A Non-Linear Wave Model with Variable Molar Flows for Dynamic Behaviour and Disturbance Propagation in Distillation Columns

Abstract A non-linear wave model for a distillation column has been extended and then examined by including enthalpy and hold-up effects, significant for wide boilers and leading to variable molar flows, and reflux and reboil. Application of the coherence condition to the system mass and energy balance equations confirms that, for an n -component system, any disturbance or eventual steady-state will be resolved into n −1 distinct, coherent waves (involving synchronized variations in composition, temperature and flow-rate), provided that enthalpy and hold-up are made functions of composition. For steady states, the predictions of the wave model and those of more rigorous packed column model calculations show excellent agreement for the operating conditions required to obtain an optimum steady-state. In preliminary design calculations, the wave model thus quickly identifies an approximate, optimum steady state. For disturbance propagation, predictions of the wave model for the velocities of both the disturbance waves and the unbalanced key separation waves are in good agreement with those for the packed column model. In each case, the assumption of ‘constant pattern’ waves is seen to hold true. For both models, ‘asymmetric dynamics’ is predicted when an optimum steady-state is perturbed by an initial disturbance, followed by an equal and opposite disturbance. The asymmetry is rather less than expected for a constant molar flow model; this agrees qualitatively with previous experimental results. In all cases, the synchronized liquid and vapour flow variations across the waves are predicted correctly. When fully developed, wave theory can be used as a quick first step in design and optimization, and its simplicity and speed offers good prospects for on-line control applications, such as profile-position control.

[1]  Yng-Long Hwang,et al.  Dynamics of continuous countercurrent mass-transfer processes—III. Multicomponent systems , 1989 .

[2]  Sunwon Park,et al.  Control of high‐purity distillation column using a nonlinear wave theory , 1992 .

[3]  Ernst Dieter Gilles,et al.  Reduced models and control of distillation columns with sharp temperature profiles , 1980 .

[4]  Y. Hwang,et al.  Experimental study of wave propagation dynamics of binary distillation columns , 1996 .

[5]  William L. Luyben Profile position control of distillation columns with sharp temperature profiles , 1972 .

[6]  Y. Hwang,et al.  Experimental study of wave propagation dynamics of multicomponent distillation columns , 1999 .

[7]  Dynamics of continuous countercurrent mass-transfer processes-I. Single-component linear systems , 1987 .

[8]  Y. Hwang,et al.  Nonlinear wave theory for dynamics of binary distillation columns , 1991 .

[9]  Yng-Long Hwang,et al.  Nonlinear waves and asymmetric dynamics of countercurrent separation processes , 1989 .

[10]  Francis J. Doyle,et al.  Nonlinear control of a high-purity distillation column using a traveling-wave model , 1997 .

[11]  Yng-Long Hwang,et al.  Dynamics of continuous countercurrent mass-transfer processes—II. Single-component systems with nonlinear equilibria , 1988 .

[12]  Transients and Equilibration Time in Continuous Distillation , 1956 .

[13]  Y. Hwang,et al.  Nonlinear wave theory for dynamics of binary distillation columns , 1991 .

[14]  Nicholas P. Hankins,et al.  On the concept and application of ‘partial coherence’ in non-linear wave propagation , 1999 .

[15]  Wolfgang Marquardt NONLINEAR MODEL REDUCTION FOR BINARY DISTILLATION , 1986 .

[16]  J. S. Moczek,et al.  Approximation models for the dynamic response of large distillation columns , 1963 .

[17]  Y. Hwang,et al.  Dynamics of continuous countercurrent mass-transfer processes—IV. Multicomponent waves and asymmetric dynamics , 1990 .

[18]  Wolfgang Marquardt,et al.  Development of a Linear Distillation Model from Design Data for Process Control , 1993 .