WO2011005926A1 - Copper alloy for heat exchanger tube - Google Patents

Copper alloy for heat exchanger tube Download PDF

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Publication number
WO2011005926A1
WO2011005926A1 PCT/US2010/041313 US2010041313W WO2011005926A1 WO 2011005926 A1 WO2011005926 A1 WO 2011005926A1 US 2010041313 W US2010041313 W US 2010041313W WO 2011005926 A1 WO2011005926 A1 WO 2011005926A1
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WO
WIPO (PCT)
Prior art keywords
alloy
tube
weight
present
copper
Prior art date
Application number
PCT/US2010/041313
Other languages
French (fr)
Inventor
Parker M. Finney
Larz Ignberg
Anders Kamf
Tim Goebel
Eric Gong
Ed Rottman
Original Assignee
Luvata Espoo Oy
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Luvata Espoo Oy filed Critical Luvata Espoo Oy
Priority to JP2012519714A priority Critical patent/JP2012532990A/en
Priority to EP10797826.4A priority patent/EP2451604B1/en
Priority to CN2010800319144A priority patent/CN102470471A/en
Priority to CA2767242A priority patent/CA2767242C/en
Priority to ES10797826.4T priority patent/ES2649557T3/en
Priority to MX2012000544A priority patent/MX340861B/en
Priority to BR112012000607-0A priority patent/BR112012000607B1/en
Publication of WO2011005926A1 publication Critical patent/WO2011005926A1/en

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Classifications

    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C9/00Alloys based on copper
    • C22C9/02Alloys based on copper with tin as the next major constituent
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C9/00Alloys based on copper
    • C22C9/06Alloys based on copper with nickel or cobalt as the next major constituent
    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22FCHANGING THE PHYSICAL STRUCTURE OF NON-FERROUS METALS AND NON-FERROUS ALLOYS
    • C22F1/00Changing the physical structure of non-ferrous metals or alloys by heat treatment or by hot or cold working
    • C22F1/08Changing the physical structure of non-ferrous metals or alloys by heat treatment or by hot or cold working of copper or alloys based thereon
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F21/00Constructions of heat-exchange apparatus characterised by the selection of particular materials
    • F28F21/08Constructions of heat-exchange apparatus characterised by the selection of particular materials of metal
    • F28F21/081Heat exchange elements made from metals or metal alloys
    • F28F21/085Heat exchange elements made from metals or metal alloys from copper or copper alloys

Definitions

  • the present invention pertains generally to copper alloys and use of the copper alloys in tubes for heat exchangers. Specifically, the invention pertains to a high strength copper alloy tube that has desirable pressure fracture strength and processability properties.
  • the alloy is suitable to reduce thickness, and therefore, conserves material, for existing air conditioning and refrigeration (ACR) heat exchangers, and is suitable for use in a heat exchanger using a cooling medium such as CO 2 .
  • Heat exchangers for air conditioners may be constructed of a U-shaped copper tube bent like a hairpin and fins made from aluminum or aluminum alloy plate.
  • a copper tube used for the above type heat exchanger requires suitable conductivity, formability, and brazing properties.
  • HCFC hydro-chlorofluorocarbon
  • HCFC hydro-chlorofluorocarbon
  • CO2 which is a natural cooling medium
  • the present invention provides a copper alloy, for use in heat exchanger tubes, having, for example, high tensile strength, excellent processability and good thermal conductivity.
  • the present invention is a copper alloy composition, which includes the following where the percentages are by weight.
  • the composition comprises copper (Cu), nickel (Ni) and tin (Sn).
  • the alloy has a composition of 99% copper by weight, 0.5% nickel by weight and 0.5% tin by weight, represented as
  • nickel is present in the range of 0.2% to 1.0%, tin in the range of 0.2% to 1.0%, and the remainder includes Cu and impurities.
  • the composition optionally comprises phosphorus in the range of 0.01% to 0.07%.
  • the present invention provides tubes for ACR applications comprising the copper alloy composition.
  • the alloy composition is formed into tubes for ACR applications.
  • Figure 1 Graphical representation of relative metal value per feet vs. copper price for a presently used alloy, C122, at standard wall thickness compared with an alloy of the present invention CuNi(0.5)Sn(0.5) at reduced wall thickness.
  • Figure 2. Graphical representation of tensile strength and conductivity for tested alloys as a function of Ni and Sn contents. Sn has a greater influence on both strength and conductivity.
  • Figure (a) is a perspective view
  • Figure (b) is a cross-section of the tube of (a) as viewed along a longitudinal axis
  • Figure (c) is a cross-section of the tube of (a) and (b) as viewed along an axis normal to the longitudinal axis.
  • the present invention provides a high strength alloy which can, for example, reduce the wall thickness and therefore reduce the cost associated with existing ACR tubing and/or provide ACR tubing capable of withstanding the increased pressures associated with cooling media such as CO 2 .
  • high strength it is meant that the alloy and/or tube made from the alloy has at least the levels of tensile strength and/or burst pressure and/or cycle fatigue failure set out herein.
  • the copper alloy can provide savings in material, costs, environmental impact and energy consumption.
  • the selected alloy should have appropriate material properties and perform well with regard to processability.
  • Important material properties include properties such as, for example, burst pressure/strength, ductility, conductivity, and cycle fatigue. The characteristics of the alloy and/or tube described herein are desirable so they can withstand ACR operating environments.
  • High tensile strength and high burst pressure are desirable tube properties because they define what operating pressure a tube can withstand before failing. For example, the higher the burst pressure, the more robust the tube design or for a given burst pressure minimum the present alloy allows for a thinner wall tube.
  • the alloy and/or tube comprising the alloy has, for example, a material tensile strength of a minimum of 38 ksi (kilo-pound per square inch). The material tensile strength can be measured by methods known in the art such as, for example, the ASTM E-8 testing protocol.
  • the alloy and/or tube comprising the alloy has a material tensile strength of 39, 40, 41 or 42 ksi.
  • Ductility of the alloy and/or a tube made from the alloy is a desirable property because, in one embodiment, tubes need to be bent 180 degrees into hairpins without fracturing or wrinkling for use in the coil. Elongation is an indicator of material ductility.
  • the alloy and/or tube comprising the alloy has, for example, an elongation of a minimum of 40 %. The elongation can be measured by methods known in the art such as, for example, the ASTM E-8 testing protocol.
  • the alloy and/or tube comprising the alloy has a minimum elongation of 41, 42, 43, 44, 45, 46, 47, 48, 49 or 50%.
  • Conductivity is a desirable property because it relates to heat transfer capability and therefore, it is a component of the efficiency of an ACR coil. Also, conductivity can be important for tube formation.
  • the alloy and/or tube comprising the alloy has, for example, a conductivity of a minimum of 35% IACS. The conductivity can be measured by methods known in the art such as, for example, the ASTM E- 1004 testing protocol. In various embodiments, the alloy and/or tube comprising the alloy has a minimum conductivity of 36, 37, 38, 39, 40, 45, 50, 55, 60 or 65% (IACS).
  • the alloy and/or tube has, for example, at least equal resistance to cycle fatigue failure as the current alloy in use, e.g., C122 as shown in Table 2. Further, it is desirable that the alloy and/or tube has, for example, at least equivalent resistance against one or more types of corrosion (e.g., galvanic corrosion and formicary corrosion) as the current alloy in use, e.g., C 122.
  • a tube comprising an alloy of the present invention has improved softening resistance (which can be important for brazing) and/or increased fatigue strength relative to a standard copper tube, e.g., a tube made from C122.
  • a tube depicted in Figures 3 (a) - (c) with reduced wall thickness t (relative to a tube comprising a conventional alloy, e.g., C 122) comprising the present alloy has equal or improved burst pressure and/or cycle fatigue relative to tube comprising a conventional alloy, e.g., C 122.
  • the tube wall thickness of a tube of the present invention is minimized relative to a standard tube, e.g. a C122 tube, which reduces total material cost, and both tubes exhibit the same burst pressure.
  • the tube wall thickness is at least 10, 15 or 20% less than a C 122 tube, where both tubes have the same burst pressure.
  • the burst pressure can be measured by methods known in the art such as, for example, CSA-C22.2 No. 140.3 Clause 6.1 Strength Test - UL 207 Clause 13.
  • the cycle fatigue can be measured by methods known in the art such as, for example, CSA-C22.2 No. 140.3 Clause 6.4 Fatigue Test - UL 207 Clause 14.
  • the alloy of the present invention can be fabricated according to methods known in the art. During the alloy fabrication process and/or tube formation process, it can be important to control the temperature. Control of temperature can be important in keeping the elements in solution (preventing precipitation) and controlling grain size. For example, conductivity can increase and formability can suffer if processed incorrectly.
  • heat treatment in the production process will occur over a short time such that the temperature of the alloy and/or tube will be between 400-600 0 C with a rapid (e.g., 10 to 500 °C/second) upward and downward ramping of the temperature.
  • the grain size is from 1 micron to 50 microns, including all integers between 1 micron and 50 microns. In another embodiment, the grain size is from 10 microns to 25 microns. In yet another embodiment, the grain size is from 10 microns to 15 microns. The grain size can be measured by methods known in the art such as, for example, the ASTM E-112 testing protocol.
  • the alloy compositions of the present invention include the following where relative amounts of the components in the alloy are given as percentages by weight.
  • the ranges of percentage by weight include all fractions of a percent (including, but not limited to, tenths and hundredths of a percent) within the stated ranges.
  • the composition comprises copper, nickel, tin, and, optionally, phosphorus.
  • the nickel is present in the range of 0.2% to 1.0%, and more specifically in the range of 0.3% to 0.7%; tin in the range of 0.2% to 1.0%, and more specifically in the range of 0.3% to 0.7%; and its remainder includes copper and impurities.
  • the composition of the alloy is CuNi(0.5)Sn(0.5). In another
  • the composition of the alloy is CuNi(0.5)Sn(0.5)P(0.020).
  • the impurities can be, for example, naturally-occurring or occur as a result of processing.
  • impurities include, for example, zinc, iron and lead.
  • the impurities can be a maximum of 0.6 %. In various other embodiments, the impurities can be a maximum of 0.5, 0.45, 0.3, 0.2 or 0.1%.
  • Phosphorus is present, optionally, in the range of 0.01% to 0.07%, and more specifically in the range of 0.015% to 0.030%, or at 0.02%. Without intending to be bound by any particular theory, it is considered that inclusion of an appropriate amount of phosphorus in the alloy increases the weldability of the alloy by effecting the flow characteristics and oxygen content of the metal, while addition of too much phosphorus leads to poor grain structure and unwanted precipitates.
  • the composition consists essentially of Cu, Ni and Sn in the aforementioned ranges. In another embodiment the composition consists essentially of Cu, Ni, Sn and P in the aforementioned ranges. In various embodiments, addition of components other than copper, nickel, tin (and phosphorus in the case of the second embodiment) does not result in an adverse change of greater than 5, 4, 3, 2 or 1% in properties of the alloys of the present invention such as, for example, burst pressure/strength, ductility, conductivity, and cycle fatigue.
  • the composition of the alloy consists of Cu, Ni, Sn and P in the aforementioned ranges. In another embodiment, the composition of the alloy consists of Cu, Ni, Sn and P in the aforementioned ranges.
  • the alloy of the present invention may be produced for use by various processes such as cast and roll, extrusion or roll and weld.
  • the processing requirement includes, for example, brazeability. Brazing occurs when the tubes are connected as described below.
  • the alloy in the roll and weld process the alloy is cast into bars, roll reduced to thin gauge, heat treated, slit to size, embossed, formed into tube, welded, annealed, and packaged.
  • the alloy in the cast and roll process the alloy is cast into "mother" tube, drawn to size, annealed, machined to produce inner grooves, sized, annealed, and packaged.
  • the alloy in the extrusion process, the alloy is cast into a solid billet, reheated, extrusion pressed, drawn and grooved to final dimensions, annealed and packaged.
  • the present invention provides tubes comprising a copper-nickel- tin alloy (described herein).
  • the tubes are from 0.100 inch to 1 inch in outer diameter, including all fractions of an inch between 0.100 inch and 1 inch, and have a wall thickness of from 0.004 inch to 0.040 inch, including all fractions of an inch between 0.004 and 0.040 inch.
  • One advantage of the present invention is that thinner walled tubes can be used in ACR applications. This leads to reduced materials costs (see Figure 1).
  • the tubes comprising the copper-nickel-tin alloy are from 0.100 inch to 1 inch in outer diameter, including all fractions of an inch between 0.100 inch and 1 inch, and have a wall thickness of from 0.004 inch to 0.040 inch, including all fractions of an inch between 0.004 and 0.040 inch.
  • the tubes have sufficient conductivity (e.g., so that the tubes can be joined by welding) and formability (e.g., ability to be shaped, e.g., bent, after formation of the tube). Also, it is desirable that the tubes have properties such that the tube can have internal groove enhancement.
  • One example of a process suited for the alloy of the present invention is a heat exchanger coil having tubes formed with a roll and weld process. In an initial step, the copper alloy of the present invention is cast into slabs followed by hot and cold rolling into flat strips. The cold rolled strips are soft annealed.
  • the soft annealed copper alloy strips are then formed into heat exchanger tubes by means of a continuous roll forming and weld process.
  • the tubes Before the roll forming and welding process the tubes may be provided with internal enhancements such as grooves or ribs on the inside wall of the tube as will be evident to those of ordinary skill in the art.
  • the tubes are formed in a continuous roll and weld process and the output may be wound into a large coil. The large coil may then be moved to another area where the coil is cut into smaller sections and formed into the U or hairpin shape.
  • the hairpin is threaded into through- holes of aluminum fins and a jig is inserted into the U-shaped copper tube to expand the tube, thereby closely attaching the copper tube and the aluminum fin to each other. Then the open end of the U-shaped copper tube is expanded and a shorter hairpin similarly bent into a U- shape is inserted into the expanded end. The bent copper tube is brazed to the expanded open end using a brazing alloy thereby being connected to an adjacent hairpin to make a heat exchanger.
  • Material of a composition of 0.5 % Ni and 0.5 % Sn (CuNi(0.5)Sn(0.5) was produced in full production scale and formed to tubes using the roll and weld method.
  • the tubes were produced both in standard wall thickness (e.g., 0.0118 inches) and with 13 % lower wall thickness.
  • Mechanical properties of the tubes were tested using ASTM and UL (e.g., UL testing protocols and compared with tubes made of "present use" copper alloy C 12200 with standard wall thickness. The results are shown in Table 2.
  • the alloy of the invention CuNi(0.5) Sn(0.5) has higher strength and higher burst pressure in standard wall thickness. For tubes produced with reduced wall thickness the burst pressure for an alloy of the present invention (CuNi(0.5) Sn(0.5)) is still higher compared with C122 at standard wall thickness.

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Abstract

An alloy comprising copper, nickel, tin and, optionally, phosphorus which can be used in, for example, a copper alloy tube for heat exchangers that provides excellent fracture strength and processability for reducing the weight of the tube and for use in high pressure applications with cooling media such as carbon dioxide.

Description

COPPER ALLOY FOR HEAT EXCHANGER TUBE
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. provisional patent application no. 61/224,671, filed on July 10, 2009, the disclosure of which is incorporated herein by reference.
FIELD OF THE INVENTION
[0002] The present invention pertains generally to copper alloys and use of the copper alloys in tubes for heat exchangers. Specifically, the invention pertains to a high strength copper alloy tube that has desirable pressure fracture strength and processability properties. The alloy is suitable to reduce thickness, and therefore, conserves material, for existing air conditioning and refrigeration (ACR) heat exchangers, and is suitable for use in a heat exchanger using a cooling medium such as CO2.
BACKGROUND OF THE INVENTION
[0003] Heat exchangers for air conditioners may be constructed of a U-shaped copper tube bent like a hairpin and fins made from aluminum or aluminum alloy plate.
[0004] Accordingly, a copper tube used for the above type heat exchanger requires suitable conductivity, formability, and brazing properties.
[0005] HCFC (hydro-chlorofluorocarbon)-based fluorocarbons have been widely used for cooling media used for heat exchangers such as air conditioners. However, HCFC has a large ozone depleting potential such that other cooling media have been selected for environmental reasons. "Green refrigerants", for example, CO2, which is a natural cooling medium, have been used for heat exchangers.
[0006] The condensing pressure during operation needs to be increased to use CO2 as a cooling media to maintain the same heat transfer performance as HCFC-based
fluorocarbons. Usually in a heat exchanger, pressures at which these cooling media are used (pressure of a fluid that flows in the heat exchanger tube) become maximized in a condenser (gas cooler in CO2). In this condenser or gas cooler, for example, R22 (a HCFC-based fluorocarbon) has a condensing pressure of about 1.8 MPa. On the other hand, the CO2 cooling medium needs to have a condensing pressure of about 7 to 10 MPa (supercritical state). Therefore, the operating pressures of the new cooling media are increased as compared with the operating pressure of the conventional cooling medium R22.
[0007] Due to the increased pressure and to some loss of strength due to brazing in some tube forming processes, conventional copper materials have to be made thicker thereby increasing the weight of the tube and therefore the material costs associated with the tube.
[0008] What is needed is a heat exchanger tube that has high tensile strength, excellent processability and good thermal conductivity that is suitable for reducing the wall thickness, and therefore, the material costs, for ACR heat exchangers and that is suitable for withstanding high pressure applications with new "green" cooling media such as CO2. BRIEF SUMMARY OF THE INVENTION
[0009] The present invention provides a copper alloy, for use in heat exchanger tubes, having, for example, high tensile strength, excellent processability and good thermal conductivity.
[0010] In one aspect the present invention is a copper alloy composition, which includes the following where the percentages are by weight. The composition comprises copper (Cu), nickel (Ni) and tin (Sn). In one embodiment, the alloy has a composition of 99% copper by weight, 0.5% nickel by weight and 0.5% tin by weight, represented as
CuNi(0.5)Sn(0.5). In another embodiment, nickel is present in the range of 0.2% to 1.0%, tin in the range of 0.2% to 1.0%, and the remainder includes Cu and impurities. The composition optionally comprises phosphorus in the range of 0.01% to 0.07%.
[0011] In another aspect, the present invention provides tubes for ACR applications comprising the copper alloy composition. In yet another aspect of the present invention, the alloy composition is formed into tubes for ACR applications.
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Figure 1. Graphical representation of relative metal value per feet vs. copper price for a presently used alloy, C122, at standard wall thickness compared with an alloy of the present invention CuNi(0.5)Sn(0.5) at reduced wall thickness. [0013] Figure 2. Graphical representation of tensile strength and conductivity for tested alloys as a function of Ni and Sn contents. Sn has a greater influence on both strength and conductivity.
[0014] Figures 3 (a) - (c). Graphical representation of various views of a tube according to an embodiment of the present invention. Figure (a) is a perspective view; Figure (b) is a cross-section of the tube of (a) as viewed along a longitudinal axis; and Figure (c) is a cross-section of the tube of (a) and (b) as viewed along an axis normal to the longitudinal axis.
DETAILED DESCRIPTION OF THE INVENTION
[0015] The present invention provides a high strength alloy which can, for example, reduce the wall thickness and therefore reduce the cost associated with existing ACR tubing and/or provide ACR tubing capable of withstanding the increased pressures associated with cooling media such as CO2. By, high strength it is meant that the alloy and/or tube made from the alloy has at least the levels of tensile strength and/or burst pressure and/or cycle fatigue failure set out herein. The copper alloy can provide savings in material, costs, environmental impact and energy consumption.
[0016] In order to provide a copper alloy for a heat exchanger tube, which can, for example, be used with cooling media such as CO2, the selected alloy should have appropriate material properties and perform well with regard to processability. Important material properties include properties such as, for example, burst pressure/strength, ductility, conductivity, and cycle fatigue. The characteristics of the alloy and/or tube described herein are desirable so they can withstand ACR operating environments.
[0017] High tensile strength and high burst pressure are desirable tube properties because they define what operating pressure a tube can withstand before failing. For example, the higher the burst pressure, the more robust the tube design or for a given burst pressure minimum the present alloy allows for a thinner wall tube. A correlation exists between tensile strength and burst pressure. The alloy and/or tube comprising the alloy has, for example, a material tensile strength of a minimum of 38 ksi (kilo-pound per square inch). The material tensile strength can be measured by methods known in the art such as, for example, the ASTM E-8 testing protocol. In various embodiments, the alloy and/or tube comprising the alloy has a material tensile strength of 39, 40, 41 or 42 ksi. [0018] Ductility of the alloy and/or a tube made from the alloy is a desirable property because, in one embodiment, tubes need to be bent 180 degrees into hairpins without fracturing or wrinkling for use in the coil. Elongation is an indicator of material ductility. The alloy and/or tube comprising the alloy has, for example, an elongation of a minimum of 40 %. The elongation can be measured by methods known in the art such as, for example, the ASTM E-8 testing protocol. In various embodiments, the alloy and/or tube comprising the alloy has a minimum elongation of 41, 42, 43, 44, 45, 46, 47, 48, 49 or 50%.
[0019] Conductivity is a desirable property because it relates to heat transfer capability and therefore, it is a component of the efficiency of an ACR coil. Also, conductivity can be important for tube formation. The alloy and/or tube comprising the alloy has, for example, a conductivity of a minimum of 35% IACS. The conductivity can be measured by methods known in the art such as, for example, the ASTM E- 1004 testing protocol. In various embodiments, the alloy and/or tube comprising the alloy has a minimum conductivity of 36, 37, 38, 39, 40, 45, 50, 55, 60 or 65% (IACS). [0020] The alloy and/or tube has, for example, at least equal resistance to cycle fatigue failure as the current alloy in use, e.g., C122 as shown in Table 2. Further, it is desirable that the alloy and/or tube has, for example, at least equivalent resistance against one or more types of corrosion (e.g., galvanic corrosion and formicary corrosion) as the current alloy in use, e.g., C 122. [0021] In one embodiment, a tube comprising an alloy of the present invention has improved softening resistance (which can be important for brazing) and/or increased fatigue strength relative to a standard copper tube, e.g., a tube made from C122.
[0022] In one embodiment, a tube depicted in Figures 3 (a) - (c) with reduced wall thickness t (relative to a tube comprising a conventional alloy, e.g., C 122) comprising the present alloy has equal or improved burst pressure and/or cycle fatigue relative to tube comprising a conventional alloy, e.g., C 122. For example, the tube wall thickness of a tube of the present invention is minimized relative to a standard tube, e.g. a C122 tube, which reduces total material cost, and both tubes exhibit the same burst pressure. In various embodiments, the tube wall thickness is at least 10, 15 or 20% less than a C 122 tube, where both tubes have the same burst pressure. The burst pressure can be measured by methods known in the art such as, for example, CSA-C22.2 No. 140.3 Clause 6.1 Strength Test - UL 207 Clause 13. The cycle fatigue can be measured by methods known in the art such as, for example, CSA-C22.2 No. 140.3 Clause 6.4 Fatigue Test - UL 207 Clause 14.
[0023] The alloy of the present invention can be fabricated according to methods known in the art. During the alloy fabrication process and/or tube formation process, it can be important to control the temperature. Control of temperature can be important in keeping the elements in solution (preventing precipitation) and controlling grain size. For example, conductivity can increase and formability can suffer if processed incorrectly.
[0024] For example, to maintain both the desired grain size and prevent precipitate formation in the alloy fabrication and/or tube formation processes, heat treatment in the production process will occur over a short time such that the temperature of the alloy and/or tube will be between 400-600 0C with a rapid (e.g., 10 to 500 °C/second) upward and downward ramping of the temperature.
[0025] It is desirable that alloy and/or tube made from the alloy have a desired grain size. In one embodiment, the grain size is from 1 micron to 50 microns, including all integers between 1 micron and 50 microns. In another embodiment, the grain size is from 10 microns to 25 microns. In yet another embodiment, the grain size is from 10 microns to 15 microns. The grain size can be measured by methods known in the art such as, for example, the ASTM E-112 testing protocol.
[0026] The alloy compositions of the present invention include the following where relative amounts of the components in the alloy are given as percentages by weight. The ranges of percentage by weight include all fractions of a percent (including, but not limited to, tenths and hundredths of a percent) within the stated ranges.
[0027] In one embodiment, the composition comprises copper, nickel, tin, and, optionally, phosphorus. The nickel is present in the range of 0.2% to 1.0%, and more specifically in the range of 0.3% to 0.7%; tin in the range of 0.2% to 1.0%, and more specifically in the range of 0.3% to 0.7%; and its remainder includes copper and impurities. In one embodiment, the composition of the alloy is CuNi(0.5)Sn(0.5). In another
embodiment, the composition of the alloy is CuNi(0.5)Sn(0.5)P(0.020).
[0028] The impurities can be, for example, naturally-occurring or occur as a result of processing. Examples of impurities include, for example, zinc, iron and lead. In one embodiment, the impurities can be a maximum of 0.6 %. In various other embodiments, the impurities can be a maximum of 0.5, 0.45, 0.3, 0.2 or 0.1%.
[0029] Phosphorus is present, optionally, in the range of 0.01% to 0.07%, and more specifically in the range of 0.015% to 0.030%, or at 0.02%. Without intending to be bound by any particular theory, it is considered that inclusion of an appropriate amount of phosphorus in the alloy increases the weldability of the alloy by effecting the flow characteristics and oxygen content of the metal, while addition of too much phosphorus leads to poor grain structure and unwanted precipitates.
[0030] In one embodiment the composition consists essentially of Cu, Ni and Sn in the aforementioned ranges. In another embodiment the composition consists essentially of Cu, Ni, Sn and P in the aforementioned ranges. In various embodiments, addition of components other than copper, nickel, tin (and phosphorus in the case of the second embodiment) does not result in an adverse change of greater than 5, 4, 3, 2 or 1% in properties of the alloys of the present invention such as, for example, burst pressure/strength, ductility, conductivity, and cycle fatigue.
[0031] In one embodiment, the composition of the alloy consists of Cu, Ni, Sn and P in the aforementioned ranges. In another embodiment, the composition of the alloy consists of Cu, Ni, Sn and P in the aforementioned ranges.
[0032] The alloy of the present invention may be produced for use by various processes such as cast and roll, extrusion or roll and weld. The processing requirement includes, for example, brazeability. Brazing occurs when the tubes are connected as described below.
[0033] Generally, in the roll and weld process the alloy is cast into bars, roll reduced to thin gauge, heat treated, slit to size, embossed, formed into tube, welded, annealed, and packaged. Generally, in the cast and roll process the alloy is cast into "mother" tube, drawn to size, annealed, machined to produce inner grooves, sized, annealed, and packaged. Generally, in the extrusion process, the alloy is cast into a solid billet, reheated, extrusion pressed, drawn and grooved to final dimensions, annealed and packaged.
[0034] In one aspect the present invention provides tubes comprising a copper-nickel- tin alloy (described herein). In one embodiment, the tubes are from 0.100 inch to 1 inch in outer diameter, including all fractions of an inch between 0.100 inch and 1 inch, and have a wall thickness of from 0.004 inch to 0.040 inch, including all fractions of an inch between 0.004 and 0.040 inch. One advantage of the present invention is that thinner walled tubes can be used in ACR applications. This leads to reduced materials costs (see Figure 1). [0035] In one embodiment, the tubes comprising the copper-nickel-tin alloy
(described herein) are used in ACR applications. It is desirable that the tubes have sufficient conductivity (e.g., so that the tubes can be joined by welding) and formability (e.g., ability to be shaped, e.g., bent, after formation of the tube). Also, it is desirable that the tubes have properties such that the tube can have internal groove enhancement. [0036] One example of a process suited for the alloy of the present invention is a heat exchanger coil having tubes formed with a roll and weld process. In an initial step, the copper alloy of the present invention is cast into slabs followed by hot and cold rolling into flat strips. The cold rolled strips are soft annealed. The soft annealed copper alloy strips are then formed into heat exchanger tubes by means of a continuous roll forming and weld process. Before the roll forming and welding process the tubes may be provided with internal enhancements such as grooves or ribs on the inside wall of the tube as will be evident to those of ordinary skill in the art. The tubes are formed in a continuous roll and weld process and the output may be wound into a large coil. The large coil may then be moved to another area where the coil is cut into smaller sections and formed into the U or hairpin shape. [0037] In order to construct a heat exchanger, the hairpin is threaded into through- holes of aluminum fins and a jig is inserted into the U-shaped copper tube to expand the tube, thereby closely attaching the copper tube and the aluminum fin to each other. Then the open end of the U-shaped copper tube is expanded and a shorter hairpin similarly bent into a U- shape is inserted into the expanded end. The bent copper tube is brazed to the expanded open end using a brazing alloy thereby being connected to an adjacent hairpin to make a heat exchanger.
[0038] The following Example is presented to further describe the present invention and is not intended to be in any way limiting.
EXAMPLE
[0039] Copper alloys with different Ni and Sn contents were produced in pilot scale and mechanical and physical properties tested, see Table 1. [0040] The results was plotted versus the amount of Ni or Sn, see Figure 2. All tested alloys meet a desired minimum conductivity of 35 % IACS. The mechanical properties of a minimum tensile strength of 38 ksi is achieved for all tested alloys. In order to meet desired strength and conductivity the composition should be from 0.2% to 1.0 % by weight for both Ni and Sn.
[0041] Material of a composition of 0.5 % Ni and 0.5 % Sn (CuNi(0.5)Sn(0.5) was produced in full production scale and formed to tubes using the roll and weld method. The tubes were produced both in standard wall thickness (e.g., 0.0118 inches) and with 13 % lower wall thickness. Mechanical properties of the tubes were tested using ASTM and UL (e.g., UL testing protocols and compared with tubes made of "present use" copper alloy C 12200 with standard wall thickness. The results are shown in Table 2. The alloy of the invention CuNi(0.5) Sn(0.5) has higher strength and higher burst pressure in standard wall thickness. For tubes produced with reduced wall thickness the burst pressure for an alloy of the present invention (CuNi(0.5) Sn(0.5)) is still higher compared with C122 at standard wall thickness.
Table 1. Mechanical properties and conductivity for tested alloys at different Ni and Sn contents.
Figure imgf000010_0001
Table 2. Mechanical properties of tubes made of an alloy of the invention (CuNiO.5 SnO.5) compared with current standard alloy C 12200 (Cu-DHP).
Figure imgf000010_0002
[0042] While the invention has been particularly shown and described with reference to specific embodiments, it should be understood by those having skill in the art that various changes in form and detail may be made therein without departing from the spirit and scope of the present invention as disclosed herein.

Claims

WHAT IS CLAIMED IS:
1. A copper alloy for use in a heat exchanger, comprising:
a) nickel at from 0.2% to 1.0% by weight; and
b) tin at from 0.2% to 1.0% by weight;
wherein the remainder of the alloy is copper and impurities.
2. The alloy of claim 1 , wherein nickel is present in the alloy at from 0.3% to 0.7% by weight, and wherein the tin is present in the alloy at from 0.3% to 0.7% by weight.
3. The alloy of claim 1 , wherein the nickel is present in the alloy at 0.5% by weight, and wherein the tin is present in the alloy at 0.5% by weight.
4. The alloy of claim 1 , further comprising phosphorus at from 0.01 % to 0.07% by weight.
5. The alloy of claim 4, wherein the phosphorus is present in the alloy at 0.020% by weight.
6. The alloy of claim 1, wherein the alloy has a grain size of from 1 micron to 50
microns.
7. The alloy of claim 6, wherein the alloy has a grain size of 10 microns to 25 microns.
8. An ACR tube for use in a heat exchanger, wherein the tube comprises a copper alloy comprising:
a) nickel at from 0.2% to 1.0% by weight; and
b) tin at from 0.2% to 1.0% by weight;
wherein the remainder of the alloy is copper and impurities.
9. The ACR tube of claim 8, wherein nickel is present at from 0.3% to 0.7% by weight, and wherein the tin is present at from 0.3% to 0.7% by weight.
10. The ACR tube claim 8, wherein the nickel is present at 0.5% by weight, and wherein the tin is present at 0.5% by weight.
11. The ACR tube of claim 8, wherein the alloy further comprises phosphorus, wherein the phosphorus is present in the alloy at from 0.01 to 0.07% by weight.
12. The ACR tube of claim 11, wherein the phosphorus is present in the alloy at 0.020% by weight.
13. The ACR tube of claim 8, wherein the alloy has a grain size of from 1 micron to 50 microns.
14. The ACR tube claim 13, wherein the alloy has a grain size of 10 microns to 25
microns.
15. The ACR tube of claim 8, wherein the tube has an outer diameter of from 0.100 inch to 1 inch.
16. The ACR tube of claim 8, wherein the tube has a wall thickness of from 0.004 inch to 0.040 inch.
17. The ACR tube of claim 8, wherein a wall thickness of the tube is minimized relative to a wall thickness of a standard C 122 tube to reduce total material cost, and wherein each of the tube and the standard C 122 tube exhibit substantially a same burst pressure.
18. The ACR tube of claim 17, wherein the wall thickness of the tube is at least 10% less than the wall thickness of the standard C 122 tube.
PCT/US2010/041313 2009-07-10 2010-07-08 Copper alloy for heat exchanger tube WO2011005926A1 (en)

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JP2012519714A JP2012532990A (en) 2009-07-10 2010-07-08 Copper alloy for heat exchange tubes
EP10797826.4A EP2451604B1 (en) 2009-07-10 2010-07-08 Copper alloy for heat exchanger tube
CN2010800319144A CN102470471A (en) 2009-07-10 2010-07-08 Copper alloy for heat exchanger tube
CA2767242A CA2767242C (en) 2009-07-10 2010-07-08 Copper alloy for heat exchanger tube
ES10797826.4T ES2649557T3 (en) 2009-07-10 2010-07-08 Copper alloy for heat exchanger tube
MX2012000544A MX340861B (en) 2009-07-10 2010-07-08 Copper alloy for heat exchanger tube.
BR112012000607-0A BR112012000607B1 (en) 2009-07-10 2010-07-08 COPPER ALLOY, AND, AIR CONDITIONING AND COOLING (ACR) PIPE FOR USE IN A HEAT EXCHANGER

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US61/224,671 2009-07-10

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Families Citing this family (50)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
MX356026B (en) 2012-03-02 2018-05-09 Pepsico Inc Method of manufacturing protein beverages and denaturizing loop apparatus and system.
CN103602851B (en) * 2013-11-08 2015-10-28 浙江八达铜业有限公司 Copper alloy and manufacture method thereof
US10143282B2 (en) 2014-02-07 2018-12-04 Yeti Coolers, Llc Insulating device
US9139352B2 (en) 2014-02-07 2015-09-22 Yeti Coolers, Llc Insulating container
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CN109068822A (en) 2016-02-05 2018-12-21 野醍冷却器有限责任公司 Adiabatic apparatus
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CN107022695B (en) * 2017-04-26 2018-04-24 安徽普瑞普勒传热技术有限公司 A kind of production technology of heat exchanger corrosion resisting copper alloy material
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KR20190055614A (en) * 2017-11-15 2019-05-23 엘지전자 주식회사 Plate heat exchanger and Air conditioner having the same
CN109706343A (en) * 2018-12-10 2019-05-03 上海海亮铜业有限公司 A kind of nickel doping C12200 red copper alloy
EP3797891B1 (en) * 2019-09-30 2023-08-02 Nexans Method for the continuous production of thin-walled hollow profiles with small diameters, corrugated in sections and made from non-ferrous metals
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USD929191S1 (en) 2019-11-15 2021-08-31 Yeti Coolers, Llc Insulating device
US11242189B2 (en) 2019-11-15 2022-02-08 Yeti Coolers, Llc Insulating device

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0694390A (en) * 1992-09-10 1994-04-05 Kobe Steel Ltd Copper alloy tube for heat exchanger heat transfer tube and manufacture thereof
US20020011288A1 (en) * 1997-04-08 2002-01-31 Tadao Mizoguchi Copper-based alloy excellent in corrosion resistance, hot workability, and resistance to stress corrosion cracking, and process for producing the copper-based alloy
US6475635B1 (en) * 2000-02-28 2002-11-05 Daido Metal Co Sliding material made of copper alloy, method of producing same, and sliding bearing
US20090014097A1 (en) * 2004-08-10 2009-01-15 Sanbo Shindo Kogyo Kabushiki Kaisha Copper alloy casting having excellent machinability, strength, wear resistance and corrosion resistance and method of casting the same

Family Cites Families (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2804284A (en) * 1953-04-03 1957-08-27 Griscom Russell Co Heat exchanger
US3789915A (en) * 1971-04-23 1974-02-05 Olin Corp Process for improving heat transfer efficiency and improved heat transfer system
JPS5823452B2 (en) * 1976-05-31 1983-05-16 古河電気工業株式会社 Softening resistant copper alloy
JPS52145327A (en) * 1976-05-31 1977-12-03 Furukawa Metals Co Copper alloy with anti softening property
JPS52156720A (en) * 1976-06-23 1977-12-27 Furukawa Metals Co Copper alloy with anti softening property
JPS54114429A (en) * 1978-02-27 1979-09-06 Furukawa Metals Co Cooling medium tube material for freezing * refrigerating and air condisioning means
JPS5727051A (en) * 1980-07-25 1982-02-13 Nippon Telegr & Teleph Corp <Ntt> Copper nickel tin alloy for integrated circuit conductor and its manufacture
JPS596346A (en) * 1982-07-05 1984-01-13 Furukawa Electric Co Ltd:The Copper alloy for lead material of semiconductor instrument
JPS59229450A (en) * 1983-06-10 1984-12-22 Nippon Mining Co Ltd Copper alloy with superior corrosion resistance
JPS60165336A (en) * 1984-02-08 1985-08-28 Furukawa Electric Co Ltd:The Copper alloy for fin of radiator of automobile
JPH01316431A (en) * 1988-06-15 1989-12-21 Furukawa Electric Co Ltd:The Corrosion-resistant copper alloy pipe for piping of refrigerant
JPH046234A (en) * 1990-04-24 1992-01-10 Kobe Steel Ltd Copper alloy tube for heat exchanger and its manufacture
US5322575A (en) * 1991-01-17 1994-06-21 Dowa Mining Co., Ltd. Process for production of copper base alloys and terminals using the same
JPH10226835A (en) * 1997-02-18 1998-08-25 Dowa Mining Co Ltd Copper base alloy for terminal and terminal using the same
JP4257668B2 (en) * 1998-10-15 2009-04-22 Dowaホールディングス株式会社 Copper alloy for lead frame with excellent etching processability and its manufacturing method
JP2000129377A (en) * 1998-10-28 2000-05-09 Sumitomo Metal Mining Co Ltd Copper-base alloy for terminal
JP4660735B2 (en) * 2004-07-01 2011-03-30 Dowaメタルテック株式会社 Method for producing copper-based alloy sheet
CN101693960B (en) * 2005-06-08 2011-09-07 株式会社神户制钢所 Copper alloy, copper alloy plate, and process for producing the same
JP4630323B2 (en) * 2007-10-23 2011-02-09 株式会社コベルコ マテリアル銅管 Copper alloy tube for heat exchangers with excellent fracture strength

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0694390A (en) * 1992-09-10 1994-04-05 Kobe Steel Ltd Copper alloy tube for heat exchanger heat transfer tube and manufacture thereof
US20020011288A1 (en) * 1997-04-08 2002-01-31 Tadao Mizoguchi Copper-based alloy excellent in corrosion resistance, hot workability, and resistance to stress corrosion cracking, and process for producing the copper-based alloy
US6475635B1 (en) * 2000-02-28 2002-11-05 Daido Metal Co Sliding material made of copper alloy, method of producing same, and sliding bearing
US20090014097A1 (en) * 2004-08-10 2009-01-15 Sanbo Shindo Kogyo Kabushiki Kaisha Copper alloy casting having excellent machinability, strength, wear resistance and corrosion resistance and method of casting the same

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP2451604A4 *

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BR112012000607A8 (en) 2018-02-06
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