of an arresting insulator which is part of the present
invention.
[0011] Fig. 2 is a front view of the arresting insulator shown in Fig. 1.
[0012] Fig. 3 is a diagram of the equivalent circuit of the arresting insulator shown in
Fig. 1.
[0013] Fig. 4 is a schematic diagram of an arresting unit of the prior art having a serial
gap.
[0014] Fig. 5 is a diagram of the equivalent circuit of the arrestor unit illustrated in
Fig. 4.
[0015] Fig. 6 is a cross sectional view of an arrestor unit of the prior art having a series
gap as shown in Fig. 4.
[0016] In the following paragraphs, a detailed description is given of one embodiment of
the present invention. As seen in Fig. 2, a suspension insulator 9 is suspended from
the end of a support arm 2 that extends from a transmission tower 1. A power transmission
line 5 is supported by the bottom part of the suspension insulator 3 via a support
4. Arc horns 6 and 7 are attached to the top and bottom ends of the suspension insulator
3 respectively to protect the suspension insulator 3 in the event of a flashover.
A discharge electrode 9 is supported by the support 4.
[0017] An arresting insulator 8 is supported by the intermediate part of the support arm
2 via an adapter. A discharge electrode 10 is mounted to the bottom part of the arresting
insulator 8, such that it is opposite to the discharge electrode 9 with a series air
gap G existing therebetween. Arc horns 6A and 7A are mounted to the top and bottom
end parts of the arresting insulator 8 respectively to protect the arresting insulator
8 from damage in the event of flashover.
[0018] In Fig. 1, the arresting insulator 8 includes a plurality of non-linear resistors
13 housed in a container 20. The container 20 has an inner wall 11 and an outer wall
21. The inner wall 11 is a cylindrical glass cloth made of fiberglass reinforced plastics
impregnated with, for example, epoxy resin with carbon black. The resistance of the
container 20 can be controlled by adjusting the content of the carbon black in the
epoxy resin of which the inner wall 11 is made. The outside circumference of the inner
wall 11 is provided with a plurality of pressure release holes 12.
[0019] A plurality of non-linear resistors 13 are housed within the inner wall 11. The top
and bottom ends of the inner wall 11 are sealed with end caps 14 and 15. The non-linear
resistors are designed to pass a large current at lightening surge voltages, but only
small currents at operational voltages. Thus, they can cut off follow currents in
order to prevent ground faults in the affected line. That is, they prevent the normal
operational line current (referred to as follow currents) from being grounded (i.e.
a ground fault) through the arrestor unit after the lightning surge has passed. In
a preferred embodiment, the main material of the non-linear resistors 13 is zinc oxide
(ZnO).
[0020] An upper seal 16 and a lower seal 17 are adhesively attached to the upper and lower
ends of the inner wall 11 respectively by adhesive 18. A coil spring 19 is set between
the end cap 15 and the lower seal 17 at the bottom part of the non-linear resistors
13 in such a way that the end cap 15 and the lower seal 17 are electrically connected
with a low impedance. A conductive foil shunt 100 extends between the top and bottom
ends of the spring.
[0021] The outer wall 21 is fit airtight about the inner wall 11 and over the side walls
of the upper seal 16 and the lower seal 17 by means of rubber molding. A plurality
of sheds 21a are formed on the outer side of the outer wall 21.
[0022] In order to ensure long-time reliability, the same rubber material as that of the
outer wall 21 is filled into the clearance between the non-linear resistors 13 and
the inner wall 11 from the pressure release holes 12 at the time of molding.
[0023] A method suitable for determining the minimum allowable resistance Rmin and maximum
allowable resistance Rmax of the container 20 is now described. Fig. 3 shows the equivalent
circuit of the arrestor unit in this preferred embodiment. In this equivalent circuit
the electrostatic capacity C
1 of the series air gap G, the total resistance r of the non-linear resistors 13, and
the total resistance R of the container 20 are indicated. These should be set so that
the discharge constant C2·R of the container 20 is smaller than the expected time
interval τ between surges of a multiple surge lightning current. That is, R<τ/C2 in
mathematical terms.
[0024] It is generally understood that the interval τ between surges of a multiple lightning
surge, (i.e. the available discharge time) is in the range of 1ms to 10ms. Assuming
that the interval τ is lms, the maximum allowable resistance Rmax is obtained from
an equation expressing the time constant (τ = C2·R). Table 1 shows Rmax for several
representative power transmission voltage ratings.
TABLE 1
| Line voltage (kv) |
33 |
66 |
77 |
110 |
154 |
187 |
220 |
275 |
| Line voltage max. (kv) |
36 |
72 |
84 |
120 |
168 |
204 |
240 |
300 |
| Rmin. (kΩ) |
11 |
21 |
24 |
35 |
48 |
44 |
52 |
65 |
| Rmax (mΩ) |
16 |
34 |
40 |
50 |
67 |
67 |
100 |
100 |
| Electrostatic Capacity C2 (PF) |
65 |
30 |
25 |
20 |
15 |
15 |
10 |
10 |
[0025] In Table 1, the minimum allowable resistance Rmin is an experimentally determined
resistance that is necessary to insure that the follow current will be interrupted.
The experiments were based on an assumed maximum value of 5A for the allowable current
(whereas the effective value is 3.5A).
[0026] Next, the function of the described arrestor unit is explained. A lightning surge
(caused by lightning striking the power transmission line 5) flows from the support
4 and the discharge electrode 9 and flashes over to the discharge electrode 10 though
the series air gap G. This begins the discharge. The lightning surge then flows through
the lower seal 17, the non-linear resistors 13, the upper seal 16, the adaptor and
the support arm 2 and is discharged to the tower 1, which is grounded.
[0027] After the lightning surge has passed the normal line current would typically try
to act as a follow current (i.e. following the lightning surge to ground). However,
the resistance of the non-linear resistors 13 recovers after the lightning surge passes
and the follow current is interrupted by the recovered resistance of the non-linear
resistors 13 and the serial air gap G. This prevents a ground fault in the line.
[0028] After a lightning surge is applied to and discharged through the non-linear resistors
13, a residual electric charge will remain in them. Since the arresting insulator
8 is insulated from the applied voltage side by the series air gap G, the residual
charge cannot flow towards the applied voltage side. However, the resistance R of
the container 20 is set so that the discharge constant C2·R of the container 20 is
smaller than the surge interval τ. Therefore, the residual charge in the non-linear
resistors 13 will drain through the container 20 within the specified time and is
then discharged to the ground.
[0029] Note that if the residual charge is not drained, the arrestor unit will have a residual
voltage. The voltage at the support 4 would then have to be higher by a corresponding
amount in order to reinitiate flashover through the air gap G. In the present arrangement,
however, residual voltage of the non-linear resistors 13 is discharged so that when
the next lightning surge occurs, the voltage differential necessary to initiate another
flashover through the serial air gap G is very similar to the voltage required to
initiate the original flashover. Therefore, even if a multiple surge lightning current
is encountered, the residual charge in the non-linear resistors 13 will be reduced
sufficiently to be substantially negligible. Thus the described arrestor unit has
improved discharge characteristics.
[0030] The container 20, being electrically conductive, distributes the voltage equally
between the applied voltage side and the grounded side. Because of this characteristic,
the distributed voltage can be improved when the creeping surface of the container
20 has been soiled or otherwise polluted. Thus, the creeping flashover voltage characteristic
can be improved. From a different point of view, when pollution withstand voltage
is considered, the present arresting insulator 8 can be decreased in size and weight
relative to existing arresting insulators by minimizing the increase in the creeping
leak distance of the container 20. Furthermore, due to the same function, the creeping
flashover voltage against the discharge voltage in the event of lightning surge can
be improved, and the series air gap G of the arresting insulator 8 can be short-circuited.
[0031] In the present arrangement the impedance of the arresting insulator 8 connected in
series to the series air gap G is much smaller than that of the existing arresting
insulators because the container conducts as a resistor R. As a result, the distributed
voltage of the serial air gap is much larger and the lightning flashover voltage at
the initial lightning surge application is lower than with existing arrestor units.
This means that, in comparison with existing arrestor units, flashover at the arresting
insulator side is easier because the flashover voltage of the arresting insulator
is lower than that against lightning surge of the suspension insulator 3. In addition
to the improvement in the arresting characteristic, the impedance of the arresting
insulator falls as describe above. Furthermore, the electrostatic induction voltage
caused by the operational line voltage falls, and thereby safety can be improved.
[0032] The present invention is not limited to the previously described embodiment and may
be embodied in many other forms as well. Specific modifications include the following.
(1) The inside circumference of the inner wall 11 and/or outer wall 21 can be coated
with conductive paint. As a result, existing materials or parts can be used, reducing
the cost.
(2) The inner wall 11 is used in the afore-mentioned preferred embodiment. By dispensing
with the inner wall 11 and reducing the resistance of the outer wall 21, an insulating
tube made of a material which has the required mechanical strength, such as epoxy
resin, can be used in the arrestor unit of the present invention.
[0033] Therefore, the present examples and embodiments are to be considered as illustrative
and not restrictive.
1. An arrestor arrangement for supporting a power transmission line (5) comprising
a supporting insulator (3) to support the line (5), the supporting insulator (3) having
a first discharge electrode (9) to discharge lightning surge from the line (5);
an arresting insulator (8) comprising a plurality of non-linear resistors (13) housed
in a container (20) and having a second discharge electrode (10), spaced from the
first discharge electrode (9) on the supporting insulator (8) by a predetermined series
air gap (G) so as to receive lightning discharge therefrom and discharge it through
the non-linear resistors (13);
the container 20 housing the non-linear resistors (13) constituting a discharge resistor
adapted to discharge residual charges after a lightning surge, the resistance of the
container (20) and the electrostatic capacitance formed with the non-linear resistors
(13) being predetermined such that the discharge constant dependent on these values
is less than the time interval between surges of multiple-surge lightning.
2. An arrestor arrangement according to claim 1 in which the container 20 has an inner
wall (11) made of electrically conductive synthetic resin.
3. An arrestor arrangement according to claim 2 in which the synthetic resin of the inner
wall (11) contains carbon black, whereby its resistance may be determined by adjusting
the carbon black content of the resin.
4. An arrestor unit according to claim 2 or claim 3 in which the container (20) comprises
an outer wall (21) having a plurality of sheds (21a), and formed in an airtight fashion
around the inner wall (11) by rubber moulding.
5. An arrestor arrangement according to claim 4 in which the outer wall (21) is of a
synthetic resin containing carbon black, whereby its resistance can be determined
by adjusting the carbon black content of the resin.
6. An arrestor arrangement according to any one of the preceding claims in which the
discharge constant is less than 1 ms.
7. An arrestor arrangement according to any one of the preceding claims in which the
supporting insulator (3) and the arresting insulator (8) are both suspended vertically
from a support arm (2) of a transmission tower (1).
8. An arrestor arrangement according to any one of the preceding claims in which each
of the supporting insulator (3) and arresting insulator (8) has a respective pair
of upper and lower arc horns (6, 7; 6A, 7A) to protect their exteriors against flashover.
1. Ableiteranordnung bzw. Unterbrechungseinheit zum Halten bzw. Stützen einer Hochspannungsfreileitung
(5), umfassend
einen Stützisolator (3) zum Halten bzw. Stützen der Leitung (5), wobei der Stützisolator
(3) eine erste Entladungselektrode (9) zum Entladen eines Blitzschlagstromstoßes von
der Leitung (5) aufweist;
einen Ableiterisolator (8), der eine Vielzahl nichtlinearer Widerstände (13) umfaßt,
die in einem Behälter (20) untergebracht sind, und der eine zweite Entladungselektrode
(10) aufweist, die von der ersten Entladungselektrode (9) auf dem Stützisolator (8)
um einen vorbestimmten Reihenluftspalt (G) beabstandet ist, um die Blitzentladung
davon aufzunehmen und sie durch die nichtlinearen Widerstände (13) zu entladen;
wobei der Behälter (20), in dem die nichtlinearen Widerstände untergebracht sind,
einen Entladungswiderstand darstellt, der dazu ausgebildet ist, Restladungen nach
einem Blitzschlagstromstoß zu entladen, wobei der Widerstand des Behälters (20) und
die elektrostatische Kapazitanz bzw. Kapazität, die mit den nichtlinearen Widerständen
(13) gebildet wird, so vorbestimmt werden, daß die von diesen Werten abhängige Entladungskonstante
geringer ist als das Zeitintervall zwischen Stromstößen eines Mehrfachstromstoß-Blitzschlages.
2. Ableiteranordnung nach Anspruch 1, bei der der Behälter (20) eine Innenwand (11) aus
elektrisch leitendem Kunstharz aufweist.
3. Ableiteranordnung nach Anspruch 2, bei der das Kunstharz der Innenwand (11) Ruß enthält,
wodurch ihr Widerstand durch das Einstellen des Rußgehalts des Harzes bestimmt werden
kann.
4. Ableitereinheit nach Anspruch 2 oder 3, bei der der Behälter (20) eine Außenwand (21)
mit einer Vielzahl von Fächern (21a) umfaßt, die durch Gummiformung luftdicht um die
Innenwand (11) ausgebildet ist.
5. Ableiteranordnung nach Anspruch 4, bei der die Außenwand (21) aus einem Kunstharz
besteht, das Ruß enthält, wodurch ihr Widerstand durch das Einstellen des Rußgehalts
des Harzes bestimmt werden kann.
6. Ableiteranordnung nach einem der vorangegangenen Ansprüche, bei der die Entladungskonstante
kleiner als 1 ms ist.
7. Ableiteranordnung nach einem der vorangegangenen Ansprüche, bei der der tützisolator
(3) und der Ableiterisolator (8) beide vertikal von einem Stützarm (2) eines Hochspannungsmastes
(1) hängen.
8. Ableiteranordnung nach einem der vorangegangenen Ansprüche, bei der sowohl der Stützisolator
(3) als auch der Ableiterisolator (8) jeweils ein Paar obere und untere Schutzarmaturen
(6, 7; 6A, 7A) aufweist, um ihre Außenseiten gegen Spannungsüberschlag zu schützen.
1. Agencement d'arrêt pour supporter une ligne de transmission de puissance (5) comprenant
un isolateur de support (3) pour supporter la ligne (5), l'isolateur de support (3)
ayant une première électrode de décharge (9) pour décharger un à-coup de la foudre
de la ligne (5) ;
l'isolateur d'arrêt (8) comprenant un certain nombre de résistances non linéaires
(13) abritées dans un conteneur (20) et ayant une seconde électrode de décharge (10),
espacée de la première électrode de décharge (9) sur l'isolateur de support (8) par
un espace d'air prédéterminé en série (G) afin d'en recevoir la décharge de la foudre
et de la décharger à travers les résistances non linéaires (13) ;
le conteneur (20) abritant les résistances non linéaires (13) constituant une résistance
de décharge adaptée à décharger des charges résiduelles après un à-coup de la foudre,
la résistance du conteneur (20) et la capacité électrostatique formée avec les résistances
non linéaires (13) étant prédéterminées de manière que la constante de décharge dépendant
de ces valeurs soit plus faible que l'intervalle de temps entre à-coups de la foudre
à à-coups multiples.
2. Agencement d'arrêt selon la revendication 1 dans lequel le conteneur (20) a une paroi
interne (11) faite en une résine synthétique électriquement conductrice.
3. Agencement d'arrêt selon la revendication 2 dans lequel la résine synthétique de la
paroi interne (11) contient du noir de carbone, ce qui permet de déterminer sa résistance
en ajustant la teneur en noir de carbone dans la résine.
4. Unité d'arrêt selon la revendication 2 ou la revendication 3 dans laquelle le conteneur
(20) comprend une paroi externe (21) ayant un certain nombre de cloches (21a) et formée
d'une manière hermétique autour de la paroi interne (11) par un moulage en caoutchouc.
5. Agencement d'arrêt selon la revendication 4 dans lequel la paroi externe (21) est
en une résine synthétique contenant du noir de carbone, sa résistance pouvant être
déterminée en ajustant la teneur en noir de carbone dans la résine.
6. Agencement d'arrêt selon l'une quelconque des revendications précédentes dans lequel
la constante de décharge est inférieure à 1 ms.
7. Agencement d'arrêt selon l'une quelconque des revendications précédentes dans lequel
l'isolateur de support (3) et l'isolateur d'arrêt (8) sont tous deux suspendus verticalement
à un bras de support (2) d'une tour de transmission (1).
8. Agencement d'arrêt selon l'une quelconque des revendications précédentes dans lequel
chacun de l'isolateur de support (3) et de l'isolateur d'arrêt (8) a une paire respective
de cornes supérieure et inférieure de décharge (6, 7 ; 6A, 7A) pour protéger leurs
extérieurs contre un jaillissement d'étincelle.