Claims
- 1. An electromagnetic wave absorbing structural material comprising a composite of a plurality of laminated layers of
- an electromagnetic wave absorbing material composed of a composite material comprising a fiber having a specific resistance of 10.sup.-2 to 10.sup.2 .OMEGA..multidot.cm and a matrix, wherein the fiber is composed of an inorganic substance selected from the group consisting of
- i) an amorphous substance substantially composed of Si, M, C and O,
- ii) crystalline ultrafine particles substantially composed of .beta.-SiC, C, MC, and at least one member selected from (a) MC.sub.1-x and (b) a solid solution of .beta.-SiC and MC, and having a particle diameter of not more than 500 .ANG., or an aggregate of the crystalline ultrafine particles, amorphous SiO.sub.2 and amorphous MO.sub.2, and
- iii) a mixture of the above i) amorphous substance with the above ii) crystalline ultrafine particles or aggregate in which M denotes Ti or Zr, and X is more than 0 but less than 1, and
- an electromagnetic wave transmitting material laminated on the surface of said composite.
- 2. A structural material according to claim 1 wherein in the electromagnetic wave absorbing material the composite material absorbs electromagnetic waves in the range of from 500 MHz to 3000 GHz.
- 3. A structural material according to claim 1 wherein in the electromagnetic wave absorbing material the fiber is one obtained by carrying out the spinning of polytitanocarbosilane or polyzirconocarbosilane having a number average molecular weight of 1,000 to 50,000, rendering the spun fiber infusible and heating the infusible fiber under vacuum, inert gas or reducing gas atmosphere at 1,300.degree. to 1,500.degree. C.
- 4. A structural material according to claim 1 wherein in the electromagnetic wave absorbing material the fiber is one obtained by carrying out the spinning of an organic silicon polymer obtained by heating polycarbosilane having a number average molecular weight of 500 to 1,000 and polytitanocarbosilane or polyzirconocarbosilane having a number average molecular weight of 500 to 1,000 in an organic solvent under inert gas atmosphere, treating the spun fiber so as to render it infusible and heating the infusible fiber under vacuum, inert gas or reducing gas at 1,300.degree. to 1,500.degree. C.
- 5. A structural material according to claim 1 wherein in the electromagnetic wave absorbing material the proportions of elements in the fiber are as follows:
- Si: 28 to 60% by weight
- C: 23 to 60% by weight
- Ti or Zr: 0.5 to 30% by weight
- O: 1 to 30% by weight.
- 6. A structural material according to claim 1 wherein in the electromagnetic wave absorbing material the fiber is a continuous inorganic fiber having a diameter of 5-15 .mu.m.
- 7. A structural material according to claim 1 wherein in the electromagnetic wave absorbing material the matrix is of plastic or ceramic.
- 8. A structural material according to claim 1 wherein in the electromagnetic wave absorbing material the proportion of the fiber in the composite material is 30 to 80% by volume.
- 9. A structural material according to claim 1 wherein the electromagnetic wave transmitting material is a glass fiber- or aromatic polyamide fiber-reinforced polyester resin.
- 10. A structural material according to claim 1 wherein the electromagnetic wave transmitting material is composed of a substantially amorphous fiber made of silicon, carbon, titanium or zirconium and oxygen and having a specific resistance of 10.sup.5 to 10.sup.10 .OMEGA..multidot.cm and a matrix.
- 11. A structural material according to claim 10 wherein the substantially amorphous fiber is one obtained by carrying out the spinning of polytitanocarbosilane or polyzirconocarbosilane having a number average molecular weight of 1,000 to 50,000, rendering the spun fiber infusible and heating the infusible fiber under vacuum, inert gas or reducing gas atmosphere at 800.degree. to 1,300.degree. C.
- 12. A structural material according to claim 10 wherein the substantially amorphous fiber is one obtained by carrying out the spinning of an organic silicone polymer obtained by heating polycarbosilane having a number average molecular weight of 500 to 1,000 and polytitanocarbosilane or polyzirconocarbosilane having a number average molecular weight of 500 to 1,000 in an organic solvent under inert gas atmosphere, treating the spun fiber so as to render it infusible and heating the infusible fiber under vacuum, inert gas or reducing gas atmosphere at 800.degree. to 1,300.degree. C.
- 13. A structural material according to claim 10 wherein the proportions of elements in the substantially amorphous fiber are as follows:
- Si: 28 to 58% by weight
- C: 25 to 62% by weight
- Ti or Zr: 0.5 to 30% by weight
- O: 1 to 30% by weight.
- 14. A structural material according to claim 10 wherein the proportion of the fiber in the electromagnetic wave transmitting material is 30 to 80% by volume.
Priority Claims (2)
Number |
Date |
Country |
Kind |
62-220233 |
Sep 1987 |
JPX |
|
63-168673 |
Jul 1988 |
JPX |
|
Parent Case Info
This application is a division of application Ser. No. 07/240,585 filed Sept. 1, 1988 (now abandoned).
US Referenced Citations (6)
Number |
Name |
Date |
Kind |
4342712 |
Yajima et al. |
Aug 1982 |
|
4507354 |
Ishikawa et al. |
Mar 1985 |
|
4618529 |
Yamamura et al. |
Oct 1986 |
|
4663229 |
Yajima et al. |
May 1987 |
|
4726980 |
Ishikawa et al. |
Feb 1988 |
|
4752525 |
Oyachi et al. |
Jun 1988 |
|
Foreign Referenced Citations (3)
Number |
Date |
Country |
0206536 |
Dec 1986 |
EPX |
0207792 |
Jul 1987 |
EPX |
2117569 |
Oct 1983 |
GBX |
Divisions (1)
|
Number |
Date |
Country |
Parent |
240585 |
Sep 1988 |
|