EP3443291A2 - Systems and methods for blast impulse reduction - Google Patents
Systems and methods for blast impulse reductionInfo
- Publication number
- EP3443291A2 EP3443291A2 EP17810662.1A EP17810662A EP3443291A2 EP 3443291 A2 EP3443291 A2 EP 3443291A2 EP 17810662 A EP17810662 A EP 17810662A EP 3443291 A2 EP3443291 A2 EP 3443291A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- article
- layer
- fireball
- asset
- layers
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B1/00—Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
- E04B1/62—Insulation or other protection; Elements or use of specified material therefor
- E04B1/92—Protection against other undesired influences or dangers
- E04B1/94—Protection against other undesired influences or dangers against fire
- E04B1/941—Building elements specially adapted therefor
- E04B1/942—Building elements specially adapted therefor slab-shaped
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H7/00—Armoured or armed vehicles
- F41H7/02—Land vehicles with enclosing armour, e.g. tanks
- F41H7/04—Armour construction
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B1/00—Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
- E04B1/62—Insulation or other protection; Elements or use of specified material therefor
- E04B1/92—Protection against other undesired influences or dangers
- E04B1/98—Protection against other undesired influences or dangers against vibrations or shocks; against mechanical destruction, e.g. by air-raids
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04H—BUILDINGS OR LIKE STRUCTURES FOR PARTICULAR PURPOSES; SWIMMING OR SPLASH BATHS OR POOLS; MASTS; FENCING; TENTS OR CANOPIES, IN GENERAL
- E04H9/00—Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate
- E04H9/04—Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate against air-raid or other war-like actions
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04H—BUILDINGS OR LIKE STRUCTURES FOR PARTICULAR PURPOSES; SWIMMING OR SPLASH BATHS OR POOLS; MASTS; FENCING; TENTS OR CANOPIES, IN GENERAL
- E04H9/00—Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate
- E04H9/04—Buildings, groups of buildings or shelters adapted to withstand or provide protection against abnormal external influences, e.g. war-like action, earthquake or extreme climate against air-raid or other war-like actions
- E04H9/06—Structures arranged in or forming part of buildings
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H5/00—Armour; Armour plates
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H5/00—Armour; Armour plates
- F41H5/02—Plate construction
- F41H5/04—Plate construction composed of more than one layer
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H5/00—Armour; Armour plates
- F41H5/02—Plate construction
- F41H5/04—Plate construction composed of more than one layer
- F41H5/0407—Transparent bullet-proof laminatesinformative reference: layered products essentially comprising glass in general B32B17/06, e.g. B32B17/10009; manufacture or composition of glass, e.g. joining glass to glass C03; permanent multiple-glazing windows, e.g. with spacing therebetween, E06B3/66
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H5/00—Armour; Armour plates
- F41H5/02—Plate construction
- F41H5/04—Plate construction composed of more than one layer
- F41H5/0414—Layered armour containing ceramic material
- F41H5/0421—Ceramic layers in combination with metal layers
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H5/00—Armour; Armour plates
- F41H5/02—Plate construction
- F41H5/04—Plate construction composed of more than one layer
- F41H5/0414—Layered armour containing ceramic material
- F41H5/0428—Ceramic layers in combination with additional layers made of fibres, fabrics or plastics
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H5/00—Armour; Armour plates
- F41H5/02—Plate construction
- F41H5/04—Plate construction composed of more than one layer
- F41H5/0442—Layered armour containing metal
- F41H5/0457—Metal layers in combination with additional layers made of fibres, fabrics or plastics
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H5/00—Armour; Armour plates
- F41H5/02—Plate construction
- F41H5/04—Plate construction composed of more than one layer
- F41H5/0471—Layered armour containing fibre- or fabric-reinforced layers
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H5/00—Armour; Armour plates
- F41H5/02—Plate construction
- F41H5/04—Plate construction composed of more than one layer
- F41H5/0492—Layered armour containing hard elements, e.g. plates, spheres, rods, separated from each other, the elements being connected to a further flexible layer or being embedded in a plastics or an elastomer matrix
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41H—ARMOUR; ARMOURED TURRETS; ARMOURED OR ARMED VEHICLES; MEANS OF ATTACK OR DEFENCE, e.g. CAMOUFLAGE, IN GENERAL
- F41H7/00—Armoured or armed vehicles
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F42—AMMUNITION; BLASTING
- F42D—BLASTING
- F42D5/00—Safety arrangements
- F42D5/04—Rendering explosive charges harmless, e.g. destroying ammunition; Rendering detonation of explosive charges harmless
- F42D5/045—Detonation-wave absorbing or damping means
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B1/00—Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
- E04B1/62—Insulation or other protection; Elements or use of specified material therefor
- E04B1/74—Heat, sound or noise insulation, absorption, or reflection; Other building methods affording favourable thermal or acoustical conditions, e.g. accumulating of heat within walls
- E04B1/76—Heat, sound or noise insulation, absorption, or reflection; Other building methods affording favourable thermal or acoustical conditions, e.g. accumulating of heat within walls specifically with respect to heat only
- E04B1/78—Heat insulating elements
- E04B1/80—Heat insulating elements slab-shaped
Definitions
- the present disclosure generally relates to methods, compositions, articles and systems for impulse reduction.
- embodiments relate to methods, compositions, articles and systems for absorbing, reflecting, and cancelling portions of Shockwaves and fireballs.
- Infrastructure may be any infrastructure.
- infrastructure may include buildings, bridges, military installations, refineries, public works infrastructure (e.g., wastewater treatment facilities), utilities infrastructure (e.g., electrical substation), or oilfield infrastructure.
- Vehicles may be any land, air, or sea based vehicle.
- vehicles may include cars, trucks, tanks, aircraft, ships, or boats. While such traditional measures may provide adequate protection against ballistic projectiles, fireballs and Shockwaves, hereinafter referred to collectively as resulting from explosions, may propagate through such barriers.
- Impulse from pressure waves (which may include Shockwaves and fireball waves), the integral of force of the pressure wave over the time in which it acts, may be a significant source of damage.
- certain traditional blast protection systems having increased strength, mass, or number and direction of angles have to deflect or absorb impulse, thereby reducing the force absorbed by the asset.
- the present disclosure provides for a method.
- the method includes providing an article having an impact side and an asset side and exposing the impact side of the article to a plurality of pressure waves, the pressure waves having a plurality of pressure wave frequencies.
- the method also includes reflecting at least one composite harmonic of a portion of the pressure wave frequencies and reducing an amplitude of a portion of the pressure waves.
- the present disclosure further provides for a multilayer article.
- the multilayer article has an impact side and an asset side.
- the multilayer article includes layers arranged successively.
- the multilayer article includes a first layer, where the first layer of the article has a density ranging from 0.02 g/cc to 0.05 g/cc.
- the first layer may be a rubber.
- the multilayer article also includes a second layer.
- the second layer has a density higher than the first layer.
- the density of the second layer ranges from 0.25 g/cc to 0.43 g/cc.
- the second layer may be an insulator.
- the multilayer article includes a third layer.
- the third layer has a density higher than the first layer and the second layer.
- the density of the third layer ranges from 0.4 g/cc to 0.5.
- the third layer may be concrete.
- the present disclosure also provides for a method.
- the method includes providing an article comprising multiple layers, wherein each layer is mechanically coupled with adjacent layers of the article.
- the article has an impact side and an asset side that is opposite the impact side. From the impact side to the asset side, each successive layer has a density that is greater than a density of the adjacent layer that is closer to the impact side.
- the method also includes receiving at least one pressure wave on the impact side of the article, wherein the at least one pressure wave includes a plurality of frequencies.
- the method includes reflecting at least one harmonic with the article, thereby reducing an amplitude of the at least one pressure wave.
- the method also includes absorbing at least a portion of the at least one pressure wave with the article.
- the disclosure further includes an article having multiple layers. Each layer is mechanically coupled with adjacent layers of the article.
- the article has an impact side and an asset side that is opposite the impact side. From the impact side to the asset side, each successive layer has a density that is greater than a density of the adjacent layer that is closer to the impact side.
- FIG. 1 is a flow chart of a method of reducing blast impulse in accordance with certain embodiments of the present disclosure.
- FIGs. 2A-2C schematically depict at sequential time periods the circumstance where a Shockwave, but not a fireball, impacts an article in accordance with certain embodiments of the present disclosure.
- FIG. 3 is a flow chart of a method of reducing blast impulse in accordance with certain embodiments of the present disclosure.
- FIGs. 4A and 4B schematically depict at sequential time periods the circumstance where a fireball impacts an article in accordance with certain embodiments of the present disclosure.
- FIG. 5 is a schematic representation of multiple articles surrounding an asset in accordance with certain embodiments of the present disclosure.
- FIG. 6 schematically depicts a circumstance where a pressure wave impinges upon an article in accordance with certain embodiments of the present disclosure.
- Figure 7A is a front view of a multilayer panel in accordance with certain embodiments of the present disclosure.
- Figure 7B is a perspective view of the multilayer panel of Figure 7 A in accordance with certain embodiments of the present disclosure.
- Figure 7C is a cross-sectional view of a portion of the multilayer panel of Figure 7A in accordance with certain embodiments of the present disclosure.
- Figure 7D is a cross-sectional view of the multilayer panel of Figure 7A in accordance with certain embodiments of the present disclosure.
- Figure 7E is a detail view of a frame of the multilayer panel of Figure 7A in accordance with certain embodiments of the present disclosure.
- FIG. 8 is a graph in accordance with Example 5.
- FIG. 9 is a graph in accordance with Example 5.
- fireball refers to flame in the shape of a ball or other shape generated by an explosion.
- a fireball has wave characteristics including a frequency and amplitude.
- an "explosive” is a reactive substance that, upon ignition, causes a sudden, almost instantaneous, release of gas, heat, and pressure.
- An explosive may be categorized by the speed at which it expands. For example and without limitation, a “high explosive” may be an explosive at which a blast front moves faster than the speed of sound through a medium. A “low explosive” may be an explosive at which the blast front moves slower than the speed of sound through a medium.
- shockwave refers to a major change of pressure in a narrow region traveling through a medium, for example, air, caused by an explosion moving faster than sound.
- a “major change in pressure” may be a change between 1 psi and 1,000,000 psi, or between 10 psi and 100,000 psi.
- “Narrow region” refers to a time between 1 microsecond and 1 millisecond, or between 1 millisecond and 100 milliseconds.
- a “blast” refers to a chemically initiated, thermally induced shock wave.
- a “blast front” may be the leading edge of the shock wave.
- the term "brisance” refers to the rapidity with which an explosion reaches its peak pressure, i.e. , the shattering capability of a high explosive, determined mainly by its detonation pressure.
- oxygen balance OB% indicates the degree to which an explosive can be oxidized. If an explosive molecule contains just enough oxygen to form carbon dioxide from carbon, water from hydrogen molecules, all of its sulfur dioxide from sulfur, and all metal oxides from metals with no excess, the molecule is said to have a zero oxygen balance. The molecule is said to have a positive oxygen balance if it contains more oxygen than is needed, and a negative oxygen balance if it contains less oxygen than is needed. The sensitivity, strength, and brisance of an explosive may be dependent upon oxygen balance and may approach their maxima as oxygen balance approaches zero.
- a blast life cycle for a chemical-based explosive includes the steps of: 1) mixture; 2) ignition; 3) fireball; 4) shockwave; 5) impulse; and 6) repetition of steps 3-5 until the blast has decayed.
- "Mixture” refers to the mixture of explosive and oxygen for creating a blast. Following mixture, ignition may occur to create the blast. A fireball may then result from the ignition of the mixture. A fireball may propagate through a medium, such as air.
- the fireball may include unignited explosive, such that as the fireball propagates through an oxygen-containing medium such as air, the unignited explosive mixes with the oxygen and ignites. Thus, as the fireball propagates through the oxygen-containing medium, oxygen within the oxygen-containing medium may be reduced in the area through which the fireball has propagated.
- the fireball may generate a Shockwave. Impingement of the Shockwave on the asset may result in blast impulse, i.e., force of the blast integrated over the time of the blast. In certain blasts, multiple fireballs and Shockwaves may be formed during the blast, each of which may result in blast impulse on the asset.
- an article may be employed to reduce blast force from a pressure wave resulting from an explosion from reaching the asset, thereby reducing the blast impulse on the asset.
- the article may reduce load and peak load on the asset from the pressure wave.
- load refers to the force exerted by a pressure wave
- peak load refers to the highest force exerted by the pressure wave throughout the duration of pressure wave.
- reduction of the blast force in an unconfined area may be measured in terms of "scaled distance” by assessing the blast force in terms of a net explosive quantity (NEQ) of trinitrotoluene (TNT).
- NEQ is the total mass of contained explosive substance. Explosion vents, blast walls, window damage, vehicle damage and injury thresholds may be estimated, and test results may be used for these estimations, using NEQ-to-volume ratio for an open space calculation, such as those performed by ConWep.
- the article may reduce the NEQ of the explosive and propellants by at least 10%, or at least 50%, or at least 70%, or at least 90%. For example, the article may reduce the NEQ by at least 70% compared to when the fireball had not impacted the article.
- the article may be directional.
- the article may have an impact side and an asset side.
- the impact side of the article is adapted to receive the blast, including any pressure waves resulting from the blast.
- the asset side of the article is the side of the article opposite from the impact side and is adapted to face the asset to be protected.
- the article includes only a single layer.
- the article may include multiple layers adhered together. When the article includes multiple layers, the individual layers may be the same or different. The individual layers may be selected, for instance, based on the threat anticipated.
- FIG. 1 is a flowchart of reducing blast impulse 100 by using the article to reduce blast force reaching the asset.
- Reducing blast impulse 100 includes providing an article, as shown in FIG. 1 as provide article 1 10.
- the impact side of the article is exposed to a pressure wave, as shown in FIG. 1 as expose article to pressure wave 120.
- the pressure wave results from a blast.
- the pressure wave may be a fireball, a Shockwave, or a combination thereof.
- the pressure wave that impacts the article may include a plurality of pressure wave frequencies. These frequencies may range from, for instance and without limitation, 0.1 Hz to 10,000 Hz, or from 1 Hz or less to 1000 Hz.
- the article may reflect a composite harmonic of a portion of the pressure wave frequencies, as shown in FIG. 1 as reflect composite harmonic 130.
- a composite harmonic is related to the portion of pressure wave frequencies reflected, the material or materials that form the article, the type of explosive, duration of the blast impulse, and environmental factors including temperature, barometric pressure, and humidity of the air around the article.
- the portion of pressure wave frequencies may be between 75 and 175 Hz.
- the pressure wave frequencies reflected as a function of depth of the article may be in ascending order, i.e., lower frequency pressure waves are reflected by the article towards the impact side of the article with higher frequency pressure waves reflected as the pressure wave proceeds through the article to the asset side.
- the portion of the pressure wave frequencies reflected may be the same or different for each layer.
- the pressure wave frequencies may be reflected in ascending order, i.e., the layer nearest the blast side of the article may reflect the lowest pressure wave frequencies with each layer closer to the asset side of the article reflecting successively higher frequencies.
- the composite harmonic reflected of the portion of pressure wave frequencies may be a composite harmonic of, for instance, 100 Hz.
- Composite harmonics reflected by the article may include hundreds of composite harmonics, including, for instance, first through eighth composite harmonics, or a third and fourth harmonic.
- composite harmonic frequencies reflected may be in ascending order from blast side to asset side.
- each of the layers may reflect the same or different composite harmonics.
- composite harmonic frequencies reflected may be in ascending order by layer from blast side to asset side.
- reflection of the composite harmonic by the article may reduce the impulse of the pressure wave by reducing the force that is transferred to the asset.
- the reflection of the composite harmonic may interfere with the pressure wave by cancelling frequencies of the pressure wave, as shown in FIG. 1 as cancel frequencies of pressure wave 140.
- cancelling frequencies of the pressure wave less force is received by the impact side of the article, thereby reducing the force that is transferred by the pressure wave to the asset.
- the article in addition to reflecting a composite harmonic of the pressure wave and cancelling the frequencies of the pressure wave, the article may absorb certain frequencies of the pressure wave, as shown in FIG. 1 as absorb pressure wave 150.
- the frequencies of the pressure wave absorbed by the article may depend on the material of construction of the article. When the article is formed by more than one layer, different layers of the article may absorb the same or different frequencies of the pressure wave.
- the article may reduce or prevent frequencies ranging from 1 Hz to 150 Hz, or 1 Hz to 200 Hz, or 1 Hz to 500 Hz, or 1 Hz to 800 Hz, or 1 Hz to 1 ,000 Hz, or 1 Hz to 1,200 from propagating through the article and impacting the asset.
- frequencies from 1 Hz to 1,000 Hz may have the potential to cause more damage to the asset than frequencies less than 1 Hz or greater than 1 ,000 Hz.
- the article may be "tuned," i.e. manufactured to reflect certain ranges of frequencies by changing materials of construction or thicknesses of layers, such as in multilayer articles.
- detonation of an explosive may form one or more ballistic projectiles.
- the ballistic projectile may be shrapnel or a bullet.
- the article may reduce the velocity of the ballistic projectile, capture the ballistic projectile, or change the trajectory of the ballistic projectile.
- FIGs. 2A-2C schematically depict at sequential time periods the circumstance where the Shockwave, but not the fireball, impacts the article.
- FIG. 2A depicts explosive circumstance 18 prior to the explosion of explosive 24. Explosive circumstance 18 includes explosive 24, article 20, and asset 22.
- article 20 is directional, having impact side 30 and asset side 32. Asset side 32 may be opposite impact side 30. In such embodiments, impact side 30 is positioned such that explosive 24 is on impact side 30 and asset 22 is on asset side 32 of article 20.
- Asset 22 may be positioned at a standoff distance 40 from asset side 32 of article 20. In some embodiments, standoff distance 40 ranges from direct contact to 100 feet, or from direct contact to 15 feet, or from 2 inches to 2 feet, or between 2 and 4 inches. In certain embodiments, asset 22 is mechanically coupled to article 20.
- article 20 is a panel having a thickness ranging from 1/4 inch to 24 inches, or from 1 inch to 12 inches, or from 2 to 3 inches.
- article 20 is a panel with a weight of from 1 to 30, or 5 to 10 pounds per square foot of panel.
- article 20 may be a 2 to 3 inch thick panel that weighs 5 to 10 pounds per square foot of panel.
- article 20 is depicted in FIG. 2A as a panel without curves, one skilled in the art will understand that the panel upon which article 20 is formed may be curved, v-shaped, w-shaped, or other shapes.
- article 20 is a door or a wall.
- asset 22 is armored and article 20 is supplemental to existing armor of asset 22.
- Existing armor of asset 22 may include, but is not limited to, steel, concrete, dirt, gravel and/or distance from explosive 24.
- asset 22 is not armored, with the exception of article 20.
- asset 22 may be adhered, welded, or bolted to article 20.
- article 20 e.g., panel
- article 20 may be mechanically coupled with a building or vehicle.
- article 20 may reduce the risk of injury and death for asset 22 by reducing impulse and/or peak load exerted on asset 22. If asset 22 is a non-living asset, article 20 may reduce the risk of damage or destruction of asset 22 by reducing impulse and/or peak load exerted on asset 22. In some embodiments, use of article 20 may reduce impulse on asset 22 by at least 5 %, by at least 10% or an amount ranging from 10% to 50% in comparison to impulse on asset 22 when article 20 is not located between explosive 24 and asset 22.
- use of article 20 may reduce peak load on asset 22 and acceleration of asset 22 by up to 95% or between 10% and 95% in comparison to peak load on and acceleration of asset 22 of up to 95%, or 10% to 95% when article 20 is not located between explosive 24 and asset 22.
- use of article 20 may reduce a jump height of asset 22 by at least 5%, 10%, or between 5% and 50% in comparison to jump height of asset 22 when article 20 is not located between explosive 24 and asset 22.
- jump height refers to a height at which asset 22 (e.g., a vehicle) is lifted from a surface (e.g., the ground) upon impact of portion of Shockwave 10a. Impact test results are determined in accordance with SAE J21 1 Rev. July 2007, which is incorporated herein by reference in its entirety.
- fireball 26 may form, as shown in FIG. 2B.
- explosion of explosive 24 is chemically initiated.
- Fireball 26 may consume oxygen within air 42 within fireball 26.
- Fireball 26 may form shockwave 10. Portion of Shockwave 10a propagates towards article 20.
- shockwave 10 In explosive circumstance 18b as shown in FIG. 2C, leading edge 11 of shockwave 10 reaches impact side 30 of article 20. As described above with respect to FIG. 1, one or more composite harmonics 10b of a portion of the frequencies of shockwave 10 are reflected by article 20. As further depicted in FIG. 2C, portion of shockwave 10a may penetrate article 20 and at least some of portion of shockwave 10a may be absorbed by article 20.
- FIG. 3 is a flowchart of reducing blast impulse 100b by using the article to reduce blast force reaching the asset where the fireball impacts the article.
- Reducing blast impulse 100b includes providing an article, as shown in FIG. 3 as provide article 1 10.
- the impact side of the article is exposed to a fireball, including the fireball wave, as shown in FIG. 3 as expose article to fireball 125.
- the fireball wave that impacts the article may include a plurality of fireball wave frequencies. These frequencies may range from, for instance and without limitation, 1 Hz or less to 1000 Hz or more.
- the article may reflect a composite harmonic of a portion of the fireball wave frequencies, as shown in FIG. 3 as reflect composite harmonic of fireball wave 135. Further, as will be appreciated by one of skill in the art with the benefit of this disclosure, the reflection of the composite harmonic may interfere with the fireball wave by cancelling frequencies of the fireball wave, as shown in FIG. 3 as cancel frequencies of fireball wave 145. By cancelling frequencies of the fireball wave, less force is received by the impact side of the article, thereby reducing the force that is transferred by the fireball wave to the asset.
- reflection of the fireball wave may interfere with the formation of the fireball in quench fireball 147.
- a fireball reaches its maximum strength and brisance value as oxygen balance approaches zero.
- the fireball may be retarded from reaching its maximum strength and brisance value by reducing the amount of oxygen available to the fireball during its formation.
- reflection of the fireball wave frequencies reflects oxygen-depleted air back into the fireball. This reflection of oxygen depleted air into the fireball reduces the amount of oxygen available to the forming fireball and reduces the fireball strength.
- the article in addition to reflecting a composite harmonic of the fireball wave, cancelling the frequencies of the fireball wave, and quenching the fireball, the article may absorb certain frequencies of the fireball wave as shown in FIG. 3 as absorb fireball wave 149.
- the subsequently formed Shockwave may be reduced (reduce Shockwave 155).
- the blast impulse on the asset is less than if the fireball had not impacted the article.
- the load on the asset is less than if the fireball had not impacted the article.
- the peak load on the asset is less than if the fireball had not impacted the article.
- FIGs. 4A-4B schematically depict at sequential time periods the circumstance where the fireball impacts the article.
- FIG. 4A depicts explosive circumstance 18c prior to the explosion of explosive 24.
- FIG. 4B depicts explosive circumstance 18d following the explosion where fireball 26 and portion of fireball wave 10c propagates towards and impacts article 20.
- Portion of fireball wave 10c may penetrate article 20 and may be absorbed by article 20.
- at least one Shockwave may be generated having less energy than if a Shockwave were generated without fireball 26 having impacted article 20.
- article 20 may be impacted by multiple Shockwaves and/or fireball waves.
- a Shockwave or fireball wave may create holes or "channels" in the article.
- later impacting Shockwaves and/or fireball waves may impart more force into the channels formed in the article than other portions of the article, thereby increasing the efficiency of the article in reducing blast impulse.
- article 20 may be formed from a single layer.
- the composition of article 20 is uniform, with a substantially constant density.
- the composition of article 20 is not uniform and the density of article 20 varies from impact side 30 to asset side 32 of article 20.
- the variation in density from impact side 30 of article 20 to asset side 32 of article 20 may range from 0.01 g/cc to 20 g/cc, or from .03 g/cc to 10 g/cc, or from 0.25 g/cc to 1 g/cc.
- the density of article 20 may increase (e.g., incrementally or continuously) from impact side 30 to asset side 32. Without being bound by theory, it is believed that relatively higher densities will reflect and absorb relatively higher frequencies, and relatively lower densities will reflect and absorb relatively lower frequencies. Again, without being bound by theory, it is believed that, in embodiments where article 20 has an increasing density from impact side 30 to asset side 32, article 20 will absorb, reflect, cancel, and dissipate frequencies of pressure waves in ascending order of frequency.
- a single article 20 may be used to provide protection to asset 22.
- multiple articles 20a-20f may be used to provide protection to asset 22, as shown in FIG. 5. While FIG. 5 depicts six articles 20a-20f, one skilled in the art will understand that any number of articles may be used to provide protection to asset 22.
- articles 20a-20f when multiple articles 20a-20f are used to provide protection to asset 22, articles 20a-20f may be arranged at angles from relative to one another that are not oblique, at angles that are oblique, or combinations thereof.
- article 20 may be formed of multiple layers. While FIG. 6 depicts six layers (28a - 28f), one of ordinary skill in the art will recognize that six layers is non-limiting and the number of layers may range for example, from 2 to 100 layers.
- explosion may form fireball 26 and pressure wave 15.
- Pressure wave 15 may include fireball wave 10c and Shockwave 10a.
- each of the layers 28a-28f of article 20 may receive a portion of pressure wave 15, reflect a portion of the frequencies of pressure wave 15, and absorb a portion of the energy of pressure wave 15.
- Absorption of energy of pressure wave 15 by a layer may result in destruction or damage of the layer.
- absorption of energy of pressure wave 15 by a layer may puncture the layer, rupture the layer, increase the temperature of the layer, ignite the layer, or combinations thereof.
- the destruction or damage of each layer may be progressive, i.e., the layer closest to the impact side of the article may be destroyed or damaged first, followed by the next-most layer. Further, where article 20 includes multiple layers, not all layers may be destroyed or damaged.
- each of layers 28a-28f of article 20 may be the same or different.
- successive layers may increase in density; density ranges of successive layers may overlap. Without being bound by theory, it is believed that layers having relatively higher densities will reflect and absorb relatively higher frequencies, and layers having relatively lower densities will reflect and absorb relatively lower frequencies.
- article 20 absorbs, reflects, cancels, and dissipates frequencies of pressure wave 15 in ascending order of frequency. While each successive layer may reflect and absorb frequencies that are higher than frequencies reflected and absorbed by the adjacent layer that is closer to impact side 30, in some embodiments there is overlap between the frequencies absorbed, reflected, cancelled, and dissipated by adjacent layers.
- successive layers may increase in strength, including, but not limited to examples such as tensile strength, puncture resistance, tear resistance, and compressive resistance; strengths of successive layers may overlap.
- At least some energy of pressure wave 15 is dissipated within article 20.
- at least some energy of pressure wave 15 may be dissipated within article 20 as a result of internal reflection and/or scattering of pressure wave 15 within article 20.
- article 20 exhibits fire resistance, preventing or reducing the ability of a fire to propagate from impact side 30 through asset side 32.
- article 20 exhibits insulation properties.
- compositions for use in layers 28a-28f of article 20 include, but are not limited to, concrete, synthetic or natural rubbers, neoprene, polyolefins (e.g., polyethylene, polypropylene), ceramic composites, metal foams (e.g., aluminum foam), polymer foams, thermoplastic composites, and fiber composites.
- polyolefins e.g., polyethylene, polypropylene
- ceramic composites e.g., polyethylene, polypropylene
- metal foams e.g., aluminum foam
- polymer foams e.g., thermoplastic composites, and fiber composites.
- first layer 28a may reflect at least some frequencies of impinging pressure wave 15.
- first layer 28a may have a density of between 0.02 g/cc to 0.05 g/cc or around 0.03 g/cc.
- first layer 28a may have a thickness of between 0.15 inches and 0.5 inches, or between 0.2 inches and 0.3 inches, or about 0.25 inches
- first layer 28a may exhibit elasticity.
- first layer 28a may contain a synthetic or natural rubber.
- first layer 28a may be composed at least in part of neoprene or a blend of neoprene with other rubbers.
- the neoprene blend may be foamed.
- An aspect of neoprene may be that it reflects the energy of pressure wave 15 very quickly, i.e., for example, less than 10 milliseconds, prior to rupture.
- second layer 28b may have a density of between 0.1 g/cc to 0.5 g/cc, or between 0.25 g/cc to 0.43 g/cc. In certain embodiments, second layer 28b may have a thickness of between 0.25 inches and 0.75 inches, between 0.4 inches and 0.6 inches, or approximately 0.5 inches.
- second layer 28b may be an insulator. Second layer 28b may absorb heat. For example and without limitation, when pressure wave 15 impacts article 20, at least some energy of pressure wave 15 may be transformed into thermal energy, increasing a temperature of one or more portions of article 20. Second layer 28b may function as an insulator to at least some thermal energy absorbed into article 20 from impact with pressure wave 15.
- second layer 28b may contain metal foam.
- the metal foam may be aluminum foam. An aspect of aluminum foam may be that it reflects the energy of pressure wave 15 quickly, i.e., less than 10 milliseconds, prior to rupture, as well as absorbing oscillations and heat.
- third layer 28c may have a density of between 0.4 g/cc to 0.5 g/cc, or between 0.42 g/cc to 0.45 g/cc.
- third layer 28c may contain concrete. Aspects of concrete may be that it reflects, absorbs, and approximately evenly distributes heat and waves.
- first layer 28a, second layer 28b, and third layer 28c may reflect pressure wave frequencies ranging between 0.1 Hz to 175 Hz, or between 1 Hz and approximately 100 Hz.
- fourth layer 28d may have a density of between 0.6 g/cc to 0.9 g/cc, or between 0.7 g/cc to 0.8 g/cc, or about 0.78 g/cc.
- fourth layer 28d may contain polypropylene thermoplastic, for instance, an ultra-high molecular weight polypropylene thermoplastic, such as a thermoplastic composite.
- fourth layer 28d may provide ballistic protection for asset 22, reducing the velocity of or diverting a ballistic projectile.
- fifth layer 28e may have a density of between 0.8 g/cc to 1.1 g/cc, or between 0.9 g/cc to 1.0 g/cc, or about 0.97 g/cc.
- fifth layer 28e may contain a polyethylene thermoplastic, for instance, an ultra-high molecular weight polyethylene thermoplastic, such as a thermoplastic composite.
- fifth layer 28e may provide ballistic protection for asset 22 as well as provide structural support for article 20.
- sixth layer 28f may have a density of between 1.2 g/cc to 1.7 g/cc, or between 1.4 and 1.5 g/cc. In certain embodiments, sixth layer 28f may contain a fiber composite.
- Each layer of article 20 may be mechanically coupled to adjacent layers of article 20.
- Mechanical coupling of adjacent layers may be accomplished by any suitable method known to those skilled in the art.
- mechanical coupling of adjacent layers may be accomplished by adhering adjacent layers to one another.
- an adhesive suitable for adhering adjacent layers to one another is a urethane adhesive.
- Article 20 may include adhesive layer 50 coupled to sixth layer 28f or adhered to asset 22 or a frame (not shown).
- Adhesive layer 50 may be a liquid butyl or butyl self-adhesive tape.
- Figure 7A is a front view of a multilayer panel.
- Figure 7B is a perspective view of the multilayer panel of Figure 7A.
- Figure 7C is a cross-sectional view of a portion of the multilayer panel of Figure 7A.
- Figure 6D is a cross-sectional view of the multilayer panel of Figure 7A.
- Figure 7E is a detail view of a frame of the multilayer panel of Figure 7A.
- frame 34 of article 20 may be mechanically coupled with one or more of layers of article 20.
- adhesive 36f may mechanically couple frame 34 with layers of article 20.
- Frame 34 may span circumferentially about an exterior edge of article 20 between impact side 30 and asset side 32.
- one or more layers of article 20 may have rabbet edges 38 for mechanically coupling with frame 34.
- Figure 7C a cross-sectional view along line "A-A" of Figure 7A, first layer 28a, adhesive layer 50, and frame 34 are not shown.
- first layer 28a is a neoprene layer having a thickness of 0.25 inches
- second layer 28b is an aluminum foam layer having a thickness of 0.5 inches and a density of 0.28 g/cc
- third layer 28c is an aluminum foam layer having a thickness of 0.5 inches and a density of 0.44 g/cc
- fourth layer 28d is a concrete layer having a thickness of 1 inch
- fifth layer 28e is a layer of polypropylene having a thickness of 0.75 inches
- sixth layer 28f is a layer of polyethylene having a thickness of 0.3125 inches.
- Adhesives 36a-36f are urethane adhesives.
- Frame 34 is U- channel. Densities, as
- a series of articles in the form of flat panels may be each, separately, subjected to pressure waves caused by explosion of an explosive that formed a fireball.
- Impulse of the portion of the pressure wave that propagates through the articles are to be measured using load cells to be placed on an asset on the opposite side of the articles as the explosive.
- the measured impulse of the pressure waves that propagated through the articles may be found to be reduced by at least 5% in comparison to the measured impulses of equivalent pressure waves without the articles being placed between the explosive and the load cells.
- Example 2 [0080] An article in the form of a flat panel will be placed between an asset with a load cell and an explosive, and subjected to pressure waves caused by explosion of the explosive that formed a fireball. Load will be measured by the load cells throughout the pressure wave. The measured peak load of the pressure wave that propagates through the article will be found to be reduced by 10% to 95% in comparison to the measured peak load of an equivalent pressure wave without the article being placed between the explosive and the asset.
- An article in the form of a flat panel will be placed between an asset with an accelerometer and an explosive, and subjected to pressure waves to be caused by explosion of the explosive to form a fireball. Acceleration of the asset will be measured with the accelerometer. The measured acceleration of the asset will be found to be reduced by 10% to 95% in comparison to the measured acceleration of the asset without the article being placed between the explosive and the asset.
- Example 4
- An article in the form of a flat panel will be placed between a vehicle and an explosive, and subjected to pressure waves caused by explosion of the explosive to form a fireball.
- the jump height of the vehicle will be found to be reduced by at least 5% in comparison to the measured jump height of a vehicle without the article being placed between the explosive and the vehicle.
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- Environmental & Geological Engineering (AREA)
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- Physics & Mathematics (AREA)
- Aiming, Guidance, Guns With A Light Source, Armor, Camouflage, And Targets (AREA)
- Surgical Instruments (AREA)
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Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
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| US201662321449P | 2016-04-12 | 2016-04-12 | |
| PCT/US2017/025044 WO2017213735A2 (en) | 2016-04-12 | 2017-03-30 | Systems and methods for blast impulse reduction |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP3443291A2 true EP3443291A2 (en) | 2019-02-20 |
| EP3443291A4 EP3443291A4 (en) | 2019-11-13 |
| EP3443291B1 EP3443291B1 (en) | 2024-12-25 |
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| EP17810662.1A Active EP3443291B1 (en) | 2016-04-12 | 2017-03-30 | Systems and methods for blast impulse reduction |
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| US (1) | US20170292815A1 (en) |
| EP (1) | EP3443291B1 (en) |
| AU (1) | AU2017279477B2 (en) |
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| IL (1) | IL262224B2 (en) |
| WO (1) | WO2017213735A2 (en) |
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| CN109765025B (en) * | 2018-12-25 | 2019-11-08 | 哈尔滨理工大学 | Damage assessment method of RPC plate based on P-I curve under blast load |
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| US3592147A (en) * | 1969-05-14 | 1971-07-13 | Lockheed Aircraft Corp | Method and means for attenuating shock waves propagating within a solid |
| US3948346A (en) * | 1974-04-02 | 1976-04-06 | Mcdonnell Douglas Corporation | Multi-layered acoustic liner |
| US4567100A (en) * | 1983-08-22 | 1986-01-28 | The United States Of America As Represented By The Secretary Of The Navy | Forced entry and ballistic resistant laminar structure |
| CA2149065A1 (en) * | 1995-05-10 | 1996-11-11 | David Bruce Nesseth Hudak | Structural protection assemblies |
| US6174587B1 (en) * | 1998-12-02 | 2001-01-16 | Atlantic Research Corporation | Shock attenuation barrier |
| DE60007237T2 (en) * | 1999-03-10 | 2004-05-27 | Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. | USE OF METAL FOAMS IN ARMORING SYSTEMS |
| US7343843B2 (en) * | 2003-07-31 | 2008-03-18 | Blast Gard International | Explosive effect mitigated containers and enclosing devices |
| US8316752B2 (en) * | 2003-07-31 | 2012-11-27 | Blastgard Technologies, Inc. | Acoustic shock wave attenuating assembly |
| CA2438802C (en) * | 2003-08-27 | 2007-01-30 | Sameh Guirgis | A structural system with high absorption capacity to impactive and impulsive loads |
| WO2007073363A2 (en) * | 2004-12-01 | 2007-06-28 | Life Shield Engineered Systems, Llc | Shrapnel and projectile containment systems and equipment and methods for producing same |
| US9170071B2 (en) * | 2006-05-01 | 2015-10-27 | Warwick Mills Inc. | Mosaic extremity protection system with transportable solid elements |
| US7748307B2 (en) * | 2006-08-04 | 2010-07-06 | Gerald Hallissy | Shielding for structural support elements |
| WO2009058453A2 (en) * | 2007-08-10 | 2009-05-07 | Greenhill Antiballistics Corporation (Wy) | Composite material |
| US20120174763A1 (en) * | 2008-01-24 | 2012-07-12 | Pacific Scientific Energetic Materials Company | Lightweight armor protected shelters and methods of preparing such shelters |
| GB2469428B (en) * | 2008-02-05 | 2012-11-07 | Guy Leath Gettle | Blast effect mitigating assembly using aerogels |
| US8646373B1 (en) * | 2009-05-04 | 2014-02-11 | Nova Research, Inc. | Blast wave effects reduction system |
| GB2482030B (en) * | 2010-07-16 | 2015-11-04 | Acell Ind Ltd | Composite materials and uses thereof |
| US9790406B2 (en) * | 2011-10-17 | 2017-10-17 | Berry Plastics Corporation | Impact-resistant film |
| CN102538606A (en) * | 2011-12-16 | 2012-07-04 | 西安交通大学 | Gradient sandwiched anti-explosion pot |
| US9038332B1 (en) * | 2012-11-08 | 2015-05-26 | The United States Of America As Represented By The Secretary Of The Navy | Explosive blast shield for buildings |
| US9228805B1 (en) * | 2012-11-08 | 2016-01-05 | The United States Of America As Represented By The Secretary Of The Navy | Corrugated blast frequency control panel and method |
| CN203561298U (en) * | 2013-09-24 | 2014-04-23 | 中国人民解放军总参谋部工程兵科研三所 | Anti-fragment wave-absorbing explosion removing tank |
| US20150096479A1 (en) * | 2013-10-09 | 2015-04-09 | Pacific Bulletproof Co. | Ballistic resistant building components and system |
| US20150308791A1 (en) * | 2014-04-23 | 2015-10-29 | Joseph Andrew Navarra | Ballistic barriers and enclosures and methods for providing ballistic barriers and enclosures |
| US9809005B2 (en) * | 2014-10-03 | 2017-11-07 | Antiballistic Security And Protection, Inc. | Anti-ballistic materials and system |
| KR101593566B1 (en) * | 2015-07-10 | 2016-02-16 | (주)폼텍글로벌 | Wall for Exposure |
| CN205840035U (en) * | 2016-07-13 | 2016-12-28 | 谢全民 | A kind of Novel blast wall of ammunition depot in city |
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| GB2550251A (en) | 2017-11-15 |
| EP3443291A4 (en) | 2019-11-13 |
| CA3020658A1 (en) | 2017-12-14 |
| IL262224B2 (en) | 2023-10-01 |
| US20170292815A1 (en) | 2017-10-12 |
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