Investigation of Thermal Expansion Coefficient of Metals from Light Diffraction Pattern

被引:0
|
作者
Meekaewnoi, Nuttapon [1 ]
Thamaphat, Kheamrutai [1 ]
Limsuwan, Supanee [2 ]
机构
[1] King Mongkuts Univ Technol Thonburi, Fac Sci, Dept Phys, Phys Learning Innovat Grp, Bangkok 10140, Thailand
[2] King Mongkuts Univ Technol Thonburi, Fac Sci, Dept Phys, Bangkok 10140, Thailand
关键词
Thermal expansion coefficient; Diffraction pattern of light; Single slit; Aluminium; Copper; Stainless steel;
D O I
10.4028/www.scientific.net/AMR.770.362
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this work, an expeumental set for determining the linear thermal expansion coefficient (a) of a metal was designed and constructed. It was divided into three parts: metal rod holder, light source, and heating system. A cylindrical plastic pipe with an inner diameter of 16 cm was used as a metal rod holder. The sample metal rod with unknown linear thermal expansion coefficient was inserted vertically into a holder and covered by the ftrst razor blade at one end, while the other end was fixed. The second razor blade was attached with posts. Two razor blades were aligned and separated with a distance of 0.05 cm; therefore, two razor blades were acted as a thin single slit. The steam generated from heating system was transferred into metal rod holder; subsequently, the length of metal rod increased with increasing temperature. The design of the apparatus for this proposed method based on decreasing the width of single slit with the same amount of increasing the metal rod length due to linear thermal expansion. A He-Ne laser with a wavelength of 632.8 nm used as a light source was passed through a single slit and produced a diffraction pattern on a screen. The decrease in slit width was determined by measuring the fringe width. The value of linear thermal expansion coefficient of a metal can be calculated from alteration of fringe width. In our case, stainless steel (314), copper (UNS C11000), and aluminium (6063) rods with the original length of 45.3 cm were used as samples. The experimental values of alpha for stainless steel, copper, and aluminium are 15.25 x 10(-6), 17.74 x 10(-6), and 23.13 x 10(-6) (degrees C)(-1), respectively. These values are in good agreement with the standard values as reported by the National Metal and Materials Technology Center (MTEC), Thailand. The error of this proposed method is found to be less than 1.2%.
引用
收藏
页码:362 / +
页数:2
相关论文
共 50 条
  • [31] DETERMINATION OF THERMAL-EXPANSION COEFFICIENT OF SILICON BY X-RAY DOUBLE DIFFRACTION
    BLET, G
    COMPTES RENDUS HEBDOMADAIRES DES SEANCES DE L ACADEMIE DES SCIENCES SERIE B, 1975, 281 (10): : 137 - 139
  • [32] Graphite thermal expansion coefficient measured by in-situ x-ray diffraction
    Abdullah, Monis Abdulmanan
    Albarody, Thar Mohammed Badri
    Hussein, Alaa Raad
    NANOTECHNOLOGY, 2020, 31 (28)
  • [33] Composition and expansion coefficient of rust based on X-ray diffraction and thermal analysis
    Zhao, Yuxi
    Ren, Haiyang
    Dai, Hong
    Jin, Weiliang
    CORROSION SCIENCE, 2011, 53 (05) : 1646 - 1658
  • [34] Negative Thermal Expansion Coefficient
    Poplavko, Y. M.
    Didenko, Y., V
    Yakimenko, Y., I
    2019 IEEE 2ND UKRAINE CONFERENCE ON ELECTRICAL AND COMPUTER ENGINEERING (UKRCON-2019), 2019, : 652 - 657
  • [35] On the identification of a thermal expansion coefficient
    Infante, J. A.
    Molina-Rodriguez, M.
    Ramos, A. M.
    INVERSE PROBLEMS IN SCIENCE AND ENGINEERING, 2015, 23 (08) : 1405 - 1424
  • [36] Coefficient of Thermal Expansion of Concrete
    Tanesi, Jussara
    Crawford, Gary
    Gudimettla, Jagan
    Ardani, Ahmad
    Concrete International, 2012, 34 (04) : 55 - 60
  • [37] COEFFICIENT OF THERMAL EXPANSION FOR LIQUIDS
    KUONG, JF
    BRITISH CHEMICAL ENGINEERING, 1969, 14 (12): : 659 - &
  • [38] ELECTRON THEORY ON THERMAL EXPANSION OF SOLIDS AND ITS APPLICATION TO LIGHT METALS
    万纾民
    Science China Mathematics, 1989, (02) : 188 - 195
  • [39] Contactless Characterization of Metals' Thermal Expansion Coefficient by a Free-Space RF Measurement
    Requena, Florian
    Barbot, Nicolas
    Kaddour, Darine
    Perret, Etienne
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2021, 69 (02) : 1230 - 1234
  • [40] First principles calculation of thermal expansion coefficient - Part 1. Cubic metals
    Jin, HM
    Wu, P
    JOURNAL OF ALLOYS AND COMPOUNDS, 2002, 343 (1-2) : 71 - 76