Area of research
Computational Mechanics · Biomedical Engineering
Research interest
Research interests include Materials science, Machining, Graphene, Supercapacitor, Capacitance, and Electrode.
Generative adversarial message passing-based anomaly detection
General fabrication of metal oxide nanoparticles modified graphene for supercapacitors by laser ablation
Early Fault Diagnosis of Shaft Crack Based on Double Optimization Maximum Correlated Kurtosis Deconvolution and Variational Mode Decomposition
Experimental research on single-pulse discharge crater morphology in SEAM
Experiment investigation on machining characteristics of 7075 aluminium alloy with short electric arc milling
Direct laser writing of MnO2 decorated graphene as flexible supercapacitor electrodes
Arc characteristics in short electrical arc high-efficiency milling for GH4169
A novel frequency-band-selecting pulsed eddy current testing method for the detection of a certain depth range of defects
A study on machining characteristics of nickel-based alloy with short electric arc milling
Experimental research on the influence of dielectrics on short electric arc machining of GH4169
Influence of different tool polarity on short electric arc machining of GH4169
Direct laser writing of graphene films from a polyether ether ketone precursor
Experimental research on machinability of different electrode materials for SEAM of the nickel-based superalloy GH4169
Experimental study in SEAM machining performance of W-Cu alloy electrode materials
Research on removal characteristics of recast layer of laser-electrolytic machining on small holes
Atomistic simulations on the axial nanowelding configuration and contact behavior between Ag nanowire and single-walled carbon nanotubes
Temperature field simulation of the molten pool in SEAM
Molecular dynamics study of nanojoining between axially positioned Ag nanowires
New optical near-field nanolithography with optical fiber probe laser irradiating atomic force microscopy probe tip
Nanospot welding of carbon nanotubes using near-field enhancement effect of AFM probe irradiated by optical fiber probe laser