High-pressure vessels with ring layers and spiral layers
The composite layer with alternating ring and spiral layers at specific angles addresses stress resistance and material efficiency issues in high-pressure containers, enhancing durability and safety by minimizing weight and eliminating air pockets.
Patent Information
- Application Number
- DE102017219903
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-05-26
- Filing Date
- 2017-11-09
- Publication Date
- 2025-10-30
- Estimated Expiration
- 2037-11-09
AI Technical Summary
Existing high-pressure containers for storing hydrogen in fuel cell systems face challenges in maintaining structural integrity and safety under high stress levels while minimizing weight and avoiding air pockets, particularly due to varying stress directions and material inefficiencies.
A composite layer structure for high-pressure containers is designed with alternating ring and spiral layers wound at specific angles, where the ring layers closest to the liner have the greatest thickness, gradually decreasing with distance, and spiral layers have uniform thickness, to enhance stress resistance and minimize material usage.
The structure provides enhanced resistance to stresses from various directions, reduces material usage, and eliminates air pockets, thereby improving the durability and safety of the high-pressure container.
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Abstract
Description
TECHNICAL AREA
[0001] The present disclosure relates generally to a high-pressure vessel that is installed in a fuel cell system. More specifically, the present disclosure relates to a composite layer arranged on the circumference of a lining on a high-pressure tank. BACKGROUND
[0002] In general, a fuel cell system consists of a fuel cell stack that generates electrical energy, a fuel supply system that provides the fuel cell stack with fuel (hydrogen), an air supply system that provides the fuel cell stack with oxygen from the air as an oxidant required for the electrochemical reactions, a heat and water management system that controls the operating temperature of the fuel cell stack, and the like.
[0003] A hydrogen tank contained in the fuel supply system, i.e. the hydrogen supply, stores compressed hydrogen at a high pressure of approximately 70 MPa (700 bar), and after this stored, compressed hydrogen is released to a high-pressure line according to the on / off actuation of the high-pressure control mounted on the inlet part of the hydrogen tank, it is decompressed as it flows through the start valve and the hydrogen supply valve before being fed to the fuel cell stack.
[0004] Here, a high-pressure gas (hydrogen) is used as fuel, necessitating a gas storage tank for storing and releasing the gas as needed. Since gases have a low storage density within a container, storing a gas under high pressure is particularly efficient, although the high pressure poses a fire hazard. Specifically, an alternative fuel gas vehicle has limited space for a storage tank, and maintaining high storage pressure while ensuring safety is a key technological element.
[0005] Therefore, in the case of a composite container for storing a fuel gas, the outer shell must be reinforced with a fiber-reinforced composite material with high specific strength and high specific stiffness to withstand the high internal pressure of the hydrogen gas, and a lining is installed on the inside to maintain air permeability. More precisely, a lining with two hemispherical shapes at both ends can be attached to form a storage container.
[0006] Furthermore, containers for storing gas, especially hydrogen, can be classified into different types according to the material of their linings. Containers with metallic linings are classified as Type 3, while those with high-density polymer linings are classified as Type 4. Type 3 containers are relatively robust but expensive and have low fatigue resistance, whereas Type 4 containers are relatively inexpensive and have better fatigue resistance but present safety-related issues such as hydrogen leakage and poor sealing.
[0007] In particular, high stress levels occur along the circumferential direction on the cylindrical section located in the center of the high-pressure vessel. Consequently, a composite layer structure is needed that wraps around the cylindrical section of the high-pressure vessel to withstand the stresses applied to it, as well as technological features that allow for reduced weight while still providing resistance to high stress levels.
[0008] From EP 2 581 638 B1, a high-pressure vessel with a lining and a composite layer for reinforcing a circumference of the lining is known in this context, wherein the high-pressure vessel has the following features: a cylindrical part along an axial direction of the high-pressure vessel; and curved parts attached to both ends of the cylindrical part to surround the high-pressure vessel, wherein the composite layer arranged on the cylindrical part contains a plurality of annular layers and spiral layers alternately overlapping, and wherein an annular layer located closer to the lining has a greater thickness than an annular layer located further away from the lining 40.
[0009] DE 695 30 126 T2 further discloses a pressure vessel suitable for installation in motor vehicles, comprising an inner shell which can serve as a gas barrier and a pressure-resistant outer shell made of fiber-reinforced plastic covering the inner shell, wherein the outer shell comprises a layer of reinforcing fibers which are arranged at an angle to the axial direction of the pressure vessel.
[0010] The foregoing is intended only to aid in understanding the background of the present revelation and does not imply that the present revelation lies within the scope of related technology already known to someone with technical skills. OVERVIEW
[0011] In the case of an existing high-pressure vessel, the composite material is wound at a shallow angle to form a spiral layer on the outside of the lining around the inlet section formed at both ends of the high-pressure vessel, whereas the composite material is wound at a steep angle to form an annular layer on the outside of the lining around the central section of the high-pressure vessel. However, in this case, air pockets may occur at the interface between an annular layer and a spiral layer.
[0012] Furthermore, it is difficult to guarantee a constant level of resistance to stresses applied from different directions in the high-pressure vessel. Consequently, one embodiment of the present disclosure employs a structure in which multiple numbers of ring layers and spiral layers are arranged in an alternating winding configuration in the cylindrical part of the high-pressure vessel to provide a lightweight composite layer while increasing its resistance to stresses applied from different directions.
[0013] To achieve the aforementioned objective, according to one aspect of the present disclosure, a high-pressure vessel is supplied with a lining and a composite layer for reinforcing a circumference of the lining. The high-pressure vessel comprises: a cylindrical section arranged along the axial direction of the high-pressure vessel; and curved sections attached to both ends of the cylindrical section to surround the high-pressure vessel. The composite layer arranged on the cylindrical section contains a plurality of annular and spiral layers alternately overlapping. An annular layer located closer to the lining has a greater thickness than an annular layer located further away from the lining, such that the thickness of the annular layers decreases as the distance from the lining increases.In this process, the layer of the composite layer closest to the lining is an annular layer among the multitude of annular layers. Furthermore, the layer of the composite layer furthest from the lining is also an annular layer.
[0014] The ring layer is arranged on the cylinder part only in areas that are located laterally along the axis of the high-pressure vessel.
[0015] The ring layers decrease in length, measured along the axis of the high-pressure vessel, with increasing distance from the lining.
[0016] Pressure is exerted on the ends of the ring layer by the winding of the spiral layer on the outside of the ring layer.
[0017] The annular layer, which is located closest to the lining and has the greatest thickness among the annular layers, has a thickness that is equal to 10% to 35% of the total thickness of the annular layers.
[0018] The ring layers are wrapped around the circumference of the lining at an angle of 88 to 89 degrees with respect to the axial direction of the high-pressure vessel.
[0019] The spiral layers are wound around the circumference of the lining at an angle of 5 to 44 degrees with respect to the axial direction of the high-pressure vessel.
[0020] The spiral layers arranged on the cylindrical part have constant thicknesses.
[0021] Based on the foregoing, certain embodiments of the present disclosure provide the following advantages.
[0022] According to the embodiment of the present disclosure, the composite layer on the circumference of the lining in a high-pressure vessel can be made more resistant to stresses applied from various different directions.
[0023] Furthermore, according to the embodiment of the present disclosure, the amount of composite material required to reinforce the circumference of the lining in the high-pressure vessel can be reduced. Consequently, the composite layer can be supplied with a lighter weight.
[0024] According to the embodiment of the present disclosure, the ring layers and the spiral layers are wound alternately, so that air pockets (spaces) that may occur between a ring layer and the lining or between a ring layer and a spiral layer at the end sections of the ring layer can be pressed down and eliminated, and any empty spaces or gaps within the composite layer can be avoided. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The above-mentioned and other tasks, features and other advantages of the present disclosure will be more clearly understood by reference to the following detailed description in conjunction with the accompanying drawings, in which: Fig. 1 illustrates a high-pressure vessel according to an embodiment of the present disclosure, wherein the structure of the high-pressure vessel and only spiral layers formed on curved parts of the high-pressure vessel are shown; Fig. Figure 2 illustrates an exemplary embodiment of the present disclosure, wherein an enlarged view of area '2' in Fig. 1, i.e., the structure of a lining and composite layer on a cylindrical part, is shown; Fig. 3 the sizes of the ring layers in Fig. 2 applied stresses illustrated according to the position of each ring layer; Fig. 4 is a graph that represents stresses at the same position when ring layers that are positioned relatively close to the lining and ring layers that are positioned far away from the lining are removed or eliminated; Fig. 5 is a graph representing changes in the strength of the high-pressure vessel according to the thickness fraction of the annular layer positioned closest to the lining; Fig. 6 illustrates the possibility of an air pocket or air pocket layer occurring at an end section of an annular layer when a spiral layer is wound over the annular layer; and Fig. Figure 7 illustrates an exemplary embodiment of the present disclosure, wherein an enlarged view of area '1' is shown. Fig. 1, i.e., the area where the curved part and the cylindrical part are connected, is shown. DETAILED DESCRIPTION
[0026] Certain embodiments of the present disclosure are described in more detail below with reference to the accompanying drawings. The embodiments of the present disclosure can be modified into various forms, and the scope of the present disclosure is not to be construed as being limited to the embodiments described below. The embodiments are disclosed merely to provide someone with ordinary technical skills with a more complete understanding of the present disclosure.
[0027] Terms such as "part", "unit", "module", etc., used in the description refer to a unit component that processes at least one function or operation, where such a component may be implemented in the form of hardware or software or as a combination of hardware and software forms.
[0028] A fuel cell system mounted in a vehicle primarily consists of a fuel cell stack that generates electrical energy, a fuel supply device that provides the fuel cell stack with fuel (hydrogen), an air supply device that provides oxygen from the air to the fuel cell stack as an oxidizing agent required for the electrochemical reactions, a cooling system that removes the heat from the reactions of the fuel cell stack to the external system and controls the operating temperature of the fuel cell stack, and the like.
[0029] The fuel supply system of a fuel cell system can consist of a high-pressure container filled with fuel, in the form of a fuel storage tank. In a high-pressure container, hydrogen can be supplied and used as fuel, and hydrogen gas can be stored in the container at a high pressure of approximately 70 MPa.
[0030] Consequently, a high-pressure state can persist within the high-pressure tank due to the fuel or hydrogen, thus maintaining pressure on the tank. If a leak or rupture occurs at any point on the high-pressure tank, the high internal pressure can concentrate at that location, potentially damaging the tank and leading to an explosion, etc. Therefore, the durability and safety of the high-pressure tank are of paramount importance in a fuel cell system and in a vehicle that can accommodate such a system.
[0031] To ensure the stable storage of a high-pressure fuel, such as hydrogen, in a high-pressure vessel, the vessel can be designed to include a liner, specifically a liner made of a plastic material, and an extension piece formed at one end of the liner. This extension piece contains a nozzle through which fuel can be injected or discharged. Furthermore, the latest trend is to use a Type 4 high-pressure vessel, which not only incorporates the liner and extension piece structure, but also a composite layer formed over the structure. This composite layer is created by wrapping the outer surface of the structure with a carbon fiber composite material.
[0032] In the present description, the dashed line that is in Fig. 1, which is marked with “A”, is referred to as the “axis of the high-pressure vessel” or “central axis of the high-pressure vessel” when describing the embodiments of the present disclosure. That is to say, the line ‘A’ is a line drawn along the axial direction of the high-pressure vessel, and the axis of the high-pressure vessel may subsequently refer to the line marked with “A”.
[0033] Taking into account the detailed composition of the composite layer 400, which surrounds the perimeter of the lining 300 in a high-pressure vessel 10 with respect to Fig. 1 is wrapped around, the composite layer 400 can consist of spiral layers 420, tube spiral layers and ring layers 410.
[0034] Here, the spiral layers 420, tubular spiral layers and annular layers 410 can be differentiated by the angles with respect to the axis of the high-pressure vessel 10 at which they are wound around the high-pressure vessel 10, in particular the circumference of the lining 300, wherein the spiral layers 420 are wound at shallow angles, in a particular embodiment 5 to 44 degrees, the tubular spiral layers at medium angles, in a particular embodiment 45 to 87 degrees, and the annular layers 410 at steep angles, in a particular embodiment 88 to 89 degrees, with respect to the central axis (line A) of the high-pressure vessel 10.
[0035] The composite material wrapped around the circumference of the lining 300 is a continuous fiber material of a specific width. The material can be prepared prior to winding and wrapped around the circumference of the lining 300 at defined angles. More precisely, the pre-injection-molded lining 300 can remain fixed in place while a winding device moves to form a specific angle relative to the lining and then wraps the continuous fiber composite material of a specific width around the circumference of the lining 300 at a specific tension level to form the composite layer 400. That is, the composite layer 400 can be formed by overlapping the composite material in several layers, with the first layer wrapped around the circumference of the lining 300 being in contact with the circumference of the lining 300.
[0036] Fig. Figure 1 provides a simplified view illustrating the shape of such a high-pressure vessel 10 of type 4. With regard to Fig. 1. The high-pressure vessel 10 can include a cylindrical section 200, which extends in a cylindrical shape in the center of the high-pressure vessel 10 and forms the body of the high-pressure vessel 10, and curved sections 100, which are formed in a semicircular shape at both ends of the cylindrical section 200 and are attached to the cylindrical section 200 to form the high-pressure vessel 10 together with the cylindrical section. That is, a cross-section of the cylindrical section 200 of the high-pressure vessel 10 along the axial direction A can form straight lines without any curvature along the axial direction A of the high-pressure vessel 10. However, the cylindrical section 200 can have a surface that is curved along the circumferential direction of the high-pressure vessel 10 with respect to its three-dimensional shape.In contrast, the curved parts 100 of the high-pressure vessel 10 can have surfaces that are curved along both the axial direction A and the circumferential direction of the high-pressure vessel 10.
[0037] Taking into account the enlarged section of a curvature part 100, which is in Fig. As shown in Figure 1, it can be seen that the curved part 100 formed around the nozzle of the high-pressure vessel 10 and / or the curved part 100 formed opposite the nozzle of the high-pressure vessel 10 is formed only with spiral layers 420.
[0038] Since the inside of the high-pressure vessel 10 is filled with fuel, e.g., a gas, at high pressure, the high-pressure vessel 10 is generally subjected to stresses applied in radial directions. Consequently, every point of the lining 300 receives a force radiating from the center of the high-pressure vessel 10, and therefore it can be seen that, on the curved parts 100 of the high-pressure vessel 10, winding the composite material at shallow angles with respect to the axis A of the high-pressure vessel 10 provides the structure that best withstands the radially applied forces.
[0039] The pressure can be applied to the cylinder part 200 of the high-pressure vessel 10 in a similar way in radial directions from the center of the high-pressure vessel 10, i.e., along the circumferential direction of the cylinder part 200. Therefore, it can be seen that winding the composite material with a certain width along a direction perpendicular to the axis A of the high-pressure vessel 10 provides a structure that best withstands the pressure applied to the lining 300 and the high-pressure vessel 10.
[0040] Although the stresses here are applied in radial directions from the center of the high-pressure vessel 10, from a material mechanics perspective the stress applied circumferentially to the cylinder part 200 of the high-pressure vessel 10, i.e., in a direction perpendicular to the axial direction A of the high-pressure vessel 10, can be equal to twice or greater than the stress applied in the axial direction A of the high-pressure vessel 10. Therefore, the annular layers 410, which are wound at angles almost perpendicular to the axial direction A of the high-pressure vessel 10, withstand the stresses applied circumferentially to the cylinder part 200.
[0041] Consequently, one embodiment of the present disclosure aims to incorporate the spiral layers 420 and annular layers 410 in the composite layer 400, which is wound around the cylinder part 200 such that the composite layer 400 of the cylinder part 200 has a minimal thickness and, as a result, a light weight, while still being able to withstand the stresses applied to the cylinder part 200 in the circumferential direction of the high-pressure vessel 10. The structure of a high-pressure vessel 10 with a composite layer 400 comprising spiral layers 420 and annular layers 410 is described in more detail below as an exemplary embodiment of the present disclosure.
[0042] Fig. Figure 2 is an enlarged view of a cross-section of part '2' in Fig. 1. In Fig. 2. The lining 300 can be arranged on the innermost side of the high-pressure vessel 10, i.e., on the left side in the drawing. Regarding the composition of the composite layer 400 formed on the outside of the lining 300, it can be seen that multiple numbers of annular layers 410 and spiral layers 420 are alternately overlapped to form the composite layer 400. Consequently, in an exemplary embodiment of the present disclosure, the composite layer 400 formed on the outside of the lining 300 on the cylindrical part 200 of the high-pressure vessel 10 can be formed by an overlap of the annular layers 410 and spiral layers 420.
[0043] Since the composite layer 400 on the cylinder part 200 of the high-pressure vessel 10 is formed by alternating layers of the ring layers 410 and the spiral layers 420, the resistance of the cylinder part 200 in the high-pressure vessel 10 with respect to stresses applied at different angles can be increased compared to a composite layer 400 that is wound at only one angle.
[0044] Again, in relation to Fig. 2 In an exemplary embodiment of the present disclosure, the layer within the composite layer 400 that is formed closest to the lining 300 and / or the layer that is formed furthest away from the lining 300 can be an annular layer 410.
[0045] In relation to Fig. 2 In an exemplary embodiment of the present disclosure, the thickest ring layer 410 within the composite layer 400 can be arranged closest to the lining 300. Furthermore, the thicknesses of the ring layers 410 can be sequentially reduced with increasing distance from the lining 300, so that the ring layer 410 furthest from the lining 300 can have the smallest thickness. That is, when comparing the ring layers 410 adjacent to any spiral layer 420, the thickness of the ring layer 410 closer to the lining 300 can be greater than the thickness of the ring layer 410 farther from the lining 300.
[0046] The reason for arranging the ring layers 410 in this way in an embodiment of the present disclosure can be explained with regard to the Fig. 3 and Fig. 4 will be explained. The ones in the Fig. The numbers shown in 3 to 5 and mentioned below can be values that are converted into a standard strength (normalized strength), and dimensionless values that represent the relative strength ratios between elements.
[0047] Fig. Figure 3 illustrates the distribution of stress according to the positions of the ring layers 410 in an embodiment of the present disclosure. Based on the Fig. 3. It can be seen that the closer an annular layer 410 is to the lining 300, i.e., the further inward the annular layer 410 is positioned, the greater the applied stress. A greater amount of applied stress can mean that the corresponding point within the composite layer 400 can withstand a greater load (pressure applied by the fuel or gas that is filled into the high-pressure vessel).
[0048] Fig. Figure 4 is a graph representing increases in stress that occur at each position when ring layers 410 are removed. With respect to Fig. 4. It can be seen that a larger number of ring layers 410 being removed generally leads to a greater increase in stress at the measured position (critical point). When comparing the cases of removing only one ring layer 410, it can be seen that the degree of stress increase (slope α) resulting from removing the ring layer 410 located close to the lining 300 is greater than the degree of stress increase (slope β) resulting from removing the ring layer 410 located far from the lining 300.Furthermore, it can be seen that removing the ring layers 410 on the inside, which are located relatively closer to the lining 300, leads to a greater increase in stress at the measured position (critical point) compared to removing the ring layers 410 on the outside, which are located relatively farther away from the lining 300. This graph shows that, among the multiple ring layers 410, those located closer to the lining 300 withstand higher stresses.
[0049] The spiral layers 420, which are wound around the cylindrical part 200 of the high-pressure vessel 10, can serve to withstand stresses in various directions. Considering the way in which the spiral layers 420 are wound, since they are wound around the center of the high-pressure vessel along the circumference of the lining, it is also not possible for a spiral layer 420 to wrap around and cover the curved part without passing over the cylindrical part. Consequently, the spiral layers 420 are necessarily wound around the cylindrical part.
[0050] As described above, however, the large stresses applied circumferentially to the lining 300 of the high-pressure vessel 10 can be primarily borne and retained by the annular layers 410. Consequently, according to one embodiment of the present disclosure, the plurality of spiral layers 420 wound around the cylindrical part 200 can be formed with uniform thicknesses.
[0051] Fig. Figure 5 is a graph showing changes in the strength of the high-pressure vessel 10 according to the proportion of the total thickness of the annular layers 410 that is occupied by the thickness of the annular layer 410 that is formed closest to the lining 300. With respect to Fig. 5. In an embodiment of the present disclosure, the thickest ring layer 410, i.e., the ring layer 410 that is formed closest to the lining 300, may have a thickness that is 35% or less of the total thickness of the ring layers 410. The ring layer 410 that is formed closest to the lining 300 may have a thickness between 10% and 35% of the total thickness of the ring layers 410.
[0052] Based on Fig. 5 can first be recognized that within a certain area an increase in the proportion of the total thickness of the ring layers 410 that is taken up by the thickness of the innermost ring layer 410, which is formed closest to the lining 300, leads to an increase in the strength of the high pressure vessel 10.
[0053] If the thickness of the innermost ring layer 410, which is formed closest to the lining 300, exceeds 35% of the total thickness of the ring layers 410, it would be, as in Fig. 5 noted, however, it is difficult to wind a spiral layer 420 over the annular layer 410, which complicates the manufacturing process. Even if such a configuration were manufactured and a spiral layer 420 were wound over the annular layer 410, the thickness of the end section of the annular layer 410 at the end of the cylinder part 200 would create an air pocket between the annular layer 410 and the spiral layer 420, resulting in a reduction of the strength of the high-pressure vessel 10.
[0054] Below is a more detailed description of such air pockets caused by the thickness of an annular layer 410. Since the annular layers 410 are formed on the cylindrical part 200, or only on a section of the cylindrical part 200, while the spiral layers 420 are formed over both the cylindrical part 200 and the curved parts 100, an air pocket (air pocket layer) can form at the end section of the annular layer 410 between any annular layer 410 and the spiral layer 420 layered over the annular layer 410.
[0055] Fig. Figure 6 is provided as an illustration of the situation described above, and for simplicity, the position is shown where an air pocket can occur between the annular layer 410 formed closest to the lining 300 and the spiral layer 420 that overlaps the annular layer 410. If a spiral layer 420 is wound over an annular layer 410 formed on the cylindrical part 200 at a point where the cylindrical part 200 and the curved part 100 are joined, then, with respect to Fig. 6. The thickness of the cross-section of the ring layer 410 may create an air pocket at the end of the ring layer 410. If an air pocket is created, this may reduce the strength of the high-pressure vessel 10.
[0056] Fig. Figure 7 is an enlarged view of area '1' in Fig. 1. Area '1' of the Fig. 1 can be an area where the cylinder part 200 and the curved part 100 of the high-pressure vessel 10 are connected. With regard to Fig. 7. In the cross-section of the high-pressure vessel 10, the annular layers 410 can be formed laterally along the axis direction A of the high-pressure vessel 10, only in areas that are parallel to the axis direction A of the high-pressure vessel 10.
[0057] When multiple numbers of ring layers 410 and spiral layers 420 are repeatedly layered, the following can be achieved with regard to Fig. 7 the area formed laterally longitudinally to the axis direction A of the high-pressure vessel 10 on the cylinder part 200, i.e. the area without curvature with respect to the axis direction A of the high-pressure vessel 10, gradually decreases due to the ring layers 410 and spiral layers 420 which are already layered below, while the distance from the lining 300 increases.
[0058] According to one embodiment of the present disclosure, the annular layers 410 can generally be wound around the circumference of the cylindrical part 200 of the high-pressure vessel 10. However, the annular layers 410 can only be formed on the circumference of the cylindrical part 200 that is laterally longitudinal to the axial direction A of the high-pressure vessel 10, i.e., the area without curvature with respect to the axial direction A of the high-pressure vessel 10, as can be seen in a cross-section of the high-pressure vessel 10. Consequently, the length of the plurality of annular layers 410, measured along the axial direction A of the high-pressure vessel 10, can decrease with increasing distance from the lining 300.
[0059] In short, a key feature of the present disclosure is that the composite layer formed on the circumference of the lining on the cylindrical part of the high-pressure vessel comprises annular layers wound at steep angles and spiral layers wound at shallow angles, with the annular and spiral layers overlapping alternately. In particular, for any spiral layer, the annular layers above and below the spiral layer are formed such that the annular layer formed closer to the lining has a greater thickness than the annular layer formed further away from the lining.
[0060] Although certain embodiments of the present disclosure have been disclosed and described above, it is apparent that various modifications and changes to the present disclosure can be implemented by someone with ordinary technical skills, for example by supplementing, altering, omitting, or adding elements, without deviating from the essence of the present disclosure as set forth in the claims. Such modifications and changes are contained within the scope of the present disclosure.
[0061] Furthermore, when describing the embodiments of this disclosure, certain detailed descriptions relating to known functions or elements were omitted where it was deemed that such descriptions might unnecessarily obscure the essence of this disclosure. The terms used above were defined taking into account the associated functions within the context of the embodiments of this disclosure and may be used differently according to the intentions, customs, practices, etc., of the user or operator. Consequently, the definitions of such terms should be based on the entire content of this description.The detailed description of the present disclosure provided above is not intended to limit the present disclosure to the implementations disclosed above, and the scope of the claims below is to be interpreted as including various other implementations.
Claims
[1] High-pressure vessel (10) with a lining (300) and a composite layer (400) for reinforcing a circumference of the lining (300), wherein the high-pressure vessel (10) has the following: a cylinder part (200) along an axial direction of the high-pressure vessel (10); and Curved parts (100) that are attached to both ends of the cylinder part (200) to surround the high-pressure reservoir (10), wherein the composite layer (400) arranged on the cylindrical part (200) contains a plurality of ring layers (410) and spiral layers (420) that are alternately overlapped, wherein an annular layer (410) that is located closer to the lining (300) has a greater thickness than an annular layer (410) that is located further away from the lining (300), such that the thickness of the annular layers (410) decreases while the distance from the lining (300) increases, and wherein a layer of the composite layer (400) that is located closest to the lining (300) is an annular layer (410) among the plurality of annular layers (410), and wherein a layer of the composite layer (400) that is located furthest from the lining (300) is an annular layer (410) among the plurality of annular layers (410). [2] High pressure vessel according to claim 1, wherein the plurality of ring layers (410) are arranged laterally on the cylinder part (200) in an axial direction of the high pressure vessel (10). [3] High pressure vessel according to claim 1, wherein the plurality of annular layers (410) decrease with increasing distance from the lining (300) with respect to the length measured along the axial direction of the high pressure vessel (10). [4] High pressure vessel according to claim 1, wherein pressure is exerted on one end of each annular layer (410) of the plurality of annular layers (410) by the winding of the spiral layers (420) on an outside of the plurality of annular layers (410). [5] High pressure vessel according to claim 1, wherein an annular layer (410) under the plurality of annular layers (410) which is arranged closest to the lining (300) and which has the greater thickness under the plurality of annular layers (410) has a thickness of 10% to 35% of the total thickness of the plurality of annular layers (410). [6] High pressure vessel according to claim 1, wherein the plurality of annular layers (410) are wound around the circumference of the lining (300) at an angle of 88 to 89 degrees with respect to the axial direction of the high pressure vessel (10). [7] High pressure vessel according to claim 1, wherein the plurality of spiral layers (420) are wound around the circumference of the lining (300) at an angle of 5 to 44 degrees with respect to the axial direction of the high pressure vessel (10). [8] High pressure vessel according to claim 1, wherein the plurality of spiral layers (420) arranged on the cylinder part (200) have a constant thickness.
Citation Information
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