Pressurized Fluid Tank and Method of Manufacturing Such a Tank
A metal tank ( 1 ) for storing fluid under high pressure, comprising, along its axis ( 2 ), a plurality of adjacent compartments ( 10, 71, 91 ) separated by partitions ( 3 ), each compartment having a cylindrical wall ( 72 ), a transition zone ( 73 ) connecting each partition to the cylindrical wall, the compartments communicating with one another via at least one orifice ( 6 ) made in each partition, in which, for a given compartment, the cylindrical wall is connected via an annular weld ( 75 ) to the transition zone of the adjacent compartment.
1 . A metal tank for storing fluid under high pressure, comprising, along its axis, a plurality of adjacent compartments separated by partitions, each compartment having a cylindrical wall, a transition zone connecting each partition to the cylindrical wall, the compartments communicating with one another via at least one orifice made in each partition, in which, for a given compartment, the cylindrical wall is connected via an annular weld to the transition zone of the adjacent compartment.
2 . The tank according to claim 1 , wherein the end compartments differ from the central compartments, all the central compartments being identical to one another.
3 . The tank according to claim 1 , comprising a single inlet/outlet interface situated at an inlet/outlet end of the said tank.
4 . The tank according to claim 3 , wherein the partitions are domed, the concave face of the partitions facing towards the inlet/outlet end of the tank.
5 . The tank according to claim 1 , wherein each partition has a single orifice, placed in the centre of said partition, the diameter of the orifice ranging between 1 and 5 mm.
6 . A method of manufacturing a metal tank for storing fluid under high pressure, the method comprising the following steps in turn:
forming basic elements comprising a cylindrical wall of round cross section, a partition comprising an orifice and fitted perpendicular to the axis of the cylindrical wall, a transition zone connecting a first end of the cylindrical wall to the partition, a second end of the cylindrical wall constituting a free edge;
juxtaposing a plurality of identical basic elements in such a way as to cause the respective axes of the cylindrical walls to coincide; and
joining the said plurality of basic elements together by welding the free edge of the end of the cylindrical wall of each basic element to the transition zone of the adjacent element.
7 . The method according to claim 6 , wherein the basic elements are essentially formed by drawing.
8 . The method according to claim 6 , wherein the basic elements are essentially formed by the removal of material.
9 . The method according to claim 6 , wherein the plurality of basic elements are joined together by electron beam welding.
10 . The method according to claim 6 , wherein end elements are also welded to the two ends of the said plurality of basic elements, the end elements differing from the basic elements.
11 . The method according to claim 6 , wherein the transition zone of each basic element comprises a centring shoulder around which the free edge of the adjacent element is positioned.