TECHNICAL FIELD
[0001] The present disclosure relates to a gas insulated switchgear.
BACKGROUND ART
[0002] A gas insulated switchgear includes a switch for interrupting current. The switch
includes a movable-side terminal having a movable electrode, a fixed-side terminal
provided so as to be opposed to the movable-side terminal, and a driving portion for
linearly driving the movable electrode toward the fixed-side terminal. The fixed-side
terminal has a fixed electrode, a latch portion for engaging the fixed electrode with
the movable electrode, and an opening mechanism for separating the fixed electrode
from the movable electrode. The opening mechanism has an opening spring for driving
the fixed electrode in a direction to separate from the movable electrode.
[0003] At the time of closing the switch, the driving portion drives the movable electrode
in a direction to approach the fixed electrode, so as to engage the movable electrode
and the fixed electrode with each other. At the time of opening the switch, the driving
portion drives the movable electrode in a direction away from the fixed electrode.
At this time, the fixed electrode is pulled together with the movable electrode, whereby
the opening spring of the opening mechanism is contracted. When the fixed electrode
is pulled to a predetermined position, engagement of the latch portion is released
by a restoring force of the opening spring. Thus, the fixed electrode is separated
from the movable electrode, whereby the switch is opened.
[0004] A conventional latch portion of a switch has a plate spring structure of which one
end is fixed and another end has a claw portion (see, for example, Patent Document
1).
CITATION LIST
PATENT DOCUMENT
SUMMARY OF THE INVENTION
PROBLEMS TO BE SOLVED BY THE INVENTION
[0006] In the conventional latch portion, the claw portion needs to have both a function
of keeping engagement between the movable electrode and the fixed electrode against
a spring load of the opening spring, and a function of releasing the engagement in
accordance with the position of the fixed electrode. Therefore, because of axial misalignment
between the movable electrode and the fixed electrode, change in a frictional force
at the claw portion and a part engaged with the claw portion, and the like, the position
where the fixed electrode is separated from the movable electrode is not stabilized,
and since an engagement retaining force is weak, an opening spring having a great
spring load cannot be applied, and thus the interruption speed cannot be increased.
[0007] The present disclosure has been made to solve the above problem, and an object of
the present disclosure is to provide a gas insulated switchgear having a switch that
enables adjustment of the interruption speed while stabilizing the position where
the fixed electrode is separated from the movable electrode.
SOLUTION TO THE PROBLEMS
[0008] A gas insulated switchgear according to the present disclosure includes: a movable
electrode; a fixed electrode provided on a same axis as the movable electrode; a driving
portion which linearly drives the movable electrode in a direction of the axis so
that the movable electrode contacts with/separates from the fixed electrode; and an
opening mechanism which separates the fixed electrode from the movable electrode.
The movable electrode has a taper portion having a recessed surface toward the axis,
at a part to contact with the fixed electrode, and has a protrusion protruding toward
the axis, at an outer circumferential part of the taper portion. The fixed electrode
includes a latch portion composed of a claw having an engagement portion to be engaged
with the protrusion and a slope portion to contact with the taper portion, and a contact-pressure
spring applying a restoring force to the claw in a direction crossing the axis.
EFFECT OF THE INVENTION
[0009] In the gas insulated switchgear according to the present disclosure, the fixed electrode
includes the latch portion composed of the claw having the engagement portion to be
engaged with the protrusion and the slope portion to contact with the taper portion,
and the contact-pressure spring applying the restoring force to the claw in the direction
crossing the axis. Thus, it is possible to adjust the interruption speed while stabilizing
the position where the fixed electrode is separated from the movable electrode.
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
[FIG. 1] FIG. 1 is a sectional view of a gas insulated switchgear according to embodiment
1.
[FIG. 2] FIG. 2 is a sectional view of a fixed electrode according to embodiment 1.
[FIG. 3] FIG. 3 is a plan view of the fixed electrode according to embodiment 1.
[FIG. 4] FIG. 4 is a plan view of the fixed electrode according to embodiment 1.
[FIG. 5] FIG. 5 is a sectional view of the gas insulated switchgear according to embodiment
1.
[FIG. 6] FIG. 6 is an enlarged sectional view of a switch according to embodiment
1.
[FIG. 7] FIG. 7 is a sectional view of the gas insulated switchgear according to embodiment
1.
[FIG. 8] FIG. 8 is an enlarged sectional view of the switch according to embodiment
1.
[FIG. 9] FIG. 9 is an enlarged sectional view of the switch according to embodiment
1.
[FIG. 10] FIG. 10 is a sectional view of a fixed electrode according to embodiment
2.
DESCRIPTION OF EMBODIMENTS
[0011] Hereinafter, a gas insulated switchgear according to embodiments for carrying out
the present disclosure will be described in detail with reference to the drawings.
In the drawings, the same reference characters denote the same or corresponding parts.
Embodiment 1
[0012] FIG. 1 is a sectional view of a switch of a gas insulated switchgear according to
embodiment 1. A switch 1 of the gas insulated switchgear shown in FIG. 1 is in an
opened state. The switch 1 includes a flange 2, a fixed-side terminal 4 fixed to an
insulation holder 3, and a movable-side terminal 5. A cylindrical movable electrode
rod 6 having a threaded inner circumferential surface and a columnar movable-side
shaft rod 7 for linearly driving the movable electrode rod 6, are provided inside
the movable-side terminal 5. The movable electrode rod 6 and the movable-side shaft
rod 7 are provided on the same axis, and the movable electrode rod 6 and the movable-side
shaft rod 7 compose a movable electrode 8. The outer circumferential surface of the
movable-side shaft rod 7 is threaded for linearly driving the movable electrode rod
6. An insulation rod 9 is connected to one end of the movable-side shaft rod 7. The
insulation rod 9 is connected to a driving portion 10. A conductive spring component
(not shown) is provided between the movable-side terminal 5 and the movable electrode
rod 6. Hereinafter, the longitudinal direction of the movable electrode rod 6 and
the movable-side shaft rod 7 provided on the same axis is referred to as an axial
direction.
[0013] The fixed-side terminal 4 includes a base conductor 11, a cylindrical conductor 12
connected to the base conductor, a piston 13 provided inside the cylindrical conductor
12, a cylinder 14 provided between the cylindrical conductor 12 and the piston 13,
a fixed electrode 15 connected to an end of the cylinder 14, and an opening spring
16 provided around the outer circumference of the cylinder 14. The piston 13, the
cylinder 14, and the opening spring 16 compose an opening mechanism. The fixed electrode
15 is provided on the same axis as the movable electrode. An electric field relaxing
shield 17 is provided at an outer circumferential part of the fixed electrode 15.
The electric field relaxing shield 17 is drawn out toward the movable-side terminal
5 together with the fixed electrode 15 when the fixed electrode 15 is pulled toward
the movable-side terminal 5. An electrode contact-pressure spring 18 is provided at
an outer circumferential part of the fixed electrode 15, so as to keep contact between
the movable electrode rod 6 and the fixed electrode 15 when the movable electrode
rod 6 and the fixed electrode 15 are conductively in contact with each other.
[0014] FIG. 2 is a sectional view of the fixed electrode 15. FIG. 3 is a plan view of the
fixed electrode 15 as seen from A side in FIG. 2, and FIG. 4 is a plan view of the
fixed electrode 15 as seen from B side in FIG. 2. The fixed electrode 15 includes
a connection rod 19 connected to the cylinder 14, a fixed-side shaft rod 20, two claws
21 radially formed in directions crossing the axial direction of the fixed-side shaft
rod 20, a stopper 22 restricting movement of the claws 21 in the axial direction and
the radial direction, and a contact-pressure spring 23 pushing out the claws 21 in
the outer circumferential direction. The two claws 21 are provided at positions opposed
to each other with respect to the axis. The two claws 21 and the contact-pressure
spring 23 compose a latch portion 24. The claws 21 are pushed out in the outer circumferential
direction by the restoring force of the contact-pressure spring 23. The outer periphery
of each claw 21 has a circular shape, an elliptic shape, a quadrangular shape, or
a shape formed by combination thereof. The claw 21 has an engagement portion 21a to
be engaged with a protrusion formed at the movable electrode rod as described later,
and a slope portion 21b to contact with a taper portion formed at the movable-side
shaft rod. As shown in FIG. 2, the engagement portions 21a of the claws 21 have a
shape protruding to the outer circumferential side. The slope portions 21b of the
claws 21 have such a shape that the distal end tapers toward the movable electrode
side. The clearance between the fixed-side shaft rod 20 and the claws 21 in the axial
direction, i.e., the horizontal direction in FIG. 2, is set to be small so as to suppress
wobbling of the latch portion 24.
[0015] Next, operation of the switch 1 of the gas insulated switchgear in the present embodiment
will be described.
[0016] When the switch 1 in the opened state shown in FIG. 1 is to be closed, the driving
portion 10 rotates the insulation rod 9, for example, clockwise. As the insulation
rod 9 is rotated clockwise, the movable-side shaft rod 7 rotates about the axis. As
the movable-side shaft rod 7 rotates about the axis, the movable electrode rod 6 is
linearly driven rightward in FIG. 1 through meshing between the thread on the outer
circumferential surface of the movable-side shaft rod 7 and the thread on the inner
circumferential surface of the movable electrode rod 6.
[0017] FIG. 5 is a sectional view of the switch of the gas insulated switchgear according
to the present embodiment, in a closed state. As shown in FIG. 5, in the switch 1
in a closed state, the distal end of the movable electrode rod 6 contacts with the
fixed electrode 15. FIG. 6 is an enlarged sectional view of a specific part of the
switch 1 in a closed state in the present embodiment. As shown in FIG. 6, a taper
portion 7a having a recessed surface toward the axis is formed at the distal end of
the movable-side shaft rod 7. A protrusion 6a protruding toward the axis is formed
on the inner circumferential surface at the distal end of the movable electrode rod
6. In the switch 1 in a closed state, the engagement portion 21a of each claw 21 is
engaged with the protrusion 6a, so that the fixed electrode 15 and the movable electrode
8 are electrically connected to each other.
[0018] When the switch 1 is to be opened from the closed state shown in FIG. 5, the driving
portion 10 rotates the insulation rod 9 counterclockwise. As the insulation rod 9
is rotated counterclockwise, the movable-side shaft rod 7 rotates about the axis.
As the movable-side shaft rod 7 rotates about the axis, the movable electrode rod
6 is linearly driven leftward in FIG. 5 through meshing between the thread on the
outer circumferential surface of the movable-side shaft rod 7 and the thread on the
inner circumferential surface of the movable electrode rod 6.
[0019] FIG. 7 is a sectional view of the switch of the gas insulated switchgear according
to the present embodiment, just before the switch is opened. As shown in FIG. 7, the
fixed electrode 15 pulled by the movable electrode rod 6 linearly driven leftward
enters the inside of the movable-side terminal 5, and the distal end of the fixed
electrode 15 contacts with the distal end of the movable-side shaft rod 7. FIG. 8
is an enlarged sectional view of a specific part where the movable-side shaft rod
7 and the fixed electrode 15 contact with each other. As shown in FIG. 8, when the
fixed electrode 15 enters the inside of the movable-side terminal 5, the slope portion
21b of each claw 21 is pressed to the taper portion 7a at the distal end of the movable-side
shaft rod 7. At this time, the engagement portion 21a of the claw 21 is engaged with
the protrusion 6a of the movable electrode rod 6. When the movable electrode rod 6
is further linearly driven leftward, the protrusion 6a moves leftward, so that the
engagement portion 21a of each claw 21 also moves leftward. Along with this, the slope
portions 21b of the claws 21 are compressed along the taper portions 7a. Thus, the
claws 21 slide toward the axis while compressing the contact-pressure spring 23.
[0020] FIG. 9 is a sectional view of the switch of the gas insulated switchgear according
to the present embodiment, just before the engagement between the engagement portion
21a of each claw 21 and the protrusion 6a of the movable electrode rod 6 is released.
As shown in FIG. 9, when the slope portion 21b of each claw 21 is compressed along
the taper portion 7a, the engagement portion 21a moves toward the inner circumferential
side, so that the engagement between the engagement portion 21a and the protrusion
6a of the movable electrode rod 6 is released. When the engagement between each engagement
portion 21a and the protrusion 6a is released, the fixed electrode 15 moves rightward
by the restoring force of the opening spring 16 that has been compressed, so that
the fixed electrode 15 is separated from the movable electrode 8. As a result, electric
connection between the fixed electrode 15 and the movable electrode 8 is disconnected,
so that the switch 1 comes into the opened state shown in FIG. 1.
[0021] In the gas insulated switchgear of the present embodiment, the latch portion of the
switch includes the claw having the engagement portion to be engaged with the protrusion
of the movable electrode and the slope portion to contact with the taper portion of
the movable electrode rod, and the contact-pressure spring applying the restoring
force to the claw in the direction crossing the axis. Thus, the function of keeping
engagement between the fixed electrode and the movable electrode against the spring
load of the opening spring can be borne by the engagement portion, and the function
of releasing the engagement in accordance with the position of the fixed electrode
can be borne by the slope portion. As a result, it is possible to stabilize the position
where the fixed electrode is separated from the movable electrode, even if axial misalignment
between the movable electrode and the fixed electrode, change in the frictional force
at the protrusion of the movable electrode, or the like has occurred.
[0022] For example, in the latch portion, the force for keeping engagement between the fixed
electrode and the movable electrode against the spring load of the opening spring
can be adjusted by, for example, the contact angle and the contact area between the
engagement portion of the claw and the protrusion of the movable electrode rod. Meanwhile,
in the latch portion, the position of the fixed electrode when the engagement is released
can be adjusted by, for example, the contact angle and the contact area between the
slope portion of the claw and the taper portion of the movable-side shaft rod, and
the spring load of the contact-pressure spring. Thus, in the latch portion, the part
bearing the function of keeping engagement between the fixed electrode and the movable
electrode against the spring load of the opening spring and the part bearing the function
of releasing the engagement in accordance with the position of the fixed electrode
can be separated from each other, and therefore the respective functions can be adjusted
without influencing each other function. Further, since the clearance between the
fixed-side shaft rod 20 and the claw 21 in the axial direction is set to be small,
it becomes possible to increase the load of the opening spring. Thus, the opening
speed can be increased.
[0023] As described above, in the gas insulated switchgear of the present embodiment, the
latch portion of the switch includes the claw having the engagement portion to be
engaged with the protrusion of the movable electrode and the slope portion to contact
with the taper portion of the movable electrode rod, and the contact-pressure spring
applying the restoring force to the claw in the direction crossing the axis. Thus,
the gas insulated switchgear of the present embodiment makes it possible to adjust
the interruption speed while stabilizing the position where the fixed electrode is
separated from the movable electrode.
[0024] In the present embodiment, the latch portion has two claws. The latch portion may
have three or more claws.
Embodiment 2
[0025] FIG. 10 is a sectional view of a fixed electrode of a switch of a gas insulated switchgear
according to embodiment 2. The structure of the switch in the present embodiment is
the same as the structure of the switch in embodiment 1. As shown in FIG. 10, the
fixed electrode 15 according to the present embodiment includes two contact-pressure
springs 23 pushing out the two claws 21 in the outer circumferential direction. The
two contact-pressure springs 23 are respectively provided between the fixed-side shaft
rod 20 and the two claws 21.
[0026] In the gas insulated switchgear configured as described above, as in embodiment 1,
the function of keeping engagement between the fixed electrode and the movable electrode
against the spring load of the opening spring can be borne by the engagement portion,
and the function of releasing the engagement in accordance with the position of the
fixed electrode can be borne by the slope portion. As a result, it is possible to
adjust the interruption speed while stabilizing the position where the fixed electrode
is separated from the movable electrode, even if axial misalignment between the movable
electrode and the fixed electrode, change in the frictional force at the protrusion
of the movable electrode, or the like has occurred. In addition, since the fixed electrode
includes two contact-pressure springs 23 pushing out the two claws 21 in the outer
circumferential direction, the two claws 21 can be operated independently of each
other. As a result, it is possible to suppress variations in the contact pressures
against the respective claws due to axial misalignment between the movable electrode
and the fixed electrode, driving vibration, or the like.
[0027] Although the disclosure is described above in terms of various exemplary embodiments
and implementations, it should be understood that the various features, aspects, and
functionality described in one or more of the individual embodiments are not limited
in their applicability to the particular embodiment with which they are described,
but instead can be applied, alone or in various combinations to one or more of the
embodiments of the disclosure.
[0028] It is therefore understood that numerous modifications which have not been exemplified
can be devised without departing from the scope of the present disclosure. For example,
at least one of the constituent components may be modified, added, or eliminated.
At least one of the constituent components mentioned in at least one of the preferred
embodiments may be selected and combined with the constituent components mentioned
in another preferred embodiment.
DESCRIPTION OF THE REFERENCE CHARACTERS
[0029]
- 1
- switch
- 2
- flange
- 3
- insulation holder
- 4
- fixed-side terminal
- 5
- movable-side terminal
- 6
- movable electrode rod
- 6a
- protrusion
- 7
- movable-side shaft rod
- 7a
- taper portion
- 8
- movable electrode
- 9
- insulation rod
- 10
- driving portion
- 11
- base conductor
- 12
- cylindrical conductor
- 13
- piston
- 14
- cylinder
- 15
- fixed electrode
- 16
- opening spring
- 17
- electric field relaxing shield
- 18
- electrode contact-pressure spring
- 19
- connection rod
- 20
- fixed-side shaft rod
- 21
- claw
- 21a
- engagement portion
- 21b
- slope portion
- 22
- stopper
- 23
- contact-pressure spring
- 24
- latch portion