Dairy product and process
Patent Information
- Application Number
- JP2025093412
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-06-19
- Filing Date
- 2025-06-04
- Publication Date
- 2026-01-20
AI Technical Summary
UHT creams undergo destabilization and physical changes when exposed to temperature fluctuations, losing flavor, color, and functionality, necessitating continuous refrigeration, which is not feasible in many markets.
Cream compositions comprising specific lipid, protein, emulsifier, thickener, and mineral concentrations that minimize browning and maintain natural characteristics during UHT processing, resisting destabilization and temperature fluctuations.
The compositions retain natural flavor, color, and functionality, remaining stable and functional despite temperature changes, eliminating the need for continuous refrigeration.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to creams, particularly dairy and non-dairy creams, including coffee cream, half-and-half, cultured cream, sour or acidic cream, light cream, whipped cream, heavy cream, creamers, dry cream, and cream analogs, as well as methods for making such creams and cream products. The present invention particularly relates to the production of creams and cream products that preserve the original natural cream color, maintain natural flavor and mouthfeel characteristics, and enhance shelf stability when processed at ultra-high temperatures (UHT). Furthermore, the UHT creams of the present invention resist destabilization when exposed to temperature fluctuations, thereby maintaining flavor, color, and functionality. [Background technology]
[0002] Dairy cream is a concentrated fat product produced from milk that may contain other acceptable dairy and / or permitted non-dairy ingredients, such as emulsifiers and stabilizers. Such creams can be produced by separating milk to produce a cream base. The cream base is then further processed by adding appropriate dairy and other acceptable ingredients. Alternatively, creams can be produced by blending various concentrated milk fat components with liquid or dry dairy ingredients and water to produce recombined cream products. Recombined creams and / or recombined whipped creams are processed at high shear to properly emulsify the dairy fat with available proteins and / or added emulsifiers. Cream analogs, non-dairy creams, and dairy cream substitutes can also be produced with other optional acceptable ingredients, including alternative fat and / or protein sources, such as suitable plant-based fats, milk proteins, other suitable proteins, water, and / or emulsifiers and stabilizers.
[0003] Many creams are made with different fat contents to simultaneously meet relevant regulatory requirements and customer functionality expectations. The Codex Alimentarius Standard for Cream and Conditioned Cream (Codex Standard 288-1976) specifies a minimum fat content of 10% (w / w) for cream [Part 3.3 Composition]. Similarly, Chapter 21 of the U.S. Standards of Identity, Food and Drugs, specifies that "cream" must contain ≥ 18% milk fat [§ 131.3(a)], heavy whipping cream must contain ≥ 36% milk fat [§ 131.150], light cream must contain ≥ 18% but ≤ 30% milk fat [§ 131.155], and light whipping cream must contain ≥ 30% but ≤ 36% milk fat [§ 131.157]. Whipping cream typically contains ≥ 30% milk fat to enhance whipping performance and functionality.
[0004] Cream is typically pasteurized using a heat treatment that kills pathogenic microorganisms. However, standard pasteurization heat treatments do not eradicate heat-resistant spoilage microorganisms present in the cream. Thus, pasteurized cream still requires refrigeration to inhibit microbial spoilage and thereby achieve an acceptable shelf life.
[0005] Instead, UHT heat treatment, such as at ≥ 140°C for 2 seconds, essentially kills all microorganisms present in the cream, which greatly enhances the shelf life of the cream at refrigeration temperatures. However, such heat treatment promotes Maillard browning, which changes the cream's white color to various shades of tan to brown and produces a distinctive cooked, caramelized flavor. The intensity of the UHT heat treatment proportionally increases the degree of color and flavor change. While UHT heat treatment prevents microbial spoilage, exposing UHT cream to fluctuating temperatures also promotes undesirable physical changes, including phase separation, thickening, and / or coagulation. Therefore, UHT cream still requires continuous refrigeration to remain flavorful and functional.
[0006] Unfortunately, many markets cannot provide continuous refrigeration during storage, transportation, and / or display. UHT creams in these markets are often exposed to temperatures of ≥ 30°C before refrigerated storage is re-established. Such temperature fluctuations often result in UHT cream and whipped cream coagulating, which creates pouring difficulties, increases whipping time, reduces overrun, and reduces the ability to retain the desired whipped shape, e.g., loose mounds (Hoffmann, 1999, Storage stability of UHT whipping cream, Kieler Milchwirtschaftliche Forschungsberichte 51(2), 125-136). Finally, the low pH of 4.6 in sour cream or acid cream promotes casein coagulation during UHT heating, resulting in casein curdling or thickening, releasing free whey and destroying the functionality of the sour cream or acid cream. Summary of the Invention [Problem to be solved by the invention]
[0007] It is an object of the present invention to provide an improved or alternative cream product.
[0008] Other objects of the present invention will become apparent from the following description, given by way of example only: References herein to external sources of information include patent specifications and other literature which generally provide a context for considering the features of the present invention. Unless otherwise noted, reference to such sources of information shall not be construed as an admission that such information constitutes prior art in any jurisdiction describing the creams and methods of manufacture of the present invention. [Means for solving the problem]
[0009] Thus, the present invention broadly includes cream compositions comprising lipids, optionally proteins, one or more emulsifiers, one or more thickeners or stabilizers, minerals, and optionally lactose, which minimize browning during UHT processing, maintain natural cream color, preserve natural cream flavor and mouthfeel characteristics (creamy, mouth-watering feel, smoothness), maintain functionality, e.g., whipping, and resist destabilization when exposed to temperature fluctuations.
[0010] In one aspect, the present invention provides a method for producing a pharmaceutical composition comprising: a) about 7.5 to about 65% by weight lipid; b) from about 0% to about 2%, preferably from about 0.5% to about 1.2%, by weight of protein per liter of cream whey; c) from about 0.01% to about 1.0% by weight of one or more emulsifiers; d) from about 0.05% to about 3%, preferably from about 0.05% to about 0.3%, by weight of one or more thickeners or stabilizers; e) about 30 mM to about 120 mM total cations per liter of cream whey; and f) about 25 mM to about 120 mM total anions per liter of cream whey A cream composition comprising:
[0011] In another aspect, the present invention provides a method for producing a pharmaceutical composition comprising: a) about 7.5 to 65% by weight lipid; b) from about 0% to about 2%, preferably from about 0.5% to about 1.2%, by weight of protein per liter of cream whey; c) from about 0.01% to about 1.0% by weight of one or more emulsifiers; d) from about 0.05% to about 3%, preferably from about 0.05% to about 0.3%, by weight of one or more thickeners or stabilizers; e) about 5 to about 60 mM total divalent cations per liter of cream whey; f) about 25 to about 60 mM total monovalent cations per liter of cream whey; and g) about 25 to about 120 mM total anions per liter of cream whey, including about 5 to about 15 mM citrate per liter of cream whey A cream composition comprising:
[0012] In a further aspect, the present invention provides a method for preparing a cream composition of the present invention, the method comprising: a) separating the first dairy liquid to obtain a cream base; b) optionally blending a lipid source, such as a high fat dairy liquid, into the cream base to form a lipid-enriched dairy liquid; c) blending acceptable dairy or non-dairy ingredients, including minerals, one or more emulsifiers, and one or more thickeners or stabilizers, into a cream base or lipid-enriched dairy liquid; d) homogenizing the cream base or lipid-enriched dairy liquid to form a homogenized dairy liquid containing added acceptable dairy or non-dairy ingredients; e) heating the homogenized dairy liquid, including added acceptable dairy or non-dairy ingredients, to obtain a cream composition having: i) from about 7.5% to about 65% by weight lipid; ii) from about 0% to about 2% by weight protein per liter of cream whey; iii) from about 0.01% to about 1.0% by weight of one or more emulsifiers; iv) from about 0.05% to about 3% by weight of one or more thickeners or stabilizers; v) from about 30 mM to about 120 mM total cations per liter of cream whey; and vi) from about 25 mM to about 120 mM total anions per liter of cream whey. Includes:
[0013] In some embodiments, the method includes a pasteurization step at any stage of the process. For example, the initial dairy liquid, the cream base, the lipid-enriched dairy liquid, the cream base or lipid-enriched dairy liquid with added acceptable dairy or non-dairy ingredients, the homogenized dairy liquid, or the cream composition may be pasteurized. Preferably, the method includes pasteurizing i) the initial dairy liquid before step a), or ii) the lipid-enriched dairy liquid before step c).
[0014] In some embodiments, the method comprises the additional step of adjusting the pH of the cream base or lipid-enriched dairy liquid prior to step d).
[0015] In a further aspect, the present invention provides a method for preparing a cream composition of the present invention, the method comprising: a) providing dairy liquid permeate or artificial whey as the dairy liquid base; b) blending acceptable dairy or non-dairy ingredients, including one or more emulsifiers and one or more thickeners or stabilizers, into a dairy liquid base; c) blending a lipid source, such as a high-fat dairy liquid, into a dairy liquid base with added dairy or non-dairy ingredients to form a lipid-enriched dairy liquid; d) homogenizing the lipid-enriched dairy liquid to form a homogenized lipid-enriched dairy liquid; e) heating the homogenized lipid-enriched dairy liquid to obtain a cream composition having: i) about 7.5% to about 65% by weight lipid; ii) about 0% to about 2% by weight protein per liter of cream whey; iii) about 0.01% to about 1.0% by weight of one or more emulsifiers; iv) about 0.05% to about 3% by weight of one or more thickeners or stabilizers; and v) about 30 mM to about 120 mM total cations per liter of cream whey; and vi) about 25 mM to about 120 mM total anions per liter of cream whey. Includes:
[0016] In some embodiments, the method includes a pasteurization step at any stage of the process. For example, the dairy liquid base, the dairy liquid base with added acceptable dairy or non-dairy ingredients, the lipid-enriched dairy liquid, the homogenized lipid-enriched dairy liquid, or the cream composition may be pasteurized. Preferably, the method includes pasteurizing the lipid-enriched dairy liquid prior to step d).
[0017] In some embodiments, the method comprises the additional step of adjusting the pH of the lipid-enriched dairy liquid prior to step d).
[0018] The following embodiments may relate to any of the above aspects in any combination.
[0019] In various embodiments, the cream composition can be coffee cream, whipped cream, half and half, cultured cream, light cream, whipped cream, heavy cream, dry cream, recombined cream, recombined whipped cream, creamer, sour or acidified cream. Preferably, the cream is UHT cream, such as UHT whipped cream.
[0020] In various embodiments, the composition may comprise about 10% or more lipid by weight, e.g., about 25% to about 40% lipid by weight. Preferably, the lipid comprises one or more mammalian milk lipids, more preferably one or more bovine milk lipids, selected from the group consisting of cream, high-fat cream, reconstituted cream powder, anhydrous milk fat (AMF), ghee, butter, beta-serum powder, whole milk powder (WMP), high-fat milk protein concentrate, or any combination of any two or more thereof. Alternatively or additionally, the lipid comprises one or more refined and / or hydrogenated vegetable fat sources selected from the group consisting of palm, palm kernel, coconut, soybean, rapeseed, cottonseed, sunflower seed, corn, safflower seed, rice bran oil, sesame oil, olive oil, fractions thereof, or any combination of any two or more thereof. In various embodiments, the composition may comprise any two or more, any three or more, or any four or more of these lipid components. Preferably, the lipid comprises cream, high fat cream, reconstituted cream powder, anhydrous milk fat (AMF) or any combination of any two or more of these.
[0021] In various embodiments, the composition can comprise about 10, 18, 25, 27, 30, 33, 35, 36, or 40% lipid by weight, and a useful range can be selected between any of these values (e.g., about 25 to about 40, about 25 to about 35, about 25 to about 30, about 27 to about 40, about 30 to about 40, about 33 to about 40, about 35 to about 40, or about 37 to about 40% by weight).
[0022] In various embodiments, the composition may comprise about 10 to about 18% by weight lipid (i.e., half and half). In other embodiments, the composition may comprise about 18% or more by weight lipid. In various embodiments, the composition may comprise about 18 to about 30% by weight lipid (i.e., FDA Light Cream). In various embodiments, the composition may comprise about 30 to about 36% by weight lipid (i.e., FDA Light Whipping Cream). In other embodiments, the composition may comprise about 36% or more by weight lipid (i.e., FDA Heavy Whipping Cream).
[0023] In various embodiments, the composition may contain from about 0% to about 2% by weight of protein per liter of cream whey. Suitable protein sources are known to those skilled in the art and include dairy, egg, plant, and food-grade microbial and algal proteins. Preferably, the composition comprises one or more mammalian milk proteins, more preferably one or more bovine milk proteins, wherein the protein comprises a protein source selected from the group consisting of milk, skim milk, cream, whole milk, acid whey, sweet whey, whole milk powder (WMP), skim milk powder (SMP), buttermilk powder (BMP), acid whey powder, sweet whey powder, caseinate, sodium caseinate, calcium caseinate, whey protein concentrate (WPC), whey protein isolate (WPI), milk protein isolate (MPI), milk protein concentrate (MPC), modified MPC derivatives, and micellar casein. Alternatively or additionally, the protein comprises one or more non-dairy sources selected from plant or animal sources, such as soy, egg, and / or pea protein, or any combination of any two or more of these. In various embodiments, the composition may comprise any two or more, or any three or more, or any four or more of these components. Preferably, the protein comprises milk, skim milk, cream, whole milk, whole milk powder (WMP), skim milk powder (SMP), buttermilk powder (BMP), caseinate, sodium caseinate, calcium caseinate, whey protein concentrate (WPC), whey protein isolate (WPI), milk protein isolate (MPI), milk protein concentrate (MPC), modified MPC derivatives, micellar casein, or any combination of any two or more of these.
[0024] In various embodiments, the composition may comprise about 0, 0.25, 0.5, 0.75, 1, 1.25, 1.5, 1.75, or 2% by weight of protein per liter of cream whey, and useful ranges may be selected from any of these values (e.g., about 0 to about 1.5, about 0.5 to about 1.5, about 1 to about 2, or about 0 to about 0.5% by weight of protein per liter of cream whey). Preferably, the composition comprises about 0 to about 1.2%, more preferably about 0 to about 0.5%, e.g., 0 to about 0.25% or 0.25 to about 0.5% by weight of protein per liter of cream whey.
[0025] In various embodiments, the composition can include from about 0.01% to about 1.0% by weight of one or more emulsifiers selected from the group consisting of proteins, phospholipids, including phospholipids from milk fat globule membranes, buttermilk powder, beta-serum powder (the dried aqueous phase removed from pasteurized dairy cream during the production of AMF), or emulsifiers listed in Codex Alimentarius Standard 288-1976 for cream, such as lecithin, mono- and diglycerides, distilled monoglycerides, acid esters of mono-diglycerides, including lactic acid, citric acid, acetic acid, diacetyltartaric acid, and tartaric acid, polysorbates (Tween), sorbitan esters of fatty acids (SPANS), sucrose esters, polyglycerol esters of fatty acids, propylene glycol esters of fatty acids, sodium stearoyl lactylate, or calcium stearoyl lactylate, or any combination of any two or more of these. In various embodiments, the composition can include any two or more, or any three or more, or any four or more of these components. Preferably, the one or more emulsifiers are selected from the group consisting of proteins, phospholipids from milk fat globule membranes, buttermilk powder, beta-serum powder, lecithin, mono- and diglycerides, distilled monoglycerides, acid esters of mono- and diglycerides including lactic acid, citric acid, acetic acid, diacetyltartaric acid and tartaric acid, polysorbates, sorbitan esters of fatty acids, sucrose esters, polyglycerol esters of fatty acids, propylene glycol esters of fatty acids, sodium stearoyl lactylate or calcium stearoyl lactylate, or any combination of any two or more thereof. More preferably, the one or more emulsifiers comprise two or more of lecithin, mono- and diglycerides, polysorbates, sucrose esters and propylene glycol esters of fatty acids.
[0026] In various embodiments, the compositions may comprise about 0.01, 0.025, 0.05, 0.075, 0.1, 0.2, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, or 1.0 wt. % of one or more emulsifiers, and useful ranges may be selected from any of these values (e.g., from about 0.01 to about 1.0, from about 0.025 to about 1.0, from about 0.05 to about 1.0, from about 0.075 to about 1.0, from about 0.1 to about 1.0, from about 0.2 to about 1.0, from about 0.4 to about 1.0, from about 0.5 to about 1.0, or from about 0.6 to about 1.0 wt. %).
[0027] In various embodiments, the composition can include from about 0.05% to about 3%, preferably from about 0.3% or from about 0.05% to about 3%, by weight of one or more thickeners or stabilizers selected from the group consisting of, for example, carrageenan, guar gum, locust bean gum, tara gum, gellan gum, xanthan gum, gum arabic, microcrystalline cellulose (MCC), carboxymethyl cellulose (CMC), cellulose derivatives, propylene glycol alginate, sodium alginate, pectin, gelatin, starch, starch derivatives, citrus fiber, or any combination of any two or more of these. In various embodiments, the composition can include any two or more, or any three or more, or any four or more of these components. Preferably, the one or more thickening or stabilising agents are selected from the group consisting of carrageenan, guar gum, locust bean gum, tara gum, gellan gum, xanthan gum, gum arabic, microcrystalline cellulose (MCC), carboxymethyl cellulose (CMC), cellulose derivatives, propylene glycol alginate, sodium alginate, pectin, gelatin, starch or starch derivatives or citrus fibres or any combination of any two or more thereof. More preferably, the one or more thickening or stabilising agents comprise xanthan, carrageenan and guar gum.
[0028] In various embodiments, the compositions may comprise about 0.05, 0.075, 0.1, 0.15, 0.2, 0.25, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 1.5, 2, 2.5, or 3 wt. % of one or more thickeners or stabilizers, and useful ranges may be selected from any of these values (e.g., from about 0.05 to about 5, from about 0.05 to about 4, from about 0.05 to about 3, from about 0.05 to about 2, from about 0.05 to about 1, from about 0.05 to about 0.9, from about 0.05 to about 0.8, from about 0.05 to about 0.7, from about 0.05 to about 0.6, from about 0.05 to about 0.5, from about 0.05 to about 0.4, or from about 0.05 to about 0.3 wt. %.
[0029] In various embodiments, the monovalent cations in the composition include sodium and potassium. Preferably, the composition can include 25, 30, 40, 50, or 60 mM monovalent cations per liter of cream whey, and useful ranges can be selected from any of these values (e.g., about 40 to about 60 mM, about 45 to about 55 mM, or about 47.5 to about 52.5 mM monovalent cations per liter of cream whey).
[0030] In various embodiments, the divalent cations in the composition include calcium and magnesium. Preferably, the composition can include 5, 8, 10, 15, 20, 30, 40, 50, or 60 mM divalent cations per liter of cream whey, and a useful range can be selected from any of these values (e.g., about 8 to about 20 mM, about 9 to about 15 mM, or about 10.5 to about 12.5 mM divalent cations per liter of cream whey). In various embodiments, for example, when acid whey or acid permeate is used as the dairy liquid base, the useful range of divalent cations can be higher, for example, about 25 to about 60 mM, about 35 to about 50 mM, or about 40 to about 45 mM divalent cations per liter of cream whey.
[0031] In various embodiments, the total cations in the composition comprise the sum of sodium, potassium, calcium, and magnesium. Preferably, the composition can include 30, 40, 45, 50, 60, 70, 80, 90, 100, 110, or 120 mM total cations per liter of cream whey, and useful ranges can be selected from any of these values (e.g., about 45 to about 110 mM, about 48 to about 65, about 50 to about 100, about 55 to about 95, about 60 to about 85, or about 75 to about 85 mM total cations per liter of cream whey).
[0032] In various embodiments, the total anions in the composition comprise the sum of phosphate, chloride, and citrate. Preferably, the composition can comprise 25, 30, 35, 40, 50, 60, 70, 80, 90, 100, or 120 mM total anions per liter of cream whey, and useful ranges can be selected from any of these values (e.g., about 25 to about 90 mM, about 30 to about 80, about 35 to about 75, or about 50 to about 65 mM total anions per liter of cream whey).
[0033] In various embodiments, the composition may include 5, 7, 9, 11, 13, or 15 mM citrate per liter of cream whey, and useful ranges may be selected from any of these values (e.g., about 6.5 to about 13 mM, about 7 to about 11 mM, about 7 to about 9 mM, or about 7.5 to about 8.5 mM citrate per liter of cream whey).
[0034] Suitable sources for the identified cations, anions, and citrate may include dairy and non-dairy sources. Dairy sources may include permeate produced by membrane filtration of milk or whey. Membrane filtration includes microfiltration (MF), ultrafiltration (UF), and nanofiltration (NF). The permeate may undergo further membrane filtration, ion exchange, and / or electrodialysis processing to fractionate or concentrate proteins, carbohydrates, cations, anions, and / or citrate. Suitable fractionation techniques include nanofiltration and ion exchange. The permeate and / or permeate fraction may be further concentrated and / or dried; for example, the dairy source may be permeate powder. The dried or powdered permeate may be reconstituted before use. Lactose may also be removed from the permeate to provide another suitable source of cations and anions, such as phosphate, chloride, and citrate. Suitable non-dairy mineral sources may include artificial milk serum (SMUF) preparations prepared as described by Jenness and Koops (1962. Preparation and properties of a salt solution which simulates milk ultrafiltrate. Netherlands Milk and Dairy J. 16:153-164).
[0035] In certain embodiments, the composition may further comprise one or more natural or artificial sweeteners. Sweeteners that may be used in the cream of the present invention include one or more sugars, such as lactose, hydrolyzed lactose, fructose, sucrose, galactose, dextrose, and / or molasses. Combinations of other sweet carbohydrates and sugar alcohols or artificial sweeteners may also be used. For example, sugar alcohols such as xylitol, sorbitol, lactitol, maltitol, and isomalt. In various embodiments, the composition may comprise from about 0.001 to about 6% by weight of the sweetener, preferably from about 0.05 to about 5% by weight, e.g., from about 1 to about 4.5% by weight, from about 1.5 to about 4.5% by weight, from about 2 to about 4% by weight, from about 3 to about 4% by weight, or from about 3.5 to about 4% by weight.
[0036] In various embodiments, the composition further comprises a sweetener at a concentration of sweetness equivalent to 0.3% to 0.9% sucrose. As used herein, the sweetness equivalent to 1% (or other given amount) sucrose ("SES") refers to the amount of sweetener that would need to be added to a 250 ml glass of water to provide the same sweetness as a separate 250 ml glass of water containing 1% (or other given amount) sucrose. For example, lactose is about 6.67 times sweeter than sucrose, so 6.67% lactose is equivalent to about 1% SES. Similarly, aspartame is about 200 times sweeter than sucrose, so 0.005% aspartame is equivalent to about 1% SES.
[0037] Preferably, the sweetener is lactose. In various embodiments, the composition may contain about 2% to about 6% by weight of lactose, preferably about 3 to 5% by weight, for example, about 3.5 to about 4.5% by weight, about 3 to about 4% by weight, or about 3.5 to about 4% by weight.
[0038] In other embodiments, the sweetener is fructose. Typically, fructose is 1.73 times sweeter than sucrose, so 0.58% fructose is equivalent to about 1% SES. In various embodiments, the composition may contain from about 0.17% to about 0.52% by weight of fructose. In other embodiments, the sweetener is sorbitol, where sorbitol is 1.67 times sweeter than sucrose, so 1.67% sorbitol is equivalent to about 1% SES. In various embodiments, the composition may contain from about 0.5% to about 1.5% by weight of sorbitol.
[0039] In certain embodiments, the composition may further comprise a buffer salt or chelating salt, preferably about 0 to about 0.03% by weight, e.g., about 0.01 to about 0.025% by weight. The buffer salt or chelating salt may be selected from, but is not limited to, orthophosphate, polyphosphate, and citrate, or any combination of any two or more thereof. For example, in certain exemplary embodiments, the buffer salt or chelating salt is a polyphosphate, e.g., sodium polyphosphate or potassium polyphosphate.
[0040] In various embodiments, the composition, when whipped using a bowl and whisk at 4-10°C, may exhibit an overrun of at least about 80%, e.g., at least 85, 90, 95, 100, 110, 120, 130, 140, 150, 160, 170, 180, 190, 200, 210, 220, 230, or 240%, and a useful range may be selected from any of these values (e.g., about 90 to about 240, about 100 to about 240, about 120 to about 240, about 140 to about 240, about 160 to about 240, about 160 to about 220, about 180 to about 220, or about 200 to about 220%). In some embodiments, the composition maintains an overrun of greater than about 150% following whipping, e.g., greater than about 160%, greater than about 170%, greater than about 180%, greater than about 190%, greater than about 200%, or greater than about 220%.
[0041] In various embodiments, the composition may exhibit improved gas canister performance compared to standard creams. In various embodiments, the number of shakes of a standard gas canister containing the composition required to achieve a good initial loose load is less than about 20 shakes, e.g., 5, 10, or 15 shakes, and a useful range may be selected from any of these values (e.g., 5 to 10 shakes). Preferably, the number of shakes required to achieve a good initial loose load is about 10 or less for the initial loose load and in increments of about 5 thereafter.
[0042] In various embodiments, the composition can produce about 45, about 50, about 55, or about 60 loose portions of acceptable quality (i.e., firm with acceptable edge definition and little or no loss of definition after 15 minutes at ambient temperature) per kilogram of liquid creamer, and a useful range can be selected from any of these values (e.g., about 50 to about 60 loose portions per kilogram of liquid creamer). In various embodiments, when loose portions of acceptable quality can no longer be produced from the canister, the amount of cream remaining in the canister is less than about 15% of the original liquid cream volume, preferably less than 10% of the original liquid cream volume, and more preferably less than 6%.
[0043] In various embodiments, the composition is maintained at 25° C. for 24 hours, followed by 10° C. for 24 hours, followed by 1 s at 5° C. -1 The apparent viscosity may exhibit a change of less than about 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100% as measured at a shear rate of 100%, and a useful range may be selected from any of these values (e.g., about 50 to about 100, about 50 to about 90, about 50 to about 80, or about 60 to about 100%). Preferably, the change is less than about 100% or less than about 50%.
[0044] In various embodiments, the composition is maintained at 5° C. for 1 s after two or three or more cycles of holding at 25° C. or 30° C. for 24 hours followed by holding at 10° C. for 24 hours. -1 The apparent viscosity may exhibit a change of less than about 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100% as measured at a shear rate of 100%, and a useful range may be selected from any of these values (e.g., about 50 to about 100, about 50 to about 90, about 50 to about 80, or about 60 to about 100%). Preferably, the change is less than about 100% or less than about 50%.
[0045] In various embodiments, the composition is subjected to one, two, or three or more cycles of holding at 30° C. for 24 hours followed by holding at 10° C. for 24 hours, followed by 1 s at 5° C. -1 The apparent viscosity may exhibit a change of less than about 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100% as measured at a shear rate of 100%, and a useful range may be selected from any of these values (e.g., about 50 to about 100, about 50 to about 90, about 50 to about 80, or about 60 to about 100%). Preferably, the change is less than about 100% or less than about 50%.
[0046] In various embodiments, the composition may exhibit a change in storage modulus, G', using microstrain rheology, after one, two, or three or more cycles of 15-minute holds at 25°C or 30°C (or 32.5°C), using 0.05% strain at 5°C and a 0.1 Hz frequency, of less than about 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 100%, as measured using, for example, the method described in Example 2 herein; useful ranges may be selected from any of these values (e.g., about 50 to about 100, about 50 to about 90, about 50 to about 80, or about 60 to about 100%). Preferably, the change is less than about 100% or less than about 50%.
[0047] In various embodiments, the composition may exhibit acceptable pourability, where the composition pours from the pack without sticking or lumping after one, two, or three or more cycles of holding for 24 hours at 25°C followed by holding for 24 hours at 10°C.
[0048] Other aspects of the present invention will become apparent from the following description, given by way of example only, and with reference to the accompanying drawings.
[0049] As used herein, the term "and / or" means "and" or "or" or both.
[0050] As used herein, "(s)" following a noun refers to the plural and / or singular form of the noun.
[0051] Reference to a range of numbers disclosed herein (e.g., 1 to 10) also incorporates reference to every rational number within that range (e.g., 1, 1.1, 2, 3, 3.9, 4, 5, 6, 6.5, 7, 8, 9, and 10) and also to any range of rational numbers within that range (e.g., 2 to 8, 1.5 to 5.5, and 3.1 to 4.7); thus, all subranges of every range explicitly disclosed herein are intended to be hereby specifically disclosed. These are merely examples of what is specifically intended, and all possible combinations of numerical values between the minimum and maximum values recited are considered to be expressly described in this application in a similar manner.
[0052] The term "comprising," as used herein, means "consisting at least in part of." When interpreting a description herein that includes that term, all features prefaced by that term in the respective description or claim must be present, although other features may also be present. Related terms, such as "comprises" and "comprised," are to be interpreted in the same manner.
[0053] The present invention may also be broadly stated to include the parts, elements and features, individually or collectively, referred to or indicated in the specification of this application, and any and all combinations of any two or more of said parts, elements or features, and where a specific integer having a known equivalent in the art to which the invention pertains is described herein, such known equivalent is deemed to be incorporated herein as if individually set forth. [Brief explanation of the drawings]
[0054] [Figure 1]1 is a flow diagram of one embodiment of a manufacturing process for producing the UHT cream of the present invention from cream obtained from milk. The cream produced by separating milk is optionally combined with acceptable dairy and / or acceptable non-dairy ingredients to adjust the fat, protein, carbohydrate, cation, anion, and citrate content.
[0055] [Figure 2] 1 is a flow diagram of another embodiment of the present invention for producing a cream using recombination technology. First, acceptable dairy and / or non-dairy ingredients are combined with other acceptable dairy and / or non-dairy ingredients. The blend is then combined with a suitable concentrated fat source to produce the UHT cream or cream analog of the present invention having the desired fat, protein, carbohydrate, cation, anion, and citrate content. DETAILED DESCRIPTION OF THE INVENTION
[0056] The present application provides cream compositions, such as coffee creamers, whipped creams, and cream analogs, that contain specific combinations of ingredients that result in temperature-stable creams that can withstand temperature fluctuations while maintaining functionality (e.g., whipping properties) and avoiding defects.
[0057] Furthermore, the present invention provides creams that retain their natural white color, natural cream flavor and mouthfeel characteristics, and desired functionality despite temperature cycling, for example, during transportation or UHT processing. These creams can be made with a wide range of fat contents while containing a specific range of protein, carbohydrate, and mineral concentrations. Finally, the sour cream or acid cream of the present invention allows for UHT processing without destabilization, such as casein coagulation, and without thickening. Preferably, the cream is UHT cream.
[0058] In particular, the composition has good flavor and mouthfeel with low levels of protein / no protein due to the addition of minerals and optionally lactose.
[0059] In certain embodiments, the UHT cream is temperature and ambient stable over temperature cycles ranging from 4°C to about 25°C. Preferably, the UHT cream is stable over temperature cycles ranging from 4°C to about 45°C. In certain embodiments, the UHT cream is temperature and ambient stable after multiple temperature cycles. Preferably, the UHT cream is temperature and ambient stable after 3, 5 or 7 temperature cycles. Even more preferably, the UHT cream is temperature and ambient stable after 10 cycles.
[0060] The term "temperature cycling" refers to a sequential change in cream temperature. Temperature cycling can refer to a change in cream temperature from a refrigerated temperature of about 4 to about 6°C to an ambient temperature of 18 to about 30°C. A temperature cycling cycle is completed by subsequently cooling the cream back to a refrigerated temperature of about 4 to 6°C.
[0061] The term "shelf-stable" refers to the period during which a UHT cream can be stored at a temperature of ≥ 25°C without adverse changes in its physical and functional properties, including curdling, an unacceptable increase in viscosity, phase separation and loss of functionality.
[0062] Temperature cycling typically increases the viscosity of the product, which often becomes high enough to solidify or gel the cream in the package. Once solidified or gelled, the cream cannot be poured from the package. Temperature cycling of UHT cream can also cause stratified layers (creaming), inhibit whipping performance, significantly increase or decrease whipping time, exude free serum, and suppress whipped volume (reduce overrun). These temperature cycling effects limit the ability to maintain the desired whipped shape during storage; for example, decorated loose serving shapes may become too soft to maintain a regular shape or too hard to produce jagged, sharp edges. Such changes often result in creams with an unacceptable appearance. Therefore, despite their microbiological stability, UHT creams and whipped creams must undergo continuous refrigeration to preserve their quality and functionality.
[0063] An example of a UHT cream with good ambient temperature cycling stability includes a cream that remains a pourable liquid or otherwise retains the desired liquid cream properties essentially free from solidification or gelling following exposure to temperature cycling.
[0064] The cream of the present invention contains from about 7.5 to about 65% fat, consistent with relevant regulatory and customer requirements. Table 1 shows the cream fat requirements of Codex Alimentarius and some relevant U.S. Food and Drug Administration. Whipping cream typically contains ≥ 30% milkfat to enhance whipping performance and functionality.
[0065] [Table 1]
[0066] In certain embodiments, the UHT cream comprises a fat content ranging from about 25 to about 50% by weight, typically from about 25 to about 35%. In exemplary embodiments of the UHT cream composition, the fat content is from about 30 to about 35% by weight. The fat can be derived from any dairy source, such as cream, fresh cream, high-fat cream, cream powder, anhydrous milkfat, ghee, buttermilk powder, whole milk powder, high-fat milk protein concentrate, beta-serum, butter, or whole milk powder. In various embodiments, non-dairy fats are excluded.
[0067] Alternatively or additionally, any suitable fat or oil suitable for food use may be used. Suitable alternative fat sources include the group of refined and / or hydrogenated vegetable fat sources consisting of palm, palm kernel, coconut, soybean, rapeseed, cottonseed, sunflower seed, corn, safflower seed, rice bran oil, sesame oil, olive oil, etc., and fractions thereof.
[0068] FIG. 1 illustrates one embodiment for producing the UHT cream of the present invention. First, whole milk is received and separated into cream and skim milk fractions by a centrifuge using standard procedures. The initial whole milk or the resulting skim milk and cream fractions may optionally be pasteurized. The fat content of such cream is typically about 40 to about 45%, but can vary as needed. Optionally, the cream produced by the first separation of the milk may subsequently undergo a second separation by a specialized centrifuge to produce a "high fat cream" or "plastic cream" having about 70 to ≥80% milk fat. These processing procedures are well established and deeply embedded in the public domain.
[0069] Figure 2 shows another embodiment for producing the UHT cream of the present invention. Acceptable dairy and / or non-dairy ingredients are combined and the final anion and cation content is adjusted. Optionally, suitable dairy and / or non-dairy stabilizers and / or emulsifiers are blended into the initial mixture of anions and cations. An appropriate dairy fat component and other dairy and non-dairy ingredients are then blended into the previously prepared blend to produce the desired fat content, as described above. Optionally, the prepared mixture may be pasteurized and pH adjusted. Optionally, the mixture is homogenized to produce a recombined cream of the desired composition. Preferably, the recombined cream is heated to UHT temperatures. Optionally, the heated cream may be homogenized, optionally allowing for a second homogenization process. The adjusted cream is then packaged, or preferably aseptically packaged and cooled.
[0070] The first milk, cream, high fat cream, recombined cream, cream analogues, etc. may optionally be pasteurized or heat treated at any stage in the process. The finished cream preferably undergoes UHT heat treatment immediately prior to aseptic packaging.
[0071] The allowable dairy and non-dairy ingredients are then: a) about 7.5% to about 65% by weight lipid; b) from about 0% to about 2%, preferably from about 0.5% to about 1.2%, by weight of protein per liter of cream whey; c) from about 0.01% to about 1.0% by weight of one or more emulsifiers; d) from about 0.05% to about 3%, preferably from about 0.05% to about 0.3%, by weight of one or more thickeners or stabilizers; e) about 30 mM to about 120 mM total cations per liter of cream whey; and f) about 25 mM to about 120 mM total anions per liter of cream whey and blended into a conditioning cream as needed to produce a composition comprising:
[0072] As used herein, "cream whey" is cream from which the milk fat globules have been removed. Walstra, P., and R. Jenness. 1984. Dairy Chemistry and Physics. John Wiley & Sons. Pg. 5-6.
[0073] In some embodiments, acceptable dairy and non-dairy ingredients can be selected and blended into the conditioned cream to adjust the specific cation, total divalent cation, total monovalent cation, total cation, total anion, and citrate content as needed to produce the desired composition.
[0074] In various embodiments, the present invention provides UHT creams having 0 to about 2.0% total milk protein, where total milk protein is defined and calculated as follows (Cunniff, P. ed. 1997. §33.2.11 AOAC Official Method 991.20 Nitrogen (Total) in Milk. Section G. Calculations, Official Methods of Analysis of AOAC International. 16th ed., 3rd Revision. Vol. II. AOAC International. Gaithersburg, MD. (Capt. 33.2.11): Total milk protein = total milk nitrogen % x 6.38.
[0075] These creams maintain specific cation and anion concentrations to minimize browning and retain their original cream color, preserve their natural cream flavor and mouthfeel characteristics, and withstand fluctuations between refrigeration and ambient temperatures. Preferably, the finished cream: a) about 7.5 to 65% by weight lipid; b) from about 0% to about 2%, preferably from about 0.5% to about 1.2%, by weight of protein per liter of cream whey; c) from about 0.01% to about 1.0% by weight of one or more emulsifiers; d) from about 0.05% to about 3%, preferably from about 0.05% to about 0.3%, by weight of one or more thickeners or stabilizers; e) about 5 to about 60 mM total divalent cations per liter of cream whey; f) about 25 to about 60 mM total monovalent cations per liter of cream whey; and g) about 25 to about 120 mM total anions per liter of cream whey, including about 5 to about 15 mM citrate per liter of cream whey Contains:
[0076] Suitable dairy ingredients for providing total protein, carbohydrates, specific cations, selected anions, and citrate are as described herein. The cation and anion content of these ingredients can be altered by ion exchange or membrane filtration.
[0077] In certain embodiments, the UHT cream comprises a total protein content of 0-2% by weight, e.g., 0.0001-2% by weight or 0.15-0.5% by weight. For example, in certain exemplary embodiments of the UHT cream composition, the protein content is 0.1-1.2%. Preferably, the composition comprises one or more mammalian milk proteins, more preferably one or more bovine milk proteins, and the protein comprises a protein source selected from the group consisting of milk, skim milk, cream, whole milk, acid whey, sweet whey, whole milk powder (WMP), skim milk powder, acid whey powder, sweet whey powder, buttermilk powder, sodium caseinate, calcium caseinate, potassium caseinate, casein hydrolysate, whey protein concentrate, whey protein isolate (WPI), whey protein hydrolysate, milk protein isolate (MPI), milk protein concentrate (MPC), and modified MPC derivatives or micellar casein. In various embodiments, non-dairy proteins are excluded. Alternatively or additionally, the non-dairy protein source may be selected from the group of non-dairy sources consisting of soy, egg and / or pea protein or any combination of two or more thereof.
[0078] Specific dairy sources of the identified cations, anions, and citrates may include permeate produced by membrane filtration of milk or whey. Membrane filtration includes microfiltration (MF), ultrafiltration (UF), and nanofiltration (NF). The permeate may undergo further membrane filtration, ion exchange, and / or electrodialysis processing to fractionate or concentrate proteins, carbohydrates, cations, anions, and / or citrates. Suitable fractionation techniques include nanofiltration and ion exchange. In some embodiments, the permeate and / or permeate fraction may be at a natural pH or from an acidic source. The permeate and / or permeate fraction may be further concentrated and / or dried; for example, the dairy source may be permeate powder. The dried or powdered permeate may be reconstituted before use. Lactose may also be removed from the permeate to provide another suitable source of cations and anions, such as phosphate, chloride, and citrate. Suitable non-dairy mineral sources may include artificial milk serum (SMUF) preparations prepared as described by Jenness and Koops (1962. Preparation and properties of a salt solution which simulates milk ultrafiltrate. Netherlands Milk and Dairy J. 16:153-164).
[0079] Suitable proteins, carbohydrates, and minerals can be combined directly. Non-dairy sources of identified cations and anions can be combined to prepare SMUF or similar preparations. Suitable minerals can also be added as inorganic salts, including sodium, potassium, calcium, and magnesium salts of chloride and / or phosphate. Alternatively, suitable minerals can be added as organic salts, including calcium, magnesium, sodium, and / or potassium salts of lactate, citrate, lactobionate, and the like.
[0080] Relevant regulations often allow for the addition of selected functional ingredients to various creamers. The Codex Standard for Creams and Conditioned Creams, Section 4, Food Additives (Codex STAN 288-1976) allows for the addition of ingredients specifically identified as stabilizers, acidity regulators, thickeners, and emulsifiers, and packaging gases and propellants. Relevant US 21 CFR sections allow creamers to contain ingredients identified as emulsifiers, stabilizers, and nutritive sweeteners.
[0081] The cream of the present invention may contain suitable acceptable emulsifiers as listed in Codex Standard 288-1976 selected from the group consisting of proteins, phospholipids from milk fat globule membranes, buttermilk powder, beta-serum, beta-serum powder (the dried aqueous phase removed from pasteurized dairy cream during the production of AMF), lecithin, mono- and diglycerides, distilled monoglycerides, acid esters of mono-diglycerides including lactic acid, citric acid, acetic acid, diacetyltartaric acid and tartaric acid, polysorbates (Tween), sorbitan esters of fatty acids (SPANS), sucrose esters, polyglycerol esters of fatty acids, propylene glycol esters of fatty acids, sodium stearoyl lactylate or calcium stearoyl lactylate or combinations thereof.
[0082] In a particular embodiment, the UHT cream comprises an emulsifier content of about 0.05 to about 1.0% by weight, for example about 0.075 to about 0.5% by weight or about 0.1 to about 0.3% by weight. The emulsifier may be selected from dairy and non-dairy emulsifiers, such as, but not limited to, proteins, phospholipids from milk fat globule membranes, buttermilk powder, beta-serum powder, lecithin, mono- and diglycerides, polysorbates or Tween, sucrose esters, lactic acid esters of mono-diglycerides (Lactem), citric acid esters of mono-diglycerides (Citrem), acetate esters of mono-diglycerides, polyglycerol esters of fatty acids.
[0083] In certain embodiments, the UHT cream comprises a stabilizer content of about 0.05 to about 0.2% by weight, for example, about 0.075 to about 0.175% by weight. In certain exemplary embodiments, the stabilizer content is about 0.075 to about 0.1%. The cream may contain suitable acceptable thickeners and stabilizers, such as those selected from the group consisting of carrageenan, guar gum, locust bean gum, tara gum, gellan gum, xanthan gum, gum arabic, microcrystalline cellulose (MCC), carboxymethyl cellulose (CMC), cellulose derivatives, propylene glycol alginate, alginate, sodium alginate, pectin, gelatin, or citrus fiber, or combinations thereof.
[0084] In certain embodiments, the stabilizer in the UHT cream and / or whipped composition is provided by starch or a starch derivative, hi certain embodiments, the stabilizer comprises up to 3% by weight of starch or a starch derivative.
[0085] In certain embodiments, the UHT cream comprises a buffer or chelating salt content of 0 to about 0.03% by weight, e.g., about 0.01 to about 0.025% by weight. The buffer salt may be selected from, but is not limited to, orthophosphates, polyphosphates, and citrates. For example, in certain exemplary embodiments, the chelating agent is sodium polyphosphate or potassium polyphosphate.
[0086] In certain embodiments, the UHT cream may contain a food acid. The food acid may be selected from lactic acid, glucono-delta-lactone (GDL), phosphoric acid, malic acid, fumaric acid, tartaric acid, or citric acid, or any food-grade acid. The cream may be acidified by the addition of acidified permeate or acid whey.
[0087] The creams of the present invention can be prepared from dairy cream as the initial cream base. Dairy cream is a concentrated fat fraction typically obtained from whole milk by centrifugation. Such creams maintain the original natural milk fat globule membrane that emulsifies the fat.
[0088] Thus, in a further aspect, the present invention provides a method for preparing a cream composition of the present invention, comprising the steps of: a) separating the first dairy liquid to obtain a cream base; b) optionally blending a lipid source, such as a high fat dairy liquid, into the cream base to form a lipid-enriched dairy liquid; c) blending acceptable dairy or non-dairy ingredients, including minerals, one or more emulsifiers, and one or more thickeners or stabilizers, into the lipid-enriched dairy liquid; d) homogenizing the lipid-enriched dairy liquid to form a homogenized lipid-enriched dairy liquid containing added acceptable dairy or non-dairy ingredients; e) heating the homogenized lipid-enriched dairy liquid with added acceptable dairy or non-dairy ingredients to obtain a cream composition having: i) from about 7.5% to about 65% by weight lipid; ii) from about 0% to about 2% by weight protein per liter of cream whey; iii) from about 0.01% to about 1.0% by weight of one or more emulsifiers; iv) from about 0.05% to about 3% by weight of one or more thickeners or stabilizers; v) from about 30 mM to about 120 mM total cations per liter of cream whey; and vi) from about 25 mM to about 120 mM total anions per liter of cream whey. Includes:
[0089] Alternatively, the cream of the present invention may be produced by blending or "recombining" the concentrated milk fat component with liquid or dry dairy ingredients and water to produce a recombined cream product.
[0090] Thus, in a further aspect, the present invention provides a method for preparing a cream composition of the present invention, comprising the steps of: a) providing a dairy liquid permeate or artificial whey as a dairy liquid base; b) blending acceptable dairy or non-dairy ingredients, including one or more emulsifiers and one or more thickeners or stabilizers, into a dairy liquid base; c) blending a lipid source, such as a high-fat dairy liquid, into a dairy liquid base containing added dairy or non-dairy ingredients to form a lipid-enriched dairy liquid; d) homogenizing the lipid-enriched dairy liquid to form a homogenized lipid-enriched dairy liquid; e) heating the homogenized lipid-enriched dairy liquid to obtain a cream composition having: i) about 7.5% to about 65% by weight lipid; ii) about 0% to about 2% by weight protein per liter of cream whey; iii) about 0.01% to about 1.0% by weight of one or more emulsifiers; iv) about 0.05% to about 3% by weight of one or more thickeners or stabilizers; and v) about 30 mM to about 120 mM total cations per liter of cream whey; and vi) about 25 mM to about 120 mM total anions per liter of cream whey. Includes:
[0091] Dairy liquid permeate or artificial whey can be prepared as described above.
[0092] In one embodiment, acceptable dairy or non-dairy ingredients are blended together to produce the protein, carbohydrate, cation, anion, and citrate content required for the finished cream. The blend ingredients are mixed together with adequate shear to produce a uniformly dispersed, stable mixture. Suitable acceptable ingredients, such as emulsifiers and stabilizers, can also be incorporated into the previously prepared ingredient blend using sufficient shear. An appropriate concentrated fat component is then incorporated into the previously prepared ingredient blend to produce a "recombined cream." The recombined cream can be processed using high shear and homogenization to properly emulsify the dairy fat with available protein and / or emulsifiers. Finally, the cream of the present invention can be produced by combining any of the previously described approaches: the addition of acceptable ingredients, the use of fractionation, and the use of recombined ingredients to produce the desired protein, carbohydrate, and mineral content. The prepared blend and other acceptable ingredients are then processed using typical UHT processing procedures, aseptic packaging, and cooling. Additionally, the ingredients acceptable as emulsifiers and stabilizers and the percentages used remain as previously described. [Example]
[0093] Example 1: Creams illustrating the invention include a control UHT cream having a typical composition and two exemplary creams of the invention made with proteins, carbohydrates, cations, anions, and citrates, and the two exemplary creams of the invention were made with permeate or SMUF.
[0094] A control UHT-like cream was prepared to demonstrate the temperature cycling problem in conventionally produced UHT creams. Cream processing began by mixing 1.0 g of a non-dairy stabilizer blend (carrageenan, guar, and xanthan gum) into 700 g of skim milk with sufficient shear to dissolve the stabilizer blend. Next, 1.8 g of a non-dairy emulsifier, Tween 60 (polyethylene glycol sorbitan monostearate, Sigma-Aldrich), was homogenously blended into the skim milk / stabilizer mixture. Finally, 300 g of melted anhydrous milk fat (Fonterra Co-operative Group, Ltd., Auckland, New Zealand) was mixed into the skim milk / stabilizer / Tween 60 mixture, and the mixture was homogenized with an Ultra-Turrax (Daigger Scientific, Inc., Vernon Hills, IL) at maximum speed for 3 minutes. The cream then underwent the final heating and homogenization steps described below.
[0095] The preparation of a UHT-like cream, exemplifying the first cream of the present invention, began with the collection of fresh permeate produced by ultrafiltration of pasteurized skim milk. Ultrafiltration processing was carried out at room temperature using a 10,000 D molecular weight cutoff membrane. Cream processing continued by completely dissolving 1.25 g of stabilizer blend in 700 g of fresh permeate. Next, 1.8 g of a non-dairy emulsifier, Tween 60, was homogenously blended into the permeate / stabilizer mixture. Finally, 300 g of melted anhydrous milk fat (Fonterra Co-operative Group, Ltd., Auckland, New Zealand) was mixed into the skim milk / stabilizer / Tween 60 mixture, and the mixture was homogenized with an Ultra-Turrax at maximum speed for 3 minutes. The cream then underwent a final heating and homogenization step as described below.
[0096] Preparation of a UHT-like cream, exemplifying another cream of the present invention, began with the preparation of SMUF by the procedure of Jenness and Koops (1962, as previously referenced). The SMUF was then mixed with sufficient lactose monohydrate (Fonterra Co-operative Group, Ltd., Auckland, New Zealand) to produce a finished mixture with 5% lactose monohydrate. Cream processing continued by mixing 1.25 g of stabilizer blend into 700 g of fresh SMUF with sufficient agitation to completely dissolve the stabilizer in the SMUF. Then, 1.8 g of a non-dairy emulsifier, Tween 60, was uniformly blended into the skim milk / stabilizer mixture. Finally, 300 g of melted anhydrous milk fat (Fonterra Co-operative Group, Ltd., Auckland, New Zealand) was mixed into the skim milk / stabilizer / Tween 60 mixture and the mixture was homogenized with an Ultra-Turrax operating at maximum speed for 3 minutes. The cream then underwent a final heating and homogenization step as described below.
[0097] Following initial homogenization, all cream samples were independently heated to 90°C, held for 10 minutes, and finally homogenized at 30 bar in a GEA Panda homogenizer (GEA New Zealand, Auckland). Samples were then independently cooled to refrigeration temperatures until further testing.
[0098] Table 2 shows the calculated compositions of three UHT-like creams reported in New Zealand and the composition of a UHT cream ("reference UHT cream").
[0099] [Table 2]
[0100] [Table 3]
[0101] [Table 4]
[0102] Example 2: The control, permeate and SMUF cream samples of Example 1 were analyzed for microstrain rheology during temperature cycling, functionality and iSi gas canister performance.
[0103] Rheology during temperature cycling Temperature cycling stability was measured using microstrain rheology. An MCR301 rheometer (Anton Paar, Germany) with a cup and bob system (CC27, Anton Paar) was used. Rheological properties (especially the storage modulus, G') were monitored during temperature cycling. The strain used was 0.05%, and the frequency was 0.1 Hz. In a typical measurement, the cup was pre-cooled to 5°C, and a cream sample (approximately 19 mL) was added to the cup. The bob was lowered into place, and a thin layer of vegetable oil was placed on the surface of the sample to prevent drying. The experiment was initiated. In the first step, the rheological properties were monitored at 5°C for approximately 15 minutes. In the second step, the rheological properties were monitored as the temperature was increased from 5°C to 32.5°C at a rate of approximately 2°C per minute. In the third step, the rheological properties were monitored at 32.5°C for approximately 15 minutes. The fourth step monitored the rheological properties as the temperature was decreased from 32.5° C. to 5° C. at a rate of about 2° C. per minute. The fifth step monitored the rheological properties at 5° C. for about 60 minutes.
[0104] Functional analysis Functional analysis included measurements of whipping time, overrun, refined loose-mound characteristics, and refrigerated loose-mound stability. Whipping characteristics were determined by placing 400 mL of cream in a Hobart mixer (Model N-50) with a pre-chilled bowl (5±0.5°C) and whipping at speed 3 with a balloon whisk until stiff peaks were achieved or until 5 minutes had elapsed. Stiff peaks were determined visually by an experienced operator. Typically, a stiff peak is reached when the whipped cream separates from the sides of the bowl and forms a distinctive, stiff, stable peak on the tip of the inverted whisk. To determine overrun at the stiff peak, the weights of the unwhipped and whipped cream were measured independently in 120 mL cups. The following formula was used to calculate overrun:
number
[0105] Analyses included measurements of whipping time, overrun, garnishing of the whipped cream onto the balls using a piping bag with a sawtooth tip or tip (10 mm diameter) and stability of the balls after 24 hours of storage at 4°C.
[0106] Analysis of iSi gas canister performance began by placing 400 mL of each individual cream sample into a separate chilled (4°C) iSi canister (iSi Vienna, Austria). Each canister was then sealed and filled with nitrous oxide gas. Data collected included the number of shakes required to produce the first acceptable loose portion, the number of acceptable loose portions produced, and the calculated amount of waste. Overrun and loose portion formation were determined immediately. Loose portion stability was initially determined after a 15-minute hold period at ambient temperature.
[0107] Table 3 shows the specific G' values for the creams prepared for the examples at the beginning and end of the temperature cycle.
[0108] [Table 5]
[0109] The initial storage moduli G' of all creams produced for the Examples were between 7 and <5 Pa and could be considered nearly identical. However, the G' of the control sample, representing a typical cream, began to increase as the sample cooled from 32.5 to about 17°C. Ultimately, the G' of this sample increased to 410 Pa by the end of the temperature cycle, particularly during late refrigerated storage at about 5°C. A G' measurement of 410 Pa indicates the initial stage of gel formation and a cream with very poor temperature cycling stability.
[0110] In contrast, the G' of both the permeate and SMUF creams demonstrating the principles of the present invention remained nearly constant throughout and to the end of the temperature cycle. In fact, the G' of these creams at the end of the temperature cycle was approximately 5-10 Pa. Thus, both cream samples retained their highly desirable liquid cream properties without gelling despite exposure to temperature cycling.
[0111] [Table 6]
[0112] The functionality data presented in Table 4 show a major difference in whipping time. A typical control cream required 5 minutes to whip. In contrast, the inventive creams made with permeate and SMUF were whipped in 30-33 seconds. The overrun for the typical control cream was 140%. In contrast, the overrun for the inventive creams made with permeate and SMUF was considerably higher at 215% and 240%, respectively. All creams produced well-defined, loose mounds that exhibited collapse and disintegration after 24 hours at 4°C.
[0113] Table 5 provides the iSi gas canister performance for the creams made in this example.
[0114] [Table 7]
[0115] A typical control cream required 50-60 shakes to produce an acceptable pile with a well-defined edge, while both the permeate and SMUF creams of the present invention required fewer than 10 shakes. The typical control cream produced an equivalent of 38-44 piles per kg of liquid cream, while the permeate and SMUF creams yielded 56 piles / kg of liquid cream. The piles of the typical control cream were soft, spread out, and lacked definition after 15 minutes of standing at ambient conditions. In contrast, the permeate and SMUF creams produced firm piles with good definition that remained substantially unchanged after 15 minutes of standing at ambient temperature. The typical control experienced approximately 20% waste, while the calculated cream waste for the permeate and SMUF creams of the present invention was approximately 6-4.3%, respectively.
[0116] Example 3: To determine the effect of skim milk versus permeate as the continuous phase on the sensory properties of 30% fat recombined cream, four 30% creams with non-dairy emulsifier additions and varying levels of hydrocolloid / stabilizer were recombined in a food-grade laboratory.
[0117] Formulations and Methods The continuous or serum phase was fresh milk permeate, skim milk, or skim milk diluted with drinking water. The fat phase was anhydrous milk fat (AMF). The preparation method, including homogenization pressure, was similar to that used for the preparation of the cream in Example 1, except that the cream was not heated. After production, samples were cooled to 4°C and used for informal sensory testing within 24 hours of production.
[0118] The liquid cream samples were informally tasted in randomized order by nine untrained participants who were asked to comment on each of the creams and rank them in order of preference, including ties. A second series of two recombined creams containing only one emulsifier, two concentrations of stabilizer, and either skim milk or milk permeate as the continuous phase were then tasted.
[0119] Results and Discussion Summary results for the first series of creams are shown in Table 6.
[0120] [Table 8]
[0121] [Table 9]
[0122] The data in Table 6 show that to untrained participants, all recombined creams had a creamy flavor and mouthfeel, but differences in viscosity were noted, and some participants commented on the flavor and wateriness in the mouth. An oxidized or slight cardboard-like flavor was detected by some tasters, which appears to be a function of the quality of the AMF used. When these samples were ranked for liking (Table 7), the least preferred sample was the one in which the skim milk phase was diluted with water (Sample B). The most preferred cream was Sample C (the control skim milk cream), followed closely by Sample A (the permeate cream with a high stabilizer level).
[0123] [Table 10]
[0124] Cream samples E and F (Table 3) were both described as creamy, providing a lingering sensation on the oral surface and having very similar tastes. The viscosity of the permeated cream (F) was described as lower than that of the skim milk cream (E).
[0125] conclusion Untrained participants were able to detect differences in mouthfeel and creamy flavor when the skim milk phase of the recombined cream was diluted with water. Replacing the skim milk phase with permeate gave a cream with sensory properties similar to the control. These differences in sensory properties are expected to be present after UHT processing.
[0126] Example 4: Creams illustrating the present invention include six exemplary creams of the present invention made with permeate or SMUF.
[0127] [Table 11]
[0128] Ingredients for producing exemplary creams containing 40% milk fat in permeate (Formula 1) or 20% milk fat in permeate (Formula 2) are shown in Table 9. UHT-like creams Formulation 1 and Formulation 2, which exemplify creams of the present invention, were prepared as described for the cream made with permeate in Example 1.
[0129] Ingredients for producing exemplary creams containing 40% milk fat in SMUF (Formula 4) or 20% milk fat in SMUF (Formula 5) are shown in Table 9. UHT-like creams Formulations 4 and 5, which exemplify creams of the present invention, were prepared as described for the cream made with SMUF in Example 1.
[0130] After heating and homogenization, a cream containing 30% milk fat in permeate (Formula 3) was prepared by mixing 1.25 L of 40% fat cream (Formula 1) with 1.25 L of 20% fat cream (Formula 2) with sufficient stirring to obtain a homogeneous mixture. After heating and homogenization, a cream containing 30% milk fat in SMUF (Formula 6) was prepared by mixing 1.25 L of 40% fat cream (Formula 4) with 1.25 L of 20% fat cream (Formula 5) with sufficient stirring to obtain a homogeneous mixture. The cream samples were then independently cooled to refrigeration temperatures until further testing.
[0131] Table 10 shows the calculated compositions of six UHT-like creams. The component definitions are the same as in Table 2.
[0132] [Table 12]
[0133] The permeate and SMUF cream samples were analyzed by microstrain rheology during temperature cycling, viscosity before and after temperature cycling, fat globule size before and after temperature cycling, functionality before and after temperature cycling, and iSi gas canister performance before and after temperature cycling.
[0134] Rheology during temperature cycling: Temperature cycling stability was measured as described for Example 2, except that steps 3, 4, and 5 were repeated in sequence two more times, giving a total of three temperature cycles from 5°C to 32.5°C to 5°C.
[0135] Viscosity, Fat Globule Size, Functionality and Temperature Cycle for iSi Gas Canister Testing Each cream was subsampled into a sterile container. To prevent microbial growth, 0.02% by weight of sodium azide was added to all subsampled creams from a 20% by weight stock solution. All creams were first cooled to 5°C for at least 24 hours before temperature cycling. To complete one cycle from 25°C to 10°C, the creams were then transferred to a temperature-controlled storage unit maintained at 25°C for 24 hours, followed by 24 hours of storage in a separate temperature-controlled storage unit maintained at 10°C. All cycled creams were then transferred back to refrigerated storage (5°C) for 24 hours before further testing.
[0136] To complete five cycles from 25° C. to 10° C., the cream was transferred to a temperature-controlled storage unit maintained at 25° C. for 24 hours, followed by 24 hours of storage in a separate temperature-controlled storage unit maintained at 10° C. This cycle from 25° C. to 10° C. was repeated four more times in sequence, for a total of five cycles from 25° C. to 10° C. After completing the five cycles, the cream was again transferred to refrigerated storage (5° C.) for 24 hours before further testing.
[0137] Fat globule size measurement The volume-weighted mean diameter (D 4,3) was calculated from the fat globule size distribution measured by laser light scattering using a Mastersizer 2000 (Malvern Instruments). One part cream was gently mixed with nine parts of a dissociating agent known as Walstra's solution and held statically for 10 minutes before analysis. Walstra's solution was prepared by mixing 0.375 wt.% ethylenediaminetetraacetic acid (EDTA) and 0.125 wt.% Tween 20 with deionized water, then adjusting the pH to 10 with 0.1 M sodium hydroxide.
[0138] Viscosity measurement The apparent viscosities of the original and temperature cycled creams were measured at 1 s using a 4 cm, 4 °C cone and plate geometry fitted to an AR2000 rheometer (TA instruments). -1 A total of 150 viscosity data points were collected over 10 minutes, and the reported viscosity was the average of the final 100 viscosity data points.
[0139] Functional analysis Functionality analysis included measurements of whipping time, overrun, and loose portion characteristics produced, and was performed as described in Example 2, except that whipping characteristics were determined using a Kenwood Major Titanium (KM020) whipper at speed 6. Analysis of iSi gas canister performance was performed as described in Example 2. Overrun and loose portion formation were determined immediately.
[0140] Table 11 shows the specific G' values for the creams prepared for the examples at the beginning and end of each temperature cycle.
[0141] [Table 13]
[0142] For each cream, G' did not change significantly between the initial measurement and after three temperature cycles. Thus, all cream samples retained their highly desirable liquid cream properties without solidifying despite exposure to multiple temperature cycles.
[0143] Table 12 shows the apparent viscosities for the creams prepared for the examples at the beginning and end of one and five temperature cycles.
[0144] [Table 14]
[0145] For each cream sample, the viscosity did not change significantly between the initial measurement and after five temperature cycles, while the control cream from Example 2 began to solidify after only one temperature cycle (Table 3). Thus, all inventive cream samples retained their highly desirable liquid cream properties without solidifying, despite exposure to multiple temperature cycles.
[0146] Table 13 shows the fat globule size for the creams prepared for the examples at the beginning and end of one and five temperature cycles.
[0147] [Table 15]
[0148] For each cream, the fat globule size did not change significantly between the initial measurement and after the three temperature cycles. Thus, all cream samples retained their highly desirable liquid cream properties without solidifying or damaging the fat globules despite exposure to multiple temperature cycles.
[0149] Table 14 shows the whipping properties for the creams prepared for the examples initially and after one (SC1) and five (SC5) temperature cycles.
[0150] [Table 16]
[0151] All of the inventive creams prepared with permeate and SMUF whipped rapidly, produced high overrun, and formed well-defined mounds even after temperature cycling. Thus, all cream samples produced highly desirable whipped cream characteristics despite exposure to multiple temperature cycles.
[0152] Table 15 shows the iSi gas canister performance for the creams prepared for the examples initially and after one (SC1) and five (SC5) temperature cycles.
[0153] [Table 17]
[0154] All of the inventive permeate and SMUF creams required a low number of shakes to produce acceptable mounds and produced multiple, well-formed mounds with low waste. In contrast, the control cream from Example 2 required multiple shakes (50-60) and had approximately 20% wastage (Table 5). Thus, all of these inventive cream samples produced highly desirable gas canister performance of whipped cream despite exposure to multiple temperature cycles.
[0155] Example 5: Creamers illustrating the present invention include two exemplary creamers of the present invention made with modified SMUF formulations with modified mineral compositions or using sucrose instead of lactose as the sweetener.
[0156] [Table 18]
[0157] The ingredients for producing an exemplary cream containing 30% milkfat in modified SMUF are shown in Table 16. Preparation of Formulation 7, a UHT-like cream with different sweeteners, exemplifying a cream of the present invention, was performed as described for the cream made with SMUF in Example 1, except that the SMUF was mixed with enough sucrose to produce a finished mixture with 0.8% sucrose. This level of sucrose is roughly equivalent in sweetness to 5% lactose. Cream processing continued as described in Example 1.
[0158] Preparation of Formula 8, a UHT-like cream with a different SMUF mineral composition, exemplifying a cream of the present invention, was carried out as described for Formula 7 above, except that the SMUF formula was first modified to remove all calcium and magnesium from the SMUF. The modified SMUF was then mixed with enough lactose monohydrate to produce a finished mix with 5% lactose monohydrate. Cream processing continued as described in Example 1.
[0159] Table 17 shows the calculated compositions of the four UHT-like cream samples. Component definitions are the same as in Table 2.
[0160] [Table 19]
[0161] The modified SMUF cream samples were analyzed by microstrain rheology during temperature cycling, viscosity before and after temperature cycling, fat globule size before and after temperature cycling, functionality before and after temperature cycling, and iSi gas canister performance as described in Example 4. Rheology during temperature cycling, temperature cycling for viscosity, fat globule size, functionality, and iSi gas canister testing and viscosity measurements were all performed as described in Example 4.
[0162] Table 18 shows the specific G' values for the creams prepared for the examples at the beginning and then after each temperature cycle on the rheometer.
[0163] [Table 20]
[0164] For each cream, G' did not change significantly between the initial measurement and after one and three temperature cycles. Cream samples prepared with the modified SMUFs remained liquid after multiple temperature cycles, while the control cream from Example 2 began to solidify after only one temperature cycle (Table 3). Thus, the cream samples prepared with the modified SMUFs retained their highly desirable liquid cream properties without solidifying despite exposure to temperature cycles.
[0165] Table 19 shows the apparent viscosity for examples of creams made with modified SMUF at the beginning and after one and five short temperature cycles.
[0166] [Table 21]
[0167] For each cream sample made with the modified SMUF, the viscosity did not change significantly between the initial measurement and after five temperature cycles. The samples remained liquid after temperature cycling. Thus, the cream samples prepared with the modified SMUF retained their highly desirable liquid cream properties without solidifying, despite exposure to multiple temperature cycles.
[0168] Table 20 shows the fat globule size for the creams prepared for the examples at the beginning and end of one and five short temperature cycles.
[0169] [Table 22]
[0170] For each cream made with the modified SMUF, the fat globule size did not change significantly between the initial measurement and after three temperature cycles. Thus, all cream samples made with the modified SMUF retained highly desirable liquid cream properties without solidifying or significantly damaging the fat globules despite exposure to multiple temperature cycles.
[0171] Table 21 shows the whipping properties for the creams prepared for the examples initially and after one (SC1) and five (SC5) temperature cycles.
[0172] [Table 23]
[0173] All of the creams of the present invention prepared with the modified SMUF whipped rapidly, produced high overrun, and formed well-defined mounds, even in the temperature cycled samples. Thus, all cream samples produced highly desirable whipped cream characteristics despite exposure to multiple temperature cycles.
[0174] Table 22 shows the iSi gas canister performance for the creams first prepared for the examples.
[0175] [Table 24]
[0176] All of the inventive creams made with modified SMUF required fewer shakes to produce acceptable mounds and produced many well-formed mounds with low waste. The inventive modified SMUF creams produced high-quality, well-defined mounds. Thus, all cream samples produced highly desirable gas canister performance of whipped cream, while the control cream from Example 2 had more wastage (about 20%) and required a higher number of shakes (50-60) (Table 5).
[0177] Example 6: Creams illustrating the present invention include four exemplary creams of the present invention made with permeate or SMUF. The pH of the exemplary creams was either the natural pH of the cream or adjusted to pH 4.6 with lactic acid.
[0178] [Table 25]
[0179] Ingredients for producing exemplary creams containing 30% milk fat in SMUF (Formulas 9 and 10) are shown in Table 23. Preparation of UHT-like creams exemplifying creams of the present invention was carried out as described for creams made with SMUF in Example 1, except that the cream for Formula 10 was adjusted to pH 4.6 with 25% lactic acid after heating, after the final heating and homogenization step described below.
[0180] The ingredients for producing exemplary creams containing 30% milk fat in the permeate (Formulas 11 and 12) are shown in Table 23. Preparation of UHT creams exemplifying the creams of the present invention was carried out as described for the cream made with permeate in Example 1, except that after the initial homogenization, the cream for Formula 12 was adjusted to pH 4.6 with 25% lactic acid. The cream then underwent a final UHT heating and homogenization step as described below.
[0181] The creams in Formulations 9 and 10 were first homogenized, then independently heated to 90°C, held for 10 minutes, and finally homogenized in a GEA Panda homogenizer (GEA New Zealand, Auckland). The creams in Formulations 11 and 12 were first homogenized, then heated by UHT at 142°C for 4 seconds, and finally homogenized and aseptically packaged. The independent cream samples were then cooled to refrigerated temperatures until further testing.
[0182] Table 24 shows the calculated compositions of the four UHT-like cream samples. Component definitions are the same as in Table 2.
[0183] [Table 26]
[0184] The permeate and SMUF cream samples were analyzed by microstrain rheology during temperature cycling as described in Example 2. Fat globule size before and after temperature cycling, functionality before and after temperature cycling, and iSi gas canister performance were analyzed as described in Example 4.
[0185] Viscosity measurement using a Brookfield viscometer The apparent viscosity of the original and temperature cycled creams was determined using a Brookfield viscometer (Brookfield DV1 Prime) coupled with spindle # 62. The viscosity was determined at a rotation speed of 30 rpm.
[0186] Table 25 shows the specific G' values for the creams prepared for the examples at the beginning and end of each temperature cycle.
[0187] [Table 27]
[0188] For each cream, G' did not change significantly between the initial measurement and after one temperature cycle. The cream samples remained liquid after temperature cycling. Thus, the cream samples at both neutral and acidic pH retained their highly desirable liquid cream properties without solidifying despite exposure to temperature cycling. In contrast, the control cream in Example 2 began to solidify after one cycle and had poor temperature cycling stability (Table 3).
[0189] Table 26 shows the apparent viscosities for creams of Formulations 11 and 12 made with permeate at the beginning and end of one and five short temperature cycles.
[0190] [Table 28]
[0191] For each cream sample made with permeate, the viscosity did not change significantly between the initial measurement and after five temperature cycles. The samples remained liquid after temperature cycling. Thus, the cream samples at both neutral and acidic pH retained their highly desirable liquid cream properties without solidifying, despite exposure to multiple temperature cycles.
[0192] Table 27 shows the fat globule size for the creams prepared for the examples at the beginning and end of 1 and 5 temperature cycles.
[0193] [Table 29]
[0194] For each cream made with permeate, the fat globule size did not change significantly between the initial measurement and after five temperature cycles. Thus, all cream samples retained their highly desirable liquid cream properties despite exposure to multiple temperature cycles without solidifying or significantly damaging the fat globules.
[0195] Table 28 shows the whipping properties for the creams prepared for the examples, initially and after one (SC1) and five (SC5) temperature cycles. The samples made with permeate had whipping properties measured initially and after one and five temperature cycles.
[0196] [Table 30]
[0197] All of the creams of the present invention prepared with permeate and SMUF whipped rapidly, produced high overrun, and formed well-defined mounds, even in the samples at pH 4.6 and those subjected to temperature cycling. Thus, all cream samples produced highly desirable whipped cream characteristics despite exposure to multiple temperature cycles.
[0198] Table 29 shows the iSi gas canister performance for the creams first prepared for the examples.
[0199] [Table 31]
[0200] All of the inventive permeate and SMUF creams required a small number of shakes to produce acceptable mounds, producing many well-formed mounds and minimizing waste. The inventive permeate and SMUF creams produced well-defined mounds, while the control cream from Example 2 required multiple shakes (50-60) and had a typical waste of about 20% (Table 5). Thus, the permeate and SMUF cream samples produced highly desirable gas canister performance for whipped cream.
[0201] Example 7: The creams illustrating the present invention include two exemplary creams of the present invention and are compared to a typical commercially available UHT whipped cream, which were made with permeate or permeate with added skim milk powder.
[0202] [Table 32]
[0203] The ingredients for producing an exemplary cream containing 30% milk fat in permeate (Formula 13) are shown in Table 30. A UHT cream exemplifying the cream of the present invention was prepared as described for the cream made with permeate in Example 1.
[0204] The ingredients for producing an exemplary cream containing 30% milk fat in permeate / skim milk powder (Formula 14) are shown in Table 30. A UHT cream exemplifying a cream of the present invention was prepared as described for the cream of Formula 13, except that the skim milk powder was completely dissolved in fresh permeate before the addition of the stabilizer blend.
[0205] Table 31 shows the calculated compositions of the two UHT-like cream samples. Component definitions are the same as in Table 2.
[0206] [Table 33]
[0207] The exemplary cream samples and a typical commercial UHT whipped cream were analyzed by microstrain rheology during temperature cycling, viscosity before and after temperature cycling, fat globule size before and after temperature cycling, functionality before and after temperature cycling, and iSi gas canister performance as described in Example 4.
[0208] Table 32 shows the specific G' values for the creams prepared for the illustrative examples and a typical commercial UHT whipped cream at the beginning and after each temperature cycle.
[0209] [Table 34]
[0210] For exemplary cream samples of the present invention made with permeate (Formula 13) or permeate / skim milk powder (Formula 14), G' did not change significantly between the initial measurement and after one, two, or three temperature cycles. The exemplary cream samples remained liquid after temperature cycling. Thus, the exemplary creams retained their highly desirable liquid cream properties without solidifying despite exposure to temperature cycling. For the commercially available UHT whipped cream, G' increased significantly after the first temperature cycle and remained high after subsequent temperature cycles. The commercially available UHT cream sample solidified after one cycle and remained solid after subsequent cycles, demonstrating poor temperature cycling stability.
[0211] Table 33 shows the apparent viscosity for an exemplary cream example and a typical commercial UHT whipped cream at the beginning and after one (SC1) and five (SC5) short temperature cycles.
[0212] [Table 35]
[0213] For exemplary cream samples of the present invention made with permeate (Formula 13) or permeate / skim milk powder (Formula 14), the viscosity did not change significantly between the initial measurement and after one and five temperature cycles. The exemplary cream samples remained liquid after temperature cycling. Thus, the exemplary cream samples retained their highly desirable liquid cream properties without solidifying despite exposure to temperature cycles. Commercially available UHT whipped cream thickened after one temperature cycle and was solid after five temperature cycles.
[0214] Table 34 shows the fat globule size for an exemplary cream example and a typical commercial UHT whipped cream at the beginning and after one and five short temperature cycles.
[0215] [Table 36]
[0216] For the exemplary cream samples of the present invention made with permeate (Formula 13) or permeate / skim milk powder (Formula 14), the fat globule size did not change significantly between the initial measurement and after five temperature cycles. Thus, the exemplary cream samples retained highly desirable liquid cream properties despite exposure to temperature cycles without solidifying or significantly damaging the fat globules. Commercially available UHT whipped cream became solid after five temperature cycles.
[0217] Table 35 shows the whipping properties for the creams prepared for the illustrative examples and a typical commercial UHT whipped cream, initially and after one (SC1) and five (SC5) short temperature cycles.
[0218] [Table 37]
[0219] Exemplary cream samples of the present invention made with permeate (Formula 13) or permeate / skim milk powder (Formula 14) whipped rapidly, produced high overrun, and formed well-defined loose piles, even after the samples were subjected to temperature cycling. Thus, despite exposure to temperature cycling, all cream samples produced the highly desirable whipping characteristics of whipped cream. The commercially available UHT whipped cream initially produced good loose piles, but had a longer whipping time and lower overrun than the cream of the present invention. The commercially available UHT whipped cream was solid after five temperature cycles.
[0220] Table 36 shows the iSi gas canister performance of the cream prepared for the illustrative examples and a typical commercial UHT whipped cream, initially and after one (SC1) and five (SC5) short temperature cycles.
[0221] [Table 38]
[0222] Exemplary cream samples of the present invention made with permeate (Formula 13) or permeate / skim milk powder (Formula 14) required less shaking to produce acceptable piles and produced better-formed piles with lower waste than typical commercially available UHT whipped cream. Creams of the present invention made with permeate (Formula 13) or permeate / skim milk powder (Formula 14) produced well-defined piles with good definition, even after temperature cycling. Thus, both cream samples of the present invention produced highly desirable gas canister performance for whipped cream. The commercially available UHT whipped cream solidified after five short temperature cycles and could not be tested.
[0223] Example 8: This example evaluates the sensory properties of 30% fat recombined dairy and non-dairy creams made with skim milk versus permeate, water plus lactose, or modified artificial whey (SMUF) as the continuous (serous) phase. The dairy creams were made with anhydrous milkfat, the non-dairy creams were made with palm oil, and the creams contained added non-dairy emulsifiers and stabilizers.
[0224] Formulations and Methods The continuous or serum phase was fresh skim milk, milk permeate as described in Example 1, modified SMUF (1.58 g / L monopotassium phosphate, 3.35 g / L tripotassium citrate monohydrate, 1.79 g / L calcium chloride dihydrate, 0.575 g / L sodium chloride, and 0.127 g / L potassium hydroxide), and 8 g / L sucrose to provide a sweetness equivalent to 5% lactose, or water plus 5% lactose. The fat phase was anhydrous milk fat (AMF) or refined palm oil. Creams were prepared using the preparation method and homogenization pressure used in Example 1, except that the cream in this example was not heated. Samples were cooled to 4°C after production and used for informal sensory testing within 48 hours of production.
[0225] The coded liquid cream samples were informally tasted by 23 untrained participants. Blind duplicates were included in the sample set. Participants were asked to comment on each of the creams and rank them in order of preference, which allowed for ties.
[0226] Results and Discussion Summarized results for a range of creams are shown in Table 37.
[0227] [Table 39]
[0228] The data in Table 37 show that to untrained participants, all recombined dairy fat creams (creams of the present invention) containing permeate or modified SMUF had a creamy flavor and mouthfeel. An oxidized or slightly stale, cardboard-like flavor was detected by many tasters, which may have been due to oxidation of the AMF. In contrast, the recombined dairy cream containing only AMF, lactose, and water was perceived as thin, watery, and lacking creamy flavor and mouthfeel, even though the cream contained 30% fat. The palm oil cream lacked the complex flavor of dairy fat but was perceived as creamy in the mouth.
[0229] When these samples were ranked for preference (Table 38), the least preferred samples were the AMF + lactose + water samples, followed closely by the coconut creams. Although the coconut creams had a creamy mouthfeel, they lacked milk fat flavor. The most preferred creams were those containing modified SMUFs, in which sucrose was used to replace the lactose component.
[0230] [Table 40]
[0231] conclusion Untrained participants were able to detect differences in mouthfeel and creamy flavor when the skim milk (serum) phase of recombined milkfat cream was replaced with water plus lactose. The addition of minerals to the serum phase with SMUF, modified SMUF containing sucrose, restored much of the creamy flavor and mouthfeel perception. Non-dairy (coconut) creams containing permeate or modified SMUF (sucrose) also had a creamy mouthfeel. These were the creams of the present invention.
[0232] Example 9: This example evaluates the sensory properties of 30% fat recombined non-dairy creams of the present invention made with water and lactose or artificial whey (SMUF). The non-dairy creams were made with palm oil or a blend of palm oil and sunflower oil. Additional recombined creams included a cream made with modified SMUF-AMF and five exemplary creams of the present invention containing non-dairy emulsifiers and stabilizers.
[0233] Formulations and Methods The continuous or serum phase was drinking water plus 5% lactose, SMUF containing 5% lactose as described in Example 1, or modified SMUF without calcium and magnesium and 5% lactose. The fat phase was refined palm oil or a blend of palm oil and sunflower oil (30:70) or AMF. The preparation method, including homogenization pressure, was similar to that used in preparing the cream in Example 1, except that the cream was not heated. Samples were cooled to 4°C after production and used for informal sensory testing within 24 hours of production. A commercially available 35% fat UHT dairy whipped cream served as a control.
[0234] The coded liquid cream samples were informally tasted by 12 untrained participants. Blind duplicates were included in the sample set. Participants were asked to comment on each of the creams and rank them in order of preference, including ties.
[0235] Results and Discussion Summarized results for a range of creams are shown in Table 39.
[0236] [Table 41]
[0237] Palm oil gave the non-dairy creamer a very white appearance. Table 39 shows that untrained participants judged the non-dairy creamer containing only water and lactose in the continuous phase as watery and lacking a creamy mouthfeel. The addition of SMUF to the water phase imparted some creamy sensation to the non-dairy creamer of the present invention. The bland flavor of these non-dairy palm oil creamers may be attributed to this refined fat source, which lacks the complex flavor of dairy fat. The addition of sunflower oil imparted an oxidized flavor to the creamer. The very poor quality of this oil source likely resulted in participants ranking this creamer as the worst of the creamers (Table 40). The most preferred non-dairy creamer was the palm oil creamer of the present invention containing SMUF, due to its medium creamy mouthfeel. Removal of Mg and Ca anions from the SMUF-containing AMF cream did not reduce the creamy mouthfeel or flavor.
[0238] [Table 42]
[0239] conclusion Untrained participants detected a difference in mouthfeel when the serum or aqueous phase of the recombined non-dairy fat cream contained only water and lactose versus SMUF and lactose. The addition of minerals to the serum phase with SMUF imparted some creamy sensation in the mouth to the non-dairy cream of the present invention. The addition of SMUF without Ca and Mg imparted a creamy flavor and mouthfeel to the AMF cream of the present invention.
[0240] Example 10: The creams of the present invention can be made with SMUF or milk permeate at fat levels of 7.5% or 50%.
[0241] [Table 43]
[0242] The ingredients for producing creams containing 7.5% milk fat in SMUF (Formula 21) or 50% milk fat in SMUF (Formula 22) are shown in Table 41. Preparation of UHT-like creams exemplifying creams of the present invention can be carried out as described for creams made with SMUF in Example 1.
[0243] The ingredients for producing creams containing 7.5% milk fat in the permeate (Formula 23) or 50% milk fat in the permeate (Formula 24) are shown in Table 41. Preparation of UHT-like creams exemplifying the creams of the present invention can be carried out as described for the cream made with permeate in Example 1. Table 42 shows the expected composition of the four UHT-like cream samples. Component definitions are the same as in Table 2.
[0244] [Table 44]
[0245] Cream samples, which can be prepared with 7.5% milk fat in SMUF (Formula 21), 50% milk fat in SMUF (Formula 22), 7.5% milk fat in permeate (Formula 23), or 50% milk fat in permeate (Formula 24), can be analyzed by microstrain rheology during temperature cycling, viscosity before and after short temperature cycling, fat globule size before and after short temperature cycling, whipping functionality before and after short temperature cycling, and iSi gas canister performance before and after short temperature cycling, as described for the previous examples. Additionally, cream samples, which can be prepared with 7.5% milk fat in SMUF (Formula 21) or 7.5% milk fat in permeate (Formula 23), can be tested for stability when used as a powdered creamer / creamer in hot beverages, such as coffee or tea.
[0246] Stability during temperature cycling using rheology: For each cream, G', as measured by rheology, is not expected to change significantly between the initial measurement and after one, two, or three temperature cycles. The cream samples are expected to remain liquid after temperature cycling. Thus, cream samples prepared with 7.5% milk fat in SMUF (Formula 21), 50% milk fat in SMUF (Formula 22), 7.5% milk fat in permeate (Formula 23), or 50% milk fat in permeate (Formula 24) are expected to retain highly desirable liquid cream properties without solidifying, despite exposure to multiple temperature cycles.
[0247] Viscosity (1s) before and after short temperature cycles -1 in): For each cream, the viscosity is not expected to change significantly between the initial measurement and after one or five short temperature cycles. The samples are expected to remain liquid after temperature cycling. Thus, cream samples prepared with 7.5% milk fat in SMUF (Formula 21), 50% milk fat in SMUF (Formula 22), 7.5% milk fat in permeate (Formula 23), or 50% milk fat in permeate (Formula 24) are expected to retain their highly desirable liquid cream characteristics without solidifying despite exposure to temperature cycling.
[0248] Fat globule size before and after short temperature cycling: For each cream, the fat globule size is not expected to change significantly between the initial measurement and after one or five temperature cycles. Thus, cream samples prepared with 7.5% milk fat in SMUF (Formula 21), 50% milk fat in SMUF (Formula 22), 7.5% milk fat in permeate (Formula 23), or 50% milk fat in permeate (Formula 24) are expected to retain highly desirable liquid cream properties without solidifying or significantly damaging the fat globules despite exposure to temperature cycles.
[0249] Whip characteristics before and after short temperature cycling Creams prepared with 7.5% milk fat in SMUF (Formula 21) or 7.5% milk fat in permeate (Formula 23) are not expected to have good whipping properties. The samples are not expected to be whipped into a firm structure, but rather to remain liquid and unable to be decorated to form a stable, loose pile. Creams prepared with 50% milk fat in SMUF (Formula 22) or 50% milk fat in permeate (Formula 24) are expected to whip rapidly, produce high overrun, and form well-defined, loose piles, even after being subjected to temperature cycling. Therefore, creams prepared with 50% milk fat in SMUF (Formula 22) or 50% milk fat in permeate (Formula 24) are expected to produce highly desirable whipping properties for whipped cream, despite exposure to temperature cycling.
[0250] iSi gas canister characteristics before and after short temperature cycling Cream samples prepared with 7.5% milk fat in SMUF (Formula 21) or 7.5% milk fat in permeate (Formula 23) are not expected to function in the iSi gas canister. Acceptable loose piles are not expected to form, and the cream is expected to remain liquid despite shaking in the canister. Creams prepared with 50% milk fat in SMUF (Formula 22) or 50% milk fat in permeate (Formula 24) are expected to require fewer shakes to produce acceptable loose piles and are expected to produce multiple, well-formed loose piles with low waste. Therefore, creams prepared with 50% milk fat in SMUF (Formula 22) or 50% milk fat in permeate (Formula 24) are expected to produce highly desirable gas canister performance for whipped cream.
[0251] Use in hot coffee / tea as powdered creamer / creamer Creamers prepared with 7.5% milk fat in SMUF (Formula 21) or 7.5% milk fat in permeate (Formula 23) are expected to perform well as powdered creamers / creamers when added to hot beverages, such as coffee or tea, with good whitening power and good appearance in the beverage, without defects such as feathering, coagulation, or sedimentation. Furthermore, creamers prepared with 7.5% milk fat in SMUF (Formula 21) or 7.5% milk fat in permeate (Formula 23) are expected to provide a satisfying creamy mouthfeel and smooth texture. Thus, creamers prepared with 7.5% milk fat in SMUF (Formula 21) or 7.5% milk fat in permeate (Formula 23) are expected to produce highly desirable hot beverage performance of powdered creamers / creamers for coffee / tea / beverages.
[0252] Sensory Each creamer is expected to provide a creamy mouthfeel, creamy flavor, and a good mouth surface retention. Formulations 21-24 are expected to have a flavor that is typical of UHT whipped cream at natural pH.
[0253] Example 11: The cream of the present invention can be made with whey powder or permeate powder.
[0254] [Table 45]
[0255] Table 43 shows ingredients that can be used to produce creams containing 30% milk fat in reconstituted permeate powder (Formula 25), 30% milk fat in reconstituted sweet whey powder (Formula 26), 30% milk fat in reconstituted sweet whey permeate powder (Formula 27), 30% milk fat in reconstituted lactated whey powder (Formula 28), or 30% milk fat in reconstituted lactated whey permeate powder (Formula 29).
[0256] Preparation of UHT creams exemplifying the creams of the present invention can be carried out as described for the creams made with permeates in Example 1, except that processing begins with the reconstitution of permeate powder (Formula 25), sweet whey powder (Formula 26), sweet whey permeate powder (Formula 27), lactated whey powder (Formula 28), or lactated whey permeate powder (Formula 29) in water with sufficient agitation to completely disperse the powders.
[0257] Table 44 shows the predicted composition of the five UHT-like cream samples.
[0258] [Table 46]
[0259] Creams can be prepared with reconstituted permeate powder or reconstituted whey powder, and these samples can be analyzed by microstrain rheology during temperature cycling, viscosity before and after short temperature cycling, fat globule size before and after short temperature cycling, whipping functionality before and after short temperature cycling, and iSi gas canister performance before and after short temperature cycling, as described for the previous examples.
[0260] Stability during temperature cycling using rheology: For each cream, G', as measured by rheology, is not expected to change significantly between the initial measurement and after one, two, or three temperature cycles. The cream samples are expected to remain liquid after temperature cycling. Thus, cream samples prepared with reconstituted permeate or whey powder at either neutral or acidic pH are expected to retain their highly desirable liquid cream properties without solidifying, despite exposure to multiple temperature cycles.
[0261] Viscosity (1s) before and after short temperature cycles -1 in): For each cream, the viscosity is not expected to change significantly between the initial measurement and after one or five temperature cycles. The samples are expected to remain liquid after temperature cycling. Thus, creams prepared with reconstituted permeate or whey powder at either neutral or acidic pH are expected to retain their highly desirable liquid cream properties without solidifying, despite exposure to multiple temperature cycles.
[0262] Fat globule size before and after short temperature cycling: For each cream, the fat globule size is not expected to change significantly between the initial measurement and after one or five temperature cycles. Thus, creams prepared with reconstituted permeate or whey powder at either neutral or acidic pH are expected to retain highly desirable liquid cream properties without coagulating or significantly damaging the fat globules despite exposure to multiple temperature cycles.
[0263] Whip characteristics before and after short temperature cycling Even after being subjected to cream and temperature cycling at acidic pH, each cream is expected to whip rapidly, produce a high overrun, and form a well-defined, loose mound. Thus, creams prepared with reconstituted permeate or whey powder at either natural or acidic pH are expected to produce the highly desirable whipping characteristics of whipped cream, despite exposure to multiple temperature cycles.
[0264] iSi gas canister characteristics before and after short temperature cycling Each cream is expected to require less shaking to produce an acceptable loose pile and is expected to produce a better formed loose pile with less waste. Thus, creams prepared with reconstituted permeate or whey powder at either neutral or acidic pH are expected to produce highly desirable gas canister performance for whipped cream.
[0265] Sensory Each creamer is expected to provide a creamy mouthfeel, creamy flavor, and a pleasant mouth-surface feel. Formula 25 has a flavor typical of UHT whipped cream at natural pH. The creams from Formulas 26, 27, 28, and 29 have some acidic undertones and some fermented flavors associated with the cheese and lactic casein origin of the whey powder / permeate powder.
[0266] industrial use The present invention provides a cream composition that is resistant to temperature cycles / fluctuations / thermal shocks and has functional properties including emulsion stability, pourability, whipping ability, and good flavor and mouthfeel characteristics. Therefore, the present invention has a wide range of applications in the food industry. Potential applications include whipped cream for topping, filling for cakes, decorative cream, topping for beverages, and filling for pastries, eclairs, cream pies, donuts, or mousses. In the unwhipped state, the cream can be used, for example, as a dessert cream, custard cream, in sauces, dressings, ganaches, and as a coffee creamer. In the above description, when reference is made to elements or integers that have known equivalents, such equivalents are included as if they were individually set forth.
[0267] While the present invention has been described by way of example and with reference to specific embodiments, it should be understood that modifications and / or improvements can be made without departing from the scope or spirit of the invention.
[0268] Furthermore, those skilled in the art will recognize that when features or aspects of the invention are described in terms of a Markush group, the invention is also thereby described in terms of any individual member or subgroup of members of the Markush group.
Claims
1. 1. A cream composition comprising: a) 7.5% to 65% by weight of lipids; b) 0% to 2%, preferably 0.5% to 1.2% by weight of protein per liter of cream whey; c) 0.01% to 1.0% by weight of one or more emulsifiers; d) 0.05% to 3% by weight, preferably 0.05% to 0.3% by weight, of one or more thickeners or stabilizers; e) 5% to 60 mmol total divalent cations per liter of cream whey; f) 25 mmol to 60 mmol total monovalent cations per liter of cream whey; and g) 25 mM to 120 mM total anions per liter of cream whey containing 5 mmol to 15 mmol of citrate per liter of cream whey; A cream composition comprising:
2. 10. The composition of claim 1, comprising 7.5 to 40% by weight of lipids.
3. 3. The composition of claim 1 or 2, wherein the lipid comprises a refined and / or hydrogenated vegetable fat source consisting of cream, high fat cream, reconstituted cream powder, anhydrous milk fat (AMF), palm, palm kernel, coconut, soybean, rapeseed, cottonseed, sunflower seed, corn, safflower seed, rice bran oil, sesame oil, olive oil and fractions thereof or any combination of any two or more thereof.
4. 4. The composition of any one of claims 1 to 3, wherein the protein comprises milk, skim milk, cream, whole milk, acid whey, sweet whey, whole milk powder (WMP), skim milk powder (SMP), buttermilk powder (BMP), acid whey powder, sweet whey powder, caseinate, sodium caseinate, calcium caseinate, whey protein concentrate (WPC), whey protein isolate (WPI), milk protein isolate (MPI), milk protein concentrate (MPC), modified MPC derivatives, micellar casein, soy, egg or pea protein, or any combination of any two or more thereof.
5. 5. The composition of any one of claims 1 to 4, wherein the one or more emulsifiers are selected from the group consisting of proteins, phospholipids from milk fat globule membranes, buttermilk powder, beta-serum powder, lecithin, mono- and diglycerides, distilled monoglycerides, acid esters of mono-diglycerides including lactic acid, citric acid, acetic acid, diacetyltartaric acid and tartaric acid, polysorbates, sorbitan esters of fatty acids, sucrose esters, polyglycerol esters of fatty acids, propylene glycol esters of fatty acids, sodium stearoyl lactylate or calcium stearoyl lactylate or any combination of any two or more thereof.
6. A composition according to any one of claims 1 to 5, comprising from 0.05% to 0.3% by weight of one or more emulsifiers.
7. 7. The composition of any one of claims 1 to 6, wherein the one or more emulsifiers comprise two or more of lecithin, mono- and diglycerides, polysorbates, sucrose esters and propylene glycol esters of fatty acids.
8. 8. The composition of any one of claims 1 to 7, wherein the one or more thickening or stabilising agents are selected from the group consisting of carrageenan, guar gum, locust bean gum, tara gum, gellan gum, xanthan gum, gum arabic, microcrystalline cellulose (MCC), carboxymethyl cellulose (CMC), cellulose derivatives, propylene glycol alginate, sodium alginate, pectin, gelatin, starch or starch derivatives or citrus fibres or any combination of any two or more thereof.
9. The composition of any one of claims 1 to 8, wherein the one or more thickeners or stabilizers include xanthan, carrageenan and guar gum.
10. A composition according to any one of claims 1 to 9, comprising 40 to 60 mM monovalent cations per litre of cream whey.
11. A composition according to any one of claims 1 to 10, comprising 5 to 20 mM divalent cations per litre of cream whey.
12. 11. A composition according to any one of claims 1 to 10, comprising 30 to 60 mM divalent cations per litre of cream whey.
13. A composition according to any one of claims 1 to 12, comprising 25 to 70 mM total anions per litre of cream whey.
14. 14. The composition of any one of claims 1 to 13, further comprising 0.001 to 6% of a sweetener.
15. 15. The composition of claim 14, wherein the sweetener is a natural or artificial sweetener, preferably the sweetener is lactose.
16. The composition of any one of claims 1 to 15, further comprising a buffer salt or a chelating salt.
17. The composition of any one of claims 1 to 16, further comprising a buffer salt or a chelating salt comprising sodium polyphosphate or potassium polyphosphate.