Method for potting ceramic capillary membranes
원문보기
IPC분류정보
국가/구분
United States(US) Patent
등록
국제특허분류(IPC7판)
B01D-053/22
B01D-071/04
B01D-069/08
B05D-003/00
C03C-008/04
C04B-037/00
B01D-071/02
C04B-037/02
C03C-008/06
C04B-037/04
B01J-019/24
C03C-008/24
C01B-013/02
B01D-063/02
출원번호
US-0393444
(2010-08-25)
등록번호
US-8840711
(2014-09-23)
우선권정보
DE-10 2009 038 814 (2009-08-31)
국제출원번호
PCT/EP2010/005193
(2010-08-25)
§371/§102 date
20120402
(20120402)
국제공개번호
WO2011/023371
(2011-03-03)
발명자
/ 주소
Schirrmeister, Steffen
Langanke, Bernd
Schiestel, Thomas
Hoting, Björn
출원인 / 주소
Thyssenkrupp Uhde GmbH
대리인 / 주소
Brooks Kushman P.C.
인용정보
피인용 횟수 :
2인용 특허 :
8
초록▼
A modular element having a high-temperature stable main body, including at least one metallic or ceramic plate, which has at least one through-going aperture for the insertion of a ceramic capillary membrane and at least one potting in the form of a sufficiently gas-tight and high-temperature stable
A modular element having a high-temperature stable main body, including at least one metallic or ceramic plate, which has at least one through-going aperture for the insertion of a ceramic capillary membrane and at least one potting in the form of a sufficiently gas-tight and high-temperature stable joint between the metallic or ceramic plate and the ceramic capillary membrane. The through-going aperture of the metallic or ceramic plate having an extension for accommodating the sufficiently gas-tight and high-temperature stable joint on at least one side of the metallic or ceramic plate.
대표청구항▼
1. A modular element, comprising; i) a high-temperature stable main body;ii) the high-temperature stable main body including at least one metallic or ceramic plate, which has at least one through-going aperture for the insertion of a ceramic capillary membrane and a thickness of 0.5 to 50 mm; andiii
1. A modular element, comprising; i) a high-temperature stable main body;ii) the high-temperature stable main body including at least one metallic or ceramic plate, which has at least one through-going aperture for the insertion of a ceramic capillary membrane and a thickness of 0.5 to 50 mm; andiii) at least one potting in the form of a sufficiently gas-tight and high-temperature stable joint between the metallic or ceramic plate and the at least one ceramic capillary membrane,wherein the at least one through-going aperture of the at least one metallic or ceramic plate has an extension for accommodating the sufficiently gas-tight and high-temperature stable joint on at least one side of the metallic or ceramic plate, with the through-going aperture being of a cross-sectional area of 1.2 to 2.9 times the cross-sectional area of the ceramic capillary membrane and the extension being of a cross-sectional area of 2.5 to 20 times the cross-sectional area of the ceramic capillary membrane, and the sufficiently gas-tight and high-temperature stable joint being introduced only into the respective extension of the through-going aperture and not forming a continuous layer on the at least one metallic or ceramic plate. 2. The modular element of claim 1, wherein the at least one through-going aperture of the metallic or ceramic plate is in the form of a bore hole or punch hole. 3. The modular element of claim 1, wherein the extension of the at least one through-going aperture in the metallic or ceramic plate is conical, spherical, elliptical, star-shaped, pyramidal, funnel-shaped, trumpet-shaped, bell-shaped or is in the form of a countersunk cone. 4. The modular element of claim 1, wherein the at least one metallic or ceramic plate has a thickness of 5 mm and is provided with at least one through-going aperture, which has a diameter of 1.1 to 1.5 times the diameter of a circular ceramic capillary membrane, the circular, conical extension having a diameter of 1.5 to 4 times the diameter of a circular ceramic capillary membrane and a height of 2 mm. 5. The modular element of claim 1, wherein the sufficiently gas-tight and high-temperature stable joint is made of 10-80 mg of a glass ceramic. 6. The modular element of claim 1, wherein the at least one metallic or ceramic plate is provided with 10 to 100,000 through-going apertures. 7. The modular element of claim 1, wherein the high-temperature stable main body comprises two metallic or ceramic plates. 8. The modular element of claim 7, wherein the two metallic or ceramic plates of the high-temperature stable main body are opposed to each other and are inclined at an angle of 0 to 179 degrees. 9. The modular element of claim 7, wherein both metallic or ceramic plates are arranged on one side of the modular element. 10. The modular element of claim 1, wherein the at least one metallic or ceramic plate of the high-temperature stable main body is mounted in a floating manner. 11. The modular element of claim 1, wherein the high-temperature stable main body has a cylindrical shape. 12. The modular element according to claim 1, wherein the high-temperature stable main body is of a material selected from the group consisting of ceramics, glass ceramics and metallic alloys. 13. The modular element of claim 1, wherein the high-temperature stable main body has at least one metallic capillary which is introduced into the at least one through-going aperture of the at least one metallic or ceramic plate, the at least one potting in the form of a sufficiently gas-tight and high-temperature stable joint between the metallic or ceramic plate and the least one metallic capillary is made of an alloy, the at least one metallic capillary incorporating the at least one ceramic capillary membrane and the at least one metallic capillary having an extension on at least one end for accommodating a sufficiently gas-tight and high-temperature stable joint, which is made of a glass ceramic. 14. The modular element of claim 1, wherein the at least one sufficiently gas-tight and high-temperature stable joint between the metallic or ceramic plate and the potting in the form of at least one ceramic capillary membrane is made of a glass ceramic which contains 20-45 mole % BaO, 40-60 mole % SiO2, 0-30 mole % ZnO, 0-10 mole % Al2O3, 0-5 mole % BaF2, 0-2 mole % MgO, 0-2 mole % CaO, 0-2 mole % TiO2, 0-10 mole % B2O3 and 0.5-4 mole % M2O3 (M=Y, La or rare earth metals) and/or 0.5-4 mole % ZrO2. 15. The modular element of claim 14, wherein the at least one sufficiently gas-tight and high-temperature stable joint between the metallic or ceramic plate and the potting in the form of at least one ceramic capillary membrane is made of a glass ceramic which contains 26 weight % BaO, 54 weight % SiO2, 1 weight % B2O3, 1 weight % ZrO2, 1 weight % La2O3 and 17 weight % ZnO. 16. The modular element of claim 14, wherein the at least one sufficiently gas-tight and high-temperature stable joint between the metallic or ceramic plate and the potting in the form of at least one ceramic capillary membrane is made of a glass ceramic which contains 36.25 weight % BaO, 44.25 weight % SiO2, 5.0 weight % B2O3, 2.0 weight % ZrO2, 2.0 weight % La2O3, 2.0 weight % BaF2, 7.5 weight % Al2O3 and 1.0 weight % MgO. 17. The modular element of claim 1, wherein the at least one ceramic capillary membrane is made of an oxide ceramic. 18. The modular element of claim 1, wherein the expansion coefficients of all the materials used are similar or equivalent to the expansion coefficient of the at least one ceramic capillary membrane. 19. The modular element of claim 1, wherein all materials which contact the at least one ceramic capillary membrane are chemically inert with respect to the at least one ceramic capillary membrane. 20. A process for the fabrication of a modular element of claim 1, comprising the following steps: fabrication of a high-temperature stable main body:a) activation by etching or roughening of the at least one ceramic capillary membrane in an intended area of contact between the ceramic capillary membrane, the sufficiently gas-tight and high-temperature stable joint and the metallic or ceramic plate,b) application of a protective coating of inert ceramic or metallic materials in a single or several layer/s onto the ceramic capillary membrane in the intended area of contact between the ceramic capillary membrane, the sufficiently gas-tight and high-temperature stable joint and the metallic or ceramic plate,c) pre-treatment of the metallic or ceramic plate by etching, roughening or thermal pre-oxidation in the intended area of contact between the ceramic capillary membrane, the sufficiently gas-tight and high-temperature stable joint and the metallic or ceramic plate,d) processing of an amorphous glass powder with additives to obtain a casting slip,e) application of the casting slip onto the intended area of contact between the ceramic capillary membrane, the sufficiently gas-tight and high-temperature stable joint and the metallic or ceramic plate,f) insertion of the ceramic capillary membrane into the at least one through-going aperture of the at least one metallic or ceramic plate of the high-temperature stable main body, andg) sintering. 21. The process for the fabrication of a modular element of claim 20, comprising applying, for the fabrication of the high-temperature stable main body, a protective coat of precious metal onto the ceramic capillary membrane in the intended area of contact between the ceramic capillary membrane, the sufficiently gas-tight and high-temperature stable joint and the metallic or ceramic plate. 22. The process for the fabrication of a modular element of claim 20, wherein the thermal pre-oxidation in the fabrication of the high-temperature stable main body is performed in air atmosphere at 800° C. to 1000° C. over a period of 36 to 60 hours. 23. The process for the fabrication of a modular element of claim 20 wherein, for the fabrication of the high-temperature stable main body, an additive for processing the amorphous glass powder is selected from the group consisting of polyvinyl alcohol, polyethylene glycol, polyvinyl pyrrolidone, and agar. 24. The process for the fabrication of a modular element of claim 20, wherein for the fabrication of the high-temperature stable main body, the ceramic capillary membranes are individually provided with at least one plug of casting slip, while rotating. 25. The process for the fabrication of a modular element of claim 20, wherein for the fabrication of the high-temperature stable main body, the ceramic capillary membranes are inserted into a casting mould and provided with at least one plug of casting slip. 26. The process for the fabrication of a modular element of claim 20, wherein for the fabrication of the high-temperature stable main body, the plugs of casting slip are cast or injection-moulded and then lined up on the ceramic capillary membranes. 27. The process for the fabrication of a modular element of claim 20, wherein for the fabrication of the high-temperature stable main body, the casting slip is cast into the at least one extension of the through-going aperture of the at least one metallic or ceramic plate and then perforated. 28. The process for the fabrication of a modular element of claim 20, wherein for the fabrication of the high-temperature stable main body, 10-80 mg of the casting slip are applied onto the intended area of contact between the ceramic capillary membrane, the sufficiently gas-tight and high-temperature stable joint and the metallic or ceramic plate. 29. The process for the fabrication of a modular element of claim 20, wherein casting slip is again applied onto the intended area of contact between the ceramic capillary membrane, the sufficiently gas-tight and high-temperature stable joint and the metallic or ceramic plate after process steps 1a) to g) have been completed, the area of contact being located on the opposite side of the potting resulting from process steps 1a) to g), subsequently to which another sintering step is carried out and the procedure may be repeated several times. 30. The process for the fabrication of a modular element of claim 20, wherein for the fabrication of the high-temperature stable main bodies, the latter are sintered in vertical or horizontal position. 31. The process for the fabrication of a modular element of claim 20, wherein for the fabrication of the high-temperature stable main bodies, the latter are sintered in a controlled argon atmosphere with 0.05 to 0.2% oxygen. 32. The process for the fabrication of a modular element of claim 31, wherein for the fabrication of the high-temperature stable main bodies, the latter are sintered by means of a defined temperature increase and temperature decrease in a range from ambient temperature to the sintering temperature of the casting slip which is below the melting temperature of the ceramic capillary membrane, the heating rate being within a range of 0.5-2 K/min. 33. The process for the fabrication of a modular element of claim 31, wherein the sintering temperature for the fabrication of the high-temperature stable main body ranges between 950° C. and 1100° C. 34. A device including at least one modular element of claim 1.
연구과제 타임라인
LOADING...
LOADING...
LOADING...
LOADING...
LOADING...
이 특허에 인용된 특허 (8)
Werth, Steffen; Dinges, Nicole; Kilgus, Mirjam; Schiestel, Thomas, Composite ceramic hollow fibres method for production and use thereof.
Kobayashi Masumi,JPX ; Honjyo Kenji,JPX ; Miyashita Satoshi,JPX ; Yanone Katsuyuki,JPX ; Itakura Masanori,JPX ; Okazaki Hiroyuki,JPX, Hollow fiber membrane module, hollow fiber membrane module unit which utilizes the module, and purification tank with the module unit installed therein.
Brinkman Hendrik Willem,NLX ; Gorter Harrie,NLX ; Terpstra Rinse Alle,NLX ; Van Der Heijde Johannes Coenradus Theodorus,NLX ; Van Eijk Joost Petrus Gerardus Maria,NLX ; Gubbels Godefridus Hendricus M, Method for producing an exchanger.
Gottzmann Christian Friedrich ; Prasad Ravi ; Bergsten Victor Emmanuel ; Keskar Nitin Ramesh ; van Hassel Bart Antonie, Solid Electrolyte ionic conductor reactor design.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.