IP Library › Granted Patent US 10,590,041
Granted Patent B2
US 10,590,041 · App. 15/870,002 · Granted Mar 17, 2020

Refractory object and process of forming a glass sheet using the refractory object

Inventors: Olivier Citti (Wellesley, MA); Julien P. Fourcade (Shrewsbury, MA); Andrea L. Kazmierczak (Marlborough, MA)
Assignee: SAINT-GOBAIN CERAMICS & PLASTICS, INC.
C04B35/1015C03B17/064C04B35/111C04B35/117C04B35/62685C04B2235/3201C04B2235/3206C04B2235/3208C04B2235/3213C04B2235/3215C04B2235/3225C04B2235/3232C04B2235/3236C04B2235/3244C04B2235/3251C04B2235/3272C04B2235/3284C04B2235/349C04B2235/3418C04B2235/3427C04B2235/3463C04B2235/604C04B2235/6027C04B2235/72C04B2235/77C04B2235/785C04B2235/80C04B2235/95C04B2235/96Y02P40/57
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Quick Facts
Patent No.
US 10,590,041
App. No.
15/870,002
Granted
Mar 17, 2020
Kind
B2
Abstract

A refractory object can include at least approximately 10 wt % Al 2 O 3 and at least approximately 1 wt % SiO 2 . In an embodiment, the refractory object can include an additive. In a particular embodiment, the additive can include TiO 2 , Y 2 O 3 , SrO, BaO, CaO, Ta 2 O 5 , Fe 2 O 3 , ZnO, or MgO. The refractory object can include at least approximately 3 wt % of the additive. In an additional embodiment, the refractory object can include no greater than approximately 8 wt % of the additive. In a further embodiment, the creep rate of the refractory object can be at least approximately 1×10 −6 h −1 . In another embodiment, the creep rate of the refractory object can be no greater than approximately 5×10 −5 h −1 . In an illustrative embodiment, the refractory object can include a glass overflow trough or a forming block.

Claims (16)

1. A refractory object comprising:

Al 2 O 3 at a content in a range of 90 wt % Al 2 O 3 to 94 wt % Al 2 O 3 ;

SiO 2 at a content of at least 2.1 wt % SiO 2 ;

an additive at a content of at least 0.6 wt % additive, wherein the additive includes CaO, MgO, or any combination thereof,

wherein the refractory object comprises no greater than 0.3% wt % ZrO 2 .

2. The refractory object as recited in claim 1 , wherein the apparent porosity of the refractory object is no greater than 0.8 vol %.

3. The refractory object as recited in claim 1 , wherein the refractory object includes no greater than 1 wt % of an alkali metal oxide.

4. The refractory object as recited in claim 1 , wherein the refractory object includes at least 0.2 wt % Y 2 O 3 .

5. The refractory object as recited in claim 1 , wherein the refractory object includes at least 0.2 wt % TiO 2 .

6. The refractory object as recited in claim 5 , wherein the refractory object includes no greater than 4.0 wt % TiO 2 .

7. The refractory object as recited in claim 1 , wherein a fracture toughness of the refractory object is at least 2.1 MPa-m 1/2 .

8. The refractory object as recited in claim 1 , wherein the refractory object further comprises a silica phase.

9. The refractory object as recited in claim 1 , wherein the refractory object includes a peripheral region disposed between an edge of the refractory object and a body portion of the refractory object.

10. The refractory object as recited in claim 8 , wherein a melting point of the silica phase is at least 1300° C.

11. The refractory object as recited in claim 10 , wherein the melting point of the silica phase is at least a sintering temperature used in forming the refractory object.

12. The refractory object as recited in claim 1 , wherein the creep rate of the refractory object is no greater than 1×10 −4 h −1 .

Continuity (4)
Division 14984539 · Dec 30, 2015
Continuation 13738988 · Jan 10, 2013
Provisional Application 61585618 · Jan 11, 2012
Related Publication 20180134623A1 · May 17, 2018