Detergent single unit dose with shaped body

The single-dose cleaning agent with a water-soluble packaging, a gel phase, a powder, and a shaped body containing aminocarboxylic acids addresses stability and interaction issues, ensuring effective and stable cleaning performance.

WO2025131765A1PCT designated stage expired Publication Date: 2025-06-26HENKEL KGAA
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Patent Information

Application Number
PCT/EP2024/084965
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-18
Filing Date
2024-12-06
Publication Date
2025-06-26

AI Technical Summary

Technical Problem

Existing single-dose cleaning agents face challenges with stability during storage, potential leakage due to loose powder components, and interactions between incompatible ingredients, leading to discoloration and odor issues.

Method used

A single-dose cleaning agent with a water-soluble packaging containing a gel phase, a powder, and a shaped body, where the shaped body includes aminocarboxylic acids or their salts, effectively separating incompatible ingredients and maintaining cleaning performance under various storage conditions.

Benefits of technology

The solution provides a stable, visually appealing, and effective single-dose cleaning agent that maintains its cleaning performance over time, even under difficult storage conditions, without discoloration or odor issues.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a detergent unit dose, preferably suitable for use in dishwashing methods, the detergent single unit dose comprising a water-soluble packaging and a detergent composition. The detergent composition comprises at least one powder and at least one shaped body, which is different from the powder and contains at least one aminocarboxylic acid and / or a salt thereof.
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Description

[0001] Single-dose cleaning agent with molded body

[0002] The invention relates to a single-dose detergent, preferably suitable for use in dishwashing processes, the single-dose detergent comprising a water-soluble packaging and a detergent composition, wherein the detergent composition comprises at least one powder and at least one shaped body, different from the powder, which contains at least one aminocarboxylic acid and / or a salt thereof.

[0003] Cleaning agents are typically available in solid or liquid form (or even as a flowing gel). Liquid cleaning agents, in particular, are enjoying increasing popularity among consumers.

[0004] Solid detergents have the advantage that, unlike liquid detergents, they do not require preservatives. Liquid detergents are increasingly gaining market acceptance, particularly due to their rapid solubility and the associated rapid availability of their active ingredients. This offers consumers the opportunity to use shorter dishwashing cycles while still achieving good cleaning performance.

[0005] Furthermore, consumers have become accustomed to convenient dosing of pre-measured detergents, such as dishwashing detergents, and use these products in tablet form (solid detergents) or in sachets, usually filled with a liquid detergent. Single-dose sachets in water-soluble sachets are enjoying increasing popularity among consumers not only because they no longer come into contact with the chemical composition, but also because of the attractive appearance of the sachets. The appearance of the dosage form is becoming increasingly important. In addition to good cleaning performance and sufficient storage stability, good appearance is one of the deciding factors for choosing a product.

[0006] From the consumer's perspective, it is now desirable to combine the advantages of both delivery forms and provide a dosage form that is improved over the state of the art, particularly for conventional liquid cleaning agents. This should allow for single-dose dispensing while simultaneously achieving a visually appealing appearance for the consumer.

[0007] It is also important for the consumer that the single-serve portion has visually structured areas that do not mix and that are clearly visible and separate from one another. In addition to an appealing appearance, it is important that the single-serve portions are easy to produce, remain stable during storage and do not leak. With single-serve portions that contain loose particles (such as powder), it can be observed that during production, individual powder components can inadvertently get between / onto the areas that are necessary for the closure of the single-serve portion. This has many disadvantages. Firstly, the visual impression of such cleaning portions is perceived by the consumer as unclean, unstructured and faulty. Secondly, such unclean closure areas result in single-serve portions that are not tightly closed and are leaky / have leaks.Such leaky packaging can cause the cleaning agent to leak from the single-serve portion. This must be avoided to ensure that neither the consumer nor the other single-serve portions stored in the same packaging come into contact with the cleaning agent. Furthermore, leaky packaging allows a relatively high level of moisture and / or air to penetrate the ingredients in the packaging, which can reduce their effectiveness and / or cause them to stick together, thus reducing cleaning performance.

[0008] Furthermore, it is necessary to separate incompatible ingredients that could otherwise react with each other. Aminocarboxylic acids or their salts, for example, powdered, granular components containing MGDA, can significantly discolor and develop a noticeable odor under certain storage conditions due to reactions with other components commonly found in cleaning agents, especially automatic dishwashing detergents.

[0009] The object of the present invention is therefore to provide a dosage form for a cleaning agent which is easy to handle, stable (in particular stable during storage and transport), has good cleaning performance, is as sustainable as possible and requires smaller amounts of packaging material.

[0010] A first subject of the present invention is therefore a single-dose cleaning agent, comprising a) a water-soluble packaging, comprising a1) at least one water-soluble receiving chamber a2) a water-soluble closure element closing this water-soluble receiving chamber b) a phosphate-free cleaning agent composition, comprising b1) at least one gel phase b2) at least one powder, b3) at least one shaped body different from the powder, wherein the shaped body comprises at least one aminocarboxylic acid and / or a salt thereof.

[0011] It has surprisingly been found that the incorporation of aminocarboxylic acids or their salts into the shaped body results in the latter not reacting with other active ingredients of the single-dose cleaning agent and leading to discoloration, odor development and / or inactivation of these other active ingredients, so that the single-dose cleaning agents according to the invention do not lose their cleaning performance even under difficult storage conditions, for example over a longer period (for example four weeks) and / or higher temperatures (for example 40 °C), and furthermore do not discolor significantly and do not have a negative odor.

[0012] The single-dose cleaning agents according to the invention are used in particular for cleaning hard surfaces, especially dishes and other items to be washed. The cleaning agents according to the invention are, in particular, dishwashing detergents, especially automatic dishwashing detergents for use in automatic dishwashers, or can be used therein.

[0013] The single-dose cleaning agent comprises a water-soluble package. This package comprises at least one water-soluble receiving chamber and a water-soluble closure element that seals this water-soluble receiving chamber.

[0014] It can also contain several water-soluble receiving chambers, which are sealed by the same or different water-soluble closure elements. According to the invention, at least one gel phase, at least one powder, and at least one shaped body of the cleaning composition are located together in a single receiving chamber. Additional chambers can contain similar or different cleaning compositions.

[0015] Surprisingly, it has been shown that single-dose cleaning agents containing at least one gel phase, at least one powder, and at least one shaped body, where the shaped body contains at least one aminocarboxylic acid and / or its salt, are particularly well suited to meeting consumer expectations regarding appearance, feel, and ease of use while simultaneously providing good cleaning results. They are also easier to produce and require less packaging material than multi-chamber bags.

[0016] According to a particular embodiment, the aminocarboxylic acid or the aminocarboxylic acid salt is selected from methylglycinediacetic acid and its salts, glutaminediacetic acid and its salts, and ethylenediaminedisuccinic acid and its salts. Particular preference is given to methylglycinediacetic acid and / or its salts, particularly preferably the trisodium salt of methylglycinediacetic acid. These aminocarboxylic acids exhibit excellent complexing properties combined with good / improved biodegradability. Since conventional dosage forms are generally hygroscopic, it has surprisingly been possible to formulate the aminocarboxylic acids, in particular methylglycinediacetic acid, in a stable manner, especially even after prolonged storage and / or at elevated storage temperatures, by administering them in a shaped body, and to minimize their interactions with other ingredients of cleaning agents.

[0017] According to a particular embodiment, the amount of the aminocarboxylic acid or aminocarboxylic acid salt, based on the total weight of the molded body, is from 20 to 65 wt. %, preferably from 27 to 60 wt. %, particularly preferably from 30 to 55 wt. %. This leads to particularly suitable molded bodies that are particularly easy to produce / formulate / cast.

[0018] According to a particular embodiment, the aminocarboxylic acid or the aminocarboxylic acid salt is selected from methylglycinediacetic acid and its salts, particularly preferably the trisodium salt of methylglycinediacetic acid, and the amount thereof, based on the total weight of the molded article, is from 20 to 65 wt.%, preferably from 27 to 60 wt.%, particularly preferably from 30 to 55 wt.%. The incorporation of higher amounts of methylglycinediacetic acid or its salts than those mentioned can impair the flowability of the composition, so that during production of the molded article (e.g., by casting), processability is impaired, while too small amounts do not deliver the desired cleaning performance results.

[0019] According to a particular embodiment, the aminocarboxylic acids and / or their salts are present in the molded body with an average particle size of <250 μm, preferably <200 μm. The molded bodies produced in this way have a very advantageous appearance; the surface is smooth and shows hardly any cracks or fissures, which is visually appealing to the consumer and improves processability. It also delays the separation of the aminocarboxylic acids or their salts during molded body production. This also improves remeltability and thus the sustainability of production.

[0020] According to another particular embodiment, the aminocarboxylic acids and / or their salts are present in the molded body with an average particle size of 40 to 160 μm, preferably 50 to 150 μm. The resulting molded bodies also have a very advantageous appearance, as the surface is smooth and shows hardly any cracks or fissures. Furthermore, the molded body is easily recyclable. It can be easily melted and reshaped for further molding. This leads to improved production sustainability, as failed attempts during molding and residues of the molded body mass can be reused.

[0021] According to a particular embodiment, the powder contains less than 10 wt.%, preferably less than 5 wt.%, in particular less than 1 wt.%, of aminocarboxylic acids and / or their salts, based on the total weight of the powder. This particularly effectively reduces and / or completely prevents adverse interactions between the aminocarboxylic acid and ingredients of the powder components.

[0022] According to a particular embodiment, the molded body comprises polyalkylene glycols, preferably polyethylene glycols. These have the advantage that they do not negatively influence the cleaning process and impart stability and strength to the molded body. Furthermore, there are no negative interactions with powder components or migration from the molded body into the powder, thus ensuring the stability of the single-dose cleaning agent even when stored at higher temperatures / over extended periods.

[0023] According to a particular embodiment, the molded body comprises polyalkylene glycols, preferably polyethylene glycols, which have a melting point of 25 to 80°C, preferably 30 to 70°C, particularly preferably 45 to 65°C at atmospheric pressure. Polyethylene glycols with average molecular weights of 800 to 8000 g / mol (PEG 800 to PEG 8000) are particularly suitable. This advantageously facilitates melting for the production of the molded body, as well as for use in the rinsing process. The molded bodies produced in this way also have increased strength after cooling, so that the stability of the molded body during transport and / or storage is also improved. At the same time, the stability during pre-production of the molded body is increased, which makes the process more effective and improves the stability of the pouch produced with these molded bodies due to the stable molded bodies.

[0024] According to a very special embodiment, the molded body comprises polyalkylene glycols, preferably polyethylene glycols, with an average molecular weight of 1000 to 10,000 g / mol, preferably 2000 to 8000, particularly preferably 3000 to 6000 g / mol, for example 4000 g / mol. These components melt particularly well for production and the rinsing process, but are solid enough to stabilize the molded bodies and detergent pouches even at elevated storage temperatures.

[0025] According to a particular embodiment, the amount of polyalkylene glycols, preferably polyethylene glycols, in the molded body is from 20 to 50 wt.%, preferably from 22 to 40 wt.%, particularly preferably from 25 to 35 wt.%, based on the total weight of the molded body. These weight fractions are the structuring elements of the molded body; too low amounts can lead to the melts becoming too soft and the setting times of the molded body mass becoming unfavorably longer, which is disadvantageous for production-technical reasons.

[0026] According to a particular embodiment, the shaped body contains surfactants, preferably non-ionic surfactants. This has the particular advantage that these important ingredients of automatic dishwashing detergents can now be more easily incorporated into the formulation than in a powder, where the flowability of the powder is negatively affected by surfactants. In particular, powders in which surfactants are incorporated, especially in larger quantities, tend to stick together, which makes it more difficult to dose the powder into the single-serve portion and also impairs the visual appearance of the single-serve portion. Furthermore, the incorporation of surfactants into the shaped body can alter their release during the dishwashing process.For example, the release of a rinse aid surfactant by a solid molded body that dissolves at the end of the main rinse cycle can only occur at the end of the main rinse cycle, which is advantageous for the rinse aid effect.

[0027] According to a particular embodiment, the amount of surfactants, preferably nonionic surfactants, based on the total weight of the shaped body, is from 5 to 50 wt.%, preferably from 10 to 45 wt.%, particularly preferably from 15 to 40 wt.%. Advantageously, this makes the single-dose powder / shaped body easier to produce, particularly due to improved flowability of the powder component when the surfactants are not present in the powder. Furthermore, the surfactant content makes the shaped body mass more pliable and improves its flowability, thus resulting in particular advantages for the simple production of the shaped bodies.

[0028] According to a particular embodiment, the proportion of anionic surfactants in the molded body and / or in the detergent portion is less than 5 wt.%, particularly preferably less than 1 wt.%, in each case based on the total weight of the molded body or the detergent portion. High amounts of anionic surfactants lead to increased foaming behavior and, for use in dishwashers, necessitate the presence of defoamers, many of which are best avoided for ecological reasons.

[0029] According to a particular embodiment, the nonionic surfactants are selected from alkoxylated, preferably ethoxylated or ethoxylated and propoxylated fatty acid alkyl esters, preferably having 1 to 4 carbon atoms in the alkyl chain and end-capped poly(oxyalkylated) nonionic surfactants of the formula (I) R 1 O[CH2CH(CH3)O]x[CH2CH2O]y[CH2CH(CH3)O]zCH2CH(OH)R 2 where R 1represents a linear or branched aliphatic hydrocarbon radical having 4 to 22 carbon atoms, R 2 denotes a linear or branched hydrocarbon radical having 2 to 26 carbon atoms, x and z are values ​​from 0 to 40 and y is a value of at least 15

[0030] According to a very special embodiment, the shaped body is characterized in that it contains a poly(oxyalkylated) nonionic surfactant of the formula (I) R 1 O[CH2CH(CH3)O]x[CH2CH2O]y[CH2CH(CH3)O]zCH2CH(OH)R 2 with x=0, y= at least 15 and y=0 to 40, preferably y=0, as at least one non-ionic surfactant and the amount of this surfactant, based on the total weight of the shaped body, is from 5 to 50 wt.%, preferably from 10 to 45 wt.%, particularly preferably from 15 to 40 wt.%.

[0031] The use of such non-ionic surfactants leads to particularly suitable molding compounds with good flowability and, at the same time, favorable setting times.

[0032] According to a particular embodiment, at least 40 wt.%, preferably at least 50 wt.%, particularly preferably at least 75 wt.%, based in each case on the total weight of the surfactants comprised in the molded body, have a melting point above 20°C at atmospheric pressure. Larger amounts of surfactants with a high melting point advantageously impart improved strength to the molded body. They can also be used in part as a replacement for the aforementioned polyalkylene glycols.

[0033] According to a particular embodiment, the molded body comprises at most 15 wt.%, preferably at most 10 wt.%, particularly preferably at most 5 wt.%, based on the total weight of the molded body, of surfactants having a melting point below 15°C at atmospheric pressure. If larger amounts of very low-viscosity surfactants are used, the strength of the molded body is impaired and the setting time of the molded body is increased.

[0034] According to a particular embodiment, the molded body comprises polyethylene glycols (PEG), preferably with an average molecular weight of 3000 to 7000 g / mol, in an amount of 20 to 50 wt.%, preferably 22 to 40 wt.%, particularly preferably 25 to 35 wt.%, and at least one nonionic surfactant in an amount of 5 to 50 wt.%, preferably 10 to 45 wt.%, particularly preferably 15 to 40 wt.%, based in each case on the total weight of the molded body. The molded bodies produced in this way have particularly suitable strengths, setting times, and flowabilities, which are particularly suitable for the efficient production of such molded bodies.

[0035] According to a very special embodiment, the shaped body comprises polyethylene glycols having an average molecular weight of 5000 to 7000 g / mol in an amount of 25 to 50 wt.%, preferably 27 to 40 wt.%, particularly preferably 29 to 36 wt.% and a nonionic surfactant having a melting point of 25 to 40°C as at least one nonionic surfactant in an amount of 5 to 40 wt.%, preferably 10 to 30 wt.%, particularly preferably 15 to 30 wt.%, in each case based on the total weight of the shaped body.

[0036] The molded bodies produced in this way exhibit particularly suitable strengths, setting times, and flowabilities, which are particularly suitable for the efficient production of such molded bodies. According to a further particular embodiment, the molded body comprises polyethylene glycols with an average molecular weight of 3000 to 4500 g / mol in an amount of 25 to 50 wt.%, preferably 27 to 40 wt.%, particularly preferably 29 to 36 wt.%, and a nonionic surfactant with a melting point of 40 or more, preferably 43 to 65°C, as at least one nonionic surfactant in an amount of 5 to 40 wt.%, preferably 10 to 30 wt.%, particularly preferably 15 to 30 wt.%, in each case based on the total weight of the molded body. These molded bodies produced in this way also exhibit particularly suitable strengths, setting times, and flowabilities, which are particularly suitable for the efficient production of such molded bodies.

[0037] According to a particular embodiment, the shaped body comprises a bleaching catalyst, in particular selected from the group of transition metal salts and transition metal complexes, in particular complexes of manganese in the oxidation state II, III, IV or V, which particularly preferably comprise the macromolecular ligands 1,4,7-trimethyl-1,4,7-triazacyclononane (Me-TACN), 1,4,7, triazacyclononane (TACN), 1,5,9-trimethyl-1,5,9-triazacyclododecane (Me-TACD), 2-methyl-1,4,7-trimethyl-1,4,7-triazacyclononane (Me / Me TACN) and / or 2-methyl-1,4,7-triazacyclononane (Me / TACN), most preferably 1,4,7-trimethyl-1,4,7-triazacyclononane (Me-TACN) or 1 ,2,4,7-tetramethyl-1,4,7-triazacyclonane (Me / Me-TACN), preferably in an amount of 0.000001 to 0.5 wt.%, particularly preferably 0.00001 to 0.3 wt.%, especially preferably 0.0001 to 0.25 wt.%, very particularly preferably 0.001 to 0.1 wt.%, based on the total weight of the shaped body.The presence of the bleach catalyst in the molded body improves the storage stability and performance of the detergent portion (especially when the bleach-containing component, such as percarbonates, is formulated in powder).

[0038] According to a particular embodiment, the molded body comprises a bleach activator. Compounds that, under perhydrolysis conditions, yield aliphatic peroxocarboxylic acids with preferably 1 to 10 carbon atoms, in particular 2 to 4 carbon atoms, and / or optionally substituted perbenzoic acid, can be used as bleach activators. Suitable substances are those that carry O- and / or N-acyl groups of the stated number of carbon atoms and / or optionally substituted benzoyl groups. Polyacylated alkylenediamines are preferred, with tetraacetylethylenediamine (TAED) having proven particularly suitable.

[0039] According to a particularly preferred embodiment, the bleach activator, in particular the tetraacetyethylenediamine (TAED), is preferably present in an amount of 0.1 to 10 wt.%, particularly preferably 0.5 to 9 wt.%, especially preferably 1.0 to 8 wt.%, based on the total weight of the shaped body. The presence of the bleach activator in the shaped body improves the storage stability and the performance of the cleaning agent portion (particularly when the bleach, such as percarbonate, is in the powder). It may be preferred if, in the single cleaning agent portion, both the bleach catalyst and the bleach activator, as described above, are completely in the shaped body, while the bleach (such as percarbonate in particular) is completely in the powder phase.

[0040] According to a particular embodiment, the shaped body comprises a silver protective agent, in particular selected from cysteine ​​and cystine, in particular cysteine, preferably in an amount of 0.01 to 1.5 wt.%, particularly preferably 0.1 to 1.0 wt.%, particularly preferably 0.15 to 0.8 wt.%, based on the total weight of the shaped body. The presence of the silver protective agent, in particular cysteine ​​and / or cystine, in the shaped body protects the substances sensitive to oxidation or hydrolysis, thereby improving the storage stability (in particular with regard to discoloration and / or odor due to their decomposition) and the performance of the cleaning agent portion. This applies in particular when the bleaching component, for example the percarbonate, is in the powder of the single-dose portion.

[0041] According to a further particular embodiment, the shaped body comprises builders, in particular selected from carbonates, bicarbonates, citrates, silicates and / or their salts, preferably in an amount of 0.1 to 30 wt. %, particularly preferably 0.5 to 20 wt. %, especially preferably 1.0 to 15 wt. %, based on the total weight of the shaped body. The presence of some of the builders in the shaped body will improve the storage stability (and the performance of the cleaning agent portion). Furthermore, the substances mentioned are suitable as buffers in the production of the shaped body composition.

[0042] According to a further embodiment, the shaped body of aminocarboxylic acids can comprise various complexing agents, in particular selected from phosphonates, particularly preferably selected from 1-hydroxyethane-1,1-diphosphonic acid and / or salts thereof, preferably in an amount of 0.01 to 30 wt.%, particularly preferably from 0.1 to 25 wt.%, especially preferably from 1.0 to 20 wt.%, based on the total weight of the shaped body.

[0043] Preferably, the packaging of the single-dose cleaning agent comprises exactly one water-soluble receiving chamber, exactly one water-soluble closure element, and the phosphate-free cleaning agent according to the invention.

[0044] Special features of the water-soluble packaging are described in more detail below. The preferred embodiments of the manufacturing process also apply to the single-dose cleaning agent, and vice versa. The water-soluble packaging comprises at least one water-soluble receiving chamber, which can be formed using methods described below in relation to the process. It is formed from a water-soluble material, preferably a water-soluble formed film or molded body, which forms or has a recess into which the cleaning agent composition is poured. The cleaning agent composition is at least partially received in the receiving chamber.

[0045] It is not necessary for the at least two packaging parts to be different. They can preferably be made of the same material and in the same way. In a preferred embodiment, these are two parts of a water-soluble film, in particular two parts of a water-soluble film of the same composition.

[0046] In a further embodiment, the at least two packaging parts can be made of different materials, e.g., different films or materials with two different properties (e.g., hot and cold water-soluble films). In this embodiment, it is preferred that a water-soluble film and another packaging part produced by injection molding are combined.

[0047] According to a particularly preferred embodiment of the present invention, the water-soluble packaging comprises at least one at least partially plastically deformed film. In particular, this plastic deformation of the film can be produced by methods known to those skilled in the art, such as deep-drawing (with and without applying a vacuum), blow molding, or stamp molding. In particular, the water-soluble wrapping comprises at least one at least partially plastically deformed film produced by deep-drawing.

[0048] The closure element is also made of water-soluble material, preferably in the form of a film. According to a particular embodiment, the closure element is separate or distinct from the receiving chamber before the closure of the receiving chamber.

[0049] The receiving chamber is sealed with the closure element at the end of the filling process. The connection between the receiving chamber and the closure element, especially the water-soluble film, is created by gluing, solvent sealing, water sealing, or heat sealing. The inner side of the closure element is the side of the closure element facing the receiving chamber.

[0050] The subject matter of the present invention comprises a water-soluble package and a cleaning composition comprising at least one gel phase, at least one powder, and at least one shaped body different from the powder and gel phase(s). The cleaning composition is contained, preferably completely, in (or inside) the water-soluble package. The inside of the closure element in the single-dose cleaning agent is in contact with at least a portion of the cleaning composition. The inside of the receiving chamber is also in contact with at least a portion of the cleaning composition.

[0051] The use of phosphates (including, according to the invention, both the anion of phosphoric acid (orthophosphate) and the condensation products of salts of ortho-phosphoric acid with the general molecular formula M' n +2P nO3n+i) is almost completely omitted. The cleaning agent composition is therefore phosphate-free, i.e., it contains less than 0.1% by weight of phosphate(s). Preferably, the entire single-dose cleaning agent contains less than 0.1% by weight of phosphate(s).

[0052] For the purposes of the present invention, a powder is understood to mean a granular mixture formed from a large number of loose, solid particles, which in turn may comprise so-called grains. A grain is a term for the particulate constituents of powders (grains are the loose, solid particles), dusts (grains are the loose, solid particles), granules (loose, solid particles are agglomerates of several grains), and other granular mixtures. When the term “powder” is used here, this also includes mixtures of different powders and / or different granules and / or different compacts. Accordingly, powder also means mixtures of different powders with different granules and compacts. The powder preferably comprises various particles which comprise chemically different ingredients.Furthermore, the optical appearance of the powder may exhibit texture differences, such as coarse and fine particles, as well as particles or areas of different colors, either in their entirety or as colored speckles. Even in such cases, however, the powder is preferably a single phase or is perceived as such.

[0053] The powder therefore comprises solid particles as a granular mixture, which in turn preferably have a particle diameter X50.3 (volume average) of 10 to 1500 pm, more preferably of 200 pm to 1200 pm, and particularly preferably of 400 pm to 1000 pm. These particle sizes can be determined by sieving or using a Camsizer particle size analyzer from Retsch.

[0054] Preferably, at least 80% of the particles have a particle diameter of 100 to 2000 pm, preferably 150 to 1500 pm. According to a preferred embodiment, the powder has particles with a particle diameter X50.3 (volume average) of up to 2000 pm, in particular up to 1000 pm. According to a preferred embodiment, the powder according to the present invention comprises powders and / or granules and mixtures thereof.

[0055] A "shaped body" within the meaning of the invention is an individual body that stabilizes itself in its imposed shape. This dimensionally stable body is formed from a molding compound (e.g. a composition) by deliberately shaping this molding compound into a predetermined shape, e.g. by pouring a flowable composition into a mold and subsequently curing the liquid composition, by extruding a mixture of substances, or by compressing a particulate premix, for example in a tabletting process. The spatial shape of the shaped body is fundamentally freely selectable; its outer surface can, for example, be convex, concave, or flat. At the same time, however, certain spatial configurations have proven particularly advantageous in terms of manufacturability, storage, and use of the shaped bodies.

[0056] The single-dose cleaning agent can contain more than one shaped body, for example two, three or four shaped bodies. The shaped bodies can be identical in terms of their spatial shape or composition or can differ, for example, in terms of their composition or spatial shape. The shaped bodies can be arranged one above the other or next to each other and will generally be in contact with one another. Several shaped bodies can also be in direct contact with the closure element. If the inside of the closure element is covered by shaped bodies to a certain extent of its surface, as described below, the degree of coverage refers to the coverage achieved by the totality of the shaped bodies contained in the single-dose cleaning agent.

[0057] A phase within the meaning of the present invention is a spatial area in which physical parameters and / or the chemical composition are overall homogeneous. One phase differs from another phase through various characteristics, for example ingredients, physical properties, external appearance, etc. Different phases can preferably be visually distinguished. For the consumer, the gel phase can thus be clearly distinguished from the optically coherent particulate phase formed by the powder, as well as from the shaped body. If the cleaning agent according to the invention has more than one gel phase, these can also be distinguished from one another with the naked eye because they differ from one another, for example, in their color. The same applies if two or more gel phases are present.In this case, too, a visual distinction between the phases is possible, for example, based on a difference in color or transparency. Phases within the meaning of the present invention are thus self-contained areas that can be visually distinguished from one another by the consumer with the naked eye. The individual phases can exhibit different properties during use, such as the rate at which the phase dissolves in water and thus the rate and sequence of release of the ingredients contained in the respective phase.

[0058] Larger amounts of liquid ingredients can also be introduced into the gel phases / molded bodies according to the invention, which, when applied or incorporated into a powder, can lead to reduced flowability, to sticking in the powder and thus to poorer processability and / or can trigger negative interactions with components of the powder.

[0059] According to the invention, the molded body can be arranged in the chamber such that it is not in direct contact with the at least one gel phase, preferably with all gel phases. Migration, e.g., of solvents or other low-molecular-weight compounds between the molded body and the gel phase, is thus reduced.

[0060] In another embodiment, the at least one gel phase is in contact with the shaped body.

[0061] By introducing at least one gel phase and at least one shaped body that is different / distinguishable from the gel phase and powder, which are not in direct contact with each other, these active ingredients with negative interactions can be sensibly and effectively separated from each other without the need for additional and / or unnecessary separating material. This also improves the activity of the agent and its storage stability.

[0062] Such an arrangement with separate phases can advantageously reduce negative interactions between ingredients that are incompatible with each other by incorporating such incompatible ingredients into only one of the phases: the at least one molded body, the at least one powder, or the gel phase(s). The activity of such ingredients is then maintained over a longer period and does not decrease over time due to the reduced contact between the phases caused by the phase separation.

[0063] According to a preferred embodiment, the at least one gel phase and / or the shaped body are in contact with the powder. In particular, both the at least one gel phase, preferably all gel phases, are in contact with the powder. It is particularly preferred if all gel phases and the at least one shaped body are in contact with the powder. Preferably, the gel phases and the shaped body(s) are not in direct contact with each other.

[0064] Advantageously, incompatible ingredients can be introduced into a single chamber and effectively separated from one another by distribution in the gel phases or the molded body, thereby improving storage stability and / or cleaning performance. In a preferred embodiment, the powder is located between the at least one gel phase and the molded body, such that the at least one, in particular the gel phase(s), is / are in contact with the powder but not with the molded body. Advantageously, incompatible ingredients can be effectively separated from one another, thereby improving storage stability and / or cleaning performance.

[0065] Preferably, the shaped body and the gel phase(s) are not located in the same region / level of the single-dose detergent. Preferably, the gel phase(s) are located at the very bottom (lowest level) in the filling direction of the single-dose detergent, the powder is in the middle (middle level), and the shaped body is at the top (top level) so that it can come into direct contact with the closure means. Such single-dose detergents are obtainable in particular by the manufacturing processes described below.

[0066] According to a particularly preferred embodiment, the cleaning composition comprises at least one gel phase, at least one powder and at least one shaped body.

[0067] The at least one gel phase contained in the water-soluble receiving chamber according to the invention and the shaped body according to the invention are different from one another. They are at least optically separable from one another and form different phases.

[0068] Preferably, the at least one gel phase is not in contact with the closure element, in particular all gel phases are not in contact with the closure element.

[0069] According to a preferred embodiment, the single-dose cleaning agent comprises at least one gel phase, different from the molded body. The at least one gel phase is contained in the receiving chamber.

[0070] The at least one gel phase and the at least one shaped body differ in at least one respect in their material properties and / or manufacturing methods and are distinct from each other. For example, they differ in their chemical composition and / or their physical properties (particularly preferably their translucency, strength, elasticity).

[0071] According to a preferred embodiment, the shaped body and the at least one gel phase have different chemical compositions. In particular, the at least one shaped body differs from the at least one gel phase in its chemical composition, in particular in the type and / or amount of the ingredients it contains. In particular, the at least one gel phase exhibits a significant deviation from the composition of the at least one shaped body.

[0072] The at least one gel phase therefore preferably has a composition in which less than 85% by weight, preferably less than 80% by weight, in particular less than 75% by weight of the ingredients, based on the total weight of the gel phase, are identical to the composition of the shaped body.

[0073] According to a preferred embodiment, the gel phase comprises at least two, preferably at least three, particularly preferably at least four ingredients that are not contained in the at least one shaped body and / or the at least one shaped body comprises at least two, preferably at least three, particularly preferably at least four ingredients that are not contained in the at least one gel phase.

[0074] This has the advantage that incompatible ingredients can be distributed among the different phases (gel phase(s), shaped body, powder) in such a way that direct contact between these ingredients is minimized and side reactions / activity losses are reduced, without the need for additional, technically complex separation measures, such as additional partition walls within the single-dose cleaning agent.

[0075] According to the invention, the gel phase is dimensionally stable at room temperature (20 °C, 1 bar). This involves using a flowable mixture that can be molded into the desired shape.

[0076] After a certain period of time, a gel phase is obtained which remains in the specified shape, i.e. is dimensionally stable. This period of time, the solidification time, is preferably 15 minutes or less, preferably 10 minutes or less, more preferably 5 minutes or less, most preferably 2 minutes or less. The at least one gel phase is preferably elastic, in particular linear-elastic. The at least one gel phase gives way to pressure but does not deform as a result, but returns to its original state once the pressure is removed. The at least one gel phase is cut-resistant. For example, it can be cut with a knife after solidification without being further damaged other than by the cut made. Furthermore, the at least one gel phase is particularly flexible. Due to its flexibility and elasticity, it can take on any shape.This also means it is resistant to breakage, which allows for good handling during production and with regard to transport and storage.

[0077] Preferably, the at least one gel phase is elastic, whereas the molded body according to the invention has only low elasticity. A force / displacement diagram was created to measure the elasticity of the at least one gel phase. The mass was poured into a gel body measuring 47x19x8mm and stored at room temperature for 12 hours prior to measurement. The sample was placed in modified plastic inserts with external dimensions of 25x20x20mm and a recess of 10x10x20mm for the mass to be measured. A Lloyd LRX+ (Lloyd Instruments) with a 5kN measuring head was used as the measuring device. A feed rate of 50 mm / min and a measurement recording at 1 N preload (zero point) were set. The result is the force in N required to compress the molded body by 8mm. Due to the elasticity of the gel phase, the original dimensions of the gel phase are restored within 15 minutes after the measurement has been completed.Preferably, the values ​​measured in this way (for a compression of 8 mm) are between 10 N and 40 N, preferably between 15 N and 30 N.

[0078] According to a further preferred embodiment, the at least one gel phase and the at least one shaped body have different elasticities. It is particularly preferred that the at least one gel phase is deformable and / or elastic, while the at least one shaped body is not easily deformable and / or is less elastic. A lower elasticity of a shaped body, particularly when it is in direct contact with the closure element, leads to stiffening and stabilization of the basic shape of the single-dose cleaning agent. This ensures the powder's fixation without the single-dose cleaning agent losing any of its strength and structure.

[0079] A force / displacement diagram was created to measure the low elasticity and / or fracture strength of the molded specimen. A molded specimen measuring 45 x 35 x 3.4 mm was created and stored at room temperature for 12 hours prior to measurement. The specimen to be tested is placed on the jaws of a vise so that it rests securely and between 70 and 90% of the specimen's surface is freely positioned between the two support surfaces (jaws).

[0080] The measuring device used was a Texture Analyzer TA.XT plus (company: Stable Micro Systems Ltd) with the software Exponent (Stable Micro Systems Ltd.) and a spherical body with a diameter of 19 mm. A pre-test feed rate of 1 mm / sec, a test feed rate of 0.5 mm / s, a post-test feed rate of 2 mm / s and a pre-test force of 5 grams at a distance of 3 mm were set. The result is the penetration depth of the spherical body in mm that is necessary for the molded body to break. The preferred molded bodies broke with the above settings at a penetration depth of 0.1 mm to 1.0 mm, preferably from 0.15 mm to 0.8 mm, in particular from 0.2 to 0.6 mm.

[0081] According to a particularly preferred embodiment, the gel phase does not contain dibenzylidene sorbitol. According to a very particularly preferred embodiment, the gel phase does not contain a benzylidene alditol compound. According to a particularly preferred embodiment, the cleaning agents contain powders and, in the at least one gel phase, no dibenzylidene sorbitol, in particular no benzylidene alditol.

[0082] According to the invention, the shaped body is preferably in contact (direct contact) with the closure element, in particular with its inner side. This means that the at least one shaped body and also the at least one powder are arranged within the water-soluble packaging.

[0083] The preferred arrangement according to the invention, that the inside of the closure element is in contact with the powder to less than 10% of its surface, is advantageous for efficient, in particular trouble-free production, strength of the closure between the receiving chamber and the closure element, and the optical properties of the single-use portion, since in this case there is less possibility for the powder to reach the closure surfaces, e.g. in the case of deep-drawn receiving chambers, the surfaces directly next to the formed chamber.

[0084] Particularly when the closure element is a water-soluble film, it is important that the connecting surface between the receiving chamber and the closure element does not contain any particles of the powder, as otherwise the seal between the receiving chamber and the closure element is not complete and, in the worst case, permeable to the cleaning agent composition. The stability of the single-dose portion, particularly during storage and / or transport, can also be improved if the powder, when it only comes into slight contact with the inside of the closure element, does not damage, bulge or even puncture the closure element in some places or wears it away and / or abrades it through due to prolonged friction. If the contact of the powder with the inside of the closure element is reduced or avoided, the thickness of the closure element, e.g.The thickness of the sealing film can be chosen to be smaller, which is advantageous in terms of sustainability due to the use of less packaging material.

[0085] In a particularly preferred embodiment, the single-dose cleaning agent contains precisely one molded body, which is arranged according to the invention so that it is in direct contact with the closure element. This simplifies the production of such single-dose cleaning agents because only a single molded body needs to be applied, inserted, or otherwise positioned.

[0086] According to a preferred embodiment, the molded body according to the invention is a preformed molded body. Such a preformed molded body has already acquired its shape before being introduced into the receiving chamber. As a result, the production of the molded body is decoupled from the production of the single-dose portion (especially in terms of time). The production steps for the entire single-dose cleaning agent can thus be carried out in rapid succession and are not prolonged by the setting times of the molded body, which are necessary when this molded body is produced in situ, for example, when introduced into the receiving chamber as a flowable premix.

[0087] Ingredients can also be incorporated into the shaped body, in particular those that are pre-formed, which cannot be incorporated into gel phases, in particular those that are introduced into the receiving chamber as a flowable composition, due to the processability of the ingredients themselves, the manufacturing process of the gel phases, and / or their other material properties.

[0088] Within the scope of preferred embodiments of the present invention, the inner surface of the closure element is in contact with the powder to less than 8%, in particular less than 6%, very particularly less than 3% of its surface. The less contact the surface of the inner surface of the closure element has with the powder, the more stable the cleaning agent portion is, both during production and storage.

[0089] According to the invention, at least one shaped body is preferably arranged such that it is in direct contact with the closure element and the inside of the closure element is in contact with the powder to less than 10% of its surface.

[0090] According to a particularly preferred embodiment, the inner side of the closure element is not in contact with the powder. The advantages already described are greatest in this configuration.

[0091] According to a preferred embodiment, the molded body is arranged in the chamber such that it is in direct contact with the powder. This allows the molded body to effectively cover the powder, preventing it from coming into contact with the inside of the closure element and potentially compromising the seal of the single-dose container.

[0092] According to a preferred embodiment, the shaped body is arranged such that the inside of the closure element is covered by the at least one shaped body to more than 70%, preferably more than 75%, in particular more than 80%, and most particularly more than 85% of its surface. This can be achieved in particular by placing the shaped body onto or into the receiving chamber from above after the powder has been filled into the receiving chamber. The shaped body then largely covers the phase formed by the powder and at least largely prevents contact of the powder with the surface of the inside of the closure element after the single-use cleaning portion has been closed. The previously described negative consequences of extensive contact of the surface with the powder are thereby avoided. The closure element rests on the shaped body during direct contact.

[0093] According to a preferred embodiment, the side of the molded body in contact with the closure element (contact side) has at least 70%, preferably at least 75%, in particular at least 80%, particularly preferably more than 85% of its surface in contact with the inside of the closure element. This embodiment has the advantage that this arrangement prevents powder particles from getting between the closure element and the molded body after production, for example, during transport. The problems of chafing, puncture, etc. described above are thereby further reduced.

[0094] Particularly preferably, this side of the molded body has substantially full-surface contact with the closure element. "Substantially full-surface contact" means that at least 90% of the surface of the contact side is in direct contact with the inside of the closure element. The closure element then rests on the molded body during direct contact.

[0095] It is preferred if the shaped body has at least one substantially flat side. "Substantially flat" within the meaning of the invention means that the flat side of the shaped body has no major elevations or depressions. The deviation is 10% or less, preferably 5% or less. The underside, which is preferably in contact with the powder, and / or the upper side, which is in contact with the inside of the closure element, can be substantially flat. The shaped body preferably has at least one substantially flat upper and / or lower side.

[0096] The molded bodies according to the invention preferably have a flat underside whose largest diagonal is greater than the height of the molded body. Preferably, the largest diagonal is more than 1.5 times, preferably more than 2 times, the height of the molded body, with the molded body being applied to the surface of the powder with the flat underside. Such an arrangement leads to a particularly large-area coverage of the inside of the closure element without significantly reducing the space available within the receiving chamber.

[0097] In a further preferred embodiment, the molded body has an upper side that is essentially plane-parallel to the underside. A substantially plane-parallel surface means that deviations from complete parallelism of approximately 10%, preferably 5%, are still possible. Such surfaces arise due to production deviations or certain production processes and display, for example, slightly roughened, bumpy surfaces. However, such surfaces are also encompassed by the invention. This configuration advantageously results in a flat closure element (in particular a flat, water-soluble film) being easy to apply to a plane-parallel upper side. The underside of the molded body is in particular in contact with the powder, and the upper side with the closure element.

[0098] According to a preferred embodiment, the closure element comprises a water-soluble film. The closure element is preferably a water-soluble film. Suitable water-soluble films are described in more detail in connection with the methods according to the invention.

[0099] Due to the inventive arrangement, in which as little powder as possible comes into contact with the water-soluble film sealing the receiving chamber, the thickness of the film can be reduced because the aforementioned negative effects of the powder do not occur, and there is little contact with the powder. This has the advantage that, for environmentally friendly, sustainable use of packaging material, a film can be selected that is thinner than that used for conventional water-soluble single-serve containers.

[0100] According to a particularly preferred embodiment, the water-soluble film has a thickness of 80 μm or less, preferably 70 μm or less, in particular 65 μm or less, particularly preferably 60 μm. Most preferably, the thickness of the film can be 55 μm or less, which leads to a significant saving in packaging material.

[0101] In a further preferred embodiment, the water-soluble film forming the closure element has a thickness less than the average thickness of the water-soluble receiving chamber. The average thickness of the water-soluble receiving chamber is determined by measuring the thickness and calculating the arithmetic mean. This also leads to a saving in material for the packaging of the single-dose portion.

[0102] According to a further preferred embodiment, the shaped body in contact with the closure element has substantially the same height. The shaped body is substantially the same thickness. The substantially same height exists if the height at individual points of the shaped body deviates by 10% or less, preferably by 5% or less.

[0103] It is preferred if the shaped body is flat. The shaped bodies preferably have a flat underside whose largest diagonal is greater than the height (=thickness) of the shaped body, with the shaped body being applied to the surface of the powder with the flat underside. Such shaped bodies are not only easy to produce, for example, by casting or tableting, but can also be easily applied to the powder by machine.

[0104] It is particularly preferred if the shaped body has a flat underside whose largest diagonal is more than 1.5 times, preferably more than 2 times, the height of the shaped body, with the shaped body being applied to the surface of the powder with the flat underside. This produces excellent coverage of the powder, especially at high coverage levels.

[0105] In a particularly preferred embodiment of the present invention, the shaped body in contact with the closure element has a height of 2.5 to 9 mm, preferably 2.75 to 6.0 mm, in particular 3.0 to 5.5 mm. Such shaped bodies are particularly suitable for utilizing the available space in the receiving chamber in combination with the powder and at the same time achieving the advantages of covering the powder from the closure element. At the same time, the entire single-dose cleaning agent portion is stabilized by the presence of such shaped bodies. Shaped bodies with significantly lower heights than stated are generally more susceptible to breakage, as a result of which they cannot fulfill the inventive purpose from the outset or cannot fulfill it over the entire transport and / or storage period.Much thicker molded bodies have the disadvantage that they leave too little space in the space utilization of the single-dose cleaning agent for other important components that cannot be incorporated into the molded body without greater effort and / or loss of activity.

[0106] It is particularly preferred if such (preferably substantially flat) shaped bodies of the mentioned thickness / height, in particular a height / thickness of 2.75 to 6.0 mm, produce a high degree of coverage of the inside of the closure element of preferably more than 80%, particularly preferably more than 85% of its surface, whereby the space provided by the receiving chamber for the various components / phases of the cleaning agent composition is used particularly effectively without powder coming into contact with the closure element to a greater extent and the already mentioned negative consequences, such as chafing and piercing of the closure element, in particular a closure film, are thereby further reduced.

[0107] According to a particularly preferred embodiment, the shaped body has a substantially flat top and bottom surface, with the top surface having substantially full-surface contact with the closure element. According to another preferred embodiment, the total weight of the single detergent portion is from 10 g to 25 g, preferably from 12 to 22 g, particularly preferably from 13 g to 20 g. Such detergent portions are suitable for making good use of the dosing chamber of dishwashers, while not requiring excessive packaging material.

[0108] The total weight of the powder in the cleaning agent single portions according to the invention is from 12 to 22 g, preferably from 7 g to 20 g, preferably from 8 to 15 g, particularly preferably from 10 g to 12 g.

[0109] In a further embodiment, the total weight of a shaped body in the cleaning agent single portions according to the invention is preferably from 4 g to 8 g, preferably from 5 to 7 g.

[0110] According to a further preferred embodiment, the weight ratio of powder to shaped body is from 4:1 to 1:1, preferably from 3.75:1 to 1.25:1, in particular from 3.5:1 to 1.5:1, most preferably from 3.25:1 to 1.75:1. Such ratios have proven particularly advantageous with regard to space utilization in the single-dose cleaning agents according to the invention. In particular, the various active ingredients in the powder and shaped body can be well distributed and simultaneously separated.

[0111] These and other aspects, features, and advantages of the invention will become apparent to those skilled in the art from a study of the following detailed description and claims. It is understood that any feature of one aspect of the invention may be employed in any other aspect of the invention. Further, it is to be understood that the examples contained herein are intended to describe and illustrate the invention, but not to limit it, and in particular the invention is not limited to these examples. All percentages are by weight unless otherwise indicated. Numerical ranges given in the format "from x to y" include the stated values. Where multiple preferred numerical ranges are given in this format, it is to be understood that all ranges resulting from the combination of the various endpoints are also encompassed.

[0112] “At least one”, as used herein, means 1 or more, i.e. 1, 2, 3, 4, 5, 6, 7, 8, 9 or more. When referred to an ingredient, the statement refers to the type of ingredient and not to the absolute number of molecules. “At least one bleach catalyst” thus means, for example, at least one type of bleach catalyst, i.e. one type of bleach catalyst or a mixture of several different bleach catalysts can be meant. Together with weight information, the statement refers to all compounds of the type stated that are present in the composition / mixture, i.e. the composition does not contain any further compounds of this type beyond the stated amount of the corresponding compounds.

[0113] Whenever reference is made to molar masses, these figures always refer to the number-average molar mass M n, unless explicitly stated otherwise. The number-average molar mass can be determined, for example, by gel permeation chromatography (GPC) according to DIN 55672-1:2007-08 using THF as eluent. The mass-average molar mass Mw can also be determined by GPC, as for M n described.

[0114] Unless explicitly stated otherwise, all percentages given in connection with the compositions described herein refer to % by weight, in each case based on the respective phase (i.e. the powder, the gel phase(s), the shaped body).

[0115] Formulations containing at least one gel phase must meet certain minimum requirements. As already explained, the gel phase must set within the shortest possible time. Long setting times would result in a long production time and thus high costs. According to the invention, setting time is the period of time during which the at least one gel phase changes from a flowable state at 20°C to a non-flowable, dimensionally stable state at room temperature. Room temperature is understood to mean a temperature of 20°C.

[0116] Furthermore, the gel phase must be stable under normal storage conditions. The gel phase according to the invention is a component of a cleaning agent. Cleaning agents are usually stored in a household for a certain period of time. Storage usually takes place near the washing machine or dishwasher. For such storage, the gel phase should be stable. Thus, the gel phase should be stable, in particular even after a storage period of, for example, 4 to 12 weeks, in particular 10 to 12 weeks or longer at a temperature of up to 40°C, particularly at 30°C, in particular at 25°C or 20°C, and should not deform or otherwise change in consistency during this time.

[0117] According to a preferred embodiment, the at least one gel phase is introduced in situ into the receiving chamber and solidifies to form solid gel phase(s) at 1 bar and 20 °C, while the shaped body is prefabricated and is introduced into the cleaning agent portion as a solid body.

[0118] Visually, the surface of the gel phase should be clearly distinguishable from the powder and / or the shaped body, for example by a pronounced shine. The surface of the powder is not usually shiny, but matt, lackluster or dull, so that a shine allows for good differentiation, which makes the cleaning agent attractive to the consumer. The shaped body, on the other hand, is preferably not transparent. A change in volume or shrinkage during storage would be disadvantageous, as this would reduce consumer acceptance of the product. Leakage of liquid or the exudation of components from the gel phase is also undesirable. Here, too, the visual impression is relevant. Leakage of liquid, such as solvents, can affect the stability of the gel phase, meaning that the components are no longer contained in a stable manner and the washing or cleaning properties are therefore also affected.Cleaning effect can be influenced.

[0119] It is preferred that the single-dose cleaning agent contains two or more, preferably three or more, gel phases in the chamber that are different from the molded body. The gel phases may be visually identical or differ in design or color. Furthermore, the cleaning agent portion may contain multiple gel phases that differ in their chemical composition due to the presence or absence of one or more active ingredients. Preferably, however, the chemical composition remains essentially the same. Above all, the gel phases continue to be different from the at least one molded body.

[0120] The chemical composition of the gel phases is essentially the same when the chemical composition of the gel phases is at least 85% by weight of the ingredients identical. Ingredients can preferably be changed in a range from 0.001 to 14% by weight, preferably from 0.01 to 10% by weight, particularly preferably from 0.1 to 7% by weight of the ingredients based on the total weight of the respective gel phase. This has the advantage that the properties of the gel phases, in particular the processing properties, do not change to such an extent that the manufacturing and processing conditions change significantly. Larger changes in the composition of the gel phases than those described above have a negative effect on such properties, in particular on the processing properties, such as setting time.

[0121] One or more gel phases can also preferably be translucent (transparent) or transparent, which results in a good visual impression. The transmittance of the gel phase (without dye) is preferably in a range between 100% and 20%, between 100% and 30%, in particular between 100% and 40%. To measure the light transmittance (transmission), the transmittance in % was determined at 600 nm against water as a reference at 20°C. The mass was poured into the designated 11 mm round cuvettes and, after 12 hours of storage at room temperature, measured in a LICO 300 color measurement system according to Lange. For example, all or none of the gel phases can be translucent or transparent. The presence of opaque and translucent gel phases in the single-dose cleaning agent portion is preferred according to the invention. According to a preferred embodiment, several gel phases are arranged next to one another in the receiving chamber.The gel phases are preferably not in direct contact with each other.

[0122] According to a particularly preferred embodiment, three or four gel phases are arranged in the receiving chamber, which are different from the shaped body.

[0123] Furthermore, it is preferred that the at least one powder and the at least one gel phase are in direct contact with each other. In this case, there should be no negative interaction between the ingredients of the powder and the gel phase(s). No negative interaction here means, for example, that no ingredients or solvents migrate from one phase to the other or that the stability, in particular storage stability, preferably at 4 weeks and 30°C storage temperature, and / or the aesthetics of the product are impaired in any way, for example, by color change, the formation of moist-looking edges, a blurred boundary between the two phases, or similar.

[0124] Surprisingly, it has been shown that particularly good storage stability is achieved when the gel phase is low in water. Low in water, in the context of the present invention, means that small amounts of water can be used to produce the at least one gel phase. The proportion of water in the gel phase is in particular 20 wt.% or less, preferably 15 wt.% or less, especially 12 wt.% or less, in particular between 10 and 5 wt.%. The data in wt.% refer to the total weight of the gel phase.

[0125] According to a further embodiment, the gel phase, the powder, and / or the shaped body are essentially anhydrous. This means that the gel phase is preferably essentially free of water. "Essentially free" here means that the various phases may contain small amounts of water. This water can be introduced into the phase, for example, by a solvent or as water of crystallization, or due to reactions between constituents of the phase. The proportion of water in the respective phase in this embodiment is 4.9 wt.% or less, 4 wt.% or less, preferably 2 wt.% or less, in particular 1 wt.% or less, especially 0.5 wt.% or less, in particular 0.1 wt.% or 0.05 wt.% or less. The data in wt.% refer to the total weight of the respective phase (gel phase, powder, shaped body).

[0126] According to a particularly preferred embodiment, the weight of all gel phases is between 0.1 g and 4 g, preferably between 0.4 and 3 g, particularly preferably between 0.7 and 2.5 g. In particular, in single-dose cleaning agent portions having a total weight of between 12 and 22 g, particularly preferably between 13 and 20 g, and at least one shaped body with a total weight of between 4 and 8 g, particularly between 5 and 7 g, as well as powder with a total weight of between 8 and 15 g, particularly preferably between 10 and 12 g, the weight of all gel phases is between 0.4 and 3 g, particularly preferably between 0.7 and 2.5 g.

[0127] According to a further preferred embodiment, the weight ratio of the shaped body to the gel phase(s) (sum of all gel phases) is from 8:1 to 1:2, preferably from 6:1 to 1:1, in particular from 4.5:1 to 1.5:1, most preferably from 4:1 to 1.75:1. In the case of multiple gel phases, the total weight of all gel phases is used to calculate the stated weight ratios (corresponding to the sum of all gel phases). Such ratios lead to particularly good utilization of the various phases within the single-dose cleaning agent.

[0128] In a further embodiment of the present invention, it is preferred that the weight ratio of the powder to the gel phase (or to the sum / total weight of all gel phases) is from 20:1 to 1:1, preferably from 12:1 to 1.5:1, in particular from 10:1 to 2:1, very particularly preferably from 8:1 to 2.5:1.

[0129] The gel phase comprises at least one gelling agent. Preferably, the at least one gel phase comprises a water-soluble polymer from the group of optionally acetalized polyvinyl alcohols (PVOH) and their copolymers.

[0130] For the purposes of the invention, preferred copolymers of polyvinyl alcohol are copolymers of polyvinyl alcohol with other monomers, in particular copolymers with anionic monomers. Preferred anionic monomers are vinylacetic acid, alkyl acrylates, maleic acid and its derivatives, in particular monoalkyl maleates (in particular monomethyl maleate), dialkyl maleates (in particular dimethyl maleate), maleic anhydride, fumaric acid and its derivatives, in particular monoalkyl fumarate (in particular monomethyl fumarate), dialkyl fumarate (in particular dimethyl fumarate), fumaric anhydride, itaconic acid and its derivatives, in particular monomethyl itaconate, dialkyl itaconate, dimethyl itaconate, itaconic anhydride, citraconic acid (methylmaleic acid) and its derivatives, monoalkylcitraconic acid (in particular methylcitraconate), dialkylcitraconic acid (dimethylcitraconate), citraconic anhydride, mesaconic acid (methylfumaric acid) and its derivatives, monoalkyl mesaconate, dialkyl mesaconate, mesaconic anhydride,Glutaconic acid and its derivatives, monoalkyl glutaconate, dialkyl glutaconate, glutaconic anhydride, vinylsulfonic acid, alkylsulfonic acid, ethylenesulfonic acid, 2-acrylamido-1-methylpropanesulfonic acid, 2-acrylamido-2-methylpropanesulfonic acid, 2-methylacrylamido-2-methylpropanesulfonic acid, 2-sulfoethyl acrylate, and combinations thereof, as well as the alkali metal salts or esters of the aforementioned monomers. Particularly preferred are the PVOH copolymers selected from copolymers of polyvinyl alcohol with a monomer, in particular selected from the group of monoalkyl maleates (especially monomethyl maleate), dialkyl maleates (especially dimethyl maleate), maleic anhydride, and combinations thereof, as well as the alkali metal salts or esters of the aforementioned monomers. The values ​​given for polyvinyl alcohols themselves apply to the suitable molecular weights.

[0131] According to a particularly preferred embodiment, the at least one gel phase comprises polyvinyl alcohol and / or optionally acetalized polyvinyl alcohols, hereinafter referred to as PVOH. The gel phases produced in this way have a particularly high melting point, are dimensionally stable (even at 40°C), and do not change their shape, or only slightly, upon storage. In particular, they are also less reactive with regard to direct negative interactions with powder components. In particular, PVOH can also easily produce low-water or anhydrous gel phases. When PVOH is used as the polymer for the at least one gel phase, low-viscosity melts are obtained at 110-120°C, which are therefore particularly easy to process. In particular, the gel phase can be filled into the water-soluble coating quickly and precisely, without sticking or inaccurate metering.Furthermore, these gel phases adhere particularly well to the water-soluble coating, especially if it is also made of PVOH. This is visually advantageous. Due to the rapid solidification of at least one gel phase with PVOH, further processing of the gel phases can be carried out particularly quickly.

[0132] Furthermore, the good solubility of the produced gel phases is particularly favorable for the overall solubility of the cleaning agent.

[0133] According to the invention, the gel phase comprises PVOH in a proportion of approximately 5 wt.% to 40 wt.%, in particular from 7 wt.% to 35 wt.%, preferably from 8.5 wt.% to 25 wt.%. Significantly lower proportions of PVOH do not lead to the formation of a stable gel phase. The values ​​are based on the total weight of the gel phase(s).

[0134] Polyvinyl alcohols are thermoplastic polymers that appear as white to yellowish powders, usually produced by hydrolysis of polyvinyl acetate. Polyvinyl alcohols (PVOH) are resistant to almost all anhydrous organic solvents. Polyvinyl alcohols with a molecular weight of 30,000 to 60,000 g / mol are preferred.

[0135] In the context of the present invention, it is preferred that the at least one gel phase comprises polyvinyl alcohol whose degree of hydrolysis is preferably 70 to 100 mol%, in particular 80 to 90 mol%, particularly preferably 81 to 89 mol%, and especially 82 to 88 mol%. Preferred are polyvinyl alcohols that are in the form of white-yellowish powders or granules with degrees of polymerization in the range of approximately 100 to 2500 (molar masses of approximately 4000 to 100,000 g / mol) and degrees of hydrolysis of 80 to 99 mol%, preferably 80 to 90 mol%, in particular 87 to 89 mol%, for example 88 mol%, which accordingly still contain a residual content of acetyl groups (acetalized polyvinyl alcohol).

[0136] PVOH powders with the above-mentioned properties, which are suitable for use in at least one gel phase, are marketed, for example, under the name Mowiol® or Poval® by Kuraray. Poval® grades are particularly suitable, especially grades 3-83, 3-88, and preferably 4-88, as well as Mowiol® 4-88 from Kuraray.

[0137] The water solubility of polyvinyl alcohol can be modified by post-treatment with aldehydes (acetalization) or ketones (ketalization). Polyvinyl alcohols that are acetalized or ketalized with the aldehyde or keto groups of saccharides or polysaccharides, or mixtures thereof, have proven particularly preferred and particularly advantageous due to their exceptionally good cold-water solubility. The reaction products of polyvinyl alcohol and starch are particularly advantageous. Furthermore, the water solubility can be modified by complexing with Ni or Cu salts or by treatment with dichromates, boric acid, or borax, thus allowing the desired values ​​to be precisely adjusted.

[0138] According to the invention, the at least one gel phase can further comprise anionic polymers or copolymers with builder properties. The polymers listed below can, optionally additionally, also be present in at least one of the other phases of the cleaning agent. This is preferably a polycarboxylate. The polycarboxylate used is preferably a copolymeric polyacrylate, preferably a sulfopolymer, preferably a copolymeric polysulfonate, preferably a hydrophobically modified copolymeric polysulfonate. The copolymers can have two, three, four or more different monomer units. Preferred copolymeric polysulfonates contain, in addition to monomer(s) containing sulfonic acid groups, at least one monomer from the group of unsaturated carboxylic acids.

[0139] As unsaturated carboxylic acid(s), particularly preferred unsaturated carboxylic acids are those of the formula R 1 (R 2 )C=C(R 3)COOH is used, in the R 1 to R 3 independently of one another represent -H, -CH3, a straight-chain or branched saturated alkyl radical having 2 to 12 carbon atoms, a straight-chain or branched, mono- or polyunsaturated alkenyl radical having 2 to 12 carbon atoms, alkyl or alkenyl radicals substituted by -NH2, -OH or -COOH as defined above or -COOH or -COOR 4 where R 4 is a saturated or unsaturated, straight-chain or branched hydrocarbon radical having 1 to 12 carbon atoms. Particularly preferred unsaturated carboxylic acids are acrylic acid, methacrylic acid, ethacrylic acid, α-chloroacrylic acid, α-cyanoacrylic acid, crotonic acid, α-phenylacrylic acid, maleic acid, maleic anhydride, fumaric acid, itaconic acid, citraconic acid, methylenemalonic acid, sorbic acid, cinnamic acid, or mixtures thereof. Unsaturated dicarboxylic acids can, of course, also be used.

[0140] The monomers containing sulfonic acid groups are those of the formula R 5 (R 6 )C=C(R 7 )-X-SO3H is preferred, in which R 5 to R 7 independently of one another represent -H, -CH3, a straight-chain or branched saturated alkyl radical having 2 to 12 carbon atoms, a straight-chain or branched, mono- or polyunsaturated alkenyl radical having 2 to 12 carbon atoms, alkyl or alkenyl radicals substituted by -NH2, -OH or -COOH or -COOH or -COOR 4 where R 4 is a saturated or unsaturated, straight-chain or branched hydrocarbon radical having 1 to 12 carbon atoms, and X represents an optionally present spacer group selected from -(CH2)n- where n = 0 to 4, -COO-(CH2)k- where k = 1 to 6, -C(O)-NH-C(CH3)2-, -C(O)-NH-C(CH3)2-CH2- and -C(O)-NH-CH(CH3)-CH2-.

[0141] Preferred monomers are those of the formulas

[0142] H2C=CH-X-SO3H , H2C=C(CH3)-X-SO3H or HO3S-X-(R 6 )C=C(R 7 )-X-SO3H, in which R 6 and R 7 are independently selected from -H, -CH3, -CH2CH3, - CH2CH2CH3 and -CH(CH3)2 and X represents an optionally present spacer group selected from -(CH2)n- with n = 0 to 4, -COO-(CH2)k- with k = 1 to 6, -C(O)-NH-C(CH3)2-, - C(O)-NH-C(CH3)2-CH2- and -C(O)-NH-CH(CH3)-CH2-.

[0143] Particularly preferred monomers containing sulfonic acid groups are 1-acrylamido-1-propanesulfonic acid, 2-acrylamido-2-propanesulfonic acid, 2-acrylamido-2-methyl-1-propanesulfonic acid, 2-methacrylamido-2-methyl-1-propanesulfonic acid, 3-methacrylamido-2-hydroxypropanesulfonic acid, allylsulfonic acid, methallylsulfonic acid, allyloxybenzenesulfonic acid, methallyloxybenzenesulfonic acid, 2-hydroxy-3-(2-propenyloxy)propanesulfonic acid, 2-methyl-2-propenesulfonic acid, styrenesulfonic acid, vinylsulfonic acid, 3-sulfopropyl acrylate, 3-sulfopropyl methacrylate, sulfomethacrylamide, sulfomethylmethacrylamide and mixtures of the acids mentioned or their water-soluble salts. In the polymers, the sulfonic acid groups may be present in completely or partially neutralized form, i.e. the acidic hydrogen atom of the sulfonic acid group in some or all of the sulfonic acid groups may be exchanged for metal ions, preferably alkali metal ions and in particular for sodium ions.The use of partially or fully neutralized copolymers containing sulfonic acid groups is preferred according to the invention.

[0144] The monomer distribution of the copolymers preferably used according to the invention is preferably 5 to 95 wt.% in copolymers containing only carboxylic acid group-containing monomers and sulfonic acid group-containing monomers, particularly preferably 50 to 90 wt.% and 10 to 50 wt.% in monomers containing carboxylic acid groups, the monomers being preferably selected from those mentioned above. The molar mass of the sulfo-copolymers preferably used according to the invention can be varied in order to adapt the properties of the polymers to the desired application. Preferred cleaning agents are characterized in that the copolymers have molar masses of 2000 to 200,000 g mol -1 , preferably from 4000 to 25,000 g mol -1and in particular from 5000 to 15,000 g mol -1 have.

[0145] In a further preferred embodiment, the copolymers comprise, in addition to the carboxyl-containing monomer and the sulfonic acid-containing monomer, at least one nonionic, preferably hydrophobic monomer. The use of these hydrophobically modified polymers has been shown to improve, in particular, the rinse performance of dishwashing detergents according to the invention.

[0146] Particularly preferably, the at least one gel phase further comprises an anionic copolymer, wherein the anionic copolymer used is a copolymer comprising i) monomers containing carboxylic acid groups, ii) monomers containing sulfonic acid groups, iii) non-ionic monomers, in particular hydrophobic monomers.

[0147] As non-ionic monomers, monomers of the general formula

[0148] R 1 (R 2 )C=C(R 3 )-XR 4used in the R 1 to R 3 independently of one another represents -H, -CH3 or -C2H5, X represents an optionally present spacer group selected from -CH2-, -C(O)O- and -C(O)-NH-, and R 4 represents a straight-chain or branched saturated alkyl radical having 2 to 22 carbon atoms or an unsaturated, preferably aromatic radical having 6 to 22 carbon atoms.

[0149] Particularly preferred non-ionic monomers are butene, isobutene, pentene, 3-methylbutene, 2-methylbutene, cyclopentene, hexene, hexene-1, 2-methylpentene-1, 3-methylpentene-1, cyclohexene, methylcyclopentene, cycloheptene, methylcyclohexene, 2,4,4-trimethylpentene-1, 2,4,4-trimethylpentene-2,2,3-dimethylhexene-1, 2,4-dimethylhexene-1, 2,5-dimethylhexene-1, 3,5-dimethylhexene-1, 4,4-dimethylhexane-1, ethylcyclohexyne, 1-octene, a-olefins having 10 or more carbon atoms such as 1-decene, 1-dodecene, 1-Hexadecene, 1-Octadecene and C22- a-olefin, 2-styrene, a-methylstyrene, 3-methylstyrene, 4-propylstyrene, 4-cyclohexylstyrene, 4-dodecylstyrene, 2-ethyl-4-benzylstyrene, 1-vinylnaphthalene, 2-vinylnaphthalene, methyl acrylate, ethyl acrylate, propyl acrylate, butyl acrylate, pentyl acrylate, hexyl acrylate, methyl methacrylate, A / -(methyl)acrylamide, 2-ethylhexyl acrylate, 2-ethylhexyl methacrylate, A / -(2-ethylhexyl)acrylamide,Octyl acrylate, octyl methacrylate, A / -(octyl)acrylamide, lauryl acrylate, lauryl methacrylate, A / -(lauryl)acrylamide, stearyl acrylate, stearyl methacrylate, A / -(stearyl)acrylamide, behenyl acrylate, behenyl methacrylate and N-(behenyl)acrylamide or mixtures thereof, in particular acrylic acid, ethyl acrylate, 2-acrylamido-2-methylpropanesulfonic acid (AMPS) and mixtures thereof.

[0150] According to the invention, the at least one gel phase may also contain other polymers. The presence of polyalkylene glycols, especially polyethylene glycols, in the gel phase is preferred.

[0151] Particularly suitable are polyethylene glycols having an average molecular weight between about 100 and 8000. The above-mentioned polyethylene glycols are particularly preferably used in amounts of 1 to 40 wt.%, preferably 5 to 35 wt.%, in particular 10 to 30 wt.%, for example 15 to 25 wt.%, preferably based in each case on the total weight of the gel phase.

[0152] Surprisingly, it has been shown that PVOH together with anionic polymers or copolymers, in particular with sulfopolymers, leads to the formation of gel phases with insensitive surfaces. These surfaces can be touched by the end user without any material sticking to their hands. Even in packaging, no material is removed. Therefore, the gel phase preferably comprises PVOH and an anionic copolymer / polymer. The proportion of anionic polymer is preferably 1 wt.% to 35 wt.%, in particular 3 wt.% to 30 wt.%, especially 4 wt.% to 25 wt.%, preferably 5 wt.% to 20 wt.%, for example 10 wt.%, based on the total weight of the gel phase. Sulfopolymers also ensure an excellent surface gloss. Furthermore, fingerprints are not left behind.Therefore, the proportion of sulfopolymers, in particular sulfopolymers with AMPS as the sulfonic acid group-containing monomer, for example Acusol 590, Acusol 588, or Sokalan CP50, is preferably 1 wt.% to 25 wt.%, in particular 3 wt.% to 15 wt.%, particularly 4 wt.% to 12 wt.%, preferably 5 wt.% to 10 wt.%, based on the weight of the gel phase. In a particularly preferred embodiment, the at least one gel phase therefore comprises PVOH, a sulfopolymer, and at least one polyhydric alcohol.

[0153] A particularly preferred embodiment relates to at least one gel phase or gel phases containing polyvinyl alcohol as the polymer, as described above, in combination with polyethylene glycols. Particularly preferred in combination with polyvinyl alcohol are polyethylene glycols with an average molecular weight between about 100 and about 2000 g / mol, preferably between 200 and 1000 g / mol, particularly preferably between 300 and 800 g / mol, for example around 400 g / mol (INCI: PEG400).

[0154] In particular, it is advantageous for the at least one gel phase comprising polyvinyl alcohol to additionally contain polyethylene glycols with an average molecular weight of approximately 300 to 800 g / mol in amounts of 10 to 30 wt.% based on the total weight of the at least one gel phase. Surprisingly, it has been shown that the addition of polyethylene glycols, particularly those with average molecular weights of up to 800 g / mol to the at least one gel phase, leads to an acceleration of the solidification time of the gel phases. This is particularly advantageous for production processes, since further processing of the gel phases in the solidified state can be carried out much more quickly and thus generally more cost-effectively.

[0155] Particularly preferably, the at least one gel phase comprises at least one alkanetriol and / or at least one alkanediol, preferably at least one C3- to C5-alkanetriol and / or at least one C3- to C5-alkanediol as polyhydric alcohol. It preferably comprises an alkanetriol and an alkanediol as at least one polyhydric alcohol. Particularly preferred is a gel phase comprising at least one (optionally acetalized) PVOH, as well as a C3- to C5-alkanediol and a C3- to C5-alkanetriol.

[0156] Surprisingly, it has been shown that particularly short setting times can be achieved by combining a corresponding triol (alkanetriol) with a corresponding diol (alkanediol). The resulting gel phases are also transparent and have a glossy surface, which ensures an appealing visual appearance of the cleaning agent according to the invention. The terms diol and alkanediol are used synonymously herein. The same applies to triol and alkanetriol.

[0157] The amount of alkanediols and / or alkanetriols used in gel phases according to the invention is preferably at least 45 wt.%, in particular 55 wt.% or more. Preferred ranges are from 5 wt.% to 75 wt.%, in particular from 10 wt.% to 70 wt.%, based on the total weight of the gel phase.

[0158] The C3- to C10-alkanetriol is particularly preferably glycerol and / or 2-ethyl-2-(hydroxymethyl)-1,3-propanediol (also called 1,1,1-trimethylolpropane). The C3- to C5-alkanediol is preferably 1,3-propanediol and / or 1,2-propanediol. Surprisingly, it has been shown that the chain length of the diol and in particular the position of the OH groups influence the transparency of the gel phase. Therefore, the OH groups of the diol are preferably not located on immediately adjacent C atoms. In particular, there are three or four carbon atoms, in particular 3 carbon atoms, between the two OH groups of the diol. The diol is particularly preferably 1,3-propanediol. Surprisingly, it has been shown that particularly good results are achieved with mixtures comprising glycerol and 1,3-propanediol and / or 1,2-propanediol.

[0159] If glycerol is present as alkanetriol in the gel phase, the proportion of glycerol, based on the total weight of the gel phase, is preferably 5 wt.% to 70 wt.%, in particular 10 wt.% to 65 wt.%, especially 20 wt.% to 40 wt.%.

[0160] If several alkanediols are present in the gel phase, the proportion of alkanediols, based on the total weight of the gel phase, is preferably 5 wt.% to 70 wt.%, in particular 7 wt.% to 65 wt.%, especially 10 wt.% to 40 wt.%.

[0161] If the gel phase comprises at least one alkanediol, in particular 1,3-propanediol or 1,2-propanediol, the proportion of alkanediol, in particular 1,3-propanediol or 1,2-propanediol, based on the total weight of the gel phase, is preferably 5 wt.% to 70 wt.%, in particular 10 wt.% to 65 wt.%, particularly 20 wt.% to 45 wt.% If 1,3-propanediol is present in the gel phase, the proportion of 1,3-propanediol, based on the total weight of the gel phase, is in particular 10 wt.% to 65 wt.%, particularly 20 wt.% to 45 wt.%. A gel phase which contains 20 to 45 wt.% of 1,3-propanediol and / or 1,2-propanediol and 10 wt.% to 65 wt.% glycerol, in each case based on the total weight of the gel phase, is particularly preferred.

[0162] It has been shown that rapid solidification of a gel phase at 20 °C is possible in these ranges, and the resulting phases are storage-stable and transparent. The glycerin content, in particular, influences the curing time.

[0163] If the at least one gel phase according to the invention comprises a C3- to C16-alkanetriol and a C3- to C5-alkanediol, their weight ratio is preferably 3:1 to 2:1. In particular, their weight ratio is 2:1 if glycerol and 1,3-propanediol are present as polyhydric alcohols. Surprisingly, it has been found that with these weight ratios, storage-stable, glossy, transparent gel phases can be obtained within short setting times of 10 minutes or less at 20°C.

[0164] Very particularly preferred embodiments of the present invention comprise the at least one gel phase 8 to 20 wt.% PVOH, 15 to 30 wt.% 1,3-propanediol, 30 to 40 wt.% glycerol, 5 to 15 wt.% sulfonic acid group-containing polyacrylate copolymer, and 2-15 wt.% polyethylene glycol (preferably with an average molecular weight of 200-600 g / mol), wt.% in each case based on the total weight of the gel phase.

[0165] The cleaning agent according to the invention preferably comprises at least one surfactant. This surfactant is selected from the group of anionic, nonionic, and cationic surfactants. The cleaning agent according to the invention can also contain mixtures of several surfactants selected from the same group.

[0166] According to the invention, the powder, the shaped body and / or optionally the gel phase(s) each comprise at least one surfactant. However, it is also possible for only the powder phase, the gel phase or the shaped body to comprise at least one surfactant. If at least two phases (powder, shaped body and / or gel phase(s)) comprise a surfactant, these are preferably different surfactants. However, it is also possible for the powder phase, shaped body and / or gel phase to contain the same surfactant or surfactants. According to the invention, the at least one powder and / or at least one gel phase preferably contain at least one nonionic surfactant. All nonionic surfactants known to the person skilled in the art can be used as nonionic surfactants. Preference is given to using low-foaming nonionic surfactants, in particular alkoxylated, especially ethoxylated, low-foaming nonionic surfactants. These are specified in more detail below.

[0167] Another class of preferably used nonionic surfactants, which are used either as the sole nonionic surfactant or in combination with other nonionic surfactants, are alkoxylated, preferably ethoxylated or ethoxylated and propoxylated fatty acid alkyl esters, preferably with 1 to 4 carbon atoms in the alkyl chain.

[0168] Nonionic surfactants of the amine oxide type, for example N-cocoalkyl-N,N-dimethylamine oxide and N-tallowalkyl-N,N-dihydroxyethylamine oxide, and fatty acid alkanolamides may also be suitable. The amount of these nonionic surfactants is preferably no more than that of the ethoxylated fatty alcohols, in particular no more than half that amount.

[0169] The cleaning agents according to the invention, in particular cleaning agents for automatic dishwashing, particularly preferably contain nonionic surfactants from the group of alkoxylated alcohols. The nonionic surfactants used are preferably alkoxylated, advantageously ethoxylated, especially primary alcohols with preferably 8 to 18 carbon atoms and an average of 1 to 12 moles of ethylene oxide (EO) per mole of alcohol, in which the alcohol radical can be linear or, preferably, methyl-branched in the 2-position, or can contain linear and methyl-branched radicals in a mixture, as are usually found in oxo alcohol radicals. However, alcohol ethoxylates with linear radicals from alcohols of native origin with 12 to 18 carbon atoms, for example from coconut, palm, tallow, or oleyl alcohol, and an average of 2 to 8 moles of EO per mole of alcohol are particularly preferred.Preferred ethoxylated alcohols include, for example, C12-C14 alcohols with 3 EO or 4 EO, C12-C14 alcohols with 7 EO, C18-C19 alcohols with 3 EO, 5 EO, 7 EO, or 8 EO, C18-C19 alcohols with 3 EO, 5 EO, or 7 EO, and mixtures thereof, such as mixtures of C12-C14 alcohol with 3 EO and C12-C18 alcohol with 5 EO. Preferred alcohol ethoxylates have a narrow homolog distribution (narrow range ethoxylates, NRE). In addition to these nonionic surfactants, fatty alcohols with more than 12 EO can also be used. Examples include tallow fatty alcohol with 14 EO, 25 EO, 30 EO, or 40 EO.

[0170] Particular preference is given to using ethoxylated nonionic surfactants obtained from C6-20 monohydroxyalkanols or C6-20 alkylphenols or C6-20 fatty alcohols and more than 12 mol, preferably more than 15 mol, and in particular more than 20 mol of ethylene oxide per mol of alcohol. A particularly preferred nonionic surfactant is obtained from a straight-chain fatty alcohol having 16 to 20 carbon atoms (C16-20 alcohol), preferably a C18 alcohol, and at least 12 mol, preferably at least 15 mol, and in particular at least 20 mol of ethylene oxide. Among these, the so-called "narrow-range ethoxylates" are particularly preferred.

[0171] Preferred surfactants come from the group of alkoxylated nonionic surfactants, especially ethoxylated primary alcohols and mixtures of these surfactants with structurally more complex surfactants such as polyoxypropylene / polyoxyethylene / polyoxypropylene ((PO / EO / PO) surfactants). Such (PO / EO / PO) nonionic surfactants are also characterized by good foam control.

[0172] Particularly preferred nonionic surfactants for the low-foaming nonionic surfactants in the context of the present invention are those containing alternating ethylene oxide and alkylene oxide units. Among these, surfactants with EO-AO-EO-AO blocks are preferred, with one to ten EO or AO groups bonded to one another before a block of the other groups follows. Here, nonionic surfactants of the general formula

[0173] R1-O-(C H2-C H2-O)-(C H2-C H-0 )—(C H2-C H2-O)-(C H2-C HO)-H

[0174] R2 R3 preferred, in the R 1 represents a straight-chain or branched, saturated or mono- or polyunsaturated Ce-24-alkyl or alkenyl radical; each group R 2 or R 3 is independently selected from -CH3, -CH2CH3, -CH2CH2- CH3, -CH(CH3)2and the indices w, x, y, z independently represent integers from 1 to 6.

[0175] Preferred nonionic surfactants of the above formula can be prepared by known methods from the corresponding alcohols R 1 -OH and ethylene or alkylene oxide. The residue R 1 in the above formula can vary depending on the origin of the alcohol. If native sources are used, the residue R 1has an even number of carbon atoms and is generally unbranched, with linear residues from alcohols of native origin with 12 to 18 carbon atoms, for example from coconut, palm, tallow or oleyl alcohol, being preferred. Alcohols accessible from synthetic sources include, for example, Guerbet alcohols or residues methyl-branched in the 2-position or linear and methyl-branched in a mixture, as is usually the case in oxo alcohol residues. Regardless of the type of alcohol used to produce the nonionic surfactants contained in the products, nonionic surfactants are preferred in which R 1 in the above formula represents an alkyl radical having 6 to 24, preferably 8 to 20, particularly preferably 9 to 15 and in particular 9 to 11 carbon atoms.

[0176] In addition to propylene oxide, butylene oxide is particularly suitable as an alkylene oxide unit that is present alternately with the ethylene oxide unit in the preferred nonionic surfactants. However, other alkylene oxides in which R 2 or R 3 are independently selected from - CH2CH2-CH3 or -CH(CH3)2 are suitable. Nonionic surfactants of the above formula are preferably used, in which R 2 or R 3 represents a radical -CH3, w and x independently represent values ​​of 3 or 4 and y and z independently represent values ​​of 1 or 2.

[0177] Other preferred non-ionic surfactants are non-ionic surfactants of the general formula R 1 O(AlkO)xM(OAlk) y OR 2 , where

[0178] R 1 and R 2independently of one another represent a branched or unbranched, saturated or unsaturated, optionally hydroxylated alkyl radical having 4 to 22 carbon atoms; Alk represents a branched or unbranched alkyl radical having 2 to 4 carbon atoms; x and y independently of one another represent values ​​between 1 and 70; and M represents an alkyl radical from the group CH2, OHR 3 , CR 3 R 4 , CH2CHR 3 and CHR 3 CHR 4 where R 3 and R 4 independently of one another represent a branched or unbranched, saturated or unsaturated alkyl radical having 1 to 18 carbon atoms.

[0179] Nonionic surfactants of the general formula R are preferred. 1 -CH(OH)CH2-O(CH2CH2O)xCH2CHR(OCH2CH2)y-CH2CH(OH)-R 2 , where R, R 1 and R 2independently of one another represent an alkyl radical or alkenyl radical having 6 to 22 carbon atoms; x and y independently of one another represent values ​​between 1 and 40.

[0180] In particular, compounds of the general formula R 1 -CH(OH)CH2-O(CH2CH2O)xCH2CHR(OCH2CH2)yO-CH2CH(OH)-R 2 in which R represents a linear, saturated alkyl radical having 8 to 16 carbon atoms, preferably 10 to 14 carbon atoms, and n and m independently of one another have values ​​from 20 to 30. Corresponding compounds can be obtained, for example, by reacting alkyldiols HO-CHR-CH2-OH with ethylene oxide, followed by reaction with an alkyl epoxide to close the free OH functions to form a dihydroxy ether.

[0181] Preferred nonionic surfactants are those of the general formula R 1 -CH(OH)CH2O- (AO)w-(AO)x-(A"O) y -(A'"O)zR 2 , in the

[0182] - R 1 represents a straight-chain or branched, saturated or mono- or polyunsaturated Ce-24 alkyl or alkenyl radical;

[0183] - R 2 represents hydrogen or a linear or branched hydrocarbon radical having 2 to 26 carbon atoms;

[0184] - A, A', A" and A'" independently of one another represent a radical from the group -CH2CH2, -CH2CH2- CH2, -CH2-CH(CH3), -CH2-CH2-CH2-CH2, -CH2-CH(CH3)-CH2-, -CH2-CH(CH2-CH3),

[0185] - w, x, y and z represent values ​​between 0.5 and 120, where x, y and / or z can also be 0.

[0186] By adding the above-mentioned non-ionic surfactants of the general formula R 1 -CH(OH)CH2O-(AO)w-(A'O)x-(A"0)y-(A'"O)zR 2, hereinafter also referred to as "hydroxy mixed ethers", the cleaning performance of preparations according to the invention can surprisingly be significantly improved, both in comparison to surfactant-free systems and in comparison to systems containing alternative non-ionic surfactants, for example from the group of polyalkoxylated fatty alcohols.

[0187] Particularly preferred are those end-capped poly(oxyalkylated) nonionic surfactants which, according to the following formula besides a remainder R 1 , which represents linear or branched, saturated or unsaturated, aliphatic or aromatic hydrocarbon radicals having 2 to 30 carbon atoms, preferably having 4 to 22 carbon atoms, furthermore a linear or branched, saturated or unsaturated, aliphatic or aromatic hydrocarbon radical R 2with 1 to 30 carbon atoms, where n stands for values ​​between 1 and 90, preferably for values ​​between 10 and 80 and in particular for values ​​between 20 and 60. Particularly preferred surfactants of the above formula are those in which R 1 for C7 to C13, n for an integer from 16 to 28 and R 2 stands for Cs to C12.

[0188] Particularly preferred surfactants are those of the formula R 1 O[CH2CH(CH3)O]x[CH2CH2O] y CH2CH(OH)R 2 , in the R 1 represents a linear or branched aliphatic hydrocarbon radical having 4 to 18 carbon atoms or mixtures thereof, R 2denotes a linear or branched hydrocarbon radical having 2 to 26 carbon atoms or mixtures thereof, and x stands for values ​​between 0.5 and 1.5 and y stands for a value of at least 15. The group of these non-ionic surfactants includes, for example, the C2-26 fatty alcohol (PO)i-(EO)i5-40-2-hydroxyalkyl ethers, in particular also the Cs-10 fatty alcohol (PO)i-(EO)22-2-hydroxydecyl ethers.

[0189] Particularly preferred are also those end-capped poly(oxyalkylated) nonionic surfactants of the formula R 1 O[CH2CH2O]x[CH2CH(R 3 )O] y CH2CH(OH)R 2 , in the R 1 and R 2 independently of one another represents a linear or branched, saturated or mono- or polyunsaturated hydrocarbon radical having 2 to 26 carbon atoms, R 3is independently selected from -CH3, -CH2CH3, -CH2CH2-CH 3, -CH(CH3)2, but preferably represents -CHs, and x and y independently represent values ​​between 1 and 32, wherein nonionic surfactants with R 3 = -CHsand values ​​for x from 15 to 32 and y from 0.5 to 1.5 are particularly preferred.

[0190] Other preferred nonionic surfactants are the end-capped poly(oxyalkylated) nonionic surfactants of the formula R 1 O[CH2CH(R 3 )O]x[CH2]kCH(OH)[CH2]jOR 2 , in the R 1 and R 2 represent linear or branched, saturated or unsaturated, aliphatic or aromatic hydrocarbon radicals having 1 to 30 carbon atoms, R 3 represents H or a methyl, ethyl, n-propyl, isopropyl, n-butyl, 2-butyl or 2-methyl-2-butyl radical, x represents values ​​between 1 and 30, k and j represent values ​​between 1 and 12, preferably between 1 and 5. If the value x > 2, each R 3in the formula R above 1 O[CH2CH(R 3 )O]x[CH2]kCH(OH)[CH2]jOR 2 be different. R 1 and R 2 are preferably linear or branched, saturated or unsaturated, aliphatic or aromatic hydrocarbon radicals having 6 to 22 carbon atoms, with radicals having 8 to 18 carbon atoms being particularly preferred. For the radical R 3 H, -CH3, or -CFhCHs are particularly preferred. Particularly preferred values ​​for x are in the range from 1 to 20, in particular from 6 to 15.

[0191] As described above, each R 3 in the formula above can be different if x > 2. This allows the alkylene oxide unit in the square brackets to be varied. For example, if x is 3, the radical R 3 selected to produce ethylene oxide (R 3 = H) or propylene oxide (R 3= CH3) to form units that can be joined together in any order, for example (EO)(PO)(EO), (EO)(EO)(PO), (EO)(EO)(EO), (PO)(EO)(PO), (PO)(PO)(EO) and (PO)(PO)(PO). The value 3 for x has been chosen as an example and can certainly be larger, whereby the range of variation increases with increasing x values ​​and includes, for example, a large number of (EO) groups combined with a small number of (PO) groups, or vice versa.

[0192] Particularly preferred end-capped poly(oxyalkylated) alcohols of the above formula have values ​​of k = 1 and j = 1, so that the above formula R 1 O[CH2CH(R 3 )O]xCH2CH(OH)CH2OR 2 simplified. In the latter formula, R 1 , R 2 and R 3 as defined above and x represents numbers from 1 to 30, preferably from 1 to 20 and in particular from 6 to 18. Particularly preferred surfactants are those in which the radicals R1 and R 2 have 9 to 14 C atoms, R 3 stands for H and x takes on values ​​from 6 to 15. Finally, the non-ionic surfactants of the general formula R 1 - CH(OH)CH2O-(AO)WR 2 proven in the

[0193] - R 1 represents a straight-chain or branched, saturated or mono- or polyunsaturated C 6-24 alkyl or alkenyl radical;

[0194] - R 2 represents a linear or branched hydrocarbon radical having 2 to 26 carbon atoms;

[0195] - A represents a radical from the group CH2CH2, CH2CH2CH2, CH2CH(CH3), preferably CH2CH2, and

[0196] - w stands for values ​​between 1 and 120, preferably 10 to 80, in particular 20 to 40.

[0197] The group of these non-ionic surfactants includes, for example, the C4-22 fatty alcohol (EO)io-8o-2-hydroxyalkyl ethers, in particular the C8-12 fatty alcohol (EO)22-2-hydroxydecyl ethers and the C4-22 fatty alcohol (EO)40-80-2-hydroxyalkyl ethers.

[0198] Preferably, the at least one first and / or the at least one gel phase contains at least one non-ionic surfactant, preferably a non-ionic surfactant from the group of hydroxy mixed ethers, wherein the weight fraction of the non-ionic surfactant in the total weight of the gel phase is preferably 0.5 wt.% to 30 wt.%, preferably 5 wt.% to 25 wt.% and in particular 10 wt.% to 20 wt.%.

[0199] In a further preferred embodiment, the nonionic surfactant of the first and / or gel phase is selected from nonionic surfactants of the general formula R 1 -O(CH2CH2O)xCR 3 R 4 (OCH2CH2)yO-R 2 , in the R 1 and R 2independently of one another represent an alkyl radical or alkenyl radical having 4 to 22 carbon atoms; R 3 and R 4 independently of one another represent H or an alkyl radical or alkenyl radical having 1 to 18 carbon atoms and x and y independently of one another represent values ​​between 1 and 40.

[0200] In particular, compounds of the general formula R 1 -O(CH2CH2O)xCR 3 R 4 (OCH2CH2)yO-R 2 , in the R 3 and R 4 stands for H and the indices x and y independently take values ​​from 1 to 40, preferably from 1 to 15.

[0201] Particularly preferred are compounds of the general formula R 1 -O(CH2CH2O)xCR 3 R 4 (OCH2CH2)yO-R 2 , in which the residues R 1 and R 2independently of one another represent saturated alkyl radicals having 4 to 14 carbon atoms and the indices x and y independently of one another assume values ​​from 1 to 15 and in particular from 1 to 12.

[0202] Also preferred are compounds of the general formula R 1 -O(CH2CH2O)xCR 3 R 4 (OCH2CH2)yO-R 2 , in which one of the residues R 1 and R 2 is branched. Compounds of the general formula R 1 -O(CH2CH2O)xCR 3 R 4 (OCH2CH2) y OR 2 , in which the indices x and y independently take values ​​from 8 to 12.

[0203] The stated carbon chain lengths and degrees of ethoxylation or alkoxylation of the nonionic surfactants represent statistical averages, which can be whole or fractional numbers for a specific product. Due to the manufacturing processes, commercial products of the formulas mentioned usually do not consist of a single representative, but of mixtures, which can result in averages and, consequently, fractional numbers for both the carbon chain lengths and the degrees of ethoxylation or alkoxylation.

[0204] Of course, the aforementioned non-ionic surfactants (niosurfactants) can be used not only as individual substances, but also as surfactant mixtures of two, three, four or more surfactants.

[0205] Particularly preferred are nonionic surfactants having a melting point above room temperature. Nonionic surfactant(s) having a melting point above 20°C, preferably above 25°C, particularly preferably between 25 and 60°C, and especially between 26.6 and 43.3°C, are particularly preferred.

[0206] Suitable nonionic surfactants that have melting or softening points in the specified temperature range include, for example, low-foaming nonionic surfactants that can be solid or highly viscous at room temperature. If nonionic surfactants that are highly viscous at room temperature are used, it is preferred that they have a viscosity above 20 Pa s, preferably above 35 Pa s, and especially above 40 Pa s. Nonionic surfactants that have a waxy consistency at room temperature are also preferred.

[0207] The nonionic surfactant, which is solid at room temperature, preferably contains propylene oxide units (PO) in the molecule. Such PO units preferably make up to 25% by weight, more preferably up to 20% by weight, and in particular up to 15% by weight of the total molar mass of the nonionic surfactant. Particularly preferred nonionic surfactants are ethoxylated monohydroxyalkanols or alkylphenols, which additionally contain polyoxyethylene-polyoxypropylene block copolymer units. The alcohol or alkylphenol moiety of such nonionic surfactant molecules preferably makes up more than 30% by weight, more preferably more than 50% by weight, and in particular more than 70% by weight of the total molar mass of such nonionic surfactants. Preferred agents are characterized by containing ethoxylated and propoxylated nonionic surfactants in which the propylene oxide units in the molecule make up to 25% by weight, preferably up to 20% by weight, and in particular up to 15% by weight of the total molar mass of the nonionic surfactant.

[0208] Other particularly preferred nonionic surfactants with melting points above room temperature contain 40 to 70% of a polyoxypropylene / polyoxyethylene / polyoxypropylene block polymer blend containing 75% by weight of a reverse block copolymer of polyoxyethylene and polyoxypropylene with 17 moles of ethylene oxide and 44 moles of propylene oxide and 25% by weight of a block copolymer of polyoxyethylene and polyoxypropylene, initiated with trimethylolpropane and containing 24 moles of ethylene oxide and 99 moles of propylene oxide per mole of trimethylolpropane.

[0209] In a preferred embodiment, the weight proportion of the non-ionic surfactant in the total weight of the single portion of cleaning agent is from 0.1 to 20 wt.%, particularly preferably from 0.5 to 15 wt.%, in particular from 1.5 to 10 wt.%.

[0210] All anionic surface-active substances are suitable as anionic surfactants in dishwashing detergents. These are characterized by a water-solubilizing anionic group, such as a carboxylate, sulfate, sulfonate, or phosphate group, and a lipophilic alkyl group with approximately 8 to 30 carbon atoms. The molecule may also contain glycol or polyglycol ether groups, ester, ether, and amide groups, as well as hydroxyl groups. Suitable anionic surfactants are preferably in the form of sodium, potassium, and ammonium salts, as well as mono-, di-, and trialkanolammonium salts with 2 to 4 carbon atoms in the alkanol group. Zinc, manganese(II), magnesium, calcium, or mixtures thereof can also serve as counterions.

[0211] Preferred anionic surfactants are alkyl sulfates, alkyl polyglycol ether sulfates and ether carboxylic acids with 10 to 18 C atoms in the alkyl group and up to 12 glycol ether groups in the molecule.

[0212] Instead of the aforementioned surfactants, or in combination with them, cationic and / or amphoteric surfactants, such as betaines or quaternary ammonium compounds, can also be used. However, it is preferable that cationic and / or amphoteric surfactants are not used.

[0213] Preferred cleaning agents according to the invention are further characterized in that they contain less than 5.0% by weight of anionic surfactant in the at least one powder phase, the at least one shaped body and / or the at least one gel phase, in particular in the powder phase, very particularly preferably in the entire cleaning agent, since the addition of anionic surfactants has proven to be disadvantageous with regard to the phase properties, in particular their hardness, friability (abrasion behavior) and post-curing behavior. Substances that also serve as ingredients of cosmetic agents are referred to below, where appropriate, according to the International Nomenclature Cosmetic Ingredient (INCI) nomenclature. Chemical compounds bear an INCI name in English. The INCI name can be found in the "International Cosmetic Ingredient Dictionary and Handbook, 7th Edition (1997)" published by The Cosmetic, Toiletry and Fragrance Association (CTFA), Washington, DC(USA). The CAS designation means that the following sequence of numbers is a designation of the Chemical Abstracts Service.

[0214] The cleaning agents according to the invention contain the ingredients known to those skilled in the art, in particular those for automatic dishwashing detergents, such as builders, bleaching agents, bleach activators, bleach catalysts, enzymes, in particular proteases and / or amylases, and dispersing polymers. In addition, pH adjusters, glass corrosion inhibitors, other solvents, thickeners, sequestering agents, electrolytes, corrosion inhibitors, in particular silver protectants, glass corrosion inhibitors, foam inhibitors, dyes, fragrances (in particular in the powder), additives to improve drainage and drying properties, preservatives, and antimicrobial agents (disinfectants) may be present in amounts typically not exceeding 5% by weight.

[0215] The cleaning agent according to the invention comprises at least one powder and at least one gel phase. The cleaning agent may comprise one, two, three, or more mutually different powders present as separate phases; likewise, it may comprise one, two, three, or more mutually separate gel phases that are identical or distinguishable in terms of color, shape, and / or chemical composition. The cleaning agent particularly preferably comprises a shaped body, a powder, and at least two gel phases. Furthermore, an embodiment in which the single-dose cleaning agent comprises a powder, a shaped body, and three or four gel phases is preferred.

[0216] According to the invention, the at least one powder and the at least one gel phase border on one another over their full or partial area. It is preferred that the two phases border one another directly. If the at least one powder and the at least one gel phase border one another directly over their full or partial area, stability is important in addition to the shortest possible setting time of the at least one gel phase. Stability here means that components contained in the gel phase do not migrate into the at least one powder, but that even after prolonged storage the powder and the at least one gel phase remain optically separate from one another and do not interact with one another, such as e.g. diffusion of liquid components from one phase to the other or reaction of components of one phase with those in the other phase.Surprisingly, it has been shown that this can be achieved by a gel phase comprising glycerol, at least one C3- to C8-alkanediol, or glycerol, PVOH, and at least one C3- to C8-alkanediol. In a particularly preferred embodiment, the single-dose cleaning agent according to the invention in the receiving chamber, comprising the cleaning agent composition according to the invention, comprising at least one powder, at least one shaped body other than the powder, and at least one gel phase, does not comprise any phases that are liquid at 20°C, 1 bar. The phases present (powder, shaped body, and gel phase(s)) are solid at 20°C, 1 bar, in order to avoid mixing and / or dissolution of individual active ingredients and / or phases and to allow the advantages realized by the present invention to arise. If liquid phases are actually desired, they must be accommodated in other chambers of the single-dose cleaning agent.

[0217] The present application further provides a method for cleaning hard surfaces, in particular tableware, in which the surface is treated in a conventional manner using a cleaning agent according to the invention. In particular, the surface is brought into contact with the cleaning agent according to the invention. Cleaning is carried out in particular using a cleaning machine, preferably a dishwasher.

[0218] A further object of the present invention is also the use of a cleaning agent for cleaning hard surfaces, in particular dishes, in particular in automatic dishwashers.

[0219] In a preferred embodiment, the present application relates to automatic dishwashing detergents. According to this application, automatic dishwashing detergents are defined as compositions that can be used to clean soiled dishes in an automatic dishwashing process. The automatic dishwashing detergents according to the invention thus differ, for example, from automatic rinse aids, which are always used in combination with automatic dishwashing detergents and do not exhibit any cleaning action of their own.

[0220] This application further relates to a process for producing a previously described single-dose cleaning agent according to the invention, comprising the successive steps of i) providing a water-soluble receiving chamber; ii) introducing at least one gel phase into the receiving chamber; iii) filling the receiving chamber with at least one powder; iv) applying a shaped body to the powder; v) closing the filled receiving chamber with a water-soluble closure element. A number of different processes are suitable for producing the water-soluble receiving chamber, including casting or compacting water-soluble, optionally washing- or cleaning-active substances or substance mixtures. However, due to the high process efficiency, injection molding of water-soluble material and, in particular, deep-drawing water-soluble films are preferred for providing the water-soluble receiving chamber.

[0221] The water-soluble material or film forming the receiving chamber can comprise one or more structurally different water-soluble polymers. Particularly suitable water-soluble polymers are water-soluble polymers from the group of (optionally acetalized) polyvinyl alcohols (PVOH) and their copolymers.

[0222] Water-soluble films for the production of water-soluble packaging are preferably based on a polyvinyl alcohol or a polyvinyl alcohol copolymer whose molecular weight is in the range of 10,000 to 1,000,000 gmol -1 , preferably from 20,000 to 500,000 gmol -1 , particularly preferably from 30,000 to 100,000 gmol -1 and especially from 40,000 to 80,000 gmol -1 lies.

[0223] The production of polyvinyl alcohol and polyvinyl alcohol copolymers generally involves the hydrolysis of intermediate polyvinyl acetate. Preferred polyvinyl alcohols and polyvinyl alcohol copolymers have a degree of hydrolysis of 70 to 100 mol%, preferably 80 to 90 mol%, particularly preferably 81 to 89 mol%, and especially 82 to 88 mol%.

[0224] Preferred polyvinyl alcohol copolymers comprise, in addition to vinyl alcohol, an ethylenically unsaturated carboxylic acid, its salt, or its ester. Particularly preferably, such polyvinyl alcohol copolymers contain, in addition to vinyl alcohol, sulfonic acids such as 2-acrylamido-2-methyl-1-propanesulfonic acid (AMPS), acrylic acid, methacrylic acid, acrylic acid esters, methacrylic acid esters, or mixtures thereof; among the esters, C 1-4 alkyl esters or hydroxyalkyl esters are preferred. Other suitable monomers include ethylenically unsaturated dicarboxylic acids, for example, itaconic acid, maleic acid, fumaric acid, and mixtures thereof.

[0225] Suitable water-soluble films for use in the water-soluble packaging according to the invention are films sold by MonoSol LLC, for example, under the designation M8630, M8720, M8310, C8400, or M8900. Other suitable films include films named Solublon® PT, Solublon® GA, Solublon® KC, or Solublon® KL from Aicello Chemical Europe GmbH, or the VF-HP film from Kuraray, as well as the Hi-Selon series from Mitsubishi Chemical Corporation. The water-soluble films can contain additional active ingredients or fillers, as well as plasticizers and / or solvents, especially water, as additional ingredients.

[0226] The group of other active ingredients includes, for example, materials that protect the detergent ingredients enclosed in the film material from decomposition or deactivation by light exposure. Antioxidants, UV absorbers, and fluorescent dyes have proven particularly suitable for this purpose.

[0227] Plasticizers that can be used include, for example, glycerin, ethylene glycol, diethylene glycol, propanediol, 2-methyl-1,3-propanediol, sorbitol or mixtures thereof.

[0228] To reduce its friction coefficient, the surface of the water-soluble film of the detergent dispenser can optionally be dusted with fine powder. Sodium aluminosilicate, silicon dioxide, talc, and amylose are examples of suitable powdering agents.

[0229] The single-dose cleaning agents according to the invention comprise at least one powder and at least one shaped body different from the powder. In a preferred embodiment, the powder and shaped body are supplemented by at least one gel phase. As described above, the gel phase is different from the powder and the shaped body.

[0230] The gel phase is preferably introduced into the receiving chamber before the powder. The number of gel phases introduced into the receiving chamber can vary. For example, in step ii) of the process, only a single gel phase can be introduced into the receiving chamber. Alternatively, and to increase the degrees of formulation freedom and improve product appearance, two gel phases, three gel phases, or four gel phases can be introduced into the receiving chamber in step ii). The two, three, four, or more gel phases preferably differ in their composition and, for example, comprise different active ingredients, have different active ingredient contents, or different colors.

[0231] If more than one gel phase, for example, two, three, or four gel phases, are introduced into the receiving chamber in step ii), these two, three, or four gel phases are preferably introduced into the receiving chamber in such a way that they are not in direct contact with each other. This procedure avoids undesirable reactions between individual active ingredients contained in the different gel phases and improves the product's appearance.

[0232] In step iii) of the method, at least one powder is introduced into the receiving chamber. If one or more gel phases were introduced into the receiving chamber in the previous step, the powder is preferably introduced into the receiving chamber in step iii) such that the surface of the gel phase(s) facing the opening of the receiving chamber is completely covered with powder.

[0233] For the efficient filling of the receiving chambers with the powder, it has proven advantageous if the powder has a flowability of greater than 40%, preferably greater than 50%, in particular greater than 60%, based on the standard.

[0234] The flowability of the powder refers to its ability to flow freely under its own weight. The flowability is determined by measuring the flow time of 1000 ml of cleaning agent powder from a standardised trickle test funnel that is initially closed at the outlet direction and has an outlet of 16.5 mm in diameter. The time required for the granular mixture, in particular the powdery phase, preferably the powder and / or granules, e.g. the powder, to flow completely out after the outlet has been opened is measured and compared with the flow rate (in seconds) of a standard test sand, the flow rate of which is defined as 100%. The defined sand mixture for calibrating the trickle apparatus is dry sea sand. Sea sand with a particle diameter of 0.4 to 0.8 mm is used; this is available, for example, from Carl Roth, Germany CAS No.[14808-60-7], For drying, the sea sand is dried for 24 h at 60 °C in a drying cabinet on a plate with a maximum layer height of 2 cm before measurement.

[0235] Preferred embodiments of the powders according to the invention have an angle of repose / angle of repose of 26 to 35, of 27 to 34, of 28 to 33, wherein the angle of repose is determined according to the method mentioned below 24 hours after the preparation of the granular mixture of the solid composition, in particular the powdered solid phase, preferably the powder and / or granules, and storage at 20°C. Such angles of repose have the advantage that the filling of the cavities with the at least one solid phase can be carried out comparatively quickly and precisely.

[0236] To determine the angle of repose (also called the angle of repose) of the powder, a powder funnel with a 400 ml capacity and a 25 mm diameter outlet is suspended vertically on a stand. The funnel is raised using a manually operated knurled wheel at a speed of 80 mm / min, so that the granular mixture, particularly the powdery phase, preferably the powder and / or granules, trickles out. This forms a so-called cone of repose. The height and diameter of the cone of repose are determined for each particulate phase. The angle of repose is calculated from the quotient of the height and diameter of the cone of repose multiplied by 100.Particularly suitable are powders which have a flowability in % of the above-specified standard test substance of greater than 40%, preferably greater than 50%, in particular greater than 55%, particularly preferably greater than 60%, particularly preferably between 63% and 80%, for example between 65% and 75%. Particularly suitable are granular mixtures of a solid composition, in particular powders and / or granules which have a flowability in % of the above-specified standard test substance of greater than 40%, preferably greater than 45%, in particular greater than 50%, particularly preferably greater than 55%, particularly preferably greater than 60%, wherein the flowability measurement is carried out 24 hours after the powder has been produced and stored at 20°C.

[0237] Lower flowability values ​​are not particularly suitable because, from a process engineering perspective, precise dosing of the powder is necessary. In particular, values ​​greater than 50%, in particular greater than 55%, preferably greater than 60% (where the flowability measurement is carried out 24 hours after the powder has been produced and stored at 20 °C) have proven to be advantageous because the good dosability of the granular mixtures, in particular the powdered phases, preferably the powder and / or granules, e.g. powder, results in only slight fluctuations in the dosed amount or composition. The more precise dosing leads to consistent product performance and economic losses due to overdosing are thus avoided. Furthermore, it is advantageous that the granular mixtures, in particular the powdered phase, preferably the powder and / or granules, e.g. the powder, are easy to dose, thus speeding up the dosing process.Furthermore, such good flowability helps prevent the powder from getting onto the part of the water-soluble coating that is necessary for producing the sealed seam.

[0238] Following step iii), the filling level of the receiving chamber is preferably above 60 vol.%, in particular above 70 vol.%.

[0239] In step iv), which follows step iii), the shaped body is applied to the powder. This is preferably done such that the surface of the powder facing the opening of the receiving chamber is covered by the shaped body to more than 75%, preferably more than 75%, more preferably more than 75%, in particular more than 80%, and most preferably more than 85%.

[0240] The application in step iv) can be achieved by applying preformed moldings or by applying them in situ by solidifying a flowable melt or a flowable gel. The molding applied to the powder in step iv) is preferably preformed, i.e., it is not obtained in situ in step iv) by solidifying a flowable melt or a flowable gel.

[0241] The three-dimensional shape of the molded body is generally freely selectable; its side surfaces can be convex, concave, or flat, for example. However, certain three-dimensional configurations have proven particularly advantageous in terms of manufacturability and processing of the molded bodies.

[0242] The shaped bodies used in step iv) preferably have a flat underside whose largest diagonal is greater than the height of the shaped body, wherein the shaped body is applied to the surface of the powder with the flat underside. Corresponding shaped bodies are not only easy to produce, for example by means of casting or tabletting, they can also be easily applied to the powder by machine. It is preferred if the shaped body in step iv) has a flat underside whose largest diagonal is more than 1.5 times, preferably more than 2 times, the height of the shaped body, wherein the shaped body is applied to the surface of the powder with the flat underside.

[0243] For manufacturability, for example, with regard to demolding the molded body from a casting mold, it has proven advantageous if the underside of the gel body has no corners. Preferred gel bodies are therefore characterized by oval undersides or, alternatively, by ellipsoidal or round, preferably round, undersides. Corresponding molded bodies with a non-square underside are also preferred by many consumers due to their appearance. Therefore, for example, those molded bodies that have a bottom and a top side connected by a cylindrical outer surface are preferred.

[0244] In preferred process variants, the shaped body in step iv) has an oval underside and the shaped body is applied with the flat underside to the surface of the powder, or the shaped body in step iv) has an ellipsoidal or round, preferably a round underside and the shaped body is applied with the round underside to the surface of the powder.

[0245] Advantages in terms of space utilization during production and packaging can be realized by using angular shaped bodies. If, for example, the shaped bodies are cast in the form of sheets which are subsequently cut into shaped bodies, angular undersides are advantageous because such shaped bodies can be cut without generating any residue. In an alternative embodiment of the process, the shaped bodies used in step iv) therefore have angular undersides, in particular triangular, square, or hexagonal undersides, and are applied to the surface of the powder with these undersides. For further processing or packaging, it can be advantageous if the shaped body has a angular underside with rounded corners.

[0246] With regard to the production, packaging and use of the detergent portion units, it has also proven advantageous if the shaped body applied to the powder with its underside in step iv) has an upper side that is plane-parallel to the underside.

[0247] In a first preferred geometric embodiment, the shaped body has a bottom side and a top side which have the same geometric shape, wherein the bottom side and the top side have the same surface area. Corresponding shaped bodies can, as already described above, be produced in a simple manner, for example by casting sheets and subsequently cutting the sheets into individual gel bodies. These shaped bodies can also be spatially aligned more easily by laying them out when applied, preferably laid, onto the powder in step iv) than shaped bodies with a lower body symmetry. This applies in particular to shaped bodies which simultaneously have a top side that is plane-parallel to the bottom side. Examples of such shaped bodies are circular cylinders, elliptical cylinders, parallelepipeds, rhombohedrons, straight or oblique prisms, cuboids or cubes.The group of circular and elliptical cylinders includes vertical circular and elliptical cylinders, as well as oblique circular and elliptical cylinders. Due to their ease of manufacture by singulating from a single sheet, molded bodies in the form of vertical circular cylinders, vertical elliptical cylinders, right prisms, right cuboids, or cubes are preferred.

[0248] In an alternative embodiment, the molded body has a bottom and a top side that have the same geometric shape, with the bottom and top sides having different surface areas. Such molded bodies may be preferred due to their attractive appearance or optimized fit, coupled with comparatively simple manufacturing. Examples of such molded bodies are circular cylinders or elliptical cylinders with a convex or concave bottom side and a flat top side, or with a flat bottom side and a convex or concave top side. Further examples are truncated cones or truncated pyramids.

[0249] To achieve the reduced contact area between the powder and the inside of the closure element, which is characteristic of the subject matter of the application, it is preferable, in step iv), to place a shaped body onto the powder, the underside of which has an outline that replicates the opening area of ​​the receiving chamber, and to apply the shaped body with its underside to the surface of the powder. A replica is defined as a two-dimensional shape, in this case the outline of the underside of the shaped body, which resembles the two-dimensional shape of another surface, in this case the outline of the opening area of ​​the receiving chamber, for example, with regard to the number of corners present, the ratio of the side lengths, or the radii of curvature of the sides or corners.

[0250] If, in step iv), a shaped body is applied to the powder, the underside of which has an outline that replicates the outline of the opening area of ​​the receiving chamber, this shaped body generally has an outline area for its underside that is smaller than the outline area of ​​the receiving chamber opening. In preferred process variants, the shaped body in step iv) therefore has an underside whose outline is obtained from the outline of the opening area of ​​the receiving chamber by reducing it by a factor of 0.75 to 0.98, wherein the shaped body is applied with its underside to the surface of the powder.

[0251] Following step iv), the filling level of the receiving chamber is preferably above 85 vol.%, in particular above 94 vol.%.

[0252] In step v), the filled water-soluble receiving chamber is preferably sealed with a water-soluble film.

[0253] If the water-soluble receiving chamber provided in step i) is obtained by deep-drawing a first water-soluble film and sealed with a second water-soluble film in step v), it is preferred for the second water-soluble film to have a smaller thickness than the first water-soluble film in order to reduce the amount of film used.

[0254] In such a case, the first water-soluble film preferably has a thickness of 60 to 2000 μm and the second water-soluble film has a thickness of 40 to 120 μm. It is particularly preferred if the second water-soluble film has a thickness of 80 μm or less, preferably 70 μm or less, in particular 65 μm or less, very particularly preferably 55 μm or less. Such small film thicknesses can be realized in the process according to the invention, despite the filling of the water-soluble receiving chamber with powder, without any loss of mechanical stability of the single-dose cleaning agent, caused for example by the sealing film being punctured by individual powder particles, even when shrinking processes are used, since the sealing film is in contact with the powder only to a very small extent due to the use of the applied molded body.

[0255] With regard to the mechanical stability of the single-dose cleaning agent while simultaneously using minimal packaging materials, it is preferred if the ratio of the thickness of the first water-soluble film to the thickness of the second water-soluble film is from 3:1 to 1:1, preferably from 2.5:1 to 1.1:1, in particular from 2:1 to 1.2:1.

[0256] To improve the product's feel and appearance, the sealed, filled receiving chamber after step v) is heated in a further step vi) for a period of 0.5 to 20 seconds to temperatures above 120°C, preferably to temperatures in the range of 140 to 220°C. The heat treatment shrinks the water-soluble packaging material used, in particular the water-soluble film. The single-dose cleaning agent gains stability, and penetration of the powder between the molded body and the inside of the closure element is prevented.

[0257] According to a particularly preferred embodiment of the invention, the shaped body in the single-dose cleaning agent described above is not in the form of a tablet. The single-dose cleaning agent particularly preferably does not comprise a tablet. Tablets are understood to be powders, granules, or substrates portioned and compressed under pressure, which are preferably produced on tablet presses. One advantage if the shaped body of the single-dose cleaning agent is not a tablet, or if the single-dose cleaning agent does not comprise a tablet, is that the good solubility of the resulting single-dose cleaning agent is ensured. Tablets as shaped bodies are more difficult to dissolve under pressure than powders, granules, or gels due to the compaction under pressure, especially when the ingredients are the same.

[0258] In summary, this application provides, among other things, the following items:

[0259] 1. A single-dose cleaning agent comprising a) a water-soluble package comprising a1) at least one water-soluble receiving chamber a2) a water-soluble closure element closing this water-soluble receiving chamber b) a phosphate-free cleaning agent composition comprising b1) at least one gel phase b2) at least one powder b3) at least one shaped body different from the powder, wherein the shaped body comprises at least one aminocarboxylic acid and / or a salt thereof.

[0260] 2. Single-dose cleaning agent according to item 1, characterized in that the aminocarboxylic acid is selected from methylglycinediacetic acid and its salts, glutamediacetic acid and its salts, and ethylenediaminedisuccinic acid and its salts, particularly preferably methylglycinediacetic acid and its salts. Single-dose cleaning agent according to any one of the preceding items, characterized in that the amount of the aminocarboxylic acid or the aminocarboxylic acid salt thereof, based on the total weight of the molded body, is from 20 to 65 wt.%, preferably from 22 to 60 wt.%, particularly preferably from 26 to 55 wt.%. Single-dose cleaning agent according to one of the preceding points, characterized in that the aminocarboxylic acid or the aminocarboxylic acid salt is selected from methylglycinediacetic acids and their salts, particularly preferably the trisodium salt of methylglycinediacetic acid, and the amount thereof, based on the total weight of the shaped body, is from 20 to 65 wt.-%, preferably from 27 to 60 wt.%, particularly preferably from 30 to 55 wt. Single-dose cleaning agent according to one of the preceding points, characterized in that the aminocarboxylic acids and / or their salts are present in the shaped body with an average particle size of < 250 pm, preferably < 200 pm. Single-dose cleaning agent according to one of the preceding points, characterized in that the aminocarboxylic acids and / or their salts are present in the shaped body with an average particle size of 40 to 160 pm, preferably from 50 to 150 pm. Single-dose cleaning agent according to one of the preceding points, characterized in that the powder contains less than 10 wt.%, preferably less than 5 wt.%, in particular less than 1 wt.% of aminocarboxylic acids and / or their salts, based on the total weight of the powder.Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body comprises polyalkylene glycols, preferably polyethylene glycols. Single-dose cleaning agent according to point 8, characterized in that the shaped body comprises polyalkylene glycols, preferably polyethylene glycols, which have a melting point of 25 to 80°C, preferably 30 to 70°C, particularly preferably 45 to 65°C at atmospheric pressure. Single-dose cleaning agent according to one of the preceding points 8 or 9, characterized in that the shaped body comprises polyalkylene glycols, preferably polyethylene glycols, with an average molecular weight of 1000 to 10,000 g / mol, preferably 2000 to 8000, particularly preferably 3000 to 6000 g / mol, for example 4000 g / mol. Single-dose cleaning agent according to one of the above points 8 to 10, characterized in that the amount of polyalkylene glycols, preferably polyethylene glycols, in the shaped body is from 20 to 50 wt.-%, preferably from 22 to 40 wt.%, particularly preferably from 25 to 35 wt.%, based on the total weight of the shaped body. Single-dose cleaning agent portion according to one of the preceding points, characterized in that the shaped body contains surfactants, preferably non-ionic surfactants. Single-dose cleaning agent portion according to point 12, characterized in that the amount of surfactants, preferably non-ionic surfactants, based on the total weight of the shaped body, is from 5 to 50 wt.%, preferably from 10 to 45 wt.%, particularly preferably from 15 to 40 wt.%. Single-dose cleaning agent portion according to one of the preceding points 12 to 13, characterized in that the proportion of anionic surfactants in the shaped body and / or in the cleaning agent portion is less than 5 wt.%, particularly preferably less than 1 wt.%, in each case based on the total weight of the shaped body or the cleaning agent portion.Single-dose cleaning agent according to one of the above points 12 to 14, characterized in that the non-ionic surfactants are selected from alkoxylated, preferably ethoxylated or ethoxylated and propoxylated fatty acid alkyl esters, preferably having 1 to 4 carbon atoms in the alkyl chain, and end-capped poly(oxyalkylated) nonionic surfactants of the formula R. 1 O[CH2CH(CH3)O]x[CH2CH2O]y[CH2CH(CH3)O]zCH2CH(OH)R 2 where R 1 represents a linear or branched aliphatic hydrocarbon radical having 4 to 22 carbon atoms, R 2 denotes a linear or branched hydrocarbon radical having 2 to 26 carbon atoms, x and z are values ​​from 0 to 40 and y is a value of at least 15. Single-dose cleaning agent according to one of the above points 12 to 15, characterized in that the shaped body contains a poly(oxyalkylated) nonionic surfactant of the formula R 1 O[CH2CH2O]x[CH2CH(R 3)O]yCH2CH(OH)R 2, as at least one non-ionic surfactant and the amount of this surfactant, based on the total weight of the shaped body, is from 5 to 50 wt.%, preferably from 10 to 45 wt.%, particularly preferably from 15 to 40 wt.%. Single-dose cleaning agent according to one of the above points 12 to 16, characterized in that at least 40 wt.%, preferably at least 50 wt.%, particularly preferably at least 75 wt.%, in each case based on the total weight of the surfactants comprised in the shaped body, have a melting point above 20°C at atmospheric pressure. Single-dose cleaning agent according to one of the above points 12 to 17, characterized in that the shaped body comprises at most 15 wt.%, preferably at most 10 wt.%, particularly preferably at most 5 wt.%, based on the total weight of the shaped body, of surfactants which have a melting point below 15°C at atmospheric pressure.Single-dose cleaning agent according to one of the above points 12 to 18, characterized in that the shaped body comprises PEG, preferably with an average molecular weight of 3000 to 7000 g / mol in an amount of 20 to 50 wt.%, preferably from 22 to 40 wt.%, particularly preferably from 25 to 35 wt.% and at least one non-ionic surfactant in 5 to 50 wt.%, preferably from 10 to 45 wt.%, particularly preferably from 15 to 40 wt.%, in each case based on the total weight of the shaped body. Single-dose cleaning agent according to one of the above points 12 to 19, characterized in that the shaped body contains polyethylene glycols with an average molecular weight of 5000 to 7000 g / mol in an amount of 25 to 50 wt.%, preferably 27 to 40 wt.%, particularly preferably 29 to 36 wt.% and a non-ionic surfactant with a melting point of 25 to 40 °C as at least one non-ionic surfactant in an amount of 5 to 40 wt.-%, preferably from 10 to 30 wt.%, particularly preferably from 15 to 30 wt.%, in each case based on the total weight of the shaped body. Single-dose cleaning agent according to one of the above points 12 to 20, characterized in that the shaped body comprises polyethylene glycols with an average molecular weight of 3000 to 4500 g / mol in an amount of 25 to 50 wt.%, preferably from 27 to 40 wt.%, particularly preferably from 29 to 36 wt.% and a non-ionic surfactant with a melting point of 40 or more, preferably 43 to 65 °C as at least one non-ionic surfactant in an amount of 5 to 40 wt.%, preferably from 10 to 30 wt.%, particularly preferably from 15 to 30 wt.%, in each case based on the total weight of the shaped body.Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body comprises a bleaching catalyst, in particular selected from the group of transition metal salts and transition metal complexes, in particular complexes of manganese in the oxidation state II, III, IV or V, which particularly preferably comprise the macromolecular ligands 1,4,7-trimethyl-1,4,7-triazacyclononane (Me-TACN), 1,4,7, triazacyclononane (TACN), 1,5,9-trimethyl-1,5,9-triazacyclododecane (Me-TACD), 2-methyl-1,4,7-trimethyl-1,4,7-triazacyclononane (Me / Me TACN) and / or 2-methyl-1,4,7-triazacyclononane (Me / TACN), most preferably 1,4,7-trimethyl-1,4,7-triazacyclononane (Me-TACN) or 1,2,4,7-tetramethyl-1,4,7-triazacyclonane (Me / Me-TACN), preferably in an amount of 0.000001 to 0.5 wt.%, particularly preferably 0.00001 to 0.3 wt.%, especially preferably 0.0001 to 0.25 wt.-%, very particularly preferably from 0.001 to 0.1 wt.%, based on the total weight of the shaped body. Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body comprises a bleach activator, preferably selected from the group of multiply acylated alkylenediamines, in particular TAED, preferably in an amount of 0.1 to 10 wt.%, particularly preferably from 0.5 to 9 wt.%, especially preferably from 1.0 to 8 wt.%, based on the total weight of the shaped body. Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body comprises a silver protectant, in particular selected from cysteine ​​and cystine, in particular cysteine, preferably in an amount of 0.01 to 1.5 wt.%, particularly preferably from 0.1 to 1.0 wt.%, especially preferably from 0.15 to 0.8 wt.%, based on the total weight of the shaped body.Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body comprises builders, in particular selected from carbonates, bicarbonates, citrates and / or their salts, preferably in an amount of 0.1 to 30 wt.%, particularly preferably from 0.5 to 20 wt.%, especially preferably from 1.0 to 15 wt.%, based on the total weight of the shaped body. Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body comprises complexing agents different from aminocarboxylic acids, in particular selected from phosphonates, particularly preferably hydroxyethylene diphosphonate, preferably 0.01 to 30 wt.%, particularly preferably from 0.1 to 25 wt.%, especially preferably from 1.0 to 20 wt.%, based on the total weight of the shaped body.Single-dose cleaning agent according to one of the preceding points, characterized in that the at least one shaped body is arranged in the chamber such that it is in direct contact with the closure element and the inside of the closure element is in contact with the powder to less than 10%, preferably less than 8%, in particular less than 6%, very particularly less than 3% of its surface. Single-dose cleaning agent according to one of the preceding points, characterized in that the inside of the closure element is not in contact with the powder. Single-dose cleaning agent according to one of the preceding points, characterized in that the inside of the closure element is covered by the at least one shaped body to more than 70%, preferably more than 75%, in particular more than 80%, very particularly more than 85% of its surface.Single-dose cleaning agent according to one of the preceding points, characterized in that the side of the shaped body which is in contact with the closure element has at least 70%, preferably at least 75%, in particular at least 80%, particularly preferably more than 85% of its surface contact with the inside of the closure element. Single-dose cleaning agent according to point 31, characterized in that the side of the shaped body which is in contact with the closure element has essentially full-surface contact with the closure element. Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body has an upper side which is essentially plane-parallel to the underside. Single-dose cleaning agent according to one of the preceding points, characterized in that the closure element is a water-soluble film.Single-dose cleaning agent according to item 34, characterized in that the water-soluble film has a thickness of 80 μm or less, preferably 70 μm or less, in particular 65 μm or less, very particularly preferably 55 μm or less. Single-dose cleaning agent according to item 34 or 35, characterized in that the water-soluble film forming the closure element has a smaller thickness than the average thickness of the water-soluble receiving chamber. Single-dose cleaning agent according to one of the preceding items, characterized in that the shaped body in contact with the closure element has substantially the same height. Single-dose cleaning agent according to one of the preceding items, characterized in that the shaped body has at least one substantially flat side, preferably a substantially flat top and / or bottom.Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body which is in contact with the closure element has a height of 2.5 to 9 mm, preferably 2.75 to 6.0 mm, in particular 3.0 to 5.5 mm. Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body is essentially non-elastic. Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body has a low breaking strength under compressive load, which preferably, determined in a force-displacement arrangement with a spherical body (diameter d = 19 mm, target distance = 3 mm, test feed rate of 0.5 mm / s and a pre-test force of 5 grams), has a penetration depth of 0.1 mm to 1.0 mm, preferably of 0.15 mm to 0.8 mm, in particular of 0.2 to 0.6 mm.Single-dose cleaning agent according to one of the preceding points, characterized in that the powder has particles with a particle diameter of up to 2000 μm, in particular up to 1000 μm, and / or at least 80% of the particles have a particle diameter of 100 to 2000 μm, preferably 150 to 1500 μm. Single-dose cleaning agent according to one of the preceding points, characterized in that the total weight of the single-dose cleaning agent is from 10 g to 25 g, preferably from 12 to 22 g, particularly preferably from 13 g to 20 g. Single-dose cleaning agent according to one of the preceding points, characterized in that the total weight of the powder is from 7 g to 20 g, preferably from 8 to 15 g, particularly preferably from 10 g to 12 g. Single-dose cleaning agent according to one of the preceding points, characterized in that the total weight of a shaped body is from 4 g to 8 g, preferably from 5 to 7 g.Single-dose cleaning agent according to one of the preceding points, characterized in that the weight ratio of powder to shaped body is from 4:1 to 1:1, preferably from 3.75:1 to 1.25:1, in particular from 3.5:1 to 1.5:1, very particularly preferably from 3.25:1 to 1.75:1. Single-dose cleaning agent according to one of the preceding points, characterized in that the chamber contains exactly one phase, comprising a powder, and exactly one shaped body. Single-dose cleaning agent according to one of the preceding points, characterized in that at least one gel phase, different from the shaped body, is contained in the chamber. Single-dose cleaning agent according to point 48, characterized in that two gel phases, different from the shaped body, are contained in the chamber. Single-dose cleaning agent according to point 48, characterized in that three gel phases, different from the shaped body, are contained in the chamber.Single-dose cleaning agent according to item 48, characterized in that four gel phases, different from the shaped body, are contained in the chamber. Single-dose cleaning agent according to one of the preceding items, characterized in that the shaped body is arranged in the chamber such that it is not in direct contact with the at least one gel phase. Single-dose cleaning agent according to one of items 1 to 51, characterized in that the at least one gel phase is in contact with the shaped body. Single-dose cleaning agent according to one of the preceding items, characterized in that the at least one gel phase is a gel phase that is solid at 20°C and 1 bar. Single-dose cleaning agent according to one of the preceding items, characterized in that the at least one gel phase comprises a water-soluble polymer from the group of (optionally acetalized) polyvinyl alcohols and copolymers thereof.Single-dose cleaning agent according to point x-1, characterized in that the at least one gel phase comprises (optionally acetalized) polyvinyl alcohols and copolymers thereof in an amount of 8.5 to 25 wt. %, based on the total weight of the gel phase. Single-dose cleaning agent according to one of the preceding points, characterized in that the weight of all gel phases is between 0.1 g and 4 g, preferably between 0.4 and 3 g, particularly preferably between 0.7 and 2.5 g. Single-dose cleaning agent according to one of the preceding points, characterized in that the weight ratio of the shaped body to the gel phase(s) (sum of all gel phases) is between 8:1 and 1:2, preferably between 6:1 and 1:1, in particular between 4.5:1 and 1.5:1, very particularly preferably between 4:1 and 1.75:1.Single-dose cleaning agent according to one of the preceding points, characterized in that the weight ratio of the powder to the gel phase (sum of all gel phases) is from 20:1 to 1:1, preferably from 12:1 to 1.5:1, in particular from 10:1 to 2:1, very particularly preferably from 8:1 to 2.5:1. Single-dose cleaning agent according to one of the preceding points, characterized in that no phases contained in the chamber are liquid at 20 °C and / or the cleaning agent contains no more than 5 wt. % anionic surfactant, based on the total weight of the cleaning agent composition. Single-dose cleaning agent according to one of the preceding points, characterized in that the at least one gel phase and / or the shaped body are in contact with the powder. Single-dose cleaning agent according to one of the preceding points, characterized in that the shaped body is not a tablet.Use of a single-dose detergent portion according to one of items 1 to 61 in a machine dishwashing process. A method for producing a detergent portion unit in a water-soluble package according to one of items 1 to 61, comprising the successive steps of i) providing a water-soluble receiving chamber; ii) optionally introducing at least one gel phase into the receiving chamber; iii) filling at least one powder into the receiving chamber; iv) placing a shaped body comprising at least one aminocarboxylic acid and / or a salt thereof onto the powder; v) closing the filled receiving chamber with a water-soluble closure element. Method according to item 63, wherein the water-soluble receiving chamber is obtained by injection molding a water-soluble material. Method according to item 63, wherein the water-soluble receiving chamber is obtained by deep-drawing a water-soluble film.Method according to one of the above points 63 to 65, wherein the water-soluble receiving chamber and / or the water-soluble closure element comprises water-soluble polymer from the group of (optionally acetalized) polyvinyl alcohols (PVOH) and their copolymers. Method according to one of the above points 63 to 66, wherein in step ii) a gel phase is introduced into the receiving chamber. Method according to one of the above points 63 to 67, wherein in step ii) two gel phases are introduced into the receiving chamber. Method according to one of the above points 63 to 68, wherein in step ii) three gel phases are introduced into the receiving chamber.Method according to one of the above points 63 to 69, wherein in step ii) four gel phases are introduced into the receiving chamber. Method according to one of the above points 68 to 70, wherein the two or three or four gel phases are introduced into the receiving chamber in such a way that they are not in direct contact with one another. Method according to one of the above points 63 to 71, wherein in step iii) the powder is filled into the receiving chamber in such a way that the surface of the gel phase(s) facing the opening of the receiving chamber is completely covered with powder. Method according to one of the above points 63 to 72, wherein the powder has a flowability of greater than 40%, preferably greater than 50%, in particular greater than 60% based on the standard. Method according to one of the above points 63 to 73, wherein the receiving chamber following step iii) has a filling level above 60% by volume, preferably above 70% by volume.Method according to one of the above points 63 to 74, wherein the shaped body is placed on the powder in step iv) such that the surface of the powder facing the opening of the receiving chamber is covered by the shaped body to more than 75%, preferably to more than 75%, more preferably to more than 75%, in particular to more than 80%, and very particularly preferably to more than 85%. Method according to one of the above points 62 to 75, wherein the shaped body is preformed in step iv) (and / or is not produced in situ by the introduction of a flowable component). Method according to one of the above points 63 to 76, wherein the shaped body in step iv) has a flat underside whose largest diagonal is greater than the height of the shaped body, and the shaped body is placed with the flat underside on the surface of the powder.Process according to one of the above points 63 to 77, wherein the shaped body in step iv) has a flat underside whose largest diagonal is more than 1.5 times, preferably more than 2 times the height of the shaped body, and the shaped body is placed with the flat underside on the surface of the powder. Process according to one of the above points 63 to 78, wherein the shaped body in step iv) has an oval underside, and the shaped body is placed with the flat underside on the surface of the powder. Process according to one of the above points 63 to 79, wherein the shaped body in step iv) has an ellipsoidal or round, preferably a round underside, and the shaped body is placed with the round underside on the surface of the powder.Method according to one of the above points 63 to 78, wherein the shaped body in step iv) has a square underside, preferably a square underside with rounded corners, and the shaped body is placed with the square, preferably square underside with rounded corners, on the surface of the powder. Method according to one of the above points 63 to 78, wherein the shaped body in step iv) has a triangular, square, or hexagonal underside, and the shaped body is placed with the triangular, square, or hexagonal underside on the surface of the powder. Method according to one of the above points 63 to 82, wherein the shaped body in step iv) has an upper side that is plane-parallel to the underside, and the underside is placed on the surface of the powder.Method according to one of the above points 63 to 83, wherein the shaped body in step iv) has a bottom side and a top side which are connected to one another by a cylindrical outer surface, and the shaped body is placed with the bottom side on the surface of the powder. Method according to one of the above points 63 to 84, wherein the shaped body in step iv) has a bottom side whose outline is modeled on the opening area of ​​the receiving chamber, and the shaped body is placed with the bottom side on the surface of the powder. Method according to one of the above points 63 to 85, wherein the shaped body in step iv) has a bottom side whose outline is obtained from the outline of the opening area of ​​the receiving chamber by reducing the size by a factor of 0.75 to 0.98, and the shaped body is placed with the bottom side on the surface of the powder.Method according to one of the above points 63 to 86, wherein the receiving chamber following step iv) has a filling level above 85 vol.%, preferably above 94 vol.%. Method according to one of the above points 63 to 87, wherein the water-soluble receiving chamber is sealed with a water-soluble film in step v). Method according to one of the above points 63 to 88, wherein the water-soluble receiving chamber is obtained by deep-drawing a first water-soluble film and is sealed with a second water-soluble film in step v), and the second water-soluble film has a smaller thickness than the first water-soluble film. Method according to one of the above points 63 to 89, wherein the first water-soluble film has a thickness of 60 to 200 μm and the second water-soluble film has a thickness of 40 to 120 μm.Method according to item 90, wherein the second water-soluble film has a thickness of 80 pm or less, preferably of 70 pm or less, in particular of 65 pm or less, very particularly preferably of 55 pm or less. Method according to item 90 or 91, wherein the ratio of the thickness of the first water-soluble film to the thickness of the second water-soluble film is from 3:1 to 1:1, preferably from 2.5:1 to 1.1:1, in particular from 2:1 to 1.2:1. Method according to one of the above items 88 to 92, wherein the sealed filled receiving chamber after step v) is heated in a further step vi) for a period of time of 0.5 to 20 seconds to temperatures above 120°C, preferably to temperatures in the range from 140 to 220°C. Examples:.

[0261] From the molding compounds according to Table 1, molded bodies with a weight of 6 g, a thickness of 3.5 mm and the size of 45x 36 mm, with corner radius Ri=10 and corner radius R2=5 were produced by pouring the compound into a corresponding mold.

[0262] Table"! : Castable molding compounds (data in wt.% active substance)

Claims

Patent claims:

1. A single-dose cleaning agent comprising a) a water-soluble package comprising a1) at least one water-soluble receiving chamber a2) a water-soluble closure element closing this water-soluble receiving chamber b) a phosphate-free cleaning agent composition comprising b1) at least one gel phase b2) at least one powder b3) at least one shaped body different from the powder, wherein the shaped body comprises at least one aminocarboxylic acid and / or a salt thereof.

2. Single-dose cleaning agent according to claim 1, characterized in that the aminocarboxylic acid or a salt thereof is selected from methylglycinediacetic acid and its salts, glutaminediacetic acid and its salts and ethylenediaminedisuccinic acid and its salts, particularly preferably methylglycinediacetic acid and its salts.

3. Single-dose cleaning agent according to one of the preceding claims, characterized in that the amount of the aminocarboxylic acid or the aminocarboxylic acid salt thereof, based on the total weight of the shaped body, is from 20 to 65% by weight, preferably from 22 to 60% by weight, particularly preferably from 26 to 55% by weight.

4. Single-dose cleaning agent according to one of the preceding claims, characterized in that the shaped body comprises polyalkylene glycols, preferably polyethylene glycols, which have a melting point of 25 to 80 °C, preferably from 30 to 70 °C, particularly preferably from 45 to 65 °C at atmospheric pressure, and / or the amount of polyalkylene glycols, preferably polyethylene glycols, in the shaped body is from 20 to 50% by weight, preferably from 22 to 40% by weight, particularly preferably from 25 to 35% by weight, based on the total weight of the shaped body.

5. Single-dose cleaning agent according to one of the preceding claims, characterized in that the shaped body contains surfactants, preferably non-ionic surfactants, preferably in an amount, based on the total weight of the shaped body, of 5 to 50 wt.%, preferably of 10 to 45 wt.%, particularly preferably of 15 to 40 wt.%.

6. Single-dose cleaning agent according to one of the preceding claims, characterized in that at least 40% by weight, preferably at least 50% by weight, particularly preferably at least 75% by weight, in each case based on the total weight the surfactants contained in the molded body have a melting point above 20 °C at normal pressure.

7. Single-dose cleaning agent according to one of the preceding claims, characterized in that the total weight of the powder is from 7 g to 20 g, preferably from 8 to 15 g, particularly preferably from 10 g to 12 g and / or the total weight of the shaped body is from 4 g to 8 g, preferably from 5 to 7 g.

8. Single-dose cleaning agent according to one of the preceding claims, characterized in that no phases contained in the chamber are liquid at 20 °C and / or the cleaning agent contains no more than 5% by weight of anionic surfactant, based on the total weight of the cleaning agent composition.

9. Single-dose cleaning agent according to one of the preceding claims, characterized in that the shaped body is arranged in the chamber such that it is not in direct contact with the at least one gel phase.

10. Use of a single-dose detergent according to any one of claims 1 to 9 in a machine dishwashing process.

Citation Information

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