Claims
- 1. A ceramic body made from a starting powder mixture that includes silicon nitride powder, and one or more powders that contribute aluminum, oxygen and nitrogen to a beta prime SiAlON phase and aluminum, oxygen, nitrogen and ytterbium to an alpha prime SiAlON phase, the ceramic body comprising:
a two phase composite comprising the alpha prime SiAlON phase and the beta prime SiAlON phase wherein the alpha prime SiAlON phase containing ytterbium therein, and wherein the starting silicon nitride powder comprising less than or equal to about 1.6 weight percent beta-silicon nitride; the alpha prime SiAlON phase being present in an amount greater than or equal to about 20 weight percent of the two phase composite; an intergranular phase that includes an intergranular crystalline phase comprising at least one of YbAG and J-phase; and wherein the overall composition of the ceramic body is: YbaSibAlcOdNe, and wherein when a is less than 0.05, the relative intensity of the peak associated with either one or both intergranular crystalline phases of YbAG and J-phase is greater than about 2.5 of the major peak of the two-phase composite.
- 2. The ceramic body of claim 1 wherein when a in the overall composition of the ceramic body of YbaSibAlcOdNe is greater than or equal to 0.05, the relative intensity of the peak associated with either one or both of the intergranular crystalline phases of YbAG and J-phase is greater than about 5 of the major peak of the two-phase composite.
- 3. The ceramic body of claim 1 wherein the intergranular crystalline phase comprises YbAG and J-phase.
- 4. The ceramic body of claim 3 wherein when a in the overall composition of the ceramic body of YbaSibAlcOdNe is less than 0.05, the relative intensity of the peak associated with either one or both intergranular crystalline phases of YbAG and J-phase is greater than about 2.5 of the major peak of the two-phase composite.
- 5. The ceramic body of claim 3 wherein when a in the overall composition of the ceramic body of YbaSibAlcOdNe is greater than or equal to 0.05, the relative intensity of the peak associated with either one or both of the intergranular crystalline phases of YbAG and J-phase is greater than about 5 of the major peak of the two-phase composite.
- 6. The ceramic body of claim 1 wherein the starting powder mixture includes a plurality of silicon nitride powders wherein each one of the silicon nitride powders contains a different beta-silicon nitride content.
- 7. The ceramic body of claim 1 wherein the alpha prime SiAlON phase being present in an amount between about 20 weight percent and about 85 weight percent of the two phase composite.
- 8. The ceramic body of claim 1 wherein the alpha prime SiAlON phase being present in an amount between about 60 weight percent and about 80 weight percent of the two phase composite.
- 9. The ceramic body of claim 1 wherein the alpha prime SiAlON phase being present in an amount between about 25 weight percent and about 50 weight percent of the two phase composite.
- 10. The ceramic body of claim 1 wherein the alpha prime SiAlON phase being present in an amount between about 45 weight percent and about 85 weight percent of the two phase composite.
- 11. The ceramic body of claim 1 wherein the ceramic body having a fracture toughness (KIC) as measured by the Evans & Charles method of greater than or equal to about 5.5 MPam1/2.
- 12. The ceramic body of claim 1 wherein the ceramic body having a fracture toughness (KIC) as measured by the Evans & Charles method of greater than or equal to about 6.0 MPam1/2.
- 13. The ceramic body of claim 1 wherein the ceramic body having a fracture toughness (KIC) as measured by the Evans & Charles method of greater than or equal to about 7.0 MPam1/2.
- 14. The ceramic body of claim 1 wherein the ceramic body having a fracture toughness (KIC) as measured by the Evans & Charles method of greater than or equal to about 8.0 MPam1/2.
- 15. The ceramic body of claim 1 wherein the ceramic body having a Vickers hardness (18.5 kg load) of greater than or equal to about 16.5 GPa.
- 16. The ceramic body of claim 1 wherein the ceramic body having a Vickers hardness (18.5 kg load) of greater than or equal to about 17.5 GPa.
- 17. The ceramic body of claim 1 wherein the ceramic body having a Vickers hardness (18.5 kg load) of greater than or equal to about 18.5 GPa.
- 18. The ceramic body of claim 1 wherein the ceramic body having a Vickers hardness (18.5 kg load) of greater than or equal to about 19.5 GPa.
- 19. The ceramic body of claim 1 wherein the beta prime SiAlON phase being of the formula Si6−zAlzOzN8−z wherein z is greater than 0.3 and less than 1.5.
- 20. The ceramic body of claim 19 wherein z is greater than 0.7 and less than 1.5.
- 21. The ceramic body of claim 19 wherein z is greater than 0.3 and less than 0.6.
- 22. A SiAlON ceramic body made from a starting powder mixture that includes silicon nitride powder and one or more powders that provide aluminum, oxygen, nitrogen and ytterbium to the SiAlON ceramic body, the SiAlON ceramic body comprising:
a two phase composite comprising alpha prime SiAlON phase and beta prime SiAlON phase wherein the alpha prime SiAlON phase containing ytterbium therein; the starting silicon nitride powder comprising less than or equal to about 1.6 weight percent beta-silicon nitride; the alpha prime SiAlON phase being present in an amount greater than or equal to about 20 weight percent of the two phase composite; an intergranular phase that includes an intergranular crystalline phase comprising at least one of YbAG and J-phase; wherein the overall composition of the ceramic body is YbaSibAlcOdNe, and wherein when a is less than 0.05, the relative intensity of the peak associated with either one or both intergranular crystalline phases of YbAG and J-phase is greater than about 2.5 of the major peak of the two-phase composite; and the intergranular phase including a YbAG crystalline phase present in an amount wherein the relative intensity of the major peak associated with the YbAG phase is between about 2 and about 25 of the major peak of the two-phase composite.
- 23. A SiAlON ceramic body made from a starting powder mixture that includes silicon nitride powder and one or more powders that provide aluminum, oxygen, nitrogen and ytterbium to the SiAlON ceramic body, the SiAlON ceramic body comprising:
a two phase composite comprising alpha prime SiAlON phase and beta prime SiAlON phase wherein the alpha prime SiAlON phase containing ytterbium therein; the starting silicon nitride powder comprising less than or equal to about 1.6 weight percent beta-silicon nitride; the alpha prime SiAlON phase being present in an amount greater than or equal to about 20 weight percent of the two phase composite; an intergranular phase that includes an intergranular crystalline phase comprising at least one of YbAG and J-phase; wherein the overall composition of the ceramic body is: YbaSibAlcOdNe, and wherein when a is less than 0.05, the relative intensity of the peak associated with either one or both intergranular crystalline phases of YbAG and J-phase is greater than about 2.5 of the major peak of the two-phase composite; and the intergranular phase including a J-phase crystalline phase present in an amount wherein the relative intensity of the major peak associated with the J-phase is between about 1 and about 31 of the major peak of the two-phase composite.
- 24. A ceramic component for a microturbine wherein the component being subjected to temperatures of between about 1100 degrees Centigrade to about 1350 degrees Centigrade for a duration up to about 10,000, the ceramic component comprising:
a ceramic body made from a starting powder mixture that includes silicon nitride powder and one or more powders that provide aluminum, oxygen, nitrogen and ytterbium to the SiAlON ceramic body, and wherein the starting silicon nitride powder comprising less than or equal to about 1.6 weight percent beta-silicon nitride, the ceramic body comprising: a two phase composite comprising alpha prime SiAlON phase and beta prime SiAlON phase wherein the alpha prime SiAlON phase containing ytterbium therein; the alpha prime SiAlON phase being present in an amount greater than or equal to about 20 weight percent of the two phase composite; an intergranular phase that includes an intergranular crystalline phase comprising at least one of YbAG and J-phase; and wherein the overall composition of the ceramic body is: YbaSibAlcOdNe, and wherein when a is less than 0.05, the relative intensity of the peak associated with either one or both intergranular crystalline phases of YbAG and J-phase is greater than about 2.5 of the major peak of the two-phase composite.
- 25. The sintered ceramic body of claim 24 wherein the silicon nitride powder comprises a first silicon nitride powder having a first content of beta-silicon nitride and a second silicon nitride powder having a second content of beta-silicon nitride, and wherein the first content is not equal to the second content.
- 26. A method for making a crystallized ceramic body containing a two phase composite comprising an alpha prime SiAlON phase that contains ytterbium and a beta prime SiAlON phase, the process comprising the steps of:
blending together a starting powder mixture that upon densification forms the SiAlON ceramic, the starting powder includes at least about 70 weight percent silicon nitride powder wherein the silicon nitride powder contains beta silicon nitride in an amount less than or equal to about 1.6 weight percent of the silicon nitride powder, and the starting powder further including one or more powders that contribute aluminum, oxygen, and nitrogen to the beta prime SiAlON phase and aluminum, oxygen, nitrogen and ytterbium to the alpha prime SiAlON phase; and densifying the starting powder mixture to form a densified SiAlON ceramic; and heat treating the densified ceramic body so as to form the crystallized ceramic body wherein the alpha prime SiAlON phase comprises at least about 20 weight percent of the two phase composite.
- 27. The method of making a ceramic body of claim 26 wherein the heat treating step occurs at a temperature between about 1250 degrees Centigrade and about 1525 degrees Centigrade and for a duration of between about 2 hours and about 18 hours.
- 28. The method of making a ceramic body of claim 26 wherein the heat treating step occurs at a temperature between about 1400 degrees Centigrade and about 1450 degrees Centigrade and for a duration of between about 16 hours and about 18 hours.
- 29. The method of making a ceramic body of claim 26 further including a cooling step after the densifying step wherein the densified ceramic body is at about room temperature.
- 30. The method of making a ceramic body of claim 26 wherein the heat treating step occurs immediately after completion of the densifying step so that prior to the heat treating step the temperature of the densified ceramic body is not below the temperature at which the heat treating step occurs.
Priority Claims (2)
Number |
Date |
Country |
Kind |
PCT/US01/47094 |
Nov 2001 |
WO |
|
09/724188 |
Jun 2002 |
US |
|
CROSS REFERENCE TO EARLIER APPLICATION
[0001] This patent application is a continuation-in-part patent application of pending U.S. patent application Ser. No. 09/724,188 to Yeckley filed on Nov. 28, 2000 and entitled SiAlON CONTAINING YTTERBIUM AND METHOD OF MAKING.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09724188 |
Nov 2000 |
US |
Child |
10455580 |
Jun 2003 |
US |