The present invention generally relates firearm projectiles. More specifically, the present invention relates to projectiles to penetrate harden targets.
Projectiles, often referred to as bullets, are designed with a single purpose in mind. Typically, that single purpose is deep penetration or controlled expansion for terminal performance as the single purpose. Another purpose is penetration of harden targets. Most harden targets are protected by armor made of metal or other materials meant to repel projectiles.
It is an object of the present invention to provide projectile to penetrate harden targets.
A projectile having a projectile body that includes a front end and a rear end. A cavity in the rear end of the projectile body. An internal core in the cavity. The internal core including a front end and a rear end. The front end of the internal core inserted towards the front end of the projectile body.
The projectile body 10 shown in
The internal core 12 is of a material that is harder and denser than the material to be penetrated by the internal core 12. Depending on the penetration requirement, the shape of the ends of the internal core 12 can vary, as shown in
When the projectile strikes armor plate, the projectile body 10, starting at the tip of the front end 14, hits the plate and begins to disintegrate creating heat. The projectile body 10 material completely disintegrates which softens the plate surface slightly and makes it easier for the hardened internal core 12 to penetrate the plate. Then, the internal core 12 makes contact and plows its way through the plate due to the internal core 12 being harder and denser than the plate. The nose design of the internal core 12 has to be sufficient to defeat the armor plate and not fracture the internal core 12. A fragile point on the internal core 12 could cause fracture of the internal core 12 on impact. A fracture of the internal core 12 could cause a loss of mass and cause the internal core 12 to veer off course causing even more fracturing and loss of penetration. It is important the internal core 12 has the correct balance of hardness, toughness and density, so it is not too brittle. An example of parameter ranges for the internal core 12 are a density between 12-16; a hardness between 80 ra-90 ra and grain structures between 2-6 microns. A corrosion resistant tungsten carbide would be a good material for the internal core 12.
While different embodiments of the invention have been described in detail herein, it will be appreciated by those skilled in the art that various modifications and alternatives to the embodiments could be developed in light of the overall teachings of the disclosure. Accordingly, the particular arrangements are illustrative only and are not limiting as to the scope of the invention that is to be given the full breadth of any and all equivalents thereof.
This application claims the benefit of and incorporates by reference U.S. Provisional Applications No. 62/181,283, filed Jun. 18, 2015.
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| Number | Date | Country | |
|---|---|---|---|
| 62181283 | Jun 2015 | US |