HEAT TRANSFER COMPOSITIONS, METHODS, AND SYSTEMS
A refrigerant composition of difluoromethane, trifluoroiodomethane, and CO2 addresses the need for a non-flammable, non-toxic, and environmentally friendly R-410A replacement, ensuring efficient heat transfer and lubricant compatibility without system modifications.
Patent Information
- Application Number
- JP2024064642
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-05-04
- Filing Date
- 2024-04-12
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2038-05-04
AI Technical Summary
The need for a non-flammable, non-toxic, and environmentally friendly alternative to R-410A refrigerant that maintains excellent heat transfer properties and lubricant compatibility, while avoiding system modifications, is not adequately addressed by existing technologies.
A refrigerant composition comprising difluoromethane (HFC-32), trifluoroiodomethane (CF3I), and CO2, with specific weight percentages, that exhibit non-flammability, lubricant miscibility, and low global warming potential, replacing R-410A in heat transfer systems.
The refrigerant composition achieves non-flammability, lubricant compatibility, and reduced environmental impact, maintaining efficient heat transfer performance without system redesign, and is miscible with polyol ester lubricants across a wide temperature range.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Application No. 62 / 502,406, filed May 5, 2017, which is incorporated herein by reference in its entirety.
[0002] The present invention relates to compositions, methods, and systems that have utility in heat exchange systems, including heat pump, air conditioning, and refrigeration applications, and in certain aspects to compositions for the replacement of refrigerant R-410A in heating and cooling applications in heat transfer systems of the type in which refrigerant R-410A would be used, as well as the retrofit of heat exchange systems, including systems designed for use with R-410A. [Background technology]
[0003] Mechanical refrigeration systems using refrigerant liquids, and related heat transfer devices such as heat pumps and air conditioners, are well known in the art for industrial, commercial, and residential use. Chlorofluorocarbons (CFCs) were developed in the 1930s as refrigerants for such systems. However, since the 1980s, the impact of CFCs on the stratospheric ozone layer has attracted much attention. In 1987, many governments signed the Montreal Protocol for the Protection of the Global Environment, which established a timetable for the phase-out of CFC products. Hydrogen-containing, more environmentally acceptable materials, namely hydrochlorofluorocarbons (HCFCs), have replaced CFCs.
[0004] One of the most commonly used hydrochlorofluorocarbons was chlorodifluoromethane (HCFC-22). However, subsequent amendments to the Montreal Protocol accelerated the phase-out of CFCs and also scheduled the phase-out of HCFCs, including HCFC-22.
[0005] In response to the demand for non-flammable, non-toxic alternatives to CFCs and HCFCs, industry has developed several hydrofluorocarbons (HFCs) with zero ozone depletion potential. Because it does not contribute to ozone depletion, R-410A (a 50:50 w / w blend of difluoromethane (HFC-32) and pentafluoroethane (HFC-125)) has been adopted as an industrial replacement for HCFC-22 in air conditioning and refrigeration applications. However, R-410A is not a drop-in replacement for R-22. Therefore, replacing R-22 with R-410A required redesign of key components in the heat exchange system, including replacing and redesigning the compressor to accommodate the higher operating pressure and volume of R-410A compared to R-22.
[0006] While R-410A has a more acceptable ozone depletion potential (ODP) than R-22, continued use of R-410A is problematic due to its high global warming potential of 2088. Therefore, there is a need in the art to replace R-410A with a more environmentally acceptable alternative.
[0007] It is understood in the art that it is highly desirable for any replacement heat transfer fluid to possess a mosaic of properties including, among others, excellent heat transfer properties, particularly heat transfer properties well suited to the needs of a particular application, chemical stability, low or no toxicity, non-flammability, lubricant compatibility, and / or lubricant miscibility. Furthermore, any replacement for R-410A would ideally be a good match for the operating conditions of R-410A to avoid system modifications or redesign. A heat transfer fluid that meets all of these requirements, many of which are unpredictable, is highly desirable. Fluid identification is a major challenge.
[0008] With regard to efficiency and use, it is important to note that loss of thermodynamic performance or energy efficiency of a refrigerant can result in increased use of fossil fuels as a result of increased demand for electrical energy, and therefore the use of such refrigerants will have secondary negative impacts on the environment.
[0009] Flammability is considered an important, and in some cases, critical, property for many heat transfer applications, and therefore it is often beneficial to use compounds that are non-flammable in the compositions (and preferably the refrigerant) to achieve such. As used herein, the term "non-flammable" refers to compounds or compositions that are determined to be non-flammable according to ASTM standard E-681-2001 as described in ASHRAE Standard 34-2013 and under the conditions set forth in Appendix B1 of ASHRAE Standard 34-2013.
[0010] It is important for system efficiency and proper and reliable operation of the compressor that the lubricant circulating through a vapor compression heat transfer system be returned to the compressor to perform its intended lubricating function. Otherwise, the lubricant may accumulate and remain in the coils and piping of the system, including in the heat transfer components. Furthermore, if the lubricant accumulates on the interior surfaces of the evaporator, the heat exchange efficiency of the evaporator decreases, thereby reducing the efficiency of the system.
[0011] R410A is currently used with polyol ester (POE) lubricants in air conditioning applications because R410A is miscible with POE at temperatures encountered during use in such systems. However, R410A is immiscible with POE at temperatures typically encountered during operation of low-temperature refrigeration and heat pump systems. Therefore, POE and R410A cannot be used in low-temperature refrigeration or heat pump systems unless measures are taken to mitigate this immiscibility.
[0012] It would therefore be desirable to have available compositions that could be used as a replacement for R410A in heat pump and low temperature refrigeration systems, but that do not suffer from the disadvantage of incompatibility with POE at the temperatures encountered during operation of these systems. Summary of the Invention
[0013] The present invention provides refrigerant compositions that can be used as replacements for R-410A and that exhibit a mosaic of desirable properties of excellent heat transfer properties, chemical stability, low or no toxicity, non-flammability, lubricant compatibility, and / or lubricant miscibility, along with acceptable global warming potential (GWP) and near-zero ODP.
[0014] The present invention also provides about 38% by weight of difluoromethane (HFC-32); 57% to 59% by weight of trifluoroiodomethane (CF3I); and 2% to 5% by weight of CO2. Refrigerants according to this paragraph may be referred to herein for convenience as Refrigerant 1.
[0015] The present invention also provides about 38% by weight of difluoromethane (HFC-32); 57% to 59% by weight of trifluoroiodomethane (CF3I); and 2% to 5% by weight of CO2, wherein the refrigerant is non-flammable. Refrigerants according to this paragraph may be referred to herein as Refrigerant 2 for convenience.
[0016] The present invention also provides about 38% by weight of difluoromethane (HFC-32); 57% to 59% by weight of trifluoroiodomethane (CF3I); and 2% to 5% by weight of CO2. The refrigerant according to this paragraph may be referred to as Refrigerant 3 for convenience in this specification.
[0017] The present invention also provides about 38% by weight of difluoromethane (HFC-32); 57% to 59% by weight of trifluoroiodomethane (CF3I); and 2% to 5% by weight of CO2, and the refrigerant is non-flammable. The refrigerant according to this paragraph may be referred to as Refrigerant 4 for convenience in this specification.
[0018] The present invention also provides about 38% by weight of difluoromethane (HFC-32); 58% + / - 0.5% to 59% + / - 0.5% by weight of trifluoroiodomethane (CF3I); and 2% to 3.5% by weight of CO2. Refrigerants according to this paragraph may be referred to herein for convenience as Refrigerant 5.
[0019] The present invention also provides about 38% by weight of difluoromethane (HFC-32); 58% + / - 0.5% to 59% + / - 0.5% by weight of trifluoroiodomethane (CF3I); and 2% to 3.5% by weight of CO2. The refrigerant according to this paragraph may be referred to as Refrigerant 6 for convenience in this specification.
[0020] The present invention also provides 38% by weight + / - 0.5% by weight of difluoromethane (HFC-32); 59% by weight + / - 0.5% by weight of trifluoroiodomethane (CF3I); 3% by weight + / - 0.5% by weight CO2. Refrigerants according to this paragraph may be referred to herein for convenience as Refrigerant 7.
[0021] The present invention also provides 38% by weight + / - 0.5% by weight of difluoromethane (HFC-32); 59% by weight + / - 0.5% by weight of trifluoroiodomethane (CF3I); 3% by weight + / - 0.5% by weight of CO2. The refrigerant according to this paragraph may be referred to herein for convenience as Refrigerant 8.
[0022] The present invention provides about 34% to about 38% by weight of difluoromethane (HFC-32); and about 62% to about 66% by weight of trifluoroiodomethane (CF3I). Refrigerants according to this paragraph may be referred to herein for convenience as Refrigerant 9.
[0023] The present invention provides about 34% to about 38% by weight of difluoromethane (HFC-32); and about 62% to about 66% by weight of trifluoroiodomethane (CF3I), wherein the refrigerant is non-flammable. Refrigerants according to this paragraph may be referred to herein for convenience as Refrigerant 10.
[0024] Preferably, the refrigerant is about 34% to about 38% by weight of difluoromethane (HFC-32); and about 62% to about 66% by weight of trifluoroiodomethane (CF3I). The refrigerant according to this paragraph may be referred to herein for convenience as Refrigerant 11.
[0025] According to the present invention, about 36% by weight of difluoromethane (HFC-32); and about 64% by weight of trifluoroiodomethane (CF3I). A refrigerant according to this paragraph may be referred to herein for convenience as Refrigerant 12.
[0026] Preferably, the refrigerant is about 36% by weight of difluoromethane (HFC-32); and about 64% by weight of trifluoroiodomethane (CF3I). The refrigerant according to this paragraph may be referred to herein for convenience as Refrigerant 13.
[0027] The term "consisting of" will be understood to mean that the refrigerant contains the three components HFC-32 and CF3I in the indicated amounts, and excludes the presence of other components in amounts greater than trace or contaminant concentrations.
[0028] As used herein in reference to weight percent, the term "about" in relation to the amount of a particular component means that the amount of the particular component can vary in an amount of + / - 1% by weight. In preferred embodiments, the refrigerants and compositions of the present invention contain the amount of a particular compound or component specified as being "about," which amount is + / - 0.5%, or + / - 0.3% by weight of the particular amount. [Brief explanation of the drawings]
[0029] [Figure 1] 1 is a miscibility graph showing the results of Example 7. [Figure 2] 1 is a miscibility graph showing the results of Example 7. [Figure 3] 1 is a miscibility graph showing the results of Example 10. [Figure 4] 1 is a miscibility graph showing the results of Example 13. DETAILED DESCRIPTION OF THE INVENTION
[0030] Applicants have discovered that the refrigerants of the present invention, including Refrigerants 1-13 described herein, can provide highly advantageous properties, particularly non-flammability, particularly when used as a replacement for R-410A.
[0031] A particular advantage of the refrigerants of the present invention is that they are nonflammable, as determined according to the ASTM E681-2009 test procedure, as required by ASHRAE Standard 34-2013 and described in Appendix B1 of ASHRAE Standard 34-2013. Flammability is defined as the ability of a composition to ignite and / or spread flames. Those skilled in the art will appreciate that refrigerant flammability is an important characteristic for many commercially important heat transfer applications. Therefore, it is desirable in the art to provide refrigerant compositions that can be used as replacements for R-410A, which have excellent heat transfer properties, chemical stability, low or no toxicity, lubricant compatibility, and / or lubricant miscibility, and which maintain nonflammability during use. This requirement is achieved by the refrigerants of the present invention.
[0032] Each of the refrigerants of the present invention, including Refrigerants 1-13, can be incorporated into a heat transfer composition. Accordingly, the present invention further relates to heat transfer compositions comprising a refrigerant that is a refrigerant of the present invention, including each of Refrigerants 1-13.
[0033] Preferably, the heat transfer composition comprises any of the refrigerants of the present invention, including Refrigerants 1-13, in an amount greater than about 40% by weight of the heat transfer composition, or greater than about 50% by weight of the heat transfer composition, or greater than about 70% by weight of the heat transfer composition, or greater than about 80% by weight of the heat transfer composition, or greater than about 90% by weight of the heat transfer composition, or greater than about 95% by weight of the heat transfer composition, or greater than about 97.5% by weight of the heat transfer composition. The heat transfer composition may consist essentially of the refrigerant.
[0034] The heat transfer compositions of the present invention may contain other ingredients to enhance or provide certain functional properties to the composition. Such other ingredients or additives may include one or more of lubricants, dyes, solubilizers, compatibilizers, stabilizers, antioxidants, corrosion inhibitors, extreme pressure additives, and antiwear agents.
[0035] stabilizers The heat transfer compositions of the present invention comprise any of the refrigerants described herein, including, inter alia, Refrigerants 1-13, and a stabilizer. Examples of suitable stabilizers include diene compounds, and / or phenolic compounds, and / or phosphorus compounds, and / or nitrogen compounds, and / or epoxides selected from the group consisting of aromatic epoxides, alkyl epoxides, and alkenyl epoxides.
[0036] The diene-based compounds include C3-C15 dienes and compounds formed by the reaction of any two or more C3-C4 dienes. Preferably, the diene-based compounds are selected from the group consisting of allyl ether, propadiene, butadiene, isoprene, and terpenes. The diene-based compounds are preferably terpenes, including, but not limited to, terbene, retinal, geranoyl, terpinene, delta-3 carene, terpinolene, phellandrene, fencene, myrcene, farnesene, pinene, nerol, citral, camphor, menthol, limonene, nerolidol, phytol, carnosic acid, and vitamin A1. Preferably, the stabilizer is farnesene.
[0037] Preferred terpene stabilizers are disclosed in US Provisional Patent Application No. 60 / 638,003, filed December 12, 2004, which is incorporated herein by reference.
[0038] Preferably, the stabilizer is provided in the heat transfer composition in an amount greater than 0, preferably from 0.0001% to about 5% by weight, preferably from 0.01% to about 2% by weight, more preferably from 0.1 to about 1% by weight, In each case, the weight percentages refer to the weight of the heat transfer composition.
[0039] Preferably, the stabilizer is provided in the heat transfer composition in an amount greater than 0, preferably from 0.0001% to about 5% by weight, preferably from 0.01% to about 2% by weight, more preferably from 0.1 to about 1% by weight, In each case, the weight percentages refer to the weight of the heat transfer composition.
[0040] The diene compound may be provided in the heat transfer composition in an amount of from about 0.001% to about 5% by weight, preferably from about 0.01% to about 2% by weight, and more preferably from about 0.1 to 1% by weight, in each case by weight referring to the weight of the heat transfer composition.
[0041] The diene compound is preferably provided in combination with a phosphorus compound.
[0042] The phosphorus compound may be a phosphite compound or a phosphate compound. For the purposes of the present invention, a phosphite compound is a diaryl, dialkyl, triaryl, and / or trialkyl phosphite, particularly a hindered phosphite, tris-(di-tert-butylphenyl) phosphite, The compound may be one or more compounds selected from diphenyl phosphite, di-n-octyl phosphite, iso-decyl diphenyl phosphite, and diphenyl phosphite, in particular diphenyl phosphite.
[0043] The phosphate compound may be a triaryl phosphate, trialkyl phosphate, alkyl monoacid phosphate, aryl diacid phosphate, amine phosphate, preferably triaryl phosphate and / or trialkyl phosphate, especially tri-n-butyl phosphate.
[0044] The phosphorus compound may be provided in the heat transfer composition in an amount of from about 0.001% to about 5% by weight, preferably from about 0.01% to about 2% by weight, and more preferably from about 0.1 to 1% by weight. In each case, "by weight" refers to the weight of the heat transfer composition.
[0045] Thus, the heat transfer composition of the present invention comprises any refrigerant of the present invention, including Refrigerants 1-13, and a stabilizer composition comprising a terpene and a phosphorus compound selected from a phosphate or phosphite, particularly a stabilizer composition comprising a terpene and a phosphite. For convenience, the stabilizer comprising a terpene and a phosphorus compound selected from a phosphate or phosphite may be referred to herein as Stabilizer 1. For convenience, the stabilizer comprising a terpene and a phosphite may be referred to herein as Stabilizer 1A.
[0046] The heat transfer composition of the present invention may preferably comprise Refrigerant 1 and Stabilizer 1 or Stabilizer 1A.
[0047] The heat transfer composition of the present invention may preferably comprise Refrigerant 2 and Stabilizer 1 or Stabilizer 1A.
[0048] The heat transfer composition of the present invention may preferably comprise Refrigerant 3 and Stabilizer 1 or Stabilizer 1A.
[0049] The heat transfer composition of the present invention may preferably comprise Refrigerant 4 and Stabilizer 1 or Stabilizer 1A.
[0050] The heat transfer composition of the present invention may preferably comprise Refrigerant 5 and Stabilizer 1 or Stabilizer 1A.
[0051] The heat transfer composition of the present invention may preferably comprise Refrigerant 6 and Stabilizer 1 or Stabilizer 1A.
[0052] The heat transfer composition of the present invention may preferably comprise Refrigerant 7 and Stabilizer 1 or Stabilizer 1A.
[0053] The heat transfer composition of the present invention may preferably comprise Refrigerant 8 and Stabilizer 1 or Stabilizer 1A.
[0054] The heat transfer composition of the present invention may preferably comprise Refrigerant 9 and Stabilizer 1 or Stabilizer 1A.
[0055] The heat transfer composition of the present invention may preferably comprise Refrigerant 10 and Stabilizer 1 or Stabilizer 1A.
[0056] The heat transfer composition of the present invention may preferably comprise Refrigerant 11 and Stabilizer 1 or Stabilizer 1A.
[0057] The heat transfer composition of the present invention may preferably comprise Refrigerant 12 and Stabilizer 1 or Stabilizer 1A.
[0058] The heat transfer composition of the present invention may preferably comprise Refrigerant 13 and Stabilizer 1 or Stabilizer 1A.
[0059] Preferably, the heat transfer composition comprises a refrigerant as described herein, including Refrigerants 1-13, and a stabilizer composition comprising farnesene and a phosphorus compound selected from diaryl phosphite, dialkyl phosphite, triaryl phosphate, or trialkyl phosphate, more preferably diphenyl phosphite and / or tri-n-butyl phosphate. More preferably, the heat transfer composition comprises a refrigerant as described herein and a stabilizer composition comprising farnesene and one or more diaryl phosphite or dialkyl phosphite, more preferably diphenyl phosphite.
[0060] Alternatively, or in addition, the stabilizer is a nitrogen compound. For purposes of the present invention, the nitrogen compound may be one or more compounds selected from dinitrobenzene, nitrobenzene, nitromethane, nitrosobenzene, and TEMPO [(2,2,6,6-tetramethylpiperidin-1-yl)oxyl]. Preferably, the stabilizer is dinitrobenzene.
[0061] Alternatively, or in addition, the nitrogen compound is an amine-based compound. For purposes of the present invention, the amine-based compound may be one or more secondary or tertiary amines selected from diphenylamine, p-phenylenediamine, triethylamine, tributylamine, diisopropylamine, triisopropylamine, and triisobutylamine. For purposes of the present invention, the amine-based compound may be an amine antioxidant, such as a substituted piperidine compound, i.e., an alkyl-substituted piperidyl, piperidinyl, piperazinone, or alkyloxypiperidinyl derivative, in particular, 2,2,6,6-tetramethyl-4-piperidone, 2,2,6,6-tetramethyl-4-piperidinol; bis-(1,2,2,6,6-pentamethylpiperidyl)sebacate; di(2,2,6,6-tetramethyl-4-piperidyl)sebacate; poly(N-hydroxyethyl-2,2,6, 6-tetramethyl-4-hydroxy-piperidyl succinate; alkylated paraphenylenediamines, such as N-phenyl-N'-(1,3-dimethyl-butyl)-p-phenylenediamine or N,N'-di-sec-butyl-p-phenylenediamine, and hydroxylamines, such as tallowamine, methylbistallowamine, and bistallowamine, or phenol-alpha-naphthylamine, or Tinuvin® 765 (Ciba), BLS® 1944 (Mayzo The nitrogen compound may be one or more amine antioxidants selected from phenyl-alpha-naphthylamine (PANA), alkyl-phenyl-alpha-naphthylamine (APANA), or bis(nonylphenyl)amine. Preferably, the nitrogen compound is selected from phenyl-alpha-naphthylamine (PANA), alkyl-phenyl-alpha-naphthylamine (APANA), and bis(nonylphenyl)amine.
[0062] The nitrogen compound may be provided in the heat transfer composition in an amount of from about 0.001% to about 5% by weight, preferably from about 0.01% to about 2% by weight, and more preferably from about 0.1 to 1% by weight. In the cases where by weight refers to the weight of the heat transfer composition.
[0063] Thus, the heat transfer composition of the present invention may comprise any refrigerant according to the present invention, including Refrigerants 1-13, and a stabilizer composition, wherein the stabilizer composition comprises a nitrogen compound selected from dinitrobenzene, nitrobenzene, nitromethane, nitrosobenzene, and TEMPO [(2,2,6,6-tetramethylpiperidin-1-yl)oxyl], a secondary or tertiary amine selected from diphenylamine, p-phenylenediamine, triethylamine, tributylamine, diisopropylamine, triisopropylamine, and triisobutylamine; an amine antioxidant, for example, an alkyl-substituted piperidyl selected from 2,2,6,6-tetramethyl-4-piperidone, 2,2,6,6-tetramethyl-4-piperidinol, and the like. di(2,2,6,6-tetramethyl-4-piperidyl) sebacate, poly(N-hydroxyethyl-2,2,6,6-tetramethyl-4-hydroxy-piperidyl succinate); alkylated paraphenylenediamines, such as N-phenyl-N'-(1,3-dimethyl-butyl)-p-phenylenediamine or N,N'-di-sec-butyl-p-phenylenediamine, and hydroxylamines, such as tallowamine, methylbistallowamine, and bistallowamine, or phenol-alpha-naphthylamine, or Tinuvin® 765 (Ciba), BLS® 1944 (Mayzo). Inc), and BLS® 1770 (Mayzo Inc); alkyldiphenylamines such as bis(nonylphenylamine), dialkylamines such as (N-(1-methylethyl)-2-propylamine); phenyl-alpha-naphthylamine (PANA), alkyl-phenyl-alpha-naphthylamine (APANA), or bis(nonylphenyl)amine. Preferably, the nitrogen compound is selected from phenyl-alpha-naphthylamine (PANA), alkyl-phenyl-alpha-naphthylamine (APANA), and bis(nonylphenyl)amine.
[0064] Alternatively, or in addition, the stabilizer may comprise a phenol, preferably a hindered phenol. For purposes of the present invention, phenol refers to 4,4'-methylenebis(2,6-di-tert-butylphenol); 4,4'-bis(2,6-di-tert-butylphenol); 2,2- or 4,4-biphenyldiol, including 4,4'-bis(2-methyl-6-tert-butylphenol); derivatives of 2,2- or 4,4-biphenyldiol; 2,2'-methylenebis(4-ethyl-6-tert-butylphenol); 2,2'-methylenebis (4-methyl-6-tert-butylphenol); 4,4-butylidenebis(3-methyl-6-tert-butylphenol); 4,4-isopropylidenebis(2,6-di-tert-butylphenol); 2,2'-methylenebis(4-methyl-6-nonylphenol); 2,2'-isobutylidenebis(4,6-dimethylphenol); 2,2'-methylenebis(4-methyl-6-cyclohexylphenol); 2,6-di-tert-butylphenol The bis(3-methyl-4-hydroxy-5-tert-butylbenzyl)sulfide may be one or more compounds selected from bis(3,5-di-tert-butyl-4-hydroxybenzyl)sulfide, tocopherol, hydroquinone, 2,2',6,6'-tetra-tert-butyl-4,4'-methylenediphenol, and t-butylhydroquinone. Preferably, the phenolic compound is BHT.
[0065] The phenolic compound may be provided in the heat transfer composition in an amount of from about 0.001% to about 5% by weight, preferably from about 0.01% to about 2% by weight, and more preferably from about 0.1 to 1% by weight, in each case by weight referring to the weight of the heat transfer composition.
[0066] BHT may be provided in the heat transfer composition in an amount of about 0.001% to about 5% by weight, preferably about 0.01% to about 2% by weight, and more preferably about 0.1 to 1% by weight. In each case, "by weight" refers to the weight of the heat transfer composition. BHT in an amount of 0.0001% to about 5% by weight based on the weight of the heat transfer composition is sometimes conveniently referred to as stabilizer 2.
[0067] The heat transfer composition of the present invention may preferably comprise a refrigerant 1 and a stabilizer 2.
[0068] The heat transfer composition of the present invention may preferably comprise a refrigerant 2 and a stabilizer 2.
[0069] The heat transfer composition of the present invention may preferably comprise a refrigerant 3 and a stabilizer 2 .
[0070] The heat transfer composition of the present invention may preferably comprise a refrigerant 4 and a stabilizer 2 .
[0071] The heat transfer composition of the present invention may preferably comprise a refrigerant 5 and a stabilizer 2 .
[0072] The heat transfer composition of the present invention may preferably comprise a refrigerant 6 and a stabilizer 2 .
[0073] The heat transfer composition of the present invention may preferably comprise a refrigerant 7 and a stabilizer 2 .
[0074] The heat transfer composition of the present invention may preferably comprise a refrigerant 8 and a stabilizer 2 .
[0075] The heat transfer composition of the present invention may preferably comprise a refrigerant 9 and a stabilizer 2 .
[0076] The heat transfer composition of the present invention may preferably comprise a refrigerant 10 and a stabilizer 2 .
[0077] The heat transfer composition of the present invention may preferably comprise a refrigerant 11 and a stabilizer 2 .
[0078] The heat transfer composition of the present invention may preferably comprise a refrigerant 12 and a stabilizer 2 .
[0079] The heat transfer composition of the present invention may preferably comprise a refrigerant 13 and a stabilizer 2 .
[0080] Each of the heat transfer compositions of the present invention defined above can further comprise a lubricant. Generally, the heat transfer composition comprises the lubricant in an amount of about 10 to about 60% by weight of the heat transfer composition, preferably about 20 to about 50% by weight of the heat transfer composition, alternatively about 20 to about 40% by weight of the heat transfer composition, alternatively about 20 to about 30% by weight of the heat transfer composition, alternatively about 30 to about 50% by weight of the heat transfer composition, alternatively about 30 to about 40% by weight of the heat transfer composition, alternatively about 1 to about 10% by weight of the heat transfer composition, alternatively about 1 to about 8% by weight of the heat transfer composition, alternatively about 1 to about 5% by weight of the heat transfer composition.
[0081] Commonly used refrigerant lubricants such as polyol esters (POE), polyalkylene glycols (PAG), silicone oils, mineral oils, alkyl benzenes (AB), polyvinyl ethers (PVE), and poly(alpha-olefins) (PAO) may be used with any of the refrigerant compositions of the present invention, including Refrigerants 1-13.
[0082] However, it is particularly preferred that the lubricant be a polyol ester. Recently, it has been discovered that the compositions of the present invention are miscible with POE lubricants over a wide range of temperatures, for example, from about -50°C to +70°C. This allows the compositions of the present invention to be used in a wider range of heat transfer applications than R410A. For example, the compositions of the present invention can be used in refrigeration, air conditioning, and heat pump applications.
[0083] The term "about" with respect to temperature means that the specified temperature can vary by an amount of + / - 5°C, preferably by an amount of + / - 2°C, more preferably by an amount of + / - 1°C, and most preferably by an amount of + / - 0.5°C.
[0084] Accordingly, the present invention provides a heat transfer composition comprising a lubricant and a refrigerant according to any of the refrigerants of the present invention, including Refrigerants 1-13, wherein when 5 wt%, 20 wt%, and / or 50 wt% of the lubricant, based on the total amount of refrigerant and lubricant, is added to the refrigerant, the mixture has one liquid phase at at least one of temperatures in the range of about −25 to about −50° C. and / or about +50 to about +70° C.
[0085] Accordingly, the present invention provides a heat transfer composition comprising a POE lubricant and a refrigerant according to any of the refrigerants of the present invention, including Refrigerants 1-13, wherein when 5 wt%, 20 wt%, and / or 50 wt% of the lubricant, based on the total amount of refrigerant and lubricant, is added to the refrigerant, the mixture has one liquid phase at at least one of temperatures in the range of about −25 to about −50° C. and / or about +50 to about +70° C.
[0086] The lubricant may also include, consist essentially of, or consist of a mineral oil lubricant. Commercially available mineral oils include Witco LP 250® from Witco, Witco Suniso 3GS, and Calumet R015 from Calumet.
[0087] The lubricant may also include, consist essentially of, or consist of an alkylbenzene lubricant. Commercially available alkylbenzene lubricants include Shrieve Chemical's Zerol 150® and Zerol 300®.
[0088] The lubricant may also include, consist essentially of, or consist of an ester lubricant. Commercially available esters include neopentyl glycol dipelargonate, available as Emery 2917® and Hatcol 2370®. Other useful esters include phosphate esters, dibasic acid esters, and fluoroesters.
[0089] For purposes of the present invention, a heat transfer composition may comprise a refrigerant according to the present invention, including any of Refrigerants 1-13; a stabilizer composition disclosed herein, including any of Stabilizer 1, Stabilizer 1A, or Stabilizer 2; and a lubricant selected from polyol esters (POE), polyalkylene glycols (PAG), mineral oils, alkyl benzenes (AB), and polyvinyl ethers (PVE), more preferably from polyol esters (POE), mineral oils, alkyl benzenes (AB), and polyvinyl ethers (PVE), especially from polyol esters (POE), mineral oils, and alkyl benzenes (AB), and most preferably from polyol esters (POE).
[0090] In a preferred embodiment, the lubricant has a viscosity (cSt) at 40°C of about 25 to about 50, more preferably about 30 to about 50, as measured by ASTM D445 in accordance with refrigeration industry practice, and preferably also has a viscosity (cSt) at 100°C of about 0 to about 1, as measured by ASTM D445 in accordance with accepted refrigeration industry standards. 5, more preferably from about 5 to about 10. A commercially available product consistent with the preferred POE described in this paragraph is the commercially available lubricant sold by Lubrizol under the trade name Emkarate RL 3203MAF. A lubricant consistent with the description in this paragraph is referred to herein as Lubricant 1.
[0091] When the compositions of the present invention are provided for use in mobile air conditioning, the lubricant is preferably a polyalkylene glycol lubricant. Alternatively, when the compositions of the present invention are provided for refrigeration, stationary air conditioning, or heat pump applications, the lubricant is preferably a polyol ester, alkyl benzene, or mineral oil, more preferably a polyol ester. For systems and methods in which the heat transfer compositions of the present invention, such as heat transfer compositions containing any of the refrigerants of the present invention, such as any of Refrigerants 1-13, are provided for or used with a lubricant in refrigeration, stationary air conditioning, or heat pump applications, the lubricant is preferably a polyol ester, more preferably Lubricant 1.
[0092] A preferred heat transfer composition comprises a refrigerant 2 and a lubricant 1.
[0093] A preferred heat transfer composition comprises a refrigerant 3 and a lubricant 1.
[0094] A preferred heat transfer composition comprises a refrigerant 4 and a lubricant 1.
[0095] A preferred heat transfer composition comprises a refrigerant 5 and a lubricant 1.
[0096] A preferred heat transfer composition comprises a refrigerant 6 and a lubricant 1.
[0097] A preferred heat transfer composition comprises a refrigerant 7 and a lubricant 1 .
[0098] A preferred heat transfer composition comprises a refrigerant 8 and a lubricant 1 .
[0099] A preferred heat transfer composition comprises a refrigerant 9 and a lubricant 1.
[0100] A preferred heat transfer composition comprises a refrigerant 10 and a lubricant 1.
[0101] A preferred heat transfer composition comprises a refrigerant 11 and a lubricant 1.
[0102] A preferred heat transfer composition includes a refrigerant 12 and a lubricant 1.
[0103] A preferred heat transfer composition comprises a refrigerant 13 and a lubricant 1.
[0104] The heat transfer compositions of the present invention can consist essentially of or consist of any refrigerant of the present invention, including any of Refrigerants 1-13, any stabilizer composition described herein, including Stabilizers 1, 1A, and 2, and any lubricant described herein, including Lubricant 1.
[0105] Other additives not mentioned herein may also be included in view of the teachings contained herein without departing from the novel and essential features of the present invention.
[0106] Combinations of surfactants and solubilizers may also be added to the compositions of the present invention to aid oil solubility, as disclosed in US Pat. No. 6,516,837, which is incorporated by reference.
[0107] Applicants believe that the compositions of the present invention possess difficult to achieve properties, including, among others, low GWP. It has been found that it is possible to achieve a combination of: Accordingly, the compositions of the present invention have a global warming potential (GWP) of about 500 or less, preferably about 300 or less, and in a particularly preferred aspect of the present invention, the compositions of the present invention have a global warming potential (GWP) of about 300 or less.
[0108] Additionally, the compositions of the present invention have a low ozone depletion potential (ODP). Thus, the compositions of the present invention have an Ozone Depletion Potential (ODP) of about 0.05 or less, preferably about 0.02 or less, and more preferably about zero.
[0109] Additionally, the compositions of the present invention exhibit acceptable toxicity and preferably have an occupational exposure limit (OEL) of greater than about 400.
[0110] The compositions disclosed herein are provided for use in heat transfer applications, including air conditioning, refrigeration, and heat pumps.
[0111] Any reference to a heat transfer composition of the present invention refers to each and any heat transfer composition described herein, including all heat transfer compositions comprising any refrigerant of the present invention, such as any of Refrigerants 1-13. Thus, with respect to the discussion of uses or applications of the compositions of the present invention below, the heat transfer composition may comprise or consist essentially of a refrigerant of the present invention, including any of Refrigerants 1-13, in combination with any lubricant described herein, including POE and Lubricant 1, and / or in combination with any stabilizer described herein, including any of Stabilizers 1, 1A, or 2.
[0112] For purposes of the present invention, each and every heat transfer composition described herein may be used in a heat transfer system, such as an air conditioning system, a refrigeration system, or a heat pump. A heat transfer system according to the present invention may include a compressor, an evaporator, a condenser, and an expansion device connected together.
[0113] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 1 in an air conditioning system.
[0114] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 2 in an air conditioning system.
[0115] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 3 in an air conditioning system.
[0116] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 4 in an air conditioning system.
[0117] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 5 in an air conditioning system.
[0118] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 6 in an air conditioning system.
[0119] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 7 in an air conditioning system.
[0120] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 8 in an air conditioning system. nothing.
[0121] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 9 in an air conditioning system.
[0122] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 10 in an air conditioning system.
[0123] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 11 in an air conditioning system.
[0124] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 12 in an air conditioning system.
[0125] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 13 in an air conditioning system.
[0126] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 1 in a refrigeration system.
[0127] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 2 in a refrigeration system.
[0128] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 3 in a refrigeration system.
[0129] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 4 in a refrigeration system.
[0130] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 5 in a refrigeration system.
[0131] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 6 in a refrigeration system.
[0132] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 7 in a refrigeration system.
[0133] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 8 in a refrigeration system.
[0134] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 9 in a refrigeration system.
[0135] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 10 in a refrigeration system.
[0136] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 11 in a refrigeration system.
[0137] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 12 in a refrigeration system.
[0138] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 13 in a refrigeration system.
[0139] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 1 in a heat pump system.
[0140] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 2 in a heat pump system.
[0141] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 3 in a heat pump system.
[0142] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 4 in a heat pump system.
[0143] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 5 in a heat pump system.
[0144] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 6 in a heat pump system.
[0145] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 7 in a heat pump system.
[0146] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 8 in a heat pump system.
[0147] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 9 in a heat pump system.
[0148] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 10 in a heat pump system.
[0149] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 11 in a heat pump system.
[0150] Thus, the present invention includes the use of a heat transfer composition comprising a refrigerant 12 in a heat pump system.
[0151] Thus, the present invention includes the use of a heat transfer composition comprising refrigerant 13 in a heat pump system.
[0152] Examples of commonly used compressors, for purposes of this invention, include reciprocating, rotary (including rolling piston and rotary valve), scroll, screw, and centrifugal compressors. Accordingly, the present invention provides a heat transfer composition described herein, such as any heat transfer composition comprising any of the refrigerants 1-13, for use in a heat transfer system comprising a reciprocating, rotary (including rolling piston and rotary vane), scroll, screw, or centrifugal compressor. Each of the compositions and any of the compositions are provided.
[0153] Examples of commonly used expansion devices, for purposes of this invention, include capillary tubes, fixed orifices, thermal expansion valves, and electronic expansion valves. Accordingly, the present invention provides each and any of the heat transfer compositions described herein, such as any heat transfer composition comprising any of refrigerants 1-13, for use in a heat transfer system comprising a capillary tube, fixed orifice, thermal expansion valve, or electronic expansion valve.
[0154] For purposes of this invention, the evaporator and condenser together form a heat exchanger preferably selected from a finned-tube heat exchanger, a microchannel heat exchanger, a shell-and-tube, a plate heat exchanger, and a tube-in-tube heat exchanger. Accordingly, the present invention provides each and any of the heat transfer compositions described herein, including any heat transfer composition comprising any of refrigerants 1-13, for use in a heat transfer system in which the evaporator and condenser together form a finned-tube heat exchanger, a microchannel heat exchanger, a shell-and-tube, a plate heat exchanger, or a tube-in-tube heat exchanger.
[0155] The heat transfer compositions of the present invention can be used in heating and cooling applications.
[0156] In a particular aspect of the invention, a heat transfer composition, such as any heat transfer composition comprising any of Refrigerants 1-13, can be used in a cooling method which comprises condensing a refrigerant of the invention comprising any of Refrigerants 1-13 and then evaporating the refrigerant in the vicinity of an article or body to be cooled.
[0157] Accordingly, the present invention relates to a method of cooling in a heat transfer system comprising an evaporator, a condenser and a compressor, the process comprising the steps of: i) condensing a refrigerant of the present invention comprising any of Refrigerants 1 to 13; ii) evaporating the refrigerant in the vicinity of the body or item to be cooled; The refrigerant has an evaporation temperature in the range of about -40°C to about +10°C, and the refrigerant is optionally in admixture with a stabilizer as described herein, preferably including Stabilizer 1, 1A, or 2, and optionally in admixture with a lubricant, preferably including POE and Lubricant 1.
[0158] Alternatively, or in addition, any heat transfer composition of the present invention, such as a heat transfer composition comprising any of Refrigerants 1-13, can be used in a heating method which comprises condensing a refrigerant of the present invention, such as any of Refrigerants 1-13, in the vicinity of an article or body to be heated and then evaporating the refrigerant.
[0159] Thus, the present invention relates to a method of heating in a heat transfer system comprising an evaporator, a condenser and a compressor, the process comprising the steps of: i) condensing a refrigerant of the present invention, such as any of Refrigerants 1 to 13, in the vicinity of a body or item to be heated; ii) evaporating the refrigerant; The evaporator temperature of the heat transfer system ranges from about −30° C. to about 5° C., and the refrigerant is optionally in admixture with a stabilizer described herein, preferably including Stabilizer 1, 1A, or 2, and optionally in admixture with a lubricant, preferably including POE and Lubricant 1.
[0160] The heat transfer compositions of the present invention are provided for use in air conditioning applications, including both mobile and stationary air conditioning applications. The heat transfer compositions of the present invention may also be used in heat pump applications. Thus, any heat transfer composition described herein, including any heat transfer composition of the present invention, such as a heat transfer composition comprising any of refrigerants 1-13, -Air conditioning applications, including mobile air conditioning, especially automotive air conditioning; -Mobile heat pumps, especially heat pumps for electric vehicles, - coolers, in particular positive displacement coolers, in particular air-cooled or water-cooled direct expansion coolers, modular or conventionally packaged; - residential air conditioning systems, especially ducted split and ductless split air conditioning systems; -Residential heat pumps, -Residential air-to-water heat pump / hot water system, -Industrial air conditioning systems, -Commercial air conditioning systems, particularly packaged rooftop units and variable refrigerant flow (VRF) systems; -Can be used in any one of commercial air-source, water-source, or ground-source heat pump systems.
[0161] The heat transfer compositions of the present invention, including any of the heat transfer compositions of the present invention, such as heat transfer compositions comprising any of Refrigerants 1-13, are provided for use in refrigeration systems. The term "refrigeration system" refers to any system or device, or any part or portion of such a system or device, that uses a refrigerant to provide cooling. Thus, any of the heat transfer compositions described herein, such as any of the heat transfer compositions comprising any of Refrigerants 1-13, -Low temperature refrigeration systems, -Medium temperature refrigeration system, -Commercial refrigerators, -Commercial freezer, -Ice maker, -vending machines, -Transport refrigeration systems, -Household freezer, -Domestic refrigerators, -industrial freezers, -Industrial refrigerators, and -cooler.
[0162] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, is particularly provided for use in residential air conditioning systems (having evaporator temperatures in the range of about 0 to about 10°C for cooling, particularly about 7°C, and / or about -30 to about 5°C for heating, particularly about 0.5°C), particularly air conditioning systems having reciprocating, rotary (rolling piston or rotary vane), or scroll compressors.
[0163] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, is particularly provided for use in air-cooled chillers (having an evaporator temperature in the range of about 0 to about 10°C, particularly about 4.5°C), particularly air-cooled chillers having positive displacement compressors, and especially air-cooled chillers having reciprocating or scroll compressors.
[0164] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, is particularly provided for use in residential air-to-water heat pump hot water systems (having evaporator temperatures in the range of about -30 to about 5°C, particularly about 0.5°C).
[0165] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, is particularly provided for use in medium temperature refrigeration systems (having evaporator temperatures in the range of about -12 to about 0°C, particularly about -8°C).
[0166] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, is particularly provided for use in low temperature refrigeration systems (having evaporator temperatures in the range of about -40 to about -12°C, particularly about -23°C).
[0167] Thus, heat transfer compositions of the present invention, such as heat transfer compositions containing any of refrigerants 1-13, are provided for use in residential air conditioning systems, which are used, for example, to supply cool air (e.g., air having a temperature of about 10°C to about 17°C, particularly about 12°C) to buildings during the summer. Typical system types include ducted split, ductless split, window, and portable air conditioning systems. The systems typically include an air-refrigerant evaporator (indoor coil), a compressor, an air-refrigerant condenser (outdoor coil), and an expansion device. The evaporator and condenser are typically finned-tube or microchannel heat exchangers. The compressor is typically a reciprocating, rotary (rolling piston or rotary valve), or scroll compressor. The expansion device is typically a capillary tube, a thermostatic expansion valve, or an electronic expansion valve. The refrigerant evaporation temperature is preferably in the range of 0°C to 10°C. The refrigerant condensation temperature is preferably in the range of 40°C to 70°C.
[0168] Heat transfer compositions of the present invention, such as heat transfer compositions containing any of refrigerants 1-13, are provided for use in residential heat pump systems. Residential heat pump systems are used to supply warm air (e.g., air having a temperature of about 18°C to about 24°C, particularly about 21°C) to buildings during the winter. These systems are typically the same as residential air conditioning systems, except that the refrigerant flow is reversed in the heat pump system, with the indoor coil acting as the condenser and the outdoor coil acting as the evaporator. Typical system types include ducted split and ductless split heat pump systems. The evaporator and condenser are typically finned-tube or microchannel heat exchangers. The compressor is typically a reciprocating, rotary (rolling piston or rotary valve), or scroll compressor. The expansion device is typically a capillary tube, a thermostatic expansion valve, or an electronic expansion valve. The refrigerant evaporation temperature is preferably within the range of about -30°C to about 5°C. The refrigerant condensation temperature is preferably within the range of about 35°C to about 50°C.
[0169] The heat transfer compositions of the present invention, such as heat transfer compositions containing any of refrigerants 1-13, are provided for use in commercial air conditioning systems. Commercial air conditioning systems can be chillers used to provide chilled water (e.g., at a temperature of about 7°C) to large buildings such as offices and hospitals. Depending on the application, the chiller system may operate year-round. The chiller system can be air-cooled or water-cooled. Air-cooled chillers typically have a plate, tube-in-tube, or shell-and-tube evaporator to provide chilled water, a reciprocating or scroll compressor, a finned-tube or microchannel condenser to exchange heat with ambient air, and a thermostatic or electronic expansion valve. Water-cooled systems typically have a shell-and-tube evaporator to provide chilled water, a reciprocating, scroll, screw, or centrifugal compressor, a shell-and-tube condenser to exchange heat with a cooling tower or water from lakes, oceans, and other natural sources, and a thermostatic or electronic expansion valve. The refrigerant evaporation temperature is preferably within the range of about 0°C to about 10°C. The condensation temperature is preferably within the range of about 40°C to about 70°C.
[0170] Heat transfer compositions of the present invention, such as heat transfer compositions comprising any of Refrigerants 1-13, are provided for use in residential air-to-water heat pump hot water systems used to supply hot water (e.g., having a temperature of about 55°C) to buildings in the winter for underfloor heating or similar uses. Hot water systems typically have a finned-tube or microchannel evaporator for exchanging heat with ambient air, a reciprocating, rotary, or scroll compressor, a plate, tube-in-tube, or shell-and-tube condenser for heating the water, and a thermostatic or electronic expansion valve. Refrigerants The evaporation temperature is preferably within the range of about -30°C to about 5°C. The condensation temperature is preferably within the range of about 50°C to about 90°C.
[0171] Heat transfer compositions of the present invention, such as heat transfer compositions comprising any of Refrigerants 1-13, are provided for use in medium-temperature refrigeration systems, preferably used to cool food or beverages, such as in refrigerators or bottle coolers. The systems typically include an air-refrigerant evaporator for cooling the food or beverage, a reciprocating, scroll, or screw compressor, an air-refrigerant condenser for exchanging heat with ambient air, and a thermal or electronic expansion valve. The refrigerant evaporation temperature is preferably within the range of about -12°C to about 0°C. The condensation temperature is preferably within the range of about 20°C to about 70°C.
[0172] Heat transfer compositions of the present invention, such as heat transfer compositions comprising any of Refrigerants 1-13, are provided for use in low-temperature refrigeration systems, preferably used in freezers or ice cream machines. The systems typically include an air-refrigerant evaporator, a reciprocating, scroll, or screw compressor, an air-refrigerant condenser for exchanging heat with ambient air, and a thermal or electronic expansion valve. The refrigerant evaporation temperature is preferably within the range of about -40°C to about -12°C. The condensation temperature is preferably within the range of about 20°C to about 70°C.
[0173] The heat transfer compositions disclosed herein, such as those comprising any of Refrigerants 1-13, are provided as low global warming potential (GWP) replacements for refrigerant R-410A. Accordingly, the heat transfer compositions, such as those comprising any of Refrigerants 1-13, can be used in methods of retrofitting existing heat transfer systems that are designed to contain or contain R-410A refrigerant without requiring substantial engineering changes to the existing system, particularly without modifications to the condenser, evaporator, and / or expansion valve.
[0174] As used herein, the term "retrofit" with respect to a particular heat transfer composition or refrigerant of the present invention means the use of the specified composition of the present invention in a heat transfer system that has contained therein a different refrigerant composition that has been at least partially removed or removed from the system, and into which the specified composition of the present invention has been introduced.
[0175] As used herein, the term "replacement" with respect to a particular heat transfer composition or refrigerant of the present invention as a "replacement" for a particular prior refrigerant refers to the use of the specified composition of the present invention in heat transfer systems heretofore commonly used with that prior refrigerant. By way of example, heat transfer systems commonly used with R410A include residential air conditioning systems and chiller systems.
[0176] Alternatively, a heat transfer composition, such as a heat transfer composition comprising any of Refrigerants 1-13, can be used in a method of retrofitting an existing heat transfer system that is designed to contain or contains an R410A refrigerant, where the system is modified for the refrigerant of the present invention.
[0177] Alternatively, heat transfer compositions such as those comprising any of Refrigerants 1-13 can be used in heat transfer systems that are suitable for use with R410A refrigerant.
[0178] Thus, the present invention also includes methods of using the refrigerants or heat transfer compositions of the present invention, such as heat transfer compositions comprising any of Refrigerants 1-13, as a replacement for R-410A, particularly as a replacement for R-410A in residential air conditioning refrigerants, without requiring substantial engineering changes to existing systems, particularly without modifications to condensers, evaporators, and / or expansion valves.
[0179] Therefore, the present invention is also useful as a replacement for R-410A, especially in refrigeration systems. Also included is a method of using the refrigerant or heat transfer compositions of the present invention, such as heat transfer compositions comprising any of Refrigerants 1-13, as a replacement for R-410A without requiring substantial engineering changes to existing systems, particularly without modifications to condensers, evaporators, and / or expansion valves.
[0180] Thus, the present invention also includes methods of using the refrigerants or heat transfer compositions of the present invention, such as heat transfer compositions comprising any of Refrigerants 1-13, as a replacement for R-410A, particularly as a replacement for R-410A in heat pumps, without requiring substantial engineering changes to the existing system, particularly without modifications to the condenser, evaporator, and / or expansion valve.
[0181] When a heat transfer composition of the present invention, such as a heat transfer composition comprising any of Refrigerants 1-13, is used as a low global warming replacement for R-410A, or in a method for retrofitting an existing heat transfer system designed to contain or containing an R410A refrigerant, or in a heat transfer system suitable for use with an R410A refrigerant, it will be understood that the heat transfer composition can consist essentially of the refrigerant of the present invention. Alternatively, the present invention encompasses the use of a refrigerant of the present invention, including any of Refrigerants 1-13, as a low global warming replacement for R-410A, or in a method for retrofitting an existing heat transfer system designed to contain or containing an R410A refrigerant, or in a heat transfer system suitable for use with an R410A refrigerant, as described herein.
[0182] It will be understood by those skilled in the art that when a heat transfer composition is provided for use in a method for retrofitting an existing heat transfer system as described above, the heat transfer composition may comprise any refrigerant of the present invention, including any of Refrigerants 1-13.
[0183] Heat transfer compositions provided for use in methods of retrofitting existing heat transfer compositions, including heat transfer compositions comprising any of Refrigerants 1-13, preferably further comprise any of the stabilizer compositions described herein, including any of Stabilizers 1, 1A, or 2.
[0184] Accordingly, the present invention relates to a method of replacing an existing refrigerant contained in a heat transfer system, the method comprising removing at least a portion of the existing refrigerant from the system, wherein the existing refrigerant is R-410A, and replacing at least a portion of the existing refrigerant by introducing into the system a refrigerant according to the present invention comprising any of Refrigerants 1-13, preferably in combination with a stabilizer composition described herein comprising Stabilizer 1, 1A, or 2.
[0185] As described above, this method involves removing at least a portion of the existing R-410A refrigerant from the system. Preferably, this method involves removing at least about 5%, about 10%, about 25%, about 50%, or about 75% by weight of the R-410A from the system and replacing it with a heat transfer composition of the present invention, comprising a heat transfer composition comprising any of Refrigerants 1-13, and preferably further comprising any of the stabilizer compositions described herein, including any of Stabilizers 1, 1A, or 2.
[0186] Refrigerants of the present invention, including any of Refrigerants 1-13, can be used in systems that are used with or suitable for use with R-410A refrigerant, such as existing or new heat transfer systems.
[0187] The refrigerants of the present invention, including any of Refrigerants 1-13, exhibit many of the desirable properties of R-410A, but have a substantially lower GWP than R-410A, while at the same time having operating characteristics, i.e., efficiency (COP), that are substantially similar to or substantially match, and more preferably as high as or higher than, R-410A, thereby allowing for the elimination of condensation and / or expansion valve modifications to existing heat transfer systems without requiring any major system modifications, for example, to the condenser, evaporator, and / or expansion valve. This allows the refrigerants of the present invention, including any of Refrigerants 1-13, to replace R410A in heat exchange systems. Thus, the refrigerants of the present invention, including any of Refrigerants 1-13, can be used as direct replacements in retrofitting heat exchange systems that are being used with or are suitable for use with R410A. When replacing R410A with a refrigerant of the present invention, including any of Refrigerants 1-13, it may be desirable to replace the existing compressor with a larger compressor.
[0188] The compositions of the present invention may be used as a replacement in systems that are used with or suitable for use with R-410A refrigerant, such as existing or new heat transfer systems.
[0189] Thus, the refrigerant compositions of the present invention comprising any of Refrigerants 1 to 13 preferably exhibit the following operating characteristics compared to R410A in a heat transfer system in which the refrigerant of the present invention replaces the R410A refrigerant: -The composition of performance (COP) is 95-105% of that of R410A.
[0190] The term "COP" is a measure of energy efficiency and refers to the ratio of refrigeration or cooling capacity to the energy requirements of a refrigeration system, i.e., the energy to run the compressor, fans, etc. COP is the useful output of a refrigeration system, in this case the refrigeration capacity or how much cooling is being provided divided by the power required to produce this output. Essentially, it is a measure of the efficiency of the system.
[0191] The term "capacity" refers to the amount of cooling (BTU / hr) provided by a refrigerant in a refrigeration system. It is determined experimentally by multiplying the change in enthalpy (BTU / lb) of the refrigerant as it passes through the evaporator by the mass flow rate of the refrigerant. Enthalpy can be determined from measurements of the refrigerant's pressure and temperature. The capacity of a refrigeration system relates to its ability to maintain a particular temperature in the area being cooled.
[0192] The term "mass flow rate" is the amount of refrigerant ("pounds") that passes through a conduit of a given size in a given amount of time.
[0193] In order to maintain the reliability of the heat transfer system, it is preferable that the refrigerant composition of the present invention containing any of Refrigerants 1 to 13 further exhibit the following properties compared to R-410A. Discharge temperatures are not more than 10° C. higher than R-410A in heat transfer systems in which the compositions of the present invention are used to replace R-410A refrigerant.
[0194] It will be appreciated that R410A is an azeotrope-like composition. Therefore, in order for the refrigerant compositions of the present invention containing any of Refrigerants 1-13 to closely match the operating characteristics of R410A, it is desirable for the compositions to exhibit low gradient levels. Thus, the refrigerant compositions of the present invention containing any of Refrigerants 1-13 may provide an evaporator gradient of about 7°C or less, preferably less than about 5°C.
[0195] Existing heat transfer compositions for use with R-410A are preferably air conditioning heat transfer systems, including both mobile and stationary air conditioning systems. Thus, each of the heat transfer compositions described herein, including heat transfer compositions containing any of Refrigerants 1-13, and further containing any of the stabilizer compositions described herein, preferably including any of Stabilizers 1, 1A, or 2, can be: -Air conditioning systems, including mobile air conditioning systems, in particular automotive air conditioning systems; -Mobile heat pumps, especially heat pumps for electric vehicles, Coolers, in particular positive displacement coolers, in particular air-cooled or water-cooled direct expansion coolers, modular or those packaged singly in conventional methods, - residential air conditioning systems, especially ducted split and ductless split air conditioning systems; -Residential heat pumps, -Residential air-to-water heat pump / hot water system, -Industrial air conditioning systems, -Commercial air conditioning systems, particularly packaged rooftop units and variable refrigerant flow (VRF) systems; -Can be used to replace R-410A in any one of commercial air-source, water-source, or ground-source heat pump systems.
[0196] The refrigerant compositions of the present invention comprising any of Refrigerants 1-13 are alternatively provided to replace R410A in refrigeration systems. Thus, each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, and preferably further comprising any of the stabilizer compositions described herein, including any of Stabilizers 1, 1A, or 2, can be: -Low temperature refrigeration systems, -Medium temperature refrigeration system, -Commercial refrigerators, -Commercial freezer, -Ice maker, -vending machines, -Transport refrigeration systems, -Household freezer, -Domestic refrigerators, -industrial freezers, -Industrial refrigerators, and -coolers, to replace R410A.
[0197] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, and preferably further comprising any of the stabilizer compositions described herein comprising any of Stabilizers 1, 1A, or 2, is particularly provided for replacing R410A in residential air conditioning systems (having evaporator temperatures in the range of about 0° C. to about 10° C. for cooling, particularly about 7° C., and / or about −30° C. to about 5° C. for heating, particularly about 0.5° C.). Alternatively, or in addition, each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, and preferably further comprising any of the stabilizer compositions described herein comprising any of Stabilizers 1, 1A, or 2, is particularly provided for replacing R410A in residential air conditioning systems having reciprocating, rotary (rolling piston or rotary vane), or scroll compressors.
[0198] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, and preferably further comprising any of the stabilizer compositions described herein comprising any of Stabilizers 1, 1A, or 2, is particularly provided for replacing R410A in air-cooled chillers (having evaporator temperatures in the range of about 0 to about 10°C, particularly about 4.5°C), particularly air-cooled chillers having positive displacement compressors, and especially air-cooled chillers having reciprocating or scroll compressors.
[0199] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, and preferably further comprising any of the stabilizer compositions described herein comprising any of Stabilizers 1, 1A, or 2, has been shown to be effective in providing a heat transfer performance in residential air-to-water heat pump hot water systems (approximately -30 to 150°C). It is particularly provided to replace R410A in the range of about 5°C, particularly having an evaporator temperature of about 0.5°C.
[0200] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, and preferably further comprising any of the stabilizer compositions described herein comprising any of Stabilizers 1, 1A, or 2, is particularly provided for replacing R410A in medium temperature refrigeration systems (having evaporator temperatures in the range of about -12 to about 0°C, particularly about -8°C).
[0201] Each of the heat transfer compositions described herein, including heat transfer compositions comprising any of Refrigerants 1-13, and preferably further comprising any of the stabilizer compositions described herein comprising any of Stabilizers 1, 1A, or 2, is particularly provided for replacing R410A in low temperature refrigeration systems (having evaporator temperatures in the range of about -40 to about -12°C, particularly about -23°C).
[0202] The present invention further provides a heat transfer system comprising a compressor, a condenser, and an evaporator in fluid communication, and a heat transfer composition in the system, the heat transfer composition comprising a refrigerant including any of Refrigerants 1-13, and further comprising any of the stabilizer compositions described herein, preferably including any of Stabilizers 1, 1A, or 2, wherein the condenser has an operating temperature of -20°C to 10°C, and the evaporator has an operating temperature of 40°C to 70°C.
[0203] Preferably, there is provided a heat transfer system comprising a compressor, a condenser, and an evaporator in fluid communication, and a heat transfer composition in the system, the heat transfer composition comprising a refrigerant according to the present invention comprising any of Refrigerants 1-13, and further comprising any of the stabilizer compositions described herein, preferably comprising any of Stabilizers 1, 1A, or 2, wherein the evaporator has an operating temperature of -40°C to +10°C, and the condenser has an operating temperature of +20°C to +70°C.
[0204] The heat transfer system is preferably a heat pump or air conditioning system, such as a mobile air conditioning system, particularly an automotive air conditioning system, a mobile heat pump, particularly an electric vehicle heat pump, a chiller, particularly a positive displacement chiller, especially an air-cooled or water-cooled direct expansion chiller, modular or conventionally packaged, a residential air conditioning system, particularly ducted split and ductless split air conditioning systems, a residential heat pump, a residential air-to-water heat pump / hot water system, an industrial air conditioning system, a commercial air conditioning system, particularly packaged rooftop and variable refrigerant flow (VRF) systems, and a commercial air-source, water-source, or ground-source heat pump system.
[0205] In particular, the heat transfer system is a residential air conditioning system (having an evaporator temperature in the range of about 0 to about 10°C for cooling, particularly about 7°C, and / or in the range of about -30 to about 5°C for heating, particularly about 0.5°C), in particular an air conditioning system having a reciprocating, rotary (rolling piston or rotor), or scroll compressor.
[0206] In particular, the heat transfer system is an air-cooled chiller (having an evaporator temperature in the range of about 0 to about 10°C, in particular about 4.5°C), in particular an air-cooled chiller with a positive displacement compressor, especially an air-cooled chiller with a reciprocating or scroll compressor.
[0207] In particular, the heat transfer system is a residential air-to-water heat pump hot water system (having an evaporator temperature in the range of about -30 to about 5°C, in particular about 0.5°C).
[0208] The heat transfer system can be a refrigeration system, for example, a low temperature refrigeration system, a medium temperature refrigeration system, a commercial refrigerator, a commercial freezer, an ice maker, a vending machine, a transport refrigeration system, a domestic freezer, a domestic refrigerator, an industrial freezer, and a chiller.
[0209] In particular, the heat transfer system is a medium temperature refrigeration system (having an evaporator temperature in the range of about -12 to about 0°C, in particular about -8°C).
[0210] In particular, the heat transfer system is a low temperature refrigeration system (having an evaporator temperature in the range of about -40 to about -12°C, in particular about -23°C).
[0211] The ability of the refrigerant compositions of the present invention to desirably and unexpectedly match the operating conditions of R-410A is illustrated by the following non-limiting examples.
[0212] Example - R32 / CF3I The R-32 / CF3I binary refrigerant compositions identified in Table 1 below were evaluated as described herein. Each composition was subjected to thermodynamic analysis to determine its ability to match the operating characteristics of R-4104A in various refrigeration systems. The analysis was performed using experimental data collected on the properties of various binary pairs of components used in the composition. The composition of each binary pair was varied over a range of relative percentages in the experimental evaluation, and the mixing parameters of each binary pair were regressed to the experimentally obtained data. The assumptions used to perform the analysis were: same compressor volume for all refrigerants, same operating conditions for all refrigerants, and same compressor adiabatic and volumetric efficiencies for all refrigerants. For each example, simulations were performed using measured vapor-liquid equilibrium data. Simulation results are reported for each example.
[0213] [Table 1]
[0214] [Table 2]
[0215] Example 1 - Residential Air Conditioning System (Cooling) explanation: Residential air conditioning systems are used to provide cool air (approximately 12°C) to buildings during the summer. Typical system types are ducted split, ductless split, window, and portable air conditioning systems. Systems typically have an air-refrigerant evaporator (indoor coil), a compressor, an air-refrigerant condenser (outdoor coil), and an expansion device. The evaporator and condenser are typically finned-tube or microchannel heat exchangers. The compressor is typically a reciprocating, rotary (rolling piston or rotor), or scroll compressor. The expansion device is typically a capillary tube, a thermostatic expansion valve, or an electronic expansion valve. The refrigerant evaporation temperature is in the range of about 0 to about 10°C, while the condensation temperature is in the range of about 40 to about 70°C.
[0216] Operating conditions: 1. Condensation temperature = 46°C, corresponding outdoor ambient temperature = 35°C 2. Condenser subcooling = 5.5℃ 3. Evaporation temperature = 7℃, corresponding indoor ambient temperature = 26.7℃ 4. Evaporator superheat = 5.5℃ 5.Insulation efficiency = 70% 6.Volumetric efficiency = 100% 7. Temperature rise in intake line = 5.5°C
[0217] [Table 3]
[0218] Example 2 - Residential heat pump system (heating) explanation: Residential heat pump systems are used to provide warm air (approximately 21°C) to buildings during the winter. These systems are typically the same as residential air conditioning systems, except that when the system is in heat pump mode, the refrigerant flow reverses, with the indoor coil acting as the condenser and the outdoor coil acting as the evaporator. Typical system types include ducted split and ductless split heat pump systems. The evaporator and condenser are typically finned-tube or microchannel heat exchangers. The compressor is typically a reciprocating, rotary (rolling piston or rotor), or scroll compressor. The expansion device is typically a capillary tube, a thermostatic expansion valve, or an electronic expansion valve. The refrigerant evaporation temperature is in the range of approximately -30 to approximately 5°C, while the condensation temperature is in the range of approximately 35 to approximately 50°C.
[0219] Operating conditions: 1. Condensation temperature = 41°C, corresponding indoor ambient temperature = 21.1°C 2. Condenser subcooling = 5.5℃ 3. Evaporation temperature = 0.5℃, corresponding outdoor ambient temperature = 8.3℃ 4. Evaporator superheat = 5.5℃ 5.Insulation efficiency = 70% 6.Volumetric efficiency = 100% 7. Temperature rise in intake line = 5.5°C
[0220] [Table 4]
[0221] Example 3 - Commercial Air Conditioning System - Air-Cooled Chiller explanation: Commercial air conditioning systems (chillers) are used to provide chilled water (approximately 7°C) in large buildings such as offices and hospitals. Depending on the application, chiller systems may operate year-round. Chiller systems can be air-cooled or water-cooled. Air-cooled chillers typically have a plate, tube-in-tube, or shell-in-tube evaporator to provide chilled water, a reciprocating or scroll compressor, a round-tube plate-fin or microchannel condenser to exchange heat with ambient air, and a thermostatic or electronic expansion valve. Water-cooled systems typically have a shell-and-tube evaporator to provide chilled water, a reciprocating or scroll compressor, a shell-and-tube condenser to exchange heat with a cooling tower or water from lakes, oceans, and other natural sources, and a thermostatic or electronic expansion valve. The refrigerant evaporation temperature is in the range of about 0 to about 10°C, while the condensation temperature is in the range of about 40 to about 70°C.
[0222] Operating conditions: 1. Condensation temperature = 46°C, corresponding outdoor ambient temperature = 35°C 2. Condenser subcooling = 5.5℃ 3. Evaporation temperature = 4.5℃, corresponding cooling outlet water temperature = 7℃ 4. Evaporator superheat = 5.5℃ 5.Insulation efficiency = 70% 6.Volumetric efficiency = 100% 7. Temperature rise in intake line = 2°C
[0223] [Table 5]
[0224] Example 4 - Residential Air-to-Water Heat Pump Hot Water System explanation: Residential air-to-water heat pump hot water systems are used to supply hot water (approximately 55°C) to buildings for floor heating or similar uses in the winter. Hot water systems typically have a finned or microchannel evaporator to exchange heat with ambient air, a reciprocating, rotary, or scroll compressor, a plate, tube-in-tube, or shell-and-tube condenser to heat the water, and a thermostatic or electronic expansion valve. Refrigerant evaporation temperatures range from about -30 to about 5°C, while condensation temperatures range from about 50 to about 90°C.
[0225] Operating conditions: 1. Condensation temperature = 60℃, corresponding indoor outlet water temperature = 50℃ 2. Condenser subcooling = 5.5℃ 3. Evaporation temperature = 0.5℃, corresponding outdoor ambient temperature = 8.3℃ 4. Evaporator superheat = 5.5℃ 5.Insulation efficiency = 70% 6.Volumetric efficiency = 100% 7. Temperature rise in intake line = 2°C
[0226] [Table 6]
[0227] Example 5 - Medium temperature freezing explanation: Medium-temperature refrigeration systems are used to cool food or beverages in refrigerators and bottle coolers. The systems typically include an air-refrigerant evaporator for cooling the food or beverage, a reciprocating, scroll, or screw compressor, an air-refrigerant condenser for exchanging heat with ambient air, and a thermostatic or electronic expansion valve. The refrigerant evaporation temperature ranges from about -12 to about 0°C, while the condensation temperature ranges from about 20 to about 70°C.
[0228] Operating conditions: 1. Condensation temperature = 40.6°C, corresponding outdoor ambient temperature = 35°C 2. Condenser subcooling = 5.5℃ 3. Evaporation temperature = -6.7℃, corresponding internal temperature = 2℃ 4. Evaporator superheat = 5.5℃ 5.Insulation efficiency = 70% 6.Volumetric efficiency = 100% 7. Temperature rise in intake line = 15°C
[0229] [Table 7]
[0230] Example 6 - Cryogenic Freezing explanation: Low-temperature refrigeration systems are used to freeze food, for example, in freezers or ice cream machines. The systems typically include an air-refrigerant evaporator, a reciprocating, scroll, or screw compressor, an air-refrigerant condenser for exchanging heat with ambient air, and a thermostatic or electronic expansion valve. The refrigerant evaporation temperature is in the range of about -40 to about -12°C, while the condensation temperature is in the range of about 20 to about 70°C.
[0231] Operating conditions: 1. Condensation temperature = 40.6°C, corresponding outdoor ambient temperature = 35°C 2. Condenser subcooling = 1°C 3. Evaporation temperature = -31.6℃, corresponding internal temperature = -20.6℃ 4. Evaporator superheat = 5.5℃ 5.Insulation efficiency = 70% 6.Volumetric efficiency = 100% 7. Temperature rise in intake line = 30°C
[0232] [Table 8]
[0233] Example 7 - Miscibility with POE POE oils are widely used in air conditioning and refrigeration systems.
[0234] As shown in Figure 1, R410A is immiscible with POE oil below -22°C. Therefore, R410A cannot be used for low-temperature refrigeration applications because POE oil will deposit in the evaporator.
[0235] Furthermore, Figure 1 shows that R410A is immiscible with POE oil above 50°C, which causes problems in the condenser and liquid transport lines when using R410A at high ambient conditions (e.g., separated POE oil will become trapped and deposit).
[0236] Conversely, the refrigerants of the present invention, i.e., refrigerants consisting essentially of or consisting of about 34% to about 38% by weight HFC-32 and about 62% to about 66% by weight CF3I, are completely miscible with POE oil over the temperature range of -50° C. to 70° C. This is illustrated in Figure 2, which shows that compositions having a mass fraction of CF3I greater than 60% relative to the total amount of HFC-32 and CF3I are completely miscible with POE oil over the temperature range of -50° C. to 70° C.
[0237] While the present invention has been described with reference to preferred embodiments, it will be understood by those skilled in the art that various changes can be made and equivalents substituted for elements thereof without departing from the scope of the invention. In addition, many modifications can be made to the teachings of the invention to adapt to a particular situation or material, departing from the essential scope of the invention. Therefore, it is intended that the invention not be limited to the particular embodiments disclosed, but rather that the invention will include all embodiments falling within the scope of the appended claims or any claims appended later.
[0238] Example - R32 / CF3I / CO2 Ternary refrigerant compositions of R-32 / CF3I / CO2 identified in Table 9 below were evaluated as described herein. Each composition was subjected to thermodynamic analysis to determine its ability to match the operating characteristics of R-4104A in various refrigeration systems. The analysis was performed using experimental data collected on the properties of various binary pairs of components used in the composition. The composition of each binary pair was varied over a range of relative percentages in the experimental evaluation, and the mixing parameters of each binary pair were regressed to the experimentally obtained data. The assumptions used to perform the analysis were: same compressor volume for all refrigerants, same operating conditions for all refrigerants, same compressor adiabatic efficiency and volumetric efficiency for all refrigerants. For each example, simulations were performed using measured vapor-liquid equilibrium data. For each example, simulations were performed using the same data. Report the results of the survey.
[0239] [Table 9]
[0240] [Table 10]
[0241] Refrigerant blends with evaporator slopes of 7 C or less are highly desirable. Thus, for refrigerants of the present invention in which CO2 is present in an amount of about 3%, applicants have determined that it is generally preferred for the refrigerant to contain no more than 38% R-32.
[0242] Example 8 - Residential Air Conditioning System (Cooling) - With TXV, 0% and 1% CO Residential air conditioning systems are used to provide cool air (approximately 12°C) to buildings during the summer. Typical system types include ducted split, ductless split, window, and portable air conditioning systems. A system typically includes an air-refrigerant evaporator (indoor coil), a compressor, an air-refrigerant condenser (outdoor coil), and an expansion device. The evaporator and condenser are typically finned-tube or microchannel heat exchangers. The compressor is typically a reciprocating, rotary (rolling piston or rotor), or scroll compressor. The expansion device is typically a capillary tube, a thermostatic expansion valve, or an electronic expansion valve. The refrigerant evaporation temperature is in the range of approximately 0 to approximately 10°C, while the condensation temperature is in the range of approximately 40 to approximately 70°C. In this example, the system includes a thermostatic expansion valve (TXV).
[0243] Operating conditions: Condensation temperature = 46°C Condenser subcooling = 5.5℃ Evaporation temperature = 7℃ Evaporator superheat = 5.5℃ Insulation efficiency = 70% Volumetric efficiency = 100% Temperature rise in intake line = 5.5°C
[0244] A refrigerant containing 38% R32 and 62% CF3I (no CO2) was blended with a refrigerant containing 38% R32, 61% CF3I, and 1% CO2 and was found to produce the results shown in Table 13 below.
[0245] [Table 13]
[0246] As can be seen from the above results, the blend consisting of 38% R32 and 62% CF3I and the blend consisting of 38% R32, 61% CF3I, and 1% CO2 achieve actual capacity and actual efficiency close to the values estimated based on applicant's thermodynamic data and test work. As can be seen, the estimated values show an increase in capacity with the addition of CO2 and no change in estimated efficiency with the addition of CO2.
[0247] The estimation exercise is repeated, except that a blend consisting of 38% R32, 7% CO2, and 55% CF3I is considered. The results are reported in Table 14 below.
[0248] [Table 14]
[0249] As can be seen from the above results, increasing the CO2 concentration to 7% while maintaining the amount of R32 at about 38% continues to provide the expected increase in capacity while leaving the efficiency (COP) substantially unchanged. This result would lead one to expect that using a formulation containing about 38% R32 but with a CO2 concentration of 7% or greater would result in a substantial benefit in power consumption compared to a formulation containing less than 7%.
[0250] Example 9 - Residential Air Conditioning System (Cooling) - TXV, with 3%-5% CO2 explanation: The same residential air conditioning system tested according to Example 8 is used to test refrigerant compositions of the present invention containing 38% R-32 as identified in Table 15 below.
[0251] [Table 15]
[0252] Based on estimation work performed by applicant, it was predicted that the operating efficiency (COP) of the formulations in Table 15 would be approximately the same as the estimated COP of the formulations in Example 8, which includes a formulation containing about 7% CO. The refrigerants in Table 15 were found to produce predicted and actual results based on thermodynamic simulations, as shown in Table 16 below.
[0253] [Table 16]
[0254] Table 16 shows the thermodynamic (estimated) performance of residential air conditioning systems compared to R410A systems, revealing that the actual and estimated capacities maintain relatively close agreement for these formulations, with an unexpected drop in efficiency beginning to be seen as the CO2 concentration increases above 3.5% (B4A), which becomes more pronounced and unexpected as the CO2 concentration approaches 5% (5% CO2 exhibits only 96% of the COP). These results also demonstrate commercially significant, important, and unexpected operating benefits (such as 104% less power consumption) for refrigerants comprising, consisting essentially of, or consisting of 3% to less than 5% CO2, 57% to 59% CF3I, and approximately 38% R-32. These results also demonstrate commercially significant and unexpected operating benefits (such as 100% less power consumption) for refrigerants comprising, consisting essentially of, or consisting of 3% to about 3.5% CO, 58.5% to about 59% CF3I, and about 38% R-32.
[0255] Example 10 - Residential Air Conditioning System (Cooling) - TXV with 7% CO Example 8 was repeated to produce actual results using the refrigerant formulations shown in Table 17 below, producing the results reported in the table, and for convenience restating the estimated results reported in Example 8.
[0256] [Table 17]
[0257] As can be seen from the results above, formulations containing approximately 38% R32 but with increased CO2 concentrations to 7% are less efficient than expected due to an unexpected but significant decrease in efficiency that occurs when CO2 concentrations exceed 5%. This unexpectedly results in a substantial and unnecessary increase in system power consumption.
[0258] The results of this study, which show unexpected results, are summarized in Figure 3 herein.
[0259] Example 11 - Residential Air Conditioning System (Refrigeration) - Capillary Tube and 0% and 1% CO Use the residential air conditioning system described in Example 8, except that the system includes a capillary tube instead of a thermal expansion valve (TXV) and the operating conditions are as follows: Condensation temperature = 48°C Condenser subcooling = 5.5℃ Evaporation temperature = 11°C Evaporator superheat = 4.5℃ Insulation efficiency = 70% Volumetric efficiency = 100% Temperature rise in intake line = 5.5°C
[0260] A refrigerant containing 38% R32 and 62% CF3I (no CO2) was blended with a refrigerant containing 38% R32, 61% CF3I, and 1% CO2 and was found to produce the results shown in Table 18 below.
[0261] [Table 18]
[0262] As can be seen from the above results, the blend consisting of 38% R32 and 62% CF3I and the blend consisting of 38% R32, 61% CF3I, and 1% CO2 achieve actual capacity and actual efficiency close to the values estimated based on applicant's thermodynamic data and test work. As can be seen, the estimated values show an increase in capacity with the addition of CO2 and no change in estimated efficiency with the addition of CO2.
[0263] The estimation exercise is repeated, except that a blend consisting of 38% R32, 7% CO2, and 55% CF3I is considered. The results are reported in Table 19 below.
[0264] [Table 19]
[0265] As can be seen from the above results, increasing the CO2 concentration to 7% while maintaining the amount of R32 at about 38% continues to provide the expected increase in capacity while leaving the efficiency (COP) substantially unchanged. This result would lead one to expect that using a formulation containing about 38% R32 but with a CO2 concentration of 7% or greater would result in a substantial benefit in power consumption compared to a formulation containing less than 7%.
[0266] Example 12 - Residential Air Conditioning System (Refrigeration) - Capillary Tube and 3%-5% CO 2 explanation: The same residential air conditioning system tested according to Example 11 is used to test refrigerant compositions of the present invention containing 38% R-32 as identified in Table 20 below.
[0267] [Table 20]
[0268] Based on estimation work performed by applicant, it was predicted that the operating efficiency (COP) of the formulations in Table 20 would be approximately the same as the estimated COP of the formulations in Example 11, which includes a formulation containing about 7% CO. The refrigerants in Table 20 were found to produce predicted and actual results based on thermodynamic simulations, as shown in Table 21 below.
[0269] [Table 21]
[0270] Table 21 shows the thermodynamic (estimated) performance of residential air conditioning systems using capillary tubes compared to R410A systems, and reveals that the actual and estimated capacities maintain relatively close agreement for these formulations, with an unexpected efficiency drop beginning to be observed as the CO2 concentration increases above 3.5% (B4A), which becomes more pronounced and unexpected as the CO2 concentration approaches 5% (5% CO2 exhibits only 95% of the COP). This is a commercially significant, important, and unexpected efficiency drop, and forms, in part, the basis for the discovery of unexpected benefits (such as approximately 105% less power consumption) for refrigerants comprising, consisting essentially of, or consisting of 3%-5% or less CO2, 57%-59% CF3I, and approximately 38% R-32. These results also demonstrate commercially significant, important, and unexpected operational benefits (such as 100% or less power consumption) for refrigerants comprising, consisting essentially of, or consisting of 3% to about 3.5% CO, 58.5% to about 59% CF3I, and about 38% R-32. Each of these preferred composition ranges includes compositions that are non-flammable and have highly desirable GWPs of less than 400.
[0271] Example 13 - Residential Air Conditioning System (Cooling) - 7% CO2 Example 10 was repeated to produce actual results using the refrigerant formulations shown in Table 17 below, producing the results reported in the table, and for convenience restating the estimated results reported in Example 10.
[0272] [Table 17]
[0273] As can be seen from the above results, a formulation containing approximately 38% R32 but with an increased CO2 concentration of 7% unexpectedly results in a substantial and unnecessary increase in system power consumption due to an unexpected but significant decrease in efficiency that occurs when the CO2 concentration exceeds 5%.
[0274] The results of this study, which show unexpected results, are summarized in Figure 4 herein. The present invention includes the following aspects. [1] about 38% by weight of difluoromethane (HFC-32); 57% to 59% by weight of trifluoroiodomethane (CF3I); A refrigerant consisting essentially of 2% to 5% by weight of CO2. [2] The refrigerant according to [1], wherein the refrigerant is non-flammable. [3] about 38% by weight of difluoromethane (HFC-32); 57% to 59% by weight of trifluoroiodomethane (CF3I); The refrigerant according to [1], which is composed of 2% by weight to 5% by weight of CO2. [4] about 38% by weight of difluoromethane (HFC-32); 58% + / - 0.5% to 59% + / - 0.5% by weight of trifluoroiodomethane (CF3I); The refrigerant according to [1], consisting essentially of 2% by weight to 3.5% by weight of CO2. [5] 38% by weight + / - 0.5% by weight of difluoromethane (HFC-32); 59% by weight + / - 0.5% by weight of trifluoroiodomethane (CF3I); 3% by weight + / - 0.5% by weight of CO2. [6] A method of cooling in a heat transfer system including an evaporator, a condenser, and a compressor, the process comprising: i) condensing the refrigerant according to [1]; and ii) evaporating the refrigerant in the vicinity of a body or item to be cooled, wherein the refrigerant evaporates at a temperature in the range of about -40°C to about -10°C. [7] A method of cooling in a heat transfer system including an evaporator, a condenser, and a compressor, the process comprising: i) condensing the refrigerant according to [1]; and ii) evaporating the refrigerant in the vicinity of a body or item to be cooled, wherein the refrigerant evaporates at a temperature in the range of about -30°C to about 5°C. [8] The method according to
[11] , wherein the air conditioning system is a residential air conditioning system having an evaporator temperature in the range of about 0 to about 10°C. [9] About 34% to about 38% by weight of HFC-32 and about 62% to about 66% by weight of CF 3 I and a refrigerant consisting essentially of.
[10] 18. The heat transfer composition according to claim 17, comprising a polyol ester (POE) lubricant.
Claims
1. 34% to 38% by weight of HFC-32 and 62% to 66% by weight of CF 3 I. A refrigerant consisting essentially of:
2. The refrigerant is 36% by weight of HFC-32 and 64% by weight of CF 3 10. The refrigerant of claim 1, consisting essentially of:
3. The refrigerant is 38% by weight of HFC-32 and 62% by weight of CF 3 10. The refrigerant of claim 1, consisting essentially of:
4. A heat transfer composition comprising a refrigerant according to any one of claims 1 to 3.
5. A heat transfer system comprising the heat transfer composition described in claim 4.
6. A heat transfer system as described in claim 5, wherein the heat transfer system is an air conditioning system.
7. The heat transfer system described in claim 6, wherein the air conditioning system is selected from a mobile air conditioning system, a residential air conditioning system, an industrial air conditioning system, or a commercial air conditioning system.
8. A heat transfer system as described in claim 5, wherein the heat transfer system is a cooler system.
9. The heat transfer system of claim 8, wherein the cooler system is a positive displacement cooler, an air-cooled cooler, a water-cooled direct expansion cooler, a modular cooler, or a conventionally packaged single-unit cooler.
10. 10. A method of cooling in a heat transfer system including an evaporator, a condenser, and a compressor, the method comprising: i) condensing a refrigerant according to any one of claims 1 to 3; and ii) evaporating the refrigerant in the vicinity of a body or item to be cooled, wherein the refrigerant evaporates at a temperature in the range of -40°C to 10°C.
11. 10. A method of cooling in a heat transfer system including an evaporator, a condenser, and a compressor, the method comprising: i) condensing a refrigerant according to any one of claims 1 to 3; and ii) evaporating the refrigerant in the vicinity of a body or item to be cooled, wherein the refrigerant evaporates at a temperature in the range of -30°C to 5°C.
12. 12. The method of claim 11, wherein the heat transfer system is a residential air conditioning system having a heating mode operating with an evaporator temperature in the range of 0°C to 10°C.
13. The method of claim 11 , wherein the heat transfer system is an air conditioning system.
14. 14. The method of claim 13, wherein the air conditioning system is a residential air conditioning system having an evaporator temperature in the range of 0°C to 10°C.
15. 15. The method of claim 14, wherein the residential air conditioning system comprises a reciprocating compressor, a rotary compressor, or a scroll compressor.
16. 16. The method of claim 15, wherein the rotary compressor is a rolling piston rotary compressor or a rotary valve rotary compressor.
17. The method of claim 11, wherein the heat transfer system is an air-cooled chiller system operated at an evaporator temperature in the range of 0°C to 10°C.
18. The method described in claim 11, wherein the heat transfer system is a chiller system.
19. The method of claim 18, wherein the chiller system is an air-cooled chiller system having an evaporator temperature in the range of 0°C to 10°C.
20. The method of claim 19, wherein the air-cooled chiller system includes a positive displacement compressor.
21. The method of claim 19, wherein the air-cooled chiller system includes a reciprocating compressor or a scroll compressor.
22. Use of the refrigerant according to any one of claims 1 to 3 as a replacement for R-410A.
23. 10. A method of replacing an existing refrigerant contained in a heat transfer system, the method comprising: removing at least a portion of the existing refrigerant from the system, the existing refrigerant being R-410A; and replacing at least a portion of the existing refrigerant by introducing into the system a refrigerant according to any one of claims 1 to 3.
24. A heat transfer system comprising a heat transfer composition comprising a refrigerant according to any one of claims 1 to 3 and a lubricant and / or at least one stabilizer.
25. 25. The heat transfer system of claim 24, wherein the heat transfer composition comprises a polyol ester (POE) lubricant.
26. 26. The heat transfer system of claim 25, wherein the lubricant is present in an amount of 10 to 60 weight percent of the heat transfer composition.
27. 26. The heat transfer system of claim 25, wherein the lubricant is present in an amount of 20 to 50 weight percent of the heat transfer composition.
28. 26. The heat transfer system of claim 25, wherein the lubricant is present in an amount of 20 to 30 weight percent of the heat transfer composition.
29. 25. The heat transfer system of claim 24, wherein the heat transfer composition comprises a stabilizer.
30. 30. The heat transfer system of claim 29, wherein the stabilizer comprises at least one of a diene compound, a phenolic compound, a phosphorus compound, a nitrogen compound, and an epoxide selected from the group consisting of aromatic epoxides, alkyl epoxides, and alkenyl epoxides.
31. 31. The heat transfer system of claim 30, wherein the stabilizer is present in an amount of from greater than 0 to 2 weight percent of the heat transfer composition.
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