Conceptual design of carbon nanotube processes

被引:0
作者
Adedeji E. Agboola
Ralph W. Pike
T. A. Hertwig
Helen H. Lou
机构
[1] Louisiana State University,
[2] Mosaic Inc.,undefined
[3] Lamar University,undefined
来源
Clean Technologies and Environmental Policy | 2007年 / 9卷
关键词
Carbon nanotubes; Conceptual design; Carbon monoxide disproportionation reaction; Cobalt–molybdenum catalyst; Iron pentacarbonyl catalyst; Profitability analysis; Purification methods for carbon nanotubes;
D O I
暂无
中图分类号
学科分类号
摘要
Carbon nanotubes, discovered in 1991, are a new form of pure carbon that is perfectly straight tubules with diameter in nanometers, length in microns. The conceptual designs of two processes are described for the industrial-scale production of carbon nanotubes that are based on available laboratory synthesis techniques and purification methods. Two laboratory-scale catalytic chemical vapor deposition reactors were selected for the conceptual design. One (CNT-PFR process) used the high-pressure carbon monoxide disproportionation reaction over iron catalytic particle clusters (HiPCO reactor), and the other (CNT-FBR process) used catalytic disproportionation of carbon monoxide over a silica supported cobalt–molybdenum catalyst (CoMoCAT reactor). Purification of the carbon nanotube product used a multi-step approach: oxidation, acid treatment, filtration and drying. Profitability analysis showed that both process designs were economically feasible. For the CNT-PFR process, the net present value, based on a minimum attractive rate of return of 25% and an economic life of 10 years, was $609 million, the rate of return was 37.4% and the economic price was $38 per kg of carbon nanotube. For the CNT-FBR process, the net present value was $753 million, rate of return was 48.2% and the economic price was $25 per kg of carbon nanotube. The economic price for these processes is an order of magnitude less than the prevalent market price of carbon nanotubes and is comparable to the price of carbon fibers.
引用
收藏
页码:289 / 311
页数:22
相关论文
共 50 条
  • [1] Conceptual design of carbon nanotube processes
    Agboola, Adedeji E.
    Pike, Ralph W.
    Hertwig, T. A.
    Lou, Helen H.
    CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY, 2007, 9 (04) : 289 - 311
  • [2] Conceptual design of processes for structured products
    Meeuse, FM
    Grievink, J
    Verheijen, PJT
    vander Stappen, MLM
    FIFTH INTERNATIONAL CONFERENCE ON FOUNDATIONS OF COMPUTER-AIDED PROCESS DESIGN, 2000, 96 (323): : 324 - 328
  • [3] Knowledge based processes in the context of conceptual design
    Pokojski, Jerzy
    Oleksinski, Konrad
    Pruszynski, Jaroslaw
    JOURNAL OF INDUSTRIAL INFORMATION INTEGRATION, 2019, 15 : 219 - 238
  • [4] Knowledge Based Processes in the Context of Conceptual Design
    Pokojski, Jerzy
    Oleksinski, Konrad
    Pruszynski, Jaroslaw
    TRANSDISCIPLINARY ENGINEERING: A PARADIGM SHIFT, 2017, 5 : 673 - 682
  • [5] Development and characterization of carbon nanotube processes for NRAM technology
    Amblard, Gilles
    ALTERNATIVE LITHOGRAPHIC TECHNOLOGIES III, 2011, 7970
  • [6] Exploring Dual-Processes of Iteration in Conceptual Design
    Moore, Dylan
    Sauder, Jonathan
    Jin, Yan
    INTERNATIONAL JOURNAL OF ENGINEERING EDUCATION, 2016, 32 (03) : 1385 - 1395
  • [7] CLARIFICATION OF SUSTAINABILITY CONSEQUENCES OF MANUFACTURING PROCESSES IN CONCEPTUAL DESIGN
    Hallstedt, Sophie
    Isaksson, Ola
    DESIGN FOR HARMONIES, VOL 9: DESIGN METHODS AND TOOLS, 2013, : 145 - 154
  • [8] Conceptual Design of Methyl Chloride Production Processes: A Review
    Yandrapu, Vikrath Pridhvi
    Kanidarapu, Nagamalleswara Rao
    PERIODICA POLYTECHNICA-CHEMICAL ENGINEERING, 2022, 66 (03) : 341 - 353
  • [9] Conceptual design of chemical processes: Opportunities for molecular modeling
    Doherty, MF
    FOUNDATIONS OF MOLECULAR MODELING AND SIMULATION, 2001, 97 (325): : 120 - 126
  • [10] Carbon Nanotube Strain Gauge Design and Calibration
    Bouchalkha, Abdellatif
    Alhammadi, Khalid
    Helal, Hesham O.
    2015 IEEE JORDAN CONFERENCE ON APPLIED ELECTRICAL ENGINEERING AND COMPUTING TECHNOLOGIES (AEECT), 2015,