The present invention relates to a serpentine heat exchanger.
A serpentine heat exchanger disclosed in JP2001-27484A has been known as a heat exchanger used as an evaporator or a capacitor of an air conditioner for a vehicle.
The serpentine heat exchanger has a configuration in which a tube having a medium passage inside thereof is folded back in a serpentine (meandering) shape, and a fin is arranged in a space enclosed by the folded tube.
The serpentine heat exchanger has an advantage that changes in length and folding positions/the number of folds of the tube enable various sizes, that is, various capacities, of heat exchangers to be manufactured.
A serpentine heat exchanger needs to include fins as many as possible to achieve size reduction and high efficiency thereof by reducing a curvature radius of a folded portion of a tube by thinning a wall of the tube, and reducing a space inside the folded portion, the space being in which the fin is not arranged.
However, since the tube used for the serpentine heat exchanger is molded by an extrusion molding, a wall of the tube has been difficult to be thinned.
Moreover, medium passages formed in the tube are a plurality of parallel passages as illustrated in
The present invention has been made to solve such technical problems, and an object of the present invention to achieve size reduction and high efficiency of a serpentine heat exchanger.
According to one aspect of the present invention, a serpentine heat exchanger includes a tube formed by bonding two press-molded tube sheets and folded back in a serpentine shape, and a fin arranged in a space enclosed by the tube that is folded-back, wherein an inside of a folded-back portion of the tube includes a plurality of protrusions at a distance from one another, the protrusions protruding from one tube sheet and contacting the other tube sheet.
According to the above aspect, the serpentine-shaped tube is formed by superposing the press-molded tube sheets and folding back the superposed tube sheets. Since a wall of the tube can be thinner than that of a tube manufactured by extrusion molding, a curvature radius of the folded portion can be reduced. This can reduce a space inside the folded portion, the space being in which the fin cannot be disposed. Thus, a larger number of the fins can be arranged, thereby achieving size reduction and high efficiency of the heat exchanger.
Moreover, a medium flowing inside the tube flows while being constantly mixed through gaps among the protrusions. This also allows the heat exchanger to achieve high efficiency.
Hereinafter, embodiments of the present invention will be described with reference to the drawings.
The heat exchanger 100 includes a tube 1, a corrugated fin 2, an inlet adapter 3, an outlet adapter 4, an inlet pipe 5, and an outlet pipe 6.
The tube 1 is formed by superposing tube sheets 11 (see
As illustrated in these diagrams, the protrusions 8 of one tube sheet 11 butt the protrusions 8 of the other tube sheet 11, so that pillars extending in a thickness direction of the tube 1 are formed inside the tube 1. The protrusions 8 are formed at a distance from one another in a surface direction (a flow direction of a medium and a direction perpendicular thereto) of the tube sheet 11. The protrusions 8 reinforce the straight portion, and prevent reduction in an area of passage cross-section due to a crush of the tube 1 in the folded-back portion. The protrusions 8 are arranged in a staggered pattern, and do not block the passage of the medium.
In the folded-back portion of the tube 1, tabs 12 of the tube sheets 11 are folded in a folding back direction of the tube 1, so that the tube sheets 11 are swaged together.
The corrugated fin 2 is a fin formed by folding a metal plate in a corrugated shape. The corrugated fin 2 is arranged in each of the plurality of U-shaped spaces formed by the folded-back tube 1, and an upper end and a lower end thereof contact the tube 1.
The inlet adapter 3 and the inlet pipe 5 are connected to one end of the tube 1. The outlet adapter 4 and the outlet pipe 6 are connected to the other end of the tube 1.
The heat exchanger 100 according to the first embodiment is configured as described above, so that a medium flowing into the inlet adapter 3 from the inlet pipe 5 flows from a lower side to an upper side in the figure by passing inside the meandering tube 1. In the course of this process, heat of the medium is exchanged with the air passing through the corrugated fins 2. After exchanging the heat, the medium is fed to the outlet adapter 4 and discharged from the outlet pipe 6.
Next, a manufacturing method of the heat exchanger 100 according to the first embodiment is described with reference to
First, the tube sheet 11 is manufactured by press working (
Next, two tube sheets 11 are prepared and superposed such that the recessed grooves 7 are provided inside, thereby forming the tube 1 (
Subsequently, the tabs 12 are folded, and the tube sheets 11 are swaged together (
Next, the tube 1 is folded back at a plurality of locations, and thus formed in a serpentine shape (
Next, the inlet adapter 3 is connected to one end of the tube 1, and the outlet adapter 4 is connected to the other end (
Subsequently, the corrugated fin 2 is inserted and arranged in a space between the folded-back tube 1 (
Next, the inlet pipe 5 is connected to the inlet adapter 3, and the outlet pipe 6 is connected to the outlet adapter 4 (
Lastly, the entire heat exchanger is placed in a furnace, and each of the components is bonded by blazing (
Now, an operational effect of the first embodiment is described.
According to the first embodiment, the serpentine-shaped tube 1 is formed by superposing the press-molded tube sheets 11 and folding back the superposed tube sheets 11 at a plurality of locations. Since a wall of the tube 1 can be thinner than that of a tube manufactured by extrusion molding, a curvature radius of the folded portion can be reduced. This can reduce a space inside the folded portion, the space being in which the corrugated fin 2 cannot be disposed. Thus, a larger number of the corrugated fins 2 can be arranged, thereby achieving size reduction and high efficiency of the heat exchanger 100.
Moreover, in a case where a wall thickness of the tube 1 is reduced, there is a possibility that the tube 1 may be crushed in a folded portion. In the first embodiment, however, since pillars are formed inside the tube 1 by the protrusions 8 protruding from the tube sheet 11, a reduction in a passage cross-sectional area due to a crush of the tube 1 in the folded portion does not occur.
In addition, a medium flowing inside the tube 1 flows while being constantly mixed through gaps among the protrusions 8 (pillars). This also enables the heat exchanger 100 to achieve high efficiency.
Moreover, in the folded-back portion, the tube sheets 11 are swaged together with the tabs 12. Accordingly, when the tube 1 is folded back, the tube sheets 11 are not separated from each other, thereby preventing generation of a gap on a side surface of the tube 1.
Moreover, since the protrusion 8 formed on the tube sheet 11 has a truncated conical shape, strength of the tube 1 in the straight portion can be ensured, and foldability in the folded portion can also be ensured.
A second embodiment differs from the first embodiment in a forming method of a pillar to be formed inside a tube 1.
In the first embodiment, the protrusions 8 are formed on both of the two tube sheets 11 forming the tube 1, and then butted together to form pillars. In the second embodiment, however, protrusions 8 are formed on only one tube sheet 11. The protrusions 8 are not formed on the other tube sheet 11. In the second embodiment, the protrusions 8 formed on one tube sheet 11 are butted on a flat surface of the other tube sheet 11, so that pillars are formed inside the tube 1.
Since other configurations are the same as the first embodiment, the descriptions thereof are omitted.
While the embodiments of the present invention have been described, it is to be understood that the above embodiments are examples of application of the present invention, and a technical scope of the present invention is not limited to the particular configurations of the above embodiments.
For example, in the above embodiments, the protrusions 8 are formed on the entire tube 2. However, the protrusions 8 may be provided in at least a folded portion. If strength of a straight portion can be ensured without the protrusions 8, the straight portion does not need to have the protrusions 8.
Moreover, the protrusion 8 may have a cylindrical shape or a prism shape (a triangular prism, a quadrangular prism, and the like) instead of a truncated conical shape.
This application claims priority from Japanese Patent Application No. 2011-135178 filed with Japan Patent office on Jun. 17, 2011, which is hereby incorporated by reference herein in its entirely.
Number | Date | Country | Kind |
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2011-135178 | Jun 2011 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2012/062900 | 5/21/2012 | WO | 00 | 12/6/2013 |