Using thermographic slag detection systems

被引:0
|
作者
Rau, H. [1 ]
Von Röpenack, I. [1 ]
机构
[1] Betriebsleiter Konverterbetrieb, Thyssen Krupp Stahl AG, Dortmund, Germany
来源
| 2001年 / Verlag Stahleisen GmbH卷 / 121期
关键词
Basic oxygen converters - Electromagnetism - Tapping (furnace);
D O I
暂无
中图分类号
学科分类号
摘要
The ever growing requirements on the cleanness of steel make slag-free tapping at the converter and slag-free pouring at the continuous necessary. Various systems have established themselves for early slag detection. Most of them work on the electromagnetic principle. Especially when used at converters which use darts or balls as closing devices, these systems show a relatively high amount of false inter-pretations. Moreover, the sensors of the electromagnetic systems are integrated in the converter vessel which makes it impossible to replace a demaged sensor during a converter campaign. During the last few years the service lives of refractory linings have been considerably extended. This has also increased the risk of failure of the sensor during a campaign. The thermographic slag detection system (TSD) is based on purely optical detection of the tapping stream at the converter and functions with any converter vessel or taphole design. The only prerequisite is a free view of the tapping stream towards the end of tapping. All components are easily accessible independent of the mode of operation and can be exchanged at any time. This guarantees a high availability of the system. Thyssen Krupp Stahl has been using thermographic slag detection systems from Amepa GmbH since June 1999. Therefore comprehensive experience and results have been obtained since the installation of the first system. The article presents the results obtained with four systems installed in the Dortmund, Beeckerwerth and Bruckhausen works.
引用
收藏
相关论文
共 50 条
  • [31] Thermographic Studies in vivo and in vitro for Detection of Tumor Structures Using Microwave Radiometry
    Ojica, Silvana
    Iftemie, Anca
    2013 8TH INTERNATIONAL SYMPOSIUM ON ADVANCED TOPICS IN ELECTRICAL ENGINEERING (ATEE), 2013,
  • [32] Induction motor inter turn fault detection using infrared thermographic analysis
    Singh, Gurmeet
    Kumar, T. Ch Anil
    Naikan, V. N. A.
    INFRARED PHYSICS & TECHNOLOGY, 2016, 77 : 277 - 282
  • [33] Detection and Function of Bisphenol A in Thermographic Paper
    Salzner, Jens
    Luhken, Arnim
    Bader, Hans Joachim
    CHEMKON, 2011, 18 (03) : 135 - 138
  • [34] Detection of skin blood flow heterogeneity using functional parametric thermographic imaging
    Harrison, DK
    Cook, AIM
    FUNCTIONAL MONITORING AND DRUG-TISSUE INTERACTION, 2002, 4623 : 170 - 177
  • [35] Enhancing IR Thermographic Inspection of Subsurface Defects by Using the Technique of Edge Detection
    Bagavac, P.
    Krstulovic-Opara, L.
    Domazet, Z.
    RUSSIAN JOURNAL OF NONDESTRUCTIVE TESTING, 2021, 57 (07) : 609 - 618
  • [36] THERMOGRAPHIC DETECTION OF CLOTTING IN HEMODIALYSIS SHUNTS
    SALAMAN, JR
    CROSBY, DL
    CHU, J
    LANCET, 1972, 2 (7775): : 483 - &
  • [37] Approaches to Thermographic Detection, Measurement and Characterization
    Shepard, Steven M.
    13TH QUANTITATIVE INFRARED THERMOGRAPHY CONFERENCE, 2016, : 2 - 3
  • [38] Systems based approach to thermographic NDE
    Shepard, SM
    Ahmed, T
    Lhota, JR
    Rubadeux, BA
    NONDESTRUCTIVE EVALUATION OF AGING MATERIALS AND COMPOSITES IV, 2000, 3993 : 14 - 18
  • [39] SOME PHOTO-THERMOGRAPHIC SYSTEMS
    HOLSTEAD, C
    BAILEY, J
    JOURNAL OF PHOTOGRAPHIC SCIENCE, 1977, 25 (06): : 241 - 245
  • [40] Detection of surface breaking cracks using thermographic and non-contact ultrasonic methods
    Palmer, S. B.
    Burrows, S. E.
    Dixon, S.
    NONDESTRUCTIVE CHARACTERIZATION FOR COMPOSITE MATERIALS, AEROSPACE ENGINEERING, CIVIL INFRASTRUCTURE, AND HOMELAND SECURITY 2011, 2011, 7983