SUCTION MUFFLER FOR A HERMETICALLY ENCAPSULATED REFRIGERANT COMPRESSOR
20170314543 · 2017-11-02
Inventors
Cpc classification
F25B31/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B39/0066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/1294
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M35/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Suction muffler (1) for a hermetic refrigeration compressor (2), the suction muffler (1) comprising an inlet (3), so that refrigerant can flow into the suction muffler (1), and an outlet (4), so that refrigerant can flow out from the suction muffler (1), the suction muffler (1) further comprising two damping chambers (5, 6) for sound damping, where the two damping chambers (5, 6) each has a floor (8, 9) and where a wall element (11) is provided, in order to separate the two damping chambers (5, 6) from each other for the refrigerant in the region of their floors (8, 9). In order to guarantee that the damping chambers (5, 6) are overall as gas-tight and sound-tight as possible, it is provided according to the invention that in the region of the wall element (11) at least one siphon segment (16) that connects the two floors is disposed, in order to receive oil (14) in an operating position of the suction muffler (1), where the at least one siphon segment (16) connects the two damping chambers (5, 6) in siphon fashion to each other for the oil (14).
Claims
1. A suction muffler for a hermetic refrigeration compressor, the suction muffler comprising an inlet, so that refrigerant can flow into the suction muffler, and an outlet, so that refrigerant can flow out from the suction muffler, the suction muffler further comprising two damping chambers for sound damping, where the two damping chambers each has a floor and where a wall element is provided in order to separate the two damping chambers from each other for the refrigerant in the region of their floors, characterized in that in the region of the wall element at least one siphon segment connecting the two floors is disposed, in order to receive oil in an operating position of the suction muffler, where the at least one siphon segment connects the two damping chambers to each other for the oil in siphon fashion.
2. The suction muffler as in claim 1, characterized in that in at least one of the two floors a channel is disposed, in order to accommodate oil in the operating position of the suction muffler, where the channel is connected to the at least one siphon segment.
3. The suction muffler as in claim 1, characterized in that the at least one siphon segment is made as a depression in the two floors and in that preferably the channel is made as an additional depression in the at least one of the two floors, where the additional depression is, at least in a segment, less deep than the said depression.
4. The suction muffler as in claim 1, characterized in that at least one additional damping chamber is provided, in that the at least one additional damping chamber has a floor, in that at least one additional wall element is provided, in order to separate the at least one additional damping chamber for the refrigerant from at least one of the other damping chambers in the region of the relevant floor, where in the region of the at least one additional wall element at least one additional siphon segment connecting the relevant floors is disposed, in order to receive oil in an operating position of the suction muffler, and where the at least one additional siphon segment connects the at least one additional damping chamber for the oil to at least one of the other damping chambers in siphon fashion.
5. The suction muffler as in claim 4, characterized in that the channel is also disposed in floor of the at least one additional damping chamber in order to receive oil in the operating position of the suction muffler, where the channel is connected to the at least one additional siphon segment.
6. The suction muffler as in claim 1, characterized in that an oil drain hole is disposed in the floor of a damping chamber.
7. The suction muffler as in claim 6, characterized in that one oil drain hole is provided.
8. The suction muffler as in claim 6, characterized in that the channel is connected to the oil drain hole.
9. The suction muffler as in claim 1, characterized in that the floors and the at least one siphon segment and preferably the at least one additional siphon segment are made in one piece.
10. A hermetic refrigeration compressor, which has a hermetic compressor housing, in the inside of which a piston/cylinder unit that compresses the refrigerant operates with a suction valve comprising a suction opening disposed in a valve plate thereof, where a suction muffler as in claim 1 is disposed on a cylinder head of the piston cylinder unit so that the refrigerant can flow through the suction muffler to the suction valve.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0019] The invention will now be explained in more detail by means of embodiment examples. The drawings are exemplary and are intended to represent the concept of the invention, but not in any way to limit it or even to reproduce it in a final form. Here:
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WAYS TO IMPLEMENT THE INVENTION
[0032]
[0033] The suction muffler 1 is shown in
[0034]
[0035] Analogously, an additional wall element 12 is disposed between the second damping chamber 6 and the third damping chamber 7, and it separates the two damping chambers 6, 7 in the region of their floors 9, 10 for the refrigerant. I.e., the additional wall element 12 keeps refrigerant in the region of floors 9, 10 from being able to pass from the second damping chamber 6 into the third damping chamber 7 and vice versa.
[0036] Of course, this does not mean that no exchange of refrigerant can take place between the damping chambers 5, 6, 7. Such exchange does take place through openings and/or free channels specifically provided for this (not shown).
[0037] Oil 14 that gets into the suction muffler 1 basically collects on the floors 8, 9, 10 because of the force of gravity when the suction muffler 1 is in operating position. In refrigeration compressor 2 the oil 14 is basically needed for lubrication of a piston/cylinder unit that compresses the refrigerant. In the operation of the refrigerant compressor 2, it is in general hardly possible, or practically impossible, to block the entry of oil 14 into the suction muffler 1 entirely.
[0038] In order to enable crossover for the oil 14 between the damping chambers 5, 6, a siphon segment is disposed in floors 8, 9 in the region of the wall element 11 between the first damping chamber 5 and the second damping chamber 6. The siphon segment 16 is made as a depression in the floors 8, 9. In this way a siphon-like connection between the damping chambers 5, 6 is produced for the oil 14.
[0039] This means that the siphon segment 16 ensures that oil 14 can pass from the first damping chamber 5 to the second damping chamber 6 (and basically also the other way around). Here the oil 14 forms a gas-tight seal in siphon segment 16 and thus prevents in particular a transfer of gaseous refrigerant between the damping chambers 5, 6 through the siphon segment 16. This also prevents sound from passing through the siphon segment 16 between the damping chambers 5, 6.
[0040] Likewise, another siphon segment 17, which is also connected to the channel 13, is disposed in the floors 9, 10 between the second damping chamber 6 and the third damping chamber 7 in the region of the additional wall element 12. The additional siphon segment 17 is likewise made as a depression in the floors 9, 10. In this way a siphon-like connection is produced between the damping chambers 6, 7 for the oil 14.
[0041] This means that the additional siphon segment 17 ensures that oil 14 can pass from the second damping chamber 6 to the third damping chamber 7 (and basically also the other way around). In doing so, the oil 14 in the additional siphon segment 17 forms a gas-tight seal and thus prevents in particular a crossover of gaseous refrigerant between the damping chambers 6, 7 through the additional siphon segment 17. Likewise, this keeps sound from being able to pass between the damping chambers 6, 7 through the additional siphon segment 17.
[0042] Refrigerant can be efficiently prevented from being suctioned through the siphon segment 16 or the additional siphon segment 17 and causing a troublesome bubbling noise by the openings and/or free channels (not shown) that are specially intended for the exchange of refrigerant between the damping chambers 5, 6, 7.
[0043]
[0044] The tight seal is illustrated by
[0045] Detail D in
[0046] So that the oil 14 can flow out of the suction muffler 1, only one oil drain hole 15 is provided in floor 10 of the third damping chamber 7, so that all in all a maximum gas and sound tightness of the damping chambers 5, 6, 7 results. Said oil drain hole 15 can be seen particularly clearly in
[0047] Furthermore, one can see in
[0048] For a gas-tight seal of the additional siphon segment 17 it is thus sufficient if the oil 14 just fills the additional siphon segment 17 or if the oil level t.sub.2 is just great enough that the additional wall element 12 just dips into the oil 14 or contacts the oil 14. This means that for the gas-tightness it is not necessary that the floors 9, 10 be also covered with oil 14 or that the oil level t.sub.1 be greater than zero.
[0049] Because of the connection for the oil 14 between the damping chambers 5, 6, 7 that is realized by means of the siphon segments 16, 17, it is ensured that the oil 14 can ultimately flow from each damping chamber 5, 6, 7. Preferably, the siphon segments 16, 17 and the floors 8, 9, 10 are designed so that the oil 14 is directed to oil drain hole 15.
[0050] An example of the use of the suction muffler 1 in a refrigeration compressor 2 is shown in
[0051]
[0052] The channel 13 can also be extended up to the oil drain hole 15 (not shown), so that in the indicated embodiment example it would then connect the additional siphon segment 17 to the oil drain hole 15. Through the appropriate layout of the channel 13, the oil 14 can be specifically directed to the oil drain hole 15 in this way.
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[0055] In the embodiment example in
[0056] For illustration
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REFERENCE NUMBER LIST
[0058] 1 Suction muffler [0059] 2 Refrigeration compressor [0060] 3 Inlet [0061] 4 Outlet [0062] 5 First damping chamber [0063] 6 Second damping chamber [0064] 7 Third damping chamber [0065] 8 Floor of first damping chamber [0066] 9 Floor of second damping chamber [0067] 10 Floor of third damping chamber [0068] 11 Wall element [0069] 12 Additional wall element [0070] 13 Channel [0071] 14 Oil [0072] 15 Oil drain hole [0073] 16 Siphon segment [0074] 17 Additional siphon segment [0075] 18 Compressor housing [0076] 19 Piston/cylinder unit [0077] 20 Cylinder head [0078] 21 Sealing lip [0079] t.sub.1 Oil level in damping chamber [0080] t.sub.2 Oil level in siphon segment