High voltage fragmentation of composites from secondary raw materials - Potential and limitations

被引:39
|
作者
Leissner, T. [1 ]
Hamann, D. [2 ]
Wuschke, L. [1 ,2 ]
Jaeckel, H. -G. [2 ]
Peuker, U. A.
机构
[1] TU Bergakad Freiberg, Inst Mech Proc Engn & Mineral Proc, Agr Str 1, D-09599 Freiberg, Germany
[2] TU Bergakad Freiberg, Inst Mech Engn, Leipziger Str 32, D-09599 Freiberg, Germany
关键词
Recycling; Comminution; High voltage fragmentation; Specific energy consumption; Economic efficiency; ELECTRICAL PULSES; SIZE-REDUCTION; LIBERATION; WASTE; COMMINUTION; TECHNOLOGY; MINERALS; METALS; ORES;
D O I
10.1016/j.wasman.2017.12.031
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The comminution of composites for liberation of valuable components is a costly and energy-intensive process within the recycling of spent products. It therefore is continuously studied and optimized. In addition to conventional mechanical comminution innovative new principles for size reduction have been developed. One is the use of high voltage (HV) pulses, which is known to be a technology selectively liberating along phase boundaries. This technology offers the advantage of targeted liberation, preventing overgrinding of the material and thus improving the overall processing as well as product quality. In this study, the high voltage fragmentation of three different non-brittle composites (galvanized plastics, carbon fibre composites, electrode foils from Li-ion batteries) was investigated. The influence of pulse rate, number of pulses and filling level on the liberation and efficiency of comminution is discussed. Using the guideline VDI 2225 HV, fragmentation is compared to conventional mechanical comminution with respect to numerous criteria such as cost, throughput, energy consumption, availability and scalability. It was found that at current state of development, HV fragmentation cannot compete with mechanical comminution beyond laboratory scale. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:123 / 134
页数:12
相关论文
共 50 条
  • [41] Editorial: Bioleaching and biorecovery of critical raw materials from secondary sources
    Castro, Laura
    Zhang, Ruiyong
    Munoz, Jesus Angel
    Sand, Wolfgang
    FRONTIERS IN MICROBIOLOGY, 2024, 15
  • [42] Structural and spectroscopic characterization of anorthite synthesized from secondary raw materials
    Gualtieri, Alessandro Francesco
    Andreozzi, Giovanni B.
    Giacobbe, Carlotta
    Lusvardi, Gigliola
    Viti, Cecilia
    PERIODICO DI MINERALOGIA, 2011, 80 (02): : 231 - 245
  • [43] High belite cement from alternative raw materials
    Ghorab, H. Y.
    Rizk, M.
    Ibrahim, B.
    Allam, M. M.
    MATERIALES DE CONSTRUCCION, 2014, 64 (314)
  • [44] Esterification with ethanol to produce biodiesel from high acidity raw materials Kinetic studies and analysis of secondary reactions
    Pisarello, M. L.
    Dalla Costa, B.
    Mendow, G.
    Querini, C. A.
    FUEL PROCESSING TECHNOLOGY, 2010, 91 (09) : 1005 - 1014
  • [46] Chemical resistance in acidic environments of alkali-activated lightweight composites based on secondary raw materials
    Lancellotti, Isabella
    Dal Poggetto, Giovanni
    Barbieri, Luisa
    Nguyen, Hoang
    Leonelli, Cristina
    JOURNAL OF SUSTAINABLE CEMENT-BASED MATERIALS, 2024, 13 (11) : 1631 - 1640
  • [47] Recycling of Thermoplastic Glass Fiber-Reinforced Composites Using High-Voltage Fragmentation
    Schmidt, Jannick
    Auer, Maximilian
    Grammel, Lena
    Woidasky, Joerg
    CHEMIE INGENIEUR TECHNIK, 2024, 96 (07) : 976 - 986
  • [48] RECOVERY OF COPPER, ZINC AND CADMIUM FROM SECONDARY SOURCES OF RAW-MATERIALS
    MARCU, G
    CRIVEI, L
    PASCU, N
    REVISTA DE CHIMIE, 1988, 39 (06): : 495 - 498
  • [49] Investigation of kinetics of drying the knobby grates manufactured from secondary raw materials
    Barabanov, N.N.
    Zemskova, V.T.
    Plasticheskie Massy: Sintez Svojstva Pererabotka Primenenie, 2002, (10): : 38 - 40
  • [50] Experimental research on the properties of secondary raw materials resulting from the recycling of tyres
    Jašek M.
    Hrubá B.
    Khestl F.
    Kurečka P.
    Teslík J.
    Key Engineering Materials, 2020, 832 : 29 - 38