Claims
- 1. A method for producing a nanostructured coating, comprising:
- (a) dispersing a nanostructured material in a liquid medium by ultrasound;
- (b) adding an organic binder to said medium yielding a solution;
- (c) spray-drying the solution, thereby forming agglomerated nanostructured particles; and
- (d) spray coating the agglomerated nanostructured particles onto an article to form a nanostructured coating.
- 2. The method of claim 1, wherein
- an effective amount of superheat above the eutectic point of the nanostructured particles is used during spray coating to form mushy agglomerated particles that will readily flow upon impact with the article being spray coated.
- 3. The method of claim 1, wherein the nanostructured material is selected from the group comprising ceramic, cermet, and metal materials.
- 4. The method of claim 3, wherein the nanostructured material is selected from the group comprising WC/Co, Cr.sub.3 C.sub.2 /Ni, Fe.sub.3 Mo.sub.3 C/Fe, SiC, Si.sub.3 N.sub.4, yttria-stabilized zirconia, hydroxyapatite, vitellium and MnO.sub.2.
- 5. The method of claim 1, wherein the agglomerated particles are less than about 50 microns.
- 6. A method for producing a nanostructured coating, comprising:
- (a) dispersing a nanostructured material in a liquid medium by ultrasound, wherein the nanostructured material comprises particles of less than about 100 nm;
- (b) adding an organic binder to the medium yielding a solution;
- (c) spray-drying the solution, thereby forming agglomerated nanostructured particles, wherein the agglomerations have a particle size of less than about 50 microns; and
- (d) spray coating the agglomerated nanostructured particles onto an article to form a nanostructured coating.
- 7. The method of claim 6, wherein the nanostructured material is selected from the group comprising ceramic, cermet, and metal materials.
- 8. The method of claim 7, wherein the nanostructured material is selected from the group comprising WC/Co, Cr.sub.3 C.sub.2 /Ni, Fe.sub.3 Mo.sub.3 C/Fe, SiC, Si.sub.3 N.sub.4, yttria-stabilized zirconia, hydroxyapatite, vitellium and MnO.sub.2.
- 9. The method of claim 6, wherein an effective amount of superheat above the eutectic point of the nanostructured particles is used during spray coating to form mushy agglomerated particles that will readily flow upon impact with the article being spray coated.
- 10. A method for producing a nanostructured coating, comprising:
- (a) dispersing a nanostructured material selected from the group consisting of WC/Co, Cr.sub.3 C.sub.2 /Ni, Fe.sub.3 Mo.sub.3 C/Fe, SiC, Si.sub.3 N.sub.4, yttria-stabilized zirconia, hydroxyapatite, vitellium and MnO.sub.2 in a liquid medium by ultrasound;
- (b) adding an organic binder to said medium yielding a solution;
- (c) spray-drying the solution, thereby forming agglomerated nanostructured particles; and
- (d) spray coating the agglomerated nanostructured particles onto an article to form a nanostructured coating.
- 11. The method of claim 10, wherein an effective amount of superheat above the eutectic point of the nanostructured particles is used during spray coating to form mushy agglomerated particles that will readily flow upon impact with the article being spray coated.
- 12. The method of claim 10, wherein the agglomerated particles are less than about 50 microns.
- 13. A method for producing a nanostructured coating, comprising:
- (a) dispersing a nanostructured material in a liquid medium by ultrasound;
- (b) adding an organic binder to said medium, yielding a solution;
- (c) spray-drying the solution, thereby forming agglomerated nanostructured particles;
- (d) heat treating the agglomerated nanostructured particles at a temperature which is effective to expel residual moisture, to remove adsorbed and chemisorbed oxygen, to promote partial sintering, or a combination thereof; and
- (e) spray coating the agglomerated nanostructured particles onto an article to form a nanostructured coating.
- 14. The method of claim 13, wherein
- an effective amount of superheat above the eutectic point of the nanostructured particles is used during spray coating to form mushy agglomerated particles that will readily flow upon impact with the article being spray coated.
- 15. The method of claim 13, wherein the nanostructured material is selected from the group comprising ceramic, cermet, and metal materials.
- 16. The method of claim 13, wherein the nanostructured material is selected from the group comprising WC/Co, Cr.sub.3 C.sub.2 /Ni, Fe.sub.3 Mo.sub.3 C/Fe, SiC, Si.sub.3 N.sub.4, yttria-stabilized zirconia, hydroxyapatite, vitellium and MnO.sub.2.
- 17. The method of claim 13, wherein the agglomerated particles are less than about 50 microns.
- 18. A method for producing a nanostructured coating, comprising:
- (a) dispersing a nanostructured material in a liquid medium by ultrasound, wherein the nanostructured material comprises particles of less than about 100 nm;
- (b) adding an organic binder to the medium yielding a solution;
- (c) spray-drying the solution, thereby forming agglomerated nanostructured particles, wherein the agglomerations have a particle size of less than about 50 microns; and
- (d) heat treating the agglomerated nanostructured particles at a temperature which is effective to expel residual moisture, to remove adsorbed and chemisorbed oxygen, to promote partial sintering, or a combination thereof; and
- (e) spray coating the agglomerated nanostructured particles onto an article to form a nanostructured coating.
- 19. The method of claim 18, wherein the nanostructured material is selected from the group comprising ceramic, cermet, and metal materials.
- 20. The method of claim 19, wherein the nanostructured material is selected from the group comprising WC/Co, Cr.sub.3 C.sub.2 /Ni, Fe.sub.3 Mo.sub.3 C/Fe, SiC, Si.sub.3 N.sub.4, yttria-stabilized zirconia, hydroxyapatite, vitellium and MnO.sub.2.
- 21. The method of claim 18, wherein an effective amount of superheat above the eutectic point of the nanostructured particles is used during spray coating to form mushy agglomerated particles that will readily flow upon impact with the article being spray coated.
- 22. A method for producing a nanostructured coating, comprising:
- (a) dispersing a nanostructured material selected from the group consisting of WC/Co, Cr.sub.3 C.sub.2 /Ni, Fe.sub.3 Mo.sub.3 C/Fe, SiC, Si.sub.3 N.sub.4, yttria-stabilized zirconia, hydroxyapatite, vitellium and MnO.sub.2 in a liquid medium by ultrasound;
- (b) adding an organic binder to said medium yielding a solution;
- (c) spray-drying the solution, thereby forming agglomerated nanostructured particles of less than about 50 microns; and
- (d) heat treating the agglomerated nanostructured particles at a temperature which is effective to expel residual moisture, to remove adsorbed and chemisorbed oxygen, to promote partial sintering, or a combination thereof, and
- (e) spray coating the agglomerated nanostructured particles onto an article to form a nanostructured coating.
- 23. The method of claim 22, wherein an effective amount of superheat above the eutectic point of the nanostructured particles is used during spray coating to form mushy agglomerated particles that will readily flow upon impact with the article being spray coated.
CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation of U.S. application Ser. No. 08/558,133, filed Nov. 13, 1995, now abandoned.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
3617358 |
Dittrich |
Nov 1971 |
|
4746468 |
Ozaki et al. |
May 1988 |
|
Continuations (1)
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Number |
Date |
Country |
Parent |
558133 |
Nov 1995 |
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