Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles.

Slides:



Advertisements
Similar presentations
Date of download: 5/28/2016 Copyright © ASME. All rights reserved. From: Ultrasonic Measurement of Rolling Bearing Lubrication Using Piezoelectric Thin.
Advertisements

Date of download: 5/30/2016 Copyright © ASME. All rights reserved. From: Introduction of the Element Interaction Technique for Welding Analysis and Simulation.
Date of download: 5/31/2016 Copyright © ASME. All rights reserved. From: Influence of Interfacial Mixing on Thermal Boundary Conductance Across a Chromium/Silicon.
Date of download: 6/2/2016 Copyright © ASME. All rights reserved. From: Static Friction Experiments and Verification of an Improved Elastic-Plastic Model.
Date of download: 6/24/2016 Copyright © ASME. All rights reserved. From: Influence of Carbon Nanotubes on Conductive Capacity and Tribological Characteristics.
Date of download: 6/28/2016 Copyright © ASME. All rights reserved. From: A Pin-on-Disk Experimental Study on a Green Particulate-Fluid Lubricant J. Tribol.
Date of download: 7/3/2016 Copyright © ASME. All rights reserved. From: Modeling of Entropy Generation in Turbulent Premixed Flames for Reynolds Averaged.
Date of download: 7/7/2016 Copyright © ASME. All rights reserved. From: Contaminant Migration in the Vicinity of a Grease Lubricated Bearing Seal Contact.
Date of download: 9/17/2016 Copyright © ASME. All rights reserved. From: Predicting the Thermal Conductivity of Foam Neoprene at Elevated Ambient Pressure.
Date of download: 11/12/2016 Copyright © ASME. All rights reserved. From: Experimental and Numerical Analysis of Low Output Power Laser Bending of Thin.
Date of download: 11/12/2016 Copyright © ASME. All rights reserved.
Date of download: 11/13/2016 Copyright © ASME. All rights reserved. From: Tribological Improvements of Dispersed Nanodiamond Additives in Lubricating Mineral.
Date of download: 9/26/2017 Copyright © ASME. All rights reserved.
From: Nonlocal Modeling and Swarm-Based Design of Heat Sinks
From: Analysis of a Porous Elastic Sheet Damper With a Magnetic Fluid
Date of download: 10/9/2017 Copyright © ASME. All rights reserved.
Date of download: 10/10/2017 Copyright © ASME. All rights reserved.
Date of download: 10/12/2017 Copyright © ASME. All rights reserved.
Date of download: 10/13/2017 Copyright © ASME. All rights reserved.
Date of download: 10/15/2017 Copyright © ASME. All rights reserved.
Date of download: 10/16/2017 Copyright © ASME. All rights reserved.
Date of download: 10/17/2017 Copyright © ASME. All rights reserved.
Date of download: 10/18/2017 Copyright © ASME. All rights reserved.
Date of download: 10/18/2017 Copyright © ASME. All rights reserved.
Date of download: 10/20/2017 Copyright © ASME. All rights reserved.
Date of download: 10/21/2017 Copyright © ASME. All rights reserved.
Date of download: 10/21/2017 Copyright © ASME. All rights reserved.
Date of download: 10/22/2017 Copyright © ASME. All rights reserved.
Date of download: 10/22/2017 Copyright © ASME. All rights reserved.
Date of download: 10/29/2017 Copyright © ASME. All rights reserved.
From: An Adsorption Model for Hydraulic Motor Lubrication
From: Heat Conduction in Nanofluid Suspensions
Date of download: 10/30/2017 Copyright © ASME. All rights reserved.
Date of download: 11/1/2017 Copyright © ASME. All rights reserved.
Date of download: 11/1/2017 Copyright © ASME. All rights reserved.
Date of download: 11/1/2017 Copyright © ASME. All rights reserved.
Date of download: 11/1/2017 Copyright © ASME. All rights reserved.
Date of download: 11/1/2017 Copyright © ASME. All rights reserved.
Date of download: 11/2/2017 Copyright © ASME. All rights reserved.
From: Heat Exchanger Efficiency
Date of download: 11/3/2017 Copyright © ASME. All rights reserved.
Date of download: 11/3/2017 Copyright © ASME. All rights reserved.
From: Numerical Simulations of Peristaltic Mixing
Date of download: 11/7/2017 Copyright © ASME. All rights reserved.
From: A Mean-field Model of Ventricular Muscle Tissue
Date of download: 11/8/2017 Copyright © ASME. All rights reserved.
Date of download: 11/8/2017 Copyright © ASME. All rights reserved.
Date of download: 11/8/2017 Copyright © ASME. All rights reserved.
Date of download: 11/9/2017 Copyright © ASME. All rights reserved.
Date of download: 11/9/2017 Copyright © ASME. All rights reserved.
Date of download: 11/12/2017 Copyright © ASME. All rights reserved.
From: A Novel Elastic Squeeze Film Total Hip Replacement
Date of download: 11/12/2017 Copyright © ASME. All rights reserved.
Date of download: 11/13/2017 Copyright © ASME. All rights reserved.
Date of download: 11/13/2017 Copyright © ASME. All rights reserved.
Date of download: 12/18/2017 Copyright © ASME. All rights reserved.
Date of download: 12/22/2017 Copyright © ASME. All rights reserved.
From: A Damage-Mechanics-Based Constitutive Model for Solder Joints
Date of download: 12/23/2017 Copyright © ASME. All rights reserved.
Date of download: 12/24/2017 Copyright © ASME. All rights reserved.
Date of download: 12/24/2017 Copyright © ASME. All rights reserved.
Date of download: 12/25/2017 Copyright © ASME. All rights reserved.
Date of download: 12/26/2017 Copyright © ASME. All rights reserved.
Date of download: 12/26/2017 Copyright © ASME. All rights reserved.
Date of download: 12/27/2017 Copyright © ASME. All rights reserved.
From: An Investigation of a Tunable Magnetomechanical Thermal Switch
Date of download: 12/31/2017 Copyright © ASME. All rights reserved.
Date of download: 1/2/2018 Copyright © ASME. All rights reserved.
Date of download: 1/3/2018 Copyright © ASME. All rights reserved.
Date of download: 3/4/2018 Copyright © ASME. All rights reserved.
Presentation transcript:

Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles J. Tribol. 2016;138(3): doi: / Lubricant thermal conductivity (W/m °C) for both neat mineral oil (Eq. (20)) and 0.01% weight concentration of diamond nanoparticles (Eq. (19)), as a function of temperature (°C) Figure Legend:

Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles J. Tribol. 2016;138(3): doi: / Simulation wear scar profiles after 3600 s of sliding contact for neat mineral oil at (a) T = 25 °C, (b) T = 51 °C, and (c) T = 59 °C; and for 0.01% diamond nanoparticles solution at (d) T = 25 °C, (e) T = 51 °C, and (f) T = 59 °C. Color bar represents the wear depth in μm. Figure Legend:

Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles J. Tribol. 2016;138(3): doi: / Experimental [9] and numerical wear (μm 3 ) data as a function of diamond nanoparticle weight concentration. Diamonds represent the average experimental wear, and error bars represent the experimental standard deviation. Figure Legend:

Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles J. Tribol. 2016;138(3): doi: / Experimental and numerical results of wear studies as a function of bulk lubricant oil temperatures ranging from T = 44 °C to 67 °C, for 0.01% diamond nanoparticles solution. Diamonds represent the experimental average wear, while error bars represent the average (thick error bars) and maximum (thin error bars) experimental variation of the wear observed between all six samples (two repeating tests with three ball bearings each). Figure Legend:

Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles J. Tribol. 2016;138(3): doi: / Experimental and numerical results of wear scar diameter (mm) studies as a function of bulk lubricant oil temperatures ranging from T = 44 °C to 67 °C, for 0.01% diamond nanoparticles solution. Diamonds represent the experimental average wear scar diameter, while error bars represent the average (thick error bars) and maximum (thin error bars) experimental variation of the wear scar diameter observed between all six samples (two repeating tests with three ball bearings each). Figure Legend:

Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles J. Tribol. 2016;138(3): doi: / Experimental results of wear studies as a function of bulk lubricant oil temperatures ranging from T = 44 °C to 67 °C, for both neat mineral oil and 0.01% diamond nanoparticles solution. Experimental error bars represent the standard deviation. Figure Legend:

Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles J. Tribol. 2016;138(3): doi: / Experimental and numerical results of wear evolution studies of diamond nanoparticle solution, at a constant bulk lubricant oil temperature of T = 51 °C Figure Legend:

Date of download: 9/18/2016 Copyright © ASME. All rights reserved. From: Numerical and Experimental Tribological Investigations of Diamond Nanoparticles J. Tribol. 2016;138(3): doi: / Wear scar diameter (mm) experimental data and matching simulation results, for 0.01% diamond nanoparticle solution at a bulk lubricant oil temperature of T = 51 °C. Diamonds represent the experimental average wear, while error bars represent the average (thick error bars) and maximum (thin error bars) experimental variation of the wear observed between all six samples (two repeating tests with three ball bearings each). Figure Legend: