TECHNICAL FIELD
[0002] The present invention relates to the field of low-voltage electrical appliances,
and more particularly, to a contact system and a switching device including the contact
system.
BACKGROUND
[0003] A contact system of the existing switching device is mostly implemented by the cooperation
of a movable contact and a static contact. The movable contact rotates or moves as
a whole to be closed with and disconnected from the static contact, such that a circuit
where the switching device is located is turned on and off. The disconnection speed
of the movable and static contacts is an important factor affecting the disconnection
capacity of the contact system. At present, an energy storage mode of an operating
mechanism is mostly used to increase a movement speed of the movable contact, thereby
increasing the disconnection speed of the movable and static contact, but the effect
is relatively poor due to the limited structural strength and space.
SUMMARY
[0004] An object of the present invention is to overcome at least one defect of the prior
art and provide a contact system and a switching device, which have high disconnection
capacity.
[0005] In order to achieve the above objective, the present invention provides the following
technical solution:
a contact system, comprising a main contact structure and at least one group of movable
contact structure, the main contact structure comprises a main contact; the main contact
comprises at least one main touch portion; the movable contact structure comprises
a movable contact; the movable contact comprises a movable touch portion; when the
main contact is located at a closed position, the main touch portion and the movable
touch portion are engaged to enable the main contact and the movable contact to be
closed;
the movable contact structure further comprises an elastic member cooperating with
the movable contact; and
in the disconnection process of the main contact from the movable contact, when the
main touch portion drives the movable touch portion to move from an initial position
to a disengaged position, the elastic member stores energy, such that the main contact
continues to move, and the elastic member releases energy to drive the movable touch
portion to reset to the initial position.
[0006] Further, the main contact structure is disposed pivotally or disposed to move as
a whole.
[0007] Further, the main contact structure is disposed pivotally and is a rotary contact
structure; the main contact is a rotary contact; the main touch portion is a rotary
touch portion; when the rotary contact is located at a closed position, the rotary
touch portion and the movable touch portion are engaged to enable the rotary contact
and the movable contact to be closed; and in the disconnection process of the rotary
contact from the movable contact, when the rotary touch portion drives the movable
touch portion to move from an initial position to a disengaged position, the elastic
member stores energy, such that the rotary contact continues to move, the elastic
member releases energy to drive the movable touch portion to reset to the initial
position, and the main touch portion and the movable touch portion move away from
each other.
[0008] Further, the contact system comprises two groups of movable contact structures; the
rotary contact comprises two rotary touch portions disposed at both ends thereof respectively;
and when the rotary contact is located at the closed position, the two rotary touch
portions are respectively engaged with the two movable touch portions to enable the
rotary contact and the movable contact to be closed.
[0009] Further, the movable contact is disposed rotatably or disposed to move as a whole.
[0010] Further, the middle of the movable contact is disposed pivotally; the movable touch
portion is disposed at one end of the movable contact, and the other end of the movable
contact cooperates with the elastic member; and the movable contact rotates so that
the movable touch portion is switched between the initial position and the disengaged
position.
[0011] Further, the movable contact moves as a whole within a preset plane, and the movable
contact moves as a whole so that the movable touch portion is switched between the
initial position and the disengaged position.
[0012] Further, the movable contact structure further comprises a guide rail structure,
and the movable contact is disposed to move as a whole along an extension direction
of the guide rail structure.
[0013] Further, the movable contact structure further comprises a movable contact shaft
which is disposed fixedly; the movable contact comprises a guide plate; a guide rail
structure comprises guide rail walls and a guide rail groove formed between two opposite
guide rail walls; the movable contact shaft is slidably plugged into the guide rail
groove; and the guide plate and the movable contact shaft are disposed on both sides
of one guide rail wall, respectively.
[0014] Further, the movable contact shaft and the guide plate make sliding contact with
both sides of the corresponding guide rail wall, respectively.
[0015] Further, the rotary contact structure further comprises a rotating shaft which is
disposed pivotally; the rotary contact is plugged into the rotating shaft, and both
ends of the rotary contact protrude from both radial sides of the rotating shaft,
respectively; and
[0016] the two groups of movable contact structures are mutually centrosymmetric structures
with a rotation center of the rotary contact structure as a symmetry center.
[0017] Further, the main touch portion makes plug-in fit with the movable touch portion,
such that the main contact structure and the movable contact structure are closed.
[0018] Further, the contact system further comprises at least one group of plug-in structure;
the plug-in structure comprises a plug-in plate and a socket, one of which is disposed
on the main touch portion and the other is disposed on the movable touch portion;
and the plug-in plate is plugged into the socket and is clamped by an inner side wall
of the socket, such that the main touch portion and the movable touch portion are
engaged.
[0019] Further, the rotary contact structure further comprises a rotating shaft which is
disposed to rotate around its own axis; the rotating shaft comprises a rotating shaft
seat and a rotating shaft cover which are spliced oppositely in its axial direction;
the rotating contact is clamped between the rotating shaft seat and the rotating shaft
cover and comprises rotary touch portions which are disposed on both radial sides
of the rotating shaft and cooperate with the movable contact; the rotating shaft further
comprises a plug portion disposed at its axial end; the plug portion comprises a main
plug and a secondary plug; the main plug is disposed on one side of the rotating shaft
cover away from the rotating shaft seat; the secondary plug is disposed on one side
of the rotating shaft seat facing the rotating shaft cover; the secondary plug passes
through a rotating shaft cover hole of the rotating shaft cover and is disposed side
by side with the main plug; the rotating shaft further comprises a jack portion disposed
at its other axial end; and the jack portion is adapted to the plug portion.
[0020] A switching device includes the above-mentioned contact system.
[0021] According to the contact system of the present invention, after the main touch portion
drives the movable touch portion to the disengaged position, the main contact continues
to move, and the elastic member releases energy to drive the movable touch portion
to quickly reset to the initial position. In this case, the main touch portion and
the movable touch portion generally move in opposite directions, so that a distance
between the main touch portion and the movable touch portion is rapidly widened, and
an electric arc generated by the disconnection of the main contact from the movable
contact can be quickly lengthened, which can significantly improve the arc-extinguishing
capacity and the disconnection capacity of the contact system and achieve rapid opening.
[0022] In addition, the rotary contact cooperates with two groups of movable contacts to
form a dual-breakpoint structure form, which is conducive to further improving the
disconnection capacity.
[0023] In addition, the two groups of movable contact structures adopt a centrosymmetric
structure, which is conducive to reducing the structure types and the production cost.
Further, there is no need to discriminate the two groups of movable contact structures
during the installation process, which is conducive to improving the assembly efficiency.
[0024] The present invention provides a switching device, which includes the above-mentioned
contact system and has high disconnection capacity.
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
FIG. 1 is a schematic structural diagram of a switching device of the present invention,
in which a mode B is adopted for a main contact and a movable contact of a contact
system, the movable contact is disposed pivotally, the movable contact and the movable
contact are in a disconnected state, and a first setting mode is adopted for a plug-in
structure;
FIG. 2 is a schematic structural diagram of a switching device of the present invention,
in which a mode B is adopted for a main contact and a movable contact of a contact
system, the movable contact is disposed pivotally, the movable contact and the movable
contact are in a closed state, and a first setting mode is adopted for a plug-in structure;
FIG. 3 is a schematic structural diagram of a switching device of the present invention,
in which a mode B is adopted for a main contact and a movable contact of a contact
system, the movable contact is disposed pivotally, a main touch portion drives a movable
touch portion to move to a disengaged position, and a first setting mode is adopted
for a plug-in structure;
FIG. 4 is a schematic structural diagram of the main contact structure in FIGS. 1-3
in the present invention, in which a main touch portion is a plug-in plate;
FIG. 5 is a schematic structural diagram of a main contact of the main contact structure
in FIG. 4 in the present invention;
FIG. 6 is a schematic structural diagram of the movable contact in FIGS. 1-3 in the
present invention, in which a cross-section is of a U-shaped structure;
FIG. 7 is a schematic structural diagram of a switching device of the present invention,
in which a mode B is adopted for a main contact and a movable contact of a contact
system, the movable contact is disposed pivotally, the movable contact and the movable
contact are in a closed state, and a second setting mode is adopted for a plug-in
structure;
FIG. 8 is a schematic structural diagram of the main contact structure in FIG. 7 in
the present invention;
FIG. 9 is a schematic structural diagram of the movable contact in FIG. 7 in the present
invention;
FIG. 10 is a schematic structural diagram of a switching device of the present invention,
in which a mode B is adopted for a main contact and a movable contact of a contact
system, the movable contact is disposed to move as a whole, the movable contact and
the movable contact are in a closed state, and a first setting mode is adopted for
a plug-in structure;
FIG. 11 is a schematic diagram of a three-dimensional structure of a switching device
of the present invention, in which a mode B is adopted for a main contact and a movable
contact of a contact system, the movable contact is disposed to move as a whole, the
movable contact and the movable contact are in a closed state, and a first setting
mode is adopted for a plug-in structure;
FIG. 12 is a schematic structural diagram of a switching device of the present invention,
in which a mode B is adopted for a main contact and a movable contact of a contact
system, the movable contact is disposed to move as a whole, a main touch portion drives
a movable touch portion to move to a disengaged position, and a first setting mode
is adopted for a plug-in structure;
FIG. 13 is a schematic structural diagram of a switching device of the present invention,
in which a mode B is adopted for a main contact and a movable contact of a contact
system, the movable contact is disposed to move as a whole, the main contact and the
movable contact are in a disconnected state, and a first setting mode is adopted for
a plug-in structure;
FIG. 14 is a schematic structural diagram of the movable contact in FIGS. 10-13 in
the present invention;
FIG. 15 is a schematic structural diagram of a movable contact structure of a plug-in
structure which adopts a third setting mode in the present invention;
FIG. 16 is a schematic structural diagram of a main contact of the plug-in structure
which adopts the third setting mode in the present invention;
FIG. 17 is a schematic structural diagram of a movable contact structure of a plug-in
structure which adopts a fourth setting mode in the present invention;
FIG. 18 is a schematic structural diagram of a main contact of the plug-in structure
which adopts the fourth setting mode in the present invention;
FIG. 19 is a schematic structural diagram of a rotary contact structure in the present
invention, in which a structure of a jack portion is shown;
FIG. 20 is a schematic structural diagram of a rotary contact structure in the present
invention, in which a structure of a plug portion is shown; and
FIG. 21 is an exploded view of a rotary contact structure in the present invention.
Reference symbols represent the following components:
[0026]
1-housing;
1-0-positioning stopper; g-guide rail structure; 1-1-guide rail groove; 1-2-guide
rail wall;
m-main contact structure;
2-main contact; 2-0-main touch portion; 2-1-main contact blade; 2a-first main contact
plate; 2b-second main contact plate; 2c-third main contact plate;
3-rotating shaft; 3g-jack portion; 3p-plug portion; 31-rotating shaft seat; 31-0-seat
body; 31-00-seat body trunk; 31-01-seat body end plate; 31-010-avoidance notch; 31-1-secondary
plug; 31-2-clamping hole; 31-3-rotating shaft seat groove; 31-5-main jack; 31-6-secondary
jack; 33-rotating shaft cover; 33-0-cover plate; 33-1-rotating shaft cover hole; 33-2-main
plug; 33-3-clamping hook;
s-movable contact structure;
4-movable contact; 4-1-movable touch portion; 4-2-movable contact shaft hole; 4-3-movable
contact limiting protrusion; 4-4-guide plate; 4-5-movable contact hanging spring portion;
5-movable contact shaft;
6-elastic member;
c-socket;
7-flexible wire;
8-wiring terminal; and
9-spring fixing shaft.
DETAILED DESCRIPTION
[0027] The specific implementation of a switching device of the present invention will be
further described below in conjunction with the embodiments given in accompanying
drawings. The switching device of the present invention is not limited to the description
of the following embodiments.
[0028] The switching device of the present invention includes a contact system. The contact
system includes a main contact structure m and at least one group of movable contact
structure s. The main contact structure m and the movable contact structure s are
closed and disconnected, such that a circuit where the switching device is located
is turned on and off. Further, the switching device further includes an operating
mechanism. The operating mechanism is in transmission connection with the main contact
structure m to drive the main contact structure m and the movable contact structure
s to be closed and disconnected. Further, the switching device further includes a
housing 1 for accommodating the contact system. Further, when the switching device
of the present invention is a rotary disconnecting switch, the housing 1 is a housing
of a switching unit of the rotary disconnecting switch; or when the switching device
of the present invention is a circuit breaker, the housing 1 is a circuit breaker
housing; or when the switching device of the present invention is a change-over switch,
the housing 1 is a change-over switch housing.
[0029] As shown in FIGS. 1-3, 7, and 11-14, the main contact structure m includes a main
contact 2. The main contact 2 includes at least one main touch portion 2-0. The movable
contact structure s includes a movable contact 4. The movable contact 4 includes a
movable touch portion 4-1. When the main contact 4 is located at a closed position,
the main touch portion 2-0 and the movable touch portion 4-1 are engaged to enable
the main contact 2 and the movable contact 4 to be closed. Further, the movable contact
structure s further includes an elastic member 6 cooperating with the movable contact
4. During the disconnection process of the main contact 2 from the movable contact
4, the main touch portion 2-0 drives the movable touch portion 4-1 to move from an
initial position to a disengaged position. Meanwhile, the movable contact 4 enables
the elastic member 6 store energy, and the main contact 2 continues to move. Then,
the movable touch portion 4-1 is disengaged from the main touch portion 2-0, and the
elastic member 6 releases energy and drives the movable touch portion 4-1 to reset
to the initial position. That is, during the movement process of the main contact
2 from a closed position to a disconnected position, the main touch portion 2-0 moves
from the closed position to a intermediate position and drives the movable touch portion
4-1 to move from the initial position to the disengaged position. Meanwhile, the movable
contact 4 enables the elastic member 6 to store energy, the elastic member 6 stores
energy to the maximum when the movable touch portion 4-1 is located at the disengaged
position, and the main contact 2 continues to move towards the disconnected position.
Then, the movable touch portion 4-1 is disengaged from the main touch portion 2-0,
and the elastic member 6 releases energy and drives the movable touch portion 4-1
to reset to the initial position, while the main contact 2 continues to move to the
disconnected position. According to the contact system, after the main touch portion
2-0 drives the movable touch portion 4-1 to move to the disengaged position, the main
contact 2 continues to move, and the elastic member 6 drives the movable touch portion
4-1 to quickly reset to the initial position. In this case, the main touch portion
2-0 and the movable touch portion 4-1 generally move in opposite directions, so that
a distance between the main touch portion 2-0 and the movable touch portion 4-1 is
rapidly widened, and an electric arc generated by the disconnection of the main contact
2 from the movable contact 4 can be quickly lengthened, which can significantly improve
the arc-extinguishing capacity and the disconnection capacity of the contact system
and achieve rapid opening. It needs to be pointed out that, in the process of the
main touch portion 2-0 driving the movable touch portion 4-1 to move from the initial
position to the disengaged position, the main touch portion 2-0 and the movable touch
portion 4-1 do not remain relatively stationary, but move and/or rotate relative to
each other until the main touch portion 2-0 cannot drive the movable touch portion
4-1 to continue to move, so that the elastic member 6 further stores energy. When
the main contact 2 and the movable contact 4 are in a closed state, and when the main
contact 2 and the movable contact 4 are disconnected and the movable contact 4 is
in a stationary state, the position where the movable touch portion 4-1 is located
is the initial position. The position that the movable touch portion 4-1 can reach,
under the driving of the main touch portion 2-0, to the farthest point from the initial
position is the disengaged position. When the movable touch portion 4-1 moves to the
disengaged position, the movable contact 4 enables the elastic member 6 to store energy
to the maximum. The position where the main contact 2 and the movable contact 4 are
in a closed state is the closed position. The final position where the main contact
2 and the movable contact 4 remain stationary after being disconnected is the disconnected
position. The intermediate position is a position that the main contact 2 passes through
during the movement from the closed position to the disconnected position.
[0030] As shown in FIGS. 1-3, 7, and 10-13, the contact system further includes wiring terminals
8, which are in one-to-one cooperation with the movable contacts 4, and the movable
contacts 4 are electrically connected to the wiring terminals 8 through flexible wires
7.
[0031] As other embodiments, the movable contacts 4 are electrically connected to the wiring
terminals 8 through rigid couplings.
[0032] Specifically, in the contact system, the main contact 2 and the movable contact 4
have at least the following three configuration modes.
[0033] Mode A: the contact system is provided with a group of main contact structure m and
at least one group of movable contact structure s, wherein the main contact 2 in the
main contact structure m is provided with a main touch portion 2-0; the movable contact
4 in the movable contact structure s is provided with a movable touch portion 4-1;
and when the main contact 2 moves to be switched between the closed position and the
disconnected position, the main touch portion 2-0 and the movable touch portion 4-1
are engaged and disengaged.
[0034] Mode B: the contact system is provided with a group of movable contact structure
and two groups of movable contact structures s, wherein the main contact 2 in the
main contact structure m is provided with two main touch portions 2-0; the movable
contacts 4 in the two groups of movable contact structures s are provided with a movable
touch portion 4-1, respectively; the main contact 2 moves to be switched between the
closed position and the disconnected position, such that the two main touch portions
2-0 are engaged with and disengaged from the two movable touch portions 4-1, respectively;
and when the two main touch portions 2-0 are respectively engaged with the two movable
touch portions 4-1, the three are connected in series.
[0035] Specifically, as shown in FIGS. 1-2, 7 and 10-13, the main contact 2 includes two
main touch portions 2-0 which are respectively disposed at both ends thereof. The
contact system includes two groups of movable contact structures s. The two groups
of movable contact structures s are disposed on both sides of the main contact structure
m, respectively. The two groups of main touch portions 2-0 are respectively used to
be engaged with and disengaged from the movable touch portions 4-1 of the two groups
of movable contacts 4. The contact system adopts a dual-breakpoint structure form,
which is conducive to further improving the disconnection capacity and arc-extinguishing
capacity of the contact system. Further, the two groups of movable contacts 4 are
electrically connected to the two groups of wiring terminals 8 through two flexible
wires 7, respectively.
[0036] Mode C: the contact system is provided with a group of movable contact structure
and two groups of movable contact structures s, wherein the main contact 2 in the
main contact structure m is provided with a main touch portion 2-0; the movable contacts
4 in the two groups of movable contact structures s are provided with a movable touch
portion 4-1, respectively; the main touch portion 2-0 moves to be switched between
two working positions, so as to be engaged with and disengaged from the two movable
touch portions 4-1, respectively; that is, when the main touch portion 2-0 is engaged
with one movable touch portion 4-1, the main touch portion 2-0 is disengaged from
the other movable touch portion 4-1.
[0037] The contact systems in Mode A and Mode B are preferably applied to a rotary disconnecting
switch, a circuit breaker, etc.
[0038] The contact system in Mode C is preferably applied to a change-over switch.
[0039] Further, the main contact structure m is disposed pivotally or disposed to move as
a whole.
[0040] Further, the movable contact 4 is disposed pivotally or disposed to move as a whole.
[0041] Specifically, the main contact structure m and the movable contact structure s have
the following four movement modes.
[0042] Mode 1: the main contact structure m is disposed pivotally, the movable contact 4
is disposed pivotally, and the main contact structure m rotates so that the main touch
portion 2-0 and the movable touch portion 4-1 are engaged and disengaged, that is,
the main contact 2 and the movable contact 4 are closed and disconnected; when the
main contact structure m rotates from the closed position to the disconnected position,
the main contact structure m rotates from the closed position to the intermediate
position, and the main touch portion 2-0 drives the movable touch portion 4-1 to rotate
around a rotation center of the movable contact 4, so that the entire movable contact
4 rotates, and the movable touch portion 4-1 rotates from the initial position to
the disengaged position; meanwhile, the movable contact 4 enables the elastic member
6 store energy, and when the movable touch portion 4-1 rotates to the disengaged position,
the elastic member 6 stores energy to the maximum; after the main touch portion 2-0
is disengaged from the movable touch portion 4-1, the elastic member 6 releases energy
to drive the movable touch portion 4-1 to rotate from the disengaged position to the
initial position; and meanwhile, the main contact structure m continues to rotate
to the disconnected position, and the movable touch portion 4-1 rotates in the opposite
direction to the main touch portion 2-0.
[0043] The following is an embodiment in Mode 1.
[0044] As shown in FIGS. 1-3, and 7, the main contact structure m is disposed pivotally,
the movable contact 4 in the movable contact structure s is disposed pivotally, and
the main contact structure m rotates such that the main touch portion 2-0 is engaged
with and disengaged from the movable touch portion 4-1, that is, the main contact
2 and the movable contact 4 are closed and disconnected.
[0045] As shown in FIGS. 1-3, and 7, the middle of the movable contact 4 is disposed pivotally,
the movable touch portion 4-1 is disposed at one end of the movable contact 4, and
the other end of the movable contact 4 cooperates with the elastic member 6. Further,
the elastic member 6 is a pressure spring, and the elastic member 6 and the main touch
portion 2-0 are located on both sides of the movable contact 4, respectively.
[0046] As shown in FIGS. 1-3, and 7, the movable contact 4 further includes a movable contact
limiting protrusion 4-3; the movable touch portion 4-1 and the movable contact limiting
protrusion 4-3 are located at both ends of the movable contact 4, respectively; and
the elastic member 6 is a pressure spring, one end of which is disposed to sleeve
the movable contact limiting protrusion 4-3, and the other end is disposed on the
housing 1.
[0047] As shown in FIGS. 1-3, and 7, the movable contact structure s further includes a
movable contact shaft 5 which is disposed fixedly, and the movable contact 4 is disposed
pivotally through the movable contact shaft 5. Further, the movable contact shaft
5 is fixedly disposed on the housing 1, and the movable contact 4 is provided with
a movable contact shaft hole 4-2 for the movable contact shaft 5 to pass through.
[0048] As shown in FIGS. 1-3, and 7, the elastic member 6 is a pressure spring; the elastic
member 6 acts on the movable contact 4, such that one end of the movable contact 4
provided with the movable touch portion 4-1 is abutted against a positioning stopper
1-0, that is, the movable touch portion 4-1 is kept at the initial position; and the
positioning stopper 1-0 and the elastic member 6 are located on the same side of the
movable contact 4. Further, the positioning stopper 1-0 is a retaining rib disposed
on the housing 1.
[0049] As other embodiments, the elastic member 6 is a tension spring, and the positioning
stopper 1-0 and the elastic member 6 are located on both sides of the movable contact
4. It should be pointed out that the arrangement position of the elastic member 6
may be adjusted by a person skilled in the art according to actual needs, and the
possible arrangement positions of the elastic member 6 will not be listed here.
[0050] As other embodiments, the positioning stopper 1-0 is canceled. Instead, the movable
contact shaft 5 is provided with a shaft limiting plane, a hole limiting plane is
disposed in the movable contact shaft hole 4-2 of the movable contact 4, and the elastic
member 6 acts on the movable contact 4, such that the hole limiting plane is in limiting
fit with the shaft limiting plane, and the movable contact 4 is positioned at the
initial position. The hole limiting plane and the shaft limiting plane can be implemented
by the prior art, and will not be described here. Of course, there are various other
modes to position the movable contact 4 at the initial position under the action of
the elastic member 6, which will not be described here one by one, but all fall within
the protection scope of the present application.
[0051] Specifically, as shown in FIGS. 1-3, and 7, the main contact 2 includes two main
touch portions 2-0 which are respectively disposed at both ends thereof. The two groups
of movable contacts 4 are disposed pivotally on both radial sides of the main contact
structure m, respectively. The main contact structure m rotates to be switched between
the closed position and the disconnected position, such that the two main touch portions
2-0 are engaged with and disengaged from the movable touch portions 4-1 of the two
movable contacts 4. The two groups of movable contact structures s are mutually centrosymmetric
structures with a rotation center of the main contact structure m as a symmetry center.
The two groups of movable contact structures s adopt a centrosymmetric structure,
which is conducive to reducing the structure types and the production cost. Further,
there is no need to discriminate the two groups of movable contact structures s during
the installation process, which is conducive to improving the assembly efficiency.
Further, the two groups of wiring terminals 8 are mutually centrosymmetric structures
with the rotation center of the main contact structure m as a symmetry center.
[0052] Mode 2: the main contact structure m is disposed pivotally, the movable contact 4
is disposed to move as a whole on a preset plane, and the main contact structure m
rotates so that the main touch portion 2-0 and the movable touch portion 4-1 are engaged
and disengaged, that is, the main contact 2 and the movable contact 4 are closed and
disconnected; when the main contact structure m rotates from the closed position to
the disconnected position, the main touch portion 2-0 rotates from the closed position
to the intermediate position, and the movable touch portion 4-1 enables the movable
contact 4 to move as a whole, such that the movable contact 4 moves from the initial
position 1 to the disengaged position; in this case, the elastic member 6 stores energy
to the maximum; after the main touch portion 2-0 is disengaged from the movable touch
portion 4-1, the elastic member 6 releases energy to drive the movable touch portion
4-1 to move back to the initial position; and meanwhile, the main contact structure
m continues to rotate to the disconnected position.
[0053] The following is an embodiment in Mode 2.
[0054] As shown in FIGS. 10-13, the main contact structure m is disposed pivotally, the
movable contact 4 is disposed to move as a whole on the preset plane, and the main
contact structure m rotates such that the main touch portion 2-0 and the movable touch
portion 4-1 are engaged and disengaged, that is, the main contact 2 and the movable
contact 4 are closed and disconnected.
[0055] As shown in FIGS. 10-13, the movable contact 4 is disposed to move as a whole in
an extension direction of the guide rail structure g which is disposed fixedly. Further,
the guide rail structure g is preferably a linear guide rail structure, which is preferably
disposed on the housing 1. Of course, the guide rail structure may also be an arc-shaped
guide rail structure.
[0056] As shown in FIGS. 10-13, the elastic member 6 is a tension spring, and the elastic
member 6 and the main touch portion 2-0 are located on both sides of the movable contact
4, respectively. Further, the movable contact 4 includes a movable contact hanging
spring portion 4-5, one end of the elastic member 6 is hung on the movable contact
hanging spring portion 4-5, and the other end of the elastic member 6 is disposed
fixedly. Further, one end of the elastic member 6 which is fixedly disposed is fixed
on the housing 1 through a spring fixing shaft 9. Further, a geometric axis of the
elastic member 6 coincides with an extension path of the guide rail structure g.
[0057] As shown in FIGS. 10-13, the guide rail structure g includes guide rail walls 1-2
and a guide rail groove 1-1 formed between the two opposite guide rail walls 1-2.
The movable contact 4 further includes a guide plate 4-4, the movable contact shaft
5 is slidably plugged into the guide rail groove 1-1, the guide plate 4-4 and the
movable contact shaft 5 are respectively located on both sides of one guide rail wall
1-2, and the guide plate 4-4 and the movable contact shaft 5 make sliding contact
with both sides of the guide rail wall 1-2. That is, the movable contact shaft 5 makes
sliding contact with the inner side of the guide rail wall 1-2, and the guide plate
4-4 makes sliding fit with the outer side of the guide rail wall 1-2 to ensure that
the movable contact 4 slides reliably and stably along the extension direction of
the guide rail structure g. Further, the movable touch portion 4-1 and the guide plate
4-4 are located on both radial sides of the movable contact shaft 5, respectively.
That is, the movable touch portion 4-1 and the guide plate 4-4 are respectively located
at both ends of the movable contact 4, and a movable contact shaft hole 4-2 is provided
in the middle of the movable contact 4.
[0058] As shown in FIGS. 10-13, the elastic member 6 is a tension spring; the elastic member
6 acts on the movable contact 4, such that the movable contact 4 is abutted against
a positioning stopper 1-0. That is, the movable touch portion 4-1 of the movable contact
4 is kept at the initial position; and the positioning stopper 1-0 and the elastic
member 6 are located on the same side of the movable contact 4. Further, the positioning
stopper 1-0 is a retaining rib disposed on the housing 1.
[0059] As other embodiments, the elastic member 6 is a pressure spring, and the elastic
member 6 and the positioning stopper 1-0 are located on both sides of the movable
contact 4. It should be pointed out that the arrangement position of the elastic member
6 may be adjusted by a person skilled in the art according to actual needs, and the
possible arrangement positions of the elastic member 6 will not be listed here.
[0060] As other embodiments, the movable contact structure s is not provided with the positioning
stopper 1-0. Instead, when the movable contact 4 is located at the initial position,
the elastic member 6 acts on the movable contact 4, so that the movable contact shaft
5 is abutted against one end of the guide rail structure g.
[0061] In Mode 1 and Mode 2, the main contact structure m is disposed pivotally. Therefore,
the main contact structure m may also be referred to as a rotary contact structure,
the main contact 2 may also be referred to as a rotary contact, and the main touch
portion 2-0 may also be referred to as a rotary touch portion.
[0062] Mode 3: the main contact structure m and the movable contact 4 are both disposed
to move as a whole on the preset plane, and the movable contact structure m moves
facing the movable contact 4 and in an opposite direction to the movable contact 4,
so that the main touch portion 2-0 and the movable touch portion 4-1 are engaged and
disengaged, that is, the main contact 2 and the movable contact 4 are closed and disconnected;
when the main contact structure m moves from the closed position to the disconnected
position, the main contact structure m moves from the closed position to the intermediate
position, and the main touch portion 2-0 drives the movable contact 4 to move as a
whole from the initial position to the disengaged position through the movable touch
portion 4-1; meanwhile, the elastic member 6 stores energy to the maximum; after the
main touch portion 2-0 is disengaged from the movable touch portion 4-1, the elastic
member 6 releases energy to drive the movable touch portion 4-1 to move back to the
initial position; and meanwhile, the main contact structure m continues to move to
the disconnected position, and the main touch portion 2-0 moves in the opposite direction
to the movable touch portion 4-1.
[0063] Mode 4: the main contact structure m is disposed to move as a whole on the preset
plane, the movable contact 4 is disposed pivotally, and the main contact structure
m moves as a whole close to and away from the movable contact 4, such that the main
touch portion 2-0 and the movable touch portion 4-1 are engaged and disengaged, that
is, the main contact 2 and the movable contact 4 are closed and disconnected; when
the main contact structure m moves from the closed position to the disconnected position,
the main contact structure m moves as a whole from the closed position to the intermediate
position, and the main touch portion 2-0 drives the movable touch portion 4-1 to rotate
around a rotation center of the movable contact 4, so that the entire movable contact
4 rotates; meanwhile, the movable contact 4 enables the elastic member 6 store energy,
and when the movable touch portion 4-1 rotates to the disengaged position, the elastic
member 6 stores energy to the maximum; the main contact structure m continues to move
from the intermediate position to the disconnected position, such that the main touch
portion 2-0 is disengaged from the movable touch portion 4-1; and the elastic member
6 releases energy to drive the movable touch portion 4-1 to rotate reversely and reset
to the initial position, and the main contact structure m continues to move to the
disconnected position.
[0064] In the switching device of the present invention, a movement mode of the main contact
structure m and the movable contact structure s of the contact system is preferably
Mode 1 or Mode 2. Further, in Mode 1 and Mode 2, the main contact structure m further
includes a rotating shaft 3 which is disposed pivotally, the main contact structure
m is disposed pivotally through the rotating shaft 3, the main contact 2 is plugged
into the rotating shaft 3, and the main touch portion 2-0 protrudes from one radial
side of the rotating shaft 3.
[0065] As shown in FIGS. 1-18, the main touch portion 2-0 makes plug-in fit with the movable
touch portion 4-1. Therefore, the main touch portion 2-0 is engaged with the movable
touch portion 4-1, which achieves a simple structure and reliable contact and is conducive
to simplifying the structure. Further, the contact system further includes at least
one group of plug-in structure. The plug-in structure includes a plug-in plate and
a socket c, one of which is disposed on the main touch portion 2-0 and the other is
disposed on the movable touch portion 4-1. The plug-in plate is disposed in the socket
c and is clamped by an inner side wall of the socket c, such that the main touch portion
2-0 and the movable touch portion 4-1 are engaged. Further, the main contact 2 includes
two main touch portions 2-0 disposed at both ends thereof, and the two main touch
portions 2-0 cooperate with the movable touch portions 4-1 of the two groups of movable
contacts 4.
[0066] Specifically, the main touch portions 2-0 make plug-in fit with the movable touch
portions 4-1 through a group of plug-in structure.
[0067] A first setting mode of the plug-in structure is shown in FIGS. 1-6: the main touch
portion 2-0 is a plug-in plate, a cross-section of the movable touch portion 4-1 is
of a U-shaped structure, the socket c is formed in the middle of the U-shaped structure,
and the plug-in plate is plugged into the socket. Further, the movable contact 4 is
formed by bending a metal sheet, such that the cross-section of the formed movable
touch portion 4-1 is of a U-shaped structure.
[0068] A second setting mode of the plug-in structure is shown in FIGS. 7-9: the main touch
portion 2-0 includes two main contact blades 2-1 which are disposed oppositely, a
socket c is formed between the two main contact blades 2-1, the movable touch portion
4-1 is a plug-in plate, and the plug-in plate is plugged into the socket c and clamped
by the inner side wall of the socket c. The main contact 2 includes two main contact
plates which are spaced in parallel, namely a first main contact plate 2a and a second
main contact plate 2b. The main contact blades 2-1 are disposed at both ends of the
first main contact plate 2a and the second main contact plate 2b, respectively.
[0069] Specifically, the main touch portions 2-0 make plug-in fit with the movable touch
portions 4-1 through multiple groups of plug-in structures. Further, the main touch
portion 2-0 is provided with a plug-in plate and a socket c, which are a movable plug-in
plate and a movable socket, and at least one side wall of the movable socket functions
as the movable plug-in plate. The movable touch portion 4-1 is provided with a plug-in
plate and a socket c, which are a static plug-in plate and a static socket, and at
least one side wall of the static socket functions as the static plug-in plate. The
main touch portion 2-0 makes plug-in fit with the movable touch portion 4-1, the movable
plug-in plate is plugged into the static socket, the static plug-in plate is plugged
into the movable socket, and the side wall of the movable socket and the side wall
of the static socket are alternately arranged.
[0070] A third setting mode of the plug-in structure is shown in FIGS. 15-16: the main touch
portion 2-0 includes two main contact blades 2-1 which are disposed oppositely, the
two main contact blades 2-1 function as two movable plug-in plates, and a movable
socket is formed between the two main contact blades; the movable touch portion 4-1
includes two static sockets, and the side wall between the two static sockets functions
as a static plug-in plate; and when the main touch portion 2-0 is engaged with the
movable touch portion 4-1, the two main contact blades 2-1 are respectively plugged
into the two static sockets, the static plug-in plate is plugged into the movable
socket, and two side walls on both sides of the two static sockets are clamped on
both sides of the two main contacts 2-1. Further, the main contact 2 includes two
main contact plates which are spaced in parallel, namely a first main contact plate
2a and a second main contact plate 2b, respectively. The main contact blades 2-1 are
disposed at both ends of the first main contact plate 2a and the second main contact
plate 2b, respectively.
[0071] A fourth implementation mode of the plug-in structure is shown in FIGS. 17-18: the
main touch portion 2-0 includes three main contact blades 2-1 which are spaced side
by side, a movable socket is formed between every two adjacent main contact blades
2-1, and the main contact blade 2-1 in the middle functions as the movable plug-in
plate; a cross-section of the movable touch portion 4-1 is of a U-shaped structure,
a socket c, which is a static socket, is formed in the middle of the U-shaped structure,
and the side walls on both sides of the static socket function as static plug-in plates;
and when the main touch portion 2-0 is engaged with the movable touch portion 4-1,
one movable plug-in plate is plugged into the static socket, the two static plug-in
plates are plugged into the two movable sockets, and the two main contact blades 2-1
are clamped on both sides of the movable touch portion 4-1. Further, the main contact
2 includes three main contact plates which are sequentially spaced side by side, namely
a first main contact plate 2a, a third main contact plate 2c and a second main contact
plate 2b. The main contact blades 2-1 are disposed at both ends of the three main
contact plates, respectively. The main contact blade 2-1 of the second main contact
plate 2c functions as the movable plug-in plate.
[0072] It should be pointed out that the engagement of the main touch portion 2-0 and the
movable touch portion 4-1 is not limited to plug-in fit. For example, the main touch
portion 2-0 may also cooperate with the movable touch portion 4-1 through a buckle
structure. The buckle structure includes a first structure and a second structure
which cooperate with each other. The first structure and the second structure which
are in buckle fit are released from buckle fit when they are pulled by a predetermined
external force. For example, the first structure and the second structure are two
half-arrow clamping hooks which cooperate with each other; or the first structure
is two elastic clamping arms disposed on the movable touch portion 4-1, each elastic
clamping arm is of a >-shaped structure, and the tips of the >-shaped structures of
the two elastic clamping arms are opposite to each other; and the second structure
is two protrusions disposed on the main touch portion 2-0, and when the main contact
2 and the movable contact 4 are closed, the two protrusions enter between the free
ends of the two elastic clamping arms, squeeze between the tips of the >-shaped structures
of the two elastic clamping arms, and enter between the other ends of the two elastic
clamping arms.
[0073] An embodiment of the rotary contact structure is shown in FIGS. 19-21.
[0074] In the rotary contact structure in the present embodiment, the rotating shaft 3 includes
a rotating shaft seat 31 and a rotating shaft cover 33 that are spliced oppositely
along its axial direction, and the rotary contact is clamped between the rotating
shaft seat 31 and the rotating shaft cover 33 and includes at least one rotary touch
portion which protrudes from the radial side of the rotating shaft 3 and cooperates
with the movable contact 4. Further, the rotary contact includes two rotary touch
portions disposed at both ends thereof. The two rotary touch portions are a first
rotary touch portion and a second rotary touch portion, respectively. The two rotary
touch portions are used to be closed with and disconnected from the two movable contacts
4 disposed on both radial sides of the rotary contact structure, respectively. The
two movable contacts 4 are a first movable contact used to be closed with and disconnected
from the first rotary touch portion and a second movable contact used to be closed
with and disconnected from the second rotary touch portion, respectively. The rotary
contact structure and the two movable contacts 4 form a contact system with dual breakpoints,
which is conducive to improving the disconnection capacity of the contact system and
the switching device.
[0075] Further, the rotating shaft includes a plug portion 3p disposed at its radial end.
The plug portion 3p is used to make plug-in transmission connection with an external
structure. The plug portion 3p includes a main plug 33-2 and a secondary plug 31-1.
The main plug 33-2 is disposed on a side of the rotating shaft cover 33 away from
the rotating shaft seat 31. The secondary plug 31-1 is disposed on a side of the rotating
shaft seat 31 facing the rotating shaft cover 33. The secondary plug 31-1 passes through
a rotating shaft cover hole 33-1 of the rotating shaft cover 33 and forms the plug
portion 3p side by side with the main plug 33-2. The "external structure" may be an
output shaft of the operating mechanism; or the "external structure" refers to a plurality
of rotary contact structures which are disposed in linkage side by side along their
axial direction, and the plug portion 3p of one rotating shaft 3 makes plug-in transmission
connection with the adjacent rotating shaft 3, so as to achieve the linkage of each
rotary contact structure, that is, to achieve the synchronous closure and disconnection
of each contact system. The plug portion 3p is composed of the main plug 33-2 disposed
on the rotating shaft cover 33 and the secondary plug 31-1 disposed on the rotating
shaft seat 31, which improves the structural strength of the plug portion 3p, ensures
the reliability of its plug-in connection with the external structure, ensures the
movement synchronization of the rotating shaft cover 33 and the rotating shaft seat
31 in the rotation process of the rotating shaft 3, and ensures the synchronization
of the rotation of each rotary contact structure while being in plug-in connection
with the adjacent rotating shaft 3. Further, a rotation axis of the rotating shaft
3 passes through the middle of the main plug 33-2, and the secondary plug 31-1 is
spaced in parallel from the rotation axis of the rotating shaft 3. Further, the secondary
plug 31-1 is spaced from the main plug 33-2. That is, a gap is provided between the
secondary contact 31-1 and the main plug 33-2. The width of this gap can be adjusted
according to actual needs.
[0076] Further, a cross-section of the main plug 33-2 is a long strip structure. A center
point of the long strip structure is preferably located on the rotation axis of the
rotating shaft 3. The length of the long strip structure is 20%-70% of a maximum outer
diameter of the rotating shaft seat 31. Further, the length of the long strip structure
is 25%-65% of the maximum outer diameter of the rotating shaft seat 31. Therefore,
the structural strength of the main plug 33-2 is ensured, and the structural design
of the rotating shaft cover 33 is facilitated.
[0077] Further, the rotating shaft 3 further includes a jack portion 3g disposed at its
other axial end. The jack portion 3g is adapted to the plug portion 3p. That is, the
shape of the jack portion 3g matches the shape of the plug portion 3p. The jack portion
and the plug portion may make plug-in fit with each other when they are located on
two different structures (e.g., two rotating shafts 3), respectively. When the plurality
of rotary contact structures are arranged in linkage side by side along their axial
direction, the plug portion 3p of one rotating shaft 3 in two adjacent rotating shafts
3 makes plug-in fit with the jack portion 3g of the other rotating shaft 3, thereby
simplifying the connection structure and operation of each rotary contact structure,
and ensuring the connection strength and movement consistency of each rotating shaft
3. Further, the jack portion 3g includes a main jack 31-5 and a secondary jack 31-6,
the main jack 31-5 is adapted to the main plug 33-2, and the secondary jack 31-6 is
adapted to the secondary plug 31-1. Further, the rotation axis of the rotating shaft
3 passes through the middle of the main jack 31-5, and the secondary jack 31-6 is
spaced in parallel from the rotation axis of the rotating shaft 3. Further, the secondary
jack 31-6 is spaced from the main jack 33-5. That is, a partition wall is provided
between the secondary jack 31-6 and the main jack 33-5. The width of this partition
wall can be adjusted according to actual needs.
[0078] Specifically, the plug portion 3p includes two groups of secondary plugs 31-1 and
a group of main plugs 33-2, the two groups of secondary plugs 31-1 are respectively
disposed on both sides of the main plug 33-2, and a gap is provided between the secondary
plug 31-1 and the main plug 33-2. The jack portion 3g includes two groups of secondary
jacks 31-6 and a group of main jacks 31-5, the two groups of secondary jacks 31-6
are respectively disposed on both sides of the main jack 31-5, and a partition wall
is provided between the secondary jack 31-6 and the main jack 31-5.
[0079] As other embodiments, the plug portion 3p includes two groups of main plugs 33-2
and a group of secondary plugs 31-1, the rotation axis of the rotating shaft 3 (also
the rotation axis of the rotary contact structure) passes through the middle of the
secondary plug 31-1, the two groups of main plugs 33-2 are respectively disposed on
both sides of the secondary plug 31-1, the rotating shaft cover 33 is provided with
a rotating shaft cover hole 33-1 for the secondary plug 31-1 to pass through, and
the rotating shaft cover hole 33-1 is located between the two groups of main plugs
33-2.
[0080] Further, in the radial direction of the rotating shaft 3, the two groups of secondary
plugs 31-1 are symmetrically disposed on both sides of the main plug 33-2; and in
the radial direction of the rotating shaft 3, the two groups of secondary jacks 31-6
are symmetrically disposed on both sides of the main jack 31-5.
[0081] Further, a cross-section of the secondary plug 31-1 is a fan-shaped structure. A
pair of opposite side surfaces of the main plug 33-2 (i.e., two large side surfaces
of the main plug 33-2, which face both sides of the two secondary plugs 31-1, respectively)
are provided with a plurality of grooves extending along the axial direction of the
rotating shaft 3, such that the cross-section of the main plug 33-2 is similar to
a fishbone-shaped structure. Therefore, when the plug portions 3p of the two adjacent
rotating shafts 3 cooperate with the jack portions 3g, the linkage and synchronization
of the two rotating shafts 3 are ensured. A cross-section of the secondary jack 31-6
is a fan-shaped structure. Further, the side surfaces of the main jack 31-5, which
face the two secondary jacks 31-6 respectively, are provided with convex ribs (not
shown) extending along the axial direction of the rotating shaft 3. The convex ribs
are adapted to the grooves.
[0082] Further, the rotating shaft cover 33 further includes a cover plate 33-0. The main
plug 33-2 is disposed on a side of the cover plate 33-0 away from the rotating shaft
seat 31 (also on a side of a seat body 31-0 of the cover plate 33-0 away from the
rotating shaft seat 31). The cover plate 33-0 is provided with two groups of rotating
shaft cover holes 33-1. The two groups of rotating shaft cover holes 33-1 are respectively
provided on both sides of the main plug 33-2 for the two groups of secondary plugs
31-1 to pass through. The rotating shaft seat 31 further includes a seat body 31-0.
The secondary plug 31-1 is disposed on a side of the seat body 31-0 facing the rotating
shaft cover 33 (also a side of the seat body 31-0 facing the cover plate 33-0). The
cover plate 33-0 is preferably of a circular plate structure, and the seat body 31-0
is preferably of a cylindrical structure.
[0083] Further, the jack portion 3g is disposed on a side of the seat body 31-0 away from
the rotating shaft cover 33 (also on a side of the seat body 31-0 away from the cover
plate 33-0). Further, the rotating shaft seat 31 further includes an axial protrusion.
The axial protrusion is disposed on a side of the seat body 31-0 away from the rotating
shaft cover 33. The axial protrusion and the plug portion 3p protrude in opposite
directions along a circumferential direction of the rotating shaft 3, respectively.
The jack portion 3g is disposed on the axial protrusion.
[0084] As shown in FIGS. 3-5, the rotating shaft 3 further includes a buckle structure.
The rotating shaft seat 31 is connected to the rotating shaft cover 33 through the
buckle structure, which simplifies the assembly operation between the rotating shaft
seat 31 and the rotating shaft cover 33 and improves the assembly efficiency.
[0085] Further, the buckle structure includes a clamping hook 33-3 and a clamping hole 31-2.
The clamping hook 33-3 is disposed on a side of the rotating shaft cover 33 facing
the rotating shaft seat 31. The clamping hole 31-2 is provided on the rotating shaft
seat 31. Further, the clamping hook 33-3 is disposed on a side of the cover plate
33-0 facing the rotating shaft seat 31, and the clamping hole 31-2 is provided on
the seat body 31-0. Further, the clamping hook 33-3 is a half-arrow clamping hook.
[0086] Specifically, as shown in FIG. 5, the rotating shaft seat 31 and the rotating shaft
cover 33 are connected through four groups of buckle structures, and the four groups
of buckle structures are located at four vertices of a quadrilateral. It should be
pointed out that the number of the buckle structures can be increased or decreased
as needed.
[0087] The rotary contact further includes a rotary contact trunk clamped between the rotating
shaft seat 31 and the rotating shaft cover 33, and the rotary touch portion is connected
to the rotary contact trunk. Further, the two rotary touch portions are respectively
connected to both ends of the rotary contact trunk and are respectively located on
both radial sides of the rotating shaft 3.
[0088] The rotating shaft seat 31 is provided with a rotating shaft seat groove 31-3 for
accommodating the rotary contact trunk. The rotary contact trunk is disposed in the
rotating shaft seat groove 31-3. The rotating shaft cover 33 and the rotating shaft
seat 31 are spliced to clamp the rotating contact trunk. Further, the rotary contact
makes limiting fit with the rotating shaft 3 to prevent the rotary contact 32 from
moving along the radial direction of the rotating shaft 3, resulting in the failure
of the closure of the rotary touch portion and the movable contacts 4. Specifically,
the rotating contact further includes a rotary contact limiting portion disposed on
the rotary contact trunk. The rotary contact limiting portion makes limiting fit with
the side wall of the rotating shaft seat groove 31-3 to prevent the rotary contact
from moving along an extension direction of the rotating shaft seat groove 31-3, that
is, to prevent the rotary contact from moving along the radial direction of the rotating
shaft 3. Further, the rotary contact limiting portion is an arc-shaped protrusion
disposed on a side edge of the rotary contact trunk, and the side wall of the rotating
shaft seat groove 31-3 is provided with a corresponding matching arc-shaped groove.
Further, the rotating shaft seat groove 31-3 is disposed at one end of the seat body
31-0 of the rotating shaft seat 31 facing the rotating shaft cover 33. Further, the
rotating shaft seat groove 31-3 is disposed at one end of the seat body trunk 31-00
of the seat body 31-0 facing the rotating shaft cover 33.
[0089] Further, the seat body 31-0 of the rotating shaft seat 31 includes a seat body trunk
31-00 and a seat body end plate 31-01 which are disposed coaxially. An axis of the
seat body trunk 31-00 and the seat body end plate 31-01 coincides with the rotation
axis of the rotating shaft 3. An outer diameter of the seat body trunk 31-00 is less
than an outer diameter of the seat body end plate 31-01. The secondary plug 31-1 is
disposed on a side of the seat body trunk 31-00 facing the rotating shaft cover 33.
The cover plate 33-0 of the rotating shaft cover 33 and the seat body end plate 31-01
are opposite to each other and located outside both axial ends of the seat body trunk
31-00. The cover plate 33-0 has the same outer diameter as the seat body end plate
31-01. The main plug 33-2 is disposed on a side of the end plate 33-0 away from the
rotating shaft seat 31. The rotary touch portion is at least partially located between
the seat body end plate 31-01 and the cover plate 33-0. That is, a circular groove
located on the outer circumferential side of the seat body trunk 31-00 is formed between
the seat body end plate 31-01 and the cover plate 33-0. The rotary touch portion is
at least partially located in the annular groove and is obscured by the seat body
end plate 31-01 and the cover plate 33-0. Avoidance notches 31-010 for avoiding the
movable contacts 4 is disposed at the edge of the seat body end plate 31-01 and/or
the cover plate 33-0. During assembly, the movable contact 4 can enter between the
seat body end plate 31-01 and the cover plate 33-0 through the avoidance notch 31-010
to cooperate with the rotary touch portion located in the annular groove, thereby
simplifying the assembly operation. Specifically, the seat body end plate 31-01 is
provided with two avoidance notches 31-010. The two avoidance notches 31-010 are located
at both radial ends of the seat body end plate 31-01 and are respectively used to
avoid the movable contacts 4 that cooperate with the two rotary touch portions of
the rotary contact.
[0090] It should be explained that, in the description of the present invention, the terms
such as "up", "down", "left", "right", "inner" and "outer" indicating the directional
or positional relations on the basis of the directional or positional relations shown
in the drawings are only used for conveniently describing the present invention and
simplifying the description, not indicate or imply that the referred devices or elements
must have a specific orientation and be configured and operated in a specific direction;
therefore, they cannot be construed as a limitation on the present invention.
[0091] We have made further detailed description of the present invention mentioned above
in combination with specific preferred embodiments, but it is not deemed that the
specific embodiments of the present invention is only limited to these descriptions.
A person skilled in the art can also, without departing from the concept of the present
invention, make several simple deductions or substitutions, which all be deemed to
fall within the protection scope of the present invention.
1. A contact system, comprising a main contact structure (m) and at least one group of
movable contact structure (s), wherein the main contact structure (m) comprises a
main contact (2); the main contact (2) comprises at least one main touch portion (2-0);
the movable contact structure (s) comprises a movable contact (4); the movable contact
(4) comprises a movable touch portion (4-1); when the main contact (2) is located
at a closed position, the main touch portion (2-0) and the movable touch portion (4-1)
are engaged to enable the main contact (2) and the movable contact (4) to be closed;
the movable contact structure (s) further comprises an elastic member (6) cooperating
with the movable contact (4); and
in the disconnection process of the main contact (2) from the movable contact (4),
when the main touch portion (2-0) drives the movable touch portion (4-1) to move from
an initial position to a disengaged position, the elastic member (6) stores energy,
such that the main contact (2) continues to move, and the elastic member (6) releases
energy to drive the movable touch portion (4-1) to reset to the initial position.
2. The contact system according to claim 1, wherein the main contact structure (m) is
disposed pivotally or disposed to move as a whole.
3. The contact system according to claim 2, wherein the main contact structure (m) is
disposed pivotally and is a rotary contact structure; the main contact (2) is a rotary
contact; the main touch portion (2-0) is a rotary touch portion; when the rotary contact
is located at a closed position, the rotary touch portion and the movable touch portion
(4-1) are engaged to enable the rotary contact and the movable contact (4) to be closed;
and in the disconnection process of the rotary contact from the movable contact (4),
when the rotary touch portion drives the movable touch portion (4-1) to move from
an initial position to a disengaged position, the elastic member (6) stores energy,
such that the rotary contact continues to move, the elastic member (6) releases energy
to drive the movable touch portion (4-1) to reset to the initial position, and the
main touch portion (2-0) and the movable touch portion (4-1) move away from each other.
4. The contact system according to claim 3, wherein the contact system comprises two
groups of movable contact structures (s); the rotary contact comprises two rotary
touch portions disposed at both ends thereof respectively; and when the rotary contact
is located at the closed position, the two rotary touch portions are respectively
engaged with the two movable touch portions (4-1) to enable the rotary contact and
the movable contact (4) to be closed.
5. The contact system according to claim 1, wherein the movable contact (4) is disposed
rotatably or disposed to move as a whole.
6. The contact system according to claim 5, wherein the middle of the movable contact
(4) is disposed pivotally; the movable touch portion (4-1) is disposed at one end
of the movable contact (4), and the other end of the movable contact (4) cooperates
with the elastic member (6); and the movable contact (4) rotates so that the movable
touch portion (4-1) is switched between the initial position and the disengaged position.
7. The contact system according to claim 5, wherein the movable contact (4) moves as
a whole within a preset plane, and the movable contact (4) moves as a whole so that
the movable touch portion (4-1) is switched between the initial position and the disengaged
position.
8. The contact system according to claim 7, wherein the movable contact structure (s)
further comprises a guide rail structure (g), and the movable contact (4) is disposed
to move as a whole along an extension direction of the guide rail structure (g).
9. The contact system according to claim 8, wherein the movable contact structure (s)
further comprises a movable contact shaft (5) which is disposed fixedly; the movable
contact (4) comprises a guide plate (4-4); a guide rail structure (g) comprises guide
rail walls (1-2) and a guide rail groove (1-1) formed between two opposite guide rail
walls (1-2); the movable contact shaft (5) is slidably plugged into the guide rail
groove (1-1); and the guide plate (4-4) and the movable contact shaft (5) are disposed
on both sides of one guide rail wall (1-2), respectively.
10. The contact system according to claim 9, wherein the movable contact shaft (5) and
the guide plate (4-4) make sliding contact with both sides of the corresponding guide
rail wall (1-2), respectively.
11. The contact system according to claim 3, wherein the rotary contact structure further
comprises a rotating shaft (3) which is disposed pivotally; the rotary contact is
plugged into the rotating shaft (3), and both ends of the rotary contact protrude
from both radial sides of the rotating shaft (3), respectively; and
the two groups of movable contact structures (s) are mutually centrosymmetric structures
with a rotation center of the rotary contact structure as a symmetry center.
12. The contact system according to claim 1, wherein the main touch portion (2-0) makes
plug-in fit with the movable touch portion (4-1), such that the main contact structure
(m) and the movable contact structure (s) are closed.
13. The contact system according to claim 12, wherein the contact system further comprises
at least one group of plug-in structure; the plug-in structure comprises a plug-in
plate and a socket (c), one of which is disposed on the main touch portion (2-0) and
the other is disposed on the movable touch portion (4-1); and the plug-in plate is
plugged into the socket (c) and is clamped by an inner side wall of the socket (c),
such that the main touch portion (2-0) and the movable touch portion (4-1) are engaged.
14. The contact system according to claim 3, wherein the rotary contact structure further
comprises a rotating shaft (3) which is disposed to rotate around its own axis; the
rotating shaft (3) comprises a rotating shaft seat (31) and a rotating shaft cover
(33) which are spliced oppositely in its axial direction; the rotating contact is
clamped between the rotating shaft seat (31) and the rotating shaft cover (33) and
comprises rotary touch portions which are disposed on both radial sides of the rotating
shaft (3) and cooperate with the movable contact (4); the rotating shaft (3) further
comprises a plug portion (3p) disposed at its axial end; the plug portion (3p) comprises
a main plug (33-2) and a secondary plug (31-1); the main plug (33-2) is disposed on
one side of the rotating shaft cover (33) away from the rotating shaft seat (31);
the secondary plug (31-1) is disposed on one side of the rotating shaft seat (31)
facing the rotating shaft cover (33); the secondary plug (31-1) passes through a rotating
shaft cover hole (33-1) of the rotating shaft cover (33) and is disposed side by side
with the main plug (33-2); the rotating shaft (3) further comprises a jack portion
(3g) disposed at its other axial end; and the jack portion (3g) is adapted to the
plug portion (3p).
15. A switching device, the switching device comprising the contact system according to
any one of claims 1 to 14.