The subject matter disclosed herein relates to vehicle sensors and, more specifically, to systems to prevent ice accumulation on vehicle sensors.
Throughout operation, aircraft sensors or probes may accumulate unacceptable amounts of ice, which may cause damage to engine or other component aft of the sensor due to ice shedding events. Some known engine temperature sensors utilize some form of anti-icing heat to prevent or limit the size of ice accretion. However, electrical heating elements may reduce the life span of the probes, and pneumatically anti-iced probes may utilize only a fraction of available energy which can result in poor anti-icing.
Accordingly, it is desirable to provide system to improve anti-icing of vehicle sensors or probes.
In one aspect, a device configured to prevent ice accumulation is disclosed. The device includes at least one wall defining a leading edge and a pneumatic passage configured to receive pressurized fluid. The device also includes at least one ejection port formed in at least one of the leading edge and the at least one wall, the at least one ejection portion fluidly coupled to the pneumatic passage to receive the pressurized fluid therefrom, the at least one ejection port configured to form fluid jets to divert liquid water droplets away from the leading edge of the device.
In another aspect, a probe assembly that includes a base platform, a probe coupled to the base platform, and a device coupled to at least one of the base platform and the probe is disclosed. The device is configured to be positioned in an airflow upstream of the probe and to prevent ice accumulation thereon and includes at least one wall defining a leading edge, a pneumatic passage configured to receive pressurized fluid and at least one ejection port formed in at least one of the leading edge and the at least one wall, the at least one ejection portion fluidly coupled to the pneumatic passage to receive the pressurized fluid therefrom, the at least one ejection port configured to form heated fluid jets to divert liquid water droplets away from the leading edge of the device.
Also disclosed is an aircraft engine that includes a housing, a fan, a compressor and a probe assembly disposed upstream of the compressor. The probe assembly includes a base platform, a probe coupled to the base platform, and a device coupled to at least one of the base platform and the probe, the device configured to be positioned in an airflow upstream of the probe and to prevent ice accumulation thereon. The device includes at least one wall defining a leading edge, a pneumatic passage configured to receive pressurized fluid, and at least one ejection port formed in at least one of the leading edge and the at least one wall, the at least one ejection portion fluidly coupled to the pneumatic passage to receive the pressurized fluid therefrom, the at least one ejection port configured to form heated fluid jets to divert liquid water droplets away from the leading edge of the device.
The foregoing and other features, and advantages of embodiments are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
In the illustrated embodiment, probe assembly 22 is coupled to and extends through outer case 20 into a cavity 26 formed between inner case 18 and outer case 20. Cavity 26 is configured to direct an airflow 28 across probe assembly 22 to high-pressure compressor 16. Probe assembly 22 is configured to measure a parameter of airflow 28 such as temperature. Although ice accumulation prevention device 24 is illustrated with aircraft engine 10, device 24 may be utilized in various other locations of an aircraft or with other vehicles to prevent ice accumulation on an object.
With reference to
With reference to
Ejection ports 48 are formed in leading edge 44 and are fluidly coupled to passage 46 to receive the heated, pressurized air. In the illustrated embodiment, ports 48 are elongated slots. However, ports 48 may have any suitable shape that enables device 24 to function as described herein. For example, ports 48 may be circular. Ejection ports 48 are configured to produce heated, pressurized fluid or air jets 50, and to direct jets 50 into air flow 28. Accordingly, as illustrated in
Described herein are systems and methods for controlling preventing ice accumulation on an object such as a probe. An ice accumulation prevention device is disposed upstream of a probe that may accumulate ice thereon. The device is fluidly coupled to a fluid line to receive a heated, pressurized fluid such as air. The device includes ejection ports formed therein, and the heated, pressurized air is forced through the ports to form heated, air jets to divert liquid water droplets away from the leading edge of the device. Heat is transferred from the heated, pressurized fluid to portions of the device to prevent ice accumulation thereon. Accordingly, the device prevents ice accumulation of the probe or other object, which may cause damage to surrounding components during ice shedding events.
While the disclosure has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the disclosure is not limited to such disclosed embodiments. Rather, the disclosure 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 disclosure. Additionally, while various embodiments have been described, it is to be understood that aspects of the disclosure may include only some of the described embodiments. Accordingly, the disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.
This application claims the benefit of an earlier filing date from U.S. Provisional Application Ser. No. 62/185,224 filed Jun. 26, 2015, the entire disclosure of which is incorporated herein by reference.
Number | Date | Country | |
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62185224 | Jun 2015 | US |