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Numerical Modeling Of Hgcdte Solidification by Andris V. Bune

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1Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-Diffusion Convection And Microgravity Level

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Melt convection, along with species diffusion and segregation on the solidification interface are the primary factors responsible for species redistribution during HgCdTe crystal growth from the melt. As no direct information about convection velocity is available, numerical modeling is a logical approach to estimate convection. Furthermore influence of microgravity level, double-diffusion and material properties should be taken into account. In the present study, HgCdTe is considered as a binary alloy with melting temperature available from a phase diagram. The numerical model of convection and solidification of binary alloy is based on the general equations of heat and mass transfer in two-dimensional region. Mathematical modeling of binary alloy solidification is still a challenging numericial problem. A Rigorous mathematical approach to this problem is available only when convection is not considered at all. The proposed numerical model was developed using the finite element code FIDAP. In the present study, the numerical model is used to consider thermal, solutal convection and a double diffusion source of mass transport.

“Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-Diffusion Convection And Microgravity Level” Metadata:

  • Title: ➤  Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-Diffusion Convection And Microgravity Level
  • Authors:
  • Language: English

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The book is available for download in "texts" format, the size of the file-s is: 1.81 Mbs, the file-s for this book were downloaded 271 times, the file-s went public at Mon May 23 2011.

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2NASA Technical Reports Server (NTRS) 19980041500: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-diffusion Convection And Microgravity Level

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A numerical model of HgCdTe solidification was implemented using finite the element code FIDAP. Model verification was done using both experimental data and numerical test problems. The model was used to evaluate possible effects of double-diffusion convection in molten material, and microgravity level on concentration distribution in the solidified HgCdTe. Particular attention was paid to incorporation of HgCdTe phase diagram. It was found, that below a critical microgravity amplitude, the maximum convective velocity in the melt appears virtually independent on the microgravity vector orientation. Good agreement between predicted interface shape and an interface obtained experimentally by quenching was achieved. The results of numerical modeling are presented in the form of video film.

“NASA Technical Reports Server (NTRS) 19980041500: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-diffusion Convection And Microgravity Level” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 19980041500: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-diffusion Convection And Microgravity Level
  • Author: ➤  
  • Language: English

“NASA Technical Reports Server (NTRS) 19980041500: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-diffusion Convection And Microgravity Level” Subjects and Themes:

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The book is available for download in "texts" format, the size of the file-s is: 10.60 Mbs, the file-s for this book were downloaded 71 times, the file-s went public at Fri Oct 14 2016.

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3NASA Technical Reports Server (NTRS) 19970030177: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-Diffusion Convection And Microgravity Level

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Melt convection, along with species diffusion and segregation on the solidification interface are the primary factors responsible for species redistribution during HgCdTe crystal growth from the melt. As no direct information about convection velocity is available, numerical modeling is a logical approach to estimate convection. Furthermore influence of microgravity level, double-diffusion and material properties should be taken into account. In the present study, HgCdTe is considered as a binary alloy with melting temperature available from a phase diagram. The numerical model of convection and solidification of binary alloy is based on the general equations of heat and mass transfer in two-dimensional region. Mathematical modeling of binary alloy solidification is still a challenging numericial problem. A Rigorous mathematical approach to this problem is available only when convection is not considered at all. The proposed numerical model was developed using the finite element code FIDAP. In the present study, the numerical model is used to consider thermal, solutal convection and a double diffusion source of mass transport.

“NASA Technical Reports Server (NTRS) 19970030177: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-Diffusion Convection And Microgravity Level” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 19970030177: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-Diffusion Convection And Microgravity Level
  • Author: ➤  
  • Language: English

“NASA Technical Reports Server (NTRS) 19970030177: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-Diffusion Convection And Microgravity Level” Subjects and Themes:

Edition Identifiers:

Downloads Information:

The book is available for download in "texts" format, the size of the file-s is: 8.48 Mbs, the file-s for this book were downloaded 67 times, the file-s went public at Fri Oct 14 2016.

Available formats:
Abbyy GZ - Animated GIF - Archive BitTorrent - DjVuTXT - Djvu XML - JPEG Thumb - Metadata - Scandata - Single Page Processed JP2 ZIP - Text PDF -

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Find NASA Technical Reports Server (NTRS) 19970030177: Numerical Modeling Of HgCdTe Solidification: Effects Of Phase Diagram, Double-Diffusion Convection And Microgravity Level at online marketplaces:


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