PACKED MODIFIED PROTEIN UNIT AND USE THEREOF - Patent application
Pre-packed protein units with elongated strips facilitate the production of meat analogs by ensuring proper alignment and distribution, addressing the challenge of texture in existing technologies.
Patent Information
- Application Number
- JP2022556688
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-24
- Filing Date
- 2021-03-24
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2041-03-24
AI Technical Summary
Existing technologies face challenges in producing whole cut meat analogs with satisfactory texture using protein-based components, as they often require viscous protein materials that are difficult to distribute evenly through narrow printing nozzles while maintaining structural integrity.
The use of pre-packed protein units comprising elongated modified protein strips, organized in a spatial configuration within a holding element, allows for precise alignment and distribution on a print bed, forming layers with defined patterns.
This method enables the production of meat analogs with consistent texture and structure by ensuring proper alignment and distribution of protein strips, enhancing the quality and consistency of the final product.
Smart Images

Figure 0007734682000001 
Figure 0007734682000002 
Figure 0007734682000003
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to food technology, and in particular to packaged protein materials for use in the food industry. [Background technology]
[0002] The following references are considered relevant as background to the subject matter of this disclosure. -International Patent Application Publication No. 20152689 -U.S. Patent Application Publication No. 2006210675
[0003] Acknowledgment of the above references herein should not be inferred to mean that they are in any way relevant to the patentability of the subject matter of this disclosure.
[0004] background The production of whole cut meat analogs requires an organized assembly of texturized proteins.
[0005] WO 20152689 describes the production of meat analogues that contain protein-based and fat-based components separately distributed within the meat analogue. The alignment of the protein material in the meat analogue is obtained using extrusion techniques. Summary of the Invention
[0006] The technology disclosed herein is directed to providing pre-packed protein materials for use in the manufacture of meat analog products in a mechanism that serves as an alternative or complement to the printing, dispensing or deposition of viscous protein materials.
[0007] To obtain a satisfactory whole cut meat substitute, the protein material therein must have a specific texture, which can be achieved, inter alia, by using protein material with a defined material orientation, as opposed to ground meat substitutes.
[0008] The technology disclosed herein is based on the principle of "off-line" preparation of elongated strips (e.g., strands) of essentially solid, already modified protein material, and packing the elongated strips in a manner that allows them to be placed on a print bed in a manner that forms layers of protein material according to a desired pattern.
[0009] Thus, according to its first aspect, the present disclosure provides a packed protein unit comprising at least one modified protein strip held in an organized spatial configuration by or within a holding element, the at least one elongated modified protein strip being defined by a longitudinal axis and a cross-section perpendicular to the longitudinal axis; At least one dimension of the cross section is 10 mm or less and the longitudinal axis has a dimension of at least 100 mm.
[0010] The packaged protein units are preferably for use in the manufacture of meat analog products.
[0011] According to a further aspect, the present disclosure provides a set of packed protein units, each unit comprising at least one elongated modified protein strip held in an organized spatial configuration by or within a holding element, wherein the at least one elongated modified protein strip is defined by a longitudinal axis and a cross section perpendicular to the longitudinal axis, at least one dimension of the cross section being 10 mm or less and the longitudinal axis having a dimension of at least 100 mm, and wherein at least one elongated modified protein strip in at least some of the units of the set is different from at least one other modified protein strip in other units of the same set.
[0012] The present disclosure also provides, according to a further aspect, a method for producing a food product, preferably a meat analog product, comprising providing at least one packed protein unit comprising one or more elongated modified protein strips held in an organized spatial configuration by or within a retaining element, and discharging one or more of the elongated modified protein strips from the packed protein unit onto a food production bed to form one or more monolayers of modified protein strands, wherein at least one elongated modified protein strip is defined by a longitudinal axis and a cross section perpendicular to the longitudinal axis, at least one dimension of the cross section being 10 mm or less, and the longitudinal axis having a dimension of at least 100 mm, the discharging in a manner that causes alignment of at least 60% of the plurality of elongated modified protein strips along a predetermined direction in the monolayer, and the discharging of the one or more elongated modified protein strips on the food production bed in a manner such that multiple layers of the food product, preferably a meat analog product, are formed, each monolayer essentially overlapping one another.
[0013] In order to better understand the subject matter disclosed herein and to illustrate how it may be carried out in practice, embodiments will now be described, by way of non-limiting example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 is a schematic diagram of a cross-sectional isometric view of a packed protein material according to an example of the present disclosure. [Figure 2A] 1A-1C are schematic diagrams of cross-sectional views of packed protein materials according to some other examples of the present disclosure. [Figure 2B] 1A-1C are schematic diagrams of cross-sectional views of packed protein materials according to some other examples of the present disclosure. [Figure 3A] FIG. 1 is a schematic diagram of a packed protein material in which the modified protein is in a sheet-like form. [Figure 3B]FIG. 1 is a schematic representation of packed protein material, where each sheet-like structure is composed of units of modified protein material in the form of short strands. [Figure 3C] FIG. 1 is a schematic representation of packed protein material, where each sheet-like structure is composed of units of modified protein material in the form of elongated strands. [Figure 3D] FIG. 1 is a schematic representation of packed protein material in which sheet-like structures can be stacked on top of each other to form modified protein units. [Figure 4] FIG. 1 is a schematic diagram of a packed protein material in the form of elongated strands arranged in a folded configuration, according to another example of the present disclosure. [Figure 5] 1 is a schematic diagram of a packed protein material in a spirally wound configuration and some elements of a digital printer, the packed protein according to yet another example of the present disclosure. [Figure 6A] FIG. 1 shows a packed protein material in the form of elongated strands helically wound around a central body having the shape of a spool, the strands being narrow. [Figure 6B] FIG. 1 shows a packed protein material in the form of elongated strands spirally wound around a central body having the shape of a spool, the strands being wider. [Figure 7A] 1 shows an image of an exemplary modified protein strand according to one example of the present disclosure, and an illustration of an individual elongated strand and its dimensions. [Figure 7B] 1 shows an image of an exemplary modified protein strand according to one example of the present disclosure, and an illustration of an individual elongated strand and its dimensions. [Figure 7C] 1A-1C show images of an exemplary modified protein strand according to one example of the present disclosure, 1D shows images of a cross section of the strand and its internal morphology, and 1E shows images of an exemplary modified protein strand according to one example of the present disclosure, 1F shows images of a cross section of the strand and its internal morphology, and 1G shows images of an exemplary modified protein strand according to one example of the present disclosure, ... [Figure 7D]1A-1C show images of an exemplary modified protein strand according to one example of the present disclosure, a shows a wound elongated strand, b shows an image of a cut strand cross section and its porous morphology. DETAILED DESCRIPTION OF THE INVENTION
[0015] FIELD OF THE DISCLOSURE The present disclosure relates to pre-packed modified protein materials for use in forming food products, particularly but not exclusively for use in forming meat analogs.
[0016] The present disclosure is based on the understanding that protein-based foods, particularly meat analogs prepared by additive manufacturing techniques such as, but not limited to, digital printing, require the use of a protein-rich dough / paste that is, on the one hand, sufficiently viscous to retain the shape of the formed meat analog product (i.e., to support itself and any subsequent deposited layers), and, on the other hand, sufficiently fluid, i.e., in a physical state that allows it to flow through a narrow printing nozzle. However, when attempting to distribute such viscous protein dough using 3D printing techniques, an alternative is envisioned, and this alternative is based on preformed modified protein strips. Such preformed modified protein-based strips can be packaged in a manner suitable for subsequent use by a specific food manufacturer. In a preferred embodiment, the packaged protein strips are packaged in a manner suitable for use in the meat analog industry.
[0017] Thus, according to its first aspect, the present disclosure provides a packed protein unit comprising elongated modified protein strips held in an organized spatial configuration by or within a retaining element, at least one elongated modified protein strip defined by a longitudinal axis and a cross-section perpendicular to the longitudinal axis, at least one dimension of the cross-section being 10 mm or less, and the longitudinal axis having a dimension of at least 100 mm. The packed protein unit is preferably for use in the manufacture of a food product, preferably a meat analogue.
[0018] When a unit comprises two or more strips, the multiple strips are preferably arranged in the form of an organized collection of one or more separable modified protein strips, as further described below.
[0019] In the context of the present disclosure, reference to a packed protein unit should be understood to mean a modified protein material that is typically held in a predetermined organized spatial arrangement by or within a holding element. The modified protein material can be packed in a housing, e.g., a container or cartridge, and / or mounted on a support, the housing and support being collectively referred to herein as a "holding element."
[0020] The "retaining element" can have any shape and / or configuration and can be made of any rigid or semi-rigid material that allows it to retain at least one modified protein strip in its predetermined configuration / form. The retaining element can hold the elongated strip in any desired form, either as a sealed container surrounding the elongated strip or as a support that physically holds the strip, as further described below.
[0021] Furthermore, in the context of the present disclosure, when reference is made to an "organized spatial configuration," it should be understood as any arrangement of one or more strips other than any arrangement, specifically a predetermined or pre-organized arrangement in a manner configured to allow for easy release of one or more strips from the retainer.
[0022] In some examples, the strip is in the form of an elongated strand (fiber / filament / string). Reference to a strand should be understood to refer to a strip having essentially the same dimensions in any direction along its cross-section (taken perpendicular to its longitudinal axis). This can include, for example, a generally circular cross-section. Thus, according to this non-limiting example, the strip is an elongated strand / string.
[0023] In some other instances, the strip is flattened, for example in the form of a sheet.
[0024] The sheet may be defined by at least two dimensions (perpendicular to the longitudinal axis) of its cross section, one dimension being at least twice the other dimension.
[0025] In some instances, the packed protein unit comprises a plurality of modified protein strips.
[0026] As defined herein, the longitudinal axis is at least 100 mm in length, sometimes 200 mm in length, sometimes 250 mm in length, sometimes 300 mm in length, sometimes 400 mm in length, or sometimes 500 mm in length. In some examples, the longitudinal axis is any range between 100 mm and 500 mm, 150 mm and 1,000 mm, 100 mm and 1,000 mm, or 100 mm and 10 mm.
[0027] With respect to the cross-section of the strip, it is noted that the strip can have a generally curved circumference, e.g., a generally circular, generally oval, or a generally polygonal circumference, e.g., a generally square, rectangular, etc., even if the curved line is amorphous. The strip is then defined by the dimensions of the cross-section.
[0028] The strip may alternatively or additionally be defined by a two-dimensional ratio, for example a length to average cross-section ratio, for example a 500mm strip with a 2mm diameter has a dimension ratio of 250.
[0029] In some examples, the strip is characterized by at least one cross-sectional dimension within the range of 0.01 mm to 10 mm, sometimes 0.02 mm to 3 mm, sometimes 0.05 mm to 3 mm, sometimes 0.1 mm to 5 mm, sometimes 0.02 mm to 0.1 mm, sometimes 0.05 mm to 1 mm, and sometimes 0.75 mm to 2 mm.
[0030] In some instances, strips are characterized by their cross-sections (when the cross-section is taken perpendicular to the longitudinal axis). The cross-section is defined regardless of whether the strip is porous or void-containing. Thus, while a cross-sectional cut typically shows a spongy or porous strip, the cross-section takes into account the total area within the boundary / contour of the cut. Cross-sectional cuts of exemplary strips and their spongy morphology are shown in FIG. 7D.
[0031] In some instances, the cross section is 100 mm 2 Less than, sometimes 90mm 2 Less than, sometimes 80mm 2 Less than, sometimes 70 mm 2 Less than, sometimes 60 mm 2 Less than, sometimes 50 mm 2 Less than, sometimes 40 mm 2 Less than, sometimes 30 mm 2 Less than, sometimes 20 mm 2 Less than, sometimes 10 mm 2 Less than, sometimes 8 mm 2 Less than 6 mm sometimes 2 Less than, sometimes 4 mm 2 The strips can be prepared or obtained by a variety of techniques.
[0032] In some instances, the strip is in the form of a strand, the strand being obtained by extrusion.
[0033] In some instances, the strips are in the form of strands obtained by using a shear cell.
[0034] In some other instances, the strip is obtained by mechanical slicing of the strip, either as a strand or as an elongated sheet.
[0035] In some instances, the strips are interconnected, one securing the strip in position relative to the other. In one preferred instance, the interconnected strips are essentially parallel to one another along their longitudinal axes. The strips can be interconnected using, for example, an edible adhesive, film, or fiber, which is then retained as part of the food product, or the interconnection can be made of food packing material that must be removed before laminating the strips into the final formed food product.
[0036] In some examples, the packed protein unit includes two or more modified protein strips held together within a housing. In some examples, the packed protein unit, e.g., a single housing, includes multiple elongated modified protein strips stacked on top of each other such that the individual strips are oriented parallel to one another along a longitudinal axis.
[0037] Reference to "parallel strips" or "parallel oriented strips" should be understood to refer to the orientation of at least 80% of the strips, preferably 95% of the strips, preferably 99% of the strips, in one direction relative to the other when viewed within a portion of a layer with their longitudinal axes approximately parallel. The term "approximately parallel" should be understood to encompass a nominal orientation of the longitudinal axes that is at most ±10°, sometimes at most ±3°, and sometimes at most ±1°.
[0038] In some examples, the multiple strips within the housing are individual, separable strips such that each strip is ejected from the cartridge as an individual strip.
[0039] In some other examples, multiple modified protein strips are stacked parallel to one another within the housing in the form of monolayers of parallel strands and are therefore releasable from the housing as individual layers, each layer comprising parallel strands.
[0040] In some other examples, the strips are held within the housing as a set of stacked sheets.
[0041] Within a packed protein unit, the strips may in principle vary in their shape and / or composition and / or dimensions.
[0042] Furthermore, in some preferred examples, the packed protein units comprise the same protein composition, and in some examples, strips of single packed protein units have at least essentially the same length along their longitudinal axis.
[0043] In some instances, the packed protein unit comprises a plurality of individual modified protein strips having essentially the same dimensions.
[0044] In some instances, the holding element is in the form of a cartridge that encloses / carries one or more elongated modified protein strips.
[0045] In some examples, the retention element is a cartridge that retains one or more elongate strands, each folded in a convoluted configuration. Reference to a "convoluted configuration" should be understood to encompass any spatial arrangement of the strands that allows for smooth release of the strands from the cartridge, for example, a spatial arrangement without knots.
[0046] In some examples, the convoluted configuration comprises a zigzag configuration, hi some other examples, the convoluted configuration comprises a helical or coiled configuration.
[0047] In some examples, the holding element is in the form of a cartridge that holds a plurality of individual separable strands or individual separable sheet-like strips stacked one on top of the other in a parallel orientation. The cartridge is configured to allow for individual, separate release / extraction / dispensing of each strip in a controlled manner. For example, the opening of the cartridge comprises a controllable shutter operable to release the individual strips at a controlled rate and / or in a controlled direction / orientation.
[0048] In some instances, the retaining element is in the form of a central body, and one or more elongated modified protein strips are helically wound around or wrapped onto the central body.
[0049] In some instances, the strips are elongated strands, with each unit comprising a central body having a single elongated modified protein strand wound thereon.
[0050] In some other examples, the strip is in the form of an elongated sheet, and each packed protein unit includes a central body having a single elongated modified protein sheet wrapped thereon. In yet some other examples, the packed protein unit includes a central body having a plurality of strands wrapped thereon, the strands being interconnected to one another in an essentially parallel orientation. When referring to the interconnected strands, they can be visualized like a bamboo mat, i.e., a bamboo-like mat can be formed, with a distance between adjacent strands. The distance between the strands can be essentially the same or different. In some cases, the distance between the strands is essentially the same. In some cases, the distance between the strands is such that there is essentially no physical contact between adjacent strands along their longitudinal axes.
[0051] In some instances, the central body has a form selected from a spindle or cylinder, with or without flanges, around which the elongated strip is wound. Sometimes the central body resembles a bobbin or spool.
[0052] In some instances, the central body has a curved circumference, e.g., circular, oval, or any other curvature that preferably lacks angles that could damage / crack the strands wrapped around it.
[0053] The protein strip comprises a modified protein material.
[0054] In the context of the present disclosure, the term "modified protein strip" should be understood to mean that the strip comprises one or more bundles of modified fibers, e.g., an essentially axially aligned protein-containing strip comprising fibers, whether in the form of a strand or a sheet, and that, as discussed further below, each bundle of modified fibers comprises a structurally organized assembly of protein-based material.
[0055] Additionally or alternatively, when reference is made to modified protein strips, it should be understood as proteins produced by extrusion methods known in the art, for example, to produce modified vegetable protein (TVP) or other techniques such as high moisture extrusion (HME).
[0056] Alignment can be achieved by a variety of techniques, such as applying a constant mechanical force in a specific direction to the flowing protein material, either by continuous pushing (e.g., as occurs during extrusion), continuous pulling (e.g., as occurs in spinning), and shearing (e.g., as occurs in a shear Couette cell).
[0057] Alignment techniques can utilize thermal effects (eg, heating or cooling), chemical agents (eg, enzymes), etc. to enhance the anisotropic properties of the resulting fibers.
[0058] In some instances, the requisite alignment of the protein material within the strips is achieved by extrusion, such as hot or cold extrusion. Thus, the one or more modified protein strips comprise a protein extrudate.
[0059] In some other instances, the required protein alignment is obtained by spinning, for example, using an electrospinning apparatus. Protein spinning methods for modifying proteins include, but are not limited to, enzymatic approaches (typically to obtain a gel-like structure), dehydration approaches (typically to stiffen the protein material), temperature approaches (to affect the flowability / solubility of the protein material), anti-thinning approaches (typically referred to as wet spinning), and pH approaches (typically to affect the solubility of the protein material, for example, chitosan, which is more soluble in slightly acidic conditions).
[0060] The ability of a protein material to form into elongated fibers is typically related to its basic shape (rod-like / elongated structures can form fibers much more easily than spherical ones). Furthermore, proteins may require heat and / or high shear forces to prime them to form fibrous materials. Therefore, in some instances, protein materials are combined with non-protein materials for the spinning process.
[0061] In some instances, to promote the formation of essentially aligned fibers (not necessarily in the spinning process), the protein material can be combined with one or more polysaccharides. Such polysaccharides are polymers that are water-soluble or soluble at a specific pH. Such polymers include, but are not limited to, gum gum, xanthan gum, k-carrageenan, chitosan, cellulose, starch, and lignin.
[0062] In the context of the present disclosure, the term "essentially" should be understood to include some level of deviation from the defined parameters (e.g., 1%, 2%, 3%, 10% or even up to 20%).
[0063] As used herein, the term "essentially axially aligned fibers" refers to a fiber or sheet of modified protein in which the protein fibers have a nominal direction that is essentially the same as the direction of the longitudinal axis of the strip.
[0064] As used herein, the term "nominal direction" refers to a direction in which, when the strip is viewed from any direction perpendicular to the strip direction, more than 50% of the fibers in the strand have an orientation up to ±45 degrees from the nominal direction. The term "nominal direction" can also refer to the average orientation of the fibers found using high magnification imaging as described herein.
[0065] In some instances, the nominal direction of the modified protein fibers or sheets within a segment of the strip is approximately parallel to the long dimension of the strip for at least 80%, preferably 95%, preferably 99% of the strip.
[0066] The fibers within the strip may be arranged in single or multiple discrete bundles. According to some examples, the protein fibers within the strip are elongated fibers.
[0067] In some examples, the fibers are aligned within the strip, and the structural alignment of the fibers can be obtained by methods known in the art, including extruding the protein-containing material, kneading (e.g., rolling out a wheat-gluten-containing dough), spinning the protein-containing material (e.g., wet-spinning or electrospinning the protein material), applying shear forces and heat in other methods such as a Couette cell, as discussed further below.
[0068] The protein material in the strip can be present in any structurally organized (ie, modified) form.
[0069] In some other instances, the protein material in the strip may be present in the form of vesicles.
[0070] In still some other instances, the protein material within the strip is present in the form of a polymer matrix that holds the protein material.
[0071] Furthermore, in some instances, the protein material in the strip is present in the form of an emulsion and / or dispersion.
[0072] Additionally, in some instances, the protein material in the strip is present in the form of a protein-based gel.
[0073] In some examples, the protein material includes denatured proteins. The denatured proteins may be of the type obtained by methods known in the art that result in protein denaturation and / or alignment of protein filaments and the production of fiber or "sheet-like" structures. Without limitation, the denatured proteins may be of the type obtained by applying mechanical force (e.g., in processes such as spinning, stirring, shaking, shearing, pressure, application of turbulence, collision, confluence, beating, friction, waves, etc.), radiation (e.g., microwave, electromagnetic), thermal energy (heating—steam or otherwise), cross-linking, enzymatic reaction (e.g., transglutaminase activity), and chemical reagents (e.g., pH adjusters, kosmotropic salts, chaotropic salts, gypsum, surfactants, emulsifiers, fatty acids, amino acids).
[0074] The protein may be from a variety of sources that are acceptable and safe for human use or consumption.
[0075] In some examples, the protein is plant-derived (eg, an isolate or concentrate) or comprises plant-derived edible proteins and / or peptides and / or amino acids.
[0076] The protein material may include one or more proteins in combination with other non-protein materials, such as fat, but even when fat is included, the protein will make up the majority of the protein material, as discussed further below.
[0077] Without being limited thereto, the plant source of protein may be any one or combination of soybeans, wheat, legumes (pulses, beans, peas, lentils, nuts), plant seeds and grains (e.g., sunflower, canola, rice), stem or tuber protein (e.g., potato protein), rapeseed, and corn.
[0078] In some instances, the protein is derived from a legume. Specific, but non-limiting examples of legume / bean proteins include soy protein, pea protein, chickpea protein, lupin protein, mung bean protein, kidney bean protein, black bean protein, and alfalfa protein.
[0079] Some specific, but non-limiting, proteins suitable for meat analogs are betagonglycin, glycinin, vicilin, legumin, albumin, globulin, glutelin, gluten, gliadin, glutenin, mycoproteins.
[0080] In some instances, proteins may be derived from sources other than plants, such as algae, fungi (eg, yeast), bacteria, and microorganisms in general.
[0081] In some instances, the protein material is of a non-mammalian source.
[0082] In yet another example, some of the protein material may contain animal-derived components, such as beef tendons, chicken muscle fibers, insect-derived protein powders, etc., even if the source of the cells is animal-derived, or may be achieved by cell culture.
[0083] However, preferred examples are those that are free of mammalian or animal-derived components (except those obtained from cell culture).
[0084] The protein may be in the form of pure protein, protein isolate, protein concentrate, protein powder, modified protein such as modified vegetable protein (TVP).
[0085] In some instances, the packed protein units comprise modified vegetable protein (TVP). TVP is known in the art for use as a meat extender or vegetarian meat, and is typically made by extruding a protein isolate or concentrate from a plant source such as wheat, pea, etc., using high shear, pressure, and heat. TVP is commercially available in a variety of sizes, from large chunks to small flakes.
[0086] In the context of this disclosure, TVP is used to refer to both the dry form of the modified vegetable protein (sometimes considered expanded TVP) and the high moisture forms known in the art as high moisture extruded (HME) or high moisture extrusion cooked (HMEC) or similar results. TVP can also refer to any "intermediate" form of the modified vegetable protein, where the moisture level in the TVP and / or the degree of expansion of the TVP is intermediate to that typically found in the dry (expanded) and HME (C) forms.
[0087] In some instances, the packed protein units include gluten, which is known to form fibrous structures in its native form upon simple hydration. Without being bound by theory, such gluten-based fibers can be aligned in a particular direction by pulling or pushing with a printing nozzle.
[0088] The protein strips within the packed protein unit can contain a single protein or a combination of proteins.
[0089] The packed protein units may contain substances other than protein material.
[0090] In the context of the present disclosure, the protein strips of the packed protein units comprise at least 30% protein, although in some preferred examples the protein strands comprise at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 70%, or even at least 80% protein material.
[0091] In some instances, the strips within the packed protein unit are fat-free.
[0092] In some other instances, the packed protein strips contain fat, for example, to adjust the rheological properties, such as flexibility, of the packed protein strips.
[0093] The strips within the packed protein units may contain other edible additives such as, but not limited to, fiber derived from either protein and / or carbohydrate sources, including, but not limited to, starch and dietary fiber (and other forms of cellulosic fiber), colorants (e.g., annatto extract, caramel, elderberry extract, lycopene, paprika, turmeric, spirulina extract, carotenoids, chlorophyllin, anthocyanins, and betanin), emulsifiers, acidulants (e.g., vinegar, lactic acid, citric acid, tartaric acid, malic acid, and fumaric acid), flavorings or flavor enhancers (e.g., monosodium glutamate), antioxidants (e.g., ascorbic acid, rosemary extract, aspalathin, quercetin, and various tocopherols), fortifiers (e.g., amino acids, vitamins, and minerals), preservatives, stabilizers, sweeteners, gelling agents, thickeners, and dietary fiber (e.g., fiber derived from citrus sources).
[0094] The packed protein units may contain different protein strips to provide different portions of the food product, for example meat analogs, with different textures or experiences.
[0095] The protein strip may be partially coated or packed or covered or surrounded or encapsulated with the functional material. The coating may be a partial coating, such that only a portion of the outer surface of the strip is covered by the functional material, or the coating may be a complete coating, such that the entire outer surface of the strip is covered by the functional material.
[0096] In the context of this disclosure, the term "functional material" encompasses any substance that imparts a physical or chemical property to a strip. The functional material may be in the form of a powder, film, or liquid that is associated with one or more portions of the exterior surface of the strip(s).
[0097] In some examples, the functional material is selected to at least prevent or reduce adhesion between adjacent strips, for example, a non-stick surface that prevents adjacent strands from sticking to each other while packed within or by the retaining element. Such substances can include, but are not limited to, celluloses such as methylcellulose (e.g., in powder form), crystalline methylcellulose (CMC), alginates, pectins, anti-caking agents, zein powder, edible mineral powders, hydrocolloids, gluten powder, and the like, which can also be used to strengthen the strips.
[0098] In some other examples, the functional material is a non-edible but food-safe plastic material such as polyethylene, polypropylene, nylon, or other types of film / food packaging materials. In the case of non-edible coatings, these are typically removed prior to printing. Removal may be by mechanical peeling, chemical (e.g., dissolving), and / or melting.
[0099] In some other examples, the functional material may be one or more substances selected to improve the texture of the strip. In one example, the functional material is selected to improve the flexibility of the strip. Without limitation, such substances may include water, gelling agents, adhesive materials, and, further non-limiting examples, oils, or sometimes, non-limiting examples, starches, alginates, waxes, and celluloses.
[0100] In yet some other instances, the functional material protects the protein material from oxidation, for example, when the modified protein is hydrated or even partially hydrated and therefore susceptible to oxidative damage. Without limitation, such antioxidant coating materials can include food-safe polymers.
[0101] In yet some other instances, the functional material is a bacterial protectant, i.e., prevents / blocks bacterial growth on the strip, for example, when the modified protein is hydrated or even partially hydrated and therefore more susceptible to bacterial contamination.
[0102] In some examples, the functional material is a hydrating / moisturizing material used to provide moisture or increase the moisture content at least on the surface of the strip. Without limitation, such a moisturizing material is or includes water.
[0103] In some instances, the functional material is an edible material that remains associated with the protein material and forms part of the final average analog product.
[0104] In some instances, the functional material is an adhesive precursor, i.e., a material that is inactive when the protein is in a packed state and can be activated to act as an adhesive upon hydration / contact with water, for example. For example, the functional material can include starch and / or gluten, which become tacky when wet and act as an adhesive.
[0105] In some instances, the functional material applied onto the strip is a binder.
[0106] In the context of the present invention, a binder is any substance that contributes to the integrity of the produced meat analog product, ie, to ensure and / or maintain the cohesiveness and / or structural stability of the product.
[0107] Stickiness describes how well a food maintains its shape between the first and second chews. This stickiness value is directly related to the tensile and compressive strength of the meat analog product. For example, meat has high cohesion, while peaches, for example, have low cohesion.
[0108] In some examples, the binder is any one or combination of gluten, such as wheat gluten, egg white, gums and hydrocolloids, enzymes, cross-linked gelling agents, and starches.
[0109] In some instances, the enzyme is of a type that catalyzes the formation of disulfide bonds and / or isopeptide bonds. In some instances, the enzyme is a transglutaminase.
[0110] In some instances, the binder comprises a hydrocolloid, which is already used in meat products to improve functional properties and sometimes counteract the undesirable effects of fat reduction, salt reduction and freeze / thaw processes.
[0111] Hydrocolloids as used in the context of the present disclosure may include, but are not limited to, a single type of hydrocolloid such as carrageenan, alginate (e.g., calcium alginate), konjac gum, flaxseed gum, or locust bean gum.
[0112] In some instances, the hydrocolloid is formed from a combination of substances that produce a synergistic effect, such as those listed above.
[0113] The protein strip can be treated with the functional material at different stages. In some cases, the protein strip is treated before packing, and in other cases, the protein strip is treated before being placed on the AM bed. In yet some other cases, the protein strip is treated with the functional material after being placed on the bed. Treatment of a protein strip already placed on the bed can occur during the formation of a single layer, after a layer has been formed, and / or after several layers have been formed. The functional material can be activated when in contact with the strip, for example, by inducing crosslinking. In some cases, for example, when the functional coating includes wheat protein, activation to a sticky coating can be achieved by spraying the strip with water, causing the formation of a "sticky" gluten coating.
[0114] In some instances, at least a portion of the periphery of the protein strips is mechanically treated to improve bonding between the strips once the food product is processed, as further described below.
[0115] To allow for long-term storage stability of the strip within the packed protein unit, it is preferred that the protein strip be essentially dry. Reference to an essentially dry protein strip should be understood to encompass protein material containing up to 15% (v / v) water, sometimes up to 10% water, sometimes up to 5% water, and sometimes less than 1% water.
[0116] In some instances, the strips of packed protein units are semi-dry, i.e., contain up to 25% v / v water, sometimes 15%-25% v / v water.
[0117] The dried protein strip can be obtained by various drying methods known in the art. In some examples, the dried protein strip is obtained by freeze-drying the strip. In some other examples, the dried protein strip is obtained by inert gas drying (K. Sanjeev & M. N. Ramesh (2006) Low Oxygen and Inert Gas Processing of Foods, Critical Reviews in Food Science and Nutrition, 46:5, 423-451, DOI: 10.1080 / 10408390500215670).
[0118] The packing method can sometimes determine the level of dryness. For example, if the packed protein units are in the form of multiple essentially linear strips stacked parallel to one another (somewhat similar to matches in a matchbox), the multiple strips may be rigid and / or essentially completely dry. Furthermore, for example, if the packed protein units include strips in a folded configuration, it may be necessary to maintain some flexibility of the strips, which may require a small amount of moisture. Alternatively, flexibility can be achieved by adding a certain amount of oil or other additives, such as softeners, e.g., gums.
[0119] To further ensure the long-term stability of one or more modified protein strips of packed protein units, they can be maintained under an inert atmosphere, also referred to as an oxygen-free atmosphere. The inert atmosphere / conditions can be obtained by any means, including, but not limited to, a vacuum environment, an inert gas atmosphere (typically referring to a gaseous mixture containing little or no oxygen and consisting primarily of non-reactive gases or gases with high thresholds of reactivity before reaction, such as nitrogen, argon, helium, and carbon dioxide).
[0120] To further ensure long-term stability, in some instances, one or more modified protein strips are sterilized and / or combined with a food-grade preservative. Examples of preservatives include, but are not limited to, pH adjusters (selected to lower the pH of the food to below 6), salts, etc. Additionally or alternatively, sterilization may be by heat and / or UV or other radiation means.
[0121] In some instances, to obtain a monolayer or multilayer food product, a strip of protein is applied onto a print bed such that a single folded chain or multiple individual strands are laid down or arranged on the print bed such that the segments between the folds of a single strand or between multiple strands are preferentially essentially parallel along their longitudinal axes.
[0122] In this way, numerous monolayers of strands are formed into a 3D food product, according to the principles of digital printing.
[0123] In some other cases, to obtain a monolayer or multilayer food product, the protein strips are applied according to other principles of additive manufacturing technology, not necessarily based on 3D printing, which may include, for example, the use of a robot to place the strips one on top of the other according to a predefined plan.
[0124] Processed foods, such as meat analog products, can include combinations of ingredients beyond just protein strips released from packed protein units, which can be achieved, for example, by using a combination of print heads operating according to a predetermined print pattern / print assembly plan, as described in PCT / IL2020 / 050099, the contents of which are incorporated herein by reference.
[0125] In some instances, the additional ingredient is a fat-based material. In the context of the present disclosure, reference to a fat-based material should be understood as a composition comprising any type of food-acceptable fat or fat-like ingredient used as a fat substitute in the food industry.
[0126] The fat-based material can be incorporated into the food product, for example, when produced via a dedicated separate print head (as fat-based strands) or introduced by spraying or dipping the fat-based material into a bed holding the released protein material.
[0127] Meat analogs can also be formed by combining a protein material and optionally a fat-based material with a water-based or aqueous-based or moisture-providing material, including aqueous solutions or gels carrying various solutes and / or suspending / dispersing materials such as colorants, salts, thickeners, packing agents, stabilizers, emulsifiers, etc.
[0128] In some instances, the aqueous material is in the form of a gel at temperatures ranging from 15°C to 80°C, sometimes ranging from 20°C to 65°C.
[0129] In some examples, the aqueous component includes any one or combination of food additives such as colorants, emulsifiers, stabilizers, acidulants, flavoring agents, thickeners, antioxidants, food fortifiers, preservatives, vitamins, sweeteners, and the like, all known to those skilled in the art.
[0130] In some instances, the protein strip is combined with any one or combination of modified starch, maltodextrin, agar, modified starch, each of which acts as the aqueous material.
[0131] The water-containing material can be applied onto the fabricated layer by any technique, including spraying via a material applicator, such as applicator 414 in FIG. 4, or even by dipping.
[0132] A meat analog product can be constructed from different protein materials that are separately applied onto an additive manufacturing bed, for example, from different print heads or print tips of a 3D printer. To facilitate the combination of different protein strips, the present disclosure also provides a set of packed protein units, each unit including an elongated modified protein strip held by or within a retaining element, at least one elongated modified protein strip defined by a longitudinal axis and a cross-section perpendicular to the longitudinal axis, at least one dimension of the cross-section being 10 mm or less and the longitudinal axis having a dimension of at least 100 mm, and the elongated modified protein strips in at least some of the units of the set differ from the elongated modified protein strips in other units in the set.
[0133] The difference between two units of a set may be due to any chemical and / or physical parameter. In some cases, the difference is at least one of the dimensions and / or texture and / or composition of the modified protein strips.
[0134] More specifically, but not limited to, differences in protein strips between packed protein units within a set can be indicated by any of the following: Differences in the composition of components, for example, the type and / or degree of purity of protein contained within different packed protein units, and / or differences in the amount of protein contained within different packed protein units (even when the same protein is used between different units within a single set of units). - differences in protein organization in different packed protein units, for example, such that some packed protein units in a set are highly modified (preferably fibrous, preferably substantially aligned fibrous) and some are less modified and therefore exhibit different organizational behavior. -Differences in the porosity of protein strains in different packed protein units, which may contribute to or affect the water-holding capacity of the protein. -Differences in the form of proteins in packed protein units, such that some proteins within a unit may be in the form of a gel and some other proteins may be in the form of a dough and / or emulsion within units of the same set of units.
[0135] The present disclosure also provides a method of making a meat analog product, the method comprising: providing at least one packed protein unit comprising at least one elongated modified protein strip held in an organized configuration by or within a holding element, the at least one elongated modified protein strip being defined by a longitudinal axis and a cross-section perpendicular to the longitudinal axis; and - discharging one or more modified protein strips from the at least one packed protein unit onto a food production bed to form one or more monolayers of modified protein strands; at least one dimension of the cross section is 10 mm or less and the longitudinal axis has a dimension of at least 100 mm; the release is in a manner that causes alignment of at least 60% of the plurality of modified protein strips in the monolayer along a predetermined direction; Said discharging of the at least one modified protein strip is in such a manner as to form multi-layered meat analog products onto the food making bed, with each layer being formed essentially on top of one another.
[0136] In the context of the present disclosure, when referring to a layer, e.g., within a set of layers formed on top of one another, as is done in additive manufacturing processes, e.g., 3D multilayer structures, it is understood that the layer may be a complete layer, i.e., a layer extending over the entire surface of the previously formed layer (on which it is placed), or a partial layer, e.g., a layer occupying only a portion or part of the previously formed layer, or a single strand placed on top of a previously formed layer.
[0137] The protein strip can be released from the retaining element in a variety of ways, sometimes depending on the pack configuration.
[0138] In some examples, the modified protein strips are released from the holding unit by unwinding or unwinding at least one elongated modified protein strip that is each wrapped or spirally wound onto the central body.
[0139] In some other instances, the modified protein strips are released by dispensing individual strips from a holding element.
[0140] In still some other instances, the modified protein strip is released by air or a dedicated robotic arm, which lifts or pulls the strip from the unit.
[0141] In some examples, one or more elongated modified protein strips are hydrated before, during, or after release from the packed protein unit. Hydration can be achieved through the use of a specialized applicator, such as the treatment applicators described in the non-limiting examples. In some examples, one or more elongated modified protein strips are hydrated immediately prior to placement on the food production bed.
[0142] In some examples, the methods disclosed herein include cutting the strip during or after release of the strip from the packed protein unit. The cut / slice is typically away from the food production bed such that once the cut is made and the strip edge is formed, the edge falls (in a controlled manner) onto the bed.
[0143] In some examples, the method includes cutting and / or slicing and / or pinching (pinching sections of the strip to cause surface curvature without disrupting the continuity of the strip) at least a portion of the strip during release from the retaining element to obtain strip fragments, and aligning the strip fragments essentially parallel on the food production bed.
[0144] In some cases, cutting / slicing is done in a manner that provides strip fragments of the same or similar dimensions.
[0145] Additionally, the methods disclosed herein include treating the released modified protein strips or strip fragments either before or immediately after being placed on the food production bed (depending on how the protein material is packed), where the treating includes applying a functional material to at least a portion of one or more modified protein strips or strip fragments.
[0146] In some examples, the method includes treating one or more modified protein strips or strip fragments before or immediately after being placed on the food production bed by removing material from at least a portion of the one or more modified protein strips.
[0147] The method provides a meat analog product having one or more layers of protein strips. In some preferred cases, the method includes creating multiple layers on a bed, with the layers essentially positioned on top of one another. The layers can contain the same or different protein compositions, as described above. Thus, in some cases, the multi-layer product can include multiple layers formed from strips of different protein compositions and / or different strip shapes and / or dimensions.
[0148] The method may also include applying one or more other materials within or on the layer. For example, the method may include applying a fatty material to at least a portion of the released protein strip. Further, for example, the method may include applying an additive to at least a portion of the released protein strip. Examples of additives may include, but are not limited to, hydrocolloids, water-based formulations (e.g., those used as blood substitutes), flavorings, colorants, and the like.
[0149] As used herein, the forms "a," "an," and "the" include singular and plural references unless the context clearly dictates otherwise.
[0150] Additionally, as used herein, the term "comprising" is intended to mean that, for example, a component, e.g., a protein strip, includes the recited protein, but does not exclude other substances that include the protein. The term "consisting essentially of" is used to define, for example, a protein strip that includes a protein, but excludes other substances that may be essential to the characteristics of the resulting food product. Thus, "consisting of" means containing no more than trace amounts of other elements. Embodiments defined by each of these transitions are within the scope of this disclosure.
[0151] Furthermore, for example, when referring to quantities or ranges of elements constituting components disclosed herein, all numerical values are approximate (+) or (-) that may vary by up to 20%, and sometimes up to 10%, from the stated value. It is to be understood, although not always explicitly stated, that all numerical designations are preceded by the term "about."
[0152] Furthermore, as used herein, the terms "percent" or "%" refer to percent by weight unless otherwise specified.
[0153] The present invention will now be illustrated in the following description of experiments carried out in accordance with the present invention. It should be understood that these examples are intended to be illustrative in nature, rather than limiting. Obviously, many modifications and variations of these examples are possible in light of the above teachings. It should therefore be understood that, within the scope of the appended claims, the present invention may be practiced in a myriad of possible ways other than as specifically described herein below.
[0154] Non-limiting examples Reference is now made to Figure 1, which illustrates a packed protein unit 100 according to some examples of the present disclosure. The packed protein unit 100 includes a plurality of individual separable strands 102 within a holding element, herein referred to as a cartridge 104. The cartridge 104 has an outlet 106 in the form of an elongated opening that is essentially parallel to the longitudinal axis of the aligned strands 102. The configuration of the outlet 106 allows for the release of each strand 102 from the cartridge 104 as an individual strand.
[0155] An alternative configuration for packing protein strands is shown in Figures 2A-2B.
[0156] For simplicity, Figures 2A-2B use the same reference numbers as used in Figure 1 to identify components with similar functionality, shifted by 100. For example, component 202 in Figures 2A-2B is a short strand that has the same function as strand 102 in Figure 1.
[0157] 2A-2B show a packed protein unit 200 comprising individual separable protein strands 202 arranged cylindrically one above the other within a cartridge 204. The dimensions of the cartridge 204 are such that each strand has a single upstream strand, such as strand 202i, and a single downstream strand, such as strand 202ii. The cartridge 204 has an outlet 206 in the form of an elongated opening parallel to the longitudinal axis of the cylindrical strands 202. The configuration of the outlet 206 allows for the release of each strand 202 from the cartridge 204 as an individual strand.
[0158] 3A-3D provide a schematic representation of packed protein units 300 as a set of stacked sheet-like structures 320, with each formed sheet forming an organized assembly of strands 302.
[0159] Each sheet-like structure 320 can be composed of one-dimensional modified protein strands 302s, as shown in Figure 3B, or of specifically elongated chains of modified protein 302e, as shown in Figure 3C. In this regard, it should be noted that while 302s or 302e are shown as strands of the same dimensions, e.g., the same length, the dimensions of the strands need not be identical in a single sheet.
[0160] The strands or sheet-like structures are emitted individually (each time a single strand or sheet is emitted), although in some cases it may be desirable for groups of strands or sheets to be emitted, in the latter case somewhat similar to squares of puff paste.
[0161] In some instances, as also shown schematically in Figure 3D, the sheet-like structure (320) is preferentially fixed to the multilayer unit 322, which is then released as a single layer from the opening 306.
[0162] 4 shows a packed protein unit 400 that includes an elongated protein strand 402 folded within a cartridge 404 in a folded configuration. The cartridge 404 has an outlet 406 that has a shape that fits around the elongated protein strand 402, allowing for a continuous flow of the strand 402 through the outlet 406.
[0163] FIG. 5 shows elements of a food production system 550 for producing food products such as meat analogs according to the present disclosure, utilizing packaged protein units according to some examples of the present disclosure.
[0164] For simplicity, Figure 5 uses similar reference numbers to identify components with similar functionality as used in Figure 4, offset by 100. For example, component 502 in Figure 5 is an elongated strand with the same functionality as elongated strand 302 in Figure 3.
[0165] Specifically, food production system 550 shows a packed protein unit 500 including elongated protein strands 502 within a cartridge 504 wrapped around a central body 510 in a spiral configuration. In some examples, protein strands 502 may be wound or spirally wound onto a spool 530, as shown in Figures 6A-6B.
[0166] The cartridge 504 has an outlet 506 that allows for the continuous flow of the strands 502 from the cartridge 504 .
[0167] Additionally, food production system 550 shows print head 512 including treatment applicator 514 for applying a functional material onto strands 502 once released from cartridge 504 and before being placed on print bed 516. Treatment applicator 514 may include a functional material, which may be, for example, water, that is sprayed onto strands 502 to add moisture and thereby soften the strands before being manipulated on print bed 516. Further, for example, the functional material may be a solvent, an anti-stick agent, etc.
[0168] In some examples, the treatment applicator 514 may be a heater / cooling unit for heating or cooling, respectively, the existing protein strands.
[0169] Additionally, in some examples, the treatment applicator 514 may be a laser unit, for example, to induce crosslinks within existing protein strands and / or to participate in slicing of released strands.
[0170] In some examples, additional applicators (not shown) can be used to apply materials other than the functional material, for example, water-based and / or fatty materials can be applied onto the printed layer as described above.
[0171] The printer head 512 also includes a cutter 518, which may be in the form of a blade, for ejecting the cartridge 500, the printed strands 502' onto the bed 512.
[0172] The food production system 550 also typically includes a control unit (not shown) for controlling, among other things, the release rate of the strands 502 from the cartridge 504, the orientation of the strands 502 onto the print bed 516, the movement of the print bed 516, the operation of the treatment applicator 514, and the actuation of the cutter 518. In some examples, the control unit controls the rotation of the central body 510, which causes the release of the protein strands 502 from the cartridge 504 according to the rotational speed of the central body. Alternatively, the control unit can control the operation of an arm (not shown) that pulls the protein strands from the cartridge.
[0173] During operation, production of food products, and preferably meat analogs, is achieved by controlled placement of one or more protein strands 502' onto the food production bed 516. Production can include movement of the dispensing head relative to the food production bed, movement of the dispensing bed relative to the dispensing head, or both (both simultaneously or sequentially).
[0174] The meat analog product is obtained by aligning one or more protein strands, such as strand 502', on food production bed 516, and once a monolayer has been produced in a predetermined pattern, the monolayer formation process is repeated layer by layer until a multi-layered food product is obtained.
[0175] In some instances, placement of the released protein strands can be achieved by using a dedicated robotic arm (not shown).
[0176] Referring now to Figures 6A-6B, two forms of packed protein unit 600 are shown, in each case the modified protein material is wound onto a spool 630; in Figure 6A, the modified protein material is in the form of an elongated, spirally wound thread 602, while in Figure 6B, the modified protein material has a wider cross-section (cross-section A perpendicular to the longitudinal axis of the strand) than the strand in Figure 6A, and may therefore resemble an elongated, spirally wound ribbon or film.
[0177] Example - TVP protein strand To demonstrate the modified packed protein units according to the present disclosure, commercially available dry TVP sheets were immersed in water containing colorants and flavorings, and then the excess water was squeezed out. The wet TVP was then sliced into thin sheets of 3 mm or less. Each thin sheet was then sliced into strands of the desired size using a slicer.
[0178] 7A-7B show images of sliced strands and their dimensions, with lengths ranging from 100 mm to 130 mm (FIG. 7A) and cross sections measuring 4 mm x 4 mm (FIG. 7B).
[0179] The elongated strand may further have a dimension of 1 m and then be wound onto a support structure as shown in Figure 7C.
[0180] Figure 7D shows the internal tissue structure / morphology of the strands in more detail, clearly showing that they are porous / spongy with voids that can accommodate fluid additives such as water-based components, fat-based components, etc. Note that when referring to a cross section, it includes the area within the imaginary lines that indicate the boundaries of the strands, such as the square boundaries marked in Figure 7D, regardless of whether the TVP is porous or not.
Claims
1. 1. A method for producing a meat analog product, comprising: providing at least one packed protein unit comprising at least one elongated modified protein strip held in an organized spatial configuration by or within a holding element, said at least one elongated modified protein strip defined by a longitudinal axis and a cross-section perpendicular to said longitudinal axis; and releasing one or more modified protein strips from the at least one packed protein unit onto a food production bed to form one or more monolayers of modified protein strips; At least one dimension of the cross section is 10 mm or less and the longitudinal axis has a dimension of at least 100 mm; the release is in a manner that causes alignment of at least 60% of the plurality of modified protein strips in the monolayer along a predetermined direction; said discharging of the elongated modified protein strips onto the food production bed in a manner to form multi-layered meat analog products, each layer being formed essentially on top of the other; method.
2. 10. The method of claim 1, wherein at least one elongated modified protein strip is hydrated before, during, or after being released from the packed protein unit.
3. 3. The method of claim 1 or 2, comprising slicing at least a portion of the elongated modified protein strips during release from the packed protein units to obtain strip fragments, and aligning the strip fragments essentially parallel on the food production bed.
4. 3. The method of claim 2, wherein the slicing is in a manner that provides strip fragments of the same or similar dimensions.
5. 5. The method of any of claims 1-4, comprising treating the released modified protein strips or strip fragments prior to or immediately after being placed on the food production bed, said treating comprising applying a functional material to at least a portion of the modified protein strips or strip fragments.
6. 6. The method of any of claims 1-5, comprising treating at least one modified protein strip or strip fragment prior to or immediately after being placed on the food production bed, wherein the treating comprises removing material from at least a portion of the modified protein strip or strip fragment.
7. 7. The method of any one of claims 1 to 6, comprising releasing modified protein strips from the packed protein unit by unrolling or unrolling at least one elongated modified protein strip wound or spirally wound respectively on a central body, producing at least one monolayer from the released elongated modified protein strips, and cutting the released strips once the monolayer is formed.
8. A method according to any preceding claim, comprising producing a plurality of monolayers, the monolayers being placed one on top of the other.
9. The method of any one of claims 1 to 8, wherein the multi-layered food product comprises a plurality of monolayers comprising a plurality of modified protein strips of different protein composition and / or different dimensions.
10. A method according to any preceding claim, comprising adding a fat component or additive to at least a portion of the released protein strips.
11. The method of any one of claims 1 to 10, comprising adding an additive to at least a portion of the released protein strip.
12. 12. The method of any of claims 1 to 11, comprising the use of two or more packed protein units, said two or more units differing in at least one of strip dimensions and / or strip texture and / or strip porosity and / or strip composition.
Citation Information
Patent Citations
Food products based on protein fibres, and process and equipment for their manufacture
GB2066644A
JP1972009971U
JP1975040766A
Process for swelling treatment of organic sludge
JP1979024457A
Lamp apparatus for vehicle
JP1983001903A