Growing demand for titanium due to its excellent material properties has made them applicable in industrial as well as commercial applications, such as aerospace industries, nuclear waste storage, automobile industries and surgical implantation. However, titanium alloy is classified as difficult to machine materials because of its low modulus of elasticity, low thermal conductivity and high chemical reactivity resulting in high tool vibration and high cutting temperature has made the researchers to explore the machinability behavior of Ti-6Al-4V. In this paper an attempt has been made for cutting force optimization during machining of Ti-6Al-4V under Minimum Quantity Lubrication using L27 Orthogonal Array and Artificial Neural Network approach. From the investigation it is observed that the developed ANN model resulted in minimum error with comparison with L27 Orthogonal Array. Hence we can conclude that ANN model developed can effectively used to predict and estimate the cutting force.
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16 February 2024
INTERNATIONAL CONFERENCE ON RECENT TRENDS IN MECHANICAL ENGINEERING SCIENCES 2022: RTIMES2022
10–11 June 2022
Mangaluru, India
Research Article|
February 16 2024
Orthogonal array and artificial neural network approach for cutting force optimization during machining of Ti-6Al-4V under minimum quantity lubrication (MQL) Available to Purchase
Madhukar Nayak;
Madhukar Nayak
b)
1
Department of Mechanical Engineering, Shri Madhwa Vadiraja Institute of Technology and Management
, Bantakal, Udupi, Karnataka, India
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Sanjeev Kumar Chougula Ramappa;
Sanjeev Kumar Chougula Ramappa
c)
2
Department of Mechanical Engineering, Government Polytechnic
, Belagavi, Karnataka, India
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Raviraj Shetty;
Raviraj Shetty
a)
3
Mechanical and Industrial Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education
, Manipal, Udupi, Karnataka, 576104, India
a)Corresponding Author: [email protected]
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Adithya Lokesh Hegde;
Adithya Lokesh Hegde
d)
3
Mechanical and Industrial Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education
, Manipal, Udupi, Karnataka, 576104, India
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Devang Shetty
Devang Shetty
e)
4
Mechatronics Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education
, Manipal, Udupi, Karnataka, 576104, India
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Madhukar Nayak
1,b)
Sanjeev Kumar Chougula Ramappa
2,c)
Raviraj Shetty
3,a)
Adithya Lokesh Hegde
3,d)
Devang Shetty
4,e)
1
Department of Mechanical Engineering, Shri Madhwa Vadiraja Institute of Technology and Management
, Bantakal, Udupi, Karnataka, India
2
Department of Mechanical Engineering, Government Polytechnic
, Belagavi, Karnataka, India
3
Mechanical and Industrial Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education
, Manipal, Udupi, Karnataka, 576104, India
4
Mechatronics Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education
, Manipal, Udupi, Karnataka, 576104, India
a)Corresponding Author: [email protected]
AIP Conf. Proc. 3060, 050003 (2024)
Citation
Madhukar Nayak, Sanjeev Kumar Chougula Ramappa, Raviraj Shetty, Adithya Lokesh Hegde, Devang Shetty; Orthogonal array and artificial neural network approach for cutting force optimization during machining of Ti-6Al-4V under minimum quantity lubrication (MQL). AIP Conf. Proc. 16 February 2024; 3060 (1): 050003. https://doi.org/10.1063/5.0195537
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