Predicting the occurrence of grind hardening in cubic boron nitride grinding of crankshaft steel

Прогнозирование возникновения шлифовочной закалки при шлифовании стали коленчатого вала износостойким нитридом бора
Andrew J. Harrison, D. C. Fricker, T R A Pearce
2004-10-01

42CrMo4 crankshaft steelcubic boron nitride grindinggrind hardeningspecific removal ratethermal model
Grind hardening is a stock removal grinding operation in which the heat generated in the grinding zone is used to heat-treat the workpiece surface to a specified depth. A thermal model to describe this process has been developed from the original Jaeger modelling and has been used to predict subsurface time-temperature profiles in the dry cylindrical grinding of 42CrMo4 crankshaft steel using cubic boron nitride (CBN) wheels. By comparing with experimental hardness depths, partition ratios were calculated and a polynomial fit applied to the proportion of specific energy entering the workpiece as heat, as a function of specific removal rate. By using this polynomial to provide the heat input to the thermal model, a theoretical chart of workpiece surface speed against depth of cut has been produced, which shows the regions in which grind hardening can be achieved to specified depths. The chart shows lower limits where the martensitic transformation temperature has been reached at certain specified depths and an upper limit where melting starts at the contact surface between the CBN grinding wheel and the workpiece. This chart has then been compared with experimental results for the specific case of a hardened depth of 0.5 mm or greater, with good agreement. The predictions indicate that there is an upper limit on workpiece speed if grind hardening is to be achieved, and that the limiting speed reduces as the required hardness depth increases. The predictions also indicate that there is an optimum work speed of around 10 mm/s for hardness depths below 1.5 mm and an upper limit below 4 mm/s for hardness depths around 2 mm.
1
A Jaeger-based thermal model predicts subsurface time-temperature profiles during dry cylindrical CBN grinding of 42CrMo4 crankshaft steel.
2
Experimental hardness depths enabled calculation of heat-partition ratios and a polynomial relationship between workpiece heat input and specific removal rate.
3
Grind hardening has an upper workpiece-speed limit that decreases with increasing required hardness depth; optimal speed is around 10 mm/s below 1.5 mm depth and below 4 mm/s near 2 mm depth.
4
Predictions agreed well with experiments for hardened depths of at least 0.5 mm.
5
The resulting speed–depth chart identifies grind-hardening regions bounded below by martensitic transformation and above by surface melting.

Dry cylindrical CBN grinding of 42CrMo4 crankshaft steel

The occurrence, achievable hardened depth, and processing-speed limits of grind hardening, including the thermal conditions for martensitic transformation and avoidance of surface melting

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2004-10-01
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Andrew J. Harrison
D. C. Fricker
T R A Pearce
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