3D printed millireactors for process intensification

被引:0
|
作者
Harrson S.Santana [1 ]
Alan C.Rodrigues [1 ]
Mariana G.M.Lopes [1 ]
Felipe N.Russo [1 ]
Jo?o L.Silva Jr
Osvaldir P.Taranto [1 ]
机构
[1] School of Chemical Engineering, University of Campinas
[2] Federal Institute of Education, Science and Technology of South of Minas Gerais
基金
巴西圣保罗研究基金会;
关键词
Process intensification; 3D printer; Millireactors; Micromixers; Microdevices; Biodiesel;
D O I
暂无
中图分类号
TP391.73 []; TQ052 [化学反应过程机械与设备];
学科分类号
080201 ; 080706 ;
摘要
The scope of the present research aims at demonstrating the 3D printing use in the manufacturing of microchannels for chemical process applications. A comparison among digital model processing applications for 3D print(slicers) and a print layer thickness analysis were performed. The 3D print fidelity was verified in several devices, including the microchannels’ printing with and without micromixer zones. In order to highlight the 3D print potential in Chemical Engineering, the biodiesel synthesis was also carried out in a millireactor manufactured by 3D printing. The millireactor operated under laminar flow regime with a total flow rate of 75.25 ml ? min-1(increment of about 130 times over traditional microdevices used for biodiesel production).The printed millireactor provided a maximum yield of Ethyl Esters of 73.51% at 40 °C, ethanol:oil molar ratio of7 and catalyst concentration of 1.25 wt% and residence time about 10 s. As a result of flow rate increment attained in the millireactor, the number of required units for scaling-up the chemical processes is reduced. Using the approach described in the present research, anyone could produce their own millireactor for chemical process in a simple way with the aid of a 3D printer.
引用
收藏
页码:180 / 190
页数:11
相关论文
共 50 条
  • [1] 3D printed millireactors for process intensification
    Santana, Harrson S.
    Rodrigues, Alan C.
    Lopes, Mariana G. M.
    Russo, Felipe N.
    Silva, Joao L., Jr.
    Taranto, Osvaldir P.
    [J]. CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2020, 28 (01) : 180 - 190
  • [2] 3D printed micro-chemical plant for biodiesel synthesis in millireactors
    Mendonca Lopes, Mariana Garcia
    Santana, Harrson Silva
    Andolphato, Vinicius Felix
    Russo, Felipe Neves
    Silva, Joao Lameu, Jr.
    Taranto, Osvaldir Pereira
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2019, 184 : 475 - 487
  • [3] Enabling Process Intensification by 3D Printing of Catalytic Structures
    Konarova, Muxina
    Aslam, Waqas
    Ge, Lei
    Ma, Qing
    Tang, Fengqiu
    Rudolph, Victor
    Beltramini, Jorge Norberto
    [J]. CHEMCATCHEM, 2017, 9 (21) : 4132 - 4138
  • [4] Development of the Improving Process for the 3D Printed Structure
    Kensuke Takagishi
    Shinjiro Umezu
    [J]. Scientific Reports, 7
  • [5] Development of the Improving Process for the 3D Printed Structure
    Takagishi, Kensuke
    Umezu, Shinjiro
    [J]. SCIENTIFIC REPORTS, 2017, 7
  • [6] 3D Printed
    Good, Andrew
    [J]. MATERIALS EVALUATION, 2016, 74 (07) : 984 - 989
  • [7] Effect of Sandblasting Process on 3D Printed Intervertebral Cage
    Yu, Dongmei
    Wu, Suhua
    Bao, Shusen
    Yao, Li
    Tang, Zhen
    Zhao, Jungang
    Wu, Zhigang
    Huang, Hai
    Li, Xiaokang
    Guo, Zheng
    [J]. 3D PRINTING AND ADDITIVE MANUFACTURING, 2024,
  • [8] 3D Printed Surgical Instruments: The Design and Fabrication Process
    George, Mitchell
    Aroom, Kevin R.
    Hawes, Harvey G.
    Gill, Brijesh S.
    Love, Joseph
    [J]. WORLD JOURNAL OF SURGERY, 2017, 41 (01) : 314 - 319
  • [9] 3D Printed Surgical Instruments: The Design and Fabrication Process
    Sabaretnam Mayilvaganan
    Sapana Bothra
    [J]. World Journal of Surgery, 2017, 41 : 2414 - 2414
  • [10] Dielectric Transfer Process for 3D Printed Metal Microsystems
    Lohani, Bhushan
    Hossain, Sheikh Dobir
    Roberts, Robert C.
    [J]. JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2020, 29 (05) : 972 - 977