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An anisotropic enhanced thermal conductivity approach for modelling laser melt pools

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Published

Standard

An anisotropic enhanced thermal conductivity approach for modelling laser melt pools. / Safdar, S.; Pinkerton, A.J.; Moat, R. et al.
Proceedings of the 26th International Congress on Applications of Lasers and Electro-optics (ICALEO). Laser Institute of America, 2007.

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Harvard

Safdar, S, Pinkerton, AJ, Moat, R, Li, L, Sheikh, MA, Preuss, M & Withers, PJ 2007, An anisotropic enhanced thermal conductivity approach for modelling laser melt pools. in Proceedings of the 26th International Congress on Applications of Lasers and Electro-optics (ICALEO). Laser Institute of America.

APA

Safdar, S., Pinkerton, A. J., Moat, R., Li, L., Sheikh, M. A., Preuss, M., & Withers, P. J. (2007). An anisotropic enhanced thermal conductivity approach for modelling laser melt pools. In Proceedings of the 26th International Congress on Applications of Lasers and Electro-optics (ICALEO) Laser Institute of America.

Vancouver

Safdar S, Pinkerton AJ, Moat R, Li L, Sheikh MA, Preuss M et al. An anisotropic enhanced thermal conductivity approach for modelling laser melt pools. In Proceedings of the 26th International Congress on Applications of Lasers and Electro-optics (ICALEO). Laser Institute of America. 2007

Author

Safdar, S. ; Pinkerton, A.J. ; Moat, R. et al. / An anisotropic enhanced thermal conductivity approach for modelling laser melt pools. Proceedings of the 26th International Congress on Applications of Lasers and Electro-optics (ICALEO). Laser Institute of America, 2007.

Bibtex

@inproceedings{1bc34d98fc984919992291ae7846dc87,
title = "An anisotropic enhanced thermal conductivity approach for modelling laser melt pools",
abstract = "It is well established that the Marangoni flow dominated circulation within a laser melt pool significantly modifies the pool profile and temperature distribution. Detailed computational fluid dynamics models are required to accurately predict this but these are complicated and computationally expensive. Many researchers have in the past used an enhanced thermal conductivity approach, but the validity of this approach for accurately predicting the melt pool geometry and temperature distribution is largely unproven. This paper presents an analysis of the widely-used isotropic enhanced thermal conductivity approach and compares it with a more advanced anisotropic approach for modelling the laser melting of Inconel 718. Experimental and modelled results for the geometry of a melt pool created by a moving laser beam are compared. It is found that the conventional enhanced thermal conductivity approach does not change the melt pool size and shape; it only reduces the maximum surface temperature. The anisotropic enhanced thermal conductivity approach on the other hand is able to modify the melt pool size and geometry and yields a better agreement with the experimental results.",
author = "S. Safdar and A.J. Pinkerton and R. Moat and L. Li and Sheikh, {M. A.} and M. Preuss and Withers, {P. J.}",
year = "2007",
language = "English",
booktitle = "Proceedings of the 26th International Congress on Applications of Lasers and Electro-optics (ICALEO)",
publisher = "Laser Institute of America",

}

RIS

TY - GEN

T1 - An anisotropic enhanced thermal conductivity approach for modelling laser melt pools

AU - Safdar, S.

AU - Pinkerton, A.J.

AU - Moat, R.

AU - Li, L.

AU - Sheikh, M. A.

AU - Preuss, M.

AU - Withers, P. J.

PY - 2007

Y1 - 2007

N2 - It is well established that the Marangoni flow dominated circulation within a laser melt pool significantly modifies the pool profile and temperature distribution. Detailed computational fluid dynamics models are required to accurately predict this but these are complicated and computationally expensive. Many researchers have in the past used an enhanced thermal conductivity approach, but the validity of this approach for accurately predicting the melt pool geometry and temperature distribution is largely unproven. This paper presents an analysis of the widely-used isotropic enhanced thermal conductivity approach and compares it with a more advanced anisotropic approach for modelling the laser melting of Inconel 718. Experimental and modelled results for the geometry of a melt pool created by a moving laser beam are compared. It is found that the conventional enhanced thermal conductivity approach does not change the melt pool size and shape; it only reduces the maximum surface temperature. The anisotropic enhanced thermal conductivity approach on the other hand is able to modify the melt pool size and geometry and yields a better agreement with the experimental results.

AB - It is well established that the Marangoni flow dominated circulation within a laser melt pool significantly modifies the pool profile and temperature distribution. Detailed computational fluid dynamics models are required to accurately predict this but these are complicated and computationally expensive. Many researchers have in the past used an enhanced thermal conductivity approach, but the validity of this approach for accurately predicting the melt pool geometry and temperature distribution is largely unproven. This paper presents an analysis of the widely-used isotropic enhanced thermal conductivity approach and compares it with a more advanced anisotropic approach for modelling the laser melting of Inconel 718. Experimental and modelled results for the geometry of a melt pool created by a moving laser beam are compared. It is found that the conventional enhanced thermal conductivity approach does not change the melt pool size and shape; it only reduces the maximum surface temperature. The anisotropic enhanced thermal conductivity approach on the other hand is able to modify the melt pool size and geometry and yields a better agreement with the experimental results.

M3 - Conference contribution/Paper

BT - Proceedings of the 26th International Congress on Applications of Lasers and Electro-optics (ICALEO)

PB - Laser Institute of America

ER -