Claims
- 1. An evaporator, comprising:
a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group arranged front and rear, each of said heat exchanging tube groups including a plurality of heat exchanging tubes disposed parallel with each other at certain intervals; an inlet-side tank disposed along one end side of said upstream-side heat exchanging tube group; an outlet-side tank disposed along one end side of said downstream-side heat exchanging tube group; and a refrigerant turning member disposed along the other end side of both said heat exchanging tube groups, wherein each one end of said heat exchanging tubes constituting said upstream-side heat exchanging tube group is connected to said inlet-side tank, while the other end thereof is connected to said refrigerant turning member, and wherein each one end of said heat exchanging tubes constituting said downstream-side heat exchanging tube group is connected to said outlet-side tank, while the other end thereof is connected to said refrigerant turning member, whereby refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank via said upstream-side heat exchanging tube group, said refrigerant turning member and said downstream-side heat exchanging tube group, while said refrigerant passing through both said heat exchanging tube groups evaporates by exchanging heat with ambient air.
- 2. The evaporator as defined in claim 1, wherein said inlet-side tank is provided with refrigerant distributing resistance means which distributes said refrigerant in a longitudinal direction of said inlet-side tank.
- 3. The evaporator as defined in claim 1 or 2, wherein said outlet-side tank is provided with uneven-distribution-flow preventing resistance means which prevents uneven-distribution-flow of refrigerant.
- 4. An evaporator, comprising:
a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group arranged front and rear, each of said heat exchanging tube groups including a plurality of heat exchanging tubes disposed parallel with each other at certain intervals; an inlet-and-outlet-side header member disposed along one end side of both said heat exchanging tube groups; and a refrigerant-turn-side header member disposed along the other end side of both said heat exchanging tube groups, wherein an inside of said inlet-and-outlet-side header member is divided front and rear by a partition into a front-side portion and a rear-side portion, wherein said front-side portion constitutes an inlet-side tank and said rear-side portion constitutes an outlet-side tank, wherein one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group is connected to said inlet-side tank of said inlet-and-outlet-side header member, while the other end thereof is connected to said refrigerant-turn-side header member, and wherein one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group is connected to said outlet-side tank of said inlet-and-outlet-side header member, while the other end thereof is connected to said refrigerant-turn-side header member, whereby refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank via said upstream-side heat exchanging tube group, said refrigerant-turn-side member and said downstream-side heat exchanging tube group, while said refrigerant passing through both said heat exchanging tube groups evaporates by exchanging heat with ambient air.
- 5. The evaporator as recited in claim 4, wherein said inlet-and-outlet-side header member includes an inlet-and-outlet-side header plate to which one end of each of said heat exchanging tubes is fixed in a penetrated manner and an inlet-and-outlet-side header cover attached to said header plate so as to cover one surface side of said header plate.
- 6. The evaporator as recited in claim 4 or 5, wherein said refrigerant-turn-side header member includes a refrigerant-turn-side header plate to which the other end of each of said heat exchanging tubes is fixed in a penetrated manner and a refrigerant-turn-side header cover attached to said header plate so as to cover the other surface of said header plate.
- 7. The evaporator as recited in any one of claims 4 to 6, wherein refrigerant distributing resistance means which distributes said refrigerant in a longitudinal direction of said inlet-side tank is provided in an inside of said inlet-side tank.
- 8. The evaporator as recited in claim 7, wherein said refrigerant distributing resistance means is a refrigerant distributing resistance plate which divides said inlet-side tank into an upper space and a lower space and has a plurality of refrigerant passage apertures formed at intervals along said longitudinal direction of said inlet-side tank.
- 9. The evaporator as recited in claim 8, wherein said plurality of refrigerant passage apertures of said refrigerant distributing resistance plate include apertures different in size.
- 10. The evaporator as recited in claim 9, wherein said inlet-and-outlet-side header member has a refrigerant inlet for introducing refrigerant into said inlet-side tank, and wherein said plurality of refrigerant passage apertures of said refrigerant distributing resistance plate are formed so that said refrigerant passage aperture increases in size as it goes away from said refrigerant inlet.
- 11. The evaporator as recited in claim 10, wherein said refrigerant inlet is formed at a longitudinal middle position of said inlet-side tank, and wherein said refrigerant passage apertures formed in said refrigerant distributing resistance plate and located apart from said refrigerant inlet is formed to have a size larger than a size of said refrigerant passage aperture located near said refrigerant inlet.
- 12. The evaporator as recited in claim 10, wherein said refrigerant inlet is provided at a longitudinal end portion of said inlet-side tank.
- 13. The evaporator as recited in any one of claims 4 to 7, wherein uneven-distribution-flow preventing resistance means for preventing an uneven-refrigerant-flow is provided within said outlet-side tank of said inlet-and-outlet-side header member.
- 14. The evaporator as recited in claim 13, wherein said uneven-distribution-flow preventing resistance means is an uneven-distribution-flow preventing resistance plate which divides said outlet-side tank into an upper space and a lower space and has a plurality of refrigerant passage apertures formed at intervals along a longitudinal direction of said inlet-side tank.
- 15. The evaporator as recited in claim 14, wherein a distance between adjacent refrigerant passage apertures formed in said uneven-distribution-flow preventing resistance plate falls within the range of 1 to 4 times as long as a distance between adjacent heat exchanging tubes.
- 16. The evaporator as recited in claim 14, wherein said refrigerant passage apertures formed in said uneven-distribution-flow preventing resistance plate are offset from a widthwise central portion of said heat exchanging tube toward a windward side relative to an air introducing direction.
- 17. The evaporator as recited in claim 14, wherein said inlet-and-outlet-side header member has a refrigerant outlet through which refrigerant flows out of said outlet-side tank, and wherein a cross-sectional area of a refrigerant passage aperture located in the most distant position from said refrigerant outlet among said refrigerant passage apertures formed in said uneven-distribution-flow preventing resistance plate is set to 7 mm2 or less.
- 18. The evaporator as recited in claim 17, wherein said refrigerant outlet is provided at a longitudinal middle portion of said outlet-side tank.
- 19. The evaporator as recited in claim 17, wherein said refrigerant outlet is provided at a longitudinal end portion of said outlet-side tank.
- 20. The evaporator as recited in claim 14, wherein a cross-sectional area between said uneven-distribution-flow preventing resistance plate and an end portion of said heat exchanging tube in said outlet-side tank is 1 to 5 times as large as a passage cross-sectional area of said heat exchanging tube.
- 21. The evaporator as recited in claim 14, wherein a total cross-sectional area of said refrigerant passage apertures formed in said uneven-distribution-flow preventing resistance plate is larger than a total passage cross-sectional area of said heat exchanging tubes at said downstream-side heat exchanging tube group.
- 22. The evaporator as recited in claim 14, wherein each of said refrigerant passage aperture formed in said uneven-distribution-flow preventing resistance plate is formed into a round shape.
- 23. The evaporator as recited in claim 14, wherein said refrigerant passage aperture formed in said uneven-distribution-flow preventing resistance plate is formed into an ellipse shape or a rectangular shape having a major axis along a width direction of said heat exchanging tube.
- 24. The evaporator as recited in any one of claims 4 to 7, wherein corresponding heat exchanging tubes of both said heat exchanging tube groups are integrally connected.
- 25. The evaporator as recited in any one of claims 4 to 7, wherein said heat exchanging tube is an extruded tube obtained by extrusion molding.
- 26. The evaporator as recited in any one of claims 4 to 7, wherein a tube height of said heat exchanging tube falls within the range of from 0.75 to 1.5 mm.
- 27. An evaporator, comprising:
a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group arranged front and rear, each of said heat exchanging tube group including a plurality of heat exchanging tubes disposed parallel with each other at certain intervals; an inlet-and-outlet-side header member disposed along one end side of both said heat exchanging tube groups; and a refrigerant-turn-side header member disposed along the other end side of both said heat exchanging tube groups, wherein an inside of said inlet-and-outlet-side header member is divided into an inlet-side tank and an outlet-side tank, wherein said refrigerant-turn-side header member includes at least two press-formed metal plate members, wherein an inside of said refrigerant-turn-side header member is divided into an inflow-side tank and an outflow-side tank by a refrigerant-turn-side partition, and both said tanks being communicated by communication apertures provided in said partition, wherein one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group is connected to said inlet-side tank of said inlet-and-outlet-side header member, while the other end thereof is connected to said inflow-side tank of said refrigerant-turn-side header member, and wherein one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group is connected to said outlet-side tank of said inlet-and-outlet-side header member, while the other end thereof is connected to said outflow-side tank of said refrigerant-turn-side header member, whereby refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank via said upstream-side heat exchanging tube group, said inflow-side tank, said apertures, said outflow-side tank and said downstream-side heat exchanging tube group, while said refrigerant passing through both said heat exchanging tube groups evaporates by exchanging heat with ambient air.
- 28. The evaporator as recited in claim 27, wherein said refrigerant-turn-side header member includes a header plate to which one end of each of said heat exchanging tubes is fixed in a penetrated manner and a header cover attached to said header plate so as to cover one surface side of said header plate, and wherein said refrigerant-turn-side partition is formed by folding a widthwise middle portion of a metal plate member constituting said header cover along a longitudinal direction thereof.
- 29. The evaporator as recited in claim 23, wherein said refrigerant-turn-side partition has at a tip portion thereof engaging protrusions at certain intervals along a longitudinal direction thereof, wherein said header plate has at a widthwise middle portion thereof engaging apertures corresponding to said engaging protrusions at certain intervals along a longitudinal direction thereof, and wherein said engaging protrusions are inserted and fixed in said engaging apertures by caulking processing.
- 30. The evaporator as recited in claim 27, wherein said metal plate member constituting said refrigerant-turn-side header member is formed by an aluminum brazing sheet having an aluminum core and a brazing layer laminated on at least one side of said core.
- 31. The evaporator as recited in claim 30, wherein said brazing sheet has said brazing layer laminated at an external surface side thereof, and wherein said brazing layer contains zinc.
- 32. The evaporator as recited in claim 28, wherein a thickness of said header cover is thinner than that of said header plate.
- 33. The evaporator as recited in claim 27, wherein said inlet-and-outlet-side header member includes at least two press-formed metal plate members.
- 34. The evaporator as recited in claim 33, wherein said inlet-and-outlet-side header member has a header plate to which an end portion of each of said exchanging tubes is fixed in a penetrated manner and a header cover attached to said header plate so as to cover one surface side thereof, and wherein said inlet-and-outlet-side partition is formed by folding a widthwise middle portion of a metal plate member constituting said header cover along a longitudinal direction thereof.
- 35. The evaporator as recited in claim 34, wherein said inlet-and-outlet-side partition has at a tip portion thereof engaging protrusions at certain intervals along a longitudinal direction thereof, wherein said header plate has at a widthwise middle portion thereof engaging apertures corresponding to said engaging protrusions at certain intervals along a longitudinal direction thereof, and wherein said engaging protrusions are inserted in and fixed to said engaging apertures by caulking processing.
- 36. The evaporator as recited in claim 33, wherein said metal plate member constituting said inlet-and-outlet-side header member is formed by an aluminum brazing sheet having a brazing layer laminated on at least one side thereof.
- 37. The evaporator as recited in claim 36, wherein said brazing sheet has said brazing layer laminated at an external surface side thereof, and wherein said brazing layer contains zinc.
- 38. The evaporator as recited in claim 34, wherein a thickness of said header cover is thinner than that of said header plate.
- 39. An evaporator, comprising:
a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group arranged front and rear, each of said heat exchanging tube groups including a plurality of heat exchanging tubes disposed parallel with each other at certain intervals; an inlet-and-outlet-side header member disposed along one end side of both said heat exchanging tube groups; and a refrigerant-turn-side header member disposed along the other end side of both said heat exchanging tube groups, wherein said inlet-and-outlet-side header member includes an inlet-and-outlet-side header plate, an inlet-and-outlet-side header cover attached to said header plate so as to cover one surface side of said header plate and a partition for dividing an inside of said inlet-and-outlet-side header member into an inlet-side tank and an outlet-side tank, wherein said refrigerant-turn-side header member includes a refrigerant-turn-side header plate and a refrigerant-turn-side header cover attached to said header plate so as to cover one surface side of said header plate, one of said refrigerant-turn-side header plate and said refrigerant-turn-side header cover being formed by a press-formed metal plate member, and the other thereof being formed by an extruded molded article, wherein one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group is fixed. to said inlet-and-outlet-side header plate in a penetrated manner to thereby be connected to said inlet-side tank, while the other end thereof is connected to said refrigerant-turn-side header plate in a penetrated manner, wherein one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group is fixed to said inlet-and-outlet-side header member to thereby be connected to said outlet-side tank, while the other end thereof is connected to said refrigerant-turn-side header member in a predetermined manner, whereby refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank via said upstream-side heat exchanging tube group, said refrigerant-turn-side header member and said downstream-side heat exchanging tube group, while said refrigerant passing through both said heat exchanging tube groups evaporates by exchanging heat with ambient air.
- 40. The evaporator as recited in claim 39, wherein one of said inlet-and-outlet-side header plate and said inlet-and-outlet-side header cover is formed by a press-formed metal plate member and the other thereof is formed by an extruded molded article,
- 41. A method of manufacturing an evaporator, the method comprising the steps of:
a step of preparing a plurality of heat exchanging tubes constituting an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group to be disposed front and rear; a step of preparing an inlet-side tank to be disposed along one end side of said upstream-side heat exchanging tube group; a step of preparing an outlet-side tank to be disposed along one end side of said downstream-side heat exchanging tube group; a step of preparing a refrigerant turning member to be disposed along the other end side of both said heat exchanging tubes groups; a step of brazing one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group to said inlet-side tank; a step of brazing the other end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group to said refrigerant turning member; a step of brazing one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group; and a step of brazing the other end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group to said refrigerant turning member; wherein refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank by passing through said upstream-side heat exchanging tube group, said refrigerant turning member and said downstream-side heat exchanging tube group, and wherein said refrigerant passing through both said heat exchanging tube groups constitutes a refrigerant circuit in which said refrigerant evaporates by exchanging heat with ambient air.
- 42. The method of manufacturing an evaporator as recited in claim 41, wherein said brazing steps are collectively performed by furnace brazing processing.
- 43. A method of manufacturing an evaporator, the method comprising the steps of:
a step of preparing heat exchanging tubes constituting an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group to be disposed front and rear; a step of preparing an inlet-and-outlet-side header member to be disposed along one end side of both said heat exchanging tube groups, wherein an inside of said header member is divided by a partition front and rear into one side space constituting an inlet-side tank and the other side space constituting an outlet-side tank; a step of preparing a refrigerant-turn-side header member to be disposed along the other end side of both said heat exchanging tube groups; a step of brazing one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group to an inlet-side tank of said inlet-and-outlet-side header; a step of brazing the other end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group to said refrigerant-turn-side header member; a step of brazing one end of each of said heat exchanging tubes' constituting said downstream-side heat exchanging tube group to said outlet-side tank of said inlet-and-outlet-side header; and a step of brazing the other end of each of said heat exchanging tubes of said downstream-side heat exchanging tube group to said refrigerant-turn-side header member; wherein refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank by passing through said upstream-side heat exchanging tube group, said refrigerant-turn-side header member and said downstream-side heat exchanging tube group, and wherein said refrigerant passing through both said heat exchanging tube groups constitutes a refrigerant circuit in which said refrigerant evaporates by exchanging heat with ambient air.
- 44. The method of manufacturing an evaporator as recited in claim 43, wherein said brazing steps are collectively performed by furnace brazing processing.
- 45. A method of manufacturing an evaporator, the method comprising the steps of:
a step of preparing heat exchanging tubes constituting an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group to be disposed front and rear; a step of preparing an inlet-and-outlet-side header member to be disposed along one end of both said heat exchanging tube groups, an inside of said header member being divided into an inlet-side tank and an outlet-side tank; a step of preparing a refrigerant-turn-side header member to be disposed along the other end side of both said heat exchanging tube groups, said refrigerant-turn-side header member including at least two press-formed metal plate members, and an inside of said header member being divided by a refrigerant-turn-side partition into an inflow-side tank and an outflow-side tank, and said both tanks being communicated each other via communication apertures formed in said partition; a step of brazing one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group to an inlet-side tank of said inlet-and-outlet-side header; a step of brazing the other end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group to an inflow-side tank of said refrigerant-turn-side header member; a step of brazing one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group to said outlet-side tank of said inlet-and-outlet-side header; and a step of brazing the other end of each of said heat exchanging tubes of said downstream-side heat exchanging tube group to an outflow-side tank of said refrigerant-turn-side header member; wherein refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank by passing through said upstream-side heat exchanging tube group, said inflow-side tank, said communication apertures, said outflow-side tank and said downstream-side heat exchanging tube group, and wherein said refrigerant passing through both said heat exchanging tube groups constitutes a refrigerant circuit in which said refrigerant evaporates by exchanging heat with ambient air.
- 46. The method of manufacturing an evaporator as recited in claim 45, wherein said brazing steps are collectively performed by furnace brazing processing.
- 47. A method of manufacturing an evaporator, the method comprising the steps of:
a step of preparing heat exchanging tubes constituting an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group to be disposed front and rear; a step of preparing an inlet-and-outlet-side header member to be disposed along one end of both said heat exchanging tube groups, wherein said header member includes an inlet-and-outlet-side header plate, an inlet-and-outlet-side header cover attached to said header plate so as to cover one surface side thereof and a partition for dividing an inside of said inlet-and-outlet-side header member into an inlet-side tank and an outlet-side tank; a step of preparing a refrigerant-turn-side header member to be disposed along the other end side of both said heat exchanging tube groups, wherein said refrigerant-turn-side header member includes a refrigerant-turn-side header plate and a refrigerant-turn-side header cover attached to said header plate so as to cover one side surface thereof, one of said refrigerant-turn-side header plate and said refrigerant-turn-side header cover being made of a press-formed metal plate, and the other thereof being made of an extruded molded article; a step of brazing one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group to said header plate of said inlet-and-outlet-side header to thereby be connected to said inlet-side tank; a step of brazing the other end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group to said header plate of said refrigerant-turn-side header member; a step of brazing one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group to said header plate of said inlet-and-outlet-side header to thereby be connected to said outlet-side tank; and a step of brazing the other end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group to said header plate of said refrigerant-turn-side header member; wherein refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank by passing through said upstream-side heat exchanging tube group, said refrigerant-turn-side header member and said downstream-side heat exchanging tube group, and wherein said refrigerant passing through both said heat exchanging tube groups constitutes a refrigerant circuit in which said refrigerant evaporates by exchanging heat with ambient air.
- 48. The method of manufacturing an evaporator as recited in claim 47, wherein said brazing steps are collectively performed by furnace brazing processing.
- 49. The method of manufacturing an evaporator as recited in claim 48, further comprising a step of forming a zinc diffusion layer on a surface of each of said header members by applying a flux containing zinc on said surface before performing said furnace brazing processing.
- 50. An inlet-and-outlet-side header member for an evaporator with a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group disposed front and rear, each of heat exchanging tube group including a plurality of heat exchanging tubes arranged in parallel with each other at certain intervals, said header member comprising:
a header plate for fixing an end portion of each of said heat exchanging tubes in a penetrated manner; a header cover attached to said header plate so as to cover one surface side thereof; and a partition for forming an inlet-side tank and an outlet-side tank by dividing a hollow portion surrounded by said header plate and said header cover front and rear; wherein at least one of said header plate and the said header cover is a press-formed metal plate, and wherein refrigerant flowed into said inlet-side tank is introduced into said upstream-side heat exchanging tube group, while refrigerant passing through said downstream-side heat exchanging tube group is introduced into said outlet-side tank.
- 51. The inlet-and-outlet-side header member for an evaporator as recited in claim 50, wherein both said header plate and said header cover are formed by a press-formed metal plate member, and wherein said partition is integrally formed with said header cover by folding a widthwise middle portion of said metal plate constituting said header cover along a longitudinal direction thereof.
- 52. The inlet-and-outlet-side header member for an evaporator as recited in claim 50, wherein one of said header plate and said header cover is a press-formed metal plate, and the other thereof is an extruded molded article.
- 53. A refrigerant-turn-side header member for an evaporator with a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group disposed front and rear, each of heat exchanging tube group including a plurality of heat exchanging tubes arranged in parallel with each other at certain intervals, said header member comprising:
a header plate for fixing an end portion of each of said heat exchanging tubes in a penetrated manner; a header cover attached to said header plate so as to cover one surface side thereof; and a partition for forming an inflow-side tank and an outflow-side tank by dividing a hollow portion surrounded by said header plate and said header cover front and rear, said partition having communication apertures for communicating with said tanks; wherein at least one of said header plate and the said header cover is a press-formed metal plate, and wherein refrigerant passing through said upstream-side heat exchanging tube group is introduced into said inflow-side tank and then introduced into said outflow-side tank via said communication apertures, while said refrigerant in said outflow-side tank is introduced into said downstream-side heat exchanging tube group.
- 54. The refrigerant-turn-side header member for an evaporator as recited in claim 53, wherein both of said header plate and said header cover are formed by a press-formed metal plate member respectively, and wherein said partition is integrally formed with said header cover by folding a widthwise middle portion of said metal plate constituting said header cover along a longitudinal direction thereof.
- 55. The refrigerant-turn-side header member for an evaporator as recited in claim 53, wherein one of said header plate and said header cover is a press-formed metal plate, and the other thereof is an extruded molded article.
- 56. A refrigeration system in which refrigerant compressed by a compressor is condensed by a condenser into a condensed refrigerant, then said condensed refrigerant is passed through a decompressing device into a decompressed refrigerant, and thereafter said decompressed refrigerant is evaporated by an evaporator and then returns to said compressor, said evaporator comprising:
a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group arranged front and rear, each of said heat exchanging tube groups including a plurality of heat exchanging tubes disposed parallel with each other at certain intervals; an inlet-side tank disposed along one end side of said upstream-side heat exchanging tube group; an outlet-side tank disposed along one end side of said downstream-side heat exchanging tube group; and a refrigerant turning member disposed along the other end side of both said heat exchanging tube groups, wherein each one end of said heat exchanging tubes constituting said upstream-side heat exchanging tube group is connected to said inlet-side tank, while the other end thereof is connected to said refrigerant turning member, and wherein each one end of said heat exchanging tubes constituting said downstream-side heat exchanging tube group is connected to said outlet-side tank, while the other end thereof is connected to said refrigerant turning member, whereby refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank via said upstream-side heat exchanging tube group, said refrigerant turning member and said downstream-side heat exchanging tube group, while said refrigerant passing through both said heat exchanging tube groups evaporates by exchanging heat with ambient air.
- 57. A refrigeration system in which refrigerant compressed by a compressor is condensed by a condenser into a condensed refrigerant, then said condensed refrigerant is passed through a decompressing device into a decompressed refrigerant, and thereafter said decompressed refrigerant is evaporated by an evaporator and then returns to said compressor, an evaporator, comprising:
a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group arranged front and rear, each of said heat exchanging tube groups including a plurality of heat exchanging tubes disposed parallel with each other at certain intervals; an inlet-and-outlet-side header member disposed along one end side of both said heat exchanging tube groups; and a refrigerant-turn-side header member disposed along the other end side of both said heat exchanging tube groups, wherein an inside of said inlet-and-outlet-side header member is divided front and rear by a partition into a front-side portion and a rear-side portion, wherein said front-side portion constitutes an inlet-side tank and said rear-side portion constitutes an outlet-side tank, wherein one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group is connected to said inlet-side tank of said inlet-and-outlet-side header member, while the other end thereof is connected to said refrigerant-turn-side header member, and wherein one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group is connected to said outlet-side tank of said inlet-and-outlet-side header member, while the other end thereof is connected to said refrigerant-turn-side header member, whereby refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank via said upstream-side heat exchanging tube group, said refrigerant-turn-side member and said downstream-side heat exchanging tube group, while said refrigerant passing through both said heat exchanging tube groups evaporates by exchanging heat with ambient air.
- 58. A refrigeration system in which refrigerant compressed by a compressor is condensed by a condenser into a condensed refrigerant, then said condensed refrigerant is passed through a decompressing device into a decompressed refrigerant, and thereafter said decompressed refrigerant is evaporated by an evaporator and then returns to said compressor, an evaporator, comprising:
a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group arranged front and rear, each of said heat exchanging tube group including a plurality of heat exchanging tubes disposed parallel with each other at certain intervals; an inlet-and-outlet-side header member disposed along one end side of both said heat exchanging tube groups; and a refrigerant-turn-side header member disposed along the other end side of both said heat exchanging tube groups, wherein an inside of said inlet-and-outlet-side header member is divided into an inlet-side tank and an outlet-side tank, wherein said refrigerant-turn-side header member includes at least two press-formed metal plate members, wherein an inside of said refrigerant-turn-side header member is divided into an inflow-side tank and an outflow-side tank by a refrigerant-turn-side partition, and both said tanks being communicated by communication apertures provided in said partition, wherein one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group is connected to said inlet-side tank of said inlet-and-outlet-side header member, while the other end thereof is connected to said inflow-side tank of said refrigerant-turn-side header member, and wherein one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group is connected to said outlet-side tank of said inlet-and-outlet-side header member, while the other end thereof is connected to said outflow-side tank of said refrigerant-turn-side header member, whereby refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank via said upstream-side heat exchanging tube group, said inflow-side tank, said apertures, said outflow-side tank and said downstream-side heat exchanging tube group, while said refrigerant passing through both said heat exchanging tube groups evaporates by exchanging heat with ambient air.
- 59. A refrigeration system in which refrigerant compressed by a compressor is condensed by a condenser into a condensed refrigerant, then said condensed refrigerant is passed through a decompressing device into a decompressed refrigerant, and thereafter said decompressed refrigerant is evaporated by an evaporator and then returns to said compressor, an evaporator, comprising:
a core including an upstream-side heat exchanging tube group and a downstream-side heat exchanging tube group arranged front and rear, each of said heat exchanging tube groups including a plurality of heat exchanging tubes disposed parallel with each other at certain intervals; an inlet-and-outlet-side header member disposed along one end side of both said heat exchanging tube groups; and a refrigerant-turn-side header member disposed along the other end side of both said heat exchanging tube groups, wherein said inlet-and-outlet-side header member includes an inlet-and-outlet-side header plate, an inlet-and-outlet-side header cover attached to said header plate so as to cover one surface side of said header plate and a partition for dividing an inside of said inlet-and-outlet-side header member into an inlet-side tank and an outlet-side tank, wherein said refrigerant-turn-side header member includes a refrigerant-turn-side header plate and a refrigerant-turn-side header cover attached to said header plate so as to cover one surface side of said header plate, one of said refrigerant-turn-side header plate and said refrigerant-turn-side header cover being formed by a press-formed metal plate member, and the other thereof being formed by an extruded molded article, wherein one end of each of said heat exchanging tubes constituting said upstream-side heat exchanging tube group is fixed to said inlet-and-outlet-side header plate in a penetrated manner to thereby be connected to said inlet-side tank, while the other end thereof is connected to said refrigerant-turn-side header plate in a penetrated manner, wherein one end of each of said heat exchanging tubes constituting said downstream-side heat exchanging tube group is fixed to said inlet-and-outlet-side header member to thereby connected be to said outlet-side tank, while the other end thereof is connected to said refrigerant-turn-side header member in a predetermined manner, whereby refrigerant flowed into said inlet-side tank is introduced into said outlet-side tank via said upstream-side heat exchanging tube group, said refrigerant-turn-side header member and said downstream-side heat exchanging tube group, while said refrigerant passing through both said heat exchanging tube groups evaporates by exchanging heat with ambient air.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2001-183062 |
Jun 2001 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is an application filed under 35 U.S.C. §111(a) claiming the benefit pursuant to 35 U.S.C. §119(e)(1) of the filing date of Provisional Application No. 60/303,145 filed on Jul. 6, 2001 pursuant to 35 U.S.C. §111(b).
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/JP02/06046 |
6/17/2002 |
WO |
|