Journal of Surface Engineered Materials and Advanced Technology

Journal of Surface Engineered Materials and Advanced Technology

ISSN Print: 2161-4881
ISSN Online: 2161-489X
www.scirp.org/journal/jsemat
E-mail: jsemat@scirp.org
"Influence of Coolant in Machinability of Titanium Alloy (Ti-6Al-4V)"
written by Muthukrishnan Namb, Davim Paulo,
published by Journal of Surface Engineered Materials and Advanced Technology, Vol.1 No.1, 2011
has been cited by the following article(s):
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[2] The cutting sound effect on the power consumption, surface roughness, and machining force in dry turning of Ti-6Al-4V titanium alloy
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[6] Similarity_A Comparison RSM and ANN Surface Roughness Models in Thin-Wall Machining of Ti6Al4V using Vegetable Oils under MQL-Condition
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[7] Analysis and optimization of machining parameters of Ti-6Al-4 V under high-speed machining
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[8] Optimizing Micro-Turning Parameters during Step Turning Process on Titanium Alloy with RSM
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[9] The Effect of Cutting Parameters on Surface Roughness and Morphology of Ti-6Al-4V ELI Titanium Alloy during Turning with Actively Driven Rotary Tools
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[11] Electrochemical and thermal-induced degradation of additively manufactured titanium alloys: a review
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[12] The Effect of the Use of Cutting Zone Minimum Quantity Lubrication and Wiper Geometry Inserts on Titanium Ti6Al4V Surface Quality After Turning
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[13] Experimental studies on dry machining behavior of Ti-6Al-4V using carbide, cermet, and SiAlON tools
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[14] Cooling techniques to improve the machinability and sustainability of light-weight alloys: A state-of-the-art review
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[15] Improvement of machinability of Ti and its alloys using cooling-lubrication techniques: A review and future prospect
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[16] Surface topography in machining Ti alloys for biomedical applications: correlative microscopy approach for qualitative and quantitative analysis
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[17] Tool Wear and Temperatures Analysis While Machining Ti-6Al-4V in MQCL-MIST Environment
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[18] The effect of different MQL supply strategies into the cutting zone on the tool wear when turning of Ti-6Al-4V alloy
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[19] The Role of Surfactant Structure on the Development of a Sustainable and Effective Cutting Fluid for Machining Titanium Alloys
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[20] An overview of conventional and non-conventional techniques for machining of titanium alloys
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[21] Machinability Improvement of Hard-to-Machine Materials by Monitoring and Controlling Laser Heating
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[22] High speed machining of titanium Ti 6Al4V alloy components: study and optimisation of cutting parameters using RSM
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[23] Modelling of Machining Characteristics During Green Machining of Biomaterials
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[24] Dry, MQL, and Nanofluid MQL Machining of Ti–6Al–4V Using Uncoated WC–Co Insert: Application of Jatropha Oil as Base Cutting Fluid and Graphene Nanoplatelets …
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[26] Performance Evaluation of Green Machining on Thin-Walled Ti6Al4V using Response Surface Methodology and Artificial Neural Networks
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[27] Comparison of between direct and peck drilling for large aspect ratio in Ti-6Al-4V alloy
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[28] Changing Manufacturer's Opinion in Reducing the Use of Flood Coolant when End Milling Titanium
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[29] Study on cutting temperature and surface roughness during the turning process of pure titanium
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[30] Thermal analysis of cellulose nanocrystal-ethylene glycol nanofluid coolant
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[31] Multi-objective optimization on the machining parameters for bio-inspired nanocoolant
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[32] Multi Objective optimization of Process Parameters in Turning of Ti-6Al-4V alloy
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[33] Effect of Coolant Temperature on Surface Finish during Turning of Titanium Alloy Ti6Al4V
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[34] Selection of optimal controllable factors for surface roughness in turning of titanium alloy using eco friendly cutting fluids
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[35] Thermal analysis of SUS 304 stainless steel using ethylene glycol/nanocellulose-based nanofluid coolant.
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[36] Effect of Coolant Temperature on Surface Finish during Turning of Titanium Alloy Ti6Al4
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[37] Thermal analysis of SUS 304 stainless steel using ethylene glycol/nanocellulose-based nanofluid coolant
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[38] High-pressure coolant effect on the surface integrity of machining titanium alloy Ti-6Al-4V: a review
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[39] Effect of Coolant Temperature on Machining Characteristics of High Carbon Steel
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[40] Titanyum Alaşımlarından Ti-6Al-4V'nın İşlenmesinde Karşılaşılan Zorluklar: Derleme
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[41] Comparative Assessment and Merit Appraisal of Thermally Assisted Machining Techniques for Improving Machinability of Titanium Alloys
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[42] Key improvements in machining of Ti6al4v alloy: A review
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[43] Ultrashort Pulsed Laser Machining of Ti6Al4VAlloy
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[44] Optimization of titanium alloys turning operation in varied cutting fluid conditions with multiple machining performance characteristics
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[45] Heat generation during removal of an abutment screw fragment from dental implants
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[46] Coolant strategy influence on tool life and surface roughness when machining ADI
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[47] A comparison RSM and ANN surface roughness models in thin-wall machining of Ti6Al4V using vegetable oils under MQL-condition
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[48] Application of cutting fluids in machining of titanium alloys—a review
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[49] Sustainable End Milling of Difficult-Materials
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[50] A Study on Machinability of Ti-6Al-4V
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[51] An Experimental Study on the Effects of Ultrasonic Vibration Assisted Grinding of Ti-6Al-4V Alloy. 6th International & 27th All India Manufacturing …
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[52] Effect of cutting tools and working
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[53] Multi-process parameter optimization in face milling of Ti6Al4V alloy using response surface methodology
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[54] Effects of Cutting Parameters on Quality of Surface Produced by Machining of Titanium Alloy and Their Optimization
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[55] Experimental investigations on tool wear in turning of Ti-6Al-4V alloy under different machining environmental conditions
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[56] Effect of cutting tools and working conditions on the machinability of TI-6AL-4V using vegetable oil-based cutting fluids
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[57] Sustainable cooling method for machining titanium alloy
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[58] Developments in cutting tool technology in improving machinability of Ti6Al4V alloy: A review
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[59] Effect of Water Oil Mist Spray (WOMS) Cooling on Drilling of Ti6Al4V Alloy Using Ester Oil Based Cutting Fluid
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[60] An Experimental Study on the Effects of Ultrasonic Vibration Assisted Grinding of Ti-6Al-4V Alloy
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[61] On the mechanism of tool crater wear in titanium alloy machining
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[62] Effect of rake angle and cutting speed in chip morphology and prediction of tip temperature and cutting forces with FEA software
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[64] Acoustic Emission (AE) monitoring of the milling process with coated metal carbide inserts using TRIM C270 cutting fluid
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[65] Master of Science Degree in Mechanical Engineering
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[66] Physics-based simulation and reliability modeling for multi-objective optimization of advanced cutting tools in machining titanium alloys
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[67] Analysis and optimisation of machining parameters in micro turning using RSM
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[69] Machining Challenges in Ti-6Al-4V.-A Review
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[70] Surface finish when threading titaniumbased alloy under dry machining
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[71] Variable Length Scale Surface Finish Assessment of Machined Grade 4 Titanium Alloy
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[72] Towards a Micromechanistic Understanding of Imparted Subsurface Deformation During Machining of Titanium Alloys
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[73] Surface Roughness Analysis in Turning of Titanium Alloy by Nanocoated Carbide Insert
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[74] Development machining of titanium alloys: A review
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[77] Evaluation of superficial and dimensional quality features in metallic micro-channels manufactured by micro-end-milling
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[78] Evaluation of Superficial and Dimensional Quality Features in Metallic Micro-channels by Micro-Milling.
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[79] Removal of a Fractured Screw Segment From a Dental Implant
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[80] MODELLING AND VERIFICATION OF TiO2/ZnO/EGW NANO COOLANT ON THE TiN MILLING TOOL PERFORMANCE
[81] INVESTIGATION OF THE EFFECTS ON MACHINABILITY OF CUTTING SPEED AND COOLING MEDIA IN MILLING OF Ti6Al4V ALLOY
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