25.5 Summary, References

Fixed abrasive machining, which is carried out by means of more or less irregularly formed grains composed of hard substances brought into contact with the material, represents a key manufacturing engineering technology with high-efficiency security and machining quality. This chapter has provided some basic information on the fixed abrasive machining technology in fundamental terms, i.e., tools, machining parameters, and application technology in machining ductile and brittle materials. Limited to the length of the book, the industrial application information of fixed abrasive machining could not be introduced here. The readers could perhaps find the additional knowledge in the related literatures.

References

Andrew C, Howes TD, Pearce TRA (1985) Creep feed grinding. Holt, Rinehart and Winston, New York

Aust E, Niemann HR (1999) Machining of g-TiAl. Adv Eng Mater 1:53–57

Brinksmeier E, Werner F (1992) Monitoring of grinding wheel wear. Ann CIRP 34(1):373–376

Carslaw HS, Jaeger JC (1959) Conduction of heat in solids. Oxford Science, Oxford University Press, Oxford

Chen X, Brian RoweW(1996) Analysis and simulation of the grinding process. Part II: mechanics of grinding. Int J Mach Tool Manuf 36(8):883–896

Everhart JL (1971) Engineering properties of nickel and nickel alloys. Plenum, New York/London

Hahn RS (1962) On the nature of the grinding process. In: Proceedings of the 3rd machine tool design & research conference. Pergamon, Oxford, p 129

Heinzel C, Bleil N (2007) The use of the size effect in grinding for work-hardening. CIRP Ann Manuf Technol 56(1):327–330

Hitchiner MP, McSpadden SB (2005) Evaluation of factors controlling CBN abrasive selection for vitrified bonded wheels. Ann CIRP 54(1):277–280

Jaeger JC (1942) Moving sources of heat and the temperature at sliding contacts. Proc R Soc New South Wales 76:203

Klocke F (2009) Manufacturing processes 2: grinding, honing, lapping. Springer, Berlin

Klocke F, Gerent O, Pa¨hler D, Jakob A (2000) Flat rates on future silicon wafers: precision grinding. Ind Diam Rev 2:149–156

Komanduri R, Ramamohan TR (1994) On the mechanisms of material removal in fine grinding and polishing of advanced ceramics and glasses, in advancement of intelligence production. The Japan Society for Precision Engineering, Elsevier Science, Amsterdam

Konig W, Erinski D (1987) Inconel 718 mit Keramik und CBN drehen. Industrieanzeiger 109(13):24–28

Kumar KV (1990) Superabrasive grinding of titanium alloys. In: Conference paper, 4th international grinding conference, Dearborn

Li P (1997) Untersuchung und Interpretation der beim Schleifen der Nickelbasislegierung IN 738 LC induzierten Gef€ugea¨nderungen in der Randzone. PhD thesis, IPK

Malkin S, Guo C (2007) Thermal analysis of grinding. CIRP Ann Manuf Technol 56(2):760–782

Malkin S, Guo C (2008) Grinding technology: theory and applications of machining with abrasives. Industrial Press, New York, pp 1–375

Marinescu ID, Rowe WB, Dimitrov B, Inasaki I (2004) Tribology of abrasive machining processes. William Andrew Publishing, Norwich

Marinescu LD, Hitchiner M, Uhlmann E, Brian Rowe W (2007) Handbook of machining with grinding wheels. CRC Press Taylor & Francis Group, Boca Raton FL, pp 33487–2742

Nakayama K (1973) Taper print method for the measurement of grinding wheel surface. Bull Jpn Soc Precis Eng 7(2):59–60

Oliveira JFG, Coelho RT, Neto CK (1999) Development of an optical scanner to study wear on the working surface of grinding wheels. Mach Sci Technol 3(2):239–253

Oliveira JFG, Silva EJ, Guo C, Hashimoto F (2009) Industrial challenges in grinding. Ann CIRP 26(2):663–680

Roth P (1995) Abtrennmechanismen beim Schleifen von Aluminiumoxidkeramik. Fortschr.-Ber. VDI, Reihe 2, Nr. 335, VDI-Verlag, D€usseldorf

Rowe WB, Jin T (2001) Temperatures in high efficiency deep grinding (HEDG). Ann Int Inst Prod Eng 50(1):205–208

Shaw MC (1995) Precision finishing. CIRP Ann Manuf Technol 44(1):343–348

Shaw MC (1996) Principles of abrasives processing, Oxford science series. Clarendon, Oxford

Verkerk J (1977) Final report concerning CIRP cooperative work on the characterization of grinding wheel topography. Ann CIRP 26(2):385–395

Verlemann E (1994) Prozessgestaltung beim Hochgeschwindigkeitsaußenrundschleifen von Ingenieurkeramik. PhD thesis, RWTH Aachen University