Electronic Expansion Valve
US-2024410495-A1 · Dec 12, 2024 · US
US9657844B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9657844-B2 |
| Application number | US-201213440776-A |
| Country | US |
| Kind code | B2 |
| Filing date | Apr 5, 2012 |
| Priority date | Sep 14, 2011 |
| Publication date | May 23, 2017 |
| Grant date | May 23, 2017 |
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A valve unit for an aircraft is provided. The valve unit includes valve assembly; and a servo controller coupled to the valve assembly and configured to control operation of the valve assembly. At least a portion of at least one of the valve assembly or servo controller is formed by a high temperature aluminum alloy.
Opening claim text (preview).
What is claimed is: 1. A valve unit for an aircraft, comprising: a valve assembly; a servo controller coupled to the valve assembly and configured to control operation of the valve assembly, wherein at least a portion of at least one of the valve assembly and servo controller is formed by a high temperature aluminum alloy, wherein the valve assembly is configured to modulate a flow of air, the servo controller being configured to at least partially pneumatically control the valve assembly with a portion of the air; a heat exchanger coupled to the servo controller and the valve assembly, the heat exchanger configured to receive the portion of the air from the valve assembly and to provide the portion of the air to the servo controller, the heat exchanger configured to remove heat from the portion of the air after receiving the portion of the air from the valve assembly and prior to providing the portion of the air to the servo controller, wherein the heat exchanger defines a plurality of passages with a serpentine pattern for removing the heat from the portion of the air, wherein the servo controller has a first side and a second side, opposite to the first side; at least one first bracket mounting the first side of the servo controller to the valve assembly; and at least one second bracket mounting the second side of the servo controller to the heat exchanger. 2. The valve unit of claim 1 , wherein the high temperature aluminum alloy is rapidly solidified aluminum alloy. 3. The valve unit of claim 1 , wherein the high temperature aluminum alloy comprises fine silicide dispersoid distributed within an aluminum matrix. 4. The valve unit of claim 1 , wherein the heat exchanger is formed by the high temperature aluminum alloy. 5. The valve unit of claim 4 , wherein the high temperature aluminum alloy is rapidly solidified aluminum alloy. 6. The valve unit of claim 4 , wherein the high temperature aluminum alloy comprises fine silicide dispersoids distributed within an aluminum matrix. 7. The valve unit of claim 1 , wherein the valve assembly comprises the high temperature aluminum alloy, and wherein the valve assembly is configured to operate in temperatures of at least 400° F. for at least 10,000 hours without mechanical degradation. 8. The valve unit of claim 1 , wherein the valve assembly includes a valve body defining a main flow path and a block defining a plurality of actuation passages and chambers, wherein the valve body and the block are formed with the high temperature aluminum alloy. 9. The valve unit of claim 1 , wherein the valve assembly and servo controller are spaced at a predetermined distance apart from each other by the at least one first bracket. 10. The valve unit of claim 9 , further comprising a thermal barrier interposed within the predetermined distance between the valve assembly and the servo controller.
Heat or noise insulation (air intakes having provisions for noise suppression F02C7/045; turbine exhaust heads, chambers, or the like F01D25/30; silencing nozzles of jet-propulsion plants F02K1/00) · CPC title
Aluminium · CPC title
With heating or cooling of the system · CPC title
Air heated or cooled [fan, fins, or channels] · CPC title
Aluminium alloys, e.g. AlCuMgPb · CPC title
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