Experimental and optimization of die casting parameters on Al-Si alloy with snail shell reinforcing agent

被引:1
|
作者
Puspitasari, Poppy [1 ,2 ]
Suprayitno [3 ]
Nurmalasari, Riana [3 ]
Pramono, Diki Dwi [1 ]
Muhlasin, Ainul Kahfi [1 ]
机构
[1] Univ Negeri Malang, Fac Engn, Dept Mech & Ind Engn, Jl Semarang 5, Malang 65145, East Java, Indonesia
[2] Univ Negeri Malang, Ctr Adv Mat Renewable Energy, Jl Semarang 5, Malang 65145, East Java, Indonesia
[3] Univ Negeri Malang, Fac Appl Sci & Technol, Jl Semarang 5, Malang 65145, East Java, Indonesia
关键词
die casting; taguchi; ANOVA; Al-Si alloy; snail shell; MECHANICAL-PROPERTIES; TENSILE PROPERTIES; CALCIUM-OXIDE; COOLING RATE; PRESSURE; ALUMINUM; MICROSTRUCTURE; TEMPERATURE; CU; EGGSHELLS;
D O I
10.1088/2053-1591/ad176f
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The demand for aluminum in various fields continuously grows, including in the automotive industry. In this industry, aluminum is used as the material for the spare part. Therefore, aluminum with high mechanical properties and low casting defects is required. One of the available alternatives for producing excellent aluminum is through aluminum casting, including die casting. Die casting offers low cost in mass manufacturing of complex shaped components with acceptable casting results. Further, the selection of die-casting parameters and the addition of reinforcing elements can also improve the mechanical properties of aluminum. In this study, we strengthened the Al-Si matrix using High Pressure Die Casting process with particles from snail shell powder (calcium carbonate). Further, this study also explores the mechanical properties and microstructure of the product produced through experiment and optimization. The optimization was adopted to identify the optimum parameter. For the optimization, we used the Taguchi method. Our analysis results suggested that the reinforcing agent from the snail shell powder has the CaO and Ca(OH)2 phases, with a crystallite size of 106.59 nm. The morphology of the shell powder reinforcing agent showed the presence of agglomeration and interconnected structures, such as skeletons, with average particle size of 0.4 micro. The functional group of the shell powder reinforcing agent showed the OH band during the water absorption by CaO, along with asymmetric C-O with vibration from the carbonate group and Ca-O bound. The most excellent hardness level was identified from T8, with 86.33 HRB and die casting parameters of 0.15% reinforce agents, 750 degrees C temperature injection, and 50 MPa pressure. Meanwhile, the best tensile strength was found from the T9 sample, with 109,95 MPa and die casting parameters of 0.15% reinforce agents, 800 degrees C temperature injection, and 60 MPa pressure. Microstructure on the used piston die casting sample with snail shell powder reinforcing agent showed the presence of Al, Si, dendrite, and Al4Ca phases. The multiple response analysis on the three factors indicated that the reinforcing agent presented the most significant effects toward the tensile strength and hardness, followed by pressure and temperature injection. Meanwhile, the Taguchi method and ANOVA results showed the optimal parameter die casting was obtained from a combination of 0.15 wt% reinforce agent, 800 degrees C injection temperature, and 50 MPa pressure. A multiple linear regression mathematical model for tensile strength and hardness was developed from the observed data. In regression model, the value of R2 of tensile strength 74.02% and R2 of the hardness is 95,18% Thus, the developed model can be effectively used to predict the tensile strength and hardness
引用
收藏
页数:17
相关论文
共 50 条
  • [21] Hardness control of Al-Si HPDC casting alloy via microstructure refinement and tempering parameters
    Kasprzak, Wojciech
    Kurita, Hirotaka
    Birsan, Gabriel
    Amirkhiz, Babak Shalchi
    MATERIALS & DESIGN, 2016, 103 : 365 - 376
  • [22] Formation Behavior of Intermetallic Layer on Die Material in Casting Al-Si Alloy with the Variation of Fe Content
    Kim, Bonghwan
    Lee, Sanghwan
    Lee, Sangmok
    MANUFACTURING SCIENCE AND TECHNOLOGY, PTS 1-8, 2012, 383-390 : 1735 - 1739
  • [23] The influence of surface modification techniques on fretting wear of Al-Si alloy prepared by gravity die casting
    Cho, In-Sik
    Amanov, Auezhan
    Kwak, Dong-Ho
    Jeong, Byeong-Jun
    Park, In-Gyu
    MATERIALS & DESIGN, 2015, 65 : 401 - 409
  • [24] Massive Si phase and its growth mechanism in Al-Si casting alloy
    Liao, HC
    Sun, GX
    JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY, 2004, 20 (05) : 589 - 591
  • [25] Massive Si Phase and Its Growth Mechanism in Al-Si Casting Alloy
    Hengcheng LIAO and Guoxiong SUNDepaxtment of Materials Science and Engineering
    Journal of Materials Science & Technology, 2004, (05) : 589 - 591
  • [26] Experimental Investigation and Simulation of Al-Si Casting Microstructure Formation
    Jabur, Adnan S.
    Jalil, Jalal M.
    Takhakh, Ayad M.
    ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2012, 37 (03) : 777 - 792
  • [27] Development of high plasticity Al-Si alloy and its casting process
    Guo, GW
    Li, YY
    Chen, WP
    Zhang, DT
    Long, Y
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2002, 12 (06) : 1103 - 1106
  • [28] Development of high plasticity Al-Si alloy and its casting process
    郭国文
    李元元
    陈维平
    张大童
    龙雁
    Transactions of Nonferrous Metals Society of China, 2002, (06) : 1103 - 1106
  • [29] Die Casting Die Design and Process Optimization of Aluminum Alloy Gearbox Shell
    Huang, Mingyu
    Zhou, Qian
    Wang, Junyou
    Li, Shihua
    MATERIALS, 2021, 14 (14)
  • [30] Modification Performance of WC Nanoparticles in Aluminum and an Al-Si Casting Alloy
    Borodianskiy, Konstantin
    Zinigrad, Michael
    METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2016, 47 (02): : 1302 - 1308