"NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials" - Information and Links:

NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials - Info and Reading Options

"NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials" and the language of the book is English.


“NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials
  • Author: ➤  
  • Language: English

Edition Identifiers:

  • Internet Archive ID: NASA_NTRS_Archive_20150003789

AI-generated Review of “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials”:


"NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials" Description:

The Internet Archive:

The objective of this proposed project is to research and develop a prediction tool for advanced additive manufacturing (AAM) processes for advanced materials and develop experimental methods to provide fundamental properties and establish validation data. Aircraft structures and engines demand materials that are stronger, useable at much higher temperatures, provide less acoustic transmission, and enable more aeroelastic tailoring than those currently used. Significant improvements in properties can only be achieved by processing the materials under nonequilibrium conditions, such as AAM processes. AAM processes encompass a class of processes that use a focused heat source to create a melt pool on a substrate. Examples include Electron Beam Freeform Fabrication and Direct Metal Deposition. These types of additive processes enable fabrication of parts directly from CAD drawings. To achieve the desired material properties and geometries of the final structure, assessing the impact of process parameters and predicting optimized conditions with numerical modeling as an effective prediction tool is necessary. The targets for the processing are multiple and at different spatial scales, and the physical phenomena associated occur in multiphysics and multiscale. In this project, the research work has been developed to model AAM processes in a multiscale and multiphysics approach. A macroscale model was developed to investigate the residual stresses and distortion in AAM processes. A sequentially coupled, thermomechanical, finite element model was developed and validated experimentally. The results showed the temperature distribution, residual stress, and deformation within the formed deposits and substrates. A mesoscale model was developed to include heat transfer, phase change with mushy zone, incompressible free surface flow, solute redistribution, and surface tension. Because of excessive computing time needed, a parallel computing approach was also tested. In addition, after investigating various methods, a Smoothed Particle Hydrodynamics Model (SPH Model) was developed to model wire feeding process. Its computational efficiency and simple architecture makes it more robust and flexible than other models. More research on material properties may be needed to realistically model the AAM processes. A microscale model was developed to investigate heterogeneous nucleation, dendritic grain growth, epitaxial growth of columnar grains, columnar-to-equiaxed transition, grain transport in melt, and other properties. The orientations of the columnar grains were almost perpendicular to the laser motion's direction. Compared to the similar studies in the literature, the multiple grain morphology modeling result is in the same order of magnitude as optical morphologies in the experiment. Experimental work was conducted to validate different models. An infrared camera was incorporated as a process monitoring and validating tool to identify the solidus and mushy zones during deposition. The images were successfully processed to identify these regions. This research project has investigated multiscale and multiphysics of the complex AAM processes thus leading to advanced understanding of these processes. The project has also developed several modeling tools and experimental validation tools that will be very critical in the future of AAM process qualification and certification.

Read “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials”:

Read “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials” by choosing from the options below.

Available Downloads for “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials”:

"NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials" is available for download from The Internet Archive in "texts" format, the size of the file-s is: 72.34 Mbs, and the file-s went public at Fri Nov 18 2016.

Legal and Safety Notes

Copyright Disclaimer and Liability Limitation:

A. Automated Content Display
The creation of this page is fully automated. All data, including text, images, and links, is displayed exactly as received from its original source, without any modification, alteration, or verification. We do not claim ownership of, nor assume any responsibility for, the accuracy or legality of this content.

B. Liability Disclaimer for External Content
The files provided below are solely the responsibility of their respective originators. We disclaim any and all liability, whether direct or indirect, for the content, accuracy, legality, or any other aspect of these files. By using this website, you acknowledge that we have no control over, nor endorse, the content hosted by external sources.

C. Inquiries and Disputes
For any inquiries, concerns, or issues related to the content displayed, including potential copyright claims, please contact the original source or provider of the files directly. We are not responsible for resolving any content-related disputes or claims of intellectual property infringement.

D. No Copyright Ownership
We do not claim ownership of any intellectual property contained in the files or data displayed on this website. All copyrights, trademarks, and other intellectual property rights remain the sole property of their respective owners. If you believe that content displayed on this website infringes upon your intellectual property rights, please contact the original content provider directly.

E. Fair Use Notice
Some content displayed on this website may fall under the "fair use" provisions of copyright law for purposes such as commentary, criticism, news reporting, research, or educational purposes. If you believe any content violates fair use guidelines, please reach out directly to the original source of the content for resolution.

Virus Scanning for Your Peace of Mind:

The files provided below have already been scanned for viruses by their original source. However, if you’d like to double-check before downloading, you can easily scan them yourself using the following steps:

How to scan a direct download link for viruses:

  • 1- Copy the direct link to the file you want to download (don’t open it yet).
  • (a free online tool) and paste the direct link into the provided field to start the scan.
  • 2- Visit VirusTotal (a free online tool) and paste the direct link into the provided field to start the scan.
  • 3- VirusTotal will scan the file using multiple antivirus vendors to detect any potential threats.
  • 4- Once the scan confirms the file is safe, you can proceed to download it with confidence and enjoy your content.

Available Downloads

  • Source: Internet Archive
  • Internet Archive Link: Archive.org page
  • All Files are Available: Yes
  • Number of Files: 12
  • Number of Available Files: 12
  • Added Date: 2016-11-18 04:42:55
  • PPI (Pixels Per Inch): 600
  • OCR: ABBYY FineReader 11.0

Available Files:

1- Text PDF

  • File origin: original
  • File Format: Text PDF
  • File Size: 0.01 Mbs
  • File Name: NASA_NTRS_Archive_20150003789.pdf
  • Direct Link: Click here

2- Metadata

  • File origin: original
  • File Format: Metadata
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_files.xml
  • Direct Link: Click here

3- Metadata

  • File origin: original
  • File Format: Metadata
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_meta.sqlite
  • Direct Link: Click here

4- Metadata

  • File origin: original
  • File Format: Metadata
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_meta.xml
  • Direct Link: Click here

5- Item Tile

  • File origin: original
  • File Format: Item Tile
  • File Size: 0.00 Mbs
  • File Name: __ia_thumb.jpg
  • Direct Link: Click here

6- Animated GIF

  • File origin: derivative
  • File Format: Animated GIF
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789.gif
  • Direct Link: Click here

7- Abbyy GZ

  • File origin: derivative
  • File Format: Abbyy GZ
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_abbyy.gz
  • Direct Link: Click here

8- DjVuTXT

  • File origin: derivative
  • File Format: DjVuTXT
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_djvu.txt
  • Direct Link: Click here

9- Djvu XML

  • File origin: derivative
  • File Format: Djvu XML
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_djvu.xml
  • Direct Link: Click here

10- Single Page Processed JP2 ZIP

  • File origin: derivative
  • File Format: Single Page Processed JP2 ZIP
  • File Size: 0.06 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_jp2.zip
  • Direct Link: Click here

11- Scandata

  • File origin: derivative
  • File Format: Scandata
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_scandata.xml
  • Direct Link: Click here

12- Archive BitTorrent

  • File origin: metadata
  • File Format: Archive BitTorrent
  • File Size: 0.00 Mbs
  • File Name: NASA_NTRS_Archive_20150003789_archive.torrent
  • Direct Link: Click here

Search for “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials” downloads:

Visit our Downloads Search page to see if downloads are available.

Find “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials” in Libraries Near You:

Read or borrow “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials” from your local library.

Buy “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials” online:

Shop for “NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials” on popular online marketplaces.



Find "NASA Technical Reports Server (NTRS) 20150003789: Multiscale And Multiphysics Modeling Of Additive Manufacturing Of Advanced Materials" in Wikipdedia