Claims
- 1. A dynamically optimized structure, comprising:
a body segment; a tip segment adjoining said body segment and smoothly merging from said body segment to a tip, said tip segment being defined, at least in one section, by a function y=s tan x, where x and y are Cartesian coordinates and y extends parallel to a direction from said body segment to said tip segment, and s is a real number greater than zero.
- 2. The structure according to claim 1, wherein said body segment is substantially cylindrical in a section orthogonal to a center axis thereof, and said tip segment is defined by the function y=s tan x in a multitude of sections through said center axis.
- 3. The structure according to claim 1, wherein s is a constant.
- 4. The structure according to claim 1, wherein s is a number greater than 1.
- 5. The structure according to claim 1, wherein s is a function of x and has a maximum value smaller than a maximum value of x.
- 6. The structure to claim 1, which comprises a tail segment adjoining said body segment opposite from said tip segment and smoothly merging from said body segment to a tail, said tail segment being defined, in at least one section through an axis connecting said tip to said tail, by a function mirroring the function y=s tan x of said tip segment.
- 7. The structure according to claim 6, wherein said body segment is substantially cylindrical in a section orthogonal to said axis, and said tail segment is defined by the function y=s tan x in a multitude of sections through said axis.
- 8. The structure according to claim 1, which comprises a tail segment adjoining said body segment opposite from said tip segment and having a backwall substantially orthogonal to said axis.
- 9. The structure according to claim 1, which comprises a tail segment adjoining said body segment opposite from said tip segment, said tail segment having an outline surface smoothly merging from said body segment inward to a further cylindrical tail segment having a smaller diameter than said cylindrical body segment, and having a backwall substantially orthogonal to said axis.
- 10. The structure according to claim 1, which comprises a tail segment having a material composition with a specific weight less than a specific weight of said tip segment.
- 11. An aerodynamically optimized aircraft body, comprising: a body segment having a center axis and a substantially round periphery;
a nose segment adjoining said body segment and smoothly merging from said body segment to a tip, said nose segment being defined, at least in one section, by a function y=s tan x, where x and y are Cartesian coordinates and y extends parallel to said center axis, and s is a real number greater than zero.
- 12. The aircraft body to claim 11, which comprises a tail segment adjoining said body segment opposite from said nose segment and smoothly merging from said substantially round body segment to a tail, said tail segment being defined, in at least one section through said center axis, by a function mirroring the function y=s tan x of said nose segment.
- 13. An aerodynamically optimized train structure, comprising:
a body segment having a substantially rectangular periphery and a longitudinal extent defining a travel direction of the train structure; a tip segment adjoining said body segment and smoothly merging from said body segment to a tip, said tip segment being defined, at least in one section, by a function y=s tan x, where x and y are Cartesian coordinates and y extends parallel to said longitudinal extent, and s is a real number greater than zero.
- 14. The train structure according to claim 13, wherein the function y=s tan x is defined by a substantially vertical section through said longitudinal extent.
- 15. The train structure according to claim 14, wherein the function y=s tan x is defined by a substantially horizontal section.
- 16. A hydro-dynamically optimized hull structure, comprising:
a body segment to be at least partially submersed during an operation of the hull structure; a tip segment adjoining said body segment and smoothly merging from said body segment to a tip, said tip segment being defined, at least in one section, by a function y=s tan x, where x and y are Cartesian coordinates and y extends parallel to a direction from said body segment to said tip segment, and s is a real number greater than zero.
- 17. The hull structure according to claim 16, wherein said body segment is substantially cylindrical in a section orthogonal to a longitudinal axis thereof, and said tip segment is defined by the function y=s tan x in a multitude of sections through said longitudinal axis.
- 18. The hull structure according to claim 17, wherein said body segment, said tip segment and a tail segment together form a submarine hull.
- 19. The hull structure according to claim 16, which further comprises a tail segment adjoining said body segment opposite from said tip segment and smoothly merging from said body segment to a tail, said tail segment being defined, in at least one section through an axis connecting said tip to said tail, by a function mirroring the function y=s tan x of said tip segment.
- 20. The hull structure according to claim 19, wherein said body segment is substantially cylindrical in a section orthogonal to said axis, said tail segment is defined by the function y=s tan x in a multitude of sections through said axis, and said body segment, said tip segment and said tail segment together form a hydrodynamically optimized submarine hull.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The application is a continuation-in-part of my copending application No. 10/194,739, filed Jul. 12, 2002, and entitled Projectile With Improved Dynamic Shape.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10194739 |
Jul 2002 |
US |
Child |
10269584 |
Oct 2002 |
US |