Self-heating and / or -cooling thermal layer and a product containing such a layer
Patent Information
- Application Number
- EP2024713556
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-03-13
- Filing Date
- 2024-03-13
- Publication Date
- 2026-01-21
AI Technical Summary
Current thermal products, such as self-heating and cooling blankets, suffer from non-uniform heat distribution due to thermally active materials being contained in separate pockets, leading to localized hotspots and limited reusability, with existing solutions being single-use and lacking continuous, homogeneous dispersion of thermally active ingredients.
A continuous exothermic or endothermic film or layer with thermally active materials evenly and continuously dispersed within a medium, utilizing a coupling agent or dispersant to prevent agglomeration and ensure uniform distribution, along with optional catalysts and moisture-containing materials for controlled reactions.
The solution achieves uniform heating or cooling effects across the product surface, enabling reusability and improved thermal performance by ensuring all reacting components are in a single continuous layer, preventing hotspots and allowing controlled initiation and cessation of thermal reactions.
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Figure FI2024050111_19092024_PF_FP_ABST
Abstract
Description
[0001] Self-heating and / or -cooling thermal layer and a product containing such a layer
[0002] FIELD OF THE INVENTION
[0003] The present invention relates to thermal products. Specifically, the invention provides an exothermic or endothermic film or layer, which can be used in a variety of applications and products.
[0004] BACKGROUND OF THE INVENTION
[0005] There are situations where living objects or materials such as liquids and gases must be heated or cooled without external energy supply. Thermal protective covers for instance can be a matter of life and death under extreme hypothermic conditions. These products provide a protective cover for the user, or they are used as survival items for healthcare and military use, respectively. Today, commercially available thermal protective blankets consist of metalized plastic foil. For example, in the patent publication US 6,007,245 A infrared-reflecting materials are utilized including an insulative polymer and a metalized coating. The thermal insulating materials prevent radiative heat loss thereby helping to maintain the body temperature. There are also self-heating thermal products on the market. These include small warmers for hands and shoulders, medical blankets for post-operation use, survival kit covers, infant warming cocoons etc. The warming effect stems from an exothermic chemical reaction taking place within the product. The thermally active material is typically iron powder that oxidizes and liberates heat.
[0006] One example of cooling products are cold bags which can be used to prevent sport injuries. On the other hand, because of global warming in some parts of world people are suffering from hot climate and cooling blankets can save lives in the future. Commercially available cooling products are based on dissolution of salt which is an endothermic process.
[0007] In present-day products, the thermally active (exothermic or endothermic) material is contained in individual small pockets and activated when the airtight packing is opened or when water bag is broken, and salt starts to dissolve. In some cases, also crystallization of salt hydrates from supersaturated solution can be used to store and release thermal energy. The point is that distribution of heat or cooling is not uniform across the whole product. In the case of exothermic products this can lead to dead spaces and localized hotspots which can result in skin damage. Finally, the solutions on the market are for single use only and cannot be interrupted or temporary suspended and then restarted later. Thus, in the market there is clearly need for thermal products that can be re-used and which have homogeneous distribution of the thermally active material in the product thus providing uniform heating and / or cooling effect.
[0008] Patent publication US 8,425,578 discloses an invention where the thermally active ingredients are contained in a layer separate to the moisture holding layer. This differs from the invention disclosed in this application where all the thermally active materials form a single continuous layer.
[0009] Patent publication US 2002 / 0161420 A1 describes self-heating fluids having uniform composition. The fluids are contained in small pouches and for large products such as blankets, the structure becomes discontinuous as in other present-day products.
[0010] The invention disclosed in the patent publication US 20060073324 A1 discloses an invention, where the main focus is on an expanded polymer layer which contains the thermally active material. This invention does not form a continuous layer but comprises of a loaded polymer. This differs from the invention presented in this application where the emphasis is on the exothermic materials being continuous and the medium role is to enable this, but it does not define the invention. In the case of US 20060073324 A1 , the medium defines the invention.
[0011] The invention disclosed in the patent publication US 2007 / 0142882 A1 deals with a self-heating layer prepared by coating from an aqueous slurry of the thermally active material and by drying. The moisture required in the heating reaction is provided from adjacent moisture-containing layer and the system is not continuous in the sense of the present invention that all reacting components are included in one continuous layer. Patent publication US 20170231813 describes a face mask made of selfheating multilayer film, where uniformity of heating is improved using a gridding in the thermally active layer. This improves distribution of the thermally active materials, but it is not continuous in the sense of the present invention.
[0012] The patent US 10,492,957 discloses a flexible tape, where the thermally active materials are sandwiched between porous adhesive layers. The structure is therefore identical to present-day self-heating products and the focus of the patent is on production of self-heating clinical products.
[0013] Patent publication US 2008 / 0147153 A1 discloses a method to prepare self- cooling substrate by impregnating the thermally active material in a porous substrate with a hydrophobic polymer. The thermally active material is distributed together with the hydrophobic polymer, and this does not guarantee even and continuous distribution.
[0014] Patent publication US 2013 / 0337032 A1 deals with small topical patch substrates that release organic cooling agents to impart a physiological cooling effect on skin. Temperature of the preparate does not change and the mechanism is therefore different from that of the present invention.
[0015] Patent application KR 2011 / 0071356 A describes a cooling mat prepared by inclusion of the thermally active material in a polymer gel. The invention comprises a thermally active material product wherein self-cooling components include multiple layers saturated or interwoven with reactants. However, this differs from the present invention where the continuous layer of active ingredients is the focus point and not the product.
[0016] Flexible cooling tape and pad are described in the publication US 2020 / 0256608 A1. The thermally active material is sandwiched between thermally conducting and thermally insulating sheets. Focus is on formation of different shapes and the distribution of the thermally active material is not specified. BRIEF DESCRIPTION OF THE INVENTION
[0017] The present invention relates to an exothermic / endothermic film or layer, which can be used in a variety of applications and products. The present invention also relates to thermal products comprising the exothermic / endothermic film or layer and at least a protective layer. The exothermic / endothermic film or layer, i.e., the active layer, comprises thermally active material and a medium on which the thermally active material is evenly and continuously dispersed. The thermal layer and the product of the present invention can be an exothermic layer or product, or an endothermic layer or product.
[0018] The present invention relates to an exothermic film or layer, which can be used in a variety of applications and products, which comprises thermally active material and a medium on which the thermally active material is evenly and continuously dispersed through a coupling agent / a dispersant / a compatibilizer. The present invention relates also to an endothermic film or layer, which can be used in a variety of applications and products, which comprises thermally active material, water-absorbing material and a medium in / on which the thermally active material and water-absorbing material are evenly and continuously dispersed.
[0019] The objects of the invention are achieved by the products characterized by what is stated in the independent claims. The preferred embodiments of the invention are disclosed in the dependent claims. Other objects, details and advantages of the present invention will become apparent from the following detailed description.
[0020] BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 shows an example of the self-heating structure with two layers (A) and an example of the self-cooling structure with three layers (B); 1. water layer, 2. thermally active layer and 3. protective layer.
[0022] Figure 2 shows the self-heating / cooling layer without a coupling agent (a) and with a coupling agent (b). The coupling agent adjust the surface energy between dissimilar materials. Figure 3 shows the electrostatic interaction between matrix and thermally active material with a coupling agent.
[0023] Figure 4 shows the schematic cross-section of the self-heating or self-cooling layer.
[0024] Figure 5 shows a photograph of the cross-section of the self-heating layer.
[0025] Figure 6 shows the surface temperatures in °C of the self-heating layer of the present invention after 20 min.
[0026] Figure 7 shows the surface temperatures in °C of a commercial thermal blanket after 20 min.
[0027] DETAILED DESCRIPTION OF THE INVENTION
[0028] The present invention concerns an exothermic i.e., a self-heating thermal film or layer and / or an endothermic i.e., a self-cooling thermal film or layer. The present invention also relates to thermal products comprising the exothermic / endothermic film or layer and a protective layer.
[0029] The exotherm ic / endothermic film or layer of the present invention comprises thermally active material and a medium on which the thermally active material is evenly and continuously dispersed. In one embodiment, the exothermic / endothermic film or layer of the present invention comprises thermally active material, a medium on which the thermally active material is evenly and continuously dispersed, and a coupling agent / a dispersant / a compatibilizer, or a water-absorbing material. In one embodiment, the exothermic film or layer of the present invention comprises thermally active material and a medium on which the thermally active material is evenly and continuously dispersed through addition of a coupling agent / a dispersant / a compatibilizer. In one embodiment, the endothermic film or layer of the present invention comprises thermally active material, water-absorbing material and a medium on which the thermally active material and water-absorbing material are evenly and continuously dispersed.
[0030] The exothermic material is an easily oxidizing metal such as Fe, and the metal is used as finely divided powder to expose large surface area for oxidation. The medium can be, but is not limited to, any sheet-like highly porous material, on which the thermally active material and other reaction ingredients can be evenly and continuously dispersed. The medium can be in the form of woven or non-woven polymer fibers prepared by conventional methods or by electrospinning but is not limited to these methods. Typical polymers include but are not limited to polypropylene, polyamides, and polyester fibers. The medium can also be a cross-linked porous polymer gel, such as cross-linked polyacrylamide.
[0031] In addition to the thermally active material, the coupling agent / dispersant / compatibilizer and the medium on which the thermally active material is evenly and continuously dispersed, the active layer may optionally comprise also other reaction ingredients, such as a catalyst and a moisturecontaining material. In one embodiment, the active layer comprises also a catalyst and / or a moisture-containing material. In one embodiment, the active layer comprises the thermally active material and a medium on which the thermally active material, the coupling agent, the catalyst and the moisture containing material are evenly and continuously dispersed. The catalyst includes but is not limited to chloride salt, such as NaCI, KCI, and NH4CI. Moisture-containing materials include but are not limited to vermiculite or other clay mineral, wood flour, activated carbon or any mixture thereof.
[0032] The thermally active material and the reaction ingredients are evenly and continuously included on / in the medium either during spinning or they are added afterwards using suitable methods. Even dispersion means that the concentration of the thermally active material and the other ingredients is constant in the layer. Continuous dispersion requires good contact of the thermally active material with the coupling agent, the catalyst, and the moisture-containing material. Because all reacting materials are solids, a threshold loading in the medium is needed to obtain continuous dispersion and effective heating. The threshold loading depends on the properties of the medium, the properties of the thermally active material and the ingredients, and particle size distribution thereof. Typically, the loading is 100 - 2000 g / m2, preferably 200 - 1600 g / m2, 400 - 1000 g / m2, 400 - 800 g / m2, 600 - 800 g / m2. Moreover, differences in the particle size may lead to segregation of the particles and less efficient heating. In one embodiment, fine iron particles with a large surface area are used as the thermally active material in an exothermic reaction. In this embodiment, other reaction ingredients may include but are not limited to water, activated carbon, vermiculite or similar mineral and sodium chloride salt. Sodium chloride acts as a catalyst where the chloride ions accelerate rusting to form a more porous form of rust (0-FeOOH). The activated carbon facilitates heat distribution and also through its gas adsorption properties brings oxygen more efficiently to the iron particles. The vermiculite is an inert light-weight mineral that will maintain the optimal moisture level for rusting to occur.
[0033] Oxidation of metallic iron (iron rusting) is an example of an exothermic reaction (see reaction 1 ). Besides iron and oxygen, the reaction requires water, and it is supplied using activated carbon and / or vermiculite as carrier. Moreover, NaCI is used as catalyst.
[0034] 4Fe + 3O2+ H20 2Fe2O3• H20 AH = -1648 kJ / mol (1 )
[0035] The reaction starts when oxygen is allowed to contact iron (when an air-tight packing is opened, for example) and it will last until all the ingredients are used up or until the oxygen is prevented from interacting with iron. Once the ingredients are consumed, they need to be replaced, because the reaction is not reversible. The reaction can be started and stopped several times if the entrance of oxygen can be controlled.
[0036] In an embodiment where iron is used as the thermally active material, the thermally active layer is preferably packed under oxygen-free conditions before use. Another option of adjusting the iron oxidation reaction is to add a certain amount of water, to maintain optimal moisture level, in the uniform active layer in normal air conditions. In an embodiment, where iron oxidation is the chemical reaction, the outer surface(s) of the active layer should be permeable or semi-permeable to oxygen. Typically, the surface layer is, but is not limited to, a pin-holed polypropylene or polyester film. The oxidation reaction can be stopped by preventing oxygen entry into the active layer.
[0037] The heating performance depends greatly on the oxygen circulation. Therefore, the pore size in the outer surface(s) and the number of pores play an important role. Moreover, the active layer must be porous for the oxygen to reach the iron surface.
[0038] In one embodiment of the invention, the initiation of iron oxidation can be delayed or accelerated using a porous outer or inner surface that controls the air flow to the reactive material.
[0039] In one embodiment, the exothermic film or layer of the present invention comprises thermally active material and a medium on which the thermally active material is evenly and continuously dispersed through addition of a coupling agent / dispersant to prevent agglomeration of the thermally active materials. Dispersants / coupling agents promote homogeneity and prevent agglomeration and coupling agents have a due role in bonding dissimilar materials. The dispersant and coupling agent may also improve heat transfer properties. In an embodiment when there is a difference in surface energies between the medium and thermally active material, a coupling agent can be used to prevent agglomeration of the thermally active ingredient. The coupling agent adjust the surface energy between dissimilar materials. The coupling agent may also improve heat transfer properties.
[0040] Figure 2 shows the difference with and without a coupling agent. The coupling agent helps the thermally active agent to disperse on the medium evenly and continuously since agglomeration is prevented fostering a homogeneous dispersion. This happens because for many mediums (polymers, nonwovens, blown polymer etc) the surface energy is below 35 mN / m making the surfaces hydrophobic. The surface energy of thermal active material is hydrophilic having surface energy above 45 mN / m. The coupling agent has both hydrophobic and hydrophilic properties and resides at the interface between the medium and the thermally active material (see Figure 2b). Thus, in one embodiment when there is a difference in surface energies between the medium and thermally active material a coupling agent is used to prevent agglomeration of the thermally active ingredient. Especially in an embodiment, where the surface energy of the medium is below 45 mN / m, it is beneficial to use a coupling agent to prevent agglomeration and increase heat transfer properties. In the present disclosure the terms “dispersant” and “compatibilizer” are used as synonyms to the term “coupling agent”. The coupling agents include but are not limited to silanes, silicates, anhydrides, titanates, aluminates, borates, bimetallic salts, phosphates, sulfonic acids, carboxylic acids, polyacrylic acid, and sodium dodecyl sulfate (SDS). The loading of the coupling agent is 0.1 - 50 g / m2, preferably 0.5 - 30 g / m2, 1- 25 g / m2, 2 - 20 g / m2, 5 - 10 g / m2.
[0041] In one embodiment the thermal properties are further improved when there is interaction between the thermally active material and the medium. The interaction can be covalent bonding, hydrogen bonding or interaction between the metal and polymer. Electrostatic interaction is based on the electrical double layer at the interface between metal and polymer. Sufficiently close contact between two materials with different band structures allows some electron transfer treating the interfacial region of a joint as a parallel plate capacitor. Electrostatic forces across the double layer contribute to the total adhesive bond strength. This interaction between the polymer and metal is increased in the presence of a coupling agent as shown in Figure 3.
[0042] In an embodiment of the invention, the thermally active material is supersaturated salt solution that releases heat during crystallization. In this embodiment, crystallization of salt hydrates from supersaturated solution is used to store and release thermal energy. When sodium acetate is used, the thermally active material is the supersaturated aqueous solution, and it crystallizes according to equation (2).
[0043] NaC2H3O2(aq) <-> NaC2H3O2• 3H2O(s) AH = -19.7 kJ / mol (2)
[0044] Activating the reaction requires exposing the sodium acetate solution to a metal. The metal surface acts as a nucleation site for immediate crystallization and release of heat. In some cases, the reaction can be initiated by squeezing the product resulting in spontaneous crystallization.
[0045] The reverse reaction represents the melting process. In this case heat needs to be added and the easiest way to heat up the crystals is either in boiling water or in the microwave oven. Either method will return the solid into a supersaturated solution again. In an embodiment of the invention, the endothermic thermally active material is a salt that consumes energy when dissolving in water. Heat-consuming (endothermic) processes include dissolution of NaCI, KCI, NH4CI, NH4NO3, K2SO4, KNO3, and / or CO(NH2)2 in water. The process is the same as the reverse reaction in (2) and for urea dissolution, AH = 15.4 kJ / mol.
[0046] In an embodiment, where urea or other salt is used as an endothermic active material, water should be packed / contained in a separate layer, which can be easily brought into contact with the active layer. The water-layer can be an empty space between a water-impermeable and water-permeable films, that is filled when the cooling reaction starts. Water can be also contained in a water-absorbing layer that is brought in contact with the active layer by removing a separating barrier. The water-absorbing material is a polymeric super-adsorbent, such as sodium polyacrylate or ionic polyacrylamides. The outer surface of the water-containing layer must be water-impermeable consisting of any material that prevents the permeation or leaking of water or moisture. Endothermic reaction energy can be adjusted by controlling the amount of water next to the active layer.
[0047] The medium of the active layer can be, but is not limited to, any sheet-like porous material, on which the thermally active material and other reaction ingredients can be evenly and continuously dispersed. The medium can be in the form of woven or non-woven fibers prepared by conventional methods or by electro-spinning but is not limited to these methods. The fibers can be made of synthetic polymers including polypropylene, polyamides and polyesters or natural materials including cotton and cellulose. The medium can also be a cross-linked porous polymer gel, such as cross-linked polyacrylamide. The thermally active material and the reaction ingredients are included on / in the medium either during spinning or they are added afterwards using suitable methods.
[0048] The water-absorbing material is used to absorb the salt solution formed during the cooling process to avoid leakage of the solution during operation. The water-absorbing material is a polymeric super-adsorbent, such as sodium polyacrylate or ionic polyacrylamides. In one embodiment, the thermal reaction in the active layer of the present invention can be initiated anywhere without needing external connection.
[0049] The present invention also relates to a thermal product comprising the exothermic / endothermic film or layer and at least a protective layer. In one embodiment, the thermal product is an exothermic product, which comprises the active layer comprising thermally active material, the coupling agent / dispersant / compatilizer, other optional reaction ingredients including catalyst, and the medium. In one embodiment the thermal product is an endothermic product, which comprises the active layer comprising a thermally active material, water-absorbing material and medium on which the thermally active material and the water-absorbing material are evenly and continuously dispersed. In one embodiment, the endothermic product comprises a watercontaining layer and optionally a protective layer.
[0050] In one embodiment, the protective layer is close to the skin when used as a blanket and close to the product when used as a cover. It should allow heat transfer from the active layer and feel comfortable when in skin contact.
[0051] The thermal product of the present invention can be a blanket, a protective cover for temperature sensitive cargo, a material to be made into thermal clothing or a general-purpose heat source or sink but it is not limited to these products only.
[0052] In one embodiment of the invention, the thermal product can be reused several times. The active layer should be easy to remove for replacement when iron is used or for reheating and crystallization via boiling in the case where e.g. sodium acetate is the thermally active material.
[0053] In one embodiment, the thermal reaction in the active layer of the present invention can be initiated anywhere without needing external connection.
[0054] In an embodiment, the outer surface of the active layer may be waterproof consisting of any material that prevents the permeation or leaking of water or moisture. Endothermic reaction energy can be adjusted by controlling the amount of water next to the active layer. In an embodiment, where there are several layers between the protective layer and the active layer then the air (oxygen) permeation restriction of these materials needs to be considered (iron oxidation reaction). One way to handle this is to make sure the reactive iron oxidation ingredients are close to an external surface of the active layer.
[0055] In one embodiment, the outer surface of the thermal product is thermally insulating. Thermally insulating surface can be, but is not limited to, a metallized polyester film.
[0056] In one embodiment, the protective layer is close to the skin when used as a blanket. In one embodiment, the protective layer is close to the product when used as a cover. It should allow heat transfer from the active layer and feel comfortable when in skin contact. The protective layer can be, but is not limited to, a cotton cloth backed by a polymer film.
[0057] In an embodiment, where iron oxidation is the chemical reaction, the protective layer must be permeable or semi-permeable to oxygen. The oxidation reaction can be stopped by preventing oxygen to get into the active layer.
[0058] The heating performance when iron is used depends greatly on the oxygen circulation. Therefore, the pore size in the protective layer and / or the number of pores therein play an important role.
[0059] In the products of the present invention, the thermal reaction can be initiated anywhere without needing external connection. The thermal products can reach much more even heating / warming / cooling effect than other materials. Different exothermic and / or endothermic reactions can be used depending on if the product should be disposable or reusable. The self-heating and / or cooling thermal protect products can quickly restore the body temperature quicker than any other products.
[0060] The following examples are given to further illustrate the invention without, however, restricting the invention thereto. EXAMPLES
[0061] Example 1.
[0062] The homogeneous self-heating layer was prepared using non-woven polyester cloth as medium. Iron powder containing also activated carbon, vermiculite, food flour, NaCI and water was used as thermally active material, and was obtained from commercial hand heaters. The fluffy cloth was first ironed to render the outer surface impermeable for the solid particles. The thermally active material was poured between two pre-treated cloths, and they were thermally seamed to produce a continuous non-woven fabric that contains the thermally active material evenly distributed. Loading of the thermally active material was 500 g / m2.
[0063] Schematic and actual cross-sections of the self-heating layer are shown in Figures 4 and 5.
[0064] Temperature distribution of a 50x50 cm self-heating layer was measured after 20 min and the results are shown in Figure 6. The indicated temperatures do not represent real situation, where the reaction rate is controlled by semi- permeable oxygen barrier. However, the results clearly show the even heating effect that contrasts the patch-like heating in existing self-heating products.
[0065] Furthermore, temperature difference in the different measuring points is less than 10°C.
[0066] A self-cooling layer can be prepared correspondingly using an endothermic reaction mixture as thermally active material.
[0067] Reference example 1.
[0068] Temperature distribution of a commercial thermal blanket was studied by opening a vacuum-packed blanket and by measuring temperature after 20 min. The results are shown in Figure 7. In the commercial thermal blanket, the thermally active material consists of iron powder, activated carbon, vermiculite, food flour, NaCI and water and it is packed in separate. As can be clearly seen from the results, temperature distribution in the surface of the blanket is not uniform and the difference between the maximum and minimum temperatures was 25-30°C. The results shown here proof that the thermal layer comprising of a thermally active material evenly and continuously dispersed in a medium gives more even surface temperature distribution than in the case of thermal blanket, in which the thermally active material is packed in separate pockets.
[0069] Example 2.
[0070] The self-heating blanket (60 cm x 120 cm) composed of thermally insulating outer layer, thermally active middle layer and a soft inner layer was prepared using the same self-heating composition as in Example 1 . Metallized polyester film was attached to the other side of the non-woven polyester cloth by ironing. The thermally active mixture was evenly distributed in the polyester cloth using a loading of 600 g / m2. The polyester cloth containing the thermally active mixture was rapidly covered with a two-sided adhesive film to stop the oxidation reaction. A soft cotton fabric was attached on the other side of the adhesive film. Finally, pinholes were evenly distributed in the outer insulating layer to make the layer permeable for air and the blanket was vacuum sealed in a protective plastic bag.
[0071] After 24 h, the bag was opened to initiate the oxidation reaction. The surface temperature was measured and an even temperature profile across the surface was found as in Example 1 .
[0072] Example 3.
[0073] The self-heating blanket was prepared as described in Example 2 except that talc (hydrated magnesium silicate) was added in the heating layer as a coupling agent. Metallized polyester film was attached to the other side of the non-woven polyester cloth by ironing. The thermally active mixture was evenly distributed in the polyester cloth using a loading of 600 g / m2. The loading of talc was 5 g / m2. The polyester cloth containing the thermally active mixture was rapidly covered with a two-sided adhesive film to stop the oxidation reaction. A soft cotton fabric was attached on the other side of the adhesive film. Finally, pinholes were evenly distributed in the outer insulating layer to make the layer permeable for air and the blanket was vacuum sealed in a protective plastic bag.
[0074] After 24 h, the bag was opened to initiate the oxidation reaction. The surface temperature was measured and an even temperature profile across the surface was found as in Examples 1 and 2. Example 4.
[0075] The self-heating blanket was prepared as described in Example 2 except that alum (hydrated aluminium potassium sulfate) was added in the heating layer as a coupling agent. Metallized polyester film was attached to the other side of the non-woven polyester cloth by ironing. The thermally active mixture was evenly distributed in the polyester cloth using a loading of 600 g / m2. The loading of alum was 10 g / m2. The polyester cloth containing the thermally active mixture was rapidly covered with a two-sided adhesive film to stop the oxidation reaction. A soft cotton fabric was attached on the other side of the adhesive film. Finally, pinholes were evenly distributed in the outer insulating layer to make the layer permeable for air and the blanket was vacuum sealed in a protective plastic bag.
[0076] After 24 h, the bag was opened to initiate the oxidation reaction. The surface temperature was measured and an even temperature profile across the surface was found as in Examples 1 and 2.
[0077] Example 5.
[0078] A commercial diaper was cut open and 5 g of urea was added in the super- adsorbent / cotton fabric. The amount of super-adsorbent in the sample was estimated as 2 g. The water-permeable cover was re-attached, and 10 g of water was evenly poured on the cover.
[0079] The surface temperature of the self-cooling layer was measured at an ambient temperature of 23 °C.
[0080] Time, min Surface temperature, °C
[0081] 2 4±1
[0082] 20 10±2
[0083] 50 15±1
[0084] 90 18±1
[0085] Leaks of the salt solution were not observed.
Claims
Claims1 . A thermal layer comprising a thermally active material, and a coupling agent or a water-absorbing material, and a medium on which the thermally active material and the coupling agent or the waterabsorbing material, are evenly and continuously dispersed.
2. The thermal layer of claim 1 , wherein the medium is in the form of woven or non-woven fibers.
3. The thermal layer of claim 1 , wherein the medium is a cross-linked polymer gel.
4. The thermal layer of any of claims 1 -3, wherein the layer is an exothermic layer.
5. The thermal layer of claim 4, wherein thermally active material is evenly and continuously dispersed on the medium through a coupling agent.
6. The thermal layer of any of claims 1 -5, wherein the coupling agent is selected from silane, silicate, anhydride, titanate, aluminate, borate, bimetallic salt, phosphate, sulfonic acid, carboxylic acid, polyacrylic acid, or sodium dodecyl sulfate (SDS).
7. The thermal layer of any of claims 1 -6, wherein the thermal layer comprises a catalyst.
8. The thermal layer of claim 7, wherein the catalyst is selected from NaCI, KCI or NH4CI.
9. The thermal layer of any of claims 1 -8, wherein the thermal layer comprises a moisture-containing material, such as vermiculite or other clay mineral, wood flour and / or activated carbon.
10. The thermal layer of any one of claims 4-9, wherein the thermally active material is iron.11 . The thermal layer of claim 10, wherein the thermal layer is permeable or semi-permeable to oxygen.
12. The thermal layer of any one of claims 4-9, wherein the thermally active material is a supersaturated aqueous salt solution.
13. The thermal layer of any of claims 1-12, wherein the outer surface is waterproof preventing the permeation / leaking of water or moisture.
14. The thermal layer of any one of claims 1 -3, wherein the layer is an endothermic layer.
15. The thermal layer of claim 14, wherein the thermally active material and the water-absorbing material are evenly and continuously dispersed on the medium.
16. The thermal layer of any one of claims 14-15, wherein the thermally active material is urea or sodium acetate.
17. The thermal layer of any one of claims 14-15, wherein the endothermic reaction is based on dissolution of NaCI, KCI, NH4CI, NH4NO3, K2SO4, KNO3, and / or CO(NH2)2 in water.
18. The thermal layer of any of claims 1 -17, wherein the outer surface is waterproof preventing the permeation / leaking of water or moisture.
19. A thermal product comprising the thermal layer of any of claims 1 -18 and a protective layer.
20. The thermal product of claim 19, wherein the protective layer is permeable or semi-permeable to oxygen.
21. The thermal product of claim 19 or 20, wherein the product is an endothermic product comprising an additional water-containing layer.
22. The thermal product of any one of claims 19-21 , wherein the outer surface of the product is thermally insulating.