Technical field
[0001] The present disclosure relates to a breaking unit with an auxiliary shunt component.
The present disclosure further relates to a dual-power transfer switch including the
breaking unit with the auxiliary shunt component.
Background
[0002] Short-time withstand current value Icw is an important performance parameter in the
application of the dual-power transfer switch. Through a contact pressure compensation
circuit, a clapping contact structure with excellent electrical operation performance
can also have a better Icw. However, a soft pigtail wire at a tail of a moving contact
still hinders the opening movement of the moving contact, thus reducing its electrical
operation performance.
[0003] The softness of the soft pigtail wire is related to the opening speed of the moving
contact. Technically, a soft pigtail wire that is soft enough is needed, and the section
area of the soft pigtail wire is the key factor to determine its softness. How to
use soft pigtail wire with sufficiently small section area is the direction of technicians'
efforts.
[0004] A breaking unit according to the preamble of claim 1 is disclosed in
US 4 849 590 A.
Summary
[0005] According to the present disclosure, an auxiliary shunt component is used, so that
the section area of the soft pigtail wire can be reduced to the greatest extent, such
that the soft pigtail wire has better softness, and the dual-power transfer switch
can obtain a higher opening speed, thereby having better electrical operation performance.
[0006] In order to solve the above-mentioned one or more defects in the prior art, according
to a first aspect of the present disclosure, a breaking unit with an auxiliary shunt
component is provided, wherein the breaking unit includes a first power supply static
contact, a second power supply static contact, a first electromotive force compensator,
a second electromotive force compensator, a moving contact component which are accommodated
in a shell of the breaking unit, and soft pigtail wires connected between the moving
contact component and the first electromotive force compensator and between the moving
contact component and the second electromotive force compensator.
[0007] The auxiliary shunt component includes a first shunt member and a second shunt member.
[0008] The first shunt member is connected with the first electromotive force compensator.
[0009] The second shunt member is connected with the second electromotive force compensator.
[0010] When the moving contact component is in contact with the first power supply static
contact, the moving contact component is in contact with the first shunt member, and
the current flowing through the first shunt member is greater than the current flowing
through the soft pigtail wire.
[0011] When the moving contact component is in contact with the second power supply static
contact, the moving contact component is in contact with the second shunt member,
and the current flowing through the second shunt member is greater than the current
flowing through the soft pigtail wire.
[0012] According to the above-described first aspect of the present disclosure, the first
shunt member includes a first elastic current-carrying member and a first contact
point arranged on one end of the first elastic current-carrying member, and the first
elastic current-carrying member and the first contact point are made of conductive
materials.
[0013] Another end of the first elastic current-carrying member is connected to the first
electromotive force compensator.
[0014] The second shunt member includes a second elastic current-carrying member and a second
contact point arranged on one end of the second elastic current-carrying member, and
the second elastic current-carrying member and the second contact point are made of
conductive materials.
[0015] Another end of the second elastic current-carrying member is connected to the second
electromotive force compensator.
[0016] According to a second aspect of the present disclosure, the first shunt member includes
a first shunt contact piece, a first shunt spring and a first shunt pigtail wire.
[0017] A lower end of the first shunt contact piece is pivotally connected with the shell
of the breaking unit, an upper end of the first shunt contact piece is provided with
a first shunt contact surface contacting with the moving contact component and a first
shunt motion range limiting surface matched with the shell of the breaking unit; the
first shunt spring is able to exert a force on the first shunt contact piece to make
the first shunt contact piece abut against the moving contact component and provide
a contact pressure between them; and the lower end of the first shunt contact piece
is further connected with the first electromotive force compensator through the first
shunt pigtail wire.
[0018] The second shunt member includes a second shunt contact piece, a second shunt spring
and a second shunt pigtail wire.
[0019] A lower end of the second shunt contact piece is pivotally connected with the shell
of the breaking unit, an upper end of the second shunt contact piece is provided with
a second shunt contact surface contacting with the moving contact component and a
second shunt motion range limiting surface matched with the shell of the breaking
unit; the second shunt spring is able to exert a force on the second shunt contact
piece to make the second shunt contact piece abut against the moving contact component
and provide a contact pressure between them; and the lower end of the second shunt
contact piece is further connected with the second electromotive force compensator
through the second shunt pigtail wire.
[0020] According to the above-described second aspect of the present disclosure, the force
exerted by the first shunt contact piece passes through a pivot center of the moving
contact component, so that the contact pressure between the first shunt contact piece
and the moving contact component does not reduce the contact pressure between the
moving contact component and the first power supply static contact, and does not hinder
the opening of the moving contact component relative to the first power supply static
contact.
[0021] The force exerted by the second shunt contact piece passes through the pivot center
of the moving contact component, so that the contact pressure between the second shunt
contact piece and the moving contact component does not reduce the contact pressure
between the moving contact component and the second power supply static contact, and
does not hinder the opening of the moving contact component relative to the second
power supply static contact.
[0022] According to the above-described first and second aspects of the present disclosure,
when the moving contact component is in contact with the first power supply static
contact, a current direction in the first electromotive force compensator is consistent
with a current direction in the moving contact component, so as to generate mutually
attractive electromotive forces, and then form a torque driving the moving contact
component to rotate, so as to increase a contact pressure between the moving contact
component and the first power supply static contact.
[0023] When the moving contact component is in contact with the second power supply static
contact, a current direction in the second electromotive force compensator is consistent
with a current direction in the moving contact component, so as to generate mutually
attractive electromotive forces, and then form a torque driving the moving contact
component to rotate, so as to increase a contact pressure between the moving contact
component and the second power supply static contact.
[0024] When the current increases, the electromotive force increases.
[0025] According to the above-described first and second aspects of the present disclosure,
the moving contact component rotates between a first position and a second position.
[0026] In the first position, the moving contact component is in contact with the first
power supply static contact.
[0027] In the second position, the moving contact component is in contact with the second
power supply static contact.
[0028] According to the above-described first and second aspects of the present disclosure,
the first power supply static contact, the second power supply static contact, the
first electromotive force compensator and the second electromotive force compensator
are arranged roughly around the moving contact component.
[0029] According to the above-described first and second aspects of the present disclosure,
the first electromotive force compensator includes a first current inlet end, a first
current flow section, a first electromotive force compensation section and a first
load terminal section.
[0030] According to the above-described first and second aspects of the present disclosure,
the second electromotive force compensator includes a second current inlet end, a
second current flow section, a second electromotive force compensation section and
a second load terminal section.
[0031] According to the above-described first and second aspects of the present disclosure,
the moving contact component includes a moving contact bracket and a moving contact
finger mounted on the moving contact bracket.
[0032] The moving contact finger and the moving contact bracket have the same pivot center
position or different pivot center positions.
[0033] According to the above-described first aspect of the present disclosure, one end
of the moving contact finger is connected to the first current inlet end and the second
current inlet end through the soft pigtail wire.
[0034] The first elastic current-carrying member is connected to the first current inlet
end.
[0035] The second elastic current-carrying member is connected to the second current inlet
end.
[0036] According to the above-described second aspect of the present disclosure, one end
of the moving contact finger is connected to the first current inlet end and the second
current inlet end through the soft pigtail wire.
[0037] The first shunt contact piece is connected to the first current inlet end through
the first shunt pigtail wire.
[0038] The second shunt contact piece is connected to the second current inlet end through
the second shunt pigtail wire.
[0039] According to the above-described first aspect of the present disclosure, when the
moving contact component is in the first position, current flows through the moving
contact finger, the soft pigtail wire and the first elastic current-carrying member
connected together in parallel, the first current inlet end, the first current flow
section, the first electromotive force compensation section and the first load terminal
section, and a current direction flowing through the first electromotive force compensation
section is consistent with a current direction flowing through the moving contact
finger;
[0040] When the moving contact component is in the second position, current flows through
the moving contact finger, the soft pigtail wire and the second elastic current-carrying
member connected together in parallel, the second current inlet end, the second current
flow section, the second electromotive force compensation section and the second load
terminal section, and a current direction flowing through the second electromotive
force compensation section is consistent with the current direction flowing through
the moving contact finger.
[0041] According to the above-described second aspect of the present disclosure, when the
moving contact component is in the first position, current flows through the moving
contact finger, the soft pigtail wire and the first shunt contact piece and the first
shunt pigtail wire that are connected together in parallel, the first current inlet
end, the first current flow section, the first electromotive force compensation section
and the first load terminal section, and a current direction flowing through the first
electromotive force compensation section is consistent with a current direction flowing
through the moving contact finger.
[0042] When the moving contact component is in the second position, current flows through
the moving contact finger, the soft pigtail wire and the second shunt contact piece
and the second shunt pigtail wire that are connected together in parallel, the second
current inlet end, the second current flow section, the second electromotive force
compensation section and the second load terminal section, and a current direction
flowing through the second electromotive force compensation section is consistent
with the current direction flowing through the moving contact finger.
[0043] According to the above-described first and second aspects of the present disclosure,
the first electromotive force compensation section and the second electromotive force
compensation section are respectively provided with at least one magnetizer.
[0044] According to another aspect of the present disclosure, a dual-power transfer switch
is provided, wherein the dual-power transfer switch includes at least one breaking
unit as described above.
[0045] By means of shunt, the current required to be carried by the soft pigtail wire is
very small, so that it can have a smaller section area to obtain better softness,
thus when the moving contact is opened, the resistance affecting the movement of the
moving contact is greatly reduced, the opening speed is ensured, and the electrical
operation performance of the switch is further improved.
[0046] So far, in order that the detailed description of the present disclosure can be better
understood and the contribution of the present disclosure to the prior art can be
better recognized, the present disclosure has summarized the content of the present
disclosure quite broadly. Of course, embodiments of the present disclosure will be
described below and will form the subject matter of the appended claims.
[0047] Likewise, those skilled in the art will recognize that the concepts on which the
present disclosure is based can be easily used as a basis for designing other structures,
methods and systems for carrying out several purposes of the present disclosure. Therefore,
it is important that the appended claims should be considered to include such equivalent
structures as long as they do not go beyond the spirit and scope of the present disclosure.
Brief description of the drawings
[0048] Those skilled in the art will have a better understanding of the present disclosure
through the following drawings, and the advantages of the present disclosure can be
more clearly reflected. The drawings described herein are only for illustrative purposes
of selected embodiments, not all possible implementations and are not intended to
limit the scope of the present disclosure.
FIGS. 1 to 3 illustrate schematic diagrams of various components of a breaking unit
according to the present disclosure, in which an auxiliary shunt component is omitted;
FIGS. 4 to 5 illustrate schematic wireframe views of a breaking unit according to
the present disclosure;
FIG. 6 schematically illustrates a plurality of breaking units with electromotive
force compensation according to the present disclosure;
FIG. 7 illustrates a schematic diagram of each component of the breaking unit according
to the present disclosure, including an auxiliary shunt component according to one
embodiment of the present disclosure; and
FIG. 8 illustrates a schematic diagram of each component of the breaking unit according
to the present disclosure, including an auxiliary shunt component according to another
embodiment of the present disclosure.
Detailed description
[0049] The specific embodiments of the present disclosure will be described in detail with
reference to the accompanying drawings.
[0050] As a main structure of ATSE, the architecture of a breaking unit is directly related
to the key performance of ATSE, such as: use category, short-term withstand current
and so on; and customer maintenance functions, such as contact wear inspection and
so on.
[0051] The architecture of the breaking unit in this technology consists of unipolar architecture
and multipolar architecture. FIGS. 1 to 5 illustrate typical unipolar architectures.
[0052] Two static contacts are arranged in the shell of a breaking unit, which are respectively
connected to the incoming connection terminals of two power supplies. A common arc
extinguishing chamber 10 as illustrated in FIG. 4 (or two separate arc extinguishing
chambers 10 as illustrated in FIG. 5) is arranged between the two static contacts.
A moving contact finger is arranged below the arc extinguishing chamber and between
the two static contacts, and an electromotive force compensation circuit is arranged
on the two sides of the moving contact finger to provide the contact pressure for
the moving contact to abut against the static contact in case of short circuit, so
that it has a higher short-time withstand current performance. An electrical connection
is arranged between the moving contact finger and the compensation circuit, and the
rear end of the compensation circuit is provided with a connection terminal for connecting
loads. Therefore, the working current and short-circuit current flow from the incoming
side of the first power supply or the second power supply to the load through the
load connection terminal after flowing through the static contact, the moving contact
finger and the compensation circuit.
[0053] According to an embodiment of the present disclosure, as illustrated in FIGS. 1 to
3, a breaking unit A with electromotive force compensation is provided, wherein the
breaking unit includes a first power supply static contact 1, a second power supply
static contact 2, a first electromotive force compensator 5, a second electromotive
force compensator 6, a moving contact component which are accommodated in the shell
9 of the breaking unit, and soft pigtail wires 7 connected between the moving contact
component and the first electromotive force compensator 5 and between the moving contact
component and the second electromotive force compensator 6.
[0054] The moving contact component is pivotally arranged on the shell 9 of the breaking
unit.
[0055] The first power supply static contact 1, the second power supply static contact 2,
the first electromotive force compensator 5 and the second electromotive force compensator
6 are fixedly arranged on the shell 9 of the breaking unit.
[0056] The first power supply static contact 1 is connected to a corresponding first power
supply (not illustrated). The second power supply static contact 2 is connected to
a corresponding second power supply (not illustrated).
[0057] When the moving contact component is in contact with the first power supply static
contact 1, the current direction in the first electromotive force compensator 5 is
consistent with the current direction in the moving contact component, so as to generate
mutually attractive electromotive forces, and then form a torque to drive the moving
contact component to rotate, so as to increase the contact pressure between the moving
contact component and the first power supply static contact 1.
[0058] When the moving contact component is in contact with the second power supply static
contact 2 (as illustrated in FIG. 3), the current direction in the second electromotive
force compensator 6 is consistent with the current direction in the moving contact
component, so as to generate mutually attractive electromotive forces, and then form
a torque driving the moving contact component to rotate, so as to increase the contact
pressure between the moving contact component and the second power supply static contact
2.
[0059] The breaking unit further includes an auxiliary shunt component (as illustrated in
FIG. 7 and FIG. 8) accommodated in the shell of the breaking unit. The auxiliary shunt
component includes a first shunt member 12 and a second shunt member 13.
[0060] The first shunt member 12 is connected with the first electromotive force compensator
5.
[0061] The second shunt member 13 is connected with the second electromotive force compensator
6.
[0062] When the moving contact component is in contact with the first power supply static
contact 1, the moving contact component is in contact with the first shunt member
12, and the current flowing through the first shunt member 12 is greater than the
current flowing through the soft pigtail wire 7.
[0063] When the moving contact component is in contact with the second power supply static
contact 2, the moving contact component is in contact with the second shunt member
13, and the current flowing through the second shunt member 13 is greater than the
current flowing through the soft pigtail wire 7.
[0064] According to the above embodiment of the present disclosure, the first shunt member
12 includes a first elastic current-carrying member 12-2 and a first contact point
12-1 arranged on one end of the first elastic current-carrying member 12-2, the first
elastic current-carrying member 12-2 and the first contact point 12-1 are made of
conductive materials.
[0065] The other end of the first elastic current-carrying member 12 is connected to the
first electromotive force compensator.
[0066] The second shunt member 13 includes a second elastic current-carrying member 13-2
and a second contact point 13-1 arranged on one end of the second elastic current-carrying
member 13-2, the second elastic current-carrying member 13-2 and the second contact
point 13-1 are made of conductive materials.
[0067] The other end of the second elastic current-carrying member 13-2 is connected to
the second electromotive force compensator.
[0068] According to another embodiment of the present disclosure (as illustrated in FIG.
8), the first shunt member includes a first shunt contact piece 14, a first shunt
spring 15 and a first shunt pigtail wire 16.
[0069] The lower end of the first shunt contact piece 14 is pivotally connected with the
shell 9 of the breaking unit, and the upper end of the first shunt contact piece 14
is provided with a first shunt contact surface 14-1 contacting with the moving contact
component and a first shunting motion range limiting surface 14-2 matched with the
shell 9 of the breaking unit. The first shunting spring 15 exerts a force on the first
shunt contact piece 14 to make the first shunt contact piece 14 abut against the moving
contact component and provide contact pressure between them. The lower end of the
first shunt contact piece 14 is further connected with the first electromotive force
compensator 5 through the first shunt pigtail wire 16.
[0070] The second shunt member includes a second shunt contact piece 17, a second shunt
spring 18 and a second shunt pigtail wire 19.
[0071] The lower end of the second shunt contact piece 17 is pivotally connected with the
shell 9 of the breaking unit, and the upper end of the second shunt contact piece
17 is provided with a second shunt contact surface 17-1 contacting with the moving
contact component and a second shunt motion range limiting surface 17-2 matched with
the shell 9 of the breaking unit. The second shunt spring 18 exerts a force on the
second shunt contact piece 17 to make the second shunt contact piece 17 abut against
the moving contact component and provide contact pressure between them. The lower
end of the second shunt contact piece 17 is further connected with the second electromotive
force compensator 6 through the second shunt pigtail wire 19.
[0072] According to another embodiment of the present disclosure, the force exerted by the
first shunt contact piece 14 passes through the pivot center of the moving contact
component, so that the contact pressure between the first shunt contact piece 14 and
the moving contact component does not reduce the contact pressure between the moving
contact component and the first power supply static contact 1, and does not hinder
the opening of the moving contact component relative to the first power supply static
contact 1.
[0073] The force exerted by the second shunt contact piece 17 passes through the pivot center
of the moving contact component, so that the contact pressure between the second shunt
contact piece 17 and the moving contact component does not reduce the contact pressure
between the moving contact component and the second power supply static contact 2,
and does not hinder the opening of the moving contact component relative to the second
power supply static contact 2.
[0074] According to the above embodiments of the present disclosure, when the current increases,
the electromotive force increases.
[0075] According to the above embodiments of the present disclosure, the moving contact
component rotates between a first position and a second position.
[0076] In the first position, the moving contact component is in contact with the first
power supply static contact 1.
[0077] In the second position, the moving contact component is in contact with the second
power supply static contact 2.
[0078] According to the above embodiments of the present disclosure, the first power supply
static contact 1, the second power supply static contact 2, the first electromotive
force compensator 5 and the second electromotive force compensator 6 are arranged
roughly around the moving contact component.
[0079] According to the above embodiments of the present disclosure, the first electromotive
force compensator 5 includes a first current inlet end 5-1, a first current flow section
5-2, a first electromotive force compensation section 5-3 and a first load terminal
section 5-4.
[0080] According to the above embodiments of the present disclosure, the second electromotive
force compensator 6 includes a second current inlet end 6-1, a second current flow
section 6-2, a second electromotive force compensation section 6-3 and a second load
terminal section 6-4.
[0081] According to the above embodiments of the present disclosure, the moving contact
component includes a moving contact bracket 3 and a moving contact finger 4 mounted
on the moving contact bracket 3.
[0082] The moving contact finger 4 and the moving contact bracket 3 have the same pivot
center position (as illustrated in FIGS. 1 and 3) or different pivot center positions
(as illustrated in FIG. 2).
[0083] According to the above embodiments of the present disclosure, one end of the moving
contact finger 4 is connected to the first current inlet end and the second current
inlet end through the soft pigtail wire 7.
[0084] According to the above embodiment of the present disclosure, the first elastic current-carrying
member 12-2 is connected to the first current inlet end 5-1; the second elastic current-carrying
member 13-2 is connected to the second current inlet end 6-1.
[0085] According to the above embodiments of the present disclosure, when the moving contact
component is in the first position under the action of the ATSE operating mechanism
(not illustrated), current flows through the moving contact finger 4, the soft pigtail
wire 7 and the first elastic current-carrying member 12-2 connected together in parallel
as illustrated in FIG. 7 (or the soft pigtail wire 7 and the first shunt contact piece
14 and the first shunt pigtail wire 16 connected together in parallel as illustrated
in FIG. 8), the first current inlet end 5-1, the first current flow section 5-2, the
first electromotive force compensation section 5-3, the first load terminal section
5-4 in sequence. The current direction flowing through the first electromotive force
compensation section 5-3 is consistent with the current direction flowing through
the moving contact finger 4, so as to generate mutually attractive electromotive forces,
and then form a torque to drive the moving contact component (the moving contact finger
4) to rotate, so as to prevent the moving contact finger from repelling and further
increasing the contact pressure between the moving contact component (the moving contact
finger 4) and the first power supply static contact 1.
[0086] When the moving contact component is in the second position under the action of the
ATSE operating mechanism (not illustrated), current flows through the moving contact
finger 4, the soft pigtail wire 7 and the second elastic current-carrying member 13-2
connected together in parallel as illustrated in FIG. 7 (or the soft pigtail wire
7 and the second shunt contact piece 17 and the second shunt pigtail wire 19 connected
together in parallel as illustrated in FIG. 8), the second current inlet end 6-1,
the second current flow section 6-2, the second electromotive force compensation section
6-3 and the second load terminal section 6-4. The current direction flowing through
the second electromotive force compensation section 6-3 is consistent with the current
direction flowing through the moving contact finger 4 (as illustrated by the dotted
arrow in FIG. 3), so as to generate mutually attractive electromotive forces, and
then form a torque (clockwise torque in FIG. 3) to drive the moving contact component
(the moving contact finger 4) to rotate, so as to prevent the moving contact finger
from rotating counterclockwise, i.e., the repelling of the contact, thereby increasing
the contact pressure between the moving contact component (the moving contact finger
4) and the second power supply static contact 2.
[0087] Taking FIG. 7 as an example, the working mode of this breaking unit will be explained
in detail.
Working mode under normal current:
[0088] Current distribution:
A small part of current: (current flows into) the second power supply static contact
2 → moving contact finger 4 → soft pigtail wire 7 → second electromotive force compensator
6 (current flows out);
Most of the current: (current flows into) the second power supply static contact 2
→ moving contact finger 4 → second elastic current-carrying member 13-2 → second electromotive
force compensator 6 (current flows out).
[0089] In the present disclosure, the first elastic current-carrying member 12-2 and the
second elastic current-carrying member 13-2 are made thick, while the soft pigtail
wire 7 is thin, so that the current distributed to the second elastic current-carrying
member 13-2 of the two member constituting the parallel circuit accounts for the vast
majority. Secondly, each contact point on the moving contact finger 4 has a normal
contact pressure (for example, 30 N), so as to obtain a lower temperature rise and
ensure the normal operation of the switch.
[0090] Opening operation:
Driven by an operating mechanism (not illustrated), the moving contact component rotates
counterclockwise from the state illustrated in FIG. 7, and the moving contact finger
4 is disconnected from the second power supply static contact 2 and the second elastic
current-carrying member 13-2 respectively. Then an arc occurs between the moving contact
finger 4 and the second power supply static contact 2, and there is no arc between
the moving contact finger 4 and the second elastic current-carrying member 13-2 (current
flows out from the soft pigtail wire 7). Because the cross section of the soft pigtail
wire 7 is small, it is soft and will not hinder the movement of the moving contact
finger 4, so that it can open quickly and lengthen the arc, thus extinguishing the
arc quickly and obtaining higher electrical operation performance. The closing operation
process is opposite to the opening operation, so it will not be repeated here.
Working mode under short-circuit current:
[0091] Short-time withstand current (Icw): Most of the current flows into from the second
power supply static contact 2 → the moving contact finger 4 → the second elastic current-carrying
member 13-2 → and finally flows out from the second electromotive force compensator
6. An electromotive force to make the moving contact finger 4 rotate clockwise is
generated between the second electromotive force compensation section 6-3 and the
moving contact finger 4, so as to increase the contact pressure between the moving
contact finger 4 and the second power supply static contact 2, and keep them closed
(not repelled). Then, the second elastic current-carrying member 13-2 is repelled
by the action of the electromotive force, so that all current flows into through the
second power supply static contact 2 → the moving contact finger 4 → the soft pigtail
wire 7 → and finally flows out from the second electromotive force compensator 6.
After that, because the current flowing through the second elastic current-carrying
member 13-2 disappears, the second elastic current-carrying member 13 is closed with
the moving contact finger 4 again, and the current flows as before. In this way, the
second elastic current-carrying member 13-2 and the soft pigtail wire 7 alternately
carry large current, which meets the performance requirements of the product.
[0092] Short-circuit making current (Icm): The moving contact finger 4 is driven by the
operating mechanism from the vertical middle position to the closing position illustrated
in Figure 7. Then, most of the current flows in from the second power supply static
contact 2 → the moving contact finger 4 → the second elastic current-carrying member
13-2 → and finally flows out from the second electromotive force compensator 6. An
electromotive force to make the moving contact finger 4 rotate clockwise is generated
between the second electromotive force compensation section 6-3 and the moving contact
finger 4, so as to increase the contact pressure between the moving contact finger
4 and the second power supply static contact 2, and keep them closed (not repelled).
Subsequently, the second elastic current-carrying member 13-2 is repelled by the action
of the electromotive force, so that all the current flows in through the second power
supply static contact 2 → the moving contact finger 4 → the soft pigtail wire 7 →
and finally flows out from the second electromotive force compensator 6. Then, because
the current flowing through the second elastic current-carrying member 13-2 disappears,
the second elastic current-carrying member 13-2 is closed with the moving contact
finger 4 again, and the current flows as before. In this way, the second elastic current-carrying
member 13-2 and the soft pigtail wire 7 alternately carry large current, which meets
the performance requirements of the product.
[0093] The second elastic current-carrying member 13-2 will receive the Laplace force from
the second electromotive force compensator 6 and the holm force from the moving contact
finger 4. In the working mode of short-circuit current, the repulsion of the second
elastic current-carrying member 13-2 is allowed, but it is desired to close immediately
after being repelled, and repelled and closed again, so as to carry the heat of short-circuit
current as much as possible. Therefore, the analysis of Laplace force is necessary,
because it always exists in the time period when current flows. Experimental analysis
proves that it is small enough to not affect repulsion, thus ensuring the performance.
[0094] At the same time, the experimental analysis also proves that when the second electromotive
force compensation section 6-3 and the moving contact finger 4 are close to each other
and the second electromotive force compensation section 6-3 (hypotenuse section) is
short, the Laplace electromotive force repelling the second elastic current-carrying
member 13-2 can be reduced.
[0095] The proportion of electromotive force provided by the first electromotive force compensation
section and the second electromotive force compensation section to the moving contact
finger is the largest, so it can be arranged on a plane different from the moving
contact component, so that it coincides with the moving contact finger in Figure 2
to obtain larger electromotive force (in this case, no magnetizer is needed).
[0096] When the moving contact component is driven by the ATSE operating mechanism and rotates
counterclockwise from the closing position illustrated in Figure 3 to perform the
breaking current operation of ATSE, such as the breaking operation at AC-33A, the
current at this time is only 10 times of the rated current, and the electric compensation
force is quite small, so that the mechanism can easily overcome the electric compensation
force to open the breaking arc of the moving contact. Therefore, it is easy to achieve
both Icw and AC-33A by setting appropriate contact pressure, and obtain ATSE with
higher Icw and AC-33A performance at the same time.
[0097] According to the above embodiments of the present disclosure, the first electromotive
force compensation section 5-3 and the second electromotive force compensation section
6-3 are respectively provided with at least one magnetizer 8.
[0098] According to another embodiment of the present disclosure, a dual-power transfer
switch is provided, wherein the dual-power transfer switch includes at least one breaking
unit as described above.
[0099] In the unipolar breaking unit, a first unipolar breaking unit in a first state is
formed by installing two power supply incoming static contacts, a connecting terminal
and a compensation circuit. After the first pole of the moving contact component is
put into the first unipolar breaking unit in the first state, connecting it to the
compensation circuit with the pigtail wire at the tail of the moving contact finger.
After the second pole of the moving contact component is put into a second unipolar
breaking unit in the first state, connecting it to the compensation circuit with the
pigtail wire at the tail of the moving contact finger. After the third pole of the
moving contact component is put into a third unipolar breaking unit in the first state,
connecting it to the compensation circuit with the pigtail wire at the tail of the
moving contact finger. Finally, after the fourth pole of the moving contact component
is put into a fourth unipolar breaking unit in the first state, connecting it to the
compensation circuit with the pigtail wire at the tail of the moving contact finger.
Then, a pole spacer plate (not illustrated) and the arc extinguishing chamber are
installed. So far, the installation of the four-pole breaking unit is completed (as
illustrated in Figure 6).
[0100] The four-pole breaking unit is connected with the ATS mechanism (not illustrated)
through a coupling 11 to form a complete dual-power transfer switch (TSE, i.e., transfer
switching equipment).
[0101] When the TSE is connected to the first power supply or the second power supply, when
the short-circuit current passes through, because of the existence of the compensation
circuit, the greater the short-circuit current, the greater the electric compensation
force, so that the finger of the moving contact are always pressed against the corresponding
static contact, so as to obtain higher short-circuit short-time tolerance, i.e., Icw.
[0102] When TSE receives a short-circuit current from double-off position, because of the
existence of compensation circuit, the greater the short-circuit current, the greater
the electric compensation force, thus always pressing the finger of the moving contact
against the static contact, so as to obtain higher short-circuit making current, i.e.,
Icm.
[0103] When TSE switches on and breaks an overload (≤10In) or a normal current (In), because
the electromotive force of the compensation circuit is neglected relative to the contact
pressure, the breaking speed of the moving contact is not affected by the electromotive
force, so that the moving contact can be quickly separated from the static contact
to obtain a better electrical switching-on and breaking performance.
[0104] With reference to specific embodiments, although the present disclosure has been
described in the specification and drawings, it should be understood that various
changes can be made by those skilled in the art without departing from the scope of
the present disclosure as defined in the claims, and various changes and various equivalents
can be substituted for various elements therein. Furthermore, the combination and
collocation of technical features, elements and/or functions among specific embodiments
in this paper are clear, so according to these disclosures, those skilled in the art
can appreciate that the technical features, elements and/or functions of an embodiment
can be combined into another specific embodiment as appropriate, unless otherwise
described above. In addition, according to the teaching of the present disclosure,
many changes can be made to adapt to special situations or materials without departing
from the scope of the present disclosure. Therefore, the present disclosure is not
limited to the specific embodiments illustrated in the drawings and the specific embodiments
described in the specification as the best implementation mode presently contemplated
for carrying out the present disclosure, but the present disclosure is intended to
include all embodiments falling within the scope of the above description and the
appended claims.
1. A breaking unit with an auxiliary shunt component,
wherein the breaking unit comprises a first power supply static contact (1), a second
power supply static contact (2), a first electromotive force compensator (5), a second
electromotive force compensator (6), a moving contact component which are accommodated
in a shell (9) of the breaking unit, and soft pigtail wires (7); characterized in that the pigtail wires are connected between the moving contact component and the first
electromotive force compensator and between the moving contact component and the second
electromotive force compensator;
wherein the auxiliary shunt component comprises a first shunt member (12) and a second
shunt member (13);
wherein the first shunt member is connected with the first electromotive force compensator;
wherein the second shunt member is connected with the second electromotive force compensator;
if the moving contact component is in contact with the first power supply static contact,
the moving contact component is in contact with the first shunt member, and a current
flowing through the first shunt member is greater than a current flowing through the
soft pigtail wire;
if the moving contact component is in contact with the second power supply static
contact, the moving contact component is in contact with the second shunt member,
and a current flowing through the second shunt member is greater than a current flowing
through the soft pigtail wire.
2. The breaking unit according to claim 1,
wherein the first shunt member (12) comprises a first elastic current-carrying member
(12-2) and a first contact point (12-1) arranged on one end of the first elastic current-carrying
member, the first elastic current-carrying member and the first contact point being
made of conductive materials;
wherein another end of the first elastic current-carrying member is connected to the
first electromotive force compensator (5);
wherein the second shunt member (13) comprises a second elastic current-carrying member
(13-2) and a second contact point (13-1) arranged on one end of the second elastic
current-carrying member, the second elastic current-carrying member and the second
contact point being made of conductive materials;
wherein another end of the second elastic current-carrying member is connected to
the second electromotive force compensator (6).
3. The breaking unit according to claim 1,
wherein the first shunt member comprises a first shunt contact piece (14), a first
shunt spring (15) and a first shunt pigtail wire (16);
wherein a lower end of the first shunt contact piece is pivotally connected with the
shell (9) of the breaking unit, an upper end of the first shunt contact piece is provided
with a first shunt contact surface (14-1) contacting with the moving contact component
and a first shunt motion range limiting surface (14-2) matched with the shell of the
breaking unit; the first shunt spring is configured to exert a force on the first
shunt contact piece to make the first shunt contact piece abut against the moving
contact component and provide a contact pressure between them; and the lower end of
the first shunt contact piece is further connected with the first electromotive force
compensator through the first shunt pigtail wire;
wherein the second shunt member comprises a second shunt contact piece (17), a second
shunt spring (18) and a second shunt pigtail wire (19);
wherein a lower end of the second shunt contact piece is pivotally connected with
the shell of the breaking unit, an upper end of the second shunt contact piece is
provided with a second shunt contact surface (17-1) contacting with the moving contact
component and a second shunt motion range limiting surface (17-2) matched with the
shell of the breaking unit; the second shunt spring is configured to exert a force
on the second shunt contact piece to make the second shunt contact piece abut against
the moving contact component and provide a contact pressure between them; and the
lower end of the second shunt contact piece is further connected with the second electromotive
force compensator through the second shunt pigtail wire.
4. The breaking unit according to claim 3,
wherein the force exerted by the first shunt contact piece (14) passes through a pivot
center of the moving contact component, so that the contact pressure between the first
shunt contact piece and the moving contact component does not reduce the contact pressure
between the moving contact component and the first power supply static contact, and
does not hinder the opening of the moving contact component relative to the first
power supply static contact;
wherein the force exerted by the second shunt contact piece (17) passes through the
pivot center of the moving contact component, so that the contact pressure between
the second shunt contact piece and the moving contact component does not reduce the
contact pressure between the moving contact component and the second power supply
static contact, and does not hinder the opening of the moving contact component relative
to the second power supply static contact.
5. The breaking unit according to claim 2,
wherein if the moving contact component is in contact with the first power supply
static contact (1), a current direction in the first electromotive force compensator
is consistent with a current direction in the moving contact component, so as to generate
mutually attractive electromotive forces, and then form a torque driving the moving
contact component to rotate, so as to increase a contact pressure between the moving
contact component and the first power supply static contact;
wherein if the moving contact component is in contact with the second power supply
static contact (2), a current direction in the second electromotive force compensator
is consistent with a current direction in the moving contact component, so as to generate
mutually attractive electromotive forces, and then form a torque driving the moving
contact component to rotate, so as to increase a contact pressure between the moving
contact component and the second power supply static contact;
wherein if the current increases, the electromotive force increases.
6. The breaking unit according to claim 5,
wherein the moving contact component is configured to rotate between a first position
and a second position;
wherein in the first position, the moving contact component is in contact with the
first power supply static contact;
wherein in the second position, the moving contact component is in contact with the
second power supply static contact.
7. The breaking unit according to claim 6,
wherein the first power supply static contact, the second power supply static contact,
the first electromotive force compensator and the second electromotive force compensator
are arranged around the moving contact component.
8. The breaking unit according to claim 6,
wherein the first electromotive force compensator comprises a first current inlet
end (5-1), a first current flow section (5-2), a first electromotive force compensation
section (5-3) and a first load terminal section (5-4).
9. The breaking unit according to claim 8,
wherein the second electromotive force compensator comprises a second current inlet
end (6-1), a second current flow section (6-2), a second electromotive force compensation
section (6-3) and a second load terminal section (6-4).
10. The breaking unit according to claim 9,
wherein the moving contact component comprises a moving contact bracket (3) and a
moving contact finger (4) mounted on the moving contact bracket;
wherein the moving contact finger and the moving contact bracket have the same pivot
center position or different pivot center positions.
11. The breaking unit according to claim 10,
wherein one end of the moving contact finger is connected to the first current inlet
end and the second current inlet end through the soft pigtail wires (7);
wherein the first elastic current-carrying member is connected to the first current
inlet end;
wherein the second elastic current-carrying member is connected to the second current
inlet end.
12. The breaking unit according to claim 11,
wherein if the moving contact component is in the first position, current flows through
the moving contact finger, the soft pigtail wire and the first elastic current-carrying
member connected together in parallel, the first current inlet end, the first current
flow section, the first electromotive force compensation section and the first load
terminal section, and a current direction flowing through the first electromotive
force compensation section is consistent with a current direction flowing through
the moving contact finger;
wherein if the moving contact component is in the second position, current flows through
the moving contact finger, the soft pigtail wire and the second elastic current-carrying
member connected together in parallel, the second current inlet end, the second current
flow section, the second electromotive force compensation section and the second load
terminal section, and a current direction flowing through the second electromotive
force compensation section is consistent with the current direction flowing through
the moving contact finger.
13. The breaking unit according to claim 10,
wherein the first electromotive force compensation section and the second electromotive
force compensation section are respectively provided with at least one magnetizer
(8).
14. A dual-power transfer switch, wherein the dual-power transfer switch comprises at
least one breaking unit according to any one of claims 1-13.
1. Unterbrechungseinheit mit einer Hilfsnebenschlusskomponente,
wobei die Unterbrechungseinheit einen ersten statischen Stromversorgungskontakt (1),
einen zweiten statischen Stromversorgungskontakt (2), eine erste Kompensationsvorrichtung
für eine elektromotorische Kraft (5), eine zweite Kompensationsvorrichtung für eine
elektromotorische Kraft (6), eine bewegliche Kontaktkomponente, die in einem Gehäuse
(9) der Unterbrechungseinheit untergebracht sind, und weiche bewegliche Anschlussdrähte
(7) umfasst;
dadurch gekennzeichnet, dass die beweglichen Anschlussdrähte zwischen der beweglichen Kontaktkomponente und der
ersten Kompensationsvorrichtung für eine elektromotorische Kraft und zwischen der
beweglichen Kontaktkomponente und der zweiten Kompensationsvorrichtung für eine elektromotorische
Kraft angeschlossen sind;
wobei die Hilfsnebenschlusskomponente ein erstes Nebenschlusselement (12) und ein
zweites Nebenschlusselement (13) umfasst;
wobei das erste Nebenschlusselement mit der ersten Kompensationsvorrichtung für eine
elektromotorische Kraft verbunden ist;
wobei das zweite Nebenschlusselement mit der zweiten Kompensationsvorrichtung für
eine elektromotorische Kraft verbunden ist;
wenn die bewegliche Kontaktkomponente in Kontakt mit dem ersten statischen Stromversorgungskontakt
steht, die bewegliche Kontaktkomponente in Kontakt mit dem ersten Nebenschlusselement
steht und ein Strom, der durch das erste Nebenschlusselement fließt, größer ist als
ein Strom, der durch den weichen beweglichen Anschlussdraht fließt;
wenn die bewegliche Kontaktkomponente in Kontakt mit dem zweiten statischen Stromversorgungskontakt
steht, die bewegliche Kontaktkomponente in Kontakt mit dem zweiten Nebenschlusselement
steht und ein Strom, der durch das zweite Nebenschlusselement fließt, größer ist als
ein Strom, der durch den weichen beweglichen Anschlussdraht fließt.
2. Unterbrechungseinheit nach Anspruch 1,
wobei das erste Nebenschlusselement (12) ein erstes elastisches stromführendes Element
(12-2) und einen ersten Kontaktpunkt (12-1) umfasst, der an einem Ende des ersten
elastischen stromführenden Elements angeordnet ist, wobei das erste elastische stromführende
Element und der erste Kontaktpunkt aus leitenden Materialien hergestellt sind;
wobei ein anderes Ende des ersten elastischen stromführenden Elements mit der ersten
Kompensationsvorrichtung für eine elektromotorische Kraft (5) verbunden ist;
wobei das zweite Nebenschlusselement (13) ein zweites elastisches stromführendes Element
(13-2) und einen zweiten Kontaktpunkt (13-1) umfasst, der an einem Ende des zweiten
elastischen stromführenden Elements angeordnet ist, wobei das zweite elastische stromführende
Element und der zweite Kontaktpunkt aus leitenden Materialien hergestellt sind;
wobei ein anderes Ende des zweiten elastischen stromführenden Elements mit der zweiten
Kompensationsvorrichtung für eine elektromotorische Kraft (6) verbunden ist.
3. Unterbrechungseinheit nach Anspruch 1,
wobei das erste Nebenschlusselement ein erstes Nebenschlusskontaktstück (14), eine
erste Nebenschlussfeder (15) und einen ersten beweglichen Nebenschluss-Anschlussdraht
(16) umfasst;
wobei ein unteres Ende des ersten Nebenschlusskontaktstücks schwenkbar mit dem Gehäuse
(9) der Unterbrechungseinheit verbunden ist, ein oberes Ende des ersten Nebenschlusskontaktstücks
mit einer ersten Nebenschlusskontaktfläche (14-1), die mit der beweglichen Kontaktkomponente
in Kontakt steht, und einer ersten Nebenschlussbewegungsbereich-Begrenzungsfläche
(14-2) versehen ist, die an das Gehäuse der Unterbrechungseinheit angepasst ist; die
erste Nebenschlussfeder so konfiguriert ist, dass sie eine Kraft auf das erste Nebenschlusskontaktstück
ausübt, um das erste Nebenschlusskontaktstück gegen die bewegliche Kontaktkomponente
stoßen zu lassen und einen Kontaktdruck zwischen ihnen bereitzustellen; und das untere
Ende des ersten Nebenschlusskontaktstücks ferner mit der ersten Kompensationsvorrichtung
für eine elektromotorische Kraft durch den ersten beweglichen Nebenschluss-Anschlussdraht
verbunden ist;
wobei das zweite Nebenschlusselement ein zweites Nebenschlusskontaktstück (17), eine
zweite Nebenschlussfeder (18) und einen zweiten beweglichen Nebenschluss-Anschlussdraht
(19) umfasst;
wobei ein unteres Ende des zweiten Nebenschlusskontaktstücks schwenkbar mit dem Gehäuse
der Unterbrechungseinheit verbunden ist, ein oberes Ende des zweiten Nebenschlusskontaktstücks
mit einer zweiten Nebenschlusskontaktfläche (17-1), die mit der beweglichen Kontaktkomponente
in Kontakt steht, und einer zweiten Nebenschlussbewegungsbereich-Begrenzungsfläche
(17-2) versehen ist, die an das Gehäuse der Unterbrechungseinheit angepasst ist; die
zweite Nebenschlussfeder so konfiguriert ist, dass sie eine Kraft auf das zweite Nebenschlusskontaktstück
ausübt, um das zweite Nebenschlusskontaktstück gegen die bewegliche Kontaktkomponente
stoßen zu lassen und einen Kontaktdruck zwischen ihnen bereitzustellen; und das untere
Ende des zweiten Nebenschlusskontaktstücks ferner mit der zweiten Kompensationsvorrichtung
für eine elektromotorische Kraft durch den zweiten beweglichen Nebenschluss-Anschlussdraht
verbunden ist.
4. Unterbrechungseinheit nach Anspruch 3,
wobei die von dem ersten Nebenschlusskontaktstück (14) ausgeübte Kraft durch einen
Drehpunkt der beweglichen Kontaktkomponente verläuft, so dass der Kontaktdruck zwischen
dem ersten Nebenschlusskontaktstück und der beweglichen Kontaktkomponente den Kontaktdruck
zwischen der beweglichen Kontaktkomponente und dem ersten statischen Stromversorgungskontakt
nicht verringert und das Öffnen der beweglichen Kontaktkomponente relativ zu dem ersten
statischen Stromversorgungskontakt nicht behindert;
wobei die von dem zweiten Nebenschlusskontaktstück (17) ausgeübte Kraft durch den
Drehpunkt der beweglichen Kontaktkomponente verläuft, so dass der Kontaktdruck zwischen
dem zweiten Nebenschlusskontaktstück und der beweglichen Kontaktkomponente den Kontaktdruck
zwischen der beweglichen Kontaktkomponente und dem zweiten statischen Stromversorgungskontakt
nicht verringert und das Öffnen der beweglichen Kontaktkomponente relativ zu dem zweiten
statischen Stromversorgungskontakt nicht behindert.
5. Unterbrechungseinheit nach Anspruch 2,
wobei, wenn die bewegliche Kontaktkomponente in Kontakt mit dem ersten statischen
Stromversorgungskontakt (1) steht, eine Stromrichtung in der ersten Kompensationsvorrichtung
für eine elektromotorische Kraft mit einer Stromrichtung in der beweglichen Kontaktkomponente
übereinstimmt, um gegenseitig anziehende elektromotorische Kräfte zu erzeugen und
dann ein Drehmoment zu bilden, das die bewegliche Kontaktkomponente zum Drehen antreibt,
um einen Kontaktdruck zwischen der beweglichen Kontaktkomponente und dem ersten statischen
Stromversorgungskontakt zu erhöhen;
wobei, wenn die bewegliche Kontaktkomponente in Kontakt mit dem zweiten statischen
Stromversorgungskontakt (2) steht, eine Stromrichtung in der zweiten Kompensationsvorrichtung
für eine elektromotorische Kraft mit einer Stromrichtung in der beweglichen Kontaktkomponente
übereinstimmt, um gegenseitig anziehende elektromotorische Kräfte zu erzeugen und
dann ein Drehmoment zu bilden, das die bewegliche Kontaktkomponente zum Drehen antreibt,
um einen Kontaktdruck zwischen der beweglichen Kontaktkomponente und dem zweiten statischen
Stromversorgungskontakt zu erhöhen;
wobei bei einem Anstieg des Stroms die elektromotorische Kraft zunimmt.
6. Unterbrechungseinheit nach Anspruch 5,
wobei die bewegliche Kontaktkomponente konfiguriert ist, um sich zwischen einer ersten
Position und einer zweiten Position zu drehen;
wobei in der ersten Position die bewegliche Kontaktkomponente in Kontakt mit dem ersten
statischen Stromversorgungskontakt steht;
wobei in der zweiten Position die bewegliche Kontaktkomponente in Kontakt mit dem
zweiten statischen Stromversorgungskontakt steht.
7. Unterbrechungseinheit nach Anspruch 6,
wobei der erste statische Stromversorgungskontakt, der zweite statische Stromversorgungskontakt,
die erste Kompensationsvorrichtung für eine elektromotorische Kraft und die zweite
Kompensationsvorrichtung für eine elektromotorische Kraft um die bewegliche Kontaktkomponente
herum angeordnet sind.
8. Unterbrechungseinheit nach Anspruch 6,
wobei die erste Kompensationsvorrichtung für eine elektromotorische Kraft ein erstes
Stromeinlassende (5-1), einen ersten Stromflussabschnitt (5-2), einen ersten Abschnitt
(5-3) zur Kompensation einer elektromotorischen Kraft und einen ersten Lastanschlussabschnitt
(5-4) umfasst.
9. Unterbrechungseinheit nach Anspruch 8,
wobei die zweite Kompensationsvorrichtung für eine elektromotorische Kraft ein zweites
Stromeinlassende (6-1), einen zweiten Stromflussabschnitt (6-2), einen zweiten Abschnitt
(6-3) zur Kompensation einer elektromotorischen Kraft und einen zweiten Lastanschlussabschnitt
(6-4) umfasst.
10. Unterbrechungseinheit nach Anspruch 9,
wobei die bewegliche Kontaktkomponente eine bewegliche Kontakthalterung (3) und einen
beweglichen Kontaktfinger (4) umfasst, der an der beweglichen Kontakthalterung angebracht
ist;
wobei der bewegliche Kontaktfinger und die bewegliche Kontakthalterung die gleiche
Drehpunktposition oder unterschiedliche Drehpunktpositionen aufweisen.
11. Unterbrechungseinheit nach Anspruch 10,
wobei ein Ende des beweglichen Kontaktfingers mit dem ersten Stromeinlassende und
dem zweiten Stromeinlassende über die weichen beweglichen Anschlussdrähte (7) verbunden
ist;
wobei das erste elastische stromführende Element mit dem ersten Stromeinlassende verbunden
ist;
wobei das zweite elastische stromführende Element mit dem zweiten Stromeinlassende
verbunden ist.
12. Unterbrechungseinheit nach Anspruch 11,
wobei, wenn sich die bewegliche Kontaktkomponente in der ersten Position befindet,
Strom durch den beweglichen Kontaktfinger, den weichen beweglichen Anschlussdraht
und das erste elastische stromführende Element, die parallel miteinander verbunden
sind, das erste Stromeinlassende, den ersten Stromflussabschnitt, den ersten Abschnitt
zur Kompensation einer elektromotorischen Kraft und den ersten Lastanschlussabschnitt
fließt, und eine Richtung des Stroms, der durch den ersten Abschnitt zur Kompensation
einer elektromotorischen Kraft fließt, mit einer Richtung des Stroms, der durch den
beweglichen Kontaktfinger fließt, übereinstimmt;
wobei, wenn sich die bewegliche Kontaktkomponente in der zweiten Position befindet,
Strom durch den beweglichen Kontaktfinger, den weichen beweglichen Anschlussdraht
und das zweite elastische stromführende Element, die parallel miteinander verbunden
sind, das zweite Stromeinlassende, den zweiten Stromflussabschnitt, den zweiten Abschnitt
zur Kompensation einer elektromotorischen Kraft und den zweiten Lastanschlussabschnitt
fließt, und eine Richtung des Stroms, der durch den zweiten Abschnitt zur Kompensation
einer elektromotorischen Kraft fließt, mit der Richtung des Stroms, der durch den
beweglichen Kontaktfinger fließt, übereinstimmt.
13. Unterbrechungseinheit nach Anspruch 10,
wobei der erste Abschnitt zur Kompensation einer elektromotorischen Kraft und der
zweite Abschnitt zur Kompensation einer elektromotorischen Kraft jeweils mit mindestens
einer Magnetisierungsvorrichtung (8) versehen sind.
14. Doppelleistungsumschalter, wobei der Doppelleistungsumschalter mindestens eine Unterbrechungseinheit
nach einem der Ansprüche 1 bis 13 umfasst.
1. Unité coupe-circuit avec un composant shunt auxiliaire,
dans laquelle l'unité coupe-circuit comprend un premier contact statique d'alimentation
de puissance (1), un second contact statique d'alimentation de puissance (2), un premier
compensateur de force électromotrice (5), un second compensateur de force électromotrice
(6), un composant de contact mobile qui sont logés dans une coque (9) de l'unité coupe-circuit,
et des fils Pigtail souples (7),
caractérisée en ce que les fils Pigtail sont connectés entre le composant de contact mobile et le premier
compensateur de force électromotrice et entre le composant de contact mobile et le
second compensateur de force électromotrice ;
dans laquelle le composant shunt auxiliaire comprend un premier élément shunt (12)
et un second élément shunt (13) ;
dans laquelle le premier élément shunt est connecté au premier compensateur de force
électromotrice ;
dans laquelle le second élément shunt est connecté au second compensateur de force
électromotrice ;
si le composant de contact mobile est en contact avec le premier contact statique
d'alimentation de puissance, le composant de contact mobile est en contact avec le
premier élément shunt, et un courant s'écoulant à travers le premier élément shunt
est plus grand qu'un courant s'écoulant à travers le fil Pigtail souple ;
si le composant de contact mobile est en contact avec le second contact statique d'alimentation
de puissance, le composant de contact mobile est en contact avec le second élément
shunt, et un courant s'écoulant à travers le second élément shunt est plus grand qu'un
courant s'écoulant à travers le fil Pigtail souple.
2. Unité coupe-circuit selon la revendication 1,
dans laquelle le premier élément shunt (12) comprend un premier élément porteur de
courant élastique (12-2) et un premier point de contact (12-1) agencé sur une extrémité
du premier élément porteur de courant élastique, le premier élément porteur de courant
élastique et le premier point de contact étant réalisés en matériaux conducteurs ;
dans laquelle une autre extrémité du premier élément porteur de courant élastique
est connectée au premier compensateur de force électromotrice (5) ;
dans laquelle le second élément shunt (13) comprend un second élément porteur de courant
élastique (13-2) et un second point de contact (13-1) agencé sur une extrémité du
second élément porteur de courant élastique, le second élément porteur de courant
élastique et le second point de contact étant réalisés en matériaux conducteurs ;
dans laquelle une autre extrémité du second élément porteur de courant élastique est
connectée au second compensateur de force électromotrice (6).
3. Unité coupe-circuit selon la revendication 1,
dans laquelle le premier élément shunt comprend une première pièce de contact shunt
(14), un premier ressort shunt (15) et un premier fil Pigtail shunt (16) ;
dans laquelle une extrémité inférieure de la première pièce de contact shunt est connectée
de façon pivotante à la coque (9) de l'unité coupe-circuit, une extrémité supérieure
de la première pièce de contact shunt est dotée d'une première surface de contact
shunt (14-1) venant contact avec le composant de contact mobile et d'une première
surface de limitation de plage de déplacement shunt (14-2) mise en correspondance
avec la coque de l'unité coupe-circuit ; le premier ressort shunt est configuré pour
exercer une force sur la première pièce de contact shunt pour amener la première pièce
de contact shunt en butée contre le composant de contact mobile et fournir une pression
de contact entre eux ; et l'extrémité inférieure de la première pièce de contact shunt
est en outre connectée au premier compensateur de force électromotrice via le premier
fil Pigtail shunt ;
dans laquelle le second élément shunt comprend une seconde pièce de contact shunt
(17), un second ressort shunt (18) et un second fil Pigtail shunt (19) ;
dans laquelle une extrémité inférieure de la seconde pièce de contact shunt est connectée
de façon pivotante à la coque de l'unité coupe-circuit, une extrémité supérieure de
la seconde pièce de contact shunt est dotée d'une seconde surface de contact shunt
(17-1) venant contact avec le composant de contact mobile et d'une seconde surface
de limitation de plage de déplacement shunt (17-2) mise en correspondance avec la
coque de l'unité coupe-circuit ; le second ressort shunt est configuré pour exercer
une force sur la seconde pièce de contact shunt pour amener la seconde pièce de contact
shunt en butée contre le composant de contact mobile et fournir une pression de contact
entre eux ; et l'extrémité inférieure de la seconde pièce de contact shunt est en
outre connectée au second compensateur de force électromotrice via le second fil Pigtail
shunt.
4. Unité coupe-circuit selon la revendication 3,
dans laquelle la force exercée par la première pièce de contact shunt (14) passe par
un centre de pivotement du composant de contact mobile, de telle sorte que la pression
de contact entre la première pièce de contact shunt et le composant de contact mobile
ne réduit pas la pression de contact entre le composant de contact mobile et le premier
contact statique d'alimentation de puissance, et n'empêche pas l'ouverture du composant
de contact mobile relativement au premier contact statique d'alimentation de puissance
;
dans laquelle la force exercée par la seconde pièce de contact shunt (17) passe par
le centre de pivotement du composant de contact mobile, de telle sorte que la pression
de contact entre la seconde pièce de contact shunt et le composant de contact mobile
ne réduit pas la pression de contact entre le composant de contact mobile et le second
contact statique d'alimentation de puissance, et n'empêche pas l'ouverture du composant
de contact mobile relativement au second contact statique d'alimentation de puissance.
5. Unité coupe-circuit selon la revendication 2,
dans laquelle, si le composant de contact mobile est en contact avec le premier contact
statique d'alimentation de puissance (1), une direction de courant dans le premier
compensateur de force électromotrice est en accord avec une direction de courant dans
le composant de contact mobile, afin de générer des forces électromotrices d'attraction
mutuelle et puis de former un couple entraînant le composant de contact mobile en
rotation, de manière à augmenter une pression de contact entre le composant de contact
mobile et le premier contact statique d'alimentation de puissance ;
dans laquelle, si le composant de contact mobile est en contact avec le second contact
statique d'alimentation de puissance (2), une direction de courant dans le second
compensateur de force électromotrice est en accord avec une direction de courant dans
le composant de contact mobile, afin de générer des forces électromotrices d'attraction
mutuelle, et puis à former un couple entraînant le composant de contact mobile en
rotation, de manière à augmenter une pression de contact entre le composant de contact
mobile et le second contact statique d'alimentation de puissance ;
dans laquelle, si le courant augmente, la force électromotrice augmente.
6. Unité coupe-circuit selon la revendication 5,
dans laquelle le composant de contact mobile est configuré pour être mis en rotation
entre une première position et une seconde position ;
dans laquelle, dans la première position, le composant de contact mobile est en contact
avec le premier contact statique d'alimentation de puissance ;
dans laquelle, dans la seconde position, composant de contact mobile est en contact
avec le second contact statique d'alimentation de puissance.
7. Unité coupe-circuit selon la revendication 6,
dans laquelle le premier contact statique d'alimentation de puissance, le second contact
statique d'alimentation de puissance, le premier compensateur de force électromotrice
et le second compensateur de force électromotrice sont agencés autour du composant
de contact mobile.
8. Unité coupe-circuit selon la revendication 6,
dans laquelle le premier compensateur de force électromotrice comprend une première
extrémité d'entrée de courant (5-1), une première section d'écoulement de courant
(5-2), une première section de compensation de force électromotrice (5-3) et une première
section de terminal de charge (5-4).
9. Unité coupe-circuit selon la revendication 8,
dans laquelle le second compensateur de force électromotrice comprend une seconde
extrémité d'entrée de courant (6-1), une seconde section d'écoulement de courant (6-2),
une seconde section de compensation de force électromotrice (6-3) et une seconde section
de terminal de charge (6-4).
10. Unité coupe-circuit selon la revendication 9,
dans laquelle le composant de contact mobile comprend un support de contact mobile
(3) et un doigt de contact mobile (4) monté sur le support de contact mobile ;
dans laquelle le doigt de contact mobile et le support de contact mobile ont la même
position de centre de pivotement ou des positions de centre de pivotement différentes.
11. Unité coupe-circuit selon la revendication 10,
dans laquelle une extrémité du doigt de contact mobile est connectée à la première
extrémité d'entrée de courant et à la seconde extrémité d'entrée de courants via les
fils Pigtail souples (7) ;
dans laquelle le premier élément porteur de courant élastique est connecté à la première
extrémité d'entrée de courant ;
dans laquelle le second élément porteur de courant élastique est connecté à la seconde
extrémité d'entrée de courant.
12. Unité coupe-circuit selon la revendication 11,
dans laquelle, si le composant de contact mobile est dans la première position, un
courant s'écoule à travers le doigt de contact mobile, le fil Pigtail souple et le
premier élément porteur de courant élastique connectés conjointement en parallèle,
la première extrémité d'entrée de courant, la première section d'écoulement de courant,
la première section de compensation de force électromotrice et la première section
de terminal de charge, et une direction de courant s'écoulant à travers la première
section de compensation de force électromotrice est en accord avec une direction de
courant s'écoulant à travers le doigt de contact mobile ;
dans laquelle, si le composant de contact mobile est dans la seconde position, un
courant s'écoule à travers le doigt de contact mobile, le fil Pigtail souple et le
second élément porteur de courant élastique connectés conjointement en parallèle,
la seconde extrémité d'entrée de courant, la seconde section d'écoulement de courant,
la seconde section de compensation de force électromotrice et la seconde section de
terminal de charge, et une direction de courant s'écoulant à travers la seconde section
de compensation de force électromotrice est en accord avec une direction de courant
s'écoulant à travers le doigt de contact mobile.
13. Unité coupe-circuit selon la revendication 10,
dans laquelle la première section de compensation de force électromotrice et la seconde
section de compensation de force électromotrice sont respectivement dotées d'au moins
un organe magnétique (8).
14. Commutateur de transfert à double puissance, dans lequel le commutateur de transfert
à double puissance comprend au moins une unité coupe-circuit en accord avec l'une
quelconque des revendications 1 à 13.