Design Optimization of a 3D Microfluidic Channel System for Biomedical Applications

被引:0
作者
Susanto, Radita Tyas Atsani [1 ]
Patel, Brijesh [1 ]
Hsiao, Yu-Sheng [2 ]
Tseng, Hsiu-Yang [1 ]
Lin, Po Ting [1 ,3 ,4 ]
机构
[1] Natl Taiwan Univ Sci & Technol, Dept Mech Engn, Taipei 10607, Taiwan
[2] Natl Taiwan Univ Sci & Technol, Dept Mat Sci & Engn, Taipei, Taiwan
[3] Natl Taiwan Univ Sci & Technol, Intelligent Mfg Innovat Ctr, Taipei, Taiwan
[4] Natl Taiwan Univ Sci & Technol, High Speed 3D Printing Res Ctr, Taipei, Taiwan
关键词
microfluidic channel system; optimization; response surface methodology; concentration gradient generation; CONCENTRATION GRADIENT GENERATION; SENSOR;
D O I
10.1089/3dp.2023.0169
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Microfluidic channel systems can be used for various biomedical applications, including drug administration, wound healing, cell culture research, and many others. A 3D microfluidic channel system has enormous potential over conventional microfluidic channel systems, including the capacity to simulate biological events in a laboratory setting. This system has the ability to recreate biological phenomena such as concentration gradient generators (CGGs). Microfluidic CGGs have complex fabrication when built into a 3D channel system. These complex systems can be built with complicated processes such as plasma bonding, which requires expensive setup and fine equipment. Therefore, in this study, a smart additive manufacturing technique is applied for an enormous review of the design and fabrication process, which is optimized for different operating conditions. This study employs a 3D printed removable channel mold to avoid the complex fabrication technique of microfluidic channels, allowing the direct casting of polydimethylsiloxane without extra bonding stages. The proposed design comprises dual mixing stages, incorporating a 3D mixer configuration and a converging output to attain the desired gradient outcome. Optimization is performed to achieve the best operating conditions by using response surface methodology, with channel dimension (L-C) and operating volumetric flow rate (Q(C)) as individual variables to minimize the gradient gap value (G(val)). As a result, the optimal operating conditions are the combinations of 640 mu m channel dimensions and 242 mL/hr operating volumetric flow rates, generating a stable and linear gradient value raise. A cost analysis was conducted to assess the fabrication expenses, revealing that the production cost of a sole 3D microfluidic channel is merely 1.42 USD.
引用
收藏
页码:E2075 / E2088
页数:14
相关论文
共 66 条
[1]   Development of bendable strain sensor with embedded microchannels using 3D printing [J].
Agarwala, Shweta ;
Goh, Guo Liang ;
Yap, Yee Ling ;
Goh, Guo Dong ;
Yu, Hao ;
Yeong, Wai Yee ;
Tuan Tran .
SENSORS AND ACTUATORS A-PHYSICAL, 2017, 263 :593-599
[2]   Continuous flow microfluidic separation and processing of rare cells and bioparticles found in blood - A review [J].
Antfolk, Maria ;
Laurell, Thomas .
ANALYTICA CHIMICA ACTA, 2017, 965 :9-35
[3]  
Aryasomayajula A., 2017, Microfluidic Devices and Their Applications
[4]   The revolution of PDMS microfluidics in cellular biology [J].
Banik, Soumyabrata ;
Uchil, Ashwini ;
Kalsang, Tenzin ;
Chakrabarty, Sanjiban ;
Ali, Md. Azahar ;
Srisungsitthisunti, Pornsak ;
Mahato, Krishna Kishore ;
Surdo, Salvatore ;
Mazumder, Nirmal .
CRITICAL REVIEWS IN BIOTECHNOLOGY, 2023, 43 (03) :465-483
[5]   Microfluidic devices for the detection of viruses: aspects of emergency fabrication during the COVID-19 pandemic and other outbreaks [J].
Berkenbrock, Jose Alvim ;
Grecco-Machado, Rafaela ;
Achenbach, Sven .
PROCEEDINGS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2020, 476 (2243)
[6]   The upcoming 3D-printing revolution in microfluidics [J].
Bhattacharjee, Nirveek ;
Urrios, Arturo ;
Kanga, Shawn ;
Folch, Albert .
LAB ON A CHIP, 2016, 16 (10) :1720-1742
[7]   A Review on Micromixers [J].
Cai, Gaozhe ;
Xue, Li ;
Zhang, Huilin ;
Lin, Jianhan .
MICROMACHINES, 2017, 8 (09)
[8]   Overexpression of chemokine ligand 7 is associated with the progression of canine transmissible venereal tumor [J].
Chiang, Hsin-Chien ;
Wang, Yu-Shan ;
Chou, Chung-Hsi ;
Liao, Albert Taiching ;
Chu, Rea-Min ;
Lin, Chen-Si .
BMC VETERINARY RESEARCH, 2012, 8
[9]   30 years of microfluidics [J].
Convery, Neil ;
Gadegaard, Nikolaj .
MICRO AND NANO ENGINEERING, 2019, 2 :76-91
[10]   Flexible Microfluidics: Fundamentals, Recent Developments, and Applications [J].
Fallahi, Hedieh ;
Zhang, Jun ;
Phan, Hoang-Phuong ;
Nam-Trung Nguyen .
MICROMACHINES, 2019, 10 (12)