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EP 3 046 129 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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11.09.2019 Bulletin 2019/37 |
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Date of filing: 15.01.2015 |
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International Patent Classification (IPC):
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Shunt breaking system
Lastschaltsystem mit parallelem Strompfad
Système de rupture de shunt
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Date of publication of application: |
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20.07.2016 Bulletin 2016/29 |
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Proprietor: Schneider Electric Industries SAS |
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92500 Rueil-Malmaison (FR) |
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Inventor: |
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- Agrawal, Ashish
322201 Sawai Madhopur, Rajasthan (IN)
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Representative: Manitz Finsterwald
Patent- und Rechtsanwaltspartnerschaft mbB |
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Martin-Greif-Strasse 1 80336 München 80336 München (DE) |
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References cited: :
EP-A1- 0 693 763 DE-A1-102010 045 233
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EP-A1- 2 182 536
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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Technical field:
[0001] The present invention relates to a shunt breaking device designed to break an electrical
circuit in a medium voltage switch disconnector, incorporating such a device. The
features of the preamble of the independent claim are known from
EP 0 693 763 A1. Related technology is known from
DE 10 2010 045233 A1.
Background and prior art:
[0002] Generally an electrical switch disconnector is designed to provide a making or breaking
of specified currents. As already known it mainly comprises a sealed enclosure filled
with a high dielectric strength gas, in which a pair of main contacts are arranged,
one stationary contact and the other movable, connected to an operating drive. A pair
of arcing contact are sometimes electrically connected in parallel to the main contacts,
such as to open the arcing contacts after the main contacts during breaking, and to
close the arcing contacts before the main contacts during making.
[0003] There are various methods to achieve the required breaking capacity in a switch disconnector.
To handle the arcing during breaking operation, some designs use arc splitters as
that in FBX Ring Main Unit, some use the puffer systems as that in RM6 Ring Main Units.
Prior arts such as
EP2182536 and
EP2479769 disclose parallel switching which has a primary circuit and a secondary circuit containing
a vacuum interrupter. The primary circuit is used during the normal working of the
switch disconnector. During the opening operation of the switch disconnector, current
is transferred from primary circuit to secondary circuit by the moving contact and
the current breaking is made to happen in a vacuum environment.
[0004] EP2182536 describes an application for a switch disconnector with rotary motion of the contacts.
The linkage operating the vacuum interrupter (Figure 1) has a sliding joint 10 between
the lever 7 and the moving contact 5 of the vacuum interrupter. The end positions
and movement (velocity) of moving contact of vacuum interrupter depends on the length
of ratios of lever 7 i.e. distance between the pivot 11 and its free end 9 to the
distance between the pivot 11 to the sliding joint 10.
[0005] EP2479769 discloses an application for a switch disconnector having moving contacts with rotary
and sliding or linear motion. As seen in figure 2, the lever 18, interacting with
the main moving contact, is pivoted at two positions 11 and 21. This lever articulates/rotates
about different pivots during opening and closing of the switch disconnector. During
opening, the lever 18 rotates about pivot 21. This lever has an oblong slot which
allows it to rotate about pivot 11 during closing of switch disconnector. The linkage
operating the vacuum interrupter has a lever 18 which is pivoted about the pin 21.
This lever is connected to the moving contact of vacuum interrupter by a hinge 11.
The end positions and movement (velocity) of moving contact of vacuum interrupter
depends upon the length ratios of the lever 18 i.e. distance between the pivot 11
and its free end to the distance between pivot 11 to the pivot pin 21.
[0006] On applying the above teachings to the existing switch disconnector (Figure 3); it
was found that the linkage designs of the above mentioned prior arts require the vacuum
interrupter to be placed close to the moving contact of the switch disconnector. Therefore
the placement of vacuum interrupter, linkage pivot and linkage length provide very
little flexibility. Further, adopting these designs in the existing switch disconnector
require more space and shall demand increase in the size of the enclosure. Moreover,
the placement of vacuum interrupter and its operating mechanism will leave very little
space in terms of dielectric withstand between the live vacuum interrupter 21 and
the earthed tank 20, considering the application at medium voltage levels (Rated voltage
24kV and impulse level of 125 kV of the product being designed). Figure 4 shows the
dielectric criticality of such arrangement of vacuum interrupter when simulated in
the Flux 2D analysis. It is known that stroke and velocity of the moving contact of
a switch disconnector is dependent on its operating drive. As the secondary circuit
is mechanically driven by the moving contact of the switch disconnector, any changes
in its movement shall require most of the linkages to be modified to get the desired
contact movement of the vacuum interrupter.
[0007] Prior art
DE10047032 relates to an application for a switch disconnector having moving contacts with rotary
motion (figure 5). Secondary circuit (vacuum interrupter and linkage mechanism) are
mounted on the moving contact of the switch disconnector. Cam 12 operates a pin 11
which is rigidly connected to the moving contact of the vacuum interrupter. However,
here, the secondary circuit along with the vacuum interrupter is mounted on the moving
contact which increases the mass of the moving contact and shall demand more energy
to move the contacts of switch disconnector.
[0008] Hence there was felt a pressing requirement for an alternate position of vacuum interrupter
and a suitable linkage which can be accommodated in available space.
[0009] Summary of the Invention: The present invention provides for a Shunt Breaking System for a medium voltage switching
apparatus, as defined in the independent claim, such that the system is designed to
generate a parallel or secondary circuit within the said apparatus where the linkage
mechanism included in the said system allows the vacuum interrupter to be placed at
any desirable position based on the available space within the said switching device.
[0010] Brief Description of the Drawings: A full understanding of the invention can be gained from the following description
of the preferred embodiments when read in conjunction with the accompanying drawings
in which:
Figure 1 describes the parallel switching mechanism existing in prior art EP2182536.
Figure 2 describes the parallel switching mechanism existing in prior art EP2479769.
Figure 3 illustrates the impractical positioning of vacuum interrupter of prior art
solutions in present switch disconnector.
Figure 4 shows dielectric criticality of arrangement of figure 3 in Flux2D analysis.
Figure 5 describes the parallel switching mechanism in prior art DE10047032 where secondary circuit are mounted on the moving contact of the switch disconnector.
Figure 6 depict the vacuum interrupter device placed within the medium voltage switch
disconnector of the present invention.
Figure 7 illustrates the linkage mechanism of the present invention.
Figures 7a, 7b and 7c show exploded views of linkage support, pulling lever and guiding
pin respectively.
Figure 8 shows the assembly of linkage mechanism with respect to vacuum interrupter
device.
Figure 9 shows the interaction of the linkage mechanism with the moving contact.
Figure 10 and 12 illustrate the cross sectional view of the initial position (A0)
of switch disconnector while indicating upward motion of the moving contact towards
outgoing busbar. The cross-sectional view of figure 10 shows the regions D, E and
F.
Figure 11 represent the fixed support in which the linkage mechanism of the present
invention is fixed.
Figure 13 depict the opening position of the switch.
Figure 14 show the disconnecting position of the switch.
Figure 15 shows separating position of the switch.
Figure 16 shows the closing position of vacuum interrupter switch.
Figure 17 shows the final closing of the switch disconnector after one stroke is completed.
Figure 18 shows the front view of the guiding slot of the fixed support having 3 regions
A, B and C.
[0011] Detailed Description of the Invention: The present invention is intended to function as a parallel or secondary circuit
for an existing switch disconnector. Considering the size of existing enclosures,
vacuum interrupter has to be positioned in location such that the new linkage mechanism
is rendered suitable to transfer the motion to the vacuum interrupter in less space
or rather available space.
[0012] The detailed description provided hereinafter is for an embodiment where the stationary
contact (1) is connected to the incoming busbar and the moving contact (18) is connected
to the outgoing busbar. An embodiment where the stationary contact is connected to
the outgoing busbar and moving contact is connected to incoming bus bar is also envisaged
by the present invention. Referring to figures 6 - 8, there is depicted a shunt breaking
system of the present invention and comprising a primary circuit consisting of stationary
contact (1) and moving contact (18); a secondary circuit consisting of a vacuum interrupter
(5) electrically connected to the stationary contact (1) on terminal (12) with a suitable
connection means (4) such as a screw and a linkage mechanism comprising multiple linkage
means supported on a linkage support (6) having top linkage means (8) connected to
pulling pin (7) at its first end and bottom linkage means (10) at its second end by
means of sliding pins (9) slidable into slits provided in the linkage support (6).
Whereas the second end of bottom linkage means (10) is connected by stationary pin
(11) fixedly placed in recess provided in fixed support (19). In the present embodiment,
there are eight linkage means in shape of scissors.
[0013] A collar (3), configured of passing through a bore in the linkage support (6), is
connected to bottom linkage means (10) with stationary pin (11) at collar first end
and the moving contact end (13) of vacuum interrupter (5) at collar second end. As
seen in figure 11 and 18, the fixed support (19) comprising an inverse 'F' slot guiding
a guiding pin (17), pulling pin (7) and pallet base (14) in it, is enabled to support
linkage mechanism and insulate live parts from nearest earth/tank and other phase
conductors. The fixed support (19) comprising the pallet base (14) with pallet contact
(15) rigidly fixed thereto. The fixed support (19) comprises of regions A, B and C
which together comprise a guiding slot.
[0014] The moving contact end (13) is electrically connected to pallet contact (15) by means
of a flexible wire (20), said pallet contact interacting with a protrusion (22) protruding
out of an arm of the moving contact. An insulating cover (2) is sleeved over the vacuum
interrupter (5) to provide necessary insulation during TRV. The pallet contact (15)
is rigidly fixed to the pallet base (14). The guiding pin (17) configured to pass
through the pulling lever (16) is connected to pallet base (14) at both ends.
[0015] The shunt breaking system of the present invention is of medium voltage type suitable
for placement in a medium voltage switching apparatus such as a switch disconnector.
In one embodiment, the operating drive is a linear operating drive whereas in another
embodiment, the operating mechanism is a rotary operating mechanism.
[0016] The system of the present invention is designed to generate a parallel or secondary
circuit in the said switch apparatus. The operating drive of the present invention
is designed to actuate the moving contact (18) takes four positions of opening position,
disconnecting position, separating position and closing position. Before the four
positions are achieved, the system of the present invention remains in an initial
position. Figure 10 and 12 shows the initial position of the system in which the current
flows from the stationary contact (1) to the moving contact (18) through the primary
circuit. The secondary circuit is inactive and vacuum interrupter (5) is in close
position. The figure shows regions D i.e. profiled region on pallet contact (15);
region E i.e. profiled region on moving contact (18) and region F i.e. profiled region
of pulling lever (16).
[0017] Referring to figure 13, the opening position is a position for connection between
the protrusion (22) and the pallet contact (15) when the moving contact (18) is electrically
connected to the pallet contact (15) to establish a secondary circuit (1-12-13-20-15-18)
besides a primary circuit (1-18). The moving contact travels vertically upwards enabling
region E to interact with region D. The guiding pin (17) being connected to pallet
base interacts with region F of the pulling lever (16) transferring no movement to
the vacuum interrupter (5) resulting in the vacuum interrupter being in closed position.
[0018] Referring to figure 14, disconnecting position is a position in which the moving
contact (18) leaves the stationary contact (1) causing the primary circuit (1-18)
to become inactive and current to flow only through the secondary circuit. The guiding
pin (17) travels in region F of the pulling lever (16) and region A of the fixed support
(19) transferring no movement to the vacuum interrupter resulting in the vacuum interrupter
(5) being in closed position. The guiding pin (17), on achieving a sufficient dielectric
distance attaches to the pulling lever (16); the pulling pin (7) constrained with
pulling lever (16) pulls the linkage support (6) for attaching to collar (3) thereto.
The guiding pin (17) and pallet pivot (21) moving concurrently in region A of fixed
support (19) along with the pallet base (14) operates the vacuum interrupter (5) resulting
in breaking of current in the secondary circuit. The ratio of length of top linkage
means (8) and the bottom linkage means (10) is modified based on desired rating, stroke
or velocity required for opening the moving contact (18). In the present embodiment,
the length of top linkage means (8) and bottom linkage means (10) is equal making
the ratio of velocity of pulling pin (7) to linkage support (6) to 2:1. The linkage
support (6) engages the collar (3) and vacuum interrupter moving contacts, the vacuum
interrupter contact will open with half velocity in comparison to moving contact (18).
The length of the linkage means to open the vacuum interrupter contacts depends on
the desired velocity.
[0019] The separating position is a position in which the guiding pin (17) and pallet pivot
(21) interact with region B of the fixed support (19) while reducing speed of vacuum
interrupter (5) to a desired level. The engagement between pallet contact (15) and
moving contact (18) configured to keep vacuum interrupter (5) open preventing re-striking
or re-igniting an arc between pallet contact (15) and moving contact (18) on separation
from each other.
[0020] The closing position is a position in which release of the moving contact (18) from
the pallet contact (15) renders the primary circuit and secondary circuit inactive.
The linkage mechanism collapses by its weight and by the contacts closing force of
vacuum interrupter (5). The pallet pivot (21) and guiding pin (17) retract to their
initial position passing through regions B and A closing the vacuum interrupter (5).
the moving contact (18) moves down in the linear axis from its open position, the
protrusion (22) interacting with the pallet base (14), said pallet base (14) pivoting
about guiding pin (17) around pallet pivot (21) in region C allowing the moving contact
(18) to move down. The moving contact (18) electrically engages with stationary contact
(1) closing primary circuit, said moving contact (18) completing its stroke resulting
in pallet base (14) returning to its initial position. The closing position is the
intermediate position before initial position is achieved.
[0021] Advantageously, the input motion can be transferred to vacuum interrupter to allow
it to act as secondary circuit even in linear motion switch disconnectors while satisfying
the breaking needs for a given switch disconnector. For a given design change in stroke
of the vacuum interrupter is possible by changing the slot width in pulling lever
as well as by changing the slot profile in Fixed Support. For a given design, change
in contact velocity of vacuum interrupter is possible by changing the length of scissor
linkages. The opening of vacuum interrupter is in the same direction as the motion
of moving contact which nullifies the possibility of damaging/twisting of VI moving
stem.
[0022] Advantageously, the switch disconnector in RM6 Ring Main Unit has a linear contact
movement and the new design for the secondary or parallel circuit is suitable considering
its enclosure size. Other breaker and switch disconnectors like Flusarc also have
the potential to implement the above design. The linkage mechanism can also be made
suitable for a switch disconnector with rotary contacts. By changing only the length
of the linkage means we can adapt to the future modification in vacuum interrupters
in terms of ratings, stroke and the velocity requirement for its contact opening.
With the change in specification or ratings of vacuum interrupter, we can expect the
size to change, its moving contact velocity to change, or its contact displacement
to be changed. All these can be achieved by using one or more features of the cam
or transfer lever design parameters.
[0023] In an alternate embodiment, additional dampers could be provided to let the protrusion
(22) and pallet contact be connected. To avoid the jamming and sticky movements of
guiding pin at the end of opening travel, a torsion spring could be provided to have
a push back force. In a further alternate embodiment, the present invention may be
added as a subassembly to the existing switch disconnector.
[0024] While specific embodiments of the invention have been described in detail, it will
be appreciated by those skilled in the art that various modifications and alternatives
to those details could be developed in light of the overall teachings of the disclosure.
Accordingly, the particular arrangements disclosed are meant to be illustrative only
and not limiting as to the scope of the invention which is to be given the full breadth
of the appended claims.
1. A shunt breaking system comprising:
a primary circuit consisting of a stationary contact (1) and a moving contact (18), said stationary contact (1) being connected to an incoming busbar and said moving contact (18) is connected to an outgoing busbar;
a secondary circuit consisting of a vacuum interrupter (5) electrically connected to the stationary contact (1) on a terminal (12) with suitable connection means (4);
a linkage mechanism comprising of multiple linkage means supported on a linkage support
(6) having top linkage means (8) connected to a pulling pin (7) at its first end and bottom linkage means (10) at its second end with the help of sliding pins (9) slidable into slits provided in the linkage support (6), the second end of the bottom linkage means (10) being connected by a stationary pin (11) fixedly placed in a recess provided in a fixed support (19),
characterized in that
a collar (3), configured of passing through a bore in the linkage support (6), is connected to the bottom linkage means (10) with the stationary pin (11) at a collar first end and a moving contact end (13) of the vacuum interrupter (5) at a collar second end,
the moving contact end (13) is electrically connected to a pallet contact (15) by means of a flexible wire (20), said pallet contact (15) interacting with a protrusion (22) protruding out of an arm of the moving contact (18) and comprising a first profiled region (D) for interacting with a second profiled region (E) of the moving contact (18).
2. The shunt breaking system as claimed in claim 1, wherein the fixed support (19), comprising an inverse 'F' slot guiding a guiding pin (17), a pulling pin (7) and a pallet base (14) in it, is enabled to support the linkage mechanism and insulate live parts from nearest
earth/tank and other phase conductors.
3. The shunt breaking system as claimed in any of the preceding claims, wherein the fixed
support (19) comprises the pallet base (14) with the pallet contact (15) rigidly fixed thereto, said fixed support (19) having a first region (A), a second region (B) and a third region (C) comprised in the inverse 'F' slot of the fixed support (19).
4. The shunt breaking system as claimed in any of the preceding claims, wherein the guiding
pin (17), configured to pass through a pulling lever (16), is connected to the pallet base (14) at both ends, said pulling lever (16) comprising a third profiled region (F) for interacting with the guiding pin (17).
5. The shunt breaking system as claimed in any of the preceding claims, wherein the linkage
mechanism designed to actuate the moving contact (18) takes four positions of an opening position, a disconnecting position, a separating
position and a closing position, said moving contact (18) taking an initial position preceding to said four positions.
6. The shunt breaking system as claimed in claim 5 wherein in the initial position, the
primary circuit remains closed, the secondary circuit remains inactive and the vacuum
interrupter (5) is in closed condition.
7. The shunt breaking system as claimed in claim 5, wherein the opening position being
a position for connection between the protrusion (22) and the pallet contact (15) when the moving contact (18) being electrically connected to the pallet contact (15) to establish the secondary circuit besides the primary circuit, the moving contact
(18) travelling vertically upwards enabling the second profiled region (E) to interact with the first profiled region (D) and the guiding pin (17) being connected to the pallet base (14) interacts with the third profiled region (F) of the pulling lever (16) transferring no movement to the vacuum interrupter (5) resulting in the vacuum interrupter (5) being in closed position.
8. The shunt breaking system as claimed in claim 5, wherein the disconnecting position
being a position in which the moving contact (18) leaves the stationary contact (1) causing the primary circuit to become inactive and current to flow only through the
secondary circuit, the guiding pin (17) travels in the third profiled region (F) of the pulling lever (16) and the first region (A) of the inverse 'F' slot of the fixed support (19) transferring no movement to the vacuum interrupter (5) resulting in the vacuum interrupter (5) being in closed position, said the guiding pin (17), on achieving a sufficient dielectric distance attaches to the pulling lever (16), the pulling pin (7) constrained with the pulling lever (16) pulls the linkage support (6) for attaching to the collar (3) thereto.
9. The shunt breaking system as claimed in claim 8, wherein the guiding pin (17) and a pallet pivot (21) moving concurrently in the first region (A) of the inverse 'F' slot of the fixed support (19) along with the pallet base (14) operates the vacuum interrupter (5) resulting in breaking of current in the secondary circuit, and the linkage support
(6) engages the collar (3) and the moving contact (18), said contact opening with half velocity in comparison to the moving contact (18).
10. The shunt breaking system as claimed in claim 9, wherein the ratio of length of the
top linkage means (8) and the bottom linkage means (10) being modified based on desired rating, stroke or velocity required for opening the
moving contact (18).
11. The shunt breaking system as claimed in claim 5, wherein the separating position being
a position in which the guiding pin (17) and the pallet pivot (21) interact with the second region (B) of the inverse 'F slot of the fixed support (19) while reducing speed of vacuum interrupter (5) to a desired level, the engagement between the pallet contact (15) and the moving contact (18) configured to keep the vacuum interrupter (5) open preventing re-striking or re-igniting an arc between the pallet contact (15) and the moving contact (18) on separation from each other.
12. The shunt breaking system as claimed in claim 5, wherein the closing position being
an intermediate position before the initial position is achieved, is a position in
which release of the moving contact (18) from the pallet contact (15) renders the primary circuit and secondary circuit inactive, the linkage mechanism
collapsing by its weight and by the contacts closing force of the vacuum interrupter
(5); the pallet pivot (21) and the guiding pin (17) retracting to their initial position passing through the second region (B) and the first region (A) of the inverse 'F' slot of the fixed support (19) closing the vacuum interrupter (5).
13. The shunt breaking system as claimed in claim 12, wherein the moving contact (18) moves down in the linear axis from its open position, the protrusion (22) interacting with the pallet base (14), said pallet base (14) pivoting about the guiding pin (17) around the pallet pivot (21) in the third region (C) of the inverse 'F' slot of the fixed support (19) allowing the moving contact (18) to move down; said moving contact (18) electrically engages with the stationary contact (1) closing the primary circuit, said moving contact (18) completing its stroke resulting in the pallet base (14) returning to its original position.
1. Nebenschluss-Unterbrechersystem, umfassend:
einen Primärkreis, der aus einem stationären Kontakt (1) und einem beweglichen Kontakt (18) besteht, wobei der stationäre Kontakt (1) mit einer ankommenden Sammelschiene verbunden ist und der bewegliche Kontakt (18) mit einer abgehenden Sammelschiene verbunden ist;
einen Sekundärkreis, der aus einem Vakuumunterbrecher (5) besteht, der elektrisch mit dem stationären Kontakt (1) an einem Anschluss (12) mit geeigneten Verbindungsmitteln (4) verbunden ist;
einen Gestängemechanismus, der mehrere Gestängemittel umfasst, die auf einem Gestängeträger
(6) abgestützt sind und obere Gestängemittel (8), die an ihrem ersten Ende mit einem Zugstift (7) verbunden sind, und untere Gestängemittel (10) aufweisen, die mit Hilfe von Gleitstiften (9), die in Schlitze gleiten können, die in dem Gestängeträger (6) vorgesehen sind, an ihrem zweiten Ende verbunden sind, wobei das zweite Ende der
unteren Gestängemittel (10) durch einen stationären Stift (11) verbunden ist, der fest in einer Aussparung angeordnet ist, die in einem festen Träger
(19) vorgesehen ist,
dadurch gekennzeichnet, dass
ein Stellring (3), der konfiguriert ist, um durch eine Bohrung in dem Gestängeträger (6) hindurch zu gehen, mit dem unteren Gestängemittel (10) durch den stationären Stift (11) an einem ersten Ende des Stellrings und einem beweglichen Kontaktende (13) des Vakuumunterbrechers (5) an einem zweiten Ende des Stellrings verbunden ist,
das bewegliche Kontaktende (13) mit einem Palettenkontakt (15) über einen flexiblen Draht (20) elektrisch verbunden ist, wobei der Palettenkontakt (15) mit einem Vorsprung (22) zusammenwirkt, der aus einem Arm des beweglichen Kontakts (18) herausragt und einen ersten Profilbereich (D) zum Zusammenwirken mit einem zweiten Profilbereich (E) des beweglichen Kontakts (18) umfasst.
2. Nebenschluss-Unterbrechersystem nach Anspruch 1, wobei der feste Träger (19), der einen inversen "F"-Schlitz umfasst, der einen Führungsstift (17), einen Zugstift (7) und eine Palettenbasis (14) darin führt, in der Lage ist, den Gestängemechanismus zu stützen und spannungsführende
Teile gegen eine nächstgelegene Erdung/einen Behälter und andere Phasenleiter zu isolieren.
3. Nebenschluss-Unterbrechersystem nach einem der vorhergehenden Ansprüche, wobei der
feste Träger (19) die Palettenbasis (14) mit dem daran starr befestigten Palettenkontakt (15) umfasst, wobei der feste Träger (19) einen ersten Bereich (A), einen zweiten Bereich (B) und einen dritten Bereich (C) aufweist, die in dem inversen "F"-Schlitz des festen Trägers (19) enthalten sind.
4. Nebenschluss-Unterbrechersystem nach einem der vorhergehenden Ansprüche, wobei der
Führungsstift (17), der konfiguriert ist, um durch einen Zughebel (16) hindurch zu gehen, an beiden Enden mit der Palettenbasis (14) verbunden ist, wobei der Zughebel (16) einen dritten Profilbereich (F) zum Zusammenwirken mit dem Führungsstift (17) umfasst.
5. Nebenschluss-Unterbrechersystem nach einem der vorhergehenden Ansprüche, wobei der
Gestängemechanismus, der zum Betätigen des beweglichen Kontakts (18) ausgelegt ist, vier Positionen einnimmt, nämlich eine Öffnungsposition, eine Unterbrechungsposition,
eine Trennposition und eine Schließposition, wobei der bewegliche Kontakt (18) eine Ausgangsposition einnimmt, die den vier Positionen vorausgeht.
6. Nebenschluss-Unterbrechersystem nach Anspruch 5, wobei in der Ausgangsposition der
Primärkreis geschlossen bleibt, der Sekundärkreis inaktiv bleibt und der Vakuumunterbrecher
(5) in einem geschlossenen Zustand ist.
7. Nebenschluss-Unterbrechersystem nach Anspruch 5, wobei die Öffnungsposition eine Position
zur Verbindung zwischen dem Vorsprung (22) und dem Palettenkontakt (15) ist, wenn der bewegliche Kontakt (18) elektrisch mit dem Palettenkontakt (15) verbunden ist, um den Sekundärkreis neben dem Primärkreis aufzubauen, der bewegliche
Kontakt (18) vertikal nach oben wandert, so dass der zweite Profilbereich (E) mit dem ersten Profilbereich (D) zusammenwirken kann und der Führungsstift (17), der mit der Palettenbasis (14) verbunden ist, mit dem dritten Profilbereich (F) des Zughebels (16) zusammenwirkt und keine Bewegung auf den Vakuumunterbrecher (5) überträgt, was dazu führt, dass sich der Vakuumunterbrecher (5) in der Schließposition befindet.
8. Nebenschluss-Unterbrechersystem nach Anspruch 5, wobei die Unterbrechungsposition
eine Position ist, in der der bewegliche Kontakt (18) den stationären Kontakt (1) verlässt, wodurch der Primärkreis inaktiv wird und Strom nur durch den Sekundärkreis
fließt, der Führungsstift (17) in dem dritten Profilbereich (F) des Zughebels (16) wandert und der erste Bereich (A) des inversen "F"-Schlitzes des festen Trägers (19) keine Bewegung an den Vakuumunterbrecher (5) überträgt, was dazu führt, dass sich der Vakuumunterbrecher (5) in der Schließposition befindet, wobei der Führungsstift (17), um einen ausreichenden dielektrischen Abstand zu erreichen, sich an den Zughebel
(16) anheftet und der mit dem Zughebel (16) eingespannte Zugstift (7) den Gestängeträger (6) zur Befestigung an dem Stellring (3) dorthin zieht.
9. Nebenschluss-Unterbrechersystem nach Anspruch 8, wobei der Führungsstift (17) und ein Palettenzapfen (21), die sich gleichzeitig im ersten Bereich (A) des inversen "F"-Schlitzes des festen Trägers (19) zusammen mit der Palettenbasis (14) bewegen, den Vakuumunterbrecher (5) betätigen, was zu einer Stromunterbrechung im Sekundärkreis führt, und der Gestängeträger
(6) mit dem Stellring (3) und dem beweglichen Kontakt (18) in Eingriff tritt, wobei sich der Kontakt mit halber Geschwindigkeit im Vergleich
zum beweglichen Kontakt (18) öffnet.
10. Nebenschluss-Unterbrechersystem nach Anspruch 9, wobei das Längenverhältnis zwischen
den oberen Gestängemitteln (8) und den unteren Gestängemitteln (10) basierend auf einer gewünschten Klassifizierung, einem gewünschten Hub oder einer
zum Öffnen des beweglichen Kontakts (18) gewünschten Geschwindigkeit geändert wird.
11. Nebenschluss-Unterbrechersystem nach Anspruch 5, wobei die Trennposition eine Position
ist, in der der Führungsstift (17) und der Palettenzapfen (21) mit dem zweiten Bereich (B) des inversen "F"-Schlitzes des festen Trägers (19) zusammenwirken, während eine Geschwindigkeit des Vakuumunterbrechers (5) auf ein gewünschtes Niveau reduziert wird, wobei der Eingriff zwischen dem Palettenkontakt
(15) und dem beweglichen Kontakt (18) konfiguriert ist, um den Vakuumunterbrecher (5) offen zu halten, um ein erneutes Einschalten oder erneutes Zünden eines Lichtbogens
zwischen dem Palettenkontakt (15) und dem beweglichen Kontakt (18) bei Trennung voneinander zu verhindern.
12. Nebenschluss-Unterbrechersystem nach Anspruch 5, wobei die Schließposition, die eine
Zwischenposition ist, bevor die Ausgangsposition erreicht wird, eine Position ist,
in der das Lösen des beweglichen Kontakts (18) vom Palettenkontakt (15) den Primärkreis und den Sekundärkreis inaktiv macht, wobei der Gestängemechanismus
durch sein Gewicht und durch die Schließkraft der Kontakte des Vakuumunterbrechers
(5) zusammenbricht; der Palettenzapfen (21) und der Führungsstift (17) sich in ihre Ausgangsposition zurückziehen, wobei sie durch den zweiten Bereich (B) und den ersten Bereich (A) des inversen "F"-Schlitzes des festen Trägers (19) hindurchgehen, wodurch der Vakuumunterbrecher (5) geschlossen wird.
13. Nebenschluss-Unterbrechersystem nach Anspruch 12, wobei sich der bewegliche Kontakt
(18) aus seiner geöffneten Position in der Linearachse nach unten bewegt, wobei der Vorsprung
(22) mit der Palettenbasis (14) zusammenwirkt, wobei die Palettenbasis (14) an dem Führungsstift (17) um den Palettenzapfen (21) im dritten Bereich (C) des inversen "F"-Schlitzes des festen Trägers (19) schwenkt, so dass sich der bewegliche Kontakt (18) nach unten bewegen kann; wobei der bewegliche Kontakt (18) elektrisch mit dem stationären Kontakt (1) in Eingriff tritt und den Primärkreis schließt, wobei der bewegliche Kontakt (18) seinen Hub beendet, was dazu führt, dass die Palettenbasis (14) in ihre ursprüngliche Position zurückkehrt.
1. Système de rupture de shunt comprenant :
un circuit primaire constitué d'un contact stationnaire (1) et d'un contact mobile
(18), ledit contact stationnaire (1) étant connecté à une barre omnibus entrante,
et ledit contact mobile (18) étant connecté à une barre omnibus sortante ;
un circuit secondaire constitué d'un interrupteur sous vide (5) électriquement connecté
au contact stationnaire (1) sur une borne (12) avec un moyen de connexion approprié
(4) ;
un mécanisme à tringlerie comprenant une multiplicité de moyens formant tringlerie
supportés sur un support de tringlerie (6) ayant des moyens formant tringlerie supérieure
(8) connectée à une broche de traction (7) à sa première extrémité et des moyens formant
tringlerie inférieure (10) à sa seconde extrémité à l'aide de broches coulissantes
(9) capables de coulisser dans des fentes ménagées dans le support de tringlerie (6),
la seconde extrémité des moyens formant tringlerie inférieure (10) étant connectés
par une broche stationnaire (11) placée de manière fixe dans un évidement ménagé dans
un support fixe (19),
caractérisé en ce que
un collier (3), configuré pour passer à travers un perçage dans le support de tringlerie
(6), est connecté aux moyens formant tringlerie inférieure (10) avec la broche stationnaire
(11) à une première extrémité du collier et une extrémité de contact mobile (13) de
l'interrupteur sous vide (5) à une seconde extrémité du collier,
l'extrémité de contact mobile (13) est connectée électriquement à un contact à palette
(15) au moyen d'un fil flexible (20), ledit contact à palette (15) coopérant avec
une projection (22) qui se projette depuis un bras du contact mobile (18) et comprenant
une première région profilée (D) pour coopérer avec une seconde région profilée (E)
du contact mobile (18).
2. Système de rupture de shunt selon la revendication 1, dans lequel le support fixe
(19), qui comprend une fente en "F" inversé guidant une broche de guidage (17), une
broche de traction (7) et une base de palette (14) en lui-même, est amené à supporter
le mécanisme à tringlerie et isoler les parties actives vis-à-vis de la terre/du réservoir
au plus proche et d'autres conducteurs de phase.
3. Système de rupture de shunt selon l'une quelconque des revendications précédentes,
dans lequel le support fixe (19) comprend la base de palette (14) avec le contact
à palette (15) fixé rigidement à celle-ci, ledit support fixe (19) ayant une première
région (A), une seconde région (B) et une troisième région (C) comprise dans la fente
en "F" inversé du support fixe (19).
4. Système de rupture de shunt selon l'une quelconque des revendications précédentes,
dans lequel la broche de guidage (17), configurée pour passer à travers un levier
de traction (16), est connectée à la base de palette (14) aux deux extrémités, ledit
levier de traction (16) comprenant une troisième région profilée (F) pour coopérer
avec la broche de guidage (17).
5. Système de rupture de shunt selon l'une quelconque des revendications précédentes,
dans lequel le mécanisme à tringlerie conçu pour actionner le contact mobile (18)
occupe quatre positions qui sont une position d'ouverture, et une position de déconnexion,
une position de séparation et une position de fermeture, ledit contact mobile (18)
occupant une position initiale précédant lesdites quatre positions.
6. Système de rupture de shunt selon la revendication 5, dans lequel, dans la position
initiale, le circuit primaire reste fermé, le circuit secondaire est inactif, et l'interrupteur
sous vide (5) est en condition fermée.
7. Système de rupture de shunt selon la revendication 5, dans lequel la position d'ouverture
est une position pour connexion entre la projection (22) et le contact à palette (15)
quand le contact mobile (18) est connecté électriquement au contact à palette (15)
pour établir le circuit secondaire à côté du circuit primaire, le contact mobile (18)
se déplaçant verticalement vers le haut permettant à la seconde région profilée (E)
de coopérer avec la première région profilée (D) et la broche de guidage (17) qui
est connectée à la base de palette (14) coopère avec la troisième région profilée
(F) du levier de traction (16) et ne transfère aucun mouvement à l'interrupteur sous
vide (5) avec pour résultat que l'interrupteur sous vide (5) est dans la position
fermée.
8. Système de rupture de shunt selon la revendication 5, dans lequel la position de déconnexion
est une position dans laquelle le contact mobile (18) quitte le contact stationnaire
(1) en amenant le circuit primaire à devenir inactif et le courant à s'écouler uniquement
à travers le circuit secondaire, la broche de guidage (17) se déplace dans la troisième
région profilée (F) du levier de traction (16) et la première région (A) de la fente
en "F" inversé du support fixe (19) ne transfère aucun mouvement à l'interrupteur
sous vide (5) avec pour résultat que l'interrupteur sous vide (5) est dans la position
fermée, ladite broche de guidage (17), lorsqu'elle atteint une distance électrique
suffisante, est attachée au levier de traction (16), et la broche de traction (7)
contrainte avec le levier de traction (16) tire le support de tringlerie (6) pour
attacher le collier (3) à celui-ci.
9. Système de rupture de shunt selon la revendication 8, dans lequel la broche de guidage
(17) et un pivot de palette (21) qui se déplace concurremment dans la première région
(A) de la fente en "F" inversé du support fixe (19), ensemble avec la base de palette
(14), actionne l'interrupteur sous vide (5) avec pour résultat une coupure de courant
dans le circuit secondaire, et le support de tringlerie (6) engage le collier (3)
et le contact mobile (18), ledit contact s'ouvrant à la moitié de la vitesse par comparaison
au contact mobile (18).
10. Système de rupture de shunt selon la revendication 9, dans lequel le rapport de la
longueur des moyens formant tringlerie supérieure (8) et des moyens formant tringlerie
inférieure (10) est modifié sur la base d'un taux désiré, d'une course désirée ou
d'une vitesse désirée requise pour ouverture du contact mobile (18).
11. Système de rupture de shunt selon la revendication 5, dans lequel la position de séparation
est une position dans laquelle la broche de guidage (17) et le pivot de palette (21)
coopèrent avec la seconde région (B) de la fente en "F" inversé du support fixe (19)
tout en réduisant la vitesse de l'interrupteur sous vide (5) à un niveau désiré, l'engagement
entre le contact à palette (15) et le contact mobile (18) étant configuré pour garder
l'interrupteur sous vide (5) ouvert en empêchant le re-claquage ou le ré-allumage
d'un arc entre le contact à palette (15) et le contact mobile (18) lorsqu'ils se séparent
l'un de l'autre.
12. Système de rupture de shunt selon la revendication 5, dans lequel la position de fermeture,
qui est une position intermédiaire avant d'atteindre la position initiale, est une
position dans laquelle un relâchement du contact mobile (18) depuis le contact à palette
(15) rend le circuit primaire et le circuit secondaire inactifs, le mécanisme à tringlerie
s'effondrant sous son poids et sous la force de fermeture des contacts de l'interrupteur
sous vide (5) ; le pivot de palette (21) et la tige de guidage (17) se rétractent
à leur position initiale en passant à travers la seconde région (B) et la première
région (A) de la fente en "A" inversé du support fixe (19) en fermant l'interrupteur
sous vide (5).
13. Système de rupture de shunt selon la revendication 12, dans lequel le contact mobile
(18) se déplace vers le bas dans l'axe linéaire depuis sa position ouverte, la projection
(22) coopérant avec la base de palette (14), ladite base de palette (14) pivotant
autour de la broche de guidage (17) autour du pivot de palette (21) dans la troisième
région (C) de la fente en "F" inversé du support fixe (19) en permettant au contact
mobile (18) de se déplacer vers le bas ; ledit contact mobile (18) engageant électriquement
le contact stationnaire (1) et fermant le circuit primaire, ledit contact mobile (18)
achevant sa course avec pour résultat que la base de palette (14) retourne à sa position
d'origine.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description