Proportional integral derivative, modeling and ways of stabilization for the spark plasma sintering process
arXiv:2011.11633 · doi:10.1016/j.rinp.2017.04.020
Abstract
The stability ofthe proportional--integral--derivative (PID)controlof temperature in the spark plasma sintering (SPS) process is investigated.ThePID regulationsof this process are tested fordifferent SPS toolingdimensions, physical parameters conditions,andareas of temperature control. It isshown thatthe PID regulation quality strongly depends on the heating time lag between the area of heat generation and the area of the temperature control. Tooling temperature rate maps arestudied to revealpotential areas forhighlyefficientPID control.The convergence of the model and experiment indicatesthat even with non-optimal initial PIDcoefficients, it is possible to reduce the temperature regulation inaccuracy to less than 4K by positioning the temperature control location in highlyresponsiveareas revealed by the finite-element calculationsof the temperature spatial distribution.
Cited by in corpus (5)
- All-Materials-Inclusive Flash Spark Plasma Sintering
- Simultaneous Spark Plasma Sintering of Multiple Complex Shapes
- Porosity dependence of powder compaction constitutive parameters: Determination based on spark plasma sintering tests
- Energy efficient spark plasma sintering: Breaking the threshold of large dimension tooling energy consumption
- Graphite creep negation during flash spark plasma sintering under temperatures close to 2000C