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Non-linear and adaptive control of a refrigeration system

机译:制冷系统的非线性自适应控制

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In a refrigeration process heat is absorbed in an evaporator by evaporating a flow of liquid refrigerant at low pressure and temperature. Controlling the evaporator inlet valve and the compressor in such a way that a high degree of liquid filling in the evaporator is obtained at all compressor capacities ensures a high energy efficiency. The level of liquid filling is indirectly measured by the superheat. Introduction of variable-speed compressors and electronic expansion valves enables the use of more sophisticated control algorithms, giving a higher degree of performance and just as important are capable of adapting to a variety of systems. This study proposes a novel method for superheat and capacity control of refrigeration systems, namely by controlling the superheat by the compressor speed and capacity by the refrigerant flow. A new low-order non-linear model of the evaporator is developed and used in a backstepping design of a non-linear adaptive controller. The stability of the proposed method is validated theoretically by Lyapunov analysis and experimental results show the performance of the system for a wide range of operating points. The method is compared with a conventional method based on a thermostatic superheat controller.
机译:在制冷过程中,通过在低压和低温下蒸发液态制冷剂流来在蒸发器中吸收热量。以这样的方式控制蒸发器入口阀和压缩机,使得在所有压缩机容量下都能在蒸发器中获得高度的液体填充,从而确保了高能效。液体填充量是通过过热间接测量的。变速压缩机和电子膨胀阀的引入使得可以使用更复杂的控制算法,从而提供更高的性能,并且同样重要的是能够适应多种系统。这项研究提出了一种用于制冷系统过热和容量控制的新方法,即通过压缩机速度控制过热和通过制冷剂流量控制过热。开发了一种新型的蒸发器低阶非线性模型,并将其用于非线性自适应控制器的反推设计中。通过Lyapunov分析从理论上验证了该方法的稳定性,实验结果表明了该系统在各种工作点上的性能。将该方法与基于恒温过热控制器的常规方法进行了比较。

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