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"NASA Technical Reports Server (NTRS) 20030053054: Scale Model Experiments On Sound Propagation From A Mach 2.5 Cold Nitrogen Jet Flowing Through A Rigid-Walled Duct With A J-Deflector" and the language of the book is English.


“NASA Technical Reports Server (NTRS) 20030053054: Scale Model Experiments On Sound Propagation From A Mach 2.5 Cold Nitrogen Jet Flowing Through A Rigid-Walled Duct With A J-Deflector” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 20030053054: Scale Model Experiments On Sound Propagation From A Mach 2.5 Cold Nitrogen Jet Flowing Through A Rigid-Walled Duct With A J-Deflector
  • Author: ➤  
  • Language: English

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  • Internet Archive ID: NASA_NTRS_Archive_20030053054

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"NASA Technical Reports Server (NTRS) 20030053054: Scale Model Experiments On Sound Propagation From A Mach 2.5 Cold Nitrogen Jet Flowing Through A Rigid-Walled Duct With A J-Deflector" Description:

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The Launch Systems Testbed (LST) represents the evolution of vibroacoustics research and development work performed at NASA John F. Kennedy Space Center (KSC) over the last 15 years. The LST is located at the Launch Equipment Test Facility (LETF) in the KSC industrial complex. The LETF is operated by Sierra Lobo, Inc., as a member of University-Affiliated Technology Development Contract (USTDC) to KSC Spaceport and Engineering and Technology Directorate (YA), with ASRC Aerospace Corporation as a the prime contractor. Trajectory Simulation Mechanism (TSM) is a major component of the LST, developed specifically to simulate nonstationary acoustic loads on launch pad structures, vehicles, and payloads. TSM enhances the capabilities within LST for simulating launch environments of future vehicles. The scaled launch environments will be used to predict the full-scale launch environment via an appropriate scaling procedure. Air Force Research Laboratory (AFRL) has tasked NASA KSC to perform a basic technology test program in support of developing a low-cost clean pad (incorporating passive mitigation techniques) for future launch vehicles. The overall goal of the program is to develop innovative launch exhaust management systems, which effectively reduce launch acoustic environment with innovative duct designs, while eliminating traditional sound suppression water systems. Passive techniques, such as nontraditional duct geometries, resonators, and diffusers, etc., will be investigated. The overall goals are to advance innovative concepts for a clean pad while developing ideas to reduce transmitted sound via investigation and modeling of jet exhaust acoustic and flow field characteristics. The series of tests outlined in this report represent baseline tests and are geared towards defining the acoustic load environment on the TSM pad for open and closed duct configurations. This report summarizes the cold jet acoustic testing for Mach 2.5 supersonic nitrogen jet issuing from a nozzle with 1-inch exit diameter. Acoustic data, including spectral sound power and Overall Sound Pressure Level (OASPL), are obtained both for a free jet and with the jet flowing through a rigid-walled duct with a J-deflector. The relative performance of closed duct and open duct is evaluated. The results show that the closed duct is superior to the partially open duct, and results in about 3-decibel (dB) noise reduction (near the duct axis) relative to the free jet. The location of the nozzle exit plane (NEP) relative to the duct inlet plane (DIP) has a significant effect on the acoustic field. The results suggest that the location of NEP at 10 inches above the DIP results in reduced acoustic loads relative to 5 inches above the duct inlet and 1 inch into the duct inlet.

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