Claims
- 1. A heat exchanger, comprising:
a pair of header tanks; and a plurality of heat exchanging tubes disposed between said pair of header tanks in parallel in a longitudinal direction of said header tanks with opposite ends thereof connected to said pair of header tanks in fluid communication, wherein each of said pair of header tanks includes a header tank main body having a plate connecting surface located at a tube connecting side thereof and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a refrigerant passage continuously extending along a longitudinal direction of said header tank main body and a plurality of tube connecting apertures formed in said plate connecting surface at predetermined intervals in a longitudinal direction of said refrigerant passages and communicated with said refrigerant passage, wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, and wherein said plurality of heat exchanging tubes, said cover plate and said header tank main body are secured with each other in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication.
- 2. A heat exchanger, comprising:
a pair of header tanks; and a plurality of heat exchanging tubes disposed between said pair of header tanks in parallel in a longitudinal direction of said header tanks with opposite ends thereof connected to said pair of header tanks in fluid communication, said plurality of heat exchanging tubes being arranged in plural rows in a widthwise direction of said header tank, wherein each of said pair of header tanks includes a header tank main body having a plate connecting surface located at a tube connecting side thereof and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a refrigerant inlet passage continuously extending along a longitudinal direction of said header tank main body at a front side of said header tank main body, a refrigerant outlet passage continuously extending along a longitudinal direction of said header tank main body at a rear side of said header tank main body, and a plurality of tube connecting apertures formed in front and rear sides of said plate connecting surface at predetermined intervals in a longitudinal direction of said refrigerant inlet passages and said refrigerant outlet passages and communicated with said refrigerant inlet passages and said refrigerant outlet passages respectively, wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, wherein one of said pair of header tanks is provided with a communication aperture communicating with said refrigerant inlet passage and said refrigerant outlet passage, and wherein each of said plurality of heat exchanging tubes, said cover plate and said header tank main body are secured with each other in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication.
- 3. The heat exchanger as recited in claim 2, wherein said refrigerant inlet passage and said refrigerant outlet passage formed in said header tank main body include plural passages arranged in parallel, respectively.
- 4. The heat exchanger as recited in claim 2, wherein said header tank main body has a cut portion formed from an outside surface of an end portion of said header tank main body and extending to said refrigeration inlet passage and said refrigeration outlet passage, and wherein end portions of said refrigerant inlet passage and said refrigerant outlet passage are closed by a blocking plate inserted in and secured to said cut portion.
- 5. A heat exchanger, comprising:
a pair of header tanks; and a plurality of heat exchanging tubes disposed between said pair of header tanks in parallel in a longitudinal direction of said header tanks with opposite ends thereof connected to said pair of header tanks in fluid communication, wherein each of said pair of header tanks includes a header tank main body having a plate connecting surface located at a tube connecting side thereof and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a refrigerant passage continuously extending along a longitudinal direction of said header tank main body and a plurality of tube connecting apertures formed in said plate connecting surface at predetermined intervals in a longitudinal direction of said refrigerant passages and communicated with said refrigerant passage, wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, wherein said refrigerant passage in said header tank main body is provided with engaging stepped portions each engaging an end portion of each of said plurality of heat exchanging tubes, and wherein said plurality of heat exchanging tubes, said cover plate and said header tank main body are secured with each other in a state in which said end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portion of each of said plurality of heat exchanging tubes engaged with said engaging stepped portion.
- 6. A heat exchanger, comprising:
a pair of header tanks; and a plurality of heat exchanging tubes disposed between said pair of header tanks in parallel in a longitudinal direction of said header tanks with opposite ends thereof connected to said pair of header tanks in fluid communication, wherein each of said pair of header tanks includes a header tank main body having a plate connecting surface located at a tube connecting side thereof and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a plurality of refrigerant passages continuously extending along a longitudinal direction of said header tank main body and arranged in a widthwise direction of said header tank main body, and a plurality of tube connecting apertures formed in said plate connecting surface so as to bride said plurality of refrigerant passages at predetermined intervals in a longitudinal direction of said refrigerant passage and communicated with said plurality of refrigerant passages, wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, wherein a partitioning wall partitioning said plurality of refrigerant passages in said header tank main body is provided with engaging dented stepped portions corresponding to said plurality of tube connecting apertures and engaged with end portions of said plurality of heat exchanging tubes, and wherein said plurality of heat exchanging tubes, said cover plate and said header tank main body are secured with each other in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portion of each of said plurality of heat exchanging tubes engaged with said engaging dented stepped portion.
- 7. The heat exchanger as recited in claim 6, wherein a communication groove communicating with end openings of tube apertures of said plurality of heat exchanging tubes and said plurality of refrigerant passages is formed at a bottom surface of said engaging dented stepped portion.
- 8. A heat exchanger, comprising:
a pair of header tanks; and a plurality of heat exchanging tubes disposed between said pair of header tanks in parallel in a longitudinal direction of said header tank with opposite ends of each of said plurality of heat exchanging tubes connected to said pair of header tanks in fluid communication, said plurality of heat exchanging tubes being arranged in plural rows in a widthwise direction of said header tank, wherein each of said pair of header tanks includes a header tank main body having a plate connecting surface located at a tube connecting side thereof and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a plurality of refrigerant inlet passages continuously extending along a longitudinal direction of said header tank main body at a front side of said header tank main body and disposed in parallel in a widthwise direction of said header tank main body, a plurality of refrigerant outlet passages continuously extending along a longitudinal direction of said header tank main body at a rear side of said header tank main body and disposed in parallel in a widthwise direction of said header tank main body, a plurality of tube connecting apertures formed in a front side of said plate connecting surface so as to bride said plurality of refrigerant inlet passages at predetermined intervals in a longitudinal direction of said refrigerant inlet passage and communicated with said plurality of refrigerant inlet passages, and a plurality of tube connecting apertures formed in a rear side of said plate connecting surface so as to bride said plurality of refrigerant outlet passages at predetermined intervals in a longitudinal direction of said refrigerant outlet passage and communicated with said plurality of refrigerant outlet passages, wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, wherein one of said pair of header tanks is provided with a communication aperture communicating with said plurality of refrigerant inlet passages and said plurality of refrigerant outlet passages, wherein a partitioning wall partitioning said plurality of refrigerant inlet passages and a partitioning wall partitioning said plurality of refrigerant outlet passages in said header tank main body are provided with engaging dented stepped portions corresponding to said plurality of tube connecting apertures respectively, and wherein said plurality of heat exchanging tubes, said cover plate and said header tank main body are secured with each other in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portion of each of said plurality of heat exchanging tubes engaged with said engaging dented stepped portion.
- 9. The heat exchanger as recited in claim 8, wherein a communication groove communicating with end openings of tube apertures of said plurality of heat exchanging tubes and said plurality of refrigerant inlet passages and a communication groove communicating with end openings of tube apertures of said plurality of heat exchanging tubes and said plurality of refrigerant outlet passages are formed at a bottom surface of said engaging dented stepped portion respectively.
- 10. The heat exchanger as recited in claim 9, wherein said communication groove is formed into a generally V-shape.
- 11. The heat exchanger as recited in claim 9, wherein said communication groove is formed into a generally U-shape.
- 12. The heat exchanger as recited in claim 1, wherein said refrigerant is carbon dioxide refrigerant.
- 13. A method for manufacturing a heat exchanger including a pair of header tanks and a plurality of heat exchanging tubes disposed between said pair of header tanks and arranged in parallel in a longitudinal direction of said header tank with opposite ends thereof connected to said pair of header tanks in fluid communication, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side thereof and a refrigerant passage extending in a longitudinal direction of said intermediate; obtaining a header tank main body by forming a plurality of tube connecting apertures communicating with said refrigerant passage in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and integrally joining said header tank main body, said cover plate and said plurality of heat exchanging tubes in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication.
- 14. A method for manufacturing a heat exchanger including a pair of header tanks and a plurality of heat exchanging tubes disposed between said pair of header tanks and arranged in parallel in a longitudinal direction of said header tank with opposite ends thereof connected to said pair of header tanks in fluid communication, said plurality of heat exchanging tubes being arranged in plural rows in a widthwise direction of said header tank, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side, a refrigerant inlet passage extending in a longitudinal direction of said intermediate at a front side of said intermediate, and a refrigerant outlet passage extending in a longitudinal direction of said intermediate at a rear side of said intermediate; obtaining a header tank main body by forming a plurality of tube connecting apertures communicating with said refrigerant inlet passage in a front side of said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate and a plurality of tube connecting apertures communicating with said refrigerant outlet passage in a rear side of said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate; forming a communication aperture communicating with said refrigerant inlet passage and said refrigerant outlet passage in said plate connecting surface of said header tank main body corresponding to one of said pair of header tanks; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and integrally joining said header tank main body, said cover plate and said plurality of heat exchanging tubes in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication.
- 15. The method for manufacturing a heat exchanger as recited in claim 14, wherein said refrigerant inlet passage and said refrigerant outlet passage are formed to have plural rows arranged in parallel, respectively.
- 16. The method for manufacturing a heat exchanger as recited in claim 14, wherein said intermediate having said refrigerant inlet passage and said refrigerant outlet passage is formed by extrusion molding or drawing molding.
- 17. The method for manufacturing a heat exchanger as recited in claim 14, wherein said plate connecting surface is formed by milling.
- 18. The method for manufacturing a heat exchanger as recited in claim 14, wherein said tube connecting apertures are formed by cutting.
- 19. The method for manufacturing a heat exchanger as recited in claim 14, wherein said communication apertures are formed by cutting.
- 20. The method for manufacturing a heat exchanger as recited in claim 14, wherein said tube connecting apertures and said communication apertures are formed simultaneously.
- 21. A method for manufacturing a heat exchanger including a pair of header tanks and a plurality of heat exchanging tubes disposed between said pair of header tanks and arranged in parallel in a longitudinal direction of said header tank with opposite ends thereof connected to said pair of header tanks in fluid communication, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side thereof and a refrigerant passage extending in a longitudinal direction of said intermediate; obtaining a header tank main body by forming a plurality of tube connecting apertures communicating with said refrigerant passage in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate and engaging stepped portions each capable of engaging with an end portion of said heat exchanging tube at a portion corresponding to each of said plurality of tube connecting apertures; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and integrally joining said header tank main body, said cover plate and said plurality of heat exchanging tubes in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portion of each of said plurality of heat exchanging tubes engaged with said engaging stepped portion.
- 22. A method for manufacturing a heat exchanger including a pair of header tanks and a plurality of heat exchanging tubes disposed between said pair of header tanks and arranged in parallel in a longitudinal direction of said header tank with opposite ends thereof connected to said pair of header tanks in fluid communication, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side thereof and a plurality of refrigerant passages extending in a longitudinal direction of said intermediate and disposed in a widthwise direction of said intermediate; obtaining a header tank main body by forming a plurality of tube connecting apertures communicating with said plurality of refrigerant passages so as to bridge said plurality of refrigerant passages in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate and engaging dented stepped portions each capable of engaging with an end portion of said heat exchanging tube at a partitioning walls partitioning said plurality of refrigerant passages portion corresponding to each of said plurality of tube connecting apertures; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and integrally joining said header tank main body, said cover plate and said plurality of heat exchanging tubes in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portion of each of said plurality of heat exchanging tubes engaged with said engaging dented stepped portion.
- 23. The method for manufacturing a heat exchanger as recited in claim 22, wherein, at a step of obtaining said header tank main body, a communication groove communicating with end openings of tube apertures of said heat exchanging tube and said plurality of refrigerant passages is formed at a bottom surface of each of said engaging dented stepped portions.
- 24. A method for manufacturing a heat exchanger including a pair of header tanks and a plurality of heat exchanging tubes disposed between said pair of header tanks and arranged in parallel in a longitudinal direction of said header tank with opposite ends thereof connected to said pair of header tanks in fluid communication, said plurality of heat exchanging tubes being arranged in plural rows in a widthwise direction of said header tank, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side thereof, refrigerant inlet passages extending in a longitudinal direction of said intermediate at a front side of said intermediate and arranged in a widthwise direction of said intermediate, and refrigerant outlet passages extending in a longitudinal direction of said intermediate at a rear side of said intermediate and arranged in a widthwise direction of said intermediate; obtaining a header tank main body by forming a plurality of front side tube connecting apertures communicating with said plurality of refrigerant inlet passages so as to bridge said plurality of refrigerant inlet passages in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate, a plurality of rear side tube connecting apertures communicating with said plurality of refrigerant outlet passages so as to bridge said plurality of refrigerant outlet passages in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate, engaging dented stepped portions each capable of engaging with an end portion of said front side heat exchanging tube at partitioning walls partitioning said plurality of refrigerant inlet passages corresponding to each of said plurality of tube connecting apertures, and engaging dented stepped portions each capable of engaging with an end portion of said rear side heat exchanging tube at partitioning walls partitioning said plurality of refrigerant outlet passages corresponding to each of said plurality of tube connecting apertures; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and integrally joining said header tank main body, said cover plate and said plurality of heat exchanging tubes in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portion of each of said plurality of heat exchanging tubes engaged with said engaging dented stepped portion.
- 25. The method for manufacturing a heat exchanger as recited in claim 24, wherein, at a step of obtaining said header tank main body, a communication groove communicating with end openings of tube apertures of said heat exchanging tube and said plurality of refrigerant inlet passages and a communication groove communicating with end openings of tube apertures of said heat exchanging tube and said plurality of refrigerant outlet passages are formed at a bottom surface of each of said engaging dented stepped portions.
- 26. A heat exchanger header tank for connecting end portions of a plurality of heat exchanging tubes disposed in parallel in fluid communication, said heat exchanger header tank, comprising:
a header tank main body having a plate connecting surface located at a tube connecting side thereof; and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a refrigerant passage continuously extending along a longitudinal direction of said header tank main body and a plurality of tube connecting apertures formed in said plate connecting surface at predetermined intervals in a longitudinal direction of said refrigerant passages and communicated with said refrigerant passage, and wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, whereby each of said plurality of heat exchanging tubes and said cover plate are secured with each other in a state in which an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication.
- 27. A heat exchanger header tank for connecting end portions of a plurality of heat exchanging tubes disposed in parallel in fluid communication, said heat exchanger header tank, comprising:
a header tank main body having a plate connecting surface located at a tube connecting side thereof; and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a refrigerant inlet passage continuously extending along a longitudinal direction of said header tank main body at a widthwise front side of said header tank main body, a refrigerant outlet passage continuously extending along a longitudinal direction of said header tank main body at a widthwise rear side of said header tank main body, and a plurality of tube connecting apertures formed in front and rear sides of said plate connecting surface at predetermined intervals in a longitudinal direction of said refrigerant inlet passages and said refrigerant outlet passages and communicated with said refrigerant inlet passages and said refrigerant outlet passages respectively, and wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, whereby an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication.
- 28. The heat exchanger header tank as recited in claim 27, wherein said refrigerant inlet passage and said refrigerant outlet passage formed in said header tank main body include plural passages arranged in parallel, respectively.
- 29. The heat exchanger header tank as recited in claim 27, wherein said header tank main body has a cut portion formed from an outside surface of an end portion of said header tank main body and extending to said refrigeration inlet passage and said refrigeration outlet passage, and wherein end portions of said refrigerant inlet passage and said refrigerant outlet passage are closed by a blocking plate inserted in and secured to said cut portion.
- 30. The heat exchanger header tank as recited in claim 27, wherein said header tank main body has a communication aperture communicating with said refrigerant inlet passage and said refrigerant outlet passage.
- 31. A heat exchanger header tank for connecting end portions of a plurality of heat exchanging tubes disposed in parallel in fluid communication, said heat exchanger header tank, comprising:
a header tank main body having a plate connecting surface located at a tube connecting side thereof; and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a refrigerant passage continuously extending along a longitudinal direction of said header tank main body and a plurality of tube connecting apertures formed in said plate connecting surface at predetermined intervals in a longitudinal direction of said refrigerant passage and communicated with said refrigerant passage, wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, and wherein said refrigerant passage in said header tank main body is provided with engaging stepped portions for engaging end portions of said plurality of heat exchanging tubes, whereby said end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portions of said plurality of heat exchanging tubes engaged with said engaging stepped portions.
- 32. A heat exchanger header tank for connecting end portions of a plurality of heat exchanging tubes disposed in parallel in fluid communication, said heat exchanger header tank, comprising:
a header tank main body having a plate connecting surface located at a tube connecting side thereof; and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a plurality of refrigerant passages continuously extending along a longitudinal direction of said header tank main body and arranged in a widthwise direction of said header tank main body, and a plurality of tube connecting apertures formed in said plate connecting surface so as to bride said plurality of refrigerant passages at predetermined intervals in a longitudinal direction of said refrigerant passage and communicated with said plurality of refrigerant passages, wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, and wherein a partitioning wall partitioning said plurality of refrigerant passages in said header tank main body is provided with an engaging dented stepped portion corresponding to said tube connecting aperture and engaging with an end portion of each of said plurality of heat exchanging tubes, whereby an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portion of each of said plurality of heat exchanging tubes engaged with said engaging dented stepped portion.
- 33. The heat exchanger header tank as recited in claim 32, wherein a communication groove communicating with end openings of tube apertures of said plurality of heat exchanging tubes and said plurality of refrigerant passages is formed at a bottom surface of said engaging dented stepped portion.
- 34. A heat exchanger header tank for connecting end portions of a plurality of heat exchanging tubes disposed in parallel in fluid communication, said heat exchanger header tank, comprising:
a header tank main body having a plate connecting surface located at a tube connecting side; and a cover plate secured to said plate connecting surface, wherein said header tank main body is provided with a plurality of refrigerant inlet passages continuously extending along a longitudinal direction of said header tank main body at a front side of said header tank main body and disposed in parallel in a widthwise direction of said header tank main body, a plurality of refrigerant outlet passage continuously extending along a longitudinal direction of said header tank main body at a rear side of said header tank main body and disposed in parallel in a widthwise direction of said header tank main body, a plurality of tube connecting apertures formed in a front side of said plate connecting surface so as to bride said plurality of refrigerant inlet passages at predetermined intervals in a longitudinal direction of said refrigerant inlet passage and communicated with said plurality of refrigerant inlet passages, and a plurality of tube connecting apertures formed in a rear side of said plate connecting surface so as to bride said plurality of refrigerant outlet passages at predetermined intervals in a longitudinal direction of said refrigerant outlet passage and communicated with said plurality of refrigerant outlet passages, wherein said cover plate is provided with a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures, and wherein a partitioning wall partitioning said plurality of refrigerant inlet passages and a partitioning wall partitioning said plurality of refrigerant outlet passages in said header tank main body are provided with an engaging dented stepped portion corresponding to said tube connecting aperture respectively, whereby an end portion of each of said plurality of heat exchanging tubes is inserted into a corresponding one of said plurality of tube insertion apertures formed in said cover plate disposed on said plate connecting surface and connected to a corresponding one of said plurality of tube connecting aperture of said header tank main body in a fluid communication with said end portion of each of said plurality of heat exchanging tubes engaged with said engaging dented stepped portion.
- 35. The heat exchanger as recited in claim 34, wherein a communication groove communicating with end openings of tube apertures of said plurality of heat exchanging tubes and said plurality of refrigerant inlet passages and a communication groove communicating with end openings of tube apertures of said plurality of heat exchanging tubes and said plurality of refrigerant outlet passages are formed at a bottom surface of said engaging dented stepped portion respectively.
- 36. A method for manufacturing a heat exchanger header tank for connecting a plurality of heat exchanging tubes arranged in parallel, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side thereof and a refrigerant passage extending in a longitudinal direction of said intermediate; obtaining a header tank main body by forming a plurality of tube connecting apertures communicating with said refrigerant passage in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and joining said cover plate to said plate connecting surface of said header tank main body in a state in which said plurality of heat exchanging tubes are fitted in said plurality of tube insertion apertures.
- 37. A method for manufacturing a heat exchanger header tank for connecting a plurality of heat exchanging tubes arranged in parallel, said method, comprising:
preparing an intermediate having a fiat plate connecting surface at a tube connecting side, a refrigerant inlet passage extending in a longitudinal direction of said intermediate at a front side of said intermediate, and a refrigerant outlet passage extending in a longitudinal direction of said intermediate at a rear side of said intermediate; obtaining a header tank main body by forming a plurality of tube connecting apertures communicating with said refrigerant inlet passage in a front side of said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate and a plurality of tube connecting apertures communicating with said refrigerant outlet passage in a rear side of said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and joining said cover plate to said plate connecting surface of said header tank main body in a state in which said plurality of heat exchanging tubes are fitted in said plurality of tube insertion apertures.
- 38. The method for manufacturing a heat exchanger header tank as recited in claim 37, wherein said refrigerant inlet passage and said refrigerant outlet passage are formed to have plural rows arranged in parallel, respectively.
- 39. A method for manufacturing a heat exchanger header tank for connecting a plurality of heat exchanging tubes arranged in parallel, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side and a refrigerant passage extending in a longitudinal direction of said intermediate; obtaining a header tank main body by forming a plurality of tube connecting apertures communicating with said refrigerant passage in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate and engaging stepped portions each capable of engaging with an end portion of said heat exchanging tube at a portion corresponding to each of said plurality of tube connecting apertures; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and joining said cover plate to said plate connecting surface of said header tank main body in a state in which said plurality of heat exchanging tubes are fitted in said plurality of tube insertion apertures.
- 40. A method for manufacturing a heat exchanger header tank for connecting a plurality of heat exchanging tubes arranged in parallel, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side and a plurality of refrigerant passages extending in a longitudinal direction of said intermediate and arranged in a widthwise direction of said intermediate; obtaining a header tank main body by forming a plurality of tube connecting apertures communicating with said plurality of refrigerant passages so as to bridge said plurality of refrigerant passages in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate and engaging dented stepped portions each capable of engaging with an end portion of said heat exchanging tube at partitioning walls partitioning said plurality of refrigerant passages at a portion corresponding to each of said plurality of tube connecting apertures; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and joining said cover plate to said plate connecting surface of said header tank main body in a state in which said plurality of heat exchanging tubes are fitted in said plurality of tube insertion apertures.
- 41. The method for manufacturing a heat exchanger header tank as recited in claim 40, wherein, at a step of obtaining said header tank main body, a communication groove communicating with end openings of tube apertures of said heat exchanging tube and said plurality of refrigerant passages is formed at a bottom surface of said engaging dented stepped portion.
- 42. A method for manufacturing a heat exchanger header tank for connecting a plurality of heat exchanging tubes arranged in parallel, said method, comprising:
preparing an intermediate having a flat plate connecting surface at a tube connecting side, refrigerant inlet passages extending in a longitudinal direction of said intermediate at a front side of said intermediate and arranged in a widthwise direction of said intermediate, and refrigerant outlet passages extending in a longitudinal direction of said intermediate at a rear side of said intermediate and arranged in a widthwise direction of said intermediate; obtaining a header tank main body by forming a plurality of front side tube connecting apertures communicating with said plurality of refrigerant inlet passages so as to bridge said plurality of refrigerant inlet passages in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate, a plurality of rear side tube connecting apertures communicating with said plurality of refrigerant outlet passages so as to bridge said plurality of refrigerant outlet passages in said plate connecting surface of said intermediate at predetermined intervals in a longitudinal direction of said intermediate, engaging dented stepped portions each capable of engaging with an end portion of said front side heat exchanging tube at partitioning walls partitioning said plurality of refrigerant inlet passages corresponding to each of said plurality of tube connecting apertures, and engaging dented stepped portions each capable of engaging with an end portion of said rear side heat exchanging tube at partitioning walls partitioning said plurality of refrigerant outlet passages corresponding to each of said plurality of tube connecting apertures; preparing a cover plate to be fitted to said plate connecting surface, said cover plate having a plurality of tube insertion apertures corresponding to said plurality of tube connecting apertures; and joining said cover plate to said plate connecting surface of said header tank main body in a state in which said plurality of heat exchanging tubes are fitted in said plurality of tube insertion apertures.
- 43. The method for manufacturing a heat exchanger header tank as recited in claim 42, wherein, at a step of obtaining said header tank main body, a communication groove communicating with end openings of tube apertures of said heat exchanging tube and said plurality of refrigerant inlet passages and a communication groove communicating with end openings of tube apertures of said heat exchanging tube and said plurality of refrigerant outlet passages are formed at a bottom surface of said engaging dented stepped portion.
Priority Claims (3)
Number |
Date |
Country |
Kind |
2001350573 |
Nov 2001 |
JP |
|
60333170 |
Nov 2001 |
US |
|
2002166686 |
Jun 2002 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] Priority is claimed to Japanese Patent Application No. 2001-350573, filed on Nov. 15, 2001, Japanese Patent Application No. 2002-166686, filed on Jun. 7, 2002 and U.S. Provisional Patent Application No. 60/333,170, filed on Nov. 27, 2001, the disclosure of which are incorporated by reference in their entireties.
[0002] 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 U.S. Provisional Application No. 60/333,170 filed on Nov. 27, 2001 pursuant to 35 U.S.C. §111(b).
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/JP02/11915 |
11/15/2002 |
WO |
|