TECHNICAL FIELD
[0001] The present invention relates to the field of low-voltage apparatuses, in particular
to a universal circuit breaker.
BACKGROUND ART
[0002] A universal circuit breaker realizes switching-in and switching-off of a product
through an operating mechanism. When the universal circuit breaker stores energy manually,
an energy storage handle is rotated by an external force. A latch on the energy storage
handle and a ratchet on the operating mechanism drive a V-shaped shaft to rotate,
such that an energy storage spring of the operating mechanism is compressed to complete
manual energy storage. After the operating mechanism releases energy, the ratchet
returns to an initial position. In the initial position, a torque is not transferred
between the latch on the energy storage handle and the ratchet on the operating mechanism,
and the energy storage handle needs to be rotated by a certain angle to buckle the
latch with the ratchet to transfer the torque. At present, when the operating mechanism
releases energy, the ratchet rotates excessively due to machining error and fitting
error of the components, so that the ratchet is in contact with the buckled surface
of the latch on the energy storage handle. In this case, it is unnecessary to rotate
the energy storage handle by a certain angle to start energy storage. Since a gap
between the energy storage handle in an initial state and a mask is very small, there
is no enough space to move the energy storage handle, and therefore, it is difficult
to complete the energy storage operation. e.g. US patent
US9966208B2.
[0003] The universal circuit breaker drives the V-shaped shaft of the operating mechanism
by an electromotor to realize electric energy storage. The electric energy storage
process achieves energy storage of the operating mechanism in such a manner: the electromotor
is electrified to rotate, the electromotor reduces a rotating speed by gear transmission
to the last gear (an aluminum disk), and a blind hole (or a through hole) in the aluminum
disk cooperates with the V-shaped shaft of the operating mechanism to transfer the
torque to the operating mechanism. In this case, a blind hole (or a through hole)
having the same cross section as the V-shaped shaft of the operating mechanism is
machined in the aluminum disk, and the torque is transferred through cooperating the
blind hole (or through hole) with the V-shaped shaft. The aluminum disk is an integral
part made of aluminum, and is in clearance fit with the V-shaped shaft due to product
assembly requirements. During the transmission process, the aluminum disk is in line
contact with the V-shaped shaft, and the blind hole (or the through hole) of the aluminum
disk of the electromotor is worn out greatly during the electric energy storage process,
and is thus short in life.
[0004] A main circuit of the universal circuit breaker is divided into four phases of N/A/B/C
or three phases of A/B/C. The main circuit of each phase consists of two parts: a
static contact and a moving contact. When the circuit breaker is switched on, a large
rotating shaft of the operating mechanism rotates, and the moving contact is driven
by a connecting rod to rotate by a certain angle along the rotating center, and then
contacts the static contact, and the main circuit is turned on. During the switching-on
operation, a contact spring of the moving contact continues to be compressed after
the moving contact is in point contact with the static contact, thereby forming an
overtravel and increasing the final pressure of the contacts to meet the performance
requirements of the product. At present, due to the initial structural design of the
universal circuit breaker, in the case of using the same components, the overtravel
of the remaining phase away from a B phase will be worse than that of the B phase,
accompanied with the risks of insufficient overtravel and insufficient final pressure
of the moving contact.
[0005] CN103681022A discloses a universal circuit breaker comprising a circuit breaker body and an operating
mechanism mounted on one side of the body. An energy storage handle is provided on
the outside wall of one side of the mechanism and is rotated to manually store energy
for the operating mechanism. This latter comprises a V-shaped rotating shaft, one
end of which extends out of one sidewall of the mechanism, and the other end of which
is sleeved with a ratchet that is in linkage with the energy storage handle. A latch,
in linkage with the ratchet, is arranged on one side of the handle, which is rotated
to drive the ratchet to rotate through the latch.
SUMMARY OF THE INVENTION
[0006] An objective of the present invention is to overcome the defects of the prior art
and to provide a universal circuit breaker which has stable and stable performances
and a simple and compact structure, and can achieve good user experiences.
[0007] To fulfill the said objective, the present invention adopts the following technical
solution:
an anti-jamming device according to claim 1.
[0008] Further, the flange 801 is in a shape of a one-tenth arc; two ends of the flange
801 are provided with slopes 805 which are inclined downwards.
[0009] Further, the anti-jamming plate 8 is sheathed on the V-shaped rotating shaft 4 and
located below the ratchet 5.
[0010] Further, the anti-jamming plate 8 comprises an annular plate 81 and a strip-shaped
extension plate 82 extending toward one side of the annular plate 81; a circular mounting
hole 802 is formed in the middle of the annular plate 81; the anti-jamming plate 8
is sheathed on the V-shaped rotating shaft 4 through the circular mounting hole 802;
the end part of the extension plate 82 is provided with a screw fixing hole 803 for
fixing the anti-jamming plate 8; the anti-jamming plate 8 is fixed to one sidewall
of the operating mechanism 2 by screwing a screw to the screw fixing hole 803; the
flange 801 is convexly arranged at the junction between the annular plate 81 and the
extension plate 82.
[0011] Further, the anti-jamming device for the energy storage handle of the universal circuit
breaker further comprises a reset spring 61 which is mounted on the energy storage
handle 3 and used for resetting the latch 6; one end of the latch 6 is pivotally connected
to the energy storage handle 3; the other end of the latch 6 is connected to one end
of the reset spring 61; the other end of the reset spring 61 is fixed to the energy
storage handle 3; the latch 6 is provided with a linkage protrusion 62, which is in
linkage fit with the ratchet 5, in a manner of protruding toward one side; the other
end of the latch 6 is provided with a spring hook 63 which is connected to the reset
spring 61 and bent upwards.
[0012] Further, the linkage protrusion 62 is a pointed protrusion; the end part of a meshing
tooth 51 of the ratchet 5, which contacts the linkage protrusion 62, is a pointed
protrusion.
[0013] Further, a static contact 101 which corresponds to a conductive system in each pole
is mounted on the circuit breaker body 1; a moving contact 102 which corresponds to
the static contact 101 of the conductive system in each pole is mounted on the circuit
breaker body 1; when the circuit breaker body 1 is switched on or switched off, a
large rotating shaft 21 of the operating mechanism 2 drives the moving contact 102
to act to be in contact and separated from the static contact 101, such that a main
circuit is turned on or turned off; one end of the moving contact 102 is pivotally
connected to the circuit breaker body 1; a cantilever 211 which corresponds to the
conductive system in each pole is mounted on the large rotating shaft 21; a connecting
rod 212 which is in linkage with the cantilever 211 is mounted on one side, which
faces the cantilever 211, of the moving contact 102; one end of the connecting rod
212 is connected to the moving contact 102; the other end of the connecting rod 212
is pivotally connected to the end part of the cantilever 211; a first connecting portion
2120 which is connected to the moving contact 102 is arranged at one end of the connecting
rod 212, and a second connecting portion 2121 which is connected to the cantilever
211 is arranged at the other end of the connecting rod 212; a distance between the
first connecting portion 2120 and the second connecting portion 2121 of the corresponding
connecting rod 212 of the circuit breaker near the operating mechanism 2 of the circuit
breaker is greater than a distance between a first connecting portion 2120 and the
second connecting portion 2121 of the other corresponding connecting rod 212.
[0014] Further, the first connecting portion 2120 is a first through hole formed in the
end part of the connecting rod 212; the sidewall of the moving contact 102, which
faces the connecting rod 212 is provided with a mounting groove 1021 which is fitted
to one end of the connecting rod 212; one end of the connecting rod 212 is mounted
into the mounting groove 1021 through the first through hole and is pivotally connected
to the moving contact 102.
[0015] Further, the second connecting portion 2121 is a second through hole formed in the
other end of the connecting rod 212; one end of the cantilever 211 is provided with
a cantilever mounting hole 2110 which is fitted to the second through hole.
[0016] According to the anti-jamming device for the energy storage handle of the universal
circuit breaker of the present invention, the anti-jamming structure is arranged between
the latch and the ratchet of the energy storage handle to prevent the latch and the
ratchet from being jammed. When the energy storage handle is in an initial state,
the latch and the ratchet are separated by the anti-jamming structure, thereby promoting
the use handfeel of a customer. The ant-jamming plate is provided with the flange
for separating the ratchet from the latch. When the operating mechanism releases energy,
the latch is laid on the flange to prevent the latch and the ratchet from being jammed.
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
Fig. 1 is a structural schematic diagram of a circuit breaker body of the present
invention;
Fig. 2 is a structural schematic diagram of an energy storage handle of the present
invention;
Fig. 3 is a structural schematic diagram of an operating mechanism of the present
invention;
Fig. 4 is a side view of the operating mechanism of the present invention;
Fig. 5 is a structural schematic diagram of the energy storage handle in the initial
state in the present invention;
Fig. 6 is an enlarged view of a portion A in Fig. 5 in the present invention;
Fig. 7 is a structural schematic diagram of the energy storage handle during manual
energy storage in the present invention;
Fig. 8 is an enlarged view of a portion B in Fig. 7 in the present invention;
Fig. 9 is a schematic diagram in which a ratchet and a latch are jammed when the operating
mechanism releases energy in the present invention;
Fig. 10 is an enlarged view of a portion C in Fig. 9 in the present invention;
Fig. 11 is another structural schematic diagram of the operating mechanism in the
present invention;
Fig. 12 is another side view of the operating mechanism in the present invention;
Fig. 13 is a structural schematic diagram in which an anti-jamming plate is mounted
in the present invention;
Fig. 14 is an enlarged view of a portion D in Fig. 13 in the present invention;
Fig. 15 is a stereoscopically structural schematic diagram of the anti-jamming plate
in the present invention;
Fig. 16 is another structural schematic diagram of the circuit breaker body in the
present invention;
Fig. 17 is another schematic diagram of the operating mechanism in the present invention;
Fig. 18 is a stereogram of an electromotor in the present invention;
Fig. 19 is a structural schematic diagram of a V-shaped rotating shaft in the present
invention;
Fig. 20 is a top view of an aluminum disk in the present invention;
Fig. 21 is a stereogram of the aluminum disk in the present invention;
Fig. 22 is a schematic diagram showing the back of the aluminum disk in the present
invention;
Fig. 23 is a structural schematic diagram of a further embodiment of the aluminum
disk in the present invention;
Fig. 24 is a structural schematic diagram of a circuit breaker body in the present
invention;
Fig. 25 is another structural schematic diagram of the operating mechanism in the
present invention;
Fig. 26 is a structural schematic diagram of a moving contact in the present invention;
Fig. 27 is a structural schematic diagram of a connecting rod in the present invention;
and
Fig. 28 is a structural schematic diagram of a first pin shaft in the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0018] The specific embodiments of a universal circuit breaker of the present invention
will be further described below with reference to the embodiments given in Figs. 1
to 28. The universal circuit breaker of the present invention is not limited to the
description of the following embodiments.
[0019] As shown in Figs. 1, 16, 17, 24 and 25, a universal circuit breaker of the present
invention comprises a circuit breaker body 1. The circuit breaker body 1 comprises
a circuit breaker base, an operating mechanism 2 mounted on one side of the circuit
breaker body 1, and an electromotor. An energy storage handle 3 is mounted on the
outside wall of one side of the operating mechanism 2. The energy storage handle 3
may be rotated to manually store energy for the operating mechanism 2. The electromotor
7 may electrically store energy for the circuit breaker through an external power
source. The energy storage handle 3 is located between the operating mechanism 2 and
the electromotor 7. The circuit breaker base further comprises multi-phase conductive
copper bars which are arranged in a layered manner. A four-phase universal circuit
breaker is shown in drawings, wherein the upper layer and the lower layer of each
phase are provided with a first conductive copper bar 118 and a second conductive
copper bar 119 respectively. It is apparent that a single-phase circuit breaker or
a multi-phase circuit breaker may be available, and multiple layers of the conductive
copper bars may also be arranged.
[0020] As shown in Figs. 1, 2, 3, 11, 12, 13 and 14, the universal circuit breaker of the
present invention comprises an anti-jamming device for the energy storage handle.
The operating mechanism 2 comprises a V-shaped rotating shaft 4 for storing energy,
wherein one end of the V-shaped rotating shaft 4 extends out of one sidewall of the
operating mechanism 2, and the other end of the V-shaped rotating shaft 4 is sleeved
with a ratchet 5 which is in linkage with the energy storage handle 3. A latch 6 which
is in linkage with the ratchet 5 is arranged on one side, facing the ratchet 5, of
the energy storage handle 3. The energy storage handle 3 is rotated to drive the ratchet
5 to rotate through the latch 6. The anti-jamming structure which prevents the latch
6 and the ratchet 5 from being jammed is arranged between the latch 6 and the ratchet
5. The anti-jamming structure comprises an anti-jamming plate 8. The anti-jamming
plate is configured to separate the latch 6 from the ratchet 5 when the energy storage
handle 3 is in an initial state. According to the anti-jamming device for the energy
storage handle of the universal circuit breaker of the present invention, the anti-jamming
structure is arranged between the latch or the ratchet of the energy storage handle
to prevent the latch and the ratchet from being jammed. When the energy storage handle
is in an initial state or reset to the position of the initial state, the latch and
the ratchet are separated by the anti-jamming structure to promote the use handfeel
of the customer. As shown in Figs. 5 and 6, under normal conditions, when the energy
storage handle 3 is in the initial state, the ratchet 5 and the latch 6 are not buckled
with each other, the linkage protrusion 62 of the latch 6 is pressed over one side
of a meshing tooth 51 of the ratchet 5.
[0021] As shown in Figs. 7 and 8, under normal conditions, when the energy storage handle
3 manually stores energy, it is necessary for the energy storage handle 3 to rotate
by a certain angle first till the linkage protrusion 62 of the latch 6 is buckled
with the other side of the meshing tooth of the ratchet 5.
[0022] As shown in Figs. 9 and 10, when the operating mechanism releases energy, the V-shaped
rotating shaft and the ratchet 5 are over-steered, and the ratchet 5 and the latch
6 are buckled with each other, thereby causing jamming. In this case, the user needs
a large external force to store energy for the operating mechanism, thereby affecting
the user experience.
[0023] As shown in Fig. 15, the anti-jamming structure comprises an anti-jamming plate 8
which is sheathed on the V-shaped rotating shaft 4 and located below the ratchet 5.
The anti-jamming plate 8 is mounted between a side plate and the ratchet of the operating
mechanism. When the operating mechanism is located in the position of the initial
state, the latch 6 and the ratchet 5 are separated by the anti-jamming plate 8. In
a preferred embodiment, the anti-jamming plate 8 is convexly provided with a flange
801 for separating the ratchet 5 from the latch 6. When the operating mechanism releases
energy, the ratchet 5 resets and rotates to the position of the initial state, and
the latch 6 is laid on the flange 801 to prevent the latch 6 and the ratchet 5 from
being jammed. The latch 6 and the ratchet 5 are separated by the flange 801 to prevent
the latch 6 and the ratchet 5 from being jammed. Of course, the latch 6 may also be
jacked up with another structure, such as a laterally inclined protrusion; or, the
latch 6 is provided with a matching arm or other structure, which cooperates with
the anti-jamming plate 8.
[0024] As shown in Figs. 13 and 14, when the operating mechanism is located in the initial
state or releases energy and resets to the position of the initial state, the linkage
protrusion 62 of the latch 6 is rotated to the upper side of the flange 801 to prevent
the latch 6 and the ratchet 5 from being jammed.
[0025] As shown in Fig. 15, specifically, the anti-jamming plate 8 comprises an annular
plate 81 and a strip-shaped extension plate 82 which extends toward one side of the
annular plate 81.A circular mounting hole 802 is formed in the middle of the annular
plate 81. The anti-j amming plate 8 is sheathed on the V-shaped rotating shaft 4 through
the circular mounting hole 802. The end part of the extension plate 82 is provided
with a screw fixing hole 803 for fixing the anti-jamming plate 8. The anti-jamming
plate 8 is fixed to one sidewall of the operating mechanism 2 by screwing a screw
to the screw fixing hole 803. The flange 801 is arranged at the junction between the
annular plate 81 and the extension plate 82. The anti-jamming plate 8 is simple in
structure, and easy to machine. The annular plate 81 is sheathed on the V-shaped rotating
shaft 4 through the middle circular mounting hole 802. The extension plate 82 is fastened
with a screw, and is thus stable and reliable in structure.
[0026] As shown in Figs. 2, the anti-jamming device for the energy storage handle of the
universal circuit breaker further comprises a reset spring 61 which is mounted on
the energy storage handle 3 and used for resetting the latch 6. One end of the latch
6 is pivotally connected to the energy storage handle 3. The other end of the latch
6 is connected to one end of the reset spring 61. The other end of the reset spring
61 is fixed to the energy storage handle 3. The latch 6 is provided with a linkage
protrusion 62, which is in linkage fit with the ratchet 5, in a manner of protruding
toward one side. The other end of the latch 6 is provided with a spring hook 63 which
is connected to the reset spring 61 and bent upwards. The reset spring 61 is used
for resetting the latch 6.
[0027] As shown in Figs. 2-4, specifically, the linkage protrusion 62 is a pointed protrusion.
The end part of a meshing tooth 51 of the ratchet 5, which contacts the linkage protrusion
62, is a pointed protrusion. Both the linkage projection 62 and the meshing tooth
51 are provided as pointed protrusions, and are thus matched more tightly and stably.
The flange 801 is in a shape of a one-tenth arc. Two ends of the flange 801 are provided
with slopes 805 which are inclined downwards. The slopes 805 allow the latch 6 to
more easily rotate over the flange 801.
[0028] As shown in Figs. 16-22, the operating mechanism 2 comprises a V-shaped rotating
shaft 4 for storing energy. One end of the V-shaped rotating shaft 4 extends out of
one sidewall of the operating mechanism 2 and is in linkage fit with an aluminum disk
72 of the electromotor 7. The sidewall of one end of the V-shaped rotating shaft 4
is provided with a first V-shaped groove 401 which is fitted to the aluminum disk
72. The aluminum disk 72 is provided with a reinforced connecting member having a
higher hardness than the aluminum disk 72, and is in cooperative connection to the
V-shaped rotating shaft 4 by the reinforced connecting member. According to an electromotor
transmission mechanism of the universal circuit breaker of the present invention,
the aluminum disk is provided with the reinforced connecting member having a higher
hardness than the aluminum disk, and is in cooperative connection to the reinforced
connecting member, such that the V-shaped rotating shaft undergoes a low wear and
is long in life, the integral performance of the circuit breaker is improved and the
cost is saved.
[0029] Specifically, the aluminum disk 72 is provided with an insertion hole 721 which is
fitted to one end of the V-shaped rotating shaft 4. The reinforced connecting member
is a wear preventing shaft 722 which is arranged on the sidewall of the insertion
hole 721, has a higher hardness than the aluminum disk 72 and is in limiting fit with
a first V-shaped groove 401. According to the electromotor transmission mechanism
of the universal circuit breaker of the present invention, the wear preventing shaft
which is in contact fit with the V-shaped rotating shaft is riveted in the insertion
hole of the aluminum disk of the electromotor, and the wear preventing shaft has a
higher hardness than the aluminum disk and has a high strength. The electric energy
storage causes low wear and long life, and improves the integral performance of the
circuit breaker.
[0030] As shown in Fig. 18, the electromotor 7 further comprises a motor 71 and an electromotor
mounting plate 73, wherein the motor 71 and the aluminum disk 72 are mounted on two
sides of the electromotor mounting plate 73 respectively.
[0031] Specifically, the wear preventing shaft 722 penetrates through the aluminum disk
72. The wear preventing shaft is more stable in structure. The wear preventing shaft
722 is in surface contact with the sidewall of the insertion hole 721. Since the wear
preventing shaft 722 is in surface contact with the insertion hole 721, the insertion
hole of the aluminum disk during electric energy storage undergoes a small intensity
of pressure and small wear and is thus long in life. The wear preventing shaft 722
is a cylindrical shaft or a square shaft, and apparently, other shapes may be employed.
[0032] As shown in Fig. 21, the aluminum disk 72 comprises a disc-shaped disk surface 7201.
The middle portion of the disk surface 7201 is recessed to form a first groove 7202.
A first boss 7203 is convexly arranged in the middle of the first groove 7201. A second
boss 7204 which has a diameter smaller than the first boss 7203 is convexly arranged
in the middle of the first boss 7203. An insertion hole 721 is formed in the middle
of the second boss 7204. The integral structure of the aluminum disk 72 is reasonable
in design.
[0033] As shown in Fig. 19, the sidewall of the other end of the V-shaped rotating shaft
4 is provided with a second V-shaped groove 402. The other sidewall of the operating
mechanism 2 is provided with a fastener 411 which is fitted to the second V-shaped
groove. The other end of the V-shaped rotating shaft 4 extends out of the other sidewall
of the operating mechanism 2 and is then fixed by the fastener 411. The first V-shaped
groove 401 and the second V-shaped groove 402 are respectively formed in two ends
of the V-shaped rotating shaft 4, accompanied with simple structure and convenience
in machining.
[0034] As shown in Fig. 23, in order to reduce the wear between the V-shaped rotating shaft
4 and the insertion hole 721, it is also possible to adopt the following manner: the
reinforced connecting member is a splicing boss 74 which is arranged above the second
boss 7204 of the aluminum disk and made of a splicing material having higher hardness,
an insertion hole 721 is formed in the middle of the splicing boss 74, and the splicing
boss 74 and the second boss 7204 may be riveted fixedly by adopting a rivet 7401.
In this case, the cost is relatively high, but the wear of the insertion hole of the
aluminum disk is smaller than that of the above embodiment.
[0035] As shown in Figs. 24-27, a plurality of static contacts 101 corresponding to conductive
systems of various poles is mounted on the circuit breaker body 1. A plurality of
moving contacts 102 corresponding to the static contacts 11 of the conductive systems
of various poles is mounted on the circuit breaker body 1. When the circuit breaker
body 1 is switched on or switched off, a large rotating shaft 21 of the operating
mechanism 2 drives the moving contacts 102 to act to be in contact and separated from
the static contacts 101, such that a main circuit is turned on or turned off. One
end of each moving contact 102 is pivotally connected to the circuit breaker body
1. A cantilever 211 which corresponds to the conductive system in each pole is mounted
on the large rotating shaft 21. A connecting rod 212 which is in linkage with the
cantilever 211 is mounted on one side, which faces the cantilever 211, of the moving
contact 102. One end of the connecting rod 212 is connected to the moving contact
102. The other end of the connecting rod 212 is pivotally connected to the end part
of the cantilever 211. A first connection portion 2120 which is connected to the moving
contact 102 is arranged at one end of the connecting rod 212, and a second connection
portion 2121 which is connected to the cantilever 211 is arranged at the other end
of the connecting rod 212. A distance between the first connecting portion 2120 and
the second connecting portion 2121 of the corresponding connecting rod 212 of the
circuit breaker away from the corresponding phase (N phase in drawings) of the operating
mechanism 2 of the circuit breaker is greater than a distance between a first connecting
portion 2120 and the second connecting portion 2121 of the other corresponding connecting
rod 212.
[0036] According to the universal circuit breaker of the present invention, since the distance
between the first connecting portion and the second connecting portion of the corresponding
connecting rod of the circuit breaker away from the operating mechanism of the circuit
breaker is greater than the distance between the first connecting portion and the
second connecting portion of the other corresponding connecting rod, the overtravel
distance of the corresponding phase near the operating mechanism of the circuit breaker
is ensured, and the final pressure of the contacts is increased to maintain a reliable
contact fit of the contacts.
[0037] The universal circuit breaker of the present embodiment comprises a circuit breaker
A phase, a circuit breaker B phase, a circuit breaker C phase, and a circuit breaker
N phase. The operating mechanism 2 is arranged close to the circuit breaker B phase.
A distance between a first connecting portion 2120 and a second connecting portion
2121 of a connecting rod 212 of the circuit breaker N phase is greater than a distance
between a first connecting portion 2120 and a second connecting portion 2121 of a
connecting rod 212 of each of the circuit breaker A phase, the circuit breaker B phase,
and the circuit breaker C phase. That is, under the actual overtravel condition of
the circuit breaker, the N, A, B, and C phases are connected to the moving contacts
and the operating mechanism by using the connecting rods of different lengths, thereby
making up for the shortage of the overtravel of the other phases except the B phase.
For example, the operating mechanism 2 is arranged close to the circuit breaker B
phase. The distance between the first connecting portion 2120 and the second connecting
portion 2121 of the connecting rod 212 corresponding to the circuit breaker B phase
may be smallest which is greater than the distance between the first connecting portion
2120 and the second connecting portion 2121 of the connecting rod 212 corresponding
to each of the circuit breaker A phase and the circuit breaker C phase, and the distance
between the first connecting portion 2120 and the second connecting portion 2121 of
the connecting rod 212 corresponding to the circuit breaker N phase is largest. Of
course, the distances may be adjusted according to actual conditions. Alternately,
the distance between the first connecting portion 2120 and the second connecting portion
2121 of the connecting rod 212 corresponding to each of the circuit breaker A phase,
the circuit breaker B phase and the circuit breaker C phase is identical, but the
distance between the first connecting portion 21200 and the second connecting portion
2121 of the connecting rod 212 corresponding to the circuit breaker N is largest.
[0038] As shown in Figs. 24-26, the first connecting portion 2120 is a first through hole
formed in the end part of the connecting rod 212. The sidewall of the moving contact
102, which faces the connecting rod 212 is provided with a mounting groove 1021 which
is fitted to one end of the connecting rod 212. One end of the connecting rod 212
is mounted into the mounting groove 1021 through the first through hole and is pivotally
connected to the moving contact 102. The second connecting portion 2121 is a second
through hole formed in the other end of the connecting rod 212. One end of the cantilever
211 is provided with a cantilever mounting hole 2110 which is fitted to the second
through hole. Preferably, the distance between the first through hole and the second
through hole of the connecting rod 212 of the circuit breaker N phase is 34 mm. The
distance between the first through hole and the second through hole of each of the
circuit breaker A phase, the circuit breaker B phase, and the circuit breaker C phase
is 33.5 mm.
[0039] Specifically, as shown in Fig. 26, the connecting rod 212 comprises a connecting
rod insertion portion 212a that is fitted to the moving contact 102, and a cantilever
connecting portion 212b that is connected to one end of the connecting rod insertion
portion 212a and connected with the cantilever 211. The first connecting portion 2120
is arranged on the connecting rod insertion portion 212a, and the second connecting
portion 2121 is arranged on the cantilever connecting portion 212b. The connecting
rod insertion portion 212a is plate-shaped. The cantilever connecting portion 212b
is of a lateral U-shaped structure connected to one end of the connecting rod insertion
portion 212a. One side of two sidewalls of the U-shaped structure is simultaneously
connected to the connecting rod insertion portion 212a. An opening of a U-shaped notch
groove 2122 of the U-shaped structure faces one side of the connecting rod 212. The
cantilever 211 is provided with a cantilever mounting hole 2110 corresponding to the
second through hole. The connecting rod 212 further comprises a first pin shaft 215
which passes through the second through hole in one sidewall of the U-shaped structure,
the cantilever mounting hole 2110 and the second through hole in the other sidewall
of the U-shaped structure in sequence to connect the connecting rod 212 and the cantilever
211 together.
[0040] As shown in Fig. 27, the first pin shaft 215 comprises a pin shaft rod 2151 and a
pin shaft cap 2152 arranged at the end part of the pin shaft rod 2151. The sidewall,
which is close to the other end and surrounds the pin shaft rod 2151 is recessed to
form an annular groove 2153. During mounting, the pin shaft rod 2151 of the first
pin shaft 215 passes through the second through hole in one sidewall of the U-shaped
structure, the cantilever mounting hole 2110 and the second through hole in the other
sidewall of the U-shaped structure in sequence, such that the connecting rod 212,
the second through hole in the other sidewall of the U-shaped structure and the annular
groove 2153 are fixedly mounted. The pin shaft cap 2152 is buckled onto the outer
sidewall of one side of the U-shaped structure. Since the connecting rod 212 and the
cantilever 211 are mounted fixedly by adopting the first pin shaft 215, the mounting
is convenient and the structure is stable and reliable. The other end of the pin shaft
rod 2151 is provided with a chamfer 2155 for easy mounting, and the chamfer 2155 facilitates
the mounting of the first pin shaft 215.
[0041] As shown in Fig. 26, the moving contact 102 is provided with a limiting protrusion
1025 for limiting a movement stroke of the connecting rod 212, in a manner of protruding
toward one side of the cantilever 211. The limiting protrusion 1025 limits the movement
stroke of the connecting rod 212.
[0042] As shown in Figs. 24 and 26, one end of the moving contact 102 is pivotally connected
to a first conductive copper bar 118 of the circuit breaker, and a moving contact
point arranged at the other end of the moving contact 102 faces a static contact point
of the static contact 101, which is arranged toward the end part of a second conductive
copper bar 119. The moving contact 102 rotates, such that the static contact point
and the movable contact point are closed and the main circuit is turned on. The connecting
rod further comprises a fixing support 112 and a second pin shaft 113, wherein the
fixing support 112 is fixedly connected to the lower side of the end part of the first
conductive copper bar 118. A U-shaped groove 1121 is formed in one side of the fixing
support 112. The second pin shaft 113 passes through the U-shaped groove 1121 and
is pivotally connected to the other end of the movable contact 102. The moving contact
102 is mounted on the first conductive copper bar 118 through the fixing support 112
and the second pin shaft 113, such that the structure is simple and compact.
1. An anti-jamming device for an energy storage handle of a universal circuit breaker,
comprising a circuit breaker body (1), and an operating mechanism (2) mounted on one
side of the circuit breaker body (1); the energy storage handle (3) is mounted on
the outside wall of one side of the operating mechanism (2); the energy storage handle
(3) is rotated to manually store energy for the operating mechanism (2); the operating
mechanism (2) comprises a V-shaped rotating shaft (4), one end of the V-shaped rotating
shaft (4) extends out of one sidewall of the operating mechanism (2), and the other
end of the V-shaped rotating shaft (4) is sleeved with a ratchet (5) which is in linkage
with the energy storage handle (3); a latch (6) which is in linkage with the ratchet
(5) is arranged on one side, facing the ratchet (5), of the energy storage handle
(3); the energy storage handle (3) is rotated to drive the ratchet (5) to rotate through
the latch (6); wherein an anti-jamming structure which prevents the latch (6) and
the ratchet (5) from being jammed is arranged between the latch (6) and the ratchet
(5); characterized in that the anti-jamming structure comprises an anti-jamming plate (8); the anti-jamming
plate (8) is configured to separate the latch (6) from the ratchet (5) when the energy
storage handle (3) is in an initial state;
wherein the anti-jamming plate (8) is provided with a flange (801) which is used for
separating the ratchet (5) from the latch (6); when the operating mechanism releases
energy, the latch (6) is laid on the flange (801) to prevent the latch (6) and the
ratchet (5) from being jammed.
2. The anti-jamming device for the energy storage handle of the universal circuit breaker
according to claim 1, wherein the flange (801) is in a shape of a one-tenth arc; two
ends of the flange (801) are provided with slopes (805) which are inclined downwards.
3. The anti-jamming device for the energy storage handle of the universal circuit breaker
according to claim 1, wherein the anti-jamming plate (8) is sheathed on the V-shaped
rotating shaft (4) and located below the ratchet (5).
4. The anti-jamming device for the energy storage handle of the universal circuit breaker
according to any one of claims 1 to 3, wherein the anti-jamming plate (8) comprises
an annular plate (81) and a strip-shaped extension plate (82) extending toward one
side of the annular plate (81); a circular mounting hole (802) is formed in the middle
of the annular plate (81); the anti-jamming plate (8) is sheathed on the V-shaped
rotating shaft (4) through the circular mounting hole (802); the end part of the extension
plate (82) is provided with a screw fixing hole (803) for fixing the anti-jamming
plate (8); the anti-jamming plate (8) is fixed to one sidewall of the operating mechanism
(2) by screwing a screw to the screw fixing hole (803); the flange (801) is convexly
arranged at the junction between the annular plate (81) and the extension plate (82).
5. The anti-jamming device for the energy storage handle of the universal circuit breaker
according to claim 1, further comprising a reset spring (61) which is mounted on the
energy storage handle (3) and used for resetting the latch (6); one end of the latch
(6) is pivotally connected to the energy storage handle (3) ; the other end of the
latch (6) is connected to one end of the reset spring (61); the other end of the reset
spring (61) is fixed to the energy storage handle (3) ; the latch (6) is provided
with a linkage protrusion (62), which is in linkage fit with the ratchet (5), in a
manner of protruding toward one side; the other end of the latch (6) is provided with
a spring hook (63) which is connected to the reset spring (61) and bent upwards.
6. The anti-jamming device for the energy storage handle of the universal circuit breaker
according to claim 5, wherein the linkage protrusion (62) is a pointed protrusion;
the end part of meshing teeth (51) of the ratchet (5), which contacts the linkage
protrusion (62), is a pointed protrusion.
7. The anti-jamming device for the energy storage handle of the universal circuit breaker
according to claim 1, wherein a static contact (101) which corresponds to a conductive
system in each pole is mounted on the circuit breaker body (1); a moving contact (102)
which corresponds to the static contact (101) of the conductive system in each pole
is mounted on the circuit breaker body (1); when the circuit breaker is switched on
or switched off, a large rotating shaft (21) of the operating mechanism (2) drives
the moving contact (102) to act to be in contact and separated from the static contact
(101), such that a main circuit is turned on or turned off; one end of the moving
contact (102) is pivotally connected to the circuit breaker body (1); a cantilever
(211) which corresponds to the conductive system in each pole is mounted on the large
rotating shaft (21); a connecting rod (212) which is in linkage with the cantilever
(211) is mounted on one side, which faces the cantilever (211), of the moving contact
(102); one end of the connecting rod (212) is connected to the moving contact (102);
the other end of the connecting rod (212) is pivotally connected to the end part of
the cantilever (211); a first connecting rod portion (2120) which is connected to
the moving contact (102) is arranged at one end of the connecting rod (212), and a
second connecting portion (2121) which is connected to the cantilever (211) is arranged
at the other end of the connecting rod (212); a distance between the first connecting
portion (2120) and the second connecting portion (2121) of the corresponding connecting
rod (212) of the circuit breaker near the operating mechanism (2) of the circuit breaker
is greater than a distance between a first connecting portion (2120) and the second
connecting portion (2121) of the other corresponding connecting rod (212).
8. The anti-jamming device for the energy storage handle of the universal circuit breaker
according to claim 7, wherein the first connecting portion (2120) is a first through
hole formed in the end part of the connecting rod (212); the sidewall of the moving
contact (102), which faces the connecting rod (212) is provided with a mounting groove
(1021) which is fitted to one end of the connecting rod (212); one end of the connecting
rod (212) is mounted into the mounting groove (1021) through the first through hole
and is pivotally connected to the moving contact (102).
9. The anti-jamming device for the energy storage handle of the universal circuit breaker
according to claim 7, wherein the second connecting portion (2121) is a second through
hole formed in the other end of the connecting rod (212); one end of the cantilever
(211) is provided with a cantilever mounting hole (2110) which is in mounting fit
with the second through hole.
1. Anti-Blockier-Vorrichtung für einen Energiespeicherhandgriff eines Universaltstromkreisunterbrechers,
aufweisend einen Stromkreisunterbrecherkörper (1) und einen Betätigungsmechanismus
(2), der an einer Seite des Stromkreisunterbrecherkörpers (1) montiert ist, wobei
der Energiespeicherhandgriff (3) an der Außenseitenwand von einer Seite des Betätigungsmechanismus
(2) montiert ist, wobei der Energiespeicherhandgriff (3) gedreht wird, um manuell
Energie für den Betätigungsmechanismus (2) zu speichern, wobei der Betätigungsmechanismus
(2) eine V-geformte Drehwelle (4) aufweist, wobei ein Ende der V-geformten Drehwelle
(4) sich aus einer Seitenwand des Betätigungsmechanismus (2) herauserstreckt und wobei
auf das andere Ende der V-geformten Drehwelle (4) eine Ratsche (5) aufgesetzt ist,
die in Verbindung mit dem Energiespeicherhandgriff (3) steht, wobei ein Riegel (6),
der in Verbindung mit der Ratsche (5) steht, auf einer der Ratsche (5) zugewandten
Seite des Energiespeicherhandgriffs (3) angeordnet ist, wobei der Energiespeicherhandgriff
(3) gedreht wird, um die Ratsche (5) zum Drehen anzutreiben durch den Riegel (6),
wobei eine Anti-Blockier-Struktur, welche den Riegel (6) und die Ratsche (5) daran
hindert, blockiert zu werden, zwischen dem Riegel (6) und der Ratsche (5) angeordnet
ist, dadurch gekennzeichnet, dass die Anti-Blockier-Struktur eine Anti-Blockier-Platte (8) aufweist, wobei die Anti-Blockier-Platte
(8) eingerichtet ist, um den Riegel (6) von der Ratsche (5) zu trennen, wenn der Energiespeicherhandgriff
(3) in einem Anfangszustand ist,
wobei die Anti-Blockier-Platte (8) mit einem Flansch (801) bereitgestellt ist, der
verwendet ist zum Trennen der Ratsche (5) von dem Riegel (6), wobei, wenn der Betätigungsmechanismus
Energie freigibt, der Riegel (6) an dem Flansch (801) anliegt, um den Riegel (6) und
die Ratsche (5) daran zu hindern, blockiert zu werden.
2. Anti-Blockier-Vorrichtung für den Energiespeicherhandgriff des Universalstromkreisunterbrechers
gemäß Anspruch 1, wobei der Flansch (801) in einer Gestalt eines ein-Zehntel Bogens
ist, wobei zwei Enden des Flansches (801) mit Neigungen (805) bereitgestellt sind,
die nach unten geneigt sind.
3. Anti-Blockier-Vorrichtung für den Energiespeicherhandgriff des Universaltstromkreisunterbrechers
gemäß Anspruch 1, wobei die Anti-Blockier-Platte (8) auf der V-geformten Drehwelle
(4) abgestützt und unter der Ratsche (5) angeordnet ist.
4. Anti-Blockier-Vorrichtung für den Energiespeicherhandgriff des Universalstromkreisunterbrechers
gemäß irgendeinem der Ansprüche 1 bis 3, wobei die Anti-Blockier-Platte (8) eine ringförmige
Platte (81) und eine streifenförmige Verlängerungsplatte (82) aufweist, die sich gegen
eine Seite der ringförmigen Platte (81) erstreckt, wobei ein kreisförmiges Montageloch
(802) in der Mitte der ringförmigen Platte (81) ausgebildet ist, wobei die Anti-Blockier-Platte
(8) auf der V-geformten Drehwelle (4) abgestützt ist durch das kreisförmige Montageloch
(802), wobei ein Endabschnitt der Verlängerungsplatte (82) mit einem Schraubenfixierloch
(803) bereitgestellt ist zum Fixieren der Anti-Blockier-Platte (8), wobei die Anti-Blockier-Platte
(8) an einer Seitenwand des Betätigungsmechanismus (2) fixiert ist durch Schrauben
einer Schraube in das Schraubenfixierloch (803), wobei der Flansch (801) an der Verbindungsstelle
zwischen der ringförmigen Platte (81) und der Verlängerungsplatte (82) konvex angeordnet
ist.
5. Anti-Blockier-Vorrichtung für den Energiespeicherhandgriff des Universalstromkreisunterbrechers
gemäß Anspruch 1, ferner aufweisend eine Rückstellfeder (61), welche an dem Energiespeicherhandgriff
(3) montiert ist und verwendet ist zum Rückstellen des Riegels (6), wobei ein Ende
des Riegels (6) mit dem Energiespeicherhandgriff (3) schwenkverbunden ist, wobei das
andere Ende des Riegels (6) mit einem Ende der Rückstellfeder (61) schwenkverbunden
ist, wobei das andere Ende der Rückstellfeder (61) an dem Energiespeicherhandgriff
(3) fixiert ist, wobei der Riegel (6) mit einem Verbindungsvorsprung (62), welcher
in einem Verbindungssitz mit der Ratsche (5) ist, bereitgestellt ist in einer Weise
gegen eine Seite vorstehend, wobei das andere Ende des Riegels (6) mit einem Federhaken
(63) bereitgestellt ist, der mit der Rückstellfeder (61) verbunden und nach oben gebogen
ist.
6. Anti-Blockier-Vorrichtung für den Energiespeicherhandgriff des Universalstromkreisunterbrechers
gemäß Anspruch 5, wobei der Verbindungsvorsprung (62) ein spitz zulaufender Vorsprung
ist, wobei der Endabschnitt von kämmenden Zähnen (51) der Ratsche (5), welche der
Verbindungsvorsprung (62) kontaktiert, ein spitz zulaufender Vorsprung ist.
7. Anti-Blockier-Vorrichtung für den Energiespeicherhandgriff des Universalstromkreisunterbrechers
gemäß Anspruch 1, wobei ein statischer Kontakt (101), welcher zu einem leitenden System
in jedem Pol korrespondiert, an dem Stromkreisunterbrecherkörper (1) montiert ist,
wobei ein bewegbarer Kontakt (102), welcher zu dem statischen Kontakt (101) des leitenden
Systems in jedem Pol korrespondiert, an dem Stromkreisunterbrecher (1) montiert ist,
wobei, wenn der Stromkreisunterbrecher angeschaltet oder ausgeschaltet wird, eine
große Drehwelle (21) des Betätigungsmechanismus (2) den bewegbaren Kontakt (102) antreibt,
um tätig zu sein, um in Kontakt zu sein mit oder getrennt zu sein von dem statischen
Kontakt (101), sodass ein Hauptstromkreis angeschaltet oder ausgeschaltet wird, wobei
ein Ende des bewegbaren Kontakts (102) mit dem Stromkreisunterbrecherkörper (1) schwenkverbunden
ist, wobei ein Kragarm (211), welcher zu dem leitenden System in jedem Pol korrespondiert,
an der großen Drehwelle (21) montiert ist, wobei eine Verbindungsstange (212), welche
in Verbindung mit dem Kragarm (211) ist, an einer dem Kragarm (211) zugewandten Seite
des bewegbaren Kontakts (102) montiert ist, wobei ein Ende der Verbindungsstange (212)
mit dem bewegbaren Kontakt (102) verbunden ist, wobei das andere Ende der Verbindungsstange
(212) mit dem Endabschnitt des Kragarms (211) schwenkverbunden ist, wobei ein erster
Verbindungsstangenabschnitt (2120), welcher mit dem bewegbaren Kontakt (102) verbunden
ist, an einem Ende der Verbindungsstange (212) angeordnet ist und ein zweiter Verbindungsabschnitt
(2121), welcher mit dem Kragarm (211) verbunden ist, an dem anderen Ende der Verbindungsstange
(212) angeordnet ist, wobei ein Abstand zwischen dem ersten Verbindungsabschnitt (2120)
und dem zweiten Verbindungsabschnitt (2121) der korrespondierenden Verbindungsstange
(212) des Stromkreisunterbrechers nahe dem Betätigungsmechanismus (2) des Stromkreisunterbrechers
größer ist als ein Abstand zwischen dem ersten Verbindungsabschnitt (2120) und dem
zweiten Verbindungsabschnitt (2121) der anderen korrespondierenden Stange (212).
8. Anti-Blockier-Vorrichtung für den Energiespeicherhandgriff des Universalstromkreisunterbrechers
gemäß Anspruch 7, wobei der erste Verbindungsabschnitt (2120) ein erstes Durchgangsloch
ist, das im Endabschnitt der Verbindungsstange (212) ausgebildet ist, wobei die der
Verbindungsstange (212) zugewandte Seitenwand des bewegbaren Kontakts (102) mit einer
Montagenut (1021) bereitgestellt ist, welche auf ein Ende der Verbindungsstange (212)
gesetzt ist, wobei ein Ende der Verbindungsstange (212) in die Montagenut (1021) montiert
ist durch das erste Durchgangsloch und mit dem bewegbaren Kontakt (102) schwenkverbunden
ist.
9. Anti-Blockier-Vorrichtung für den Energiespeicherhandgriff des Universalstromkreisunterbrechers
gemäß Anspruch 7, wobei der zweite Verbindungsabschnitt (2121) ein zweites Durchgangsloch
ist, das im anderen Ende der Verbindungsstange (212) ausgebildet ist, wobei ein Ende
des Kragarms (211) mit einem Kragarmmontageloch (2110) bereitgestellt ist, welches
in einem Montagesitz mit dem zweiten Durchgangsloch ist.
1. Dispositif anti-coincement pour une poignée de stockage d'énergie d'un disjoncteur
universel, comprenant un corps de disjoncteur (1), et un mécanisme d'actionnement
(2) monté sur un côté du corps de disjoncteur (1) ; la poignée de stockage d'énergie
(3) est montée sur la paroi extérieure d'un côté du mécanisme d'actionnement (2) ;
la poignée de stockage d'énergie (3) est mise en rotation pour stocker manuellement
de l'énergie pour le mécanisme d'actionnement (2) ; le mécanisme d'actionnement (2)
comprend un arbre rotatif en forme de V (4), une extrémité de l'arbre rotatif en forme
de V (4) s'étend hors d'une paroi latérale du mécanisme d'actionnement (2), et l'autre
extrémité de l'arbre rotatif en forme de V (4) est emmanché avec une roue à rochet
(5) lié à la poignée de stockage d'énergie (3) ; un cliquet (6) qui est en liaison
avec la roue à rochet (5) est agencé sur un côté, faisant face à la roue à rochet
(5), de la poignée de stockage d'énergie (3) ; la poignée de stockage d'énergie (3)
est mise en rotation pour entraîner la roue à rochet (5) à tourner à travers le cliquet
(6) ; dans lequel une structure anti-coincement qui empêche le cliquet (6) et la roue
à rochet (5) d'être coincés est disposée entre le cliquet (6) et la roue à rochet
(5) ; caractérisé en ce que la structure anti-coincement comprend une plaque anti-coincement (8) ; la plaque
anti-coincement (8) est configurée pour séparer le cliquet (6) de la roue rochet (5)
lorsque la poignée de stockage d'énergie (3) est dans un état initial ;
dans lequel la plaque anti-coincement (8) est munie d'une bride (801) qui est utilisée
pour séparer la roue à rochet (5) du cliquet (6) ; lorsque le mécanisme d'actionnement
libère de l'énergie, le cliqué (6) est disposé sur la bride (801) pour empêcher le
cliquet (6) et la roue rochet (5) d'être coincés.
2. Dispositif anti-coincement pour la poignée de stockage d'énergie de disjoncteur universel
selon la revendication 1, dans lequel la bride (801) a une forme d'un dixième d'arc
; deux extrémités de la bride (801) sont pourvues de pentes (805) qui sont inclinées
vers le bas.
3. Dispositif anti-coincement pour la poignée de stockage d'énergie de disjoncteur universel
selon la revendication 1, dans lequel la plaque anti-coincement (8) est gainée sur
l'arbre rotatif en forme de V (4) et située en dessous de la roue à rochet (5).
4. Dispositif anti-coincement pour la poignée de stockage d'énergie de disjoncteur universel
selon l'une quelconque des revendications 1 à 3, dans lequel la plaque anti-coincement
(8) comprend une plaque annulaire (81) et une plaque d'extension en forme de bande
(82) s'étendant vers un côté de la plaque annulaire (81) ; un trou de montage circulaire
(802) est formé au milieu de la plaque annulaire (81) ; la plaque anti-coincement
(8) est gainée sur l'arbre rotatif en forme de V (4) à travers le trou de montage
circulaire (802) ; la partie d'extrémité de la plaque d'extension (82) est pourvue
d'un trou de fixation de vis (803) pour fixer la plaque anti-coincement (8) ; la plaque
anti-coincement (8) est fixée à une paroi latérale du mécanisme d'actionnement (2)
en vissant une vis dans le trou de fixation de vis (803) ; la bride (801) est agencée
de manière convexe à la jonction entre la plaque annulaire (81) et la plaque d'extension
(82).
5. Dispositif anti-coincement pour la poignée de stockage d'énergie de disjoncteur universel
selon la revendication 1, comprenant en outre un ressort de réinitialisation (61)
qui est monté sur la poignée de stockage d'énergie (3) et utilisé pour réinitialiser
le cliquet (6) ; une extrémité du cliquet (6) est connectée de manière pivotante à
la poignée de stockage d'énergie (3) ; l'autre extrémité du cliquet (6) est connectée
à une extrémité du ressort de réinitialisation (61) ; l'autre extrémité du ressort
de réinitialisation (61) est fixée à la poignée de stockage d'énergie (3) ; le cliquet
(6) est pourvu d'une saillie de liaison (62), qui est en montage de liaison avec le
roue à rochet (5), d'une manière faisant saillie vers un côté ; l'autre extrémité
du cliquet (6) est pourvue d'un crochet de ressort (63) qui est connecté au ressort
de réinitialisation (61) et plié vers le haut.
6. Dispositif anti-coincement pour la poignée de stockage d'énergie de disjoncteur universel
selon la revendication 5, dans lequel la saillie de liaison (62) est une saillie pointue
; la partie d'extrémité de dents d'engrènement (51) de la roue à rochet (5), qui vient
en contact avec la saillie de liaison (62), est une saillie pointue.
7. Dispositif anti-coincement pour la poignée de stockage d'énergie de disjoncteur universel
selon la revendication 1, dans lequel un contact statique (101) qui correspond à un
système conducteur dans chaque pôle est monté sur le corps de disjoncteur (1) ; un
contact mobile (102) qui correspond au contact statique (101) du système conducteur
dans chaque pôle est monté sur le corps de disjoncteur (1) ; lorsque le disjoncteur
est enclenché ou désenclenché, un grand arbre rotatif (21) du mécanisme d'actionnement
(2) entraîne le contact mobile (102) à agir pour être en contact avec et séparé du
contact statique (101), de telle sorte qu'un circuit principal est activé ou désactivé
; une extrémité du contact mobile (102) est connectée de manière pivotante au corps
de disjoncteur (1) ; un porte-à-faux (211) qui correspond au système conducteur dans
chaque pôle est monté sur le grand arbre rotatif (21) ; une tige de connexion (212)
qui est en liaison avec le porte-à-faux (211) est montée sur un côté, qui fait face
au porte-à-faux (211), du contact mobile (102) ; une extrémité de la tige de connexion
(212) est connectée au contact mobile (102) ; l'autre extrémité de la tige de connexion
(212) est connectée de manière pivotante à la partie d'extrémité du porte-à-faux (211)
; une première partie de tige de connexion (2120) qui est connectée au contact mobile
(102) est disposée à une extrémité de la tige de connexion (212), et une seconde partie
de connexion (2121) qui est connectée au porte-à-faux (211) est agencée à l'autre
extrémité de la tige de connexion (212) ; une distance entre la première partie de
connexion (2120) et la seconde partie de connexion (2121) de la tige de connexion
correspondante (212) du disjoncteur à proximité du mécanisme d'actionnement (2) du
disjoncteur est supérieure à une distance entre une première partie de connexion (2120)
et la seconde partie de connexion (2121) de l'autre tige de connexion correspondante
(212).
8. Dispositif anti-coincement pour la poignée de stockage d'énergie du disjoncteur universel
selon la revendication 7, dans lequel la première partie de connexion (2120) est un
premier trou traversant formé dans la partie d'extrémité de la tige de connexion (212)
; la paroi latérale du contact mobile (102), qui fait face à la tige de connexion
(212), est pourvue d'une rainure de montage (1021) qui est ajustée à une première
extrémité de la tige de connexion (212) ; une première extrémité de la tige de connexion
(212) est montée dans la rainure de montage (1021) à travers le premier trou traversant
et est connectée de manière pivotante au contact mobile (102).
9. Dispositif anti-coincement pour la poignée de stockage d'énergie du disjoncteur universel
selon la revendication 7, dans lequel la seconde partie de connexion (2121) est un
second trou traversant formé dans l'autre extrémité de la tige de connexion (212)
; une extrémité du porte-à-faux (211) est pourvue d'un trou de montage de porte-à-faux
(2110) qui est en ajustement de montage avec le second trou traversant.