Claims
- 1. A focussing device comprising a Luneberg lens comprising a homogeneous volume of dielectric, comprising a granular agglomerate defined by a homogeneous granule size distribution of thermoplastic granules wherein at least one plurality of these granules being welded together by granule boundaries obtained by a partial melting of these granules in order to keep said volume consolidated.
- 2. The device as claimed in claim 1, wherein said plurality of granules is included at least within an outer layer of said homogeneous volume, said outer layer being relative to the outer surface of the volume extended toward the inside of said volume to a predetermined depth.
- 3. The device as claimed in claim 2, wherein said depth is of the order of a multiple of the received and/or transmitted half-wavelength.
- 4. The device as claimed in claim 1, wherein said plurality of granules is uniformly distributed within said volume.
- 5. The device as claimed in claim 1, wherein the permittivity εr of the volume of material composed of thermoplastic granules with a permittivity εr0 is connected with a fill factor F, denoting the ratio of the volume actually occupied by the granules to the total volume of the lens, by the equation:εr=[(1+2F) εr0+2(1−F)]/[(1−F) εr0+2+F].
- 6. The device as claimed in claim 1, wherein the focal length of the lens depends on the refractive index n of the lens and on the accepted phase variation over the aperture of the radiation pattern of the lens, the refractive index of the lens being given by:n=εr½.
- 7. The device as claimed in claim 1, wherein at least one additional layer covers said homogeneous volume of dielectric, said additional layer also comprising an agglomerate of thermoplastic granules of a material differing from that of the granules of said volume and having a density less than that of said volume.
- 8. The device as claimed in claim 1, wherein the granules of said volume are composed of polystyrene.
- 9. The device as claimed in claim 7 wherein the granules of the second layer are composed of polypropylene.
- 10. A process for manufacturing a Luneberg lens comprising a homogeneous volume of dielectric, comprising a step of forming said volume, wherein the volume comprises a granular agglomerate defined by a homogeneous size distribution of thermoplastic granules and in that said process comprises the following steps:a step of heating the volume in order to raise the temperature of at least one outer layer of the volume to a transition temperature between the softening temperature of said material and the melting point of the material, the outer layer representing the outer layer of the volume extended into the volume to a predetermined depth and the transition temperature being defined by a phase change toward a viscous phase of at least part of said outer layer over said depth; a step of cooling said outer layer in order to harden said outer layer.
- 11. The process as claimed in claim 10, wherein, during the heating step, the temperature is raised in order to melt at least the outer layer of the granules contained in said outer layer of the volume for the purpose of forming viscous granule boundaries binding the granules of the outer layer of the volume.
- 12. The process as claimed in claim 10, wherein the thickness of the outer layer is of the order of a multiple of the received and/or transmitted half-wavelength.
- 13. The process as claimed in claim 10, wherein the heating step is carried out until the entire volume has reached the transition temperature.
- 14. The process as claimed in claim 10, wherein the heating is carried out by convection.
- 15. The process as claimed in claim 10, wherein the heating time must be greater than a first temperature value in order to allow the outer layer of the granules of at least the outer layer of the volume to melt and must be less than a second temperature value in order to prevent these granules from completely melting.
- 16. The process as claimed in claim 10, wherein the process employs molding means for forming said volume, said molding means comprising porosities uniformly arranged over the outer surface of said molding means and the relative rotational speed of said molding means with respect to the blowing direction being less than a given speed in order to allow temperature homogeneity within at least the outer layer.
- 17. The process as claimed in claim 16, wherein the molding means are vibrated in order to mix the material.
- 18. The process as claimed in claim 10, wherein the heating temperature and the heating and cooling times are adjusted according to the thermoplastic used and to said volume of thermoplastic.
- 19. The process as claimed in claim 10, wherein said process employs pressing means, the pressure of which depends on the desired material density in said volume.
- 20. The process as claimed in claim 14, wherein the heating time is extended, at a constant temperature, in order to conduct heat into the entire volume.
- 21. The process as claimed in claim 10, wherein at least one sheet of thermoplastic is thermoformed around the volume.
- 22. The process as claimed in claim 10, wherein said volume is shaped so as to allow, in operation, a visibility in elevation of 10° to 90° and in azimuth of 360°.
- 23. The process as claimed in claim 10, wherein the volume is spherical.
- 24. A signal focussing device comprising a Luneberg lens having a homogeneous volume of dielectric, wherein the lens is produced by the process according to claim 10.
Priority Claims (1)
Number |
Date |
Country |
Kind |
98 15363 |
Dec 1998 |
FR |
|
Parent Case Info
This application claims the benefit under 35 U.S.C. § 365 of International Application PCT/FR99/02961, filed Nov. 30, 1999, which was published in accordance with PCT Article 21(2) on Jun. 15, 2000 in French.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/FR99/02961 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO00/35050 |
6/15/2000 |
WO |
A |
US Referenced Citations (6)
Number |
Name |
Date |
Kind |
3917773 |
Gates, Jr. et al. |
Nov 1975 |
A |
4288337 |
Ota et al. |
Sep 1981 |
A |
5154973 |
Imagawa et al. |
Oct 1992 |
A |
5677796 |
Zimmerman et al. |
Oct 1997 |
A |
6426731 |
Hirtzlin et al. |
Jul 2002 |
B2 |
6433936 |
Carpenter et al. |
Aug 2002 |
B1 |
Foreign Referenced Citations (1)
Number |
Date |
Country |
9310572 |
May 1993 |
WO |