DocumentCode :
119359
Title :
Internal model control of dc-dc boost converter exhibiting non-minimum phase behavior
Author :
Tarakanath, K. ; Patwardhan, Sachin ; Agarwal, Vivek
Author_Institution :
Indian Inst. of Technol. Bombay, Mumbai, India
fYear :
2014
fDate :
16-19 Dec. 2014
Firstpage :
1
Lastpage :
7
Abstract :
This paper investigates the application of two degree-of-freedom (2DOF) internal model controller (IMC) design approach for output voltage regulation of representative boost type dc-dc converter operated in continuous conduction mode (CCM). This system exhibits non-minimum phase behavior due to occurrence of a RHP zero, which poses limitation in the bandwidth available for any control scheme. The IMC structure provides an alternate parameterization of the conventional feedback controllers and is relatively easy to tune to achieve satisfactory servo and regulatory behavior simultaneously. To demonstrate the effectiveness of this 2DOF-EVIC control scheme, simulation studies have been conducted using SEVIULINK platform under different servo and regulatory scenarios. To begin with, simulations are carried out with plant dynamics simulated using linear transfer functions. To assess the feasibility of using the proposed EVIC controller on an experimental setup, the plant dynamics are later simulated using a nonlinear dynamic model. The simulation results clearly imply that the proposed EVIC performs better than the PID controller in linear as well as nonlinear simulations. Moreover, the performance of the IMC tuned using the linear simulation does not change significantly when used for operating the nonlinear plant.
Keywords :
DC-DC power convertors; circuit feedback; transfer functions; voltage control; 2DOF-IMC control scheme; CCM; DC-DC boost converter; PID controller; RHP zero; SIMULINK platform; continuous conduction mode; feedback controller; internal model control; linear transfer function; nonlinear dynamic model; nonminimum phase behavior; plant dynamics; regulatory behavior; right-half plane zero; servo behavior; two degree-of-freedom IMC design approach; voltage regulation; DC-DC power converters; Mathematical model; Servomotors; Stability analysis; Transfer functions; Tuning; Voltage control; DC-DC Boost converter; Internal Model Control (IMC); Two degree-of-freedom (2DOF); Voltage regulation; continuous conduction mode (CCM);
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Electronics, Drives and Energy Systems (PEDES), 2014 IEEE International Conference on
Conference_Location :
Mumbai
Print_ISBN :
978-1-4799-6372-0
Type :
conf
DOI :
10.1109/PEDES.2014.7042155
Filename :
7042155
Link To Document :
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