Multi-layer material with ballistic protection, method for manufacturing the multi-layer material and use of the multi-layer material
A multi-layer material with bonded outer and textile layers and an energy-absorbing core layer addresses the limitations of existing bulletproof materials by offering superior protection and ease of processing, suitable for various applications.
Patent Information
- Authority / Receiving Office
- DE · DE
- Patent Type
- Applications
- Current Assignee / Owner
- MEYER NORBERT
- Filing Date
- 2024-11-15
- Publication Date
- 2026-05-21
AI Technical Summary
Existing bulletproof materials face limitations in providing excellent ballistic protection at minimal weight and are difficult to process, particularly due to weak adhesion in ceramic plates and complex manufacturing processes.
A multi-layer material comprising a first and second outer cover layer, a textile layer, and an energy-absorbing core layer bonded together with a tough-elastic adhesive, where the core layer can be a honeycomb structure or foam, and the layers are easily shaped and bonded under controlled conditions.
The solution provides enhanced ballistic protection with minimal weight and improved processability, allowing for easy adaptation to specific shapes and applications such as personal protective equipment and vehicle components.
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Abstract
Description
[0001] The invention relates to a multi-layer material with ballistic protective effect, a method for producing the multi-layer material and the use of the multi-layer material.
[0002] Products containing materials with ballistic protection, also known as bulletproof products, are designed to protect the human body from bullets and projectiles. A bulletproof product, such as a bullet-resistant vest, is intended to prevent a projectile from penetrating the wearer. The kinetic energy of the projectile is absorbed and distributed over the largest possible area. The projectile itself remains inside the bulletproof product, but can deform it.
[0003] Bulletproof products are manufactured from various materials according to different design principles. A general distinction is made between hard and soft ballistics. Certain protective effects can usually only be achieved by combining both principles.
[0004] In soft ballistics, the projectile impacts a multi-layered mesh or foil structure made of tear-resistant fabric. Some of the projectile's energy is absorbed as it causes the individual layers to move in the direction of entry (acceleration work) and stretches the fibers (tension work). However, the majority of the energy is still retained. On the side of the tear-resistant fabric facing the body, the projectile forms a truncated cone-shaped bulge until the projectile and the impacted body tissue are moving at the same velocity (inelastic collision).
[0005] In hard ballistics, the projectile strikes a plate made of a hard material and transfers its kinetic energy to it. The plate absorbs this kinetic energy, causing deformation. This principle has long been used in armaments.
[0006] The bulletproof performance of bulletproof products depends on the materials used and their spatial structure.
[0007] Bulletproof materials used in soft ballistics include fully aromatic polyamide fibers, commonly referred to as aramid fibers; para-aramid fibers, which have a structure in which benzene rings are linearly linked by an amide group (-CONH); and non-aramid fibers. Para-aramid fibers possess excellent properties such as high strength, high elasticity, and low shrinkage, and are frequently used for bulletproof applications.
[0008] For bulletproof composites, aramid fabrics are typically manufactured using para-aramid fibers. The aramid fabrics are dipped in resin and then dried to produce aramid fabric prepregs. These aramid fabric prepregs are laminated in layers and then cured.
[0009] Bulletproof materials in hard ballistics include ballistic steel and, more recently, polyethylene or oxide ceramic plates, which are mostly produced by laminating several layers of high-strength fabrics, such as aramid fabric, onto appropriate plates.
[0010] However, high-density polyethylene exhibits a high degree of deformation when subjected to physical impact during use, so bulletproof performance is limited.
[0011] In the conventional ceramic bulletproof plate, for example disclosed by KR 10 0926746 B1, the ceramic plate, which is bonded to the bulletproof fabric by a thermoplastic adhesive film, has only weak adhesion and detaches significantly at high temperatures. Furthermore, to manufacture the conventional ceramic bulletproof plate, the thermoplastic adhesive film must be inserted into each of the bulletproof fabrics after cutting, which leads to a considerable reduction in processability.
[0012] It is therefore desirable to have an alternative multi-layer material with ballistic protection that offers excellent ballistic protection at minimal weight and is easy to process. Description of the invention
[0013] The object of the invention is to eliminate the disadvantages of the prior art and to provide an alternative multi-layer material with ballistic protection, wherein the alternative multi-layer material offers excellent ballistic protection at minimal weight and is easy to process.
[0014] This problem is solved by the features listed in the claims.
[0015] The problem is solved by a multilayer material with ballistic protection, wherein the multilayer material with ballistic protection comprises at least a first outer cover layer, at least one textile layer, and at least one energy-absorbing core layer. The at least one energy-absorbing core layer is arranged between the at least one first outer cover layer and the at least one textile layer. The at least one first outer cover layer, the at least one textile layer, and the at least one energy-absorbing core layer are bonded together by a material bond.
[0016] According to various embodiments, the multilayer material further comprises at least a second outer cover layer. The at least one textile layer and the at least one energy-absorbing core layer are arranged between the at least one first outer cover layer and the at least one second outer cover layer.
[0017] According to various embodiments, the at least one first outer cover layer and / or the at least one second outer cover layer is / are made of metal (e.g. aluminium) or wood or glass fiber reinforced plastic or carbon fiber reinforced plastic.
[0018] The first outer cover layer and the second outer cover layer can be made of identical or different materials.
[0019] According to various embodiments, at least one textile layer has at least one tear-resistant fabric.
[0020] The at least one tear-resistant fabric is preferably multi-layered.
[0021] According to various embodiments, at least one tear-resistant fabric contains aramid fibers.
[0022] It is conceivable that at least one tear-resistant fabric alternatively or additionally contains other fibers, for example made of silk.
[0023] According to various embodiments, at least one energy-absorbing core layer is formed from a hollow body structure and / or a foam.
[0024] The foam can completely or partially fill one or more cavities of the hollow body structure.
[0025] According to various embodiments, the hollow body structure is formed from a multitude of hollow bodies.
[0026] According to various embodiments, the hollow body structure is a honeycomb structure. The ends of the cavities of the honeycomb structure are arranged on the at least one first outer cover layer and the at least one textile layer.
[0027] Advantageously, the honeycomb structure is formed as uniform hexagons. Of all possible hollow body shapes that can be seamlessly joined together, hexagons have the best ratio of wall material to volume, and thus represent an optimal shape in this respect. Such honeycomb structures exhibit extremely high stability while simultaneously possessing a very low weight. Loads are distributed across the entire structure via the honeycomb walls and therefore do not act only at a single point.
[0028] According to various embodiments, the hollow body structure is made of aluminum.
[0029] According to various embodiments, the at least one first outer cover layer, the at least one textile layer, and the at least one energy-absorbing core layer are elastically connected to one another. If the multilayer material has at least one second outer cover layer, this layer is elastically connected to the at least one textile layer.
[0030] Advantageously, a tough-elastic adhesive is used for this purpose. The tough-elastic adhesive can be, for example, a one-component adhesive, a two-component adhesive, or a resin-based adhesive with a hardener, which is applied using a hot or cold bonding process.
[0031] The problem is further solved by a method for producing the multi-layer material with ballistic protection, wherein the method comprises the following process steps: a. Manufacturing and cutting of at least one first outer cover layer, at least one textile layer and at least one energy-absorbing core layer, b. stacked arrangement of the at least one first outer cover layer, the at least one textile layer and the at least one energy-absorbing core layer, wherein the at least one energy-absorbing core layer is arranged between the at least one first outer cover layer and the at least one textile layer, and wherein A tough-elastic adhesive is placed between each layer, and c. Bonding the stacked arrangement by applying pressure.
[0032] The individual layers are cut to the target size of a specific product, for example a car body component.
[0033] The multilayer material is preferably produced in a room that allows for easy temperature control, for example an oven.
[0034] According to various embodiments, in process step a., at least one second outer cover layer is additionally manufactured and cut to size. In process step b., the at least one first outer cover layer, the at least one second outer cover layer, the at least one textile layer, and the at least one energy-absorbing core layer are stacked together. The at least one textile layer and the at least one energy-absorbing core layer are positioned between the at least one first outer cover layer and the at least one second outer cover layer. A tough-elastic adhesive is applied between each of the individual layers.
[0035] According to various embodiments, the multi-layer material is manufactured with a use-specific shape.
[0036] Application-specific shaping can be achieved by modulating the individual layers according to a target shape. For example, the first outer layer made of fiberglass-reinforced plastic (FRP) can be produced in a negative mold. A first outer layer made of metal can be pressed into a corresponding target shape. A textile layer can be shaped by applying a flexible textile layer to a layer that already has the target shape. Identical and / or similar shaping processes with the same objective are conceivable for the other layers. A target shape could, for example, be a curved shape to adapt the multilayer material to a body anatomy, such as the ribcage. Application-specific shaping can be achieved during process step a. and / or process step b.
[0037] According to various embodiments, in process step b. multiple textile layers are arranged stacked on top of each other. A tough-elastic adhesive is placed between each individual textile layer.
[0038] According to various embodiments, the tough-elastic adhesive is a hot melt adhesive film.
[0039] According to various embodiments, the bonding takes place in process step c. under tempering until a melting temperature of the hot melt adhesive film is reached, whereby the melting temperature of the hot melt adhesive film is maintained for a defined period of time.
[0040] The multi-layer material according to the invention can be used for personal protective equipment, for example helmets or vests, building walls, vehicle bodies and / or aircraft fuselages. Implementation of the invention
[0041] The invention is explained in more detail using several exemplary embodiments.
[0042] This shows Fig. 1 Multi-layer material with ballistic protection in schematic view, Fig. 2 alternative multi-layer materials with ballistic protection in schematic view.
[0043] The description refers to the accompanying drawings, which illustrate specific embodiments in which the arrangement according to the invention can be implemented. In this respect, directional terminology such as "top," "bottom," etc., is used with reference to the orientation of the described drawings. This directional terminology serves for illustrative purposes and is in no way restrictive.
[0044] It is understood that other embodiments may be used and structural or logical modifications made without deviating from the scope of protection of the present invention. It is understood that the features of the various exemplary embodiments described herein may be combined with one another, unless specifically stated otherwise. The following detailed description is therefore not to be interpreted as restrictive, and the scope of protection of the present invention is defined by the appended claims.
[0045] In the figures, identical or similar elements are provided with identical reference symbols where appropriate.
[0046] The multilayer material according to the invention with ballistic properties is in Fig. Figure 1 shows the multilayer material comprising at least one first outer cover layer 1, at least one textile layer 3, and at least one energy-absorbing core layer 4. The at least one energy-absorbing core layer 4 is arranged between the at least one first outer cover layer 1 and the at least one textile layer 3. The at least one first outer cover layer 1, the at least one textile layer 3, and the at least one energy-absorbing core layer 4 are bonded together.
[0047] The multi-layer material can, as in Fig. 1 shown, furthermore comprising at least a second outer cover layer 2. The at least one textile layer 3 and the at least one energy-absorbing core layer 4 are then arranged between the at least one first outer cover layer 1 and the at least one second outer cover layer 2.
[0048] The at least one first outer cover layer 1 and / or the at least one second outer cover layer 2 can be made of metal (e.g. aluminium) or wood or glass fiber reinforced plastic or carbon fiber reinforced plastic.
[0049] At least one textile layer 3 can consist of a tear-resistant fabric. This tear-resistant fabric can contain aramid fibers.
[0050] The at least one energy-absorbing core layer 4 can be formed from a hollow body structure and / or a foam.
[0051] As in Fig.As shown in Figure 2, the hollow body structure can be formed from a multitude of hollow bodies. The hollow body structure can be a honeycomb structure. The ends of the cavities of the honeycomb structure can be located at the at least one first outer cover layer 1 and the at least one textile layer 3. The ends here are understood to be the base surfaces of the hollow bodies, which are shaped as polygonal cylinders. The hollow body structure can be made of aluminum.
[0052] The at least one first outer cover layer 1, the at least one textile layer 3, and the at least one energy-absorbing core layer 4 can be elastically connected to each other. If the at least one second outer cover layer 2 is present, it can be elastically connected to the at least one textile layer 3. Reference sign 1 first outer cover layer 2 second outer cover layer 3 textile layers 4 energy-absorbing core layer QUOTES INCLUDED IN THE DESCRIPTION
[0000] This list of documents cited by the applicant was automatically generated and is included solely for the reader's convenience. The list is not part of the German patent or utility model application. The DPMA accepts no liability for any errors or omissions. Cited patent literature
[0000] KR 10 0926746 B1
[0011]
Claims
Multilayer material with ballistic protection, wherein the multilayer material comprises at least a first outer cover layer (1), at least a textile layer (3) and at least an energy-absorbing core layer (4), wherein the at least one energy-absorbing core layer (4) is arranged between the at least one first outer cover layer (1) and the at least one textile layer (3), wherein the at least one first outer cover layer (1), the at least one textile layer (3) and the at least one energy-absorbing core layer (4) are bonded together. Multilayer material according to claim 1, further comprising at least a second outer cover layer (2), wherein the at least one textile layer (3) and the at least one energy-absorbing core layer (4) are arranged between the at least one first outer cover layer (1) and the at least one second outer cover layer (2). Multilayer material according to claim 1 or 2, characterized in that the at least one first outer cover layer (1) and / or the at least one second outer cover layer (2) is / are made of metal or wood or glass fiber reinforced plastic or carbon fiber reinforced plastic. Multilayer material according to one of the preceding claims, characterized in that the at least one textile layer (3) comprises at least one tear-resistant fabric. Multilayer material according to claim 4, characterized in that the at least one tear-resistant fabric comprises aramid fibers. Multilayer material according to one of the preceding claims, characterized in that the at least one energy-absorbing core layer (4) is formed from a hollow body structure and / or a foam. Multilayer material according to claim 5, characterized in that the hollow body structure is formed from a plurality of hollow bodies. Multilayer material according to claim 6 or 7, characterized in that the hollow body structure is a honeycomb structure, wherein the ends of the cavities of the honeycomb structure are arranged on the at least one first outer cover layer (1) and the at least one textile layer (3). Multilayer material according to one of claims 6 to 8, characterized in that the hollow body structure is formed from aluminium. Multilayer material according to one of the preceding claims, characterized in that the at least one first outer cover layer (1), the at least one textile layer (3) and the at least one energy-absorbing core layer (4) are elastically connected to each other. Method for producing the multilayer material with ballistic protection according to claim 1, comprising the process steps: a. manufacturing and cutting of the at least one first outer cover layer (1), the at least one textile layer (3) and the at least one energy-absorbing core layer (4), b. stacking arrangement of the at least one first outer cover layer (1), the at least one textile layer (3) and the at least one energy-absorbing core layer (4), wherein the at least one energy-absorbing core layer (4) is arranged between the at least one first outer cover layer (1) and the at least one textile layer (3), and wherein a tough-elastic adhesive is arranged between each of the individual layers, and c. bonding the stacked arrangement under application of a contact pressure. Method for producing the multilayer material according to claim 11, characterized in that in process step a. at least one second outer cover layer (2) is additionally manufactured and cut to size, and that in process step b. the at least one second outer cover layer (2) is added to the stacked arrangement, wherein the at least one second outer cover layer (2) is arranged on the side of the at least one textile layer (3) which is opposite the at least one first outer cover layer (1). Method for producing the multilayer material according to claim 11 or 12, characterized in that the multilayer material is produced with a use-specific shape. Method for producing the multilayer material according to one of claims 11 to 13, characterized in that in process step b. multiple textile layers (3) are arranged stacked on top of each other, wherein a tough-elastic adhesive is placed between each of the individual textile layers (3). Method for producing the multilayer material according to one of claims 11 to 14, characterized in that the countable elastic adhesive is a hot melt adhesive film. Method for producing the multilayer material according to claim 15, characterized in that the bonding in process step c. is carried out under tempering until a melting temperature of the hot melt adhesive film is reached, wherein the melting temperature of the hot melt adhesive film is maintained for a defined period of time. Use of the multi-layer material with ballistic protective effect according to one of claims 1 to 10 for personal protective equipment, building walls, vehicle bodies and / or aircraft fuselages.