78 Papers
71 Citations
Duo Li is an academic researcher from Harbin Institute of Technology. The author has contributed to research in topics: Machining & Electrode. The author has an hindex of 9, co-authored 63 publications. Previous affiliations of Duo Li include Engineering and Physical Sciences Research Council & University of Huddersfield.
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Papers
On-machine surface measurement and applications for ultra-precision machining: a state-of-the-art review
TL;DR: This paper is aimed at reviewing the state-of-the-art OMSM and applications in the ultra-precision machining process and the benefits and considerations on the integration of metrology.
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Calibration of an interferometric on-machine probing system on an ultra-precision turning machine
TL;DR: Experimental investigation is conducted which proves the validity of proposed calibration methodology and the effectiveness of OMM, and results agree well with calibrated offline measurements.
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Ultraprecision machining of microlens arrays with integrated on-machine surface metrology.
TL;DR: An innovative framework for ultraprecision machining of MLA and the dedicated surface error characterization method and 3D corrective machining strategy are presented and an experimental study is carried out in order to prove the proposed MLA characterization's and3D correctiveMachining's effectiveness in improving the MLA surface accuracy.
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Molecular dynamics simulation study of interaction mechanism between grain boundaries and subgrain boundaries in nano-cutting
TL;DR: In this article, the interaction mechanism between the grain boundaries and the subgrain boundaries in nano-cutting is investigated by molecular dynamics simulations, and the results show that the extrusion action between the granularity and the cutting tool causes the periodic formation and annihilation of the subgrains in nanograins.
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Material removal mechanism of FCC single-crystalline materials at nano-scales: Chip removal & ploughing
TL;DR: In this article, an analytical model was proposed to predict the chip thickness and ploughing width for FCC crystal materials under arbitrary crystal orientations in nano-machining, which can be applied to the nano machining process of FCC crystals that achieve the plastic deformation by the (110, 111) slip system.
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