Fuel tank
11052754 ยท 2021-07-06
Assignee
Inventors
Cpc classification
B60K15/03177
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03453
PERFORMING OPERATIONS; TRANSPORTING
B60K2015/03032
PERFORMING OPERATIONS; TRANSPORTING
B29C51/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A fuel tank made of a resin includes: a tank body having walls facing each other therein; and an internal strut including both ends fixed to the facing walls respectively. The internal strut has a grid shape such that through holes are arranged as viewed from a side.
Claims
1. A fuel tank made of a resin comprising: a tank body having walls facing each other therein; an internal strut extending between the facing walls in an axial direction of the internal strut and including opposite axial ends fixed to the facing walls respectively; wherein the internal strut includes a honeycomb structure which has adjacent through holes arranged in a grid shape in the axial direction of the internal strut as viewed from a side, and wherein the adjacent through holes extend through the internal strut from a side of the internal strut to an opposite side to the side of the internal strut in a direction orthogonal to the axial direction of the internal strut.
2. The fuel tank according to claim 1, wherein the adjacent through holes are hexagonal holes.
3. A fuel tank, made of a resin comprising: a tank body having walls facing each other therein; an internal strut including opposite ends fixed to the facing walls respectively; wherein the internal strut includes a honeycomb structure which has adjacent through holes arranged in a grid shape as viewed from a side, wherein the internal strut further has a substantially cylindrical shape having circular welding faces welded to the walls on the opposite ends of the internal strut respectively, and wherein the adjacent through holes extend through the internal strut from a side of the internal strut to an opposite side to the side of the internal strut.
4. The fuel tank according to claim 1, wherein the internal strut comprises two or more internal struts, the fuel tank further comprising a coupling part coupling neighboring internal struts to each other, wherein the coupling part has a structure which has adjacent coupling through holes arranged in a grid shape as viewed from a side, and wherein the adjacent coupling through holes are arranged in a grid shape together with the adjacent through holes and extend through the coupling part from a side of the coupling part to the opposite side in the same direction as the adjacent through holes extend.
5. The fuel tank according to claim 4, wherein coupling part is located away from both ends of the internal struts.
6. The fuel tank according to claim 3, wherein the internal strut comprises two or more internal struts, the fuel tank further comprising a coupling part coupling neighboring internal struts to each other, wherein the coupling part has a honeycomb structure which has adjacent coupling through holes arranged in a grid shape as viewed from a side, and wherein the adjacent coupling through holes are arranged in a grid shape together with the adjacent through holes and extend through the coupling part from a side of the coupling part to the opposite side in the same direction as the adjacent through holes extend.
7. The fuel tank according to claim 6, wherein coupling part is located away from both ends of the internal struts.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated in and constitute part of this specification, illustrate embodiments of the invention and together with the description, serve to explain the principles of the invention. The embodiments illustrated herein are presently preferred, it being understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown, wherein:
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DETAILED DESCRIPTION OF THE INVENTION
(9) As illustrated in
(10) With reference also to
(11) Preferred embodiments of the internal strut 3 are described below.
First Embodiment
(12) In
(13) The through holes 4 are hexagonal holes 9. That is, the strut central part 6 of the internal strut 3 has a honeycomb structure. The hexagonal holes 9 are arranged in three lines extending in the direction of the axis O. The grid wall 5 near the circumferential surface of the strut central part 6 is formed as accordion-like planes 10. Meanwhile, a part of each of the hexagonal holes 9 around an opening end is formed like an arc in a circumferential direction around the axis O as can be seen from
(14) The welding face parts 8 are formed as a circular plate. The welding face parts 8 have arc ribs 12 formed thereon concentrically on the axis O. The arc ribs 12 each located on the same circumferential line are formed with cuts. Provision of these arc ribs 12 enables resin of the tank body 2 to come around the arc ribs 12 during thermal welding and therefore improves the weldability between the tank body 2 and the internal strut 3.
(15) According to the present embodiment, the through holes 4 are the hexagonal holes 9 and accordingly the internal strut 3 has a honeycomb structure. Therefore, both high rigidity and excellent elasticity of the internal strut 3 are provided. The internal strut 3 in a substantially cylindrical shape, having the circular welding face parts 8 on the both ends, respectively, enables the load applied to the welded parts or the internal strut 3 to be transmitted uniformly around the axis O. This construction reduces excessive stress concentration on the internal strut 3.
Second Embodiment
(16) In a second embodiment, two internal struts 3 are coupled with a coupling part 13 as illustrated in
(17) If an excessive force is applied on one of the internal struts 3, the coupling part 13 coupling the internal struts 3 to each other makes the excessive force transmitted to the other internal strut 3 through the coupling part 13. With the coupling part 13 provided at a midpoint of the internal struts 3 away from the both ends of the internal struts 3, the coupling part 13 is placed at a region being highly elastic due to the grid shape and stress concentration on the coupling part 13 is reduced. Further, because the coupling part 13 includes the coupling through holes 14 extending therethrough in the same direction as the hexagonal holes 9 and being arranged side by side in the directions of the axes O of the internal struts 3, the elasticity of the coupling part 13 itself is ensured and the coupling part 13 is expanded and contracted according to expanding and contracting motions of the internal struts 3. This construction further reduces the stress concentration around the coupling part 13.
(18) Preferred embodiments of the present invention have been described above. The through holes 4 are not limited to the hexagonal holes 9 and may be circular holes 15 illustrated in
(19) In the second embodiment, it is permissible to provide three or more internal struts 3.
(20) According to the first aspect of the present invention, an internal strut has a grid shape such that through holes are arranged as viewed from the side. Therefore, as compared to an internal strut partially including a portion that elastically deforms easily, the internal strut enhances in the rigidity. When walls of a tank body are deformed outward or inward due to internal pressure variation of the tank body and a tensile or compressive force is applied to the internal strut in the axis direction, the grid structure has a portion around each of the through holes flexed in the axis direction. This construction of the internal strut of the present invention ensures the elasticity and the rigidity in a balanced manner and reduces stress concentration on welded parts between the tank body and the internal strut.
(21) According to the second aspect, the grid shape is a honeycomb shape and thus both high rigidity and excellent elasticity of the internal strut are achieved.
(22) According to the third aspect, when the internal strut is formed in a substantially cylindrical shape having circular welding face parts on both ends thereof, respectively, the load applied to the welded parts or the internal strut is transmitted uniformly around the axis. This construction reduces excessive stress concentration on the internal strut.
(23) According to the fourth aspect, the coupling part that couples the internal struts to each other is provided, and if an excessive force is applied to one of the internal struts, the coupling part transmits the excessive force to the other internal strut through the coupling part.
(24) According to the fifth aspect, the coupling part is provided at a region highly elastic due to the grid shape, and thus stress concentration on the coupling part is reduced.
(25) According to the sixth aspect, the elasticity of the coupling part itself is ensured and the coupling part is expanded and contracted according to expanding and contracting motions of the internal struts. This construction further reduces the stress concentration on the coupling part.
(26) According to the present invention, when the stress concentration on the welded parts between the tank body and the internal strut is reduced during deformation of the tank body, the elasticity and the rigidity of the internal strut is ensured in a balanced manner.
(27) Although the invention has been described above by reference to certain embodiments of the invention, the invention is not limited to the embodiments described above. Modifications and variations of the embodiments described above will occur to those skilled in the art, in light of the above teachings. The scope of the invention is defined with reference to the following claims.