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(Reference retrieved automatically from Web of Science through information on FAPESP grant and its corresponding number as mentioned in the publication by the authors.)

Analysis of a microreactor for synthesizing nanocrystals by computational fluid dynamics

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Author(s):
Goncalves Peres, Jose Carlos [1] ; Herrera, Cristhiano da Costa [2] ; Baldochi, Sonia Licia [2] ; de Rossi, Wagner [2] ; Vianna, Ardson dos Santos [1]
Total Authors: 5
Affiliation:
[1] Univ Sao Paulo, Dept Chem Engn, Polytech Sch, Sao Paulo, SP - Brazil
[2] Inst Pesquisas Energet & Nucl, Ctr Lasers & Applicat, Sao Paulo, SP - Brazil
Total Affiliations: 2
Document type: Journal article
Source: CANADIAN JOURNAL OF CHEMICAL ENGINEERING; v. 97, n. 2, p. 594-603, FEB 2019.
Web of Science Citations: 1
Abstract

Microreactors eliminate batch-to-batch variability and allow better control over nanocrystal synthesis. A serpentine microreactor fabricated by femtosecond laser ablation is presented and characterized by computational fluid dynamics, since the micro channels show a trapezoidal cross-section mainly due to the relatively high numerical aperture of the focusing lens. Mixing, macro and micro, throughout the device was investigated for inlet flow rates between 10-500 mu L min(-1) and the injection of an inert tracer with the same transport properties of water. The simulation of the whole microreactor enabled the analysis of the formation and destruction of structures. For instance, secondary flows played a major role in mixing behaviour: small flow rates did not promote mixing of the tracer and a stream of pure water even after 43 curved segments, while they were perfectly mixed after 9 segments for higher flow rates. According to the mixing index, the maximum effect of convective mixing was achieved for an inlet flow rate of 250 mu L min(-1). Tracer dispersion and the mixing index guided a scale-up process of the microreactor, optimizing the number of curved segments while increasing total throughput. The upscaled design exhibited mixing saturation at 400 mu L min(-1) and promoted better control of residence time to allow nanocrystal growth. (AU)

FAPESP's process: 13/26113-6 - Micromachining with ultrashort laser pulses applied to the production and control of optofluidic circuits
Grantee:Wagner de Rossi
Support Opportunities: Research Projects - Thematic Grants