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20050181937 · New Spray Bar System Installed in NASA Lewis' Icing Research Tunnel

NASA · 1998

Open the PDFPublic domain · NASATechnical Reports

Overview

NASA Lewis Research Center's Icing Research Tunnel (IRT) is the world's largest refrigerated wind tunnel dedicated to the study of aircraft icing. In the IRT, natural icing conditions are duplicated to test the effects of in-flight icing on actual aircraft components and on scale models of…

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Key points

  • NASA Lewis Research Center's Icing Research Tunnel (IRT) is the world's largest refrigerated wind tunnel dedicated to aircraft icing studies.
  • A new spray bar system was installed to improve the IRT's ability to reproduce natural icing conditions.
  • The system includes 10 spray bars with approximately 130 air-assist atomizing water nozzles, allowing for precise control of liquid water content in the icing cloud.
  • The installation of the new system reduced the time to achieve a uniform icing cloud from approximately 1 minute to less than 10 seconds.
  • The improved system enhances the IRT's capabilities for computer simulation validation and ice protection system testing.
Frequently asked questions
What is the purpose of the Icing Research Tunnel?

The Icing Research Tunnel is dedicated to the study of aircraft icing, duplicating natural icing conditions to test the effects on aircraft components and models.

What improvements does the new spray bar system provide?

The new spray bar system allows for a significant decrease in time to achieve a uniform icing cloud and increases the size of the uniform cloud.

Who designed and installed the new spray bar system?

The spray bars and supporting systems were designed in-house by Lewis' Engineering Design and Analysis Division and installed by North Bay Construction, Inc.

How does the new system control water flow?

Each spray bar has solenoid valves that control the water flow to the headers for each nozzle, allowing for independent pressurization.

What are the primary goals of the IRT?

The primary goals include computer simulation validation, ice accretion shape generation, ice protection system research and development testing, and aircraft ice protection system certification.

Document

New Spray Bar System Installed in NASA

Lewis' Icing Research Tunnel

NASA Lewis Research Center's Icing Research Tunnel (IRT) is the world's largest refrigerated wind tunnel dedicated to the study of aircraft icing. In the IRT, natural icing conditions are duplicated to test the effects of in-flight icing on actual aircraft components and on scale models of airplanes and helicopters. The IRT's ability to reproduce a natural icing cloud was significantly improved with the recent installation of a new spray bar system. It is the spray bar system that transforms the low-speed wind tunnel into an icing wind tunnel by producing microscopic droplets of water and injecting them into the wind tunnel air stream in order to accurately simulate cloud moisture.

The spray bars and supporting mechanical and electrical systems were designed in-house by Lewis' Engineering Design and Analysis Division and Lewis' Facilities and Test Engineering Division. Accurate Machine Tool Company of Cleveland, Ohio, fabricated and assembled the spray bars, and North Bay Construction, Inc., also of Cleveland, installed the spray bars and the supporting mechanical system. The electrical system was installed in-house by Lewis' Facilities and Test Engineering Division and Lewis' Test Installation Division.

The spray bars are located in the wind tunnel settling chamber upstream of the test section. There are a total of 10 spray bars, which hold a total of approximately 130 air- assist atomizing water nozzles. In each of the 10 spray bars, there are two water headers that feed the water nozzles; every header can be independently pressurized. This allows for step-function-type changes in the liquid water content of the icing cloud. At every nozzle location, solenoid valves control the water flow to the headers for that particular water nozzle. Each spray bar has an external cover that is an aerodynamically shaped fairing with a removable trailing edge. This feature allows for easy maintenance of the interior mechanical and electrical components.

Measurable improvements associated with the new system include an order-of-magnitude decrease in the time required to achieve a uniform icing cloud in the test section (from approximately 1 minute to less than 10 seconds), a greater than 100 percent increase in the size of the uniform cloud (from 15 to more than 30 ft ), and the creation of ice shapes similar to those produced by the previous spray bar system. After installation of the new spray bar system, test section aerodynamic calibrations and icing cloud calibrations- including the important parameters of icing cloud uniformity, droplet size distribution, liquid water content, and ice shape comparisons-were successfully completed.

The improved performance characteristics associated with the new spray bar system ensure the IRT's capability to re-create in-flight icing conditions, thus guaranteeing that the facility will continue to contribute to its primary goals, including computer simulation validation, ice accretion shape generation, ice protection system research and development testing, and aircraft ice protection system certification.

New spray bar system for Lewis' Icing Research Tunnel as seen from the test section.

Lewis contact: Thomas B. Irvine, (216) 433-5369, Thomas.B.Irvine@grc.nasa.gov Author: Thomas B. Irvine Headquarters program office: OASTT Programs/Projects: Aeronautics Base R&T

Source & rights

Source: ntrs.nasa.gov. Public-domain U.S. Government work (17 USC §105) — freely reproducible.

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Document details

Doc number
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20050181937
Publisher
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NASA
Year
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1998
Pages
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2
File size
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61 KB