Device for dielectric insulation

The device with insulating blocks on a metal strip addresses the high costs and inflexibility of traditional insulation by targeting critical areas with snap-in attachment, offering adaptable and efficient insulation for hydrogen fuel cell stacks and other applications.

DE102024127741A1Pending Publication Date: 2026-03-26NORMA GERMANY GMBH
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Patent Information

Authority / Receiving Office
DE · DE
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-09-25
Publication Date
2026-03-26

AI Technical Summary

Technical Problem

Existing dielectric insulation methods for hydrogen fuel cell stacks are costly, labor-intensive, and lack flexibility, requiring complex adjustments for geometric changes and design modifications, leading to high material and production expenses.

Method used

A device using insulating blocks attached to a metal strip at critical surface areas by snapping or clipping, ensuring dielectric resistance with minimal material usage and adaptable to different designs, featuring modular units and variable dimensions for easy assembly and maintenance.

Benefits of technology

Provides cost-effective, flexible, and efficient dielectric insulation with reduced production costs and increased adaptability, ensuring safe and reliable electrical insulation in hydrogen fuel cell stacks and other applications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a device (1) for the dielectric insulation of an object (50), in particular a hydrogen fuel cell stack, comprising a metal strip (10) for fixing the object (50), and a plurality of insulating blocks (20) arranged between the metal strip (10) and a surface of the fixed object (50) and attached at selected locations on the metal strip (10). According to the invention, the insulating blocks (20) are arranged on the metal strip (10) such that they ensure dielectric resistance only at critical surface areas of the fixed object (50). The insulating blocks (20) can be attached to the metal strip (10) by snapping or clipping them in, thus enabling easy adaptation to different design requirements and cost-effective production.
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Description

[0001] The invention relates to a device for the dielectric insulation of an object, in particular a hydrogen fuel cell stack, according to the preamble of claim 1.

[0002] In industrial and technical applications, such as hydrogen fuel cell technology, the dielectric insulation of electrically conductive components is crucial to ensuring system safety and efficiency. This is particularly important for systems exposed to high electrical voltages. Dielectric insulation prevents electrical breakdowns, which can lead to short circuits, damage to system components, or even significant safety risks.

[0003] For the dielectric insulation and fixing of objects such as hydrogen fuel cell stacks, metal strips are typically used to secure the electrically connected stacks. These metal strips must be electrically insulated to ensure that no unwanted electrical connections occur between the metallic components and the sensitive areas of the fuel cell stacks.

[0004] A hydrogen fuel cell stack (often called a fuel cell stack) is an array of multiple fuel cells connected in series to achieve higher electrical power output. Each individual fuel cell directly converts chemical energy, produced by the reaction of hydrogen and oxygen, into electrical energy. A stack consists of multiple such cells stacked on top of each other to achieve the desired output voltage and power. These cells must be precisely fixed and electrically insulated to prevent short circuits and other electrical malfunctions. Hydrogen fuel cell stacks are used in a variety of technical applications, including motor vehicles (such as hydrogen cars), stationary power supply systems, and portable devices.

[0005] Traditionally, or in previous approaches, various methods are used for insulation, including the use of insulating materials such as plastic films, insulating coatings or rubber strips, which are inserted between the metal band and the surface of the object.

[0006] While this method ensures that no unwanted electrical connections are formed, it leads to increased material costs. The use of large-area insulating materials is expensive. Coating large surfaces is time-consuming and labor-intensive, which increases production costs and necessitates complex manufacturing processes. The extensive use of insulating materials thus results in high material and production costs. Furthermore, changes to the object's geometric shape or size often require a complete readjustment of the insulating materials and methods.

[0007] Furthermore, these solutions have a disadvantageous lack of flexibility, as adapting to specific customer requirements or design changes is complicated and costly. Integrating the insulating materials or coatings often requires special tools, techniques, or modifications, which can further complicate the manufacturing processes. These modifications can also be time-consuming and expensive, as they frequently require manual intervention or specialized techniques.

[0008] These disadvantages and other challenges in the state of the art make it necessary to develop an improved solution that is both more cost-effective and more flexible in application, while ensuring reliable dielectric insulation.

[0009] The aim of the invention is to overcome these and other disadvantages of the prior art and to provide an improved device for the dielectric insulation of an object that ensures cost-effective, flexible and efficient insulation.

[0010] The main features of the invention are specified in the characterizing part of claim 1. Embodiments are the subject of further claims 2 to 14.

[0011] In a device for the dielectric insulation of an object, in particular a hydrogen fuel cell stack, comprising a metal strip for fixing the object, a plurality of insulating blocks arranged between the metal strip and a surface of the fixed object and attached at selected locations on the metal strip, the invention provides that the insulating blocks are arranged on the metal strip in such a way that they ensure the dielectric resistance only at critical surface areas of the fixed object, wherein the insulating blocks can be attached to the metal strip by snapping or clipping them in order to allow easy adaptation to different design requirements and cost-effective production.

[0012] In the context of the invention, dielectric insulation refers to preventing electrical breakdown between the metal strip and the conductive components of the fixed object, such as a hydrogen fuel cell stack. This insulation is achieved by the insulating blocks according to the invention, which act as a barrier and prevent electrical currents or voltages from being transmitted through the metal strip to other conductive parts. The insulation thus ensures the protection and safety of the entire system by preventing unwanted electrical connections.

[0013] The term "at selected points on the metal strip" describes the fact that the insulating blocks are not evenly distributed along the entire length of the metal strip, but are only placed at specific points identified as particularly relevant for insulation. These points are chosen to provide the most effective dielectric insulation by covering critical contact points between the metal strip and the surfaces of the object to be insulated. This targeted placement enables optimized insulation with minimal material usage and effectively saves costs.

[0014] In this context, "critical surface areas" refer to the specific areas of the fixed object where dielectric insulation is particularly necessary to prevent electrical breakdown. These areas are typically those exposed to a high electrical potential or where contact between the metal strip and the conductive components of the object could cause problems.

[0015] The insulating blocks are specifically designed to target these critical surface areas to ensure safe and effective insulation.

[0016] The term "snap-in" or "clip-in" describes the method by which the insulating blocks are attached to the metal strip. This is achieved by mechanically snapping the insulating blocks into designated recesses or edges of the metal strip, without the need for additional fasteners such as screws or adhesives. This fastening method offers the advantage of quick and easy assembly as well as flexible adaptation to various geometries and design requirements, which ultimately reduces production costs and increases efficiency.

[0017] According to a preferred embodiment, it is conceivable that the insulating blocks can consist of a dielectric material such as ceramic, glass, plastic or rubber, wherein the dielectric material of the insulating blocks can be a polymer selected from the group consisting of PTFE, PVC or epoxy resin.

[0018] The use of a dielectric material such as ceramic, glass, plastic, or rubber offers the advantage of excellent insulating properties. The selection of a specific polymer such as PTFE, PVC, or epoxy resin further improves chemical resistance, durability, and adaptability to various application conditions.

[0019] According to another preferred embodiment, the width and thickness of the insulating blocks can be variable and adapted to customer requirements, and the insulating blocks can be designed as flat and / or rectangular blocks.

[0020] The variable width and thickness of the insulating blocks allow for easy adaptation to specific requirements and ensure their suitability for various applications and surfaces. Flat and rectangular blocks also offer a simple yet effective way to cover large areas while providing stable mechanical support.

[0021] Preferably, the metal strip can have cutouts for receiving the insulating blocks, wherein the insulating blocks can be mechanically attached to the metal strip by snapping them into the cutouts.

[0022] The presence of cutouts or pre-drilled holes in the metal strip for mechanically attaching the insulating blocks by snapping them into place significantly simplifies assembly and disassembly. This reduces labor and allows for easy and quick maintenance as well as trouble-free replacement of the insulating blocks.

[0023] According to another preferred embodiment, the insulating blocks can alternatively include, or additionally include, lateral edges in addition to the cutouts, which can be designed to assist in clipping the insulating blocks into place, whereby the insulating blocks can be clipped laterally onto the metal strip.

[0024] The lateral clipping of the insulating blocks onto the metal strip advantageously allows for easy installation without special tools and ensures a particularly secure positioning of the blocks, which remains stable even under vibrations and other mechanical stresses. The complementary design of the metal strip's lateral edges, for example, contributes to guaranteeing a secure connection.

[0025] According to another preferred embodiment, the insulating blocks can exhibit high thermal stability and be suitable for use at high temperatures.

[0026] The high thermal stability of the insulating blocks makes them particularly suitable for use in high-temperature applications, which significantly increases the versatility and applicability of the device in demanding environments, such as near hot fuel cells.

[0027] Preferably, the insulating blocks can be suitable for use in humid environments, and the insulating blocks can be corrosion-resistant.

[0028] The suitability of the insulating blocks for humid environments and their corrosion resistance further expand the application possibilities of the device to environments with high humidity or direct liquid contact, which ensures its durability and reliability under a wide variety of conditions.

[0029] According to another preferred design variant, the insulating blocks can be manufactured in modular units to allow for easy maintenance and replacement.

[0030] The modular design of the insulating blocks allows for easy maintenance and quick block replacement, which extends the service life of the entire device and advantageously minimizes downtime. This is particularly beneficial in applications that require, for example, regular maintenance.

[0031] It is also preferably conceivable that the insulating blocks could be provided with an additional protective layer at the contact points.

[0032] The additional protective layer at the contact points of the insulating blocks positively increases resistance to mechanical wear and chemical attacks, further improving the service life and reliability of the insulation under demanding operating conditions.

[0033] According to another preferred embodiment, the insulating blocks can have high mechanical strength.

[0034] The high mechanical strength of the insulating blocks ensures that they are not damaged even under significant mechanical stresses, such as those that can occur in dynamic or vibration-prone environments. This increases the reliability and safety of the insulation throughout the entire service life of the device.

[0035] According to another preferred embodiment, the insulating blocks can be designed in such a way that they prevent contact between the metal strip and the hydrogen-carrying components.

[0036] This design of the insulating blocks, which avoids contact between the metal strip and the hydrogen-carrying components, leads to a significant increase in the safety of the fuel cell stack or object and prevents potential leaks or electrical malfunctions that could be caused by direct metal contacts.

[0037] According to another preferred embodiment, the metal band can at least partially encircle the object, wherein the metal band can be bent around the object and can be firmly secured at its ends by means of fixing means.

[0038] The configuration, in which the metal band at least partially encircles the object and is firmly secured at its ends, ensures stable fixation of the object, guaranteeing safe and reliable positioning of the fuel cell stacks. This is particularly important to ensure uniform pressure distribution and mechanical stability.

[0039] Preferably, the metal strip can be divided into a front section with two arc sections and two side sections, each of which can fulfill specific functions within the device.

[0040] The side sections preferably extend along the lateral surfaces of the fixed object. These sections can further preferably be designed to laterally encompass the object and, in combination with the curved sections and the front section, ensure secure fixation of the object. The side sections can preferably vary in width and thickness depending on the object's design to allow for optimal adaptation.

[0041] The front section of the metal band preferably forms the front or upper part of the object's enclosure. It can further preferably be designed to hold the object firmly in position and, together with the side and curved sections, ensure an even distribution of the holding forces during fixation. The front section can also preferably be provided with insulating blocks to ensure dielectric insulation at the front of the object as well.

[0042] Preferably, the curved sections can connect the front and side sections of the metal strip. These sections can further preferably be curved to allow for smooth adaptation to the shape of the object and to ensure that the metal strip fits snugly against the object. The curved sections can preferably be designed such that, together with the other sections of the metal strip, they form a stable and uniform enclosure of the object.

[0043] According to a further preferred embodiment of the invention, it is conceivable that the insulating blocks can be specifically configured for use in hydrogen fuel cell stacks, wherein the object can be a hydrogen fuel cell stack.

[0044] The specific configuration of the insulating blocks for use in hydrogen fuel cell stacks ensures that the device is optimally adapted to the requirements of this particular application. This includes both mechanical and electrical insulation, thereby maximizing the overall performance and safety of the fuel cell stack.

[0045] According to another preferred embodiment, the device can be designed and suitable for use in various areas alongside fuel cell stacks, particularly where electrical insulation is required.

[0046] The versatility of the device, allowing it to be used in various fields, expands its application possibilities beyond fuel cell stacks. This makes the device attractive for a wide range of industries and applications where electrical insulation is required, thereby increasing the potential market and the economic significance of the invention.

[0047] Further features, details and advantages of the invention will become apparent from the wording of the claims and from the following description of exemplary embodiments with reference to the drawings. The drawings show: Fig. 1 a schematic side view of a device according to the invention (without a fixed object); Fig. 2 a schematic top view of the device according to the invention (with fixed object).

[0048] Through Fig. 1. In particular, the basic structure and function of the device 1 come into play, whereby Fig. 2 the arrangement of the insulating blocks 20 in relation to the fixed object 50 is highlighted and the adaptability and safety of the device 1 is emphasized, especially for use in hydrogen fuel cell stacks.

[0049] The generally in Fig. 1 and Fig. 2 Device designated as 1 for dielectric insulation of an object 50, comprising a metal strip 10 for fixing the object 50 and a plurality of insulating blocks 20, which are arranged between the metal strip 10 and a surface of the fixed object 50 and are attached at selected locations on the metal strip 10.

[0050] The insulating blocks 20 are arranged on the metal strip 10 in such a way that they ensure the dielectric resistance only at critical surface areas of the fixed object 50, wherein the insulating blocks 20 can be attached to the metal strip 10 by snapping or clipping them in order to allow easy adaptation to different design requirements and cost-effective production.

[0051] The fixed object 50 can be used as in Fig. 2. An exemplary and schematic representation of a hydrogen fuel cell stack.

[0052] The metal band 10 of the device can be designed to partially surround the object 50. It can be sufficiently flexible to be adapted to the specific requirements of different applications while simultaneously exhibiting sufficient mechanical strength and rigidity.

[0053] The width and thickness of the metal strip 10 can be variable to meet different design requirements and to be adaptable to a width of the insulating blocks.

[0054] How to learn, especially based on Fig. 1 recognizes, the metal strip can have 10 cutouts 11 or pre-punched holes which serve to receive the insulating blocks 20, thereby enabling mechanical fastening by snapping the insulating blocks 20 into place.

[0055] The insulating blocks 20 are arranged between the metal strip 10 and the surface of the object 50 and are attached to the metal strip 10 at selected points. These blocks ensure the dielectric resistance at critical surface areas of the object 50, thus guaranteeing the safe and effective dielectric insulation of the object 50.

[0056] The insulating blocks 20 can be made of a dielectric material such as ceramic, glass, plastic, or rubber, and polymers such as PTFE, PVC, or epoxy resin can also be used. The insulating blocks can be flat and / or rectangular, and their width and thickness can be variable.

[0057] As in Fig. When illuminated, the metal strip 10 can have lateral edges 17 designed to facilitate the clipping in of the insulating blocks 20. This allows the insulating blocks 20 to be more easily clipped onto the lateral edges 17 of the metal strip 10, enabling stable and flexible mounting.

[0058] At the ends 16 of the metal band 10, fixing means 12 are provided, which secure the metal band 10 firmly around the object 50. The fixing can be achieved, for example, on a suitable wall or other similar base. These fixing means 12 can be, for example, clamps, screws (as in Fig. (1 shown) or other mechanical fastening elements that ensure a firm and reliable fixation. The ends may have correspondingly complementary structures for receiving and interacting with the screws.

[0059] The insulating blocks 20 shown can exhibit high thermal stability and are therefore suitable for use at high temperatures. Furthermore, the insulating blocks can be designed for use in humid environments and be corrosion-resistant.

[0060] The insulating blocks 20 can be manufactured in modular units to facilitate easy maintenance and replacement. At the contact points, the insulating blocks can be provided with an additional protective layer to increase their service life and resistance to mechanical and chemical stresses.

[0061] Fig. Figure 2 shows a schematic top view of the device 1, showing the arrangement of the insulating blocks 20 on the metal strip 10.

[0062] Especially in Fig. Figure 2 shows that object 50 can be a hydrogen fuel cell stack that is fixed by the device 1. The metal strip 10 can encircle object 50 and, together with the insulating blocks 20, provide the necessary dielectric insulation. The device 1 can be designed to prevent contact between the metal strip 10 and the hydrogen-carrying components of the system.

[0063] As can be seen, the metal band 10 can be divided into a front section 13 with two arc sections 14 and two side sections 15, each of which fulfills specific functions within the device 1.

[0064] The side sections 15 can extend along the lateral surfaces of the fixed object 50. These sections can be designed to laterally encircle the object 50 and, in combination with the arc sections 14 and the front section 13, ensure secure fixation of the object 50. Depending on the design of the object 50, the side sections 15 can have different widths and thicknesses to allow for optimal adaptation.

[0065] The front section 13 of the metal band 10 forms the front or upper part of the enclosure of the object 50. It can be designed to hold the object 50 firmly in position and, together with the side sections 15 and the curved sections 14, to ensure an even distribution of the holding forces during fixation. The front section 13 can also be provided with insulating blocks 20 to ensure dielectric insulation at the front of the object 50.

[0066] The curved sections 14 connect the front section 13 and the side sections 15 of the metal band 10. These sections can be curved to allow for smooth adaptation to the shape of the object 50 and to ensure that the metal band 10 fits snugly against the object 50. The curved sections 14 can be designed to form, together with the other sections of the metal band 10, a stable and uniform enclosure of the object 50.

[0067] The insulating blocks 20 are attached to critical surface areas of the object 50 to ensure effective insulation. As can be seen in particular in Fig. 2 recognizes that the insulating blocks 20 can be distributed at regular intervals along the metal strip 10 and positioned in such a way as to ensure the dielectric resistance at the most important critical areas of the hydrogen fuel cell stack.

[0068] The insulating blocks 20 can also be designed in such a way that they have high mechanical strength and thus meet the requirements of a robust industrial application.

[0069] The invention is not limited to the embodiments described above, but can be modified in a variety of ways. The object fixed by the device and the precise alignment and fixing method of the metal strip can vary depending on the application. In particular, the device according to the invention can be used for fixing and dielectrically insulating a hydrogen fuel cell stack.

[0070] All features and advantages arising from the claims, the description and the drawing, including design details, spatial arrangements and process steps, can be essential to the invention both individually and in various combinations. Reference symbol list 1 Device (dielectric insulation) 10 metal band 11. Punching (pre-punched holes) 12 Fixatives 13 Anterior section 14 arc section Section 15 16 End 17 side edge 20 insulating blocks 50 objects (hydrogen fuel cell stacks)

Claims

[1] Device (1) for dielectric insulation of an object (50), in particular a hydrogen fuel cell stack, comprising a metal strip (10) for fixing the object (50), a plurality of insulating blocks (20) arranged between the metal strip (10) and a surface of the fixed object (50) and attached at selected points on the metal strip (10), characterized by , that the insulating blocks (20) are arranged on the metal strip (10) such that they ensure the dielectric resistance only at critical surface areas of the fixed object (50), wherein the insulating blocks (20) can be attached to the metal strip (10) by snapping or clipping them in order to allow easy adaptation to different design requirements and cost-effective production. [2] Device according to claim 1, characterized by, that the insulating blocks (20) consist of a dielectric material such as ceramic, glass, plastic or rubber, wherein the dielectric material of the insulating blocks (20) is a polymer selected from the group consisting of PTFE, PVC or epoxy resin. [3] Device according to claim 1 or 2, characterized by , that the width and thickness of the insulating blocks (20) are variable and adaptable to customer requirements, wherein the insulating blocks (20) are designed as flat and / or rectangular blocks. [4] Device according to any one of the preceding claims, characterized by , that the metal strip (10) has cutouts (11) for receiving the insulating blocks (20), wherein the insulating blocks (20) can be mechanically attached to the metal strip (10) by snapping them into the cutouts (11). [5] Device according to any of the preceding claims, characterized by, that the insulating blocks (20) can be clipped laterally onto the metal strip (10), wherein the metal strip (10) comprises lateral edges (17) designed to assist in clipping the insulating blocks (20). [6] Device according to one of the preceding claims, characterized by that the insulating blocks (20) have high thermal stability and are suitable for use at high temperatures. [7] Device according to one of the preceding claims, characterized by , that the insulating blocks (20) are suitable for use in humid environments, wherein the insulating blocks (20) are corrosion-resistant. [8] Device according to any of the preceding claims, characterized by , that the insulating blocks (20) are manufactured in modular units to allow for easy maintenance and replacement. [9] Device according to any of the preceding claims, characterized bythat the insulating blocks (20) are provided with an additional protective layer at the contact points. [10] Device according to any one of the preceding claims, characterized by that the insulating blocks (20) have high mechanical strength. [11] Device according to any of the preceding claims, characterized by , that the insulating blocks (20) are designed to prevent contact between the metal strip (10) and the hydrogen-carrying components. [12] Device according to any of the preceding claims, characterized by , wherein the metal band (10) at least partially surrounds the object (50), wherein the metal band (10) is bent around the object (50) and is firmly secured at its ends (16) by means of fixing means (12). [13] Device according to any of the preceding claims, characterized by, that the insulating blocks (20) are specifically configured for use in hydrogen fuel cell stacks, wherein the object (50) is a hydrogen fuel cell stack. [14] Device according to any of the preceding claims, characterized by that the device (1) is designed and suitable for use in various areas alongside fuel cell stacks, in particular where electrical insulation is required.

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