Claims
- 1. A powder-metallurgic method, which comprises:
providing a ready-to-press powder defining an alloy having a portion of at least 20 weight % chromium, a portion of iron, and at least one additional alloy portion selected from the group consisting of metallic alloy portions and ceramic alloy portions in an aggregate of no more than 10 weight %; wherein the additional alloy portions are added into the ready-to-press powder exclusively in form of a master-alloy powder, and the master-alloy powder is a powder mixture selected from the group consisting of:
the additional alloy portions and the iron portion; the additional alloy portions, the iron portion, and the chromium portion; and the additional alloy portions and the chromium portion; and pressing and sintering the ready-to-press powder to near final shape of a highly dense part formed of an alloy containing at least 20 weight % chromium, iron, and the at least one additional alloy portion of not more than 10 weight %.
- 2. The powder-metallurgic method according to claim 1, which comprises using as the ready-to-press powder a mixture of elementary chromium powder with a master-alloy powder of iron and the additional alloy portions.
- 3. The powder-metallurgic method according to claim 1, which comprises pressing the powder mixture with pressing rams having a plurality of parts, wherein the parts are coordinated with a geometry of the shaped part to be produced and provided with a wear protection layer at least at a surface in contact with the powder.
- 4. The powder-metallurgic method according to claim 1, which comprises pressing the powder to form an interconnector of a fuel cell.
- 5. The powder-metallurgic method according to claim 2, wherein the ready-to-press powder consists of 95 weight % chromium and 5 weight % of a master-alloy of iron with 0.5 to 0.8 weight % yttrium.
- 6. The powder-metallurgic method according to claim 2, wherein the ready-to-press powder consists of 20 to 30 weight % chromium and 70 to 80 weight % of a master-alloy of iron with 0.5 to 0.8 weight % rare earth metals.
- 7. The powder-metallurgic method according to claim 6, which comprises selecting yttrium as the rare earth metal.
- 8. The powder-metallurgic method according to claim 4, which comprises galvanically applying a chromium layer on surfaces of the pressed and sintered interconnector.
- 9. The powder-metallurgic method according to claim 4, which comprises carburizing surfaces of the pressed and sintered interconnector by applying a graphitic plate and a following heat treatment at a temperature of between 1100° C. and 1300° C. for 12 to 48 hours.
Priority Claims (1)
Number |
Date |
Country |
Kind |
GM 31/2001 |
Jan 2001 |
AT |
|
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a continuation of copending International Application No. PCT/AT01/00398, filed Dec. 19, 2001, which designated the United States and which was not published in English.
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/AT01/00398 |
Dec 2001 |
US |
Child |
10238938 |
Sep 2002 |
US |