Systems, methods and assemblies for improved explosion and fire resistance in fluid enclosures - Patents.com

Extended metallic meshes in a cylindrical base module address the challenge of improving fire and explosion resistance in fluid containers by enhancing thermal conductivity and mechanical strength while minimizing volume occupation and preventing corrosion and evaporation.

JP7678700B2Active Publication Date: 2025-05-16ATOM ALLOYS LLC
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Patent Information

Application Number
JP2021076000
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-05-09
Filing Date
2021-04-28
Publication Date
2025-05-16
Estimated Expiration
2038-08-08

AI Technical Summary

Technical Problem

Existing fluid containers for fuels and gases lack effective solutions for improving fire and explosion resistance while maintaining mechanical integrity, minimizing volume occupation, and preventing corrosion and evaporation.

Method used

The use of extended metallic meshes as heat conductors and anti-flammatory bodies within fluid containers, specifically in a base module with a cylindrical configuration, which enhances thermal conductivity, mechanical strength, and corrosion resistance.

Benefits of technology

This solution effectively suppresses combustion, reduces ignition risks, maintains mechanical integrity, minimizes volume occupation, and prevents corrosion and evaporation, thereby enhancing the fire and explosion resistance of fluid containers.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a system, an assembly, a device and a related method for improving fire resistance and explosive fracture resistance in a fluid container such as a fuel tank of liquid and gas.SOLUTION: A fluid container comprises: a plurality of assemblies 100 arranged in the fluid container; and a net arranged around the plurality of assemblies. The plurality of assemblies has a vertical axis and a plurality of base modules 10 arrayed along the vertical axis. Each of the plurality of base modules is formed by a mesh.SELECTED DRAWING: Figure 1A
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Description

Claiming priority

[0001] This application claims priority to a previously filed U.S. patent application Ser. No. 15 / 975,518, filed May 9, 2018, which claims priority to a provisional patent application, U.S. Provisional Patent Application No. 62 / 635,177, filed February 26, 2018, the contents of which are incorporated herein by reference in their entireties. [Technical field]

[0002] The present invention relates to systems, assemblies, apparatus, and related methods for improving fire and explosion resistance in fluid enclosures, such as liquid and gas fuel tanks. [Background technology]

[0003] In one embodiment, the present invention suppresses the combustion or tendency to combust of fuels and gases stored within the inventive containers described herein. In one aspect, the inventive device of the present invention reduces the ignition probabilities of the system by increasing the heat loss characteristics through a large and efficient heat transfer path, such as by placing a base module made of expanded metal mesh inside the container. However, the development of a container for the transport and storage of fuels and gases that is effective in suppressing combustion but does not sacrifice other beneficial properties requires further consideration beyond simple heat transfer away from the fuel or gas.

[0004] In certain embodiments, the size and volume of any solution placed within the vessel should be minimal so as to maximize the amount of fluid that may be placed within the vessel. Additionally, the system should provide sufficient thermal conductance to maintain the fluid below ignition temperatures. The system should also generally provide a fluid cavity no larger than the quenching distance of the fluid within the fluid cavity. These factors are complicated by the cyclic stresses that may be experienced, as well as the need for mechanical integrity in an optimal system due to the potential for corrosion by the fluid itself. Summary of the Invention

[0005] The present invention relates to systems, assemblies, devices, and related methods for improving fire and explosion resistance in fluid enclosures, such as fuel and gas tanks. In basic principle, one embodiment of the invention provides an inventive and efficient method of preparing an expanded metallic mesh for suitable use as a heat conductor and flame quencher in a fluid enclosure. The invention utilizes such mesh in a base module, which in a preferred embodiment is cylindrical in configuration and of various diameters, as may be desired for a particular application. The base module may be coupled to the assembly to facilitate packing of various types of containers.

[0006] In another embodiment, the present invention relates to a fluid tank of the present invention, particularly for fuels, gases or other flammable fluids, that has a unique system and structure that inhibits combustion, and therefore fire and explosion.

[0007] The present invention also relates to various methods and apparatus that allow for the creation of base modules that are inserted into containers of various shapes and capacities, and associated methods of creation, assembly, and packaging. The present invention also includes methods of assembly and retrofitting of existing fuel tanks. In further embodiments of the present invention, the present invention provides for the safe transportation of fuel, and the independent, safe and rapid installation and dispensing of fuel over a variety of surfaces and terrains. In at least one preferred embodiment, the present invention utilizes a low density perforated sheet or web of metallic material, such as that disclosed by Kegler, U.S. Patent No. 6,609,279.

[0008] As previously described, the base module of the present invention may include one or more layers of mesh rolled into a cylindrical configuration. Two or more base modules may be joined along a cylindrical axis to form an assembly of the present invention. The assembly, and in certain embodiments, the base module itself, may be placed within a vessel, which not only controls combustion but also provides strength and reduces liquid "sloshing" that may be generated during vibrations induced by transportation and other applications, thereby eliminating the need for baffles within the fuel tank. Additionally, the base module reduces evaporation loss due to heat transferred from the vapor region of the vessel to the liquid region.

[0009] In a preferred embodiment, the base module is constructed of two opposing layers of metallic mesh that exhibit good electrical conductivity, corrosion resistance and strength. While any material that meets the above requirements may be used, extensive research and testing has determined that certain alloys may be employed in certain use cases. The material should be compatible with various liquid fuels and have effective mechanical strength. Alternatively, for high strength requirements, mesh of special steels, particularly stainless steels, may be used. Since steel has a relatively low thermal conductivity compared to other alloys, a composite mesh of steel and copper and / or copper alloys, or a composite of steel and aluminum mesh, wound into a cylindrical configuration, may be utilized to increase the thermal conductivity of the entire assembly.

[0010] The present invention also relates to a method for designing and manufacturing a generally cylindrical shape of a compact semi-porous unit developed from a two-dimensional mesh or web of a predetermined density, which may in certain embodiments be constrained by a metallic net or perforated wrapper, with the entire assembly consisting of a base module that fills the space within a fuel container.

[0011] The invention also relates to an apparatus and associated method for producing this base module without damage to the mesh or web from which it is constructed and in a given density and form. In a further embodiment, the invention also relates to a method for packing cylindrical units into containers of different shapes and sizes in order to maximize the distribution of the base modules within the volume of the container. For larger containers, the space may be divided into different storage compartments in which the base modules or assemblies thereof can be packed. The design of the base module also accommodates the mechanical integrity of the wound, perforated, stretched sheet against impact loads, both at low and high strain rates, and importantly prevents the formation of metallic particles that can contaminate the fuel, without resorting to an overly complex construction of the base module itself.

[0012] In a preferred embodiment, the device forming the base module can modulate the tension of the mesh during winding of the base module via tensioners, pretensioners and weighted rollers. With this in mind, the stiffness and bending strength of the base module may be tailored for a given use case of the base module being formed, with tighter winding of the base module enhancing stiffness and bending strength. Additionally, the diameter:height ratio of the base module may be tailored according to these parameters.

[0013] Yet another feature of the present invention is the optimization of the packing scheme for a given container shape and size. In particular, the present invention utilizes the adjustable stiffness and bending strength of the base module to generate a base module suited to a particular packing scheme. In a preferred embodiment, the packing of a 55 gallon class fuel drum includes a base module or assembly having a diameter of approximately 20% of the drum diameter. Depending on the specific parameters (tension, weight, etc.) set by the base module manufacturing equipment, approximately 19 to 24 assemblies may be used to fill the drum. In yet another preferred embodiment, the packing of a cubic container employs the use of two different diameters of base modules, the smaller diameter being approximately 40% of the diameter of the larger base module. As will be appreciated thereafter, the packing scheme of the present invention is optimized for the use of a semi-rigid base module that is cylindrical in shape in a preferred embodiment.

[0014] Additionally, the base module is resistant to mechanical forces experienced during transportation or exposure to impacts, including projectile penetration. In a preferred embodiment, the cylindrically configured base module may be aligned along the expected gravity vector during use and / or transportation of the container. Tests performed using a tilt table have demonstrated that the integrity of the mesh comprising the base module is maintained when the longitudinal axis of the base module is substantially parallel to the gravity axis. Extensive testing performed with the longitudinal axis of the base module at significant angles to the gravity axis has shown accelerated and / or accelerated degradation of the mesh and the generation of metal particles. Both of these conditions have led to reduced fire resistance and contamination of fluids stored within the container.

[0015] Yet another advantage of the present invention is the reduction of "sloshing" of fluid in the vessel without the need to introduce special baffles. Optimal and maximized packing capacity is achieved when the packing scheme of the present invention is utilized. Thus, sloshing induced impacts of the base module and tanks during vessel movement are reduced, resulting in an increased lifespan of the base module. The advantages of this aspect of the present invention can be realized across a range of vessels from large tanks on ships to small vessels for road transport.

[0016] In yet another embodiment, the mesh may comprise a high strength aluminum alloy that is corrosion resistant (5052 aluminum alloy as a non-limiting example) and / or a mechanical composite of two or more meshes of dissimilar metals and alloys, such as, but not limited to, stainless steel, high strength steel, high strength aluminum alloy, and copper alloys, including, but not limited to, pure copper, copper powder, and other high strength copper alloys, such as titanium copper alloys. In essence, the composition of the metals that comprise the mesh or composite mesh may be selected, formulated and / or combined for multiple criteria, such as strength, stiffness, durability, corrosion resistance, heat absorption and heat dissipation, etc.

[0017] Also disclosed herein is an inventive apparatus for forming a base module according to at least two embodiments of the present invention. In a preferred embodiment, a mesh raw material is used to generate a base module, and the length of the base module is dictated by the width of the raw material. As a non-limiting example, the width of the raw material may be on the order of approximately 240 mm to 250 mm. However, smaller base modules may be generated by folding the raw material according to the inventive method disclosed herein.

[0018] In one preferred embodiment, the mesh used in the fabrication of the base module is a two-dimensional honeycomb web made of a proprietary metal foil approximately 45 micrometers thick. Sheets of this class of material are prone to wrinkling and tearing due to their structure. These sheets are rolled into cylinders with various densities, resulting in cylinders of various flexibility and stiffness that also resist damage or tearing due to external stresses under both ambient and liquid fuel environments. Thus, part of the design considerations for the equipment that builds these cylinders is the selection and application of rollers, as well as the generation of tension and the various speeds that create different types of rolls.

[0019] The manufacture of cylindrical mesh rolls is carried out by winding the facing layer of the expanded mesh on a winding spindle. The tension in the facing layer can be adjusted to obtain variable stiffness and deformability of the base module. The specifications of the base module will vary for different applications. As a non-limiting example, for a particular application, the base module may require additional ability to remove / absorb the kinetic energy of the projectile so that the projectile is trapped inside the mesh. Besides the use of high strength materials for the manufacture of the mesh, this can be achieved by making cylindrical mesh rolls of a predetermined density. A denser roll can be achieved by varying at least two parameters, namely the introduction of tension / strain on the free-rotating facing layer of the expanded mesh via the tensioning spindle, and the speed (RPM) of the main roller / shaft. Thus, in a preferred embodiment, such an apparatus for the manufacture of cylindrical rolls can vary at least these two parameters to achieve various degrees of density in the roll of cylindrical mesh as required for different applications.

[0020] A step-by-step description of the manufacturing process and associated description including the role of the different components of the apparatus according to one embodiment of the present invention follows. The initial raw material for making the cylindrical base module is a sheet of web-like mesh, which may comprise a mesh as disclosed in Koggler's US Patent No. 6,609,279, as discussed. A "big" roll of such sheet may include dimensions in the 900 mm range in diameter and widths of 240 mm to 250 mm. The initial step may include unwinding the mesh from the roll, which is performed using a guide system with sensors to an inverted crown spreader to prevent wrinkles and separate the web. The rolls in the inverted crown spreader have a variable diameter, with the ends being slightly larger than the center. The difference in surface speed for this difference creates a mesh tension distribution that can be shaped and controlled via a variable speed profile. This is most useful for stretchable materials, such as the expanded mesh utilized in the present invention.

[0021] The web is then passed over another roller, which in a preferred embodiment is made of polyurethane foam or similar material with a rough roll surface that allows air to pass through the roll surface and prevents tracking, scratching, compression and stretching of the mesh. This step is called "air greasing".

[0022] The web then passes over a pair of idler foam rollers to smooth out any lateral deformations of the web, which may also be used to at least partially control the speed and tension of the web. The principle of web speed control is as follows.

[0023]

number

[0024] where T2 is the tension in a given area between two rollers, T1 is the tension in the previous tension zone, V1 is the speed of one roller, V2 is the speed of the second roller, E is the elasticity of the material, and A is the cross-sectional area of ​​the material. Note that the higher the value of E, the more likely the material is to stretch. For most values ​​of EA, the inventors have noted that varying the torque applied to the rollers provides excellent control of the material. However, for very "stretchy" materials (very low values ​​of EA), speed control may be an acceptable substitute when torque control is not feasible.

[0025] With this principle in mind, the web passes through an idler roller before being fed into the winding section. The winding section includes a pair of pretensioners and tensioners, as well as a weighted roller applied to the main shaft. The pretensioners guide the web to the main tensioner. The tension in the web can be adjusted via the placement of the tensioner, the pressure applied by the weighted roller applied to the main shaft which applies uniform lateral pressure across the mesh as the web is wound onto the main shaft, as well as the torque / speed of the main shaft.

[0026] More specifically, after the web passes through the first pretensioner, it enters the primary tensioner, from which it is guided to the primary roller. As the web progresses around the primary roller to re-enter the primary tensioner at a different level, it moves to the second pretensioner. From here, the web is pushed to a predetermined point on the conveyor belt. At this point, a cutter is used to cut the web on the primary conveyor, severing it from the mesh spool. This produces one sheet of mesh arranged in two opposing layers on the belt conveyor to create a cylindrical base module. The overall length of the mesh dictates the diameter of the base module.

[0027] The web is now positioned across the facing layers and is wound from approximately the midpoint. The web is held in capture against the spindle using a spindle lock. A weighted roller is placed against the web on the spindle to provide uniform lateral pressure on the web as it is being wound. After this, the motor is triggered and the mesh is wound onto the spindle to produce a base module that can be stacked to produce an assembly of the desired height. Once winding is complete, the weighted roller is removed and the spindle lock is released to remove the base module. By controlling the pressure of the weighing wheel, the tension applied by the tensioner, and the speed / torque of the spindle, the density of the tower cylinder can be controlled.

[0028] The netting may be draped over the outside of the base module. The choice of material for the netting varies according to the application. For critical or strategic applications, higher tensile strength metal wires (such as the class of stainless steel called "super") are used, which helps stop or absorb the kinetic energy of the impact and / or projectile. The netting also prevents the mesh roll from tearing on movement / transport. The presence of the netting further reduces the abrasive effect that the expanded mesh rolls may have on the rubber seals inside the plastic and metal tanks. An alternative to the steel jacket for other applications may be to wrap the cylinder with a similar mesh of other materials.

[0029] The invention also relates to a system and method for packing various containers of various sizes with the aforementioned structure. The stack profile is determined by the final tank shape and the need for dense packing in three dimensions to dissipate heat to prevent uncontrolled growth of the combustion front, and therefore varies with the shape. The filling process in the actual tank is versatile, the installation process can be retrofitted to any existing tank, and the process is environmentally friendly.

[0030] One objective of the method of the present invention is to provide a uniform conductive path for heat dissipation within the container, therefore the packing density and the method of achieving it are significant to optimal functioning of the present invention.

[0031] Base modules may be stacked along the cylindrical axis to produce an assembly with a given shape and density, as well as to accommodate mechanisms for filling and draining the liquid at reasonable rates. The latter is achieved by introducing perforated fluid transfer channels designed to take into account the volumetric flow rate of the fluid as well as the external shape of the tank. In a preferred embodiment, the entire assembly is molded by wrapping it in a net so that it can be introduced into an empty tank.

[0032] The base module assembly, along with any mechanisms for liquid transfer, and any required sensors, are mounted onto a packaging machine to wrap the assemblies in netting. Netting (preferably, but not necessarily, stainless steel mesh) is wrapped over the base modules to provide shape and stability to the entire cluster of assemblies.

[0033] In this regard, yet another aspect of the invention is a packaging machine of the invention capable of motion in both the X and Y axes at similar speeds to provide a uniform package. The packaging material (which in certain embodiments may include the same mesh as the base module) is mounted on the X axis on a cantilevered arm of the packaging machine. In a preferred embodiment, the packaging operation is performed to provide four opposing layers in a horizontal orientation and two opposing layers in a vertical orientation.

[0034] In yet another embodiment, the present invention is typically deployed in the context of 55 gallon class fuel drums, although the principles of the present invention can be deployed in a variety of cylindrical containers, such as propane tanks. To achieve lightweight, flame-retardant assemblies for use during fluid transfer, use, filling and dispensing. One preferred embodiment includes a filler or base module for explosion retarding materials that allows for the manufacture of polymer drums (e.g., high density polyethylene) packed with lightweight explosion retardants, multiple assemblies and perforated fluid transfer channels.

[0035] In yet another embodiment, the invention may be deployed in connection with military, police, or other fuel containers that may be subject to penetration via projectiles such as bullets or shrapnel. In such an embodiment, the mesh forming the basic module may be made from a high-strength alloy such as steel and may be incorporated alongside other meshes, such as copper or aluminum, which have good heat transfer properties. In one preferred embodiment, the invention may utilize a mechanical composite of stainless steel and copper or aluminum in a single mesh. The high-strength material provides additional resistance to projectiles. In yet another embodiment, the high-strength mesh material may be placed along the perimeter of the interior of the tank, while the thermally conductive mesh material is placed within the interior. In yet another embodiment, the two portions may be split such that in the event of a puncture, the interior thermally conductive mesh portion can still hold the fuel.

[0036] The above and other objects, features, and advantages of the present invention will become apparent when the drawings and detailed description are considered.

[0037] For a better understanding of the nature of the present invention, reference should be made to the following descriptions taken in conjunction with the accompanying drawings, in which: [Brief description of the drawings]

[0038] [Figure 1A]Schematic diagram of two assemblies with different aspect ratios according to one embodiment of the present invention. [Figure 1B] FIG. 2 is a diagram of a net-wrapped assembly according to one embodiment of the present invention. [Figure 2A] FIG. 1 is a schematic diagram of an apparatus for the manufacture of certain elements of the present invention. [Figure 2B] FIG. 3B is an elevational view of a portion of the device disclosed in FIG. 3A. [Figure 2C] Detail view taken along line CC of FIG. 2B. [Figure 2D] Detail view taken along line DD in FIG. 2B. [Figure 2E] Detail view taken along line EE of FIG. 2B. [Figure 2F] FIG. 2C is a detailed view of a portion of the device disclosed in FIG. 2B arranged in an unrolled configuration. [Figure 2G] FIG. 2C is a detailed view of a portion of the device disclosed in FIG. 2B arranged in a winding configuration. [Figure 2H] Detail view of Figure 2F. [Figure 2I] Detail of Figure 2G. [Figure 3A] 2 is a schematic diagram of an apparatus for the manufacture of certain elements of the present invention, according to another embodiment of the present invention; [Figure 3B] FIG. 3B is a detailed view of a portion of the device disclosed in FIG. 3A. [Figure 4A] 1 is a schematic side view of a packaging assembly according to one embodiment of the present invention. [Figure 4B] 1 is a top schematic view of a packaging assembly according to one embodiment of the present invention. [Figure 5A] FIG. 1 is a diagram of one embodiment of the present invention placed within a drum. [Figure 5B] FIG. 2 is a top view of a drum cluster according to one embodiment of the present invention. [Figure 5C] FIG. 1 is a side view of a number of assemblies utilized as a drum cluster prior to packaging. [Figure 5D] FIG. 2 is a side view of a drum cluster according to one embodiment of the present invention. [Figure 6A] 1 is a schematic diagram of a filler material suitable for use in connection with a jerry can; [Figure 6B] FIG. 2 is a side view of a can cluster according to one embodiment of the present invention. [Figure 6C] FIG. 2 is a top view of a can cluster according to one embodiment of the present invention. [Figure 6D] FIG. 2 is a front view of a can cluster according to one embodiment of the present invention. [Figure 6E] FIG. 2 is a rear view of a can cluster according to one embodiment of the present invention. [Figure 7] 1 is a schematic diagram of one embodiment of the present invention that can be deployed as a mobile fuel station. [Figure 8A] FIG. 2 illustrates a top view of a cell cluster and lattice structure according to one embodiment of the present invention. [Figure 8B] FIG. 2 is a perspective view of a cell cluster and lattice structure according to one embodiment of the present invention. [Figure 9A] 1 is a top view schematic of multiple cell clusters arranged within a large volume vessel, i.e., a tanker truck. [Figure 9B] FIG. 1 is a schematic side view of multiple cell clusters arranged within a bulk container, i.e., a tanker truck. [Figure 10A] 1 is a schematic flow diagram illustrating the operational steps of a method according to one embodiment of the present invention. [Figure 10B] 4 is a schematic flow diagram illustrating the operational steps of a method according to another embodiment of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0039] Like reference numbers refer to like parts throughout the several views of the drawings.

[0040] An assembly 100 according to one embodiment of the present invention is shown in Figures 1A and 1B. As can be seen, the assembly is constructed of a number of base modules 10 secured in a cylindrical configuration by a mesh 20. The base modules 10 are aligned along a cylindrical axis 101 to form the assembly 100.

[0041] In a preferred embodiment, the base module 10 is constructed of at least two layers (but may include more or less layers) of mesh 10 wound into a cylindrical configuration until the desired diameter is reached. In a highly preferred embodiment, the cylindrical base module 10 should have a diameter:height ratio, typically on the order of 0.19, i.e., diameter / height=0.19 (but not limited thereto). However, this may vary, for example, since smaller cylindrical basic modules may be utilized to increase the packing density of the assembly 100 in the container. To facilitate efficient manufacturing, the height of the basic module 10 may correspond to the width of the raw material of the mesh (as discussed below), although other manufacturing methods are also envisioned (also discussed below).

[0042] With particular reference to FIG. 1B, a number of basic modules 10 are pre-arranged along the cylindrical axis 101 to form the assembly 100. The assembly 100 is further secured with a net 20, which in the illustrated embodiment is a single layer of mesh 1, which is pre-wrapped around the assembly 100 in an overlapping manner until all basic modules 10 in the assembly 100 are secured together. In yet another embodiment, the net 20 may be constructed of a different material than the mesh 1, so long as it is suitably porous to allow fluid to flow through the net. In the illustrated embodiment, a net 20 constructed of the same mesh 1 raw material as the basic modules 10 is disclosed, which provides efficiencies in supply procurement and manufacturing. However, for such net 20 material, it is necessary to overlap successive wraps of the net 20 along the length of the cylindrical axis 101 to adequately secure each basic module 10 together. If nets 20 of different materials and / or dimensions are utilized, it may not be necessary to provide such an overlapping configuration. As a non-limiting example, the raw material of the net 20 may be selected such that the width of the raw material is approximately equal to the length of the cylindrical axis 101 of the assembly 100; with this in mind: No overlapping configuration is necessary.

[0043] As also discussed, the mesh 20 may be constructed of virtually any sufficiently porous material to allow fluid to flow through the mesh while also providing sufficient structural integrity to encapsulate and secure multiple basic modules 10 into the assembly 100.

[0044] As can be seen, the arrangement of the basic modules 10 in a wound cylindrical configuration provides at least some structural integrity against compression along the cylindrical axis 101 of each basic module, and when arranged in an assembly along such cylindrical axis 101, the structural integrity of the assembly 100 along the cylindrical axis 101 is not compromised. Thus, as will be disclosed herein, when the assembly 100 is placed in a container, in a preferred embodiment of the invention, alignment of the cylindrical axis 101 with the normal expected gravity vector of the container is required, i.e., the assembly 100 should be oriented substantially parallel to the direction of gravity during operation and / or storage of the container.

[0045] 2A-2F, an inventive apparatus 1000 for manufacturing a base module 10 according to one embodiment of the present invention is shown therein. The embodiment shown includes at least an initial stage 1010, an intermediate stage 1020, and a winding stage 1030. The initial stage 1010 includes an operational structure for receiving a mesh spool 1001 of mesh 1 material at a predetermined width. The initial stage 1010 may also include a spreading roller 1011, which may also be driven by a motor 1034. In a preferred embodiment, the spreading roller 1011 is an inverted crown type having a larger diameter at the end of the roller than in the middle. This configuration operates to generate a higher surface speed at the end of the roller, which distributes tension from the center of the mesh 1 to the edges of the mesh 1 as the mesh 1 passes over the roller 1011, thereby removing irregularities, such as wrinkles, from the surface of the mesh 1. Further, in embodiments in which the spreading roller 1011 is driven via the motor 10304, the spreading roller 1011 will operate to guide the mesh 1 away from the mesh spool 1001 and towards the remaining stages of the apparatus 1000.

[0046] The intermediate stage 1020 of the apparatus 1000 may include a plurality of rollers 1021, which may be configured in a "nip roller" configuration and may be constructed of foam or other polymeric material that operates to smooth any lateral deformation of the mesh 1. In certain embodiments, it may be desirable to employ air lubrication in conjunction with any of the rollers described herein. In air lubrication, air is directed between the mesh 1 and the rollers to reduce the possibility of slippage, deformation, and other undesirable effects. Additionally, the intermediate stage 1020 may include at least a primary conveying path 1023 and a secondary conveying path 1024. As can be seen, the mesh 1 is directed along the primary conveying path 1023 along the region between the mesh spool 1001 and the winding stage 1030, while the mesh 1 is directed along the secondary conveying path 1024 after passing through the winding stage 1030 and at least partially returning to the intermediate stage 1020.

[0047] The winding stage 1030 may comprise a shaft 1031 along which the mesh 1 may travel, together with an appropriate number of tensioners 1036 and pretensioners 1035. With reference to FIG. 2H, a detailed view of the shaft 1031, the drive motor 1034 and other actuating components may be seen in more detail. According to the illustrated embodiment, the mesh 1 may be allowed to be guided around the shaft 1031 back towards the intermediate stage 1020. The shaft 1031 may be operatively coupled to a spindle lock 1032, which operates between a locked and unlocked orientation. When the spindle lock 1032 is in an unlocked orientation as shown in FIG. 2H, the mesh 1 is allowed to pass around the shaft 1031, but when the spindle lock 1032 is in a locked orientation as shown in FIG. 2I, the mesh 1 is constrained to rotate with the shaft. With this in mind, the apparatus 1000 operates between an unwinding configuration, as shown in FIG. 2H, and a winding configuration, as shown in FIG. 2I, relative to the locked and unlocked orientations of the spindle lock 1032.

[0048] More specifically, mesh 1 of mesh spool 1000 may be initially fed through intermediate stage 1020, along primary conveying path 1023, into winding stage 1030, and then returned to intermediate stage 1020 via secondary conveying path 1024 until a desired length of mesh 1 is unwound from mesh spool 1001. This is accomplished with spindle lock 1032 in an unlocked orientation, and thus apparatus 1000 is in unwinding configuration. In this step, a first layer 2 and a second layer 3 of mesh 1 are formed. A cutter 1022 may be used to cut first layer 2 and second layer 3 off of mesh spool 1001. In the unwinding configuration, one or more motors and / or motorized shafts / rollers may be utilized to guide mesh 1 out of spool 1001.

[0049] The apparatus 1000 is then converted to a winding configuration via conversion of the spindle lock 1032 to a locked configuration. As can be seen in detail in Figures 2G and 2I, the first layer 2 and the second layer 3 are held in a captured state against the shaft 1031 and are both constrained to rotate with the shaft 1031 instead of passing over it. With this in mind, the first layer 2 and the second layer 3 are fed into a roll that forms the base module 10.

[0050] 2H-2I , rollers 1033, which may be weighted, are positioned to abut the mesh 1 passing over the shaft 1031, as well as to rest during the formation of the base module 10. The rollers 1033 may be pivotable to allow the base module 10 to move as it grows in diameter around the shaft 1031. The rollers 1033 provide an even lateral distribution of pressure on the mesh 1.

[0051] The pretensioner 1035, tensioner 1036, roller 1033, and motor 1034 that drives shaft 1031 may all include parameters that are adjustable to control the tightness of the base module 10 as it winds around shaft 1031. With this in mind, the winding density of the base module 10 may be affected through adjustment of such parameters. For a given tightness of the base module, i.e., how densely each layer of mesh 1 is wound onto the base module 10, the length of mesh 1 required to achieve a desired diameter may be determined, and such length may then be unwound in the unwound configuration of device 1000.

[0052] In certain embodiments, it may be desirable to form a cylindrical basic module 10 with a longitudinal dimension that is less than the width of the raw material. In Figs. 3A and 3B, an alternative embodiment of an apparatus 1000' is disclosed for the manufacture of such a basic module 10 according to one embodiment of the present invention. Such an apparatus 1000' is capable of folding the raw material of mesh 1 along its length without damaging the mesh 1. The apparatus 1000' includes a folding assembly 1025 that operates to achieve folding in partial stages. With this in mind, multiple partial folding assemblies 1025 may be provided. In the embodiment shown, the partial folding assembly comprises a "V" shaped assembly in horizontal and vertical orientation. As the mesh 1 passes through each successive partial folding assembly 1025, the mesh is folded continuously and progressively at predetermined points along its width. An inlet hopper 1027 may be provided to "gather" the loosely folded mesh 1 into a tighter orientation, and a pair of finishing rollers 1029, such as nip rollers, flatten the two halves of mesh 1 against each other. In other embodiments, the invention may operate to fold mesh 1 at two, three or more points along its width with successive, incremental partial folding assemblies 1025.

[0053] As discussed, in a preferred embodiment, a plurality of base modules 10 may be combined into an assembly having a cylindrical form factor by encapsulating the base modules with a net 20, which may be constructed of mesh 1 or other suitable materials such as stainless steel wire or other metal wire. An inventive packaging assembly 2000 according to one embodiment of the invention is shown in Figures 4A and 4B, in which a plurality of base modules 10 are placed on a turntable 2010. A spool of net 20 material is placed on a railing 2020 and allowed to advance laterally along the length of the railing 2020. Thus, the net 20 material may be fed onto the base module 10, and the turntable 2010 rotates as the net 20 material unwinds and advances along the length of the railing 2020, so that the base module 10 is encapsulated into the assembly 100. As will be further disclosed, a plurality of assemblies 1000 may be packaged together to be placed into a particular type of container to create a cluster, such as a drum cluster, a can cluster, or a cell cluster as will be disclosed herein. In a preferred embodiment, the packaging procedure of the present invention will include at least four layers about the cylindrical axis of the cluster and at least two layers perpendicular to the cylindrical axis of the cluster. Additionally, the packaging assembly 2000 may be operated manually or may be equipped with sufficient motorized transducers to allow automation of the packaging.

[0054] 5A-5D show a number of assemblies 1000 arranged in various stages of a drum cluster 110 configuration according to one embodiment of the present invention suitable for filling fuel drum type fluid containers, such as standard 200 liter / 55 gallon drums common in the industry. A number of assemblies 1000 are manufactured with a cylindrical axis 101 substantially equal to the height of the drum 4000 to be filled. The assemblies 1000 are similarly compressed together with a diameter approximately equal to that of the drum 4000 to be filled. The illustrated embodiment, referred to as drum cluster 110, may be placed within the drum 4000 according to substantially the same method as disclosed above, i.e., wrapped with netting 20. As can be seen, the fluid transport channels 3000 may be arranged within the drum cluster 110 and have a substantially hollow and porous configuration. This facilitates the arrangement of pump lines, hoses and other fluid conduits within the drum.

[0055] Optimizing the packing density of the assemblies 1000 in a cylindrical fuel tank presents a more difficult challenge than a rectangular geometry. In a preferred embodiment, 19 to 24 assemblies 1000 are placed in a drum 4000 along with the fluid transport channels 3000. The diameter of the assemblies 1000 required for packing depends on the diameter of the empty tank that needs to be filled. In a preferred embodiment, the diameter of the assemblies 1000 may be on the order of 20% of the drum diameter, for example, within a 1% deviation. In such a configuration, the voids created are negligible for combustion, thus providing effective fire and explosion resistance.

[0056] Top and side views of the packed tower cylinder are shown in FIG. 5C. For a relatively flexible assembly 1000, the volume density of mesh 1 within the drum results to be 80% or more, the exact value depending on the flexibility of the assembly 1000. To increase the density of mesh 1 near the container surface where there is a possibility of larger voids, several layers of mesh pads 111 are employed near the inner surface of the drum. A fully packed drum cluster 110 is shown in FIG. 9C. The volume reduction of the illustrated drum cluster 110 is 4100 ml, which amounts to approximately 2.05% for a 200 liter fuel drum (55 gallon class).

[0057] In another embodiment, and with reference to Figures 6A and 6F, a method and apparatus for filling another type of fluid container, namely a portable fuel container 5000, commonly referred to as a jerry can, is disclosed. The manner of packing of the basic modules 10 within the portable fuel container 5000 is shown in Figure 6A. The portable fuel container 5000 houses the basic modules 10 within an appropriately sized assembly 100, the majority of which is packed vertically to fill the space within the portable fuel container 5000.

[0058] However, simply packing vertically creates significant voids that inhibit the explosion resistance of the present invention. These spaces are filled with a base module 10 that is laid only on the top of the portable fuel container 5000 to substantially approximate the shape of the container 5000. One of the main problems with such containers is the resistance offered by the mesh to both filling and withdrawing fuel. To avoid this problem, a fluid transfer channel 3000 is provided on one side of the can below the filler cap. The diameter of the fluid transfer channel 3000 and the rate of delivery during filling are determined not only by the flow of liquid into the tank but also by the removal of trapped air within the mesh-lined structure formed by the base module 10.

[0059] A number of assemblies 1000 may be packaged using mesh 20 and device 2000 in the manner previously described. The shape thus obtained, called can cluster 120, fits inside a container 5000, as shown in Figures 6B-6E, and is introduced prior to welding the top of the container 5000. When the invention is deployed according to a highly preferred embodiment, the volume occupied by the mesh is less than 23% of the available volume within the jerry can.

[0060] FIG. 7 discloses one embodiment of the present invention deployed in connection with yet another type of fluid container, namely, a mobile fuel station 6000, which typically includes a fuel tank with a capacity of 200 liters to 1000 liters, with few safety precautions, and is utilized in a variety of terrains, locations, and conditions. In certain embodiments, a battery or solar powered fuel dispenser pump may be employed to dispense fuel from the mobile fuel station. In the embodiment shown, a dedicated filter is inserted into the port of the reducer from the 50 mm butterfly valve to prevent particle intake into the pump. The mobile fuel station tank may be filled with an assembly 1000 made up of basic modules 10, according to the previous embodiment of the present invention, and collectively packaged with netting 20 to form yet another cluster. The mobile fuel station tank may be grounded to eliminate static electricity buildup and associated spark generation. The main inlet of the tank is covered with a GI sheet that includes a fluid transfer passageway that runs the entire length of the tank. The perforated tube facilitates fuel transfer to the tank while also providing space for a dipstick to measure the volume of fuel or for sample collection.

[0061] As can be seen, two different sizes of assembly 100 are used to fill the tank's space. The dimensional design of assembly 100 is accomplished with respect to the following considerations: Assembly 100 does not need to be completely rigid, but should withstand a reference amount of deformation and distortion. A single size, despite the nominal deformation, still allows for a sufficient pocket of fuel without mesh that may support combustion. Although not an exclusive embodiment of the invention, it has been found that the use of at least two sizes of assembly 100 optimizes packing of rectangular fuel tanks. In a preferred embodiment, the ratio of the diameters of the two sizes of assembly 100 is 1:0.4, with the exact size depending on the size of the tank. According to this embodiment, the invention achieves a packing density of greater than 80% with nominal distributed voids within the volume of the tank.

[0062] In yet another embodiment, the techniques of the present invention may be applied to deployment of the present invention in large vessels, such as trailer tankers or railroad tank cars, intermodal tank containers, large volume stationary fuel tanks, etc., which may also be pressurized. Such an embodiment is generally disclosed in Figures 8A-8B and 8A-8B.

[0063] With particular reference to Figures 8A and 8B, a number of basic modules 10 (which may be of various dimensions) are arranged within a lattice structure 140 to generate a cell cluster 130. The lattice structure 140 may include vertical supports on which the basic modules 10 are arranged and / or secured. Thus, in the embodiment shown, the use of a mesh 20 to secure the basic modules 10 to the assembly 100 is not strictly necessary and may be utilized if desired. The cell clusters may then be stacked or otherwise arranged within a large volume vessel, such as the tanker shown in Figures 9A and 9B.

[0064] With reference to Figure 10A, a schematic diagram of an inventive method 8000 in accordance with at least one embodiment of the present invention is shown therein. As can be seen, a first step may include arranging a continuous sheet of mesh into at least two layers 8010. This step may be performed substantially as discussed herein with reference to Figures 2A-3B and the accompanying discussion.

[0065] Another step of the method of the present invention may include winding the sheet of mesh into a cylindrical shape, thereby producing a base module 8020. This step may also be performed substantially as discussed herein with reference to Figures 2A-3B, where the spool of mesh is unwound onto two separate transport paths substantially separated by a shaft of a winding stage of a winding device, and the sheet of mesh, after being severed from the spool, is held captured against the shaft at approximately its midpoint and wound into a cylindrical shape.

[0066] Yet another step of the method of the present invention includes forming an assembly from the base modules. In one embodiment, this step may include arranging a plurality of base modules along a cylindrical axis and draping a net over the exterior of the plurality of base modules 8030.

[0067] Another step of the method of the present invention includes disposing a plurality of assemblies within a container such that the average size of voids within the container is less than the quenching distance of the fluid within the container 8040. As can be seen with respect to Figures 5A-9B, this step can be accomplished in a variety of ways with respect to the various containers being filled.

[0068] 10B, yet another inventive method 900 of the present invention is shown in schematic form therein. According to the embodiment shown, one step of the method includes unwinding a sheet of mesh from a spool of mesh onto at least first and second transport paths and severing the sheet of mesh from the spool 9010. Another step of the inventive method 9000 includes holding the sheet of mesh captured against a shaft at approximately the midpoint of the sheet 9020. Another step includes rotating the shaft such that the sheet of mesh is wound into a cylindrical configuration 9030 in two layers. The final step of the inventive method includes arranging the multiple assemblies in a container such that the average size of voids in the container is less than the quenching distance of the fluid in the container 9040.

[0069] Because many modifications, variations and changes of detail may be made to the described preferred embodiment of the invention, it is intended that all matter in the foregoing description and shown in the accompanying drawings be interpreted in an illustrative and not a limiting sense, and the scope of the invention should therefore be determined by the appended claims and their legal equivalents. Preferred embodiments of the present invention will be described below in detail.

[0070] EMBODIMENT 1 1. An assembly for inhibiting combustion within a container, comprising: at least one base module, the at least one base module including at least two layers of mesh wound in a cylindrical configuration; and a mesh disposed around said at least one base module; An assembly comprising:

[0071] EMBODIMENT 2 2. The assembly of embodiment 1, wherein the mesh comprises an expanded metallic web.

[0072] EMBODIMENT 3 2. The assembly of embodiment 1, comprising a plurality of base modules arranged along a cylindrical axis of the cylindrical configuration.

[0073] EMBODIMENT 4 4. The assembly of embodiment 3, wherein the cylindrical configuration comprises a diameter:height ratio of 0.19 to 0.2.

[0074] EMBODIMENT 5 4. The assembly of embodiment 3, wherein the assembly further comprises a mesh disposed around all of the plurality of base modules.

[0075] EMBODIMENT 6 2. The assembly of embodiment 1, wherein the mesh comprises 5052 aluminum alloy.

[0076] EMBODIMENT 7 2. The assembly of embodiment 1, wherein the mesh comprises an alloy of dissimilar metals.

[0077] EMBODIMENT 8 2. The assembly of embodiment 1, wherein the cylindrical configuration comprises at least two layers of mesh.

[0078] EMBODIMENT 9 9. The assembly of embodiment 8, wherein said cylindrical configuration of at least two layers of mesh comprises a single sheet of mesh rolled from approximately its midpoint.

[0079] EMBODIMENT 10 An apparatus for manufacturing a base module, comprising: at least one mesh spool for receiving a spool of mesh thereon; a winding stage sized and configured to unwind a predetermined length of mesh from said spool of mesh into a first layer and a second layer of mesh; Equipped with the winding stage is further dimensioned and configured to wind at least the first layer and the second layer onto a base module in parallel. Device.

[0080] EMBODIMENT 11 11. The apparatus of embodiment 10, further comprising an intermediate stage, the intermediate stage including a primary transport path that directs the mesh at least to the winding stage, and a secondary transport path that directs the mesh away from the winding stage.

[0081] EMBODIMENT 12 12. The apparatus of embodiment 11, wherein the intermediate stage further comprises a cutting assembly operative to sever at least the first layer of mesh from the spool of mesh.

[0082] EMBODIMENT 13 11. The apparatus of embodiment 10, wherein the winding stage includes a shaft that receives the mesh, the shaft including a spindle lock, the spindle lock actuated in an unlocked orientation to allow the mesh to pass over the spindle.

[0083] EMBODIMENT 14 14. The apparatus of embodiment 13, wherein the winding stage further comprises a motor operatively configured to drive the shaft when the spindle lock is in a locked orientation.

[0084] EMBODIMENT 15 15. The apparatus of embodiment 14, wherein the spindle lock is operative to hold the mesh captured against the spindle in a locked orientation.

[0085] EMBODIMENT 16 A plurality of assemblies arranged in Equipped with Each of the plurality of assemblies includes a plurality of base modules arranged along a cylindrical axis; Each of the plurality of base modules is formed of a mesh. Fluid container.

[0086] EMBODIMENT 17 17. The fluid enclosure of embodiment 16, further comprising a perforated fluid transport channel disposed within the plurality of assemblies.

[0087] EMBODIMENT 18 17. The fluid enclosure of embodiment 16, wherein the enclosure comprises a drum.

[0088] EMBODIMENT 19 19. The fluid enclosure of embodiment 18, further comprising 19 to 24 assemblies disposed within the drum.

[0089] EMBODIMENT 20 17. The fluid enclosure of embodiment 16, wherein each of the plurality of assemblies comprises a cylindrical configuration having a diameter that is about 20 percent of a diameter of the drum.

[0090] EMBODIMENT 21 17. The fluid container of embodiment 16, wherein the container includes a portable fuel tube and the plurality of assemblies are configured in a can cluster.

[0091] EMBODIMENT 22 17. The fluid container of embodiment 16, wherein the container comprises a mobile fuel station.

[0092] EMBODIMENT 23 17. The fluid enclosure of embodiment 16, wherein the enclosure comprises a tanker, and the plurality of assemblies arranged on a plurality of lattice structures form a plurality of cell clusters.

[0093] EMBODIMENT 24 1. A method for increasing the flame resistance of a container, comprising: Arranging continuous sheets of mesh in at least two layers; rolling said sheet of mesh into a cylindrical shape, thereby creating a base module; arranging a plurality of base modules along a cylindrical axis, thereby forming an assembly; placing a plurality of assemblies in a container; A method comprising:

[0094] EMBODIMENT 25 25. The method of claim 24, wherein the step of rolling the sheet of mesh into a cylindrical shape comprises rolling the sheet from approximately the midpoint.

[0095] EMBODIMENT 26 25. The method of embodiment 24, further comprising the step of draping a net over the exterior of the plurality of base modules.

[0096] EMBODIMENT 27 25. The method of embodiment 24, wherein said step of arranging a continuous sheet of mesh in at least two layers further comprises the step of unwinding the sheet of mesh from a spool of mesh onto at least first and second transport paths.

[0097] EMBODIMENT 28 28. The method of embodiment 27, further comprising holding the sheet of mesh captured against a shaft at approximately the midpoint of the sheet.

[0098] EMBODIMENT 29 29. The method of embodiment 28, further comprising rotating the shaft while the sheet of mesh is captured against the shaft.

[0099] EMBODIMENT 30 25. The method of embodiment 24, further comprising adjusting the tension of the sheet of mesh to determine the diameter of the base module. [Explanation of symbols]

[0100] 1 Mesh 2. First Layer 3. Second Layer 10 Bass Module 20 net 100 assemblies 120 Can Cluster 110 Drum Cluster 130 cell cluster 140 Lattice structure 1000 Apparatus of the present invention 1001 Mesh spool 1010 Initial Stage 1011 Spreading roller 1020 Intermediate Stage 1021 Multiple Rollers 1022 Cutter 1023 Primary transport path 1024 Secondary transport path 1025 Folding assembly 1027 Inlet hopper 1029 A pair of finishing rollers 1030 Winding stage 1031 Shaft 1032 Spindle Lock 1033 Roller 1034 Motor 1035 Pretensioner 1036 Tensioner 2000 packaging assembly 2010 Turntable 2020 Fence 3000 Fluid transport channel 4000 drums 5000 Portable fuel container 6000 Mobile Fuel Station 1' Mesh 1000' Apparatus of the present invention 1001' mesh spool 1010' Early Stage 1020' Intermediate Stage 1024' Secondary conveyor 1027' Inlet hopper 1029' Pair of finishing rollers 1030' Winding stage 1034' Motor 1035' Pretensioner 1036' Tensioner

Claims

1. In the fluid container, a plurality of assemblies disposed within the fluid enclosure, each assembly having a longitudinal axis and a plurality of base modules arranged along the longitudinal axis; each of the plurality of base modules is formed of a mesh in a two-ply cylindrical configuration wound about the longitudinal axis; The fluid enclosure further comprising a mesh disposed around the plurality of assemblies.

2. The fluid enclosure of claim 1 , wherein the longitudinal axis is aligned with an expected gravity vector of the fluid enclosure.

3. The fluid enclosure of claim 1 , wherein the plurality of assemblies are oriented substantially parallel to a direction of gravity during storage of the fluid enclosure.

4. The fluid enclosure of claim 1 , wherein each said assembly is of cylindrical configuration.

5. In the fluid container, a plurality of assemblies disposed within the fluid enclosure, each assembly having a longitudinal axis and a plurality of base modules arranged along the longitudinal axis; each of the plurality of base modules is formed of a mesh in a two-ply cylindrical configuration wound about the longitudinal axis; A fluid enclosure, wherein the longitudinal axis of each of the assemblies is aligned with an expected gravity vector of the fluid enclosure.

6. The fluid enclosure of claim 5 , wherein the plurality of assemblies are oriented substantially parallel to a direction of gravity during storage of the fluid enclosure.

7. The fluid enclosure of claim 5 , wherein each said assembly is of cylindrical configuration.

8. The fluid enclosure of claim 5 , further comprising a net disposed about the plurality of assemblies.

9. the fluid container is a portable fuel container; The fluid enclosure of claim 5 , wherein the plurality of assemblies are configured into a can cluster.

10. The fluid enclosure of claim 5 , wherein the fluid enclosure is a mobile fuel station.

11. the fluid vessel is a tanker; The fluid enclosure of claim 5 , wherein the plurality of assemblies arranged in a plurality of lattice structures form a plurality of cell clusters.

12. At least some of the plurality of assemblies have a first diameter; The fluid enclosure of claim 5 , wherein at least some others of the plurality of assemblies have a second diameter.

13. The fluid enclosure of claim 12 , wherein a ratio of the first diameter to the second diameter is 1:0.

4.

14. The fluid enclosure of claim 12 , wherein the plurality of assemblies are arranged in a lattice structure.

15. In fuel drums, a plurality of assemblies arranged in a drum cluster configuration, each assembly having a longitudinal axis and a plurality of base modules arranged along the longitudinal axis; each of the plurality of base modules is formed of a mesh in a two-ply cylindrical configuration wound about the longitudinal axis; a fuel drum, wherein the longitudinal axis of each of the assemblies is aligned with an expected gravity vector of the fuel drum.

Citation Information

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