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Modeling, control and measurement in continuous potassium chloride crystallizers.

机译:连续氯化钾结晶器的建模,控制和测量。

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摘要

The objective of this study was to employ process control techniques to improve important quality and quantity variables for KCl crystallizers. In order to meet this objective, extensive experimental and theoretical investigations in measurement, modeling and control of KCl crystallizers were carried out. The experimental investigations were mainly focussed on enhancing crystal mean size in a continuous laboratory scale crystallizer. Two sensors for crystal size and concentration measurement in the control loop of the system were individually tried. Of these two sensors, one was an on-line double-sensor turbidimeter. This device, which is particularly suited for saturated slurry systems with suspended foreign insoluble particles, was developed in our laboratory. The other sensor was Par-TecRTM 100 (Laser Sensor Technology, Redmond, WA, USA). The theory behind the sensor was extensively investigated. A model capable of predicting the response of the sensor in measuring cordlength distribution (CLD) of a suspension for spherical and ellipsoidal particles was developed. The model was employed to infer the actual particle size distribution (PSD) using the measured CLD. The model was validated using experimental data. These two sensors were employed in the control loop of a continuous KCI crystallizer for measurement of fines suspension. A feedback control loop was implemented to control fines suspension density. The performance of the control loop was evaluated by comparing open and closed loop responses.;The theoretical study was aimed at applying a modern process control technique to control a KCl-NaCl crystallization system. To meet this objective, a model of a crystallizer that could replace the physical plant in the control loop was developed. The model was dynamic and could predict important variables of a continuous evaporative cooling KCl-NaCl crystallizer. A nonlinear model predictive controller was assigned to control the theoretical process. A black-box model was used for system identification and generation of a nonlinear model of the plant. The process was found to be MIMO and nonlinear, having significant interactions between its process variables, exhibiting non-minimum phase behavior with restricting constraints on its inputs and outputs. A specific type of model predictive control (MPC), namely extended quadratic dynamic matrix control (EQDMC) was developed and used to control such a difficult process. Closed loop responses of the control systems using EQDMC were compared to those of PID controllers. In complex control systems with several inputs and outputs, the usefulness of the EQDMC was more transparent. The performance of EQDMC in presence of noise was also evaluated.
机译:这项研究的目的是采用过程控制技术来改善KCl结晶器的重要质量和数量变量。为了达到该目的,在KCl结晶器的测量,建模和控制方面进行了广泛的实验和理论研究。实验研究主要集中于在连续实验室规模的结晶器中提高晶体平均尺寸。在系统的控制回路中分别尝试了两个用于晶体大小和浓度测量的传感器。在这两个传感器中,一个是在线双传感器浊度仪。该设备是我们实验室开发的,特别适合于具有悬浮的外来不溶性颗粒的饱和浆料系统。另一个传感器是Par-TecRTM 100(激光传感器技术,美国华盛顿州雷德蒙德)。传感器背后的理论得到了广泛的研究。开发了一种能够预测传感器在测量球形和椭圆形颗粒悬浮液的线长分布(CLD)时的响应的模型。该模型用于使用测得的CLD推断实际粒度分布(PSD)。使用实验数据验证了该模型。这两个传感器用于连续KCI结晶器的控制回路中,以测量细粉悬浮液。实施了反馈控制回路以控制细粉悬浮液密度。通过比较开环和闭环响应来评估控制回路的性能。理论研究旨在应用现代过程控制技术控制KCl-NaCl结晶系统。为了达到这个目的,开发了可以代替控制回路中的物理设备的结晶器模型。该模型是动态的,可以预测连续蒸发冷却的KCl-NaCl结晶器的重要变量。分配了非线性模型预测控制器来控制理论过程。黑匣子模型用于系统识别和植物非线性模型的生成。发现该过程是MIMO和非线性的,在其过程变量之间具有显着的相互作用,表现出非最小相位行为,并对其输入和输出施加了限制。开发了一种特定类型的模型预测控制(MPC),即扩展二次动态矩阵控制(EQDMC),并将其用于控制​​这种困难的过程。使用EQDMC的控制系统的闭环响应与PID控制器的闭环响应进行了比较。在具有多个输入和输出的复杂控制系统中,EQDMC的用途更加透明。还评估了存在噪声时EQDMC的性能。

著录项

  • 作者

    Tadayyon, Abdolsamad.;

  • 作者单位

    The University of Saskatchewan (Canada).;

  • 授予单位 The University of Saskatchewan (Canada).;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 284 p.
  • 总页数 284
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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