Experimental validation of the performance of a microreactor for the high-throughput screening of catalytic coatings

被引:18
|
作者
Mies, M. J. M.
Rebrov, E. V.
Deutz, L.
Kleijn, C. R.
de Croon, M. H. J. M.
Schouten, J. C.
机构
[1] Eindhoven Univ Technol, Dept Chem Engn & Chem, NL-5600 MB Eindhoven, Netherlands
[2] Delft Univ Technol, Dept Multiscale Phys, NL-2628 BW Delft, Netherlands
关键词
D O I
10.1021/ie061081w
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In this paper, the results of computational fluid dynamics simulations of flow, temperature, and concentration distributions used in the design of a microreactor for the high-throughput screening of catalytic coatings (Mies et al., Chem. Eng. J. 2004, 101, 225) are compared with experimental data, and good agreement is obtained in all cases. The experimental results on flow distribution were obtained from laser Doppler anemometry measurements in the range of Reynolds numbers from 6 to 113. The measured flow nonuniformity in the separate reactor compartments was below 2%. The temperature distribution was obtained from thermocouple measurements. The temperature nonuniformity between the reactor compartments was below 3 K at a maximum heat production rate of 1.3 W in ethylene oxidation at 425 degrees C over CuO/Al2O3/Al coatings. With respect to concentration gradients, a deviation from the average rate of reaction of only 2.3% was obtained at realistic process conditions in the ethylene ammoxidation process over identical Co-ZSM-5 coatings in all reactor compartments. The cross talking noise between separate compartments does not exceed 0.1% when the reactor parts have a smooth surface finish. This illustrates the importance of ultraprecision machining of surfaces in microtechnology, when interfaces cannot be avoided.
引用
收藏
页码:3922 / 3931
页数:10
相关论文
共 50 条
  • [21] High-Throughput Screening
    Wildey, Mary Jo
    Haunso, Anders
    Tudor, Matthew
    Webb, Maria
    Connick, Jonathan H.
    ANNUAL REPORTS IN MEDICINAL CHEMISTRY, VOL 50: PLATFORM TECHNOLOGIES IN DRUG DISCOVERY AND VALIDATION, 2017, 50 : 149 - 195
  • [22] High-throughput screening
    Rogers, MV
    DRUG DISCOVERY TODAY, 1997, 2 (07) : 306 - 306
  • [23] Systematic error detection in experimental high-throughput screening
    Dragiev, Plamen
    Nadon, Robert
    Makarenkov, Vladimir
    BMC BIOINFORMATICS, 2011, 12
  • [24] Systematic error detection in experimental high-throughput screening
    Plamen Dragiev
    Robert Nadon
    Vladimir Makarenkov
    BMC Bioinformatics, 12
  • [25] High-Throughput Screening of Catalytic H2 Production
    Koo, Jamin
    Schnabel, Tim
    Liong, Sylvie
    Evitt, Niklaus H.
    Swartz, James R.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (04) : 1012 - 1016
  • [26] Establishment and validation of pheochromocytoma organoids for high-throughput drug screening
    Calucho, Maite
    Cheng, ZiMing
    Nguyen, Huyen Thi-Lam
    Al Shihabi, Ahmad
    Gonzalez-Cantu, Hector
    Guo, Qianjin
    Thaker, Maneesha
    Bechmann, Nicole
    Eisenhofer, Graeme
    Ding, Yanli
    Dahia, Patricia
    Soragni, Alice
    CANCER RESEARCH, 2023, 83 (07)
  • [27] High-throughput multilevel performance screening of advanced materials
    Potyrailo, RA
    Pickett, JE
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2002, 41 (22) : 4230 - 4233
  • [28] Experimental equipment for high-throughput synthesis and testing of catalytic materials
    Hahndorf, I
    Buyevskaya, O
    Langpape, M
    Grubert, G
    Kolf, S
    Guillon, E
    Baerns, M
    CHEMICAL ENGINEERING JOURNAL, 2002, 89 (1-3) : 119 - 125
  • [29] Novel high nitrogen austenitic stainless steels: From high-throughput screening to experimental validation and properties relationship
    Ferreira, Victor Hugo Mafra Monfredo
    Coury, Francisco Gil
    Santana, Diego de Araujo
    Koga, Guilherme Yuuki
    JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2024, 30 : 640 - 656
  • [30] High-throughput catalytic science
    Hendershot, RJ
    Snively, CM
    Lauterbach, J
    CHEMISTRY-A EUROPEAN JOURNAL, 2005, 11 (03) : 806 - 814