Claims
- 1. A monolithic ballasted kinetic energy penetrator comprising:a monolithic case made of a first material, said case having a case axis aligned with the direction of penetrating motion; and five continguous regions comprising: a nose end having a generally ogival outer shape; a pointed tip of said nose end; a continuous outer surface extending from said pointed tip to; a middle section having a continuous, unjointed surface comprising an elongated, generally cylindrical or conical shape extending along said case axis; extending to a base having a flat end; a ballast made of a second solid material whose density is substantially greater than said first material; said ballast being disposed within said monolithic case; said ballast having a rear end facing the base of said case; and said ballast having an outer surface area substantially surrounded by, and joined to, said monolithic case; and an integral web extending across said middle section and supporting the rear end of said ballast; said web having a rear side facing the base of said case; whereby said ballast is constrained in all directions against movement relative to said monolithic case.
- 2. The penetrator of claim 1, wherein said ballast has:a ballast axis aligned with the direction of penetrating motion; an elongated, generally cylindrical shape extending along said ballast axis; a location disposed far forward inside the penetrator, substantially towards the tip of said nose end; and a forward end that faces the tip of said nose end; a shape of said forward end that closely matches the generally ogival outer shape of said nose end.
- 3. The penetrator of claim 1, wherein the orientation of said case axis is substantially coincident with said ballast axis.
- 4. The penetrator of claim 1 wherein portions of the outer surface of said ballast are crenulated, said first material conforming to said crenulated portions.
- 5. The penetrator of claim 1 wherein the outer surface of said monolithic case tapers from a smaller diameter adjacent said nose end, to a larger diameter at said base.
- 6. The penetrator of claim 1 additionally comprising a plurality of external longitudinal stiffening ribs disposed around the outer surface of said monolithic case.
- 7. The penetrator of claim 1 wherein said first material, used for said monolithic case, is a high-strength steel alloy.
- 8. The penetrator of claim 7 wherein said high-strength steel alloy, used for said monolithic case, is a high-strength nickel-cobalt steel alloy strengthened by additions of carbon, chrome, and molybdenum.
- 9. The penetrator of claim 1 wherein said second solid material has a density greater than about 13 g/cm3.
- 10. The penetrator of claim 9 wherein said second solid material is selected from the group consisting of tungsten, tantalum, tungsten alloys (W—Fe—Ni, W—Re, W—Hf—Re, W—LaO2, W—ThO2) single crystal tungsten, tungsten carbide, cemented tungsten carbide (tungsten carbide-cobalt), depleted uranium and it's alloys.
- 11. The penetrator of claim 1, additionally comprising at least one metallurgical coating placed on the outer surface of said ballast for improving the quality of joining between said ballast and said monolithic case.
- 12. The penetrator of claim 1, wherein said case includesa rearwardly open hollow cavity disposed within said monolithic case, having a front end defined by the rear side of said integral web; and a flat, open rear end defined by the base of said monolithic case.
- 13. The penetrator of claim 12, additionally comprising:a payload disposed within said rearwardly open hollow cavity; means for fastening said payload within said rearwardly open hollow cavity; and means for securely closing the flat, open rear end of said rearwardly open hollow cavity.
- 14. The penetrator of claim 13, wherein said payload comprises an energetic material and a fuze for said energetic material,said fuze being located near the base of said monolithic penetrator and securely fastened to said monolithic case; and said energetic material being located in between said integral web and said fuze.
- 15. The penetrator of claim 13 wherein said payload comprises an instrumentation package securely fastened to said monolithic case.
- 16. The penetrator of claim 12 wherein said rearwardly open hollow cavity additionally comprises a plurality of longitudinal stiffening ribs made integral with said monolithic case.
- 17. The penetrator of claim 13, wherein said rearwardly open hollow cavity additionally comprises:a plurality of integral interior mounting features, made continuously of said first material, wherein the shape of said mounting features is selected from the group consisting of pads and rings; and said payload is securely fastened to said integral mounting features.
- 18. The penetrator of claim 17 wherein said integral mounting features additionally comprise reentrant angles.
- 19. The penetrator of claim 16 wherein said integral longitudinal stiffening ribs additionally comprise reentrant angles.
- 20. A method of making a monolithic ballasted kinetic energy penetrator by casting comprising the steps of:placing a ballast formed of a first material in a mold, said ballast having an outer surface; filling said mold with a molten second material, said second molten material surrounding substantially the entire outer surface of said ballast; cooling said second material until it hardens; and removing said mold.
- 21. The method of claim 20 wherein said penetrator has a nose end and a base connected by a continuous side, the ballast being adjacent the nose end, the method further comprising:placing a core into the mold, said core having a solid outer surface adjacent the base, said core having a melting temperature that is higher than the second molten material, a portion of said core extending through the base, filling the entire outer surface of said core with molten metal, except for the portion extending through the tail end of the penetrator; removing the mold; and removing said core.
- 22. The method of claim 21 wherein the core is ceramic and is broken into small pieces for removal.
- 23. The method of claim 21 further comprising the step of applying metallurgical coatings to the surface of said ballast to improve joining with said second material.
- 24. The method of claim 21 further comprising the step of hot isostatic pressing after said casting step.
- 25. The method of claim 21 further comprising the step of performing heat treatment after said casting step to strengthen said second material.
- 26. The method of claim 21 wherein said mold further comprises a two-piece, split steel reusable mold, coated with a ceramic material to prevent direct contact of said molten second material with the inner surfaces of said steel mold.
- 27. The method of claim 20 wherein said method for placing a ballast in a mold further comprises supporting said ballast on the end of a support rod.
- 28. A penetrator made by the process of claim 20.
- 29. A monolithic ballasted kinetic energy penetrator comprising:a monolithic case made of a first material, said case comprising: a nose end having a generally ogival outer shape with a pointed tip; and a continuous, unjointed outer surface; a ballast, disposed within the case near the nose end; and made of a second material whose density is substantially greater than the density of the first material; wherein the ballast has an outer surface that is completely surrounded by, and is joined to, the case; whereby the ballast is constrained in all directions against movement relative to said monolithic case.
Government Interests
The United States Government has rights in this invention pursuant to Department of Energy Contract No. DE-AC04-94AL85000 with Sandia Corporation.
US Referenced Citations (46)