INSULATION SUPPORT AND LIQUID HYDROGEN STORAGE CONTAINER CONTAINING THE INSULATION SUPPORT FOR AUTOMOTIVE
20230213146 · 2023-07-06
Inventors
Cpc classification
F17C2203/014
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0391
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/0109
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0178
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0629
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0673
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present disclosure provides an insulation support that is disposed in a vacuum space between an inner container and an outer container of a liquid hydrogen storage container composed of the inner container and the outer container, and supports the inner container, in which the insulation support has a first end being in contact with the inner container and a second end being in contact with the outer container, and is bent several times into several layers; and an automotive liquid hydrogen storage container including the insulation support.
Claims
1. An insulation support that is disposed in a vacuum space between an inner container and an outer container of a liquid hydrogen storage container composed of the inner container and the outer container, and supports the inner container, wherein the insulation support has an end being in contact with the inner container and the other end being in contact with the outer container, and is bent several times into several layers.
2. The insulation support of claim 1, wherein the insulation support is made of a composite material including a resin material and reinforced fiber.
3. The insulation support of claim 2, wherein gaps between the layers are vacuums.
4. The insulation support of claim 2, wherein a cavity is formed at a center area.
5. The insulation support of claim 4, wherein gaps between the adjacent layers overlapped are filled with a filler.
6. The insulation support of claim 5, configured to be installed in plural in a circumferential direction of the inner container.
7. An automotive liquid hydrogen storage container including the insulation support of claim 1.
8. The automotive liquid hydrogen storage container of claim 7, wherein an end of the inner container is fixed to the outer container.
9. The automotive liquid hydrogen storage container of claim 8, wherein an opposite end of the inner container of the liquid hydrogen storage container is not fixed to be able to move longitudinally.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION
[0039] Hereafter, an automotive liquid hydrogen storage container according to the present disclosure is described in detail with reference to
[0040]
[0041] An automotive liquid hydrogen storage container according to an embodiment of the present disclosure is a horizontal type storage container and has a double structure composed of an inner container 110 storing liquid hydrogen and an outer container 120 surrounding and accommodating the inner container 110.
[0042] An injection port (not shown) for injecting hydrogen fuel is installed on the outer container 120, and a vacuum nozzle 160 for vacuuming a gap space 130 between the inner container 110 and the outer container 120 is installed at an end of the outer container 120.
[0043] An end of the longitudinal ends of the inner container 110, where the vacuum nozzle 160 is installed, is fixed to the outer container 120 by a fixed member 150 and a fixed frame 151 connected to the fixed member 150. The opposite end of the inner container 110 is not fixed, so the opposite end can longitudinally freely move when a thermal load is applied.
[0044] An insulation support 140 for supporting the inner container 110 is installed between the inner container 110 and the outer container 120. The insulation support has an end being in contact with the inner container 110 and the other end being in contact with the outer container 120.
[0045] The insulation support 140 is made of a composite material having excellent insulation performance, so the insulation support 140 minimizes heat transfer from the outside to maintain the temperature of −253° C. of the liquid hydrogen stored in the inner container 110.
[0046] The insulation support 140 is made of a composite material containing resin and is composed of several layers overlapping each other, so when the inner container 110 is moved longitudinally (to the left in
[0047] The insulation support 140, as shown in
[0048]
[0049] The insulation support 140 is made of a composite material including a resin material 141b and a reinforced fiber 141a. Two or more of reinforce fibers may be included in the composite material. The composite material may be fabricated by impregnating the resin material 141b with the reinforced fiber 141a. The insulation support 140, as shown in
[0050] The insulation support 140 is formed by folding a composite material body 141 in several layers, and a gap 143 exists between each two adjacent layers overlapped. The insulation support 140 is installed and compressed in the gap space 130 between the inner container 110 and the outer container 120, and can sufficiently support the inner container 110 in this state. Since the insulation support 140 is composed of several overlapping layers, even though the inner container 110 is moved longitudinally by a thermal load, the insulation support 140 can absorb the thermal deformation.
[0051] Hereafter, the insulation performance of the insulation support 140 is described in detail.
[0052] In a liquid hydrogen storage container composed of an inner container accommodating liquid hydrogen and an outer container surrounding the inner container, the space between the inner container and the outer container is made to be a vacuum for vacuum insulation. A support that can maintain a predetermined distance between the inner container and the outer container is required for vacuum insulation in the liquid hydrogen storage container.
[0053] In a liquid hydrogen storage container, the temperature of an inner container drops to −253° C., that is the temperature of liquid hydrogen, so there is limit in satisfying both strength and insulation performance using wooden supports that are generally used for LNG tanks.
[0054] As a support having excellent strength and insulation performance under an extremely low-temperature environment such as the inside of a liquid hydrogen storage container, a support made of a composite material such as fiber reinforced plastic (FRP) can be used.
[0055] Although depending on the kinds of fibers and matrix resin, the thermal conductivity of fiber reinforced plastic (FRP) is about 0.3 W/mK. However, when a composite material structure formed by folding a fiber reinforced plastic (FRP) material in several layers like the insulation support 140 according to the present disclosure is in a vacuum state, although depending on the vacuum state, there is a difference of 4.6 million times in comparison to fiber reinforced plastic (FRP) when the composite material structure has thermal conductivity of 6.5×10.sup.−8 W/mK in a vacuum environment at 10.sup.−3 Torr.
[0056] That is, as for a support made of a fiber reinforced plastic material in the related art, as shown in
[0057] However, as shown in
[0058]
[0059] That is, as the result of performing finite element analysis using an ANSYS numerical analysis program, heat flux of the support made of a composite material rigid body of the related art shown in
[0060]
[0061] In this embodiment, an insulation support 2140 is formed by folding a composite material body 2141 into several layers and the gaps of the overlaps are filled with a filler 2144. In the insulation support 140 according to the embodiment shown in
[0062] It is preferable that the filler 2144 is made of a material that can minimize heat transfer due to conduction and radiation. For example, it is preferable that the filler 2144 is formed by stacking a glass paper or a glass net and a thin-film Al-file into several layers to be able to perform also an insulation function. More preferably, the thickness of the filler 2144 is set in a range similar to the size of the gaps 143, whereby structural stability can be increased.
[0063] The above description merely explains the spirit of the present disclosure and the present disclosure may be changed, modified, and replaced in various ways without departing from the spirit of the present disclosure by those skilled in the art. Accordingly, the embodiments described herein are provided merely not to limit, but to explain the spirit of the present disclosure, and the spirit of the present disclosure is not limited by the embodiments. The protective range of the present disclosure should be construed by the following claims and the scope and spirit of the present disclosure should be construed as being included in the patent right of the present disclosure.
DETAILED DESCRIPTION OF MAIN ELEMENTS
[0064] 100: storage container
[0065] 110: inner container
[0066] 120: outer container
[0067] 130: gap space
[0068] 140, 1140, 2140: insulation support
[0069] 141, 1141, 2141: composite material body
[0070] 141a: reinforced fiber
[0071] 141b: resin material
[0072] 143, 1143: gap
[0073] 145: cavity
[0074] 150: fixed member
[0075] 160: vacuum nozzle
[0076] 2144: filler