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A Novel Approach to Improve Tensile Strength of Al/Mg Hybrid Friction Stir welding Joint by Stochastic Optimization

Yıl 2022, Cilt: 2 Sayı: 1, 31 - 42, 30.06.2022

Öz

Ultrasonic-stationary shoulder-assisted friction stir welding is a novel hybrid welding technique that reveals promising prospects in joining Al/Mg dissimilar alloys. This study aims to develop a design procedure for optimizing the mechanical property of the Al/Mg hybrid friction stir welding joint. For this purpose, firstly, different nonlinear neuro-regression analysis has been performed in order to overcome insufficient approaches for modeling, designing, and optimizing mechanical property in Friction stir welding joint. Then, stochastic optimization methods were performed to model the friction stir welding process. Ultrasonic Power, Welding Speed, and Rotational Velocity are the three most essential criteria that have been used as indicators of process performance. The response characteristic can be predicted as ultimate tensile strength. After calculating the R_training^2, R_testing^2, 〖and R〗_validation^2 values, the limits of the nonlinear models are examined to see whether the model is acceptable for optimization. The best approach model was the second-order trigonometric multiple nonlinear (SOTN) model. In the optimization step, four different Modified Stochastic Optimization Algorithms, including Random Search (MRS), Simulated Annealing (MSA), Nelder Mead (MNM), and differential equations (MDE) methods, were used. It has been observed that the different scenario types and the constraints chosen for the design variables are effective in the optimization results obtained using three different scenarios. Results showed that the maximum tensile strength was 182.301 MPa when ultrasonic power was selected as 186.938 W, 40.6854 mm/min for welding speed, and 1075.34 rpm for rotation speed.

Kaynakça

  • [1] Ma, Zhongwei, et al. "A general strategy for the reliable joining of Al/Ti dissimilar alloys via ultrasonic assisted friction stir welding." Journal of Materials Science & Technology 35.1 (2019): 94-99.
  • [2] He, Bin, et al. "Microstructure and mechanical properties of RAFM-316L dissimilar joints by friction stir welding with different butt joining modes." Acta Metallurgica Sinica (English Letters) 33.1 (2020): 135-146.
  • [3] Chen, Yanbin, Shuhai Chen, and Liqun Li. "Effects of heat input on microstructure and mechanical property of Al/Ti joints by rectangular spot laser welding-brazing method." The International Journal of Advanced Manufacturing Technology 44.3 (2009): 265-272.
  • [4] Zhong, Y. B., CS and Wu, and G. K. Padhy. "Effect of ultrasonic vibration on welding load, temperature and material flow in friction stir welding." Journal of Materials Processing Technology 239 (2017): 273-283.
  • [5] Padhy, G. K., C. S. Wu, and S. Gao. "Precursor ultrasonic effect on grain structure development of AA6061-T6 friction stir weld." Materials & Design 116 (2017): 207-218.
  • [6] Liu, X. C., and C. S. Wu. "Elimination of tunnel defect in ultrasonic vibration enhanced friction stir welding." Materials & Design 90 (2016): 350-358.
  • [7] Xu, Zhiwu, et al. "Control Al/Mg intermetallic compound formation during ultrasonic-assisted soldering Mg to Al." Ultrasonics Sonochemistry 46 (2018): 79-88.
  • [8] Xu, W. F., et al. "Abnormal fracture of 7085 high strength aluminum alloy thick plate joint via friction stir welding." Journal of Materials Research and Technology 8.6 (2019): 6029-6040.
  • [9] Huang, Yongxian, et al. "Self-riveting friction stir lap welding of aluminum alloy to steel." Materials Letters 185 (2016): 181-184.
  • [10] Huang, Yongxian, et al. "Joining of carbon fiber reinforced thermoplastic and metal via friction stir welding with co-controlling shape and performance." Composites Part A: Applied Science and Manufacturing 112 (2018): 328-336.
  • [11] Huang, Yongxian, et al. "Friction stir welding/processing of polymers and polymer matrix composites." Composites Part A: Applied Science and Manufacturing 105 (2018): 235-257.
  • [12] Ji, S. D., et al. "Formation and mechanical properties of stationary shoulder friction stir welded 6005A-T6 aluminum alloy." Materials & Design (1980-2015) 62 (2014): 113-117.
  • [13] Lv, X. Q., C. S. Wu, and G. K. Padhy. "Diminishing intermetallic compound layer in ultrasonic vibration enhanced friction stir welding of aluminum alloy to magnesium alloy." Materials Letters 203 (2017): 81-84.
  • [14] Liu, Zhenlei, Shude Ji, and Xiangchen Meng. "Improving joint formation and tensile properties of dissimilar friction stir welding of aluminum and magnesium alloys by solving the pin adhesion problem." Journal of Materials Engineering and Performance 27.3 (2018): 1404-1413.
  • [15] Liu, Zhenlei, et al. "Improving tensile properties of Al/Mg joint by smashing intermetallic compounds via ultrasonic-assisted stationary shoulder friction stir welding." Journal of Manufacturing Processes 31 (2018): 552-559.
  • [16] Kim, Weon-Kyong, Si-Tae Won, and Byeong-Choon Goo. "A study on mechanical characteristics of the friction stir welded A6005-T5 extrusion." International Journal of Precision Engineering and Manufacturing 11.6 (2010): 931-936.
  • [17] Koilraj, M., et al. "Friction stir welding of dissimilar aluminum alloys AA2219 to AA5083–Optimization of process parameters using Taguchi technique." Materials & Design 42 (2012): 1-7.
  • [18] Benyounis, K. Y., and Abdul-Ghani Olabi. "Optimization of different welding processes using statistical and numerical approaches–A reference guide." Advances in engineering software 39.6 (2008): 483-496.
  • [19] Darzi Naghibi, Hamed, Mohsen Shakeri, and Morteza Hosseinzadeh. "Neural network and genetic algorithm based modeling and optimization of tensile properties in FSW of AA 5052 to AISI 304 dissimilar joints." Transactions of the Indian Institute of Metals 69.4 (2016): 891-900.
  • [20] Zhou, Nan, et al. "Genetic Algorithm Coupled with the Neural Network for Fatigue Properties of Welding Joints Predicting." J. Comput. 7.8 (2012): 1887-1894.
  • [21] Kennedy, James, and Russell Eberhart. "Particle swarm optimization." Proceedings of ICNN'95-international conference on neural networks. Vol. 4. IEEE, 1995..
  • [22] Karaboga, Dervis, and Bahriye Basturk. "A powerful and efficient algorithm for numerical function optimization: artificial bee colony (ABC) algorithm." Journal of global optimization 39.3 (2007): 459-471.
  • [23] Atashpaz-Gargari, Esmaeil, and Caro Lucas. "Imperialist competitive algorithm: an algorithm for optimization inspired by imperialistic competition." 2007 IEEE congress on evolutionary computation. Ieee, 2007.
  • [24] Shi, Yuhui. "An optimization algorithm based on brainstorming process." Emerging Research on Swarm Intelligence and Algorithm Optimization. IGI Global, 2015. 1-35.
  • [25] Verma, A., B. Kotteswaran, and T. Shanmugasundaram. "Effect of Welding Parameters and Artificial Aging on Mechanical Properties of Friction Stir Welded AA 7004 Alloys: Experimental and Artificial Neural Network Simulation." Metallography, Microstructure, and Analysis 10.4 (2021): 515-524.
  • [26] Medhi, Tanmoy, et al. "An intelligent multi-objective framework for optimizing friction-stir welding process parameters." Applied Soft Computing 104 (2021): 107190.
  • [27] Liu, Zhenlei, et al. "Improving tensile properties of Al/Mg joint by smashing intermetallic compounds via ultrasonic-assisted stationary shoulder friction stir welding." Journal of Manufacturing Processes 31 (2018): 552-559.
  • [28] Song, Qi, et al. "Improving joint quality of hybrid friction stir welded Al/Mg dissimilar alloys by RBFNN-GWO system." Journal of Manufacturing Processes 59 (2020): 750-759.
  • [29] Aydin, L., Artem, H.S., Oterkus, S. (Editors). Designing Engineering Structures Using Stochastic Optimization Methods. CRC Press Taylor & Francis Group. 2020
  • [30] Hu, Wei, et al. "Improving the mechanical property of dissimilar Al/Mg hybrid friction stir welding joint by PIO-ANN." Journal of Materials Science & Technology 53 (2020): 41-52. Wei Hu, Zhongwei Ma, Shude Ji, Qi Song, Mingfei Chen, Wenhui Jiang, Journal Of Mat. Sci. & Technol. 53 (2020) 41-52
Yıl 2022, Cilt: 2 Sayı: 1, 31 - 42, 30.06.2022

Öz

Kaynakça

  • [1] Ma, Zhongwei, et al. "A general strategy for the reliable joining of Al/Ti dissimilar alloys via ultrasonic assisted friction stir welding." Journal of Materials Science & Technology 35.1 (2019): 94-99.
  • [2] He, Bin, et al. "Microstructure and mechanical properties of RAFM-316L dissimilar joints by friction stir welding with different butt joining modes." Acta Metallurgica Sinica (English Letters) 33.1 (2020): 135-146.
  • [3] Chen, Yanbin, Shuhai Chen, and Liqun Li. "Effects of heat input on microstructure and mechanical property of Al/Ti joints by rectangular spot laser welding-brazing method." The International Journal of Advanced Manufacturing Technology 44.3 (2009): 265-272.
  • [4] Zhong, Y. B., CS and Wu, and G. K. Padhy. "Effect of ultrasonic vibration on welding load, temperature and material flow in friction stir welding." Journal of Materials Processing Technology 239 (2017): 273-283.
  • [5] Padhy, G. K., C. S. Wu, and S. Gao. "Precursor ultrasonic effect on grain structure development of AA6061-T6 friction stir weld." Materials & Design 116 (2017): 207-218.
  • [6] Liu, X. C., and C. S. Wu. "Elimination of tunnel defect in ultrasonic vibration enhanced friction stir welding." Materials & Design 90 (2016): 350-358.
  • [7] Xu, Zhiwu, et al. "Control Al/Mg intermetallic compound formation during ultrasonic-assisted soldering Mg to Al." Ultrasonics Sonochemistry 46 (2018): 79-88.
  • [8] Xu, W. F., et al. "Abnormal fracture of 7085 high strength aluminum alloy thick plate joint via friction stir welding." Journal of Materials Research and Technology 8.6 (2019): 6029-6040.
  • [9] Huang, Yongxian, et al. "Self-riveting friction stir lap welding of aluminum alloy to steel." Materials Letters 185 (2016): 181-184.
  • [10] Huang, Yongxian, et al. "Joining of carbon fiber reinforced thermoplastic and metal via friction stir welding with co-controlling shape and performance." Composites Part A: Applied Science and Manufacturing 112 (2018): 328-336.
  • [11] Huang, Yongxian, et al. "Friction stir welding/processing of polymers and polymer matrix composites." Composites Part A: Applied Science and Manufacturing 105 (2018): 235-257.
  • [12] Ji, S. D., et al. "Formation and mechanical properties of stationary shoulder friction stir welded 6005A-T6 aluminum alloy." Materials & Design (1980-2015) 62 (2014): 113-117.
  • [13] Lv, X. Q., C. S. Wu, and G. K. Padhy. "Diminishing intermetallic compound layer in ultrasonic vibration enhanced friction stir welding of aluminum alloy to magnesium alloy." Materials Letters 203 (2017): 81-84.
  • [14] Liu, Zhenlei, Shude Ji, and Xiangchen Meng. "Improving joint formation and tensile properties of dissimilar friction stir welding of aluminum and magnesium alloys by solving the pin adhesion problem." Journal of Materials Engineering and Performance 27.3 (2018): 1404-1413.
  • [15] Liu, Zhenlei, et al. "Improving tensile properties of Al/Mg joint by smashing intermetallic compounds via ultrasonic-assisted stationary shoulder friction stir welding." Journal of Manufacturing Processes 31 (2018): 552-559.
  • [16] Kim, Weon-Kyong, Si-Tae Won, and Byeong-Choon Goo. "A study on mechanical characteristics of the friction stir welded A6005-T5 extrusion." International Journal of Precision Engineering and Manufacturing 11.6 (2010): 931-936.
  • [17] Koilraj, M., et al. "Friction stir welding of dissimilar aluminum alloys AA2219 to AA5083–Optimization of process parameters using Taguchi technique." Materials & Design 42 (2012): 1-7.
  • [18] Benyounis, K. Y., and Abdul-Ghani Olabi. "Optimization of different welding processes using statistical and numerical approaches–A reference guide." Advances in engineering software 39.6 (2008): 483-496.
  • [19] Darzi Naghibi, Hamed, Mohsen Shakeri, and Morteza Hosseinzadeh. "Neural network and genetic algorithm based modeling and optimization of tensile properties in FSW of AA 5052 to AISI 304 dissimilar joints." Transactions of the Indian Institute of Metals 69.4 (2016): 891-900.
  • [20] Zhou, Nan, et al. "Genetic Algorithm Coupled with the Neural Network for Fatigue Properties of Welding Joints Predicting." J. Comput. 7.8 (2012): 1887-1894.
  • [21] Kennedy, James, and Russell Eberhart. "Particle swarm optimization." Proceedings of ICNN'95-international conference on neural networks. Vol. 4. IEEE, 1995..
  • [22] Karaboga, Dervis, and Bahriye Basturk. "A powerful and efficient algorithm for numerical function optimization: artificial bee colony (ABC) algorithm." Journal of global optimization 39.3 (2007): 459-471.
  • [23] Atashpaz-Gargari, Esmaeil, and Caro Lucas. "Imperialist competitive algorithm: an algorithm for optimization inspired by imperialistic competition." 2007 IEEE congress on evolutionary computation. Ieee, 2007.
  • [24] Shi, Yuhui. "An optimization algorithm based on brainstorming process." Emerging Research on Swarm Intelligence and Algorithm Optimization. IGI Global, 2015. 1-35.
  • [25] Verma, A., B. Kotteswaran, and T. Shanmugasundaram. "Effect of Welding Parameters and Artificial Aging on Mechanical Properties of Friction Stir Welded AA 7004 Alloys: Experimental and Artificial Neural Network Simulation." Metallography, Microstructure, and Analysis 10.4 (2021): 515-524.
  • [26] Medhi, Tanmoy, et al. "An intelligent multi-objective framework for optimizing friction-stir welding process parameters." Applied Soft Computing 104 (2021): 107190.
  • [27] Liu, Zhenlei, et al. "Improving tensile properties of Al/Mg joint by smashing intermetallic compounds via ultrasonic-assisted stationary shoulder friction stir welding." Journal of Manufacturing Processes 31 (2018): 552-559.
  • [28] Song, Qi, et al. "Improving joint quality of hybrid friction stir welded Al/Mg dissimilar alloys by RBFNN-GWO system." Journal of Manufacturing Processes 59 (2020): 750-759.
  • [29] Aydin, L., Artem, H.S., Oterkus, S. (Editors). Designing Engineering Structures Using Stochastic Optimization Methods. CRC Press Taylor & Francis Group. 2020
  • [30] Hu, Wei, et al. "Improving the mechanical property of dissimilar Al/Mg hybrid friction stir welding joint by PIO-ANN." Journal of Materials Science & Technology 53 (2020): 41-52. Wei Hu, Zhongwei Ma, Shude Ji, Qi Song, Mingfei Chen, Wenhui Jiang, Journal Of Mat. Sci. & Technol. 53 (2020) 41-52
Toplam 30 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Yapay Zeka
Bölüm Research Articles
Yazarlar

Onur Aydın Bu kişi benim 0000-0003-0427-0561

Elif Aras Gültürk

Yayımlanma Tarihi 30 Haziran 2022
Gönderilme Tarihi 18 Mayıs 2022
Yayımlandığı Sayı Yıl 2022 Cilt: 2 Sayı: 1

Kaynak Göster

IEEE O. Aydın ve E. Aras Gültürk, “A Novel Approach to Improve Tensile Strength of Al/Mg Hybrid Friction Stir welding Joint by Stochastic Optimization”, Journal of Artificial Intelligence and Data Science, c. 2, sy. 1, ss. 31–42, 2022.

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