TECHNICAL FIELD
[0001] The present invention relates to an accumulator (a gas-liquid separator) which is
used in a heat pump type refrigeration cycle (hereinafter, referred to as a heat pump
system) such as a car air conditioner, a room air conditioner, and a freezer.
BACKGROUND ART
[0002] Generally, a heat pump system 200 constituting a car air conditioner or the like
includes an accumulator 250 in addition to a compressor 210, an outdoor heat exchanger
220, an indoor heat exchanger 230, an expansion valve 260, a four-way switching valve
240, and the like as illustrated in Figs. 17A and 17B.
[0003] In such a system 200, a cooling operation and a heating operation (flow paths) are
switched by the four-way switching valve 240. In the cooling operation, a refrigerant
is circulated according to a cycle illustrated in Fig. 17A. At this time, the outdoor
heat exchanger 220 serves as a condenser and the indoor heat exchanger 230 serves
as an evaporator. Meanwhile, in the heating operation, a refrigerant is circulated
according to a cycle illustrated in Fig. 17B. At this time, the outdoor heat exchanger
220 serves as an evaporator and the indoor heat exchanger 230 serves as a condenser.
In any operation, a low-temperature and low-pressure gas-liquid-phase refrigerant
is introduced from the evaporator (the indoor heat exchanger 230 or the outdoor heat
exchanger 220) to the accumulator 250 through the four-way switching valve 240.
[0004] As the accumulator 250, as disclosed in, for example, Patent Document 1 and the like,
there is known an accumulator including: a bottomed cylindrical tank of which an upper
surface opening is air-tightly blocked by a lid member provided with an inflow port
and an outflow port, a cap-shaped or inverted thin bowl shaped gas-liquid separator
which has a diameter smaller than the inner diameter of the tank, an outflow pipe
which is suspended while an upper end portion is connected to the outflow port and
has a double pipe structure including an inner pipe and an outer pipe, a strainer
which is provided in the vicinity of a bottom portion of (the outer pipe of) the outflow
pipe and captures and removes a foreign material contained in a liquid-phase refrigerant
and oil (refrigeration oil) mixed with the liquid-phase refrigerant, and the like.
[0005] The refrigerant which is introduced into the accumulator 250 collides with the gas-liquid
separator to be diffused radially and is separated into a liquid-phase refrigerant
and a gas-phase refrigerant. Here, the liquid-phase refrigerant (including oil) flows
down along the inner peripheral surface of the tank to be accumulated in the lower
portion of the tank. Then, the gas-phase refrigerant moves down in a space (a gas-phase
refrigerant lower flow path) formed between the inner pipe and the outer pipe of the
outflow pipe, moves up in a space inside the inner pipe, and is sucked to the suction
side of the compressor 210 to be circulated.
[0006] Further, the oil which is accumulated in the lower side of the tank along with the
liquid-phase refrigerant moves toward the bottom portion of the tank due to a difference
in specific gravity or property with respect to the liquid-phase refrigerant, is sucked
to the gas-phase refrigerant sucked to the suction side of the compressor via the
outflow pipe, and is returned to the suction side of the compressor along with the
gas-phase refrigerant while passing through (the mesh filter of) the strainer, the
oil return hole formed in the bottom portion of the outflow pipe (the outer pipe),
and the space inside the inner pipe of the outflow pipe to be circulated (see Patent
Documents 2 and 3).
[0007] Incidentally, the liquid-phase refrigerant including oil is accumulated at the lower
side of the tank of the accumulator when the operation of the system (the compressor)
is stopped. However, when oil which is not compatible with the refrigerant and has
a smaller specific gravity than the refrigerant is used, two layers, that is, an upper
oil layer and a lower liquid-phase refrigerant layer are formed due to a difference
in specific gravity and viscosity between the liquid-phase refrigerant and the oil.
[0008] In such a two-layer separation state, the pressure inside the tank suddenly decreases
when the system (the compressor) is started. For this reason, a problem arises in
that the liquid-phase refrigerant is boiled suddenly and fiercely (hereinafter, referred
to as bumping) and thus a large shock sound is generated.
[0009] As a cause of the bumping and the accompanying shock sound, even when the pressure
inside the tank (the suction side of the compressor) during the start-up of the compressor,
the oil layer serves as a lid of the refrigerant layer (so that bumping does not occur
in the oil layer) to a certain time point and thus the generation of the bumping is
suppressed. However, when a difference in pressure between the upper side (the gas-phase
refrigerant) of the oil layer and the lower side (the liquid-phase refrigerant) thereof
becomes a predetermined pressure or more, the liquid-phase refrigerant is explosively
boiled at one time (also refer to Patent Document 2 having a description of the bumping
of the compressor).
[0010] Further, there is a case where the oil and the liquid-phase refrigerant may not have
the two-layer separation state as described above during the stop of the compressor,
that is, the oil and the liquid-phase refrigerant may be mixed with each other even
when the compressor is stopped. Alternatively, there is a case where the oil which
is not compatible with the refrigerant and has a larger specific gravity than the
refrigerant may be used so that the liquid-phase refrigerant layer is formed at the
upper side and the oil layer is formed at the lower side. Even in this case, the bumping
explosively boiling the liquid-phase refrigerant and the accompanying shock sound
may occur depending on a difference in condition such as a type and a property of
the refrigerant or the oil.
[0011] As one countermeasure for suppressing the bumping and the accompanying shock sound,
Patent Document 2 proposes a structure in which a stirring blade is provided in a
rotation shaft (a crank shaft) of a compressor using a reciprocating engine as a drive
source and the stirring blade is rotated during the start-up of the compressor to
mix the oil layer portion and discharge the liquid-phase refrigerant to the upper
side of the oil.
[0012] Further, Patent Document 3 proposes a main purpose of reliably mixing the oil inside
(the tank of) the accumulator and the liquid-phase refrigerant which are in the two-layer
separation state. Here, a part of the gas-phase refrigerant discharged from the compressor
is blown from the bottom portion of the tank into the liquid-phase refrigerant via
a bypass flow path with an on-off valve so that the refrigerants are mixed with each
other.
[0013] Patent Document 4 shows an accumulator that comprises a tank and a desiccant. The
tank separates refrigerant flowing to the tank into vapor-phase refrigerant and liquid
phase refrigerant. The tank therein stores the liquid-phase refrigerant and emits
the vapor phase refrigerant toward a suction side of a compressor. The accumulator
is adapted such that the desiccant is disposed in the tank for removing a water content
from the refrigerant. The liquid-phase refrigerant included in the refrigerant flows
to the tank drops downward from a location that is located above the desiccant and
it is stored in a lower portion in the tank while the vapor-phase refrigerant included
in the refrigerant flows to the tank is drawn through a suction port that is located
above the desiccant to flow out of the tank. At least a part of the desiccant is exposed
to the vapor-phase refrigerant under a normal condition, and the desiccant is located
at a location that is away from a dropping route of liquid phase refrigerant in the
tank.
CITATION LIST
PATENT DOCUMENT
SUMMARY OF THE INVENTION
PROBLEM TO BE SOLVED BY THE INVENTION
[0015] As described above, although the inventors have found that the bumping and the accompanying
shock sound can be suppressed to a certain degree by mixing the liquid-phase portion
including the oil and the liquid-phase refrigerant inside the tank during the start-up
of the compressor. However, in the technologies proposed by the related art, the shock
sound accompanied by the bumping cannot be sufficiently removed. Further, in the technologies
proposed by the related arts, the stirring means (the stirring blade, the drive source
for rotating the stirring blade, the bypass flow path with the on-off valve, and the
like) are additionally needed. As a result, a problem arises in that the accumulator
(and the heat pump system including the same) becomes complex and increases in cost
and size.
[0016] The invention has been made in view of such circumstances and an object of the invention
is to provide an accumulator capable of effectively suppressing a shock sound accompanied
by bumping during a start-up of a compressor without causing complexity, high cost,
large size, and the like.
MEANS FOR SOLVING PROBLEM
[0017] In order to attain the above-described object, an accumulator according to the invention
is provided as set out in claim 1.
[0018] In a preferred embodiment, an entirety of the gas-liquid separator is formed as an
elastically deformable member and a holding member is provided to hold the gas-liquid
separator from below.
[0019] In a further preferred embodiment, the gas-liquid separator and the holding member
are supported by the tank or the outflow pipe.
[0020] In a further preferred embodiment, the holding member includes an inner race to which
the tank or the outflow pipe is internally fitted, a plurality of support arms which
extend outward from the inner race, and an outer race which connects outer ends of
the plurality of support arms.
[0021] In another preferred embodiment, the gas-liquid separator is provided with one or
a plurality of convex portions or concave portions.
[0022] In a further preferred embodiment, the convex portion or the concave portion is formed
in a circular shape or a circular-arc shape.
[0023] In another preferred embodiment, the gas-liquid separator includes a ceiling plate
portion provided with one or a plurality of openings, a peripheral wall portion provided
at an outer end of the ceiling plate portion, and an elastically deformable member
covering the openings of the ceiling plate portion.
[0024] In a further preferred embodiment, the gas-liquid separator is supported by the tank
or the outflow pipe.
[0025] In a further preferred embodiment, the ceiling plate portion includes an inner race
to which the tank or the outflow pipe is internally fitted, a plurality of support
arms extending outward from the inner race, and an outer race connecting outer ends
of the plurality of support arms.
[0026] Preferably, the elastically deformable member is provided with a notch formed along
the plurality of support arms in the ceiling plate portion.
EFFECT OF THE INVENTION
[0027] In the accumulator according to the invention, the entire or a part of the gas-liquid
separator is formed as an elastically deformable member and the elastically deformable
member is elastically deformed upward by (the pressing force of) the liquid-phase
refrigerant boiled inside the tank in the event of bumping. For that reason, since
a shock applied to the gas-liquid separator in accordance with the bumping is reduced
and the vibration of the gas-liquid separator is suppressed, it is possible to effectively
suppress the shock sound caused by the bumping during the start-up of the compressor.
[0028] In this case, since the elastically deformable member that is manufactured cheaply
and simply may be basically used as the entirety or a part of the gas-liquid separator,
it is possible to simplify the configuration of the accumulator compared to a case
where a stirring blade corresponding to stirring means, a drive source for rotating
the stirring blade, a bypass flow path with an on-off valve, and the like are used
as in the related art. As a result, it is possible to realize a decrease in cost and
size.
BRIEF DESCRIPTION OF DRAWINGS
[0029]
Fig. 1 is a longitudinal sectional view illustrating a first embodiment of an accumulator
according to the invention;
Fig. 2 is a cross-sectional view taken along an arrow U-U of Fig. 1;
Fig. 3 is a cross-sectional view taken along an arrow T-T of Fig. 1;
Fig. 4 is a cross-sectional view taken along an arrow V-V of Fig. 1;
Fig. 5 is a main enlarged longitudinal sectional view illustrating a main part in
the event of bumping of the accumulator illustrated in Fig. 1;
Fig. 6 is a longitudinal sectional view illustrating a second embodiment of the accumulator
according to the invention;
Fig. 7 is a cross-sectional view taken along an arrow W-W of Fig. 6;
Fig. 8 is a main enlarged longitudinal sectional view illustrating a main part in
the event of bumping in the accumulator illustrated in Fig. 6;
Fig. 9 is a longitudinal sectional view illustrating a third embodiment of the accumulator
according to the invention;
Fig. 10 is a cross-sectional view taken along an arrow X-X of Fig. 9;
Fig. 11 is a main enlarged longitudinal sectional view illustrating a main part in
the event of bumping of the accumulator illustrated in Fig. 9;
Fig. 12 is a partially cutaway front view illustrating a modified example of the first
embodiment;
Fig. 13 is a cross-sectional view taken along an arrow Y-Y of Fig. 12;
Fig. 14 is a cross-sectional view taken along an arrow Z-Z of Fig. 12;
Fig. 15 is a partially cutaway front view illustrating a modified example of the second
embodiment;
Fig. 16 is a partially cutaway front view illustrating a modified example of the third
embodiment; and
Figs. 17A and 17B illustrate an example of a heat pump system, in which Fig. 17A is
a schematic configuration diagram illustrating a refrigerant flow (cycle) in a cooling
operation and Fig. 17B is a schematic configuration diagram illustrating a refrigerant
flow (cycle) in a heating operation.
MODE(S) FOR CARRYING OUT THE INVENTION
[0030] Hereinafter, embodiments of the invention will be described with reference to the
drawings.
[First Embodiment]
[0031] Fig. 1 is a longitudinal sectional view illustrating a first embodiment of an accumulator
according to the invention, Fig. 2 is a cross-sectional view taken along an arrow
U-U of Fig. 1, Fig. 3 is a cross-sectional view taken along an arrow T-T of Fig. 1,
and Fig. 4 is a cross-sectional view taken along an arrow V-V of Fig. 1. Additionally,
a plate rib 36 (to be described later) of an outflow pipe 30 is not illustrated in
Fig. 1.
[0032] As illustrated in Figs. 17A and 17B, the accumulator 1 of the first embodiment is
used as an accumulator 250 of a heat pump system 200 constituting, for example, a
car air conditioner of an electric vehicle and includes a bottomed cylindrical tank
10 which is formed of metal such as stainless steel or aluminum alloy. Here, an opening
of an upper surface of the tank 10 is air-tightly blocked by a metallic lid member
12. For example, as illustrated in the drawings, the accumulator 1 of the embodiment
is disposed in a vertical direction, that is, a direction in which the lid member
12 is directed to the upside (the ceiling side) and a bottom portion 13 of the tank
10 is directed to the downside (the ground side).
[0033] An inflow port 15 and a stepped outflow port 16 are provided in parallel in the lid
member 12, a cap-shaped or inverted thin bowl shaped gas-liquid separator 18 which
is slightly smaller than the inner diameter of the tank 10 is disposed below the lid
member 12, and an upper end portion of the outflow pipe 30 is connected to a lower
portion of the outflow port 16.
[0034] The outflow pipe 30 is formed as a double pipe structure including an inner pipe
31 which has an upper end portion connected to the lower portion of the outflow port
16 by crimping or press-inserting, is suspended inside the tank 10 via a guide hole
19 provided in a ceiling portion 18a of the gas-liquid separator 18, and is formed
of, for example, metal and a bottomed outer pipe 32 which is disposed at the outer
periphery of the inner pipe 31 and is formed of, for example, synthetic resin.
[0035] Here, at least one of the inner pipe 31 and the outer pipe 32 may be provided with
a rib for ensuring a predetermined gap therebetween. In the example illustrated in
the drawings, as understood with reference to Fig. 2, three plate ribs 36 are provided
at the outside of the inner pipe 31 (the lower portion of the gas-liquid separator
18) to protrude outward in the radial direction at the same angular interval in the
longitudinal direction (the vertical direction) and the outer pipe 32 is externally
fitted and fixed to the outer peripheries of three plate ribs 36.
[0036] Further, the inner pipe 31, the outer pipe 32, and the plate rib 36 may be integrally
formed by extruding using synthetic resin, aluminum, or the like. That is, the double
pipe structure may be formed as an integrally molded product using an aluminum extruded
material or the like.
[0037] The lower end portion of the outer pipe 32 is fitted into an inner peripheral step
attached upper portion 42a of a casing 42 of a strainer 40 to be described later.
The lower end of the inner pipe 31 is positioned slightly above a bottom portion 32b
of the outer pipe 32 and the upper end of the outer pipe 32 is positioned slightly
below the lid member 12. An oil return hole 35 is formed at the center of the bottom
portion 32b of the outer pipe 32. The hole diameter of the oil return hole 35 is set
to, for example, about 1 mm.
[0038] The gas-liquid separator 18 is formed as, in this example, an elastically deformable
member formed of resin such as rubber and is disposed below the inflow port 15 to
cover an opening (the other end side opening of the outflow pipe 30) formed between
the inner pipe 31 and (the upper end portion of) the outer pipe 32 of the outflow
pipe 30. The gas-liquid separator 18 includes a disk-shaped ceiling portion 18a provided
with a guide hole 19 through which the upper end portion (and a cylindrical portion
17 of the lid member 12 to be described later) of (the inner pipe 31 of) the outflow
pipe 30 is inserted and disposed to face the inflow port 15 and a cylindrical peripheral
wall portion 18b extending downward from the outer periphery of the ceiling portion
18a.
[0039] A holding plate 20 which is a holding member holding the gas-liquid separator 18
from below against the input from the refrigerant introduced into the tank 10 via
the inflow port 15 is disposed on (the lower surface of the ceiling portion 18a) of
the gas-liquid separator 18.
[0040] The holding plate 20 is manufactured as a highly rigid plate-shaped member formed
of, for example, metal such as stainless steel or aluminum alloy and includes an inner
race 21 to which the cylindrical portion 17 of the lid member 12 to be described later
is internally fitted, a plurality of (in the example illustrated in the drawings,
six) support arms 22 which extend (radially) outward from the inner race 21, and an
outer race 23 which connects outer ends of the plurality of support arms 22 as understood
with reference to Fig. 3.
[0041] Further, in this example, the lower end surface of the lid member 12 is provided
with the cylindrical portion 17 which protrudes downward so that the upper end portion
of (the inner pipe 31 of) the outflow pipe 30 is internally fitted thereto and (the
guide hole 19 of) the gas-liquid separator 18 and (the inner race 21 of) the holding
plate 20 are externally fitted thereto and the lower end portion (a downward protruding
portion in relation to the holding plate 20) of the cylindrical portion 17 is crimped
outward or increased in diameter (a crimped portion or an expanded pipe portion 17a).
That is, here, the gas-liquid separator 18 and the holding plate 20 are supported
at a predetermined position inside the tank 10 by the lower end portion (the crimped
portion or the expanded pipe portion 17a) of the cylindrical portion 17.
[0042] At the time when the gas-liquid separator 18, the holding plate 20, and the inner
pipe 31 are assembled to the lid member 12, (the ceiling portion 18a of) the gas-liquid
separator 18 and the holding plate 20 are attached to the cylindrical portion 17 of
the lid member 12 in this order and the lower end portion (a downward protruding portion
in relation to the holding plate 20) of the cylindrical portion 17 is crimped or increased
in diameter outward and the upper end portion (an upper portion in relation to a portion
provided with the plate rib 36) of the inner pipe 31 is fixed to the cylindrical portion
17 of the lid member 12 from below by press-inserting or tube expanding. Accordingly,
the gas-liquid separator 18 and the holding plate 20 are held and fixed to be sandwiched
between the expanded pipe portion 17a or the crimped portion of the cylindrical portion
17 and the lower end surface of the lid member 12.
[0043] Additionally, instead of the expanded pipe portion 17a or the crimped portion of
the cylindrical portion 17, the plate rib 36 of (the inner pipe 31 of) the outflow
pipe 30 may be extended to the slightly upper side and the gas-liquid separator 18
and the holding plate 20 may be held and fixed to be sandwiched between the plate
rib 36 of (the inner pipe 31 of) the outflow pipe 30 and the lower end surface of
the lid member 12. In this case, the gas-liquid separator 18 and the holding plate
20 are supported at a predetermined position inside the tank 10 by the plate rib 36.
[0044] Further, a flange portion which is compressed and bent by bulge forming or the like
may be provided in the vicinity of the upper end of the inner pipe 31 to hold and
fix the gas-liquid separator 18 and the holding plate 20 while sandwiching the gas-liquid
separator and the holding plate between the flange portion and the lower end surface
of the lid member 12.
[0045] The strainer 40 is fixed while being placed on bottom portion 13 of the tank 10 and
includes a bottomed cylindrical casing 42 which is formed of synthetic resin and a
cylindrical mesh filter 45 which is integrated with the casing 42 by insert-molding
or the like as understood with reference to Fig. 4. The mesh filter 45 is formed by,
for example, a wire mesh or a mesh material formed of synthetic resin.
[0046] The casing 42 of the strainer 40 includes an inner peripheral step attached upper
portion 42a into which the lower end portion of the outer pipe 32 is fitted and fixed,
a bottom plate portion 42c, and four columnar portions 42b which are uprightly formed
at the outer periphery of the bottom plate portion 42c at the same angular interval
and connect the upper portion 42a. The outer periphery of the bottom plate portion
42c is provided with an annular connection band and the upper and lower end portions
of the mesh filter 45 are fixed to the connection band and the lower portion of the
upper portion 42a. Additionally, the mesh filter 45 may be integrated by insert-molding
when the casing 42 is molded. That is, four windows 44 each having a rectangular shape
is defined among four columnar portions 42b and the mesh filter 45 is stretched in
the portions of the windows 44. Additionally, four columnar portions 42b may have
slopes for die cutting, but four columnar portions 42b have the substantially same
width in the radial direction. Further, a method of providing the mesh filter 45 in
the casing 42 is not limited to the above-described method.
[0047] Inside the tank 10, a bag 50 which encloses a drying agent M and has a height substantially
corresponding to the half of the tank 10 is placed on the bottom portion 13 along
the inner periphery of the tank 10 in order to absorb and remove moisture in a refrigerant.
The bag 50 is formed by a cloth such as a felt having air permeability and water permeability
and a required shape maintaining property and a granular drying agent M is substantially
fully filled therein.
[0048] In the accumulator 1 with such a configuration, as in the related art, a low-temperature
and low-pressure gas-liquid-phase refrigerant is introduced from an evaporator into
the tank 10 via the inflow port 15, the introduced refrigerant collides with (the
ceiling portion 18a of) the gas-liquid separator 18 to be diffused radially, and is
separated into a liquid-phase refrigerant and a gas-phase refrigerant. Then, the liquid-phase
refrigerant (including oil) flows down along the inner peripheral surface of the tank
10 to be accumulated in the lower space of the tank 10 and the gas-phase refrigerant
is sucked to the suction side of the compressor 210 via a space (a gas-phase refrigerant
lower flow path) formed between the inner pipe 31 and the outer pipe 32 of the outflow
pipe 30 and the inner space of the inner pipe 31 to be circulated.
[0049] Further, the oil which is accumulated in the lower space of the tank 10 along with
the liquid-phase refrigerant moves toward the bottom portion 13 of the tank 10 due
to a difference in specific gravity or property with respect to the liquid-phase refrigerant,
is sucked to the gas-phase refrigerant which is sucked to the suction side of the
compressor via the outflow pipe 30, and is returned to the suction side of the compressor
along with the gas-phase refrigerant passing through the mesh filter 45 of the strainer
40, the oil return hole 35, and the inner space of the inner pipe 31 to be circulated.
When passing through the mesh filter 45, a foreign material such as sludge is captured
and the foreign material is removed from the circulating refrigerant (including the
oil).
[0050] As described above, in the accumulator 1 of the embodiment, (the entirety of) the
gas-liquid separator 18 is formed as an elastically deformable member and in the event
of bumping, the gas-liquid separator 18 (the elastically deformable member) is elastically
deformed upward by (the pressing force of) the liquid-phase refrigerant boiled inside
the tank (see Fig. 5). For that reason, since the shock applied to the gas-liquid
separator 18 in accordance with the bumping is reduced and the vibration of the gas-liquid
separator 18 is suppressed, it is possible to effectively suppress the shock sound
accompanied by the bumping during the start-up of the compressor.
[0051] In this case, since the elastically deformable member that is manufactured cheaply
and simply may be basically used as (the entirety of) the gas-liquid separator 18,
it is possible to simplify the configuration of the accumulator compared to a case
where a stirring blade corresponding to stirring means, a drive source for rotating
the stirring blade, a bypass flow path with an on-off valve, and the like are used
as in the related art. As a result, it is possible to realize a decrease in cost and
size.
[Second Embodiment]
[0052] Fig. 6 is a longitudinal sectional view illustrating a second embodiment of the accumulator
according to the invention. Also in Fig. 6, the plate rib 36 of the outflow pipe 30
is omitted similarly to Fig. 1.
[0053] An accumulator 2 of the second embodiment basically has the same configuration as
that of the accumulator 1 of the first embodiment except for the configuration of
the gas-liquid separator 18 formed as an elastically deformable member. Additionally,
common reference numerals are given to corresponding parts of the accumulator 1 of
the first embodiment in Fig. 6 illustrating the accumulator 2 of the second embodiment.
That is, in the accumulator 1 of the first embodiment, the ceiling portion 18a of
the gas-liquid separator 18 is formed in a flat disk shape, but in the accumulator
2 of the second embodiment, a convex portion is formed in the ceiling portion 18a
of the gas-liquid separator 18 to improve the rigidity of the gas-liquid separator
18.
[0054] Specifically, as understood with reference to Fig. 7, the ceiling portion 18a of
the gas-liquid separator 18 is provided with a plurality of concentric convex portions
18c (the convex portion 18c which is provided at the outermost side is formed in a
circular shape and two convex portions 18c which are provided at the innermost side
and the intermediate side are formed in a circular-arc shape (a part of a circular
shape) except for a portion contacting the lid member 12).
[0055] Further, in the accumulator 2 of the second embodiment, the gas-liquid separator
18 is slightly thinned compared to the accumulator 1 of the first embodiment.
[0056] Additionally, the ceiling portion 18a of the gas-liquid separator 18 may be provided
with, of course, (one or a plurality of) concave portions instead of the convex portion
18c or along with the convex portion 18c.
[0057] Also in the accumulator 2 of the second embodiment with such a configuration, (the
entirety of) the gas-liquid separator 18 is formed as an elastically deformable member
and in the event of bumping, the gas-liquid separator 18 (the elastically deformable
member) is bent upward and the convex portion 18c of the ceiling portion 18a is elastically
deformed to be extended by (the pressing force of) the liquid-phase refrigerant boiled
inside the tank (see Fig. 8). For that reason, since the shock applied to the gas-liquid
separator 18 in accordance with the bumping is reduced and the vibration of the gas-liquid
separator 18 is suppressed, it is possible to obtain the substantially same operation
and effect as that of the accumulator 1 of the first embodiment.
[Third Embodiment]
[0058] Fig. 9 is a longitudinal sectional view illustrating a third embodiment of the accumulator
according to the invention. Also in Fig. 9, the plate rib 36 of the outflow pipe 30
is omitted similarly to Fig. 1.
[0059] An accumulator 3 of the third embodiment basically has the same configuration as
that of the accumulator 1 of the first embodiment except for the configuration of
the gas-liquid separator 18. Additionally, common reference numerals are given to
corresponding parts of the accumulator 1 of the first embodiment in Fig. 9 illustrating
the accumulator 3 of the third embodiment. That is, in the accumulator 1 of the first
embodiment, the entirety of the gas-liquid separator 18 is formed as an elastically
deformable member, but in the accumulator 3 of the third embodiment, a part (a ceiling
portion) of the gas-liquid separator 18 is formed as an elastically deformable member.
[0060] Specifically, as understood with reference to Figs. 9 and 10, the gas-liquid separator
18 includes a short cylindrical base member 25 equipped with a ceiling plate portion
and a disk-shaped cover member 29 disposed on the upper surface of (a ceiling plate
portion 25a of) the base member 25.
[0061] The base member 25 is manufactured as, for example, a highly rigid member formed
of metal such as stainless steel or aluminum alloy and includes a ceiling plate portion
25a that includes an inner race 26 to which the upper end portion of (the inner pipe
31 of) the outflow pipe 30 is internally fitted, a plurality of (in the example illustrated
in the drawings, six) support arms 27 which extend (radially) outward from the inner
race 26, and an outer race 28 which connects the outer ends of the plurality of support
arms 27 and a cylindrical peripheral wall portion 25b that protrudes downward from
the outer end of (the outer race 28 of) the ceiling plate portion 25a.
[0062] Meanwhile, the cover member 29 is formed as, for example, a leaf spring or an elastically
deformable member formed of resin such as rubber or metal and is disposed on the upper
surface of the ceiling plate portion 25a to cover an opening formed between the support
arms 27 between the outer race 28 and the inner race 26 of the ceiling plate portion
25a. The cover member 29 is provided with a plurality of (in the example illustrated
in the drawings, five) gaps (slit) 29s extending to the outer peripheral portion along
the support arm 27 of the ceiling plate portion 25a.
[0063] Further, here, the gas-liquid separator 18 including the base member 25 and the cover
member 29 is supported at a predetermined position inside the tank 10 by the plate
rib 36 of (the inner pipe 31 of) the outflow pipe 30.
[0064] Additionally, as described above, the flange portion which is compressed and bent
by bulge forming or the like may be provided in the vicinity of the upper end of the
inner pipe 31 and the gas-liquid separator 18 including the base member 25 and the
cover member 29 may be supported inside the tank 10 by the flange portion. Then, it
is needless to mention that a cylindrical portion may protrude from the lower end
surface of the lid member 12 of the tank 10 and the gas-liquid separator 18 including
the base member 25 and the cover member 29 may be supported inside the tank 10 by
the cylindrical portion.
[0065] In the accumulator 3 of the third embodiment with such a configuration, a part (the
cover member 29 constituting a ceiling portion) of the gas-liquid separator 18 is
formed as an elastically deformable member and in the event of bumping, the cover
member 29 (the elastically deformable member) is elastically deformed to be bent upward
by (the pressing force of) the liquid-phase refrigerant boiled inside the tank so
that an opening formed between the support arm 27 and the ceiling plate portion 25a
of the base member 25 is opened (see Fig. 11). For that reason, since the shock applied
to the gas-liquid separator 18 in accordance with the bumping is reduced and the vibration
of the gas-liquid separator 18 is suppressed, it is possible to obtain the substantially
same operation and effect as that of the accumulator 1 of the first embodiment.
[Modified Examples of First, Second, and Third Embodiments]
[0066] In the first to third embodiments, countermeasures for suppressing (the magnitude
of) the shock sound in accordance with bumping has been described. However, in the
countermeasures of the first to third embodiments, it is proved that (the magnitude
of) the shock sound in accordance with the bumping is more effectively suppressed
by employing various countermeasures described in Japanese Patent Application No.
2015-231052 proposed by the inventor (bumping and countermeasures for suppressing the generation
of the shock sound in accordance with the bumping).
[0067] Figs. 12, 15, and 16 illustrate an example (Fig. 12 illustrates a modified example
of the first embodiment, Fig. 15 illustrates a modified example of the second embodiment,
and Fig. 16 illustrates a modified example of the third embodiment).
[0068] In the accumulator 1A illustrated in Fig. 12, the accumulator 2A illustrated in Fig.
15, and the accumulator 3A illustrated in Fig. 16, (the inner surface) of the bottom
portion 13 of the bottomed cylindrical tank 10 is provided with a plurality of (in
the example illustrated in the drawings, seven) annular protrusions 13a which are
formed concentrically by pressing or cutting and serve as a start point of boiling
(bubble generation) (particularly, see Fig. 13).
[0069] Further, the outer pipe 32 constituting the outflow pipe 30 is provided with a knurled
portion 37 having a plurality of protrusions formed on the outer periphery thereof
by knurling and serves as a start point of boiling. In this example, the knurled portion
37 is provided from the lower end portion to the upper end portion of the outer pipe
32 (in the vertical direction).
[0070] A front end of the protrusion of the knurled portion 37 of the outer pipe 32 or the
protrusion 13a of the inner surface of the bottom portion 13 of the tank 10 is formed
sharply in order to promote the boiling.
[0071] Further, a cloth 90 such as a felt or a mesh-shaped flexible or resilient plate-shaped
body is wound or externally fitted to cover the entire area of the upper portion of
the strainer 40 in the outer periphery of (the knurled portion 37 of) the outer pipe
32. Additionally, a foam material may be used instead of the cloth 90 and as the foam
material, commercially available synthetic resin, rubber, ceramic, or the like can
be used.
[0072] Further, in the accumulator 1 of the first embodiment, the accumulator 2 of the second
embodiment, and the accumulator 3 of the third embodiment, the bag 50 enclosing the
drying agent M is removed and the cloth 90 such as a felt is provided with a pipe
extrapolation portion 92 which is externally fitted and fixed to the outer periphery
of (the knurled portion 37 of) the outer pipe 32 and a cylindrical drying agent storage
portion 95 of which upper and lower sides are blocked and which stores the drying
agent M for removing a moisture in the refrigerant.
[0073] The drying agent storage portion 95 is provided in the vertical direction (the axis
direction of the outer pipe 32) at the outside near the inflow port 15 in the outer
pipe 32 (particularly, see Fig. 14). Here, the drying agent storage portion 95 is
provided from the upper end portion to the lower end portion of the pipe extrapolation
portion 92 (in other words, from the upper portion of the strainer 40 in the outer
pipe 32 to the upper end portion) and the upper portion thereof protrudes upward in
relation to the maximum liquid level height of the liquid-phase portion (the liquid-phase
refrigerant and the oil) accumulated inside the tank 10 during the stop of the compressor
210.
[0074] The pipe extrapolation portion 92 of the cloth 90 is provided with a plurality of
slits (gaps) 90s (which are provided totally at six positions including three positions
provided at the substantially same interval in the vertical direction and positions
at the front and rear sides of the drawing in the example illustrated in the drawings
to extend in the horizontal direction).
[0075] In the accumulator 1A illustrated in Fig. 12, the accumulator 2A illustrated in Fig.
15, and the accumulator 3A illustrated in Fig. 16, it is possible to obtain the substantially
same operation and effect as those of the accumulator 1 of the first embodiment, the
accumulator 2 of the second embodiment, and the accumulator 3 of the third embodiment.
Also, since the protrusion (the protrusion of the knurled portion 37 of the outer
pipe 32 or the protrusion 13a of the upper surface of the bottom portion 13 of the
tank 10) which serves as a start point of boiling (bubble generation) is provided
in a portion immersed into a liquid-phase portion (the liquid-phase refrigerant and
the oil) accumulated inside the tank 10 in the accumulators 1A, 2A, and 3A, the protrusion
serves as a start point (a trigger) when the liquid-phase refrigerant is boiled to
evaporate before the bumping and the accompanying shock sound during the start-up
of the compressor 210. Accordingly, the liquid-phase refrigerant is gradually boiled
(to be smaller than that of bumping) in accordance with a decrease in pressure inside
the tank 10. That is, since a boiling which is smaller than that of the bumping is
promoted by the protrusion before a current pressure reaches a predetermined pressure
at which the bumping accompanying the shock sound occurs and the liquid-phase refrigerant
is gently boiled, it is possible to effectively suppress the generation of the bumping
and the shock sound during the start-up of the compressor 210.
[0076] In this case, since only the tank 10 or (the outer pipe 32 of) the outflow pipe 30
provided with the protrusion may be provided cheaply and simply by pressing, cutting,
or knurling, it is possible to simplify the configuration of the accumulator compared
to a case where a stirring blade corresponding to stirring means, a drive source for
rotating the stirring blade, a bypass flow path with an on-off valve, and the like
are used as in the related art. As a result, it is possible to realize a decrease
in cost and size.
[0077] Further, since the refrigerant contacting the protrusion (the protrusion of the knurled
portion 37 of the outer pipe 32) provided in the outer pipe 32 becomes sparse due
to the cloth 90 (or the foam material) externally fitted or wound on the outer periphery
of the outer pipe 32 constituting the outflow pipe 30 so that a pressure decreases,
the protrusion formed in the outer pipe 32 becomes a start point (a trigger) when
the liquid-phase refrigerant is boiled to evaporate during the start-up of the compressor
210. Accordingly, bubbles gradually come out, that is, the liquid-phase refrigerant
gradually evaporates. For that reason, the boiling of the liquid-phase refrigerant
is gently performed. As a result, it is possible to more effectively suppress the
bumping in which the liquid-phase refrigerant is explosively boiled at one time and
the shock sound according to the bumping.
[0078] In this case, since the cloth 90 (or the foam material) may be wound or externally
fitted to the outer periphery of the outer pipe 32 by a simple configuration, there
is no need to worry complexity, high cost, large size, and the like as in the above-described
conventional countermeasures. As a result, it is extremely excellent in cost effectiveness.
[0079] Further, since the slit (the gap) 90s formed in (the pipe extrapolation portion 92
of) the cloth 90 becomes a trigger of the boiling of the refrigerant and the generated
bubbles easily come to the outside via the outer pipe 32 and the cloth 90, this configuration
becomes more effective.
[0080] Further, since the cloth 90 such as a felt has air permeability and water permeability,
the drying agent storage portion 95 serves as a bag when the drying agent storage
portion 95 storing the drying agent M for absorbing and removing a moisture in the
refrigerant is provided in the cloth 90 such as a felt in addition to the pipe extrapolation
portion 92 as in the example. Accordingly, there is no need to separately prepare
the bag storing the drying agent M or fixing means (a binding band or the like). As
a result, it is possible to further improve cost effectiveness.
[0081] Further, when the upper portion of the drying agent storage portion 95 is positioned
above the maximum liquid level height, it is possible to more reliably suppress the
generation of the bumping and the shock sound according to the bumping during the
start-up of the compressor 210.
[0082] Additionally, the detailed structures and the operations and effects of the modified
examples illustrated in Figs. 12 to 14 and Figs. 15 and 16 are also referred to Japanese
Patent Application No.
2015-231052.
[0083] Further, in the first to third embodiments, the outflow pipe having the double pipe
structure with the inner pipe and the outer pipe has been employed, but it is needless
to mention that the invention can be also applied to an accumulator including, for
example, a U-shaped outflow pipe of which one end side is connected to an outflow
port and the other end side opening is positioned in the vicinity of a lower surface
of a gas-liquid separator.
EXPLANATIONS OF LETTERS OR NUMERALS
[0084]
- 1
- accumulator (first embodiment)
- 1A
- accumulator (modified example of first embodiment)
- 2
- accumulator (second embodiment)
- 2A
- accumulator (modified example of second embodiment)
- 3
- accumulator (third embodiment)
- 3A
- accumulator (modified example of third embodiment)
- 10
- tank
- 12
- lid member
- 13
- bottom portion of tank
- 13a
- protrusion of bottom portion of tank
- 15
- inflow port
- 16
- outflow port
- 17
- cylindrical portion
- 17a
- crimped portion or expanded pipe portion
- 18
- gas-liquid separator
- 18a
- ceiling portion
- 18b
- peripheral wall portion
- 19
- guide hole
- 20
- holding plate (holding member)
- 25
- base member
- 25a
- ceiling plate portion
- 25b
- peripheral wall portion
- 29
- cover member
- 30
- outflow pipe
- 31
- inner pipe
- 32
- outer pipe
- 35
- oil return hole
- 36
- plate rib
- 37
- knurled portion
- 40
- strainer
- 50
- bag
- 90
- cloth
- 90s
- slit
- 92
- pipe extrapolation portion
- 95
- drying agent storage portion
- M
- drying agent
1. An accumulator (1; 2; 3) comprising:
a tank (10) which is provided with an inflow port (15) and an outflow port (16);
an outflow pipe (30) of which one end side is connected to the outflow port (16) and
the other end side is opened inside the tank (10);
a cap-shaped or inverted thin bowl shaped gas-liquid separator (18) which is fixed
and disposed below the inflow port (15) to cover the other end side opening, and
a holding means which is provided to hold the gas-liquid separator (18),
wherein an entirety or a part of the gas-liquid separator (18) is formed as an elastically
deformable member and the elastically deformable member is elastically deformed upward
in the event of bumping.
2. The accumulator (1; 2) according to claim 1,
wherein the holding means comprises a holding member (20),
wherein an entirety of the gas-liquid separator (18) is formed as an elastically deformable
member and the holding member (20) is provided to hold the gas-liquid separator (18)
from below.
3. The accumulator (1; 2) according to claim 2,
wherein the gas-liquid separator (18) and the holding member (20) are supported by
the tank (10) or the outflow pipe (30).
4. The accumulator (1; 2) according to claim 3,
wherein the holding member (20) includes an inner race (21) to which the tank (10)
or the outflow pipe (30) is internally fitted, a plurality of support arms (22) which
extend outward from the inner race (21), and an outer race (23) which connects outer
ends of the plurality of support arms (22).
5. The accumulator (2) according to any one of claims 2 to 4,
wherein the gas-liquid separator (18) is provided with one or a plurality of convex
portions (18c) or concave portions.
6. The accumulator (2) according to claim 5,
wherein the convex portion (18c) or the concave portion is formed in a circular shape
or a circular-arc shape.
7. The accumulator (3) according to claim 1,
wherein the gas-liquid separator (18) includes a ceiling plate portion (25a) provided
with one or a plurality of openings, a peripheral wall portion (25b) provided at an
outer end of the ceiling plate portion (25a), and an elastically deformable member
(29) covering the openings of the ceiling plate portion (25a).
8. The accumulator (3) according to claim 7,
wherein the holding means comprises a plate rib (36),
wherein the gas-liquid separator (18) is supported by the plate rib (36) of the outflow
pipe (30).
9. The accumulator (3) according to claim 7,
wherein the holding means comprises a flange portion,
wherein the gas-liquid separator (18) is supported inside the tank (10) by the flange
portion.
10. The accumulator (3) according to claim 7,
wherein the holding means comprises a cylindrical portion,
wherein the gas-liquid separator (18) is supported inside the tank (10) by the cylindrical
portion.
11. The accumulator (3) according to one of claims 8 to 10,
wherein the ceiling plate portion (25a) includes an inner race (26) to which the tank
(10) or the outflow pipe (30) is internally fitted, a plurality of support arms (27)
extending outward from the inner race (26), and an outer race (28) connecting outer
ends of the plurality of support arms (27).
12. The accumulator (3) according to claim 11,
wherein the elastically deformable member is provided with a notch (29a) formed along
the plurality of support arms (27) in the ceiling plate portion (25a).
1. Ein Akkumulator (1; 2; 3), der aufweist:
einen Tank (10), der mit einer Einströmöffnung (15) und einer Ausströmöffnung (16)
versehen ist;
ein Ausflussrohr (30), bei dem eine Endseite mit der Ausflussöffnung (16) verbunden
ist und bei dem die andere Endseite sich in den Tank (10) hinein öffnet;
einen Gas-Flüssigkeitstrenner (18) in Form einer Kappe oder in Form einer umgedrehten
dünnen Schüssel, der unterhalb der Einströmöffnung (15) befestigt und angeordnet ist,
um die Öffnung an der anderen Endseite abzudecken, und
eine Haltevorrichtung, die vorgesehen ist, um den Gas-Flüssigkeitstrenner (18) zu
halten,
wobei der Gas-Flüssigkeitstrenner (18) zur Gänze oder zu einem Teil als ein elastisch
verformbares Element geformt ist, und das elastisch verformbare Element bei einem
Siedeverzug elastisch nach oben verformt wird.
2. Der Akkumulator (1; 2) gemäß Anspruch 1,
wobei die Haltevorrichtung ein Halteelement (20) aufweist, wobei der Gas-Flüssigkeitstrenner
(18) zur Gänze oder zu einem Teil als ein elastisch deformierbares Element geformt
ist, und
das Halteelement (20) vorgesehen ist, um den Gas-Flüssigkeitstrenner von unten zu
halten.
3. Der Akkumulator (1; 2) gemäß Anspruch 2,
wobei der Gas-Flüssigkeitstrenner (18) und das Halteelement (20) durch den Tank (10)
oder durch das Ausflussrohr (30) gehalten sind.
4. Der Akkumulator (1; 2) gemäß Anspruch 3,
wobei das Halteelement Folgendes aufweist: einen inneren Ring (21), an den der Tank
(10) oder das Ausflussrohr (30) von innen eingepasst ist, eine Mehrzahl von Stützarmen
(22), die sich nach außen von dem inneren Ring (21) erstrecken, und einen äußeren
Ring (23), der äußere Enden der Vielzahl von Stützarmen (22) verbindet.
5. Der Akkumulator (2) gemäß einem der Ansprüche 2 bis 4,
wobei der Gas-Flüssigkeitstrenner (18) mit einer Vielzahl von konvexen Bereichen (18c)
oder konkaven Bereichen versehen ist.
6. Der Akkumulator (2) gemäß Anspruch 5,
wobei der konvexe Bereich (18c) oder der konkave Bereich kreisförmig oder in Form
eines Kreisbogens geformt ist.
7. Der Akkumulator (3) gemäß Anspruch 1,
wobei der Gas-Flüssigkeitstrenner (18) das Folgende enthält: einen Deckenplattenbereich
(25a), der mit einer oder einer Vielzahl von Öffnungen versehen ist, einen Außenwandbereich
(25b), der an einem äußeren Ende des Deckenplattenbereichs (25a) vorgesehen ist, und
ein elastisch verformbares Element (29), das die Öffnungen des Deckenplattenbereichs
(25a) abdeckt.
8. Der Akkumulator (3) gemäß Anspruch 7,
wobei die Haltevorrichtung eine Plattenrippe (36) aufweist, wobei der Gas-Flüssigkeitstrenner
(18) durch die Plattenrippe (36) des Ausflussrohrs (30) gestützt ist.
9. Der Akkumulator (3) gemäß Anspruch 7,
wobei die Haltevorrichtung einen Flanschbereich aufweist, wobei der Gas-Flüssigkeitstrenner
(18) durch den Flanschbereich innerhalb des Tanks (10) gelagert ist.
10. Der Akkumulator (3) gemäß Anspruch 7,
wobei die Haltevorrichtung einen zylindrischen Bereich aufweist, wobei der Gas-Flüssigkeitstrenner
(18) durch den zylindrischen Bereich innerhalb des Tanks (10) gelagert ist.
11. Der Akkumulator (3) gemäß einem der Ansprüche 8 bis 10,
wobei der Deckenplattenbereich (25a) das Folgende aufweist: einen inneren Ring (26),
an den der Tank (10) oder das Ausflussrohr (30) von innen eingepasst ist, eine Vielzahl
von Stützarmen (27), die sich von dem inneren Ring (26) nach außen erstrecken, und
einen äußeren Ring (28), der äußere Enden der Vielzahl von Stützarmen (27) verbindet.
12. Der Akkumulator (3) gemäß Anspruch 11,
wobei das elastische verformbare Element mit einer Kerbe (29a) versehen ist, die entlang
der Vielzahl von Stützarmen (27) in dem Deckenplattenbereich (25a) ausgeformt ist.
1. Un accumulateur (1; 2; 3) comprenant:
un réservoir (10) qui est pourvu d'une orifice d'admission (15) et d'une orifice de
sortie (16),
un tuyau de sortie (30) duquel un côté est connecté à l'orifice de sortie (16) et
l'autre côté est ouvert vers l'intérieur du réservoir (10);
un séparateur gaz-liquide (18) en forme de bouchon ou en forme de plat creux mince
qui est fixé et disposé au-dessous de l'orifice d'admission (15) pour couvrir l'ouverture
de l'autre côté, et
un dispositif de maintien, qui est pourvu pour tenir le séparateur gaz-liquide (18),
dans lequel la totalité ou une partie du séparateur gaz-liquide (18) est formée comme
un membre élastiquement déformable et le membre élastiquement déformable est déformé
élastiquement vers le haut en cas de surchauffe.
2. L'accumulateur (1; 2) selon revendication 1,
dans lequel le dispositif de maintien comprend un membre de maintien (20),
dans lequel le séparateur gaz-liquide (18) est formé entièrement ou partiellement
comme un membre élastiquement déformable, et le membre de maintien (20) est pourvu
pour tenir le séparateur gaz-liquide (18) d'en bas.
3. L'accumulateur (1; 2) selon revendication 2,
dans lequel le séparateur (18) et le membre de maintien (20) sont supportés par le
réservoir (10) ou par le tuyau de sortie (30).
4. L'accumulateur (1; 2) selon revendication 3,
dans lequel le membre de maintien (20) comprend une bague intérieure (21) à laquelle
le réservoir (10) ou le tuyau de sortie (30) est monté intérieurement, une pluralité
de bras de support (22) qui s'étend vers l'extérieur de la bague intérieure (21),
et une bague extérieure (23) qui connecte des bouts extérieures à la pluralité de
bras de support (22).
5. L'accumulateur (2) selon quelqu'une des revendications 2 à 4, dans lequel le séparateur
gaz-liquide (18) est pourvu avec une ou une pluralité de parties convexes (18c) ou
concaves.
6. L'accumulateur (2) selon revendication 5,
dans lequel la partie convexe (18c) ou concave est formée en forme de cercle ou en
forme d'arc circulaire.
7. L'accumulateur (3) selon revendication 1,
dans lequel le séparateur gaz-liquide (18) comprend une partie plaque de plafond (25a)
équipée d'une ou d'une pluralité d'ouvertures, une partie de paroi périphérique (25b)
qui est pourvue à un bout extérieur de la partie plaque de plafond (25a), et un membre
élastiquement déformable (29) qui couvre l'ouvertures de la partie plaque de plafond
(25a).
8. L'accumulateur (3) selon revendication 7,
dans lequel le dispositif de maintien comprend une nervure plaque (36), et dans lequel
le séparateur gaz-liquide (18) est supporté par la nervure plaque (36) du tuyau de
sortie (30).
9. L'accumulateur (3) selon revendication 7,
dans lequel le dispositif de maintien comprend une partie de bride, dans lequel le
séparateur gaz-liquide (18) est supporté dedans le réservoir (10) par la partie de
bride.
10. L'accumulateur (3) selon revendication 7,
dans lequel le dispositif de maintien comprend une partie cylindrique, dans lequel
le séparateur gaz-liquide (18) est supporté dedans le réservoir (10) par la partie
cylindrique.
11. L'accumulateur (3) selon une des revendications 8 à 10,
dans lequel la partie de plaque de plafond (25a) comprend une bague intérieure (26)
à laquelle le réservoir (10) ou le tuyau de sortie (30) est monté intérieurement,
une pluralité de bras de support (27) qui s'étend vers l'extérieur de la bague intérieure
(26), et une bague extérieure (28) qui connecte les bouts de la pluralité de bras
de support (27).
12. L'accumulateur (3) selon revendication 11,
dans lequel le membre élastiquement déformable est pourvu d'une encoche (29a) formée
le long de la pluralité de bras de support (27) dans la partie de plaque de plafond
(25a).