HEAT EXCHANGER GROOVED TUBE
A heat exchanger grooved tube is made of a copper alloy having a 0.2% proof stress of greater than or equal to 40 N/mm2, and the relationship among the fin width b, the number N of fins (3), and the root thickness t is represented by 8<bN/t<20.
The present invention relates to heat exchanger grooved tubes, and more particularly relates to a measure for reducing collapse of grooves during tube expansion.
BACKGROUND ARTConventionally, internally grooved tubes each having an internal surface including many grooves to increase the heat transfer performance have been often used as heat transfer tubes for heat exchangers (so-called finned-tube heat exchangers) of refrigeration systems, etc. For example, the internal surface of an internally grooved tube of PATENT DOCUMENT 1 includes many fins helically extending along the tube axial direction, and a groove is formed between each adjacent pair of the fins. This allows the internal surface area of the tube to be larger than that of a so-called smooth tube which does not include fins and grooves, thereby accelerating the heat transfer action.
CITATION LIST Patent DocumentPATENT DOCUMENT 1: Japanese Patent Publication No. H08-174044
SUMMARY OF THE INVENTION Technical ProblemIncidentally, in the assembly of a heat exchanger, in order to adhere an internally grooved tube having been passed through a plurality of fin plates to the fin plates, the internally grooved tube is expanded by inserting a tube expanding tool into the internally grooved tube. In this case, the distal ends of fins forming the internal surface of the tube are pressed by the tube expanding tool, and thus, are crushed to some extent.
Here, the operating pressure of an internally grooved tube for use in a so-called supercritical refrigeration cycle in which the high pressure exceeds the critical pressure of refrigerant is higher than that for use in a subcritical refrigeration cycle, and thus, the tube thickness needs to be increased in order to ensure the tube strength. However, the tube expanding force for expanding the tube must also be increased with an increase in the tube thickness, thereby causing the fins forming the internal surface of the tube to be significantly crushed. As a result, the heat transfer performance is significantly impaired.
The present invention has been made in view of the foregoing point, and it is an object of the present invention to reduce collapse of fins arising from expansion of heat exchanger grooved tubes (internally grooved tubes).
SOLUTION TO THE PROBLEMA first aspect of the invention is directed to a heat exchanger grooved tube having an internal surface including a plurality of grooves and a plurality of projections adjacent to the grooves. The heat exchanger grooved tube of the present invention is made of a copper alloy having a 0.2% proof stress of greater than or equal to 40 N/mm2, and the relationship among a width b of a root end of each of the projections, a number N of the projections, and a bottom thickness t of each of the grooves is represented by 8<bN/t<20.
According to the above-described invention, a copper alloy having a higher proof stress than a conventional material, i.e., phosphorus-deoxidized copper, is used as a material. This can reduce the bottom thickness t of each of the grooves (the root thickness t illustrated in
A second aspect of the invention is the heat exchanger grooved tube of the first aspect of the invention, wherein the heat exchanger grooved tube is used for a refrigeration circuit through which carbon dioxide serving as refrigerant circulates and which operates in a vapor compression refrigeration cycle such that a high pressure is greater than or equal to a critical pressure of carbon dioxide.
According to the above-described invention, a so-called supercritical cycle in which the high pressure corresponds to a supercritical pressure is performed in the refrigeration circuit. This increases the design pressure of the heat exchanger grooved tube. Even in this case, the bottom thickness t of each of the grooves of the grooved tube can be reduced, thereby facilitating satisfying the relationship of 8<bN/t<20.
ADVANTAGES OF THE INVENTIONTherefore, according to the present invention, the tube is made of a copper alloy having a 0.2% proof stress of greater than or equal to 40 N/mm2, thereby reducing the bottom thickness t of each of the grooves. Furthermore, the relationship among the width b of the root end of each of the projections, the number N of the projections, and the bottom thickness t of each of the grooves is represented by 8<bN/t<20, thereby reliably reducing collapse of the projections (fins) arising from expansion of tubes of any size.
Here, referring to
When, as described in the second aspect of the invention, the tube is used for a refrigeration circuit operating in a supercritical refrigeration cycle by circulating carbon dioxide therethrough, the high pressure of the cycle is higher than that of a normal subcritical refrigeration cycle, thereby increasing the design pressure. However, an increase in the root thickness t can be reduced, and the relationship of 8<bN/t<20 is reliably satisfied. This can reduce collapse of the projections. As a result, high heat transfer performance can be achieved.
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An embodiment of the present invention will be described hereinafter in detail with reference to the drawings. The following embodiment is set forth merely for the purposes of preferred examples in nature, and is not intended to limit the scope, applications, and use of the invention.
A heat exchanger grooved tube according to this embodiment is used as a heat transfer tube for a heat exchanger (a so-called finned tube heat exchanger) provided for a refrigeration system, etc., and refrigerant flows through the interior of the grooved tube. The refrigerant flowing through the heat exchanger grooved tube (hereinafter referred to as the heat transfer tube (1)) is evaporated or condensed by exchanging heat with air or water circulating around the tube. The heat transfer tube (1) of this embodiment is for use in a radiator or an evaporator of a refrigeration circuit operating in a vapor compression refrigeration cycle by circulating carbon dioxide serving as refrigerant therethrough. The refrigeration circuit operates in a supercritical refrigeration cycle in which the high pressure is increased to greater than or equal to the critical pressure of carbon dioxide by compressing carbon dioxide.
As illustrated in
Here, in the assembly of a heat exchanger, such as a radiator or an evaporator, in order to adhere the heat transfer tube (1) having been passed through a plurality of fin plates to the fin plates, the heat transfer tube (1) is expanded using a tube expanding tool. The expansion of the tube causes the fins (3) forming the internal surface of the heat transfer tube (1) to be crushed to some extent. In particular, in the supercritical cycle, the high pressure is very high, and thus, the root thickness t (see
Therefore, the heat transfer tube (1) of this embodiment is made of a copper alloy having a 0.2% proof stress of greater than or equal to 40 N/mm2. Specifically, a material having a higher proof stress than a conventional material, i.e., phosphorus-deoxidized copper (Cl220-OL), is used as a material of the heat transfer tube (1) of this embodiment. This can reduce the root thickness t while maintaining the same design pressure (the design pressure of refrigerant flowing through the heat transfer tube (1)).
The heat transfer tube (1) of this embodiment is configured such that the relationship among the fin width b, the number N of the fins (3), and the root thickness t of the grooves (2) is represented by 8<bN/t<20. The fin width b corresponds to the width of the root end of each of the projections according to the present invention. The number N of the fins (3) corresponds to the number of the projections according to the present invention. The root thickness t corresponds to the bottom thickness according to the present invention.
With the above configuration, as illustrated in
Consequently, as illustrated in
The reason why the value bN/t is set less than 20 is as follows. In order to reduce collapse of the fins in the height direction, the value bN/t may be set as large as possible as seen from
As described above, according to this embodiment, the heat transfer tube is made of a copper alloy having a 0.2% proof stress of greater than or equal to 40 N/mm2, thereby reducing the root thickness t. Furthermore, the relationship among the fin width b, the fin number N, and the root thickness t is represented by 8<bN/t<20, and thus, while an appropriate internal surface area of the tube is ensured, collapse of the fins (3) is reliably reduced without increasing the tube weight and pressure loss. As a result, a heat transfer tube (1) and a heat exchanger, such as an evaporator or a radiator, both exhibiting high heat transfer performance can be provided.
The heat transfer tube is used for a refrigeration circuit operating in a supercritical refrigeration cycle by circulating carbon dioxide therethrough, and the high pressure of the cycle is higher than that of a normal subcritical refrigeration cycle, thereby increasing the design pressure of the heat transfer tube (1). However, an increase in the root thickness t can be reduced. This can advantageously reduce collapse of the fins (3). As a result, high heat transfer performance can be achieved.
INDUSTRIAL APPLICABILITYAs described above, the present invention is useful for heat exchanger grooved tubes each having an internal surface including a plurality of grooves.
DESCRIPTION OF REFERENCE CHARACTERS
- 1 HEAT TRANSFER TUBE (HEAT EXCHANGER GROOVED TUBE)
- 2 GROOVE
- 3 FIN (PROJECTION)
Claims
1. A heat exchanger grooved tube having an internal surface including a plurality of grooves and a plurality of projections adjacent to the grooves,
- wherein the heat exchanger grooved tube is made of a copper alloy having a 0.2% proof stress of greater than or equal to 40 N/mm2, and
- the relationship among a width b of a root end of each of the projections, a number N of the projections, and a bottom thickness t of each of the grooves is represented by 8<bN/t<20.
2. The heat exchanger grooved tube of claim 1, wherein
- the heat exchanger grooved tube is used for a refrigeration circuit through which carbon dioxide serving as refrigerant circulates and which operates in a vapor compression refrigeration cycle such that a high pressure is greater than or equal to a critical pressure of carbon dioxide.
Type: Application
Filed: Jul 28, 2009
Publication Date: Jun 9, 2011
Inventors: Shun Yoshioka (Osaka), Hirokazu Fujino (Osaka), Haruo Nakata (Osaka), Yoshio Oritani (Osaka)
Application Number: 13/057,304
International Classification: F28F 1/40 (20060101);