Experimental analysis and optimization of process parameters using response surface methodology of surface nanocomposites fabricated by friction stir processing

被引:5
作者
Butola, Ravi [1 ]
Pandey, Kapil Dev [2 ]
Murtaza, Qasim [2 ]
Walia, Ravinderjit Singh [3 ]
Tyagi, Mohit [4 ]
Srinivas, Krovvidi [2 ]
Chaudhary, Arun Kumar [5 ]
机构
[1] Univ Sch Automat & Robot USAR, GGSIPU, East Delhi Campus, New Delhi, Delhi, India
[2] Delhi Technol Univ, Dept Mech Engn, New Delhi, Delhi, India
[3] PEC Univ Technol, Dept Prod & Ind Engn, Chandigarh, Punjab, India
[4] Natl Inst Technol, Dept Mech Engn, Kurukshetra, Haryana, India
[5] GBPUA&T, Dept Ind & Prod Engn, Pantnagar, Uttaranchal, India
关键词
Friction stir processing; response surface methodology; microhardness; nanocomposites; ALLOY; COMPOSITES; TAGUCHI;
D O I
10.1177/23977914231151485
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In the present research work, microhardness and ultimate tensile strength of the aluminum based metal surface nanocomposites is studied using response surface methodology. Aluminum alloy 5083 is used as a matrix material, boron carbide nanoparticles as a reinforcement and surface nanocomposites are fabricated using Friction stir processing (FSP). Central composite design (CCD) matrix is used to prepare a design of experiment with three process parameters/factors that is, Tool rotational speed, Tool traverse speed, and Number of passes, having three level each. The nanocomposite fabricated according to design of experiment are analyzed using Response surface methodology (RSM). The developed mathematical model well fitted experimental values and equations are stated by the model to predict the microhardness and ultimate tensile strength of the surface nanocomposites. The predicted value by the model and actual tested values are in close agreement. The developed model predicted that the optimum nanocomposites is to be fabricated at 1300 rpm tool rotational speed with a tool traverse speed of 30 mm/min and no of passes should be three times, in order to achieve enhance ultimate tensile strength and microhardness.
引用
收藏
页码:119 / 129
页数:12
相关论文
共 38 条
[1]   Optimization of processing parameters for the Al+10% B4C system obtained by mechanical alloying [J].
Abenojar, J. ;
Velasco, F. ;
Martinez, M. A. .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2007, 184 (1-3) :441-446
[2]   Wear and mechanical properties of surface hybrid metal matrix composites on Al-Si aluminum alloys fabricated by friction stir processing [J].
Akbari, Mostafa ;
Shojaeefard, Mohammad Hasan ;
Asadi, Parviz ;
Khalkhali, Abolfazl .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART L-JOURNAL OF MATERIALS-DESIGN AND APPLICATIONS, 2019, 233 (05) :790-799
[3]   Manufacturing seamless square tubes of B4C-reinforced aluminum composites by extrusion [J].
Alihosseini, Hamid ;
Dehghani, Kamran ;
Kamali, Jamshid .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2017, 90 (5-8) :1921-1930
[4]   Microstructural and Wear Characteristics of Friction Stir Processed Al-7075/SiC Reinforced Aluminium Composite [J].
Ande, Rohan ;
Gulati, Piyush ;
Shukla, Dinesh Kumar ;
Dhingra, Hitesh .
MATERIALS TODAY-PROCEEDINGS, 2019, 18 :4092-4101
[5]  
Bhattacharya S, 2021, Response surface methodology in engineering science, DOI DOI 10.5772/INTECHOPEN.95835
[6]   Two decades of friction stir processing-a review of advancements in composite fabrication [J].
Butola, Ravi ;
Pandit, Deepak ;
Pratap, Chandra ;
Chandra, Prakash .
JOURNAL OF ADHESION SCIENCE AND TECHNOLOGY, 2022, 36 (08) :795-832
[7]   Comparison of response surface methodology with artificial neural network for prediction of the tensile properties of friction stir-processed surface composites [J].
Butola, Ravi ;
Singari, Ranganath M. ;
Murtaza, Qasim ;
Tyagi, Lakshay .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART E-JOURNAL OF PROCESS MECHANICAL ENGINEERING, 2022, 236 (01) :126-137
[8]   Fabrication and multi-objective optimization of friction stir processed aluminium based surface composites using Taguchi approach [J].
Butola, Ravi ;
Chandra, Prakash ;
Bector, Kartikeya ;
Singari, Ranganath M. .
SURFACE TOPOGRAPHY-METROLOGY AND PROPERTIES, 2021, 9 (02)
[9]   Mechanical and wear behaviour of Friction stir processed surface composite through Self-Assembled Monolayer Technique [J].
Butola, Ravi ;
Singari, Ranganath M. ;
Murtaza, Qasim .
SURFACE TOPOGRAPHY-METROLOGY AND PROPERTIES, 2020, 8 (04)
[10]   Formation of Self-Assembled Monolayer and Characterization of AA7075-T6/B4C Nano-ceramic surface composite using Friction Stir Processing [J].
Butola, Ravi ;
Murtaza, Qasim ;
Singari, Ranganath M. .
SURFACE TOPOGRAPHY-METROLOGY AND PROPERTIES, 2020, 8 (02)