journal article Aug 01, 2015

New concepts for bio-inspired sustainable grinding

View at Publisher Save 10.1016/j.jmapro.2015.05.008
Topics

No keywords indexed for this article. Browse by subject →

References
50
[1]
Haapala "A review of engineering research in sustainable manufacturing" J Manuf Sci Eng (2013) 10.1115/1.4024040
[2]
Sharif "Performance evaluation of vegetable oil as an alternative cutting lubricant when end milling stainless steel using TiAlN coated carbide tools" Trans NAMRI/SME (2009)
[3]
Kalita "Study of specific energy and friction coefficient in minimum quantity lubrication grinding using oil-based nanolubricants" J Manuf Process (2012) 10.1016/j.jmapro.2012.01.001
[4]
Shu "Biologically inspired design" Ann CIRP (2011) 10.1016/j.cirp.2011.06.001
[5]
Ramani "Integrated sustainable life cycle design: a review" J Mech Des (2010)
[6]
McKittrick "Energy absorbent natural materials and bioinspired design strategies: a review" Mater Sci Eng C (2010) 10.1016/j.msec.2010.01.011
[7]
Yao "Applications of bio-inspired special wettable surfaces" Adv Mater (2011) 10.1002/adma.201002689
[8]
Wells "A bio-inspired approach for self-correcting compliant assembly systems" J Manuf Syst (2013) 10.1016/j.jmsy.2013.03.002
[9]
Helms "Biologically inspired design: process and products" Des Stud (2009) 10.1016/j.destud.2009.04.003
[10]
Cheong "Biologically meaningful keywords for functional terms of the functional basis" J Mech Des (2011) 10.1115/1.4003249
[11]
Linke "Application of axiomatic design principles to identify more sustainable strategies for grinding" J Manuf Syst (2012) 10.1016/j.jmsy.2012.07.007
[12]
Stiassnie "Incorporating lifecycle considerations in axiomatic design" Ann CIRP (2007) 10.1016/j.cirp.2007.05.002
[13]
Rowe (2009)
[14]
Morgan "Optimisation of fluid application in grinding" Ann CIRP (2008) 10.1016/j.cirp.2008.03.090
[15]
Marinescu (2007)
[16]
Yarnitsky "Porosity – the third phase in grinding wheels" IDR (1969)
[17]
Brinksmeier "Friction, cooling and lubrication in grinding" Ann CIRP (1999) 10.1016/s0007-8506(07)63236-3
[18]
Molfino "A robotic system for underwater eco-sustainable wire-cutting" Autom Constr (2012) 10.1016/j.autcon.2012.03.005
[19]
Thuot Robot Comput-Integr Manuf (2013) 10.1016/j.rcim.2012.07.004
[20]
Wang "Hydrophobic properties of biomorphic carbon surfaces prepared by sintering lotus leaves" Ceram Int (2013) 10.1016/j.ceramint.2013.03.092
[21]
Wang "Investigation on hydrophobicity of lotus leaf: experiment and theory" Plant Sci (2009) 10.1016/j.plantsci.2009.02.013
[22]
Borkowski (1992)
[23]
Matsumura "Micro fabrication on cylinder surface for control of wettability" J Manuf Process (2013) 10.1016/j.jmapro.2012.09.010
[24]
Schmid "A manufacturing framework for biomimetic porous metals" Trans NAMRI/SME (2009)
[25]
Klocke (2009)
[26]
Tong "DEM numerical simulation of abrasive wear characteristics of a bioinspired ridged surface" J Bionic Eng (2010) 10.1016/s1672-6529(09)60206-7
[27]
Okamura "What is the ideal grinding wheel?" Ann CIRP (1978)
[28]
Carrano "Geometric modeling of engineered abrasive processes" J Manuf Process (2005) 10.1016/s1526-6125(05)70078-5
[29]
Eichhorn (1997)
[30]
Madhavan "Fiber orientation angle effects in machining of unidirectional CFRP laminated composites" J Manuf Process (2014)
[31]
US 6,063,148 A, Grinding tool with a metal–synthetic resin binder and method of producing the same, inventor: M. Fischbacher, filing date: February 7, 1997.
[32]
Tomlinson "Langform-Diamantkorn, das neue Konzept zum erfolgreichen Schleifen von Hartmetall" Ind Diam Rundsch (1978)
[33]
Scherge (2001)
[34]
US 2,958,593, Low density open non-woven fibrous abrasive article, inventors: Hoover, HL, Dupre, EJ, Rankin, WJ, patenting date: November 1, 1960.
[35]
Badger "Cooling in grinding – environmental considerations of quantity, disposal and energy consumption" (2009)
[36]
National Park Service (2013)
[37]
Reysenbach "Origin of thermophiles" (2001)
[38]
Rainey "1 Extremophile microorganisms and the methods to handle them" (2006)
[39]
Buckley (1971)
[40]
Barash "On the effect of ambient pressure on the rate of removal in ultrasonic machining" Int J Mech Sci (1970) 10.1016/0020-7403(70)90052-4
[41]
Shaw (1996)
[42]
Komanduri "Attritious wear of silicon carbide abrasive" Trans ASME, J Eng Ind (1976) 10.1115/1.3439065
[43]
Hollemann (1995)
[44]
Malkin "Energy partition and cooling during grinding" J Manuf Process (2000) 10.1016/s1526-6125(00)70116-2
[45]
Jerold "Experimental investigation of turning AISI 1045 steel using cryogenic carbon dioxide as the cutting fluid" J Manuf Process (2011) 10.1016/j.jmapro.2011.02.001
[46]
Wang "Abrasive technology: current development and applications I" (1999)
[47]
Yildiz "A review of cryogenic cooling in machining processes" Int J Mach Tools Manuf (2008) 10.1016/j.ijmachtools.2008.01.008
[48]
Umbrello "The effects of cryogenic cooling on surface integrity in hard machining: a comparison with dry machining" Ann CIRP (2012) 10.1016/j.cirp.2012.03.052
[49]
Wang "Cryogenic machining of tantalum" J Manuf Process (2002) 10.1016/s1526-6125(02)70138-2
[50]
Lee "Experimental characterization of meso-scale grinding process using compressed chilly air" Trans NAMRI/SME (2010)
Metrics
13
Citations
50
References
Details
Published
Aug 01, 2015
Vol/Issue
19
Pages
73-80
License
View
Cite This Article
Barbara S. Linke, Jorge Moreno (2015). New concepts for bio-inspired sustainable grinding. Journal of Manufacturing Processes, 19, 73-80. https://doi.org/10.1016/j.jmapro.2015.05.008