WO1997001036A1 - Suction sound damper for a refrigerant compressor - Google Patents

Suction sound damper for a refrigerant compressor Download PDF

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Publication number
WO1997001036A1
WO1997001036A1 PCT/DK1996/000272 DK9600272W WO9701036A1 WO 1997001036 A1 WO1997001036 A1 WO 1997001036A1 DK 9600272 W DK9600272 W DK 9600272W WO 9701036 A1 WO9701036 A1 WO 9701036A1
Authority
WO
WIPO (PCT)
Prior art keywords
sound damper
wall
suction sound
outlet
gas deflection
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/DK1996/000272
Other languages
French (fr)
Inventor
Michael Skovgaard Jensen
Frank Holm Iversen
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Danfoss Deutschland GmbH
Original Assignee
Danfoss Compressors GmbH
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Danfoss Compressors GmbH filed Critical Danfoss Compressors GmbH
Priority to US08/981,277 priority Critical patent/US6017197A/en
Priority to EP96920745A priority patent/EP0834015B1/en
Priority to AU61885/96A priority patent/AU6188596A/en
Priority to AT96920745T priority patent/ATE230464T1/en
Publication of WO1997001036A1 publication Critical patent/WO1997001036A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B39/00Component parts, details, or accessories, of pumps or pumping systems specially adapted for elastic fluids, not otherwise provided for in, or of interest apart from, groups F04B25/00 - F04B37/00
    • F04B39/0027Pulsation and noise damping means
    • F04B39/0055Pulsation and noise damping means with a special shape of fluid passage, e.g. bends, throttles, diameter changes, pipes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B39/00Component parts, details, or accessories, of pumps or pumping systems specially adapted for elastic fluids, not otherwise provided for in, or of interest apart from, groups F04B25/00 - F04B37/00
    • F04B39/0027Pulsation and noise damping means
    • F04B39/0055Pulsation and noise damping means with a special shape of fluid passage, e.g. bends, throttles, diameter changes, pipes
    • F04B39/0061Pulsation and noise damping means with a special shape of fluid passage, e.g. bends, throttles, diameter changes, pipes using muffler volumes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B39/00Component parts, details, or accessories, of pumps or pumping systems specially adapted for elastic fluids, not otherwise provided for in, or of interest apart from, groups F04B25/00 - F04B37/00
    • F04B39/0027Pulsation and noise damping means
    • F04B39/0055Pulsation and noise damping means with a special shape of fluid passage, e.g. bends, throttles, diameter changes, pipes
    • F04B39/0072Pulsation and noise damping means with a special shape of fluid passage, e.g. bends, throttles, diameter changes, pipes characterised by assembly or mounting

Definitions

  • the invention relates to a suction sound damper for a refrigerant compressor, having an inlet, which is arranged to be connected to a suction port, and an outlet, which is arranged to be connected to the refrigerant compressor, and also having at least one damping volume.
  • Such a suction sound damper is known from US 5 201 640.
  • the inlet is connected to the outlet by way of a tube.
  • the tube forces a number of direction changes on the gaseous refrigerant flowing through it.
  • the tube has a number of radial openings through which the inside of the tube is in connection with the damping volume which surrounds the tube.
  • the known solution is firstly relatively expensive, because the tube is constructed as a separate component which accordingly requires a further manufacturing step and additional material.
  • the many directional changes in the flow of refrigerant lead to an increased flow resistance, with the result that the efficiency of a compressor which is provided with such a suction sound damper may suffer.
  • suction sound damper is known from DE 36 45 083 C2.
  • This suction sound damper consists of two halves that are joined together and then enclose four chambers which are connected to one another partly by throttling points and partly by a throttling channel. These throttling points and channels also lead to a relatively large flow resistance, with adverse consequences for the efficiency of a compressor equipped therewith.
  • Such a suction sound damper can, however, be manufactured relatively inexpensively.
  • the invention is based on the problem of providing a simple and inexpensive suction sound damper for a refrigerant compressor, which allows improved efficiency of the refrigerant compressor.
  • a suction sound damper of the kind mentioned in the introduction in that it is formed from a first and a second half which define an internal space in which the damping volume is arranged, the first half having projecting into the internal space a gas deflection wall which, at least over sections thereof, forms a lateral limitation of a flow path free from throttle points between inlet and outlet.
  • the refrigerant can flow through the suction sound damper at a uniform speed, but with a lower pressure drop. Because the suction sound damper is arranged, in the case of encapsulated domestic refrigeration machines, generally within the capsule, that is, within an atmosphere of refrigerant that has already been heated, the flow speed that can be achieved has the advantage that the refrigerant that is still cold in the suction sound damper does not become appreciably warm. Any such warming leads to loss of density and thus to impairment of the efficiency of the refrigerant compressor.
  • the inlet preferably opens substantially parallel to the gas deflection wall into the internal space.
  • the gas deflection wall is thus located approximately tangentially to the incoming refrigerant. Eddying of the refrigerant, which could lead to an increase in the flow resistance and to slowing of the refrigerant, are therefore largely avoided.
  • the outlet is also preferred for the outlet to run substantially parallel to the gas deflection wall. Eddying is also avoided by this measure. Flow resistances which could occur at the transition between the flow path and the outlet are thus kept as small as possible.
  • the gas deflection wall preferably has a curve effecting a directional change between inlet and outlet.
  • This has the advantage, firstly, that such a suction sound damper can be used also with known refrigerant compressors, in which inlet and outlet of the suction sound damper are not in alignment but are offset by, for example, 90° with respect to one another.
  • the curve of the gas deflection wall also has the advantage, however, that the incoming refrigerant is pressed against the gas deflection wall, whereby reliable guidance of the refrigerant along the flow path is ensured.
  • the curve should in that case be as "round” or "gentle” as possible in order to effect a gradual directional change in the refrigerant flow.
  • the radius of curvature is limited, of course, by the overall size of the suction sound damper.
  • the gas deflection wall is preferably of increased height in the region of the curve.
  • a boundary wall is provided substantially parallel to the gas deflection wall on the opposite side of inlet and outlet. Inlet and outlet thus open out between the gas deflection wall and the boundary wall.
  • the boundary wall also is preferably provided on the first half. This simplifies manufacture.
  • the gas deflection wall runs, at least for the majority of its length, spaced apart from an outer wall of the first half. Between the outer wall and the gas deflection wall quiescent gas volumes are able to form, which contribute to thermal insulation between the outer wall and the gas deflection wall. Introduction of heat into the flow channel from this outer wall is therefore very reliably prevented. Warming of the refrigerant flowing through the suction sound damper is thus also reduced.
  • the gas deflection wall and/or the boundary wall preferably have a predetermined spacing from the top wall of the second half.
  • the flow path for the refrigerant is therefore combined for virtually the entire cross-section of the flow channel with a relatively large damping volume inside the suction sound damper. Pressure pulses that occur as a consequence of the back and forth movement of the piston of the refrigerant compressor and therefore in combination with the pulsed suction of the refrigerant, can then spread out in the damping volume, without having to overcome relatively large throttling resistances. This produces a very effective sound damping.
  • the inlet is open into the internal space close to the base of the first half.
  • the refrigerant is able to bend round at a relatively low pressure level along the base of the first half against this base and clings, as it were, to the base of the first half.
  • This effect arises because the incoming refrigerant gas entrains the stationary gas in the region of the flow path with it and a reduced pressure consequently occurs along the wall; the main gas flow delivers the region of reduced pressure towards the wall.
  • the outlet is preferably provided with an outlet connector which is fixed between the first and the second half, an opening of the outlet connector being located in the internal space.
  • An inflow into the outlet connector is thereby effected directly from the flow path and not from the surrounding damping volume.
  • the effective opening cross-section is enlarged here.
  • the damping volume is therefore able to fill with quiescent refrigerant in which only a few movements occur. Intermingling of warm and cold refrigerant takes place only to a very slight extent.
  • a suction sound damper 1 comprises a first half 2 and a second half 3 which together define an internal space when they are joined to one another by their flanges 4, 5.
  • the suction sound damper 1 has an inlet 6, which can be connected by way of an inlet connector 7 to a suction port of a housing, not illustrated. Refrigerant is sucked in through this suction port.
  • the suction sound damper further has an outlet 8 in which an outlet connector 9 can be inserted.
  • the outlet connector 9 can be connected to a refrigerant compressor, likewise not illustrated.
  • a gas deflection wall 10 which runs from inlet 6 to outlet 8 and extends in the internal space between the two halves 2, 3.
  • the gas deflection wall 10 here forms a curve 11 with as large a radius of curvature as possible.
  • the gas deflection wall 10 is aligned substantially parallel to the inlet 6. Inflowing refrigerant therefore flows substantially tangentially to the gas deflection wall 10. The same applies to the region of the outlet 8, where the gas deflection wall 10 is arranged substantially parallel to the outlet 8.
  • the inlet connector 7 has its opening close to the base
  • the so-called "Coanda effect” causes the gaseous refrigerant to attach itself to the base 12 of the first half 2.
  • a flow path for the refrigerant therefore develops along the gas deflection wall 10.
  • the refrigerant as stated, is held against the base by the Coanda effect, and is held against the gas deflection wall by the centrifugal force which presses the gaseous refrigerant against the gas deflection wall 10 on a change in direction.
  • the gas deflection wall 10 has an increased height 13. This increased height
  • the gap 13 can extend approximately as far as the outlet 8; the increased height 13 may be interrupted by a gap 14.
  • the gap 14 is in that case preferably arranged where there is no concave curvature of the gas deflection wall 10 and, if possible, where there is a convex curvature.
  • Substantially parallel to the gas deflection wall 10 there is arranged a boundary wall 15.
  • the boundary wall 15 prevents slowly rotating turbulence from forming on the side of the flow path opposite to the gas deflection wall 10; although this turbulence does not lead to an appreciable increase in the flow resistance through the suction sound damper, it could lead to warming of the gaseous refrigerant staying in the suction sound damper.
  • a region between the gas deflection wall 10 and the boundary wall 15 can now be defined as the flow path 16 or gas conduction path. Note, however, that this flow path 16 would develop in virtually the same manner if the boundary wall 15 were not present.
  • the gas deflection wall 10 runs, at least for the majority of its length, always spaced apart from an outer wall 17 of the first half. Dead spaces 18 which fill with gaseous refrigerant are therefore created.
  • the gas deflection wall 10 and the boundary wall 15 terminate at a predetermined spacing from a top wall 20 of the second half 3. Virtually the entire space between the top wall 20 and the upper side of the gas deflection wall 10 where the height is not increased and the upper side of the boundary wall 15 is therefore available as damping volume. This is supplemented by the dead spaces 18, 19. In the region of the gas deflection wall 10 there is also a connection between the flow path 16 and the damping volume, for example, by way of the gap 14 or the region in front of the raised wall 13 of the curve 11. The upper side of the gas deflection wall 10 here follows the top wall 20 with a constant gap. In this manner a very good connection between the flow path and the damping volume is created.
  • the outlet connector 9 is simply inserted between the first and the second halves 2, 3. It can be made of a material having a different thermal conductivity from the material of the two halves 2, 3.
  • the outlet connector 9 has an inlet opening 21 which is located in the internal space enclosed by the two halves 2, 3, to be precise, in the region of the flow path 16. Inflow into the outlet connector 9 is therefore effected only from the region of the gas deflection wall 10, and not from the surrounding damping volume. Because there is virtually no radial flow into the connector from the damping volume, a greater effective cross-section is achieved in the outlet connector 9.
  • the gas deflection wall 10 may possibly, in the region where its height is increased, abut the top wall 20. This greater height 13 not only prevents gas being displaced over the gas deflection wall; it may also intercept oil droplets entrained with the refrigerant and also drops of refrigerant that has already condensed. These drops can then run down the gas deflection wall 10 and, if it is so desired, drain off through the inlet 6 when the compressor next stops. This is easily possible because the inlet, as stated above, is arranged close to the base 12. Ingress of drops of fluid into the compressor is largely avoided.
  • Both halves 2, 3 can be manufactured from plastics material as injection-moulded parts. With such a construction both the gas deflection wall 10 and the boundary wall 15 can be integrally moulded directly with the first half 2, without further measures being necessary.
  • the profiled connections between the two halves 2, 3, which later result in an improved sealing of the suction sound damper, can be similarly moulded.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Compressor (AREA)
  • Applications Or Details Of Rotary Compressors (AREA)

Abstract

A suction sound damper (1) for a refrigerant compressor is disclosed, having an inlet (6), which is arranged to be connected to a suction port, and an outlet (8), which is arranged to be connected to the refrigerant compressor, and also having at least one damping volume. It is desirable for a suction sound damper of that kind to be of simple and inexpensive construction, and to contribute to increasing the efficiency of a refrigerant compressor. For that purpose, it is formed from a first and a second half (2, 3) which define an internal space in which the damping volume is arranged, the first half (2) having projecting into the internal space a gas deflection wall (10) which, at least over sections thereof, forms a lateral limitation of a flow path (16) free from throttle points between inlet (6) and outlet (8).

Description

Suction sound damper for a refrigerant compressor.
The invention relates to a suction sound damper for a refrigerant compressor, having an inlet, which is arranged to be connected to a suction port, and an outlet, which is arranged to be connected to the refrigerant compressor, and also having at least one damping volume.
Such a suction sound damper is known from US 5 201 640. In this suction sound damper, the inlet is connected to the outlet by way of a tube. The tube forces a number of direction changes on the gaseous refrigerant flowing through it. The tube has a number of radial openings through which the inside of the tube is in connection with the damping volume which surrounds the tube. The known solution is firstly relatively expensive, because the tube is constructed as a separate component which accordingly requires a further manufacturing step and additional material. Moreover, the many directional changes in the flow of refrigerant lead to an increased flow resistance, with the result that the efficiency of a compressor which is provided with such a suction sound damper may suffer.
Another suction sound damper is known from DE 36 45 083 C2. This suction sound damper consists of two halves that are joined together and then enclose four chambers which are connected to one another partly by throttling points and partly by a throttling channel. These throttling points and channels also lead to a relatively large flow resistance, with adverse consequences for the efficiency of a compressor equipped therewith. Such a suction sound damper can, however, be manufactured relatively inexpensively.
The invention is based on the problem of providing a simple and inexpensive suction sound damper for a refrigerant compressor, which allows improved efficiency of the refrigerant compressor.
That problem is solved in a suction sound damper of the kind mentioned in the introduction in that it is formed from a first and a second half which define an internal space in which the damping volume is arranged, the first half having projecting into the internal space a gas deflection wall which, at least over sections thereof, forms a lateral limitation of a flow path free from throttle points between inlet and outlet.
With such a construction the flow resistance of the suction sound damper can be reduced quite considerably. The efficiency of the compressor which is provided with such a suction sound damper can therefore be increased. Surprisingly, there is a satisfactory sound damping even without relatively large throttling resistances. On the contrary, it is now possible for the refrigerant flowing through the flow path to expand into the damping volume arranged likewise in the internal space. The function of the gas deflection wall is substantially merely to guide the gaseous refrigerant, which flows through the suction sound damper, at least over sections thereof from the inlet to the outlet. The gas deflection wall itself no longer forms any throttling points. Because the flow losses are kept small, the refrigerant can flow through the suction sound damper at a uniform speed, but with a lower pressure drop. Because the suction sound damper is arranged, in the case of encapsulated domestic refrigeration machines, generally within the capsule, that is, within an atmosphere of refrigerant that has already been heated, the flow speed that can be achieved has the advantage that the refrigerant that is still cold in the suction sound damper does not become appreciably warm. Any such warming leads to loss of density and thus to impairment of the efficiency of the refrigerant compressor.
The inlet preferably opens substantially parallel to the gas deflection wall into the internal space. The gas deflection wall is thus located approximately tangentially to the incoming refrigerant. Eddying of the refrigerant, which could lead to an increase in the flow resistance and to slowing of the refrigerant, are therefore largely avoided.
It is also preferred for the outlet to run substantially parallel to the gas deflection wall. Eddying is also avoided by this measure. Flow resistances which could occur at the transition between the flow path and the outlet are thus kept as small as possible.
The gas deflection wall preferably has a curve effecting a directional change between inlet and outlet. This has the advantage, firstly, that such a suction sound damper can be used also with known refrigerant compressors, in which inlet and outlet of the suction sound damper are not in alignment but are offset by, for example, 90° with respect to one another. The curve of the gas deflection wall also has the advantage, however, that the incoming refrigerant is pressed against the gas deflection wall, whereby reliable guidance of the refrigerant along the flow path is ensured. The curve should in that case be as "round" or "gentle" as possible in order to effect a gradual directional change in the refrigerant flow. The larger is the radius of curvature of the curve, the smaller are the flow losses. The radius of curvature is limited, of course, by the overall size of the suction sound damper.
The gas deflection wall is preferably of increased height in the region of the curve. By this means the refrigerant flowing is prevented from being displaced or "sloshed" over the gas deflection wall because of centrifugal force, so that it is kept, mainly at least, on the flow path.
In an especially preferred construction, a boundary wall is provided substantially parallel to the gas deflection wall on the opposite side of inlet and outlet. Inlet and outlet thus open out between the gas deflection wall and the boundary wall. In this manner, slowly rotating turbulence is prevented from forming on the side of the flow path remote from the gas deflection wall; such turbulence leads to transfer of heat from the outside of the sound damper to the suction line, thus allowing the refrigerant inside the suction sound damper to become warm when it stays there for a relatively long time. As stated above, such warming would contribute to impairment of the efficiency of the refrigerant compressor. Projections in the first and second half can form a labyrinth in the damping volume. In that case, transfer of heat from the outside of the sound damper to the suction channel is reduced.
The boundary wall also is preferably provided on the first half. This simplifies manufacture. In an especially preferred construction, the gas deflection wall runs, at least for the majority of its length, spaced apart from an outer wall of the first half. Between the outer wall and the gas deflection wall quiescent gas volumes are able to form, which contribute to thermal insulation between the outer wall and the gas deflection wall. Introduction of heat into the flow channel from this outer wall is therefore very reliably prevented. Warming of the refrigerant flowing through the suction sound damper is thus also reduced.
The gas deflection wall and/or the boundary wall preferably have a predetermined spacing from the top wall of the second half. The flow path for the refrigerant is therefore combined for virtually the entire cross-section of the flow channel with a relatively large damping volume inside the suction sound damper. Pressure pulses that occur as a consequence of the back and forth movement of the piston of the refrigerant compressor and therefore in combination with the pulsed suction of the refrigerant, can then spread out in the damping volume, without having to overcome relatively large throttling resistances. This produces a very effective sound damping.
In an especially preferred construction, provision is made for the inlet to open into the internal space close to the base of the first half. In that case, the refrigerant is able to bend round at a relatively low pressure level along the base of the first half against this base and clings, as it were, to the base of the first half. This effect arises because the incoming refrigerant gas entrains the stationary gas in the region of the flow path with it and a reduced pressure consequently occurs along the wall; the main gas flow delivers the region of reduced pressure towards the wall.
The outlet is preferably provided with an outlet connector which is fixed between the first and the second half, an opening of the outlet connector being located in the internal space. An inflow into the outlet connector is thereby effected directly from the flow path and not from the surrounding damping volume. The effective opening cross-section is enlarged here. The damping volume is therefore able to fill with quiescent refrigerant in which only a few movements occur. Intermingling of warm and cold refrigerant takes place only to a very slight extent.
The invention is described hereinafter with reference to a preferred embodiment in conjunction with the drawings, in which: the single Figure is a perspective exploded view of a suction sound damper.
A suction sound damper 1 comprises a first half 2 and a second half 3 which together define an internal space when they are joined to one another by their flanges 4, 5.
The suction sound damper 1 has an inlet 6, which can be connected by way of an inlet connector 7 to a suction port of a housing, not illustrated. Refrigerant is sucked in through this suction port.
The suction sound damper further has an outlet 8 in which an outlet connector 9 can be inserted. The outlet connector 9 can be connected to a refrigerant compressor, likewise not illustrated. In the first half 2 there is arranged a gas deflection wall 10 which runs from inlet 6 to outlet 8 and extends in the internal space between the two halves 2, 3. The gas deflection wall 10 here forms a curve 11 with as large a radius of curvature as possible.
In the region of the inlet 6 the gas deflection wall 10 is aligned substantially parallel to the inlet 6. Inflowing refrigerant therefore flows substantially tangentially to the gas deflection wall 10. The same applies to the region of the outlet 8, where the gas deflection wall 10 is arranged substantially parallel to the outlet 8.
The inlet connector 7 has its opening close to the base
12 of the first half 2. In that case, the so-called "Coanda effect" causes the gaseous refrigerant to attach itself to the base 12 of the first half 2. A flow path for the refrigerant therefore develops along the gas deflection wall 10. The refrigerant, as stated, is held against the base by the Coanda effect, and is held against the gas deflection wall by the centrifugal force which presses the gaseous refrigerant against the gas deflection wall 10 on a change in direction.
In the region of the curve 11, the gas deflection wall 10 has an increased height 13. This increased height
13 can extend approximately as far as the outlet 8; the increased height 13 may be interrupted by a gap 14. The gap 14 is in that case preferably arranged where there is no concave curvature of the gas deflection wall 10 and, if possible, where there is a convex curvature. Substantially parallel to the gas deflection wall 10 there is arranged a boundary wall 15. The boundary wall 15 prevents slowly rotating turbulence from forming on the side of the flow path opposite to the gas deflection wall 10; although this turbulence does not lead to an appreciable increase in the flow resistance through the suction sound damper, it could lead to warming of the gaseous refrigerant staying in the suction sound damper. A region between the gas deflection wall 10 and the boundary wall 15 can now be defined as the flow path 16 or gas conduction path. Note, however, that this flow path 16 would develop in virtually the same manner if the boundary wall 15 were not present.
The gas deflection wall 10 runs, at least for the majority of its length, always spaced apart from an outer wall 17 of the first half. Dead spaces 18 which fill with gaseous refrigerant are therefore created. The same applies to the boundary wall 15, which likewise runs spaced apart from the outer wall 17 of the first half and encloses with this outer wall 17 a dead space 19.
The gas deflection wall 10 and the boundary wall 15 terminate at a predetermined spacing from a top wall 20 of the second half 3. Virtually the entire space between the top wall 20 and the upper side of the gas deflection wall 10 where the height is not increased and the upper side of the boundary wall 15 is therefore available as damping volume. This is supplemented by the dead spaces 18, 19. In the region of the gas deflection wall 10 there is also a connection between the flow path 16 and the damping volume, for example, by way of the gap 14 or the region in front of the raised wall 13 of the curve 11. The upper side of the gas deflection wall 10 here follows the top wall 20 with a constant gap. In this manner a very good connection between the flow path and the damping volume is created. Short pressure surges, which are caused by the pulsed feeding of the refrigerant, are then able to expand in this damping volume; the expansion does not encounter any appreciable flow resistance. On the other hand, movement of gas in the damping volume is only very limited, so that there is virtually no, or only negligible, exchange of the refrigerant gas from the flow path 16 with gas from the damping volume.
The outlet connector 9 is simply inserted between the first and the second halves 2, 3. It can be made of a material having a different thermal conductivity from the material of the two halves 2, 3.
The outlet connector 9 has an inlet opening 21 which is located in the internal space enclosed by the two halves 2, 3, to be precise, in the region of the flow path 16. Inflow into the outlet connector 9 is therefore effected only from the region of the gas deflection wall 10, and not from the surrounding damping volume. Because there is virtually no radial flow into the connector from the damping volume, a greater effective cross-section is achieved in the outlet connector 9.
Whereas in the region of the boundary wall 15 there is a gap between the top wall 20 and the boundary wall 15 for the entire length of the boundary wall 15, the gas deflection wall 10 may possibly, in the region where its height is increased, abut the top wall 20. This greater height 13 not only prevents gas being displaced over the gas deflection wall; it may also intercept oil droplets entrained with the refrigerant and also drops of refrigerant that has already condensed. These drops can then run down the gas deflection wall 10 and, if it is so desired, drain off through the inlet 6 when the compressor next stops. This is easily possible because the inlet, as stated above, is arranged close to the base 12. Ingress of drops of fluid into the compressor is largely avoided.
By means of the suction sound damper 1, not only is a reduction in the flow resistance achieved, with the result that the compressor requires less effort to draw in the refrigerant; the refrigerant is also able to flow more quickly through the suction sound damper 1, with the result that the risk that the refrigerant will become warm is reduced. Efficiency is also improved as a result of this measure.
Both halves 2, 3 can be manufactured from plastics material as injection-moulded parts. With such a construction both the gas deflection wall 10 and the boundary wall 15 can be integrally moulded directly with the first half 2, without further measures being necessary. The profiled connections between the two halves 2, 3, which later result in an improved sealing of the suction sound damper, can be similarly moulded.

Claims

Patent Claims
1. Suction sound damper for a refrigerant compressor, having an inlet, which is arranged to be connected to a suction port, and an outlet, which is arranged to be connected to the refrigerant compressor, and also having at least one damping volume, characterized in that it is formed from a first and a second half (2, 3) which define an internal space in which the damping volume is arranged, the first half (2) having projecting into the internal space a gas deflection wall (10) which, at least over sections thereof, forms a lateral limitation of a flow path (16) free from throttle points between inlet (6) and outlet (8) .
2. Suction sound damper according to claim 1, characterized in that the inlet (6) opens substantially parallel to the gas deflection wall (10) into the internal space.
3. Suction sound damper according to claim 1 or 2, characterized in that the outlet (8) runs substantially parallel to the gas deflection wall (10) .
4. Suction sound damper according to one of claims 1 to 3, characterized in that the gas deflection wall (10) has a curve (11) effecting a directional change between inlet (6) and outlet (8) .
5. Suction sound damper according to claim 4, characterized in that the gas deflection wall (10) is of increased height (13) in the region of the curve (11).
6. Suction sound damper according to one of claims 1 to 3, characterized in that a boundary wall (15) is provided substantially parallel to the gas deflection wall (10) on the opposite side of inlet (6) and outlet (8).
7. Suction sound damper according to claim 6, characterized in that the boundary wall (15) also is provided on the first half (2) .
8. Suction sound damper according to one of claims 1 to 7, characterized in that the gas deflection wall (10) runs, at least for the majority of its length, spaced apart from an outer wall (17) of the first half (2).
9. Suction sound damper according to one of claims 1 to 8, characterized in that the gas deflection wall (10) and/or the boundary wall (15) have a predetermined spacing from a top wall (20) of the second half (3) .
10. Suction sound damper according to one of claims 1 to 9, characterized in that the inlet (6) opens into the internal space close to the base (12) of the first half (2) .
11. Suction sound damper according to one of claims 1 to 10, characterized in that the outlet (8) is provided with an outlet connector (9) which is fixed between the first and the second half (2, 3), an opening (21) of the outlet connector (9) being located in the internal space.
PCT/DK1996/000272 1995-06-23 1996-06-21 Suction sound damper for a refrigerant compressor Ceased WO1997001036A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
US08/981,277 US6017197A (en) 1995-06-23 1996-06-21 Suction sound damper for a refrigerant compressor
EP96920745A EP0834015B1 (en) 1995-06-23 1996-06-21 Suction sound damper for a refrigerant compressor
AU61885/96A AU6188596A (en) 1995-06-23 1996-06-21 Suction sound damper for a refrigerant compressor
AT96920745T ATE230464T1 (en) 1995-06-23 1996-06-21 INTAKE SILENCER FOR A COOLING COMPRESSOR

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE19522383A DE19522383C2 (en) 1995-06-23 1995-06-23 Suction silencer for a refrigerant compressor
DE19522383.7 1995-06-23

Publications (1)

Publication Number Publication Date
WO1997001036A1 true WO1997001036A1 (en) 1997-01-09

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PCT/DK1996/000272 Ceased WO1997001036A1 (en) 1995-06-23 1996-06-21 Suction sound damper for a refrigerant compressor

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US (1) US6017197A (en)
EP (1) EP0834015B1 (en)
AT (1) ATE230464T1 (en)
AU (1) AU6188596A (en)
DE (1) DE19522383C2 (en)
WO (1) WO1997001036A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7578659B2 (en) 2005-01-31 2009-08-25 York International Corporation Compressor discharge muffler

Families Citing this family (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AU2726599A (en) * 1999-02-26 2000-09-21 Embraco Europe S.R.L. Intake silencer for sealed refrigerant compressor
BR9900463A (en) * 1999-02-26 2000-08-29 Brasil Compressores Sa Suction damper for hermetic compressor
DE19923734C2 (en) * 1999-05-22 2001-03-29 Danfoss Compressors Gmbh Suction silencer for a hermetically sealed compressor
US6488482B1 (en) * 2000-09-07 2002-12-03 Donald Yannascoli Integral compressor muffler
KR100386269B1 (en) * 2001-01-11 2003-06-02 엘지전자 주식회사 Muffler of compressor
JP4956703B2 (en) * 2001-06-08 2012-06-20 ワールプール・エシ・ア Closed reciprocating compressor suction muffler
DE10128225C1 (en) 2001-06-11 2002-12-05 Danfoss Compressors Gmbh suction silencer
BR0105694B1 (en) * 2001-10-29 2009-05-05 suction filter for reciprocating airtight compressor.
JP4492032B2 (en) * 2003-03-27 2010-06-30 パナソニック株式会社 Hermetic compressor
DE10323526B3 (en) * 2003-05-24 2005-02-03 Danfoss Compressors Gmbh Suction muffler for a hermetic refrigerant compressor
DE112005000201B4 (en) 2004-01-29 2014-01-30 Acc Austria Gmbh Refrigerant compressor
DE102004008287A1 (en) * 2004-02-20 2005-09-08 Volkswagen Ag Sound absorber for an air-conditioning unit fits in an air-conditioning compressor's suction pipe with a casing having an inlet and outlet
BRPI0520251A2 (en) * 2005-05-31 2009-09-15 Carrier Corp method for reducing the level of noise emitted by an oil separator within a cooling or cooling system, and, dedicated silencer apparatus separated from an internal area of an oil separator, and for placement within it
US20070157598A1 (en) * 2005-08-22 2007-07-12 Gagov Atanas Plastic components formed from 3D blow molding
USD583287S1 (en) * 2007-06-29 2008-12-23 Husqvarna Zenoah Co., Ltd. Muffler for an internal combustion engine
USD577321S1 (en) * 2007-06-29 2008-09-23 Husqvarna Zenoah Co., Ltd. Muffler for an internal combustion engine
JP4396753B2 (en) * 2007-10-03 2010-01-13 株式会社デンソー Silencer for refrigeration cycle
KR101328226B1 (en) * 2008-10-22 2013-11-14 엘지전자 주식회사 Suction muffler for hermetic type compressor
JP5144553B2 (en) * 2009-01-30 2013-02-13 日東工器株式会社 air pump
DE102011108372A1 (en) * 2011-07-22 2013-01-24 Volkswagen Aktiengesellschaft Soundproofing in a refrigerant circuit
KR101854933B1 (en) * 2013-04-24 2018-05-04 엘지전자 주식회사 Muffler for compressor and compressor having the same
BR202013024030Y1 (en) * 2013-09-19 2019-10-01 Embraco Indústria De Compressores E Soluções E Refrigeração Ltda. CONSTRUCTIVE ARRANGEMENT INTRODUCED IN HERMETIC COMPRESSOR ACOUSTIC FILTER
JP6720404B2 (en) * 2017-12-18 2020-07-08 日東工器株式会社 Fluid device and its buffer tank

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3645083C2 (en) * 1986-07-09 1991-08-08 Danfoss A/S, Nordborg, Dk Sound dampener for use in refrigeration compressor
WO1993001412A1 (en) * 1991-07-04 1993-01-21 Whirlpool Italia S.R.L. A hermetic motor-driven compressor unit for refrigerating circuits
US5201640A (en) * 1991-05-28 1993-04-13 Empresa Brasileira De Compressores S/A -Embraco Suction muffler assembly for hermetic compressors
US5304044A (en) * 1990-03-06 1994-04-19 Matsushita Refrigeration Company Hermetic compressor
US5328338A (en) * 1993-03-01 1994-07-12 Sanyo Electric Co., Ltd. Hermetically sealed electric motor compressor

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4109751A (en) * 1976-08-26 1978-08-29 Deere & Company Noise silencer
US4313715A (en) * 1979-12-21 1982-02-02 Tecumseh Products Company Anti-slug suction muffler for hermetic refrigeration compressor
US4370104A (en) * 1980-07-22 1983-01-25 White Consolidated Industries, Inc. Suction muffler for refrigeration compressor
IT1165766B (en) * 1982-04-15 1987-04-29 Necchi Spa RESONANCE ABSORPTION TYPE SILENCER IN MOTORCOMPRESSOR FOR REFRIGERATING SYSTEMS
BR8602173A (en) * 1986-05-02 1987-12-22 Brasil Compressores Sa IMPROVEMENT IN A HERMETIC COOLING COMPRESSOR SUCTION SYSTEM
BR8804016A (en) * 1988-07-29 1990-03-20 Brasil Compressores Sa IMPROVEMENT IN THE SUCTION SYSTEM FOR THE HERMETIC COOLING COMPRESSOR

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3645083C2 (en) * 1986-07-09 1991-08-08 Danfoss A/S, Nordborg, Dk Sound dampener for use in refrigeration compressor
US5304044A (en) * 1990-03-06 1994-04-19 Matsushita Refrigeration Company Hermetic compressor
US5201640A (en) * 1991-05-28 1993-04-13 Empresa Brasileira De Compressores S/A -Embraco Suction muffler assembly for hermetic compressors
WO1993001412A1 (en) * 1991-07-04 1993-01-21 Whirlpool Italia S.R.L. A hermetic motor-driven compressor unit for refrigerating circuits
US5328338A (en) * 1993-03-01 1994-07-12 Sanyo Electric Co., Ltd. Hermetically sealed electric motor compressor

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7578659B2 (en) 2005-01-31 2009-08-25 York International Corporation Compressor discharge muffler

Also Published As

Publication number Publication date
EP0834015B1 (en) 2003-01-02
US6017197A (en) 2000-01-25
ATE230464T1 (en) 2003-01-15
DE19522383A1 (en) 1997-01-02
AU6188596A (en) 1997-01-22
EP0834015A1 (en) 1998-04-08
DE19522383C2 (en) 1997-06-19

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