Condensation and falling film evaporation hybrid heat exchanger
10288329 ยท 2019-05-14
Assignee
- Johnson Controls Technology Company (Auburn Hills, MI)
- York (Wuxi) Air Conditioning and Refrigeration Co., Ltd. (Wuxi, Jiangsu, CN)
Inventors
Cpc classification
F28F27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0071
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2250/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
C09K5/04
CHEMISTRY; METALLURGY
F28D3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A condensation and falling film evaporation hybrid heat exchanger is provided, including a shell, a condenser entrance pipe connected to a compressor discharge port, and an evaporator exit pipe connected to a compressor suction port being disposed respectively on the shell. A baffle plate is disposed at a position inside the shell corresponding to the condenser entrance pipe. A refrigerant distributor is disposed in the shell, a condensing tube bundle being disposed above the refrigerant distributor, and a falling film evaporating tube bundle being disposed below the refrigerant distributor. The condensation and falling film evaporation hybrid heat exchanger according to this invention can be used in concert with low-pressure refrigerant, thus efficiently solving the problem of refrigerant distribution with the falling film evaporator using low-pressure refrigerant.
Claims
1. A condensation and falling film evaporation hybrid heat exchanger for a refrigeration and air-conditioning unit, comprising: a shell; a condenser entrance pipe disposed on the shell and configured to connect to a compressor discharge port; an evaporator exit pipe disposed on the shell and configured to connect to a compressor suction port; a refrigerant distributor disposed in the shell; a condensing tube bundle disposed above the refrigerant distributor within a condenser region; and a falling film evaporating tube bundle disposed below the refrigerant distributor within an evaporator region; wherein the refrigerant distributor comprises a perforated plate with a plurality of through-holes disposed therein; and wherein the plurality of through-holes is configured to receive liquid refrigerant from a bottom portion of the condenser region, to direct the liquid refrigerant downwardly toward a top portion of the evaporator region, and to distribute the liquid refrigerant across a top of the falling film evaporating tube bundle as a plurality of liquid refrigerant droplets.
2. The condensation and falling film evaporation hybrid heat exchanger of claim 1, comprising a baffle plate disposed at a position inside the shell corresponding to the condenser entrance pipe.
3. The condensation and falling film evaporation hybrid heat exchanger of claim 1, wherein the refrigerant distributor comprises a plurality of hollow tubes disposed on the perforated plate and extending outwardly from the perforated plate toward the condensing tube bundle, the plurality of hollow tubes are arranged along an extension direction of the condensing tube bundle, and the plurality of hollow tubes are equally spaced apart from one another.
4. The condensation and falling film evaporation hybrid heat exchanger of claim 3, wherein: the plurality of hollow tubes have at least two different heights; and hollow tubes of the plurality of hollow tubes with a same height are equally spaced apart from one another.
5. The condensation and falling film evaporation hybrid heat exchanger of claim 1, wherein a plurality of floaters are disposed in the plurality of through-holes.
6. The condensation and falling film evaporation hybrid heat exchanger of claim 5, wherein: at least one through-hole of the plurality of through-holes is configured as a taper hole with a downward conical tip; and a lower portion of at least one floater of the plurality of floaters is configured as a cone cooperating with the at least one through-hole.
7. The condensation and falling film evaporation hybrid heat exchanger of claim 5, wherein: at least one floater of the plurality of floaters comprises a floater rod and a floater body disposed at a top end of the floater rod; a cavity is disposed inside the floater rod; and a plurality of groove-shaped through-holes on the floater rod are connected to the cavity.
8. The condensation and falling film evaporation hybrid heat exchanger of claim 6, wherein top portions of the plurality of floaters are connected by a connector.
9. The condensation and falling film evaporation hybrid heat exchanger of claim 7, wherein the at least one floater comprises two floaters, and the floater bodies of the two floaters are connected by a connector.
10. The condensation and falling film evaporation hybrid heat exchanger of claim 8, wherein the plurality of floaters is operatively connected to a controller, and the controller is configured to control rising and falling of the plurality of floaters.
11. The condensation and falling film evaporation hybrid heat exchanger of claim 9, wherein the two floaters are operatively connected to a controller, and the controller is configured to control rising and falling of the two floaters.
12. The condensation and falling film evaporation hybrid heat exchanger of claim 1, comprising an additional perforated plate disposed in the shell above the refrigerant distributor and dividing the condensing tube bundle into upper and lower groups.
13. The condensation and falling film evaporation hybrid heat exchanger of claim 1, wherein a cross-section of the shell perpendicular to an extension direction of the condensing tube bundle is circular or rectangular.
14. The condensation and falling film evaporation hybrid heat exchanger of claim 1, comprising a bypass pipe disposed at one side of the shell, wherein a first end of the bypass pipe is connected to the shell above the refrigerant distributor, and a second end of the bypass pipe is connected to the shell below the refrigerant distributor.
15. The condensation and falling film evaporation hybrid heat exchanger of claim 14, wherein a regulating valve is disposed on the bypass pipe.
16. A condensation and falling film evaporation hybrid heat exchanger for a refrigeration and air-conditioning unit, comprising: a shell; a condenser entrance pipe disposed on the shell and configured to connect to a compressor discharge port; an evaporator exit pipe disposed on the shell and configured to connect to a compressor suction port; a refrigerant distributor disposed in the shell; a condensing tube bundle disposed above the refrigerant distributor; and a falling film evaporating tube bundle disposed below the refrigerant distributor; wherein the refrigerant distributor comprises a perforated plate with a plurality of through-holes disposed therein; wherein the refrigerant distributor comprises a plurality of hollow tubes disposed on the perforated plate and extending outwardly from the perforated plate toward the condensing tube bundle, the plurality of hollow tubes are arranged along an extension direction of the condensing tube bundle, and the plurality of hollow tubes are equally spaced apart from one another; and wherein the plurality of hollow tubes have at least two different heights, and hollow tubes of the plurality of hollow tubes with a same height are equally spaced apart from one another.
17. The condensation and falling film evaporation hybrid heat exchanger of claim 16, comprising a baffle plate disposed at a position inside the shell corresponding to the condenser entrance pipe.
18. A condensation and falling film evaporation hybrid heat exchanger for a refrigeration and air-conditioning unit, comprising: a shell; a condenser entrance pipe disposed on the shell and configured to connect to a compressor discharge port; an evaporator exit pipe disposed on the shell and configured to connect to a compressor suction port; a refrigerant distributor disposed in the shell; a condensing tube bundle disposed above the refrigerant distributor; and a falling film evaporating tube bundle disposed below the refrigerant distributor; wherein the refrigerant distributor comprises a perforated plate with a plurality of through-holes disposed therein; wherein a plurality of floaters are disposed in the plurality of through-holes; and wherein at least one through-hole of the plurality of through-holes is configured as a taper hole with a downward conical tip, and a lower portion of at least one floater of the plurality of floaters is configured as a cone cooperating with the at least one through-hole.
19. The condensation and falling film evaporation hybrid heat exchanger of claim 18, wherein top portions of the plurality of floaters are connected by a connector.
20. The condensation and falling film evaporation hybrid heat exchanger of claim 19, wherein the plurality of floaters is operatively connected to a controller, and the controller is configured to control rising and falling of the plurality of floaters.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The following drawings of the embodiments in this invention constitute a part of this invention for understanding this invention. The drawings illustrate the embodiments of this invention and the descriptions thereof for explaining the principles of this invention. The drawings are provided as follows:
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DETAILED DESCRIPTION OF THE INVENTION
(15) In the following descriptions, many details are given for more thorough understanding of this invention. However, it is obvious for those skilled in the art that the embodiments of this invention can be implemented without one or more details of such. In other examples, to avoid confusion with the embodiments of this invention, some common technical features in the art are not described.
(16) For thorough understanding of the embodiments of this invention, the detailed structures are brought forward in the following descriptions. Obviously, the implementation of the embodiments of this invention is not limited to such special details that those skilled in the art are familiar with. The more preferable embodiments of this invention are described in details as follows, while apart from such detailed descriptions, this invention may have other embodiments.
(17) Referring to
(18) The cross-section of the shell 37 in the embodiment as illustrated is a circle, a condenser entrance pipe 31 and an evaporator exit pipe 33 being disposed on the shell 37. The condenser entrance pipe 31 is to be connected to the compressor discharge port (not illustrated). The evaporator exit pipe 33 is to be connected to the compressor suction port (not illustrated).
(19) A baffle plate 32 is disposed at a position inside the shell corresponding to the condenser entrance tube 31 for slowing down and reducing the impact of refrigerant gas entering into the shell 37 from the condenser entrance tube 31 on the condensing tube bundle 34.
(20) A refrigerant distributor 36 is disposed at a roughly central position of the shell 37, the refrigerant distributor 36 being disposed roughly horizontally as illustrated, above which the condensing tube bundle 34 (condensing tubes) are disposed and form the condenser (region). The falling film evaporating tube bundle 35 (evaporation tubes) is disposed below the refrigerant distributor 36 and form the evaporator (region).
(21) The condensation and falling film evaporation hybrid heat exchanger 30 of this invention operates in such a way: while the system is operating, the refrigerant gas from the compressor discharge port (not illustrated) enters into the shell 37 of the condensation and falling film evaporation hybrid heat exchanger 30 via the condenser entrance pipe 31, and after passing the condensing tube bundle 34, is condensed as high-pressure liquid, with liquid droplets being equally or uniformly provided or distributed to the refrigerant distributor 36. The refrigerant distributor 36 may produce a pressure difference required by refrigeration cycle, and the high-pressure refrigerant liquid via the refrigerant distributor 36 may be changed into low-pressure two-phase fluid, with liquid droplets of the two-phase fluid being equally or uniformly provided or distributed to the falling film evaporating tube bundle 35 for evaporation, and then be changed into low-temperature low-pressure refrigerant vapor, and finally via the evaporator exit pipe 33 returns the compressor suction port (not illustrated).
(22) Therefore, the condensation and falling film evaporation hybrid heat exchanger of this invention makes use of the characteristic of equal distribution of the refrigerant liquid dripped from the condensing tube bundle so that equal distribution of the refrigerant required by the falling film evaporator can be achieved requiring no complicated refrigerant distributor. The refrigerant distributor functions as a throttling device at the same time.
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(24) Referring to
(25) It can be understood that the hollow short tubes 363 may not be disposed at the through-holes 362 already on the perforated plate 361, but may be disposed penetrating the perforated plate 361 independent from the through-holes 362.
(26) Further, the hollow short tubes 363 may have different heights, and the hollow short tubes with same height are equally spaced apart from each other. In
(27) In this way, in the process of operation of the unit, the refrigerant flows from the condenser (the part above the refrigerant distributor 36) into the evaporator (the part below the refrigerant distributor 36) via the through-holes 362. If the flow via the through-holes 362 is insufficient, the liquid level in the condenser (the part above the refrigerant distributor 36) will rise.
(28) When the liquid level exceeds the height H1 of the first hollow short tubes 3631, a part of the refrigerant will run from the condenser (the part above the refrigerant distributor 36) into the evaporator (the part below the refrigerant distributor 36) via the through-holes inside the first hollow short tubes 3631, so as to increase the flow of the refrigerant. If the flow is still insufficient, the liquid level in the condenser (the part above the refrigerant distributor 36) will further rise.
(29) When the liquid level exceeds the height H2 of the second hollow short tubes 3632, a part of the refrigerant will flow from the condenser (the part above the refrigerant distributor 36) into the evaporator (the part below the refrigerant distributor 36) via the through-holes inside the second hollow short tubes 3632 so as to further increase the flow of the refrigerant.
(30) To the contrary, if the flow is too large, the liquid level in the condenser (the part above the refrigerant distributor 36) will fall. When the liquid level is lower than the height H2 of the second hollow short tubes 3632, the refrigerant will no longer run towards the evaporator via the second hollow short tubes 3632, so as to decrease the flow of the refrigerant. The principle and function of the first hollow short tubes 3631 are similar to the above.
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(32) The refrigerant distributor 36 is composed of the perforated plate 361 and the floater 364, and the floater may be made of the material with density less than the refrigerant liquid so that the floater stressed by the buoyant force from the refrigerant liquid may at least partially move upward from the through-hole 362 when it is in touch with the refrigerant liquid.
(33) The through-hole 362 on the perforated plate 361 in the embodiment as illustrated in
(34) When the liquid level in the condenser rises, the buoyant force that the floater 364 receives increases and the floater 364 goes up so that the hole space is enlarged and the flow of the refrigerant passing the refrigerant distributor 36 increases. Subsequently, regulation of the refrigerant flow is achieved.
(35) When the liquid level in the condenser falls, the buoyant force that the floater 364 receives decreases and the floater 364 goes down so that the hole space is diminished and the flow of the refrigerant passing the refrigerant distributor 36 decreases. Subsequently, regulation of the refrigerant flow is achieved.
(36) Referring to
(37) Specifically,
(38) Further, a controller (not illustrated) connected to the connector may also be disposed, i.e. upward and downward movement of the floaters 364 connected together may be controlled such as by a stepping motor (one example of the controller) so that control of the refrigerant flow is achieved.
(39) Referring to
(40) In operation, when the liquid level in the condenser rises up, the buoyant force that the floater rod 367 receives increases. The floater 364 moves upward so that the area of the groove-shaped through-holes 368 higher than the perforated plate 361 is enlarged. Subsequently, the flow of the refrigerant passing the groove-shaped through-holes 368 increases.
(41) When the liquid level in the condenser falls down, the buoyant force that the floater rod 367 receives decreases. The floater 364 moves downward so that the area of the groove-shaped through-holes 368 higher than the perforated plate 361 is diminished. Subsequently, the flow of the refrigerant passing the groove-shaped through-holes 368 decreases so that regulation of the refrigerant flow is achieved.
(42) In addition, as illustrated in
(43) Now switching to
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(45) In addition, as illustrated in
(46) As illustrated in
(47) Further, a regulating valve 391 is disposed on the bypass pipe 39, and the refrigerant flow entering into the evaporator may be regulated by the regulating valve 391 on the bypass pipe 391. Under the circumstances, those skilled in the art should know that heat exchange tubes at the bottom of the evaporator are equivalent to full-liquid heat exchange, while at the top, it is still falling film heat exchange.
(48) This invention has been explained by the aforesaid embodiments. However, it should be understood that the aforesaid embodiments are only for the purpose of giving examples and making explanations, rather than having this invention limited to the scope of the embodiments described. Furthermore, those skilled in the art are in a position to understand that this invention is not limited to the aforesaid embodiments, and according to the instructions of this invention, more modifications and revisions may be made, which all fall into the protection scope of this invention.
DESCRIPTION OF DRAWING SIGNS
(49) 10. condenser 11. refrigerant entrance 12. baffle 13. condensing tube bundle 14. subcooler 15. refrigerant exit 20. falling film evaporator 21. evaporator exit pipe 22. feeding pipe 23. refrigerant distributor 24. evaporator tube bundle 30. condensation and falling film evaporation hybrid heat exchanger 31. condenser entrance pipe 32. baffle 33. evaporator exit pipe 34. condensing tube bundle 35. falling film evaporating tube bundle 36. refrigerant distributor 361. perforated plate 362. through-hole 363. hollow short tube 3631. first hollow short tube 3632. second hollow short tube 364. floater 365. flat 366. floater body 367. floater rod 368. groove-shaped through-hole 37. shell 37. shell 38. additional perforated plate 39. by-pass pipe 391. regulating valve