PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Microstructure and properties of sintered metal matrix composites reinforced with SiC particles

Identyfikatory
Warianty tytułu
PL
Mikrostruktura i właściwości spiekanych kompozytów o osnowie metalowej umacnianych cząstkami SiC
Języki publikacji
EN
Abstrakty
EN
Based on the prealloyed and diffusion bonded powders (Distaloy SA and Distaloy SE) different metal matrix composites reinforced with SiC particles were produced by the conventional powder metallurgy technology and the effect of varied amounts of SiC particles on microstructure evaluation and selected properties were investigated. It was stated that the mass fraction of SiC has a great effect on the density, porosity, shrinkage, hardness and wear resistance of studied composites. In the case of both Distaloy SA and Distaloy SE matrix materials, the optimum SiC content is 4 wt. % due to the highest wear resistance and hardness of sintered composite.
PL
Konwencjonalną technologią metalurgii proszków otrzymano z proszków stopowanych i wyżarzanych dyfuzyjnie kompozyty o osnowie metalowej umacniane cząstkami SiC. Dokonano oceny wpływu udziału cząstek SiC na ich mikrostrukturę i wybrane właściwości. Udział masowy cząstek SiC wywiera znaczny wpływ na gęstość, skurcz, twardość, odporność na zużycie ścierne badanych kompozytów. W spiekanych kompozytach o osnowie Distaloy SA, jak i Distaloy SE optymalna zawartość SiC wynosi 4 % wag. ze względu na najwyższą odporność na zużycie ścieranie i twardość.
Rocznik
Strony
179--190
Opis fizyczny
Bibliogr. 28 poz., tab., wykr., il.
Twórcy
  • Institute of Material Engineering, Cracow University of Technology
Bibliografia
  • [1] Badoi I., Dumitru N., Bojin D., Microstructure and Mechanical Behaviour of SiC Particles Reinforced in Aluminium and Iron Matrix Composites, Brasov CEEX Conference, 2008, July 27–29.
  • [2] Öksüz K., Kumruoğlu L., Tur O., Effect of Sicp on the Microstructure and Mechanical Properties of Sintered Distaloy DC Composites, “Procedia Materials Science”, 11/2015, 49–54.
  • [3] Rawal S., Metal-matrix composites for space applications, “JOM”, 53/2001, 14–17.
  • [4] Abhik R., Xaviora M., Evaluation of Properties for Al-SiC Reinforced Metal Matrix Composite for Brake Pads, “Procedia Engineering”, 97/2014, 941–950.
  • [5] Venkatesh B., Harish B., Mechanical properties of metal matrix composites (Al/SiCp) particles produced by powder metallurgy, “International Journal of Engineering Research and General Science”, 3(1)/2015, 1277–1284.
  • [6] Zakaria H.M., Microstructural and corrosion behavior of Al/SiC metal matrix composites, “Ain Shams Engineering Journal”, 5(3)/2014, 831–838.
  • [7] Akhtar F., Ceramic reinforced high modulus steel composites: processing, microstructure and properties, “Canadian Metallurgical Quarterly”, 53(3)/2014, 253–263.
  • [8] Singla M., Dwivedi D., Singh L., Chawla V., Development of Aluminium Based Silicon Carbide Particulate Metal Matrix Composite, “Journal of Minerals & Materials Characterization & Engineering”, 8(6)/2009, 455–467.
  • [9] Kumar G., Rao C., Selvaraj N., Mechanical and Tribological Behavior of Particulate Reinforced Aluminum Metal Matrix Composites – a review, “Journal of Minerals & Materials Characterization & Engineering”, 10(1)/2011, 59–91.
  • [10] Leszczyńska-Madej B., The effect of sintering temperature on microstructure and properties of Al – SiC composites, “Archives of Metallurgy and Materials”, 58(1)/2013, 43–48.
  • [11] Nuruzzaman D., Kamaruzaman F., Processing and mechanical properties of aluminiumsilicon carbide metal matrix composites, “Materials Science and Engineering”, 114/2016, 11–17.
  • [12] Suryanarayanan K., Praveen R., Raghuraman S., Silicon Carbide Reinforced Aluminium Metal Matrix Composites for Aerospace Applications: A Literature Review, “International Journal of Innovative Research in Science, Engineering and Technology”, 2(11)/2013, 6336–6344.
  • [13] Baisane V. P., Sable Y.S., Dhobe M. M., Sonawane P.M., Recent development and challenges in processing of ceramics reinforced Al matrix composite through stir casting process: A Review, “International Journal of Engineering and Applied Sciences”, 2(10)/2015, 11–16.
  • [14] Badoi I., Tudor A., Development and wear characterization of metal matrix composites in systems prealloyed steel powders reinforcement with SiC and Al2O3 particles, Brasov CEEX Conference, 2008, July 27–29.
  • [15] Carvalho O., Madeira S., Buciumeanu M., Soares D., Silva F.S., Miranda G., Pressure and sintering temperature influence on the interface reaction of SiCp/410L stainless steel composites, “Journal of Composite Materials”, 50(15)/2016, 2005–2015.
  • [16] Saravanan C., Subramanian K., Ananda V., Sankara R., Effect of Particulate Reinforced Aluminium Metal Matrix Composite – A Review, “Mechanics and Mechanical Engineering”, 19(1)/2015, 23–30.
  • [17] Yodkaew T., Morakotjinda M., Tosangthum N., Coovattanachai O., Krataitong R., Siriphol P., Vetayanugul B., Chakthin S., Poolthong N., Tongsri R., Sintered Fe-Al2O3 and Fe-SiC, “Composites Journal of Metals, Materials and Minerals”, 18(1)/2008, 57–61.
  • [18] Chakthin S., Poolthong N., Thavarungkul N., Tongsri R., Iron-Carbide Composites Prepared by P/M, “Processing Materials for Properties”, 2009, 577–584.
  • [19] Chakthin S., Morakotjinda M., Yodkaew T., Torsangtum N., Krataithong R., Siriphol P., Coovattanachai O., Vetayanugul B., Thavarungkul N., Poolthong N., Tongsri R., Influence of Carbides on Properties of Sintered Fe-Base Composites, “Journal of Metals, Materials and Minerals”, 18(2)/2008, 67–70.
  • [20] Mima S., Yotkaew T., Morakotjinda M., Tosangthum N., Daraphan A., Krataitong R., Coovattanachai O., Vetayanugul B., Tongsri, Carbide-Reinforced 316L Composite, The Fourth Thailand Materials Science and Technology Conference, Pathum Thani, Thailand, 31 March –1 April 2006.
  • [21] Coovattanachai O., Mima S., Yodkaew T., Krataitong R., Morkotjinda M., Daraphan A., Tosangthum N., Vetayanugul B., Panumas A., Poolthong N., Tongsri R., Effect of admixed ceramic particles on properties of sintered 316L stainless steel, “Advances in Powder Metallurgy and Particulate Materials”, 7/2006, 161–171.
  • [22] Carvalho O., Soares D., Silva F.S., Optimization of sintering temperature and compaction pressure of stainless steel/SiC composites, 8º Congresso Nacional de Mecânica Experimental Guimarães, April 21–23, 2010.
  • [23] Ertugrul O., Park H.S., Onel K., Willert-Porada M., Structure and properties of SiC and emery powder reinforced PM 316L matrix composites produced by microwave and conventional sintering, “Powder Metallurgy”, 58(1)/2015, 41–50.
  • [24] Lindskog P., The history of Distaloy, “Powder Metallurgy”, 56(5)/2013, 351–361.
  • [25] Karwan-Baczewska J., Processing and properties of Distaloy SA sintered alloys with boron and carbon, “Archives of metallurgy and materials”, 60(1)/2015, 41–45.
  • [26] Zarebski K., Putyra P., Iron powder-based graded products sintered by conventional method and by SPS, “Advanced Powder Technology”, 26/2015, 401–408.
  • [27] Öksüz K.E., Gün T., Şimşir M., The microstructure and wear behaviour of sintered Astaloy 85Mo, “Transactions on Engineering Sciences”, 137/2014, 545–552.
  • [28] Metallography, Höganäs Handbook for Sintered Components, eds. Höganäs AB, 2015.
Uwagi
EN
Section "Mechanics"
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9c44f415-a6a7-4e7f-97ce-e707ea2213b8
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.