Recent advances in manufacturing techniques have opened up new interest in rapid prototyping at the microscale. Traditionally microscale devices are fabricated using photolithography, however this process can be time consuming, challenging, and expensive. This paper focuses on three promising rapid prototyping techniques: laser ablation, micromilling, and 3D printing. Emphasis is given to rapid prototyping tools that are commercially available to the research community rather those only used in manufacturing research. Due to the interest in rapid prototyping within the microfluidics community a test part was designed with microfluidic features. This test part was then manufactured using the three different rapid prototyping methods. Accuracy of the features and surface roughness were measured using a surface profilometer, scanning electron microscope (SEM), and optical microscope. Micromilling was found to produce the most accurate features and best surface finish down to ∼100 μm, however it did not achieve the small feature sizes produced by laser ablation. The 3D printed part, though easily manufactured, did not achieve feature sizes small enough for most microfluidic applications. Laser ablation created somewhat rough and erratic channels, however the process was faster and achieved features smaller than either of the other two methods.
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September 2014
Technical Briefs
Comparison of Microscale Rapid Prototyping Techniques
Gordon D. Hoople,
Gordon D. Hoople
1
Department of Mechanical Engineering,
e-mail: ghoople@berkeley.edu
University of California
, Berkeley,Berkeley, CA 94720
e-mail: ghoople@berkeley.edu
1Corresponding author.
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David A. Rolfe,
David A. Rolfe
Department of Mechanical Engineering,
University of California
, Berkeley,Berkeley, CA 94720
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Katherine C. McKinstry,
Katherine C. McKinstry
Department of Mechanical Engineering,
University of California
,Berkeley, CA 94720
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Joanna R. Noble,
Joanna R. Noble
Department of Mechanical Engineering,
University of California
, Berkeley,Berkeley, CA 94720
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David A. Dornfeld,
David A. Dornfeld
Department of Mechanical Engineering,
Will C. Hall Family Professor of Engineering,
Will C. Hall Family Professor of Engineering,
University of California
, Berkeley,Berkeley, CA 94720
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Albert P. Pisano
Albert P. Pisano
Dean
Jacobs School of Engineering,
Distinguished Professor, MAE and ECE,
Walter J. Zable Endowed Chair of Engineering,
Jacobs School of Engineering,
Distinguished Professor, MAE and ECE,
Walter J. Zable Endowed Chair of Engineering,
University of California
, San Diego,La Jolla, CA 92093
Search for other works by this author on:
Gordon D. Hoople
Department of Mechanical Engineering,
e-mail: ghoople@berkeley.edu
University of California
, Berkeley,Berkeley, CA 94720
e-mail: ghoople@berkeley.edu
David A. Rolfe
Department of Mechanical Engineering,
University of California
, Berkeley,Berkeley, CA 94720
Katherine C. McKinstry
Department of Mechanical Engineering,
University of California
,Berkeley, CA 94720
Joanna R. Noble
Department of Mechanical Engineering,
University of California
, Berkeley,Berkeley, CA 94720
David A. Dornfeld
Department of Mechanical Engineering,
Will C. Hall Family Professor of Engineering,
Will C. Hall Family Professor of Engineering,
University of California
, Berkeley,Berkeley, CA 94720
Albert P. Pisano
Dean
Jacobs School of Engineering,
Distinguished Professor, MAE and ECE,
Walter J. Zable Endowed Chair of Engineering,
Jacobs School of Engineering,
Distinguished Professor, MAE and ECE,
Walter J. Zable Endowed Chair of Engineering,
University of California
, San Diego,La Jolla, CA 92093
1Corresponding author.
Contributed by the Manufacturing Engineering Division of ASME for publication in the JOURNAL OF MICRO- AND NANO-MANUFACTURING. Manuscript received March 31, 2014; final manuscript received June 2, 2014; published online July 8, 2014. Assoc. Editor: Hongqiang Chen.
J. Micro Nano-Manuf. Sep 2014, 2(3): 034502 (6 pages)
Published Online: July 8, 2014
Article history
Received:
March 31, 2014
Revision Received:
June 2, 2014
Citation
Hoople, G. D., Rolfe, D. A., McKinstry, K. C., Noble, J. R., Dornfeld, D. A., and Pisano, A. P. (July 8, 2014). "Comparison of Microscale Rapid Prototyping Techniques." ASME. J. Micro Nano-Manuf. September 2014; 2(3): 034502. https://doi.org/10.1115/1.4027810
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