[1]
A. Sompol, S. Chitwong, and P. Nilas, Decoupling Control of Electro-Pneumatic Pressure Tank System, Proceedings of International Muti Conference of Engineerings and Computer Scientists, vol. II, (2009).
Google Scholar
[2]
M. F. Gard and S. M. Rabinovich, Thermal Pressure Control: Regulation of High-pressure Gas by Exploitation of Temperature Sensitivity, IEEE Trans. Control Systems Technology, vol. 2, no. 2, pp.151-154, (1994).
DOI: 10.1109/87.294340
Google Scholar
[3]
Z. Ma and A. Jutan, Control of a Pressure Tank System Using a Decoupling Control Algorithm with a Neural Network Adaptive Scheme, IET Proceedings Control Theory and Applications, vol. 150, no. 4, pp.389-400, (2003).
DOI: 10.1049/ip-cta:20030592
Google Scholar
[4]
T. Hagglund and K. J. Åström, Automatic Tuning of PID Controllers, The Control Handbook, pp.817-826, (1996).
Google Scholar
[5]
E. Lin, R. D. Brandt, and G. Saikalis, Self-tuning of PID Controllers by Adaptive Interaction, Proceedings of the American Control Conference, pp.3676-3681, (2000).
DOI: 10.1109/acc.2000.879256
Google Scholar
[6]
Z. Shafiei and A. T. Shenton, Tuning of PID-type Controllers for Stable and Unstable Systems with Time Delay, Automatica, vol. 30, no. 10, pp.1609-1615, (1994).
DOI: 10.1016/0005-1098(94)90100-7
Google Scholar
[7]
Z. Shafiei and A. T. Shenton, Frequency-domain Design of PID Controllers for Stable and Unstable Systems with Time Delay, Automatica, vol. 33, no. 12, pp.2223-2232, (1997).
DOI: 10.1016/s0005-1098(97)00148-9
Google Scholar
[8]
H. Xu, A. Datta and S. P. Bhattacharyya, Computation of All Stabilizing PID Gains for Digital Control Systems, IEEE Trans. Automatic Control, vol. 46, no. 4, pp.647-652, (2001).
DOI: 10.1109/9.917670
Google Scholar