Ozone converter bypass
10766623 ยท 2020-09-08
Assignee
Inventors
Cpc classification
B01J19/24
PERFORMING OPERATIONS; TRANSPORTING
B01D2259/4575
PERFORMING OPERATIONS; TRANSPORTING
B01D53/885
PERFORMING OPERATIONS; TRANSPORTING
B64D13/08
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J19/24
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An ozone converter includes an outer housing having an inlet and an outlet and a core disposed within the outer housing, the core including a central passageway formed therein and passing thorough the core. The converter also includes an ozone control assembly that allows air to pass through the central passageway in an closed mode and prevents flow thorough the central passageway in an open mode, the assembly including cover flaps that cover a portion of the core in the closed mode and that do not cover the core in the open mode.
Claims
1. An ozone converter comprising: an outer housing having an inlet and an outlet; a core disposed within the outer housing, the core including a central passageway formed therein and passing through the core; an ozone control assembly that allows air to pass through the central passageway in a closed mode and prevents flow thorough the central passageway in an open mode, the ozone control assembly including cover flaps that cover a portion of the core in the closed mode and that do not cover the core in the open mode; and an actuator that causes the cover flaps to move when the ozone converter is changed from the closed mode to the open mode or from the open mode to the closed mode; wherein the ozone control assembly includes: a rod that is controlled by the actuator; and a central passageway access cover connected to the rod; wherein the cover flaps are connected to the rod.
2. The ozone converter of claim 1, wherein the ozone converter is in an aircraft and is in the closed mode when the aircraft is on the ground.
3. The ozone converter of claim 1, wherein the cover flaps are arranged perpendicular to the central passageway access cover.
4. The ozone converter of claim 1, wherein the central passageway access cover prevents flow through the central passageway in the open mode and allows flow through the central passageway in the closed mode.
5. The ozone converter of claim 1, wherein the actuator causes the rod to rotate to change the ozone converter from the closed mode to the open mode or from the open mode to the closed mode.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter which is regarded as the invention is particularly pointed out and distinctly claimed in the claims included at the conclusion of the specification. The foregoing and other features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE INVENTION
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(11) The system 100 illustrated in
(12) As illustrated, the ECS 102 includes an air parameter adjusting unit 106. The air parameter adjusting unit 106, generally, converts the pressure and/or temperature of the input air 104 to a desired level. In one embodiment, the input air 104 is bleed air from a compressor section of an engine. In another embodiment, the input air 104 is ram air received directly from the atmosphere. Regardless of the source of the input air 104, the air parameter adjusting unit 106 may include a parameter adjustment device 108 that can be operated to adjust the temperature/pressure of the input air 104. The parameter adjustment device 108 can be a valve, a turbine, a compressor or device that includes both. In one embodiment, the parameter adjustment device 108 is an electric compressor that compresses ram air.
(13) If the input air 104 is received while the aircraft is at high altitude, there may a requirement (e.g., contractual or regulatory) that ozone be removed from the input air 104 before being provided to location 112 as output air 120. To that end, the ECS 102 also includes an ozone converter 110 coupled between the air parameter adjusting unit 106 and the location 112. The exact location of the ozone converter 110 can be varied from that shown in
(14) As discussed above, in some cases it may be desirable to bypass the ozone converter 110 when the ECS 102 receives input air 104 from a low altitude source. To accomplish this, one prior art approach was to include bypass line 116 and diverter 114 that caused the input air 104 to be bypassed around the ozone converter 110. In
(15) Embodiments of the present invention are directed to an ozone converter 110 that can be used in the system 100. According to one embodiment, the ozone converter 110 includes an internal bypass that allows air to bypass portions of the ozone converter's core without requiring a separate external bypass (e.g., without requiring either diverter 114 or bypass line 116). Such an embodiment, as discussed below includes, one or more actuating panels (or vanes) that can either lie flat against the face of the ozone converter core or be actuated to be parallel to the flow, thereby exposing more of the face of the ozone converter core to the flow. An additional center bypass can be contained on the same shaft allowing for center core bypass when the panels are closed, and then actuating to block the bypass when the panels are open.
(16) In another embodiment, a rotating panel that is placed in front of the ozone convertor core covering or uncovering portions of the ozone convertor core based on an actuator position. In the open position a flow is allowed to flow through large bypass sections reducing pressure drop and also serving to isolate sections from contaminants. In the closed position which would be used at higher altitudes, the solid portions of the panel cover the bypass slots and allow the air flow through sections of the ozone convertor core.
(17) Of course, the inclusion of diverter 114 or bypass line 116 into ECS 102 does not change the fact that any system that includes an ozone converter 110 as disclosed herein is within the scope of the present invention. In some cases, the ozone converter 110 can save space in ECS 102 because diverter 114 and bypass line 116 are not required. Removal of such elements may provide a space saving that exceeds any increase in size of the ozone converter 110 due to the provision on an internal bypass within the ozone converter 110 as disclosed herein.
(18) In prior art applications, the ozone converted included a housing formed of a metal such as titanium. The housing is typically formed of two portions that are welded together after the core is inserted. This is not required, however.
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(20) Enclosed within the outer shell is a core. Two different cores will be discussed herein. Each of the cores can be formed of any type of material that causes or otherwise aids in the conversion of ozone into oxygen. For instance, in one embodiment, the core is formed at least partially of palladium.
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(22) The core 220 is show as being circular and having a passageway 202 formed through it. The passageway 202 may be referred to as a central passageway 202 herein. The ozone converter 110 includes an actuator 210 that drives an ozone control assembly. The ozone control assembly 204, in operation, controls a flow of air (A) through the core 220. The control may be partial or complete. For example, in one embodiment, the ozone control assembly 204 includes a control rod 212 having at least a central passageway access cover 206 and one or more core cover flaps 208a, 208b, etc. attached to it. As shown, the control assembly is in a closed or ground/low altitude mode. In this mode, air A is allowed to pass through the central passageway 202 without passing through the core 220. Some air may pass through the core as well. However, a portion of the core is not allowed to have air pass through it as it is covered by core cover flaps 208a, 208b.
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(24) Rotation of the control rod 212 of
(25) In another embodiment, rather than having rotation of an airflow assembly in about an axis that is perpendicular to the flow of air, the core the blocking elements are arranged such that blocking elements can move in front of or away from openings of the core as they are rotated about an axis this is perpendicular to the air flow direction.
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(28) As described above, the blocking element 602 can be rotated such that it covers the holes 720 in the core 620. This is illustrated in
(29) While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.