In-situ heating and cooling of Charpy test specimens

被引:0
|
作者
Manahan, MP [1 ]
机构
[1] MPM Technol Inc, State Coll, PA 16803 USA
关键词
impact testing; Charpy test; instrumented striker; absorbed energy; miniaturized Charpy testing; specimen thermal conditioning;
D O I
10.1520/STP14401S
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper presents an innovative approach to CVN and MCVN testing: the specimens are heated and cooled on the test machine itself. This approach is not only cost-effective but is technically superior to methods requiring transfer of the test specimen to the test machine from a thermal conditioning bath because the specimen is very accurately centered and is thermally conditioned up to the moment of impact. The system developed is capable of thermally conditioning both CVN and MCVN specimens over the temperature range of -180 degreesC less than or equal to T less than or equal to 315 degreesC. Advanced systems are under development which will extend this temperature range. This paper presents data obtained using the in-situ heating and cooling system and compares the results with specimens which were heated and cooled using a liquid bath transfer approach. Specimens instrumented with embedded thermocouples were used to characterize the heat loss during bath transfer and to compare with the uniform temperature field produced by the in-situ system. Measurements are also presented which show a factor-of-two improvement in specimen alignment can be easily achieved with the in-situ system centering tool.
引用
收藏
页码:286 / 297
页数:12
相关论文
共 50 条
  • [31] Validation of a new in-situ test, the Geomechameter
    Monnet, Jacques
    HOUILLE BLANCHE-REVUE INTERNATIONALE DE L EAU, 2012, (4-5): : 60 - 65
  • [32] APPARATUS AND PROCEDURE FOR AN IN-SITU COLLAPSE TEST
    MAHMOUD, HHH
    HOUSTON, WN
    HOUSTON, SL
    GEOTECHNICAL TESTING JOURNAL, 1995, 18 (04): : 431 - 440
  • [33] Test and application of in-situ slurry fracturing
    Liu, X.-Y. (happyhome-liu@163.com), 1901, Chinese Society of Civil Engineering (35):
  • [34] Field test of in-situ conversion of coal
    Martemyanov, Sergey M.
    Bukharkin, Andrey A.
    Ermagambet, Bolat T.
    Kasenova, Zhanar M.
    INTERNATIONAL JOURNAL OF COAL PREPARATION AND UTILIZATION, 2022, 42 (11) : 3292 - 3302
  • [35] IN SITU ELECTRONIC HEATING OF SCANNING ELECTRON MICROSCOPE SPECIMENS.
    Gol'diner, M.G.
    Mazur, V.A.
    Shvartsman, I.L.
    Soviet surface engineering and applied electrochemistry, 1986, (05): : 93 - 96
  • [36] ASSESSMENT OF PASSIVELY ACTUATED IN-SITU CYCLIC SURVEILLANCE TEST SPECIMENS FOR ADVANCED NON-LIGHT WATER REACTORS
    Messner, M. C.
    Phan, V. -T.
    Jetter, R. I.
    Sham, T. -L.
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE, 2018, VOL 1B, 2019,
  • [37] Fracture toughness test on precracked Charpy specimens in the transition range for Linde 80 weld metals
    Hour, K.Y.
    Yoon, K.K.
    ASTM Special Technical Publication, 1998, (1329): : 173 - 195
  • [38] Analysis of reasons of IF steel recrystallization hindering in-situ heating
    Ye, Wei-Ping
    Zhang, Jing
    Jinshu Rechuli/Heat Treatment of Metals, 2001, 26 (12):
  • [39] It is too Hot: An In-Situ Study of Three Designs for Heating
    Alan, Alper T.
    Shann, Mike
    Costanza, Enrico
    Ramchurn, Sarvapali D.
    Seuken, Sven
    34TH ANNUAL CHI CONFERENCE ON HUMAN FACTORS IN COMPUTING SYSTEMS, CHI 2016, 2016, : 5262 - 5273
  • [40] In-situ remediation using radio-frequency heating
    Roland, U
    Remmler, M
    Kopinke, FD
    Becker, PM
    Ondruschka, B
    Muller, S
    CONTAMINATED SOIL '98, VOLS 1 AND 2, 1998, : 599 - 607