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Technology Advancements for Channel Wall Nozzle Manufacturing In Liquid Rocket Engines
A regeneratively-cooled or dump-cooled nozzle is a critical component for expansion of hot gases to enable high temperature and performance in liquid rocket engines systems. Regeneratively-cooled channel wall nozzles are a design solution used across the propulsion industry as a simplified method to fabricate the nozzle structure with internal coolant passages. The scale and complexity of the channel wall nozzle (CWN) design can be challenging to fabricate which results in extended lead times and higher costs. Some of these challenges include: 1) Unique and high temperature materials, 2) Tight tolerances on large parts during manufacturing and assembly to contain high pressure propellants, 3) Thin-walled features to maintain adequate wall temperatures, and 4) Unique manufacturing process operations and complex tooling. The United States (U.S.) National Aeronautics and Space Administration (NASA) and U.S. specialty manufacturing vendors are maturing modern fabrication techniques to reduce complexity and decrease costs associated with channel wall nozzle manufacturing technology. Additive Manufacturing (AM) is one of the key technology advancements under evaluation for channel wall nozzles. Much of additive manufacturing for propulsion components has focused on laser powder bed fusion (L-PBF), but the scale is not yet feasible for application to large scale nozzles. NASA is evolving directed energy deposition (DED) techniques for nozzles including arc-based deposition, blown powder deposition, and Laser Wire Direct Closeout (LWDC). There are different approaches being considered for fabrication of the nozzle, and each of these DED processes offer unique process steps for rapid fabrication. The arc-based and blown powder deposition techniques are used for the forming of the CWN liner. A variety of materials are being demonstrated including Inconel 625, Haynes 230, JBK-75, and NASA HR-1. The blown powder DED process is also being demonstrated for forming an integral channel nozzle in a single operation in similar materials. The LWDC process is a method for closing out the channels within the liner and forming the structural jacket using a localized laser wire deposition technique. Identical materials mentioned above have been used for this process in addition to bimetallic closeout (C-18150–SS347, and C-18150–Inconel 625). NASA has completed process development, material characterization, and hot-fire testing on a variety of these channel wall nozzle fabrication technique. This publication presents an overview of the various channel wall nozzle manufacturing processes and materials under evaluation including results from the hot-fire testing. Future development and technology focus areas is also discussed relative to channel wall nozzle manufacturing.
Document ID
20205002297
Acquisition Source
Marshall Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Paul R Gradl
(Marshall Space Flight Center Redstone Arsenal, Alabama, United States)
Christopher S Protz
(Marshall Space Flight Center Redstone Arsenal, Alabama, United States)
Date Acquired
May 18, 2020
Publication Date
May 6, 2020
Publication Information
Publication: Acta Astronautica
Publisher: Elsevier
Volume: 174
Issue Publication Date: September 1, 2020
ISSN: 0094-5765
URL: https://www.sciencedirect.com/science/article/pii/S0094576520302824?via%3Dihub
Subject Category
Spacecraft Propulsion And Power
Funding Number(s)
PROJECT: STMD Game Changing Rapid Analysis and Propulsion Technology (RAMPT) Project
PROJECT: SLS Liquid Engines Office
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
Technical Review
External Peer Committee
Keywords
Additive manufacturing
Channel wall nozzles
CWN
Rocket Nozzle
Liquid Rocket Engine
Liquid rocket engine nozzle
Regeneratively cooled nozzles
Channel cooled nozzles
Directed energy deposition
Laser wire direct closeout
LWDC
DED
AM
NASA HR-1
JBK-75
Thrust Chamber Assembly
Advanced manufacturing
Additively manufactured rocket
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