TECHNICAL FIELD
[0001] The present disclosure relates to an electromagnetic relay, in particular to an electromagnetic
relay for preventing arc short circuit.
BACKGROUND
[0002] Electromagnetic relay is a kind of relay that uses electromagnetic force to drive
relative movement of mechanical parts to produce a predetermined response, and it
generally includes a magnetic circuit part, a movable spring part, a stationary spring
part, a base and a case. The magnetic circuit part includes an iron core, a bobbin
wound with enameled wires, an armature, a yoke, and the like. When the coil (i.e.
enameled wire) is energized, an electromagnetic force will be generated, and the armature
will be attracted and contact with the pole face at one end of the iron core, thereby
driving the movable contact of the movable spring part to contact with or separate
from the stationary contact of the stationary spring part; when the current in the
coil disappears, the electromagnetic force disappears, and the armature is reset and
separated from the pole face at one end of the iron core, so that the movable contact
of the movable spring part is separated from or contacted with the stationary contact
of the stationary spring part. Through the contact or separation of the movable contact
and the stationary contact, the purpose of switching on or switching off the circuit
is achieved.
[0003] Some electromagnetic relays in the related art are provided with a plurality of sets
of contacts, which can be applied to multi-phase circuits, such as three-phase alternating
current. The plurality of sets of contacts of this electromagnetic relay are usually
located in separate compartments, the compartment is provided with a lateral opening
and is covered by a case. However, due to a gap is existed between the partition plate
located between adjacent compartments and the case, when the electromagnetic relay
is used to switch multi-phase high currents (such as three-phase 500A short-circuit
current), the arc generated by the breaking of contacts in a compartment easily enters
the adjacent compartment, resulting in arc short circuit or even explosion.
SUMMARY
[0004] In view of the technical problems existing in the related art, the present disclosure
provides an electromagnetic relay for preventing arc short circuit, which, by improving
the structure, prevents arc short circuit caused by the arc generated by the breaking
of the contacts.
[0005] The technical solution adopted by the present disclosure to solve the technical problem
is: an electromagnetic relay for preventing arc short circuit incudes a base, a magnetic
circuit part, a contact part, an actuator and a first arc partition plate. The base
is provided with a first accommodating cavity, the first accommodating cavity is provided
with a plurality of partition plates to divide the first accommodating cavity into
a plurality of compartments distributed along a preset direction, a side of the first
accommodating cavity is provided with a first opening leading to each of the compartments.
The magnetic circuit part installed on the base and comprising an armature. The contact
part includes a plurality of contact units corresponding to the plurality of compartments
one-to-one, each of the plurality of contact units includes a movable spring part
and a stationary spring part, and the movable spring part and the stationary spring
part are installed in a corresponding compartment and configured to cooperate with
each other. The armature of the of the magnetic circuit part are cooperated with the
movable spring part of each of the contact units by the actuator. The first arc partition
plate is configured to close all or part of the first opening, and an inner side of
the first arc partition plate is provided with a plurality of first baffles distributed
along the preset direction, at least one first baffle is laterally inserted into each
compartment, and the first baffle is configured to adjacent to or abut against a partition
plate of the compartment to form at least two partition walls located between adjacent
compartments.
[0006] According to embodiments of the present disclosure, a side of the first accommodating
cavity is further provided with a second opening leading to each compartment, and
the second opening and the first opening are located at two opposite sides of the
first accommodating cavity, and the first openings and the second openings are distributed
in a direction perpendicular to the preset direction; the movable spring part is laterally
installed in a corresponding compartment from the first opening, and the stationary
spring part is laterally installed in the corresponding compartment from the second
opening; the electromagnetic relay further includes a second arc partition plate,
the second arc partition plate is configured to close all or part of the second opening,
and an inner side of the second arc partition plate is provided with a plurality of
second baffles distributed along the preset direction, at least one second baffle
is laterally inserted into each compartment, and the second baffle is configured to
adjacent to or abut against the baffle plate of the compartment to form at least two
arc partition walls located between adjacent compartments.
[0007] According to embodiments of the present disclosure, the first baffles of the first
arc partition plate are respectively laterally inserted into a first slot provided
in a corresponding compartment, among the plurality of second baffles of the second
arc partition plate, every two second baffles is in a group, and a second slot is
formed between the two second baffles of a same group, the second slot is inserted
and matched with the partition plate in a corresponding compartment.
[0008] According to embodiments of the present disclosure, the actuator is disposed along
the preset direction and fitted at the first opening, the first arc partition plate
is located below the actuator; the first opening is provided with a first arc blocking
structure at a position above the actuator to limit an arc generated by a breaking
of the movable spring part and the stationary spring part from entering an adjacent
compartment from a space above the actuator.
[0009] According to embodiments of the present disclosure, the electromagnetic relay further
includes a case with an opening at a bottom, the case is connected with the base,
and is configured to accommodate the magnetic circuit part, the contact part, the
actuator and the first arc partition plate in a casing cavity of the case; the first
arc blocking structure includes a plurality of third baffles, and the plurality of
third baffles are disposed on an inner side of the case facing the first opening and
are arranged at intervals along the preset direction, a top of each of the third baffles
is connected to an inner top surface of the case, and at least one third baffle is
inserted downward into one compartment from a top of the compartment, and the third
baffle is configured to adjacent to or abut against a part of the partition plate
of the compartment above the actuator to form at least two arc partition walls located
between top portions of adjacent compartments.
[0010] According to embodiments of the present disclosure, the portions of the plurality
of partition plates close to the first opening are respectively provided with a first
notch for avoiding the actuator; at least one side of each partition plate is provided
with a second arc blocking structure, so as to restrict the arc generated by the breaking
of the movable spring part and the stationary spring part from entering the adjacent
compartment from a gap between the first notch and the actuator.
[0011] According to embodiments of the present disclosure, the second arc blocking structure
includes an upper baffle and a lower baffle arranged on a same side of the compartment,
the upper baffle is fitted above the actuator, and the lower baffle is fitted below
the actuator, one end of the upper baffle and one end of the lower baffle away from
the partition plate are respectively inclined toward a direction close to the actuator;
the second arc blocking structure further includes a side baffle, the side baffle
is located inside the actuator, and an upper end of the side baffle is connected to
the upper baffle, and a lower end of the side baffle is connected to the lower baffle.
[0012] According to embodiments of the present disclosure, a plurality of arc blocking portions
are provided on a top of the inner side of the first arc partition plate, and bottom
ends of the arc blocking portions are respectively connected with the top ends of
the plurality of first baffles of the first arc partition plate one by one, top ends
of the plurality of arc blocking portions are configured to extend toward a direction
close to the actuator; a longitudinal section of the arc blocking portion in the preset
direction is an inverted T-shape.
[0013] According to embodiments of the present disclosure, the inner side of the second
arc partition plate is provided with a plurality of fourth baffles distributed along
the preset direction at intervals, at least one fourth baffle is laterally inserted
into one compartment.
[0014] According to embodiments of the present disclosure, the base is further provided
with a second accommodating cavity of which upper end is open; the magnetic circuit
part includes a coil assembly and the armature, the coil assembly is horizontally
disposed in the second accommodating cavity, the armature is located outside the second
accommodating cavity and is disposed at one end of the base in the preset direction;
the first accommodating cavity and the second accommodating cavity are separated in
a direction perpendicular to the preset direction, and the second opening is located
below the second accommodating cavity.
[0015] According to embodiments of the present disclosure, the movable spring part includes
a movable spring lead-out pin, a rigid spring, a flexible connector and a reaction
force spring, the movable spring lead-out pin is laterally inserted into the base,
a top of the rigid spring is rotatably connected with a top of the movable spring
lead-out pin, the flexible connector is connected between the top of the rigid spring
and the top of the movable spring lead-out pin; a movable contact is provided on a
side of a bottom of the rigid spring facing away from the movable spring lead-out
pin; the reaction force spring is located between the movable spring lead-out pin
and the rigid spring, and a bottom of the reaction force spring is fixedly connected
with the rigid spring, there is a preset distance between a top of the reaction force
spring and the rigid spring; the actuator is provided with a plurality of slots distributed
along the preset direction and corresponding to the movable spring part one-to-one,
the rigid spring and the reaction force spring of the movable spring part are respectively
snapped into corresponding slots.
[0016] According to embodiments of the present disclosure, the electromagnetic relay further
includes an auxiliary movable spring provided with an auxiliary movable contact and
an auxiliary stationary spring provided with an auxiliary stationary contact, the
auxiliary movable spring and the auxiliary stationary spring are respectively configured
to insert into the base and are located at a side of the base where the armature is
located; one end of the actuator facing the armature is provided with a driving portion,
and the driving portion is configured to cooperate with the auxiliary movable spring
to drive the auxiliary movable spring to move.
[0017] Compared with the related art, the electromagnetic relay of the embodiments of the
present disclosure has the following beneficial effects:
- 1. The electromagnetic relay of the present disclosure includes a first arc partition
plate, the first arc partition plate is configured to close all or part of the first
opening, and the inner side of the first arc partition plate is provided with a plurality
of first baffles distributed along the preset direction, at least one first baffle
is laterally inserted into each compartment, and the first baffle adjacent to or abuts
against the partition plate of the compartment to form at least two partition walls
located between adjacent compartments, so that the electromagnetic relay of the present
disclosure can prevent the arc generated by the breaking of the movable spring part
and the stationary spring part from escaping from the first opening to the adjacent
compartment to cause an arc short circuit. In particular, the formed at least two
arc partition walls complement each other, the arc isolation effect is good, and the
requirements for the machining accuracy of the partition plate, the first arc partition
plate and the first baffle are low.
- 2. A side of the first accommodating cavity is further provided with a second opening,
the movable spring part and the stationary spring part can be installed separately
from the opposite sides of the base to ensure that the lead-out pin of the movable
spring part and the lead-out pin of the stationary spring part have sufficient creepage
distance in a limited space to meet the use requirements. At the same time, the electromagnetic
relay of the present disclosure further includes a second arc partition plate, which
can prevent the arc generated by the breaking of the movable spring part and the stationary
spring part from escaping from the second opening to the adjacent compartment to cause
an arc short circuit, and the relative sealing of each compartment can be ensured.
- 3. The arrangement of the actuator being disposed along the preset direction and fitted
at the first opening, not only can the arrangement make the installation of the actuator
easier, but also enables the force point between the actuator and the movable spring
part and the force point between the actuator and the armature to be located on or
substantially on the same straight line, the actuator is not easily deformed during
the working process, so as to ensure that the service life of the entire electromagnetic
relay will not be reduced due to the quality problem of the actuator. At the same
time, the first opening is provided with a first arc blocking structure at the position
above the actuator to limit the arc generated by the breaking of the movable spring
part and the stationary spring part from entering the adjacent compartment from the
space above the actuator, so as to ensure the relative sealing of each compartment
under the external installation of the actuator.
- 4. The first arc blocking structure includes a plurality of third baffles, and the
plurality of third baffles are disposed on the inner side of the case facing the first
opening, and are arranged at intervals along the preset direction, the top of each
third baffle is respectively connected to the inner top surface of the case, and at
least one third baffle is inserted downward into each compartment from the top of
the compartment, and the third baffle is adjacent to or abuts against the part of
the partition plate of the compartment above the actuator to form at least two arc
partition walls located between the top portions of adjacent compartments, not only
can the third baffle be used to effectively seal the gap between the part of the partition
plate above the actuator and the case, but also the electromagnetic relay of the present
disclosure can be assembled with one component less, thereby simplifying assembly
steps.
- 5. At least one side of the partition plate is provided with a second arc blocking
structure, so as to restrict the arc generated by the breaking of the movable spring
part and the stationary spring part from entering the adjacent compartment from the
gap between the first notch and the actuator, so as to further improve the arc isolation
performance of the electromagnetic relay of the present disclosure. A plurality of
arc blocking portions are provided on the top of the inner side of the first arc partition
plate, which can be further prevent the arc from entering the adjacent compartment
from the gap between the first notch and the actuator, thereby further improving the
arc isolation performance of the electromagnetic relay of the present disclosure.
[0018] The present disclosure will be further described in detail below with reference to
the accompanying drawings and embodiments. However, the electromagnetic relay for
preventing arc short circuit of the present disclosure is not limited to the embodiments.
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
FIG 1 is an exploded schematic diagram of the electromagnetic relay according to the
first embodiment of the present disclosure.
FIG. 2 is a first schematic perspective diagram showing a configuration of a base
(showing a first opening) according to the first embodiment of the present disclosure.
FIG. 3 is a second schematic perspective diagram showing a configuration of a base
(showing a second opening) according to the first embodiment of the present disclosure.
FIG. 4 is a first schematic perspective diagram showing a configuration of a first
arc partition plate (showing the inner side) according to the first embodiment of
the present disclosure.
FIG. 5 is a second schematic perspective diagram showing a configuration of a first
arc partition plate (showing the outer side) according to the first embodiment of
the present disclosure.
FIG. 6 is a first schematic perspective diagram showing a configuration of a second
arc partition plate (showing the inner side) according to the first embodiment of
the present disclosure.
FIG. 7 is a second schematic perspective diagram showing a configuration of a second
arc partition plate (showing the outer side) according to the first embodiment of
the present disclosure.
FIG. 8 is a schematic perspective diagram showing a configuration of a case (showing
the third baffle) according to the first embodiment of the present disclosure.
FIG. 9 is a schematic perspective diagram showing a configuration of the base after
being installed with a magnetic circuit part and a contact part according to the first
embodiment of the present disclosure.
FIG. 10 is a schematic perspective diagram showing a configuration of the base after
being installed with a magnetic circuit part, a contact part and an actuator according
to the first embodiment of the present disclosure.
FIG. 11 is a schematic perspective diagram showing a configuration of the base after
being installed with the first partition plate and the like (showing the front side)
according to the first embodiment of the present disclosure.
FIG. 12 is a schematic perspective diagram showing a configuration of the base after
being installed with other partition plate and the like (showing the back side) according
to the first embodiment of the present disclosure.
FIG. 13 is a schematic perspective diagram showing a configuration of the base after
being installed with the two partition plates and the like according to the first
embodiment of the present disclosure.
FIG. 14 is a top view of the base after being installed with the two partition plates
and the like according to the first embodiment of the present disclosure.
FIG. 15 is a side view of the base after being installed with the two partition plates
and the like according to the first embodiment of the present disclosure.
FIG. 16 is a schematic perspective diagram showing a configuration of the electromagnetic
relay according to the first embodiment of the present disclosure.
FIG. 17 is first cross-sectional view of the electromagnetic relay according to the
first embodiment of the present disclosure.
FIG. 18 is second cross-sectional view of the electromagnetic relay according to the
first embodiment of the present disclosure.
FIG. 19 is third cross-sectional view of the electromagnetic relay according to the
first embodiment of the present disclosure.
FIG. 20 is fourth cross-sectional view of the electromagnetic relay according to the
first embodiment of the present disclosure.
FIG. 21 is a schematic perspective diagram showing a configuration of a second arc
partition plate according to the second embodiment of the present disclosure.
FIG. 22 is a cross-sectional view of the electromagnetic relay according to the second
embodiment of the present disclosure.
DETAILED DESCRIPTION
First embodiment
[0020] Please refer to FIGS. 1 to 20, an electromagnetic relay for preventing arc short
circuit of the present disclosure includes a case 1 with an opening at the bottom,
a base 2, a magnetic circuit part 3, a contact part and an actuator 4, and the magnetic
circuit part 3 is horizontally installed on the base 2; the base 2 is provided with
a first accommodating cavity 21 for accommodating the contact part, the first accommodating
cavity 21 is provided with a plurality of partition plates 211 to divide the first
accommodating cavity 21 into a plurality of compartments 212 distributed along a preset
direction D1, a side of the first accommodating cavity 21 is provided with a first
opening 213 leading to each compartment 212; the contact part includes a plurality
of contact units corresponding to the plurality of compartments 212 one-to-one, each
contact unit includes a movable spring part 5 and a stationary spring part 6, and
the movable spring part 5 and the stationary spring part 6 are installed in a corresponding
compartment 212 and configured to cooperate with each other; the armature 34 of the
magnetic circuit part 3 cooperates with the movable spring part 5 of each contact
unit by the actuator 4. The electromagnetic relay of the present disclosure further
includes a first arc partition plate 8, the first arc partition plate 8 closes all
or part of the first opening 213, and the inner side of the first arc partition plate
8 is provided with a plurality of first baffles 81 distributed along the preset direction
D1, and each of the first baffles 81 is vertical. At least one first baffle 81 is
laterally inserted into each compartment 212, and the first baffle 81 is adjacent
to or abuts against the partition plate 211 of the compartment 212 to form at least
two partition walls located between adjacent compartments; the bottom end of the case
1 is connected to the base 2 and accommodates the magnetic circuit part 3, the contact
part, the actuator 4 and the first arc partition plate 8 in its casing cavity. The
preset direction D1 is specifically the length direction of the base 2, but is not
limited thereto. In other embodiments, the preset direction D1 is the width direction
of the base 2. The magnetic circuit part 3 is lying on the base 2 along the preset
direction D1. The inner side of the first arc partition plate 8 refers to a side surface
of the first arc partition plate 8 facing the inside of the first accommodating cavity
21.
[0021] In the embodiment, a side of the first accommodating cavity 21 is further provided
with a second opening 215 leading to each compartment 212, and the second opening
215 and the first opening 213 are located at two opposite sides of the first accommodating
cavity 21, and the first openings 213 and the second openings 215 are distributed
in a direction perpendicular to the preset direction D1. The movable spring part 5
is laterally installed in the corresponding compartment 212 from the first opening
213, and the stationary spring part 6 is laterally installed in the corresponding
compartment 212 from the second opening 215. In this way, it is ensured that the lead-out
pin of the movable spring part 5 located under the base 2 and the lead-out pin of
the stationary spring part 6 located under the base 2 are far away from each other,
so as to ensure that the clearance between the both meets the requirements for use.
The electromagnetic relay of the present disclosure further includes a second arc
partition plate 9, the second arc partition plate 9 closes the second opening 215,
and the inner side of the second arc partition plate 9 is provided with a plurality
of second baffles 91 distributed along the preset direction D1, at least one second
baffle 91 is laterally inserted into each compartment 212, and the second baffle 91
is adjacent to or abuts against the partition plate 211 of the compartment 212 to
form at least two arc partition walls located between adjacent compartments 212. The
second arc partition plate 9 is located in the case 1, and the inner side of the second
arc partition plate 9 refers to a side surface of the second arc partition plate 9
facing the inside of the first accommodating cavity 21. In other embodiments, the
electromagnetic relay of the present disclosure is not provided with the second opening
215, and the movable spring part 5 and the stationary spring part 6 are both installed
in the corresponding compartment 212 from the first opening 213.
[0022] In the embodiment, as shown in FIG. 2, the first baffles 81 of the first arc partition
plate 8 are respectively laterally inserted into the first slot 214 provided in the
corresponding compartment 212, as shown in FIG. 6, among the plurality of second baffles
91 of the second arc partition plate 9, every two second baffles 91 is in a group,
and a second slot 92 is formed between the two second baffles 91 of the same group,
the second slots 92 are inserted and matched with the partition plates 211 in the
corresponding compartments. In this way, the first arc partition plate 8 and the second
arc partition plate 9 can be pre-positioned when they are inserted laterally. The
periphery or part of the periphery of the first arc partition plate 8 and the second
arc partition plate 9 can be further fixed with the base 2 by dispensing glue. In
addition, a first sealing rib 83 may be provided on all or part of the periphery of
the inner side of the first arc partition plate 8, and a second sealing rib 93 may
be provided on all or part of the periphery of the inner side of the second arc partition
plate 9, so that the stability of the first arc partition plate 8 and the second arc
partition plate 9 can be ensured, and the leakage of the arc can be further avoided.
[0023] In the embodiment, as shown in FIG. 1 and FIG. 10, the actuator 4 is in an arrangement
that the actuator 4 is disposed along the preset direction D1 and fitted at the first
opening 213, not only can the arrangement of the actuator 4 make the installation
of the actuator 4 easier, but also enables the force point between the actuator 4
and the movable spring part 5 and the force point between the actuator 4 and the armature
34 to be located on or substantially on the same straight line, the actuator 4 is
not easily deformed during the working process, so as to ensure that the service life
of the entire electromagnetic relay will not be reduced due to the quality problem
of the actuator 4. Specifically, as shown in FIG. 11, the actuator 4 is approximately
located in the middle of the first opening 213 in the up-down direction, and the first
arc partition plate 8 is located below the actuator 4. Therefore, the first arc partition
plate 8 closes the lower portion of the first opening 213, as shown in FIG. 13, and
the second arc partition plate 9 closes the entire second opening 215. The first opening
213 is provided with a first arc blocking structure at the position above the actuator
4 to limit the arc generated by the breaking of the movable spring part 5 and the
stationary spring part 6 from entering the adjacent compartment 212 from the space
above the actuator 4. In other embodiments, the actuator is fitted at the inner side
of each movable spring part 5, or the actuator 4 is located inside the first arc partition
plate 8, in this case, the first arc partition plate 8 can be further enlarged to
close the first opening 213, so that the first arc blocking structure can be eliminated.
[0024] In the embodiment, as shown in FIG. 8, the first arc blocking structure includes
a plurality of third baffles 11, and the plurality of third baffles 11 are disposed
on the inner side of the case 1 facing the first opening 213, and are arranged at
intervals along the preset direction D1, the top of each third baffle 11 is respectively
connected to the inner top surface of the case 1, and at least one third baffle 11
is inserted downward into each compartment 212 from the top of the compartment 212,
and the third baffle 11 is adjacent to or abuts against the part of the partition
plate 211 of the compartment 212 above the actuator 4 to form at least two arc partition
walls located between the top portions of adjacent compartments 212. As shown in FIG.
2, the plurality of third baffles 11 are respectively inserted downward into the third
slots 217 provided in the upper portions of the corresponding compartments 212. Therefore,
the top wall of each compartment 212 is respectively provided with a second notch
216 to avoid the third baffle 11 when it is inserted downward. In other embodiments,
the first arc blocking structure and the case 1 are separate components, and the first
arc blocking structure includes a third arc partition plate, a plurality of third
baffles are provided on the inner side of the third arc partition plate 11, and the
third arc partition plate closes the portion of the first opening 213 above the actuator
4.
[0025] In the embodiment, as shown in FIG. 2, the portions of the plurality of partition
plates 211 close to the first opening 213 are respectively provided with a first notch
2111 for avoiding the actuator 4. At least one side of each partition plate 211 is
provided with a second arc blocking structure, so as to restrict the arc generated
by the breaking of the movable spring part 5 and the stationary spring part 6 from
entering the adjacent compartment 212 from the gap between the first notch 2111 and
the actuator 4.
[0026] In the embodiment, as shown in FIG. 2, the second arc blocking structure includes
an upper baffle 2112 and a lower baffle 2113 arranged on the same side of the compartment
212, the upper baffle 2112 is approximately Z-shaped and fits above the actuator 4,
and the lower baffle 2113 is inclined and fits below the actuator 4, as shown in FIG.
2 and FIG. 15, the upper baffle 2112 and the lower baffle 2113 are configured to extend
obliquely from the partition plate 211 in the direction close to the actuator 4. One
end of the upper baffle 2112 and one end of the lower baffle 2113 away from the first
opening 213 are respectively connected to the inner side of the compartment 212. The
second arc blocking structure further includes a side baffle 2114, the side baffle
2114 is located inside the actuator 4, and the upper end of the side baffle 2114 is
connected to the upper baffle 2112, and the lower end of the side baffle 2114 is connected
to the lower baffle 2113; one end of the side baffle 2114 facing away from the actuator
4 is respectively connected to the inner side of the compartment 212. The cross section
of the actuator 4 is in a shape of a horizontal T. As shown in FIG. 17, the upper
baffle 2112 and the lower baffle 2113 are respectively located at the upper and lower
sides of the position corresponding to the horizontal portion of the horizontal T
shape of the actuator 4.
[0027] In the embodiment, as shown in FIG. 4, a plurality of arc blocking portions 82 are
provided on the top of the inner side of the first arc partition plate 8, and the
bottom ends of the arc blocking portions 82 are respectively connected with the top
ends of the plurality of first baffles 81 of the first arc partition plate 8 one by
one, the top ends of the plurality of arc blocking portions 82 extend toward the direction
close to the actuator 4, and are located below the lower baffle 2113; the longitudinal
section of the arc blocking portion 82 in the preset direction D1 is an inverted T-shape.
[0028] In the embodiment, as shown in FIG. 3, the base 2 is further provided with a second
accommodating cavity 22 of which upper end is open, as shown in FIG. 13, the magnetic
circuit part 3 includes a coil assembly and the armature 34, the coil assembly is
horizontally disposed in the second accommodating cavity 22, the armature 34 is located
outside the second accommodating cavity 22, and is disposed at one end of the base
2 in the preset direction D1; the first accommodating cavity 21 and the second accommodating
cavity 22 are separated in a direction perpendicular to the preset direction D1 (i.e.,
the width direction of the base 2 ), and the second opening 215 is located below the
second accommodating cavity 22.
[0029] In the embodiment, as shown in FIGS. 13 to 14 and FIG. 17, the coil assembly of the
magnetic circuit part 3 includes a bobbin31, an iron core 35, an enameled wire 32,
and a yoke 33, and the iron core 35 is inserted into the bobbin 31, and two ends of
the iron core 35 are exposed, the enameled wire 32 is wound outside the bobbin 31,
and the yoke 33 is L-shaped and includes a first yoke portion 331 and a second yoke
portion 332. The first yoke portion 331 is fixedly connected to the end of the iron
core 35 away from the armature 34 (or the first yoke portion 331 and the iron core
35 can also be integrally formed), and the second yoke portion 332 is fitted at a
side of the bobbin 31 after the enameled wire 32 is wound. The armature 34 is specifically
limited at the knife edge of the second yoke portion 332 of the yoke 33 by the return
spring 10, the knife edge is a notch at the end of the second yoke portion 332 away
from the first yoke portion 331 (not shown in the figure), and the notch is used to
insert the armature 34. The knife edge of the yoke 33 is a well-known technical term
in the art, and will not be repeated here.
[0030] The cross-section of the armature 34 is generally in a shape of a line segment, and
the part of the armature 34 that configured to cooperate with the pole surface 351
of the iron core 35 is bent in an inclined shape toward the side away from the iron
core 35. In this way, the rotation angle of the armature 34 is made larger, so that
the stroke of actuator 4 is larger. Therefore, the contact clearance between the movable
spring part 5 and the stationary spring part 6 in the cut-off state is larger, so
that the safety performance of the electromagnetic relay of the present disclosure
in the cut-off state can be improved. In the embodiment, as shown in FIGS. 9 and 19,
the movable spring part 5 is configured as a structure resistant to short-circuit
current, which includes a movable spring lead-out pin 51, a rigid spring 52, a flexible
connector 53 and a reaction force spring 54, the movable spring lead-out pin 51 is
laterally inserted into the base 2 from the first opening 213, and its bottom is located
below the base 2, and forms the lead-out pin of the movable spring part 5, the top
of the rigid spring 52 is rotatably connected with the top of the movable spring lead-out
pin 51, so that the rigid spring 52 can rotate in a direction away from or close to
the movable spring lead-out pin 51, the flexible connector 53 is connected between
the top of the rigid spring 52 and the top of the movable spring lead-out pin 51;
a movable contact 55 is provided on the side of the bottom of the rigid spring 52
facing away from the movable spring lead-out pin 51; the reaction force spring 54
is located between the movable spring lead-out pin 51 and the rigid spring 52, and
the bottom of the reaction force spring 54 is fixedly connected with the rigid spring
52, there is a preset distance between the top of the reaction force spring 54 and
the rigid spring 52; the actuator 4 is provided with a plurality of slots distributed
along the preset direction D1 and corresponding to the movable spring parts 5 one-to-one.
The rigid springs 52 and the reaction force springs 54 of the movable spring parts
5 are respectively snapped into the corresponding slots. In this way, the actuator
4 drives the rigid spring 52 to move toward the direction close to the stationary
spring part 6 by pushing the reaction force spring 54, thereby generating an overstroke.
The stationary spring part 6 includes a stationary spring 61 and a stationary contact
62 disposed on one end of the stationary spring 61, and the other end of the stationary
spring 61 is integrally formed with a lead-out pin.
[0031] In the embodiment, as shown in FIG. 10, the present disclosure includes a plurality
of limiting members 7, through which the actuator 4 is restricted from sliding out
of the first opening 213 to the outside. Each limiting member 7 is approximately in
a shape of a "

", that is, the limiting member 7 may include a first portion, a second portion and
a third portion connected in sequence, the first portion and the third portion are
substantially parallel, and the two ends of the second portion are respectively connected
to the ends of the first portion and the third portion at the same side, the other
ends of the first portion and the third portion are free ends so that the limiting
member 7 forms a lateral opening. The middle side (i.e., the second portion) of the
limiting member 7 is located at the outside of the actuator 4, and the remaining two
sides (i.e., the first portion and the third portion) are fitted at the upper and
lower sides of the actuator 4 respectively, and are inserted into the sockets provided
on the corresponding partition plate 211. The top of the first arc partition plate
8 is provided with third notches 85 for avoiding the portions of the limiting member
7. As shown in FIGS. 4 and 5, a plurality of first grooves 84 spaced along the preset
direction D1 are provided at the bottom of the first arc partition plate 8, the plurality
of first grooves 84 are inserted and matched with the plurality of first protrusions
23 located on the bottom of the base 2 and protruding outward from the first opening
213 (as shown in FIG. 2), so that the first arc partition plate 8 can be pre-positioned.
Similarly, as shown in FIG. 6 and FIG. 7, the bottom of the second arc partition plate
9 is also provided with a plurality of second grooves 93 spaced along the preset direction
D1, the plurality of second grooves 93 are inserted and matched with the plurality
of second protrusions 24 located on the bottom of the base 2 and protruding outward
from the second opening 215 (as shown in FIG. 3), so that the second arc partition
plate 9 can be pre-positioned.
[0032] In the embodiment, as shown in FIGS. 13 and 15, the electromagnetic relay of the
embodiment of the present disclosure further includes an auxiliary movable spring
20 provided with an auxiliary movable contact and an auxiliary stationary spring 30
provided with an auxiliary stationary contact, the two are respectively configured
to insert into the base 2 and are located at the side where the armature 34 is located;
one end of the actuator 4 facing the armature 34 is provided with a driving portion
41, and the driving portion 41 is configured to cooperate with the auxiliary movable
spring 20 to drive the auxiliary movable spring 20 to move; the moving state of the
auxiliary movable spring 20 is opposite to the moving state of the movable spring
part 5. That is, when the movable spring part 5 moves in the direction of attracting
to the stationary spring part 6, the auxiliary movable spring 20 moves in the direction
of separating from the stationary spring part 6, which is opposite to the direction
when the movable spring part 5 is attracted to the stationary spring part 6, when
the movable spring part 5 moves in the direction of separating from the stationary
spring part 6, the auxiliary movable spring 20 moves in the direction of attracting
to the stationary spring part 6, which is opposite to the direction when the movable
spring part 5 is separated from the stationary spring part 6.
[0033] In the electromagnetic relay for preventing arc short circuit of the present disclosure,
the number of contact units is specifically four, but not limited thereto. Therefore,
the electromagnetic relay of the present disclosure can be applied to a three-phase
four-wire circuit, where each group of contact units can reach a current carrying
capacity of 40A and can withstand a short-circuit current of 3kA.
[0034] The operating principle of the electromagnetic relay of the present disclosure is:
when the coil (i.e., the enameled wire 32) is energized, the armature 34 rotates around
the knife edge of the yoke 33, attracts and engages with the pole surface 351 of the
iron core 35, and at the same time drives the actuator 5 to move along the length
direction of the base 2, and drives the reaction force spring 54 and the rigid spring
52 of the movable spring part 5 to move to realize the movable contact 55 and the
stationary contact 62 are in a close state. When the movable contact 55 and the stationary
contact 62 just come into contact, the reaction force spring 54 begins to be deformed,
after the armature 34 is in full contact with the pole surface 351 of the iron core
35, the deformation of the reaction force spring 54 ends, and the overstroke is mainly
realized by the elastic deformation of the reaction force spring 54. The rigid spring
52 is only responsible for conducting electricity, and is not responsible for deforming
to achieve the over-travel function. When the coil (i.e., the enameled wire 32) is
de-energized, the armature 23 is reset under the action of the return spring 10, and
at the same time drives the actuator 5 to move in the opposite direction, and drives
the reaction force spring 54 and the rigid spring 52 of each movable spring part 5
to move in the opposite direction, so that the movable contact 55 and the stationary
contact 65 are in a cut-off state. When the movable contact 55 of one group of the
movable spring part 5 and the corresponding stationary contact 62 are stuck, the actuator
4 cannot be reset, so that the movable contacts 55 of the remaining groups of the
movable spring parts 5 cannot be disconnected from the corresponding stationary contacts
62, thereby achieving a forced guiding function.
[0035] The disconnection between the auxiliary movable contact of the auxiliary movable
spring 20 and the auxiliary stationary contact of the auxiliary stationary spring
30 is realized by the driving portion 41 of the actuator 4 pushing the head of the
auxiliary movable spring 20. The connection between the auxiliary movable contact
and the auxiliary stationary contact is realized by the reaction force of the auxiliary
movable spring 20. High insulation is achieved between the auxiliary contact part
and the main contact part (namely contact unit). The auxiliary contact part can monitor
the state of the main contact part, no matter which main contact is stuck, the auxiliary
contact can't be closed, so as to realize the blocking function.
[0036] When the current is short-circuited, Holm force will be generated on the surfaces
of the movable contact 55 and the stationary contact 62, and the Holm force will cause
the movable contact 55 and the stationary contact 6 to repel and separate; the U-shaped
structure formed by the movable spring lead-out pin 51, the rigid spring 52 and the
flexible connector 53 will generate Lorentz force, the Lorentz force will cause the
movable contact 55 to move closer to the stationary contact 62, thereby restricting
the movable contact 55 and the stationary contact 62 from repelling each other and
separating.
[0037] In the electromagnetic relay for preventing arc short circuit of the present disclosure,
at the side where the movable spring part 5 is located, the first baffle 81 of the
first arc partition plate 8 and the partition plate 211 form two arc partition walls
at the lower portion of the compartment 212, the third baffle 11 on the inner side
of the case 1 and the partition plate 211 form two arc partition walls located at
the upper portion of the compartment 212, combined with the design of the upper baffle
2112, the lower baffle 2113 and the arc blocking portion 82, the electromagnetic relay
of the present disclosure forms two large arc partition walls A, B that can completely
separate the adjacent compartments 212 at the side where the movable spring part 5
is located, as shown in FIG. 19, the lines indicated by A and B in the figure indicate
the directions of the large arc partition walls A and B, respectively. At the side
where the stationary spring part 6 is located, since there is no actuator 4 installed,
and the second opening 215 is smaller, it is completely closed by the second arc partition
plate 9, the second baffle 91 of the second arc partition plate 9 and the partition
plate 211 form three small arc partition walls C, D, and E, as shown in FIG. 20. Therefore,
each compartment 212 of the present disclosure is in a relatively closed state. In
addition, the two large arc partition walls A, B/three small arc partition walls C,
D, and E complement each other respectively, even if one of the large arc partition
walls or one of the small arc partition walls is not effective for arc partition,
the other large arc partition wall or other small arc partition walls can be used
to further isolate the arc. When the movable spring part 5 and the stationary spring
part 6 are disconnected to generate an arc, the arc will not enter the adjacent compartment
212, thereby not causing an arc short circuit and ensuring the safety of the electromagnetic
relay of the present disclosure during operation.
[0038] In the electromagnetic relay for preventing arc short circuit of the present disclosure,
the first arc partition plate 8 and the second arc partition plate 9 are both laterally
inserted, so that the assembly sequence is simple, and automation is facilitated.
In particular, the first baffle 81 of the first arc partition plate 8 and the second
baffle 91 of the second arc partition plate 9 are respectively plugged into the opposite
baffle plate 211, so that the sealing manner between the first arc partition plate
8 and the baffle plate 211 and the sealing manner between the second arc partition
plate 9 and the baffle plate 211 are simplified, and no arc leakage gap is ensured.
The third baffle 11 is directly formed on the case 1, so that the electromagnetic
relay of the present disclosure can reduce the steps of assembling the third baffle
11, thereby simplifying the assembly steps, similarly, the third baffle 11 is plugged
into the opposite partition plate 211 to ensure that there is no arc leakage gap between
the inner side of the case 1 and the partition plate 211. The arrangement of the second
arc blocking structure and/or the arc blocking portion 82 can ensure that there is
no arc leakage gap between the adjacent compartments 212 at the first notches 2111,
thereby further improving the arc isolation effect of the electromagnetic relay of
the present disclosure.
Second embodiment
[0039] Please refer to FIG. 21 and FIG. 22, the electromagnetic relay for preventing arc
short circuit of the present disclosure is different from the first embodiment described
above in that: the inner side of the second arc partition plate 9 is further provided
with a plurality of vertical fourth baffles 94 distributed along the preset direction
D1 at intervals, at least one fourth baffle 94 is laterally inserted into one compartment
212, respectively. Specifically, two fourth baffles 94 are laterally inserted into
one compartment 212, respectively. The dimension of the fourth baffle 94 in the depth
direction of the second opening 215 is larger than the dimension of the first baffle
91 in the depth direction of the second opening 215. The depth direction of the second
opening 215 may be a direction perpendicular to the preset direction D1, when the
preset direction D1 is the length direction of the base 2, the depth direction is
the width direction of the base 2. The fourth baffle 94 can be used to increase the
creepage distance between the movable spring part 5 and the stationary spring part
6, thereby improving the insulation of the electromagnetic relay of the present disclosure.
1. An electromagnetic relay for preventing arc short circuit,
characterized in that, comprises:
a base (2) provided with a first accommodating cavity (21), wherein the first accommodating
cavity (21) is provided with a plurality of partition plates (211) to divide the first
accommodating cavity (21) into a plurality of compartments (212) distributed along
a preset direction (D1), a side of the first accommodating cavity (21) is provided
with a first opening (213) leading to each of the compartments (212);
a magnetic circuit part (3) installed on the base (2) and comprising an armature (34);
a contact part comprising a plurality of contact units corresponding to the plurality
of compartments (212) one-to-one, wherein each of the plurality of contact units comprises
a movable spring part (5) and a stationary spring part (6), and the movable spring
part (5) and the stationary spring part (6) are installed in a corresponding compartment
(212) and configured to cooperate with each other;
an actuator (4), wherein the armature (34) of the magnetic circuit part (3) are cooperated
with the movable spring part (5) of each of the contact units by the actuator (4);
and
a first arc partition plate (8) configured to close all or part of the first opening
(213), wherein an inner side of the first arc partition plate (8) is provided with
a plurality of first baffles (81) distributed along the preset direction (D1), at
least one first baffle (81) is laterally inserted into each compartment (212), and
the first baffle (81) is configured to adjacent to or abut against a partition plate
(211) of the compartment (212) to form at least two partition walls located between
adjacent compartments (212).
2. The electromagnetic relay according to claim 1, wherein a side of the first accommodating
cavity (21) is further provided with a second opening (215) leading to each compartment
(212), and the second opening (215) and the first opening (213) are located at two
opposite sides of the first accommodating cavity (21), and the first openings (213)
and the second openings (215) are distributed in a direction perpendicular to the
preset direction (D1);
the movable spring part (5) is laterally installed in a corresponding compartment
(212) from the first opening (213), and the stationary spring part (6) is laterally
installed in the corresponding compartment (212) from the second opening (215);
the electromagnetic relay further comprises a second arc partition plate (9), the
second arc partition plate (9) is configured to close all or part of the second opening
(215), and an inner side of the second arc partition plate (9) is provided with a
plurality of second baffles (91) distributed along the preset direction (D1), at least
one second baffle (91) is laterally inserted into each compartment (212), and the
second baffle (91) is configured to adjacent to or abut against the baffle plate (211)
of the compartment (212) to form at least two arc partition walls located between
adjacent compartments (212).
3. The electromagnetic relay according to claim 2, wherein the first baffles (81) of
the first arc partition plate (8) are respectively laterally inserted into a first
slot (214) provided in a corresponding compartment (212), among the plurality of second
baffles (91) of the second arc partition plate (9), every two second baffles (91)
is in a group, and a second slot (92) is formed between the two second baffles (91)
of a same group, the second slot (92) is inserted and matched with the partition plate
(211) in a corresponding compartment (212).
4. The electromagnetic relay according to any one of claims 1 to 3, wherein the actuator
(4) is disposed along the preset direction (D1) and fitted at the first opening (213),
the first arc partition plate (8) is located below the actuator (4); the first opening
(213) is provided with a first arc blocking structure at a position above the actuator
(4) to limit an arc generated by a breaking of the movable spring part (5) and the
stationary spring part (6) from entering an adjacent compartment (212) from a space
above the actuator (4).
5. The electromagnetic relay according to claim 4, further comprising a case (1) with
an opening at a bottom, the case (1) is connected with the base (2), and is configured
to accommodate the magnetic circuit part (3), the contact part, the actuator (4) and
the first arc partition plate (8) in a casing cavity of the case (1);
the first arc blocking structure comprises a plurality of third baffles (11), and
the plurality of third baffles (11) are disposed on an inner side of the case (1)
facing the first opening (213) and are arranged at intervals along the preset direction
(D1), a top of each of the third baffles (11) is connected to an inner top surface
of the case (1), and at least one third baffle (11) is inserted downward into one
compartment (212) from a top of the compartment (212), and the third baffle (11) is
configured to adjacent to or abut against a part of the partition plate (211) of the
compartment (212) above the actuator (4) to form at least two arc partition walls
located between top portions of adjacent compartments (212).
6. The electromagnetic relay according to claim 4, wherein portions of the plurality
of partition plates (211) close to the first opening (213) are respectively provided
with a first notch (2111) for avoiding the actuator (4); at least one side of each
partition plate (211) is provided with a second arc blocking structure, so as to restrict
the arc generated by the breaking of the movable spring part (5) and the stationary
spring part (6) from entering the adjacent compartment (212) from a gap between the
first notch (2111) and the actuator (4).
7. The electromagnetic relay according to claim 6, wherein the second arc blocking structure
comprises an upper baffle (2112) and a lower baffle (2113) arranged on a same side
of the compartment (212), the upper baffle (2112) is fitted above the actuator (4),
and the lower baffle (2114) is fitted below the actuator (4), the upper baffle (2112)
and the lower baffle (2113) are configured to extend obliquely from the partition
plate (211) in a direction close to the actuator (4);
the second arc blocking structure further comprises a side baffle (2114), the side
baffle (2114) is located inside the actuator (4), and an upper end of the side baffle
(2114) is connected to the upper baffle (2112), and a lower end of the side baffle
(2114) is connected to the lower baffle (2113).
8. The electromagnetic relay according to claim 6, wherein a plurality of arc blocking
portions (82) are provided on a top of the inner side of the first arc partition plate
(8), and bottom ends of the arc blocking portions (82) are respectively connected
with top ends of the plurality of first baffles (81) of the first arc partition plate
(8) one by one, the top ends of the plurality of arc blocking portions (82) are configured
to extend toward a direction close to the actuator (4); a longitudinal section of
an arc blocking portion (82) in the preset direction (D1) is an inverted T-shape.
9. The electromagnetic relay according to claim 2 or 3, wherein the inner side of the
second arc partition plate (9) is provided with a plurality of fourth baffles (94)
distributed along the preset direction (D1) at intervals, at least one fourth baffle
(94) is laterally inserted into one compartment (212).
10. The electromagnetic relay according to claim 2 or 3, wherein the base (2) is further
provided with a second accommodating cavity (22) of which upper end is open;
the magnetic circuit part (3) comprises a coil assembly and the armature (34), the
coil assembly is horizontally disposed in the second accommodating cavity (22), the
armature (34) is located outside the second accommodating cavity (22) and is disposed
at one end of the base (2) in the preset direction (D1); the first accommodating cavity
(21) and the second accommodating cavity (22) are separated in a direction perpendicular
to the preset direction (D1), and the second opening (215) is located below the second
accommodating cavity (22).
11. The electromagnetic relay according to claim 10, wherein the movable spring part (5)
comprises a movable spring lead-out pin (51), a rigid spring (52), a flexible connector
(53) and a reaction force spring (54), the movable spring lead-out pin (51) is laterally
inserted into the base (2), a top of the rigid spring (52) is rotatably connected
with a top of the movable spring lead-out pin (51), the flexible connector (53) is
connected between the top of the rigid spring (52) and the top of the movable spring
lead-out pin (51);
a movable contact (55) is provided on a side of a bottom of the rigid spring (52)
facing away from the movable spring lead-out pin (51); the reaction force spring (54)
is located between the movable spring lead-out pin (51) and the rigid spring (52),
and a bottom of the reaction force spring (54) is fixedly connected with the rigid
spring (52), there is a preset distance between a top of the reaction force spring
(54) and the rigid spring (52); the actuator (4) is provided with a plurality of slots
distributed along the preset direction (D1) and corresponding to the movable spring
part (5) one-to-one, the rigid spring (52) and the reaction force spring (54) of the
movable spring part (5) are respectively snapped into corresponding slots.
12. The electromagnetic relay according to claim11, further comprising an auxiliary movable
spring (20) provided with an auxiliary movable contact and an auxiliary stationary
spring (30) provided with an auxiliary stationary contact, the auxiliary movable spring
(20) and the auxiliary stationary spring (30) are respectively configured to insert
into the base (2) and are located at a side of the base (2) where the armature (34)
is located; one end of the actuator (4) facing the armature (34) is provided with
a driving portion (41), and the driving portion (41) is configured to cooperate with
the auxiliary movable spring (20) to drive the auxiliary movable spring (20) to move.