Production of a new generation of high-performance materials by pulsation reactor technology

被引:0
|
作者
Erzeugung einer neuen Generation von Hochleistungswerkstoffen durch die Pulsationsreaktor-Technologie
机构
[1] Leidolph, L.
[2] Büchner, H.
来源
| 1600年 / DVS Verlag卷 / 65期
关键词
Fine grain materials - High performance material - High-specific surfaces - Material transformation - Particle agglomerations - Proprietary development - Technology characteristics - Thermal shock treatment;
D O I
暂无
中图分类号
学科分类号
摘要
The pulsation reactor is a technology applied to produce a new generation of advanced materials. This thermal reactor, a proprietary development of IBU-tec which is based on pulsation burning, is the reactor of choice for material transformation processes in the chemical industry and for the production of nano-sized up to micro-sized powders. The raw materials injected into the reactor receive thermal shock treatment with extremely short retention times. The thermal shock treatment creates advanced particles which feature a highly reactive surface or fine-grain materials. Moreover, temperature and residence time variations create specific powders properties, e.g. specific surface, morphology, phase composition or particle size. In comparison to other processes, the heat treatment of the particles inside the pulsation reactor is very homogeneous and constant. Due to this it is possible to influence the particle size, surface properties and phase composition. Thus particle agglomeration due to sinter processes in the thermal reactor can be prevented. This IBU-tec exclusive technology characteristic allows the production of materials with new and improved features and is for example well useable to produce catalysts with high specific surface or ceramic powders. Today IBU-tec produces a lot of different special chemicals for different future markets with this reactor.
引用
收藏
相关论文
共 50 条
  • [31] PRODUCTION TECHNOLOGY FOR HIGH-YIELD, HIGH-PERFORMANCE GAAS MONOLITHIC AMPLIFIERS
    WANG, SK
    CHANG, CD
    SIRACUSA, M
    LIU, LCT
    PAULEY, RG
    ASHER, P
    SOKOLICH, M
    IEEE TRANSACTIONS ON ELECTRON DEVICES, 1985, 32 (12) : 2766 - 2771
  • [32] DESIGN FOR A HIGH-PERFORMANCE RESEARCH REACTOR
    GILL, JP
    NUCLEONICS, 1954, 12 (09): : 36 - 38
  • [33] High-performance photoinitiating systems for new generation dental fillings
    Topa-Skwarczynska, Monika
    Jankowska, Magdalena
    Gruchala-Halat, Alicja
    Petko, Filip
    Galek, Mariusz
    Ortyl, Joanna
    DENTAL MATERIALS, 2023, 39 (08) : 729 - 742
  • [34] NEW-GENERATION OF HIGH-PERFORMANCE ENGINES FOR SPACECRAFT PROPULSION
    ROSENBERG, SD
    SCHOENMAN, L
    JOURNAL OF PROPULSION AND POWER, 1994, 10 (01) : 40 - 46
  • [35] High-performance clusters of new generation for shooting data processing
    Anufrikova, EV
    Bilan, AP
    Kutov, VP
    Kushnerov, NN
    Yakovlev, AP
    Yudovin, AI
    Iron, L
    Kamps, B
    NEFTYANOE KHOZYAISTVO, 2004, (09): : 118 - 119
  • [36] A NEW GENERATION OF ICS FOR HIGH-PERFORMANCE VISION IF AND SOUND IF PROCESSING
    KAMM, W
    WELTERSBACH, W
    IEEE 89 INTERNATIONAL CONFERENCE ON CONSUMER ELECTRONICS: DIGEST OF TECHNICAL PAPERS, 1989, 8 : 250 - 251
  • [37] HIGH-PERFORMANCE PACKAGING MATERIALS
    ISHITANI, T
    JOURNAL OF THE JAPANESE SOCIETY FOR FOOD SCIENCE AND TECHNOLOGY-NIPPON SHOKUHIN KAGAKU KOGAKU KAISHI, 1990, 37 (06): : 493 - 494
  • [38] HIGH-PERFORMANCE MATERIALS IN VACUUM
    不详
    POWDER METALLURGY INTERNATIONAL, 1989, 21 (04): : 27 - 31
  • [39] HIGH-PERFORMANCE POLYMERIC MATERIALS
    HINRICHSEN, G
    MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 1988, 19 (09) : 302 - 305
  • [40] NIROSTAR - high-performance materials
    Krupp Thyssen Nirosta GmbH, Dusseldorf, Germany
    Tech Mitt Krupp Engl Ed, (14-18):