Large-scale vacuum insulated cryogenic storage
Reinforced plates with central thickness and internal stiffeners enhance buckling resistance, addressing scalability and cost issues in large-scale liquefied hydrogen storage, enabling capacities up to 40,000 m³.
Patent Information
- Application Number
- JP2023568568
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-05-05
- Filing Date
- 2022-05-05
- Publication Date
- 2025-09-29
- Estimated Expiration
- 2042-05-05
AI Technical Summary
Existing large-scale liquefied hydrogen storage vessels face challenges in scalability due to buckling issues and high welding costs, limiting capacity to approximately 5,500 m³, which conventional designs cannot efficiently address.
The use of reinforced plates with increased thickness in the center and decreased thickness at the periphery, combined with internal stiffeners, to enhance buckling resistance without increasing on-site welding, allowing for larger capacities up to 40,000 m³ or more.
This configuration enables cost-effective construction of larger hydrogen storage vessels by reducing welding costs and time, while maintaining structural integrity, thereby increasing storage capacity significantly.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 63 / 184,604, filed May 5, 2021. The foregoing application is incorporated herein by reference in its entirety.
[0002] FIELD OF THE DISCLOSURE Embodiments of the present disclosure relate generally to an apparatus for large-scale external pressure storage, and more particularly to an apparatus for large-scale storage of liquefied hydrogen and other products that utilizes vacuum insulation. [Background technology]
[0003] Due to the extremely low storage temperature of liquefied hydrogen (-253°C), liquefied hydrogen storage vessels use vacuum insulation; otherwise, gases such as O2 and N2 would condense and freeze, creating a partial vacuum. This would result in a gradual increase in gas flow to the cold surface, potentially causing condensed water to accumulate and ice buildup. Ice buildup on the vessel surface creates an undesirable heat load on the insulation, allowing heat to leak into the vessel and resulting in boil-off of the stored product. For this reason, liquefied hydrogen is stored in vacuum-jacketed, column-supported pressure vessels designed in accordance with ASME Section VIII Division 1 or 2. Due to the unique thermodynamic properties of liquefied hydrogen, liquefied hydrogen uses fully evacuated insulation around the cryocontainer to reduce boil-off of the cryocontainer's contents.
[0004] Therefore, there is a need for a device that can provide large scale external pressure storage. Summary of the Invention
[0005] In one embodiment, a plate for an outer container of a storage device is provided, the plate including a body including a beveled joint, the body having a nominal thickness at the beveled joint, the outer beveled joint configured to be welded to a corresponding beveled joint of an adjacent plate.
[0006] In another embodiment, a plate for an outer container of a storage device is provided. The plate includes a body including an outer edge and at least one stiffener coupled to the body inside the outer edge. The outer edge is configured to be welded to a corresponding edge of an adjacent plate without contact between the at least one stiffener and the adjacent plate.
[0007] Embodiments of the present disclosure, briefly summarized above and described in more detail below, can be understood by reference to exemplary embodiments thereof as depicted in the accompanying drawings. It should be noted, however, that the accompanying drawings illustrate only typical embodiments of the present disclosure and therefore should not be considered as limiting its scope, as the present disclosure may admit of other equally effective embodiments. [Brief explanation of the drawings]
[0008] [Figure 1A] 1 illustrates a storage sphere according to certain embodiments. [Figure 1B] 1 shows an exemplary embodiment of a plate. [Figure 1C] FIG. 1C is a cross-sectional view of the plate of FIG. 1B. [Figure 1D] 1 shows a cross-sectional view of adjacent plates welded together. [Figure 1E] The circled area in Figure 1D is shown. [Figure 1F] 10 shows an additional embodiment of the plate. [Figure 1G] FIG. 1F is a cross-sectional view of the plate of FIG. [Figure 1H] 10 shows an additional embodiment of the plate. [Figure 1I] FIG. 1C is a cross-sectional view of the plate shown in FIG. 1H. DETAILED DESCRIPTION OF THE INVENTION
[0009] To facilitate understanding, the same reference numerals have been used, wherever possible, to designate identical elements common to the figures. The drawings are not drawn to scale and may be simplified for clarity. It is contemplated that elements and features of one embodiment may be beneficially incorporated in other embodiments without further recitation.
[0010] The present disclosure describes a plate for an outer vessel of a storage device having a nominal thickness at the outer edge of the plate, and an outer vessel of a storage vessel incorporating the same. The outer edge is configured to be welded to the corresponding edge of an adjacent plate. The plate is reinforced on the inside of the outer edge. The reinforcement can be in the form of increased plate thickness, welded reinforcement on the inside of the outer edge of the plate, or a combination of increased plate thickness and welded reinforcement. For example, the reinforcement can be one or more members, such as plates, braces, framing, etc. When the plates are welded together to form the outer vessel, the stiffness provided by the inner plate thickness and / or reinforcement prevents buckling of the outer vessel due to external pressure.
[0011] The embodiments disclosed herein provide shell plates with interiors that are stiffer than the joints (edges). The reinforcing plates disclosed herein can be reinforced by increasing the thickness of the interior of the plate, by installing reinforcing members in the plate, or by a combination of both increasing the thickness of the plate and installing reinforcing members in the plate. This is advantageous in that the reinforced plate resists buckling without increasing the cost of welding required to join the plates together. The reinforcing plates disclosed herein can be used in vessels of any shape, such as spherical, cylindrical, and elliptical vessels. In one example, the reinforcing plates can be used in thermal vacuum chambers.
[0012] Conventional practice is to use uniform thickness plates that are large enough to prevent buckling. Uniform thickness plates require significantly more welding to join the plates, making it economical to build a liquefied hydrogen sphere of approximately 5,500 m 3This is the limiting factor for scaling up to capacities beyond 5,500m. 3 To scale beyond this, reinforcement would have to be added after the plates were attached, which added schedule time and expense.
[0013] The embodiments disclosed herein allow the maximum size of a liquefied hydrogen sphere to be increased to, for example, about 40,000 m 3 (i.e., approximately eight times the capacity achievable using conventional design methods) or more (e.g., 100,000 m 3 ), at least in part because the storage embodiments described herein provide adequate stiffness while significantly reducing welding costs to join plates within this storage range. High welding costs for double-walled vessels of conventional configurations and material selections preclude scalability of conventional designs.
[0014] In some instances, it may be beneficial to use reinforcing plates on only a portion of the sphere, for example, if the equatorial plates are sufficiently rigid to prevent buckling due to their installation on the support structure of the outer vessel and their installation to support the inner vessel, then only the plates above and below the equatorial course need to be reinforced.
[0015] The embodiments disclosed herein provide a reinforcement configuration in which all reinforcement can be installed at a manufacturing factory rather than welding the reinforcement on-site, thereby significantly reducing project costs and shortening the site / construction schedule. Reinforcement is applied to individual shell plates at the factory, and the reinforced plates are shipped to the site and assembled. Conventional practice involves placing assembled structural reinforcement longitudinally and laterally (continuously) around the entire vessel to achieve overall stability. Because conventional reinforcement spans multiple shell plates and intersects all circumferential weld lines, the reinforcement must be installed on-site after the shell plates are assembled. However, the embodiments disclosed herein effectively avoid this on-site expense. However, it is contemplated that reinforcement can still be installed on-site and / or after assembly of the shell plates disclosed herein. However, as previously discussed, the number of reinforcements used may be reduced compared to conventional design requirements, resulting in cheaper manufacturing and construction of the vessels disclosed herein. The use of stiffeners in the plate embodiments described herein may improve the buckling resistance of the shell compared to a corresponding shell in which no stiffeners are used.
[0016] FIG. 1A illustrates a storage sphere 100 according to certain embodiments. From top to bottom, the storage sphere 100 generally includes an upper head 102, an upper hip course 104, an equatorial course 106, a lower hip course 108, and a lower head 110. The storage sphere 100 is formed from multiple plates 112 (labeled 112a-112c for clarity) having various shapes (shown in more detail in FIGS. 1B, 1F, and 1H). The number of plates can range from tens to hundreds, or even more. Although not shown, the storage sphere 100 surrounds and supports an inner sphere, with the space between the inner sphere and the storage sphere 100 maintained at vacuum pressure. A cryogenic material, such as liquefied hydrogen, can be stored within the inner sphere. This vacuum pressure exerts external atmospheric pressure from the outside to the interior of the storage sphere 100.
[0017] FIG. 1B shows a top view of an exemplary plate 112a. The plate 112a includes a plate body 113 and one or more stiffeners 118. Referring to FIG. 1C, a cross-sectional view of the plate 112a taken along section line CC shows a beveled surface 114 formed around an outer edge (periphery) 116 of the plate body 113. The beveled surface 114 extends from a central portion 115 of the plate body 113 to the edge 116. The thickness of the plate body 113 decreases along the length of the beveled surface 114, as shown in FIG. 1C, with the beveled surface 114 being thinner than the central portion 115. In one example, the distal end of the inclined surface 114 has a thickness that is about 10% to about 90%, such as about 15% to about 85%, such as about 20% to about 80%, such as about 25% to about 75%, such as about 30% to about 70%, such as about 35% to about 65%, such as about 40% to about 60%, or such as about 45% to about 55% of the thickness of the central portion 115. Note that other thickness ratios are also possible depending on the structural specifications.
[0018] The inclined surface 114 may occupy about 1% to about 40% of the width of the plate body 113 and at any particular longitudinal position of the plate body 113. For example, the inclined surface 114 may occupy about 1% to about 30% of the width of the plate body 113, e.g., about 1% to about 20%, or about 1% to about 15%, or about 1% to about 10%, or about 1% to about 5%, or about 3% to about 5%, or about 1% to about 3%. It should be noted that other configurations are also possible. In one example, the inclined surface 114 is formed at an angle of about 60 degrees or less, e.g., about 45 degrees or less, or about 30 degrees or less, or about 5 degrees to about 45 degrees, e.g., about 5 degrees to about 40 degrees, or about 5 degrees to about 30 degrees, or about 5 degrees to about 20 degrees, or about 20 degrees to about 30 degrees, relative to the plate body 113 or its rear surface. It should be noted that other angle configurations are also possible. Additionally, while the plate body 113 is shown as being generally planar, it should be noted that the plate body 113 may also be arcuate in shape to facilitate the formation of a circular vessel. In another example, it is contemplated that one of the upper or lower surfaces of the plate body may be planar, while the other of the upper or lower surface may be arcuate.
[0019] One or more optional stiffeners 118 are located inside the perimeter 116 of each individual plate body 113. The stiffeners 118 are welded to the body of the plate 112 just beyond the inside of the angled surface 114 of the central portion 115. As shown, the stiffeners 118 conform to the shape of the perimeter 116. As shown, the stiffeners 118 are located within the perimeter 116 of each individual shell plate 112a and do not intersect the perimeter 116. Thus, the stiffeners 118 can be installed at the factory because they do not intersect any weld lines when the plate 112a is welded to another plate, such as another plate 112a. When the plates 112a are installed to construct the storage sphere 100, the stiffeners 118 may be located inside the sphere, outside the sphere, or both. In one example, the stiffeners 118 are straight members. The stiffeners may be welded to the plate 112a along the length of the stiffener 118 or may be welded to a discrete location on the stiffener 118. In one example, if a plate 112a with a contoured (e.g., arcuate) surface is used, the stiffeners 118 may also have a corresponding contoured (e.g., arcuate) surface to enhance engagement with the plate 112a.
[0020] 1D-1E are cross-sectional views illustrating two plates 112a welded together at adjacent angled joints 120 of each plate 112a. While the two plates 112a are shown aligned in the same plane and / or generally parallel to one another, it should be understood that the plates 112a may also be aligned at an angle relative to one another to approximate a portion of a sphere, thereby facilitating the formation of a spherical structure. The angled joints 120 may include the outer edge 116 and a portion 117 of the angled surface 114. The thickness of the joints 120 is less than the thickness of the central portion 115. The joints 120 are then welded together to form welds 122. FIG. 1E is an enlarged view of a region of FIG. 1D, showing the welds 122 formed at the outer edge 116 of each plate 112a and the portion 117 of the angled surface 114. FIG. 1E illustrates the edges 116 as flat. However, the edges 116 may have contours, such as being rounded. In some embodiments, the angled surface 114 includes an edge 116 , and the profile of the angled surface 114 terminates at the edge 116 .
[0021] In some embodiments, portion 117 of inclined surface 114 has the same contour, e.g., a taper, as the remainder of inclined surface 114, as shown in FIG. 1E. An alternative portion 117a, having a contour different from that of inclined surface 114, is represented by dashed line 117a. As shown, portion 117a has a contour with a steeper angle than the angle of the remainder of inclined surface 114 (e.g., to facilitate the formation of a double or rear slope). As indicated by the locus of dashed line 117a, joint 120 including alternative portion 117a can have a flat edge 116 that extends from the end of portion 117a to the bottom of plate 113. A further alternative portion 117b is represented by dashed line 117b. The contour of portion 117b may extend to the bottom of plate 113 such that edge 116 does not present a flat surface.
[0022] Portions 117a and 117b may be configured to facilitate the formation of a weld. For example, portions 117a, 117b may be used to form an X-shaped or V-shaped weld line to join adjacent plates. Other weld line shapes and weld joints are also contemplated.
[0023] FIG. 1F is a top view of plate 112b, and a cross-section of plate 112b taken along section line GG is shown in FIG. 1G. FIG. 1H is a top view of plate 112c, and a cross-section of plate 112c taken along section line II is shown in FIG. 1I. Plates 112b and 112c are configured similarly to plate 112a. Plates 112b and 112c differ from plate 112a in that plate body 113 has a different peripheral shape. Plates 112b and 112c may also have different arrangements of stiffeners 118 to accommodate the different peripheral shapes. Edge 116 may be defined by the end of portion 117, 117a, or 117b, as described above.
[0024] Multiple plates can be welded together to form storage sphere 100. For example, plate 112a can be welded at each joint 120 to another plate 112a or to plates having different shapes, such as plates 112b and 112c. Plates 112b and 112c can be similarly welded to other plates in the same manner as described above for plate 112a.
[0025] In some embodiments, the edges 116 of the plates 112a, 112b, 112c abut (eg, touch) the edges of adjacent plates.
[0026] In some examples, stiffeners 118 may be used only on the upper and lower plates of equatorial course 106, such as plates 112a-112c, at least in part because the equatorial plates already include stiffeners as part of the inner sphere support structure.
[0027] In some embodiments, stiffeners 118 and / or plates 112a-112c are formed from one or more alloys of steel, such as carbon steel, etc. Other materials, such as aluminum (and aluminum alloys), are also contemplated.
[0028] Embodiments of the present disclosure provide plates and vessels using the same that have increased thickness in the center and decreased thickness at the periphery. Such configurations increase support and / or stiffness due to the increased material in the center, while reducing costs associated with welding adjacent plates due to the decreased material thickness at the periphery of the plate. The plates are suitable for spherical storage vessels, particularly those with a capacity of approximately 5,500 m². 3 This facilitates cost-effective construction of vessels with increased storage capacity.
[0029] While the foregoing is directed to embodiments of the present disclosure, other and further embodiments of the present disclosure may be devised without departing from the basic scope thereof.
Claims
1. A plate of an outer container of a storage device, a body including a central portion, an outer edge, a sloped surface extending from the central portion to the outer edge, and a sloped interface; the angled joint includes a portion of the angled surface of the body and the outer edge of the body, the thickness of the angled joint is less than the thickness of the central portion of the body, and the angled joint is configured to be welded to a corresponding angled joint of an adjacent plate; The plate, wherein the portion of the angled surface and the angled surface have different contours.
2. The plate of claim 1 , wherein the angled joints are disposed around the entire periphery of the body.
3. The plate of claim 1, wherein the thickness of the angled joint is between 30% and 70% of the thickness of the central portion of the body.
4. The plate of claim 1 , wherein one or more stiffeners are bonded to the body inside the angled joint.
5. The plate of claim 4 , wherein the one or more stiffeners include two parallel stiffeners.
6. The plate of claim 4 , wherein the one or more stiffeners are arranged in a shape corresponding to a perimeter shape of the body.
7. A plate as described in claim 1, wherein the acute angle formed by the extension direction of the main body and the portion of the inclined surface is larger than the acute angle formed by the extension direction of the main body and the remaining portion of the inclined surface.
8. A plate described in any one of claims 1 to 7, wherein the outer edge portion of the main body includes a surface extending perpendicular to the extension direction of the main body from the portion of the inclined surface to a surface opposite the inclined surface.
9. 1. A plate arrangement for a storage device, comprising: A plurality of plates, each plate comprising: The main body and an inclined surface formed on the body; a sloped joint formed in the body and including a portion of the sloped surface, each plate being welded to the sloped joint of at least one other plate of the plurality of plates at the sloped joint; A plate arrangement wherein the portion of the inclined surface and the inclined surface have different contours.
10. 10. The plate arrangement of claim 9, wherein the angled surface surrounds a central portion of the body, the central portion having a thickness greater than a thickness of the portion of the body having the angled surface.
11. The plate arrangement of claim 10 , wherein at least one stiffener is bonded to the central portion within the boundary of the ramp.
12. 12. The plate arrangement of claim 11, wherein the at least one stiffener coupled to the central portion of a first plate of the plurality of plates does not contact a second plate of the plurality of plates.
13. The plate arrangement of claim 11 , wherein the at least one stiffener is arranged in a shape corresponding to a perimeter shape of the body defined by an outer edge of the body.
14. 11. The plate arrangement of claim 10, wherein the thickness of the angled joint is between 30% and 70% of the thickness of the central portion of the body.
15. A plate arrangement described in any one of claims 9 to 14, wherein the acute angle formed by the extension direction of the body and the portion of the inclined surface is greater than the acute angle formed by the extension direction of the body and the remaining portion of the inclined surface, and / or the outer edge portion of the body has a surface extending perpendicular to the extension direction of the body from the portion of the inclined surface to a surface opposite the inclined surface.
16. A large cryogenic storage vessel, A plurality of plates arranged in a spherical configuration to form a thermal vacuum chamber, each plate comprising: a body including a central portion and an inclined portion surrounding the central portion, the central portion having a thickness greater than a thickness of the inclined portion; an inclined surface formed on the inclined portion; a sloped joint formed in the body and including a portion of the sloped surface, each plate being welded to the sloped joint of at least one other plate of the plurality of plates at the sloped joint; The container wherein the portion of the inclined surface and the inclined surface have different contours.
17. A container as described in claim 16, wherein the acute angle formed by the extension direction of the body and the portion of the inclined surface is greater than the acute angle formed by the extension direction of the body and the remaining portion of the inclined surface, and / or the outer edge of the body has a surface extending perpendicular to the extension direction of the body from the portion of the inclined surface to a surface opposite the inclined surface.
18. A container as described in claim 16, wherein one or more reinforcing members are bonded to the central portion of a first plate of the plurality of plates, and the one or more reinforcing members do not contact another plate of the plurality of plates.
19. 17. The container of claim 16, wherein the thickness of the angled joint is between 30% and 70% of the thickness of the central portion of the body.
20. 20. The container of any one of claims 16 to 19, wherein the equatorial course of the container does not include one plate of the plurality of plates, the equatorial course being formed from an arrangement of a second plate.
Citation Information
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