FIELD OF THE INVENTION
[0001] The present invention pertains to the field of power apparatuses, and particularly
provides a magnetic suspension pump, a refrigeration device having same and an air
conditioner outdoor unit.
BACKGROUND OF THE INVENTION
[0002] A magnetic suspension motor mainly includes a housing, a stator provided in the housing
and fixedly connected with the housing, a rotating shaft provided in the stator, a
radial magnetic suspension bearing for supporting the rotating shaft to rotate, and
an axial thrust bearing for keeping an axial position of the rotating shaft. The magnetic
suspension motor further includes a protective bearing provided in the housing, and
the protective bearing is configured to bear the static rotating shaft. When the magnetic
suspension motor works, the radial magnetic suspension bearing is electrified to separate
the rotating shaft from the protective bearing and suspend the rotating shaft.
[0003] A magnetic suspension pump includes the magnetic suspension motor and a pump driven
by the magnetic suspension motor. When the magnetic suspension pump is powered off,
the rotating shaft rotating at a high speed loses buoyancy and impacts the protective
bearing, and the protective bearing is prone to damage.
BRIEF DESCRIPTION OF THE INVENTION
[0004] An object of the present invention is to overcome at least one technical defect of
a prior art, and solve a problem that a protective bearing of an existing magnetic
suspension pump is prone to damage by an impact of a rotating shaft when a magnetic
suspension motor is powered off.
[0005] A further object of the present invention is to prolong a service life of a first
sealing ring and/or a second sealing ring.
[0006] In order to achieve the above objects, the present invention provides a magnetic
suspension pump, including:
a motor including a motor housing and a rotating shaft;
a pump including a pump housing and an impeller, the pump housing and the motor housing
being fixedly connected or integrally formed, and the impeller being coaxially and
fixedly connected with the rotating shaft;
a first sealing ring provided on the motor housing and/or the pump housing;
a second sealing ring provided on the impeller and matched with the first sealing
ring, when the second sealing ring rotates, an annular groove being scratched on the
first sealing ring or by the first sealing ring; and
a buffering member, wherein the buffering member is provided between the first sealing
ring and the motor housing and/or the pump housing, and the buffering member can deform
along an axial direction of the first sealing ring; and/or, the buffering member is
provided between the second sealing ring and the impeller, and the buffering member
can deform along an axial direction of the second sealing ring.
[0007] Optionally, the buffering member is a buffering ring having an annular structure,
and the buffering ring is provided between the first sealing ring and the pump housing
along a radial direction of the first sealing ring; an inner circumferential surface
of the buffering ring abuts against the first sealing ring, and an outer circumferential
surface of the buffering ring abuts against the pump housing.
[0008] Optionally, the buffering member is a spring, and the spring is provided between
the first sealing ring and the pump housing along the axial direction of the first
sealing ring; the spring has one axial end connected with the first sealing ring and
the other axial end connected with the pump housing.
[0009] Optionally, the spring abuts against the first sealing ring and the pump housing,
and at least one spring abuts against each of two axial ends of the first sealing
ring.
[0010] Optionally, the first sealing ring includes a first axial sealing ring and a first
radial sealing ring, the second sealing ring includes a second axial sealing ring
and a second radial sealing ring, the first axial sealing ring is matched with the
second axial sealing ring, the first radial sealing ring is matched with the second
radial sealing ring, and each of the first axial sealing ring and the first radial
sealing ring corresponds to the buffering member.
[0011] Optionally, the first sealing ring is an annular sleeve; the second sealing ring
is an annular tooth, and the annular tooth has a wedge-shaped section.
[0012] Optionally, the first sealing ring has a smaller hardness than the second sealing
ring.
[0013] Optionally, the pump is a centrifugal pump.
[0014] Furthermore, the present invention provides a refrigeration device including the
magnetic suspension pump according to any one of the above-mentioned technical solutions.
[0015] Further, the present invention provides an air conditioner outdoor unit including
the magnetic suspension pump according to any one of the above-mentioned technical
solutions.
[0016] Based on the foregoing description, it can be understood by those skilled in the
art that, in the foregoing technical solution of the present invention, by providing
the first sealing ring on the pump housing, providing the second sealing ring on the
impeller, matching the first sealing ring with the second sealing ring, and scratching
the annular groove on one of the first sealing ring and the second sealing ring by
the other, the pump housing and the impeller can be dynamically sealed by the first
sealing ring and the second sealing ring, and meanwhile, the impeller can freely rotate
relative to the pump housing by means of the annular groove.
[0017] It can also be appreciated by those skilled in the art that since the annular groove
is scratched by the first sealing ring or the second sealing ring (specifically, when
the impeller rotates), a gap between the first sealing ring and the second sealing
ring is small. Therefore, when the motor is powered off, the first sealing ring and
the second sealing ring can come into contact firstly, and then, the rotating shaft
comes into contact with the protective bearing. When the first sealing ring and the
second sealing ring contact each other, kinetic energy and momentum of the rotating
shaft can be absorbed, thereby reducing the impact of the rotating shaft on the protective
bearing, and effectively avoiding a risk of damage to the protective bearing.
[0018] Further, by providing the buffering member between the first sealing ring and the
motor housing and/or the pump housing, and/or providing the buffering member between
the second sealing ring and the impeller, when the impeller moves along the axial
direction of the first sealing ring, the first sealing ring or the second sealing
ring can move along with the impeller by virtue of deformation of the buffering member,
a side wall of the annular groove is prevented from being continuously scratched by
the first sealing ring or the second sealing ring, and then, a width of the annular
groove is prevented from being increased, and the annular groove can maintain a small
width, thereby guaranteeing the gap between the first sealing ring and the second
sealing ring, and prolonging the service life of the first sealing ring and/or the
second sealing ring.
[0019] Further, by configuring the first sealing ring as the annular tooth, the width of
the annular groove can be sufficiently small, thereby reducing an amount of outward
leakage of fluid in the pump housing.
[0020] Still further, by configuring the first sealing ring to include the first axial sealing
ring and the first radial sealing ring and configuring the second sealing ring to
include the second axial sealing ring and the second radial sealing ring, the first
axial sealing ring and the second axial sealing ring can absorb an axial impact force
when the rotating shaft is powered off and limit an axial displacement of the rotating
shaft, the first radial sealing ring and the second radial sealing ring can absorb
a radial impact force when the rotating shaft is powered off and limit a radial displacement
of the rotating shaft, and therefore, the rotating shaft can be prevented from deflecting.
[0021] According to the following detailed description of specific embodiments of the present
invention in conjunction with drawings, those skilled in the art will better understand
the aforementioned and other objects, advantages and features of the present invention.
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly explain the technical solution of the present invention,
some embodiments of the present invention will be described hereinafter with reference
to the accompanying drawings. Those skilled in the art should appreciate that components
or parts with the same reference numerals are the same or similar in different drawings;
the drawings of the present invention are not necessarily drawn to scale relative
to each other. In the drawings:
Fig. 1 is a sectional view of a magnetic suspension pump according to some embodiments
of the present invention;
Fig. 2 is an enlarged view of portion A of Fig. 1;
Fig. 3 is an enlarged view of portion B of Fig. 2;
Fig. 4 is an enlarged view of portion C of Fig. 3;
Fig. 5 is a schematic diagram of an effect of a buffering member in some embodiments
of the present invention when an impeller is radially offset;
Fig. 6 is a schematic diagram of an effect of the buffering member in some embodiments
of the present invention when the impeller is axially offset; and
Fig. 7 is a schematic diagram of the effect of the buffering member in some other
embodiments of the present invention.
DETAILED DESCRIPTION
[0023] Reference is now made in detail to embodiments of the present invention, one or more
examples of which are shown in the drawings. The embodiments are provided to explain
the present invention and not to limit it. In fact, it will be apparent to those skilled
in the art that various modifications and variations can be made in the present invention
without departing from the scope or spirit of the present invention. For instance,
features illustrated or described as part of one embodiment can be used with another
embodiment to yield a still further embodiment. Therefore, it is intended that the
present invention covers the modifications and variations within the scope of the
appended claims and their equivalents.
[0024] It should be understood by those skilled in the art that the embodiments described
below are only some embodiments of the present invention and not all embodiments of
the present invention, and the embodiments are intended to explain the technical principle
of the present invention and not to limit the scope of the present invention. All
other embodiments obtained by a person of ordinary skill in the art based on the embodiments
of the present invention without creative efforts shall fall within the protection
scope of the present invention.
[0025] It should be noted that, in the description of the present invention, directions
or positional relationships indicated by terms "center", "upper", "lower", "top",
"bottom", "left", "right", "vertical", "horizontal", "inner", "outer" etc. are based
on directions or positional relationships shown in the drawings, and they are used
only for facilitating the description, but do not indicate or imply that a described
apparatus or element must have a specific orientation or be constructed and operated
in a specific orientation. Therefore, it cannot be understood as a limitation on the
present invention. In addition, the terms such as "first", "second" and "third" are
merely used for purposes of description and are not intended to indicate or imply
relative importance.
[0026] Furthermore, it should also be noted that, in the description of the present invention,
unless specified or limited otherwise, the terms "mounted", "connected", "coupled"
and the like are used broadly, and may be, for example, fixed connections, detachable
connections, or integral connections; may also be mechanical or electrical connections;
may also be direct connections or indirect connections via intervening structures;
may also be inner communications of two elements. The specific meanings of the above
terms in the present invention can be understood by those skilled in the art according
to specific situations.
[0027] Fig. 1 is a sectional view of a magnetic suspension pump according to some embodiments
of the present invention, Fig. 2 is an enlarged view of portion A of Fig. 1, Fig.
3 is an enlarged view of portion B of Fig. 2, and Fig. 4 is an enlarged view of portion
C of Fig. 3.
[0028] As shown in Fig. 1, in some embodiments of the present invention, the magnetic suspension
pump includes a motor 1 and a pump 2. Preferably, the magnetic suspension pump includes
two pumps 2, and the two pumps 2 are provided at two axial ends of the motor 1 respectively.
Furthermore, those skilled in the art can also configure only one pump 2 for the magnetic
suspension pump as required; that is, the pump 2 at the left or right of the motor
1 in Fig. 1 is omitted. Or, those skilled in the art may also connect at least two
pumps 2 in series on the left or right side of the motor 1 as required.
[0029] With continued reference to Fig. 1, the motor 1 includes a motor housing 11, a rotating
shaft 12, a radial magnetic suspension bearing 13, an axial magnetic suspension bearing
14, and a protective bearing 15. The rotating shaft 12 is rotatably provided in the
motor housing 11, and the radial magnetic suspension bearing 13, the axial magnetic
suspension bearing 14 and the protective bearing 15 are fixedly provided inside the
motor housing 11.
[0030] When the motor 1 is powered on, gaps exist between the radial magnetic suspension
bearing 13 and the rotating shaft 12, the axial magnetic suspension bearing 14 and
the rotating shaft 12, and the protective bearing 15 and the rotating shaft 12. A
radial gap between the radial magnetic suspension bearing 13 and the rotating shaft
12 is greater than a radial gap between the protective bearing 15 and the rotating
shaft 12; a radial gap between the axial magnetic suspension bearing 14 and the rotating
shaft 12 is greater than the radial gap between the protective bearing 15 and the
rotating shaft 12, such that in a power-off state of the motor 1, the rotating shaft
12 abuts against the protective bearing 15 and does not contact the radial magnetic
suspension bearing 13 and/or the axial magnetic suspension bearing 14.
[0031] With continued reference to Fig. 1, the rotating shaft 12 is provided with a thrust
disc 121, and one axial magnetic suspension bearing 14 is provided on each of two
sides of the thrust disc 121. When the motor 1 is energized, gaps exist between the
thrust disc 121 and the two axial magnetic suspension bearings 14.
[0032] It should be noted that, in the present invention, each of the radial magnetic suspension
bearing 13 and the axial magnetic suspension bearing 14 includes a coil and/or a member
capable of generating a magnetic force when energized. Since the radial magnetic suspension
bearing 13 and the axial magnetic suspension bearing 14 are common parts in the art
and are commercially available, they are not explained too much in the present disclosure.
[0033] With continued reference to Fig. 1, the pump 2 includes a pump housing 21 and an
impeller 22. The pump housing 21 and the motor housing 11 are fixedly connected or
integrally manufactured, and the impeller 22 is coaxially and fixedly connected with
the rotating shaft 12. The rotating shaft 12 drives the impeller 22 to rotate synchronously
when rotating. Further, the pump housing 21 is provided with an inlet 201 and an outlet
202. The rotating impeller 22 creates a negative pressure within the pump housing
21, thereby forcing ambient fluid into the pump housing 21 from the inlet 201 and
forcing fluid within the pump housing 21 out of the pump housing 21 from the outlet
202.
[0034] Although not shown in the drawings, in some embodiments of the present invention,
the pump 2 is a centrifugal pump and the impeller 22 is a centrifugal impeller. Certainly,
those skilled in the art can also configure the pump 2 as a plunger pump, a gear pump,
a vane pump, a rotor pump or other pumps in any form in other embodiments of the present
invention as required.
[0035] With continued reference to Fig. 1, the pump housing 21 includes an inner volute
211 and an outer volute 212. The inner volute 211 and the outer volute 212 are fixedly
connected together by screws or bolts, and the inner volute 211 and the motor housing
11 are fixedly connected together by screws or bolts.
[0036] As shown in Figs. 2 and 3, in some embodiments of the present invention, the magnetic
suspension pump further includes a first sealing ring 3, a second sealing ring 4 and
a buffering member 5. The first sealing ring 3 and the second sealing ring 4 are matched
with each other, the first sealing ring 3 is provided on the motor housing 11 and/or
the pump housing 21, the second sealing ring 4 is provided on the impeller 22, and
when the second sealing ring 4 rotates, an annular groove 6 is scratched on the first
sealing ring 3 or by the first sealing ring 3. The buffering member 5 is provided
between the first sealing ring 3 and the motor housing 11 and/or the pump housing
21, and the buffering member 5 can deform along an axial direction of the first sealing
ring 3; and/or the buffering member 5 is provided between the second sealing ring
4 and the impeller 22, and the buffering member 5 can deform along an axial direction
of the second sealing ring 4.
[0037] Furthermore, those skilled in the art can also provide the first sealing ring 3 on
the impeller 22 and provide the second sealing ring 4 on the pump housing 21 as required.
[0038] Further, those skilled in the art may also provide a buffering member 5 between the
second sealing ring 4 and the pump housing 21, or provide the buffering member 5 only
between the second sealing ring 4 and the pump housing 21 as required.
[0039] Preferably, as shown in Figs. 2 and 3, the first sealing ring 3 includes a first
radial sealing ring 31 and a first axial sealing ring 32, the second sealing ring
4 includes a second radial sealing ring 41 and a second axial sealing ring 42, the
first radial sealing ring 31 is matched with the second radial sealing ring 41, and
the first axial sealing ring 32 is matched with the second axial sealing ring 42.
[0040] Further preferably, as shown in Figs. 2 and 3, the inner volute 211 and the outer
volute 212 are provided with the first radial sealing ring 31 and the first axial
sealing ring 32 respectively. Furthermore, those skilled in the art may also provide
the first radial sealing ring 31 and the first axial sealing ring 32 only on the inner
volute 211 or the outer volute 212 as required; or, the first radial sealing ring
31 is provided on one of the inner volute 211 and the outer volute 212, and the first
axial sealing ring 32 is provided on the other of the inner volute 211 and the outer
volute 212.
[0041] As can be seen from the drawings, a plurality of second radial sealing rings 41 and
a plurality of second axial sealing rings 42 are provided, such that the first radial
sealing ring 31 corresponds to the plurality of second radial sealing rings 41, and
the first axial sealing ring 32 corresponds to the plurality of second axial sealing
rings 42. It can be appreciated by those skilled in the art that the correspondence
of the first sealing ring 3 to a plurality of second sealing rings 4 can reduce stress
between the second sealing rings 4 and the first sealing ring 3, so as to prevent
the second sealing rings 4 and the first sealing ring 3 from excessively abrading
each other. Furthermore, the correspondence of the first sealing ring 3 to the plurality
of second sealing rings 4 can form multiple seals between the second sealing rings
4 and the first sealing ring 3, thereby preventing leakage of the fluid in the pump
housing 21.
[0042] Although not shown in the drawings, the first sealing ring 3 is an annular sleeve,
or the first sealing ring 3 is composed of a plurality of semi-annular structures.
That is, the first radial sealing ring 31 and/or the first axial sealing ring 32 are
annular sleeves, or the first sealing ring 3 is composed of the plurality of semi-annular
structures.
[0043] Further, although not shown in the drawings, the second sealing ring 4 is an annular
tooth; that is, both the second radial sealing ring 41 and the second axial sealing
ring 42 are annular teeth. Preferably, the annular tooth has a wedge-shaped section
(as shown in Fig. 4).
[0044] Preferably, the second radial sealing ring 41 and the second axial sealing ring 42
are integrally formed on the impeller 22. Or, those skilled in the art may also fix
the second radial sealing ring 41 and the second axial sealing ring 42 to the impeller
22 by a threaded connection, welding, interference fit, screw connection, or the like,
and selectively provide the buffering member 5 between the second radial sealing ring
41 and the impeller 22 and/or between the second axial sealing ring 42 and the impeller
22, as required.
[0045] Further, in some embodiments of the present invention, a hardness of the first sealing
ring 3 is smaller than a hardness of the second sealing ring 4, such that the second
sealing ring 4 can scratch a shallow scratch, i.e., the annular groove 6, on the first
sealing ring 3 when rotating with the impeller 22 (as shown in Fig. 4).
[0046] In order to achieve the above object, the first sealing ring 3 in the present invention
may be made of any feasible material, such as epoxy resin, phenolic resin, or the
like.
[0047] Preferably, when the magnetic suspension pump according to the present invention
is assembled, the first sealing ring 3 and the second sealing ring 4 are in transition
fit. When the magnetic suspension pump is energized, the rotating shaft 12 drives
the impeller 22 and the second sealing ring 4 to rotate, and a circumferential edge
of the rotating second sealing ring 4 scratches the shallow scratch, i.e., the annular
groove 6, on the first sealing ring 3 (as shown in Fig. 4).
[0048] It can be appreciated by those skilled in the art that since the annular groove 6
on the first sealing ring 3 is scratched by the rotating second sealing ring 4, a
gap between the first radial sealing ring 31 and the second radial sealing ring 41
and a gap between the first axial sealing ring 32 and the second axial sealing ring
42 are sufficiently small (even 0 in some regions). In other words, the annular groove
6 is created to accommodate operation of the magnetic suspension pump, which not only
saves a production cost, but also allows the second sealing ring 4 to be sufficiently
tightly fitted with the first sealing ring 3 to achieve a good sealing effect on the
pump 2, as compared to an annular groove machined by mechanical equipment.
[0049] Based on the foregoing description, it can be understood by those skilled in the
art that, in the present invention, the annular groove 6 is scratched on the first
sealing ring 3 during the rotation of the second sealing ring 4, such that a pressure
generated when the first sealing ring 3 comes into contact with the second sealing
ring 4 is almost zero, and therefore, the second sealing ring 4, the impeller 22 and
the rotating shaft 12 can rotate freely relative to the first sealing ring 3. Therefore,
the first sealing ring 3 and the second sealing ring 4 of the present invention also
improve a sealing performance of the pump 2 and prevent leakage (including external
leakage and internal leakage) of the fluid compressed in the pump 2 on the premise
of guaranteeing low resistance operation of the magnetic suspension pump.
[0050] Further, in the present invention, by configuring the first sealing ring 3 to include
the first radial sealing ring 31 and the first axial sealing ring 32 and configuring
the second sealing ring 4 to include the second radial sealing ring 41 and the second
axial sealing ring 42, the first radial sealing ring 31 and the second radial sealing
ring 41 can absorb a radial impact force when the rotating shaft 12 is powered off
and limit a radial displacement of the rotating shaft 12, the first axial sealing
ring 32 and the second axial sealing ring 42 can absorb an axial impact force when
the rotating shaft 12 is powered off and limit an axial displacement of the rotating
shaft 12, and therefore, the rotating shaft 12 can be prevented from deflecting.
[0051] Furthermore, in other embodiments of the present invention, those skilled in the
art may provide only the first radial sealing ring 31 and the second radial sealing
ring 41, or only the first axial sealing ring 32 and the second axial sealing ring
42, on the pump 2 as required.
[0052] As shown in Figs. 2 and 3, in some embodiments of the present invention, the buffering
member 5 is a buffering ring 51 having an annular structure. The buffering ring 51
is provided between the first sealing ring 3 and the pump housing 21 in the radial
direction of the first sealing ring 3. An inner circumferential surface of the buffering
ring 51 abuts against the first sealing ring 3, and an outer circumferential surface
of the buffering ring 51 abuts against the pump housing 21.
[0053] Specifically, at least one buffering ring 51 is provided between the first radial
sealing ring 31 and the pump housing 21, and at least one buffering ring 51 is provided
between the first axial sealing ring 32 and the pump housing 21. Or, those skilled
in the art may provide the buffering ring 51 only between the first radial sealing
ring 31 and the pump housing 21, or only between the first axial sealing ring 32 and
the pump housing 21, as required.
[0054] Further, in some embodiments of the present invention, the buffering ring 51 is made
of an elastic material, such that the buffering ring 51 can be deformed along the
axial direction and/or the radial direction of the first sealing ring 3. The elastic
material may be any feasible material, such as rubber, silicone, plastic, or the like.
[0055] Next, the deformation of the buffering ring 51 will be described in detail with reference
to Figs. 5 and 6. Fig. 5 is a schematic diagram of an effect of the buffering member
in some embodiments of the present invention when the impeller is radially offset,
and Fig. 6 is a schematic diagram of an effect of the buffering member in some embodiments
of the present invention when the impeller is axially offset.
[0056] As shown in Fig. 5, when the impeller 22 moves radially from a normal rotation position
(position coaxial with the protective bearing 15) in a direction indicated by the
arrow in Fig. 5, the second radial sealing ring 41 presses the first radial sealing
ring 31 in the radial direction thereof, and therefore, the first radial sealing ring
31 presses the corresponding buffering ring 51 in the direction indicated by the arrow
in Fig. 5, thereby deforming (i.e., thinning) a corresponding part of the buffering
ring 51 in the radial direction. Meanwhile, the second axial sealing ring 42 presses
the first axial sealing ring 32 in the axial direction thereof (specifically, a circumferential
edge of the second axial sealing ring 42 presses the side wall of the annular groove
6 on the first axial sealing ring 32), and therefore, the first axial sealing ring
32 presses the corresponding buffering ring 51 in the direction indicated by the arrow
in Fig. 5, thereby deforming a corresponding part of the buffering ring 51 in the
axial direction.
[0057] As shown in Fig. 6, when the impeller 22 moves axially from the normal rotation position
in a direction indicated by the arrow in Fig. 6, the second radial sealing ring 41
presses the first radial sealing ring 31 in the axial direction thereof (specifically,
a circumferential edge of the second radial sealing ring 41 presses the side wall
of the annular groove 6 on the first radial sealing ring 31), and therefore, the first
radial sealing ring 31 presses the corresponding buffering ring 51 in the direction
indicated by the arrow in Fig. 6, thereby deforming a corresponding part of the buffering
ring 51 in the axial direction. Meanwhile, the second axial sealing ring 42 presses
the first axial sealing ring 32 in the radial direction thereof, and therefore, the
first axial sealing ring 32 presses the corresponding buffering ring 51 in the direction
indicated by the arrow in Fig. 6, thereby deforming and thus thinning a corresponding
part of the buffering ring 51 in the radial direction.
[0058] Based on the foregoing description, it can be understood by those skilled in the
art that due to the arrangement of the buffering ring 51, when the impeller 22 moves
along the radial direction or the axial direction thereof, the first radial sealing
ring 31 and the first axial sealing ring 32 can move together with the impeller 22
by means of the deformation of the buffering member 51, the side walls of the annular
grooves 6 on the second radial sealing ring 41 and the second axial sealing ring 42
are prevented from being further scratched by the first radial sealing ring 31 and
the first axial sealing ring 32, and a width of the annular groove 6 is prevented
from being increased, such that the annular groove 6 can maintain a small width, thereby
guaranteeing the gap between the first sealing ring 3 and the second sealing ring
4, and prolonging a service life of the first sealing ring 3.
[0059] It can also be understood by those skilled in the art that since the buffering ring
51 can absorb impacts of the rotating shaft 12 and the impeller 22 during the deformation,
the buffering ring 51 can reduce an impact of the rotating shaft 12 on the protective
bearing 15, thereby prolonging a service life of the protective bearing 15.
[0060] Fig. 7 is a schematic diagram of the effect of the buffering member in some other
embodiments of the present invention.
[0061] In some other embodiments of the present invention, as shown in Fig. 7, the buffering
member 5 is a spring 52, the spring 52 is provided between the first sealing ring
3 and the pump housing 21 in the axial direction of the first sealing ring 3, and
one axial end of the spring 52 is connected with the first sealing ring 3 and the
other axial end of the spring 52 is connected with the pump housing 21. The connection
may be a hook connection or abutment.
[0062] Specifically, the spring 52 abuts against the first sealing ring 3 and the pump housing
21, and at least one spring 52 abuts against each of two axial ends of the first sealing
ring 3.
[0063] More specifically, one spring 52 abuts against each of two axial ends of the first
radial sealing ring 31, and the end of the spring 52 apart from the first radial sealing
ring 31 abuts against the pump housing 21. One spring 52 abuts against each of two
axial ends of the first axial sealing ring 32, and the end of the spring 52 apart
from the first axial sealing ring 32 abuts against the pump housing 21. Or, those
skilled in the art may configure only one spring 52 for the first radial sealing ring
31 and/or the first axial sealing ring 32, fixedly connect one end of the spring 52
to the first radial sealing ring 31 and/or the first axial sealing ring 32, and fixedly
connect the other end of the spring 52 to the pump housing 21, as required.
[0064] Preferably, the first radial sealing ring 31 is slidable relative to the pump housing
21 in the axial direction thereof, and the first axial sealing ring 32 is also slidable
relative to the pump housing 21 in the axial direction thereof.
[0065] Further, when the impeller 22 is radially offset from a working position (where a
rotation center of the impeller is coaxial with a rotation center of the protective
bearing 15), the second axial sealing ring 42 presses the first axial sealing ring
32 in the axial direction thereof (specifically, the circumferential edge of the second
axial sealing ring 42 presses the side wall of the annular groove 6 on the first axial
sealing ring 32), and therefore, the first axial sealing ring 32 presses the corresponding
spring 52 to compress the spring 52.
[0066] When the impeller 22 is axially offset from the working position, the second radial
sealing ring 41 presses the first radial sealing ring 31 in the axial direction thereof
(specifically, the circumferential edge of the second radial sealing ring 41 presses
the side wall of the annular groove 6 on the first radial sealing ring 31), and therefore,
the first radial sealing ring 31 presses the corresponding spring 52 to compress the
spring 52.
[0067] Furthermore, in other embodiments of the present invention, those skilled in the
art may configure the buffering member 5 as any other feasible structure as required,
for example, a plurality of arc-shaped plate-like members which are provided between
the first sealing ring 3 and the pump housing 21 in the radial direction of the first
sealing ring 3. An inner circumferential surface of each plate-like member abuts against
the first sealing ring 3 and an outer circumferential surface of each plate-like member
abuts against the pump housing 21.
[0068] Further, although not shown in the drawings, still further embodiments of the present
invention further provide a refrigeration device including the magnetic suspension
pump according to any one of the foregoing embodiments. In these embodiments of the
present invention, the magnetic suspension pump is used as a compressor of the refrigeration
device for compressing a refrigerant. The refrigeration device includes a refrigerator,
a freezer and/or a cooler.
[0069] Still further, although not shown in the drawings, still further embodiments of the
present invention further provide an air conditioner outdoor unit including the magnetic
suspension pump according to any one of the foregoing embodiments. In these embodiments
of the present invention, the magnetic suspension pump is used as a compressor of
the air conditioner outdoor unit for compressing a refrigerant.
[0070] So far, the technical solutions of the present invention have been described in connection
with the foregoing embodiments, but it is easily understood by those skilled in the
art that the scope of the present invention is not limited to these specific embodiments.
Those skilled in the art may split and combine the technical solutions in the above
embodiments and may also make equivalent changes or substitutions for the related
technical features without departing from the technical principle of the present invention,
and any change, equivalent substitution, improvement, etc. made within the technical
idea and/or technical principle of the present invention fall within the protection
scope of the present invention.