Part II of this paper is focused on studying the droplet spreading and the subsequent evaporation/film-formation characteristics of the graphene oxide colloidal solutions that were benchmarked in Part I. A high-speed imaging investigation was conducted to study the impingement dynamics of the colloidal solutions on a heated substrate. The spreading and evaporation characteristics of the fluids were then correlated with the corresponding temperature profiles and the subsequent formation of the residual graphene oxide film on the substrate. The findings reveal that the most important criterion dictating the machining performance of these colloidal solutions is the ability to form uniform, submicron thick films of graphene oxide upon evaporation of the carrier fluid. Colloidal suspensions of ultrasonically exfoliated graphene oxide at concentrations < 0.5 wt.% are best suited for micromachining applications since they are seen to produce such films. The use of thermally reduced (TR) graphene oxide suspensions at concentrations < 0.5 wt.% results in nonuniform films with thickness variations in the 0–5 μm range, which are responsible for the fluctuations seen in the cutting force and temperatures. At concentrations ≥ 0.5 wt.%, both the TR and ultrasonically exfoliated graphene oxide solutions result in thicker and nonuniform films that are detrimental for machining results. The findings of this study reveal that the characterization of the residual graphene oxide film left behind on a heated substrate may be an efficient technique to evaluate different graphene oxide colloidal solutions for cutting fluids applications in micromachining.
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December 2015
This article was originally published in
Journal of Micro and Nano-Manufacturing
Research-Article
Graphene Oxide Colloidal Suspensions as Cutting Fluids for Micromachining—Part II: Droplet Dynamics and Film Formation
Bryan Chu,
Bryan Chu
Department of Mechanical Aerospace and
Nuclear Engineering,
Rensselaer Polytechnic Institute,
110 8th Street,
Troy, NY 12180
e-mail: chub3@rpi.edu
Nuclear Engineering,
Rensselaer Polytechnic Institute,
110 8th Street,
Troy, NY 12180
e-mail: chub3@rpi.edu
Search for other works by this author on:
Johnson Samuel
Johnson Samuel
Assistant Professor
Department of Mechanical Aerospace
and Nuclear Engineering,
Rensselaer Polytechnic Institute,
110 8th Street,
Troy, NY 12180
e-mail: samuej2@rpi.edu
Department of Mechanical Aerospace
and Nuclear Engineering,
Rensselaer Polytechnic Institute,
110 8th Street,
Troy, NY 12180
e-mail: samuej2@rpi.edu
Search for other works by this author on:
Bryan Chu
Department of Mechanical Aerospace and
Nuclear Engineering,
Rensselaer Polytechnic Institute,
110 8th Street,
Troy, NY 12180
e-mail: chub3@rpi.edu
Nuclear Engineering,
Rensselaer Polytechnic Institute,
110 8th Street,
Troy, NY 12180
e-mail: chub3@rpi.edu
Johnson Samuel
Assistant Professor
Department of Mechanical Aerospace
and Nuclear Engineering,
Rensselaer Polytechnic Institute,
110 8th Street,
Troy, NY 12180
e-mail: samuej2@rpi.edu
Department of Mechanical Aerospace
and Nuclear Engineering,
Rensselaer Polytechnic Institute,
110 8th Street,
Troy, NY 12180
e-mail: samuej2@rpi.edu
1Corresponding author.
Contributed by the Manufacturing Engineering Division of ASME for publication in the JOURNAL OF MICRO- AND NANO-MANUFACTURING. Manuscript received May 7, 2015; final manuscript received July 14, 2015; published online August 21, 2015. Assoc. Editor: Sangkee Min.
J. Micro Nano-Manuf. Dec 2015, 3(4): 041003 (9 pages)
Published Online: August 21, 2015
Article history
Received:
May 7, 2015
Revised:
July 14, 2015
Citation
Chu, B., and Samuel, J. (August 21, 2015). "Graphene Oxide Colloidal Suspensions as Cutting Fluids for Micromachining—Part II: Droplet Dynamics and Film Formation." ASME. J. Micro Nano-Manuf. December 2015; 3(4): 041003. https://doi.org/10.1115/1.4031136
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