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field. Phys. Exam. Test. 6, 25–28 (1998)
2. D.T. Swift-Hook, A.E.F. Gick, Penetration welding with laser. Weld. J. 52, 492–499 (1973)
3. T. Chande, J. Mazumder, Estimating effects of processing conditions and variable properties
upon pool shape, cooling rates and absorption coefficient in laser welding. Appl. Phys. 56(7),
1981–1986 (1984)
4. S. Kou, Weld pool convection and its effect. Weld. J. 65(3), 63–70 (1986)
5. S. Kou, Computer simulation of convection in moving arc weld pools. Metall. Trans. 17A(12),
2271–2277 (1986)
6. A. Duan, A Study on the Characteristics and Related Mechanism of Unstable Perforation Process of CO 2 Deep Penetration Laser Welding (Huazhong University of Science and
Technology (HUST), Wuhan, 2006)
7. J. Dowden, The flow of heat and the motion of weld pool in penetration welding with a laser.
Appl. Phys. 57(9), 4474–4479 (1985)
8. J. Dowden, M. Davis, P. Kapadia, Molten-region temperature distribution in laser welding.
Phys. D: Appl. Phys. 18, 1987–1993 (1985)
9. J.A. Goldak, M.J. Bibby, J.E. Moore et al., Computer modeling of heat flow in welds. Met.
Trans. B 17(B), 587–600 (1986)
10. O. lchiko, N. Hamada, H. Soga, Development of the simulation model for 15 kW CO 2
laser materials processing, in Laser Advanced Materials Processing-Science and Application
(LAMP’87), Osaka, Japan (1987), pp. 31–36
11. P.S. Wei, M.D. Shian, Three dimensional analytical temperature field around the welding
cavity produced by a moving distributed high-intensity beam. ASME J. Heat Transf. 115,
848–856 (1993)
12. P.S. Wei, M.D. Shian, Three dimensional analytical temperature field and its application to
solidification characteristics in high-of-low-power-density-beam welding. Heat Mass Transf.
40(10), 2283–2292 (1997)
13. L. Liu, M. Chi, R. Huang et al., Infrared measurement and numerical simulation of welding
temperature field of magnesium alloy AZ31. Sci. China (Ser. E) 36(1), 29–38 (2006)
14. R. Huang, L. Liu, M. Chi, Infrared measurement and numerical simulation of TIG welding
temperature field of magnesium alloy laser. Trans. China Weld. Inst. 27(10), 89–93 (2006)
15. Y. Lei, B. Zhu, J. Wang et al., Three-dimensional dynamic simulation and infrared temperature
measurement of temperature field of tungsten argon arc welding. J. Jiangsu Norm. Univ. (Nat.
Sci. Ed.) 29(4), 308–311 (2008)
16. A. Duan, L. Chen, Characteristics of keyhole and molten pool during laser welding of TC4
Ti-alloy. Laser Eng. 22(5–6), 361–369 (2011)
17. S.V. Patankar, Numerical Heat Transfer and Fluid Flow (trans. Z. Zheng) (Science Press,
Beijing, 1989), pp. 12–16
© China Aviation Publishing & Media Co., Ltd. 2021
S. Gong et al., Weld Pool Dynamics in Deep Penetration Laser Welding,
https://doi.org/10.1007/978-981-16-0788-2
275
1. W. Wang, L. Zhu, X. Shang, A discussion on the testing technology of welding temperature
field. Phys. Exam. Test. 6, 25–28 (1998)
2. D.T. Swift-Hook, A.E.F. Gick, Penetration welding with laser. Weld. J. 52, 492–499 (1973)
3. T. Chande, J. Mazumder, Estimating effects of processing conditions and variable properties
upon pool shape, cooling rates and absorption coefficient in laser welding. Appl. Phys. 56(7),
1981–1986 (1984)
4. S. Kou, Weld pool convection and its effect. Weld. J. 65(3), 63–70 (1986)
5. S. Kou, Computer simulation of convection in moving arc weld pools. Metall. Trans. 17A(12),
2271–2277 (1986)
6. A. Duan, A Study on the Characteristics and Related Mechanism of Unstable Perforation Process of CO 2 Deep Penetration Laser Welding (Huazhong University of Science and
Technology (HUST), Wuhan, 2006)
7. J. Dowden, The flow of heat and the motion of weld pool in penetration welding with a laser.
Appl. Phys. 57(9), 4474–4479 (1985)
8. J. Dowden, M. Davis, P. Kapadia, Molten-region temperature distribution in laser welding.
Phys. D: Appl. Phys. 18, 1987–1993 (1985)
9. J.A. Goldak, M.J. Bibby, J.E. Moore et al., Computer modeling of heat flow in welds. Met.
Trans. B 17(B), 587–600 (1986)
10. O. lchiko, N. Hamada, H. Soga, Development of the simulation model for 15 kW CO 2
laser materials processing, in Laser Advanced Materials Processing-Science and Application
(LAMP’87), Osaka, Japan (1987), pp. 31–36
11. P.S. Wei, M.D. Shian, Three dimensional analytical temperature field around the welding
cavity produced by a moving distributed high-intensity beam. ASME J. Heat Transf. 115,
848–856 (1993)
12. P.S. Wei, M.D. Shian, Three dimensional analytical temperature field and its application to
solidification characteristics in high-of-low-power-density-beam welding. Heat Mass Transf.
40(10), 2283–2292 (1997)
13. L. Liu, M. Chi, R. Huang et al., Infrared measurement and numerical simulation of welding
temperature field of magnesium alloy AZ31. Sci. China (Ser. E) 36(1), 29–38 (2006)
14. R. Huang, L. Liu, M. Chi, Infrared measurement and numerical simulation of TIG welding
temperature field of magnesium alloy laser. Trans. China Weld. Inst. 27(10), 89–93 (2006)
15. Y. Lei, B. Zhu, J. Wang et al., Three-dimensional dynamic simulation and infrared temperature
measurement of temperature field of tungsten argon arc welding. J. Jiangsu Norm. Univ. (Nat.
Sci. Ed.) 29(4), 308–311 (2008)
16. A. Duan, L. Chen, Characteristics of keyhole and molten pool during laser welding of TC4
Ti-alloy. Laser Eng. 22(5–6), 361–369 (2011)
17. S.V. Patankar, Numerical Heat Transfer and Fluid Flow (trans. Z. Zheng) (Science Press,
Beijing, 1989), pp. 12–16
© China Aviation Publishing & Media Co., Ltd. 2021
S. Gong et al., Weld Pool Dynamics in Deep Penetration Laser Welding,
https://doi.org/10.1007/978-981-16-0788-2
275
