Analysis of the Microstructure and Selected Properties of the Aluminium Alloys Used in Automotive Air-Conditioning Systems

被引:11
|
作者
Leszczynska-Madej, Beata [1 ]
Richert, Maria [2 ]
Wasik, Anna [1 ]
Szafron, Adam [3 ]
机构
[1] AGH Univ Sci & Technol, Fac Nonferrous Met, Krakow Mickiewicza 30 Av, PL-30059 Krakow, Poland
[2] AGH Univ Sci & Technol, Fac Management, Krakow Gramatyka 10, PL-30067 Krakow, Poland
[3] Maflow, Boryszew Grp, Tychy Serdeczna 42, PL-43100 Tychy, Poland
来源
METALS | 2018年 / 8卷 / 01期
关键词
automotive air-conditioning system; aluminium alloys; heat treatment; microstructure investigations; SWAAT test; mechanical properties; MG-SI ALLOYS; PRECIPITATION SEQUENCE; CORROSION BEHAVIOR; NACL SOLUTION; BETA''-PHASE; AL;
D O I
10.3390/met8010010
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The results of microstructure examinations and studies of selected mechanical properties of four aluminium alloys used in the production of automotive air-conditioning ducts (AA3103, AA5049, AA6060, AA6063) before and after the ASTM G85: A3 SWAAT Test (SeaWater Acetic Acid Test) for corrosion resistance are presented. Materials used for the manufacture of such components should be temperature stable, and therefore thermal resistance tests were carried out in a wide range of temperatures, i.e., 25 degrees C, 25 degrees C, 40 degrees C, 60 degrees C, 80 degrees C, 100 degrees C, 140 degrees C, 180 degrees C, and 220 degrees C. Annealing was performed for 72 h and 240 h, followed by cooling in water. The obtained results have proved that the non-precipitation-hardenable AA3103 and AA5049 alloys remain stable in the entire range of the investigated temperatures. The measured microhardness of these alloys was 43-46 HV0.1 for AA3103 and 56-64 HV0.1 for AA5049. The microhardness of the 6xxx series aluminium alloys was not stable in the investigated range of temperatures. The maximum was observed in the temperature range of 100-140 degrees C, which corresponded to the precipitation process of intermetallic phases, as further confirmed by microstructure observations. After the corrosion test, the mechanical properties and elongation decreased by about 5-20%.
引用
收藏
页数:15
相关论文
共 50 条
  • [2] HOW TO BALANCE AUTOMOTIVE AIR-CONDITIONING SYSTEMS FOR BEST PERFORMANCE
    NEWTON, AB
    ASHRAE JOURNAL-AMERICAN SOCIETY OF HEATING REFRIGERATING AND AIR-CONDITIONING ENGINEERS, 1973, 15 (11): : 33 - 39
  • [3] AIR-CONDITIONING SYSTEMS
    LORENZ, R
    ACTA NEUROCHIRURGICA, 1980, 55 (1-2) : 49 - 61
  • [4] AIR-CONDITIONING SYSTEMS
    BOSONI, G
    CASABELLA, 1987, 51 (531-32): : R2 - R8
  • [5] Artificial neural networks for automotive air-conditioning systems performance prediction
    Kamar, Haslinda Mohamed
    Ahmad, Robiah
    Kamsah, N. B.
    Mustafa, Ahmad Faiz Mohamad
    APPLIED THERMAL ENGINEERING, 2013, 50 (01) : 63 - 70
  • [6] AN EXPERT-SYSTEM APPROACH TO DESIGN OF AUTOMOTIVE AIR-CONDITIONING SYSTEMS
    BAJPAI, A
    AI EDAM-ARTIFICIAL INTELLIGENCE FOR ENGINEERING DESIGN ANALYSIS AND MANUFACTURING, 1994, 8 (01): : 1 - 11
  • [7] HOW TO BALANCE AUTOMOTIVE AIR-CONDITIONING SYSTEMS FOR BEST PERFORMANCE.
    Newton, Alwin B.
    ASHRAE Journal, 1973, 15 (11) : 33 - 39
  • [8] Utilization of Ice Storage in Secondary Loop Automotive Air-Conditioning Systems
    Eisele, Magnus
    Hwang, Yunho
    Radermacher, Reinhard
    SAE INTERNATIONAL JOURNAL OF PASSENGER CARS-MECHANICAL SYSTEMS, 2013, 6 (02): : 512 - 519
  • [9] IMPACT OF THE MONTREAL PROTOCOL ON AUTOMOTIVE AIR-CONDITIONING
    KERN, J
    WALLNER, R
    INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 1988, 11 (04): : 203 - 210
  • [10] Thermal and hydraulic analysis of compact evaporator for automotive air-conditioning system
    Lee, KH
    Won, JP
    VTMS 4: VEHICLE THERMAL MANAGEMENT SYSTEMS, 1999, : 91 - 104