scholarly journals Correction: Indirect fabrication of versatile 3D microfluidic device by a rotating plate combined 3D printing system

RSC Advances ◽  
2018 ◽  
Vol 8 (71) ◽  
pp. 40597-40597
Author(s):  
Dong-Heon Ha ◽  
Dong-Hyeon Ko ◽  
Jin-Oh Kim ◽  
Do Jin Im ◽  
Byoung Soo Kim ◽  
...  

Correction for ‘Indirect fabrication of versatile 3D microfluidic device by a rotating plate combined 3D printing system’ by Dong-Heon Ha et al., RSC Adv., 2018, 8, 37693–37699.

RSC Advances ◽  
2018 ◽  
Vol 8 (66) ◽  
pp. 37693-37699 ◽  
Author(s):  
Dong-Heon Ha ◽  
Dong-Hyeon Ko ◽  
Jin-oh Kim ◽  
Do Jin Im ◽  
Byoung Soo Kim ◽  
...  

Rapid on-demand sacrificial printing techniques using suitable combinations of resin and sacrificial materials would be desirable to fabricate versatile and functional microfluidic devices with complex designs and chemical resistance.


2015 ◽  
Vol 17 (5) ◽  
pp. 2996-2999 ◽  
Author(s):  
Sang Jin Lee ◽  
Dong Nyoung Heo ◽  
Ji Sun Park ◽  
Seong Keun Kwon ◽  
Jin Ho Lee ◽  
...  

This study describes the design and fabrication of artificial blood vessels composed of a blend of CTS and PCL ENs and coated with PCL strands using rapid prototyping technology.


2021 ◽  
Vol 124 ◽  
pp. 103577
Author(s):  
Mohamed Gomaa ◽  
Wassim Jabi ◽  
Alejandro Veliz Reyes ◽  
Veronica Soebarto
Keyword(s):  

Author(s):  
Charmi Chande ◽  
Nida Riaz ◽  
Andrew House ◽  
Victoria Harbour ◽  
Hathija Noor ◽  
...  

Author(s):  
Morteza Vatani ◽  
Faez Alkadi ◽  
Jae-Won Choi

A novel additive manufacturing algorithm was developed to increase the consistency of three-dimensional (3D) printed curvilinear or conformal patterns on freeform surfaces. The algorithm dynamically and locally compensates the nozzle location with respect to the pattern geometry, motion direction, and topology of the substrate to minimize lagging or leading during conformal printing. The printing algorithm was implemented in an existing 3D printing system that consists of an extrusion-based dispensing module and an XYZ-stage. A dispensing head is fixed on a Z-axis and moves vertically, while the substrate is installed on an XY-stage and moves in the x–y plane. The printing algorithm approximates the printed pattern using nonuniform rational B-spline (NURBS) curves translated directly from a 3D model. Results showed that the proposed printing algorithm increases the consistency in the width of the printed patterns. It is envisioned that the proposed algorithm can facilitate nonplanar 3D printing using common and commercially available Cartesian-type 3D printing systems.


2018 ◽  
Vol 7 (2.23) ◽  
pp. 68 ◽  
Author(s):  
Anton V. Mironov ◽  
Aleksandra O. Mariyanac ◽  
Olga A. Mironova ◽  
Vladimir K. Popov

Present work describes the results of the development of the universal system, which capable to utilize varies 3D printing methodologies. The main goal of the study is to provide cheap, versatile and easy expandable equipment for multiple purpose research in the field of material science. 3D printing system was experimentally validated for fused deposition modeling, hydrogel, liquid dispensing and drop-on-demand printing, as well as 3D photopolymerisation by UV laser and/or LED light using different types of materials.  


2019 ◽  
Vol 3 (1) ◽  
pp. 26 ◽  
Author(s):  
Mohamed Mohamed ◽  
Hitendra Kumar ◽  
Zongjie Wang ◽  
Nicholas Martin ◽  
Barry Mills ◽  
...  

With the dramatic increment of complexity, more microfluidic devices require 3D structures, such as multi-depth and -layer channels. The traditional multi-step photolithography is time-consuming and labor-intensive and also requires precise alignment during the fabrication of microfluidic devices. Here, we present an inexpensive, single-step, and rapid fabrication method for multi-depth microfluidic devices using a high-resolution liquid crystal display (LCD) stereolithographic (SLA) three-dimensional (3D) printing system. With the pixel size down to 47.25 μm, the feature resolutions in the horizontal and vertical directions are 150 μm and 50 μm, respectively. The multi-depth molds were successfully printed at the same time and the multi-depth features were transferred properly to the polydimethylsiloxane (PDMS) having multi-depth channels via soft lithography. A flow-focusing droplet generator with a multi-depth channel was fabricated using the presented 3D printing method. Experimental results show that the multi-depth channel could manipulate the morphology and size of droplets, which is desired for many engineering applications. Taken together, LCD SLA 3D printing is an excellent alternative method to the multi-step photolithography for the fabrication of multi-depth microfluidic devices. Taking the advantages of its controllability, cost-effectiveness, and acceptable resolution, LCD SLA 3D printing can have a great potential to fabricate 3D microfluidic devices.


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