[Technical Field]
[0001] The present invention relates to a gas circuit breaker for extinguishing arc generated
when electricity is blocked is performed by using extinguishing gas.
[Background Art]
[0002] A gas circuit breaker is a device, which is installed on an electric line, and blocks
a current when an accident, such as artificial line blocking or short-circuit, occurs,
and protects a power system and a power device. A typical gas circuit breaker includes
a fixed electrode and a movable electrode, makes the fixed electrode and the movable
electrode be separated from each other by a trip operation of the movable electrode,
and injects compressed extinguishing gas (for example, SF
6) to a compression chamber and extinguishes arc generated when the fixed electrode
and the movable electrode are separated from each other.
[0003] Arc is generated between an end of the fixed electrode and an end of the movable
electrode in the gas circuit breaker, and the arc is gradually elongated together
with a movement of the movable electrode until the arc is extinguished by the extinguishing
gas.
[0004] When the length of the arc is increased, arc energy is increased and more extinguishing
gas is required for extinguishing, and thus a volume of a cylinder of the gas circuit
breaker is increased in order to store more extinguishing gas and an entire size of
the gas circuit breaker needs to be also increased. Further, the increase in the volume
of the gas circuit breaker causes an increase in operation force for moving the movable
electrode, so that a size of an operating device needs to be also increased, and as
a result, manufacturing cost is increased.
[Disclosure]
[Technical Problem]
[0005] The present invention provides a gas circuit breaker capable of performing an extinguishing
function with the smaller amount of extinguishing gas.
[Technical Solution]
[0006] An exemplary embodiment of the present invention provides a gas circuit breaker according
to claim 1, including inter alia: a first contact portion including a first arc inducement
contact; a second contact portion including a second arc inducement contact, which
is formed so as to be relatively movable with respect to the first arc inducement
contact so as to be in a state of being in contact with the first arc inducement contact
or a state of being separated from the first arc inducement contact; a gas chamber
configured to store extinguishing gas for extinguishing arc generated between the
first arc inducement contact and the second arc inducement contact when the first
arc inducement contact is separated from the second arc inducement contact; a gas
injection nozzle formed of an electric insulating material and configured to form
an injection passage of extinguishing gas; and an arc length limiting contact disposed
so as to be spaced apart from the second arc inducement contact, and configured so
as to be moved together with the second arc inducement contact when the second arc
inducement contact moves, and configured so that an end of the arc length limiting
contact at the second arc inducement contact side is located at a point beyond an
end of the first arc inducement contact when the first arc inducement contact is farthest
from the second arc inducement contact.
[0007] The gas injection nozzle may be configured to be moved together with the second arc
inducement contact, and the arc length limiting contact is fixed to the gas injection
nozzle.
[0008] The first arc inducement contact may be formed in a rod shape, and the arc length
limiting contact includes an axis-directional extended portion provided with a through-hole,
into which the first arc inducement contact is inserted.
[0009] The axis-directional extended portion may be provided with a gas movement hole for
allowing the extinguishing gas to move.
[0010] The axis-directional extended portion may be disposed within the gas injection nozzle,
the arc length limiting contact may further include a plurality of radius-directional
extended portions extended from the axis-directional extended portion in a radius
direction and connected to the gas injection nozzle, and the plurality of radius-directional
extended portions may be spaced apart from each other so that the extinguishing gas
is movable therebetween.
[0011] The arc length limiting contact may include an arc tip, which is formed at the end
of the arc length limiting contact at the second arc inducement contact side and has
relatively large arc resistivity.
[0012] The arc tip may be formed of an alloy containing copper and tungsten.
[0013] The first contact portion may include an electrical conductive guide tube electrically
connected to the first arc inducement contact.
[0014] The art length limiting contact may be electrically connected to the guide pipe,
and is configured to be in contact with the first arc inducement contact in a state
where the first arc inducement contact is in contact with the second arc inducement
contact.
[0015] The gas circuit breaker may further include an electric field release shield electrically
connected to the arc length limiting contact and configured to perform an electric
filed release operation.
[0016] The electric field release shield may be interposed between the gas injection nozzle
and the guide tube in a state of being connected to the arc length limiting contact.
[0017] The electric field release shield may include an axis-directional extended portion
extended in an axis direction, and a curved extended portion extended from an end
of the axis-directional extended portion to an external side in a radius direction
in a shape of a curved surface.
[0018] The gas circuit breaker may further include a contact member interposed between the
electric field release shield and the tube member, and electrically connected to the
electric field release shield and the tube member while being in contact with the
electric field release shield and the tube member.
[0019] Another exemplary embodiment of the present invention provides an arc length limiting
contact configured to limit a length of arc between a first contact portion including
a first arc inducement contact and a second contact portion including a second arc
inducement contact, which is formed so as to be relatively movable with respect to
the first arc inducement contact so as to be in a state of being in contact with the
first arc inducement contact or a state of being separated from the first arc inducement
contact, in which wherein the arc length limiting contact is disposed so as to be
spaced apart from the second arc inducement contact, and is configured so as to be
moved together with the second arc inducement contact when the second arc inducement
contact moves, and is configured so that an end of the second arc inducement contact
is located at a point beyond an end of the arc length limiting contact at the first
arc inducement contact side when the first arc inducement contact is farthest from
the second arc inducement contact.
[0020] The arc length limiting contact may include an axis-directional extended portion
provided with a through-hole, into which the first arc inducement contact is inserted,
and a plurality of radius-directional extended portions extended from the axis-directional
extended portion in a radius direction.
[0021] The plurality of radius-directional extended portions may be provided in plural,
and may be spaced apart from each other.
[0022] The axis-directional extended portion may include an arc tip having relatively large
arc resistivity.
[0023] The arc tip may be formed of an alloy containing copper and tungsten.
[Advantageous Effects]
[0024] According to the present invention, a length of arc is limited by using the arc length
limiting contact, so that arc energy is limited, so that it is possible to implement
an extinguishing gas with the smaller amount of extinguishing gas, and thus it is
possible to decrease a volume of the gas circuit breaker and facilitate reduction
of driving force of the gas circuit breaker.
[Description of Drawings]
[0025]
FIG. 1 is a cross-sectional view of a conducting state of a gas circuit breaker according
to an exemplary embodiment of the present invention.
FIG. 2 is a diagram illustrating an arc length limiting contact of the gas circuit
breaker according to the exemplary embodiment of the present invention.
FIG. 3 is a cross-sectional view of an electric field releasing shield of the gas
circuit breaker according to the exemplary embodiment of the present invention.
FIG. 4 is a diagram illustrating a state where a first and second arc inducement contacts
relatively move during an electricity blocking operation of the gas circuit breaker
according to the exemplary embodiment of the present invention.
FIG. 5 is a diagram illustrating a state where arc is moved to the arc length limiting
contact during the electricity blocking operation of the gas circuit breaker according
to the exemplary embodiment of the present invention.
[Best Mode]
[0026] Hereinafter, a gas circuit breaker according to an exemplary embodiment of the present
invention will be described in detail with reference to the accompanying drawings.
[0027] A gas circuit breaker according to an exemplary embodiment of the present invention
may include first and second housings 130 and 240, which are electrically connected
with each other in a general conducting state. For example, the first housing 130
and the second housing 240 may be formed of a metal material having electric conductivity,
and as illustrated in FIG. 1, the first housing 130 and the second housing 240 may
be disposed so as to face each other in a state of being spaced apart from each other
by a predetermined distance in an axis direction (X-direction).
[0028] In the meantime, the gas circuit breaker according to the exemplary embodiment of
the present invention includes a first contact portion 100 and a second contact portion
200 for electrically connecting the first housing 130 and the second housing 240 and
electrically blocking the first housing 130 from the second housing 240, and performing
an arc inducement function during an electricity blocking operation is performed.
The first and second housings 130 and 240 are electrically connected and blocked,
and the art inducement during the blocking of electricity by the operations of the
first and second contact portions 100 and 200.
[0029] The first contact portion 100 may include a first main contact 144. For example,
the first main contact 144 may have a tube shape, and may be in contact with and electrically
connected to the first housing 130. Particularly, referring to FIG. 1, the first main
contact 144 may be formed so as to be in contact with a connection portion 131, which
is extended from an internal surface of the first housing 130 to an internal side.
[0030] The second contact portion 200 is installed to be movable in the axis direction (the
X-axis direction in FIG. 1). For example, the second contact portion 200 may include
a moving housing 220 and a second main contact 420 installed in the moving housing
220. The second main contact 420 is installed so as to be movable together with the
moving housing 220, and is in contact with or separated from the first main contact
144 according to a movement position. For example, the second main contact 420 may
be installed in a state of being in contact with a flange part 223 provided at an
end of the moving housing 220.
[0031] In the meantime, the moving housing 220 is in contact with the second housing 240,
and thus, the second main contact 420 is electrically connected to the second housing
240 through the moving housing 220. Accordingly, the first and second housings 130
and 240 are electrically connected by the first main contact 144, the second main
contact 420, and the moving housing 220. In this case, the first main contact 144,
the second main contact 420, and the moving housing 220 may be formed of a material
having electric conductivity.
[0032] As illustrated in FIG. 1, when the second contact 420 is in contact with the first
main contact 114, the first and second housings 130 and 240 are electrically connected
with each other to maintain a conducting state, and when electricity is blocked, the
second main contact 420 moves together with the moving housing 220, so that the second
main contact 420 is separated from the first main contact 144.
[0033] In the meantime, the first contact portion 100 and the second contact portion 200
may include a first arc inducement contact 110 and a second arc inducement contact
210 for inducing arc when electricity is blocked, respectively. The first arc inducement
contact 110 and the second arc inducement contact 210 may be formed of a material
having electric conductivity. As illustrated in FIG. 1, the first arc inducement contact
110 and the second arc inducement contact 210 are in contact with each other and electrically
connected with each other when electricity is conducted, and are separated from each
other when electricity blocking is operated to perform the function of inducing arc.
[0034] The second arc inducement contact 210 is formed so as to be in a state (that is,
a conducting state) of being in contact with the first arc inducement contact 110
or a state of being separated from the first arc inducement contact 110. To this end,
the second arc inducement contact 210 may be formed so as to be relatively movable
with respect to the first arc inducement contact 110 in the axis direction (the X-axis
direction in FIG. 1). That is, the second arc inducement contact 210 may be relatively
movable with respect to the first arc inducement contact 110 in the axis direction
to be in a state of being separated from the first arc inducement contact 110 as illustrated
in FIGS. 4 and 5, and in this state, the first arc inducement contact 110 and the
second arc inducement contact 210 are spaced apart from each other, so that the electrical
connection thereof of the first arc inducement contact 110 and the second arc inducement
contact 210 are blocked and the first arc inducement contact 110 and the second arc
inducement contact 210 are separated from each other, thereby inducing arc generated
by the electricity blocking operation. In this case, the first arc inducement contact
110 may be configured so as to maintain a stop state in place, and in another example,
the first arc inducement contact 110 may be configured so as to be slightly moved
in a direction far from the second arc inducement contact 210. The case illustrated
in the drawing is a case where the first arc inducement contact 110 is connected to
a driving rod 113 to be movable within a predetermined range.
[0035] The first arc inducement contact 110 may have a shape of a rod as illustrated in
FIG. 1, and a rear end of the first arc inducement contact 110 may be connected to
a connection member 120.
[0036] The second arc inducement contact 210 may be fixed to a partition wall 221 provided
inside the moving housing 220, and in this case, the partition wall 221 may be formed
of a material having electric conductivity, similar to the moving housing 220. Accordingly,
the second arc inducement contact 210 may be electrically connected with the second
moving housing 220 and the second housing 240.
[0037] Further, the second arc inducement contact 210 may be provided with a through-hole
211, into which a front part of the first arc inducement contact 110 is inserted.
That is, as illustrated in FIG. 1, the first arc inducement contact 110 maintains
a state of being inserted into the through-hole 211 of the second arc inducement contact
210 in a general conducting state.
[0038] In the meantime, a cover member 213 surrounding an outer peripheral surface in a
radius direction and a front part of the second arc inducement contact 210 may be
provided. The cover member 314 may be formed of an electric insulating material, and
provided with a through-hole 215 formed at a position corresponding to the through-hole
of the second arc inducement contact 210. The cover member 213 serves to protect the
second arc inducement contact 210, and make extinguishing gas be easily compressed
and flow. The front part of the first arc inducement contact 110 is inserted into
the through-hole 215 of the cover member 213 and the through-hole 211 of the second
arc inducement contact 210.
[0039] The second arc inducement contact 210 may be installed so as to be connected to the
driving rod 230 to be movable in a direction far from the first arc inducement contact
110 by driving force of the driving rod 230. In this case, the driving rod 230 may
be connected to the partition wall of the moving housing 220. In this case, although
not illustrated in the drawing, an actuator connected to the driving rod 230 to drive
the driving rod 230 may be provided.
[0040] By the aforementioned structure, the moving housing 220 may be moved in the axis
direction (a horizontal direction in FIG. 1) by the driving force of the driving rod
230, and thus, the second main contact 420 and the second arc inducement contact 210
installed in the moving housing 220 may be moved in the axis direction.
[0041] In the meantime, the gas circuit breaker according to the exemplary embodiment of
the present invention includes a gas chamber 300, and extinguishing gas stored in
the gas chamber 300 has increased pressure by arc generated between the first arc
inducement contact 110 and the second arc inducement contact 210 when the first arc
inducement contact 110 and the second arc inducement contact 210 are separated from
each other to perform an extinguishing operation. That is, when an electricity blocking
operation is performed in order to block electricity in a case of electricity short-circuit
and the like, the first main contact 114 and the second main contact 420 are separated
from each other by the movement of the moving housing 220, and further, the first
arc inducement contact 110 and the second arc inducement contact 210 are separated
from each other by the movement of the second arc inducement contact 210, and in this
case, electric arc is generated between the first arc inducement contact 110 and the
second arc inducement contact 210 and the arc may be extinguished by extinguishing
gas of which pressure is increased by the arc. For example, the extinguishing gas
may be gas, such as SF
6, having an excellent extinguishing characteristic.
[0042] In the meantime, a gas injection nozzle 400 is provided. The gas injection nozzle
400 may be formed of an electric insulating material, and forms an injection passage
of extinguishing gas. For example, as illustrated in the drawing, the gas injection
nozzle 400 may be provided with a gas passage 410 extended in the axis direction.
The gas passage 410 may include a portion 411 accommodating one side of the second
arc inducement contact 210, a portion 415 located at an opposite side of the portion
411, and a neck portion 413 connecting both portions 411 and 415. The neck portion
413 may be formed in a neck shape having a smaller diameter than that of the portions
411 and 415 located at both sides thereof. The neck portion 413 may have the same
shape as that of a cross-section of the first arc inducement contact 110 shaped like
a rod, and have a slightly large size.
[0043] The gas injection nozzle 400 may be configured to be moved together with the second
arc inducement contact 210. For example, as illustrated in the drawings, the gas injection
nozzle 400 is fastened to the flange part 223 of the moving housing 220, so that the
gas injection nozzle 400 may be installed to be moved together with the second arc
inducement contact 210.
[0044] The gas circuit breaker according to the exemplary embodiment of the present invention
includes an arc length limiting contact 500. The arc length limiting contact 500 is
disposed to be spaced apart from the second arc inducement contact 210, and configured
to be moved together with the second arc inducement contact 210 when the second arc
inducement contact 210 moves. The arc length limiting contact 500 may be fastened
to an end of the gas injection nozzle 400 to be movable together with the second arc
inducement contact 210 when the moving housing 220 moves.
[0045] Further, the arc length limiting contact 500 is configured so that an end 501 of
the arc length limiting contact 500 is located at a point beyond an end 111 of the
first arc inducement contact 110 when the first arc inducement contact 110 and the
second arc inducement contact 210 are farthest from each other. Accordingly, as illustrated
in FIG. 5, when the first arc inducement contact 110 and the second arc inducement
contact 210 are far from each other by a predetermined degree, the end 501 of the
arc length limiting contact 500 is located closer to the second arc inducement contact
210 than the end 111 of the first arc inducement contact 110. By the aforementioned
structure, the arc length limiting contact 500 may limit a length of the arc generated
in the electricity blocking process. This will be described again below.
[0046] In the meantime, as illustrated in FIG. 1, a guide tube 140 may be provided at one
side of the first housing 130. The guide tube 140 may be connected to the first housing
130 by the connection portion 131 illustrated in FIG. 1.
[0047] The arc length limiting contact 500 may be disposed so as to be located at an end
of the guide tube 140 in the conducting state as illustrated in FIG. 1, and the arc
length limiting contact 500 will be described in more detail below.
[0048] The arc length limiting contact 500 is fixed to the gas injection nozzle 400. For
example, as illustrated in the drawing, the arc length limiting contact 500 may be
coupled to a front end of the gas injection nozzle 400.
[0049] Referring to FIG. 2, the arc length limiting contact 500 includes an axis-directional
extended portion 510 forming the through-hole 511 into which the first arc inducement
contact 110 is inserted. The axis-directional extended portion 510 is extended in
the movement direction of the second arc inducement contact 210, that is, the axis
direction (the X-axis direction in FIG. 1), and the through-hole 511 is extended in
the axis direction.
[0050] In the meantime, the arc length limiting contact 500 includes a plurality of radius-directional
extended portions 530. In this case, as illustrated in FIG. 2, the axis-directional
extended portion 510 of the arc length limiting contact 500 is disposed within the
gas injection nozzle 400, and the radius-directional extended portion 530 is extended
in the radius direction (a Y-axis direction in FIG. 1) from the end of the axis-directional
extended portion 530 to be connected to the gas injection nozzle 400. In this case,
the plurality of radius-directional extended portions 530 is formed while being spaced
apart from each other so that extinguishing gas is movable between the plurality of
radius-directional extended portions 530. Accordingly, as illustrated in FIG. 5, the
extinguishing gas is movable through spaces between the through-hole 511 in the axis
direction of the arc length limiting contact 500 and the plurality of radius-directional
extended portions 530.
[0051] Further, a gas movement hole 513 may be formed in the axis-directional extended portion
510 of the arc length limiting contact 500. Extinguishing gas is movable to internal
and external sides of the axis-directional extended portion 530 through the gas movement
hole 513 to facilitate the movement of the extinguishing gas.
[0052] In the meantime, the end of the axis-directional extended portion 530 (that is, the
end of the arc length limiting contact 500 at the second arc inducement contact 210
side) of the arc length limiting contact 500 may be formed of an arc tip 520 having
relatively large arc resistivity. Since the art is formed at the end of the axis-directional
extended portion 530, it is possible to minimize an end part of the arc length limiting
contact 500 from being damaged by high arc energy by forming the end with the arc
tip 520 having relatively arc resistivity.
[0053] For example, the arc tip 520 may be formed of an alloy containing copper and tungsten.
In the meantime, the axis-directional extended portion 530 except for the arc tip
520 may be formed of a copper material. As described above, instead of forming the
entire axis-directional extended portion 530 of an arc resistive material, the arc
tip 520 is formed of an arc resistive material, of which processing is relatively
difficult and manufacturing cost is high, thereby easily manufacturing the gas circuit
breaker and reducing manufacturing cost.
[0054] The arc length limiting contact 500 may be electrically connected to the aforementioned
guide tube 140.
[0055] In the present exemplary embodiment, an electric field release shield 600 and a contact
member 700 may be further provided, and the arc length limiting contact 500 may be
electrically connected to the guide tube 140 through the electric field release shield
600 and the contact member 700. However, when the electric field release shield 600
is omitted, the arc length limiting contact 500 may be directly electrically connected
to the guide tube 140. By the aforementioned structure, the arc length limiting contact
500 is electrically connected to the first housing 130.
[0056] The electric field release shield 600 is a member for releasing an electric field
when the electricity blocking operation is performed, and may be fastened to the radius-directional
extended portion 530 of the arc length limiting contact 500. Accordingly, the radius-directional
extended portion 530 of the arc length limiting contact 500 is in contact with and
electrically connected with the electric field release shield 600, and the electric
field release shield 600 may be in in contact with and electrically connected with
the guide pipe 140.
[0057] Referring to FIG. 3, the electric field release shield 600 may be formed in a tube
shaped capable of accommodating one end of the gas injection nozzle 400, and may be
formed of an electrical conductive material, such as aluminum. The electric field
release shield 600 may include an axis-directional extended portion 610 extended in
the axis direction, and include a curved extended portion 620 rolled in a curved-surface
shape from an end of the axis-directional extended portion 610 to an external side
in the radius direction. An electric field release effect may be obtained by adjusting
lengths and shapes of the axis-directional extended portion 610 and the curved extended
portion 620. The electric field release shield 600 releases an electric field between
the electrodes, thereby preventing breakdown during the blocking of electricity.
[0058] In the meantime, the electric field release shield 600 may include an accommodating
recess 630 for accommodating the contact member 700, and the contact member 700 is
disposed in the accommodating recess 630 to be in contact with the electric field
release shield 600 and the guide tube 140, so that the electric field release shield
600 and the guide tube 140 may be electrically connected. The contact member 700 may
be a ring-shaped spring formed of an electrical conductive material.
[0059] Hereinafter, an operation of the gas circuit breaker according to the exemplary embodiment
of the present invention will be described.
[0060] First, in a general conducting state illustrated in FIG. 1, a state where the first
housing 130, the moving housing 220, and the second housing 240 are electrically connected
to each other by a contact of the first main contact 144 and the second main contact
420 is maintained. In this case, the first arc inducement contact 110 and the second
arc inducement contact 210 are electrically connected while maintaining a state of
being in contact with each other.
[0061] In the meantime, when the electricity blocking operation is performed, the moving
housing 220 is moved in the axis direction by an operation of the driving rod 230,
and thus, the second main contact 420 and the second arc inducement contact 210 are
moved toward a side far from the first housing 130 in the axis-direction together
with the moving housing 220. In this case, as described above, the first arc inducement
contact 110 may also be slightly moved in a direction far from the second housing
240 by the driving rod 111. By the movement, the first main contact 144 and the second
main contact 420 are separated from each other, and then, the first arc inducement
contact 110 and the second arc inducement contact 210 are also separated from each
other. In this case, electric arc is induced between the first arc inducement contact
110 and the second arc inducement contact 210 while the first arc inducement contact
110 and the second arc inducement contact 210 are separated from each other, and pressure
of extinguishing gas is increased by the generated arc and an arc extinguishing operation
starts. FIG. 4 illustrates a state where arc is formed between the first arc inducement
contact 110 and the second arc inducement contact 210 in a state where the first main
contact 144 and the second main contact 420 are separated and further, the first arc
inducement contact 110 and the second arc inducement contact 210 are separated from
each other.
[0062] The arc length limiting contact 500 is moved by the same amount as that of the movement
of the second arc inducement contact 210 together with the movement of the second
arc inducement contact 210, and when the arc length limiting contact 500 moves further
from the state of FIG. 4, the end 501 of the arc length limiting contact 500 toward
the second arc inducement contact 210 passes through the end 111 of the first arc
inducement contact 110. That is, as illustrated in FIG. 5, the end 501 of the arc
length limiting contact 500 is located closer to the second arc inducement contact
210 than the end 111 of the first arc inducement contact 110.
[0063] When the end 111 of the first arc inducement contact 110 is located at a place closer
to the second arc inducement contact 210 than the end 501 of the arc length limiting
contact 500, arc is formed between the end of the second arc inducement contact 210
and the end 111 of the first arc inducement contact 110 as illustrated in FIG. 4,
but an arcing time is increased, so that arc at the end 111 of the first arc inducement
contact 110 is moved to the arc length limiting contact 500 at a moment at which the
end 501 of the arc length limiting contact 500 passes through the end 111 of the first
arc inducement contact 110. Accordingly, as illustrated in FIG. 5, the arc between
the arc length limiting contact 500 and the second arc inducement contact 210 is maintained
from the time at which the end 501 of the arc length limiting contact 500 passes through
the end 111 of the first arc inducement contact 110, so that a length of the arc does
not further increased, and is maintained. Accordingly, a maximum length of the arc
is limited to a distance between the end of the second arc inducement contact 210
and the end 501 of the arc length limiting contact 500. The length of the arc is limited
as described above, extinguishing may be performed by the smaller amount of extinguishing
gas.
[0064] In the meantime, the arc length limiting contact according to the exemplary embodiment
of the present invention has been described above, so that a separate description
thereof will be omitted. Further, the arc length limiting contact according to the
exemplary embodiment of the present invention is applicable to various products, such
as a switch, as well as the gas circuit breaker, to which the technical spirit of
the limitation of the length of the arc is applicable.
[0065] In the above, the exemplary embodiment of the present invention has been described,
but the scope of the present invention is not limited thereto, and includes all of
the changes and corrections, which are easily changed by the person skilled in the
art on the basis of the exemplary embodiment of the present invention and recognized
as equivalent matters.
[Industrial Applicability]
[0066] The present invention relates to a gas circuit breaker and is applicable to an electric
system, thereby being industrially applicable.
1. A gas circuit breaker, comprising:
a first contact portion (100) including a first arc inducement contact (110);
a second contact portion (200) including a second arc inducement contact (210), which
is formed so as to be relatively movable with respect to the first arc inducement
contact (110) so as to be in a state of being in contact with the first arc inducement
contact (110) or a state of being separated from the first arc inducement contact
(110);
a gas chamber (300) configured to store extinguishing gas for extinguishing arc generated
between the first arc inducement contact (110) and the second arc inducement contact
(210) when the first arc inducement contact (110) is separated from the second arc
inducement contact (210);
a gas injection nozzle (400) formed of an electric insulating material and configured
to form an injection passage of extinguishing gas; and
an arc length limiting contact (500) disposed so as to be spaced apart from the second
arc inducement contact (210), and configured so as to be moved together with the second
arc inducement contact (210) when the second arc inducement contact (210) moves, and
configured so that an end of the arc length limiting contact (500) at the second arc
inducement contact (210) side is located at a point beyond an end of the first arc
inducement contact (110) when the first arc inducement contact (110) is farthest from
the second arc inducement contact (210),
wherein the gas injection nozzle (400) is configured to be moved together with the
second arc inducement contact (210), and the arc length limiting contact (500) is
fixed to the gas injection nozzle (400)
wherein the first arc inducement contact (110) is formed in a rod shape, and the arc
length limiting contact (500) includes an axis-directional extended portion (510),
being extended in the movement direction of the second arc inducement contact (210),
provided with a through-hole (551), into which the first arc inducement contact (110)
is inserted
wherein the axis-directional extended portion (510) is disposed within the gas injection
nozzle (400), characterized in that the arc length limiting contact (500) further includes a plurality of radius-directional
extended portions (530) extended from the axis-directional extended portion (510)
in a radius direction and connected to the gas injection nozzle (400), and the plurality
of radius-directional extended portions (530) is spaced apart from each other so that
the extinguishing gas is movable therebetween.
2. The gas circuit breaker of claim 1, wherein the axis-directional extended portion
(510) is provided with a gas movement hole (513) for allowing the extinguishing gas
to move.
3. The gas circuit breaker of claim 1, wherein the arc length limiting contact (500)
includes an arc tip (520), which is formed at the end of the arc length limiting contact
(500) at the second arc inducement contact (210) side and has relatively large arc
resistivity.
4. The gas circuit breaker of claim 3, wherein the arc tip (520) is formed of an alloy
containing copper and tungsten.
5. The gas circuit breaker of claim 1, wherein the first contact portion (100) includes
an electrical conductive guide tube (140) electrically connected to the first arc
inducement contact (110).
6. The gas circuit breaker of claim 5, wherein the art length limiting contact is electrically
connected to the guide tube (140), and is configured to be in contact with the first
arc inducement contact (110) in a state where the first arc inducement contact (110)
is in contact with the second arc inducement contact (210).
7. The gas circuit breaker of claim 6, further comprising:
an electric field release shield electrically connected to the arc length limiting
contact (500) and configured to perform an electric field release operation.
8. The gas circuit breaker of claim 7, wherein the electric field release shield (600)
is interposed between the gas injection nozzle (400) and the guide tube (140) in a
state of being connected to the arc length limiting contact (500).
9. The gas circuit breaker of claim 7, wherein the electric field release shield (600)
includes an axis-directional extended portion (610) extended in an axis direction,
and a curved extended portion extended from an end of the axis-directional extended
portion (610) to an external side in a radius direction in a shape of a curved surface.
10. The gas circuit breaker of claim 7, further comprising:
a contact member (700) interposed between the electric field release shield (600)
and the tube member (140), and electrically connected to the electric field release
shield (600) and the tube member while being in contact with the electric field release
shield (600) and the tube member.
11. An arc length limiting contact (500) configured to limit a length of arc between a
first contact portion (100) including a first arc inducement contact (110) being formed
in a rod shape, and a second contact portion (200) including a second arc inducement
contact (210), which is formed so as to be relatively movable with respect to the
first arc inducement contact (110) so as to be in a state of being in contact with
the first arc inducement contact (110) or a state of being separated from the first
arc inducement contact (110),
wherein the arc length limiting contact (500) is configured for being disposed so
as to be spaced apart from the second arc inducement contact (210), and is configured
so as to be moved together with the second arc inducement contact (210) when the second
arc inducement contact (210) moves, and is configured so that an end of the second
arc inducement contact (210) is located at a point beyond an end of the arc length
limiting contact (500) at the first arc inducement contact (110) side when the first
arc inducement contact (110) is farthest from the second arc inducement contact (210),
wherein the arc length limiting contact (500) is configured for being fixed to a gas
injection nozzle (400) being configured to be moved together with the second arc inducement
contact (210),
wherein the arc length limiting contact (500) includes an axis-directional extended
portion (510), being extended in the movement direction of the second arc inducement
contact (210), provided with a through-hole (551), into which the first arc inducement
contact (110) is insertable,
wherein the axis-directional extended portion (510) is configured for being disposed
within the gas injection nozzle (400), characterized in that the arc length limiting contact (500) further includes a plurality of radius-directional
extended portions (530) extended from the axis-directional extended portion (510)
in a radius direction and configured for being connected to the gas injection nozzle
(400), and the plurality of radius-directional extended portions (530) is spaced apart
from each other so that the extinguishing gas is movable therebetween.
12. The arc length limiting contact (500) of claim 11, wherein the plurality of radius-directional
extended portions (530) is spaced apart from each other.
13. The arc length limiting contact (500) of claim 12, wherein the plurality of radius-directional
extended portions (530) is provided in plural, and is spaced apart from each other.
14. The arc length limiting contact (500) of claim 12, wherein the axis-directional extended
portion (510) includes an arc tip (520) having relatively large arc resistivity.
15. The arc length limiting contact (500) of claim 14, wherein the arc tip (520) is formed
of an alloy containing copper and tungsten.
1. Gas-Leistungsschalter, Folgendes aufweisend:
einen ersten Kontaktabschnitt (100) mit einem ersten Lichtbogenauslösungskontakt (110),
einen zweiten Kontaktabschnitt (200) mit einem zweiten Lichtbogenauslösungskontakt
(210), der relativ beweglich in Bezug auf den ersten Lichtbogenauslösungskontakt (110)
ausgebildet ist, um sich in einem mit dem ersten Lichtbogenauslösungskontakt (110)
in Kontakt stehenden Zustand oder einem vom ersten Lichtbogenauslösungskontakt (110)
getrennten Zustand zu befinden;
eine Gaskammer (300), die zum Vorhalten von Löschgas ausgelegt ist, um einen zwischen
dem ersten Lichtbogenauslösungskontakt (110) und dem zweiten Lichtbogenauslösungskontakt
(210) entstandenen Lichtbogen zu löschen, wenn der erste Lichtbogenauslösungskontakt
(110) vom zweiten Lichtbogenauslösungskontakt (210) getrennt wird;
eine Gaseinspritzdüse (400), die aus einem elektrischen Isoliermaterial gebildet und
dazu ausgelegt ist, einen Löschgaseinspritzdurchgang zu bilden; und
einen Lichtbogenlängenbegrenzungskontakt (500), der vom zweiten Lichtbogenauslösungskontakt
(210) beabstandet angeordnet und dazu ausgelegt ist, zusammen mit dem zweiten Lichtbogenauslösungskontakt
(210) bewegt zu werden, wenn sich der zweite Lichtbogenauslösungskontakt (210) bewegt,
und so ausgelegt ist, dass sich ein Ende des Lichtbogenlängenbegrenzungskontakts (500)
auf der Seite des zweiten Lichtbogenauslösungskontakts (210) an einem Punkt jenseits
eines Endes des ersten Lichtbogenauslösungskontakts (110) befindet, wenn der erste
Lichtbogenauslösungskontakt (110) vom zweiten Lichtbogenauslösungskontakt (210) am
weitesten weg ist,
wobei die Gaseinspritzdüse (400) dazu ausgelegt ist, zusammen mit dem zweiten Lichtbogenauslösungskontakt
(210) bewegt zu werden, und der Lichtbogenlängenbegrenzungskontakt (500) an der Gaseinspritzdüse
(400) fixiert ist,
wobei der erste Lichtbogenauslösungskontakt (110) in einer Stabform ausgebildet ist,
und der Lichtbogenlängenbegrenzungskontakt (500) einen in Achsrichtung in der Bewegungsrichtung
des zweiten Lichtbogenauslösungskontakts (210) verlängerten Abschnitt (510) aufweist,
der mit einer Durchgangsöffnung (551) versehen ist, in die der erste Lichtbogenauslösungskontakt
(110) eingesteckt ist,
wobei der in Achsrichtung verlängerte Abschnitt (510) in der Gaseinspritzdüse (400)
angeordnet ist, dadurch gekennzeichnet, dass
der Lichtbogenlängenbegrenzungskontakt (500) darüber hinaus mehrere in Radiusrichtung
verlängerte Abschnitte (530) aufweist, die ausgehend von dem in der Achsrichtung verlängerten
Abschnitt (510) in einer Radiusrichtung verlängert und an die Gaseinspritzdüse (400)
angeschlossen sind, und die mehreren in Radiusrichtung verlängerten Abschnitte (530)
voneinander beabstandet sind, damit sich das Löschgas dazwischen bewegen kann.
2. Gas-Leistungsschalter nach Anspruch 1, wobei der in Achsrichtung verlängerte Abschnitt
(510) mit einer Gasbewegungsöffnung (513) versehen ist, um es dem Löschgas zu ermöglichen,
sich zu bewegen.
3. Gas-Leistungsschalter nach Anspruch 1, wobei der Lichtbogenlängenbegrenzungskontakt
(500) eine Lichtbogenspitze (520) aufweist, die am Ende des Lichtbogenlängenbegrenzungskontakts
(500) auf der Seite des zweiten Lichtbogenauslösungskontakts (210) ausgebildet ist
und einen relativ großen spezifischen Lichtbogenwiderstand hat.
4. Gas-Leistungsschalter nach Anspruch 3, wobei die Lichtbogenspitze (520) aus einer
Kupfer und Wolfram enthaltenden Legierung gebildet ist.
5. Gas-Leistungsschalter nach Anspruch 1, wobei der erste Kontaktabschnitt (100) eine
elektrisch leitfähige Führungsröhre (140) aufweist, die elektrisch an den ersten Lichtbogenauslösungskontakt
(110) angeschlossen ist.
6. Gas-Leistungsschalter nach Anspruch 5, wobei der Lichtbogenlängenbegrenzungskontakt
elektrisch an die Führungsröhre (140) angeschlossen und dazu ausgelegt ist, in einem
Zustand mit dem ersten Lichtbogenauslösungskontakt (110) in Kontakt zu stehen, in
dem der erste Lichtbogenauslösungskontakt (110) mit dem zweiten Lichtbogenauslösungskontakt
(210) in Kontakt ist.
7. Gas-Leistungsschalter nach Anspruch 6, darüber hinaus aufweisend:
eine Freisetzungsabschirmung (600) für ein elektrisches Feld, die an den Lichtbogenlängenbegrenzungskontakt
(500) angeschlossen und dazu ausgelegt ist, einen Freisetzungsbetrieb für ein elektrisches
Feld durchzuführen.
8. Gas-Leistungsschalter nach Anspruch 7, wobei die Freisetzungsabschirmung (600) für
ein elektrisches Feld in einem an den Lichtbogenlängenbegrenzungskontakt (500) angeschlossenen
Zustand zwischen der Gaseinspritzdüse (400) und der Führungsröhre (140) eingesetzt
ist.
9. Gas-Leistungsschalter nach Anspruch 7, wobei die Freisetzungsabschirmung (600) für
ein elektrisches Feld einen in Achsrichtung verlängerten Abschnitt (610), der in einer
Achsrichtung verlängert ist, und einen gekrümmten verlängerten Abschnitt aufweist,
der ausgehend von einem Ende des in Achsrichtung verlängerten Abschnitts (610) zu
einer Außenseite in einer Radiusrichtung in Form einer gekrümmten Fläche verlängert
ist.
10. Gas-Leistungsschalter nach Anspruch 7, darüber hinaus aufweisend:
ein Kontaktelement (700), das zwischen der Freisetzungsabschirmung (600) für ein elektrisches
Feld und dem Röhrenelement (140) eingesetzt und elektrisch an die Freisetzungsabschirmung
(600) für ein elektrisches Feld und das Röhrenelement angeschlossen und dabei in Kontakt
mit der Freisetzungsabschirmung (600) für ein elektrisches Feld und dem Röhrenelement
ist.
11. Lichtbogenlängenbegrenzungskontakt (500), der dazu ausgelegt ist, eine Lichtbogenlänge
zwischen einem ersten Kontaktabschnitt (100), der einen in einer Stabform ausgebildeten
ersten Lichtbogenauslösungskontakt (110) enthält, und einem zweiten Kontaktabschnitt
(200) zu begrenzen, der einen zweiten Lichtbogenauslösungskontakt (210) enthält, der
relativ beweglich in Bezug auf den ersten Lichtbogenauslösungskontakt (110) ausgebildet
ist, um sich in einem mit dem ersten Lichtbogenauslösungskontakt (110) in Kontakt
stehenden Zustand oder einem vom ersten Lichtbogenauslösungskontakt (110) getrennten
Zustand zu befinden,
wobei der Lichtbogenlängenbegrenzungskontakt (500) dazu ausgelegt ist, vom zweiten
Lichtbogenauslösungskontakt (210) beabstandet angeordnet zu sein, und dazu ausgelegt
ist, zusammen mit dem zweiten Lichtbogenauslösungskontakt (210) bewegt zu werden,
wenn sich der zweite Lichtbogenauslösungskontakt (210) bewegt, und so ausgelegt ist,
dass sich ein Ende des zweiten Lichtbogenauslösungskontakts (210) an einem Punkt jenseits
eines Endes des Lichtbogenlängenbegrenzungskontakts (500) auf der Seite des ersten
Lichtbogenauslösungskontakts (110) befindet, wenn der erste Lichtbogenauslösungskontakt
(110) vom zweiten Lichtbogenauslösungskontakt (210) am weitesten weg ist,
wobei der Lichtbogenlängenbegrenzungskontakt (500) dazu ausgelegt ist, an einer Gaseinspritzdüse
(400) fixiert zu sein, die dazu ausgelegt ist, zusammen mit dem zweiten Lichtbogenauslösungskontakt
(210) bewegt zu werden,
wobei der Lichtbogenlängenbegrenzungskontakt (500) einen in Achsrichtung verlängerten
Abschnitt (510), der in der Bewegungsrichtung des zweiten Lichtbogenauslösungskontakts
(210) verlängert ist, aufweist, der mit einer Durchgangsöffnung (551) versehen ist,
in die der erste Lichtbogenauslösungskontakt (110) eingesetzt werden kann,
wobei der in Achsrichtung verlängerte Abschnitt (510) dazu ausgelegt ist, in der Gaseinspritzdüse
(400) angeordnet zu sein, dadurch gekennzeichnet, dass
der Lichtbogenlängenbegrenzungskontakt (500) darüber hinaus mehrere in Radiusrichtung
verlängerte Abschnitte (530) aufweist, die ausgehend von dem in der Achsrichtung verlängerten
Abschnitt (510) in einer Radiusrichtung verlängert und dazu ausgelegt sind, an die
Gaseinspritzdüse (400) angeschlossen zu sein, und die mehreren in Radiusrichtung verlängerten
Abschnitte (530) voneinander beabstandet sind, damit sich das Löschgas dazwischen
bewegen kann.
12. Lichtbogenlängenbegrenzungskontakt (500) nach Anspruch 11, wobei die mehreren in Radiusrichtung
verlängerten Abschnitte (530) voneinander beabstandet sind.
13. Lichtbogenlängenbegrenzungskontakt (500) nach Anspruch 12, wobei die mehreren in Radiusrichtung
verlängerten Abschnitte (530) zu mehreren vorgesehen und voneinander beabstandet sind.
14. Lichtbogenlängenbegrenzungskontakt (500) nach Anspruch 12, wobei der in Achsrichtung
verlängerte Abschnitt (510) eine Lichtbogenspitze (520) aufweist, die einen relativ
großen spezifischen Lichtbogenwiderstand hat.
15. Lichtbogenlängenbegrenzungskontakt (500) nach Anspruch 14, wobei die Lichtbogenspitze
(520) aus einer Kupfer und Wolfram enthaltenden Legierung gebildet ist.
1. Disjoncteur à gaz, comprenant :
une première partie de contact (100) incluant un premier contact d'induction d'arc
(110) ;
une deuxième partie de contact (200) incluant un deuxième contact d'induction d'arc
(210), lequel est formé de manière à être relativement mobile par rapport au premier
contact d'induction d'arc (110) de manière à être dans un état d'être en contact avec
le premier contact d'induction d'arc (100) ou un état d'être séparé du premier contact
d'induction d'arc (110) ;
une chambre à gaz (300) configurée pour stocker du gaz extincteur destiné à éteindre
un arc généré entre le premier contact d'induction d'arc (110) et le deuxième contact
d'induction d'arc (210) lorsque le premier contact d'induction d'arc (110) est séparé
du deuxième contact d'induction d'arc (210) ;
une tuyère d'injection de gaz (400) constituée d'un matériau isolant électrique et
configuré pour former un passage d'injection de gaz extincteur ; et
un contact de limitation de longueur d'arc (500) disposé de manière à être espacé
du deuxième contact d'induction d'arc (210), et configuré de manière à être déplacé
conjointement avec le deuxième contact d'induction d'arc (210) lorsque le deuxième
contact d'induction d'arc (210) se déplace, et configuré de manière qu'une extrémité
du contact de limitation de longueur d'arc (500) du côté du deuxième contact d'induction
d'arc (210) soit située en un point au-delà d'une extrémité du premier contact d'induction
d'arc (110) lorsque le premier contact d'induction d'arc (110) est le plus éloigné
du deuxième contact d'induction d'arc (210),
sachant que la tuyère d'injection de gaz (400) est configurée pour être déplacée conjointement
avec le deuxième contact d'induction d'arc (210), et le contact de limitation de longueur
d'arc (500) est fixé à la tuyère d'injection de gaz (400),
sachant que le premier contact d'induction d'arc (110) est formé en forme de tige,
et le contact de limitation de longueur d'arc (500) inclut une partie (510) étendue
en direction d'axe, laquelle est étendue dans la direction de mouvement du deuxième
contact d'induction d'arc (210), pourvue d'un trou traversant (551), dans lequel le
premier contact d'induction d'arc (110) est inséré,
sachant que la partie (510) étendue en direction d'axe est disposée à l'intérieur
de la tuyère d'injection de gaz (400), caractérisé en ce que
le contact de limitation de longueur d'arc (500) inclut en outre une pluralité de
parties (530) étendues en direction de rayon, étendues depuis la partie (510) étendue
en direction d'axe dans une direction de rayon et connectées à la tuyère d'injection
de gaz (400), et la pluralité de parties (530) étendues en direction de rayon sont
espacées les unes des autres de manière que le gaz extincteur soit déplaçable entre
elles.
2. Le disjoncteur à gaz de la revendication 1, sachant que la partie (510) étendue en
direction d'axe est pourvue d'un trou de mouvement de gaz (513) destiné à permettre
au gaz extincteur de se déplacer.
3. Le disjoncteur à gaz de la revendication 1, sachant que le contact de limitation de
longueur d'arc (500) inclut une pointe d'arc (520), laquelle est formée à l'extrémité
du contact de limitation de longueur d'arc (500) du côté du deuxième contact d'induction
d'arc (210) et a une résistivité à l'arc relativement élevée.
4. Le disjoncteur à gaz de la revendication 3, sachant que la pointe d'arc (520) est
composée d'un alliage contenant du cuivre et du tungstène.
5. Le disjoncteur à gaz de la revendication 1, sachant que la première partie de contact
(100) inclut un tube de guidage conducteur électrique (140) connecté électriquement
au premier contact d'induction d'arc (110).
6. Le disjoncteur à gaz de la revendication 5, sachant que le contact de limitation de
longueur d'arc est connecté électriquement au tube de guidage (140), et est configuré
pour être en contact avec le premier contact d'induction d'arc (110) dans un état
où le premier contact d'induction d'arc (110) est en contact avec le deuxième contact
d'induction d'arc (210).
7. Le disjoncteur à gaz de la revendication 6, comprenant en outre :
un écran de libération de champ électrique connecté électriquement au contact de limitation
de longueur d'arc (500) et configuré pour effectuer une opération de libération de
champ électrique.
8. Le disjoncteur à gaz de la revendication 7, sachant que l'écran de libération de champ
électrique (600) est interposé entre la tuyère d'injection de gaz (400) et le tube
de guidage (140) dans un état d'être connecté au contact de limitation de longueur
d'arc (500).
9. Le disjoncteur à gaz de la revendication 7, sachant que l'écran de libération de champ
électrique (600) inclut une partie (610) étendue en direction d'axe, étendue dans
une direction d'axe, et une partie étendue courbe, étendue d'une extrémité de la partie
(610) étendue en direction d'axe à un côté externe dans une direction de rayon dans
une forme d'une surface courbe.
10. Le disjoncteur à gaz de la revendication 7, comprenant en outre :
un élément de contact (700) interposé entre l'écran de libération de champ électrique
(600) et l'élément de tube (140), et connecté électriquement à l'écran de libération
de champ électrique (600) et l'élément de tube tout en étant en contact avec l'écran
de libération de champ électrique (600) et l'élément de tube.
11. Contact de limitation de longueur d'arc (500) configuré pour limiter une longueur
d'arc entre une première partie de contact (100) incluant un premier contact d'induction
d'arc (110) étant formé en forme de tige, et une deuxième partie de contact (200)
incluant un deuxième contact d'induction d'arc (210), lequel est formé de manière
à être relativement mobile par rapport au premier contact d'induction d'arc (110)
de manière à être dans un état d'être en contact avec le premier contact d'induction
d'arc (110) ou un état d'être séparé du premier contact d'induction d'arc (110),
sachant que le contact de limitation de longueur d'arc (500) est configuré pour être
disposé de manière à être espacé du deuxième contact d'induction d'arc (210), et est
configuré de manière à être déplacé conjointement avec le deuxième contact d'induction
d'arc (210) lorsque le deuxième contact d'induction d'arc (210) se déplace, et est
configuré de manière qu'une extrémité du deuxième contact d'induction d'arc (210)
soit situé en un point au-delà d'une extrémité du contact de limitation de longueur
d'arc (500) du côté du premier contact d'induction d'arc (110) lorsque le premier
contact d'induction d'arc (110) est le plus éloigné du deuxième contact d'induction
d'arc (210),
sachant que le contact de limitation de longueur d'arc (500) est configuré pour être
fixé à une tuyère d'injection de gaz (400) étant configurée pour être déplacée conjointement
avec le deuxième contact d'induction de gaz (210),
sachant que le contact de limitation de longueur d'arc (500) inclut une partie (510)
étendue en direction d'axe, laquelle est étendue dans la direction de mouvement du
deuxième contact d'induction d'arc (210), pourvue d'un trou traversant (551), dans
lequel le premier contact d'induction d'arc (110) est insérable,
sachant que la partie (510) étendue en direction d'axe est configurée pour être disposée
à l'intérieur de la tuyère d'injection de gaz (400), caractérisé en ce que
le contact de limitation de longueur d'arc (500) inclut en outre une pluralité de
parties (530) étendues en direction de rayon, étendues depuis la partie (510) étendue
en direction d'axe dans une direction de rayon et configurées pour être connectées
à la tuyère d'injection de gaz (400), et la pluralité de parties (530) étendues en
direction de rayon sont espacées les unes des autres de manière que le gaz extincteur
soit déplaçable entre elles.
12. Le contact de limitation de longueur d'arc (500) de la revendication 11, sachant que
la pluralité de parties (530) étendues en direction de rayon sont espacées les unes
des autres.
13. Le contact de limitation de longueur d'arc (500) de la revendication 12, sachant que
la pluralité de parties (530) étendues en direction de rayon est prévue au pluriel,
et sont espacées les unes des autres.
14. Le contact de limitation de longueur d'arc (500) de la revendication 12, sachant que
la partie (510) étendue en direction d'axe inclut une pointe d'arc (520) ayant une
résistivité à l'arc relativement élevée.
15. Le contact de limitation de longueur d'arc (500) de la revendication 14, sachant que
la pointe d'arc (520) est composée d'un alliage contenant du cuivre et du tungstène.