Double-shell tank and liquefied gas carrier ship
10207775 ยท 2019-02-19
Assignee
Inventors
- Ryosuke Uraguchi (Akashi, JP)
- Asako Murakami (Kobe, JP)
- Naruyoshi Izumi (Kobe, JP)
- Atsushi Sano (Kakogawa, JP)
- Osamu Muragishi (Kakogawa, JP)
Cpc classification
F17C2223/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0629
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/012
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/018
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C3/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/052
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0379
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/0161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/0109
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0105
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0352
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0379
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C1/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/32
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F17C2221/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F17C3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A horizontal type cylindrical double-shell tank includes an inner shell and an outer shell. The inner shell includes an inner shell main part storing a liquefied gas and an inner shell dome protruding from the inner shell main part. The outer shell forms a vacuum space between the inner shell and the outer shell, and includes an outer shell main part surrounding the inner shell main part and an outer shell dome surrounding the inner shell dome. The inner shell dome is provided with an inner shell manhole. The outer shell dome is provided with an outer shell manhole at a position corresponding to a position of the inner shell manhole.
Claims
1. A horizontal type cylindrical double-shell tank comprising: an inner shell including an inner shell main part storing a liquefied gas and an inner shell dome, the inner shell main part including a cylindrical body portion that extends horizontally and sealing portions that seal openings on both sides of the body portion, the inner shell dome protruding from the body portion of the inner shell main part; and an outer shell forming a vacuum space between the inner shell and the outer shell, the outer shell including an outer shell main part surrounding the inner shell main part and an outer shell dome surrounding the inner shell dome, wherein the inner shell dome and the outer shell dome are penetrated by a pipe, the inner shell dome includes a first peripheral wall and a first ceiling wall, and the first ceiling wall is provided with an inner shell manhole, the outer shell dome includes a second peripheral wall and a second ceiling wall, and the second ceiling wall is provided with an outer shell manhole at a position corresponding to a position of the inner shell manhole.
2. The double-shell tank according to claim 1, comprising an annular blocking member disposed between the inner shell dome and the outer shell dome, the blocking member dividing the vacuum space into a first space and a second space, the first space including a space between the inner shell manhole and the outer shell manhole, the second space being positioned at the inner shell main part side.
3. The double-shell tank according to claim 2, wherein the blocking member is disposed at the inner shell main part side as seen from a position where the inner shell dome and the outer shell dome are penetrated by a pipe.
4. The double-shell tank according to claim 2, wherein an outer side surface of the inner shell dome is provided with a first ring protruding from the outer side surface, an inner side surface of the outer shell dome is provided with a second ring protruding from the inner side surface, and the blocking member is disposed in a manner to bridge between the first ring and the second ring.
5. The double-shell tank according to claim 4, wherein the first ring and the second ring are plate-shaped members, which are flattened in a particular direction, the particular direction defining a protruding direction of the inner shell dome, and which face each other in the particular direction, and the blocking member is a bellows pipe extending in the particular direction.
6. The double-shell tank according to claim 1, comprising a thermal-insulating material, which covers a part of the pipe penetrating the inner shell dome and the outer shell dome, the part being positioned between the inner shell dome and the outer shell dome.
7. A liquefied gas carrier ship comprising the double-shell tank according to claim 1.
8. The liquefied gas carrier ship according to claim 7, comprising a tank cover covering the double-shell tank, wherein an inert gas is enclosed in a space between the double-shell tank and the tank cover.
9. The liquefied gas carrier ship according to claim 8, wherein the tank cover is provided with an outermost manhole at a position corresponding to the position of the outer shell manhole.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
DESCRIPTION OF EMBODIMENTS
(6)
(7) The double-shell tank 2 is a horizontal type cylindrical tank. In general, the double-shell tank 2 is disposed such that the axial direction of the tank 2 is parallel to the ship length direction. Specifically, the double-shell tank 2 includes an inner shell 3 and an outer shell 4. The outer shell 4 forms a vacuum space 20 between the inner shell 3 and the outer shell 4.
(8) The inner shell 3 includes an inner shell main part 31 storing a liquefied gas and an inner shell dome 32 protruding in a particular direction from the inner shell main part 31. In the present embodiment, the particular direction is the vertical direction, and the inner shell dome 32 protrudes upward from the inner shell main part 31. The particular direction, which defines the protruding direction of the inner shell dome 32, may alternatively be a diagonal direction.
(9) The inner shell main part 31 includes: a body portion extending laterally with a constant cross-sectional shape; and hemispherical sealing portions sealing openings on both sides of the body portion. Alternatively, each sealing portion may have a flat shape perpendicular to the body portion or may be dish-shaped.
(10) For example, the liquefied gas stored in the inner shell main part 31 is liquefied petroleum gas (LPG, about 45 C.), liquefied ethylene gas (LEG, about 100 C.), liquefied natural gas (LNG, about 160 C.), or liquefied hydrogen (LH.sub.2, about 250 C.).
(11) As shown in
(12) The outer shell 4 includes an outer shell main part 41 surrounding the inner shell main part 31 and an outer shell dome 42 surrounding the inner shell dome 32. That is, the outer shell main part 41 has the shape of the inner shell main part 31, but is larger than the inner shell main part 31, and the outer shell dome 42 has the shape of the inner shell dome 32, but is larger than the inner shell dome 32.
(13) The outer shell dome 42 includes: a peripheral wall 42a extending upward from the outer shell main part 41; and a dish-shaped ceiling wall 42b, which is raised upward from the upper end of the peripheral wall 42a. The ceiling wall 42b may have a different shape, for example, a hemispherical shape.
(14) The outer shell main part 41 is, for example, supported by saddles (not shown) provided on a hull. A pair of support mechanisms 21 (see
(15) A submerged pump (not shown) for discharging the liquefied gas from the inside of the tank 2 to the outside is disposed at the inner bottom of the inner shell 3. The double-shell tank 2 is provided with various pipes 13, such as a liquefied gas pipe and an electric wire pipe. The pipes 13 penetrate the inner shell dome 32 and the outer shell dome 42. It should be noted that each of
(16) In the present embodiment, each pipe 13 penetrates the peripheral wall 32a of the inner shell dome 32 and the peripheral wall 42a of the outer shell dome 42. However, each pipe 13 may be bent between the inner shell dome 32 and the outer shell dome 42 by 90 degrees to penetrate the peripheral wall 32a of the inner shell dome 32 and the ceiling wall 42b of the outer shell dome 42 or to penetrate the ceiling wall 32b of the inner shell dome 32 and the peripheral wall 42a of the outer shell dome 42.
(17) A thermal-insulating material 15 covers a part of each pipe 13, the part being positioned between the inner shell dome 32 and the outer shell dome 42. This makes it possible to suppress the entry of heat from the outside of the tank 2 into the inner shell 3 through the pipes 13. Outside the outer shell 4, each pipe 13 is accommodated in a vacuum pipe 14, and thereby heat transfer from the atmosphere to the pipes 13 is suppressed.
(18) The ceiling wall 32b of the inner shell dome 32 is provided with an inner shell manhole 30 so that the submerged pump disposed in the inner shell 3 can be inspected. The ceiling wall 42b of the outer shell dome 42 is provided with an outer shell manhole 40 at a position corresponding to the position of the inner shell manhole 30. Specifically, an inner shell manhole pipe 33, which defines the inner shell manhole 30, is mounted to the ceiling wall 32b of the inner shell dome 32, and an outer shell manhole pipe 43, which defines the outer shell manhole 40, is mounted to the ceiling wall 42b of the outer shell dome 42. Manhole covers 34 and 44 are fixed to flanges provided at the upper ends of the manhole pipes 33 and 43. It should be noted that the position where the inner shell manhole 30 is provided may be the center of the ceiling wall 32b or may be a position displaced from the center of the ceiling wall 32b.
(19) Returning to
(20) From the viewpoint of restricting the positions of the inner shell dome 32 and the outer shell dome 42 relative to each other, one of the aforementioned pair of support mechanisms 21 may be disposed directly below the inner shell dome 32 and the outer shell dome 42, and may be configured to support the inner shell main part 31 in a non-slidable manner. In this case, the other support mechanism 21 is configured to support the inner shell main part 31 such that the inner shell main part 31 is slidable in the axial direction of the tank 2.
(21) Alternatively, in a case where a mechanism for fixing the inner shell dome 32 and the outer shell dome 42 is disposed between the inner shell dome 32 and the outer shell dome 42, both the support mechanisms 21 may be disposed at any positions, and may be configured to support the inner shell main part 31 such that the inner shell main part 31 is slidable in the axial direction of the tank 2.
(22) In the present embodiment, as shown in
(23) In the present embodiment, the first ring 51 protrudes radially outward from the peripheral wall 32a of the inner shell dome 32, and the second ring 52 protrudes radially inward from the peripheral wall 42a of the outer shell dome 42.
(24) The blocking member 5 divides the vacuum space 20 between the inner shell 3 and the outer shell 4 into a first space 20A and a second space 20B. The first space 20A includes a space between the inner shell manhole 30 and the outer shell manhole 40. The second space 20B is positioned at the inner shell main part 31 side. In the present embodiment, the blocking member 5 is disposed at the inner shell main part 31 side as seen from a position where the inner shell dome 32 and the outer shell dome 42 are penetrated by the pipes 13 (in the present embodiment, the blocking member 5 is disposed below the position). In the present embodiment, a bellows pipe 5A extending in the aforementioned particular direction defining the protruding direction of the inner shell dome 32 is used as the blocking member 5.
(25) The first ring 51 and the second ring 52 are plate-shaped members, which are flattened in the aforementioned particular direction and which face each other in the particular direction. In the present embodiment, the first ring 51 is disposed under the blocking member 5, and the second ring 52 is disposed over the blocking member 5. One end (lower end) of the blocking member 5 is fixed to the upper surface of the first ring 51, and the other end (upper end) of the blocking member 5 is fixed to the lower surface of the second ring 52. However, as an alternative, the first ring 51 may be disposed over the blocking member 5, and the second ring 52 may be disposed under the blocking member 5.
(26) In the double-shell tank 2 with the above-described configuration, the inner shell dome 32 is provided with the inner shell manhole 30, and the outer shell dome 42 is provided with the outer shell manhole 40. Accordingly, if the positions of the inner shell dome 32 and the outer shell dome 42 relative to each other are restricted, then the positions of the inner shell manhole 30 and the outer shell manhole 40 relative to each other are also restricted. Moreover, since such restriction can be realized at one position (e.g., one of the support mechanisms 21 or a fixing mechanism disposed between the inner shell dome 32 and the outer shell dome 42), thermal stress to the inner shell 3 can be prevented from occurring when thermal contraction of the inner shell 3 occurs. Furthermore, when the inner shell manhole 30 is opened, a part of the pipes 13, the part being positioned inside the inner shell dome 32, can be visually checked, and thereby regular inspection of the inside of the inner shell 3 can be performed efficiently.
(27) Further, in the present embodiment, the vacuum space 20 between the inner shell 3 and the outer shell 4 is divided by the blocking member 5 into the first space 20A and the second space 20B. Accordingly, when the outer shell manhole 40 is opened, only the first space 20A, which is a small part of the vacuum space 20, becomes open to the atmosphere. Therefore, the volume of the space that needs to be made vacuum again after closing the outer shell manhole 40 can be reduced.
(28) Still further, in the present embodiment, the blocking member 5 is disposed in a manner to bridge between the first ring 51 and the second ring 52. This allows the blocking member 5 to have a simple shape.
Other Embodiments
(29) The present invention is not limited to the above-described embodiment. Various modifications can be made without departing from the spirit of the invention.
(30) For example, as shown in
(31) The blocking member 5 may be a straight pipe extending in the particular direction defining the protruding direction of the inner shell dome 32.
(32) It is not essential for the annular blocking member 5 to be a member extending in the particular direction, and the blocking member 5 may have any shape, so long as the shape of the blocking member 5 has a central hole.
(33) For example, as shown in
(34) It is not essential for each of the first ring 51 and the second ring 52 to be a plate-shaped member that is flattened in the particular direction. For example, as shown in
INDUSTRIAL APPLICABILITY
(35) The double-shell tank according to the present invention is useful not only as a tank to be mounted on a liquefied gas carrier ship but also as a tank to be installed on the ground.
REFERENCE SIGNS LIST
(36) 1 liquefied gas carrier ship 10 space 11 tank cover 12 outermost manhole 2 double-shell tank 20 vacuum space 20A first space 20B second space 3 inner shell 30 inner shell manhole 31 inner shell main part 32 inner shell dome 4 outer shell 40 outer shell manhole 41 outer shell main part 42 outer shell dome 5 blocking member 5A bellows pipe 51 first ring 52 second ring