Method for producing processed solid food
An oil-in-water emulsion with cyclodextrin and polysaccharides in food materials addresses flavor reduction during heat treatment, maintaining and enhancing flavor intensity and persistence.
Patent Information
- Application Number
- JP2024088805
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-05-31
- Publication Date
- 2025-12-11
- Estimated Expiration
- 2044-05-31
AI Technical Summary
Existing methods for adding flavor to food materials often result in reduced flavor intensity and persistence due to heat treatments, leading to unpleasant flavor perception.
An oil-in-water emulsion containing fats and oils, cyclodextrin, a thickening polysaccharide, and a flavor component, optionally with an alkaline substance, is added to food materials, which adheres and retains flavor even after heat treatment, enhancing and maintaining flavor intensity.
The method effectively maintains and enhances flavor in food materials by adhering and retaining flavor components, preventing reduction during heat treatment, ensuring pleasant flavor perception.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for producing flavored, preferably flavor-enhanced, processed solid foods. [Background technology]
[0002] BACKGROUND ART Nowadays, emulsion compositions comprising fats and oils, water, cyclodextrin, and a water-soluble gelling agent are widely used in various fields such as medicine, cosmetics, and food and beverages.
[0003] Patent Document 1 discloses an emulsion composition for skin containing water, oil, cyclodextrin, and at least one water-soluble gelling agent selected from the group consisting of carboxymethylcellulose (CMC), xanthan gum, locust bean gum, guar gum, glucomannan, κ-carrageenan, ι-carrageenan, λ-carrageenan, tamarind gum, and gellan gum.
[0004] Patent Document 2 discloses an acidic emulsion composition containing water, oil, cyclodextrin, a water-soluble gelling agent, and a water-soluble organic solvent.
[0005] Patent Document 3 discloses an emulsion composition containing water, an oil, a cyclodextrin, and at least one water-soluble gelling agent selected from the group consisting of carboxymethylcellulose (CMC), xanthan gum, locust bean gum, guar gum, glucomannan, κ-carrageenan, ι-carrageenan, λ-carrageenan, tamarind gum, and gellan gum, wherein the ratio of the amount of the oil to the total amount of the cyclodextrin and the water-soluble gelling agent is in the range of 1 or more but less than 9: 9 or less but more than 1, in terms of mass ratio (amount of the oil:total amount of the cyclodextrin and the water-soluble gelling agent).
[0006] Furthermore, various methods have been reported in the past for improving the texture and quality of meat and seafood ingredients, using modifiers such as alkaline substances and starches. Patent Document 4 discloses that by retaining an alkaline substance on the surface of a food product and forming a film on the surface using a film-forming substance, it is possible to obtain processed meat, seafood, etc. that has an extremely excellent texture, yield, and a good flavor with little bitterness, harshness, or unpleasant odor that is typically caused by the use of alkaline substances, and that has excellent shelf life. [Prior art documents] [Patent documents]
[0007] [Patent Document 1] WO2022 / 064997 publication [Patent Document 2] Patent No. 7196346 [Patent Document 3] Japanese Patent Application Publication No. 2023-142681 [Patent Document 4] Patent No. 4083779 Summary of the Invention [Problem to be solved by the invention]
[0008] Conventionally, even when flavoring ingredients such as fragrances and flavors have been added to food materials to impart flavor, the strength and persistence of the imparted flavor may be reduced by subsequent treatments such as heat treatment (e.g., retort sterilization), and the food material may not have a pleasant flavor. Therefore, in this field, there has been a strong demand for a new means of imparting flavor that allows the flavor imparted to food materials to be pleasantly perceived without being reduced. Therefore, an object of the present invention is to provide a new means for flavoring food materials that is less likely to reduce the intensity and / or persistence of the flavor imparted to the food materials. [Means for solving the problem]
[0009] As a result of intensive research to solve the above problems, the present inventors have found that when an oil-in-water emulsion containing a blend of fats and oils, water, cyclodextrin, a thickening polysaccharide, and a flavor component is added to a food material, the emulsion adheres to the food material, and the flavor component is retained there, thereby imparting a flavor due to the flavor component to the food material.
[0010] Furthermore, the inventors have found that the oil-in-water emulsion has excellent emulsification stability, and can adhere to food materials and retain and retain flavor components thereon even after heat treatment, allowing food materials to have a good flavor even after heat treatment.
[0011] Furthermore, they have found that the flavor-imparting effect of the oil-in-water emulsion can be enhanced by adding an alkaline substance in combination with the oil-in-water emulsion.
[0012] The present invention is based on these new findings and includes the following inventions. [1] For solid foods, An oil-in-water emulsion containing water, oil, cyclodextrin, a thickening polysaccharide, and a flavor component. A method for producing a processed solid food, comprising the step of adding [2] The manufacturing method of [1], further comprising adding an alkaline substance. [3] The method of producing [1] or [2], further comprising a step of heat treatment after the adding step. [4] The method of any one of [1] to [3], wherein the thickening polysaccharide is one or more selected from the group consisting of carboxymethylcellulose (CMC), xanthan gum, locust bean gum, guar gum, glucomannan, κ-carrageenan, ι-carrageenan, λ-carrageenan, tamarind gum, gellan gum, gum arabic, pectin, phosphate cross-linked starch, hydroxypropyl starch, hydroxypropylated phosphate cross-linked starch, tragacanth gum, hydroxypropyl cellulose, methylcellulose, hydroxypropylmethylcellulose, and hydroxyethyl cellulose. [5] The manufacturing method according to any one of [2] to [4], wherein the alkaline substance is at least one selected from the group consisting of carbonates, hydrogen carbonates, and organic acid salts. [6] The method according to any one of [1] to [5], further comprising adding a film-forming substance in the adding step. [7] The method of producing [6], wherein the film-forming substance is one or more selected from the group consisting of carrageenan, agar, alginic acid and its salts, locust bean gum, tara gum, tamarind seed polysaccharide, gum arabic, karaya gum, tragacanth gum, pullulan, gellan gum, curdlan, starch, and modified starch. [8] The method of any one of [1] to [7], wherein the solid food is a raw solid food and / or a solid food in which the protein is not heat-denatured.
[0013] [9] An oil-in-water emulsion containing water, oil, cyclodextrin, a thickening polysaccharide, and a flavor component; and solid foods, Processed solid foods, including:
[10] The processed solid food of [9], wherein the thickening polysaccharide is one or more selected from the group consisting of carboxymethylcellulose (CMC), xanthan gum, locust bean gum, guar gum, glucomannan, κ-carrageenan, ι-carrageenan, λ-carrageenan, tamarind gum, gellan gum, gum arabic, pectin, phosphate cross-linked starch, hydroxypropyl starch, hydroxypropylated phosphate cross-linked starch, tragacanth gum, hydroxypropyl cellulose, methylcellulose, hydroxypropylmethylcellulose, and hydroxyethylcellulose.
[11] In addition, processed solid foods [9] or
[10] containing alkaline substances.
[12] The processed solid food according to
[11] , wherein the alkaline substance is one or more selected from the group consisting of carbonates, bicarbonates, and organic acid salts.
[13] In addition, processed solid foods [9]-
[12] containing film-forming substances.
[14] The processed solid food of
[13] , wherein the film-forming substance is one or more selected from the group consisting of carrageenan, agar, alginic acid and its salts, locust bean gum, tara gum, tamarind seed polysaccharide, gum arabic, karaya gum, tragacanth gum, pullulan, gellan gum, curdlan, starch, and modified starch.
[15] The processed solid food of any one of [9] to
[14] , wherein the solid food is a raw solid food and / or a solid food in which the protein is not heat-denatured.
[16] A heat-treated processed solid food that is any of the processed solid foods [9] to
[14] .
[17] Foods containing any of the processed solid foods [9] to
[14] or the heat-treated processed solid foods
[16] .
[0014]
[18] A food additive comprising an oil-in-water emulsion containing water, oil, cyclodextrin, a thickening polysaccharide, and a flavor component.
[19] The food additive according to
[18] , wherein the thickening polysaccharide is one or more selected from the group consisting of carboxymethylcellulose (CMC), xanthan gum, locust bean gum, guar gum, glucomannan, κ-carrageenan, ι-carrageenan, λ-carrageenan, tamarind gum, gellan gum, gum arabic, pectin, phosphate cross-linked starch, hydroxypropyl starch, hydroxypropylated phosphate cross-linked starch, tragacanth gum, hydroxypropyl cellulose, methylcellulose, hydroxypropylmethylcellulose, and hydroxyethylcellulose.
[20] Furthermore, a food additive of
[18] or
[19] containing an alkaline substance.
[21] The food additive according to
[20] , wherein the alkaline substance is one or more selected from the group consisting of carbonates, bicarbonates, and organic acid salts.
[22] Further, any of the food additives
[18] to
[21] containing a film-forming substance.
[23] The food additive according to
[22] , wherein the film-forming substance is one or more selected from the group consisting of carrageenan, agar, alginic acid and its salts, locust bean gum, tara gum, tamarind seed polysaccharide, gum arabic, karaya gum, tragacanth gum, pullulan, gellan gum, curdlan, starch, and modified starch.
[24] A food additive according to any one of
[18] to
[23] , used in the manufacturing method according to any one of [1] to [8]. [Effects of the Invention]
[0015] According to the present invention, it is possible to provide a new means for imparting flavor to food materials, which is less likely to reduce the intensity and / or persistence of the flavor imparted to the food materials. DETAILED DESCRIPTION OF THE INVENTION
[0016] The present invention provides a solid food product comprising: an oil-in-water emulsion containing water, oils and fats, cyclodextrin, a thickening polysaccharide, and a flavor component; The present invention relates to a method for producing a processed solid food, comprising adding
[0017] In the present invention, the term "solid food" generally refers to raw solid food and / or solid food in which the protein is not heat-denatured, but is not limited thereto and may also refer to food that has been partially heated. Furthermore, the solid food may be raw solid food and / or solid food in which the protein is not heat-denatured, frozen or partially thawed, or may have undergone any pre-processing. Preferred examples of the "solid food" in the present invention include livestock meats such as beef, pork, chicken, and lamb, as well as seafood such as fish, shrimp, squid, and shellfish. Livestock meats are particularly preferred because of the ease with which the oil-in-water emulsion can adhere and penetrate, and the part of the meat is not particularly limited.
[0018] The size of the solid food is not particularly limited, and can be any size and shape depending on the target processed solid food. For example, a raw, horn-shaped food with a volume of 75 to 320,000 mm 3(e.g., 5-80mm x 5-80mm x 3-50mm), raw slices with a volume of 1000-1200000mm 3 The dimensions can be about (for example, 10 to 200 mm x 10 to 200 mm x 10 to 30 mm).
[0019] In the present invention, "processed solid foods" include solid foods to which flavoring components have been added or seasoned, solid foods that have been subjected to heat treatment (sometimes referred to as "heat-treated processed solid foods" in this specification), and foods containing them. The form of the processed solid foods is not particularly limited, and examples include processed meat products, fish paste products, oily foods, luxury foods, seasonings, confectioneries, frozen foods, retort foods, canned foods, bottled foods, instant foods, etc., but are not limited to these. For example, when the solid food is meat or seafood, the "processed solid food" in the present invention includes, but is not limited to, minced meat, cut meat, block meat, fillet, peeled meat, surimi, meatballs, meatballs, patties, or products thereof that have been heat-treated, to which flavor components have been added or seasoned, or various foods containing them (e.g., ham, sausage, simmered food, grilled food, fried food, steamed food, stew, sauce, soup, etc.) (including those before and after heat treatment).
[0020] In the present invention, the term "oil-in-water emulsion" refers to an emulsified composition in which oils and fats are dispersed in water, and the cyclodextrin and thickening polysaccharides contribute to the formation and stability of this emulsified state.
[0021] In the present invention, the "oils and fats" may be any oils and fats that are commonly used in the production of foods and beverages, and both polar and non-polar oils and fats may be used. Examples of such oils and fats include, but are not limited to, plant-derived oils (e.g., canola oil, rapeseed oil, soybean oil, corn oil, cottonseed oil, peanut oil, sesame oil, rice oil, rice bran oil, camellia oil, safflower oil, olive oil, linseed oil, perilla oil, perilla oil, sunflower oil, palm oil, tea oil, coconut oil, avocado oil, kukui nut oil, grapeseed oil, cocoa butter, coconut oil, wheat germ oil, almond oil, evening primrose oil, castor oil, hazelnut oil, macadamia nut oil, rosehip oil, grape oil, cacao oil, jojoba oil, palm kernel oil, etc.), animal-derived oils and fats (e.g., beef tallow, lard, lanolin, squalene, squalane, etc.), and their extremely hardened oils and fats, interesterified oils and fats. The oils and fats used in the present invention are preferably liquid at room temperature. In this specification, "room temperature" means 5 to 35° C., preferably 15 to 30° C. Any oil or fat may be used alone or in combination with different oils and fats, and an appropriate one can be selected and used depending on the processed solid food to be produced.
[0022] The oil-in-water emulsion can contain any amount of fat or oil, for example, 1% by mass or more, 3% by mass or more, 5% by mass or more, or 7% by mass or more. The upper limit is not particularly limited, but can be, for example, 50% by mass or less, 40% by mass or less, 30% by mass or less, 20% by mass or less, or 10% by mass or less. The range of the amount of fat or oil in the oil-in-water emulsion can be expressed using two numerical values selected from the above-mentioned lower and upper limits. For example, the oil-in-water emulsion can contain fat or oil in an amount appropriately selected from the range of 1% by mass to 50% by mass, 1% by mass to 30% by mass, 1% by mass to 20% by mass, or 1% by mass to 10% by mass, preferably 5% by mass to 10% by mass, or 7% by mass to 10% by mass. If the amount of fat or oil is less than 1% by mass, emulsification may be insufficient, whereas if the amount of fat or oil is more than 50% by mass, the food may feel too sticky or slimy. In either case, the processed solid food may not have the desired flavor.
[0023] In this specification, the amount of each component contained in the oil-in-water emulsion is expressed in mass %, with the total mass of the oil-in-water emulsion (total amount of each component) being 100 mass %.
[0024] In an oil-in-water emulsion, water can be contained in any amount that is capable of emulsifying the oil and fat to form an oil-in-water emulsion together with the cyclodextrin and thickening polysaccharide. For example, the oil-in-water emulsion can contain water in an amount of 15% by mass or more, 20% by mass or more, 30% by mass or more, 40% by mass or more, 45% by mass or more, 50% by mass or more, 60% by mass or more, or 70% by mass or more. The upper limit is not particularly limited, but can be, for example, 90% by mass or less or 85% by mass or less. The range of the amount of water in the oil-in-water emulsion can be expressed using two numerical values selected from the above lower and upper limits, respectively. For example, the oil-in-water emulsion can contain water in an amount appropriately selected from the range of 15% by mass to 90% by mass, 45% by mass to 90% by mass, or 70% by mass to 85% by mass.
[0025] The amount of water contained in the oil-in-water emulsion is preferably greater than the amount of oil in terms of volume ratio, and for example, the volume ratio of oil to water (oil:water) can be greater than 1:1, for example, 1:2 or more, 1:3 or more, 1:4 or more, 1:5 or more, 1:6 or more, 1:10 or more, 1:15 or more, or 1:20 or more, and the upper limit of the amount of water is not particularly limited, but can be 1:90 or less, 1:80 or less, 1:70 or less, 1:60 or less, or 1:50 or less. By adjusting the amounts of water and oil contained in the oil-in-water emulsion to be within the above ranges, the formation of the oil-in-water emulsion can be efficiently promoted.
[0026] "Cyclodextrin" refers to a cyclic non-reducing maltooligosaccharide whose constituent unit is glucose, and examples thereof include α-cyclodextrin, which has 6 glucose units, β-cyclodextrin, which has 7 glucose units, and γ-cyclodextrin, which has 8 glucose units. In the present invention, α-, β-, and γ-cyclodextrin, as well as derivatives thereof, and any combination thereof may be used. Examples of cyclodextrin derivatives include, but are not limited to, ethyl cyclodextrin, methyl cyclodextrin, hydroxyethyl cyclodextrin, hydroxypropyl cyclodextrin, methylamino cyclodextrin, amino cyclodextrin, carboxyethyl cyclodextrin, carboxymethyl cyclodextrin, sulfoxyethyl cyclodextrin, sulfoxyl cyclodextrin, acetyl cyclodextrin, branched cyclodextrin, cyclodextrin fatty acid ester, glucosyl cyclodextrin, and maltosyl cyclodextrin. α-Cyclodextrin is preferred. α-Cyclodextrin is highly soluble in water, allowing the preparation of oil-in-water emulsions with minimal graininess.
[0027] In the oil-in-water emulsion, cyclodextrin can be contained in an amount that contributes to the emulsification and emulsion stability of the oil-in-water emulsion together with the thickening polysaccharide, and that can impart a desired flavor to the processed solid food to be produced by adding the oil-in-water emulsion. For example, the oil-in-water emulsion contains cyclodextrin in an amount of 0.5% by mass or more, 1% by mass or more, 2.5% by mass or more, 3% by mass or more, 4% by mass or more, 4.5% by mass or more, or 5% by mass or more, and the upper limit is not particularly limited, and can be, for example, 15% by mass or less, 10% by mass or less, 9% by mass or less, 8% by mass or less, 7% by mass or less, or 6% by mass or less. The range of the amount of cyclodextrin in the oil-in-water emulsion can be expressed using two numerical values selected from the above lower and upper limits, respectively. For example, the oil-in-water emulsion can contain cyclodextrin in an amount appropriately selected from the range of 0.5% to 15% by mass, for example, 1% to 15% by mass, 2.5% to 10% by mass, 2.5% to 9% by mass, 3% to 9% by mass, 4% to 8% by mass, 4.5% to 9% by mass, or 5% to 7% by mass, preferably 2.5% to 9% by mass or 4.5% to 9% by mass. If the amount of cyclodextrin is less than 0.5% by mass, the emulsification and emulsion stability of the oil-in-water emulsion may be insufficient. On the other hand, if the amount is more than 15% by mass, the viscosity of the oil-in-water emulsion may be too high or the emulsion may become too squeaky. In either case, the desired flavor may not be obtained in the processed solid food produced.
[0028] In the present invention, "thickening polysaccharide" generally refers to a polysaccharide that dissolves in water and imparts viscosity (sometimes also referred to as a thickening stabilizer, water-soluble thickener, etc.). Thickening polysaccharides that can be used in the present invention include components that are commonly used in the production of foods and beverages, and are not particularly limited. Any thickening polysaccharide may be used alone, or different thickening polysaccharides may be used in combination, and appropriate ones can be selected and used depending on the processed solid food to be produced. In the present invention, the "thickening polysaccharide" preferably includes carboxymethylcellulose (CMC), xanthan gum, locust bean gum, guar gum, glucomannan, κ-carrageenan, ι-carrageenan, λ-carrageenan, tamarind gum, gellan gum, gum arabic, pectin, phosphate cross-linked starch, hydroxypropyl starch, hydroxypropylated phosphate cross-linked starch, tragacanth gum, hydroxypropyl cellulose, methyl cellulose, hydroxypropyl methyl cellulose, hydroxyethyl cellulose, and the like, and any of these may be used alone or two or more different types may be used in combination.
[0029] In the present invention, the "thickening polysaccharide" is more preferably carboxymethylcellulose (CMC), xanthan gum, locust bean gum, guar gum, glucomannan, κ-carrageenan, ι-carrageenan, λ-carrageenan, tamarind gum, or gellan gum, and even more preferably carboxymethylcellulose (CMC), glucomannan, tamarind gum, or xanthan gum. These thickening polysaccharides can impart particularly high emulsion stability to oil-in-water emulsions.
[0030] The thickening polysaccharide in the oil-in-water emulsion can be contained in an amount that contributes to the emulsification and emulsion stability of the oil-in-water emulsion together with cyclodextrin and that can impart a desired flavor to the processed solid food to be produced by adding the oil-in-water emulsion. For example, the oil-in-water emulsion contains the thickening polysaccharide in an amount of 0.05% by mass or more, 0.1% by mass or more, 0.2% by mass or more, or 0.3% by mass or more, and the upper limit is not particularly limited, but can be, for example, 1% by mass or less, 0.8% by mass or less, 0.7% by mass or less, 0.6% by mass or less, or 0.5% by mass or less. The range of the amount of thickening polysaccharide in the oil-in-water emulsion can be expressed using two numerical values selected from the above lower and upper limits, respectively, and for example, the oil-in-water emulsion can contain thickening polysaccharide in an amount appropriately selected from the ranges of 0.05% to 1% by mass, 0.1% to 1% by mass, 0.2% to 0.8% by mass, or 0.2% to 0.5% by mass. If the amount of thickening polysaccharide is less than 0.05% by mass, the emulsification and emulsion stability of the oil-in-water emulsion may be insufficient, while if it is more than 1% by mass, the viscosity of the oil-in-water emulsion may be too high. In either case, the desired flavor may not be obtained in the processed solid food produced.
[0031] In the oil-in-water emulsion of the present invention, the combined use of the cyclodextrin and the thickening polysaccharide imparts emulsification and emulsion stability to the oil-in-water emulsion. The emulsification and emulsion stability of the oil-in-water emulsion imparted by the combined use of the cyclodextrin and the thickening polysaccharide do not depend on the three-dimensional matrix gel formed by dissolving a general gelling agent in water and cooling (preferably, does not include a three-dimensional matrix gel), but are believed to be due to the presence of hydrogen bonding interactions between the cyclodextrin and the thickening polysaccharide, as will be described in detail in the Examples below.
[0032] Furthermore, since the oil-in-water emulsion of the present invention achieves emulsification and emulsion stability by the combined use of the cyclodextrin and the thickening polysaccharide, it may be substantially free of emulsifiers commonly used in the production of conventional emulsion compositions, and preferably is substantially free of such emulsifiers. In the present invention, "substantially free of emulsifiers" means that the oil-in-water emulsion of the present invention does not contain an emulsifier in a form that exerts an emulsifying effect, and does not intend to contain no emulsifier at all, but preferably means that it does not contain any emulsifier at all. By being substantially free of emulsifiers, the present invention is preferable because, for example, an advantageous oil-in-water emulsion with high safety and low irritation and allergenicity associated with the use of emulsifiers can be obtained. Examples of "emulsifiers that are commonly used in the production of conventional emulsion compositions" include, but are not limited to, proteins, peptides or hydrolysates thereof, glycerin fatty acid esters, organic acid monoglycerides, polyglycerin fatty acid esters, polyoxyethylene glycerin fatty acid esters, sorbitan fatty acid esters, propylene glycol fatty acid esters, polyoxyethylene fatty acid esters, polyglycerin condensed ricinoleic acid esters, sorbitan fatty acid esters, polyoxyethylene sorbit fatty acid esters, sucrose fatty acid esters, lecithin, enzymatically decomposed lecithin, polyethylene glycol, and polypropylene glycol.
[0033] The oil-in-water emulsion of the present invention further contains a flavor component for imparting flavor to the solid food, preferably for enhancing the flavor of the solid food. The flavor component can be appropriately selected depending on the processed solid food to be produced, and examples thereof include salty components such as sodium chloride and potassium chloride; sugars (glucose, fructose, sucrose, maltose, oligosaccharides, isomerized sugar, etc.); sugar alcohols (xylitol, sorbitol, glycerin, erythritol, etc.); natural sweeteners (stevia, glycyrrhizin, thaumatin, etc.); artificial sweeteners (aspartame, acesulfame potassium, sucralose, etc.); Sweet components such as citric acid, succinic acid, lactic acid, tartaric acid, acetic acid, fumaric acid, malic acid, gluconic acid, and ascorbic acid; sour components such as glutamic acid, inosinic acid, and guanylic acid; alkaloids (caffeine, quinine, strychnine, theobromine, etc.), terpenes (limonoids, limonin, obacunone, nomilin, cucurbitacin, humulone, lupulone, etc.), glycosides (terpene glycosides, flavanones, etc.), Examples of suitable ingredients include (but are not limited to) bitter components such as capsaicin, piperine, sanshool, shogaol, gingerol, diallyl disulfide, p-hydroxybenzyl isothiocyanate, and astringent components such as tannins, catechin, theaflavin, and thearubigin, as well as food ingredients containing these, as well as seasonings, food flavorings (natural food flavorings, synthetic food flavorings, and the like), flavors, and ground spices (spices), extracts, and extracts thereof. Although not limited to these, food flavorings (natural food flavorings, synthetic food flavorings, and the like) and flavors, which are prone to lose their flavor-imparting effect when heated, are particularly preferred. The flavor components may be used alone or in combination with different flavor components, and an appropriate one can be selected and used depending on the processed solid food to be produced.
[0034] The flavor ingredients may be either water soluble or lipophilic, and water soluble flavor ingredients will be held in the water in the oil-in-water emulsion, while lipophilic flavor ingredients will be held in the oil in the oil-in-water emulsion, or alternatively, the flavor ingredients may be suspended and held in the water and / or oil in the oil-in-water emulsion.
[0035] The flavor component can be included in the oil-in-water emulsion in any amount that allows the desired flavor to be achieved in the processed solid food to be produced, and this amount can be appropriately adjusted depending on the type of flavor component and the type of processed solid food to be produced. For example, the oil-in-water emulsion can contain the flavor component in an amount of 0.02% by mass or more, 0.05% by mass or more, 0.10% by mass or more, or 0.15% by mass or more. The upper limit is not particularly limited, but can be, for example, 20% by mass or less, 15% by mass or less, 10% by mass or less, or 5% by mass or less. The range of the amount of the flavor component in the oil-in-water emulsion can be expressed using two numerical values selected from the above-mentioned lower and upper limits, respectively. For example, the oil-in-water emulsion can contain the flavor component in an amount appropriately selected from the ranges of 0.02% by mass to 20% by mass, 0.05% by mass to 15% by mass, 0.10% by mass to 10% by mass, or 0.15% by mass to 5% by mass. If the amount of flavor component is less than 0.02% by mass, the flavor may not be sufficiently imparted to the processed solid food product, preferably the flavor may not be sufficiently enhanced. On the other hand, if the amount is more than 20% by mass, the flavor derived from the flavor component may be too strong, which may impair the overall flavor of the processed solid food product. In either case, the desired flavor may not be obtained in the processed solid food product.
[0036] In addition to the above components, the oil-in-water emulsion may optionally contain ingredients commonly used in the production of foods and beverages (hereinafter referred to as "other ingredients") in amounts appropriate to the desired form of use, provided that the effects of the present invention are not impaired. Examples of such other ingredients include, but are not limited to, excipients, disintegrants, lubricants, binders, diluents, buffers, suspending agents, thickeners, preservatives, antibacterial agents, antiseptics, antioxidants, UV absorbers, colorants, pigments, dyes, pigments, lubricants, plasticizers, solvents, solubilizers, isotonicity agents, flavorings, vitamins, surfactants, pH adjusters, and chelating agents.
[0037] The oil-in-water emulsion can be produced by mixing water, oil, cyclodextrin, thickening polysaccharide, flavor component, and other components as needed in the amounts described above. The components may be mixed all together, or the components may be added separately or in any combination sequentially (in any order) and mixed. Mixing can be carried out by any means, such as using a blender, mixer, or by hand. The oil-in-water emulsion obtained by mixing may be subjected to heat sterilization.
[0038] The form of the oil-in-water emulsion is not particularly limited, and may be in the form of a semi-solid / semi-liquid (gel, sol, etc.) or dried form (e.g., powder, flakes, etc.) prepared by reducing the water content, in addition to a form having the above-mentioned water content. Such semi-solid / semi-liquid (gel, sol, etc.) or dried form (e.g., powder, flakes, etc.) form can be obtained by obtaining an oil-in-water emulsion in the form having the above-mentioned water content and then subjecting it to a conventionally known drying method to reduce the water content of the oil-in-water emulsion. Examples of such drying methods include, but are not limited to, freeze drying, heat drying, air drying, spray drying, drum drying, hot air drying, and vacuum drying. The water content of the oil-in-water emulsion after subjecting it to the drying method can be appropriately selected depending on the desired form. In the case of a dried form, the water content can be, for example, less than 15% by mass, 10% by mass or less, 5% by mass or less, or 1% by mass or less. The lower limit of the water content of the oil-in-water emulsion after drying is not particularly limited, and may be 0% by mass or more, more than 0% by mass, 0.1% by mass or more, 0.5% by mass or more, 0.6% by mass or more, 0.7% by mass or more, or 0.8% by mass or more. The range of the water content in the dried form can be expressed using two numerical values selected from the above upper and lower numerical values. For example, the water content of the oil-in-water emulsion can be 0% by mass to less than 15% by mass, more than 0% by mass to less than 15% by mass, 0.1% by mass to less than 15% by mass, 0.1% by mass to 10% by mass, 0.5% by mass to 5% by mass, 0.5% by mass to 1% by mass, 0.6% by mass to 1% by mass, 0.7% by mass to 1% by mass, or 0.8% by mass to 1% by mass. The oil-in-water emulsion of the present invention after being subjected to a drying means does not undergo a phase transition to form a water-in-oil emulsion, and in particular, the dried form has high heat resistance and moisture resistance, and does not discolor or dissolve even after being subjected to high temperature conditions (e.g., about 100°C to 200°C) and / or high humidity conditions (e.g., about 95% humidity).
[0039] The obtained dried product can be further subjected to crushing, pulverization, or grinding as needed to form powder, flakes, etc. The oil-in-water emulsion obtained by drying may be mixed and stirred with other ingredients in the amounts described above, if needed, and / or may be subjected to heat sterilization.
[0040] The semi-solid / semi-liquid (gel, sol, etc.) or dried form of the oil-in-water emulsion may be used as is, or may be mixed (re-emulsified) by adding an appropriate solvent (e.g., water) at the time of use.
[0041] There are no particular restrictions on the amount of oil-in-water emulsion added to a solid food, as long as it can impart flavor to the solid food, preferably enhance the flavor, and can be appropriately selected depending on factors such as the type and amount of flavor components contained in the oil-in-water emulsion, the form of the oil-in-water emulsion, and the type of processed solid food to be produced. For example, in the case of an oil-in-water emulsion in a form having the above-mentioned water content (not in the above-mentioned semi-solid / semi-liquid or dry form), it can be added in an amount that will give 0.01 to 5% by mass, preferably 0.05 to 1% by mass, of the solid food. In this specification, the amount of each component added to a solid food is expressed as a relative amount (% by mass) with the amount of the solid food being 100% by mass.
[0042] The oil-in-water emulsion is preferably added to the solid food so that it adheres uniformly to the surface of the solid food. The oil-in-water emulsion may be in the form of the above-mentioned water content, or in the form of a semi-solid / semi-liquid (gel, sol, etc.) or dried product prepared by reducing the water content, or a solution thereof may be used. The method for contacting the oil-in-water emulsion with the solid food can be appropriately selected depending on factors such as the form of the oil-in-water emulsion used and the type of solid food. Examples include (but are not limited to) the tumbler method, kneader mixing method, injection method, immersion method, powder adhesion method, spraying method, and coating method, and one or more of these methods can be used in combination.
[0043] An oil-in-water emulsion added to a solid food product adheres to and remains on the solid food product, where it retains or maintains flavor components therein, and can suppress, and preferably prevent, a decrease in the intensity and / or persistence of the flavor provided by the flavor components, thereby contributing to the perception of a better flavor when the processed solid food product is eaten than when the oil-in-water emulsion is not used.
[0044] In addition to the oil-in-water emulsion, an alkaline substance may be added to the solid food, if necessary. By adding an alkaline substance to the solid food together with the oil-in-water emulsion, the flavor-imparting effect of the flavor component can be further enhanced and / or maintained for a longer period of time, which is preferable.
[0045] In the present invention, the "alkaline substance" may be any substance that exhibits alkaline properties when dissolved in water. Examples include substances containing alkalis such as alkali metal or alkaline earth metal hydroxides, or their salts with weak acids, specifically alkali metal salts or alkaline earth metal salts. More specifically, substances that buffer the pH toward the alkaline side, such as salts formed from an alkali and an acid with an acid dissociation constant pKa value of 4 or higher, preferably 5 or higher, and more preferably 6 or higher, are preferred. Even when a solid food is combined with a liquid component having a lower pH, such substances effectively buffer the solid food, maintaining a pH that is more alkaline than the liquid component, e.g., pH 5.5 to 7.5, preferably pH 6 to 7.
[0046] More specifically, examples of alkaline substances that can be used in the present invention include hydroxides such as alkali metal hydroxides (sodium hydroxide, potassium hydroxide, etc.), alkaline earth metal hydroxides (calcium hydroxide, etc.), and magnesium hydroxide. Carbonates include alkali metal carbonates, alkaline earth metal carbonates, and magnesium carbonate. Hydrocarbonates include alkali metal hydrogen carbonates (sodium bicarbonate (sodium bicarbonate) and alkaline earth metal hydrogen carbonates. Organic acid salts include alkali metal organic acid salts (sodium acetate, trisodium citrate, disodium succinate, sodium tartrate, sodium hydrogen tartrate, disodium malate, sodium ascorbate, sodium gluconate, etc.), alkaline earth metal organic acid salts (calcium lactate, etc.), and magnesium organic acid salts. Phosphates include alkali metal phosphates, alkaline earth metal phosphates, and magnesium phosphates. Among these, carbonates and hydrogen carbonates, particularly sodium bicarbonate, and organic acid salts, particularly trisodium citrate, are preferred.
[0047] The amount of alkaline substance added to a solid food is not particularly limited, but is preferably formulated so that the surface pH of the solid food is 6.0 to 13.0, preferably 6.5 to 9.0, when applied. If the pH is too low below the above range, the effect of the flavor component accompanying the use of the alkaline substance may be insufficient to further enhance and / or prolong its maintenance. On the other hand, if the pH is too high, the bitterness, harshness, and unpleasant odor characteristic of alkali may be generated, which may impair the flavor. In either case, the desired flavor enhancement effect may not be achieved in the processed solid food produced. For this reason, the alkaline substance can generally be added in an amount of 0.1 to 10% by mass, preferably 0.3 to 5% by mass, based on the dry mass of the solid food.
[0048] The alkaline substance is preferably added to a solid food so that it adheres uniformly to the surface of the solid food. The alkaline substance may be in the form of a dry powder or in a suitable solution. When using a solution containing an alkaline substance, it is preferable to contact the solid food with a relatively high concentration solution, for example, a solution with an alkaline substance concentration of 0.1 to 40% by mass. The method for contacting the alkaline substance with the solid food can be appropriately selected depending on factors such as the form of the alkaline substance used and the type of solid food. Examples include, but are not limited to, a tumbler method, a kneader mixing method, an injection method, an immersion method, a powder adhesion method, a spraying method, and a coating method, and one or more of these methods can be used in combination. The alkaline substance is preferably kept for a certain period of time after contact with the solid food. For example, when using a solution containing an alkaline substance, the solid food may be immersed in the solution containing the alkaline substance at 0 to 30°C for 5 minutes or more, and preferably immersed for 15 minutes or more to achieve a high effect.
[0049] The alkaline substance may be added to the solid food simultaneously with the addition of the oil-in-water emulsion, or separately. When added simultaneously, the alkaline substance and the oil-in-water emulsion may be contained in the same solution, or a mixture of the alkaline substance and the oil-in-water emulsion in dry powder form may be used. When added separately, the order in which the alkaline substance and the oil-in-water emulsion are added is not particularly limited, as long as both components can be brought into contact with the solid food, and the order may be the alkaline substance followed by the oil-in-water emulsion, or vice versa.
[0050] By adding an alkaline substance to a solid food, the alkaline substance can loosen the surface of the solid food (for example, loosen muscle fibers if the solid food is meat or seafood), increasing the surface area for the oil-in-water emulsion to adhere, and also promoting the oil-in-water emulsion to penetrate and adhere not only to the surface but also to the interior of the solid food. As a result, more oil-in-water emulsion can be attached to the solid food than when no alkaline substance is used, and the intensity and / or persistence of the flavor provided by the flavor component can be enhanced compared to when no alkaline substance is used, contributing to the perception of a good flavor when the processed solid food is eaten.
[0051] Furthermore, by adding an alkaline substance, the surface of the solid food can be loosened, thereby softening the texture of the processed solid food, and the water retention can be increased, thereby suppressing a decrease in the yield of the processed solid food after heating. In the present invention, the "decrease in yield" means that the weight and / or volume of the solid food in the processed solid food is reduced by heating compared to before heating.
[0052] If necessary, a film-forming substance may be added to the solid food in addition to the oil-in-water emulsion, or in addition to the oil-in-water emulsion and the alkaline substance. By adding a film-forming substance to the solid food together with the oil-in-water emulsion, or together with the oil-in-water emulsion and the alkaline substance, the flavor-imparting effect of the flavor component can be further enhanced and / or maintained for a long period of time, which is preferable.
[0053] In the present invention, the term "film-forming substance" refers to a substance that swells when heated with water and improves water retention. When a solid food to which a film-forming substance has been added is subjected to a heat treatment, the film-forming substance melts, infiltrates the surface of the solid food, or the surface and interior thereof, and becomes viscous, forming a film on the surface of the solid food, thereby increasing water retention and suppressing deterioration of flavor and / or suppressing a decrease in the yield of the processed solid food after heating, which is preferable.
[0054] Examples of "film-forming substances" that can be used in the present invention include, but are not limited to, carrageenan, agar, alginic acid and its salts, locust bean gum, tara gum, tamarind seed polysaccharide, gum arabic, karaya gum, tragacanth gum, pullulan, gellan gum, curdlan, starch, and modified starch. Examples of starch that can be used include potato starch, wheat starch, corn starch, tapioca starch, glutinous rice starch, and modified starches thereof, as well as wheat flour, and any other starch containing starch. While the present invention can be effective by using one of these film-forming substances, it is also possible to use two or more film-forming substances in combination. Potato starch is particularly preferred.
[0055] The amount of film-forming substance to be added to a solid food is not particularly limited, but it can generally be added in an amount of 0.2 to 20% by mass, preferably 0.5 to 10% by mass, based on the dry mass of the solid food. If the amount of film-forming substance is less than the above amount, film formation on the surface of the solid food may be insufficient, and the above effects may not be fully achieved. On the other hand, if the amount of film-forming substance is more than the above amount, stickiness or sliminess may occur, which may impair the flavor of the entire processed solid food being produced.
[0056] The film-forming substance is preferably added to the solid food by contact treatment so that the film-forming substance adheres uniformly to the surface of the solid food. The film-forming substance may be in the form of a dry powder or may be in the form of a solution. When a solution containing the film-forming substance is used, the concentration of the film-forming substance (especially starch, etc.) in the solution is preferably 30 to 70% by mass.
[0057] The film-forming substance may be added to the solid food simultaneously with the oil-in-water emulsion and / or alkaline substance, or separately. If added simultaneously, the film-forming substance may be included in the same solution as the oil-in-water emulsion and / or alkaline substance, or may be mixed with the oil-in-water emulsion and / or alkaline substance in dry powder form. If added separately, the order in which the film-forming substance is added is not particularly limited, and the film-forming substance may be added before or after the oil-in-water emulsion and / or alkaline substance.
[0058] The above-mentioned processed solid food, prepared by adding an oil-in-water emulsion and, if necessary, an alkaline substance and / or a film-forming substance to a solid food, may, if necessary, be subjected to a further heat treatment step, thereby obtaining a heat-treated processed solid food (sometimes referred to in this specification as a "heat-treated processed solid food").
[0059] In the present invention, "heat treatment" refers to treating the processed solid food, prepared by adding an oil-in-water emulsion and, if necessary, an alkaline substance and / or a film-forming substance, with hot water, steam, hot air, deep-frying, stir-frying, or the like, at a temperature that thermally denatures part or all of the proteins in the solid food. The heat treatment conditions are such that the solid food is heated at 80°C for at least 15 minutes. Preferably, the heat treatment is carried out at 80 to 135°C for 15 minutes to 20 hours. For example, heat treatment under conditions equivalent to 105°C for at least 15 minutes for chilled foods, 122°C for at least 20 minutes for retort pouch foods, or 130°C for at least 10 minutes for aseptically packed foods can also serve as a sterilization treatment. The above-mentioned "conditions equivalent to 15 minutes or more at 80°C" means that the heat treatment is carried out under conditions where the temperature is all ambient, at 80°C or higher, and for a time equivalent to 15 minutes or more at 80°C. Specific examples include conditions equivalent to 15 minutes or more at 80 to less than 100°C, 10 minutes or more at 100 to less than 120°C, and 5 minutes or more at 120°C.
[0060] The oil-in-water emulsion has excellent emulsion stability and does not immediately demulsify and release flavor components even when subjected to heat treatment. Therefore, the oil-in-water emulsion attached to the solid food remains attached to the solid food even after heat treatment, where it can retain or maintain the flavor components, contributing to the perception of a better flavor when eating the processed solid food compared to when the oil-in-water emulsion is not used.
[0061] The present invention also relates to a processed solid food product comprising a solid food product and an oil-in-water emulsion.
[0062] The processed solid food of the present invention is a processed solid food in which the above-mentioned oil-in-water emulsion is added to a solid food, and the flavor is imparted by the flavor component contained in the added oil-in-water emulsion.
[0063] The processed solid food of the present invention may further contain the alkaline substance and / or film-forming substance described above, if necessary. By adding the alkaline substance and / or film-forming substance to the solid food together with the oil-in-water emulsion described above, the flavor-imparting effect of the flavor component can be further enhanced and / or maintained for a longer period of time, which is preferable.
[0064] The processed solid food of the present invention can be produced according to the above-mentioned method for producing a processed solid food. The amount of the oil-in-water emulsion and, if necessary, the alkaline substance and / or film-forming substance can be appropriately selected within a range that allows the desired flavor to be obtained in the processed solid food, preferably within a range that allows the flavor-imparting effect of the flavor component to be further enhanced and / or maintained for a long period of time, and is not particularly limited, and can be appropriately adjusted depending on factors such as the type and amount of the flavor component contained in the oil-in-water emulsion, the form of the oil-in-water emulsion, the type and form of the alkaline substance and / or film-forming substance, and the flavor desired in the processed solid food. For example, the processed solid food of the present invention may contain an oil-in-water emulsion (in the form having the above-mentioned water content (not in the above-mentioned semi-solid / semi-liquid or dry form)) in an amount of 0.01 to 5% by mass, preferably 0.05 to 1% by mass, based on the solid food; an alkaline substance (if blended) may be contained in an amount of 0.1 to 10% by mass, preferably 0.3 to 5% by mass, based on the dry mass, of the solid food; and a film-forming substance (if blended) may be contained in an amount of 0.2 to 20% by mass, preferably 0.5 to 10% by mass, based on the dry mass, of the solid food.
[0065] The processed solid food of the present invention may be provided in a form that requires a heat treatment step before consumption, or may be provided in a form that has already been subjected to a heat treatment step (heat-treated processed solid food). Here, "heat treatment" is as defined above.
[0066] The processed solid food of the present invention can be provided in a package or container suitable for the desired type and form of the processed solid food. The form of the container is not particularly limited, and may be a pouch, can, jar, tube, bottle, or the like. If necessary, the processed solid food of the present invention may be subjected to heat sterilization before being placed in the container or after being placed and sealed. When the processed solid food is to be subjected to the above-mentioned heat treatment step, the heat sterilization treatment may also serve as the heat treatment.
[0067] The processed solid food of the present invention may further contain, as necessary, ingredients, foods, seasonings, liquid seasonings, sauces, soups, and other ingredients commonly used in the production of foods and beverages, depending on the type and form of the desired processed solid food.
[0068] In the processed solid food of the present invention, the added oil-in-water emulsion adheres to and remains on the solid food, where it retains or maintains the flavor components, thereby suppressing, and preferably preventing, a decrease in the intensity and / or persistence of the flavor provided by the flavor components, and a more favorable flavor can be perceived when eating the processed solid food (i.e., even after being subjected to a heat treatment step) than when the oil-in-water emulsion is not used.
[0069] When the processed solid food of the present invention further contains an alkaline substance and / or a film-forming substance in addition to the oil-in-water emulsion as needed, the intensity and / or duration of the flavor imparted by the flavor component can be enhanced compared to when the alkaline substance and / or film-forming substance are not used in combination, and a good flavor can be perceived when eating the processed solid food (i.e., even after being subjected to a heat treatment process).
[0070] The present invention also relates to a food additive comprising an oil-in-water emulsion.
[0071] The food additive of the present invention contains the above-mentioned oil-in-water emulsion, and by adding it to a solid food, the flavor components contained in the added oil-in-water emulsion impart flavor to the solid food, thereby producing a processed solid food.
[0072] The food additive of the present invention may further contain the alkaline substance and / or film-forming substance described above, if necessary. By adding it to a solid food, the alkaline substance and / or film-forming substance can be added together with the oil-in-water emulsion, which is preferable because the flavor-imparting effect of the flavor component can be further enhanced and / or maintained for a long period of time.
[0073] The food additive of the present invention can be in any form, such as powder, solid, semi-solid, or liquid, and can be appropriately blended with other ingredients commonly used in the production of foods and beverages, and can be prepared according to conventional methods. The food additive of the present invention can be provided in a suitable container. The shape of the container is not particularly limited, and can be in the form of a pouch, can, jar, tube, bottle, or the like, and can be subjected to heat sterilization before being placed in the container or after being placed in and sealed.
[0074] The food additive of the present invention can be used in the above-mentioned method for producing processed solid foods, and can be used to add an oil-in-water emulsion, and optionally an alkaline substance and / or film-forming substance, to the solid food in amounts sufficient to obtain the desired flavor in the processed solid food, preferably to further enhance and / or prolong the flavor-imparting effect of the flavor components. The amounts of the oil-in-water emulsion, and optionally the alkaline substance and / or film-forming substance, added can be appropriately selected within a range sufficient to obtain the desired flavor in the processed solid food, preferably to further enhance and / or prolong the flavor-imparting effect of the flavor components, and are not particularly limited, and can be appropriately adjusted depending on factors such as the type and amount of flavor components contained in the oil-in-water emulsion, the form of the oil-in-water emulsion, the type and form of the alkaline substance and / or film-forming substance, and the flavor desired in the processed solid food. For example, an oil-in-water emulsion (in the form having the above-mentioned water content (not in the semi-solid / semi-liquid or dry form)) can be added to a solid food in an amount of 0.01 to 5% by mass, preferably 0.05 to 1% by mass; an alkaline substance (if added) can be added to a solid food in an amount of 0.1 to 10% by mass, preferably 0.3 to 5% by mass, in terms of dry mass; and a film-forming substance (if added) can be added to a solid food in an amount of 0.2 to 20% by mass, preferably 0.5 to 10% by mass, in terms of dry mass. The food additive of the present invention can contain an oil-in-water emulsion, and, if necessary, an alkaline substance and / or a film-forming substance, in any amount that will achieve the above-mentioned respective addition amounts.
[0075] In the food additive of the present invention, the oil-in-water emulsion, and, if necessary, the alkaline substance and / or the film-forming substance may all be contained in one container, or may be contained separately in two or more containers, each separately or in any combination. The present invention will be described below with reference to examples, but the present invention is not limited to these examples. [Example]
[0076] Experiment 1: Evaluation of emulsion stability of oil-in-water emulsions (1) Preparation of oil-in-water emulsion Oil-in-water emulsions were prepared by adding and mixing each ingredient according to the composition in Table 1. Canola oil was used, and the thickening polysaccharides used were carboxymethylcellulose (CMC), glucomannan, guar gum, κ-carrageenan, tamarind gum, gellan gum, xanthan gum, ι-carrageenan, locust bean gum, and λ-carrageenan, and, as a control, either a carboxyl vinyl polymer or sodium polyacrylate, which are non-polysaccharide thickeners.
[0077] Each component was mixed at once and stirred using a hand blender at 20,000 rpm for 10 minutes. Each resulting oil-in-water emulsion (50 mL) was transferred to a conical tube (Falcon® conical tube 50 mL) and centrifuged at 3,000 rpm for 1 minute. The thickness (depth) of the aqueous phase, micelles, and oil phase was then visually observed, and the proportion (%) of each phase was measured to evaluate the emulsion stability of each composition. Evaluation was performed using a 100% micelle proportion as "◎," a micelle proportion of 70% or more but less than 100% as "◯," and a micelle proportion of less than 70% as "×."
[0078] The amount of each component in the tables below is shown in mass % with the total amount of the obtained oil-in-water emulsion being 100 mass %. Food additives (food grade) were used for the fats and oils, α-cyclodextrin, and thickening polysaccharides.
[0079] [Table 1]
[0080] (2) Results Table 2 shows the polysaccharide thickeners added to the oil-in-water emulsions, the measured proportions of each phase, and the evaluation results. Oil-in-water emulsions can be formed by adding and mixing a polysaccharide thickener with water, fat, oil, and α-cyclodextrin. However, when carboxymethylcellulose (CMC), glucomannan, guar gum, κ-carrageenan, tamarind gum, gellan gum, xanthan gum, ι-carrageenan, locust bean gum, or λ-carrageenan was used as the polysaccharide thickener, the micellar phase of the oil-in-water emulsion was maintained even under the above conditions, demonstrating particularly high emulsion stability. In particular, when CMC, glucomannan, tamarind gum, or xanthan gum was added, no separation of the aqueous and oil phases was observed, demonstrating significantly high emulsion stability. On the other hand, the addition of non-polysaccharide thickeners resulted in significant separation of the aqueous and oil phases under the above conditions, demonstrating relatively low emulsion stability.
[0081] [Table 2]
[0082] Experiment 2: Evaluation of the interaction between α-cyclodextrin and thickening polysaccharides in oil-in-water emulsions To evaluate the interaction between α-cyclodextrin and polysaccharide thickeners in aqueous solution, the enthalpy change (ΔH) was determined by isothermal titration calorimetry (ITC) according to a conventional method. Specifically, using an isothermal titration calorimeter (NANO ITC SV; TA Instruments), 10 μL of a polysaccharide thickener solution (0.05 g / 100 mL) was added dropwise to an α-cyclodextrin aqueous solution (25 g / 100 mL) every 180 seconds for 25 times (75 min), and the enthalpy value (μJ) was calculated from the area of the 25th (final) titration peak. As controls, enthalpy values (μJ) were similarly determined using non-polysaccharide thickeners, carboxyl vinyl polymer and sodium polyacrylate.
[0083] The results are shown in Table 3. When thickening polysaccharides (CMC and xanthan gum), which demonstrated particularly high emulsion stability in Experiment 1, were used, a positive enthalpy value, i.e., an endothermic reaction, was observed. This result suggests the existence of an interaction between the thickening polysaccharide and α-cyclodextrin via hydration water. For example, it is thought that some of the water molecules hydrated in the thickening polysaccharide form hydrogen bonds with α-cyclodextrin. Typically, hydrogen bonds formed between water molecules are shorter in distance and have a higher energy value than hydrogen bonds formed between thickening polysaccharides and α-cyclodextrin, which are caused by intermolecular repulsion due to charged sites. Therefore, when some of the water molecules hydrated in the thickening polysaccharide form hydrogen bonds with α-cyclodextrin, it is thought that an endothermic reaction occurs as a result of the subtraction of energy values. The heat transfer (positive enthalpy value) suggests the existence of an interaction between the thickening polysaccharide and α-cyclodextrin, and this interaction is thought to be the factor that produces high emulsion stability in the oil-in-water emulsion in Experiment 1 above.
[0084] [Table 3]
[0085] Experiment 3: Performance evaluation of oil-in-water emulsions for solid foods (1) Preparation of oil-in-water emulsions containing flavor components An oil-in-water emulsion containing a flavor component was prepared by adding and mixing each component according to the composition in Table 4. Each component was mixed at once and stirred with a hand blender at 20,000 rpm for 10 minutes.
[0086] The amount of each component in the table is shown in mass % with the total amount of the obtained oil-in-water emulsion containing flavor components being 100 mass %. [Table 4]
[0087] (2) Evaluation of flavor in heat-treated processed solid foods According to the composition in Table 5 below, a raw solid food (beef shoulder (25 x 25 x 20 mm)) was mixed with an oil-in-water emulsion (hereinafter referred to as "CF-BP") containing a flavor component (black pepper flavoring), an alkaline substance (trisodium citrate), water, and a film-forming substance (potato starch), and the mixture was applied uniformly to the surface and allowed to adhere. The mixture was placed in boiling water, boiled for 5 minutes, and then cooled in water at 20°C to prepare a heat-treated processed solid food.
[0088] The obtained heat-treated processed solid food was divided into two portions, one of which was subjected to a flavor evaluation test, and the other was further heat-treated in a retort pouch at 122°C for 25 minutes and then subjected to a flavor evaluation test.
[0089] In the flavor evaluation test, well-trained expert panelists (five people) tasted each of the heat-treated processed solid foods and evaluated the following 11-point scale for the categories of "bitterness," "aroma (intensity)," and "aroma (persistence)." For "aroma (persistence)," panelists ate the heat-treated processed solid foods and evaluated the aroma after holding the food in their mouths for five minutes while chewing. 10: The more difficult it is to eat, the stronger it is. 9: So strong that it's difficult to keep in your mouth 8: So strong that you can't taste any other flavors apart from the added flavoring. 7: So strong that you can barely taste any other flavors besides the added flavoring. 6: The flavor of the added flavoring is so strong that it is out of balance with other flavors. 5: Feels very strongly 4: Feels somewhat strong 3: I feel strongly 2: Feel 1: Slightly felt 0: No feeling at all
[0090] In the following, the "breakdown" of each ingredient in the tables is shown as a relative amount (mass%), with the solid food being 100% by mass.
[0091] [Table 5]
[0092] (3) Flavor evaluation results The evaluation results of various heat-treated processed solid foods are shown in Table 6. In the table, each evaluation result represents the average value of five panelists.
[0093] [Table 6]
[0094] The above results demonstrate that it is possible to flavor solid foods using oil-in-water emulsions containing flavoring ingredients, and that the black pepper flavor derived from the flavoring ingredients can be felt with every bite, not only after boiling heat treatment but also after retort sterilization heat treatment, and that the intensity and persistence of the flavor increase in a dose-dependent manner with the added CF-BP (Tests 1 to 7, etc.). Furthermore, it was confirmed that the combined use of CF-BP with an alkaline substance further increased the intensity and persistence of the flavor imparted by CF-BP (Tests 8 to 12, etc.). On the other hand, it was confirmed that if too much alkaline substance was added, the bitterness tended to be perceived as being too strong. It was also confirmed that when alkaline substances were added, the water retention capacity increased, the yield improved, and unpleasant flavors such as bitterness and astringency of the meat were further suppressed.
[0095] Experiment 4: Performance evaluation of oil-in-water emulsions on different solid foods (1) Evaluation of flavor in heat-treated processed solid foods According to the compositions in Table 7 below, processed solid foods were prepared by adding CF-BP, an alkaline substance (trisodium citrate), water, and a film-forming substance (potato starch) to various raw solid foods in the same manner as described in Experiment 3 (2) above.The processed solid foods were then boiled and subjected to a flavor evaluation test.
[0096] The flavor evaluation test for the heat-treated processed solid foods was conducted by a panel of 10 well-trained experts who tasted each of the heat-treated processed solid foods and evaluated the following five-point scale for the categories of "bitterness," "aroma (intensity)," and "aroma (persistence)." For "aroma (persistence)," the panelists ate the heat-treated processed solid foods and evaluated the aroma after holding the food in their mouths for five minutes while chewing. 5: Feels very strongly 4: Feels somewhat strong 3: I feel strongly 2: Feel 1: Slightly felt
[0097] In the tables below, the "amount blended" of each ingredient is shown as a mass ratio, and the "breakdown" is shown as a relative amount (mass %), with the solid food being 100 mass %.
[0098] [Table 7] JPEG2025181056000008.jpg133135
[0099] (3) Flavor evaluation results The evaluation results of various heat-treated processed solid foods are shown in Table 8. In the table, each evaluation result (left column) shows the average value of 10 panelists.
[0100] [Table 8]
[0101] In all of the heat-treated processed solid foods made from beef, pork, and chicken, the pleasant flavor of black pepper was fully felt with every bite.
[0102] The black pepper flavor was also perceived in heat-treated processed solid foods made with shrimp, cod, and octopus. The intensity and persistence of the flavor were perceived to be weaker than in meat, but this is thought to be due to the perceived fishy odor specific to seafood. It is thought that the flavor can be adjusted by increasing the amount of CF-BP used.
[0103] These results demonstrate that the present invention is widely applicable to a variety of solid foods, without any particular limitations on the solid foods.
[0104] Experiment 5: Performance evaluation of oil-in-water emulsions containing different flavor components (1) Preparation of oil-in-water emulsions containing different flavor components An oil-in-water emulsion containing a flavor component (cheese flavoring) (hereinafter referred to as "CF-cheese") was prepared in the same manner as in the formulation of the oil-in-water emulsion described in (1) of Experiment 3 above, except that cheese flavoring was used instead of black pepper flavoring.
[0105] (2) Evaluation of flavor in heat-treated processed solid foods According to the composition in Table 9 below, processed solid foods were prepared by blending raw solid food (beef) with CF-BP or CF-cheese, an alkaline substance (trisodium citrate), water, and a film-forming substance (potato starch) in the same manner as described in Experiment 3 (2) above. After boiling, the processed solid foods were subjected to a flavor evaluation test.
[0106] The flavor evaluation test of the heat-treated processed solid foods was carried out by well-trained expert panelists (8 people) in the same manner as described in Experiment 4 (1) above.
[0107] [Table 9]
[0108] (3) Flavor evaluation results The evaluation results of various heat-treated processed solid foods are shown in Table 10. In the table, each evaluation result represents the average value of eight panelists.
[0109] [Table 10]
[0110] Whether cheese flavor or black pepper flavor was used as the flavor component, the pleasant flavor of the flavor was fully felt with every bite. This result indicates that the flavor component to be contained in the oil-in-water emulsion is not particularly limited and any flavor can be used.
[0111] Experiment 6: Evaluation of processed solid foods using different alkaline substances (1) Evaluation of flavor in heat-treated processed solid foods According to the composition in Table 11 below, processed solid foods were prepared by blending raw solid food (beef shoulder) with CF-BP, an alkaline substance (trisodium citrate, sodium bicarbonate, or calcium lactate), water, and a film-forming substance (potato starch) in the same manner as described in Experiment 3 (2) above. After boiling, the processed solid foods were subjected to a flavor evaluation test.
[0112] The flavor evaluation test of the heat-treated processed solid foods was conducted by well-trained expert panelists (11 people) in the same manner as described in Experiment 4 (1) above.
[0113] [Table 11]
[0114] (3) Flavor evaluation results The evaluation results of various heat-treated processed solid foods are shown in Table 12 below. In the table, each evaluation result represents the average value of 11 panelists.
[0115] [Table 12]
[0116] When trisodium citrate, sodium bicarbonate, or calcium lactate was used as the alkaline substance, the pleasant flavor of the flavoring was fully felt with every bite. In particular, good results were obtained even when a substance with a relatively strong bitter or acrid taste, such as calcium lactate, was used. These results demonstrate that any alkaline substance can be used without any particular limitation.
[0117] Experiment 7: Evaluation of the effect of the presence or absence of film-forming materials (1) Evaluation of flavor in heat-treated processed solid foods According to the composition in Table 13 below, processed solid foods were prepared by adding CF-BP, an alkaline substance (trisodium citrate), water, and a film-forming substance (potato starch) to raw solid food (beef shoulder meat) or not, in the same manner as described in (2) of Experiment 3 above, and after boiling, the processed solid foods were subjected to a flavor evaluation test.
[0118] The flavor evaluation test of the heat-treated processed solid foods was conducted by well-trained expert panelists (11 people) in the same manner as described in Experiment 4 (1) above.
[0119] [Table 13]
[0120] (3) Flavor evaluation results The evaluation results of various heat-treated processed solid foods are shown in Table 14 below. In the table, each evaluation result represents the average value of 11 panelists.
[0121] [Table 14]
[0122] Regardless of whether or not the film-forming substance was used, the pleasant flavor of the flavoring was fully felt with each bite. It was confirmed that the addition of the film-forming substance increased water retention, suppressed unpleasant flavors such as the bitterness and harshness of the meat, and further improved the persistence of the flavor of the flavoring.
[0123] Experiment 8: Evaluation of the effect of the presence or absence of an oil-in-water emulsion (1) Evaluation of flavor in heat-treated processed solid foods According to the compositions in Table 15 below, processed solid foods were prepared by adding an alkaline substance (trisodium citrate), water, and a film-forming substance (potato starch), as well as CF-BP to raw solid food (beef shoulder meat), with or without the addition of CF-BP (only black pepper flavoring in the same amount as contained in CF-BP was added), in the same manner as described in (2) of Experiment 3 above. After boiling, the processed solid foods were subjected to a flavor evaluation test.
[0124] The flavor evaluation test of the heat-treated processed solid foods was carried out by well-trained expert panelists (8 people) in the same manner as described in Experiment 4 (1) above.
[0125] [Table 15]
[0126] (3) Flavor evaluation results The evaluation results of various heat-treated processed solid foods are shown in Table 16 below. In the table, each evaluation result shows the average value of eight panelists.
[0127] [Table 16]
[0128] It was confirmed that by including flavor ingredients in an oil-in-water emulsion, the bitterness and harshness of meat and other unpleasant flavors were suppressed compared to when the flavor ingredients were added directly, and that the intensity and persistence of the flavor of the flavoring were both enhanced.
Claims
1. For solid foods, An oil-in-water emulsion containing water, oil, cyclodextrin, a thickening polysaccharide, and a flavor component. A method for producing a processed solid food, comprising the step of adding
2. The method of claim 1 , further comprising adding an alkaline substance.
3. The method according to claim 1 , further comprising a step of heat treatment after the adding step.
4. 2. The method according to claim 1, wherein the thickening polysaccharide is one or more selected from the group consisting of carboxymethylcellulose (CMC), xanthan gum, locust bean gum, guar gum, glucomannan, κ-carrageenan, ι-carrageenan, λ-carrageenan, tamarind gum, gellan gum, gum arabic, pectin, phosphate cross-linked starch, hydroxypropyl starch, hydroxypropylated phosphate cross-linked starch, tragacanth gum, hydroxypropyl cellulose, methyl cellulose, hydroxypropyl methylcellulose, and hydroxyethyl cellulose.
5. The method according to claim 2, wherein the alkaline substance is at least one selected from the group consisting of carbonates, hydrogen carbonates, and organic acid salts.
6. An oil-in-water emulsion containing water, oil, cyclodextrin, a thickening polysaccharide, and a flavor component; solid foods, Processed solid foods, including:
7. The processed solid food according to claim 6 , further comprising an alkaline substance.
8. A heat-treated processed solid food according to claim 6.
9. A food product comprising the processed solid food according to claim 6 or the heat-treated processed solid food according to claim 8.
10. A food additive comprising water, fats and oils, cyclodextrin, and an oil-in-water emulsion containing a thickening polysaccharide and a flavor component.
11. The food additive according to claim 10, further comprising an alkaline substance.
Citation Information
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