Pressure driven ceramic oxygen generation system with integrated manifold and tubes
09797054 · 2017-10-24
Assignee
Inventors
- Zhonglin Wu (Bettendorf, IA, US)
- Courtney J. Monzyk (Davenport, IA, US)
- Scott R. Sehlin (Bettendorf, IA, US)
Cpc classification
B01D53/228
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A mixed conducting ceramic element comprises a plurality of tubes each having interior and exterior surfaces, a closed end and an open end. A tube support member receives the open ends of the tubes. The ceramic element has a general composition of A.sub.xA′.sub.x′A″.sub.x″B.sub.yB′.sub.y′B″.sub.y″O.sub.3-z, where A, A′ and A″ are selected from Group II elements or the Lanthanoids, and B, B′ and B″ are selected from the d-block transition metals, and wherein 0<x≦1, 0<x′≦1, 0<x″≦1, 0<y≦1, 0<y′≦1, 0<y″≦1, x+x′+x″≈1, y+y′+y″≈1, and z is selected so that the resultant composition is charge neutral. The ceramic element can be a composite consisting of two or more component materials, wherein one component is predominantly an electronic conductor and another is predominantly an ionic conductor. The ceramic element may also be a composite material containing at least one component material having a chemical composition of A.sub.xA′.sub.x′A″.sub.x″B.sub.yB′.sub.y′B″.sub.y″O.sub.3-z.
Claims
1. An oxygen generating element comprising: a plurality of mixed conducting ceramic tubes each having interior and exterior surfaces, and each having a closed end and an open end; and a mixed conducting ceramic tube support member located at said open ends of said plurality of tubes, wherein said plurality of tubes and said tube support member are formed as a single, non-separable unit.
2. The oxygen generating element described in claim 1 wherein said plurality of tubes is formed into rows and columns on said tube support member.
3. The oxygen generating element described in claim 1, wherein each the plurality of tubes is spaced from adjacent tubes.
4. The oxygen generating element described in claim 1, wherein said element comprises a composition of A.sub.xA′.sub.xA″.sub.xB.sub.yB′.sub.yB″.sub.yO.sub.3-z, where A, A′ and A″ are selected from Group II elements or the Lanthanoids, and B, B′ and B″ are selected from the d-block transition metals, and wherein 0<x≦1, 0≦x′≦1, 0≦x″≦1, 0<y≦1, 0≦y′≦1, 0≦y″≦1, x+x′+x″=1±0.05, y+y′+y″=1±0.05, and z is selected so that the resultant composition is charge neutral.
5. The oxygen generating element described in claim 1, wherein said ceramic element is a composite material of two or more distinctive component materials with at least one component material having a chemical composition of A.sub.xA′.sub.x′A″.sub.x″B.sub.yB′.sub.y′B″.sub.y″O.sub.3-z, where A, A′ and A″ are selected from Group II elements or the Lanthanoids, and B, B′ and B″ are selected from the d-block transition metals, and wherein 0<x≦1, 0≦x′≦1, 0≦x″≦1, 0<y≦1, 0≦y′≦1, 0≦y″≦1, x+x′+x″=1±0.05, y+y′+y″=1±0.05, and z is selected so that the resultant composition is charge neutral.
6. The oxygen generating element described in claim 1, wherein said element is a composite of two or more distinctive component materials, wherein at least one component material is predominantly an electronic conductor and at least one other component material is predominantly an ionic conductor.
7. The oxygen generating element described in claim 4, wherein said d-block transition metals are the d-block transition metals of Period 4.
8. The oxygen generating element described in claim 4, wherein said element comprises a composition selected from the list consisting of BaTi.sub.0.2Co.sub.0.4Fe.sub.0.4O.sub.3-z, BaTi.sub.0.2Co.sub.0.5Fe.sub.0.3O.sub.3-z, Ba.sub.0.5Sr.sub.0.5Zn.sub.0.2Fe.sub.0.8O.sub.3-z, Ba.sub.0.5Sr.sub.0.5Co.sub.0.8Fe.sub.0.3O.sub.3-z, SrCo.sub.0.8Fe.sub.0.2O.sub.3-z, La.sub.0.6Ba.sub.0.4Co.sub.0.8Fe.sub.0.2O.sub.3-z.
9. An oxygen generator, comprising: a first element having a first mixed conducting ceramic tube support member and a first array of mixed conducting ceramic tube members extending from said first tube support member and formed into columns and rows, wherein said first mixed conducting ceramic tube support member and said first array of mixed conducting ceramic tube members are formed as a single, non-separable unit; a second element having a second mixed conducting ceramic tube support member and a second array of mixed conducting ceramic tube members extending from said second tube support member and formed into columns and rows, wherein said second mixed conducting ceramic tube support member and said second array of mixed conducting ceramic tube members are formed as a single, non-separable unit; and a seal between said first tube support member of said first element and said second tube support member of said second element so as to define a manifold having and open interior space therebetween.
10. The oxygen generator of claim 9, wherein each of said first element and said second element comprises a composition of A.sub.xA′.sub.x′A″.sub.x″B.sub.yB′.sub.y′B″.sub.y″O.sub.3-z, where A, A′ and A″ are selected from Group II elements or the Lanthanoids, and B, B′ and B″ are selected from the d-block transition metals, and wherein 0<x≦1, 0≦x′≦1, 0≦x″≦1, 0<y≦1, 0≦y′≦1, 0≦y″≦1, x+x′+x″=1±0.05, y+y′+y″=1±0.05, and z is selected so that the resultant composition is charge neutral.
11. The oxygen generator of claim 9, wherein each respective element is a composite material of two or more distinctive component materials wherein at least one component material having a chemical composition of A.sub.xA′.sub.x′A″.sub.x″B.sub.yB′.sub.y′B″.sub.y″O.sub.3-z, where A, A′ and A″ are selected from Group II elements or the Lanthanoids, and B, B′ and B″ are selected from the d-block transition metals, and wherein 0<x≦1, 0≦x′≦1, 0≦x″≦1, 0<y≦1, 0≦y′≦1, 0≦y″≦1, x+x′+x″=1±0.05, y+y′+y″=1±0.05, and z is selected so that the resultant composition is charge neutral.
12. The oxygen generator of claim 9, wherein each respective element is a composite of two or more component materials, wherein at least one component material is predominantly an electronic conductor and at least one other component material is predominantly an ionic conductor.
13. The oxygen generator of claim 9 further including an outlet port in communication with said interior space of said manifold.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The principles of the intention will be more readily understood by reference to the description of a preferred embodiment given below along with the drawings which are briefly described as follow.
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) In each of the figures of the drawings like elements are referred to with like reference numerals.
(7) As shown in
(8) The injection molding process used to generate modular element 10 permits the mixed conductive ceramic material to be formed into a series of tubes 12 extending from a top surface 16 of a generally planar tube support member 14. While tube support member 14 is shown and described as generally planar, it is envisioned that the tube support member may be constructed to include any desired shape, provided that two opposing base surfaces can be sealed together to form the integral manifold structure (described below). The tubes may be formed to include any number of rows and columns of tubes in an array, where such number of tubes may be dictated by the overall size of the generator or the envisioned maximum oxygen demand placed upon the system. By way of example and as shown in
(9) As is shown in
(10) As shown generally within the block schematic of a pressure driven COGS system 40 of
(11) As discussed hereinabove, this pressure differential drives oxygen ions through the mixed conductive ceramic membrane material such that the ions reform oxygen gas in the interiors 12c/12c′ of tubes 12/12′, with the gas being collected in interior space 24 of the manifold. This supply of oxygen is communicated via port 26 to a component having the oxygen requirement or storage (such as through vacuum pump 46). For instance, if the generated oxygen is for immediate use, the gas pressure may be reduced to atmospheric pressure for eventual delivery to a cannula or gasmask. Alternatively, oxygen may also be delivered to an oxygen compressor 48 for pressurization of oxygen storage cylinders for later use. A control unit 50 may be in operational communication with each of the oven 42, compressed air source 44, vacuum pump 46 and/or oxygen compressor 48.
(12) It is to be understood that while circular or cylindrical tubes having exterior and interior surfaces are shown in the described embodiment other configurations for the “tubes” could be used and the term “tube” is used herein only for purposes of convenience of reference.
(13) The principles of this invention are described hereinabove by describing a preferred embodiment constructed according to those principles. It will be understood that the described embodiment can be modified or changed in a number of ways without departing from the spirit and scope of the invention as defined by the appended claims.