Area of research
Mechanical Engineering · Biomedical Engineering
Research interest
Research focused on Lubrication and Nanofluid, with related work in Machining, Grinding, Tribology. Notable publications include 'Dispersing mechanism and tribological performance of vegetable oil-based CNT nanofluids with different surfactants', 'Experimental assessment of an environmentally friendly grinding process using nanofluid minimum quantity lubrication with cryogenic air', and 'Surface morphology assessment of CFRP transverse grinding using CNT nanofluid minimum quantity lubrication'.
Nanobiolubricant grinding: a comprehensive review
High-Speed Circulation Flow Platform Facilitating Practical Large-Scale Heterogeneous Photocatalysis
High-speed grinding: from mechanism to machine tool
Mechanically sustainable and primary recycled thermo-responsive ABS–PLA polymer composites for 4D printing applications: Fabrication and studies
Residual stress generation in grinding: Mechanism and modeling
Nanoparticle-enhanced coolants in machining: mechanism, application, and prospects
Electrostatic atomization minimum quantity lubrication machining: from mechanism to application
Nano-enhanced biolubricant in sustainable manufacturing: From processability to mechanisms
Fiber-reinforced composites in milling and grinding: machining bottlenecks and advanced strategies
Effects of Physicochemical Properties of Different Base Oils on Friction Coefficient and Surface Roughness in MQL Milling AISI 1045
Surface morphology assessment of CFRP transverse grinding using CNT nanofluid minimum quantity lubrication
Surface morphology evaluation of multi-angle 2D ultrasonic vibration integrated with nanofluid minimum quantity lubrication grinding
Advances in fabrication of ceramic corundum abrasives based on sol–gel process
Milling force and surface morphology of 45 steel under different Al2O3 nanofluid concentrations
Dispersing mechanism and tribological performance of vegetable oil-based CNT nanofluids with different surfactants
Experimental assessment of an environmentally friendly grinding process using nanofluid minimum quantity lubrication with cryogenic air