US20100281903A1 - Evaporator and cooling device - Google Patents

Evaporator and cooling device Download PDF

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Publication number
US20100281903A1
US20100281903A1 US12/734,754 US73475408A US2010281903A1 US 20100281903 A1 US20100281903 A1 US 20100281903A1 US 73475408 A US73475408 A US 73475408A US 2010281903 A1 US2010281903 A1 US 2010281903A1
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US
United States
Prior art keywords
suction port
filter
space
receiving plate
working fluid
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.)
Abandoned
Application number
US12/734,754
Inventor
Kazuto Okada
Ryo Fujisawa
Masatake Toshima
Yoshihiro Nakayama
Satoshi Ide
Koichiro Iizuka
Kunihiko Suto
Kazutaka Kurashige
Ichirou Sakuraba
Daisuke Hayashi
Shinji Shato
Masaki Ikeuchi
Marcin Blazniak Andreasen
Hans Madsboll
Christian Svarregaard-Jensen
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.)
Danish Technological Institute
Johnson Controls Denmark ApS
Kansai Electric Power Co Inc
Chubu Electric Power Co Inc
Kobe Steel Ltd
Tokyo Electric Power Company Holdings Inc
Original Assignee
Individual
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 Individual filed Critical Individual
Assigned to JOHNSON CONTROLS DENMARK APS, KANSAI ELECTRIC POWER CO., INC., THE, KABUSHIKI KAISHA KOBE SEIKO SHO (KOBE STEEL, LTD.), DANISH TECHNOLOGICAL INSTITUTE, CHUBU ELECTRIC POWER CO., INC., TOKYO ELECTRIC POWER COMPANY, INCORPORATED, THE reassignment JOHNSON CONTROLS DENMARK APS ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: IDE, SATOSHI, IIZUKA, KOICHIRO, NAKAYAMA, YOSHIHIRO, FUJISAWA, RYO, OKADA, KAZUTO, TOSHIMA, MASATAKE, IKEUCHI, MASAKI, SHATO, SHINJI, HAYASHI, DAISUKE, SAKURABA, Ichirou, KURASHIGE, KAZUTAKA, SUTO, KUNIHIKO, ANDREASEN, Marcin Blazniak, MADSBOLL, HANS, SVARREGAARD-JENSEN, CHRISTIAN
Publication of US20100281903A1 publication Critical patent/US20100281903A1/en
Abandoned legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B19/00Machines, plants or systems, using evaporation of a refrigerant but without recovery of the vapour
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/10Particle separators, e.g. dust precipitators, using filter plates, sheets or pads having plane surfaces
    • B01D46/12Particle separators, e.g. dust precipitators, using filter plates, sheets or pads having plane surfaces in multiple arrangements
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D46/00Filters or filtering processes specially modified for separating dispersed particles from gases or vapours
    • B01D46/10Particle separators, e.g. dust precipitators, using filter plates, sheets or pads having plane surfaces
    • B01D46/12Particle separators, e.g. dust precipitators, using filter plates, sheets or pads having plane surfaces in multiple arrangements
    • B01D46/121V-type arrangements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B39/00Evaporators; Condensers
    • F25B39/02Evaporators

Definitions

  • the present invention relates to an evaporator and cooling device.
  • Patent Document 1 Various kinds of conventional cooling devices such as refrigerators and ice makers for generating cold water and ice have been known (ex. refer to Patent Document 1).
  • an evaporator leads to a condenser via a compressor.
  • water is generated in a droplet or misty state as a refrigerant.
  • Pressure in the evaporator is reduced by a suction effect of the compressor, so that part of the droplet or misty refrigerant is evaporated.
  • the refrigerant is cooled down by evaporation heat obtained at this time. Evaporated refrigerant vapor is sucked out and compressed by the compressor.
  • the compressed refrigerant vapor is sent to the condenser and condensed in the condenser.
  • FIG. 11 shows an example of a conventional evaporator applied to a cooling device as stated above.
  • This evaporator is provided with a suction port 102 b leading to a suction portion of a compressor in a side wall portion 102 a of a housing 102 .
  • a refrigerant is shed from upward in a shower form at a position apart from the suction port 102 b , and the shower of the refrigerant is made into droplets through a mesh member 104 provided in the midway.
  • Filters 106 are vertically erected so as to divide a space in the housing 102 into a space for shedding a refrigerant and a space for communicating with the suction port 102 b .
  • the filters 106 transmit refrigerant vapor therethrough, and capture a droplet or misty refrigerant which is made to flow downward. Therefore, refrigerant vapor is exclusively transmitted through the filters 106 and sucked out from the suction port 102 b in response to suction by the compressor.
  • Patent Document 1 National Publication of Translated Version No. 2003-534519
  • the present invention was achieved to solve the above problems, and an object thereof is to extend service life of a compressor.
  • an evaporator is provided with a housing having a suction port connectable to a suction portion of a compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port, comprising a filter installed in the housing, the filter dividing a space in the housing into a first space for generating the droplet or misty working fluid and a second space for communicating with the suction port, the filter being inclined away from the suction port as advancing upward, and the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty working fluid while capturing the droplet or misty working fluid.
  • FIG. 1 is a fluid circuit diagram of a cooling device according to a first embodiment of the present invention
  • FIG. 2 is a side view of an evaporator according to the first embodiment for being applied to the cooling device shown in FIG. 1 ;
  • FIG. 3 is a transverse cross sectional diagram along a line from III to III of the evaporator shown in FIG. 2 ;
  • FIG. 4 is a longitudinal cross sectional diagram of the evaporator along a line from IV to IV of FIG. 3 ;
  • FIG. 5 is a diagram showing a state of setting a filter in the evaporator shown in FIG. 2 ;
  • FIG. 6 is a longitudinal cross sectional diagram of an evaporator according to a second embodiment of the present invention.
  • FIG. 7 is a diagram showing a state of setting a filter in the evaporator shown in FIG. 6 ;
  • FIG. 8 is a diagram showing a state of setting a filter in an evaporator according to a third embodiment of the present invention.
  • FIG. 9 is a front view obtained by seeing filters in an evaporator according to a fourth embodiment of the present invention from a generation space to a communication space;
  • FIG. 10 is a diagram showing a state of setting a filter in an evaporator according to a modified example of the third embodiment of the present invention.
  • FIG. 11 is a longitudinal cross sectional diagram of a conventional evaporator applied to a cooling device.
  • the cooling device is used by being connected to an air conditioner, where cold water heated up by heat exchange in the air conditioner is cooled down and supplied to the air conditioner again.
  • the cooling device is provided with a first cold water header 2 , second cold water header 4 , cooling device main body 6 , cooling tower 8 , first pump 10 , and second pump 12 .
  • the first cold water header 2 receives cold water sent from other cooling devices not shown and cold water sent from the cooling device main body 6 so as to supply the cold water to air conditioners not shown.
  • This cold water is included in the concept of a working fluid in the present invention.
  • the second cold water header 4 receives cold water returned from the air conditioners not shown so as to supply the cold water to the other cooling devices not shown and the cooling device main body 6 .
  • the cooling device main body 6 has a function to cool down cold water returned from the air conditioners so as to supply to the air conditioners again.
  • the cooling device main body 6 has an evaporator 14 , a compressor 16 , and a condenser 18 .
  • Cold water sent from the second cold water header 4 is introduced to the evaporator 14 .
  • the evaporator 14 evaporates part of cold water as will be described later in order to cool down the cold water by the evaporation heat. That is, cold water also plays a role of a refrigerant.
  • the first pump 10 is connected to the evaporator 14 , where cold water which was cooled down is supplied from the evaporator 14 to the first cold water header 2 by driving the first pump 10 .
  • the compressor 16 is connected between the evaporator 14 and the condenser 18 .
  • the evaporator 14 is connected to a suction portion of the compressor 16
  • the condenser 18 is connected to a discharge portion of the compressor 16 .
  • the compressor 16 has a moving blade and a stationary blade not shown, where refrigerant vapor evaporated in the evaporator 14 is sucked by driving the moving blade.
  • the compressor 16 compresses sucked refrigerant vapor so as to send to the condenser 18 .
  • the condenser 18 cools down refrigerant vapor sent from the compressor 16 by using cooling water in order to condense the refrigerant vapor.
  • the condenser 18 is a heat exchanger of a direct heat exchange system, where the refrigerant vapor introduced into the condenser 18 is condensed into cooling water so as to recharge water. Cooling water circulates around the condenser 18 , the second pump 12 and the cooling tower 8 . That is, cooling water which was heated up by condensing the refrigerant vapor in the condenser 18 is sent from the condenser 18 to the cooling tower 8 by driving the second pump 12 .
  • the cooling tower 8 cools down received cooling water which is returned to low temperatures and supplies the cooling water to the condenser 18 .
  • the condenser 18 condenses the refrigerant vapor by cooling water returned from the cooing tower 8 . A series of these processes are repeated in the condenser 18 , the second pump 12 and the cooling tower 8 .
  • FIGS. 2 to 5 A detailed configuration of the evaporator 14 according to the first embodiment will be explained referring to FIGS. 2 to 5 .
  • the evaporator 14 evaporates part of cold water in order to cool down the cold water by the evaporation heat as stated above, where the cold water also plays a role of a refrigerant.
  • the evaporator 14 has a housing 22 as show in FIG. 2 .
  • the housing 22 is configured by a side wall portion 22 a of a cylindrical form having an axial center extending in the vertical direction, a top wall portion 22 b for covering an opening in an upper end of the side wall portion 22 a , and a bottom wall portion 22 c for covering an opening in a lower end of the side wall portion 22 a.
  • the side wall portion 22 a is provided with a circular suction port 22 d .
  • the suction port 22 d is connected to the suction portion of the compressor 16 (refer to FIG. 1 ). Refrigerant vapor is sucked out from the housing 22 to the suction portion of the compressor 16 through the suction port 22 d . Pressure in the housing 22 is also reduced by a suction effect of the compressor 16 through the suction port 22 d.
  • the top wall portion 22 b is provided with an introduction port 22 e .
  • the introduction port 22 e leads to the second cold water header 4 (refer to FIG. 1 ). Therefore, cold water returned from the air conditioners is introduced into the housing 22 through the introduction port 22 e.
  • the bottom wall portion 22 c is provided with an exhaust port 22 f .
  • the exhaust port 22 f leads to the first pump 10 (refer to FIG. 1 ). Therefore, cold water cooled down in the housing 22 is exhausted through the exhaust port 22 f , and sent to the first cold water header 2 by the first pump 10 .
  • a top plate 24 , bottom plate 26 , reinforcing member 28 , filters 30 , 30 , porous plates 32 , 32 , and mesh members 34 , 34 are provided as shown in FIG. 4 .
  • the top plate 24 defines an upper space in the housing 22 . Accordingly, a first storage space S 1 is configured in order to temporarily store cold water introduced through the introduction port 22 e . To be more specific, the top plate 24 is arranged horizontally with a predetermined gap to the top wall portion 22 b in an upper space in the housing 22 . The first storage space S 1 is configured between an upper surface of the top plate 24 and a lower surface of the top wall portion 22 b . In the top plate 24 , a number of vertically penetrated through holes is provided in a portion corresponding to a pair of generation spaces S 3 which will be described later. Cold water in the first storage space S 1 is shed in a shower form through the through holes.
  • the bottom plate 26 partially and vertically defines a lower space in the housing 22 . Accordingly, a second storage space S 2 is configured in order to temporarily store cold water which was shed from the first storage space S 1 and cooled down.
  • the bottom plate 26 is arranged horizontally with a predetermined gap to the bottom wall portion 22 c in a lower space in the housing 22 .
  • the second storage space S 2 is configured between a lower surface of the bottom plate 26 and an upper surface of the bottom wall portion 22 c .
  • the bottom plate 26 is formed in a substantially fan shape, and arranged in the housing 22 so that regions through which cold water shed from the first storage space S 1 passes are left on both ends of the bottom plate while shielding other regions. That is, the cold water is shed in the second storage space S 2 by passing through the spaces on both ends which are not shielded by the bottom plate 26 .
  • the reinforcing member 28 is arranged so as to extend in the vertical direction at a position corresponding to the axial center of the housing 22 .
  • the reinforcing member 28 couples the top plate 24 and the bottom plate 26 , and reinforces the top plate 24 and the bottom plate 26 .
  • the pair of the filters 30 , 30 is arranged between the top plate 24 and the bottom plate 26 , separating the generation spaces S 3 for generating a droplet or misty refrigerant (or cold water) from a communication space S 4 for communicating with the suction port 22 d . That is, the generation spaces S 3 are configured between the respective filters 30 and internal surfaces of the side wall 22 a of the housing 22 , while the communication space S 4 is configured between the both filters 30 , 30 .
  • the generation spaces S 3 are included in the concept of the first space in the present invention.
  • the communication space S 4 is also included in the concept of the second space in the present invention.
  • the filters 30 transmit vapor resulting from evaporation of a droplet or misty refrigerant (or cold water) generated in the generation spaces S 3 , while capturing a droplet or misty refrigerant (or cold water) so as to prevent transmission thereof.
  • the filters 30 are made of a material formed of interlaced mesh-like fibers in a mat shape or other materials.
  • the filters 30 are loaded by being erected on an upper surface of the bottom plate 26 , and upper end portions of the filters 30 are connected to a lower surface of the top plate 24 .
  • Both of the filters 30 , 30 are arranged in contrast in left and right ends by using the axial center of the suction port 22 d as a center.
  • Each of the filters 30 is arranged obliquely to the axial center of the suction port 22 d so that a distance from a first end portion 30 a (refer to FIG. 3 ) to the suction port 22 d is longer than a distance from a second end portion 30 b (refer to FIG. 3 ) to the suction port 22 d in a width direction of the filter.
  • Each of the generation spaces S 3 is provided with the porous plate 32 and the mesh member 34 .
  • the porous plates 32 are arranged horizontally below the top plate 24 with an interval.
  • the mesh members 34 are arranged horizontally below the porous plates 32 with an interval.
  • a refrigerant (or cold water) to be shed through the through holes of the porous plates 3 is shed in finer droplets through the mesh of the mesh members 34 .
  • a refrigerant (or cold water) occasionally becomes finer in the form of mist.
  • Pressure in the housing 22 is reduced by a suction effect of the compressor 16 , so that part of droplet or misty cold water is evaporated in the generation spaces S 3 .
  • Refrigerant vapor generated by this evaporation is sucked out from the generation spaces S 3 to the communication space S 4 by being transmitted through the filters 30 , and sucked out into the suction portion of the compressor 16 through the suction port 22 d.
  • the filters 30 are inclined away from the suction port 22 d as advancing upward as shown in FIGS. 4 and 5 . That is, the filters 30 are inclined by a predetermined angle from a vertically erected state in a direction that upper end portions of the filters 30 approach the side wall portion 22 a of the housing 22 by which the generation spaces S 3 are surrounded.
  • Cold water which was heated up by heat exchange in the air conditioners and returned to the evaporator 14 is introduced into the first storage space S 1 from the introduction port 22 e of the housing 22 .
  • the introduced cold water is stored in the first storage space S 1 and shed in a shower form in both of the generation spaces S 3 , S 3 through the through holes of the top plate 24 .
  • the cold water shed in a shower form is shed through mesh of the mesh members 34 in a finer, droplet form. At this time, cold water occasionally turns into a mist form which is finer than droplets.
  • Pressure in the housing 22 is reduced by a suction effect of the compressor 16 through the suction port 22 d . Therefore, part of the droplet or misty cold water is evaporated and turns into refrigerant vapor. Cold water is cooled down by evaporation heat obtained at this time. Refrigerant vapor generated in the generation spaces S 3 is transmitted through the filters 30 by a suction effect of the compressor 16 , and sucked out through the suction port 22 d .
  • part of droplet or misty cold water in the generation spaces S 3 is also sucked toward the suction port 22 d , but the filters 30 capture such droplet or misty cold water and prevent transmission thereof, so that the droplet or misty cold water is not sucked out to the suction port of the compressor 16 .
  • a plurality of cold water particles captured by the filters 30 are united and increased, followed by flowing downward by gravity. At this time, cold water captured by the filter 30 is entirely shed on the generation spaces S 3 side rather than the surfaces 30 a of the filters 30 facing to the communication space S 4 as shown in FIG. 5 because the filters 30 are inclined away from the suction port 22 d as advancing upward. To be more specific, almost all cold water captured by the filters 30 flows downward so as to be shed in the generation spaces S 3 from the surfaces 30 b of the filters 30 facing to the generation spaces S 3 . However, cold water captured in a lower portion of the filters 30 flows down by being transmitted through lower end surfaces of the filters 30 without reaching the surfaces 30 b facing to the generation spaces S 3 even if it flows downward.
  • the droplet or misty cold water which was shed in the generation spaces S 3 , and cold water which was captured by the filters 30 and flowing downward, are made to flow into the second storage space S 2 .
  • cold water flowing thereinto is stored and the cold water is exhausted to the outside through the exhaust port 22 f .
  • the cold water is sent to the first cold water header 2 by the first pump 10 , followed by being supplied to the respective air conditioners from the first cold water header 2 . Operation to cool down cold water is thus carried out in the evaporator 14 .
  • the filters 30 for dividing the generation spaces S 3 for generating droplet or misty cold water and the communication space S 4 for communicating with the suction port 22 d are inclined away from the suction port 22 d as advancing upward in the housing 22 in the first embodiment. Therefore, cold water captured by the filters 30 is entirely shed on the generation spaces S 3 side rather than the surfaces 30 a of the filters 30 facing to the suction port 22 d . Accordingly, it is made possible to prevent shedding of cold water droplets from the filters 30 to the communication space S 4 , and splashes generated by shedding of the droplets, so that sucking out such droplets and splashes from the suction port 22 d to the suction portion of the compressor 16 can be prevented. As a result, it is made possible to prevent the moving blade of the compressor 16 from being damaged due to collision with the droplets and splashes, which allows service life of the compressor to be extended.
  • FIGS. 6 and 7 A configuration of the evaporator 14 according to a second embodiment of the present invention will be described referring to FIGS. 6 and 7 .
  • each of the filters 40 arranged in the housing 22 is divided into a plurality of filters, which differs from the first embodiment.
  • each of the filters 40 is divided into a plurality (three in this embodiment) of filter members 41 arranged in the vertical direction as shown in FIGS. 6 and 7 .
  • Each of the filter members 41 is inclined away from the suction port 22 d as advancing upward at a substantially equivalent angle. That is, each of the filter members 41 is inclined by a predetermined angle from a vertically erected state in a direction that an upper end portion of the filter member approaches the side wall portion 22 a of the housing 22 by which the generation spaces S 3 are surrounded.
  • Each of the filter members 41 is inclined at an angle which allows a position of a corner portion facing to the communication space S 4 in an upper end portion of the filter member to be substantially consistent with a position of a corner portion facing to the generation space S 3 in a lower end portion of the filter member in the horizontal direction.
  • Each of the filter members 41 is vertically arranged so that a horizontally directed position of a corner portion facing to the generation space S 3 in a lower end portion of the filter member 41 is substantially consistent with a horizontally directed position of a corner portion facing to the communication space S 4 in an upper end portion of the other filter member 41 positioned below the filter member 41 .
  • Each of the filter members 41 may be inclined at a larger angle than the above predetermined angle toward the generation space S 3 side.
  • an interval may be provided between the horizontally directed position of the corner portion facing to the generation space S 3 in the lower end portion of the filter member 41 and the horizontally directed position of the corner portion facing to the communication space S 4 in the upper end portion of the other filter member 41 positioned below the filter member 41 .
  • Cold water receiving members 42 are arranged between the filter members 41 , 41 disposed adjacently in the vertical direction.
  • the cold water receiving members 42 receive cold water captured by the filter members 41 and flowing downward, while permitting the cold water to flow into the generation spaces S 3 .
  • Each of the cold water receiving members 42 has a receiving plate portion 42 a and an erected portion 42 b.
  • the receiving plate portion 42 a is a member to receive cold water captured by the filter member 41 and flowing downward.
  • the receiving plate portion 42 a is made of a horizontally arranged plate, extending in a width direction of the filter member 41 .
  • the receiving plate portion 42 a is arranged between a lower end surface of the predetermined filter member 41 and an upper end surface of the other filter member 41 positioned below the predetermined filter member 41 .
  • the receiving plate portion 42 a covers an entire lower end surface of the predetermined filter member 41 by its upper surface, and covers an entire upper end surface of the other filter member 41 positioned below the predetermined filter member 41 by its lower surface.
  • the receiving plate portion 42 a of the cold water receiving members 42 disposed in a lowest position covers only a lower end surface of the filter member 41 loaded onto the receiving plate portion 42 a.
  • the erected portion 42 b prevents splashes of cold water received by the receiving plate portion 42 a toward the suction port 22 d , and shedding of cold water received by the receiving plate portion 42 a from an end portion of the receiving plate portion 42 a to the communication space S 4 .
  • the erected portion 42 b is erected on the receiving plate portion 42 a at a position closer to the communication space S 4 side (or the suction port 22 d side) than the filter member 41 on the receiving plate portion 42 a .
  • the erected portion 42 b is erected on an end portion of the receiving plate portion 42 a on the communication space S 4 side.
  • the erected portion 42 b extends in the longitudinal direction of the receiving plate portion 42 a , being arranged across an entire range of the receiving plate portion 42 a in the longitudinal direction.
  • Configuration other than the aforementioned configuration of the evaporator 14 according to the second embodiment is similar to that of the evaporator 14 according to the first embodiment.
  • each of the filter members 41 When cold water is cooled down in the evaporator 14 of the second embodiment, part of droplet or misty cold water generated in the generation spaces S 3 is captured by each of the filter members 41 .
  • Cold water captured by each of the filter members 41 is entirely shed in the generation spaces S 3 side rather than a surface 41 a of each of the filter members 41 facing to the communication space S 4 as shown in FIG. 7 , because each of the filter members 41 is inclined away from the suction port 22 d as advancing upward.
  • Cold water which was shed as stated above is received by the receiving plate portions 42 a of the cold water receiving members 42 .
  • the erected portions 42 b prevent the received cold water from splashing toward the suction port 22 d or being shed in the communication spaces S 4 due to a suction effect of the compressor 16 .
  • the cold water is shed from end portions of the receiving plate portions 42 a on the generation spaces S 3 side to the generation spaces S 3 by overflowing.
  • Operation other than the aforementioned operation in cooling down cold water in the evaporator 14 according to the second embodiment is similar to that of the evaporator 14 according to the first embodiment.
  • the respective filter members 41 to constitute the filters 40 are inclined away from the suction port 22 d as advancing upward in the second embodiment. Therefore, cold water captured by each of the filter members 41 is entirely shed on the generation spaces S 3 side rather than the surface 41 a of the filter member 41 facing to the suction port 22 d . Therefore, it is made possible to prevent shedding of cold water droplets from the filters 40 to the communication spaces S 4 , and splashes generated by shedding of the droplets, so that sucking out such droplets and splashes from the suction port 22 d to the suction portion of the compressor 16 can be prevented. As a result, it is made possible to prevent the moving blade of the compressor 16 from being damaged due to collision with the droplets and splashes, which allows service life of the compressor to be extended.
  • the filters 40 are divided into the plurality of the filter members 41 arranged in the vertical direction and each of the filter members 41 is inclined as stated above in the second embodiment, so that an area occupied by the entire filters 40 in the horizontal direction can be reduced in comparison with the case where one undivided filter is inclined at the same angle with each of the filter members 41 . Therefore, enlargement of the evaporator 14 can be suppressed in the horizontal direction.
  • each of the filter members 41 in the second embodiment can be inclined larger than the filters 30 of the first embodiment. Accordingly, it is possible to make cold water captured by the filter 40 more difficult to flow into the communication spaces S 4 .
  • the second embodiment is provided with the cold water receiving members 42 having the receiving plate portions 42 a for receiving cold water captured by the respective filter members 41 and flowing downward, and the erected portions 42 b erected on the receiving plate portions 42 a at a position closer to the suction port 22 d side (or the communication space S 4 side) than the filter members 41 arranged on the receiving plate portions 42 a . Therefore, cold water captured by the filter members 41 and flowing downward is received by the receiving plate portions 42 a , where the received cold water can be prevented from splashing toward the suction port 22 d and being shed in the communication spaces S 4 by the erected portions 42 b .
  • FIG. 8 A configuration of the evaporator 14 according to a third embodiment of the present invention will be explained referring to FIG. 8 .
  • receiving plate portions 52 a of cold water receiving members 52 are inclined downward from the communication space S 4 to the generation spaces S 3 in its width direction (i.e. passing direction of refrigerant vapor resulting from evaporation of cold water), which differs from the second embodiment.
  • each of filters 50 is divided into a plurality (three in this embodiment) of filter members 51 arranged in the vertical direction. An upper end surface and a lower end surface of each of the filter members 51 are inclined downward from the communication space S 4 to the generation space S 3 .
  • the receiving plate portions 52 a of the cold water receiving members 52 are also inclined downward from the communication space S 4 to the generation spaces S 3 in a width direction thereof.
  • each of the filter members 51 and each of the receiving plate portions 52 a are arranged so as to be higher on the communication space S 4 side and lower on the generation space S 3 side. Therefore, cold water captured by the filter members 51 and flowing downward is received by the receiving plate portions 52 a and shed in the generation spaces S 3 by flowing down along the inclination of the receiving plate portions 52 a.
  • Erected portions 52 b are also erected on end portions of the receiving plate portions 52 a on the communication space S 4 side (or the suction port 22 d side).
  • the erected portions 52 b have a function similar to that of the erected portions 42 b according to the second embodiment.
  • Configuration and operation other than the aforementioned configuration and operation of the evaporator 14 according to the third embodiment are similar to those of the evaporator 14 according to the second embodiment.
  • the receiving plate portions 52 a are inclined downward from the communication space S 4 to the generation spaces S 3 in the third embodiment, so that cold water captured by the filter members 51 and flowing downward can be received by the receiving plate portions 52 a and the cold water can be made to flow into the generation spaces S 3 . Therefore, cold water captured by the filter members 51 and flowing downward can be prevented from being sucked out by the compressor 16 more certainly.
  • FIG. 9 A configuration of the evaporator 14 according to a fourth embodiment of the present invention will be explained referring to FIG. 9 .
  • receiving plate portions 62 a are inclined in the longitudinal direction, which differs from the second embodiment.
  • filters 60 according to the fourth embodiment are divided into a plurality of filter members 61 arranged in the vertical direction.
  • Each of the filter members 61 has a first end portion 61 a which is one of end portions in the width direction, and a second end portion 61 b which is the other end portion in the width direction.
  • Each of the filter members 61 is arranged obliquely to the axial center of the suction port 22 d so that the second end portion 61 b is disposed closer to the suction port 22 d than the first end portion 61 a .
  • each of cold water receiving members 62 has a first end portion 63 a which is one of end portions in the longitudinal direction, and a second end portion 63 b which is the other end portion in the longitudinal direction.
  • Each of the receiving plate portions 62 a is arranged obliquely to the axial center of the suction port 22 d so that the second end portion 63 b is disposed closer to the suction port 22 d than the first end portion 63 a.
  • each of the filter members 61 are inclined downward as advancing from the second end portion 61 b to the first end portion 61 a .
  • an upper end surface 61 d of the filter member 61 c disposed in a highest position is arrange horizontally.
  • the receiving plate portions 62 a are inclined downward as advancing from the second end portions 63 b to the first end portions 63 a . Therefore, cold water captured by the filter members 61 and flowing downward is received by the receiving plate portions 62 a and shed from the first end portions 63 a by flowing down in a direction away from the suction port 22 d along the inclination of the receiving plate portions 62 a.
  • Configuration and operation other than the aforementioned configuration and operation of the evaporator 14 according to the fourth embodiment are similar to those of the evaporator 14 according to the second embodiment.
  • the receiving plate portions 62 a are inclined downward as advancing to the opposite first end portions 63 a from the second end portions 63 b disposed closer to the suction port 22 d in the fourth embodiment. Therefore, cold water received by the receiving plate portions 62 a can be shed from the first end portions 63 a being end portions away from the suction port 22 d . That is, a position to shed cold water from the receiving plate portions 62 a can be set to be away from the suction port 22 d , so that cold water shed from the receiving plate portions 62 a can be more certainly prevented from being sucked out by the compressor 16 in comparison with the case where cold water is shed from the receiving plate portions 62 a at a position closer to the suction port 22 d.
  • the receiving plate portions 62 a horizontally disposed in the width direction are inclined in the longitudinal direction in the fourth embodiment, but it is not limited and the receiving plate portions 62 a of the fourth embodiment inclined in the longitudinal direction may be further inclined in the width direction in the same manner with the third embodiment.
  • the erected portions 52 b are provided in the cold water receiving members 52 in the third embodiment, but the erected portions 52 b may be omitted. That is, when the receiving plate portions 52 a are inclined downward from the communication space S 4 to the generation spaces S 3 as shown in the third embodiment, cold water received by the receiving plate portions 52 a flows into the generation spaces S 3 , so that it is possible to prevent cold water received by the receiving plate portions 52 a from splashing toward the suction port 22 d and being shed in the communication space S 4 without providing the erected portions 52 b . Therefore, the erected portions 52 b can be omitted in the third embodiment.
  • the receiving plate portions 52 a of the cold water receiving members 52 may be configured to extend over the edge of upper end surfaces of the filter members 51 on the generation spaces S 3 side as shown in a modified example of the third embodiment of FIG. 10 . According to this configuration, cold water droplets flowing down from the receiving plate portions 52 a can be prevented from being attached to the filter members 51 disposed directly below the receiving plate portions 52 a.
  • the cold water receiving members may be configured in a shape of a box container into which a lower portion of the filter member is inserted.
  • a bottom portion of the container is included in the concept of the receiving plate portion in the present invention
  • a side wall portion of the container facing to the communication space S 4 (or the suction port 22 d ) is included in the concept of the erected portion in the present invention.
  • Exhaust holes for permitting cold water to flow into the generation spaces S 3 is provided in a lower portion of such a container, so that cold water captured by the filter members and flowing downward can be received by the container and made to flow into the generation spaces S 3 .
  • configuration of the filters is not limited to the configuration shown in each of the above embodiments.
  • a filter has a curved horizontal cross section so as to be swelled on the generation space S 3 side and the case where four filters are arranged to exhibit a W shape in a horizontal cross section and other cases.
  • a device to which the evaporator 14 is applied is not limited to the cooling device as explained in the first embodiment.
  • the evaporator is provided with the housing having the suction port connectable to the suction portion of the compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port.
  • the evaporator comprises a filter installed in the housing, the filter dividing a space in the housing into the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port, the filter being inclined away from the suction port as advancing upward, and the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty fluid while capturing the droplet or misty working fluid.
  • the filter for dividing a space in the housing into the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port is inclined away from the suction port as advancing upward. Therefore, a working fluid captured by the filter is entirely shed on the first space side rather than the surface facing to the suction port of the filter. Accordingly, it is made possible to prevent shedding of working fluid droplets from the filter to the second space for communicating with the suction port, and splashes generated by shedding of the droplets, so that sucking out such droplets and splashes from the suction port to the suction portion of the compressor can be prevented. As a result, it is made possible to prevent the moving blade of the compressor from being damaged due to collision with the droplets and splashes, which allows service life of the compressor to be extended.
  • the evaporator is provided with the housing having the suction port connectable to the suction portion of the compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port.
  • the evaporator comprises a filter installed in the housing, the filter dividing a space in the housing into the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port, the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty working fluid while capturing the droplet or misty working fluid.
  • the filter is divided into the plurality of the filter members disposed in the vertical direction, and each of the filter members is inclined away from the suction port as advancing upward.
  • each of the filter members to constitute the filter for dividing the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port is inclined away from the suction port as advancing upward. Therefore, a working fluid captured by each of the filter members is entirely shed on the first space side rather than the surface of the filter member facing to the suction port. Accordingly, it is made possible to prevent shedding of working fluid droplets from the filter to the second space for communicating with the suction port, and splashes generated by shedding of the droplets, so that sucking out such droplets and splashes from the suction port to the suction portion of the compressor can be prevented.
  • the filter is divided into the plurality of the filter members arranged in the vertical direction and each of the filter members is inclined as stated above in this evaporator, so that an area occupied by the entire filters in the horizontal direction can be decreased in comparison with the case where one undivided filter is inclined at the same angle with the each of the above filter members. Therefore, enlargement of the evaporator can be suppressed in the horizontal direction.
  • the evaporator having the filter which is divided into the plurality filter members preferably comprises the receiving plate portion arranged between two of the adjacent filter members disposed in the vertical direction, the receiving plate portion receiving the working fluid captured by the upper filter member thereof and flowing downward, and the erected portion erected on the receiving plate portion at a position closer to the suction port than the upper filter member.
  • a working fluid captured by the filter member and flowing downward can be received by the receiving plate portion, where the erected portion prevents the received working fluid from splashing toward the suction port and being shed in the second space. Therefore, a working fluid received by the receiving plate portion is shed from the end portion of the receiving plate portion on the first space side by overflowing.
  • a working fluid shed in the first space is not sucked out from the suction port by being shielded in the filter member even if it is sucked by the compressor. As a result, it is made possible to prevent the moving blade of the compressor from being damaged due to collision caused by sucking out a working fluid captured by the filter member and flowing downward.
  • the receiving plate portion is preferably inclined downward from the second space to the first space. According to this configuration, a working fluid captured by the filter member and flowing downward can be received by the receiving plate portion, and the working fluid is allowed to flow into the first space. Therefore, a working fluid captured by the filter member and flowing downward can be prevented from being sucked out by the compressor more certainly in this configuration.
  • the evaporator having the filter which is divided into the plurality filter members preferably comprises the receiving plate portion arranged between two of the adjacent filter members disposed in the vertical direction, the receiving plate portion receiving the working fluid captured by the upper filter member thereof and flowing downward, wherein the receiving plate portion is inclined downward from the second space to the first space.
  • a working fluid captured by the filter member and flowing downward can be received by the receiving plate portion, and the working fluid is allowed to flow into the first space. Therefore, a working fluid captured by the filter member and flowing downward can be prevented from being sucked out by the compressor more certainly in this configuration.
  • the receiving plate portion preferably has the first end portion and the second end portion closer to the suction port than the first end portion, wherein the receiving plate portion is inclined downward from the second end portion to the first end portion.
  • a working fluid received by the receiving plate portion can be shed from the first end portion which is an end portion away from the suction port. That is, a position to shed a working fluid from the receiving plate portion can be set to be away from the suction port, so that a working fluid which is shed from the receiving plate portion can be prevented from being sucked out by the compressor more certainly, in comparison with the case where a working fluid is shed from the receiving plate portion at a position closer to the suction port.
  • the cooling device comprises any one of the aforementioned evaporators, wherein cooling is performed by using evaporation heat obtained when at least part of the droplet or misty working fluid is evaporated.
  • this cooling device is provided with any one of the aforementioned evaporators, an effect of extending service life of the compressor, which is similar to that of the aforementioned evaporators, can be obtained.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Physics & Mathematics (AREA)
  • Mechanical Engineering (AREA)
  • Thermal Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Removal Of Water From Condensation And Defrosting (AREA)
  • Structures Of Non-Positive Displacement Pumps (AREA)
  • Filtering Of Dispersed Particles In Gases (AREA)
  • Separating Particles In Gases By Inertia (AREA)
  • Compressor (AREA)

Abstract

Service life of the compressor is extended. The evaporator is provided with the housing having the suction port connectable to the suction portion of the compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port, comprising a filter installed in the housing, the filter dividing a space in the housing into the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port, the filter being inclined away from the suction port as advancing upward, and the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty working fluid while capturing the droplet or misty working fluid.

Description

    TECHNICAL FIELD
  • The present invention relates to an evaporator and cooling device.
  • BACKGROUND ART
  • Various kinds of conventional cooling devices such as refrigerators and ice makers for generating cold water and ice have been known (ex. refer to Patent Document 1). In such cooling devices, an evaporator leads to a condenser via a compressor. In the evaporator, water is generated in a droplet or misty state as a refrigerant. Pressure in the evaporator is reduced by a suction effect of the compressor, so that part of the droplet or misty refrigerant is evaporated. The refrigerant is cooled down by evaporation heat obtained at this time. Evaporated refrigerant vapor is sucked out and compressed by the compressor. The compressed refrigerant vapor is sent to the condenser and condensed in the condenser.
  • FIG. 11 shows an example of a conventional evaporator applied to a cooling device as stated above. This evaporator is provided with a suction port 102 b leading to a suction portion of a compressor in a side wall portion 102 a of a housing 102. In the housing 102, a refrigerant is shed from upward in a shower form at a position apart from the suction port 102 b, and the shower of the refrigerant is made into droplets through a mesh member 104 provided in the midway. Filters 106 are vertically erected so as to divide a space in the housing 102 into a space for shedding a refrigerant and a space for communicating with the suction port 102 b. The filters 106 transmit refrigerant vapor therethrough, and capture a droplet or misty refrigerant which is made to flow downward. Therefore, refrigerant vapor is exclusively transmitted through the filters 106 and sucked out from the suction port 102 b in response to suction by the compressor.
  • In the above conventional evaporator, there are cases that a refrigerant captured by the filters 106 flows down along surfaces of the filters 106 facing to the suction port 102 b, and splashes are generated by scattering of the refrigerant flowing down. In this case, refrigerant droplets flowing down along the surfaces of the filters 106 and splashes of the refrigerant are occasionally sucked out from the suction port 102 b due to a suction force of the compressor. Droplets or splashes thus sucked out collide with a moving blade of the compressor, causing damages to the moving blade. Therefore, a problem arises with shortened service life of the compressor.
  • Patent Document 1: National Publication of Translated Version No. 2003-534519
  • DISCLOSURE OF THE INVENTION
  • The present invention was achieved to solve the above problems, and an object thereof is to extend service life of a compressor.
  • In order to achieve the above object, an evaporator according to the present invention is provided with a housing having a suction port connectable to a suction portion of a compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port, comprising a filter installed in the housing, the filter dividing a space in the housing into a first space for generating the droplet or misty working fluid and a second space for communicating with the suction port, the filter being inclined away from the suction port as advancing upward, and the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty working fluid while capturing the droplet or misty working fluid.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a fluid circuit diagram of a cooling device according to a first embodiment of the present invention;
  • FIG. 2 is a side view of an evaporator according to the first embodiment for being applied to the cooling device shown in FIG. 1;
  • FIG. 3 is a transverse cross sectional diagram along a line from III to III of the evaporator shown in FIG. 2;
  • FIG. 4 is a longitudinal cross sectional diagram of the evaporator along a line from IV to IV of FIG. 3;
  • FIG. 5 is a diagram showing a state of setting a filter in the evaporator shown in FIG. 2;
  • FIG. 6 is a longitudinal cross sectional diagram of an evaporator according to a second embodiment of the present invention;
  • FIG. 7 is a diagram showing a state of setting a filter in the evaporator shown in FIG. 6;
  • FIG. 8 is a diagram showing a state of setting a filter in an evaporator according to a third embodiment of the present invention;
  • FIG. 9 is a front view obtained by seeing filters in an evaporator according to a fourth embodiment of the present invention from a generation space to a communication space;
  • FIG. 10 is a diagram showing a state of setting a filter in an evaporator according to a modified example of the third embodiment of the present invention; and
  • FIG. 11 is a longitudinal cross sectional diagram of a conventional evaporator applied to a cooling device.
  • BEST MODE FOR CARRYING OUT THE INVENTION
  • Embodiments of the present invention will be explained below referring to the drawings.
  • First Embodiment
  • First, an entire configuration of a cooling device according to a first embodiment will be explained referring to FIG. 1.
  • The cooling device according to the first embodiment is used by being connected to an air conditioner, where cold water heated up by heat exchange in the air conditioner is cooled down and supplied to the air conditioner again. The cooling device is provided with a first cold water header 2, second cold water header 4, cooling device main body 6, cooling tower 8, first pump 10, and second pump 12.
  • The first cold water header 2 receives cold water sent from other cooling devices not shown and cold water sent from the cooling device main body 6 so as to supply the cold water to air conditioners not shown. This cold water is included in the concept of a working fluid in the present invention.
  • The second cold water header 4 receives cold water returned from the air conditioners not shown so as to supply the cold water to the other cooling devices not shown and the cooling device main body 6.
  • The cooling device main body 6 has a function to cool down cold water returned from the air conditioners so as to supply to the air conditioners again. The cooling device main body 6 has an evaporator 14, a compressor 16, and a condenser 18.
  • Cold water sent from the second cold water header 4 is introduced to the evaporator 14. The evaporator 14 evaporates part of cold water as will be described later in order to cool down the cold water by the evaporation heat. That is, cold water also plays a role of a refrigerant. The first pump 10 is connected to the evaporator 14, where cold water which was cooled down is supplied from the evaporator 14 to the first cold water header 2 by driving the first pump 10.
  • The compressor 16 is connected between the evaporator 14 and the condenser 18. To be more specific, the evaporator 14 is connected to a suction portion of the compressor 16, while the condenser 18 is connected to a discharge portion of the compressor 16. The compressor 16 has a moving blade and a stationary blade not shown, where refrigerant vapor evaporated in the evaporator 14 is sucked by driving the moving blade. The compressor 16 compresses sucked refrigerant vapor so as to send to the condenser 18.
  • The condenser 18 cools down refrigerant vapor sent from the compressor 16 by using cooling water in order to condense the refrigerant vapor. The condenser 18 is a heat exchanger of a direct heat exchange system, where the refrigerant vapor introduced into the condenser 18 is condensed into cooling water so as to recharge water. Cooling water circulates around the condenser 18, the second pump 12 and the cooling tower 8. That is, cooling water which was heated up by condensing the refrigerant vapor in the condenser 18 is sent from the condenser 18 to the cooling tower 8 by driving the second pump 12. The cooling tower 8 cools down received cooling water which is returned to low temperatures and supplies the cooling water to the condenser 18. The condenser 18 condenses the refrigerant vapor by cooling water returned from the cooing tower 8. A series of these processes are repeated in the condenser 18, the second pump 12 and the cooling tower 8.
  • A detailed configuration of the evaporator 14 according to the first embodiment will be explained referring to FIGS. 2 to 5.
  • The evaporator 14 according to the first embodiment evaporates part of cold water in order to cool down the cold water by the evaporation heat as stated above, where the cold water also plays a role of a refrigerant. The evaporator 14 has a housing 22 as show in FIG. 2. The housing 22 is configured by a side wall portion 22 a of a cylindrical form having an axial center extending in the vertical direction, a top wall portion 22 b for covering an opening in an upper end of the side wall portion 22 a, and a bottom wall portion 22 c for covering an opening in a lower end of the side wall portion 22 a.
  • The side wall portion 22 a is provided with a circular suction port 22 d. The suction port 22 d is connected to the suction portion of the compressor 16 (refer to FIG. 1). Refrigerant vapor is sucked out from the housing 22 to the suction portion of the compressor 16 through the suction port 22 d. Pressure in the housing 22 is also reduced by a suction effect of the compressor 16 through the suction port 22 d.
  • The top wall portion 22 b is provided with an introduction port 22 e. The introduction port 22 e leads to the second cold water header 4 (refer to FIG. 1). Therefore, cold water returned from the air conditioners is introduced into the housing 22 through the introduction port 22 e.
  • The bottom wall portion 22 c is provided with an exhaust port 22 f. The exhaust port 22 f leads to the first pump 10 (refer to FIG. 1). Therefore, cold water cooled down in the housing 22 is exhausted through the exhaust port 22 f, and sent to the first cold water header 2 by the first pump 10.
  • In the housing 22, a top plate 24, bottom plate 26, reinforcing member 28, filters 30, 30, porous plates 32, 32, and mesh members 34, 34 are provided as shown in FIG. 4.
  • The top plate 24 defines an upper space in the housing 22. Accordingly, a first storage space S1 is configured in order to temporarily store cold water introduced through the introduction port 22 e. To be more specific, the top plate 24 is arranged horizontally with a predetermined gap to the top wall portion 22 b in an upper space in the housing 22. The first storage space S1 is configured between an upper surface of the top plate 24 and a lower surface of the top wall portion 22 b. In the top plate 24, a number of vertically penetrated through holes is provided in a portion corresponding to a pair of generation spaces S3 which will be described later. Cold water in the first storage space S1 is shed in a shower form through the through holes.
  • The bottom plate 26 partially and vertically defines a lower space in the housing 22. Accordingly, a second storage space S2 is configured in order to temporarily store cold water which was shed from the first storage space S1 and cooled down. To be more specific, the bottom plate 26 is arranged horizontally with a predetermined gap to the bottom wall portion 22 c in a lower space in the housing 22. The second storage space S2 is configured between a lower surface of the bottom plate 26 and an upper surface of the bottom wall portion 22 c. The bottom plate 26 is formed in a substantially fan shape, and arranged in the housing 22 so that regions through which cold water shed from the first storage space S1 passes are left on both ends of the bottom plate while shielding other regions. That is, the cold water is shed in the second storage space S2 by passing through the spaces on both ends which are not shielded by the bottom plate 26.
  • The reinforcing member 28 is arranged so as to extend in the vertical direction at a position corresponding to the axial center of the housing 22. The reinforcing member 28 couples the top plate 24 and the bottom plate 26, and reinforces the top plate 24 and the bottom plate 26.
  • The pair of the filters 30,30 is arranged between the top plate 24 and the bottom plate 26, separating the generation spaces S3 for generating a droplet or misty refrigerant (or cold water) from a communication space S4 for communicating with the suction port 22 d. That is, the generation spaces S3 are configured between the respective filters 30 and internal surfaces of the side wall 22 a of the housing 22, while the communication space S4 is configured between the both filters 30,30. The generation spaces S3 are included in the concept of the first space in the present invention. The communication space S4 is also included in the concept of the second space in the present invention. The filters 30 transmit vapor resulting from evaporation of a droplet or misty refrigerant (or cold water) generated in the generation spaces S3, while capturing a droplet or misty refrigerant (or cold water) so as to prevent transmission thereof.
  • To be more specific, the filters 30 are made of a material formed of interlaced mesh-like fibers in a mat shape or other materials. The filters 30 are loaded by being erected on an upper surface of the bottom plate 26, and upper end portions of the filters 30 are connected to a lower surface of the top plate 24. Both of the filters 30,30 are arranged in contrast in left and right ends by using the axial center of the suction port 22 d as a center. Each of the filters 30 is arranged obliquely to the axial center of the suction port 22 d so that a distance from a first end portion 30 a (refer to FIG. 3) to the suction port 22 d is longer than a distance from a second end portion 30 b (refer to FIG. 3) to the suction port 22 d in a width direction of the filter.
  • Each of the generation spaces S3 is provided with the porous plate 32 and the mesh member 34. The porous plates 32 are arranged horizontally below the top plate 24 with an interval. The mesh members 34 are arranged horizontally below the porous plates 32 with an interval. A refrigerant (or cold water) to be shed through the through holes of the porous plates 3 is shed in finer droplets through the mesh of the mesh members 34. At this time, a refrigerant (or cold water) occasionally becomes finer in the form of mist. Pressure in the housing 22 is reduced by a suction effect of the compressor 16, so that part of droplet or misty cold water is evaporated in the generation spaces S3. Refrigerant vapor generated by this evaporation is sucked out from the generation spaces S3 to the communication space S4 by being transmitted through the filters 30, and sucked out into the suction portion of the compressor 16 through the suction port 22 d.
  • In the first embodiment, the filters 30 are inclined away from the suction port 22 d as advancing upward as shown in FIGS. 4 and 5. That is, the filters 30 are inclined by a predetermined angle from a vertically erected state in a direction that upper end portions of the filters 30 approach the side wall portion 22 a of the housing 22 by which the generation spaces S3 are surrounded.
  • Operation when cold water is cooled down in the evaporator 14 of the first embodiment will be explained.
  • Cold water which was heated up by heat exchange in the air conditioners and returned to the evaporator 14 is introduced into the first storage space S1 from the introduction port 22 e of the housing 22. The introduced cold water is stored in the first storage space S1 and shed in a shower form in both of the generation spaces S3, S3 through the through holes of the top plate 24. The cold water shed in a shower form is shed through mesh of the mesh members 34 in a finer, droplet form. At this time, cold water occasionally turns into a mist form which is finer than droplets.
  • Pressure in the housing 22 is reduced by a suction effect of the compressor 16 through the suction port 22 d. Therefore, part of the droplet or misty cold water is evaporated and turns into refrigerant vapor. Cold water is cooled down by evaporation heat obtained at this time. Refrigerant vapor generated in the generation spaces S3 is transmitted through the filters 30 by a suction effect of the compressor 16, and sucked out through the suction port 22 d. Meanwhile, part of droplet or misty cold water in the generation spaces S3 is also sucked toward the suction port 22 d, but the filters 30 capture such droplet or misty cold water and prevent transmission thereof, so that the droplet or misty cold water is not sucked out to the suction port of the compressor 16.
  • A plurality of cold water particles captured by the filters 30 are united and increased, followed by flowing downward by gravity. At this time, cold water captured by the filter 30 is entirely shed on the generation spaces S3 side rather than the surfaces 30 a of the filters 30 facing to the communication space S4 as shown in FIG. 5 because the filters 30 are inclined away from the suction port 22 d as advancing upward. To be more specific, almost all cold water captured by the filters 30 flows downward so as to be shed in the generation spaces S3 from the surfaces 30 b of the filters 30 facing to the generation spaces S3. However, cold water captured in a lower portion of the filters 30 flows down by being transmitted through lower end surfaces of the filters 30 without reaching the surfaces 30 b facing to the generation spaces S3 even if it flows downward.
  • The droplet or misty cold water which was shed in the generation spaces S3, and cold water which was captured by the filters 30 and flowing downward, are made to flow into the second storage space S2. In the second storage space S2, cold water flowing thereinto is stored and the cold water is exhausted to the outside through the exhaust port 22 f. The cold water is sent to the first cold water header 2 by the first pump 10, followed by being supplied to the respective air conditioners from the first cold water header 2. Operation to cool down cold water is thus carried out in the evaporator 14.
  • As explained above, the filters 30 for dividing the generation spaces S3 for generating droplet or misty cold water and the communication space S4 for communicating with the suction port 22 d are inclined away from the suction port 22 d as advancing upward in the housing 22 in the first embodiment. Therefore, cold water captured by the filters 30 is entirely shed on the generation spaces S3 side rather than the surfaces 30 a of the filters 30 facing to the suction port 22 d. Accordingly, it is made possible to prevent shedding of cold water droplets from the filters 30 to the communication space S4, and splashes generated by shedding of the droplets, so that sucking out such droplets and splashes from the suction port 22 d to the suction portion of the compressor 16 can be prevented. As a result, it is made possible to prevent the moving blade of the compressor 16 from being damaged due to collision with the droplets and splashes, which allows service life of the compressor to be extended.
  • Second Embodiment
  • A configuration of the evaporator 14 according to a second embodiment of the present invention will be described referring to FIGS. 6 and 7.
  • In the second embodiment, each of the filters 40 arranged in the housing 22 is divided into a plurality of filters, which differs from the first embodiment. To be more specific, each of the filters 40 is divided into a plurality (three in this embodiment) of filter members 41 arranged in the vertical direction as shown in FIGS. 6 and 7. Each of the filter members 41 is inclined away from the suction port 22 d as advancing upward at a substantially equivalent angle. That is, each of the filter members 41 is inclined by a predetermined angle from a vertically erected state in a direction that an upper end portion of the filter member approaches the side wall portion 22 a of the housing 22 by which the generation spaces S3 are surrounded. Each of the filter members 41 is inclined at an angle which allows a position of a corner portion facing to the communication space S4 in an upper end portion of the filter member to be substantially consistent with a position of a corner portion facing to the generation space S3 in a lower end portion of the filter member in the horizontal direction. Each of the filter members 41 is vertically arranged so that a horizontally directed position of a corner portion facing to the generation space S3 in a lower end portion of the filter member 41 is substantially consistent with a horizontally directed position of a corner portion facing to the communication space S4 in an upper end portion of the other filter member 41 positioned below the filter member 41. Each of the filter members 41 may be inclined at a larger angle than the above predetermined angle toward the generation space S3 side. In this case, an interval may be provided between the horizontally directed position of the corner portion facing to the generation space S3 in the lower end portion of the filter member 41 and the horizontally directed position of the corner portion facing to the communication space S4 in the upper end portion of the other filter member 41 positioned below the filter member 41.
  • Cold water receiving members 42 are arranged between the filter members 41, 41 disposed adjacently in the vertical direction. The cold water receiving members 42 receive cold water captured by the filter members 41 and flowing downward, while permitting the cold water to flow into the generation spaces S3. Each of the cold water receiving members 42 has a receiving plate portion 42 a and an erected portion 42 b.
  • The receiving plate portion 42 a is a member to receive cold water captured by the filter member 41 and flowing downward. The receiving plate portion 42 a is made of a horizontally arranged plate, extending in a width direction of the filter member 41. The receiving plate portion 42 a is arranged between a lower end surface of the predetermined filter member 41 and an upper end surface of the other filter member 41 positioned below the predetermined filter member 41. The receiving plate portion 42 a covers an entire lower end surface of the predetermined filter member 41 by its upper surface, and covers an entire upper end surface of the other filter member 41 positioned below the predetermined filter member 41 by its lower surface. However, the receiving plate portion 42 a of the cold water receiving members 42 disposed in a lowest position covers only a lower end surface of the filter member 41 loaded onto the receiving plate portion 42 a.
  • The erected portion 42 b prevents splashes of cold water received by the receiving plate portion 42 a toward the suction port 22 d, and shedding of cold water received by the receiving plate portion 42 a from an end portion of the receiving plate portion 42 a to the communication space S4. The erected portion 42 b is erected on the receiving plate portion 42 a at a position closer to the communication space S4 side (or the suction port 22 d side) than the filter member 41 on the receiving plate portion 42 a. To be more specific, the erected portion 42 b is erected on an end portion of the receiving plate portion 42 a on the communication space S4 side. The erected portion 42 b extends in the longitudinal direction of the receiving plate portion 42 a, being arranged across an entire range of the receiving plate portion 42 a in the longitudinal direction.
  • Configuration other than the aforementioned configuration of the evaporator 14 according to the second embodiment is similar to that of the evaporator 14 according to the first embodiment.
  • Operation when cold water is cooled down in the evaporator 14 of the second embodiment will be described.
  • When cold water is cooled down in the evaporator 14 of the second embodiment, part of droplet or misty cold water generated in the generation spaces S3 is captured by each of the filter members 41. Cold water captured by each of the filter members 41 is entirely shed in the generation spaces S3 side rather than a surface 41 a of each of the filter members 41 facing to the communication space S4 as shown in FIG. 7, because each of the filter members 41 is inclined away from the suction port 22 d as advancing upward.
  • Cold water which was shed as stated above is received by the receiving plate portions 42 a of the cold water receiving members 42. The erected portions 42 b prevent the received cold water from splashing toward the suction port 22 d or being shed in the communication spaces S4 due to a suction effect of the compressor 16. When cold water is saved on the receiving plate portions 42 a to some extent, the cold water is shed from end portions of the receiving plate portions 42 a on the generation spaces S3 side to the generation spaces S3 by overflowing.
  • Operation other than the aforementioned operation in cooling down cold water in the evaporator 14 according to the second embodiment is similar to that of the evaporator 14 according to the first embodiment.
  • As explained above, the respective filter members 41 to constitute the filters 40 are inclined away from the suction port 22 d as advancing upward in the second embodiment. Therefore, cold water captured by each of the filter members 41 is entirely shed on the generation spaces S3 side rather than the surface 41 a of the filter member 41 facing to the suction port 22 d. Therefore, it is made possible to prevent shedding of cold water droplets from the filters 40 to the communication spaces S4, and splashes generated by shedding of the droplets, so that sucking out such droplets and splashes from the suction port 22 d to the suction portion of the compressor 16 can be prevented. As a result, it is made possible to prevent the moving blade of the compressor 16 from being damaged due to collision with the droplets and splashes, which allows service life of the compressor to be extended.
  • Moreover, the filters 40 are divided into the plurality of the filter members 41 arranged in the vertical direction and each of the filter members 41 is inclined as stated above in the second embodiment, so that an area occupied by the entire filters 40 in the horizontal direction can be reduced in comparison with the case where one undivided filter is inclined at the same angle with each of the filter members 41. Therefore, enlargement of the evaporator 14 can be suppressed in the horizontal direction. In other words, each of the filter members 41 in the second embodiment can be inclined larger than the filters 30 of the first embodiment. Accordingly, it is possible to make cold water captured by the filter 40 more difficult to flow into the communication spaces S4.
  • Furthermore, the second embodiment is provided with the cold water receiving members 42 having the receiving plate portions 42 a for receiving cold water captured by the respective filter members 41 and flowing downward, and the erected portions 42 b erected on the receiving plate portions 42 a at a position closer to the suction port 22 d side (or the communication space S4 side) than the filter members 41 arranged on the receiving plate portions 42 a. Therefore, cold water captured by the filter members 41 and flowing downward is received by the receiving plate portions 42 a, where the received cold water can be prevented from splashing toward the suction port 22 d and being shed in the communication spaces S4 by the erected portions 42 b. Therefore, cold water received, by the receiving plate portions 42 a is shed from end portions of the receiving plate portions 42 a on the generation spaces S3 side to the generation spaces S3 by overflowing. Cold water shed into the generation spaces S3 is not sucked out from the suction port 22 d by being shielded in the filter members 41 even if it is sucked by the compressor 16. Therefore, it is made possible to prevent the moving blade of the compressor 16 from being damaged due to collision caused by sucking out cold water captured by the filter members 41 and flowing downward.
  • Third Embodiment
  • A configuration of the evaporator 14 according to a third embodiment of the present invention will be explained referring to FIG. 8.
  • In the third embodiment, receiving plate portions 52 a of cold water receiving members 52 are inclined downward from the communication space S4 to the generation spaces S3 in its width direction (i.e. passing direction of refrigerant vapor resulting from evaporation of cold water), which differs from the second embodiment. To be more specific, each of filters 50 is divided into a plurality (three in this embodiment) of filter members 51 arranged in the vertical direction. An upper end surface and a lower end surface of each of the filter members 51 are inclined downward from the communication space S4 to the generation space S3. The receiving plate portions 52 a of the cold water receiving members 52 are also inclined downward from the communication space S4 to the generation spaces S3 in a width direction thereof. That is, the upper end surface and the lower end surface of each of the filter members 51 and each of the receiving plate portions 52 a are arranged so as to be higher on the communication space S4 side and lower on the generation space S3 side. Therefore, cold water captured by the filter members 51 and flowing downward is received by the receiving plate portions 52 a and shed in the generation spaces S3 by flowing down along the inclination of the receiving plate portions 52 a.
  • Erected portions 52 b are also erected on end portions of the receiving plate portions 52 a on the communication space S4 side (or the suction port 22 d side). The erected portions 52 b have a function similar to that of the erected portions 42 b according to the second embodiment.
  • Configuration and operation other than the aforementioned configuration and operation of the evaporator 14 according to the third embodiment are similar to those of the evaporator 14 according to the second embodiment.
  • As explained above, the receiving plate portions 52 a are inclined downward from the communication space S4 to the generation spaces S3 in the third embodiment, so that cold water captured by the filter members 51 and flowing downward can be received by the receiving plate portions 52 a and the cold water can be made to flow into the generation spaces S3. Therefore, cold water captured by the filter members 51 and flowing downward can be prevented from being sucked out by the compressor 16 more certainly.
  • Effects other than the aforementioned effects of the third embodiment are similar to those of the second embodiment.
  • Fourth Embodiment
  • A configuration of the evaporator 14 according to a fourth embodiment of the present invention will be explained referring to FIG. 9.
  • In the fourth embodiment, receiving plate portions 62 a are inclined in the longitudinal direction, which differs from the second embodiment. To be more specific, filters 60 according to the fourth embodiment are divided into a plurality of filter members 61 arranged in the vertical direction. Each of the filter members 61 has a first end portion 61 a which is one of end portions in the width direction, and a second end portion 61 b which is the other end portion in the width direction. Each of the filter members 61 is arranged obliquely to the axial center of the suction port 22 d so that the second end portion 61 b is disposed closer to the suction port 22 d than the first end portion 61 a. The receiving plate portions 62 a of each of cold water receiving members 62 has a first end portion 63 a which is one of end portions in the longitudinal direction, and a second end portion 63 b which is the other end portion in the longitudinal direction. Each of the receiving plate portions 62 a is arranged obliquely to the axial center of the suction port 22 d so that the second end portion 63 b is disposed closer to the suction port 22 d than the first end portion 63 a.
  • An upper end surface and a lower end surface of each of the filter members 61 are inclined downward as advancing from the second end portion 61 b to the first end portion 61 a. However, an upper end surface 61 d of the filter member 61 c disposed in a highest position is arrange horizontally. The receiving plate portions 62 a are inclined downward as advancing from the second end portions 63 b to the first end portions 63 a. Therefore, cold water captured by the filter members 61 and flowing downward is received by the receiving plate portions 62 a and shed from the first end portions 63 a by flowing down in a direction away from the suction port 22 d along the inclination of the receiving plate portions 62 a.
  • Configuration and operation other than the aforementioned configuration and operation of the evaporator 14 according to the fourth embodiment are similar to those of the evaporator 14 according to the second embodiment.
  • As explained above, the receiving plate portions 62 a are inclined downward as advancing to the opposite first end portions 63 a from the second end portions 63 b disposed closer to the suction port 22 d in the fourth embodiment. Therefore, cold water received by the receiving plate portions 62 a can be shed from the first end portions 63 a being end portions away from the suction port 22 d. That is, a position to shed cold water from the receiving plate portions 62 a can be set to be away from the suction port 22 d, so that cold water shed from the receiving plate portions 62 a can be more certainly prevented from being sucked out by the compressor 16 in comparison with the case where cold water is shed from the receiving plate portions 62 a at a position closer to the suction port 22 d.
  • Effects other than the aforementioned effects of the fourth embodiment are similar to those of the second embodiment.
  • The embodiments disclosed here should be considered as being entirely exemplary and unlimited. A range of the present invention is not indicated by the above explanation of the embodiments, but by a range of claims, where changes made within a meaning and range equal to the range of the claims are entirely included in the present invention.
  • For example, the receiving plate portions 62 a horizontally disposed in the width direction are inclined in the longitudinal direction in the fourth embodiment, but it is not limited and the receiving plate portions 62 a of the fourth embodiment inclined in the longitudinal direction may be further inclined in the width direction in the same manner with the third embodiment.
  • Moreover, the erected portions 52 b are provided in the cold water receiving members 52 in the third embodiment, but the erected portions 52 b may be omitted. That is, when the receiving plate portions 52 a are inclined downward from the communication space S4 to the generation spaces S3 as shown in the third embodiment, cold water received by the receiving plate portions 52 a flows into the generation spaces S3, so that it is possible to prevent cold water received by the receiving plate portions 52 a from splashing toward the suction port 22 d and being shed in the communication space S4 without providing the erected portions 52 b. Therefore, the erected portions 52 b can be omitted in the third embodiment.
  • The receiving plate portions 52 a of the cold water receiving members 52 may be configured to extend over the edge of upper end surfaces of the filter members 51 on the generation spaces S3 side as shown in a modified example of the third embodiment of FIG. 10. According to this configuration, cold water droplets flowing down from the receiving plate portions 52 a can be prevented from being attached to the filter members 51 disposed directly below the receiving plate portions 52 a.
  • Configuration of the cold water receiving members is not limited to the configuration shown in each of the above embodiments. For example, the cold water receiving members may be configured in a shape of a box container into which a lower portion of the filter member is inserted. In this case, a bottom portion of the container is included in the concept of the receiving plate portion in the present invention, and a side wall portion of the container facing to the communication space S4 (or the suction port 22 d) is included in the concept of the erected portion in the present invention. Exhaust holes for permitting cold water to flow into the generation spaces S3 is provided in a lower portion of such a container, so that cold water captured by the filter members and flowing downward can be received by the container and made to flow into the generation spaces S3.
  • Moreover, configuration of the filters is not limited to the configuration shown in each of the above embodiments. For example, it is possible to similarly apply the present invention to the case where a filter has a curved horizontal cross section so as to be swelled on the generation space S3 side and the case where four filters are arranged to exhibit a W shape in a horizontal cross section and other cases.
  • Furthermore, a device to which the evaporator 14 is applied is not limited to the cooling device as explained in the first embodiment.
  • Outline of the Present Embodiments
  • The present embodiments are summarized as follows.
  • The evaporator according to the present embodiments is provided with the housing having the suction port connectable to the suction portion of the compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port. The evaporator comprises a filter installed in the housing, the filter dividing a space in the housing into the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port, the filter being inclined away from the suction port as advancing upward, and the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty fluid while capturing the droplet or misty working fluid.
  • In this evaporator, the filter for dividing a space in the housing into the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port is inclined away from the suction port as advancing upward. Therefore, a working fluid captured by the filter is entirely shed on the first space side rather than the surface facing to the suction port of the filter. Accordingly, it is made possible to prevent shedding of working fluid droplets from the filter to the second space for communicating with the suction port, and splashes generated by shedding of the droplets, so that sucking out such droplets and splashes from the suction port to the suction portion of the compressor can be prevented. As a result, it is made possible to prevent the moving blade of the compressor from being damaged due to collision with the droplets and splashes, which allows service life of the compressor to be extended.
  • Moreover, the evaporator according to the present embodiments is provided with the housing having the suction port connectable to the suction portion of the compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port. The evaporator comprises a filter installed in the housing, the filter dividing a space in the housing into the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port, the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty working fluid while capturing the droplet or misty working fluid. The filter is divided into the plurality of the filter members disposed in the vertical direction, and each of the filter members is inclined away from the suction port as advancing upward.
  • In this evaporator, each of the filter members to constitute the filter for dividing the first space for generating the droplet or misty working fluid and the second space for communicating with the suction port is inclined away from the suction port as advancing upward. Therefore, a working fluid captured by each of the filter members is entirely shed on the first space side rather than the surface of the filter member facing to the suction port. Accordingly, it is made possible to prevent shedding of working fluid droplets from the filter to the second space for communicating with the suction port, and splashes generated by shedding of the droplets, so that sucking out such droplets and splashes from the suction port to the suction portion of the compressor can be prevented. As a result, it is made possible to prevent the moving blade of the compressor from being damaged due to collision with the droplets and splashes, which allows service life of the compressor to be extended. Moreover, the filter is divided into the plurality of the filter members arranged in the vertical direction and each of the filter members is inclined as stated above in this evaporator, so that an area occupied by the entire filters in the horizontal direction can be decreased in comparison with the case where one undivided filter is inclined at the same angle with the each of the above filter members. Therefore, enlargement of the evaporator can be suppressed in the horizontal direction.
  • The evaporator having the filter which is divided into the plurality filter members preferably comprises the receiving plate portion arranged between two of the adjacent filter members disposed in the vertical direction, the receiving plate portion receiving the working fluid captured by the upper filter member thereof and flowing downward, and the erected portion erected on the receiving plate portion at a position closer to the suction port than the upper filter member. According to this configuration, a working fluid captured by the filter member and flowing downward can be received by the receiving plate portion, where the erected portion prevents the received working fluid from splashing toward the suction port and being shed in the second space. Therefore, a working fluid received by the receiving plate portion is shed from the end portion of the receiving plate portion on the first space side by overflowing. A working fluid shed in the first space is not sucked out from the suction port by being shielded in the filter member even if it is sucked by the compressor. As a result, it is made possible to prevent the moving blade of the compressor from being damaged due to collision caused by sucking out a working fluid captured by the filter member and flowing downward.
  • In this case, the receiving plate portion is preferably inclined downward from the second space to the first space. According to this configuration, a working fluid captured by the filter member and flowing downward can be received by the receiving plate portion, and the working fluid is allowed to flow into the first space. Therefore, a working fluid captured by the filter member and flowing downward can be prevented from being sucked out by the compressor more certainly in this configuration.
  • The evaporator having the filter which is divided into the plurality filter members preferably comprises the receiving plate portion arranged between two of the adjacent filter members disposed in the vertical direction, the receiving plate portion receiving the working fluid captured by the upper filter member thereof and flowing downward, wherein the receiving plate portion is inclined downward from the second space to the first space. According to this configuration, a working fluid captured by the filter member and flowing downward can be received by the receiving plate portion, and the working fluid is allowed to flow into the first space. Therefore, a working fluid captured by the filter member and flowing downward can be prevented from being sucked out by the compressor more certainly in this configuration.
  • In the configuration including the receiving plate portion, the receiving plate portion preferably has the first end portion and the second end portion closer to the suction port than the first end portion, wherein the receiving plate portion is inclined downward from the second end portion to the first end portion. According to this configuration, a working fluid received by the receiving plate portion can be shed from the first end portion which is an end portion away from the suction port. That is, a position to shed a working fluid from the receiving plate portion can be set to be away from the suction port, so that a working fluid which is shed from the receiving plate portion can be prevented from being sucked out by the compressor more certainly, in comparison with the case where a working fluid is shed from the receiving plate portion at a position closer to the suction port.
  • Moreover, the cooling device according to the present embodiments comprises any one of the aforementioned evaporators, wherein cooling is performed by using evaporation heat obtained when at least part of the droplet or misty working fluid is evaporated.
  • Since this cooling device is provided with any one of the aforementioned evaporators, an effect of extending service life of the compressor, which is similar to that of the aforementioned evaporators, can be obtained.

Claims (9)

1. An evaporator provided with a housing having a suction port connectable to a suction portion of a compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port, comprising;
a filter installed in the housing, the filter dividing a space in the housing into a first space for generating the droplet or misty working fluid and a second space for communicating with the suction port, the filter being inclined away from the suction port as advancing upward, the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty working fluid while capturing the droplet or misty working fluid.
2. An evaporator provided with a housing having a suction port connectable to a suction portion of a compressor in order to evaporate at least part of a droplet or misty working fluid in the housing by a suction effect of the compressor through the suction port, comprising;
a filter installed in the housing, the filter dividing a space in the housing into a first space for generating the droplet or misty working fluid and a second space for communicating with the suction port, the filter transmitting therethrough vapor resulting from evaporation of the droplet or misty working fluid while capturing the droplet or misty working fluid, wherein
the filter is divided into a plurality of filter members disposed in a vertical direction, each of the filter members being inclined away from the suction port as advancing upward.
3. The evaporator according to claim 2, further comprising;
a receiving plate portion arranged between two adjacent filter members disposed in the vertical direction, the receiving plate portion receiving the working fluid captured by an upper filter member thereof and flowing downward; and
an erected portion erected on the receiving plate portion at a position closer to the suction port than the upper filter member.
4. The evaporator according to claim 3, wherein the receiving plate portion is inclined downward from the second space to the first space.
5. The evaporator according to claim 2, further comprising;
a receiving plate portion arranged between two adjacent filter members disposed in the vertical direction, the receiving plate portion receiving the working fluid captured by an upper filter member thereof and flowing downward, wherein
the receiving plate portion is inclined downward from the second space to the first space.
6. The evaporator according to claim 3, wherein;
the receiving plate portion has a first end portion and a second end portion closer to the suction port than the first end portion; and
the receiving plate portion is inclined downward from the second end portion to the first end portion.
7. A cooling device, comprising the evaporator according to claim 1, wherein cooling is performed by using evaporation heat obtained when at least part of the droplet or misty working fluid is evaporated.
8. The evaporator according to claim 5, wherein;
the receiving plate portion has a first end portion and a second end portion closer to the suction port than the first end portion; and
the receiving plate portion is inclined downward from the second end portion to the first end portion.
9. A cooling device, comprising the evaporator according to claim 2, wherein cooling is performed by using evaporation heat obtained when at least part of the droplet or misty working fluid is evaporated.
US12/734,754 2007-11-21 2008-11-20 Evaporator and cooling device Abandoned US20100281903A1 (en)

Applications Claiming Priority (3)

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JP2007-302097 2007-11-21
JP2007302097A JP5210604B2 (en) 2007-11-21 2007-11-21 Evaporator and cooling device
PCT/JP2008/071145 WO2009066736A1 (en) 2007-11-21 2008-11-20 Evaporator and cooling device

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CN (1) CN101868678B (en)
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090095001A1 (en) * 2007-03-19 2009-04-16 Masaaki Imai Liquid Evaporation Cooling Apparatus

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP4098338A1 (en) 2021-05-31 2022-12-07 STAC Technology ApS Evaporator and cooling device

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4407127A (en) * 1980-09-22 1983-10-04 Tokyo Shibaura Denki Kabushiki Kaisha Flashing apparatus of geothermal power plants
US4501130A (en) * 1982-04-23 1985-02-26 Masahiko Izumi Refrigerating device
US4514202A (en) * 1983-04-25 1985-04-30 The Marley Cooling Tower Company Air stream entrained water eliminator for cross flow cooling tower
US4953694A (en) * 1985-12-18 1990-09-04 Hitachi, Ltd. Distilling apparatus
US5055239A (en) * 1990-11-15 1991-10-08 Munters Corporation Liquid and gas contact apparatus
US20030150233A1 (en) * 2000-05-26 2003-08-14 Jensen Christian Svarregaard Condenser with integrated deaerator
US6910349B2 (en) * 2002-08-06 2005-06-28 York International Corporation Suction connection for dual centrifugal compressor refrigeration systems
US20070101746A1 (en) * 2005-11-08 2007-05-10 Schlom Leslie A Multi-stage hybrid evaporative cooling system
US7310962B2 (en) * 2002-04-04 2007-12-25 Roger Laurence Cooke Evaporative coolers

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2384413A (en) * 1943-11-18 1945-09-04 Worthington Pump & Mach Corp Cooler or evaporator
JPS552416U (en) * 1978-06-21 1980-01-09
EP0122958A1 (en) * 1983-04-25 1984-10-31 Marley Cooling Tower Company Air stream entrained water eliminator for cross flow cooling tower
JPS62180790A (en) * 1986-02-05 1987-08-08 Hitachi Ltd Method and apparatus for producing extremely pure water
JPS63164915U (en) * 1987-04-17 1988-10-27
JPH0564703A (en) * 1991-09-09 1993-03-19 Hitachi Ltd Condenser

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4407127A (en) * 1980-09-22 1983-10-04 Tokyo Shibaura Denki Kabushiki Kaisha Flashing apparatus of geothermal power plants
US4501130A (en) * 1982-04-23 1985-02-26 Masahiko Izumi Refrigerating device
US4514202A (en) * 1983-04-25 1985-04-30 The Marley Cooling Tower Company Air stream entrained water eliminator for cross flow cooling tower
US4953694A (en) * 1985-12-18 1990-09-04 Hitachi, Ltd. Distilling apparatus
US5055239A (en) * 1990-11-15 1991-10-08 Munters Corporation Liquid and gas contact apparatus
US20030150233A1 (en) * 2000-05-26 2003-08-14 Jensen Christian Svarregaard Condenser with integrated deaerator
US6755043B2 (en) * 2000-05-26 2004-06-29 York Refrigeration Aps Condenser with integrated deaerator
US7310962B2 (en) * 2002-04-04 2007-12-25 Roger Laurence Cooke Evaporative coolers
US6910349B2 (en) * 2002-08-06 2005-06-28 York International Corporation Suction connection for dual centrifugal compressor refrigeration systems
US20070101746A1 (en) * 2005-11-08 2007-05-10 Schlom Leslie A Multi-stage hybrid evaporative cooling system

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090095001A1 (en) * 2007-03-19 2009-04-16 Masaaki Imai Liquid Evaporation Cooling Apparatus
US8051669B2 (en) * 2007-03-19 2011-11-08 Sasakura Engineering Co., Ltd. Liquid evaporation cooling apparatus

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ES2764112T3 (en) 2020-06-02
EP2224190A4 (en) 2014-10-08
PT2224190T (en) 2020-01-21
DK2224190T3 (en) 2020-01-27
JP2009127914A (en) 2009-06-11
WO2009066736A1 (en) 2009-05-28
CN101868678A (en) 2010-10-20
CN101868678B (en) 2012-07-18
JP5210604B2 (en) 2013-06-12
EP2224190A1 (en) 2010-09-01
EP2224190B1 (en) 2019-11-06

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