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액체로켓 연소기용 구리합금의 열/기계적 특성에 관한 실험적 연구

Experimental Study on the Physical and Mechanical Properties of a Copper Alloy for Liquid Rocket Combustion Chamber Application

  • 류철성 (한국항공우주연구원 연소기그룹) ;
  • 백운봉 (한국표준과학연구원) ;
  • 최환석 (한국항공우주연구원 연소기그룹)
  • 발행 : 2006.11.01

초록

Mechanical and physical properties of a copper alloy for a liquid rocket engine(LRE) combustion chamber liner application were tested at various temperatures. All test specimens were heat treated with the condition they might experience during actual fabrication process of the LRE combustion chamber. Physical properties measured include thermal conductivity, specific heat and thermal expansion data. Uniaxial tension tests were preformed to get mechanical properties at several temperatures ranging from room temperature to 600$^{\circ}C$. The result demonstrated that yield stress and ultimate tensile stress of the copper alloy decreases considerably and strain hardening increases as the result of the heat treatment. Since the LRE combustion chamber operates at higher temperature over 400$^{\circ}C$, the copper alloy can exhibit time-dependent behavior. Strain rate, creep and stress relaxation tests were performed to check the time-dependent behavior of the copper alloy. Strain rate tests revealed that strain rate effect is negligible up to 400$^{\circ}C$ while stress-strain curve is changed at 500$^{\circ}C$ as the strain rate is changed. Creep tests were conducted at 250$^{\circ}C$ and 500$^{\circ}C$ and the secondary creep rate was found to be very small at both temperatures implying that creep effect is negligible for the combustion chamber liner because its operating time is quite short.

키워드

참고문헌

  1. Arya V. K. and Arnold S. M., 1992, 'Viscoplastic Analysis of an Experimental Cylindrical Thrust Chamber Liner,' AIAA Journal, Vol. 30, No. 3, pp. 781-789 https://doi.org/10.2514/3.10985
  2. Arya V. K., 1992, 'Nonlinear Structural Analysis of Cylindrical Thrust Chambers Using Viscoplastic Models,' Journal of Propulsion and Power, Vol. 8, No. 3, pp. 598-604 https://doi.org/10.2514/3.23520
  3. Bodner S. R. and Partom Y., June 1975, 'Constitutive Equations for Elastic- Viscoplastic Strain-Hardening Materials, Journal of Applied Mechanics, Vol. 42, pp. 385-389 https://doi.org/10.1115/1.3423586
  4. Rajendran A. M., Bless S. J. and Dawicke D. S., January 1986, 'Evaluation of Bodner-Partom ?Model Parameters at High Strain Rate,' Journal of Engineering Materials and Technology, Vol. 108, pp. 75-80
  5. Cook W. H., Rajendran A. M. and Grove D. J., 1992, 'An Efficient Numerrical Implementation of the Bodner-Partom Model in the EPIC-2 Code,' Engineering Fracture Mechanics, Vol. 41, No. 5, pp. 607-623 https://doi.org/10.1016/0013-7944(92)90148-8
  6. Merzer A. M., 1982, 'Steady and Trainsient Creep Behavior Based on Unified Constitutive Equations,' ASME Journal of Engineering Materials and Technology, Vol. 104, pp. 18-25 https://doi.org/10.1115/1.3225029
  7. Dieter G. E., 1986, 'Mechanical Metallurgy,' Chap. 5, McGraw-Hill Inc.
  8. Lemaitre J. and Chaboche J. L., 1990, 'Mechanics of Solid Materials,' Cambridge University Press
  9. Chan K. S. et aI., 1986, 'Constitutive Modeling for Isotropic Materials(HOST),' Third Annual Status Report, NASA CR-179522