F41H5/045

Multi-curve steel body armor and method of manufacturing same
11112219 · 2021-09-07 · ·

A steel armor plate and method of manufacturing is described. The armor plate has three curves, a first curve about an axis that parallels the length of the armor plate, and two additional curves about axes that parallel the width of the armor plate. A die for manufacturing said plate is described, the die being formed of a stack of metal plates, each plate having a curve that substantially matches the first curve, the stack of plates being arranged in a step-down-then-step-up fashion to form a concavity that approximates one of the two additional curves.

BULLET RESISTANT GARAGE DOORS
20210302130 · 2021-09-30 ·

A bullet-resistant garage door is formed with multiple garage door panels spaced vertically and pivotable relative to one another to permit conventional opening of the garage door. Each garage door panel is formed with an interior ballistic panel, an exterior ballistic panel and an insulation panel positioned between the interior and exterior ballistic panels. A ballistic shield is attached to the exterior ballistic panel to overlap the gap between the exterior ballistic panels of adjacent garage door panels. The exterior ballistic panel is operable to allow the penetration of a bullet of a given caliber while dissipating the energy of the bullet so that the bullet will not penetrate the interior ballistic panel and become trapped in the insulation panel. Sheeting and trim members can be attached to the exterior ballistic panel and the shield to provide an aesthetically pleasing appearance for the garage door panels while maintaining bullet-resistant characteristics.

SAFETY STEEL OR WEAR-RESISTANT STEEL, AND USE

The invention relates to a ballistic steel or wear-resistant steel (1) made up of a multilayer steel materials composite comprising a first layer (1.1) composed of a steel which in the hardened or tempered state has a hardness of >350 HBW and at least one second layer (1.2) which is composed of a steel which is softer compared to the first layer (1.1) and is joined by substance-to-substance bonding to the first layer (1.1), wherein the second layer (1.2) has a hardness which is at least 20% lower than that of the first layer (1.1) in the hardened or tempered state. The invention further relates to a corresponding use of the ballistic steel or wear-resistant steel (1).

FUSED FILAMENT FABRICATION OF COMPONENTS INCLUDING STRUCTURES FOR ABSORPTION OF KINETIC ENERGY

An additively manufactured component that includes a tool with a region having a plurality of overlying metal layers each derived from a metal powder filament. The region has a predetermined yield point selected based on an operation to be performed with the tool.

METHOD AND APPARATUS FOR FORMING NON-BONDED REGIONS IN MULTI-LAYERED METALLIC ARMOR

Disclosed herein is a method of forming a multi-layered metallic part. The method comprises stacking at least two metallic layers, each made of a metallic material having a ductility, to form a multi-layered metallic assembly. The method also comprises interposing a diffusion-bond preventing element directly between adjacent ones of the at least two metallic layers of the multi-layered metallic assembly. The method further comprises diffusion bonding the at least two metallic layers to each other at locations other than a location contiguous with the diffusion-bond preventing element to produce a multi-layered metallic part having a non-bonded region between the at least two metallic layers at the location of the diffusion-bond preventing element.

Method and apparatus for forming multi-layered metallic armor
10966292 · 2021-03-30 · ·

Disclosed herein is a method of forming a multi-layered metallic part. The method comprises forming a plurality of ductile layers made of a metallic material having a first ductility. The method also comprises forming at least one high-strength powder layer made of a powdered metallic material having a second ductility higher than the first ductility. The method further comprises assembling the plurality of ductile layers and the at least one high-strength powder layer in an alternating and stacked formation to form a multi-layered metallic assembly. The method additionally comprises oscillating a crystallographic phase of the powdered metallic material of the at least one high-strength powder layer between a first crystallographic phase and a second crystallographic phase.

Armor plate and armor consisting of carrier and armor plate
10900752 · 2021-01-26 · ·

In one aspect, an armor plate (10) with a thickness of at least 2 mm and an edge length of at least 20 mm is described, wherein the armor plate (10) consists of a material that contains tungsten heavy metal or tungsten carbide as the essential component.

PROCESS FOR THE PRODUCTION OF AN ARMORING COMPONENT FOR MOTOR VEHICLES

A process for the production of an armoring component for motor vehicles, the process beginning with provision of an armoring element made of an armored steel. At least one region of a surface of the armoring element is then subjected to particle-impact treatment. Finally, a coating is applied to the particle-impact-treated surface of the armoring element, where the coating consists of a material that is softer than the armored steel.

Dual hardness steel article

A dual hardness steel article comprises a first air hardenable steel alloy having a first hardness metallurgically bonded to a second air hardenable steel alloy having a second hardness. A method of manufacturing a dual hard steel article comprises providing a first air hardenable steel alloy part comprising a first mating surface and having a first part hardness, and providing a second air hardenable steel alloy part comprising a second mating surface and having a second part hardness. The first air hardenable steel alloy part is metallurgically secured to the second air hardenable steel alloy part to form a metallurgically secured assembly, and the metallurgically secured assembly is hot rolled to provide a metallurgical bond between the first mating surface and the second mating surface.

Dual-hardness clad steel plate and production method thereof

A dual-hardness clad steel plate. One surface of the steel plate is a high-hardness layer, the other surface of the steel plate is a low-hardness layer, and a combination of atoms is achieved between the high-hardness layer and the low-hardness layer by rolling bonding, wherein Mn13 steel is adopted for the low-hardness layer, and the Brinell hardness of the high-hardness layer is greater than 600. Further disclosed is a production method of the dual-hardness clad steel plate, comprising: 1) respectively preparing a high-hardness layer slab and a low-hardness layer slab; 2) assembling: preprocessing combined faces of the slabs, carrying out peripheral welded sealing on joint faces of the slabs, and carrying out vacuumizing treatment on a composite slab after welded sealing; 3) heating; 4) carrying out composite rolling; 5) cooling; and 6) carrying out thermal treatment, wherein the heating temperature is 1050-1100 C., the heating time is 2-3 min/mmslab thickness, and water cooling is performed on the heated slab, and the water temperature is lower than 40 C. The steel plate has different hardness characteristics and good low-temperature toughness.